ladspa-0.4.17/000077500000000000000000000000001300111216200130325ustar00rootroot00000000000000ladspa-0.4.17/ABOUT-NLS000066400000000000000000002671331300111216200142750ustar00rootroot000000000000001 Notes on the Free Translation Project *************************************** Free software is going international! The Free Translation Project is a way to get maintainers of free software, translators, and users all together, so that free software will gradually become able to speak many languages. A few packages already provide translations for their messages. If you found this `ABOUT-NLS' file inside a distribution, you may assume that the distributed package does use GNU `gettext' internally, itself available at your nearest GNU archive site. But you do _not_ need to install GNU `gettext' prior to configuring, installing or using this package with messages translated. Installers will find here some useful hints. These notes also explain how users should proceed for getting the programs to use the available translations. They tell how people wanting to contribute and work on translations can contact the appropriate team. 1.1 INSTALL Matters =================== Some packages are "localizable" when properly installed; the programs they contain can be made to speak your own native language. Most such packages use GNU `gettext'. Other packages have their own ways to internationalization, predating GNU `gettext'. By default, this package will be installed to allow translation of messages. It will automatically detect whether the system already provides the GNU `gettext' functions. Installers may use special options at configuration time for changing the default behaviour. The command: ./configure --disable-nls will _totally_ disable translation of messages. When you already have GNU `gettext' installed on your system and run configure without an option for your new package, `configure' will probably detect the previously built and installed `libintl' library and will decide to use it. If not, you may have to to use the `--with-libintl-prefix' option to tell `configure' where to look for it. Internationalized packages usually have many `po/LL.po' files, where LL gives an ISO 639 two-letter code identifying the language. Unless translations have been forbidden at `configure' time by using the `--disable-nls' switch, all available translations are installed together with the package. However, the environment variable `LINGUAS' may be set, prior to configuration, to limit the installed set. `LINGUAS' should then contain a space separated list of two-letter codes, stating which languages are allowed. 1.2 Using This Package ====================== As a user, if your language has been installed for this package, you only have to set the `LANG' environment variable to the appropriate `LL_CC' combination. If you happen to have the `LC_ALL' or some other `LC_xxx' environment variables set, you should unset them before setting `LANG', otherwise the setting of `LANG' will not have the desired effect. Here `LL' is an ISO 639 two-letter language code, and `CC' is an ISO 3166 two-letter country code. For example, let's suppose that you speak German and live in Germany. At the shell prompt, merely execute `setenv LANG de_DE' (in `csh'), `export LANG; LANG=de_DE' (in `sh') or `export LANG=de_DE' (in `bash'). This can be done from your `.login' or `.profile' file, once and for all. You might think that the country code specification is redundant. But in fact, some languages have dialects in different countries. For example, `de_AT' is used for Austria, and `pt_BR' for Brazil. The country code serves to distinguish the dialects. The locale naming convention of `LL_CC', with `LL' denoting the language and `CC' denoting the country, is the one use on systems based on GNU libc. On other systems, some variations of this scheme are used, such as `LL' or `LL_CC.ENCODING'. You can get the list of locales supported by your system for your language by running the command `locale -a | grep '^LL''. Not all programs have translations for all languages. By default, an English message is shown in place of a nonexistent translation. If you understand other languages, you can set up a priority list of languages. This is done through a different environment variable, called `LANGUAGE'. GNU `gettext' gives preference to `LANGUAGE' over `LANG' for the purpose of message handling, but you still need to have `LANG' set to the primary language; this is required by other parts of the system libraries. For example, some Swedish users who would rather read translations in German than English for when Swedish is not available, set `LANGUAGE' to `sv:de' while leaving `LANG' to `sv_SE'. Special advice for Norwegian users: The language code for Norwegian bokma*l changed from `no' to `nb' recently (in 2003). During the transition period, while some message catalogs for this language are installed under `nb' and some older ones under `no', it's recommended for Norwegian users to set `LANGUAGE' to `nb:no' so that both newer and older translations are used. In the `LANGUAGE' environment variable, but not in the `LANG' environment variable, `LL_CC' combinations can be abbreviated as `LL' to denote the language's main dialect. For example, `de' is equivalent to `de_DE' (German as spoken in Germany), and `pt' to `pt_PT' (Portuguese as spoken in Portugal) in this context. 1.3 Translating Teams ===================== For the Free Translation Project to be a success, we need interested people who like their own language and write it well, and who are also able to synergize with other translators speaking the same language. Each translation team has its own mailing list. The up-to-date list of teams can be found at the Free Translation Project's homepage, `http://translationproject.org/', in the "Teams" area. If you'd like to volunteer to _work_ at translating messages, you should become a member of the translating team for your own language. The subscribing address is _not_ the same as the list itself, it has `-request' appended. For example, speakers of Swedish can send a message to `sv-request@li.org', having this message body: subscribe Keep in mind that team members are expected to participate _actively_ in translations, or at solving translational difficulties, rather than merely lurking around. If your team does not exist yet and you want to start one, or if you are unsure about what to do or how to get started, please write to `coordinator@translationproject.org' to reach the coordinator for all translator teams. The English team is special. It works at improving and uniformizing the terminology in use. Proven linguistic skills are praised more than programming skills, here. 1.4 Available Packages ====================== Languages are not equally supported in all packages. The following matrix shows the current state of internationalization, as of June 2010. The matrix shows, in regard of each package, for which languages PO files have been submitted to translation coordination, with a translation percentage of at least 50%. Ready PO files af am an ar as ast az be be@latin bg bn_IN bs ca +--------------------------------------------------+ a2ps | [] [] | aegis | | ant-phone | | anubis | | aspell | [] [] | bash | | bfd | | bibshelf | [] | binutils | | bison | | bison-runtime | [] | bluez-pin | [] [] | bombono-dvd | | buzztard | | cflow | | clisp | | coreutils | [] [] | cpio | | cppi | | cpplib | [] | cryptsetup | | dfarc | | dialog | [] [] | dico | | diffutils | [] | dink | | doodle | | e2fsprogs | [] | enscript | [] | exif | | fetchmail | [] | findutils | [] | flex | [] | freedink | | gas | | gawk | [] [] | gcal | [] | gcc | | gettext-examples | [] [] [] [] | gettext-runtime | [] [] | gettext-tools | [] [] | gip | [] | gjay | | gliv | [] | glunarclock | [] [] | gnubiff | | gnucash | [] | gnuedu | | gnulib | | gnunet | | gnunet-gtk | | gnutls | | gold | | gpe-aerial | | gpe-beam | | gpe-bluetooth | | gpe-calendar | | gpe-clock | [] | gpe-conf | | gpe-contacts | | gpe-edit | | gpe-filemanager | | gpe-go | | gpe-login | | gpe-ownerinfo | [] | gpe-package | | gpe-sketchbook | | gpe-su | [] | gpe-taskmanager | [] | gpe-timesheet | [] | gpe-today | [] | gpe-todo | | gphoto2 | | gprof | [] | gpsdrive | | gramadoir | | grep | | grub | [] [] | gsasl | | gss | | gst-plugins-bad | [] | gst-plugins-base | [] | gst-plugins-good | [] | gst-plugins-ugly | [] | gstreamer | [] [] [] | gtick | | gtkam | [] | gtkorphan | [] | gtkspell | [] [] [] | gutenprint | | hello | [] | help2man | | hylafax | | idutils | | indent | [] [] | iso_15924 | | iso_3166 | [] [] [] [] [] [] [] | iso_3166_2 | | iso_4217 | | iso_639 | [] [] [] [] | iso_639_3 | | jwhois | | kbd | | keytouch | [] | keytouch-editor | | keytouch-keyboa... | [] | klavaro | [] | latrine | | ld | [] | leafpad | [] [] | libc | [] [] | libexif | () | libextractor | | libgnutls | | libgpewidget | | libgpg-error | | libgphoto2 | | libgphoto2_port | | libgsasl | | libiconv | [] | libidn | | lifelines | | liferea | [] [] | lilypond | | linkdr | [] | lordsawar | | lprng | | lynx | [] | m4 | | mailfromd | | mailutils | | make | | man-db | | man-db-manpages | | minicom | | mkisofs | | myserver | | nano | [] [] | opcodes | | parted | | pies | | popt | | psmisc | | pspp | [] | pwdutils | | radius | [] | recode | [] [] | rosegarden | | rpm | | rush | | sarg | | screem | | scrollkeeper | [] [] [] | sed | [] [] | sharutils | [] [] | shishi | | skencil | | solfege | | solfege-manual | | soundtracker | | sp | | sysstat | | tar | [] | texinfo | | tin | | unicode-han-tra... | | unicode-transla... | | util-linux-ng | [] | vice | | vmm | | vorbis-tools | | wastesedge | | wdiff | | wget | [] [] | wyslij-po | | xchat | [] [] [] [] | xdg-user-dirs | [] [] [] [] [] [] [] [] [] | xkeyboard-config | [] [] | +--------------------------------------------------+ af am an ar as ast az be be@latin bg bn_IN bs ca 6 0 1 2 3 19 1 10 3 28 3 1 38 crh cs da de el en en_GB en_ZA eo es et eu fa +-------------------------------------------------+ a2ps | [] [] [] [] [] [] [] | aegis | [] [] [] | ant-phone | [] () | anubis | [] [] | aspell | [] [] [] [] [] | bash | [] [] [] | bfd | [] | bibshelf | [] [] [] | binutils | [] | bison | [] [] | bison-runtime | [] [] [] [] | bluez-pin | [] [] [] [] [] [] | bombono-dvd | [] | buzztard | [] [] [] | cflow | [] [] | clisp | [] [] [] [] | coreutils | [] [] [] [] | cpio | | cppi | | cpplib | [] [] [] | cryptsetup | [] | dfarc | [] [] [] | dialog | [] [] [] [] [] | dico | | diffutils | [] [] [] [] [] [] | dink | [] [] [] | doodle | [] | e2fsprogs | [] [] [] | enscript | [] [] [] | exif | () [] [] | fetchmail | [] [] () [] [] [] | findutils | [] [] [] | flex | [] [] | freedink | [] [] [] | gas | [] | gawk | [] [] [] | gcal | [] | gcc | [] [] | gettext-examples | [] [] [] [] | gettext-runtime | [] [] [] [] | gettext-tools | [] [] [] | gip | [] [] [] [] | gjay | [] | gliv | [] [] [] | glunarclock | [] [] | gnubiff | () | gnucash | [] () () () () | gnuedu | [] [] | gnulib | [] [] | gnunet | | gnunet-gtk | [] | gnutls | [] [] | gold | [] | gpe-aerial | [] [] [] [] | gpe-beam | [] [] [] [] | gpe-bluetooth | [] [] | gpe-calendar | [] | gpe-clock | [] [] [] [] | gpe-conf | [] [] [] | gpe-contacts | [] [] [] | gpe-edit | [] [] | gpe-filemanager | [] [] [] | gpe-go | [] [] [] [] | gpe-login | [] [] | gpe-ownerinfo | [] [] [] [] | gpe-package | [] [] [] | gpe-sketchbook | [] [] [] [] | gpe-su | [] [] [] [] | gpe-taskmanager | [] [] [] [] | gpe-timesheet | [] [] [] [] | gpe-today | [] [] [] [] | gpe-todo | [] [] [] | gphoto2 | [] [] () [] [] [] | gprof | [] [] [] | gpsdrive | [] [] [] | gramadoir | [] [] [] | grep | [] | grub | [] [] | gsasl | [] | gss | | gst-plugins-bad | [] [] [] [] [] | gst-plugins-base | [] [] [] [] [] | gst-plugins-good | [] [] [] [] [] [] | gst-plugins-ugly | [] [] [] [] [] [] | gstreamer | [] [] [] [] [] | gtick | [] () [] | gtkam | [] [] () [] [] | gtkorphan | [] [] [] [] | gtkspell | [] [] [] [] [] [] [] | gutenprint | [] [] [] | hello | [] [] [] [] | help2man | [] | hylafax | [] [] | idutils | [] [] | indent | [] [] [] [] [] [] [] | iso_15924 | [] () [] [] | iso_3166 | [] [] [] [] () [] [] [] () | iso_3166_2 | () | iso_4217 | [] [] [] () [] [] | iso_639 | [] [] [] [] () [] [] | iso_639_3 | [] | jwhois | [] | kbd | [] [] [] [] [] | keytouch | [] [] | keytouch-editor | [] [] | keytouch-keyboa... | [] | klavaro | [] [] [] [] | latrine | [] () | ld | [] [] | leafpad | [] [] [] [] [] [] | libc | [] [] [] [] | libexif | [] [] () | libextractor | | libgnutls | [] | libgpewidget | [] [] | libgpg-error | [] [] | libgphoto2 | [] () | libgphoto2_port | [] () [] | libgsasl | | libiconv | [] [] [] [] [] | libidn | [] [] [] | lifelines | [] () | liferea | [] [] [] [] [] | lilypond | [] [] [] | linkdr | [] [] [] | lordsawar | [] | lprng | | lynx | [] [] [] [] | m4 | [] [] [] [] | mailfromd | | mailutils | [] | make | [] [] [] | man-db | | man-db-manpages | | minicom | [] [] [] [] | mkisofs | | myserver | | nano | [] [] [] | opcodes | [] [] | parted | [] [] | pies | | popt | [] [] [] [] [] | psmisc | [] [] [] | pspp | [] | pwdutils | [] | radius | [] | recode | [] [] [] [] [] [] | rosegarden | () () () | rpm | [] [] [] | rush | | sarg | | screem | | scrollkeeper | [] [] [] [] [] | sed | [] [] [] [] [] [] | sharutils | [] [] [] [] | shishi | | skencil | [] () [] | solfege | [] [] [] | solfege-manual | [] [] | soundtracker | [] [] [] | sp | [] | sysstat | [] [] [] | tar | [] [] [] [] | texinfo | [] [] [] | tin | [] [] | unicode-han-tra... | | unicode-transla... | | util-linux-ng | [] [] [] [] | vice | () () | vmm | [] | vorbis-tools | [] [] | wastesedge | [] | wdiff | [] [] | wget | [] [] [] | wyslij-po | | xchat | [] [] [] [] [] | xdg-user-dirs | [] [] [] [] [] [] [] [] [] | xkeyboard-config | [] [] [] [] [] [] | +-------------------------------------------------+ crh cs da de el en en_GB en_ZA eo es et eu fa 5 64 105 117 18 1 8 0 28 89 18 19 0 fi fr ga gl gu he hi hr hu hy id is it ja ka kn +----------------------------------------------------+ a2ps | [] [] [] [] | aegis | [] [] | ant-phone | [] [] | anubis | [] [] [] [] | aspell | [] [] [] [] | bash | [] [] [] [] | bfd | [] [] [] | bibshelf | [] [] [] [] [] | binutils | [] [] [] | bison | [] [] [] [] | bison-runtime | [] [] [] [] [] [] | bluez-pin | [] [] [] [] [] [] [] [] | bombono-dvd | [] | buzztard | [] | cflow | [] [] [] | clisp | [] | coreutils | [] [] [] [] [] | cpio | [] [] [] [] | cppi | [] [] | cpplib | [] [] [] | cryptsetup | [] [] [] | dfarc | [] [] [] | dialog | [] [] [] [] [] [] [] | dico | | diffutils | [] [] [] [] [] [] [] [] [] | dink | [] | doodle | [] [] | e2fsprogs | [] [] | enscript | [] [] [] [] | exif | [] [] [] [] [] [] | fetchmail | [] [] [] [] | findutils | [] [] [] [] [] [] | flex | [] [] [] | freedink | [] [] [] | gas | [] [] | gawk | [] [] [] [] () [] | gcal | [] | gcc | [] | gettext-examples | [] [] [] [] [] [] [] | gettext-runtime | [] [] [] [] [] [] | gettext-tools | [] [] [] [] | gip | [] [] [] [] [] [] | gjay | [] | gliv | [] () | glunarclock | [] [] [] [] | gnubiff | () [] () | gnucash | () () () () () [] | gnuedu | [] [] | gnulib | [] [] [] [] [] [] | gnunet | | gnunet-gtk | [] | gnutls | [] [] | gold | [] [] | gpe-aerial | [] [] [] | gpe-beam | [] [] [] [] | gpe-bluetooth | [] [] [] [] | gpe-calendar | [] [] | gpe-clock | [] [] [] [] [] | gpe-conf | [] [] [] [] | gpe-contacts | [] [] [] [] | gpe-edit | [] [] [] | gpe-filemanager | [] [] [] [] | gpe-go | [] [] [] [] [] | gpe-login | [] [] [] | gpe-ownerinfo | [] [] [] [] [] | gpe-package | [] [] [] | gpe-sketchbook | [] [] [] [] | gpe-su | [] [] [] [] [] [] | gpe-taskmanager | [] [] [] [] [] | gpe-timesheet | [] [] [] [] [] | gpe-today | [] [] [] [] [] [] [] | gpe-todo | [] [] [] | gphoto2 | [] [] [] [] [] [] | gprof | [] [] [] [] | gpsdrive | [] [] [] | gramadoir | [] [] [] | grep | [] [] | grub | [] [] [] [] | gsasl | [] [] [] [] [] | gss | [] [] [] [] [] | gst-plugins-bad | [] [] [] [] [] [] | gst-plugins-base | [] [] [] [] [] [] | gst-plugins-good | [] [] [] [] [] [] | gst-plugins-ugly | [] [] [] [] [] [] | gstreamer | [] [] [] [] [] | gtick | [] [] [] [] [] | gtkam | [] [] [] [] [] | gtkorphan | [] [] [] | gtkspell | [] [] [] [] [] [] [] [] [] | gutenprint | [] [] [] [] | hello | [] [] [] | help2man | [] [] | hylafax | [] | idutils | [] [] [] [] [] [] | indent | [] [] [] [] [] [] [] [] | iso_15924 | [] () [] [] | iso_3166 | [] () [] [] [] [] [] [] [] [] [] [] | iso_3166_2 | () [] [] [] | iso_4217 | [] () [] [] [] [] | iso_639 | [] () [] [] [] [] [] [] [] | iso_639_3 | () [] [] | jwhois | [] [] [] [] [] | kbd | [] [] | keytouch | [] [] [] [] [] [] | keytouch-editor | [] [] [] [] [] | keytouch-keyboa... | [] [] [] [] [] | klavaro | [] [] | latrine | [] [] [] | ld | [] [] [] [] | leafpad | [] [] [] [] [] [] [] () | libc | [] [] [] [] [] | libexif | [] | libextractor | | libgnutls | [] [] | libgpewidget | [] [] [] [] | libgpg-error | [] [] | libgphoto2 | [] [] [] | libgphoto2_port | [] [] [] | libgsasl | [] [] [] [] [] | libiconv | [] [] [] [] [] [] | libidn | [] [] [] [] | lifelines | () | liferea | [] [] [] [] | lilypond | [] [] | linkdr | [] [] [] [] [] | lordsawar | | lprng | [] | lynx | [] [] [] [] [] | m4 | [] [] [] [] [] [] | mailfromd | | mailutils | [] [] | make | [] [] [] [] [] [] [] [] [] | man-db | [] [] | man-db-manpages | [] | minicom | [] [] [] [] [] | mkisofs | [] [] [] [] | myserver | | nano | [] [] [] [] [] [] | opcodes | [] [] [] [] | parted | [] [] [] [] | pies | | popt | [] [] [] [] [] [] [] [] [] | psmisc | [] [] [] | pspp | | pwdutils | [] [] | radius | [] [] | recode | [] [] [] [] [] [] [] [] | rosegarden | () () () () () | rpm | [] [] | rush | | sarg | [] | screem | [] [] | scrollkeeper | [] [] [] [] | sed | [] [] [] [] [] [] [] [] | sharutils | [] [] [] [] [] [] [] | shishi | [] | skencil | [] | solfege | [] [] [] [] | solfege-manual | [] [] | soundtracker | [] [] | sp | [] () | sysstat | [] [] [] [] [] | tar | [] [] [] [] [] [] [] | texinfo | [] [] [] [] | tin | [] | unicode-han-tra... | | unicode-transla... | [] [] | util-linux-ng | [] [] [] [] [] [] | vice | () () () | vmm | [] | vorbis-tools | [] | wastesedge | () () | wdiff | [] | wget | [] [] [] [] [] [] [] [] | wyslij-po | [] [] [] | xchat | [] [] [] [] [] [] [] [] [] | xdg-user-dirs | [] [] [] [] [] [] [] [] [] [] [] [] [] | xkeyboard-config | [] [] [] [] [] | +----------------------------------------------------+ fi fr ga gl gu he hi hr hu hy id is it ja ka kn 105 121 53 20 4 8 3 5 53 2 120 5 84 67 0 4 ko ku ky lg lt lv mk ml mn mr ms mt nb nds ne +-----------------------------------------------+ a2ps | [] | aegis | | ant-phone | | anubis | [] [] | aspell | [] | bash | | bfd | | bibshelf | [] [] | binutils | | bison | [] | bison-runtime | [] [] [] [] [] | bluez-pin | [] [] [] [] [] | bombono-dvd | | buzztard | | cflow | | clisp | | coreutils | [] | cpio | | cppi | | cpplib | | cryptsetup | | dfarc | [] | dialog | [] [] [] [] [] | dico | | diffutils | [] [] | dink | | doodle | | e2fsprogs | | enscript | | exif | [] | fetchmail | | findutils | | flex | | freedink | [] | gas | | gawk | | gcal | | gcc | | gettext-examples | [] [] [] [] | gettext-runtime | [] | gettext-tools | [] | gip | [] [] | gjay | | gliv | | glunarclock | [] | gnubiff | | gnucash | () () () () | gnuedu | | gnulib | | gnunet | | gnunet-gtk | | gnutls | [] | gold | | gpe-aerial | [] | gpe-beam | [] | gpe-bluetooth | [] [] | gpe-calendar | [] | gpe-clock | [] [] [] [] [] | gpe-conf | [] [] | gpe-contacts | [] [] | gpe-edit | [] | gpe-filemanager | [] [] | gpe-go | [] [] [] | gpe-login | [] | gpe-ownerinfo | [] [] | gpe-package | [] [] | gpe-sketchbook | [] [] | gpe-su | [] [] [] [] [] [] | gpe-taskmanager | [] [] [] [] [] [] | gpe-timesheet | [] [] | gpe-today | [] [] [] [] | gpe-todo | [] [] | gphoto2 | | gprof | [] | gpsdrive | | gramadoir | | grep | | grub | | gsasl | | gss | | gst-plugins-bad | [] [] [] [] | gst-plugins-base | [] [] | gst-plugins-good | [] [] | gst-plugins-ugly | [] [] [] [] [] | gstreamer | | gtick | | gtkam | [] | gtkorphan | [] [] | gtkspell | [] [] [] [] [] [] [] | gutenprint | | hello | [] [] [] | help2man | | hylafax | | idutils | | indent | | iso_15924 | [] [] | iso_3166 | [] [] () [] [] [] [] [] | iso_3166_2 | | iso_4217 | [] [] | iso_639 | [] [] | iso_639_3 | [] | jwhois | [] | kbd | | keytouch | [] | keytouch-editor | [] | keytouch-keyboa... | [] | klavaro | [] | latrine | [] | ld | | leafpad | [] [] [] | libc | [] | libexif | | libextractor | | libgnutls | [] | libgpewidget | [] [] | libgpg-error | | libgphoto2 | | libgphoto2_port | | libgsasl | | libiconv | | libidn | | lifelines | | liferea | | lilypond | | linkdr | | lordsawar | | lprng | | lynx | | m4 | | mailfromd | | mailutils | | make | [] | man-db | | man-db-manpages | | minicom | [] | mkisofs | | myserver | | nano | [] [] | opcodes | | parted | | pies | | popt | [] [] [] | psmisc | | pspp | | pwdutils | | radius | | recode | | rosegarden | | rpm | | rush | | sarg | | screem | | scrollkeeper | [] [] | sed | | sharutils | | shishi | | skencil | | solfege | [] | solfege-manual | | soundtracker | | sp | | sysstat | [] | tar | [] | texinfo | [] | tin | | unicode-han-tra... | | unicode-transla... | | util-linux-ng | | vice | | vmm | | vorbis-tools | | wastesedge | | wdiff | | wget | [] | wyslij-po | | xchat | [] [] [] | xdg-user-dirs | [] [] [] [] [] [] [] [] | xkeyboard-config | [] [] [] | +-----------------------------------------------+ ko ku ky lg lt lv mk ml mn mr ms mt nb nds ne 20 5 10 1 13 48 4 2 2 4 24 10 20 3 1 nl nn or pa pl ps pt pt_BR ro ru rw sk sl sq sr +---------------------------------------------------+ a2ps | [] [] [] [] [] [] [] [] | aegis | [] [] [] | ant-phone | [] [] | anubis | [] [] [] | aspell | [] [] [] [] [] | bash | [] [] | bfd | [] | bibshelf | [] [] | binutils | [] [] | bison | [] [] [] | bison-runtime | [] [] [] [] [] [] [] | bluez-pin | [] [] [] [] [] [] [] [] | bombono-dvd | [] () | buzztard | [] [] | cflow | [] | clisp | [] [] | coreutils | [] [] [] [] [] [] | cpio | [] [] [] | cppi | [] | cpplib | [] | cryptsetup | [] | dfarc | [] | dialog | [] [] [] [] | dico | [] | diffutils | [] [] [] [] [] [] | dink | () | doodle | [] [] | e2fsprogs | [] [] | enscript | [] [] [] [] [] | exif | [] [] [] () [] | fetchmail | [] [] [] [] | findutils | [] [] [] [] [] | flex | [] [] [] [] [] | freedink | [] [] | gas | | gawk | [] [] [] [] | gcal | | gcc | [] | gettext-examples | [] [] [] [] [] [] [] [] | gettext-runtime | [] [] [] [] [] [] [] [] [] | gettext-tools | [] [] [] [] [] [] | gip | [] [] [] [] [] | gjay | | gliv | [] [] [] [] [] [] | glunarclock | [] [] [] [] [] | gnubiff | [] () | gnucash | [] () () () | gnuedu | [] | gnulib | [] [] [] [] | gnunet | | gnunet-gtk | | gnutls | [] [] | gold | | gpe-aerial | [] [] [] [] [] [] [] | gpe-beam | [] [] [] [] [] [] [] | gpe-bluetooth | [] [] | gpe-calendar | [] [] [] [] | gpe-clock | [] [] [] [] [] [] [] [] | gpe-conf | [] [] [] [] [] [] [] | gpe-contacts | [] [] [] [] [] | gpe-edit | [] [] [] | gpe-filemanager | [] [] [] | gpe-go | [] [] [] [] [] [] [] [] | gpe-login | [] [] | gpe-ownerinfo | [] [] [] [] [] [] [] [] | gpe-package | [] [] | gpe-sketchbook | [] [] [] [] [] [] [] | gpe-su | [] [] [] [] [] [] [] [] | gpe-taskmanager | [] [] [] [] [] [] [] [] | gpe-timesheet | [] [] [] [] [] [] [] [] | gpe-today | [] [] [] [] [] [] [] [] | gpe-todo | [] [] [] [] [] | gphoto2 | [] [] [] [] [] [] [] [] | gprof | [] [] [] | gpsdrive | [] [] | gramadoir | [] [] | grep | [] [] [] [] | grub | [] [] [] | gsasl | [] [] [] [] | gss | [] [] [] | gst-plugins-bad | [] [] [] [] [] [] | gst-plugins-base | [] [] [] [] [] | gst-plugins-good | [] [] [] [] [] | gst-plugins-ugly | [] [] [] [] [] [] | gstreamer | [] [] [] [] [] | gtick | [] [] [] | gtkam | [] [] [] [] [] [] | gtkorphan | [] | gtkspell | [] [] [] [] [] [] [] [] [] [] | gutenprint | [] [] | hello | [] [] [] [] | help2man | [] [] | hylafax | [] | idutils | [] [] [] [] [] | indent | [] [] [] [] [] [] [] | iso_15924 | [] [] [] [] | iso_3166 | [] [] [] [] [] () [] [] [] [] [] [] [] [] | iso_3166_2 | [] [] [] | iso_4217 | [] [] [] [] [] [] [] [] | iso_639 | [] [] [] [] [] [] [] [] [] | iso_639_3 | [] [] | jwhois | [] [] [] [] | kbd | [] [] [] | keytouch | [] [] [] | keytouch-editor | [] [] [] | keytouch-keyboa... | [] [] [] | klavaro | [] [] | latrine | [] [] | ld | | leafpad | [] [] [] [] [] [] [] [] [] | libc | [] [] [] [] | libexif | [] [] () [] | libextractor | | libgnutls | [] [] | libgpewidget | [] [] [] | libgpg-error | [] [] | libgphoto2 | [] [] | libgphoto2_port | [] [] [] [] [] | libgsasl | [] [] [] [] [] | libiconv | [] [] [] [] [] | libidn | [] [] | lifelines | [] [] | liferea | [] [] [] [] [] () () [] | lilypond | [] | linkdr | [] [] [] | lordsawar | | lprng | [] | lynx | [] [] [] | m4 | [] [] [] [] [] | mailfromd | [] | mailutils | [] | make | [] [] [] [] | man-db | [] [] [] | man-db-manpages | [] [] [] | minicom | [] [] [] [] | mkisofs | [] [] [] | myserver | | nano | [] [] [] [] | opcodes | [] [] | parted | [] [] [] [] | pies | [] | popt | [] [] [] [] | psmisc | [] [] [] | pspp | [] [] | pwdutils | [] | radius | [] [] [] | recode | [] [] [] [] [] [] [] [] | rosegarden | () () | rpm | [] [] [] | rush | [] [] | sarg | | screem | | scrollkeeper | [] [] [] [] [] [] [] [] | sed | [] [] [] [] [] [] [] [] [] | sharutils | [] [] [] [] | shishi | [] | skencil | [] [] | solfege | [] [] [] [] | solfege-manual | [] [] [] | soundtracker | [] | sp | | sysstat | [] [] [] [] | tar | [] [] [] [] | texinfo | [] [] [] [] | tin | [] | unicode-han-tra... | | unicode-transla... | | util-linux-ng | [] [] [] [] [] | vice | [] | vmm | [] | vorbis-tools | [] [] | wastesedge | [] | wdiff | [] [] | wget | [] [] [] [] [] [] [] | wyslij-po | [] [] [] | xchat | [] [] [] [] [] [] [] [] [] | xdg-user-dirs | [] [] [] [] [] [] [] [] [] [] [] [] [] [] | xkeyboard-config | [] [] [] | +---------------------------------------------------+ nl nn or pa pl ps pt pt_BR ro ru rw sk sl sq sr 135 10 4 7 105 1 29 62 47 91 3 54 46 9 37 sv sw ta te tg th tr uk vi wa zh_CN zh_HK zh_TW +---------------------------------------------------+ a2ps | [] [] [] [] [] | 27 aegis | [] | 9 ant-phone | [] [] [] [] | 9 anubis | [] [] [] [] | 15 aspell | [] [] [] | 20 bash | [] [] [] | 12 bfd | [] | 6 bibshelf | [] [] [] | 16 binutils | [] [] | 8 bison | [] [] | 12 bison-runtime | [] [] [] [] [] [] | 29 bluez-pin | [] [] [] [] [] [] [] [] | 37 bombono-dvd | [] | 4 buzztard | [] | 7 cflow | [] [] [] | 9 clisp | | 10 coreutils | [] [] [] [] | 22 cpio | [] [] [] [] [] [] | 13 cppi | [] [] | 5 cpplib | [] [] [] [] [] [] | 14 cryptsetup | [] [] | 7 dfarc | [] | 9 dialog | [] [] [] [] [] [] [] | 30 dico | [] | 2 diffutils | [] [] [] [] [] [] | 30 dink | | 4 doodle | [] [] | 7 e2fsprogs | [] [] [] | 11 enscript | [] [] [] [] | 17 exif | [] [] [] | 16 fetchmail | [] [] [] | 17 findutils | [] [] [] [] [] | 20 flex | [] [] [] [] | 15 freedink | [] | 10 gas | [] | 4 gawk | [] [] [] [] | 18 gcal | [] [] | 5 gcc | [] [] [] | 7 gettext-examples | [] [] [] [] [] [] [] | 34 gettext-runtime | [] [] [] [] [] [] [] | 29 gettext-tools | [] [] [] [] [] [] | 22 gip | [] [] [] [] | 22 gjay | [] | 3 gliv | [] [] [] | 14 glunarclock | [] [] [] [] [] | 19 gnubiff | [] [] | 4 gnucash | () [] () [] () | 10 gnuedu | [] [] | 7 gnulib | [] [] [] [] | 16 gnunet | [] | 1 gnunet-gtk | [] [] [] | 5 gnutls | [] [] [] | 10 gold | [] | 4 gpe-aerial | [] [] [] | 18 gpe-beam | [] [] [] | 19 gpe-bluetooth | [] [] [] | 13 gpe-calendar | [] [] [] [] | 12 gpe-clock | [] [] [] [] [] | 28 gpe-conf | [] [] [] [] | 20 gpe-contacts | [] [] [] | 17 gpe-edit | [] [] [] | 12 gpe-filemanager | [] [] [] [] | 16 gpe-go | [] [] [] [] [] | 25 gpe-login | [] [] [] | 11 gpe-ownerinfo | [] [] [] [] [] | 25 gpe-package | [] [] [] | 13 gpe-sketchbook | [] [] [] | 20 gpe-su | [] [] [] [] [] | 30 gpe-taskmanager | [] [] [] [] [] | 29 gpe-timesheet | [] [] [] [] [] | 25 gpe-today | [] [] [] [] [] [] | 30 gpe-todo | [] [] [] [] | 17 gphoto2 | [] [] [] [] [] | 24 gprof | [] [] [] | 15 gpsdrive | [] [] [] | 11 gramadoir | [] [] [] | 11 grep | [] [] [] | 10 grub | [] [] [] | 14 gsasl | [] [] [] [] | 14 gss | [] [] [] | 11 gst-plugins-bad | [] [] [] [] | 26 gst-plugins-base | [] [] [] [] [] | 24 gst-plugins-good | [] [] [] [] | 24 gst-plugins-ugly | [] [] [] [] [] | 29 gstreamer | [] [] [] [] | 22 gtick | [] [] [] | 13 gtkam | [] [] [] | 20 gtkorphan | [] [] [] | 14 gtkspell | [] [] [] [] [] [] [] [] [] | 45 gutenprint | [] | 10 hello | [] [] [] [] [] [] | 21 help2man | [] [] | 7 hylafax | [] | 5 idutils | [] [] [] [] | 17 indent | [] [] [] [] [] [] | 30 iso_15924 | () [] () [] [] | 16 iso_3166 | [] [] () [] [] () [] [] [] () | 53 iso_3166_2 | () [] () [] | 9 iso_4217 | [] () [] [] () [] [] | 26 iso_639 | [] [] [] () [] () [] [] [] [] | 38 iso_639_3 | [] () | 8 jwhois | [] [] [] [] [] | 16 kbd | [] [] [] [] [] | 15 keytouch | [] [] [] | 16 keytouch-editor | [] [] [] | 14 keytouch-keyboa... | [] [] [] | 14 klavaro | [] | 11 latrine | [] [] [] | 10 ld | [] [] [] [] | 11 leafpad | [] [] [] [] [] [] | 33 libc | [] [] [] [] [] | 21 libexif | [] () | 7 libextractor | [] | 1 libgnutls | [] [] [] | 9 libgpewidget | [] [] [] | 14 libgpg-error | [] [] [] | 9 libgphoto2 | [] [] | 8 libgphoto2_port | [] [] [] [] | 14 libgsasl | [] [] [] | 13 libiconv | [] [] [] [] | 21 libidn | () [] [] | 11 lifelines | [] | 4 liferea | [] [] [] | 21 lilypond | [] | 7 linkdr | [] [] [] [] [] | 17 lordsawar | | 1 lprng | [] | 3 lynx | [] [] [] [] | 17 m4 | [] [] [] [] | 19 mailfromd | [] [] | 3 mailutils | [] | 5 make | [] [] [] [] | 21 man-db | [] [] [] | 8 man-db-manpages | | 4 minicom | [] [] | 16 mkisofs | [] [] | 9 myserver | | 0 nano | [] [] [] [] | 21 opcodes | [] [] [] | 11 parted | [] [] [] [] [] | 15 pies | [] [] | 3 popt | [] [] [] [] [] [] | 27 psmisc | [] [] | 11 pspp | | 4 pwdutils | [] [] | 6 radius | [] [] | 9 recode | [] [] [] [] | 28 rosegarden | () | 0 rpm | [] [] [] | 11 rush | [] [] | 4 sarg | | 1 screem | [] | 3 scrollkeeper | [] [] [] [] [] | 27 sed | [] [] [] [] [] | 30 sharutils | [] [] [] [] [] | 22 shishi | [] | 3 skencil | [] [] | 7 solfege | [] [] [] [] | 16 solfege-manual | [] | 8 soundtracker | [] [] [] | 9 sp | [] | 3 sysstat | [] [] | 15 tar | [] [] [] [] [] [] | 23 texinfo | [] [] [] [] [] | 17 tin | | 4 unicode-han-tra... | | 0 unicode-transla... | | 2 util-linux-ng | [] [] [] [] | 20 vice | () () | 1 vmm | [] | 4 vorbis-tools | [] | 6 wastesedge | | 2 wdiff | [] [] | 7 wget | [] [] [] [] [] | 26 wyslij-po | [] [] | 8 xchat | [] [] [] [] [] [] | 36 xdg-user-dirs | [] [] [] [] [] [] [] [] [] [] | 63 xkeyboard-config | [] [] [] | 22 +---------------------------------------------------+ 85 teams sv sw ta te tg th tr uk vi wa zh_CN zh_HK zh_TW 178 domains 119 1 3 3 0 10 65 51 155 17 98 7 41 2618 Some counters in the preceding matrix are higher than the number of visible blocks let us expect. This is because a few extra PO files are used for implementing regional variants of languages, or language dialects. For a PO file in the matrix above to be effective, the package to which it applies should also have been internationalized and distributed as such by its maintainer. There might be an observable lag between the mere existence a PO file and its wide availability in a distribution. If June 2010 seems to be old, you may fetch a more recent copy of this `ABOUT-NLS' file on most GNU archive sites. The most up-to-date matrix with full percentage details can be found at `http://translationproject.org/extra/matrix.html'. 1.5 Using `gettext' in new packages =================================== If you are writing a freely available program and want to internationalize it you are welcome to use GNU `gettext' in your package. Of course you have to respect the GNU Library General Public License which covers the use of the GNU `gettext' library. This means in particular that even non-free programs can use `libintl' as a shared library, whereas only free software can use `libintl' as a static library or use modified versions of `libintl'. Once the sources are changed appropriately and the setup can handle the use of `gettext' the only thing missing are the translations. The Free Translation Project is also available for packages which are not developed inside the GNU project. Therefore the information given above applies also for every other Free Software Project. Contact `coordinator@translationproject.org' to make the `.pot' files available to the translation teams. ladspa-0.4.17/AUTHORS000066400000000000000000000010751300111216200141050ustar00rootroot00000000000000In no particular order: Steve Harris - general stuff Frank Neumann - documentation, proofreading, DSP code Juhana Sadeharju - DSP code Joern Nettingsmeier - DSP code, bug reports and inspiration Mark Knecht - testesting, docuementation Pascal Haakmat - bugfixes, testing Marcus Andersson - DSP code Paul Winkler - documentation Matthias Nagorni - testing, inspiration Nathaniel Virgo - bugfixes Patrick Shirkey - testing, inspiration Project maintainted by Steve Harris, Southampton UK. steve@plugin.org.uk or swh@ecs.soton.ac.uk Plugin website at http://plugin.org.uk/ ladspa-0.4.17/COPYING000066400000000000000000000431101300111216200140640ustar00rootroot00000000000000 GNU GENERAL PUBLIC LICENSE Version 2, June 1991 Copyright (C) 1989, 1991 Free Software Foundation, Inc. 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA Everyone is permitted to copy and distribute verbatim copies of this license document, but changing it is not allowed. Preamble The licenses for most software are designed to take away your freedom to share and change it. By contrast, the GNU General Public License is intended to guarantee your freedom to share and change free software--to make sure the software is free for all its users. This General Public License applies to most of the Free Software Foundation's software and to any other program whose authors commit to using it. (Some other Free Software Foundation software is covered by the GNU Library General Public License instead.) You can apply it to your programs, too. When we speak of free software, we are referring to freedom, not price. Our General Public Licenses are designed to make sure that you have the freedom to distribute copies of free software (and charge for this service if you wish), that you receive source code or can get it if you want it, that you can change the software or use pieces of it in new free programs; and that you know you can do these things. To protect your rights, we need to make restrictions that forbid anyone to deny you these rights or to ask you to surrender the rights. These restrictions translate to certain responsibilities for you if you distribute copies of the software, or if you modify it. For example, if you distribute copies of such a program, whether gratis or for a fee, you must give the recipients all the rights that you have. You must make sure that they, too, receive or can get the source code. And you must show them these terms so they know their rights. We protect your rights with two steps: (1) copyright the software, and (2) offer you this license which gives you legal permission to copy, distribute and/or modify the software. Also, for each author's protection and ours, we want to make certain that everyone understands that there is no warranty for this free software. If the software is modified by someone else and passed on, we want its recipients to know that what they have is not the original, so that any problems introduced by others will not reflect on the original authors' reputations. Finally, any free program is threatened constantly by software patents. We wish to avoid the danger that redistributors of a free program will individually obtain patent licenses, in effect making the program proprietary. To prevent this, we have made it clear that any patent must be licensed for everyone's free use or not licensed at all. The precise terms and conditions for copying, distribution and modification follow. GNU GENERAL PUBLIC LICENSE TERMS AND CONDITIONS FOR COPYING, DISTRIBUTION AND MODIFICATION 0. This License applies to any program or other work which contains a notice placed by the copyright holder saying it may be distributed under the terms of this General Public License. The "Program", below, refers to any such program or work, and a "work based on the Program" means either the Program or any derivative work under copyright law: that is to say, a work containing the Program or a portion of it, either verbatim or with modifications and/or translated into another language. (Hereinafter, translation is included without limitation in the term "modification".) Each licensee is addressed as "you". Activities other than copying, distribution and modification are not covered by this License; they are outside its scope. The act of running the Program is not restricted, and the output from the Program is covered only if its contents constitute a work based on the Program (independent of having been made by running the Program). Whether that is true depends on what the Program does. 1. You may copy and distribute verbatim copies of the Program's source code as you receive it, in any medium, provided that you conspicuously and appropriately publish on each copy an appropriate copyright notice and disclaimer of warranty; keep intact all the notices that refer to this License and to the absence of any warranty; and give any other recipients of the Program a copy of this License along with the Program. You may charge a fee for the physical act of transferring a copy, and you may at your option offer warranty protection in exchange for a fee. 2. You may modify your copy or copies of the Program or any portion of it, thus forming a work based on the Program, and copy and distribute such modifications or work under the terms of Section 1 above, provided that you also meet all of these conditions: a) You must cause the modified files to carry prominent notices stating that you changed the files and the date of any change. b) You must cause any work that you distribute or publish, that in whole or in part contains or is derived from the Program or any part thereof, to be licensed as a whole at no charge to all third parties under the terms of this License. c) If the modified program normally reads commands interactively when run, you must cause it, when started running for such interactive use in the most ordinary way, to print or display an announcement including an appropriate copyright notice and a notice that there is no warranty (or else, saying that you provide a warranty) and that users may redistribute the program under these conditions, and telling the user how to view a copy of this License. (Exception: if the Program itself is interactive but does not normally print such an announcement, your work based on the Program is not required to print an announcement.) These requirements apply to the modified work as a whole. If identifiable sections of that work are not derived from the Program, and can be reasonably considered independent and separate works in themselves, then this License, and its terms, do not apply to those sections when you distribute them as separate works. But when you distribute the same sections as part of a whole which is a work based on the Program, the distribution of the whole must be on the terms of this License, whose permissions for other licensees extend to the entire whole, and thus to each and every part regardless of who wrote it. Thus, it is not the intent of this section to claim rights or contest your rights to work written entirely by you; rather, the intent is to exercise the right to control the distribution of derivative or collective works based on the Program. In addition, mere aggregation of another work not based on the Program with the Program (or with a work based on the Program) on a volume of a storage or distribution medium does not bring the other work under the scope of this License. 3. You may copy and distribute the Program (or a work based on it, under Section 2) in object code or executable form under the terms of Sections 1 and 2 above provided that you also do one of the following: a) Accompany it with the complete corresponding machine-readable source code, which must be distributed under the terms of Sections 1 and 2 above on a medium customarily used for software interchange; or, b) Accompany it with a written offer, valid for at least three years, to give any third party, for a charge no more than your cost of physically performing source distribution, a complete machine-readable copy of the corresponding source code, to be distributed under the terms of Sections 1 and 2 above on a medium customarily used for software interchange; or, c) Accompany it with the information you received as to the offer to distribute corresponding source code. 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These actions are prohibited by law if you do not accept this License. Therefore, by modifying or distributing the Program (or any work based on the Program), you indicate your acceptance of this License to do so, and all its terms and conditions for copying, distributing or modifying the Program or works based on it. 6. Each time you redistribute the Program (or any work based on the Program), the recipient automatically receives a license from the original licensor to copy, distribute or modify the Program subject to these terms and conditions. You may not impose any further restrictions on the recipients' exercise of the rights granted herein. You are not responsible for enforcing compliance by third parties to this License. 7. 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If the distribution and/or use of the Program is restricted in certain countries either by patents or by copyrighted interfaces, the original copyright holder who places the Program under this License may add an explicit geographical distribution limitation excluding those countries, so that distribution is permitted only in or among countries not thus excluded. In such case, this License incorporates the limitation as if written in the body of this License. 9. The Free Software Foundation may publish revised and/or new versions of the General Public License from time to time. Such new versions will be similar in spirit to the present version, but may differ in detail to address new problems or concerns. Each version is given a distinguishing version number. If the Program specifies a version number of this License which applies to it and "any later version", you have the option of following the terms and conditions either of that version or of any later version published by the Free Software Foundation. If the Program does not specify a version number of this License, you may choose any version ever published by the Free Software Foundation. 10. If you wish to incorporate parts of the Program into other free programs whose distribution conditions are different, write to the author to ask for permission. For software which is copyrighted by the Free Software Foundation, write to the Free Software Foundation; we sometimes make exceptions for this. Our decision will be guided by the two goals of preserving the free status of all derivatives of our free software and of promoting the sharing and reuse of software generally. NO WARRANTY 11. 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It is safest to attach them to the start of each source file to most effectively convey the exclusion of warranty; and each file should have at least the "copyright" line and a pointer to where the full notice is found. Copyright (C) This program is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. This program is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with this program; if not, write to the Free Software Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA Also add information on how to contact you by electronic and paper mail. If the program is interactive, make it output a short notice like this when it starts in an interactive mode: Gnomovision version 69, Copyright (C) year name of author Gnomovision comes with ABSOLUTELY NO WARRANTY; for details type `show w'. This is free software, and you are welcome to redistribute it under certain conditions; type `show c' for details. The hypothetical commands `show w' and `show c' should show the appropriate parts of the General Public License. Of course, the commands you use may be called something other than `show w' and `show c'; they could even be mouse-clicks or menu items--whatever suits your program. You should also get your employer (if you work as a programmer) or your school, if any, to sign a "copyright disclaimer" for the program, if necessary. Here is a sample; alter the names: Yoyodyne, Inc., hereby disclaims all copyright interest in the program `Gnomovision' (which makes passes at compilers) written by James Hacker. , 1 April 1989 Ty Coon, President of Vice This General Public License does not permit incorporating your program into proprietary programs. If your program is a subroutine library, you may consider it more useful to permit linking proprietary applications with the library. If this is what you want to do, use the GNU Library General Public License instead of this License. ladspa-0.4.17/ChangeLog000066400000000000000000000154141300111216200146110ustar00rootroot000000000000002006-08-08 Steve Harris * svf filter: possibly fixed denormal problems 2006-08-08 Steve Harris * fast lookadead limiter: Patch from Sampo to fix pumping problem * iir.h: Tim Blechmann to fix denormal problems 2005-09-23 Steve Harris * configure.in: Added patch from Anand Kumria to fix build options on x86_64 and popwerpc64 2005-04-29 Steve Harris * crossover_dist_1404.xml: Added patch from Tim Blechmann that fixes NaN problems. 2005-02-10 Steve Harris * fad_delay_1192.xml, tape_delay_1211.xml: Minor improvement to sound quality 2005-02-10 Steve Harris * fast_lookahead_limiter_1913.xml, sc4_1882.xmli, sc4m_1916.xml: fixed denormal bugs that were causing problems in JAMin on P4's 2004-12-22 Steve Harris * mbeq_1197.xml: fixed buffer overrun bug reported by Sergei Steshenko 2004-12-17 Steve Harris * mbeq_1197.xml: removed some stale testing code 2004-12-12 Steve Harris * util/rms.h: Fixed rouding error buildup in RMS code, as reported and patched by Dan Mills and Joel White. 2004-10-25 gettextize * Makefile.am (SUBDIRS): Add m4. (SUBDIRS): Remove intl. (ACLOCAL_AMFLAGS): New variable. (EXTRA_DIST): Add config.rpath. * configure.in (AC_OUTPUT): Add m4/Makefile. 2004-10-24 Steve Harris * Makefile.am: Changed build system to use libtool to build the libraries. >>>>>>> 1.33 2004-10-21 Steve Harris * mbeq_1197.xml: Fixed use a static variable with state between plugins. Caused last mbeq plugin created to hold pointers to the in/out buffers of the previous one, making them silent. 2004-10-18 Steve Harris * flanger_1191.xml: Add clipper to improve stabililty as suggested by Tim Blechmann. Add trap for the case where NaN's work thier way into the delay buffer. 2004-09-13 Steve Harris * revdelay_1605.xml: Fixed denormal problem, patch from Tim Blechmann 2004-08-03 Steve Harris * latency_1914.xml: Added new plugin. Doesnt do anything, just reports whatever latency you tell it do via. the standard control out port. Requested by Jesse on IRC 2004-07-17 Steve Harris * surround_encoder_1401.xml: Patch from Prakash K. Cheemplavam to improve the effect. 2004-07-17 Steve Harris * fast_lookahead_limiter_1913.xml: New lookahead limiter, this one actually works. * lookahead_limiter*.xml: Removed, were broken beyond repair. 2004-06-23 Steve Harris * flanger_1191.xml: fix for denormal problem (Tim Blechmann) * ladspa-util.h: make denomal test fuzzier (Tim Blechmann) 2004-04-01 Steve Harris * ladspa-util.h: fixed pointer alising problems 2004-02-24 Steve Harris * vynil: removed a C99 style declaration - should build on older gcc's now 2001-02-19 Steve Harris * Fixed some typos (thanks to Frank Neumann) 2001-02-12 Steve Harris * Added a tape multitap delay (not finished yet) 2001-02-11 Steve Harris * Added a sifter (block sorter) 2001-02-11 Steve Harris * Finished the retro flanger 2001-04-14 Steve Harris * Added a multiplexer 2001-06-10 Steve Harris * Added a foldover distorion, svf and gsm plugin. 2001-06-13 Steve Harris * Speeling mistokes fixed (thanks to Frank Neumann) * fixed scale in GSM plugin 2001-07-23 Steve Harris * Added gverb plugin and phasers * fixed some misc bugs * fixed autoconf cpu detection * added autoconf support for no FFT libs 2001-10-18 Steve Harris * Fixed float exception in LFO Phaser * Fixed int pivot bug in sifter. 2003-01-08 Steve Harris * Realised I haven't updated this for over a year 2003-01-09 Steve Harris * Bugfixes to GSM sim (Pascal Haakmat) * Bugfixes to FM osc (Pascal Haakmat) * Bugfixes to audio divider (Nathaniel Virgo) * Added another compressor, SC4, stereo, but no sidechain * Added lookahead brickwall limiter * Added L/C/R delay (requested by Marek Peteraj) * Added Giant flanger (kind of requested by Patrick Shirkey) * Added DJ Flanger (actually requested by Patrick Shirkey) * Should now compile on FreeBSD * Fixed syntax error in RDF metadata 2003-01-10 Steve Harris * SC4 had wrong label * Fixed UID clash * Made autoconf keep old CFLAGS 2003-01-10 Steve Harris * Fixed UID clash 2003-02-23 Steve Harris * Fixed memory leak in gate * Fixed filter implementation in gate * Fixed key defaults in gate * Made passes=0 work in GSM * Added bandlimiting filter to GSM (less cruchy sounds) 2003-02-24 Steve Harris * Removed stale code from surround encoder * Fixed memory leak in surround encoder 2003-02-24 Steve Harris * Fixed maths error in multiplexer * Fixed buffer overrun in sifter * Efficiency improvements to FAD delay * Fixed infinite loop in FAD delay. * Fixed (another) buffer overrun in FM oscillator * Performance improvement for FM oscillator * Fixed buffer overrun in multiband EQ * Fixed aliasing in Hermes * Fixed memory leaks in: AM pitchshift Analogue osc Bode sifters Comb Comb splitter Delayorama Dyson compressor FM oscilator Giant flange Gong GVerb Hermes filter L/C/R delay Multiband EQ Plate reverb Rate shifter Retro flanger Satan maximiser SC* Sifter Single band parametric Multiplexer Tape delay There are still known leaks in imp and the multiband EQ 2003-03-04 Steve Harris * Made blo use SHM where available, to share table data 2003-03-08 Steve Harris * Fixed scaling offset in multiband EQ 2003-05-10 Steve Harris * Fixed error in peak calculation in peak limiter 2003-05-18 Alexander Ehlert * Added highpass, lowpass, bandpass and notch IIR filters from Glame 2003-06-01 Steve Harris * Fixed flanger (it was totaly b0rken) * Improved sound quality of retro flanger * Applied gcc 3.3 fixing patch from Anand Kumria * Tweaked LADSPA settings for Alexander Ehlert's IIRs 2003-11-10 Jesse Chappell * Added reverse delay plugin 2003-12-01 Steve Harris * Added LP and HP filters to the biquads * Added vinyl simualtor 2003-12-03 Steve Harris * Added fixed latency limiter ladspa-0.4.17/IDs000066400000000000000000000001301300111216200134260ustar00rootroot00000000000000As of 2007-10-17 I own (approximatly): 1181-1220 1401-1440 1881-1922 2821-2900 (known) ladspa-0.4.17/INSTALL000066400000000000000000000172271300111216200140740ustar00rootroot00000000000000Basic Installation ================== These are generic installation instructions. The `configure' shell script attempts to guess correct values for various system-dependent variables used during compilation. It uses those values to create a `Makefile' in each directory of the package. It may also create one or more `.h' files containing system-dependent definitions. Finally, it creates a shell script `config.status' that you can run in the future to recreate the current configuration, a file `config.cache' that saves the results of its tests to speed up reconfiguring, and a file `config.log' containing compiler output (useful mainly for debugging `configure'). If you need to do unusual things to compile the package, please try to figure out how `configure' could check whether to do them, and mail diffs or instructions to the address given in the `README' so they can be considered for the next release. If at some point `config.cache' contains results you don't want to keep, you may remove or edit it. The file `configure.in' is used to create `configure' by a program called `autoconf'. You only need `configure.in' if you want to change it or regenerate `configure' using a newer version of `autoconf'. The simplest way to compile this package is: 1. `cd' to the directory containing the package's source code and type `./configure' to configure the package for your system. If you're using `csh' on an old version of System V, you might need to type `sh ./configure' instead to prevent `csh' from trying to execute `configure' itself. Running `configure' takes awhile. While running, it prints some messages telling which features it is checking for. 2. Type `make' to compile the package. 3. Optionally, type `make check' to run any self-tests that come with the package. 4. Type `make install' to install the programs and any data files and documentation. 5. You can remove the program binaries and object files from the source code directory by typing `make clean'. To also remove the files that `configure' created (so you can compile the package for a different kind of computer), type `make distclean'. There is also a `make maintainer-clean' target, but that is intended mainly for the package's developers. If you use it, you may have to get all sorts of other programs in order to regenerate files that came with the distribution. Compilers and Options ===================== Some systems require unusual options for compilation or linking that the `configure' script does not know about. You can give `configure' initial values for variables by setting them in the environment. Using a Bourne-compatible shell, you can do that on the command line like this: CC=c89 CFLAGS=-O2 LIBS=-lposix ./configure Or on systems that have the `env' program, you can do it like this: env CPPFLAGS=-I/usr/local/include LDFLAGS=-s ./configure Compiling For Multiple Architectures ==================================== You can compile the package for more than one kind of computer at the same time, by placing the object files for each architecture in their own directory. To do this, you must use a version of `make' that supports the `VPATH' variable, such as GNU `make'. `cd' to the directory where you want the object files and executables to go and run the `configure' script. `configure' automatically checks for the source code in the directory that `configure' is in and in `..'. If you have to use a `make' that does not supports the `VPATH' variable, you have to compile the package for one architecture at a time in the source code directory. After you have installed the package for one architecture, use `make distclean' before reconfiguring for another architecture. Installation Names ================== By default, `make install' will install the package's files in `/usr/local/bin', `/usr/local/man', etc. You can specify an installation prefix other than `/usr/local' by giving `configure' the option `--prefix=PATH'. You can specify separate installation prefixes for architecture-specific files and architecture-independent files. If you give `configure' the option `--exec-prefix=PATH', the package will use PATH as the prefix for installing programs and libraries. Documentation and other data files will still use the regular prefix. In addition, if you use an unusual directory layout you can give options like `--bindir=PATH' to specify different values for particular kinds of files. Run `configure --help' for a list of the directories you can set and what kinds of files go in them. If the package supports it, you can cause programs to be installed with an extra prefix or suffix on their names by giving `configure' the option `--program-prefix=PREFIX' or `--program-suffix=SUFFIX'. Optional Features ================= Some packages pay attention to `--enable-FEATURE' options to `configure', where FEATURE indicates an optional part of the package. They may also pay attention to `--with-PACKAGE' options, where PACKAGE is something like `gnu-as' or `x' (for the X Window System). The `README' should mention any `--enable-' and `--with-' options that the package recognizes. For packages that use the X Window System, `configure' can usually find the X include and library files automatically, but if it doesn't, you can use the `configure' options `--x-includes=DIR' and `--x-libraries=DIR' to specify their locations. Specifying the System Type ========================== There may be some features `configure' can not figure out automatically, but needs to determine by the type of host the package will run on. Usually `configure' can figure that out, but if it prints a message saying it can not guess the host type, give it the `--host=TYPE' option. TYPE can either be a short name for the system type, such as `sun4', or a canonical name with three fields: CPU-COMPANY-SYSTEM See the file `config.sub' for the possible values of each field. If `config.sub' isn't included in this package, then this package doesn't need to know the host type. If you are building compiler tools for cross-compiling, you can also use the `--target=TYPE' option to select the type of system they will produce code for and the `--build=TYPE' option to select the type of system on which you are compiling the package. Sharing Defaults ================ If you want to set default values for `configure' scripts to share, you can create a site shell script called `config.site' that gives default values for variables like `CC', `cache_file', and `prefix'. `configure' looks for `PREFIX/share/config.site' if it exists, then `PREFIX/etc/config.site' if it exists. Or, you can set the `CONFIG_SITE' environment variable to the location of the site script. A warning: not all `configure' scripts look for a site script. Operation Controls ================== `configure' recognizes the following options to control how it operates. `--cache-file=FILE' Use and save the results of the tests in FILE instead of `./config.cache'. Set FILE to `/dev/null' to disable caching, for debugging `configure'. `--help' Print a summary of the options to `configure', and exit. `--quiet' `--silent' `-q' Do not print messages saying which checks are being made. To suppress all normal output, redirect it to `/dev/null' (any error messages will still be shown). `--srcdir=DIR' Look for the package's source code in directory DIR. Usually `configure' can determine that directory automatically. `--version' Print the version of Autoconf used to generate the `configure' script, and exit. `configure' also accepts some other, not widely useful, options. ladspa-0.4.17/Makefile.am000066400000000000000000000122611300111216200150700ustar00rootroot00000000000000VERSION = @VERSION@ plugin_LTLIBRARIES = \ amp_1181.la diode_1185.la \ divider_1186.la shaper_1187.la ringmod_1188.la comb_1190.la \ declip_1195.la foverdrive_1196.la sinus_wavewrapper_1198.la \ hermes_filter_1200.la multivoice_chorus_1201.la flanger_1191.la \ decimator_1202.la single_para_1203.la triple_para_1204.la \ transient_1206.la fad_delay_1192.la \ dc_remove_1207.la retro_flange_1208.la valve_1209.la \ sifter_1210.la tape_delay_1211.la step_muxer_1212.la \ foldover_1213.la svf_1214.la gsm_1215.la gverb_1216.la \ phasers_1217.la harmonic_gen_1220.la vocoder_1337.la \ surround_encoder_1401.la \ delayorama_1402.la dyson_compress_1403.la crossover_dist_1404.la \ valve_rect_1405.la split_1406.la alias_1407.la \ satan_maximiser_1408.la karaoke_1409.la gate_1410.la \ comb_splitter_1411.la wave_terrain_1412.la \ hard_limiter_1413.la smooth_decimate_1414.la fm_osc_1415.la \ analogue_osc_1416.la rate_shifter_1417.la freq_tracker_1418.la \ mod_delay_1419.la matrix_st_ms_1420.la matrix_ms_st_1421.la \ matrix_spatialiser_1422.la plate_1423.la gong_1424.la \ sc1_1425.la sc2_1426.la sc3_1427.la zm1_1428.la inv_1429.la \ chebstortion_1430.la bode_shifter_1431.la bode_shifter_cv_1432.la \ am_pitchshift_1433.la sc4_1882.la \ lcr_delay_1436.la giant_flange_1437.la dj_flanger_1438.la \ gong_beater_1439.la hilbert_1440.la sin_cos_1881.la se4_1883.la \ bandpass_a_iir_1893.la bandpass_iir_1892.la highpass_iir_1890.la \ lowpass_iir_1891.la notch_iir_1894.la dj_eq_1901.la \ butterworth_1902.la allpass_1895.la comb_1887.la decay_1886.la \ delay_1898.la impulse_1885.la vynil_1905.la \ revdelay_1605.la ls_filter_1908.la \ const_1909.la pointer_cast_1910.la fast_lookahead_limiter_1913.la \ latency_1914.la xfade_1915.la sc4m_1916.la \ mbeq_1197.la pitch_scale_1193.la pitch_scale_1194.la imp_1199.la SUBDIRS = po util gsm gverb metadata # Wacky stuff to stop automake getting confused EXTRA_DIST = config.rpath @top_srcdir@/*.xml @top_srcdir@/*.c @top_srcdir@/*.h \ @top_srcdir@/*.dtd @top_srcdir@/*.pl @top_srcdir@/*.css \ @top_srcdir@/impulses/*.h autogen.sh bozosoity-checker.pl plugindir = $(libdir)/ladspa # Uncomment below for Darwin support. Or add a conditional for this. #AM_CFLAGS = -fno-common -flat_namespace -bundle -undefined suppress -lbundle1.o AM_LDFLAGS = -module -avoid-version DESTDIR = $(INSTALL_ROOT) DISTFN = $(distdir) # Files needed for FFT based plugins pitch_scale_1193_la_LIBADD = -Lutil -lpitchscale $(FFTW_LIBS) pitch_scale_1193_la_CFLAGS = $(FFTW_CFLAGS) pitch_scale_1193_la_SOURCES = pitch_scale_1193.c pitch_scale_1194_la_LIBADD = -Lutil -lpitchscale $(FFTW_LIBS) pitch_scale_1194_la_CFLAGS = $(FFTW_CFLAGS) pitch_scale_1194_la_SOURCES = pitch_scale_1194.c mbeq_1197_la_LIBADD = $(FFTW_LIBS) mbeq_1197_la_CFLAGS = $(FFTW_CFLAGS) mbeq_1197_la_SOURCES = mbeq_1197.c imp_1199_la_LIBADD = $(FFTW_LIBS) imp_1199_la_CFLAGS = $(FFTW_CFLAGS) imp_1199_la_DEPENDENCIES = @top_srcdir@/impulses/* hermes_filter_1200_la_DEPENDENCIES = util/libblo.a hermes_filter_1200_la_LIBADD = -Lutil -lblo fm_osc_1415_la_DEPENDENCIES = util/libblo.a fm_osc_1415_la_LIBADD = -Lutil -lblo analogue_osc_1416_la_DEPENDENCIES = util/libblo.a analogue_osc_1416_la_LIBADD = -Lutil -lblo sc1_1425_la_LIBADD = -Lutil -ldb -lrms sc2_1426_la_LIBADD = -Lutil -ldb -lrms sc3_1427_la_LIBADD = -Lutil -ldb -lrms sc4_1882_la_LIBADD = -Lutil -ldb -lrms sc4m_1916_la_LIBADD = -Lutil -ldb -lrms se4_1883_la_LIBADD = -Lutil -ldb -lrms gsm_1215_la_LIBADD = gsm/libgsm.a gverb_1216_la_LIBADD = -Lgverb -lgverb lcr_delay_1436_la_DEPENDENCIES = util/biquad.h highpass_iir_1890_la_LIBADD = -Lutil -liir highpass_iir_1890_la_SOURCES = highpass_iir_1890.c lowpass_iir_1891_la_LIBADD = -Lutil -liir lowpass_iir_1891_la_SOURCES = lowpass_iir_1891.c bandpass_iir_1892_la_LIBADD = -Lutil -liir bandpass_iir_1892_la_SOURCES = bandpass_iir_1892.c bandpass_a_iir_1893_la_LIBADD = -Lutil -liir bandpass_a_iir_1893_la_SOURCES = bandpass_a_iir_1893.c notch_iir_1894_la_LIBADD = -Lutil -liir notch_iir_1894_la_SOURCES = notch_iir_1894.c butterworth_1902_la_LIBADD = -Lutil -liir butterworth_1902_la_SOURCES = butterworth_1902.c # Rule to build .c files from XML source %.c: %.xml ! test -f "$*.xml" || ./makestub.pl "$*.xml" > "$*.c" #strip .libs/$$file; install-pluginLTLIBRARIES: $(plugin_LTLIBRARIES) mkdir -p $(DESTDIR)/$(plugindir) list='$(plugin_LTLIBRARIES)'; \ for file in $$list; do \ sofile=`basename $$file .la`.so; \ $(INSTALL_PROGRAM) .libs/$$sofile $(DESTDIR)/$(plugindir); \ done uninstall-pluginLTLIBRARIES: list='$(plugin_LTLIBRARIES)'; \ for file in $$list; do \ sofile=`basename $$file .la`.so; \ rm -f $(DESTDIR)/$(plugindir)/$$sofile; \ done potfiles: all rm -f po/POTFILES.in list='$(plugin_LTLIBRARIES)'; for file in $$list; do \ echo `basename $$file .la`.c >> po/POTFILES.in; \ done; static: make 'FFTLIBS=-Bstatic $(FFTLIBS) -Bdynamic' spec: dist ./mkspec.pl $(PACKAGE) $(VERSION) $(SOBS) rpm: dist spec rpm -ba --target i686 $(DISTFN).spec snapshot: dist bozo cp $(DISTFN).tar.gz ../snapshots/swh-plugins-`date -I`.tar.gz bozo: ./bozosoity-checker.pl @top_srcdir@/*.xml release: dist bozo mkdir -p ../releases/$(VERSION) mv $(DISTFN).tar.gz ../releases/$(VERSION)/ .PRECIOUS: %.c ACLOCAL_AMFLAGS = -I m4 ladspa-0.4.17/NEWS000066400000000000000000000000001300111216200135170ustar00rootroot00000000000000ladspa-0.4.17/README000066400000000000000000000016751300111216200137230ustar00rootroot00000000000000Compiling ~~~~~~~~~ You will need libfftw version 2 or 3 installed with 32 bit float support (eg. for FFTW3 use --enable-float), for FFTW recommend you specify the appropriate SIMD instruction set for your CPU with --enable-sse, --enable-sse2, --enable-k7 or --enable-altivec. You can get FFTW from http://www.fftw.org/. Install with autoreconf -i ./configure make su -c "make install". This code is normally built from XML source, using Perl and XML::Parser. I distribute the generated .c files, so you wont need perl, but if you want to edit the XML source then you will need a copy of Perl and XML::Parser installed. Homepage and docs ~~~~~~~~~~~~~~~~~ The homepage for this project is http://plugin.org.uk/ Bug reports ~~~~~~~~~~~ Please send bug reports or comments to steve@plugin.org.uk, except for bugs relating to the gverb plugin, for that please send bug reports etc. to Juhana Sadeharju, kouhia_at_nic.funet.fi. Enjoy, Steve ladspa-0.4.17/TODO000066400000000000000000000002241300111216200135200ustar00rootroot00000000000000Fix denormal issue in LFO phaser (Sampo Savolainen ) Synced sine osc (requested by Esben Stien) Gain in MBEQ is wrong (10dB down or so). ladspa-0.4.17/acconfig.h000066400000000000000000000002271300111216200147550ustar00rootroot00000000000000#ifndef _CONFIG_H #define _CONFIG_H #undef EXPLICIT_S #undef ACCEL_3DNOW #undef HAVE_LRINTF #undef PACKAGE_LOCALE_DIR #undef PACKAGE_DATA_DIR #endif ladspa-0.4.17/alias_1407.xml000066400000000000000000000025021300111216200153170ustar00rootroot00000000000000 Aliasing

Simulates aliasing using nyquist frequency modulation. Produces wacky results if the blocks aren't even numbers of samples long.

Aliasing level

Controls the amount of simulated aliasing in the output.

Input Output
ladspa-0.4.17/allpass_1895.xml000066400000000000000000000433161300111216200157100ustar00rootroot00000000000000 0.f) return exp(LOG001 * delaytime / decaytime); else if (decaytime < 0.f) return -exp(LOG001 * delaytime / -decaytime); else return 0.f; } void ignore(LADSPA_Data some_var) { } ]]> Allpass delay line, noninterpolating

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); plugin_data->feedback = feedback = calc_feedback (delay_time, decay_time); } if (delay_time == last_delay_time) { long read_phase = write_phase - (long)delay_samples; LADSPA_Data *readptr = buffer + (read_phase & buffer_mask); LADSPA_Data *writeptr = buffer + (write_phase & buffer_mask); LADSPA_Data *lastptr = buffer + buffer_mask + 1; if (decay_time == last_decay_time) { long remain = sample_count; while (remain) { long read_space = lastptr - readptr; long write_space = lastptr - writeptr; long to_process = MIN (MIN (read_space, remain), write_space); if (to_process == 0) return; // buffer not allocated. remain -= to_process; for (i=0; ilast_decay_time = decay_time; plugin_data->feedback = feedback; } write_phase += sample_count; } else { float next_delay_samples = CALC_DELAY (delay_time); float delay_samples_slope = (next_delay_samples - delay_samples) / sample_count; float next_feedback = calc_feedback (delay_time, decay_time); float feedback_slope = (next_feedback - feedback) / sample_count; for (i=0; ilast_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->feedback = feedback; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s) Decay Time (s)

Time for the echoes to decay by 60 decibels. If this time is negative then the feedback coefficient will be negative, thus emphasizing only odd harmonics at an octave lower.

Allpass delay line, linear interpolation

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); plugin_data->feedback = feedback = calc_feedback (delay_time, decay_time); } if (delay_time == last_delay_time && decay_time == last_decay_time) { long idelay_samples = (long)delay_samples; LADSPA_Data frac = delay_samples - idelay_samples; for (i=0; ilast_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->feedback = feedback; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s) Decay Time (s)

Time for the echoes to decay by 60 decibels. If this time is negative then the feedback coefficient will be negative, thus emphasizing only odd harmonics at an octave lower.

Allpass delay line, cubic spline interpolation

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); plugin_data->feedback = feedback = calc_feedback (delay_time, decay_time); } if (delay_time == last_delay_time && decay_time == last_decay_time) { long idelay_samples = (long)delay_samples; LADSPA_Data frac = delay_samples - idelay_samples; for (i=0; ilast_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->feedback = feedback; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s) Decay Time (s)

Time for the echoes to decay by 60 decibels. If this time is negative then the feedback coefficient will be negative, thus emphasizing only odd harmonics at an octave lower.

ladspa-0.4.17/am_pitchshift_1433.xml000066400000000000000000000116411300111216200170530ustar00rootroot00000000000000 #include #include "ladspa-util.h" /* Beware of dependcies if you change this */ #define DELAY_SIZE 8192 ]]> AM pitchshifter

This plugin works by running a single write pointer (monotonic) and two read pointers (pitchscaled) over a ringbuffer.

The output is faded between the two readpointers according to the sine of the distance from the write pointer. The design is based on the mechanism of a mechanical pitchshifter I saw in the Gemeentemuseum in Den Haag, though I'm sure it is a common enough algorithm.

delay); ]]> 7) { size_tmp = 5; } else if (size_tmp < 1) { size_tmp = 1; } plugin_data->last_size = size; /* Calculate the ringbuf parameters, the magick constants will need * to be changed if you change DELAY_SIZE */ delay_mask = (1 << (size_tmp + 6)) - 1; delay_ofs = 1 << (size_tmp + 5); } for (pos = 0; pos < sample_count; pos++) { float out = 0.0f; if (count++ > 14) { float tmp; count = 0; tmp = 0.5f * (float)((rptr.part.in - wptr + delay_ofs/2) & delay_mask) / (float)delay_ofs; tmp = sinf(M_PI * 2.0f * tmp) * 0.5f + 0.5f; gain_inc = (tmp - gain) / 15.0f; } gain += gain_inc; delay[wptr] = input[pos]; /* Add contributions from the two readpointers, scaled by thier * distance from the write pointer */ i = rptr.part.in; out += cube_interp((float)rptr.part.fr * 0.0000152587f, delay[(i - 1) & delay_mask], delay[i], delay[(i + 1) & delay_mask], delay[(i + 2) & delay_mask]) * (1.0f - gain); i += delay_ofs; out += cube_interp((float)rptr.part.fr * 0.0000152587f, delay[(i - 1) & delay_mask], delay[i & delay_mask], delay[(i + 1) & delay_mask], delay[(i + 2) & delay_mask]) * gain; buffer_write(output[pos], out); /* Increment ringbuffer pointers */ wptr = (wptr + 1) & delay_mask; rptr.all += om.all; rptr.part.in &= delay_mask; } plugin_data->rptr.all = rptr.all; plugin_data->wptr = wptr; plugin_data->delay_mask = delay_mask; plugin_data->delay_ofs = delay_ofs; plugin_data->last_gain = gain; plugin_data->count = count; plugin_data->last_inc = gain_inc; *(plugin_data->latency) = delay_ofs/2; ]]> Pitch shift

The multiple of the output pitch, eg. 2.0 will increase the pitch by one octave.

Buffer size

The order of magnitude of the buffer size. Small buffers will sound fluttery, large buffers will have flangy sounding echos.

I recommend a buffer size of 3 for a reasonable compromise, with wideband material at around 48KHz. For drums you might have to lower it, and for voiced background noises it can go higher.

Input Output latency
ladspa-0.4.17/amp_1181.xml000066400000000000000000000021151300111216200150020ustar00rootroot00000000000000 #include "ladspa-util.h" Simple amplifier Amps gain (dB)

Controls the gain of the input signal in dB's.

Input Output
ladspa-0.4.17/analogue_osc_1416.xml000066400000000000000000000106411300111216200166700ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/blo.h" ]]> Analogue Oscillator

This plugin simulates the output you get from an analogue synth's oscillators.

You can get a reasonable emulation of a 303's square (for example) if you set the warmth to about 0.4 and the instability to about 0.05.

The frequency is currently a control input, and there is no interpolation, so if your host is using large block size it will sound steppy.

I'm unsure whether to convert this to an audio input or interpolate the control in.

tables); blo_h_free(plugin_data->osc); ]]> wave = LIMIT(f_round(wave) - 1, 0, BLO_N_WAVES-1); osc->nyquist = fs * (0.47f - f_clamp(warm, 0.0f, 1.0f) * 0.41f); blo_hd_set_freq(osc, freq); tables = tables; // So gcc doesn't think it's unused for (pos = 0; pos < sample_count; pos++) { x = blo_hd_run_cub(osc); rnda += 432577; rnda *= 47; rndb += 7643113; rnda *= 59; osc->ph.all += (((rnda + rndb)/2) % max_jump) - max_jump/2; osc->ph.all &= osc->ph_mask; y = (x - q) / (1.0f - f_exp(-1.2f * (x - q))) + q / (1.0f - f_exp(1.2f * q)); /* Catch the case where x ~= q */ if (isnan(y) || fabs(y) > 1.0f) { y = 0.83333f + q / (1.0f - f_exp(1.2f * q)); } otm2 = otm1; otm1 = leak * otm1 + y - itm1; itm1 = y; buffer_write(output[pos], (otm1 + otm2) * 0.5f); } plugin_data->itm1 = itm1; plugin_data->otm1 = otm1; plugin_data->otm2 = otm2; plugin_data->rnda = rnda; plugin_data->rndb = rndb; ]]> Waveform (1=sin, 2=tri, 3=squ, 4=saw)

Frequency (Hz)

The frequency of the output (Hz).

Warmth

The degree of softening that is applied to the generated waveform, reduces the number of harmonics in the output.

Instability

The degree of pitch instability of the output. Turning this too high with square and saw waves will produce an annoying jittery sound, I want to fix this but it is tricky.

Output
ladspa-0.4.17/autogen.sh000077500000000000000000000001351300111216200150320ustar00rootroot00000000000000#! /bin/sh autoreconf -i -I m4 || exit 1 test -n "$NOCONFIGURE" || ./configure "$@" exit 0 ladspa-0.4.17/bandpass_a_iir_1893.xml000066400000000000000000000045201300111216200171770ustar00rootroot00000000000000 #include "config.h" #include "util/iir.h" Glame Bandpass Analog Filter

IIR bandpass filter modeled after an analog circuit. This filter was ported from the glame multitrack editor to ladspa.

sample_rate = s_rate; calc_2polebandpass(iirf, gt, center, width, sample_rate); iir_process_buffer_1s_5(iirf, gt, input, output, sample_count,0); // Unused variable (void)(run_adding_gain); gt = init_iir_stage(IIR_STAGE_LOWPASS,1,3,2); iirf = init_iirf_t(gt); calc_2polebandpass(iirf, gt, *(plugin_data->center), *(plugin_data->width), sample_rate); free_iirf_t(plugin_data->iirf, plugin_data->gt); free_iir_stage(plugin_data->gt); Center Frequency (Hz) Bandwidth (Hz) Input Output
ladspa-0.4.17/bandpass_iir_1892.xml000066400000000000000000000101051300111216200166720ustar00rootroot00000000000000 #include "config.h" #include "util/iir.h" Glame Bandpass Filter

IIR bandpass filter based using chebishev coefficients. The filter allows you to tweak the number of stages used for filtering. Every stage adds two more poles, which leads to a steeper dropoff. More stages need more CPU power. This filter was ported from the glame multitrack editor to ladspa.

sample_rate = s_rate; // Uninitialized variables lfc = 0; ufc = 0; ufc = (center + width*0.5f)/(float)sample_rate; lfc = (center - width*0.5f)/(float)sample_rate; combine_iir_stages(IIR_STAGE_BANDPASS, gt, first, second, chebyshev(iirf, first, 2*CLAMP((int)stages,1,10), IIR_STAGE_LOWPASS, ufc, 0.5f), chebyshev(iirf, second, 2*CLAMP((int)stages,1,10), IIR_STAGE_HIGHPASS, lfc, 0.5f)); iir_process_buffer_ns_5(iirf, gt, input, output, sample_count,RUN_ADDING); // Unused variable (void)(run_adding_gain); ufc = (*(plugin_data->center) + *(plugin_data->width)*0.5f)/(float)sample_rate; lfc = (*(plugin_data->center) - *(plugin_data->width)*0.5f)/(float)sample_rate; first = init_iir_stage(IIR_STAGE_LOWPASS,10,3,2); second = init_iir_stage(IIR_STAGE_HIGHPASS,10,3,2); gt = init_iir_stage(IIR_STAGE_BANDPASS,20,3,2); iirf = init_iirf_t(gt); chebyshev(iirf, first, 2*CLAMP((int)(*(plugin_data->stages)),1,10), IIR_STAGE_LOWPASS, ufc, 0.5f); chebyshev(iirf, second, 2*CLAMP((int)(*(plugin_data->stages)),1,10), IIR_STAGE_HIGHPASS, lfc, 0.5f); combine_iir_stages(IIR_STAGE_BANDPASS, gt, first, second,0,0); free_iirf_t(plugin_data->iirf, plugin_data->gt); free_iir_stage(plugin_data->first); free_iir_stage(plugin_data->second); free_iir_stage(plugin_data->gt); Center Frequency (Hz) Bandwidth (Hz) Stages(2 poles per stage) Input Output
ladspa-0.4.17/bode_shifter_1431.xml000066400000000000000000000156761300111216200167000ustar00rootroot00000000000000 #include "ladspa-util.h" #define SIN_T_SIZE 1024 #define D_SIZE 256 #define NZEROS 200 /* The non-zero taps of the Hilbert transformer */ static float xcoeffs[] = { +0.0008103736f, +0.0008457886f, +0.0009017196f, +0.0009793364f, +0.0010798341f, +0.0012044365f, +0.0013544008f, +0.0015310235f, +0.0017356466f, +0.0019696659f, +0.0022345404f, +0.0025318040f, +0.0028630784f, +0.0032300896f, +0.0036346867f, +0.0040788644f, +0.0045647903f, +0.0050948365f, +0.0056716186f, +0.0062980419f, +0.0069773575f, +0.0077132300f, +0.0085098208f, +0.0093718901f, +0.0103049226f, +0.0113152847f, +0.0124104218f, +0.0135991079f, +0.0148917649f, +0.0163008758f, +0.0178415242f, +0.0195321089f, +0.0213953037f, +0.0234593652f, +0.0257599469f, +0.0283426636f, +0.0312667947f, +0.0346107648f, +0.0384804823f, +0.0430224431f, +0.0484451086f, +0.0550553725f, +0.0633242001f, +0.0740128560f, +0.0884368322f, +0.1090816773f, +0.1412745301f, +0.1988673273f, +0.3326528346f, +0.9997730178f, -0.9997730178f, -0.3326528346f, -0.1988673273f, -0.1412745301f, -0.1090816773f, -0.0884368322f, -0.0740128560f, -0.0633242001f, -0.0550553725f, -0.0484451086f, -0.0430224431f, -0.0384804823f, -0.0346107648f, -0.0312667947f, -0.0283426636f, -0.0257599469f, -0.0234593652f, -0.0213953037f, -0.0195321089f, -0.0178415242f, -0.0163008758f, -0.0148917649f, -0.0135991079f, -0.0124104218f, -0.0113152847f, -0.0103049226f, -0.0093718901f, -0.0085098208f, -0.0077132300f, -0.0069773575f, -0.0062980419f, -0.0056716186f, -0.0050948365f, -0.0045647903f, -0.0040788644f, -0.0036346867f, -0.0032300896f, -0.0028630784f, -0.0025318040f, -0.0022345404f, -0.0019696659f, -0.0017356466f, -0.0015310235f, -0.0013544008f, -0.0012044365f, -0.0010798341f, -0.0009793364f, -0.0009017196f, -0.0008457886f, -0.0008103736f, }; ]]> Bode frequency shifter

A Bode/Moog Frequency Shifter is a popular analogue synth module, it works by shifting all the frequencies of an input signal up or down by a specified frequency. This version shifts in both directions at the same time as its almost no extra work and its often useful to have both directions.

It doesn't actually work in the same way as an analogue Bode/Moog, which use Dome filters as the core, it uses a Hilbert Transformer, which is much simpler to implement in digital systems. The output is very similar though, and people are familiar with the name Bode.

The theory of operation is pretty simple, and uses some clever maths to cancel out the upper or lower sidebands of a ringmodulator applied to the input signal. Read the source if you want more information. The Hilbert Transformet coefficents came from mkfilter, the excellent filter calculator, available at \url{http://www-users.cs.york.ac.uk/~fisher/mkfilter/}.

delay); free(plugin_data->sint); ]]> SIN_T_SIZE) { phi -= SIN_T_SIZE; } shift_i += shift_inc; } plugin_data->dptr = dptr; plugin_data->phi = phi; plugin_data->last_shift = shift_c; *(plugin_data->latency) = 99; ]]> Frequency shift

Controls the frequency shift applied to the input signal, in Hz. Note, this is not a pitch shift, so you not get natural sounding results out, it is an audio effect popular with modular synthesists.

Input Down out Up out latency
ladspa-0.4.17/bode_shifter_cv_1432.xml000066400000000000000000000146631300111216200173640ustar00rootroot00000000000000 #include "ladspa-util.h" #define SIN_T_SIZE 1024 #define D_SIZE 256 #define NZEROS 200 /* The non-zero taps of the Hilbert transformer */ static float xcoeffs[] = { +0.0008103736f, +0.0008457886f, +0.0009017196f, +0.0009793364f, +0.0010798341f, +0.0012044365f, +0.0013544008f, +0.0015310235f, +0.0017356466f, +0.0019696659f, +0.0022345404f, +0.0025318040f, +0.0028630784f, +0.0032300896f, +0.0036346867f, +0.0040788644f, +0.0045647903f, +0.0050948365f, +0.0056716186f, +0.0062980419f, +0.0069773575f, +0.0077132300f, +0.0085098208f, +0.0093718901f, +0.0103049226f, +0.0113152847f, +0.0124104218f, +0.0135991079f, +0.0148917649f, +0.0163008758f, +0.0178415242f, +0.0195321089f, +0.0213953037f, +0.0234593652f, +0.0257599469f, +0.0283426636f, +0.0312667947f, +0.0346107648f, +0.0384804823f, +0.0430224431f, +0.0484451086f, +0.0550553725f, +0.0633242001f, +0.0740128560f, +0.0884368322f, +0.1090816773f, +0.1412745301f, +0.1988673273f, +0.3326528346f, +0.9997730178f, -0.9997730178f, -0.3326528346f, -0.1988673273f, -0.1412745301f, -0.1090816773f, -0.0884368322f, -0.0740128560f, -0.0633242001f, -0.0550553725f, -0.0484451086f, -0.0430224431f, -0.0384804823f, -0.0346107648f, -0.0312667947f, -0.0283426636f, -0.0257599469f, -0.0234593652f, -0.0213953037f, -0.0195321089f, -0.0178415242f, -0.0163008758f, -0.0148917649f, -0.0135991079f, -0.0124104218f, -0.0113152847f, -0.0103049226f, -0.0093718901f, -0.0085098208f, -0.0077132300f, -0.0069773575f, -0.0062980419f, -0.0056716186f, -0.0050948365f, -0.0045647903f, -0.0040788644f, -0.0036346867f, -0.0032300896f, -0.0028630784f, -0.0025318040f, -0.0022345404f, -0.0019696659f, -0.0017356466f, -0.0015310235f, -0.0013544008f, -0.0012044365f, -0.0010798341f, -0.0009793364f, -0.0009017196f, -0.0008457886f, -0.0008103736f, }; ]]> Bode frequency shifter (CV)

See the non CV version for information.

This is more or less a copy of the Doepfer A126, \url{http://www.doepfer.de/a126.htm}.

SIN_T_SIZE) { phi -= SIN_T_SIZE; } } plugin_data->dptr = dptr; plugin_data->phi = phi; *(plugin_data->latency) = 99; ]]> delay); free(plugin_data->sint); ]]> Base shift Mix (-1=down, +1=up) Input CV Attenuation Shift CV

Controls the frequency shift applied to the input signal, in KHz.

Down out Up out Mix out latency
ladspa-0.4.17/bozosoity-checker.pl000077500000000000000000000013561300111216200170420ustar00rootroot00000000000000#!/usr/bin/perl -w %used = (); while ($file = shift) { open(FH, $file); if (!($file =~ /_(\d+)\.xml/)) { die "'$file' doesn't look like it contains a LADSPA ID"; } $fnid = $1; #print "looking for $fnid\n"; $found = 0; while () { if (/id="(\d+)"/) { $id = $1; if ($used{$id}) { print "*** Warning: duplicate ID ($id) found in $file and ".$used{$id}."\n"; } else { $used{$id} = $file; } if ($id < 1000) { print "*** Warning: non distributable ID ($id) found in $file\n"; } elsif ($id < $fnid) { print "*** Warning: ID $id in XML less than hinted in filename ($fnid)\n"; } } if (/id="$fnid"/) { $found = 1; } } if (!$found) { print "*** Warning: no matching ID found in $file\n"; } } ladspa-0.4.17/butterworth_1902.xml000066400000000000000000000140521300111216200166220ustar00rootroot00000000000000 #include "config.h" #include "util/iir.h" #include "util/buffer.h" Glame Butterworth X-over Filter

Butterworth X-over filter

sample_rate = s_rate; butterworth_stage(gt, 0, cutoff, resonance, sample_rate); iir_process_buffer_1s_5(iirf, gt, input, lpoutput, sample_count,0); buffer_sub(input, lpoutput, hpoutput, sample_count); // Unused variable (void)(run_adding_gain); gt = init_iir_stage(IIR_STAGE_LOWPASS,1,3,2); iirf = init_iirf_t(gt); butterworth_stage(gt, 0, *(plugin_data->cutoff), *(plugin_data->resonance), sample_rate); free_iirf_t(plugin_data->iirf, plugin_data->gt); free_iir_stage(plugin_data->gt); Cutoff Frequency (Hz) Resonance Input LP-Output HP-Output
GLAME Butterworth Lowpass

Butterworth lowpass filter

sample_rate = s_rate; butterworth_stage(gt, 0, cutoff, resonance, sample_rate); iir_process_buffer_1s_5(iirf, gt, input, output, sample_count,0); // Unused variable (void)(run_adding_gain); gt = init_iir_stage(IIR_STAGE_LOWPASS,1,3,2); iirf = init_iirf_t(gt); butterworth_stage(gt, 0, *(plugin_data->cutoff), *(plugin_data->resonance), sample_rate); free_iirf_t(plugin_data->iirf, plugin_data->gt); free_iir_stage(plugin_data->gt); Cutoff Frequency (Hz) Resonance Input Output
GLAME Butterworth Highpass

Butterworth highpass filter

sample_rate = s_rate; butterworth_stage(gt, 1, cutoff, resonance, sample_rate); iir_process_buffer_1s_5(iirf, gt, input, output, sample_count,0); // Unused variable (void)(run_adding_gain); gt = init_iir_stage(IIR_STAGE_LOWPASS,1,3,2); iirf = init_iirf_t(gt); butterworth_stage(gt, 1, *(plugin_data->cutoff), *(plugin_data->resonance), sample_rate); free_iirf_t(plugin_data->iirf, plugin_data->gt); free_iir_stage(plugin_data->gt); Cutoff Frequency (Hz) Resonance Input Output
ladspa-0.4.17/chebstortion_1430.xml000066400000000000000000000100631300111216200167260ustar00rootroot00000000000000 #define HARMONICS 11 #define STAGES 2 static float cd_lut[STAGES][HARMONICS]; /* Calculate Chebychev coefficents from partial magnitudes, adapted from * example in Num. Rec. */ void chebpc(float c[], float d[]) { int k, j; float sv, dd[HARMONICS]; for (j = 0; j < HARMONICS; j++) { d[j] = dd[j] = 0.0; } d[0] = c[HARMONICS - 1]; for (j = HARMONICS - 2; j >= 1; j--) { for (k = HARMONICS - j; k >= 1; k--) { sv = d[k]; d[k] = 2.0 * d[k - 1] - dd[k]; dd[k] = sv; } sv = d[0]; d[0] = -dd[0] + c[j]; dd[0] = sv; } for (j = HARMONICS - 1; j >= 1; j--) { d[j] = d[j - 1] - dd[j]; } d[0] = -dd[0] + 0.5 * c[0]; } ]]> Chebyshev distortion

This is an interesting distortion effect that is seeded from incoming signal envelope. As the level of the signal rises more and more harmonics will for added to the output signal.

The distortion control sets the sensitivity of the input.

The effect evolved from some experiments between Tim Goetze and myself, attempting to emulate valve based guitar amp distortion. This was one of the failures, but it still makes an interesting noise.

env) { env = env * 0.9f + a * 0.1f; } else { env = env * 0.97f + a * 0.03f; } if (count-- == 0) { for (i=0; iitm1 = itm1; plugin_data->otm1 = otm1; plugin_data->env = env; plugin_data->count = count; ]]> Distortion Input Output
ladspa-0.4.17/comb_1190.xml000066400000000000000000000050371300111216200151530ustar00rootroot00000000000000 #include "ladspa-util.h" #define COMB_SIZE 0x4000 #define COMB_MASK 0x3FFF Comb Filter sample_rate = s_rate; comb_tbl = malloc(sizeof(LADSPA_Data) * COMB_SIZE); comb_pos = 0; last_offset = 1000; int i; for (i = 0; i < COMB_SIZE; i++) { comb_tbl[i] = 0; } comb_pos = 0; last_offset = 1000; free(plugin_data->comb_tbl); comb_pos = comb_pos; plugin_data->last_offset = offset; ]]> Band separation (Hz)

Controls the distance between the filters peaks.

Feedback

Feedback level, increases the distinctive wooshy phaser sound.

Input Output
ladspa-0.4.17/comb_1887.xml000066400000000000000000000422531300111216200151710ustar00rootroot00000000000000 0.f) return exp(LOG001 * delaytime / decaytime); else if (decaytime < 0.f) return -exp(LOG001 * delaytime / -decaytime); else return 0.f; } ]]> Comb delay line, noninterpolating

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); plugin_data->feedback = feedback = calc_feedback (delay_time, decay_time); } if (delay_time == last_delay_time) { long read_phase = write_phase - (long)delay_samples; LADSPA_Data *readptr = buffer + (read_phase & buffer_mask); LADSPA_Data *writeptr = buffer + (write_phase & buffer_mask); LADSPA_Data *lastptr = buffer + buffer_mask + 1; if (decay_time == last_decay_time) { long remain = sample_count; while (remain) { long read_space = lastptr - readptr; long write_space = lastptr - writeptr; long to_process = MIN (MIN (read_space, remain), write_space); if (to_process == 0) return; // buffer not allocated. remain -= to_process; for (i=0; ilast_decay_time = decay_time; plugin_data->feedback = feedback; } write_phase += sample_count; } else { float next_delay_samples = CALC_DELAY (delay_time); float delay_samples_slope = (next_delay_samples - delay_samples) / sample_count; float next_feedback = calc_feedback (delay_time, decay_time); float feedback_slope = (next_feedback - feedback) / sample_count; for (i=0; ilast_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->feedback = feedback; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s) Decay Time (s)

Time for the echoes to decay by 60 decibels. If this time is negative then the feedback coefficient will be negative, thus emphasizing only odd harmonics at an octave lower.

Comb delay line, linear interpolation

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); plugin_data->feedback = feedback = calc_feedback (delay_time, decay_time); } if (delay_time == last_delay_time && decay_time == last_decay_time) { long idelay_samples = (long)delay_samples; LADSPA_Data frac = delay_samples - idelay_samples; for (i=0; ilast_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->feedback = feedback; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s) Decay Time (s)

Time for the echoes to decay by 60 decibels. If this time is negative then the feedback coefficient will be negative, thus emphasizing only odd harmonics at an octave lower.

Comb delay line, cubic spline interpolation

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); plugin_data->feedback = feedback = calc_feedback (delay_time, decay_time); } if (delay_time == last_delay_time && decay_time == last_decay_time) { long idelay_samples = (long)delay_samples; LADSPA_Data frac = delay_samples - idelay_samples; for (i=0; ilast_delay_time = delay_time; plugin_data->last_decay_time = decay_time; plugin_data->feedback = feedback; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s) Decay Time (s)

Time for the echoes to decay by 60 decibels. If this time is negative then the feedback coefficient will be negative, thus emphasizing only odd harmonics at an octave lower.

ladspa-0.4.17/comb_splitter_1411.xml000066400000000000000000000056161300111216200171000ustar00rootroot00000000000000 #include "ladspa-util.h" #define COMB_SIZE 0x4000 #define COMB_MASK 0x3FFF Comb Splitter

Divides the input up into two parts with frequency peaks at f Hz intervals, skewed by f/2 Hz between the two outputs. Mixing the two outputs will get you exactly the input signal.

I generally use this trick to divide up an input signal, process the two halves differently, then mix them again. It sounds pretty funky.

sample_rate = s_rate; comb_tbl = malloc(sizeof(LADSPA_Data) * COMB_SIZE); comb_pos = 0; last_offset = 1000; int i; for (i = 0; i < COMB_SIZE; i++) { comb_tbl[i] = 0; } comb_pos = 0; last_offset = 1000; free(plugin_data->comb_tbl); comb_pos = comb_pos; plugin_data->last_offset = offset; ]]> Band separation (Hz)

The distance between the frequency peaks.

Input Output 1

The sum output.

Output 2

The difference output.

ladspa-0.4.17/compile000077500000000000000000000162451300111216200144200ustar00rootroot00000000000000#! /bin/sh # Wrapper for compilers which do not understand '-c -o'. scriptversion=2012-10-14.11; # UTC # Copyright (C) 1999-2014 Free Software Foundation, Inc. # Written by Tom Tromey . # # This program is free software; you can redistribute it and/or modify # it under the terms of the GNU General Public License as published by # the Free Software Foundation; either version 2, or (at your option) # any later version. # # This program is distributed in the hope that it will be useful, # but WITHOUT ANY WARRANTY; without even the implied warranty of # MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the # GNU General Public License for more details. # # You should have received a copy of the GNU General Public License # along with this program. If not, see . # As a special exception to the GNU General Public License, if you # distribute this file as part of a program that contains a # configuration script generated by Autoconf, you may include it under # the same distribution terms that you use for the rest of that program. # This file is maintained in Automake, please report # bugs to or send patches to # . nl=' ' # We need space, tab and new line, in precisely that order. Quoting is # there to prevent tools from complaining about whitespace usage. IFS=" "" $nl" file_conv= # func_file_conv build_file lazy # Convert a $build file to $host form and store it in $file # Currently only supports Windows hosts. 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Try '$0 --help' for more information." 1>&2 exit 1; ;; -h | --h*) cat <<\EOF Usage: compile [--help] [--version] PROGRAM [ARGS] Wrapper for compilers which do not understand '-c -o'. Remove '-o dest.o' from ARGS, run PROGRAM with the remaining arguments, and rename the output as expected. If you are trying to build a whole package this is not the right script to run: please start by reading the file 'INSTALL'. Report bugs to . EOF exit $? ;; -v | --v*) echo "compile $scriptversion" exit $? ;; cl | *[/\\]cl | cl.exe | *[/\\]cl.exe ) func_cl_wrapper "$@" # Doesn't return... ;; esac ofile= cfile= for arg do if test -n "$eat"; then eat= else case $1 in -o) # configure might choose to run compile as 'compile cc -o foo foo.c'. # So we strip '-o arg' only if arg is an object. eat=1 case $2 in *.o | *.obj) ofile=$2 ;; *) set x "$@" -o "$2" shift ;; esac ;; *.c) cfile=$1 set x "$@" "$1" shift ;; *) set x "$@" "$1" shift ;; esac fi shift done if test -z "$ofile" || test -z "$cfile"; then # If no '-o' option was seen then we might have been invoked from a # pattern rule where we don't need one. That is ok -- this is a # normal compilation that the losing compiler can handle. If no # '.c' file was seen then we are probably linking. That is also # ok. exec "$@" fi # Name of file we expect compiler to create. cofile=`echo "$cfile" | sed 's|^.*[\\/]||; s|^[a-zA-Z]:||; s/\.c$/.o/'` # Create the lock directory. # Note: use '[/\\:.-]' here to ensure that we don't use the same name # that we are using for the .o file. Also, base the name on the expected # object file name, since that is what matters with a parallel build. lockdir=`echo "$cofile" | sed -e 's|[/\\:.-]|_|g'`.d while true; do if mkdir "$lockdir" >/dev/null 2>&1; then break fi sleep 1 done # FIXME: race condition here if user kills between mkdir and trap. trap "rmdir '$lockdir'; exit 1" 1 2 15 # Run the compile. "$@" ret=$? if test -f "$cofile"; then test "$cofile" = "$ofile" || mv "$cofile" "$ofile" elif test -f "${cofile}bj"; then test "${cofile}bj" = "$ofile" || mv "${cofile}bj" "$ofile" fi rmdir "$lockdir" exit $ret # Local Variables: # mode: shell-script # sh-indentation: 2 # eval: (add-hook 'write-file-hooks 'time-stamp) # time-stamp-start: "scriptversion=" # time-stamp-format: "%:y-%02m-%02d.%02H" # time-stamp-time-zone: "UTC" # time-stamp-end: "; # UTC" # End: ladspa-0.4.17/configure.ac000066400000000000000000000110211300111216200153130ustar00rootroot00000000000000AC_INIT([swh-plugins], [0.4.15]) AC_CONFIG_SRCDIR([amp_1181.xml]) AC_CANONICAL_SYSTEM AC_CONFIG_MACRO_DIRS([m4]) AC_CONFIG_HEADERS(config.h) AM_INIT_AUTOMAKE AM_DISABLE_STATIC dnl @synopsis AC_C99_FUNC_LRINTF dnl dnl Check whether C99's lrintf function is available. dnl @version 1.3 Feb 12 2002 dnl @author Erik de Castro Lopo dnl dnl Permission to use, copy, modify, distribute, and sell this file for any dnl purpose is hereby granted without fee, provided that the above copyright dnl and this permission notice appear in all copies. No representations are dnl made about the suitability of this software for any purpose. It is dnl provided "as is" without express or implied warranty. dnl AC_DEFUN([AC_C99_FUNC_LRINTF], [AC_CACHE_CHECK(for lrintf, ac_cv_c99_lrintf, [ lrintf_save_CFLAGS=$CFLAGS CFLAGS="-O3 -lm" AC_TRY_LINK([ #define _ISOC9X_SOURCE 1 #define _ISOC99_SOURCE 1 #define __USE_ISOC99 1 #define __USE_ISOC9X 1 #include ], if (!lrintf(3.14159)) lrintf(2.7183);, ac_cv_c99_lrintf=yes, ac_cv_c99_lrintf=no) CFLAGS=$lrintf_save_CFLAGS ]) if test "$ac_cv_c99_lrintf" = yes; then AC_DEFINE(HAVE_LRINTF, 1, [Define if you have C99's lrintf function.]) fi ])# AC_C99_FUNC_LRINTF AC_ENABLE_STATIC(no) AC_ENABLE_SHARED(yes) AC_LIBTOOL_DLOPEN AC_PROG_LIBTOOL AC_LANG_C AC_PROG_CC AM_PROG_CC_C_O AC_REQUIRE_CPP ALL_LINGUAS="en_GB" AM_GNU_GETTEXT([external]) AM_GNU_GETTEXT_VERSION([0.19.3]) AC_C_BIGENDIAN LIBS="$LIBS -lm" PKG_CHECK_MODULES(FFTW, fftw3f >= 3.0, [ echo "Using FFTW 3"; AC_DEFINE([FFTW3], [], [Wether were using FFTW version 3]) ], [ AC_CHECK_LIB(sfftw,fftw_one, [ FFTW_LIBS="-lsrfftw -lsfftw" STATIC_FFTW_LIBS="$LIBS /usr/lib/libsfftw.a /usr/lib/libsrfftw.a /sw/lib/libsfftw.a" AC_DEFINE_UNQUOTED(EXPLICIT_S, "") ], [ AC_CHECK_LIB(fftw,fftw_one, [ FFTW_LIBS="-lrfftw -lfftw" STATIC_FFTW_LIBS="$LIBS /usr/lib/libfftw.a /usr/lib/librfftw.a" ], [ AC_MSG_ERROR([Could not find working FFTW library (http://www.fftw.org/). If you have installed FFTW3 check that you used the right build options, see the README.]); ]) ]) ]) # On Mac OS X the float functions for are in -lmx AC_CHECK_LIB([m], [sqrt],, [AC_MSG_ERROR(Can't find libm)]) AC_CHECK_LIB(m, log10f,, [ AC_CHECK_LIB(mx, log10f,, [AC_MSG_ERROR([Can't find float libm])])]) AC_CHECK_FUNC(shm_open,,[AC_CHECK_LIB(rt,shm_open)]) AC_C99_FUNC_LRINTF() AC_ARG_ENABLE(3dnow, [ --enable-3dnow Enables 3DNow! acceleration], AS_IF([test "x$enableval" = "xyes"], [AC_DEFINE_UNQUOTED(ACCEL_3DNOW, "")])) AC_ARG_ENABLE(sse, [ --enable-sse Uses SSE instructions where possible, requires gcc3 and a processor with SSE support], AS_IF([test "x$enableval" = "xyes"], [USE_SSE="-msse -mfpmath=sse -malign-double"])) AC_ARG_ENABLE(darwin, [ --enable-darwin Builds plugins that will be shared object in the Darwin OS], AS_IF([test "x$enableval" = "xyes"], [DARWIN_CFLAGS="-fno-common -flat_namespace -bundle -undefined suppress -lbundle1.o"])) CFLAGS="$lrintf_save_CFLAGS -I@top_srcdir@/intl -I@top_srcdir@" if [ echo ${CFLAGS} | grep "\-march=" ]; then AC_MSG_WARN([CFLAGS appears to allready contain architecture specifaction, using exiting one]) else AC_MSG_WARN([Can't find architecture specifaction in CFLAGS]) CFLAGS="$CFLAGS -Wall -O3 -fomit-frame-pointer -fstrength-reduce -funroll-loops -ffast-math -fPIC -DPIC ${USE_SSE} ${DARWIN_CFLAGS}" dnl For Intel's C compiler use: dnl CC="icc" dnl CFLAGS="$CFLAGS -O2 -rcd -tpp6 -xiMK -KPIC -DPIC" dnl For debugging use: dnl CFLAGS="$CFLAGS -Wall -g -ffast-math -fPIC -DPIC" fi AC_PROG_LD AM_PROG_LIBTOOL dnl Set PACKAGE_LOCALE_DIR in config.h. if test "x${prefix}" = xNONE; then AC_DEFINE_UNQUOTED(PACKAGE_LOCALE_DIR, "${ac_default_prefix}/${DATADIRNAME}/locale") else AC_DEFINE_UNQUOTED(PACKAGE_LOCALE_DIR, "${prefix}/${DATADIRNAME}/locale") fi dnl Set PACKAGE_DATA_DIR in config.h. if test "x${datadir}" = 'x${prefix}/share'; then if test "x${prefix}" = xNONE; then AC_DEFINE_UNQUOTED(PACKAGE_DATA_DIR, "${ac_default_prefix}/share/${PACKAGE}") else AC_DEFINE_UNQUOTED(PACKAGE_DATA_DIR, "${prefix}/share/${PACKAGE}") fi else AC_DEFINE_UNQUOTED(PACKAGE_DATA_DIR, "${datadir}/${PACKAGE}") fi subdirs="util gsm gverb metadata" AC_SUBST(subdirs) AC_SUBST(FFTW_LIBS) AC_SUBST(STATIC_FFTW_LIBS) AC_SUBST(FFTW_CFLAGS) AC_SUBST(LIBTOOL) AC_OUTPUT([ Makefile util/Makefile gsm/Makefile gverb/Makefile metadata/Makefile po/Makefile.in ]) ladspa-0.4.17/const_1909.xml000066400000000000000000000027001300111216200153630ustar00rootroot00000000000000 Constant Signal Generator

This plugin add an output DC offset at the given amplitude to the input signal. It has no real use other than for debugging and in modular synths.

last_amp = amp; ]]> Signal amplitude

Controls the amplitude of the output signal.

Input Output
ladspa-0.4.17/crossover_dist_1404.xml000066400000000000000000000034541300111216200173020ustar00rootroot00000000000000 Crossover distortion

This is a simulation of the distortion that happens in class B and AB power amps when the signal crosses 0.

For class B simulations the smooth value should be set to about 0.3 +/- 0.2 and for AB it should be set to near 1.0.

Crossover amplitude

Controls the point at which the output signal becomes linear.

Smoothing

Controls degree of smoothing of the crossover point.

Input Output
ladspa-0.4.17/dc_remove_1207.xml000066400000000000000000000024271300111216200161750ustar00rootroot00000000000000 DC Offset Remover

Simply removes the DC (0 Hz) component from an audio signal, uses a high pass filter, so has some side effects, but they should be minimal.

itm1 = itm1; plugin_data->otm1 = otm1; ]]> Input Output
ladspa-0.4.17/debug_1184.xml000066400000000000000000000032321300111216200153170ustar00rootroot00000000000000 #include "stdio.h" Debug Plugin

Prints some stats about the input stream to stdout. Not intended for general use.

printf("sample rate %ld\n", s_rate); static LADSPA_Data max, min, maxl, minl; unsigned long pos; if (reset) { max = 0; min = 0; maxl = 0; minl = 1; } for (pos = 0; pos < sample_count; pos++) { if (allvals) { printf("%f\n", input[pos]); } max = fabs(input[pos]) > max?fabs(input[pos]):max; min = fabs(input[pos]) < min?fabs(input[pos]):min; maxl = input[pos] > maxl?input[pos]:maxl; minl = input[pos] < minl?input[pos]:minl; buffer_write(output[pos], input[pos]); } printf("amplitude (%f, %f)\t", min, max); printf("level (%f, %f)\n", minl, maxl); Diplay all values? Reset counters? Input Output
ladspa-0.4.17/decay_1886.xml000066400000000000000000000050511300111216200153300ustar00rootroot00000000000000 Exponential signal decay

Based on work by James McCartney in SuperCollider.

last_decay_time = decay_time; plugin_data->b = decay_time == 0.f ? 0.f : exp (LOG001 / (decay_time * sample_rate)); plugin_data->first_time = 0; } if (decay_time == last_decay_time) { if (b == 0.f) for (i=0; ib = decay_time == 0.f ? 0.f : exp (LOG001 / (decay_time * sample_rate)); b_slope = (plugin_data->b - b) / sample_count; for (i=0; ilast_decay_time = decay_time; } plugin_data->y = y; ]]> Input Output Decay Time (s)

Time for the echoes to decay by 60 decibels.

ladspa-0.4.17/decimator_1202.xml000066400000000000000000000044231300111216200161720ustar00rootroot00000000000000 #include "ladspa-util.h" ]]> Decimator

Decimates (reduces the effective sample rate), and reduces the bit depth of the input signal, allows non integer values for smooth transitions between clean and lofi signals.

sample_rate = s_rate; count = 0.0f; last_out = 0.0f; = 31.0f || bits < 1.0f) { step = 0.0f; stepr = 1.0f; } else { step = pow(0.5f, bits - 0.999f); stepr = 1/step; } if (fs >= sample_rate) { ratio = 1.0f; } else { ratio = fs/sample_rate; } for (pos = 0; pos < sample_count; pos++) { count += ratio; if (count >= 1.0f) { count -= 1.0f; delta = modf((input[pos] + (input[pos]<0?-1.0:1.0)*step*0.5) * stepr, &dummy) * step; last_out = input[pos] - delta; buffer_write(output[pos], last_out); } else { buffer_write(output[pos], last_out); } } plugin_data->last_out = last_out; plugin_data->count = count; ]]> Bit depth

The bit depth that the signal will be reduced to.

Sample rate (Hz)

The sample rate that the signal will be resampled at.

Input Output
ladspa-0.4.17/declip_1195.xml000066400000000000000000000026541300111216200155020ustar00rootroot00000000000000 #define MAX_AMP 1.0f #define CLIP 0.8f #define CLIP_A ((MAX_AMP - CLIP) * (MAX_AMP - CLIP)) #define CLIP_B (MAX_AMP - 2.0f * CLIP) Declipper

Removes nasty clicks from input signals, not very kind to them though.

This code came from the music-dsp mailing list, but it was unattributed, if it's yours, please drop me a line and I'll credit you.

-CLIP)) { buffer_write(output[pos], in); } else if (in > 0.0f) { buffer_write(output[pos], MAX_AMP - (CLIP_A / (CLIP_B + in))); } else { buffer_write(output[pos], -(MAX_AMP - (CLIP_A / (CLIP_B - in)))); } } ]]> Input Output
ladspa-0.4.17/delay_1898.xml000066400000000000000000000316321300111216200153500ustar00rootroot00000000000000 Simple delay line, noninterpolating

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); } if (delay_time == last_delay_time) { long read_phase = write_phase - (long)delay_samples; LADSPA_Data *readptr = buffer + (read_phase & buffer_mask); LADSPA_Data *writeptr = buffer + (write_phase & buffer_mask); LADSPA_Data *lastptr = buffer + buffer_mask + 1; long remain = sample_count; while (remain) { long read_space = lastptr - readptr; long write_space = lastptr - writeptr; long to_process = MIN (MIN (read_space, remain), write_space); if (to_process == 0) return; // buffer not allocated. remain -= to_process; for (i=0; ilast_delay_time = delay_time; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; // Unused variable (void)(max_delay); ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s)
Simple delay line, linear interpolation

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); } if (delay_time == last_delay_time) { long idelay_samples = (long)delay_samples; LADSPA_Data frac = delay_samples - idelay_samples; for (i=0; ilast_delay_time = delay_time; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; // Unused variable (void)(max_delay); ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s)
Simple delay line, cubic spline interpolation

Based on work by James McCartney in SuperCollider.

max_delay && *plugin_data->max_delay > 0) minsize = sample_rate * *plugin_data->max_delay; else if (plugin_data->delay_time) minsize = sample_rate * *plugin_data->delay_time; else minsize = sample_rate; /* 1 second default */ size = 1; while (size < minsize) size <<= 1; /* calloc sets the buffer to zero. */ buffer = calloc(size, sizeof(LADSPA_Data)); if (buffer) buffer_mask = size - 1; else buffer_mask = 0; write_phase = 0; ]]> buffer); ]]> last_delay_time = delay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); } if (delay_time == last_delay_time) { long idelay_samples = (long)delay_samples; LADSPA_Data frac = delay_samples - idelay_samples; for (i=0; ilast_delay_time = delay_time; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; // Unused variable (void)(max_delay); ]]> Input Output Max Delay (s)

Maximum delay. Used to set the delay buffer size upon activation. Cannot be modulated. Note that if you do not connect to this port before activation, it will default to 1 second.

Delay Time (s)
ladspa-0.4.17/delayorama_1402.xml000066400000000000000000000212351300111216200163430ustar00rootroot00000000000000 #define N_TAPS 128 typedef struct { unsigned int delay; float gain; } tap; ]]> Delayorama taps[0]); free(plugin_data->taps[1]); free(plugin_data->taps); free(plugin_data->buffer); ]]> last_ntaps = ntaps; } if (first_delay != last_start) { recalc = 1; plugin_data->last_start = first_delay; } if (range != last_range) { recalc = 1; plugin_data->last_range = range; } if (delay_scale != last_delaysc) { recalc = 1; plugin_data->last_delaysc = delay_scale; } if (gain_scale != last_ampsc) { recalc = 1; plugin_data->last_ampsc = gain_scale; } if (seed != last_seed) { recalc = 1; plugin_data->last_seed = seed; } if (gain_rand != last_a_rand) { recalc = 1; plugin_data->last_a_rand = gain_rand; } if (delay_rand != last_d_rand) { recalc = 1; plugin_data->last_d_rand = delay_rand; } if (recalc) { float delay_base = first_delay * sample_rate; float delay_fix; float gain, delay, delay_sum; float d_rand, g_rand; srand(f_round(seed)); if (delay_base + range > buffer_size-1) { delay_base = buffer_size - 1 - range; } if (gain_scale <= 1.0f) { gain = 1.0f; } else { gain = 1.0f / pow(gain_scale, ntaps-1); } if (delay_scale == 1.0f) { delay_fix = range / (ntaps - 1); } else { delay_fix = range * (delay_scale - 1.0f) / (pow(delay_scale, ntaps - 1) - 1.0f); } delay = 1.0f; delay_sum = 0.0f; for (i=0; i= buffer_size) { buffer_pos = 0; } } if (recalc) { plugin_data->active_set = next_set; plugin_data->next_set = active_set; } plugin_data->buffer_pos = buffer_pos; plugin_data->last_out = out; ]]> Random seed

Controls the random numbers that will be used to stagger the delays and amplitudes if random is turned up on them. Changing this forces the random values to be recalulated.

Input gain (dB)

Controls the gain of the input signal in dB's.

Feedback (%)

Controls the amount of output signal fed back into the input.

Number of taps

Controls the number of taps in the delay.

First delay (s)

The time of the first delay.

Delay range (s)

The time difference between the first and last delay.

Delay change

The scaling factor between one delay and the next.

Delay random (%)

The random factor applied to the delay.

Amplitude change

The scaling factor between one amplitude and the next.

Amplitude random (%)

The random factor applied to the amplitude.

Dry/wet mix

The level of delayed sound mixed into the output.

Input Output
ladspa-0.4.17/depcomp000077500000000000000000000560161300111216200144170ustar00rootroot00000000000000#! /bin/sh # depcomp - compile a program generating dependencies as side-effects scriptversion=2013-05-30.07; # UTC # Copyright (C) 1999-2014 Free Software Foundation, Inc. # This program is free software; you can redistribute it and/or modify # it under the terms of the GNU General Public License as published by # the Free Software Foundation; either version 2, or (at your option) # any later version. # This program is distributed in the hope that it will be useful, # but WITHOUT ANY WARRANTY; without even the implied warranty of # MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the # GNU General Public License for more details. # You should have received a copy of the GNU General Public License # along with this program. If not, see . # As a special exception to the GNU General Public License, if you # distribute this file as part of a program that contains a # configuration script generated by Autoconf, you may include it under # the same distribution terms that you use for the rest of that program. # Originally written by Alexandre Oliva . case $1 in '') echo "$0: No command. Try '$0 --help' for more information." 1>&2 exit 1; ;; -h | --h*) cat <<\EOF Usage: depcomp [--help] [--version] PROGRAM [ARGS] Run PROGRAMS ARGS to compile a file, generating dependencies as side-effects. Environment variables: depmode Dependency tracking mode. source Source file read by 'PROGRAMS ARGS'. object Object file output by 'PROGRAMS ARGS'. DEPDIR directory where to store dependencies. depfile Dependency file to output. tmpdepfile Temporary file to use when outputting dependencies. libtool Whether libtool is used (yes/no). Report bugs to . EOF exit $? ;; -v | --v*) echo "depcomp $scriptversion" exit $? ;; esac # Get the directory component of the given path, and save it in the # global variables '$dir'. Note that this directory component will # be either empty or ending with a '/' character. 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Note that we *cannot* use a case # here, because this file can only contain one case statement. if test "$depmode" = hp; then # HP compiler uses -M and no extra arg. gccflag=-M depmode=gcc fi if test "$depmode" = dashXmstdout; then # This is just like dashmstdout with a different argument. dashmflag=-xM depmode=dashmstdout fi cygpath_u="cygpath -u -f -" if test "$depmode" = msvcmsys; then # This is just like msvisualcpp but w/o cygpath translation. # Just convert the backslash-escaped backslashes to single forward # slashes to satisfy depend.m4 cygpath_u='sed s,\\\\,/,g' depmode=msvisualcpp fi if test "$depmode" = msvc7msys; then # This is just like msvc7 but w/o cygpath translation. # Just convert the backslash-escaped backslashes to single forward # slashes to satisfy depend.m4 cygpath_u='sed s,\\\\,/,g' depmode=msvc7 fi if test "$depmode" = xlc; then # IBM C/C++ Compilers xlc/xlC can output gcc-like dependency information. gccflag=-qmakedep=gcc,-MF depmode=gcc fi case "$depmode" in gcc3) ## gcc 3 implements dependency tracking that does exactly what ## we want. 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The correct option # to use with these is +Maked; it writes dependencies to a file named # 'foo.d', which lands next to the object file, wherever that # happens to be. # Much of this is similar to the tru64 case; see comments there. set_dir_from "$object" set_base_from "$object" if test "$libtool" = yes; then tmpdepfile1=$dir$base.d tmpdepfile2=$dir.libs/$base.d "$@" -Wc,+Maked else tmpdepfile1=$dir$base.d tmpdepfile2=$dir$base.d "$@" +Maked fi stat=$? if test $stat -ne 0; then rm -f "$tmpdepfile1" "$tmpdepfile2" exit $stat fi for tmpdepfile in "$tmpdepfile1" "$tmpdepfile2" do test -f "$tmpdepfile" && break done if test -f "$tmpdepfile"; then sed -e "s,^.*\.[$lower]*:,$object:," "$tmpdepfile" > "$depfile" # Add 'dependent.h:' lines. sed -ne '2,${ s/^ *// s/ \\*$// s/$/:/ p }' "$tmpdepfile" >> "$depfile" else make_dummy_depfile fi rm -f "$tmpdepfile" "$tmpdepfile2" ;; tru64) # The Tru64 compiler uses -MD to generate dependencies as a side # effect. 'cc -MD -o foo.o ...' puts the dependencies into 'foo.o.d'. # At least on Alpha/Redhat 6.1, Compaq CCC V6.2-504 seems to put # dependencies in 'foo.d' instead, so we check for that too. # Subdirectories are respected. set_dir_from "$object" set_base_from "$object" if test "$libtool" = yes; then # Libtool generates 2 separate objects for the 2 libraries. These # two compilations output dependencies in $dir.libs/$base.o.d and # in $dir$base.o.d. We have to check for both files, because # one of the two compilations can be disabled. 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The second sed program outputs the file # name when reading, but also accumulates all include files in the # hold buffer in order to output them again at the end. This only # works with sed implementations that can handle large buffers. sed < "$tmpdepfile" -n ' /^Note: including file: *\(.*\)/ { s//\1/ s/\\/\\\\/g p }' | $cygpath_u | sort -u | sed -n ' s/ /\\ /g s/\(.*\)/'"$tab"'\1 \\/p s/.\(.*\) \\/\1:/ H $ { s/.*/'"$tab"'/ G p }' >> "$depfile" echo >> "$depfile" # make sure the fragment doesn't end with a backslash rm -f "$tmpdepfile" ;; msvc7msys) # This case exists only to let depend.m4 do its work. It works by # looking at the text of this script. This case will never be run, # since it is checked for above. exit 1 ;; #nosideeffect) # This comment above is used by automake to tell side-effect # dependency tracking mechanisms from slower ones. dashmstdout) # Important note: in order to support this mode, a compiler *must* # always write the preprocessed file to stdout, regardless of -o. "$@" || exit $? # Remove the call to Libtool. if test "$libtool" = yes; then while test "X$1" != 'X--mode=compile'; do shift done shift fi # Remove '-o $object'. IFS=" " for arg do case $arg in -o) shift ;; $object) shift ;; *) set fnord "$@" "$arg" shift # fnord shift # $arg ;; esac done test -z "$dashmflag" && dashmflag=-M # Require at least two characters before searching for ':' # in the target name. This is to cope with DOS-style filenames: # a dependency such as 'c:/foo/bar' could be seen as target 'c' otherwise. "$@" $dashmflag | sed "s|^[$tab ]*[^:$tab ][^:][^:]*:[$tab ]*|$object: |" > "$tmpdepfile" rm -f "$depfile" cat < "$tmpdepfile" > "$depfile" # Some versions of the HPUX 10.20 sed can't process this sed invocation # correctly. Breaking it into two sed invocations is a workaround. tr ' ' "$nl" < "$tmpdepfile" \ | sed -e 's/^\\$//' -e '/^$/d' -e '/:$/d' \ | sed -e 's/$/ :/' >> "$depfile" rm -f "$tmpdepfile" ;; dashXmstdout) # This case only exists to satisfy depend.m4. It is never actually # run, as this mode is specially recognized in the preamble. exit 1 ;; makedepend) "$@" || exit $? # Remove any Libtool call if test "$libtool" = yes; then while test "X$1" != 'X--mode=compile'; do shift done shift fi # X makedepend shift cleared=no eat=no for arg do case $cleared in no) set ""; shift cleared=yes ;; esac if test $eat = yes; then eat=no continue fi case "$arg" in -D*|-I*) set fnord "$@" "$arg"; shift ;; # Strip any option that makedepend may not understand. Remove # the object too, otherwise makedepend will parse it as a source file. -arch) eat=yes ;; -*|$object) ;; *) set fnord "$@" "$arg"; shift ;; esac done obj_suffix=`echo "$object" | sed 's/^.*\././'` touch "$tmpdepfile" ${MAKEDEPEND-makedepend} -o"$obj_suffix" -f"$tmpdepfile" "$@" rm -f "$depfile" # makedepend may prepend the VPATH from the source file name to the object. # No need to regex-escape $object, excess matching of '.' is harmless. sed "s|^.*\($object *:\)|\1|" "$tmpdepfile" > "$depfile" # Some versions of the HPUX 10.20 sed can't process the last invocation # correctly. Breaking it into two sed invocations is a workaround. sed '1,2d' "$tmpdepfile" \ | tr ' ' "$nl" \ | sed -e 's/^\\$//' -e '/^$/d' -e '/:$/d' \ | sed -e 's/$/ :/' >> "$depfile" rm -f "$tmpdepfile" "$tmpdepfile".bak ;; cpp) # Important note: in order to support this mode, a compiler *must* # always write the preprocessed file to stdout. "$@" || exit $? # Remove the call to Libtool. if test "$libtool" = yes; then while test "X$1" != 'X--mode=compile'; do shift done shift fi # Remove '-o $object'. IFS=" " for arg do case $arg in -o) shift ;; $object) shift ;; *) set fnord "$@" "$arg" shift # fnord shift # $arg ;; esac done "$@" -E \ | sed -n -e '/^# [0-9][0-9]* "\([^"]*\)".*/ s:: \1 \\:p' \ -e '/^#line [0-9][0-9]* "\([^"]*\)".*/ s:: \1 \\:p' \ | sed '$ s: \\$::' > "$tmpdepfile" rm -f "$depfile" echo "$object : \\" > "$depfile" cat < "$tmpdepfile" >> "$depfile" sed < "$tmpdepfile" '/^$/d;s/^ //;s/ \\$//;s/$/ :/' >> "$depfile" rm -f "$tmpdepfile" ;; msvisualcpp) # Important note: in order to support this mode, a compiler *must* # always write the preprocessed file to stdout. "$@" || exit $? # Remove the call to Libtool. if test "$libtool" = yes; then while test "X$1" != 'X--mode=compile'; do shift done shift fi IFS=" " for arg do case "$arg" in -o) shift ;; $object) shift ;; "-Gm"|"/Gm"|"-Gi"|"/Gi"|"-ZI"|"/ZI") set fnord "$@" shift shift ;; *) set fnord "$@" "$arg" shift shift ;; esac done "$@" -E 2>/dev/null | sed -n '/^#line [0-9][0-9]* "\([^"]*\)"/ s::\1:p' | $cygpath_u | sort -u > "$tmpdepfile" rm -f "$depfile" echo "$object : \\" > "$depfile" sed < "$tmpdepfile" -n -e 's% %\\ %g' -e '/^\(.*\)$/ s::'"$tab"'\1 \\:p' >> "$depfile" echo "$tab" >> "$depfile" sed < "$tmpdepfile" -n -e 's% %\\ %g' -e '/^\(.*\)$/ s::\1\::p' >> "$depfile" rm -f "$tmpdepfile" ;; msvcmsys) # This case exists only to let depend.m4 do its work. It works by # looking at the text of this script. This case will never be run, # since it is checked for above. exit 1 ;; none) exec "$@" ;; *) echo "Unknown depmode $depmode" 1>&2 exit 1 ;; esac exit 0 # Local Variables: # mode: shell-script # sh-indentation: 2 # eval: (add-hook 'write-file-hooks 'time-stamp) # time-stamp-start: "scriptversion=" # time-stamp-format: "%:y-%02m-%02d.%02H" # time-stamp-time-zone: "UTC" # time-stamp-end: "; # UTC" # End: ladspa-0.4.17/diode_1185.xml000066400000000000000000000034351300111216200153230ustar00rootroot00000000000000 Diode Processor

Mangles the signal as if it had been passed through a diode rectifier network.

You should probably follow this with a DC offset remover, unless you want the offset.

= 0.0f && mode < 1.0f) { for (pos = 0; pos < sample_count; pos++) { buffer_write(output[pos], ((1.0f-mode) * input[pos]) + (mode * (input[pos] > 0.0f ? input[pos] : 0.0f))); } } else if (mode >= 1.0f && mode < 2.0f) { float fac = mode - 1.0f; for (pos = 0; pos < sample_count; pos++) { buffer_write(output[pos], ((1.0f-fac) * (input[pos] > 0 ? input[pos] : 0.0)) + (fac * fabs(input[pos]))); } } else if (mode >= 2) { float fac = mode < 3 ? mode - 2 : 1.0; for (pos = 0; pos < sample_count; pos++) { buffer_write(output[pos], (1.0-fac) * fabs(input[pos])); } } else { for (pos = 0; pos < sample_count; pos++) { buffer_write(output[pos], input[pos]); } } ]]> Mode (0 for none, 1 for half wave, 2 for full wave)

The mode parameter is continuously variable from thru to half-wave rectification to full-wave to silence.

Input Output
ladspa-0.4.17/divider_1186.xml000066400000000000000000000050301300111216200156570ustar00rootroot00000000000000 Audio Divider (Suboctave Generator)

Reduces the period of the signal by the factor given, and makes it a square wave in the process. Has some amplitude tracking capability, but not really useful on complex signals.

0.0f && last <= 0.0f) || (input[pos] < 0.0f && last >= 0.0)) { zeroxs++; if (den == 1) { out = out > 0.0f ? -1.0f : 1.0f; lamp = amp / count; zeroxs = 0; count = 0; amp = 0; } } amp += fabs(input[pos]); if (den > 1 && (zeroxs % den) == den-1) { out = out > 0.0f ? -1.0f : 1.0f; lamp = amp / count; zeroxs = 0; count = 0; amp = 0; } last = input[pos]; buffer_write(output[pos], out * lamp); } plugin_data->last = last; plugin_data->amp = amp; plugin_data->lamp = lamp; plugin_data->zeroxs = zeroxs; plugin_data->count = count; plugin_data->out = out; ]]> Denominator

The factor the incoming frequency will be divided by.

Input Output
ladspa-0.4.17/dj_eq_1901.xml000066400000000000000000000134031300111216200153110ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/biquad.h" #define BANDS 3 #define PEAK_BW 0.3f /* Peak EQ bandwidth (octaves) */ #define SHELF_SLOPE 1.5f /* Shelf EQ slope (arb. units) */ DJ EQ (mono)

The design for this plugin is taken from the Allen \& Heath Xone 32 DJ mixer. It was suggested by Patrick Shirkey. Mono version requested by Adam King

latency) = 3; //XXX is this right? ]]> filters); ]]> Lo gain (dB)

Controls the gain of the low (100Hz) peak/dip band

Mid gain (dB)

Controls the gain of the mid (1000Hz) peak/dip band

Hi gain (dB)

Controls the gain of the high (10000Hz) shelf band

Input Output latency
DJ EQ

The design for this plugin is taken from the Allen \& Heath Xone 32 DJ mixer. It was suggested by Patrick Shirkey.

latency) = 3; //XXX is this right? ]]> filters); ]]> Lo gain (dB)

Controls the gain of the low (100Hz) peak/dip band

Mid gain (dB)

Controls the gain of the mid (1000Hz) peak/dip band

Hi gain (dB)

Controls the gain of the high (10000Hz) shelf band

Input L Input R Output L Output R latency
ladspa-0.4.17/dj_flanger_1438.xml000066400000000000000000000102201300111216200163210ustar00rootroot00000000000000 #include "ladspa-util.h" #define DELAY_TIME 0.005f ]]> DJ flanger

This is a flanger which is more or less typical of DJ mixing desks. Requested by Patrick Shirkey.

99.0f) { fb = 0.99f; } else if (feedback < -99.0f) { fb = -0.99f; } else { fb = feedback * 0.01f; } if (sync > 0) { if (!last_sync) { x = 0.5f; y = 0.0f; } plugin_data->last_sync = 1; } else { plugin_data->last_sync = 0; } for (pos = 0; pos < sample_count; pos++) { /* Write input into delay line */ buffer[buffer_pos] = input[pos]; /* Calcuate delay */ d = (x + 0.5f) * dr; dof = f_round(d); //dout = buffer[(buffer_pos - f_round(d)) & buffer_mask]; dout = cube_interp(d - floor(d), buffer[(buffer_pos - dof - 3) & buffer_mask], buffer[(buffer_pos - dof - 2) & buffer_mask], buffer[(buffer_pos - dof - 1) & buffer_mask], buffer[(buffer_pos - dof) & buffer_mask]); /* Write output */ out = (buffer[buffer_pos] + dout) * 0.5f; buffer[buffer_pos] = input[pos] + out * fb; buffer_write(output[pos], out); /* Roll ringbuffer */ buffer_pos = (buffer_pos + 1) & buffer_mask; /* Run LFO */ x -= omega * y; y += omega * x; } plugin_data->x = x; plugin_data->y = y; plugin_data->buffer_pos = buffer_pos; ]]> buffer); ]]> LFO sync

When turned from off to on it resets the phase of the LFO back to the start of the cycle. Used to sync the LFO to the track.

LFO period (s)

The cycle period of the LFO in seconds.

LFO depth (ms)

The maximum delay the LFO will use to flange, in milliseconds.

Feedback (%)

The amount of the delays output that is mixed back into the delay.

Input Output
ladspa-0.4.17/docs/000077500000000000000000000000001300111216200137625ustar00rootroot00000000000000ladspa-0.4.17/docs/Makefile000066400000000000000000000011401300111216200154160ustar00rootroot00000000000000all: ladspa-swh.html ladspa-swh.pdf test: touch ../amp_1181.xml make view view: ladspa-swh.ps gv ladspa-swh.ps ladspa-swh.tex: ../*.xml ./makedocs.pl ../*.xml > ladspa-swh.tex latex ladspa-swh.tex latex ladspa-swh.tex ladspa-swh.dvi: ladspa-swh.tex latex ladspa-swh.tex latex ladspa-swh.tex ladspa-swh.ps: ladspa-swh.dvi dvips ladspa-swh.dvi -o ladspa-swh.pdf: ladspa-swh.ps ps2pdf ladspa-swh.ps ladspa-swh.html: ladspa-swh.tex tth -v -Lladspa-swh ladspa-swh-tmp.html ./addstyle.pl ladspa-swh.html rm -f ladspa-swh-tmp.html date -I > timestamp.txt ladspa-0.4.17/docs/addstyle.pl000077500000000000000000000007131300111216200161340ustar00rootroot00000000000000#!/usr/bin/perl -w $style = < BODY { font-family: sans-serif; font-size: 10pt; color: black; background: white; } H1 { font-size: 16pt; } H2 { padding-top: 10pt; font-size: 14pt; } H3 { padding-top: 10pt; font-size: 12pt; } P { font-size: 10pt; } TD { font-size: 10pt; } A { text-decoration: none; } EOB while(<>) { s/<\/title>/$&\n$style/i; print; } ladspa-0.4.17/docs/makedocs.pl000077500000000000000000000043521300111216200161140ustar00rootroot00000000000000#!/usr/bin/perl -w use XML::Parser; my $parser = new XML::Parser(ErrorContext => 2); $parser->setHandlers(Start => \&start, End => \&end, Char => \&char); &loadstats; &preamble; while ($file = shift) { $parser->parsefile($file); } &postamble; sub start { my ($p, $el, %attr) = @_; unshift(@elements, $el); if ($el eq "plugin") { $pluginLabel = $attr{label}; $pluginLabelLabel = $attr{label}; $pluginLabel =~ s/%/\\%/g; $pluginLabel =~ s/_/\\_/g; $pluginID = $attr{id}; $title = ""; } } sub char { my ($p, $str) = @_; $str =~ s/%/\\%/g; $str =~ s/_/\\_/g; if ($elements[0] eq "name" && $elements[1] eq "plugin") { print '\subsection{'.$str.' ('.$pluginLabel.', '.$pluginID.")\\label{${pluginLabelLabel}}\\label{id${pluginID}}}\n"; if ($cycles{$pluginID}) { print "CPU usage: ".$cycles{$pluginID}." cycles/sample\n\n"; } } $title = '\subsubsection*{'.$str."}\n" if $elements[0] eq "name" && $elements[1] eq "port"; if ($elements[0] eq "p") { print $title.$str; $title = ""; } } sub end { my ($p, $el) = @_; shift(@elements); } sub loadstats { open(DATA, "../timetest/timetest.results"); while() { @line = split(" "); $cycles{$line[0]} = $line[2]; } } sub preamble { $date = `date -I`; chomp $date; print < #define MAXLEVEL 0.9f #define NFILT 12 #define NEFILT 17 /* These filters should filter at least the lowest audio freq */ #define RLEVELSQ0FILTER .001 #define RLEVELSQ1FILTER .010 /* These are the attack time for the rms measurement */ #define RLEVELSQ0FFILTER .001 #define RLEVELSQEFILTER .001 #define RMASTERGAIN0FILTER .000003 #define RPEAKGAINFILTER .001 #define MAXFASTGAIN 3 #define MAXSLOWGAIN 9 #define FLOORLEVEL 0.06 float hardlimit(float value, float knee, float limit) { float ab = fabs(value); if (ab >= limit) { value = value > 0 ? limit : -limit; } return value; } ]]> Dyson compressor delay); free(plugin_data->rlevelsqn); free(plugin_data->rlevelsqe); ]]> = ndelay) { ndelayptr = 0; } if (levelsq0 > rlevelsq0) { rlevelsq0 = (levelsq0 * RLEVELSQ0FFILTER) + rlevelsq0 * (1 - RLEVELSQ0FFILTER); } else { rlevelsq0 = (levelsq0 * RLEVELSQ0FILTER) + rlevelsq0 * (1 - RLEVELSQ0FILTER); } if (rlevelsq0 <= FLOORLEVEL * FLOORLEVEL) { goto skipagc; } if (rlevelsq0 > rlevelsq1) { rlevelsq1 = rlevelsq0; } else { rlevelsq1 = rlevelsq0 * RLEVELSQ1FILTER + rlevelsq1 * (1 - RLEVELSQ1FILTER); } rlevelsqn[0] = rlevelsq1; for(i = 0; i < NFILT-1; i++) { if (rlevelsqn[i] > rlevelsqn[i+1]) rlevelsqn[i+1] = rlevelsqn[i]; else rlevelsqn[i+1] = rlevelsqn[i] * RLEVELSQ1FILTER + rlevelsqn[i+1] * (1 - RLEVELSQ1FILTER); } efilt = RLEVELSQEFILTER; levelsqe = rlevelsqe[0] = rlevelsqn[NFILT-1]; for(i = 0; i < NEFILT-1; i++) { rlevelsqe[i+1] = rlevelsqe[i] * efilt + rlevelsqe[i+1] * (1.0 - efilt); if (rlevelsqe[i+1] > levelsqe) levelsqe = rlevelsqe[i+1]; efilt *= 1.0f / 1.5f; } gain = targetlevel / sqrt(levelsqe); if (compressionratio < 0.99f) { if (compressionratio == 0.50f) gain = sqrt(gain); else gain = f_exp(log(gain) * compressionratio); } if (gain < rgain) rgain = gain * RLEVELSQEFILTER/2 + rgain * (1 - RLEVELSQEFILTER/2); else rgain = gain * rgainfilter + rgain * (1 - rgainfilter); lastrgain = rgain; if ( gain < lastrgain) lastrgain = gain; skipagc:; tgain = lastrgain; d = delay[ndelayptr]; fastgain = tgain; if (fastgain > MAXFASTGAIN) fastgain = MAXFASTGAIN; if (fastgain < 0.0001) fastgain = 0.0001; qgain = f_exp(log(fastgain) * fastgaincompressionratio); tslowgain = tgain / qgain; if (tslowgain > MAXSLOWGAIN) tslowgain = MAXSLOWGAIN; if (tslowgain < rmastergain0) rmastergain0 = tslowgain; else rmastergain0 = tslowgain * RMASTERGAIN0FILTER + (1 - RMASTERGAIN0FILTER) * rmastergain0; slowgain = rmastergain0; npeakgain = slowgain * qgain; new = d * npeakgain; if (fabs(new) >= MAXLEVEL) nrgain = MAXLEVEL / fabs(new); else nrgain = 1.0; ngain = nrgain; ngsq = ngain * ngain; if (ngsq <= rpeakgain0) { rpeakgain0 = ngsq /* * 0.50 + rpeakgain0 * 0.50 */; rpeaklimitdelay = peaklimitdelay; } else if (rpeaklimitdelay == 0) { if (nrgain > 1.0) tnrgain = 1.0; else tnrgain = nrgain; rpeakgain0 = tnrgain * RPEAKGAINFILTER + (1.0 - RPEAKGAINFILTER) * rpeakgain0; } if (rpeakgain0 <= rpeakgain1) { rpeakgain1 = rpeakgain0; rpeaklimitdelay = peaklimitdelay; } else if (rpeaklimitdelay == 0) { rpeakgain1 = RPEAKGAINFILTER * rpeakgain0 + (1.0 - RPEAKGAINFILTER) * rpeakgain1; } else { --rpeaklimitdelay; } sqrtrpeakgain = sqrt(rpeakgain1); totalgain = npeakgain * sqrtrpeakgain; buffer_write(output[pos], new * sqrtrpeakgain); if (totalgain > maxgain) maxgain = totalgain; if (totalgain < mingain) mingain = totalgain; if (output[pos] > extra_maxlevel) extra_maxlevel = output[pos]; } plugin_data->ndelayptr = ndelayptr; plugin_data->rlevelsq0 = rlevelsq0; plugin_data->rlevelsq1 = rlevelsq1; plugin_data->mingain = mingain; plugin_data->maxgain = maxgain; plugin_data->rpeaklimitdelay = rpeaklimitdelay; plugin_data->rgain = rgain; plugin_data->rmastergain0 = rmastergain0; plugin_data->rpeakgain0 = rpeakgain0; plugin_data->rpeakgain1 = rpeakgain1; plugin_data->lastrgain = lastrgain; plugin_data->extra_maxlevel = extra_maxlevel; ]]> Peak limit (dB)

Controls the desired limit of the output signal in dB's.

Release time (s)

Controls the time taken for the compressor to relax its gain control over the input signal.

Fast compression ratio

I have no clear idea what this controls.

Compression ratio

I have no clear idea what this controls.

Input Output
ladspa-0.4.17/fad_delay_1192.xml000066400000000000000000000064041300111216200161440ustar00rootroot00000000000000 #include "ladspa-util.h" #define BASE_BUFFER 8 // Base buffer length (s) Fractionally Addressed Delay Line

A fixed ring buffer delay implementation. Has different dynamics to a normal delay, more suitable for certain things.

Changes in delay length are generally more pleasing, but delays >2s long have reduced sound quality.

int i; for (i = 0; i < buffer_size; i++) { buffer[i] = 0; } phase = 0; last_phase = 0; last_in = 0.0f; sample_rate = sample_rate; free(plugin_data->buffer); 1.0f ? 1.0f : lin_inc; lin_int = 0.0f; for (track = last_phase; track < phase; track++) { lin_int += lin_inc; buffer[track % buffer_size] = out * fb + LIN_INTERP(lin_int, last_in, input[pos]); } last_in = input[pos]; buffer_write(output[pos], out); if (phase >= buffer_size) { phase -= buffer_size; } } // Store current phase in instance plugin_data->phase = phase; plugin_data->last_phase = last_phase; plugin_data->last_in = last_in; ]]> Delay (seconds)

The neutral delay time is 2 seconds. Times above 2 seconds will have reduced quality and times below will have increased CPU usage.

Feedback (dB) Input Output
ladspa-0.4.17/fast_lookahead_limiter_1913.xml000066400000000000000000000162611300111216200207300ustar00rootroot00000000000000 #include "ladspa-util.h" //#define DEBUG #define NUM_CHUNKS 16 #define BUFFER_TIME 0.0053 #ifdef DEBUG #include "stdio.h" #endif Fast Lookahead limiter

This is a limiter with an attack time of 5ms. It adds just over 5ms of latency to the input signal, but it guarantees that there will be no signals over the limit, and tries to get the minimum amount of distortion.

fabs(in_2[pos]) ? fabs(in_1[pos]) : fabs(in_2[pos]); sig += 1.0e-30; if (sig * trim > peak) { peak = sig * trim; } //round_to_zero(&peak); //round_to_zero(&sig); atten += delta; atten_lp = atten * 0.1f + atten_lp * 0.9f; //round_to_zero(&atten_lp); if (delta > 0.0f && atten > 1.0f) { atten = 1.0f; delta = 0.0f; } buffer_write(out_1[pos], buffer[(buffer_pos * 2 - delay * 2) & (buffer_len - 1)] * atten_lp); buffer_write(out_2[pos], buffer[(buffer_pos * 2 - delay * 2 + 1) & (buffer_len - 1)] * atten_lp); round_to_zero(&out_1[pos]); round_to_zero(&out_2[pos]); if (out_1[pos] < -max) { #ifdef DEBUG clip += 20.0*log10(out_1[pos] / -max); clipc++; if (fabs(out_1[pos] - max) > clipp) { clipp = fabs(out_1[pos] / -max); } #endif buffer_write(out_1[pos], -max); } else if (out_1[pos] > max) { #ifdef DEBUG clip += 20.0*log10(out_1[pos] / max); clipc++; if (fabs(out_1[pos] - max) > clipp) { clipp = fabs(out_1[pos] / max); } #endif buffer_write(out_1[pos], max); } if (out_2[pos] < -max) { #ifdef DEBUG clip += 20.0*log10(out_2[pos] / -max); clipc++; if (fabs(out_2[pos] - max) > clipp) { clipp = fabs(out_2[pos] / -max); } #endif buffer_write(out_2[pos], -max); } else if (out_2[pos] > max) { #ifdef DEBUG clip += 20.0*log10(out_2[pos] / max); clipc++; if (fabs(out_2[pos] - max) > clipp) { clipp = fabs(out_2[pos] / max); } #endif buffer_write(out_2[pos], max); } buffer_pos++; } #ifdef DEBUG if (clipc > 0) { printf("%d overs: %fdB avg, %fdB peak\n", clipc, clip/(float)clipc, 20.0*log10(clipp)); } #endif plugin_data->buffer_pos = buffer_pos; plugin_data->peak = peak; plugin_data->atten = atten; plugin_data->atten_lp = atten_lp; plugin_data->chunk_pos = chunk_pos; plugin_data->chunk_num = chunk_num; *(plugin_data->attenuation) = -CO_DB(atten); *(plugin_data->latency) = delay; ]]> buffer); free(plugin_data->chunks); ]]> Input gain (dB)

Gain that is applied to the input stage. Can be used to trim gain to bring it roughly under the limit or to push the signal against the limit.

Limit (dB)

The maximum output amplitude. Peaks over this level will be attenuated as smoothly as possible to bring them as close as possible to this level.

Release time (s)

The time taken for the limiters attenuation to return to 0 dB's

Attenuation (dB)

The current attenuation of the signal coming out of the delay buffer.

Input 1 Input 2 Output 1 Output 2 latency
ladspa-0.4.17/flanger_1191.xml000066400000000000000000000133701300111216200156510ustar00rootroot00000000000000 Flanger

A digital flanger implementation. Uses a novel zero excursion, controlled bandwidth modulation function, which should make the modulation less repetitive and noticeable.

This effect is similar in character to a phaser (see section \ref{lfoPhaser}). The main difference is that a phaser sounds more regular and stable.

delay_tbl); ]]> 1.0f) { p_ph -= 1.0f; } law = f_sin_sq(3.1415926f*p_ph)*prev_law_peak + f_sin_sq(3.1415926f*n_ph)*next_law_peak; dp = (float)(delay_pos - d_base) - (delay_depth * law); // Get the integer part dp_idx = f_round(dp - 0.5f); // Get the fractional part dp_frac = dp - dp_idx; // Accumulate into output buffer out = cube_interp(dp_frac, delay_tbl[(dp_idx-1) & (delay_size-1)], delay_tbl[dp_idx & (delay_size-1)], delay_tbl[(dp_idx+1) & (delay_size-1)], delay_tbl[(dp_idx+2) & (delay_size-1)]); // Store new delayed value delay_tbl[delay_pos] = flush_to_zero(input[pos] + (fb * out)); // Sometimes the delay can pick up NaN values, I'm not sure why // and this is easier than fixing it if (isnan(delay_tbl[delay_pos])) { delay_tbl[delay_pos] = 0.0f; } out = f_clamp(delay_tbl[delay_pos] * 0.707f, -1.0, 1.0); buffer_write(output[pos], out); frac += step; delay_pos = (delay_pos + 1) & (delay_size-1); count++; } plugin_data->count = count; plugin_data->prev_law_peak = prev_law_peak; plugin_data->next_law_peak = next_law_peak; plugin_data->prev_law_pos = prev_law_pos; plugin_data->next_law_pos = next_law_pos; plugin_data->delay_pos = delay_pos; plugin_data->old_d_base = new_d_base; ]]> Delay base (ms)

This is the offset from the input time that the detune delay moves around.

10 is probably a good starting value.

Max slowdown (ms)

This is the maximum delay that will be applied to the delayed signal, relative to the dry signal.

LFO frequency (Hz)

This is the core frequency that the 'LFO' will move at. The LFO isn't actually an oscillator, but it does vary periodically.

Feedback

Feedback applied from the output to the input, increases the depth of the effect, but makes it sound less like a real flanger.

Input Output
ladspa-0.4.17/fm_osc_1415.xml000066400000000000000000000037201300111216200154760ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/blo.h" FM Oscillator wave = LIMIT(f_round(wave) - 1, 0, BLO_N_WAVES-1); tables = tables; // So gcc doesn't think it's unused for (pos = 0; pos < sample_count; pos++) { blo_hd_set_freq(osc, fm[pos]); buffer_write(output[pos], blo_hd_run_cub(osc)); } ]]> tables); blo_h_free(plugin_data->osc); ]]> Waveform (1=sin, 2=tri, 3=squ, 4=saw)

The shape of the waveform.

Frequency (Hz)

The frequency of the output (in Hertz).

Output
ladspa-0.4.17/foldover_1213.xml000066400000000000000000000027011300111216200160420ustar00rootroot00000000000000 Foldover distortion

Uses a sinwave approximation to simulate valve style foldover distortion.

Probably should have a DC offset remover on the output, but it's not always necessary.

Drive

Controls the degree of distortion.

Skew

Controls the asymmetry of the waveform.

Input Output
ladspa-0.4.17/foverdrive_1196.xml000066400000000000000000000023201300111216200164040ustar00rootroot00000000000000 Fast overdrive

A simple overdrive. Compresses the extreme peaks to make a sound similar to an overdriven amplifier.

unsigned long pos; const float drivem1 = drive - 1.0f; for (pos = 0; pos < sample_count; pos++) { LADSPA_Data x = input[pos]; const float fx = fabs(x); buffer_write(output[pos], x*(fx + drive)/(x*x + drivem1*fx + 1.0f)); } Drive level

Controls the point at which the signal starts to distort, and the degree of distortion.

Input Output
ladspa-0.4.17/freq_tracker_1418.xml000066400000000000000000000043171300111216200167060ustar00rootroot00000000000000 Frequency tracker 0.0f) { if (cross_time > 3.0f) { f = fs / ((float)cross_time * 2.0f); } cross_time = 0; } xm1 = input[pos]; cross_time++; fo = fo * damp_lp + f * damp_lpi; fo = flush_to_zero(fo); buffer_write(freq[pos], fo); } plugin_data->last_amp = xm1; plugin_data->fo = fo; plugin_data->f = f; plugin_data->cross_time = cross_time; ]]> Tracking speed

This controls the level of damping applied to the output.

High values will make the frequency output jump around, low values will make it a bit slow to respond.

Input Frequency (Hz)
ladspa-0.4.17/gate_1410.xml000066400000000000000000000127341300111216200151500ustar00rootroot00000000000000 Gate

The parameters are copied from the Drawmer DS-201, but I've never used one, so if someone out there has one, please tell me if it behaves differently.

lf); free(plugin_data->hf); ]]> env) { env = apost_filter; } else { env = apost_filter * ENV_TR + env * (1.0f - ENV_TR); } if (state == CLOSED) { if (env >= t_level) { state = OPENING; } } else if (state == OPENING) { gate += a_rate; if (gate >= 1.0f) { gate = 1.0f; state = OPEN; hold_count = f_round(hold * fs * 0.001f); plugin_data->hold_count = hold_count; } } else if (state == OPEN) { if (hold_count <= 0) { if (env < t_level) { state = CLOSING; } } else { hold_count--; } } else if (state == CLOSING) { gate -= d_rate; if (env >= t_level) { state = OPENING; } else if (gate <= 0.0f) { gate = 0.0f; state = CLOSED; } } if (op == 0) { buffer_write(output[pos], input[pos] * (cut * (1.0f - gate) + gate)); } else if (op == -1) { buffer_write(output[pos], post_filter); } else { buffer_write(output[pos], input[pos]); } } plugin_data->env = env; plugin_data->gate = gate; plugin_data->state = state; plugin_data->hold_count = hold_count; ]]> LF key filter (Hz)

Controls the cutoff of the low frequency filter (highpass).

HF key filter (Hz)

Controls the cutoff of the high frequency filter (lowpass).

Threshold (dB)

Controls the level at which the gate will open.

Attack (ms)

Controls the time the gate will take to open fully.

Hold (ms)

Controls the minimum time the gate will stay open for.

Decay (ms)

Controls the time the gate will take to close fully.

Range (dB)

Controls the difference between the gate's open and closed state.

Output select (-1 = key listen, 0 = gate, 1 = bypass)

Controls output monitor. -1 is the output of the key filters (so you can check what is being gated on). 0 is the normal, gated output. 1 is bypass mode.

Input Output
ladspa-0.4.17/gate_1921.xml000066400000000000000000000256061300111216200151610ustar00rootroot00000000000000 Gate

The parameters are copied from the Drawmer DS-201, but I've never used one, so if someone out there has one, please tell me if it behaves differently.

env) { env = apost_filter; } else { env = apost_filter * ENV_TR + env * (1.0f - ENV_TR); } if (state == CLOSED) { if (env >= t_level) { state = OPENING; } } else if (state == OPENING) { gate += a_rate; if (gate >= 1.0f) { gate = 1.0f; state = OPEN; hold_count = f_round(hold * fs * 0.001f); plugin_data->hold_count = hold_count; } } else if (state == OPEN) { if (hold_count <= 0) { if (env < t_level) { state = CLOSING; } } else { hold_count--; } } else if (state == CLOSING) { gate -= d_rate; if (env >= t_level) { state = OPENING; } else if (gate <= 0.0f) { gate = 0.0f; state = CLOSED; } } if (op == 0) { buffer_write(output[pos], input[pos] * (cut * (1.0f - gate) + gate)); } else if (op == -1) { buffer_write(output[pos], post_filter); } else { buffer_write(output[pos], input[pos]); } } *(plugin_data->level) = CO_DB(env); plugin_data->env = env; plugin_data->gate = gate; plugin_data->state = state; plugin_data->hold_count = hold_count; ]]> LF key filter (Hz)

Controls the cutoff of the low frequency filter (highpass).

HF key filter (Hz)

Controls the cutoff of the high frequency filter (lowpass).

Key level (dB)

Shows the current level of the key.

Threshold (dB)

Controls the level at which the gate will open.

Attack (ms)

Controls the time the gate will take to open fully.

Hold (ms)

Controls the minimum time the gate will stay open for.

Decay (ms)

Controls the time the gate will take to close fully.

Range (dB)

Controls the difference between the gate's open and closed state.

Output select (-1 = key listen, 0 = gate, 1 = bypass)

Controls output monitor. -1 is the output of the key filters (so you can check what is being gated on). 0 is the normal, gated output. 1 is bypass mode.

Input Output
Stereo Gate

Derived from Steve Harris' gate plugin

env) { env = apost_filter; } else { env = apost_filter * ENV_TR + env * (1.0f - ENV_TR); } if (state == CLOSED) { if (env >= t_level) { state = OPENING; } } else if (state == OPENING) { gate += a_rate; if (gate >= 1.0f) { gate = 1.0f; state = OPEN; hold_count = f_round(hold * fs * 0.001f); plugin_data->hold_count = hold_count; } } else if (state == OPEN) { if (hold_count <= 0) { if (env < t_level) { state = CLOSING; } } else { hold_count--; } } else if (state == CLOSING) { gate -= d_rate; if (env >= t_level) { state = OPENING; } else if (gate <= 0.0f) { gate = 0.0f; state = CLOSED; } } if (op == 0) { buffer_write(out1[pos], in1[pos] * (cut * (1.0f - gate) + gate)); buffer_write(out2[pos], in2[pos] * (cut * (1.0f - gate) + gate)); } else if (op == -1) { buffer_write(out1[pos], post_filter); buffer_write(out2[pos], post_filter); } else { buffer_write(out1[pos], in1[pos]); buffer_write(out2[pos], in2[pos]); } } *(plugin_data->level) = CO_DB(env); plugin_data->env = env; plugin_data->gate = gate; plugin_data->state = state; plugin_data->hold_count = hold_count; ]]> LF key filter (Hz)

Controls the cutoff of the low frequency filter (highpass).

HF key filter (Hz)

Controls the cutoff of the high frequency filter (lowpass).

Key level (dB)

Shows the current level of the key.

Threshold (dB)

Controls the level at which the gate will open.

Attack (ms)

Controls the time the gate will take to open fully.

Hold (ms)

Controls the minimum time the gate will stay open for.

Decay (ms)

Controls the time the gate will take to close fully.

Range (dB)

Controls the difference between the gate's open and closed state.

Output select (-1 = key listen, 0 = gate, 1 = bypass)

Controls output monitor. -1 is the output of the key filters (so you can check what is being gated on). 0 is the normal, gated output. 1 is bypass mode.

Input 1 Input 2 Output 1 Output 2
ladspa-0.4.17/giant_flange_1437.xml000066400000000000000000000150431300111216200166530ustar00rootroot00000000000000 #include "ladspa-util.h" #define INT_SCALE 16384.0f /* INT_SCALE reciprocal includes factor of two scaling */ #define INT_SCALE_R 0.000030517578125f #define MAX_AMP 1.0f #define CLIP 0.8f #define CLIP_A ((MAX_AMP - CLIP) * (MAX_AMP - CLIP)) #define CLIP_B (MAX_AMP - 2.0f * CLIP) ]]> Giant flange

This is a fairly normal flanger but with excessively long delay times. Requested by Patrick Shirkey.

To cut down the memory requirements the internal delay buffer only has 15bits of resolution, so there is no headroom, if you feed in signals over 0dB it will clip the output. There is code to soften the effect of the clipping, but beware of it.

buffer); ]]> 99.0f) { fb = 0.99f; } else if (feedback < -99.0f) { fb = -0.99f; } else { fb = feedback * 0.01f; } if (f_round(deldouble)) { const float dr1 = delay1 * fs * 0.25f; const float dr2 = delay2 * fs * 0.25f; for (pos = 0; pos < sample_count; pos++) { /* Write input into delay line */ buffer[buffer_pos] = f_round(input[pos] * INT_SCALE); /* Calcuate delays */ d1 = (x1 + 1.0f) * dr1; d2 = (y2 + 1.0f) * dr2; d1out = buffer[(buffer_pos - f_round(d1)) & buffer_mask] * INT_SCALE_R; d2out = buffer[(buffer_pos - f_round(d2)) & buffer_mask] * INT_SCALE_R; /* Add feedback, must be done afterwards for case where delay = 0 */ fbs = input[pos] + (d1out + d2out) * fb; if(fbs < CLIP && fbs > -CLIP) { buffer[buffer_pos] = fbs * INT_SCALE; } else if (fbs > 0.0f) { buffer[buffer_pos] = (MAX_AMP - (CLIP_A / (CLIP_B + fbs))) * INT_SCALE; } else { buffer[buffer_pos] = (MAX_AMP - (CLIP_A / (CLIP_B - fbs))) * -INT_SCALE; } /* Write output */ buffer_write(output[pos], LIN_INTERP(wet, input[pos], d1out + d2out)); if (pos % 2) { buffer_pos = (buffer_pos + 1) & buffer_mask; } /* Run LFOs */ x1 -= omega1 * y1; y1 += omega1 * x1; x2 -= omega2 * y2; y2 += omega2 * x2; } } else { const float dr1 = delay1 * fs * 0.5f; const float dr2 = delay2 * fs * 0.5f; for (pos = 0; pos < sample_count; pos++) { /* Write input into delay line */ buffer[buffer_pos] = f_round(input[pos] * INT_SCALE); /* Calcuate delays */ d1 = (x1 + 1.0f) * dr1; d2 = (y2 + 1.0f) * dr2; d1out = buffer[(buffer_pos - f_round(d1)) & buffer_mask] * INT_SCALE_R; d2out = buffer[(buffer_pos - f_round(d2)) & buffer_mask] * INT_SCALE_R; /* Add feedback, must be done afterwards for case where delay = 0 */ fbs = input[pos] + (d1out + d2out) * fb; if(fbs < CLIP && fbs > -CLIP) { buffer[buffer_pos] = fbs * INT_SCALE; } else if (fbs > 0.0f) { buffer[buffer_pos] = (MAX_AMP - (CLIP_A / (CLIP_B + fbs))) * INT_SCALE; } else { buffer[buffer_pos] = (MAX_AMP - (CLIP_A / (CLIP_B - fbs))) * -INT_SCALE; } /* Write output */ buffer_write(output[pos], LIN_INTERP(wet, input[pos], d1out + d2out)); buffer_pos = (buffer_pos + 1) & buffer_mask; /* Run LFOs */ x1 -= omega1 * y1; y1 += omega1 * x1; x2 -= omega2 * y2; y2 += omega2 * x2; } } plugin_data->x1 = x1; plugin_data->y1 = y1; plugin_data->x2 = x2; plugin_data->y2 = y2; plugin_data->buffer_pos = buffer_pos; ]]> Double delay

doubles the length of the delays, this will reduce the sound quality.

LFO frequency 1 (Hz)

The delay of the first LFO in seconds.

Delay 1 range (s)

The delay range of the first LFO in seconds.

LFO frequency 2 (Hz)

The delay of the second LFO in seconds.

Delay 2 range (s)

The delay range of the second LFO in seconds.

Feedback

The amount of the delays output that is mixed back into the delay.

Dry/Wet level

The amounts of the input and effect mixed to produce the output.

Input Output
ladspa-0.4.17/gong_1424.xml000066400000000000000000000254231300111216200151660ustar00rootroot00000000000000 #include "util/waveguide_nl.h" #define RUN_WG(n, junct_a, junct_b) waveguide_nl_process(w[n], junct_a - out[n*2+1], junct_b - out[n*2], out+n*2, out+n*2+1) Gong model

A physical model of a metal gong.

Based on Josep Comajuncosas' gong explorer, which was built in Sync Modular, it uses 8 linear waveguides with nonlinear filters to model the gong surface.

w[i]); } free(plugin_data->w); free(plugin_data->out); ]]> Inner damping

Controls the degree of damping in the centre of the gong.

Outer damping

Controls the degree of damping on the edge of the gong.

Mic position

Controls the vertical position of the "microphone", 0 is the centre and 1 is the edge.

Inner size 1

The size of the upper, inner waveguide.

Inner stiffness 1 +

The stiffness of the gong against deflections in the positive direction.

Inner stiffness 1 -

The stiffness of the gong against deflections in the negative direction.

Inner size 2

The size of the right, inner waveguide.

Inner stiffness 2 +

The stiffness of the gong against deflections in the positive direction.

Inner stiffness 2 -

The stiffness of the gong against deflections in the negative direction.

Inner size 3

The size of the lower, inner waveguide.

Inner stiffness 3 +

The stiffness of the gong against deflections in the positive direction.

Inner stiffness 3 -

The stiffness of the gong against deflections in the negative direction.

Inner size 4

The size of the left, inner waveguide.

Inner stiffness 4 +

The stiffness of the gong against deflections in the positive direction.

Inner stiffness 4 -

The stiffness of the gong against deflections in the negative direction.

Outer size 1

The size of the upper right, outer waveguide.

Outer stiffness 1 +

The stiffness of the gong against deflections in the positive direction.

Outer stiffness 1 -

The stiffness of the gong against deflections in the negative direction.

Outer size 2

The size of the lower right, outer waveguide.

Outer stiffness 2 +

The stiffness of the gong against deflections in the positive direction.

Outer stiffness 2 -

The stiffness of the gong against deflections in the negative direction.

Outer size 3

The size of the lower left, outer waveguide.

Outer stiffness 3 +

The stiffness of the gong against deflections in the positive direction.

Outer stiffness 3 -

The stiffness of the gong against deflections in the negative direction.

Outer size 4

The size of the upper left, outer waveguide.

Outer stiffness 4 +

The stiffness of the gong against deflections in the positive direction.

Outer stiffness 4 -

The stiffness of the gong against deflections in the negative direction.

Input Output
ladspa-0.4.17/gong_beater_1439.xml000066400000000000000000000072641300111216200165210ustar00rootroot00000000000000 #include "ladspa-util.h" Gong beater

A plugin to simulator the action of a beater on a gong surface, used to trigger the gong physical model.

It is triggered by an impulse on the input, eg. from a mic or piezo placed near a solid surface, for an event sequencer.

0.05f) { running = strike_duration * fs; imp_level = fabs(input[pos]); } buffer_write(output[pos], input[pos] * imp_amp); } for (; running && pos < sample_count; pos++, running--) { if (fabs(input[pos]) > imp_level) { imp_level = fabs(input[pos]); } x -= omega * y; y += omega * x; xm -= omega * 0.5f * ym; ym += omega * 0.5f * xm; buffer_write(output[pos], input[pos] * imp_amp + y * strike_amp * imp_level * 4.0f * ym); } } plugin_data->x = x; plugin_data->y = y; plugin_data->xm = xm; plugin_data->ym = ym; plugin_data->running = running; plugin_data->imp_level = imp_level; ]]> Impulse gain (dB)

The gain of the input impulse mixed into the output, bringing this up allows you to make the outputted strike more impulsive, but may reduce the gongyness of the resulting output sound.

Strike gain (dB)

The gain of the simulated pressure wave mixed into the output, bringing this up allows you to make the outputted strike more pure. The final output level is also proportional to the amplitude of the trigger.

Strike duration (s)

The duration of the pressure wave used to simulate the action of the beater on the gong surface. The longer the duration the more sonorous the resulting gong sound.

Input Output
ladspa-0.4.17/gsm/000077500000000000000000000000001300111216200136205ustar00rootroot00000000000000ladspa-0.4.17/gsm/COPYRIGHT000066400000000000000000000012621300111216200151140ustar00rootroot00000000000000Copyright 1992, 1993, 1994 by Jutta Degener and Carsten Bormann, Technische Universitaet Berlin Any use of this software is permitted provided that this notice is not removed and that neither the authors nor the Technische Universitaet Berlin are deemed to have made any representations as to the suitability of this software for any purpose nor are held responsible for any defects of this software. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. As a matter of courtesy, the authors request to be informed about uses this software has found, about bugs in this software, and about any improvements that may be of general interest. Berlin, 28.11.1994 Jutta Degener Carsten Bormann ladspa-0.4.17/gsm/Makefile.am000066400000000000000000000005571300111216200156630ustar00rootroot00000000000000LIBTOOL=libtool RANLIB=ranlib noinst_HEADERS = gsm.h config.h private.h proto.h unproto.h noinst_LIBRARIES = libgsm.a CFILES = add.c decode.c gsm_decode.c gsm_encode.c long_term.c preprocess.c \ short_term.c code.c gsm_create.c gsm_destroy.c gsm_option.c lpc.c rpe.c table.c libgsm_a_SOURCES = $(CFILES) $(noinst_HEADERS) # Disable autoheader. AUTOHEADER=echo ladspa-0.4.17/gsm/README000066400000000000000000000026201300111216200145000ustar00rootroot00000000000000GSM 06.10 13 kbit/s RPE/LTP speech codec ---------------------------------------- All the file in this directory were written by Jutta Degener and Carsten Borman for The Communications and Operating Systems Research Group (KBS) at the Technische Universitaet Berlin. Their work was released under the following license which is assumed to be compatible with The GNU Lesser General Public License. ---------------------------------------------------------------------------- Copyright 1992, 1993, 1994 by Jutta Degener and Carsten Bormann, Technische Universitaet Berlin Any use of this software is permitted provided that this notice is not removed and that neither the authors nor the Technische Universitaet Berlin are deemed to have made any representations as to the suitability of this software for any purpose nor are held responsible for any defects of this software. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. As a matter of courtesy, the authors request to be informed about uses this software has found, about bugs in this software, and about any improvements that may be of general interest. Berlin, 28.11.1994 Jutta Degener (jutta@cs.tu-berlin.de) Carsten Bormann (cabo@cs.tu-berlin.de) ---------------------------------------------------------------------------- Jutta Degener and Carsten Bormann's work can be found on their homepage at: http://kbs.cs.tu-berlin.de/~jutta/toast.html ladspa-0.4.17/gsm/add.c000066400000000000000000000132351300111216200145200ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/add.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ /* * See private.h for the more commonly used macro versions. */ #include #include #include "private.h" #include "gsm.h" #include "proto.h" #define saturate(x) \ ((x) < MIN_WORD ? MIN_WORD : (x) > MAX_WORD ? MAX_WORD: (x)) word gsm_add P2((a,b), word a, word b) { longword sum = (longword)a + (longword)b; return saturate(sum); } word gsm_sub P2((a,b), word a, word b) { longword diff = (longword)a - (longword)b; return saturate(diff); } word gsm_mult P2((a,b), word a, word b) { if (a == MIN_WORD && b == MIN_WORD) return MAX_WORD; else return SASR( (longword)a * (longword)b, 15 ); } word gsm_mult_r P2((a,b), word a, word b) { if (b == MIN_WORD && a == MIN_WORD) return MAX_WORD; else { longword prod = (longword)a * (longword)b + 16384; prod >>= 15; return prod & 0xFFFF; } } word gsm_abs P1((a), word a) { return a < 0 ? (a == MIN_WORD ? MAX_WORD : -a) : a; } longword gsm_L_mult P2((a,b),word a, word b) { assert( a != MIN_WORD || b != MIN_WORD ); return ((longword)a * (longword)b) << 1; } longword gsm_L_add P2((a,b), longword a, longword b) { if (a < 0) { if (b >= 0) return a + b; else { ulongword A = (ulongword)-(a + 1) + (ulongword)-(b + 1); return A >= MAX_LONGWORD ? MIN_LONGWORD :-(longword)A-2; } } else if (b <= 0) return a + b; else { ulongword A = (ulongword)a + (ulongword)b; return A > MAX_LONGWORD ? MAX_LONGWORD : A; } } longword gsm_L_sub P2((a,b), longword a, longword b) { if (a >= 0) { if (b >= 0) return a - b; else { /* a>=0, b<0 */ ulongword A = (ulongword)a + -(b + 1); return A >= MAX_LONGWORD ? MAX_LONGWORD : (A + 1); } } else if (b <= 0) return a - b; else { /* a<0, b>0 */ ulongword A = (ulongword)-(a + 1) + b; return A >= MAX_LONGWORD ? MIN_LONGWORD : -(longword)A - 1; } } static unsigned char const bitoff[ 256 ] = { 8, 7, 6, 6, 5, 5, 5, 5, 4, 4, 4, 4, 4, 4, 4, 4, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 }; word gsm_norm P1((a), longword a ) /* * the number of left shifts needed to normalize the 32 bit * variable L_var1 for positive values on the interval * * with minimum of * minimum of 1073741824 (01000000000000000000000000000000) and * maximum of 2147483647 (01111111111111111111111111111111) * * * and for negative values on the interval with * minimum of -2147483648 (-10000000000000000000000000000000) and * maximum of -1073741824 ( -1000000000000000000000000000000). * * in order to normalize the result, the following * operation must be done: L_norm_var1 = L_var1 << norm( L_var1 ); * * (That's 'ffs', only from the left, not the right..) */ { assert(a != 0); if (a < 0) { if (a <= -1073741824) return 0; a = ~a; } return a & 0xffff0000 ? ( a & 0xff000000 ? -1 + bitoff[ 0xFF & (a >> 24) ] : 7 + bitoff[ 0xFF & (a >> 16) ] ) : ( a & 0xff00 ? 15 + bitoff[ 0xFF & (a >> 8) ] : 23 + bitoff[ 0xFF & a ] ); } longword gsm_L_asl (longword a, int n) { if (n >= 32) return 0; if (n <= -32) return -(a < 0); if (n < 0) return gsm_L_asr(a, -n); return a << n; } word gsm_asr (word a, int n) { if (n >= 16) return -(a < 0); if (n <= -16) return 0; if (n < 0) return a << -n; # ifdef SASR return a >> n; # else if (a >= 0) return a >> n; else return -(word)( -(uword)a >> n ); # endif } word gsm_asl (word a, int n) { if (n >= 16) return 0; if (n <= -16) return -(a < 0); if (n < 0) return gsm_asr(a, -n); return a << n; } longword gsm_L_asr (longword a, int n) { if (n >= 32) return -(a < 0); if (n <= -32) return 0; if (n < 0) return a << -n; # ifdef SASR return a >> n; # else if (a >= 0) return a >> n; else return -(longword)( -(ulongword)a >> n ); # endif } /* ** word gsm_asr (word a, int n) ** { ** if (n >= 16) return -(a < 0); ** if (n <= -16) return 0; ** if (n < 0) return a << -n; ** ** # ifdef SASR ** return a >> n; ** # else ** if (a >= 0) return a >> n; ** else return -(word)( -(uword)a >> n ); ** # endif ** } ** */ /* * (From p. 46, end of section 4.2.5) * * NOTE: The following lines gives [sic] one correct implementation * of the div(num, denum) arithmetic operation. Compute div * which is the integer division of num by denum: with denum * >= num > 0 */ word gsm_div P2((num,denum), word num, word denum) { longword L_num = num; longword L_denum = denum; word div = 0; int k = 15; /* The parameter num sometimes becomes zero. * Although this is explicitly guarded against in 4.2.5, * we assume that the result should then be zero as well. */ /* assert(num != 0); */ assert(num >= 0 && denum >= num); if (num == 0) return 0; while (k--) { div <<= 1; L_num <<= 1; if (L_num >= L_denum) { L_num -= L_denum; div++; } } return div; } ladspa-0.4.17/gsm/code.c000066400000000000000000000047731300111216200147110ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/code.c,v 1.2 2003/03/07 23:26:13 swh Exp $ */ #include "config.h" #include #ifdef HAS_STDLIB_H #include #else # include "proto.h" extern char * memcpy P((char *, char *, int)); #endif #include "private.h" #include "gsm.h" #include "proto.h" /* * 4.2 FIXED POINT IMPLEMENTATION OF THE RPE-LTP CODER */ void Gsm_Coder P8((S,s,LARc,Nc,bc,Mc,xmaxc,xMc), struct gsm_state * S, word * s, /* [0..159] samples IN */ /* * The RPE-LTD coder works on a frame by frame basis. The length of * the frame is equal to 160 samples. Some computations are done * once per frame to produce at the output of the coder the * LARc[1..8] parameters which are the coded LAR coefficients and * also to realize the inverse filtering operation for the entire * frame (160 samples of signal d[0..159]). These parts produce at * the output of the coder: */ word * LARc, /* [0..7] LAR coefficients OUT */ /* * Procedure 4.2.11 to 4.2.18 are to be executed four times per * frame. That means once for each sub-segment RPE-LTP analysis of * 40 samples. These parts produce at the output of the coder: */ word * Nc, /* [0..3] LTP lag OUT */ word * bc, /* [0..3] coded LTP gain OUT */ word * Mc, /* [0..3] RPE grid selection OUT */ word * xmaxc,/* [0..3] Coded maximum amplitude OUT */ word * xMc /* [13*4] normalized RPE samples OUT */ ) { int k; word * dp = S->dp0 + 120; /* [ -120...-1 ] */ word * dpp = dp; /* [ 0...39 ] */ static word e[50]; word so[160]; Gsm_Preprocess (S, s, so); Gsm_LPC_Analysis (S, so, LARc); Gsm_Short_Term_Analysis_Filter (S, LARc, so); for (k = 0; k <= 3; k++, xMc += 13) { Gsm_Long_Term_Predictor ( S, so+k*40, /* d [0..39] IN */ dp, /* dp [-120..-1] IN */ e + 5, /* e [0..39] OUT */ dpp, /* dpp [0..39] OUT */ Nc++, bc++); Gsm_RPE_Encoding ( S, e + 5, /* e ][0..39][ IN/OUT */ xmaxc++, Mc++, xMc ); /* * Gsm_Update_of_reconstructed_short_time_residual_signal * ( dpp, e + 5, dp ); */ { register int i; register longword ltmp; for (i = 0; i <= 39; i++) dp[ i ] = GSM_ADD( e[5 + i], dpp[i] ); } dp += 40; dpp += 40; } (void)memcpy( (char *)S->dp0, (char *)(S->dp0 + 160), 120 * sizeof(*S->dp0) ); } ladspa-0.4.17/gsm/config.h000066400000000000000000000025561300111216200152460ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /*$Header: /home/cvs/giga/ladspa-swh/gsm/config.h,v 1.1 2001/06/10 21:36:51 swh Exp $*/ #ifndef CONFIG_H #define CONFIG_H //*efine SIGHANDLER_T int /* signal handlers are void */ //*efine HAS_SYSV_SIGNAL 1 /* sigs not blocked/reset? */ #define HAS_STDLIB_H 1 /* /usr/include/stdlib.h */ //*efine HAS_LIMITS_H 1 /* /usr/include/limits.h */ #define HAS_FCNTL_H 1 /* /usr/include/fcntl.h */ //*efine HAS_ERRNO_DECL 1 /* errno.h declares errno */ #define HAS_FSTAT 1 /* fstat syscall */ #define HAS_FCHMOD 1 /* fchmod syscall */ #define HAS_CHMOD 1 /* chmod syscall */ #define HAS_FCHOWN 1 /* fchown syscall */ #define HAS_CHOWN 1 /* chown syscall */ //*efine HAS__FSETMODE 1 /* _fsetmode -- set file mode */ #define HAS_STRING_H 1 /* /usr/include/string.h */ //*efine HAS_STRINGS_H 1 /* /usr/include/strings.h */ #define HAS_UNISTD_H 1 /* /usr/include/unistd.h */ #define HAS_UTIME 1 /* POSIX utime(path, times) */ //*efine HAS_UTIMES 1 /* use utimes() syscall instead */ #define HAS_UTIME_H 1 /* UTIME header file */ //*efine HAS_UTIMBUF 1 /* struct utimbuf */ //*efine HAS_UTIMEUSEC 1 /* microseconds in utimbuf? */ #endif /* CONFIG_H */ ladspa-0.4.17/gsm/decode.c000066400000000000000000000030251300111216200152070ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/decode.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include #include "private.h" #include "gsm.h" #include "proto.h" /* * 4.3 FIXED POINT IMPLEMENTATION OF THE RPE-LTP DECODER */ static void Postprocessing P2((S,s), struct gsm_state * S, register word * s) { register int k; register word msr = S->msr; register longword ltmp; /* for GSM_ADD */ register word tmp; for (k = 160; k--; s++) { tmp = GSM_MULT_R( msr, 28180 ); msr = GSM_ADD(*s, tmp); /* Deemphasis */ *s = GSM_ADD(msr, msr) & 0xFFF8; /* Truncation & Upscaling */ } S->msr = msr; } void Gsm_Decoder P8((S,LARcr, Ncr,bcr,Mcr,xmaxcr,xMcr,s), struct gsm_state * S, word * LARcr, /* [0..7] IN */ word * Ncr, /* [0..3] IN */ word * bcr, /* [0..3] IN */ word * Mcr, /* [0..3] IN */ word * xmaxcr, /* [0..3] IN */ word * xMcr, /* [0..13*4] IN */ word * s) /* [0..159] OUT */ { int j, k; word erp[40], wt[160]; word * drp = S->dp0 + 120; for (j=0; j <= 3; j++, xmaxcr++, bcr++, Ncr++, Mcr++, xMcr += 13) { Gsm_RPE_Decoding( S, *xmaxcr, *Mcr, xMcr, erp ); Gsm_Long_Term_Synthesis_Filtering( S, *Ncr, *bcr, erp, drp ); for (k = 0; k <= 39; k++) wt[ j * 40 + k ] = drp[ k ]; } Gsm_Short_Term_Synthesis_Filter( S, LARcr, wt, s ); Postprocessing(S, s); } ladspa-0.4.17/gsm/gsm.h000066400000000000000000000032041300111216200145560ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /*$Header: /home/cvs/giga/ladspa-swh/gsm/gsm.h,v 1.1 2001/06/10 21:36:51 swh Exp $*/ #ifndef GSM_H #define GSM_H #ifdef __cplusplus # define NeedFunctionPrototypes 1 #endif #if __STDC__ # define NeedFunctionPrototypes 1 #endif #ifdef _NO_PROTO # undef NeedFunctionPrototypes #endif #ifdef NeedFunctionPrototypes # include /* for FILE * */ #endif #undef GSM_P #if NeedFunctionPrototypes # define GSM_P( protos ) protos #else # define GSM_P( protos ) ( /* protos */ ) #endif /* * Interface */ typedef struct gsm_state * gsm; typedef short gsm_signal; /* signed 16 bit */ typedef unsigned char gsm_byte; typedef gsm_byte gsm_frame[33]; /* 33 * 8 bits */ #define GSM_MAGIC 0xD /* 13 kbit/s RPE-LTP */ #define GSM_PATCHLEVEL 10 #define GSM_MINOR 0 #define GSM_MAJOR 1 #define GSM_OPT_VERBOSE 1 #define GSM_OPT_FAST 2 #define GSM_OPT_LTP_CUT 3 #define GSM_OPT_WAV49 4 #define GSM_OPT_FRAME_INDEX 5 #define GSM_OPT_FRAME_CHAIN 6 extern gsm gsm_create GSM_P((void)); extern void gsm_destroy GSM_P((gsm)); extern int gsm_print GSM_P((FILE *, gsm, gsm_byte *)); extern int gsm_option GSM_P((gsm, int, int *)); extern void gsm_encode GSM_P((gsm, gsm_signal *, gsm_byte *)); extern int gsm_decode GSM_P((gsm, gsm_byte *, gsm_signal *)); extern int gsm_explode GSM_P((gsm, gsm_byte *, gsm_signal *)); extern void gsm_implode GSM_P((gsm, gsm_signal *, gsm_byte *)); #undef GSM_P #endif /* GSM_H */ ladspa-0.4.17/gsm/gsm_create.c000066400000000000000000000015131300111216200160750ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ static char const ident[] = "$Header: /home/cvs/giga/ladspa-swh/gsm/gsm_create.c,v 1.1 2001/06/10 21:36:51 swh Exp $"; #include "config.h" #ifdef HAS_STRING_H #include #else # include "proto.h" extern char * memset P((char *, int, int)); #endif #ifdef HAS_STDLIB_H # include #else # ifdef HAS_MALLOC_H # include # else extern char * malloc(); # endif #endif #include #include "gsm.h" #include "private.h" #include "proto.h" gsm gsm_create P0() { gsm r; r = (gsm)malloc(sizeof(struct gsm_state)); if (!r) return r; memset((char *)r, 0, sizeof(*r)); r->nrp = 40; return r; } ladspa-0.4.17/gsm/gsm_decode.c000066400000000000000000000246351300111216200160670ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/gsm_decode.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include "private.h" #include "gsm.h" #include "proto.h" int gsm_decode P3((s, c, target), gsm s, gsm_byte * c, gsm_signal * target) { word LARc[8], Nc[4], Mc[4], bc[4], xmaxc[4], xmc[13*4]; #ifdef WAV49 if (s->wav_fmt) { uword sr = 0; s->frame_index = !s->frame_index; if (s->frame_index) { sr = *c++; LARc[0] = sr & 0x3f; sr >>= 6; sr |= (uword)*c++ << 2; LARc[1] = sr & 0x3f; sr >>= 6; sr |= (uword)*c++ << 4; LARc[2] = sr & 0x1f; sr >>= 5; LARc[3] = sr & 0x1f; sr >>= 5; sr |= (uword)*c++ << 2; LARc[4] = sr & 0xf; sr >>= 4; LARc[5] = sr & 0xf; sr >>= 4; sr |= (uword)*c++ << 2; /* 5 */ LARc[6] = sr & 0x7; sr >>= 3; LARc[7] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 4; Nc[0] = sr & 0x7f; sr >>= 7; bc[0] = sr & 0x3; sr >>= 2; Mc[0] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 1; xmaxc[0] = sr & 0x3f; sr >>= 6; xmc[0] = sr & 0x7; sr >>= 3; sr = *c++; xmc[1] = sr & 0x7; sr >>= 3; xmc[2] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[3] = sr & 0x7; sr >>= 3; xmc[4] = sr & 0x7; sr >>= 3; xmc[5] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; /* 10 */ xmc[6] = sr & 0x7; sr >>= 3; xmc[7] = sr & 0x7; sr >>= 3; xmc[8] = sr & 0x7; sr >>= 3; sr = *c++; xmc[9] = sr & 0x7; sr >>= 3; xmc[10] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[11] = sr & 0x7; sr >>= 3; xmc[12] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 4; Nc[1] = sr & 0x7f; sr >>= 7; bc[1] = sr & 0x3; sr >>= 2; Mc[1] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 1; xmaxc[1] = sr & 0x3f; sr >>= 6; xmc[13] = sr & 0x7; sr >>= 3; sr = *c++; /* 15 */ xmc[14] = sr & 0x7; sr >>= 3; xmc[15] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[16] = sr & 0x7; sr >>= 3; xmc[17] = sr & 0x7; sr >>= 3; xmc[18] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[19] = sr & 0x7; sr >>= 3; xmc[20] = sr & 0x7; sr >>= 3; xmc[21] = sr & 0x7; sr >>= 3; sr = *c++; xmc[22] = sr & 0x7; sr >>= 3; xmc[23] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[24] = sr & 0x7; sr >>= 3; xmc[25] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 4; /* 20 */ Nc[2] = sr & 0x7f; sr >>= 7; bc[2] = sr & 0x3; sr >>= 2; Mc[2] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 1; xmaxc[2] = sr & 0x3f; sr >>= 6; xmc[26] = sr & 0x7; sr >>= 3; sr = *c++; xmc[27] = sr & 0x7; sr >>= 3; xmc[28] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[29] = sr & 0x7; sr >>= 3; xmc[30] = sr & 0x7; sr >>= 3; xmc[31] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[32] = sr & 0x7; sr >>= 3; xmc[33] = sr & 0x7; sr >>= 3; xmc[34] = sr & 0x7; sr >>= 3; sr = *c++; /* 25 */ xmc[35] = sr & 0x7; sr >>= 3; xmc[36] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[37] = sr & 0x7; sr >>= 3; xmc[38] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 4; Nc[3] = sr & 0x7f; sr >>= 7; bc[3] = sr & 0x3; sr >>= 2; Mc[3] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 1; xmaxc[3] = sr & 0x3f; sr >>= 6; xmc[39] = sr & 0x7; sr >>= 3; sr = *c++; xmc[40] = sr & 0x7; sr >>= 3; xmc[41] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; /* 30 */ xmc[42] = sr & 0x7; sr >>= 3; xmc[43] = sr & 0x7; sr >>= 3; xmc[44] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[45] = sr & 0x7; sr >>= 3; xmc[46] = sr & 0x7; sr >>= 3; xmc[47] = sr & 0x7; sr >>= 3; sr = *c++; xmc[48] = sr & 0x7; sr >>= 3; xmc[49] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[50] = sr & 0x7; sr >>= 3; xmc[51] = sr & 0x7; sr >>= 3; s->frame_chain = sr & 0xf; } else { sr = s->frame_chain; sr |= (uword)*c++ << 4; /* 1 */ LARc[0] = sr & 0x3f; sr >>= 6; LARc[1] = sr & 0x3f; sr >>= 6; sr = *c++; LARc[2] = sr & 0x1f; sr >>= 5; sr |= (uword)*c++ << 3; LARc[3] = sr & 0x1f; sr >>= 5; LARc[4] = sr & 0xf; sr >>= 4; sr |= (uword)*c++ << 2; LARc[5] = sr & 0xf; sr >>= 4; LARc[6] = sr & 0x7; sr >>= 3; LARc[7] = sr & 0x7; sr >>= 3; sr = *c++; /* 5 */ Nc[0] = sr & 0x7f; sr >>= 7; sr |= (uword)*c++ << 1; bc[0] = sr & 0x3; sr >>= 2; Mc[0] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 5; xmaxc[0] = sr & 0x3f; sr >>= 6; xmc[0] = sr & 0x7; sr >>= 3; xmc[1] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[2] = sr & 0x7; sr >>= 3; xmc[3] = sr & 0x7; sr >>= 3; xmc[4] = sr & 0x7; sr >>= 3; sr = *c++; xmc[5] = sr & 0x7; sr >>= 3; xmc[6] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; /* 10 */ xmc[7] = sr & 0x7; sr >>= 3; xmc[8] = sr & 0x7; sr >>= 3; xmc[9] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[10] = sr & 0x7; sr >>= 3; xmc[11] = sr & 0x7; sr >>= 3; xmc[12] = sr & 0x7; sr >>= 3; sr = *c++; Nc[1] = sr & 0x7f; sr >>= 7; sr |= (uword)*c++ << 1; bc[1] = sr & 0x3; sr >>= 2; Mc[1] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 5; xmaxc[1] = sr & 0x3f; sr >>= 6; xmc[13] = sr & 0x7; sr >>= 3; xmc[14] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; /* 15 */ xmc[15] = sr & 0x7; sr >>= 3; xmc[16] = sr & 0x7; sr >>= 3; xmc[17] = sr & 0x7; sr >>= 3; sr = *c++; xmc[18] = sr & 0x7; sr >>= 3; xmc[19] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[20] = sr & 0x7; sr >>= 3; xmc[21] = sr & 0x7; sr >>= 3; xmc[22] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[23] = sr & 0x7; sr >>= 3; xmc[24] = sr & 0x7; sr >>= 3; xmc[25] = sr & 0x7; sr >>= 3; sr = *c++; Nc[2] = sr & 0x7f; sr >>= 7; sr |= (uword)*c++ << 1; /* 20 */ bc[2] = sr & 0x3; sr >>= 2; Mc[2] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 5; xmaxc[2] = sr & 0x3f; sr >>= 6; xmc[26] = sr & 0x7; sr >>= 3; xmc[27] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[28] = sr & 0x7; sr >>= 3; xmc[29] = sr & 0x7; sr >>= 3; xmc[30] = sr & 0x7; sr >>= 3; sr = *c++; xmc[31] = sr & 0x7; sr >>= 3; xmc[32] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[33] = sr & 0x7; sr >>= 3; xmc[34] = sr & 0x7; sr >>= 3; xmc[35] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; /* 25 */ xmc[36] = sr & 0x7; sr >>= 3; xmc[37] = sr & 0x7; sr >>= 3; xmc[38] = sr & 0x7; sr >>= 3; sr = *c++; Nc[3] = sr & 0x7f; sr >>= 7; sr |= (uword)*c++ << 1; bc[3] = sr & 0x3; sr >>= 2; Mc[3] = sr & 0x3; sr >>= 2; sr |= (uword)*c++ << 5; xmaxc[3] = sr & 0x3f; sr >>= 6; xmc[39] = sr & 0x7; sr >>= 3; xmc[40] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[41] = sr & 0x7; sr >>= 3; xmc[42] = sr & 0x7; sr >>= 3; xmc[43] = sr & 0x7; sr >>= 3; sr = *c++; /* 30 */ xmc[44] = sr & 0x7; sr >>= 3; xmc[45] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 2; xmc[46] = sr & 0x7; sr >>= 3; xmc[47] = sr & 0x7; sr >>= 3; xmc[48] = sr & 0x7; sr >>= 3; sr |= (uword)*c++ << 1; xmc[49] = sr & 0x7; sr >>= 3; xmc[50] = sr & 0x7; sr >>= 3; xmc[51] = sr & 0x7; sr >>= 3; } } else #endif { /* GSM_MAGIC = (*c >> 4) & 0xF; */ if (((*c >> 4) & 0x0F) != GSM_MAGIC) return -1; LARc[0] = (*c++ & 0xF) << 2; /* 1 */ LARc[0] |= (*c >> 6) & 0x3; LARc[1] = *c++ & 0x3F; LARc[2] = (*c >> 3) & 0x1F; LARc[3] = (*c++ & 0x7) << 2; LARc[3] |= (*c >> 6) & 0x3; LARc[4] = (*c >> 2) & 0xF; LARc[5] = (*c++ & 0x3) << 2; LARc[5] |= (*c >> 6) & 0x3; LARc[6] = (*c >> 3) & 0x7; LARc[7] = *c++ & 0x7; Nc[0] = (*c >> 1) & 0x7F; bc[0] = (*c++ & 0x1) << 1; bc[0] |= (*c >> 7) & 0x1; Mc[0] = (*c >> 5) & 0x3; xmaxc[0] = (*c++ & 0x1F) << 1; xmaxc[0] |= (*c >> 7) & 0x1; xmc[0] = (*c >> 4) & 0x7; xmc[1] = (*c >> 1) & 0x7; xmc[2] = (*c++ & 0x1) << 2; xmc[2] |= (*c >> 6) & 0x3; xmc[3] = (*c >> 3) & 0x7; xmc[4] = *c++ & 0x7; xmc[5] = (*c >> 5) & 0x7; xmc[6] = (*c >> 2) & 0x7; xmc[7] = (*c++ & 0x3) << 1; /* 10 */ xmc[7] |= (*c >> 7) & 0x1; xmc[8] = (*c >> 4) & 0x7; xmc[9] = (*c >> 1) & 0x7; xmc[10] = (*c++ & 0x1) << 2; xmc[10] |= (*c >> 6) & 0x3; xmc[11] = (*c >> 3) & 0x7; xmc[12] = *c++ & 0x7; Nc[1] = (*c >> 1) & 0x7F; bc[1] = (*c++ & 0x1) << 1; bc[1] |= (*c >> 7) & 0x1; Mc[1] = (*c >> 5) & 0x3; xmaxc[1] = (*c++ & 0x1F) << 1; xmaxc[1] |= (*c >> 7) & 0x1; xmc[13] = (*c >> 4) & 0x7; xmc[14] = (*c >> 1) & 0x7; xmc[15] = (*c++ & 0x1) << 2; xmc[15] |= (*c >> 6) & 0x3; xmc[16] = (*c >> 3) & 0x7; xmc[17] = *c++ & 0x7; xmc[18] = (*c >> 5) & 0x7; xmc[19] = (*c >> 2) & 0x7; xmc[20] = (*c++ & 0x3) << 1; xmc[20] |= (*c >> 7) & 0x1; xmc[21] = (*c >> 4) & 0x7; xmc[22] = (*c >> 1) & 0x7; xmc[23] = (*c++ & 0x1) << 2; xmc[23] |= (*c >> 6) & 0x3; xmc[24] = (*c >> 3) & 0x7; xmc[25] = *c++ & 0x7; Nc[2] = (*c >> 1) & 0x7F; bc[2] = (*c++ & 0x1) << 1; /* 20 */ bc[2] |= (*c >> 7) & 0x1; Mc[2] = (*c >> 5) & 0x3; xmaxc[2] = (*c++ & 0x1F) << 1; xmaxc[2] |= (*c >> 7) & 0x1; xmc[26] = (*c >> 4) & 0x7; xmc[27] = (*c >> 1) & 0x7; xmc[28] = (*c++ & 0x1) << 2; xmc[28] |= (*c >> 6) & 0x3; xmc[29] = (*c >> 3) & 0x7; xmc[30] = *c++ & 0x7; xmc[31] = (*c >> 5) & 0x7; xmc[32] = (*c >> 2) & 0x7; xmc[33] = (*c++ & 0x3) << 1; xmc[33] |= (*c >> 7) & 0x1; xmc[34] = (*c >> 4) & 0x7; xmc[35] = (*c >> 1) & 0x7; xmc[36] = (*c++ & 0x1) << 2; xmc[36] |= (*c >> 6) & 0x3; xmc[37] = (*c >> 3) & 0x7; xmc[38] = *c++ & 0x7; Nc[3] = (*c >> 1) & 0x7F; bc[3] = (*c++ & 0x1) << 1; bc[3] |= (*c >> 7) & 0x1; Mc[3] = (*c >> 5) & 0x3; xmaxc[3] = (*c++ & 0x1F) << 1; xmaxc[3] |= (*c >> 7) & 0x1; xmc[39] = (*c >> 4) & 0x7; xmc[40] = (*c >> 1) & 0x7; xmc[41] = (*c++ & 0x1) << 2; xmc[41] |= (*c >> 6) & 0x3; xmc[42] = (*c >> 3) & 0x7; xmc[43] = *c++ & 0x7; /* 30 */ xmc[44] = (*c >> 5) & 0x7; xmc[45] = (*c >> 2) & 0x7; xmc[46] = (*c++ & 0x3) << 1; xmc[46] |= (*c >> 7) & 0x1; xmc[47] = (*c >> 4) & 0x7; xmc[48] = (*c >> 1) & 0x7; xmc[49] = (*c++ & 0x1) << 2; xmc[49] |= (*c >> 6) & 0x3; xmc[50] = (*c >> 3) & 0x7; xmc[51] = *c & 0x7; /* 33 */ } Gsm_Decoder(s, LARc, Nc, bc, Mc, xmaxc, xmc, target); return 0; } ladspa-0.4.17/gsm/gsm_destroy.c000066400000000000000000000010541300111216200163230ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/gsm_destroy.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include "gsm.h" #include "config.h" #include "proto.h" #ifdef HAS_STDLIB_H # include #else # ifdef HAS_MALLOC_H # include # else extern void free(); # endif #endif void gsm_destroy P1((S), gsm S) { if (S) free((char *)S); } ladspa-0.4.17/gsm/gsm_encode.c000066400000000000000000000262251300111216200160760ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/gsm_encode.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include "private.h" #include "gsm.h" #include "proto.h" void gsm_encode P3((s, source, c), gsm s, gsm_signal * source, gsm_byte * c) { word LARc[8], Nc[4], Mc[4], bc[4], xmaxc[4], xmc[13*4]; Gsm_Coder(s, source, LARc, Nc, bc, Mc, xmaxc, xmc); /* variable size GSM_MAGIC 4 LARc[0] 6 LARc[1] 6 LARc[2] 5 LARc[3] 5 LARc[4] 4 LARc[5] 4 LARc[6] 3 LARc[7] 3 Nc[0] 7 bc[0] 2 Mc[0] 2 xmaxc[0] 6 xmc[0] 3 xmc[1] 3 xmc[2] 3 xmc[3] 3 xmc[4] 3 xmc[5] 3 xmc[6] 3 xmc[7] 3 xmc[8] 3 xmc[9] 3 xmc[10] 3 xmc[11] 3 xmc[12] 3 Nc[1] 7 bc[1] 2 Mc[1] 2 xmaxc[1] 6 xmc[13] 3 xmc[14] 3 xmc[15] 3 xmc[16] 3 xmc[17] 3 xmc[18] 3 xmc[19] 3 xmc[20] 3 xmc[21] 3 xmc[22] 3 xmc[23] 3 xmc[24] 3 xmc[25] 3 Nc[2] 7 bc[2] 2 Mc[2] 2 xmaxc[2] 6 xmc[26] 3 xmc[27] 3 xmc[28] 3 xmc[29] 3 xmc[30] 3 xmc[31] 3 xmc[32] 3 xmc[33] 3 xmc[34] 3 xmc[35] 3 xmc[36] 3 xmc[37] 3 xmc[38] 3 Nc[3] 7 bc[3] 2 Mc[3] 2 xmaxc[3] 6 xmc[39] 3 xmc[40] 3 xmc[41] 3 xmc[42] 3 xmc[43] 3 xmc[44] 3 xmc[45] 3 xmc[46] 3 xmc[47] 3 xmc[48] 3 xmc[49] 3 xmc[50] 3 xmc[51] 3 */ #ifdef WAV49 if (s->wav_fmt) { s->frame_index = !s->frame_index; if (s->frame_index) { uword sr; sr = 0; sr = sr >> 6 | LARc[0] << 10; sr = sr >> 6 | LARc[1] << 10; *c++ = sr >> 4; sr = sr >> 5 | LARc[2] << 11; *c++ = sr >> 7; sr = sr >> 5 | LARc[3] << 11; sr = sr >> 4 | LARc[4] << 12; *c++ = sr >> 6; sr = sr >> 4 | LARc[5] << 12; sr = sr >> 3 | LARc[6] << 13; *c++ = sr >> 7; sr = sr >> 3 | LARc[7] << 13; sr = sr >> 7 | Nc[0] << 9; *c++ = sr >> 5; sr = sr >> 2 | bc[0] << 14; sr = sr >> 2 | Mc[0] << 14; sr = sr >> 6 | xmaxc[0] << 10; *c++ = sr >> 3; sr = sr >> 3 | xmc[0] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[1] << 13; sr = sr >> 3 | xmc[2] << 13; sr = sr >> 3 | xmc[3] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[4] << 13; sr = sr >> 3 | xmc[5] << 13; sr = sr >> 3 | xmc[6] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[7] << 13; sr = sr >> 3 | xmc[8] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[9] << 13; sr = sr >> 3 | xmc[10] << 13; sr = sr >> 3 | xmc[11] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[12] << 13; sr = sr >> 7 | Nc[1] << 9; *c++ = sr >> 5; sr = sr >> 2 | bc[1] << 14; sr = sr >> 2 | Mc[1] << 14; sr = sr >> 6 | xmaxc[1] << 10; *c++ = sr >> 3; sr = sr >> 3 | xmc[13] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[14] << 13; sr = sr >> 3 | xmc[15] << 13; sr = sr >> 3 | xmc[16] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[17] << 13; sr = sr >> 3 | xmc[18] << 13; sr = sr >> 3 | xmc[19] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[20] << 13; sr = sr >> 3 | xmc[21] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[22] << 13; sr = sr >> 3 | xmc[23] << 13; sr = sr >> 3 | xmc[24] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[25] << 13; sr = sr >> 7 | Nc[2] << 9; *c++ = sr >> 5; sr = sr >> 2 | bc[2] << 14; sr = sr >> 2 | Mc[2] << 14; sr = sr >> 6 | xmaxc[2] << 10; *c++ = sr >> 3; sr = sr >> 3 | xmc[26] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[27] << 13; sr = sr >> 3 | xmc[28] << 13; sr = sr >> 3 | xmc[29] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[30] << 13; sr = sr >> 3 | xmc[31] << 13; sr = sr >> 3 | xmc[32] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[33] << 13; sr = sr >> 3 | xmc[34] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[35] << 13; sr = sr >> 3 | xmc[36] << 13; sr = sr >> 3 | xmc[37] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[38] << 13; sr = sr >> 7 | Nc[3] << 9; *c++ = sr >> 5; sr = sr >> 2 | bc[3] << 14; sr = sr >> 2 | Mc[3] << 14; sr = sr >> 6 | xmaxc[3] << 10; *c++ = sr >> 3; sr = sr >> 3 | xmc[39] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[40] << 13; sr = sr >> 3 | xmc[41] << 13; sr = sr >> 3 | xmc[42] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[43] << 13; sr = sr >> 3 | xmc[44] << 13; sr = sr >> 3 | xmc[45] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[46] << 13; sr = sr >> 3 | xmc[47] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[48] << 13; sr = sr >> 3 | xmc[49] << 13; sr = sr >> 3 | xmc[50] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[51] << 13; sr = sr >> 4; *c = sr >> 8; s->frame_chain = *c; } else { uword sr; sr = 0; sr = sr >> 4 | s->frame_chain << 12; sr = sr >> 6 | LARc[0] << 10; *c++ = sr >> 6; sr = sr >> 6 | LARc[1] << 10; *c++ = sr >> 8; sr = sr >> 5 | LARc[2] << 11; sr = sr >> 5 | LARc[3] << 11; *c++ = sr >> 6; sr = sr >> 4 | LARc[4] << 12; sr = sr >> 4 | LARc[5] << 12; *c++ = sr >> 6; sr = sr >> 3 | LARc[6] << 13; sr = sr >> 3 | LARc[7] << 13; *c++ = sr >> 8; sr = sr >> 7 | Nc[0] << 9; sr = sr >> 2 | bc[0] << 14; *c++ = sr >> 7; sr = sr >> 2 | Mc[0] << 14; sr = sr >> 6 | xmaxc[0] << 10; *c++ = sr >> 7; sr = sr >> 3 | xmc[0] << 13; sr = sr >> 3 | xmc[1] << 13; sr = sr >> 3 | xmc[2] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[3] << 13; sr = sr >> 3 | xmc[4] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[5] << 13; sr = sr >> 3 | xmc[6] << 13; sr = sr >> 3 | xmc[7] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[8] << 13; sr = sr >> 3 | xmc[9] << 13; sr = sr >> 3 | xmc[10] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[11] << 13; sr = sr >> 3 | xmc[12] << 13; *c++ = sr >> 8; sr = sr >> 7 | Nc[1] << 9; sr = sr >> 2 | bc[1] << 14; *c++ = sr >> 7; sr = sr >> 2 | Mc[1] << 14; sr = sr >> 6 | xmaxc[1] << 10; *c++ = sr >> 7; sr = sr >> 3 | xmc[13] << 13; sr = sr >> 3 | xmc[14] << 13; sr = sr >> 3 | xmc[15] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[16] << 13; sr = sr >> 3 | xmc[17] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[18] << 13; sr = sr >> 3 | xmc[19] << 13; sr = sr >> 3 | xmc[20] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[21] << 13; sr = sr >> 3 | xmc[22] << 13; sr = sr >> 3 | xmc[23] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[24] << 13; sr = sr >> 3 | xmc[25] << 13; *c++ = sr >> 8; sr = sr >> 7 | Nc[2] << 9; sr = sr >> 2 | bc[2] << 14; *c++ = sr >> 7; sr = sr >> 2 | Mc[2] << 14; sr = sr >> 6 | xmaxc[2] << 10; *c++ = sr >> 7; sr = sr >> 3 | xmc[26] << 13; sr = sr >> 3 | xmc[27] << 13; sr = sr >> 3 | xmc[28] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[29] << 13; sr = sr >> 3 | xmc[30] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[31] << 13; sr = sr >> 3 | xmc[32] << 13; sr = sr >> 3 | xmc[33] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[34] << 13; sr = sr >> 3 | xmc[35] << 13; sr = sr >> 3 | xmc[36] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[37] << 13; sr = sr >> 3 | xmc[38] << 13; *c++ = sr >> 8; sr = sr >> 7 | Nc[3] << 9; sr = sr >> 2 | bc[3] << 14; *c++ = sr >> 7; sr = sr >> 2 | Mc[3] << 14; sr = sr >> 6 | xmaxc[3] << 10; *c++ = sr >> 7; sr = sr >> 3 | xmc[39] << 13; sr = sr >> 3 | xmc[40] << 13; sr = sr >> 3 | xmc[41] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[42] << 13; sr = sr >> 3 | xmc[43] << 13; *c++ = sr >> 8; sr = sr >> 3 | xmc[44] << 13; sr = sr >> 3 | xmc[45] << 13; sr = sr >> 3 | xmc[46] << 13; *c++ = sr >> 7; sr = sr >> 3 | xmc[47] << 13; sr = sr >> 3 | xmc[48] << 13; sr = sr >> 3 | xmc[49] << 13; *c++ = sr >> 6; sr = sr >> 3 | xmc[50] << 13; sr = sr >> 3 | xmc[51] << 13; *c++ = sr >> 8; } } else #endif /* WAV49 */ { *c++ = ((GSM_MAGIC & 0xF) << 4) /* 1 */ | ((LARc[0] >> 2) & 0xF); *c++ = ((LARc[0] & 0x3) << 6) | (LARc[1] & 0x3F); *c++ = ((LARc[2] & 0x1F) << 3) | ((LARc[3] >> 2) & 0x7); *c++ = ((LARc[3] & 0x3) << 6) | ((LARc[4] & 0xF) << 2) | ((LARc[5] >> 2) & 0x3); *c++ = ((LARc[5] & 0x3) << 6) | ((LARc[6] & 0x7) << 3) | (LARc[7] & 0x7); *c++ = ((Nc[0] & 0x7F) << 1) | ((bc[0] >> 1) & 0x1); *c++ = ((bc[0] & 0x1) << 7) | ((Mc[0] & 0x3) << 5) | ((xmaxc[0] >> 1) & 0x1F); *c++ = ((xmaxc[0] & 0x1) << 7) | ((xmc[0] & 0x7) << 4) | ((xmc[1] & 0x7) << 1) | ((xmc[2] >> 2) & 0x1); *c++ = ((xmc[2] & 0x3) << 6) | ((xmc[3] & 0x7) << 3) | (xmc[4] & 0x7); *c++ = ((xmc[5] & 0x7) << 5) /* 10 */ | ((xmc[6] & 0x7) << 2) | ((xmc[7] >> 1) & 0x3); *c++ = ((xmc[7] & 0x1) << 7) | ((xmc[8] & 0x7) << 4) | ((xmc[9] & 0x7) << 1) | ((xmc[10] >> 2) & 0x1); *c++ = ((xmc[10] & 0x3) << 6) | ((xmc[11] & 0x7) << 3) | (xmc[12] & 0x7); *c++ = ((Nc[1] & 0x7F) << 1) | ((bc[1] >> 1) & 0x1); *c++ = ((bc[1] & 0x1) << 7) | ((Mc[1] & 0x3) << 5) | ((xmaxc[1] >> 1) & 0x1F); *c++ = ((xmaxc[1] & 0x1) << 7) | ((xmc[13] & 0x7) << 4) | ((xmc[14] & 0x7) << 1) | ((xmc[15] >> 2) & 0x1); *c++ = ((xmc[15] & 0x3) << 6) | ((xmc[16] & 0x7) << 3) | (xmc[17] & 0x7); *c++ = ((xmc[18] & 0x7) << 5) | ((xmc[19] & 0x7) << 2) | ((xmc[20] >> 1) & 0x3); *c++ = ((xmc[20] & 0x1) << 7) | ((xmc[21] & 0x7) << 4) | ((xmc[22] & 0x7) << 1) | ((xmc[23] >> 2) & 0x1); *c++ = ((xmc[23] & 0x3) << 6) | ((xmc[24] & 0x7) << 3) | (xmc[25] & 0x7); *c++ = ((Nc[2] & 0x7F) << 1) /* 20 */ | ((bc[2] >> 1) & 0x1); *c++ = ((bc[2] & 0x1) << 7) | ((Mc[2] & 0x3) << 5) | ((xmaxc[2] >> 1) & 0x1F); *c++ = ((xmaxc[2] & 0x1) << 7) | ((xmc[26] & 0x7) << 4) | ((xmc[27] & 0x7) << 1) | ((xmc[28] >> 2) & 0x1); *c++ = ((xmc[28] & 0x3) << 6) | ((xmc[29] & 0x7) << 3) | (xmc[30] & 0x7); *c++ = ((xmc[31] & 0x7) << 5) | ((xmc[32] & 0x7) << 2) | ((xmc[33] >> 1) & 0x3); *c++ = ((xmc[33] & 0x1) << 7) | ((xmc[34] & 0x7) << 4) | ((xmc[35] & 0x7) << 1) | ((xmc[36] >> 2) & 0x1); *c++ = ((xmc[36] & 0x3) << 6) | ((xmc[37] & 0x7) << 3) | (xmc[38] & 0x7); *c++ = ((Nc[3] & 0x7F) << 1) | ((bc[3] >> 1) & 0x1); *c++ = ((bc[3] & 0x1) << 7) | ((Mc[3] & 0x3) << 5) | ((xmaxc[3] >> 1) & 0x1F); *c++ = ((xmaxc[3] & 0x1) << 7) | ((xmc[39] & 0x7) << 4) | ((xmc[40] & 0x7) << 1) | ((xmc[41] >> 2) & 0x1); *c++ = ((xmc[41] & 0x3) << 6) /* 30 */ | ((xmc[42] & 0x7) << 3) | (xmc[43] & 0x7); *c++ = ((xmc[44] & 0x7) << 5) | ((xmc[45] & 0x7) << 2) | ((xmc[46] >> 1) & 0x3); *c++ = ((xmc[46] & 0x1) << 7) | ((xmc[47] & 0x7) << 4) | ((xmc[48] & 0x7) << 1) | ((xmc[49] >> 2) & 0x1); *c++ = ((xmc[49] & 0x3) << 6) | ((xmc[50] & 0x7) << 3) | (xmc[51] & 0x7); } } ladspa-0.4.17/gsm/gsm_option.c000066400000000000000000000022501300111216200161410ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/gsm_option.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include "private.h" #include "gsm.h" #include "proto.h" int gsm_option P3((r, opt, val), gsm r, int opt, int * val) { int result = -1; switch (opt) { case GSM_OPT_LTP_CUT: #ifdef LTP_CUT result = r->ltp_cut; if (val) r->ltp_cut = *val; #endif break; case GSM_OPT_VERBOSE: #ifndef NDEBUG result = r->verbose; if (val) r->verbose = *val; #endif break; case GSM_OPT_FAST: #if defined(FAST) && defined(USE_FLOAT_MUL) result = r->fast; if (val) r->fast = !!*val; #endif break; case GSM_OPT_FRAME_CHAIN: #ifdef WAV49 result = r->frame_chain; if (val) r->frame_chain = *val; #endif break; case GSM_OPT_FRAME_INDEX: #ifdef WAV49 result = r->frame_index; if (val) r->frame_index = *val; #endif break; case GSM_OPT_WAV49: #ifdef WAV49 result = r->wav_fmt; if (val) r->wav_fmt = !!*val; #endif break; default: break; } return result; } ladspa-0.4.17/gsm/long_term.c000066400000000000000000000560261300111216200157630ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/long_term.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include #include #include "private.h" #include "gsm.h" #include "proto.h" /* * 4.2.11 .. 4.2.12 LONG TERM PREDICTOR (LTP) SECTION */ /* * This module computes the LTP gain (bc) and the LTP lag (Nc) * for the long term analysis filter. This is done by calculating a * maximum of the cross-correlation function between the current * sub-segment short term residual signal d[0..39] (output of * the short term analysis filter; for simplification the index * of this array begins at 0 and ends at 39 for each sub-segment of the * RPE-LTP analysis) and the previous reconstructed short term * residual signal dp[ -120 .. -1 ]. A dynamic scaling must be * performed to avoid overflow. */ /* The next procedure exists in six versions. First two integer * version (if USE_FLOAT_MUL is not defined); then four floating * point versions, twice with proper scaling (USE_FLOAT_MUL defined), * once without (USE_FLOAT_MUL and FAST defined, and fast run-time * option used). Every pair has first a Cut version (see the -C * option to toast or the LTP_CUT option to gsm_option()), then the * uncut one. (For a detailed explanation of why this is altogether * a bad idea, see Henry Spencer and Geoff Collyer, ``#ifdef Considered * Harmful''.) */ #ifndef USE_FLOAT_MUL #ifdef LTP_CUT static void Cut_Calculation_of_the_LTP_parameters P5((st, d,dp,bc_out,Nc_out), struct gsm_state * st, register word * d, /* [0..39] IN */ register word * dp, /* [-120..-1] IN */ word * bc_out, /* OUT */ word * Nc_out /* OUT */ ) { register int k, lambda; word Nc, bc; word wt[40]; longword L_result; longword L_max, L_power; word R, S, dmax, scal, best_k; word ltp_cut; register word temp, wt_k; /* Search of the optimum scaling of d[0..39]. */ dmax = 0; for (k = 0; k <= 39; k++) { temp = d[k]; temp = GSM_ABS( temp ); if (temp > dmax) { dmax = temp; best_k = k; } } temp = 0; if (dmax == 0) scal = 0; else { assert(dmax > 0); temp = gsm_norm( (longword)dmax << 16 ); } if (temp > 6) scal = 0; else scal = 6 - temp; assert(scal >= 0); /* Search for the maximum cross-correlation and coding of the LTP lag */ L_max = 0; Nc = 40; /* index for the maximum cross-correlation */ wt_k = SASR(d[best_k], scal); for (lambda = 40; lambda <= 120; lambda++) { L_result = (longword)wt_k * dp[best_k - lambda]; if (L_result > L_max) { Nc = lambda; L_max = L_result; } } *Nc_out = Nc; L_max <<= 1; /* Rescaling of L_max */ assert(scal <= 100 && scal >= -100); L_max = L_max >> (6 - scal); /* sub(6, scal) */ assert( Nc <= 120 && Nc >= 40); /* Compute the power of the reconstructed short term residual * signal dp[..] */ L_power = 0; for (k = 0; k <= 39; k++) { register longword L_temp; L_temp = SASR( dp[k - Nc], 3 ); L_power += L_temp * L_temp; } L_power <<= 1; /* from L_MULT */ /* Normalization of L_max and L_power */ if (L_max <= 0) { *bc_out = 0; return; } if (L_max >= L_power) { *bc_out = 3; return; } temp = gsm_norm( L_power ); R = SASR( L_max << temp, 16 ); S = SASR( L_power << temp, 16 ); /* Coding of the LTP gain */ /* Table 4.3a must be used to obtain the level DLB[i] for the * quantization of the LTP gain b to get the coded version bc. */ for (bc = 0; bc <= 2; bc++) if (R <= gsm_mult(S, gsm_DLB[bc])) break; *bc_out = bc; } #endif /* LTP_CUT */ static void Calculation_of_the_LTP_parameters P4((d,dp,bc_out,Nc_out), register word * d, /* [0..39] IN */ register word * dp, /* [-120..-1] IN */ word * bc_out, /* OUT */ word * Nc_out /* OUT */ ) { register int k, lambda; word Nc, bc; word wt[40]; longword L_max, L_power; word R, S, dmax, scal; register word temp; /* Search of the optimum scaling of d[0..39]. */ dmax = 0; for (k = 0; k <= 39; k++) { temp = d[k]; temp = GSM_ABS( temp ); if (temp > dmax) dmax = temp; } temp = 0; if (dmax == 0) scal = 0; else { assert(dmax > 0); temp = gsm_norm( (longword)dmax << 16 ); } if (temp > 6) scal = 0; else scal = 6 - temp; assert(scal >= 0); /* Initialization of a working array wt */ for (k = 0; k <= 39; k++) wt[k] = SASR( d[k], scal ); /* Search for the maximum cross-correlation and coding of the LTP lag */ L_max = 0; Nc = 40; /* index for the maximum cross-correlation */ for (lambda = 40; lambda <= 120; lambda++) { # undef STEP # define STEP(k) (longword)wt[k] * dp[k - lambda] register longword L_result; L_result = STEP(0) ; L_result += STEP(1) ; L_result += STEP(2) ; L_result += STEP(3) ; L_result += STEP(4) ; L_result += STEP(5) ; L_result += STEP(6) ; L_result += STEP(7) ; L_result += STEP(8) ; L_result += STEP(9) ; L_result += STEP(10) ; L_result += STEP(11) ; L_result += STEP(12) ; L_result += STEP(13) ; L_result += STEP(14) ; L_result += STEP(15) ; L_result += STEP(16) ; L_result += STEP(17) ; L_result += STEP(18) ; L_result += STEP(19) ; L_result += STEP(20) ; L_result += STEP(21) ; L_result += STEP(22) ; L_result += STEP(23) ; L_result += STEP(24) ; L_result += STEP(25) ; L_result += STEP(26) ; L_result += STEP(27) ; L_result += STEP(28) ; L_result += STEP(29) ; L_result += STEP(30) ; L_result += STEP(31) ; L_result += STEP(32) ; L_result += STEP(33) ; L_result += STEP(34) ; L_result += STEP(35) ; L_result += STEP(36) ; L_result += STEP(37) ; L_result += STEP(38) ; L_result += STEP(39) ; if (L_result > L_max) { Nc = lambda; L_max = L_result; } } *Nc_out = Nc; L_max <<= 1; /* Rescaling of L_max */ assert(scal <= 100 && scal >= -100); L_max = L_max >> (6 - scal); /* sub(6, scal) */ assert( Nc <= 120 && Nc >= 40); /* Compute the power of the reconstructed short term residual * signal dp[..] */ L_power = 0; for (k = 0; k <= 39; k++) { register longword L_temp; L_temp = SASR( dp[k - Nc], 3 ); L_power += L_temp * L_temp; } L_power <<= 1; /* from L_MULT */ /* Normalization of L_max and L_power */ if (L_max <= 0) { *bc_out = 0; return; } if (L_max >= L_power) { *bc_out = 3; return; } temp = gsm_norm( L_power ); R = SASR( L_max << temp, 16 ); S = SASR( L_power << temp, 16 ); /* Coding of the LTP gain */ /* Table 4.3a must be used to obtain the level DLB[i] for the * quantization of the LTP gain b to get the coded version bc. */ for (bc = 0; bc <= 2; bc++) if (R <= gsm_mult(S, gsm_DLB[bc])) break; *bc_out = bc; } #else /* USE_FLOAT_MUL */ #ifdef LTP_CUT static void Cut_Calculation_of_the_LTP_parameters P5((st, d,dp,bc_out,Nc_out), struct gsm_state * st, /* IN */ register word * d, /* [0..39] IN */ register word * dp, /* [-120..-1] IN */ word * bc_out, /* OUT */ word * Nc_out /* OUT */ ) { register int k, lambda; word Nc, bc; word ltp_cut; float wt_float[40]; float dp_float_base[120], * dp_float = dp_float_base + 120; longword L_max, L_power; word R, S, dmax, scal; register word temp; /* Search of the optimum scaling of d[0..39]. */ dmax = 0; for (k = 0; k <= 39; k++) { temp = d[k]; temp = GSM_ABS( temp ); if (temp > dmax) dmax = temp; } temp = 0; if (dmax == 0) scal = 0; else { assert(dmax > 0); temp = gsm_norm( (longword)dmax << 16 ); } if (temp > 6) scal = 0; else scal = 6 - temp; assert(scal >= 0); ltp_cut = (longword)SASR(dmax, scal) * st->ltp_cut / 100; /* Initialization of a working array wt */ for (k = 0; k < 40; k++) { register word w = SASR( d[k], scal ); if (w < 0 ? w > -ltp_cut : w < ltp_cut) { wt_float[k] = 0.0; } else { wt_float[k] = w; } } for (k = -120; k < 0; k++) dp_float[k] = dp[k]; /* Search for the maximum cross-correlation and coding of the LTP lag */ L_max = 0; Nc = 40; /* index for the maximum cross-correlation */ for (lambda = 40; lambda <= 120; lambda += 9) { /* Calculate L_result for l = lambda .. lambda + 9. */ register float *lp = dp_float - lambda; register float W; register float a = lp[-8], b = lp[-7], c = lp[-6], d = lp[-5], e = lp[-4], f = lp[-3], g = lp[-2], h = lp[-1]; register float E; register float S0 = 0, S1 = 0, S2 = 0, S3 = 0, S4 = 0, S5 = 0, S6 = 0, S7 = 0, S8 = 0; # undef STEP # define STEP(K, a, b, c, d, e, f, g, h) \ if ((W = wt_float[K]) != 0.0) { \ E = W * a; S8 += E; \ E = W * b; S7 += E; \ E = W * c; S6 += E; \ E = W * d; S5 += E; \ E = W * e; S4 += E; \ E = W * f; S3 += E; \ E = W * g; S2 += E; \ E = W * h; S1 += E; \ a = lp[K]; \ E = W * a; S0 += E; } else (a = lp[K]) # define STEP_A(K) STEP(K, a, b, c, d, e, f, g, h) # define STEP_B(K) STEP(K, b, c, d, e, f, g, h, a) # define STEP_C(K) STEP(K, c, d, e, f, g, h, a, b) # define STEP_D(K) STEP(K, d, e, f, g, h, a, b, c) # define STEP_E(K) STEP(K, e, f, g, h, a, b, c, d) # define STEP_F(K) STEP(K, f, g, h, a, b, c, d, e) # define STEP_G(K) STEP(K, g, h, a, b, c, d, e, f) # define STEP_H(K) STEP(K, h, a, b, c, d, e, f, g) STEP_A( 0); STEP_B( 1); STEP_C( 2); STEP_D( 3); STEP_E( 4); STEP_F( 5); STEP_G( 6); STEP_H( 7); STEP_A( 8); STEP_B( 9); STEP_C(10); STEP_D(11); STEP_E(12); STEP_F(13); STEP_G(14); STEP_H(15); STEP_A(16); STEP_B(17); STEP_C(18); STEP_D(19); STEP_E(20); STEP_F(21); STEP_G(22); STEP_H(23); STEP_A(24); STEP_B(25); STEP_C(26); STEP_D(27); STEP_E(28); STEP_F(29); STEP_G(30); STEP_H(31); STEP_A(32); STEP_B(33); STEP_C(34); STEP_D(35); STEP_E(36); STEP_F(37); STEP_G(38); STEP_H(39); if (S0 > L_max) { L_max = S0; Nc = lambda; } if (S1 > L_max) { L_max = S1; Nc = lambda + 1; } if (S2 > L_max) { L_max = S2; Nc = lambda + 2; } if (S3 > L_max) { L_max = S3; Nc = lambda + 3; } if (S4 > L_max) { L_max = S4; Nc = lambda + 4; } if (S5 > L_max) { L_max = S5; Nc = lambda + 5; } if (S6 > L_max) { L_max = S6; Nc = lambda + 6; } if (S7 > L_max) { L_max = S7; Nc = lambda + 7; } if (S8 > L_max) { L_max = S8; Nc = lambda + 8; } } *Nc_out = Nc; L_max <<= 1; /* Rescaling of L_max */ assert(scal <= 100 && scal >= -100); L_max = L_max >> (6 - scal); /* sub(6, scal) */ assert( Nc <= 120 && Nc >= 40); /* Compute the power of the reconstructed short term residual * signal dp[..] */ L_power = 0; for (k = 0; k <= 39; k++) { register longword L_temp; L_temp = SASR( dp[k - Nc], 3 ); L_power += L_temp * L_temp; } L_power <<= 1; /* from L_MULT */ /* Normalization of L_max and L_power */ if (L_max <= 0) { *bc_out = 0; return; } if (L_max >= L_power) { *bc_out = 3; return; } temp = gsm_norm( L_power ); R = SASR( L_max << temp, 16 ); S = SASR( L_power << temp, 16 ); /* Coding of the LTP gain */ /* Table 4.3a must be used to obtain the level DLB[i] for the * quantization of the LTP gain b to get the coded version bc. */ for (bc = 0; bc <= 2; bc++) if (R <= gsm_mult(S, gsm_DLB[bc])) break; *bc_out = bc; } #endif /* LTP_CUT */ static void Calculation_of_the_LTP_parameters P4((d,dp,bc_out,Nc_out), register word * d, /* [0..39] IN */ register word * dp, /* [-120..-1] IN */ word * bc_out, /* OUT */ word * Nc_out /* OUT */ ) { register int k, lambda; word Nc, bc; float wt_float[40]; float dp_float_base[120], * dp_float = dp_float_base + 120; longword L_max, L_power; word R, S, dmax, scal; register word temp; /* Search of the optimum scaling of d[0..39]. */ dmax = 0; for (k = 0; k <= 39; k++) { temp = d[k]; temp = GSM_ABS( temp ); if (temp > dmax) dmax = temp; } temp = 0; if (dmax == 0) scal = 0; else { assert(dmax > 0); temp = gsm_norm( (longword)dmax << 16 ); } if (temp > 6) scal = 0; else scal = 6 - temp; assert(scal >= 0); /* Initialization of a working array wt */ for (k = 0; k < 40; k++) wt_float[k] = SASR( d[k], scal ); for (k = -120; k < 0; k++) dp_float[k] = dp[k]; /* Search for the maximum cross-correlation and coding of the LTP lag */ L_max = 0; Nc = 40; /* index for the maximum cross-correlation */ for (lambda = 40; lambda <= 120; lambda += 9) { /* Calculate L_result for l = lambda .. lambda + 9. */ register float *lp = dp_float - lambda; register float W; register float a = lp[-8], b = lp[-7], c = lp[-6], d = lp[-5], e = lp[-4], f = lp[-3], g = lp[-2], h = lp[-1]; register float E; register float S0 = 0, S1 = 0, S2 = 0, S3 = 0, S4 = 0, S5 = 0, S6 = 0, S7 = 0, S8 = 0; # undef STEP # define STEP(K, a, b, c, d, e, f, g, h) \ W = wt_float[K]; \ E = W * a; S8 += E; \ E = W * b; S7 += E; \ E = W * c; S6 += E; \ E = W * d; S5 += E; \ E = W * e; S4 += E; \ E = W * f; S3 += E; \ E = W * g; S2 += E; \ E = W * h; S1 += E; \ a = lp[K]; \ E = W * a; S0 += E # define STEP_A(K) STEP(K, a, b, c, d, e, f, g, h) # define STEP_B(K) STEP(K, b, c, d, e, f, g, h, a) # define STEP_C(K) STEP(K, c, d, e, f, g, h, a, b) # define STEP_D(K) STEP(K, d, e, f, g, h, a, b, c) # define STEP_E(K) STEP(K, e, f, g, h, a, b, c, d) # define STEP_F(K) STEP(K, f, g, h, a, b, c, d, e) # define STEP_G(K) STEP(K, g, h, a, b, c, d, e, f) # define STEP_H(K) STEP(K, h, a, b, c, d, e, f, g) STEP_A( 0); STEP_B( 1); STEP_C( 2); STEP_D( 3); STEP_E( 4); STEP_F( 5); STEP_G( 6); STEP_H( 7); STEP_A( 8); STEP_B( 9); STEP_C(10); STEP_D(11); STEP_E(12); STEP_F(13); STEP_G(14); STEP_H(15); STEP_A(16); STEP_B(17); STEP_C(18); STEP_D(19); STEP_E(20); STEP_F(21); STEP_G(22); STEP_H(23); STEP_A(24); STEP_B(25); STEP_C(26); STEP_D(27); STEP_E(28); STEP_F(29); STEP_G(30); STEP_H(31); STEP_A(32); STEP_B(33); STEP_C(34); STEP_D(35); STEP_E(36); STEP_F(37); STEP_G(38); STEP_H(39); if (S0 > L_max) { L_max = S0; Nc = lambda; } if (S1 > L_max) { L_max = S1; Nc = lambda + 1; } if (S2 > L_max) { L_max = S2; Nc = lambda + 2; } if (S3 > L_max) { L_max = S3; Nc = lambda + 3; } if (S4 > L_max) { L_max = S4; Nc = lambda + 4; } if (S5 > L_max) { L_max = S5; Nc = lambda + 5; } if (S6 > L_max) { L_max = S6; Nc = lambda + 6; } if (S7 > L_max) { L_max = S7; Nc = lambda + 7; } if (S8 > L_max) { L_max = S8; Nc = lambda + 8; } } *Nc_out = Nc; L_max <<= 1; /* Rescaling of L_max */ assert(scal <= 100 && scal >= -100); L_max = L_max >> (6 - scal); /* sub(6, scal) */ assert( Nc <= 120 && Nc >= 40); /* Compute the power of the reconstructed short term residual * signal dp[..] */ L_power = 0; for (k = 0; k <= 39; k++) { register longword L_temp; L_temp = SASR( dp[k - Nc], 3 ); L_power += L_temp * L_temp; } L_power <<= 1; /* from L_MULT */ /* Normalization of L_max and L_power */ if (L_max <= 0) { *bc_out = 0; return; } if (L_max >= L_power) { *bc_out = 3; return; } temp = gsm_norm( L_power ); R = SASR( L_max << temp, 16 ); S = SASR( L_power << temp, 16 ); /* Coding of the LTP gain */ /* Table 4.3a must be used to obtain the level DLB[i] for the * quantization of the LTP gain b to get the coded version bc. */ for (bc = 0; bc <= 2; bc++) if (R <= gsm_mult(S, gsm_DLB[bc])) break; *bc_out = bc; } #ifdef FAST #ifdef LTP_CUT static void Cut_Fast_Calculation_of_the_LTP_parameters P5((st, d,dp,bc_out,Nc_out), struct gsm_state * st, /* IN */ register word * d, /* [0..39] IN */ register word * dp, /* [-120..-1] IN */ word * bc_out, /* OUT */ word * Nc_out /* OUT */ ) { register int k, lambda; register float wt_float; word Nc, bc; word wt_max, best_k, ltp_cut; float dp_float_base[120], * dp_float = dp_float_base + 120; register float L_result, L_max, L_power; wt_max = 0; for (k = 0; k < 40; ++k) { if ( d[k] > wt_max) wt_max = d[best_k = k]; else if (-d[k] > wt_max) wt_max = -d[best_k = k]; } assert(wt_max >= 0); wt_float = (float)wt_max; for (k = -120; k < 0; ++k) dp_float[k] = (float)dp[k]; /* Search for the maximum cross-correlation and coding of the LTP lag */ L_max = 0; Nc = 40; /* index for the maximum cross-correlation */ for (lambda = 40; lambda <= 120; lambda++) { L_result = wt_float * dp_float[best_k - lambda]; if (L_result > L_max) { Nc = lambda; L_max = L_result; } } *Nc_out = Nc; if (L_max <= 0.) { *bc_out = 0; return; } /* Compute the power of the reconstructed short term residual * signal dp[..] */ dp_float -= Nc; L_power = 0; for (k = 0; k < 40; ++k) { register float f = dp_float[k]; L_power += f * f; } if (L_max >= L_power) { *bc_out = 3; return; } /* Coding of the LTP gain * Table 4.3a must be used to obtain the level DLB[i] for the * quantization of the LTP gain b to get the coded version bc. */ lambda = L_max / L_power * 32768.; for (bc = 0; bc <= 2; ++bc) if (lambda <= gsm_DLB[bc]) break; *bc_out = bc; } #endif /* LTP_CUT */ static void Fast_Calculation_of_the_LTP_parameters P4((d,dp,bc_out,Nc_out), register word * d, /* [0..39] IN */ register word * dp, /* [-120..-1] IN */ word * bc_out, /* OUT */ word * Nc_out /* OUT */ ) { register int k, lambda; word Nc, bc; float wt_float[40]; float dp_float_base[120], * dp_float = dp_float_base + 120; register float L_max, L_power; for (k = 0; k < 40; ++k) wt_float[k] = (float)d[k]; for (k = -120; k < 0; ++k) dp_float[k] = (float)dp[k]; /* Search for the maximum cross-correlation and coding of the LTP lag */ L_max = 0; Nc = 40; /* index for the maximum cross-correlation */ for (lambda = 40; lambda <= 120; lambda += 9) { /* Calculate L_result for l = lambda .. lambda + 9. */ register float *lp = dp_float - lambda; register float W; register float a = lp[-8], b = lp[-7], c = lp[-6], d = lp[-5], e = lp[-4], f = lp[-3], g = lp[-2], h = lp[-1]; register float E; register float S0 = 0, S1 = 0, S2 = 0, S3 = 0, S4 = 0, S5 = 0, S6 = 0, S7 = 0, S8 = 0; # undef STEP # define STEP(K, a, b, c, d, e, f, g, h) \ W = wt_float[K]; \ E = W * a; S8 += E; \ E = W * b; S7 += E; \ E = W * c; S6 += E; \ E = W * d; S5 += E; \ E = W * e; S4 += E; \ E = W * f; S3 += E; \ E = W * g; S2 += E; \ E = W * h; S1 += E; \ a = lp[K]; \ E = W * a; S0 += E # define STEP_A(K) STEP(K, a, b, c, d, e, f, g, h) # define STEP_B(K) STEP(K, b, c, d, e, f, g, h, a) # define STEP_C(K) STEP(K, c, d, e, f, g, h, a, b) # define STEP_D(K) STEP(K, d, e, f, g, h, a, b, c) # define STEP_E(K) STEP(K, e, f, g, h, a, b, c, d) # define STEP_F(K) STEP(K, f, g, h, a, b, c, d, e) # define STEP_G(K) STEP(K, g, h, a, b, c, d, e, f) # define STEP_H(K) STEP(K, h, a, b, c, d, e, f, g) STEP_A( 0); STEP_B( 1); STEP_C( 2); STEP_D( 3); STEP_E( 4); STEP_F( 5); STEP_G( 6); STEP_H( 7); STEP_A( 8); STEP_B( 9); STEP_C(10); STEP_D(11); STEP_E(12); STEP_F(13); STEP_G(14); STEP_H(15); STEP_A(16); STEP_B(17); STEP_C(18); STEP_D(19); STEP_E(20); STEP_F(21); STEP_G(22); STEP_H(23); STEP_A(24); STEP_B(25); STEP_C(26); STEP_D(27); STEP_E(28); STEP_F(29); STEP_G(30); STEP_H(31); STEP_A(32); STEP_B(33); STEP_C(34); STEP_D(35); STEP_E(36); STEP_F(37); STEP_G(38); STEP_H(39); if (S0 > L_max) { L_max = S0; Nc = lambda; } if (S1 > L_max) { L_max = S1; Nc = lambda + 1; } if (S2 > L_max) { L_max = S2; Nc = lambda + 2; } if (S3 > L_max) { L_max = S3; Nc = lambda + 3; } if (S4 > L_max) { L_max = S4; Nc = lambda + 4; } if (S5 > L_max) { L_max = S5; Nc = lambda + 5; } if (S6 > L_max) { L_max = S6; Nc = lambda + 6; } if (S7 > L_max) { L_max = S7; Nc = lambda + 7; } if (S8 > L_max) { L_max = S8; Nc = lambda + 8; } } *Nc_out = Nc; if (L_max <= 0.) { *bc_out = 0; return; } /* Compute the power of the reconstructed short term residual * signal dp[..] */ dp_float -= Nc; L_power = 0; for (k = 0; k < 40; ++k) { register float f = dp_float[k]; L_power += f * f; } if (L_max >= L_power) { *bc_out = 3; return; } /* Coding of the LTP gain * Table 4.3a must be used to obtain the level DLB[i] for the * quantization of the LTP gain b to get the coded version bc. */ lambda = L_max / L_power * 32768.; for (bc = 0; bc <= 2; ++bc) if (lambda <= gsm_DLB[bc]) break; *bc_out = bc; } #endif /* FAST */ #endif /* USE_FLOAT_MUL */ /* 4.2.12 */ static void Long_term_analysis_filtering P6((bc,Nc,dp,d,dpp,e), word bc, /* IN */ word Nc, /* IN */ register word * dp, /* previous d [-120..-1] IN */ register word * d, /* d [0..39] IN */ register word * dpp, /* estimate [0..39] OUT */ register word * e /* long term res. signal [0..39] OUT */ ) /* * In this part, we have to decode the bc parameter to compute * the samples of the estimate dpp[0..39]. The decoding of bc needs the * use of table 4.3b. The long term residual signal e[0..39] * is then calculated to be fed to the RPE encoding section. */ { register int k; register longword ltmp; # undef STEP # define STEP(BP) \ for (k = 0; k <= 39; k++) { \ dpp[k] = GSM_MULT_R( BP, dp[k - Nc]); \ e[k] = GSM_SUB( d[k], dpp[k] ); \ } switch (bc) { case 0: STEP( 3277 ); break; case 1: STEP( 11469 ); break; case 2: STEP( 21299 ); break; case 3: STEP( 32767 ); break; } } void Gsm_Long_Term_Predictor P7((S,d,dp,e,dpp,Nc,bc), /* 4x for 160 samples */ struct gsm_state * S, word * d, /* [0..39] residual signal IN */ word * dp, /* [-120..-1] d' IN */ word * e, /* [0..39] OUT */ word * dpp, /* [0..39] OUT */ word * Nc, /* correlation lag OUT */ word * bc /* gain factor OUT */ ) { assert( d ); assert( dp ); assert( e ); assert( dpp); assert( Nc ); assert( bc ); #if defined(FAST) && defined(USE_FLOAT_MUL) if (S->fast) #if defined (LTP_CUT) if (S->ltp_cut) Cut_Fast_Calculation_of_the_LTP_parameters(S, d, dp, bc, Nc); else #endif /* LTP_CUT */ Fast_Calculation_of_the_LTP_parameters(d, dp, bc, Nc ); else #endif /* FAST & USE_FLOAT_MUL */ #ifdef LTP_CUT if (S->ltp_cut) Cut_Calculation_of_the_LTP_parameters(S, d, dp, bc, Nc); else #endif Calculation_of_the_LTP_parameters(d, dp, bc, Nc); Long_term_analysis_filtering( *bc, *Nc, dp, d, dpp, e ); } /* 4.3.2 */ void Gsm_Long_Term_Synthesis_Filtering P5((S,Ncr,bcr,erp,drp), struct gsm_state * S, word Ncr, word bcr, register word * erp, /* [0..39] IN */ register word * drp /* [-120..-1] IN, [-120..40] OUT */ ) /* * This procedure uses the bcr and Ncr parameter to realize the * long term synthesis filtering. The decoding of bcr needs * table 4.3b. */ { register longword ltmp; /* for ADD */ register int k; word brp, drpp, Nr; /* Check the limits of Nr. */ Nr = Ncr < 40 || Ncr > 120 ? S->nrp : Ncr; S->nrp = Nr; assert(Nr >= 40 && Nr <= 120); /* Decoding of the LTP gain bcr */ brp = gsm_QLB[ bcr ]; /* Computation of the reconstructed short term residual * signal drp[0..39] */ assert(brp != MIN_WORD); for (k = 0; k <= 39; k++) { drpp = GSM_MULT_R( brp, drp[ k - Nr ] ); drp[k] = GSM_ADD( erp[k], drpp ); } /* * Update of the reconstructed short term residual signal * drp[ -1..-120 ] */ for (k = 0; k <= 119; k++) drp[ -120 + k ] = drp[ -80 + k ]; } ladspa-0.4.17/gsm/lpc.c000066400000000000000000000156441300111216200145540ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/lpc.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include #include #include "private.h" #include "gsm.h" #include "proto.h" #undef P /* * 4.2.4 .. 4.2.7 LPC ANALYSIS SECTION */ /* 4.2.4 */ static void Autocorrelation P2((s, L_ACF), word * s, /* [0..159] IN/OUT */ longword * L_ACF) /* [0..8] OUT */ /* * The goal is to compute the array L_ACF[k]. The signal s[i] must * be scaled in order to avoid an overflow situation. */ { register int k, i; word temp, smax, scalauto; #ifdef USE_FLOAT_MUL float float_s[160]; #endif /* Dynamic scaling of the array s[0..159] */ /* Search for the maximum. */ smax = 0; for (k = 0; k <= 159; k++) { temp = GSM_ABS( s[k] ); if (temp > smax) smax = temp; } /* Computation of the scaling factor. */ if (smax == 0) scalauto = 0; else { assert(smax > 0); scalauto = 4 - gsm_norm( (longword)smax << 16 );/* sub(4,..) */ } /* Scaling of the array s[0...159] */ if (scalauto > 0) { # ifdef USE_FLOAT_MUL # define SCALE(n) \ case n: for (k = 0; k <= 159; k++) \ float_s[k] = (float) \ (s[k] = GSM_MULT_R(s[k], 16384 >> (n-1)));\ break; # else # define SCALE(n) \ case n: for (k = 0; k <= 159; k++) \ s[k] = GSM_MULT_R( s[k], 16384 >> (n-1) );\ break; # endif /* USE_FLOAT_MUL */ switch (scalauto) { SCALE(1) SCALE(2) SCALE(3) SCALE(4) } # undef SCALE } # ifdef USE_FLOAT_MUL else for (k = 0; k <= 159; k++) float_s[k] = (float) s[k]; # endif /* Compute the L_ACF[..]. */ { # ifdef USE_FLOAT_MUL register float * sp = float_s; register float sl = *sp; # define STEP(k) L_ACF[k] += (longword)(sl * sp[ -(k) ]); # else word * sp = s; word sl = *sp; # define STEP(k) L_ACF[k] += ((longword)sl * sp[ -(k) ]); # endif # define NEXTI sl = *++sp for (k = 9; k--; L_ACF[k] = 0) ; STEP (0); NEXTI; STEP(0); STEP(1); NEXTI; STEP(0); STEP(1); STEP(2); NEXTI; STEP(0); STEP(1); STEP(2); STEP(3); NEXTI; STEP(0); STEP(1); STEP(2); STEP(3); STEP(4); NEXTI; STEP(0); STEP(1); STEP(2); STEP(3); STEP(4); STEP(5); NEXTI; STEP(0); STEP(1); STEP(2); STEP(3); STEP(4); STEP(5); STEP(6); NEXTI; STEP(0); STEP(1); STEP(2); STEP(3); STEP(4); STEP(5); STEP(6); STEP(7); for (i = 8; i <= 159; i++) { NEXTI; STEP(0); STEP(1); STEP(2); STEP(3); STEP(4); STEP(5); STEP(6); STEP(7); STEP(8); } for (k = 9; k--; L_ACF[k] <<= 1) ; } /* Rescaling of the array s[0..159] */ if (scalauto > 0) { assert(scalauto <= 4); for (k = 160; k--; *s++ <<= scalauto) ; } } #if defined(USE_FLOAT_MUL) && defined(FAST) static void Fast_Autocorrelation P2((s, L_ACF), word * s, /* [0..159] IN/OUT */ longword * L_ACF) /* [0..8] OUT */ { register int k, i; float f_L_ACF[9]; float scale; float s_f[160]; register float *sf = s_f; for (i = 0; i < 160; ++i) sf[i] = s[i]; for (k = 0; k <= 8; k++) { register float L_temp2 = 0; register float *sfl = sf - k; for (i = k; i < 160; ++i) L_temp2 += sf[i] * sfl[i]; f_L_ACF[k] = L_temp2; } scale = MAX_LONGWORD / f_L_ACF[0]; for (k = 0; k <= 8; k++) { L_ACF[k] = f_L_ACF[k] * scale; } } #endif /* defined (USE_FLOAT_MUL) && defined (FAST) */ /* 4.2.5 */ static void Reflection_coefficients P2( (L_ACF, r), longword * L_ACF, /* 0...8 IN */ register word * r /* 0...7 OUT */ ) { register int i, m, n; register word temp; register longword ltmp; word ACF[9]; /* 0..8 */ word P[ 9]; /* 0..8 */ word K[ 9]; /* 2..8 */ /* Schur recursion with 16 bits arithmetic. */ if (L_ACF[0] == 0) { for (i = 8; i--; *r++ = 0) ; return; } assert( L_ACF[0] != 0 ); temp = gsm_norm( L_ACF[0] ); assert(temp >= 0 && temp < 32); /* ? overflow ? */ for (i = 0; i <= 8; i++) ACF[i] = SASR( L_ACF[i] << temp, 16 ); /* Initialize array P[..] and K[..] for the recursion. */ for (i = 1; i <= 7; i++) K[ i ] = ACF[ i ]; for (i = 0; i <= 8; i++) P[ i ] = ACF[ i ]; /* Compute reflection coefficients */ for (n = 1; n <= 8; n++, r++) { temp = P[1]; temp = GSM_ABS(temp); if (P[0] < temp) { for (i = n; i <= 8; i++) *r++ = 0; return; } *r = gsm_div( temp, P[0] ); assert(*r >= 0); if (P[1] > 0) *r = -*r; /* r[n] = sub(0, r[n]) */ assert (*r != MIN_WORD); if (n == 8) return; /* Schur recursion */ temp = GSM_MULT_R( P[1], *r ); P[0] = GSM_ADD( P[0], temp ); for (m = 1; m <= 8 - n; m++) { temp = GSM_MULT_R( K[ m ], *r ); P[m] = GSM_ADD( P[ m+1 ], temp ); temp = GSM_MULT_R( P[ m+1 ], *r ); K[m] = GSM_ADD( K[ m ], temp ); } } } /* 4.2.6 */ static void Transformation_to_Log_Area_Ratios P1((r), register word * r /* 0..7 IN/OUT */ ) /* * The following scaling for r[..] and LAR[..] has been used: * * r[..] = integer( real_r[..]*32768. ); -1 <= real_r < 1. * LAR[..] = integer( real_LAR[..] * 16384 ); * with -1.625 <= real_LAR <= 1.625 */ { register word temp; register int i; /* Computation of the LAR[0..7] from the r[0..7] */ for (i = 1; i <= 8; i++, r++) { temp = *r; temp = GSM_ABS(temp); assert(temp >= 0); if (temp < 22118) { temp >>= 1; } else if (temp < 31130) { assert( temp >= 11059 ); temp -= 11059; } else { assert( temp >= 26112 ); temp -= 26112; temp <<= 2; } *r = *r < 0 ? -temp : temp; assert( *r != MIN_WORD ); } } /* 4.2.7 */ static void Quantization_and_coding P1((LAR), register word * LAR /* [0..7] IN/OUT */ ) { register word temp; longword ltmp; /* This procedure needs four tables; the following equations * give the optimum scaling for the constants: * * A[0..7] = integer( real_A[0..7] * 1024 ) * B[0..7] = integer( real_B[0..7] * 512 ) * MAC[0..7] = maximum of the LARc[0..7] * MIC[0..7] = minimum of the LARc[0..7] */ # undef STEP # define STEP( A, B, MAC, MIC ) \ temp = GSM_MULT( A, *LAR ); \ temp = GSM_ADD( temp, B ); \ temp = GSM_ADD( temp, 256 ); \ temp = SASR( temp, 9 ); \ *LAR = temp>MAC ? MAC - MIC : (tempfast) Fast_Autocorrelation (s, L_ACF ); else #endif Autocorrelation (s, L_ACF ); Reflection_coefficients (L_ACF, LARc ); Transformation_to_Log_Area_Ratios (LARc); Quantization_and_coding (LARc); } ladspa-0.4.17/gsm/preprocess.c000066400000000000000000000047041300111216200161560ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/preprocess.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include #include #include "private.h" #include "gsm.h" #include "proto.h" /* 4.2.0 .. 4.2.3 PREPROCESSING SECTION * * After A-law to linear conversion (or directly from the * Ato D converter) the following scaling is assumed for * input to the RPE-LTP algorithm: * * in: 0.1.....................12 * S.v.v.v.v.v.v.v.v.v.v.v.v.*.*.* * * Where S is the sign bit, v a valid bit, and * a "don't care" bit. * The original signal is called sop[..] * * out: 0.1................... 12 * S.S.v.v.v.v.v.v.v.v.v.v.v.v.0.0 */ void Gsm_Preprocess P3((S, s, so), struct gsm_state * S, word * s, word * so ) /* [0..159] IN/OUT */ { word z1 = S->z1; longword L_z2 = S->L_z2; word mp = S->mp; word s1; longword L_s2; longword L_temp; word msp, lsp; word SO; longword ltmp; /* for ADD */ ulongword utmp; /* for L_ADD */ register int k = 160; while (k--) { /* 4.2.1 Downscaling of the input signal */ SO = SASR( *s, 3 ) << 2; s++; assert (SO >= -0x4000); /* downscaled by */ assert (SO <= 0x3FFC); /* previous routine. */ /* 4.2.2 Offset compensation * * This part implements a high-pass filter and requires extended * arithmetic precision for the recursive part of this filter. * The input of this procedure is the array so[0...159] and the * output the array sof[ 0...159 ]. */ /* Compute the non-recursive part */ s1 = SO - z1; /* s1 = gsm_sub( *so, z1 ); */ z1 = SO; assert(s1 != MIN_WORD); /* Compute the recursive part */ L_s2 = s1; L_s2 <<= 15; /* Execution of a 31 bv 16 bits multiplication */ msp = SASR( L_z2, 15 ); lsp = L_z2-((longword)msp<<15); /* gsm_L_sub(L_z2,(msp<<15)); */ L_s2 += GSM_MULT_R( lsp, 32735 ); L_temp = (longword)msp * 32735; /* GSM_L_MULT(msp,32735) >> 1;*/ L_z2 = GSM_L_ADD( L_temp, L_s2 ); /* Compute sof[k] with rounding */ L_temp = GSM_L_ADD( L_z2, 16384 ); /* 4.2.3 Preemphasis */ msp = GSM_MULT_R( mp, -28180 ); mp = SASR( L_temp, 15 ); *so++ = GSM_ADD( mp, msp ); } S->z1 = z1; S->L_z2 = L_z2; S->mp = mp; } ladspa-0.4.17/gsm/private.h000066400000000000000000000173401300111216200154500ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /*$Header: /home/cvs/giga/ladspa-swh/gsm/private.h,v 1.1 2001/06/10 21:36:51 swh Exp $*/ #ifndef PRIVATE_H #define PRIVATE_H /* Added by Erik de Castro Lopo */ #define NeedFunctionPrototypes 1 #define SASR #define USE_FLOAT_MUL #define FAST #define WAV49 /* Added by Erik de Castro Lopo */ typedef short word; /* 16 bit signed int */ typedef int longword; /* 32 bit signed int */ typedef unsigned short uword; /* unsigned word */ typedef unsigned int ulongword; /* unsigned longword */ struct gsm_state { word dp0[ 280 ]; word z1; /* preprocessing.c, Offset_com. */ longword L_z2; /* Offset_com. */ int mp; /* Preemphasis */ word u[8]; /* short_term_aly_filter.c */ word LARpp[2][8]; /* */ word j; /* */ word ltp_cut; /* long_term.c, LTP crosscorr. */ word nrp; /* 40 */ /* long_term.c, synthesis */ word v[9]; /* short_term.c, synthesis */ word msr; /* decoder.c, Postprocessing */ char verbose; /* only used if !NDEBUG */ char fast; /* only used if FAST */ char wav_fmt; /* only used if WAV49 defined */ unsigned char frame_index; /* odd/even chaining */ unsigned char frame_chain; /* half-byte to carry forward */ }; #define MIN_WORD (-32767 - 1) #define MAX_WORD 32767 #define MIN_LONGWORD (-2147483647 - 1) #define MAX_LONGWORD 2147483647 #ifdef SASR /* flag: >> is a signed arithmetic shift right */ #undef SASR #define SASR(x, by) ((x) >> (by)) #else #define SASR(x, by) ((x) >= 0 ? (x) >> (by) : (~(-((x) + 1) >> (by)))) #endif /* SASR */ #include "proto.h" /* * Prototypes from add.c */ extern word gsm_mult (word a, word b); extern longword gsm_L_mult (word a, word b); extern word gsm_mult_r (word a, word b); extern word gsm_div (word num, word denum); extern word gsm_add (word a, word b ); extern longword gsm_L_add (longword a, longword b ); extern word gsm_sub (word a, word b); extern longword gsm_L_sub (longword a, longword b); extern word gsm_abs (word a); extern word gsm_norm (longword a ); extern longword gsm_L_asl (longword a, int n); extern word gsm_asl (word a, int n); extern longword gsm_L_asr (longword a, int n); extern word gsm_asr (word a, int n); /* * Inlined functions from add.h */ /* * #define GSM_MULT_R(a, b) (* word a, word b, !(a == b == MIN_WORD) *) \ * (0x0FFFF & SASR(((longword)(a) * (longword)(b) + 16384), 15)) */ #define GSM_MULT_R(a, b) /* word a, word b, !(a == b == MIN_WORD) */ \ (SASR( ((longword)(a) * (longword)(b) + 16384), 15 )) # define GSM_MULT(a,b) /* word a, word b, !(a == b == MIN_WORD) */ \ (SASR( ((longword)(a) * (longword)(b)), 15 )) # define GSM_L_MULT(a, b) /* word a, word b */ \ (((longword)(a) * (longword)(b)) << 1) # define GSM_L_ADD(a, b) \ ( (a) < 0 ? ( (b) >= 0 ? (a) + (b) \ : (utmp = (ulongword)-((a) + 1) + (ulongword)-((b) + 1)) \ >= MAX_LONGWORD ? MIN_LONGWORD : -(longword)utmp-2 ) \ : ((b) <= 0 ? (a) + (b) \ : (utmp = (ulongword)(a) + (ulongword)(b)) >= MAX_LONGWORD \ ? MAX_LONGWORD : utmp)) /* * # define GSM_ADD(a, b) \ * ((ltmp = (longword)(a) + (longword)(b)) >= MAX_WORD \ * ? MAX_WORD : ltmp <= MIN_WORD ? MIN_WORD : ltmp) */ /* Nonportable, but faster: */ #define GSM_ADD(a, b) \ ((ulongword)((ltmp = (longword)(a) + (longword)(b)) - MIN_WORD) > \ MAX_WORD - MIN_WORD ? (ltmp > 0 ? MAX_WORD : MIN_WORD) : ltmp) # define GSM_SUB(a, b) \ ((ltmp = (longword)(a) - (longword)(b)) >= MAX_WORD \ ? MAX_WORD : ltmp <= MIN_WORD ? MIN_WORD : ltmp) # define GSM_ABS(a) ((a) < 0 ? ((a) == MIN_WORD ? MAX_WORD : -(a)) : (a)) /* Use these if necessary: # define GSM_MULT_R(a, b) gsm_mult_r(a, b) # define GSM_MULT(a, b) gsm_mult(a, b) # define GSM_L_MULT(a, b) gsm_L_mult(a, b) # define GSM_L_ADD(a, b) gsm_L_add(a, b) # define GSM_ADD(a, b) gsm_add(a, b) # define GSM_SUB(a, b) gsm_sub(a, b) # define GSM_ABS(a) gsm_abs(a) */ /* * More prototypes from implementations.. */ extern void Gsm_Coder P(( struct gsm_state * S, word * s, /* [0..159] samples IN */ word * LARc, /* [0..7] LAR coefficients OUT */ word * Nc, /* [0..3] LTP lag OUT */ word * bc, /* [0..3] coded LTP gain OUT */ word * Mc, /* [0..3] RPE grid selection OUT */ word * xmaxc,/* [0..3] Coded maximum amplitude OUT */ word * xMc /* [13*4] normalized RPE samples OUT */)); extern void Gsm_Long_Term_Predictor P(( /* 4x for 160 samples */ struct gsm_state * S, word * d, /* [0..39] residual signal IN */ word * dp, /* [-120..-1] d' IN */ word * e, /* [0..40] OUT */ word * dpp, /* [0..40] OUT */ word * Nc, /* correlation lag OUT */ word * bc /* gain factor OUT */)); extern void Gsm_LPC_Analysis P(( struct gsm_state * S, word * s, /* 0..159 signals IN/OUT */ word * LARc)); /* 0..7 LARc's OUT */ extern void Gsm_Preprocess P(( struct gsm_state * S, word * s, word * so)); extern void Gsm_Encoding P(( struct gsm_state * S, word * e, word * ep, word * xmaxc, word * Mc, word * xMc)); extern void Gsm_Short_Term_Analysis_Filter P(( struct gsm_state * S, word * LARc, /* coded log area ratio [0..7] IN */ word * d /* st res. signal [0..159] IN/OUT */)); extern void Gsm_Decoder P(( struct gsm_state * S, word * LARcr, /* [0..7] IN */ word * Ncr, /* [0..3] IN */ word * bcr, /* [0..3] IN */ word * Mcr, /* [0..3] IN */ word * xmaxcr, /* [0..3] IN */ word * xMcr, /* [0..13*4] IN */ word * s)); /* [0..159] OUT */ extern void Gsm_Decoding P(( struct gsm_state * S, word xmaxcr, word Mcr, word * xMcr, /* [0..12] IN */ word * erp)); /* [0..39] OUT */ extern void Gsm_Long_Term_Synthesis_Filtering P(( struct gsm_state* S, word Ncr, word bcr, word * erp, /* [0..39] IN */ word * drp)); /* [-120..-1] IN, [0..40] OUT */ void Gsm_RPE_Decoding P(( struct gsm_state *S, word xmaxcr, word Mcr, word * xMcr, /* [0..12], 3 bits IN */ word * erp)); /* [0..39] OUT */ void Gsm_RPE_Encoding P(( struct gsm_state * S, word * e, /* -5..-1][0..39][40..44 IN/OUT */ word * xmaxc, /* OUT */ word * Mc, /* OUT */ word * xMc)); /* [0..12] OUT */ extern void Gsm_Short_Term_Synthesis_Filter P(( struct gsm_state * S, word * LARcr, /* log area ratios [0..7] IN */ word * drp, /* received d [0...39] IN */ word * s)); /* signal s [0..159] OUT */ extern void Gsm_Update_of_reconstructed_short_time_residual_signal P(( word * dpp, /* [0...39] IN */ word * ep, /* [0...39] IN */ word * dp)); /* [-120...-1] IN/OUT */ /* * Tables from table.c */ #ifndef GSM_TABLE_C extern word gsm_A[8], gsm_B[8], gsm_MIC[8], gsm_MAC[8]; extern word gsm_INVA[8]; extern word gsm_DLB[4], gsm_QLB[4]; extern word gsm_H[11]; extern word gsm_NRFAC[8]; extern word gsm_FAC[8]; #endif /* GSM_TABLE_C */ /* * Debugging */ #ifdef NDEBUG # define gsm_debug_words(a, b, c, d) /* nil */ # define gsm_debug_longwords(a, b, c, d) /* nil */ # define gsm_debug_word(a, b) /* nil */ # define gsm_debug_longword(a, b) /* nil */ #else /* !NDEBUG => DEBUG */ extern void gsm_debug_words P((char * name, int, int, word *)); extern void gsm_debug_longwords P((char * name, int, int, longword *)); extern void gsm_debug_longword P((char * name, longword)); extern void gsm_debug_word P((char * name, word)); #endif /* !NDEBUG */ #include "unproto.h" #endif /* PRIVATE_H */ ladspa-0.4.17/gsm/proto.h000066400000000000000000000031021300111216200151300ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /*$Header: /home/cvs/giga/ladspa-swh/gsm/proto.h,v 1.1 2001/06/10 21:36:51 swh Exp $*/ #ifndef PROTO_H #define PROTO_H /*#if __cplusplus*/ # define NeedFunctionPrototypes 1 /*#endif*/ #if __STDC__ # define NeedFunctionPrototypes 1 #endif #ifdef _NO_PROTO # undef NeedFunctionPrototypes #endif #undef P /* gnu stdio.h actually defines this... */ #undef P0 #undef P1 #undef P2 #undef P3 #undef P4 #undef P5 #undef P6 #undef P7 #undef P8 #if NeedFunctionPrototypes # define P( protos ) protos # define P0() (void) # define P1(x, a) (a) # define P2(x, a, b) (a, b) # define P3(x, a, b, c) (a, b, c) # define P4(x, a, b, c, d) (a, b, c, d) # define P5(x, a, b, c, d, e) (a, b, c, d, e) # define P6(x, a, b, c, d, e, f) (a, b, c, d, e, f) # define P7(x, a, b, c, d, e, f, g) (a, b, c, d, e, f, g) # define P8(x, a, b, c, d, e, f, g, h) (a, b, c, d, e, f, g, h) #else /* !NeedFunctionPrototypes */ # define P( protos ) ( /* protos */ ) # define P0() () # define P1(x, a) x a; # define P2(x, a, b) x a; b; # define P3(x, a, b, c) x a; b; c; # define P4(x, a, b, c, d) x a; b; c; d; # define P5(x, a, b, c, d, e) x a; b; c; d; e; # define P6(x, a, b, c, d, e, f) x a; b; c; d; e; f; # define P7(x, a, b, c, d, e, f, g) x a; b; c; d; e; f; g; # define P8(x, a, b, c, d, e, f, g, h) x a; b; c; d; e; f; g; h; #endif /* !NeedFunctionPrototypes */ #endif /* PROTO_H */ ladspa-0.4.17/gsm/rpe.c000066400000000000000000000254471300111216200145660ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/rpe.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include #include #include "private.h" #include "gsm.h" #include "proto.h" /* 4.2.13 .. 4.2.17 RPE ENCODING SECTION */ /* 4.2.13 */ static void Weighting_filter P2((e, x), register word * e, /* signal [-5..0.39.44] IN */ word * x /* signal [0..39] OUT */ ) /* * The coefficients of the weighting filter are stored in a table * (see table 4.4). The following scaling is used: * * H[0..10] = integer( real_H[ 0..10] * 8192 ); */ { /* word wt[ 50 ]; */ register longword L_result; register int k /* , i */ ; /* Initialization of a temporary working array wt[0...49] */ /* for (k = 0; k <= 4; k++) wt[k] = 0; * for (k = 5; k <= 44; k++) wt[k] = *e++; * for (k = 45; k <= 49; k++) wt[k] = 0; * * (e[-5..-1] and e[40..44] are allocated by the caller, * are initially zero and are not written anywhere.) */ e -= 5; /* Compute the signal x[0..39] */ for (k = 0; k <= 39; k++) { L_result = 8192 >> 1; /* for (i = 0; i <= 10; i++) { * L_temp = GSM_L_MULT( wt[k+i], gsm_H[i] ); * L_result = GSM_L_ADD( L_result, L_temp ); * } */ #undef STEP #define STEP( i, H ) (e[ k + i ] * (longword)H) /* Every one of these multiplications is done twice -- * but I don't see an elegant way to optimize this. * Do you? */ #ifdef STUPID_COMPILER L_result += STEP( 0, -134 ) ; L_result += STEP( 1, -374 ) ; /* + STEP( 2, 0 ) */ L_result += STEP( 3, 2054 ) ; L_result += STEP( 4, 5741 ) ; L_result += STEP( 5, 8192 ) ; L_result += STEP( 6, 5741 ) ; L_result += STEP( 7, 2054 ) ; /* + STEP( 8, 0 ) */ L_result += STEP( 9, -374 ) ; L_result += STEP( 10, -134 ) ; #else L_result += STEP( 0, -134 ) + STEP( 1, -374 ) /* + STEP( 2, 0 ) */ + STEP( 3, 2054 ) + STEP( 4, 5741 ) + STEP( 5, 8192 ) + STEP( 6, 5741 ) + STEP( 7, 2054 ) /* + STEP( 8, 0 ) */ + STEP( 9, -374 ) + STEP(10, -134 ) ; #endif /* L_result = GSM_L_ADD( L_result, L_result ); (* scaling(x2) *) * L_result = GSM_L_ADD( L_result, L_result ); (* scaling(x4) *) * * x[k] = SASR( L_result, 16 ); */ /* 2 adds vs. >>16 => 14, minus one shift to compensate for * those we lost when replacing L_MULT by '*'. */ L_result = SASR( L_result, 13 ); x[k] = ( L_result < MIN_WORD ? MIN_WORD : (L_result > MAX_WORD ? MAX_WORD : L_result )); } } /* 4.2.14 */ static void RPE_grid_selection P3((x,xM,Mc_out), word * x, /* [0..39] IN */ word * xM, /* [0..12] OUT */ word * Mc_out /* OUT */ ) /* * The signal x[0..39] is used to select the RPE grid which is * represented by Mc. */ { /* register word temp1; */ register int /* m, */ i; register longword L_result, L_temp; longword EM; /* xxx should be L_EM? */ word Mc; longword L_common_0_3; EM = 0; Mc = 0; /* for (m = 0; m <= 3; m++) { * L_result = 0; * * * for (i = 0; i <= 12; i++) { * * temp1 = SASR( x[m + 3*i], 2 ); * * assert(temp1 != MIN_WORD); * * L_temp = GSM_L_MULT( temp1, temp1 ); * L_result = GSM_L_ADD( L_temp, L_result ); * } * * if (L_result > EM) { * Mc = m; * EM = L_result; * } * } */ #undef STEP #define STEP( m, i ) L_temp = SASR( x[m + 3 * i], 2 ); \ L_result += L_temp * L_temp; /* common part of 0 and 3 */ L_result = 0; STEP( 0, 1 ); STEP( 0, 2 ); STEP( 0, 3 ); STEP( 0, 4 ); STEP( 0, 5 ); STEP( 0, 6 ); STEP( 0, 7 ); STEP( 0, 8 ); STEP( 0, 9 ); STEP( 0, 10); STEP( 0, 11); STEP( 0, 12); L_common_0_3 = L_result; /* i = 0 */ STEP( 0, 0 ); L_result <<= 1; /* implicit in L_MULT */ EM = L_result; /* i = 1 */ L_result = 0; STEP( 1, 0 ); STEP( 1, 1 ); STEP( 1, 2 ); STEP( 1, 3 ); STEP( 1, 4 ); STEP( 1, 5 ); STEP( 1, 6 ); STEP( 1, 7 ); STEP( 1, 8 ); STEP( 1, 9 ); STEP( 1, 10); STEP( 1, 11); STEP( 1, 12); L_result <<= 1; if (L_result > EM) { Mc = 1; EM = L_result; } /* i = 2 */ L_result = 0; STEP( 2, 0 ); STEP( 2, 1 ); STEP( 2, 2 ); STEP( 2, 3 ); STEP( 2, 4 ); STEP( 2, 5 ); STEP( 2, 6 ); STEP( 2, 7 ); STEP( 2, 8 ); STEP( 2, 9 ); STEP( 2, 10); STEP( 2, 11); STEP( 2, 12); L_result <<= 1; if (L_result > EM) { Mc = 2; EM = L_result; } /* i = 3 */ L_result = L_common_0_3; STEP( 3, 12 ); L_result <<= 1; if (L_result > EM) { Mc = 3; EM = L_result; } /**/ /* Down-sampling by a factor 3 to get the selected xM[0..12] * RPE sequence. */ for (i = 0; i <= 12; i ++) xM[i] = x[Mc + 3*i]; *Mc_out = Mc; } /* 4.12.15 */ static void APCM_quantization_xmaxc_to_exp_mant P3((xmaxc,exp_out,mant_out), word xmaxc, /* IN */ word * exp_out, /* OUT */ word * mant_out ) /* OUT */ { word exp, mant; /* Compute exponent and mantissa of the decoded version of xmaxc */ exp = 0; if (xmaxc > 15) exp = SASR(xmaxc, 3) - 1; mant = xmaxc - (exp << 3); if (mant == 0) { exp = -4; mant = 7; } else { while (mant <= 7) { mant = mant << 1 | 1; exp--; } mant -= 8; } assert( exp >= -4 && exp <= 6 ); assert( mant >= 0 && mant <= 7 ); *exp_out = exp; *mant_out = mant; } static void APCM_quantization P5((xM,xMc,mant_out,exp_out,xmaxc_out), word * xM, /* [0..12] IN */ word * xMc, /* [0..12] OUT */ word * mant_out, /* OUT */ word * exp_out, /* OUT */ word * xmaxc_out /* OUT */ ) { int i, itest; word xmax, xmaxc, temp, temp1, temp2; word exp, mant; /* Find the maximum absolute value xmax of xM[0..12]. */ xmax = 0; for (i = 0; i <= 12; i++) { temp = xM[i]; temp = GSM_ABS(temp); if (temp > xmax) xmax = temp; } /* Qantizing and coding of xmax to get xmaxc. */ exp = 0; temp = SASR( xmax, 9 ); itest = 0; for (i = 0; i <= 5; i++) { itest |= (temp <= 0); temp = SASR( temp, 1 ); assert(exp <= 5); if (itest == 0) exp++; /* exp = add (exp, 1) */ } assert(exp <= 6 && exp >= 0); temp = exp + 5; assert(temp <= 11 && temp >= 0); xmaxc = gsm_add( SASR(xmax, temp), exp << 3 ); /* Quantizing and coding of the xM[0..12] RPE sequence * to get the xMc[0..12] */ APCM_quantization_xmaxc_to_exp_mant( xmaxc, &exp, &mant ); /* This computation uses the fact that the decoded version of xmaxc * can be calculated by using the exponent and the mantissa part of * xmaxc (logarithmic table). * So, this method avoids any division and uses only a scaling * of the RPE samples by a function of the exponent. A direct * multiplication by the inverse of the mantissa (NRFAC[0..7] * found in table 4.5) gives the 3 bit coded version xMc[0..12] * of the RPE samples. */ /* Direct computation of xMc[0..12] using table 4.5 */ assert( exp <= 4096 && exp >= -4096); assert( mant >= 0 && mant <= 7 ); temp1 = 6 - exp; /* normalization by the exponent */ temp2 = gsm_NRFAC[ mant ]; /* inverse mantissa */ for (i = 0; i <= 12; i++) { assert(temp1 >= 0 && temp1 < 16); temp = xM[i] << temp1; temp = GSM_MULT( temp, temp2 ); temp = SASR(temp, 12); xMc[i] = temp + 4; /* see note below */ } /* NOTE: This equation is used to make all the xMc[i] positive. */ *mant_out = mant; *exp_out = exp; *xmaxc_out = xmaxc; } /* 4.2.16 */ static void APCM_inverse_quantization P4((xMc,mant,exp,xMp), register word * xMc, /* [0..12] IN */ word mant, word exp, register word * xMp) /* [0..12] OUT */ /* * This part is for decoding the RPE sequence of coded xMc[0..12] * samples to obtain the xMp[0..12] array. Table 4.6 is used to get * the mantissa of xmaxc (FAC[0..7]). */ { int i; word temp, temp1, temp2, temp3; longword ltmp; assert( mant >= 0 && mant <= 7 ); temp1 = gsm_FAC[ mant ]; /* see 4.2-15 for mant */ temp2 = gsm_sub( 6, exp ); /* see 4.2-15 for exp */ temp3 = gsm_asl( 1, gsm_sub( temp2, 1 )); for (i = 13; i--;) { assert( *xMc <= 7 && *xMc >= 0 ); /* 3 bit unsigned */ /* temp = gsm_sub( *xMc++ << 1, 7 ); */ temp = (*xMc++ << 1) - 7; /* restore sign */ assert( temp <= 7 && temp >= -7 ); /* 4 bit signed */ temp <<= 12; /* 16 bit signed */ temp = GSM_MULT_R( temp1, temp ); temp = GSM_ADD( temp, temp3 ); *xMp++ = gsm_asr( temp, temp2 ); } } /* 4.2.17 */ static void RPE_grid_positioning P3((Mc,xMp,ep), word Mc, /* grid position IN */ register word * xMp, /* [0..12] IN */ register word * ep /* [0..39] OUT */ ) /* * This procedure computes the reconstructed long term residual signal * ep[0..39] for the LTP analysis filter. The inputs are the Mc * which is the grid position selection and the xMp[0..12] decoded * RPE samples which are upsampled by a factor of 3 by inserting zero * values. */ { int i = 13; assert(0 <= Mc && Mc <= 3); switch (Mc) { case 3: *ep++ = 0; case 2: do { *ep++ = 0; case 1: *ep++ = 0; case 0: *ep++ = *xMp++; } while (--i); } while (++Mc < 4) *ep++ = 0; /* int i, k; for (k = 0; k <= 39; k++) ep[k] = 0; for (i = 0; i <= 12; i++) { ep[ Mc + (3*i) ] = xMp[i]; } */ } /* 4.2.18 */ /* This procedure adds the reconstructed long term residual signal * ep[0..39] to the estimated signal dpp[0..39] from the long term * analysis filter to compute the reconstructed short term residual * signal dp[-40..-1]; also the reconstructed short term residual * array dp[-120..-41] is updated. */ #if 0 /* Has been inlined in code.c */ void Gsm_Update_of_reconstructed_short_time_residual_signal P3((dpp, ep, dp), word * dpp, /* [0...39] IN */ word * ep, /* [0...39] IN */ word * dp) /* [-120...-1] IN/OUT */ { int k; for (k = 0; k <= 79; k++) dp[ -120 + k ] = dp[ -80 + k ]; for (k = 0; k <= 39; k++) dp[ -40 + k ] = gsm_add( ep[k], dpp[k] ); } #endif /* Has been inlined in code.c */ void Gsm_RPE_Encoding P5((S,e,xmaxc,Mc,xMc), struct gsm_state * S, word * e, /* -5..-1][0..39][40..44 IN/OUT */ word * xmaxc, /* OUT */ word * Mc, /* OUT */ word * xMc) /* [0..12] OUT */ { word x[40]; word xM[13], xMp[13]; word mant, exp; Weighting_filter(e, x); RPE_grid_selection(x, xM, Mc); APCM_quantization( xM, xMc, &mant, &exp, xmaxc); APCM_inverse_quantization( xMc, mant, exp, xMp); RPE_grid_positioning( *Mc, xMp, e ); } void Gsm_RPE_Decoding P5((S, xmaxcr, Mcr, xMcr, erp), struct gsm_state * S, word xmaxcr, word Mcr, word * xMcr, /* [0..12], 3 bits IN */ word * erp /* [0..39] OUT */ ) { word exp, mant; word xMp[ 13 ]; APCM_quantization_xmaxc_to_exp_mant( xmaxcr, &exp, &mant ); APCM_inverse_quantization( xMcr, mant, exp, xMp ); RPE_grid_positioning( Mcr, xMp, erp ); } ladspa-0.4.17/gsm/short_term.c000066400000000000000000000242251300111216200161570ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/short_term.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ #include #include #include "private.h" #include "gsm.h" #include "proto.h" /* * SHORT TERM ANALYSIS FILTERING SECTION */ /* 4.2.8 */ static void Decoding_of_the_coded_Log_Area_Ratios P2((LARc,LARpp), word * LARc, /* coded log area ratio [0..7] IN */ word * LARpp) /* out: decoded .. */ { register word temp1 /* , temp2 */; register long ltmp; /* for GSM_ADD */ /* This procedure requires for efficient implementation * two tables. * * INVA[1..8] = integer( (32768 * 8) / real_A[1..8]) * MIC[1..8] = minimum value of the LARc[1..8] */ /* Compute the LARpp[1..8] */ /* for (i = 1; i <= 8; i++, B++, MIC++, INVA++, LARc++, LARpp++) { * * temp1 = GSM_ADD( *LARc, *MIC ) << 10; * temp2 = *B << 1; * temp1 = GSM_SUB( temp1, temp2 ); * * assert(*INVA != MIN_WORD); * * temp1 = GSM_MULT_R( *INVA, temp1 ); * *LARpp = GSM_ADD( temp1, temp1 ); * } */ #undef STEP #define STEP( B, MIC, INVA ) \ temp1 = GSM_ADD( *LARc++, MIC ) << 10; \ temp1 = GSM_SUB( temp1, B << 1 ); \ temp1 = GSM_MULT_R( INVA, temp1 ); \ *LARpp++ = GSM_ADD( temp1, temp1 ); STEP( 0, -32, 13107 ); STEP( 0, -32, 13107 ); STEP( 2048, -16, 13107 ); STEP( -2560, -16, 13107 ); STEP( 94, -8, 19223 ); STEP( -1792, -8, 17476 ); STEP( -341, -4, 31454 ); STEP( -1144, -4, 29708 ); /* NOTE: the addition of *MIC is used to restore * the sign of *LARc. */ } /* 4.2.9 */ /* Computation of the quantized reflection coefficients */ /* 4.2.9.1 Interpolation of the LARpp[1..8] to get the LARp[1..8] */ /* * Within each frame of 160 analyzed speech samples the short term * analysis and synthesis filters operate with four different sets of * coefficients, derived from the previous set of decoded LARs(LARpp(j-1)) * and the actual set of decoded LARs (LARpp(j)) * * (Initial value: LARpp(j-1)[1..8] = 0.) */ static void Coefficients_0_12 P3((LARpp_j_1, LARpp_j, LARp), register word * LARpp_j_1, register word * LARpp_j, register word * LARp) { register int i; register longword ltmp; for (i = 1; i <= 8; i++, LARp++, LARpp_j_1++, LARpp_j++) { *LARp = GSM_ADD( SASR( *LARpp_j_1, 2 ), SASR( *LARpp_j, 2 )); *LARp = GSM_ADD( *LARp, SASR( *LARpp_j_1, 1)); } } static void Coefficients_13_26 P3((LARpp_j_1, LARpp_j, LARp), register word * LARpp_j_1, register word * LARpp_j, register word * LARp) { register int i; register longword ltmp; for (i = 1; i <= 8; i++, LARpp_j_1++, LARpp_j++, LARp++) { *LARp = GSM_ADD( SASR( *LARpp_j_1, 1), SASR( *LARpp_j, 1 )); } } static void Coefficients_27_39 P3((LARpp_j_1, LARpp_j, LARp), register word * LARpp_j_1, register word * LARpp_j, register word * LARp) { register int i; register longword ltmp; for (i = 1; i <= 8; i++, LARpp_j_1++, LARpp_j++, LARp++) { *LARp = GSM_ADD( SASR( *LARpp_j_1, 2 ), SASR( *LARpp_j, 2 )); *LARp = GSM_ADD( *LARp, SASR( *LARpp_j, 1 )); } } static void Coefficients_40_159 P2((LARpp_j, LARp), register word * LARpp_j, register word * LARp) { register int i; for (i = 1; i <= 8; i++, LARp++, LARpp_j++) *LARp = *LARpp_j; } /* 4.2.9.2 */ static void LARp_to_rp P1((LARp), register word * LARp) /* [0..7] IN/OUT */ /* * The input of this procedure is the interpolated LARp[0..7] array. * The reflection coefficients, rp[i], are used in the analysis * filter and in the synthesis filter. */ { register int i; register word temp; register longword ltmp; for (i = 1; i <= 8; i++, LARp++) { /* temp = GSM_ABS( *LARp ); * * if (temp < 11059) temp <<= 1; * else if (temp < 20070) temp += 11059; * else temp = GSM_ADD( temp >> 2, 26112 ); * * *LARp = *LARp < 0 ? -temp : temp; */ if (*LARp < 0) { temp = *LARp == MIN_WORD ? MAX_WORD : -(*LARp); *LARp = - ((temp < 11059) ? temp << 1 : ((temp < 20070) ? temp + 11059 : GSM_ADD( temp >> 2, 26112 ))); } else { temp = *LARp; *LARp = (temp < 11059) ? temp << 1 : ((temp < 20070) ? temp + 11059 : GSM_ADD( temp >> 2, 26112 )); } } } /* 4.2.10 */ static void Short_term_analysis_filtering P4((S,rp,k_n,s), struct gsm_state * S, register word * rp, /* [0..7] IN */ register int k_n, /* k_end - k_start */ register word * s /* [0..n-1] IN/OUT */ ) /* * This procedure computes the short term residual signal d[..] to be fed * to the RPE-LTP loop from the s[..] signal and from the local rp[..] * array (quantized reflection coefficients). As the call of this * procedure can be done in many ways (see the interpolation of the LAR * coefficient), it is assumed that the computation begins with index * k_start (for arrays d[..] and s[..]) and stops with index k_end * (k_start and k_end are defined in 4.2.9.1). This procedure also * needs to keep the array u[0..7] in memory for each call. */ { register word * u = S->u; register int i; register word di, zzz, ui, sav, rpi; register longword ltmp; for (; k_n--; s++) { di = sav = *s; for (i = 0; i < 8; i++) { /* YYY */ ui = u[i]; rpi = rp[i]; u[i] = sav; zzz = GSM_MULT_R(rpi, di); sav = GSM_ADD( ui, zzz); zzz = GSM_MULT_R(rpi, ui); di = GSM_ADD( di, zzz ); } *s = di; } } #if defined(USE_FLOAT_MUL) && defined(FAST) static void Fast_Short_term_analysis_filtering P4((S,rp,k_n,s), struct gsm_state * S, register word * rp, /* [0..7] IN */ register int k_n, /* k_end - k_start */ register word * s /* [0..n-1] IN/OUT */ ) { register word * u = S->u; register int i; float uf[8], rpf[8]; register float scalef = 3.0517578125e-5; register float sav, di, temp; for (i = 0; i < 8; ++i) { uf[i] = u[i]; rpf[i] = rp[i] * scalef; } for (; k_n--; s++) { sav = di = *s; for (i = 0; i < 8; ++i) { register float rpfi = rpf[i]; register float ufi = uf[i]; uf[i] = sav; temp = rpfi * di + ufi; di += rpfi * ufi; sav = temp; } *s = di; } for (i = 0; i < 8; ++i) u[i] = uf[i]; } #endif /* ! (defined (USE_FLOAT_MUL) && defined (FAST)) */ static void Short_term_synthesis_filtering P5((S,rrp,k,wt,sr), struct gsm_state * S, register word * rrp, /* [0..7] IN */ register int k, /* k_end - k_start */ register word * wt, /* [0..k-1] IN */ register word * sr /* [0..k-1] OUT */ ) { register word * v = S->v; register int i; register word sri, tmp1, tmp2; register longword ltmp; /* for GSM_ADD & GSM_SUB */ while (k--) { sri = *wt++; for (i = 8; i--;) { /* sri = GSM_SUB( sri, gsm_mult_r( rrp[i], v[i] ) ); */ tmp1 = rrp[i]; tmp2 = v[i]; tmp2 = ( tmp1 == MIN_WORD && tmp2 == MIN_WORD ? MAX_WORD : 0x0FFFF & (( (longword)tmp1 * (longword)tmp2 + 16384) >> 15)) ; sri = GSM_SUB( sri, tmp2 ); /* v[i+1] = GSM_ADD( v[i], gsm_mult_r( rrp[i], sri ) ); */ tmp1 = ( tmp1 == MIN_WORD && sri == MIN_WORD ? MAX_WORD : 0x0FFFF & (( (longword)tmp1 * (longword)sri + 16384) >> 15)) ; v[i+1] = GSM_ADD( v[i], tmp1); } *sr++ = v[0] = sri; } } #if defined(FAST) && defined(USE_FLOAT_MUL) static void Fast_Short_term_synthesis_filtering P5((S,rrp,k,wt,sr), struct gsm_state * S, register word * rrp, /* [0..7] IN */ register int k, /* k_end - k_start */ register word * wt, /* [0..k-1] IN */ register word * sr /* [0..k-1] OUT */ ) { register word * v = S->v; register int i; float va[9], rrpa[8]; register float scalef = 3.0517578125e-5, temp; for (i = 0; i < 8; ++i) { va[i] = v[i]; rrpa[i] = (float)rrp[i] * scalef; } while (k--) { register float sri = *wt++; for (i = 8; i--;) { sri -= rrpa[i] * va[i]; if (sri < -32768.) sri = -32768.; else if (sri > 32767.) sri = 32767.; temp = va[i] + rrpa[i] * sri; if (temp < -32768.) temp = -32768.; else if (temp > 32767.) temp = 32767.; va[i+1] = temp; } *sr++ = va[0] = sri; } for (i = 0; i < 9; ++i) v[i] = va[i]; } #endif /* defined(FAST) && defined(USE_FLOAT_MUL) */ void Gsm_Short_Term_Analysis_Filter P3((S,LARc,s), struct gsm_state * S, word * LARc, /* coded log area ratio [0..7] IN */ word * s /* signal [0..159] IN/OUT */ ) { word * LARpp_j = S->LARpp[ S->j ]; word * LARpp_j_1 = S->LARpp[ S->j ^= 1 ]; word LARp[8]; #undef FILTER #if defined(FAST) && defined(USE_FLOAT_MUL) # define FILTER (* (S->fast \ ? Fast_Short_term_analysis_filtering \ : Short_term_analysis_filtering )) #else # define FILTER Short_term_analysis_filtering #endif Decoding_of_the_coded_Log_Area_Ratios( LARc, LARpp_j ); Coefficients_0_12( LARpp_j_1, LARpp_j, LARp ); LARp_to_rp( LARp ); FILTER( S, LARp, 13, s); Coefficients_13_26( LARpp_j_1, LARpp_j, LARp); LARp_to_rp( LARp ); FILTER( S, LARp, 14, s + 13); Coefficients_27_39( LARpp_j_1, LARpp_j, LARp); LARp_to_rp( LARp ); FILTER( S, LARp, 13, s + 27); Coefficients_40_159( LARpp_j, LARp); LARp_to_rp( LARp ); FILTER( S, LARp, 120, s + 40); } void Gsm_Short_Term_Synthesis_Filter P4((S, LARcr, wt, s), struct gsm_state * S, word * LARcr, /* received log area ratios [0..7] IN */ word * wt, /* received d [0..159] IN */ word * s /* signal s [0..159] OUT */ ) { word * LARpp_j = S->LARpp[ S->j ]; word * LARpp_j_1 = S->LARpp[ S->j ^=1 ]; word LARp[8]; #undef FILTER #if defined(FAST) && defined(USE_FLOAT_MUL) # define FILTER (* (S->fast \ ? Fast_Short_term_synthesis_filtering \ : Short_term_synthesis_filtering )) #else # define FILTER Short_term_synthesis_filtering #endif Decoding_of_the_coded_Log_Area_Ratios( LARcr, LARpp_j ); Coefficients_0_12( LARpp_j_1, LARpp_j, LARp ); LARp_to_rp( LARp ); FILTER( S, LARp, 13, wt, s ); Coefficients_13_26( LARpp_j_1, LARpp_j, LARp); LARp_to_rp( LARp ); FILTER( S, LARp, 14, wt + 13, s + 13 ); Coefficients_27_39( LARpp_j_1, LARpp_j, LARp); LARp_to_rp( LARp ); FILTER( S, LARp, 13, wt + 27, s + 27 ); Coefficients_40_159( LARpp_j, LARp ); LARp_to_rp( LARp ); FILTER(S, LARp, 120, wt + 40, s + 40); } ladspa-0.4.17/gsm/table.c000066400000000000000000000041261300111216200150560ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /* $Header: /home/cvs/giga/ladspa-swh/gsm/table.c,v 1.1 2001/06/10 21:36:51 swh Exp $ */ /* Most of these tables are inlined at their point of use. */ /* 4.4 TABLES USED IN THE FIXED POINT IMPLEMENTATION OF THE RPE-LTP * CODER AND DECODER * * (Most of them inlined, so watch out.) */ #define GSM_TABLE_C #include "private.h" #include "gsm.h" /* Table 4.1 Quantization of the Log.-Area Ratios */ /* i 1 2 3 4 5 6 7 8 */ word gsm_A[8] = {20480, 20480, 20480, 20480, 13964, 15360, 8534, 9036}; word gsm_B[8] = { 0, 0, 2048, -2560, 94, -1792, -341, -1144}; word gsm_MIC[8] = { -32, -32, -16, -16, -8, -8, -4, -4 }; word gsm_MAC[8] = { 31, 31, 15, 15, 7, 7, 3, 3 }; /* Table 4.2 Tabulation of 1/A[1..8] */ word gsm_INVA[8]={ 13107, 13107, 13107, 13107, 19223, 17476, 31454, 29708 }; /* Table 4.3a Decision level of the LTP gain quantizer */ /* bc 0 1 2 3 */ word gsm_DLB[4] = { 6554, 16384, 26214, 32767 }; /* Table 4.3b Quantization levels of the LTP gain quantizer */ /* bc 0 1 2 3 */ word gsm_QLB[4] = { 3277, 11469, 21299, 32767 }; /* Table 4.4 Coefficients of the weighting filter */ /* i 0 1 2 3 4 5 6 7 8 9 10 */ word gsm_H[11] = {-134, -374, 0, 2054, 5741, 8192, 5741, 2054, 0, -374, -134 }; /* Table 4.5 Normalized inverse mantissa used to compute xM/xmax */ /* i 0 1 2 3 4 5 6 7 */ word gsm_NRFAC[8] = { 29128, 26215, 23832, 21846, 20165, 18725, 17476, 16384 }; /* Table 4.6 Normalized direct mantissa used to compute xM/xmax */ /* i 0 1 2 3 4 5 6 7 */ word gsm_FAC[8] = { 18431, 20479, 22527, 24575, 26623, 28671, 30719, 32767 }; ladspa-0.4.17/gsm/unproto.h000066400000000000000000000007131300111216200155000ustar00rootroot00000000000000/* * Copyright 1992 by Jutta Degener and Carsten Bormann, Technische * Universitaet Berlin. See the accompanying file "COPYRIGHT" for * details. THERE IS ABSOLUTELY NO WARRANTY FOR THIS SOFTWARE. */ /*$Header: /home/cvs/giga/ladspa-swh/gsm/unproto.h,v 1.1 2001/06/10 21:36:51 swh Exp $*/ #ifdef PROTO_H /* sic */ #undef PROTO_H #undef P #undef P0 #undef P1 #undef P2 #undef P3 #undef P4 #undef P5 #undef P6 #undef P7 #undef P8 #endif /* PROTO_H */ ladspa-0.4.17/gsm_1215.xml000066400000000000000000000120601300111216200150110ustar00rootroot00000000000000 #include "ladspa-util.h" #include "gsm/gsm.h" #include "util/biquad.h" #define SCALE 32768.0f #define SCALE_R 0.0000305175f int bits[] = {0x01, 0x02, 0x04, 0x08, 0x10, 0x20, 0x40, 0x80}; ]]> GSM simulator

Encodes and decodes a signal using the GSM voice compression system. Has the effect of making the signal sound like it is being sent over a European mobile phone network.

src); free(plugin_data->dst); free(plugin_data->dry); free(plugin_data->blf); if (plugin_data->handle) { gsm_destroy(plugin_data->handle); } ]]> = 160 * resamp) { int i, j; gsm_signal *in; count = 0; dst[0] = dst[160]; dst[1] = dst[161]; dst[2] = dst[162]; in = src; for (j=0; jcount = count; *(plugin_data->latency) = 160 * resamp; ]]> Dry/wet mix

Controls the dry/wet mix, 0 will give you the dry signal (but with the appropriate amount of delay), 1 will give you a totally wet signal.

Number of passes

The number of times the signal is sent through the encode/decode process. Increases the CPU consumption almost linearly, and it will become more peaky so less friendly to realtime processing.

Error rate (bits/block)

The number of simulated bits that get changed during the transmission process.

I really wanted to reduce the bandwidth to get that "shouting down a drainpipe" effect, but I'm not sure how the reduced bandwidth is dealt with by real phones. I suspect it's heavily patented technology.

Input Output latency
ladspa-0.4.17/gverb/000077500000000000000000000000001300111216200141375ustar00rootroot00000000000000ladspa-0.4.17/gverb/Makefile.am000066400000000000000000000002631300111216200161740ustar00rootroot00000000000000LIBTOOL=libtool RANLIB=ranlib noinst_HEADERS = gverb.h gverbdsp.h noinst_LIBRARIES = libgverb.a libgverb_a_SOURCES = gverb.c gverbdsp.c # Disable autoheader. AUTOHEADER=echo ladspa-0.4.17/gverb/gverb-test.c000066400000000000000000000036171300111216200163740ustar00rootroot00000000000000#include #include #include #include #include "gverb.h" void run(const char *desc); #define rdtscll(val) __asm__ __volatile__("rdtsc" : "=A" (val)) #define SIZE 48000 float in[SIZE], out[2][SIZE]; ty_gverb *verb; int main(int argc, char *argv[]) { long long then, now; unsigned int i; float v; verb = gverb_new(48000, 300.0f, 50.0f, 7.0f, 0.5f, 15.0f, 0.5f, 0.5f, 0.5f); for (i=0; i RAND_MAX / 5) { v *= -1.0f; } v *= -1.0f; in[i] = 1.0f; } run("+0dB pulse constant"); for (i=0; i #include #include #include #include "gverbdsp.h" #include "gverb.h" #include "../ladspa-util.h" ty_gverb *gverb_new(int srate, float maxroomsize, float roomsize, float revtime, float damping, float spread, float inputbandwidth, float earlylevel, float taillevel) { ty_gverb *p; float ga,gb,gt; int i,n; float r; float diffscale; int a,b,c,cc,d,dd,e; float spread1,spread2; p = (ty_gverb *)malloc(sizeof(ty_gverb)); p->rate = srate; p->fdndamping = damping; p->maxroomsize = maxroomsize; p->roomsize = roomsize; p->revtime = revtime; p->earlylevel = earlylevel; p->taillevel = taillevel; p->maxdelay = p->rate*p->maxroomsize/340.0; p->largestdelay = p->rate*p->roomsize/340.0; /* Input damper */ p->inputbandwidth = inputbandwidth; p->inputdamper = damper_make(1.0 - p->inputbandwidth); /* FDN section */ p->fdndels = (ty_fixeddelay **)calloc(FDNORDER, sizeof(ty_fixeddelay *)); for(i = 0; i < FDNORDER; i++) { p->fdndels[i] = fixeddelay_make((int)p->maxdelay+1000); } p->fdngains = (float *)calloc(FDNORDER, sizeof(float)); p->fdnlens = (int *)calloc(FDNORDER, sizeof(int)); p->fdndamps = (ty_damper **)calloc(FDNORDER, sizeof(ty_damper *)); for(i = 0; i < FDNORDER; i++) { p->fdndamps[i] = damper_make(p->fdndamping); } ga = 60.0; gt = p->revtime; ga = powf(10.0f,-ga/20.0f); n = p->rate*gt; p->alpha = pow((double)ga, 1.0/(double)n); gb = 0.0; for(i = 0; i < FDNORDER; i++) { if (i == 0) gb = 1.000000*p->largestdelay; if (i == 1) gb = 0.816490*p->largestdelay; if (i == 2) gb = 0.707100*p->largestdelay; if (i == 3) gb = 0.632450*p->largestdelay; #if 0 p->fdnlens[i] = nearest_prime((int)gb, 0.5); #else p->fdnlens[i] = f_round(gb); #endif p->fdngains[i] = -powf((float)p->alpha,p->fdnlens[i]); } p->d = (float *)calloc(FDNORDER, sizeof(float)); p->u = (float *)calloc(FDNORDER, sizeof(float)); p->f = (float *)calloc(FDNORDER, sizeof(float)); /* Diffuser section */ diffscale = (float)p->fdnlens[3]/(210+159+562+410); spread1 = spread; spread2 = 3.0*spread; b = 210; r = 0.125541; a = spread1*r; c = 210+159+a; cc = c-b; r = 0.854046; a = spread2*r; d = 210+159+562+a; dd = d-c; e = 1341-d; p->ldifs = (ty_diffuser **)calloc(4, sizeof(ty_diffuser *)); p->ldifs[0] = diffuser_make((int)(diffscale*b),0.75); p->ldifs[1] = diffuser_make((int)(diffscale*cc),0.75); p->ldifs[2] = diffuser_make((int)(diffscale*dd),0.625); p->ldifs[3] = diffuser_make((int)(diffscale*e),0.625); b = 210; r = -0.568366; a = spread1*r; c = 210+159+a; cc = c-b; r = -0.126815; a = spread2*r; d = 210+159+562+a; dd = d-c; e = 1341-d; p->rdifs = (ty_diffuser **)calloc(4, sizeof(ty_diffuser *)); p->rdifs[0] = diffuser_make((int)(diffscale*b),0.75); p->rdifs[1] = diffuser_make((int)(diffscale*cc),0.75); p->rdifs[2] = diffuser_make((int)(diffscale*dd),0.625); p->rdifs[3] = diffuser_make((int)(diffscale*e),0.625); /* Tapped delay section */ p->tapdelay = fixeddelay_make(44000); p->taps = (int *)calloc(FDNORDER, sizeof(int)); p->tapgains = (float *)calloc(FDNORDER, sizeof(float)); p->taps[0] = 5+0.410*p->largestdelay; p->taps[1] = 5+0.300*p->largestdelay; p->taps[2] = 5+0.155*p->largestdelay; p->taps[3] = 5+0.000*p->largestdelay; for(i = 0; i < FDNORDER; i++) { p->tapgains[i] = pow(p->alpha,(double)p->taps[i]); } return(p); } void gverb_free(ty_gverb *p) { int i; damper_free(p->inputdamper); for(i = 0; i < FDNORDER; i++) { fixeddelay_free(p->fdndels[i]); damper_free(p->fdndamps[i]); diffuser_free(p->ldifs[i]); diffuser_free(p->rdifs[i]); } free(p->fdndels); free(p->fdngains); free(p->fdnlens); free(p->fdndamps); free(p->d); free(p->u); free(p->f); free(p->ldifs); free(p->rdifs); free(p->taps); free(p->tapgains); fixeddelay_free(p->tapdelay); free(p); } void gverb_flush(ty_gverb *p) { int i; damper_flush(p->inputdamper); for(i = 0; i < FDNORDER; i++) { fixeddelay_flush(p->fdndels[i]); damper_flush(p->fdndamps[i]); diffuser_flush(p->ldifs[i]); diffuser_flush(p->rdifs[i]); } memset(p->d, 0, FDNORDER * sizeof(float)); memset(p->u, 0, FDNORDER * sizeof(float)); memset(p->f, 0, FDNORDER * sizeof(float)); fixeddelay_flush(p->tapdelay); } /* swh: other functions are now in the .h file for inlining */ ladspa-0.4.17/gverb/gverb.h000066400000000000000000000140311300111216200154140ustar00rootroot00000000000000/* Copyright (C) 1999 Juhana Sadeharju kouhia at nic.funet.fi This program is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. This program is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with this program; if not, write to the Free Software Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */ #ifndef GVERB_H #define GVERB_H #include #include #include #include "gverbdsp.h" #include "gverb.h" #include "../ladspa-util.h" #define FDNORDER 4 typedef struct { int rate; float inputbandwidth; float taillevel; float earlylevel; ty_damper *inputdamper; float maxroomsize; float roomsize; float revtime; float maxdelay; float largestdelay; ty_fixeddelay **fdndels; float *fdngains; int *fdnlens; ty_damper **fdndamps; float fdndamping; ty_diffuser **ldifs; ty_diffuser **rdifs; ty_fixeddelay *tapdelay; int *taps; float *tapgains; float *d; float *u; float *f; double alpha; } ty_gverb; ty_gverb *gverb_new(int, float, float, float, float, float, float, float, float); void gverb_free(ty_gverb *); void gverb_flush(ty_gverb *); static void gverb_do(ty_gverb *, float, float *, float *); static void gverb_set_roomsize(ty_gverb *, float); static void gverb_set_revtime(ty_gverb *, float); static void gverb_set_damping(ty_gverb *, float); static void gverb_set_inputbandwidth(ty_gverb *, float); static void gverb_set_earlylevel(ty_gverb *, float); static void gverb_set_taillevel(ty_gverb *, float); /* * This FDN reverb can be made smoother by setting matrix elements at the * diagonal and near of it to zero or nearly zero. By setting diagonals to zero * means we remove the effect of the parallel comb structure from the * reverberation. A comb generates uniform impulse stream to the reverberation * impulse response, and thus it is not good. By setting near diagonal elements * to zero means we remove delay sequences having consequtive delays of the * similar lenths, when the delays are in sorted in length with respect to * matrix element index. The matrix described here could be generated by * differencing Rocchesso's circulant matrix at max diffuse value and at low * diffuse value (approaching parallel combs). * * Example 1: * Set a(k,k), for all k, equal to 0. * * Example 2: * Set a(k,k), a(k,k-1) and a(k,k+1) equal to 0. * * Example 3: The transition to zero gains could be smooth as well. * a(k,k-1) and a(k,k+1) could be 0.3, and a(k,k-2) and a(k,k+2) could * be 0.5, say. */ static inline void gverb_fdnmatrix(float *a, float *b) { const float dl0 = a[0], dl1 = a[1], dl2 = a[2], dl3 = a[3]; b[0] = 0.5f*(+dl0 + dl1 - dl2 - dl3); b[1] = 0.5f*(+dl0 - dl1 - dl2 + dl3); b[2] = 0.5f*(-dl0 + dl1 - dl2 + dl3); b[3] = 0.5f*(+dl0 + dl1 + dl2 + dl3); } static inline void gverb_do(ty_gverb *p, float x, float *yl, float *yr) { float z; unsigned int i; float lsum,rsum,sum,sign; if (isnan(x) || fabsf(x) > 100000.0f) { x = 0.0f; } z = damper_do(p->inputdamper, x); z = diffuser_do(p->ldifs[0],z); for(i = 0; i < FDNORDER; i++) { p->u[i] = p->tapgains[i]*fixeddelay_read(p->tapdelay,p->taps[i]); } fixeddelay_write(p->tapdelay,z); for(i = 0; i < FDNORDER; i++) { p->d[i] = damper_do(p->fdndamps[i], p->fdngains[i]*fixeddelay_read(p->fdndels[i], p->fdnlens[i])); } sum = 0.0f; sign = 1.0f; for(i = 0; i < FDNORDER; i++) { sum += sign*(p->taillevel*p->d[i] + p->earlylevel*p->u[i]); sign = -sign; } sum += x*p->earlylevel; lsum = sum; rsum = sum; gverb_fdnmatrix(p->d,p->f); for(i = 0; i < FDNORDER; i++) { fixeddelay_write(p->fdndels[i],p->u[i]+p->f[i]); } lsum = diffuser_do(p->ldifs[1],lsum); lsum = diffuser_do(p->ldifs[2],lsum); lsum = diffuser_do(p->ldifs[3],lsum); rsum = diffuser_do(p->rdifs[1],rsum); rsum = diffuser_do(p->rdifs[2],rsum); rsum = diffuser_do(p->rdifs[3],rsum); *yl = lsum; *yr = rsum; } static inline void gverb_set_roomsize(ty_gverb *p, const float a) { unsigned int i; if (a <= 1.0 || isnan(a)) { p->roomsize = 1.0; } else { p->roomsize = a; } p->largestdelay = p->rate * p->roomsize * 0.00294f; p->fdnlens[0] = f_round(1.000000f*p->largestdelay); p->fdnlens[1] = f_round(0.816490f*p->largestdelay); p->fdnlens[2] = f_round(0.707100f*p->largestdelay); p->fdnlens[3] = f_round(0.632450f*p->largestdelay); for(i = 0; i < FDNORDER; i++) { p->fdngains[i] = -powf((float)p->alpha, p->fdnlens[i]); } p->taps[0] = 5+f_round(0.410f*p->largestdelay); p->taps[1] = 5+f_round(0.300f*p->largestdelay); p->taps[2] = 5+f_round(0.155f*p->largestdelay); p->taps[3] = 5+f_round(0.000f*p->largestdelay); for(i = 0; i < FDNORDER; i++) { p->tapgains[i] = powf((float)p->alpha, p->taps[i]); } } static inline void gverb_set_revtime(ty_gverb *p,float a) { float ga,gt; double n; unsigned int i; p->revtime = a; ga = 60.0; gt = p->revtime; ga = powf(10.0f,-ga/20.0f); n = p->rate*gt; p->alpha = (double)powf(ga,1.0f/n); for(i = 0; i < FDNORDER; i++) { p->fdngains[i] = -powf((float)p->alpha, p->fdnlens[i]); } } static inline void gverb_set_damping(ty_gverb *p,float a) { unsigned int i; p->fdndamping = a; for(i = 0; i < FDNORDER; i++) { damper_set(p->fdndamps[i],p->fdndamping); } } static inline void gverb_set_inputbandwidth(ty_gverb *p,float a) { p->inputbandwidth = a; damper_set(p->inputdamper,1.0 - p->inputbandwidth); } static inline void gverb_set_earlylevel(ty_gverb *p,float a) { p->earlylevel = a; } static inline void gverb_set_taillevel(ty_gverb *p,float a) { p->taillevel = a; } #endif ladspa-0.4.17/gverb/gverbdsp.c000066400000000000000000000052321300111216200161210ustar00rootroot00000000000000 /* Copyright (C) 1999 Juhana Sadeharju kouhia at nic.funet.fi This program is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. This program is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with this program; if not, write to the Free Software Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */ #include #include #include #include #include "gverbdsp.h" #define TRUE 1 #define FALSE 0 ty_diffuser *diffuser_make(int size, float coeff) { ty_diffuser *p; int i; p = (ty_diffuser *)malloc(sizeof(ty_diffuser)); p->size = size; p->coeff = coeff; p->idx = 0; p->buf = (float *)malloc(size*sizeof(float)); for (i = 0; i < size; i++) p->buf[i] = 0.0; return(p); } void diffuser_free(ty_diffuser *p) { free(p->buf); free(p); } void diffuser_flush(ty_diffuser *p) { memset(p->buf, 0, p->size * sizeof(float)); } ty_damper *damper_make(float damping) { ty_damper *p; p = (ty_damper *)malloc(sizeof(ty_damper)); p->damping = damping; p->delay = 0.0f; return(p); } void damper_free(ty_damper *p) { free(p); } void damper_flush(ty_damper *p) { p->delay = 0.0f; } ty_fixeddelay *fixeddelay_make(int size) { ty_fixeddelay *p; int i; p = (ty_fixeddelay *)malloc(sizeof(ty_fixeddelay)); p->size = size; p->idx = 0; p->buf = (float *)malloc(size*sizeof(float)); for (i = 0; i < size; i++) p->buf[i] = 0.0; return(p); } void fixeddelay_free(ty_fixeddelay *p) { free(p->buf); free(p); } void fixeddelay_flush(ty_fixeddelay *p) { memset(p->buf, 0, p->size * sizeof(float)); } int isprime(int n) { unsigned int i; const unsigned int lim = (int)sqrtf((float)n); if (n == 2) return(TRUE); if ((n & 1) == 0) return(FALSE); for(i = 3; i <= lim; i += 2) if ((n % i) == 0) return(FALSE); return(TRUE); } int nearest_prime(int n, float rerror) /* relative error; new prime will be in range * [n-n*rerror, n+n*rerror]; */ { int bound,k; if (isprime(n)) return(n); /* assume n is large enough and n*rerror enough smaller than n */ bound = n*rerror; for(k = 1; k <= bound; k++) { if (isprime(n+k)) return(n+k); if (isprime(n-k)) return(n-k); } return(-1); } ladspa-0.4.17/gverb/gverbdsp.h000066400000000000000000000031411300111216200161230ustar00rootroot00000000000000 #ifndef GVERBDSP_H #define GVERBDSP_H #include "../ladspa-util.h" typedef struct { int size; int idx; float *buf; } ty_fixeddelay; typedef struct { int size; float coeff; int idx; float *buf; } ty_diffuser; typedef struct { float damping; float delay; } ty_damper; ty_diffuser *diffuser_make(int, float); void diffuser_free(ty_diffuser *); void diffuser_flush(ty_diffuser *); //float diffuser_do(ty_diffuser *, float); ty_damper *damper_make(float); void damper_free(ty_damper *); void damper_flush(ty_damper *); //void damper_set(ty_damper *, float); //float damper_do(ty_damper *, float); ty_fixeddelay *fixeddelay_make(int); void fixeddelay_free(ty_fixeddelay *); void fixeddelay_flush(ty_fixeddelay *); //float fixeddelay_read(ty_fixeddelay *, int); //void fixeddelay_write(ty_fixeddelay *, float); int isprime(int); int nearest_prime(int, float); static inline float diffuser_do(ty_diffuser *p, float x) { float y,w; w = x - p->buf[p->idx]*p->coeff; w = flush_to_zero(w); y = p->buf[p->idx] + w*p->coeff; p->buf[p->idx] = w; p->idx = (p->idx + 1) % p->size; return(y); } static inline float fixeddelay_read(ty_fixeddelay *p, int n) { int i; i = (p->idx - n + p->size) % p->size; return(p->buf[i]); } static inline void fixeddelay_write(ty_fixeddelay *p, float x) { p->buf[p->idx] = x; p->idx = (p->idx + 1) % p->size; } static inline void damper_set(ty_damper *p, float damping) { p->damping = damping; } static inline float damper_do(ty_damper *p, float x) { float y; y = x*(1.0-p->damping) + p->delay*p->damping; p->delay = y; return(y); } #endif ladspa-0.4.17/gverb_1216.xml000066400000000000000000000110031300111216200153250ustar00rootroot00000000000000 /* GVerb algorithm designed and implemented by Juhana Sadeharju. LADSPA implementation and GVerb speeds ups by Steve Harris. Comments and suggestions should be mailed to Juhana Sadeharju (kouhia at nic funet fi). */ #include "ladspa-util.h" #include "gverb/gverbdsp.h" #include "gverb/gverb.h" GVerb

A mono in, stereo out reverb implementation by Juhana Sadeharju (kouhia at nic.funet.fi). I ported it to LADSPA and did some testing.

Please contact Juhana directly regarding any bugs you find.

verb); ]]> verb); ]]> Roomsize (m)

The size of the room, in meters. Excessivly large, and excessivly small values will make it sound a bit unrealistic.

Values of around 30 sound good.

Reverb time (s)

Reverb decay time, in seconds. 7 is a good place to start.

Damping

This controls the high frequency damping (a lowpass filter), values near 1 will make it sound very bright, values near 0 will make it sound very dark.

Input bandwidth

This is like a damping control for the input, it has a similar effect to the damping control, but is subtly different.

Dry signal level (dB)

The amount of dry signal to be mixed with the reverberated signal.

Early reflection level (dB)

The quantity of early reflections (scatter reflections directly from the source). Think of Lexicons ambiance patches.

Tail level (dB)

The level of the classic reverb tail reflections.

Input Left output Right output
ladspa-0.4.17/hard_limiter_1413.xml000066400000000000000000000032361300111216200166730ustar00rootroot00000000000000 #include "ladspa-util.h" ]]> Hard Limiter

Brick hard limiter with residue mixer.

limit_g ? data - limit_g : 0.0; data -= residue; buffer_write(output[i], sign * (wet_gain * data + res_gain * residue)); } ]]> dB limit

Wet level

Output level for limited signal.

Residue level

Output level for residue signal.

Input Output
ladspa-0.4.17/harmonic_gen_1220.xml000066400000000000000000000134701300111216200166560ustar00rootroot00000000000000 = 1; j--) { for (k = HARMONICS - j; k >= 1; k--) { sv = d[k]; d[k] = 2.0 * d[k - 1] - dd[k]; dd[k] = sv; } sv = d[0]; d[0] = -dd[0] + c[j]; dd[0] = sv; } for (j = HARMONICS - 1; j >= 1; j--) { d[j] = d[j - 1] - dd[j]; } d[0] = -dd[0] + 0.5 * c[0]; } ]]> Harmonic generator

\subsubsection{What does it do?}

Allows you to add harmonics and remove the fundamental from any audio signal.

\subsubsection{Known bugs}

There is no bandwith limiting filter on the output, so it is easy to create excessively high frequency harmonics that could cause aliasing problems. In practice this doesn't seem to be a serious problem however.

\subsubsection{Examples}

There are many interesting effects you can achieve with sinewaves, one example is producing bandlimited squarewaves from sinewaves. To do this set the parameters to 1, 0, -0.3333, 0, 0.2, 0, -0.14285, 0, 0.11111.

To get a triangle like signal use 1, 0, -0.3333, 0, -0.2, 0, -0.14285, 0, -0.11111.

itm1 = itm1; plugin_data->otm1 = otm1; ]]> Fundamental magnitude

The amplitude of the fundamental of the signal, reduce it to 0 to remove the base signal altogether, or -1 to phase invert it.

2nd harmonic magnitude

The 2nd harmonic, its frequency is twice the frequency of the fundamental.

Even harmonics add a distorted feel to the sound, valve (tube) amplifiers introduce distortions at all the harmonics.

3rd harmonic magnitude

The 3rd harmonic, its frequency is three times the frequency of the fundamental.

Transistor amplifiers only introduce distortion into the odd harmonics.

4th harmonic magnitude 5th harmonic magnitude 6th harmonic magnitude 7th harmonic magnitude 8th harmonic magnitude 9th harmonic magnitude 10th harmonic magnitude Input Output
ladspa-0.4.17/hermes_filter_1200.xml000066400000000000000000000502661300111216200170570ustar00rootroot00000000000000 -CLIP)) { return sc_in; } else if (sc_in > 0.0f) { return MAX_AMP - (CLIP_A / (CLIP_B + sc_in)); } else { return -(MAX_AMP - (CLIP_A / (CLIP_B - sc_in))); } } /* Store data in SVF struct, takes the sampling frequency, cutoff frequency and Q, and fills in the structure passed */ inline void setup_svf(sv_filter *sv, float fs, float fc, float q, int t) { sv->f = 2.0f * sinf(M_PI * fc / (float)(fs * F_R)); sv->q = 2.0f * cosf(powf(q, 0.1f) * M_PI * 0.5f); sv->qnrm = sqrtf(sv->q*0.5f + 0.01f); switch(t) { case F_LP: sv->op = &(sv->l); break; case F_HP: sv->op = &(sv->h); break; case F_BP: sv->op = &(sv->b); break; case F_BR: sv->op = &(sv->n); break; default: sv->op = &(sv->p); } } /* Change the frequency of a running SVF */ inline void setup_f_svf(sv_filter *sv, const float fs, const float fc) { sv->f = 2.0f * sin(M_PI * fc / ((float)(fs * F_R))); } /* Run one sample through the SV filter. Filter is by andy@vellocet */ static inline float run_svf(sv_filter *sv, float in) { float out; int i; in = sv->qnrm * in ; for (i=0; i < F_R; i++) { // only needed for pentium chips in = flush_to_zero(in); sv->l = flush_to_zero(sv->l); // very slight waveshape for extra stability sv->b = sv->b - sv->b * sv->b * sv->b * 0.001f; // regular state variable code here // the notch and peaking outputs are optional sv->h = in - sv->l - sv->q * sv->b; sv->b = sv->b + sv->f * sv->h; sv->l = sv->l + sv->f * sv->b; sv->n = sv->l + sv->h; sv->p = sv->l - sv->h; out = *(sv->op); in = out; } return out; } static inline int wave_tbl(const float wave) { switch (f_round(wave)) { case 0: return BLO_SINE; break; case 1: return BLO_TRI; break; case 2: return BLO_SAW; break; case 3: return BLO_SQUARE; break; } return NOISE; } ]]> Hermes Filter

This plugin is a simulation of a modern analogue synth called a Pro Tone, with some extra features bolted on, like a crossover. I tried to make it as comprehensive as possible, without requiring ludicrous amounts of CPU juice.

N.B. as far as I know, noone has tried to use this (I certainly haven't), so it may be full of bugs and what not. The parameters are all undocumented, but there is a diagram of the routing on the website. Without a custom interface however it would be very hard to use.

Historical note: the name is a bad pun, it comes from the name Hermes Trimegistus given to the Egyptian god Thoth by the greeks, it means Thrice Blessed, or something similar.

long i; sample_rate = s_rate; count = 0; tables = blo_h_tables_new(1024); osc1_d = blo_h_new(tables, BLO_SINE, (float)s_rate); osc2_d = blo_h_new(tables, BLO_SINE, (float)s_rate); lfo1_d = blo_h_new(tables, BLO_SINE, (float)s_rate); lfo2_d = blo_h_new(tables, BLO_SINE, (float)s_rate); xover_b1_data = calloc(1, sizeof(sv_filter)); xover_b2_data = calloc(1, sizeof(sv_filter)); dela_data = malloc(3 * sizeof(float)); dela_pos = malloc(3 * sizeof(int)); filt_data = malloc(3 * sizeof(sv_filter *)); for (i = 0; i < 3; i++) { dela_data[i] = malloc(sample_rate * 2 * sizeof(float)); dela_pos[i] = 0; filt_data[i] = calloc(1, sizeof(sv_filter)); } lfo1 = 0.0f; lfo2 = 0.0f; lfo1_phase = 0.0f; lfo2_phase = 0.0f; setup_svf(filt_data[0], 0, 0, 0, 0); setup_svf(filt_data[1], 0, 0, 0, 0); setup_svf(filt_data[2], 0, 0, 0, 0); setup_svf(xover_b1_data, sample_rate, 1000.0, 0.0, F_HP); setup_svf(xover_b2_data, sample_rate, 100.0, 0.0, F_LP); memset(dela_data[0], 0, sample_rate * 2 * sizeof(float)); memset(dela_data[1], 0, sample_rate * 2 * sizeof(float)); memset(dela_data[2], 0, sample_rate * 2 * sizeof(float)); dela_pos[0] = 0; dela_pos[1] = 0; dela_pos[2] = 0; /* osc1_d->ph.all = 0; osc2_d->ph.all = 0; lfo1_d->ph.all = 0; lfo2_d->ph.all = 0; */ count = 0; lfo1 = 0.0f; lfo2 = 0.0f; lfo1_phase = 0.0f; lfo2_phase = 0.0f; free(plugin_data->filt_data[0]); free(plugin_data->filt_data[1]); free(plugin_data->filt_data[2]); free(plugin_data->dela_data[0]); free(plugin_data->dela_data[1]); free(plugin_data->dela_data[2]); free(plugin_data->filt_data); free(plugin_data->dela_data); free(plugin_data->dela_pos); free(plugin_data->xover_b1_data); free(plugin_data->xover_b2_data); blo_h_free(plugin_data->osc1_d); blo_h_free(plugin_data->osc2_d); blo_h_free(plugin_data->lfo1_d); blo_h_free(plugin_data->lfo2_d); blo_h_tables_free(plugin_data->tables); sample_rate * 2 || dela_offset[i] < 0) { dela_offset[i] = 0; } dela[i] = 0.0f; filt_t[i] = 0; } // Convert dB gains to coefficients osc1_gain = DB_CO(osc1_gain_db); osc2_gain = DB_CO(osc2_gain_db); in_gain = DB_CO(in_gain_db); rm1_gain = DB_CO(rm1_gain_db); rm2_gain = DB_CO(rm2_gain_db); rm3_gain = DB_CO(rm3_gain_db); band_gain[0] = DB_CO(band1_gain_db); band_gain[1] = DB_CO(band2_gain_db); band_gain[2] = DB_CO(band3_gain_db); osc1_d->wave = wave_tbl(osc1_wave); osc2_d->wave = wave_tbl(osc2_wave); lfo1_d->wave = wave_tbl(lfo1_wave); lfo2_d->wave = wave_tbl(lfo2_wave); blo_hd_set_freq(osc1_d, osc1_freq); blo_hd_set_freq(osc2_d, osc2_freq); blo_hd_set_freq(lfo1_d, lfo1_freq * 16); blo_hd_set_freq(lfo2_d, lfo2_freq * 16); #define SETUP_F(n,f,q,t) setup_svf(filt_data[n], sample_rate, f, q, (int)t) // Set filter stuff SETUP_F(0, filt1_freq, filt1_q, filt1_type); SETUP_F(1, filt2_freq, filt2_q, filt2_type); SETUP_F(2, filt3_freq, filt3_q, filt3_type); filt_freq[0] = filt1_freq; filt_freq[1] = filt2_freq; filt_freq[2] = filt3_freq; filt_res[0] = filt1_res; filt_res[1] = filt2_res; filt_res[2] = filt3_res; filt_lfo1[0] = filt1_lfo1; filt_lfo1[1] = filt2_lfo1; filt_lfo1[2] = filt3_lfo1; filt_lfo2[0] = filt1_lfo2; filt_lfo2[1] = filt2_lfo2; filt_lfo2[2] = filt3_lfo2; // Setup distortions drive[0] = drive1; drive[1] = drive2; drive[2] = drive3; // Setup delays dela_wet[0] = dela1_wet; dela_wet[1] = dela2_wet; dela_wet[2] = dela3_wet; dela_fb[0] = dela1_fb; dela_fb[1] = dela2_fb; dela_fb[2] = dela3_fb; tables = tables; // To shut up gcc for (pos = 0; pos < sample_count; pos++) { count++; // Count of number of samples processed // Calculate oscilator values for this sample if (osc1_d->wave == NOISE) { osc1 = rand() * (0.5f/(float)RAND_MAX) - 1.0f; } else { osc1 = blo_hd_run_lin(osc1_d); } if (osc2_d->wave == NOISE) { osc2 = rand() * (0.5f/(float)RAND_MAX) - 1.0f; } else { osc2 = blo_hd_run_lin(osc2_d); } // Calculate LFO values every 16 samples if ((count & 15) == 1) { // Calculate lfo values if (lfo1_d->wave == NOISE) { lfo1_phase += lfo1_freq; if (lfo1_phase >= sample_rate) { lfo1_phase -= sample_rate; lfo1 = rand() * (0.5f/(float)RAND_MAX) - 1.0f; } } else { lfo1 = blo_hd_run_lin(lfo1_d); } if (lfo2_d->wave == NOISE) { lfo2_phase += lfo1_freq; if (lfo2_phase >= sample_rate) { lfo2_phase -= sample_rate; lfo2 = rand() * (0.5f/(float)RAND_MAX) - 1.0f; } } else { lfo2 = blo_hd_run_lin(lfo2_d); } } in = input[pos]; rm1 = RINGMOD(osc2, osc1, rm1_depth); rm2 = RINGMOD(in, osc2, rm2_depth); rm3 = RINGMOD(osc1, in, rm3_depth); mixer1 = (osc1 * osc1_gain) + (osc2 * osc2_gain) + (in * in_gain) + (rm1 * rm1_gain) + (rm2 * rm2_gain) + (rm3 * rm3_gain); mixer1 = soft_clip(mixer1); // Higpass off the top band xover[0] = run_svf(xover_b1_data, mixer1); // Lowpass off the bottom band xover[2] = run_svf(xover_b2_data, mixer1); // The middle band is whats left xover[1] = mixer1 - xover[0] - xover[2]; mixer2 = 0.0f; for (i = 0; i < 3; i++) { dist[i] = xover[i]*(fabs(xover[i]) + drive1)/(xover[i]*xover[i] + (drive[i]-1)*fabs(xover[i]) + 1.0f); if (filt_t[i] == 0) { filt[i] = dist[i]; } else { if (count % 16 == 1) { setup_f_svf(filt_data[i], sample_rate, filt_freq[i]+LFO(filt_lfo1[i], filt_lfo2[i])); } filt[i] = run_svf(filt_data[i], dist[i] + (filt_res[i] * (filt_data[i])->b)); } dela[i] = (dela_data[i][dela_pos[i]] * dela_wet[i]) + filt[i]; dela_data[i][(dela_pos[i] + dela_offset[i]) % (2 * sample_rate)] = filt[i] + (dela[i] * dela_fb[i]); dela_pos[i] = (dela_pos[i] + 1) % (2 * sample_rate); mixer2 += band_gain[i] * dela[i]; } buffer_write(output[pos], soft_clip(mixer2)); } plugin_data->count = count; plugin_data->lfo1 = lfo1; plugin_data->lfo2 = lfo2; plugin_data->lfo1_phase = lfo1_phase; plugin_data->lfo2_phase = lfo2_phase; ]]> LFO1 freq (Hz) LFO1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h) LFO2 freq (Hz) LFO2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h) Osc1 freq (Hz) Osc1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise) Osc2 freq (Hz) Osc2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise) Ringmod 1 depth (0=none, 1=AM, 2=RM) Ringmod 2 depth (0=none, 1=AM, 2=RM) Ringmod 3 depth (0=none, 1=AM, 2=RM) Osc1 gain (dB) RM1 gain (dB) Osc2 gain (dB) RM2 gain (dB) Input gain (dB) RM3 gain (dB) Xover lower freq Xover upper freq Dist1 drive Dist2 drive Dist3 drive Filt1 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP) Filt1 freq Filt1 q Filt1 resonance Filt1 LFO1 level Filt1 LFO2 level Filt2 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP) Filt2 freq Filt2 q Filt2 resonance Filt2 LFO1 level Filt2 LFO2 level Filt3 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP) Filt3 freq Filt3 q Filt3 resonance Filt3 LFO1 level Filt3 LFO2 level Delay1 length (s) Delay1 feedback Delay1 wetness Delay2 length (s) Delay2 feedback Delay2 wetness Delay3 length (s) Delay3 feedback Delay3 wetness Band 1 gain (dB) Band 2 gain (dB) Band 3 gain (dB) Input Output
ladspa-0.4.17/highpass_iir_1890.xml000066400000000000000000000051461300111216200167140ustar00rootroot00000000000000 #include "config.h" #include "util/iir.h" Glame Highpass Filter

IIR highpass filter based using chebishev coefficients. The filter allows you to tweak the number of stages used for filtering. Every stage adds two more poles, which leads to a steeper dropoff. More stages need more CPU power. This filter was ported from the glame multitrack editor to ladspa.

sample_rate = s_rate; chebyshev(iirf, gt, 2*CLAMP((int)stages,1,10), IIR_STAGE_HIGHPASS, cutoff/(float)sample_rate, 0.5f); iir_process_buffer_ns_5(iirf, gt, input, output, sample_count,RUN_ADDING); // Unused variable (void)(run_adding_gain); gt = init_iir_stage(IIR_STAGE_HIGHPASS,10,3,2); iirf = init_iirf_t(gt); chebyshev(iirf, gt, 2*CLAMP((int)(*(plugin_data->stages)),1,10), IIR_STAGE_HIGHPASS, *(plugin_data->cutoff)/(float)sample_rate, 0.5f); free_iirf_t(plugin_data->iirf, plugin_data->gt); free_iir_stage(plugin_data->gt); Cutoff Frequency Stages(2 poles per stage) Input Output
ladspa-0.4.17/hilbert_1440.xml000066400000000000000000000074031300111216200156610ustar00rootroot00000000000000 #include "ladspa-util.h" #define D_SIZE 256 #define NZEROS 200 /* The non-zero taps of the Hilbert transformer */ static float xcoeffs[] = { +0.0008103736f, +0.0008457886f, +0.0009017196f, +0.0009793364f, +0.0010798341f, +0.0012044365f, +0.0013544008f, +0.0015310235f, +0.0017356466f, +0.0019696659f, +0.0022345404f, +0.0025318040f, +0.0028630784f, +0.0032300896f, +0.0036346867f, +0.0040788644f, +0.0045647903f, +0.0050948365f, +0.0056716186f, +0.0062980419f, +0.0069773575f, +0.0077132300f, +0.0085098208f, +0.0093718901f, +0.0103049226f, +0.0113152847f, +0.0124104218f, +0.0135991079f, +0.0148917649f, +0.0163008758f, +0.0178415242f, +0.0195321089f, +0.0213953037f, +0.0234593652f, +0.0257599469f, +0.0283426636f, +0.0312667947f, +0.0346107648f, +0.0384804823f, +0.0430224431f, +0.0484451086f, +0.0550553725f, +0.0633242001f, +0.0740128560f, +0.0884368322f, +0.1090816773f, +0.1412745301f, +0.1988673273f, +0.3326528346f, +0.9997730178f, -0.9997730178f, -0.3326528346f, -0.1988673273f, -0.1412745301f, -0.1090816773f, -0.0884368322f, -0.0740128560f, -0.0633242001f, -0.0550553725f, -0.0484451086f, -0.0430224431f, -0.0384804823f, -0.0346107648f, -0.0312667947f, -0.0283426636f, -0.0257599469f, -0.0234593652f, -0.0213953037f, -0.0195321089f, -0.0178415242f, -0.0163008758f, -0.0148917649f, -0.0135991079f, -0.0124104218f, -0.0113152847f, -0.0103049226f, -0.0093718901f, -0.0085098208f, -0.0077132300f, -0.0069773575f, -0.0062980419f, -0.0056716186f, -0.0050948365f, -0.0045647903f, -0.0040788644f, -0.0036346867f, -0.0032300896f, -0.0028630784f, -0.0025318040f, -0.0022345404f, -0.0019696659f, -0.0017356466f, -0.0015310235f, -0.0013544008f, -0.0012044365f, -0.0010798341f, -0.0009793364f, -0.0009017196f, -0.0008457886f, -0.0008103736f, }; Hilbert transformer

A Hilbert Transformer phase shifts the input signal by 90degrees. It outputs the 90 degree phase shifted signal and the unshifted signal, both delayed by an equivalent amount

This plugin was written for a demo at the LAD Meet in 2003.

delay); ]]> dptr = dptr; *(plugin_data->latency) = 99; ]]> Input 0deg output 90deg output latency
ladspa-0.4.17/imp_1199.xml000066400000000000000000000225011300111216200150240ustar00rootroot00000000000000 #include "config.h" #ifdef FFTW3 #include typedef fftwf_plan fft_plan; typedef float fftw_real; #define local_malloc(s) fftwf_malloc(s) #define local_free(s) fftwf_free(s) #else #ifdef EXPLICIT_S #include #else #include #endif //EXPLICIT_S typedef rfftw_plan fft_plan; #define local_malloc(s) malloc(s) #define local_free(s) free(s) #endif //FFTW3 #include "ladspa-util.h" #define MAX_FFT_LENGTH 16384 #define SEG_LENGTH 128 #define IMP_LENGTH(a) (sizeof(a) / sizeof(float)) #define MK_IMP(i) impulse2freq(c, i, IMP_LENGTH(i), impulse_freq[c]); c++ static inline void impulse2freq(int id, float *imp, unsigned int length, fftw_real *out); #include "impulses/all.h" fft_plan plan_rc[IMPULSES], plan_cr[IMPULSES]; static fftw_real *real_in, *real_out, *comp_in, *comp_out; unsigned int fft_length[IMPULSES]; #ifdef __clang__ static void impulse2freq(int id, float *imp, unsigned int length, fftw_real *out) #else static inline void impulse2freq(int id, float *imp, unsigned int length, fftw_real *out) #endif { fftw_real impulse_time[MAX_FFT_LENGTH]; #ifdef FFTW3 fft_plan tmp_plan; #endif unsigned int i, fftl = 128; while (fftl < length+SEG_LENGTH) { fftl *= 2; } fft_length[id] = fftl; #ifdef FFTW3 plan_rc[id] = fftwf_plan_r2r_1d(fftl, real_in, comp_out, FFTW_R2HC, FFTW_MEASURE); plan_cr[id] = fftwf_plan_r2r_1d(fftl, comp_in, real_out, FFTW_HC2R, FFTW_MEASURE); tmp_plan = fftwf_plan_r2r_1d(fftl, impulse_time, out, FFTW_R2HC, FFTW_MEASURE); #else plan_rc[id] = rfftw_create_plan(fftl, FFTW_REAL_TO_COMPLEX, FFTW_ESTIMATE); plan_cr[id] = rfftw_create_plan(fftl, FFTW_COMPLEX_TO_REAL, FFTW_ESTIMATE); #endif for (i=0; i=last) impulse_time[i] = 0.0f; } #ifdef FFTW3 fftwf_execute(tmp_plan); fftwf_destroy_plan(tmp_plan); #else rfftw_one(plan_rc[id], impulse_time, out); #endif } ]]> Impulse convolver

block_time); local_free(plugin_data->block_freq); local_free(plugin_data->op); local_free(plugin_data->overlap); local_free(plugin_data->opc); unsigned int i; for (i=0; iimpulse_freq[i]); } local_free(plugin_data->impulse_freq); ]]> = IMPULSES) { im = 0; } coef = pow(10.0f, gain * 0.05f) / (float)fft_length[im]; imp_freq = impulse_freq[im]; for (pos = 0; pos < sample_count; pos += SEG_LENGTH) { limit = pos + SEG_LENGTH; for (ipos = pos; ipos < sample_count && iposcount = 1; out_ptr = 0; } } } for (ipos = pos; ipos < sample_count && iposin_ptr = in_ptr; plugin_data->out_ptr = out_ptr; *(plugin_data->latency) = SEG_LENGTH; ]]> Impulse ID

Selects the impulse to convolve with. New impulses have to be compiled in.

High latency mode

If you are running with blocks that are not whole powers of two long, or you are hearing distortion, try changing this to 1.

Gain (dB)

Controls the gain of the output signal in dB's.

Input Output latency
ladspa-0.4.17/impulse_1885.xml000066400000000000000000000032071300111216200157210ustar00rootroot00000000000000 Nonbandlimited single-sample impulses (Frequency: Control)

Based on work by James McCartney in SuperCollider.

1.f) { phase -= 1.f; buffer_write(out[i], 1.f); } else { buffer_write(out[i], 0.f); } phase += phase_step; } plugin_data->phase = phase; ]]> Frequency (Hz)

Frequency for the impulses.

Output
ladspa-0.4.17/impulses/000077500000000000000000000000001300111216200146735ustar00rootroot00000000000000ladspa-0.4.17/impulses/01-unit.h000066400000000000000000000000311300111216200162330ustar00rootroot00000000000000float unit[] = { 1.0f }; ladspa-0.4.17/impulses/02-steves-flat.h000066400000000000000000001035411300111216200175240ustar00rootroot00000000000000float steves_flat[] = { -0.0000747256300, +0.0004581413362, -0.0004988051100, +0.0080212860617, +0.0409775662455, +0.0272593302189, -0.0347729749807, +0.0206228755550, +0.0830415514680, +0.0981127192346, +0.1165879969154, +0.0534580725429, -0.0129770915478, -0.0194366926723, +0.0335325785381, +0.0388072508561, -0.0213017054305, -0.0292409720411, +0.0075425029238, +0.0147545640387, -0.0226343413216, -0.0257136599758, -0.0429779903773, -0.0507456071427, -0.0301750856554, -0.0044625067799, +0.0074273297400, -0.0128299178065, -0.0208570418077, -0.0048472053918, +0.0133211840459, -0.0247062189553, -0.0180474936312, +0.0028139734788, 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+0.0002631192661, +0.0001400000000, +0.0000223853211, -0.0000168807339, +0.0000168807339, +0.0001288073394, +0.0002576146789, +0.0002855045872, +0.0002128440367, +0.0000447706422, -0.0001119266055, -0.0002576146789, -0.0003359633028, -0.0003471559633, -0.0002855045872, -0.0002128440367, -0.0001792660550, -0.0001680733945, -0.0001566972477, -0.0001288073394, -0.0000783486239 }; ladspa-0.4.17/impulses/all.h000066400000000000000000000034721300111216200156220ustar00rootroot00000000000000/* Generated file, do not edit */ #define IMPULSES 21 #include "impulses/01-unit.h" #include "impulses/02-steves-flat.h" #include "impulses/03-stk-m1.h" #include "impulses/04-fender-68-vibrolux-sm57.h" #include "impulses/05-fender-68-vibrolux-sm57-off.h" #include "impulses/06-fender-68-vibrolux-at4050.h" #include "impulses/07-fender-68-vibrolux-ui87.h" #include "impulses/08-fender-bassman-sm57.h" #include "impulses/09-fender-bassman-sm57-off.h" #include "impulses/10-fender-bassman-at4050.h" #include "impulses/11-fender-bassman-ui87.h" #include "impulses/12-fender-superchamp-sm57.h" #include "impulses/13-fender-superchamp-sm57-off.h" #include "impulses/14-fender-superchamp-at4050.h" #include "impulses/15-fender-superchamp-ui87.h" #include "impulses/16-marshall-jcm2000-sm57.h" #include "impulses/17-marshall-jcm2000-sm57-off.h" #include "impulses/18-marshall-plexi-sm57.h" #include "impulses/19-marshall-plexi-sm57-off.h" #include "impulses/20-matchless-chieftain-sm57.h" #include "impulses/21-matchless-chieftain-sm57-off.h" #ifdef __clang__ static void mk_imps(fftw_real **impulse_freq) #else static inline void mk_imps(fftw_real **impulse_freq) #endif { int c = 0; MK_IMP(unit); MK_IMP(steves_flat); MK_IMP(stk_m1); MK_IMP(fender_68_vibrolux_sm57); MK_IMP(fender_68_vibrolux_sm57_off); MK_IMP(fender_68_vibrolux_at4050); MK_IMP(fender_68_vibrolux_ui87); MK_IMP(fender_bassman_sm57); MK_IMP(fender_bassman_sm57_off); MK_IMP(fender_bassman_at4050); MK_IMP(fender_bassman_ui87); MK_IMP(fender_superchamp_sm57); MK_IMP(fender_superchamp_sm57_off); MK_IMP(fender_superchamp_at4050); MK_IMP(fender_superchamp_ui87); MK_IMP(marshall_jcm2000_sm57); MK_IMP(marshall_jcm2000_sm57_off); MK_IMP(marshall_plexi_sm57); MK_IMP(marshall_plexi_sm57_off); MK_IMP(matchless_chieftain_sm57); MK_IMP(matchless_chieftain_sm57_off); }; ladspa-0.4.17/impulses/mkall-h.sh000077500000000000000000000011641300111216200165610ustar00rootroot00000000000000#! echo "/* Generated file, do not edit */" > all.h echo "" >> all.h export count=`ls -1 [0-9][0-9]* | wc -l` echo "#define IMPULSES $count" >> all.h echo "" >> all.h ls -1 [0-9][0-9]* | awk '{print "#include \"impulses/" $0 "\""}' >> all.h echo "" >> all.h echo "#ifdef __clang__" >> all.h echo "static void mk_imps(fftw_real **impulse_freq)" >> all.h echo "#else" >> all.h echo "static inline void mk_imps(fftw_real **impulse_freq)" >> all.h echo "#endif" >> all.h echo "{" >> all.h echo " int c = 0;" >> all.h ls -1 [0-9][0-9]* | sed 's/...//;s/\.h//;s/-/_/g' | awk '{print "\tMK_IMP(" $0 ");"}' >> all.h echo "};" >> all.h ladspa-0.4.17/impulses/reorder.pl000077500000000000000000000002011300111216200166660ustar00rootroot00000000000000#!/usr/bin/perl $n = 1; while (<>) { chomp; $ns = sprintf("%02d", $n); $fr = $_; s/^../$ns/; print "mv $fr $_\n"; $n++; } ladspa-0.4.17/impulses/scale.pl000077500000000000000000000002431300111216200163210ustar00rootroot00000000000000#!/usr/bin/perl $scale = shift; while(<>) { s/([0-9.]+f)/&scale($1)/gxe; print; } sub scale { local ($val) = @_; return sprintf("%.13f", $val / $scale); } ladspa-0.4.17/install-sh000077500000000000000000000217701300111216200150450ustar00rootroot00000000000000#!/bin/sh # install - install a program, script, or datafile scriptversion=2004-02-15.20 # This originates from X11R5 (mit/util/scripts/install.sh), which was # later released in X11R6 (xc/config/util/install.sh) with the # following copyright and license. # # Copyright (C) 1994 X Consortium # # Permission is hereby granted, free of charge, to any person obtaining a copy # of this software and associated documentation files (the "Software"), to # deal in the Software without restriction, including without limitation the # rights to use, copy, modify, merge, publish, distribute, sublicense, and/or # sell copies of the Software, and to permit persons to whom the Software is # furnished to do so, subject to the following conditions: # # The above copyright notice and this permission notice shall be included in # all copies or substantial portions of the Software. # # THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR # IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, # FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE # X CONSORTIUM BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN # AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNEC- # TION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE. # # Except as contained in this notice, the name of the X Consortium shall not # be used in advertising or otherwise to promote the sale, use or other deal- # ings in this Software without prior written authorization from the X Consor- # tium. # # # FSF changes to this file are in the public domain. # # Calling this script install-sh is preferred over install.sh, to prevent # `make' implicit rules from creating a file called install from it # when there is no Makefile. # # This script is compatible with the BSD install script, but was written # from scratch. It can only install one file at a time, a restriction # shared with many OS's install programs. # set DOITPROG to echo to test this script # Don't use :- since 4.3BSD and earlier shells don't like it. doit="${DOITPROG-}" # put in absolute paths if you don't have them in your path; or use env. vars. mvprog="${MVPROG-mv}" cpprog="${CPPROG-cp}" chmodprog="${CHMODPROG-chmod}" chownprog="${CHOWNPROG-chown}" chgrpprog="${CHGRPPROG-chgrp}" stripprog="${STRIPPROG-strip}" rmprog="${RMPROG-rm}" mkdirprog="${MKDIRPROG-mkdir}" transformbasename= transform_arg= instcmd="$mvprog" chmodcmd="$chmodprog 0755" chowncmd= chgrpcmd= stripcmd= rmcmd="$rmprog -f" mvcmd="$mvprog" src= dst= dir_arg= usage="Usage: $0 [OPTION]... SRCFILE DSTFILE or: $0 [OPTION]... SRCFILES... DIRECTORY or: $0 -d DIRECTORIES... In the first form, install SRCFILE to DSTFILE, removing SRCFILE by default. In the second, create the directory path DIR. Options: -b=TRANSFORMBASENAME -c copy source (using $cpprog) instead of moving (using $mvprog). -d create directories instead of installing files. -g GROUP $chgrp installed files to GROUP. -m MODE $chmod installed files to MODE. -o USER $chown installed files to USER. -s strip installed files (using $stripprog). -t=TRANSFORM --help display this help and exit. --version display version info and exit. Environment variables override the default commands: CHGRPPROG CHMODPROG CHOWNPROG CPPROG MKDIRPROG MVPROG RMPROG STRIPPROG " while test -n "$1"; do case $1 in -b=*) transformbasename=`echo $1 | sed 's/-b=//'` shift continue;; -c) instcmd=$cpprog shift continue;; -d) dir_arg=true shift continue;; -g) chgrpcmd="$chgrpprog $2" shift shift continue;; --help) echo "$usage"; exit 0;; -m) chmodcmd="$chmodprog $2" shift shift continue;; -o) chowncmd="$chownprog $2" shift shift continue;; -s) stripcmd=$stripprog shift continue;; -t=*) transformarg=`echo $1 | sed 's/-t=//'` shift continue;; --version) echo "$0 $scriptversion"; exit 0;; *) # When -d is used, all remaining arguments are directories to create. test -n "$dir_arg" && break # Otherwise, the last argument is the destination. Remove it from $@. for arg do if test -n "$dstarg"; then # $@ is not empty: it contains at least $arg. set fnord "$@" "$dstarg" shift # fnord fi shift # arg dstarg=$arg done break;; esac done if test -z "$1"; then if test -z "$dir_arg"; then echo "$0: no input file specified." >&2 exit 1 fi # It's OK to call `install-sh -d' without argument. # This can happen when creating conditional directories. exit 0 fi for src do # Protect names starting with `-'. case $src in -*) src=./$src ;; esac if test -n "$dir_arg"; then dst=$src src= if test -d "$dst"; then instcmd=: chmodcmd= else instcmd=$mkdirprog fi else # Waiting for this to be detected by the "$instcmd $src $dsttmp" command # might cause directories to be created, which would be especially bad # if $src (and thus $dsttmp) contains '*'. if test ! -f "$src" && test ! -d "$src"; then echo "$0: $src does not exist." >&2 exit 1 fi if test -z "$dstarg"; then echo "$0: no destination specified." >&2 exit 1 fi dst=$dstarg # Protect names starting with `-'. case $dst in -*) dst=./$dst ;; esac # If destination is a directory, append the input filename; won't work # if double slashes aren't ignored. if test -d "$dst"; then dst=$dst/`basename "$src"` fi fi # This sed command emulates the dirname command. dstdir=`echo "$dst" | sed -e 's,[^/]*$,,;s,/$,,;s,^$,.,'` # Make sure that the destination directory exists. # Skip lots of stat calls in the usual case. if test ! -d "$dstdir"; then defaultIFS=' ' IFS="${IFS-$defaultIFS}" oIFS=$IFS # Some sh's can't handle IFS=/ for some reason. IFS='%' set - `echo "$dstdir" | sed -e 's@/@%@g' -e 's@^%@/@'` IFS=$oIFS pathcomp= while test $# -ne 0 ; do pathcomp=$pathcomp$1 shift if test ! -d "$pathcomp"; then $mkdirprog "$pathcomp" || lasterr=$? # mkdir can fail with a `File exist' error in case several # install-sh are creating the directory concurrently. This # is OK. test ! -d "$pathcomp" && { (exit ${lasterr-1}); exit; } fi pathcomp=$pathcomp/ done fi if test -n "$dir_arg"; then $doit $instcmd "$dst" \ && { test -z "$chowncmd" || $doit $chowncmd "$dst"; } \ && { test -z "$chgrpcmd" || $doit $chgrpcmd "$dst"; } \ && { test -z "$stripcmd" || $doit $stripcmd "$dst"; } \ && { test -z "$chmodcmd" || $doit $chmodcmd "$dst"; } else # If we're going to rename the final executable, determine the name now. if test -z "$transformarg"; then dstfile=`basename "$dst"` else dstfile=`basename "$dst" $transformbasename \ | sed $transformarg`$transformbasename fi # don't allow the sed command to completely eliminate the filename. test -z "$dstfile" && dstfile=`basename "$dst"` # Make a couple of temp file names in the proper directory. dsttmp=$dstdir/_inst.$$_ rmtmp=$dstdir/_rm.$$_ # Trap to clean up those temp files at exit. trap 'status=$?; rm -f "$dsttmp" "$rmtmp" && exit $status' 0 trap '(exit $?); exit' 1 2 13 15 # Move or copy the file name to the temp name $doit $instcmd "$src" "$dsttmp" && # and set any options; do chmod last to preserve setuid bits. # # If any of these fail, we abort the whole thing. If we want to # ignore errors from any of these, just make sure not to ignore # errors from the above "$doit $instcmd $src $dsttmp" command. # { test -z "$chowncmd" || $doit $chowncmd "$dsttmp"; } \ && { test -z "$chgrpcmd" || $doit $chgrpcmd "$dsttmp"; } \ && { test -z "$stripcmd" || $doit $stripcmd "$dsttmp"; } \ && { test -z "$chmodcmd" || $doit $chmodcmd "$dsttmp"; } && # Now remove or move aside any old file at destination location. We # try this two ways since rm can't unlink itself on some systems and # the destination file might be busy for other reasons. In this case, # the final cleanup might fail but the new file should still install # successfully. { if test -f "$dstdir/$dstfile"; then $doit $rmcmd -f "$dstdir/$dstfile" 2>/dev/null \ || $doit $mvcmd -f "$dstdir/$dstfile" "$rmtmp" 2>/dev/null \ || { echo "$0: cannot unlink or rename $dstdir/$dstfile" >&2 (exit 1); exit } else : fi } && # Now rename the file to the real destination. $doit $mvcmd "$dsttmp" "$dstdir/$dstfile" fi || { (exit 1); exit; } done # The final little trick to "correctly" pass the exit status to the exit trap. { (exit 0); exit } # Local variables: # eval: (add-hook 'write-file-hooks 'time-stamp) # time-stamp-start: "scriptversion=" # time-stamp-format: "%:y-%02m-%02d.%02H" # time-stamp-end: "$" # End: ladspa-0.4.17/inv_1429.xml000066400000000000000000000015741300111216200150360ustar00rootroot00000000000000 Inverter

A utility plugin that inverts the signal, also (wrongly) known as a 180 degree phase shift.

Input Output
ladspa-0.4.17/karaoke_1409.xml000066400000000000000000000027641300111216200156570ustar00rootroot00000000000000 Karaoke

Attempts to strip the vocals from a stereo signal.

Vocal volume (dB)

Controls the attenuation of the vocal (centre channel) in dB's.

The greater the attenuation the greater the loss of stereo field.

Left in Right in Left out Right out
ladspa-0.4.17/ladspa-swh.dtd000066400000000000000000000017141300111216200155750ustar00rootroot00000000000000 ladspa-0.4.17/ladspa-util.h000066400000000000000000000115151300111216200154250ustar00rootroot00000000000000/* Some misc util functions for audio DSP work, written by Steve Harris, * December 2000 * * steve@plugin.org.uk */ #ifndef LADSPA_UTIL_H #define LADSPA_UTIL_H #include #include #include "config.h" // 16.16 fixpoint typedef union { int32_t all; struct { #ifdef WORDS_BIGENDIAN int16_t in; uint16_t fr; #else uint16_t fr; int16_t in; #endif } part; } fixp16; // 32.32 fixpoint typedef union { int64_t all; struct { #ifdef WORDS_BIGENDIAN int32_t in; uint32_t fr; #else uint32_t fr; int32_t in; #endif } part; } fixp32; /* 32 bit "pointer cast" union */ typedef union { float f; int32_t i; } ls_pcast32; // Sometimes it doesn't get defined, even though it eists and C99 is declared long int lrintf (float x); // 1.0 / ln(2) #define LN2R 1.442695041f /* detet floating point denormal numbers by comparing them to the smallest * normal, crap, but reliable */ #define DN_CHECK(x, l) if (fabs(x) < 1e-38) printf("DN: "l"\n") // Denormalise floats, only actually needed for PIII and recent PowerPC //#define FLUSH_TO_ZERO(fv) (((*(unsigned int*)&(fv))&0x7f800000)==0)?0.0f:(fv) static inline float flush_to_zero(float f) { ls_pcast32 v; v.f = f; // original: return (v.i & 0x7f800000) == 0 ? 0.0f : f; // version from Tim Blechmann return (v.i & 0x7f800000) < 0x08000000 ? 0.0f : f; } static inline void round_to_zero(volatile float *f) { *f += 1e-18; *f -= 1e-18; } /* A set of branchless clipping operations from Laurent de Soras */ static inline float f_max(float x, float a) { x -= a; x += fabs(x); x *= 0.5; x += a; return x; } static inline float f_min(float x, float b) { x = b - x; x += fabs(x); x *= 0.5; x = b - x; return x; } static inline float f_clamp(float x, float a, float b) { const float x1 = fabs(x - a); const float x2 = fabs(x - b); x = x1 + a + b; x -= x2; x *= 0.5; return x; } // Limit a value to be l<=v<=u #define LIMIT(v,l,u) ((v)<(l)?(l):((v)>(u)?(u):(v))) // Truncate-to-zero modulo (ANSI C doesn't specify) will only work // if -m < v < 2m #define MOD(v,m) (v<0?v+m:(v>=m?v-m:v)) // Truncate-to-zero modulo (ANSI C doesn't specify) will only work // if v > -m and v < m #define NEG_MOD(v,m) ((v)<0?((v)+(m)):(v)) // Convert a value in dB's to a coefficent #define DB_CO(g) ((g) > -90.0f ? powf(10.0f, (g) * 0.05f) : 0.0f) #define CO_DB(v) (20.0f * log10f(v)) // Linearly interpolate [ = a * (1 - f) + b * f] #define LIN_INTERP(f,a,b) ((a) + (f) * ((b) - (a))) // Cubic interpolation function static inline float cube_interp(const float fr, const float inm1, const float in, const float inp1, const float inp2) { return in + 0.5f * fr * (inp1 - inm1 + fr * (4.0f * inp1 + 2.0f * inm1 - 5.0f * in - inp2 + fr * (3.0f * (in - inp1) - inm1 + inp2))); } /* fast sin^2 aproxiamtion, adapted from jan AT rpgfan's posting to the * music-dsp list */ static inline float f_sin_sq(float angle) { const float asqr = angle * angle; float result = -2.39e-08f; result *= asqr; result += 2.7526e-06f; result *= asqr; result -= 1.98409e-04f; result *= asqr; result += 8.3333315e-03f; result *= asqr; result -= 1.666666664e-01f; result *= asqr; result += 1.0f; result *= angle; return result * result; } #ifdef HAVE_LRINTF #define f_round(f) lrintf(f) #else // Round float to int using IEEE int* hack static inline int f_round(float f) { ls_pcast32 p; p.f = f; p.f += (3<<22); return p.i - 0x4b400000; } #endif // Truncate float to int static inline int f_trunc(float f) { return f_round(floorf(f)); } /* Andrew Simper's pow(2, x) aproximation from the music-dsp list */ #if 0 /* original */ static inline float f_pow2(float x) { long *px = (long*)(&x); // store address of float as long pointer const float tx = (x-0.5f) + (3<<22); // temporary value for truncation const long lx = *((long*)&tx) - 0x4b400000; // integer power of 2 const float dx = x-(float)(lx); // float remainder of power of 2 x = 1.0f + dx*(0.6960656421638072f + // cubic apporoximation of 2^x dx*(0.224494337302845f + // for x in the range [0, 1] dx*(0.07944023841053369f))); *px += (lx<<23); // add integer power of 2 to exponent return x; } #else /* union version */ static inline float f_pow2(float x) { ls_pcast32 *px, tx, lx; float dx; px = (ls_pcast32 *)&x; // store address of float as long pointer tx.f = (x-0.5f) + (3<<22); // temporary value for truncation lx.i = tx.i - 0x4b400000; // integer power of 2 dx = x - (float)lx.i; // float remainder of power of 2 x = 1.0f + dx * (0.6960656421638072f + // cubic apporoximation of 2^x dx * (0.224494337302845f + // for x in the range [0, 1] dx * (0.07944023841053369f))); (*px).i += (lx.i << 23); // add integer power of 2 to exponent return (*px).f; } #endif /* Fast exponentiation function, y = e^x */ #define f_exp(x) f_pow2(x * LN2R) #endif ladspa-0.4.17/ladspa.css000066400000000000000000000034671300111216200150220ustar00rootroot00000000000000/* CSS stylesheet */ ladspa:before { content: "LADSPA Plugin Details"; margin: 0.5em 0em; display: block; font-size: 16pt; font-weight: bold; font-family: helvetica; } ladspa { display: block; color: black; margin: 0em 0.5em 0.5em 0.5em; text-align: left; font-size: 10pt; background-color: white; } plugin > name { display: block; color: black; margin: 0.5em 0em; font-weight: bold; font-family: helvetica; font-size: 12pt; } plugin > name:after { content: " (ID " counters(id, ".") ")"; } port > name:before { content: "Port: "; } port > name { display: block; color: black; margin: 0.5em 0.5em; font-weight: bold; font-family: helvetica; font-size: 12pt; } port > range:before { display: block; margin: 0.5em 1em; content: "Range: " attr(min) " - " attr(max); font-size: 10pt; } range { display: block; } global { font-size: 10pt; } port:after { content: "Label: " attr(label) " (" attr(type) " " attr(dir) ")"; display: block; margin: 0.5em 1em; font-size: 10pt; } code:before { margin: 0em -0.5em; content: "Global code "; display: block; font-family: helvetica; font-weight: bold; font-size: 12pt; } code { font-size: 10pt; font-family: courier; display: block; white-space: pre; margin: 0.5em 1em; } callback:before { margin: 0em -0.5em; content: "Callback: " attr(event); display: block; font-family: helvetica; font-weight: bold; font-size: 12pt; } callback { font-size: 10pt; font-family: courier; display: block; white-space: pre; margin: 0.5em 1em; } meta.first { display: block; content: "Metadata"; } meta:after { margin: 0em 1em; text-transform: capitalize; content: attr(name) ": " attr(value); display: block; } meta { display: block; } p { display: block; margin: 0.5em 1em; } ladspa-0.4.17/ladspa.h000066400000000000000000000654671300111216200144710ustar00rootroot00000000000000/* ladspa.h Linux Audio Developer's Simple Plugin API Version 1.1[provisional, LGPL]. Copyright (C) 2000-2002 Richard W.E. Furse, Paul Barton-Davis, Stefan Westerfeld. This library is free software; you can redistribute it and/or modify it under the terms of the GNU Lesser General Public License as published by the Free Software Foundation; either version 2.1 of the License, or (at your option) any later version. This library is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU Lesser General Public License for more details. You should have received a copy of the GNU Lesser General Public License along with this library; if not, write to the Free Software Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA. */ #ifndef LADSPA_INCLUDED #define LADSPA_INCLUDED #ifdef __cplusplus extern "C" { #endif /*****************************************************************************/ /* Overview: There is a large number of synthesis packages in use or development on the Linux platform at this time. This API (`The Linux Audio Developer's Simple Plugin API') attempts to give programmers the ability to write simple `plugin' audio processors in C/C++ and link them dynamically (`plug') into a range of these packages (`hosts'). It should be possible for any host and any plugin to communicate completely through this interface. This API is deliberately short and simple. To achieve compatibility with a range of promising Linux sound synthesis packages it attempts to find the `greatest common divisor' in their logical behaviour. Having said this, certain limiting decisions are implicit, notably the use of a fixed type (LADSPA_Data) for all data transfer and absence of a parameterised `initialisation' phase. See below for the LADSPA_Data typedef. Plugins are expected to distinguish between control and audio data. Plugins have `ports' that are inputs or outputs for audio or control data and each plugin is `run' for a `block' corresponding to a short time interval measured in samples. Audio data is communicated using arrays of LADSPA_Data, allowing a block of audio to be processed by the plugin in a single pass. Control data is communicated using single LADSPA_Data values. Control data has a single value at the start of a call to the `run()' or `run_adding()' function, and may be considered to remain this value for its duration. The plugin may assume that all its input and output ports have been connected to the relevant data location (see the `connect_port()' function below) before it is asked to run. Plugins will reside in shared object files suitable for dynamic linking by dlopen() and family. The file will provide a number of `plugin types' that can be used to instantiate actual plugins (sometimes known as `plugin instances') that can be connected together to perform tasks. This API contains very limited error-handling. */ /*****************************************************************************/ /* Fundamental data type passed in and out of plugin. This data type is used to communicate audio samples and control values. It is assumed that the plugin will work sensibly given any numeric input value although it may have a preferred range (see hints below). For audio it is generally assumed that 1.0f is the `0dB' reference amplitude and is a `normal' signal level. */ typedef float LADSPA_Data; /*****************************************************************************/ /* Special Plugin Properties: Optional features of the plugin type are encapsulated in the LADSPA_Properties type. This is assembled by ORing individual properties together. */ typedef int LADSPA_Properties; /* Property LADSPA_PROPERTY_REALTIME indicates that the plugin has a real-time dependency (e.g. listens to a MIDI device) and so its output must not be cached or subject to significant latency. */ #define LADSPA_PROPERTY_REALTIME 0x1 /* Property LADSPA_PROPERTY_INPLACE_BROKEN indicates that the plugin may cease to work correctly if the host elects to use the same data location for both input and output (see connect_port()). This should be avoided as enabling this flag makes it impossible for hosts to use the plugin to process audio `in-place.' */ #define LADSPA_PROPERTY_INPLACE_BROKEN 0x2 /* Property LADSPA_PROPERTY_HARD_RT_CAPABLE indicates that the plugin is capable of running not only in a conventional host but also in a `hard real-time' environment. To qualify for this the plugin must satisfy all of the following: (1) The plugin must not use malloc(), free() or other heap memory management within its run() or run_adding() functions. All new memory used in run() must be managed via the stack. These restrictions only apply to the run() function. (2) The plugin will not attempt to make use of any library functions with the exceptions of functions in the ANSI standard C and C maths libraries, which the host is expected to provide. (3) The plugin will not access files, devices, pipes, sockets, IPC or any other mechanism that might result in process or thread blocking. (4) The plugin will take an amount of time to execute a run() or run_adding() call approximately of form (A+B*SampleCount) where A and B depend on the machine and host in use. This amount of time may not depend on input signals or plugin state. The host is left the responsibility to perform timings to estimate upper bounds for A and B. */ #define LADSPA_PROPERTY_HARD_RT_CAPABLE 0x4 #define LADSPA_IS_REALTIME(x) ((x) & LADSPA_PROPERTY_REALTIME) #define LADSPA_IS_INPLACE_BROKEN(x) ((x) & LADSPA_PROPERTY_INPLACE_BROKEN) #define LADSPA_IS_HARD_RT_CAPABLE(x) ((x) & LADSPA_PROPERTY_HARD_RT_CAPABLE) /*****************************************************************************/ /* Plugin Ports: Plugins have `ports' that are inputs or outputs for audio or data. Ports can communicate arrays of LADSPA_Data (for audio inputs/outputs) or single LADSPA_Data values (for control input/outputs). This information is encapsulated in the LADSPA_PortDescriptor type which is assembled by ORing individual properties together. Note that a port must be an input or an output port but not both and that a port must be a control or audio port but not both. */ typedef int LADSPA_PortDescriptor; /* Property LADSPA_PORT_INPUT indicates that the port is an input. */ #define LADSPA_PORT_INPUT 0x1 /* Property LADSPA_PORT_OUTPUT indicates that the port is an output. */ #define LADSPA_PORT_OUTPUT 0x2 /* Property LADSPA_PORT_CONTROL indicates that the port is a control port. */ #define LADSPA_PORT_CONTROL 0x4 /* Property LADSPA_PORT_AUDIO indicates that the port is a audio port. */ #define LADSPA_PORT_AUDIO 0x8 #define LADSPA_IS_PORT_INPUT(x) ((x) & LADSPA_PORT_INPUT) #define LADSPA_IS_PORT_OUTPUT(x) ((x) & LADSPA_PORT_OUTPUT) #define LADSPA_IS_PORT_CONTROL(x) ((x) & LADSPA_PORT_CONTROL) #define LADSPA_IS_PORT_AUDIO(x) ((x) & LADSPA_PORT_AUDIO) /*****************************************************************************/ /* Plugin Port Range Hints: The host may wish to provide a representation of data entering or leaving a plugin (e.g. to generate a GUI automatically). To make this more meaningful, the plugin should provide `hints' to the host describing the usual values taken by the data. Note that these are only hints. The host may ignore them and the plugin must not assume that data supplied to it is meaningful. If the plugin receives invalid input data it is expected to continue to run without failure and, where possible, produce a sensible output (e.g. a high-pass filter given a negative cutoff frequency might switch to an all-pass mode). Hints are meaningful for all input and output ports but hints for input control ports are expected to be particularly useful. More hint information is encapsulated in the LADSPA_PortRangeHintDescriptor type which is assembled by ORing individual hint types together. Hints may require further LowerBound and UpperBound information. All the hint information for a particular port is aggregated in the LADSPA_PortRangeHint structure. */ typedef int LADSPA_PortRangeHintDescriptor; /* Hint LADSPA_HINT_BOUNDED_BELOW indicates that the LowerBound field of the LADSPA_PortRangeHint should be considered meaningful. The value in this field should be considered the (inclusive) lower bound of the valid range. If LADSPA_HINT_SAMPLE_RATE is also specified then the value of LowerBound should be multiplied by the sample rate. */ #define LADSPA_HINT_BOUNDED_BELOW 0x1 /* Hint LADSPA_HINT_BOUNDED_ABOVE indicates that the UpperBound field of the LADSPA_PortRangeHint should be considered meaningful. The value in this field should be considered the (inclusive) upper bound of the valid range. If LADSPA_HINT_SAMPLE_RATE is also specified then the value of UpperBound should be multiplied by the sample rate. */ #define LADSPA_HINT_BOUNDED_ABOVE 0x2 /* Hint LADSPA_HINT_TOGGLED indicates that the data item should be considered a Boolean toggle. Data less than or equal to zero should be considered `off' or `false,' and data above zero should be considered `on' or `true.' LADSPA_HINT_TOGGLED may not be used in conjunction with any other hint except LADSPA_HINT_DEFAULT_0 or LADSPA_HINT_DEFAULT_1. */ #define LADSPA_HINT_TOGGLED 0x4 /* Hint LADSPA_HINT_SAMPLE_RATE indicates that any bounds specified should be interpreted as multiples of the sample rate. For instance, a frequency range from 0Hz to the Nyquist frequency (half the sample rate) could be requested by this hint in conjunction with LowerBound = 0 and UpperBound = 0.5. Hosts that support bounds at all must support this hint to retain meaning. */ #define LADSPA_HINT_SAMPLE_RATE 0x8 /* Hint LADSPA_HINT_LOGARITHMIC indicates that it is likely that the user will find it more intuitive to view values using a logarithmic scale. This is particularly useful for frequencies and gains. */ #define LADSPA_HINT_LOGARITHMIC 0x10 /* Hint LADSPA_HINT_INTEGER indicates that a user interface would probably wish to provide a stepped control taking only integer values. Any bounds set should be slightly wider than the actual integer range required to avoid floating point rounding errors. For instance, the integer set {0,1,2,3} might be described as [-0.1, 3.1]. */ #define LADSPA_HINT_INTEGER 0x20 /* The various LADSPA_HINT_HAS_DEFAULT_* hints indicate a `normal' value for the port that is sensible as a default. For instance, this value is suitable for use as an initial value in a user interface or as a value the host might assign to a control port when the user has not provided one. Defaults are encoded using a mask so only one default may be specified for a port. Some of the hints make use of lower and upper bounds, in which case the relevant bound or bounds must be available and LADSPA_HINT_SAMPLE_RATE must be applied as usual. The resulting default must be rounded if LADSPA_HINT_INTEGER is present. Default values were introduced in LADSPA v1.1. */ #define LADSPA_HINT_DEFAULT_MASK 0x3C0 /* This default values indicates that no default is provided. */ #define LADSPA_HINT_DEFAULT_NONE 0x0 /* This default hint indicates that the suggested lower bound for the port should be used. */ #define LADSPA_HINT_DEFAULT_MINIMUM 0x40 /* This default hint indicates that a low value between the suggested lower and upper bounds should be chosen. For ports with LADSPA_HINT_LOGARITHMIC, this should be exp(log(lower) * 0.75 + log(upper) * 0.25). Otherwise, this should be (lower * 0.75 + upper * 0.25). */ #define LADSPA_HINT_DEFAULT_LOW 0x80 /* This default hint indicates that a middle value between the suggested lower and upper bounds should be chosen. For ports with LADSPA_HINT_LOGARITHMIC, this should be exp(log(lower) * 0.5 + log(upper) * 0.5). Otherwise, this should be (lower * 0.5 + upper * 0.5). */ #define LADSPA_HINT_DEFAULT_MIDDLE 0xC0 /* This default hint indicates that a high value between the suggested lower and upper bounds should be chosen. For ports with LADSPA_HINT_LOGARITHMIC, this should be exp(log(lower) * 0.25 + log(upper) * 0.75). Otherwise, this should be (lower * 0.25 + upper * 0.75). */ #define LADSPA_HINT_DEFAULT_HIGH 0x100 /* This default hint indicates that the suggested upper bound for the port should be used. */ #define LADSPA_HINT_DEFAULT_MAXIMUM 0x140 /* This default hint indicates that the number 0 should be used. Note that this default may be used in conjunction with LADSPA_HINT_TOGGLED. */ #define LADSPA_HINT_DEFAULT_0 0x200 /* This default hint indicates that the number 1 should be used. Note that this default may be used in conjunction with LADSPA_HINT_TOGGLED. */ #define LADSPA_HINT_DEFAULT_1 0x240 /* This default hint indicates that the number 100 should be used. */ #define LADSPA_HINT_DEFAULT_100 0x280 /* This default hint indicates that the Hz frequency of `concert A' should be used. This will be 440 unless the host uses an unusual tuning convention, in which case it may be within a few Hz. */ #define LADSPA_HINT_DEFAULT_440 0x2C0 #define LADSPA_IS_HINT_BOUNDED_BELOW(x) ((x) & LADSPA_HINT_BOUNDED_BELOW) #define LADSPA_IS_HINT_BOUNDED_ABOVE(x) ((x) & LADSPA_HINT_BOUNDED_ABOVE) #define LADSPA_IS_HINT_TOGGLED(x) ((x) & LADSPA_HINT_TOGGLED) #define LADSPA_IS_HINT_SAMPLE_RATE(x) ((x) & LADSPA_HINT_SAMPLE_RATE) #define LADSPA_IS_HINT_LOGARITHMIC(x) ((x) & LADSPA_HINT_LOGARITHMIC) #define LADSPA_IS_HINT_INTEGER(x) ((x) & LADSPA_HINT_INTEGER) #define LADSPA_IS_HINT_HAS_DEFAULT(x) ((x) & LADSPA_HINT_DEFAULT_MASK) #define LADSPA_IS_HINT_DEFAULT_MINIMUM(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_MINIMUM) #define LADSPA_IS_HINT_DEFAULT_LOW(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_LOW) #define LADSPA_IS_HINT_DEFAULT_MIDDLE(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_MIDDLE) #define LADSPA_IS_HINT_DEFAULT_HIGH(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_HIGH) #define LADSPA_IS_HINT_DEFAULT_MAXIMUM(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_MAXIMUM) #define LADSPA_IS_HINT_DEFAULT_0(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_0) #define LADSPA_IS_HINT_DEFAULT_1(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_1) #define LADSPA_IS_HINT_DEFAULT_100(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_100) #define LADSPA_IS_HINT_DEFAULT_440(x) (((x) & LADSPA_HINT_DEFAULT_MASK) \ == LADSPA_HINT_DEFAULT_440) typedef struct _LADSPA_PortRangeHint { /* Hints about the port. */ LADSPA_PortRangeHintDescriptor HintDescriptor; /* Meaningful when hint LADSPA_HINT_BOUNDED_BELOW is active. When LADSPA_HINT_SAMPLE_RATE is also active then this value should be multiplied by the relevant sample rate. */ LADSPA_Data LowerBound; /* Meaningful when hint LADSPA_HINT_BOUNDED_ABOVE is active. When LADSPA_HINT_SAMPLE_RATE is also active then this value should be multiplied by the relevant sample rate. */ LADSPA_Data UpperBound; } LADSPA_PortRangeHint; /*****************************************************************************/ /* Plugin Handles: This plugin handle indicates a particular instance of the plugin concerned. It is valid to compare this to NULL (0 for C++) but otherwise the host should not attempt to interpret it. The plugin may use it to reference internal instance data. */ typedef void * LADSPA_Handle; /*****************************************************************************/ /* Descriptor for a Type of Plugin: This structure is used to describe a plugin type. It provides a number of functions to examine the type, instantiate it, link it to buffers and workspaces and to run it. */ typedef struct _LADSPA_Descriptor { /* This numeric identifier indicates the plugin type uniquely. Plugin programmers may reserve ranges of IDs from a central body to avoid clashes. Hosts may assume that IDs are below 0x1000000. */ unsigned long UniqueID; /* This identifier can be used as a unique, case-sensitive identifier for the plugin type within the plugin file. Plugin types should be identified by file and label rather than by index or plugin name, which may be changed in new plugin versions. Labels must not contain white-space characters. */ const char * Label; /* This indicates a number of properties of the plugin. */ LADSPA_Properties Properties; /* This member points to the null-terminated name of the plugin (e.g. "Sine Oscillator"). */ const char * Name; /* This member points to the null-terminated string indicating the maker of the plugin. This can be an empty string but not NULL. */ const char * Maker; /* This member points to the null-terminated string indicating any copyright applying to the plugin. If no Copyright applies the string "None" should be used. */ const char * Copyright; /* This indicates the number of ports (input AND output) present on the plugin. */ unsigned long PortCount; /* This member indicates an array of port descriptors. Valid indices vary from 0 to PortCount-1. */ const LADSPA_PortDescriptor * PortDescriptors; /* This member indicates an array of null-terminated strings describing ports (e.g. "Frequency (Hz)"). Valid indices vary from 0 to PortCount-1. */ const char * const * PortNames; /* This member indicates an array of range hints for each port (see above). Valid indices vary from 0 to PortCount-1. */ const LADSPA_PortRangeHint * PortRangeHints; /* This may be used by the plugin developer to pass any custom implementation data into an instantiate call. It must not be used or interpreted by the host. It is expected that most plugin writers will not use this facility as LADSPA_Handle should be used to hold instance data. */ void * ImplementationData; /* This member is a function pointer that instantiates a plugin. A handle is returned indicating the new plugin instance. The instantiation function accepts a sample rate as a parameter. The plugin descriptor from which this instantiate function was found must also be passed. This function must return NULL if instantiation fails. Note that instance initialisation should generally occur in activate() rather than here. */ LADSPA_Handle (*instantiate)(const struct _LADSPA_Descriptor * Descriptor, unsigned long SampleRate); /* This member is a function pointer that connects a port on an instantiated plugin to a memory location at which a block of data for the port will be read/written. The data location is expected to be an array of LADSPA_Data for audio ports or a single LADSPA_Data value for control ports. Memory issues will be managed by the host. The plugin must read/write the data at these locations every time run() or run_adding() is called and the data present at the time of this connection call should not be considered meaningful. connect_port() may be called more than once for a plugin instance to allow the host to change the buffers that the plugin is reading or writing. These calls may be made before or after activate() or deactivate() calls. connect_port() must be called at least once for each port before run() or run_adding() is called. When working with blocks of LADSPA_Data the plugin should pay careful attention to the block size passed to the run function as the block allocated may only just be large enough to contain the block of samples. Plugin writers should be aware that the host may elect to use the same buffer for more than one port and even use the same buffer for both input and output (see LADSPA_PROPERTY_INPLACE_BROKEN). However, overlapped buffers or use of a single buffer for both audio and control data may result in unexpected behaviour. */ void (*connect_port)(LADSPA_Handle Instance, unsigned long Port, LADSPA_Data * DataLocation); /* This member is a function pointer that initialises a plugin instance and activates it for use. This is separated from instantiate() to aid real-time support and so that hosts can reinitialise a plugin instance by calling deactivate() and then activate(). In this case the plugin instance must reset all state information dependent on the history of the plugin instance except for any data locations provided by connect_port() and any gain set by set_run_adding_gain(). If there is nothing for activate() to do then the plugin writer may provide a NULL rather than an empty function. When present, hosts must call this function once before run() (or run_adding()) is called for the first time. This call should be made as close to the run() call as possible and indicates to real-time plugins that they are now live. Plugins should not rely on a prompt call to run() after activate(). activate() may not be called again unless deactivate() is called first. Note that connect_port() may be called before or after a call to activate(). */ void (*activate)(LADSPA_Handle Instance); /* This method is a function pointer that runs an instance of a plugin for a block. Two parameters are required: the first is a handle to the particular instance to be run and the second indicates the block size (in samples) for which the plugin instance may run. Note that if an activate() function exists then it must be called before run() or run_adding(). If deactivate() is called for a plugin instance then the plugin instance may not be reused until activate() has been called again. If the plugin has the property LADSPA_PROPERTY_HARD_RT_CAPABLE then there are various things that the plugin should not do within the run() or run_adding() functions (see above). */ void (*run)(LADSPA_Handle Instance, unsigned long SampleCount); /* This method is a function pointer that runs an instance of a plugin for a block. This has identical behaviour to run() except in the way data is output from the plugin. When run() is used, values are written directly to the memory areas associated with the output ports. However when run_adding() is called, values must be added to the values already present in the memory areas. Furthermore, output values written must be scaled by the current gain set by set_run_adding_gain() (see below) before addition. run_adding() is optional. When it is not provided by a plugin, this function pointer must be set to NULL. When it is provided, the function set_run_adding_gain() must be provided also. */ void (*run_adding)(LADSPA_Handle Instance, unsigned long SampleCount); /* This method is a function pointer that sets the output gain for use when run_adding() is called (see above). If this function is never called the gain is assumed to default to 1. Gain information should be retained when activate() or deactivate() are called. This function should be provided by the plugin if and only if the run_adding() function is provided. When it is absent this function pointer must be set to NULL. */ void (*set_run_adding_gain)(LADSPA_Handle Instance, LADSPA_Data Gain); /* This is the counterpart to activate() (see above). If there is nothing for deactivate() to do then the plugin writer may provide a NULL rather than an empty function. Hosts must deactivate all activated units after they have been run() (or run_adding()) for the last time. This call should be made as close to the last run() call as possible and indicates to real-time plugins that they are no longer live. Plugins should not rely on prompt deactivation. Note that connect_port() may be called before or after a call to deactivate(). Deactivation is not similar to pausing as the plugin instance will be reinitialised when activate() is called to reuse it. */ void (*deactivate)(LADSPA_Handle Instance); /* Once an instance of a plugin has been finished with it can be deleted using the following function. The instance handle passed ceases to be valid after this call. If activate() was called for a plugin instance then a corresponding call to deactivate() must be made before cleanup() is called. */ void (*cleanup)(LADSPA_Handle Instance); } LADSPA_Descriptor; /**********************************************************************/ /* Accessing a Plugin: */ /* The exact mechanism by which plugins are loaded is host-dependent, however all most hosts will need to know is the name of shared object file containing the plugin types. To allow multiple hosts to share plugin types, hosts may wish to check for environment variable LADSPA_PATH. If present, this should contain a colon-separated path indicating directories that should be searched (in order) when loading plugin types. A plugin programmer must include a function called "ladspa_descriptor" with the following function prototype within the shared object file. This function will have C-style linkage (if you are using C++ this is taken care of by the `extern "C"' clause at the top of the file). A host will find the plugin shared object file by one means or another, find the ladspa_descriptor() function, call it, and proceed from there. Plugin types are accessed by index (not ID) using values from 0 upwards. Out of range indexes must result in this function returning NULL, so the plugin count can be determined by checking for the least index that results in NULL being returned. */ const LADSPA_Descriptor * ladspa_descriptor(unsigned long Index); /* Datatype corresponding to the ladspa_descriptor() function. */ typedef const LADSPA_Descriptor * (*LADSPA_Descriptor_Function)(unsigned long Index); /**********************************************************************/ #ifdef __cplusplus } #endif #endif /* LADSPA_INCLUDED */ /* EOF */ ladspa-0.4.17/latency_1914.xml000066400000000000000000000030171300111216200156720ustar00rootroot00000000000000 #include "ladspa-util.h" Artificial latency

Reports its delay value as systemic latency. Does nothing else, *this is not a delay*.

Can be used to correct for latency between channels.

latency) = (float)delay_fr; ]]> Delay (ms) Input Output latency
ladspa-0.4.17/lcr_delay_1436.xml000066400000000000000000000163421300111216200161750ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/biquad.h" L/C/R Delay

This is a left/centre/right delay with feedback, based on the one in the Korg Trinity. Requested by Marek Peteraj.

filters); free(plugin_data->buffer); ]]> 0.99f) { fb = 0.99f; } ls_set_params(filters, fs * 0.0001f * powf(2.0f, low_d * 0.12f), -0.5f * low_d, 0.5f, fs); hs_set_params(filters + 1, fs * (0.41f - 0.0001f * powf(2.0f, high_d * 0.12f)), -70.0f, 0.9f, fs); ll = last_ll; /* Start value of Left Level */ ll_d = (llev * 0.01f - last_ll) * sc_r; /* Delta for Left Level */ cl = last_cl; cl_d = (clev * 0.01f - last_cl) * sc_r; rl = last_rl; rl_d = (rlev * 0.01f - last_rl) * sc_r; ld = last_ld; ld_d = (ldel * fs * 0.001f - last_ld) * sc_r; cd = last_cd; cd_d = (cdel * fs * 0.001f - last_cd) * sc_r; rd = last_rd; rd_d = (rdel * fs * 0.001f - last_rd) * sc_r; for (pos = 0; pos < sample_count; pos++) { /* Increment linear interpolators */ ll += ll_d; rl += rl_d; cl += cl_d; ld += ld_d; rd += rd_d; cd += cd_d; /* Write input into delay line */ buffer[buffer_pos] = in_l[pos] + in_r[pos]; /* Add feedback, must be done afterwards for case where C delay = 0 */ fbs = buffer[(buffer_pos - f_round(cd)) & buffer_mask] * fb; fbs = flush_to_zero(fbs); fbs = biquad_run(filters, fbs); fbs = biquad_run(filters + 1, fbs); buffer[buffer_pos] += fbs; /* Outputs from left and right delay beffers + centre mix */ left = buffer[(buffer_pos - f_round(ld)) & buffer_mask] * ll + buffer[(buffer_pos - f_round(cd)) & buffer_mask] * cl; right = buffer[(buffer_pos - f_round(rd)) & buffer_mask] * rl + buffer[(buffer_pos - f_round(cd)) & buffer_mask] * cl; /* Left and right channel outs */ buffer_write(out_l[pos], in_l[pos] * (1.0f - wet) + (left * spr_t + right * spr_o) * wet); buffer_write(out_r[pos], in_r[pos] * (1.0f - wet) + (left * spr_o + right * spr_t) * wet); buffer_pos = (buffer_pos + 1) & buffer_mask; } plugin_data->last_ll = ll; plugin_data->last_cl = cl; plugin_data->last_rl = rl; plugin_data->last_ld = ld; plugin_data->last_cd = cd; plugin_data->last_rd = rd; plugin_data->buffer_pos = buffer_pos; ]]> L delay (ms)

The delay of the left output in milliseconds.

L level

The level of the left output.

C delay (ms)

The delay of the centre output in milliseconds.

C level

The level of the centre output.

R delay (ms)

The delay of the right output in milliseconds.

R level

The level of the right output.

Feedback

The amount of the C delay output that is mixed back into the delay.

High damp (%)

The damping of the high frequencies in the feedback path.

Low damp (%)

The damping of the low frequencies in the feedback path.

Spread

The width of the stereo image.

Dry/Wet level

The amounts of the input and effect mixed to produce the output.

L input R input L output R output
ladspa-0.4.17/lookahead_limiter_1435.xml000066400000000000000000000114661300111216200177140ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/db.h" /* Minimum buffer size in seconds */ #define BUFFER_TIME 2 Lookahead limiter fabs(in_2[pos]) ? fabs(in_1[pos]) : fabs(in_2[pos]); //sig = lin2db(sig) - limit; sig = CO_DB(sig) - limit; if (sig > 0.0f && sig / (float)delay > peak / (float)peak_dist) { peak_dist = delay; peak = sig; } /* Incremenatlly approach the correct attenuation for the next peak */ atten -= (atten - peak) / (float)(peak_dist + 1); if (peak_dist-- == 0) { peak_dist = delay; peak = 0.0f; } gain = 1.0f / db2lin(atten); buffer_write(out_1[pos], buffer[(buffer_pos * 2 - delay * 2) & (buffer_len - 1)] * gain); buffer_write(out_2[pos], buffer[(buffer_pos * 2 - delay * 2 + 1) & (buffer_len - 1)] * gain); /* Ensure that the signal really can't be over the limit, potentially * changes in the lookahead time could cause us to miss peaks */ #if 0 XXX FIXME XXX if (out_1[pos] < -max) { buffer_write(out_1[pos], -max); } else if (out_1[pos] > max) { buffer_write(out_1[pos], max); } if (out_2[pos] < -max) { buffer_write(out_2[pos], -max); } else if (out_2[pos] > max) { buffer_write(out_2[pos], max); } #endif buffer_pos++; } plugin_data->buffer_pos = buffer_pos; plugin_data->peak = peak; plugin_data->peak_dist = peak_dist; plugin_data->atten = atten; *(plugin_data->attenuation) = atten; *(plugin_data->latency) = delay; ]]> buffer); ]]> Limit (dB)

The maximum output amplitude. Peaks over this level will be attenuated as smoothly as possible to bring them as close as possible to this level.

Lookahead delay

The delay used by the lookahead predictor. The longer the delay the smoother the limiting will be, but higher the latency.

Attenuation (dB)

The current attenuation of the signal coming out of the delay buffer.

Input 1 Input 2 Output 1 Output 2 latency
ladspa-0.4.17/lookahead_limiter_const_1906.xml000066400000000000000000000141551300111216200211230ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/db.h" /* Minimum buffer size in seconds */ #define BUFFER_TIME 0.15f Lookahead limiter (fixed latency)

A lookahead limiter - similar to the original Lookahead Limiter, but with a constant latency of around 150ms and a reduced maximum lookahead time.

b ? a : b; /* XXX sig = fabs(in_1[pos]) > fabs(in_2[pos]) ? fabs(in_1[pos]) : fabs(in_2[pos]); */ if (sig > max) { const float rel = lin2db(sig) - limit; if (rel / delay > peak / (float)peak_dist) { peak_dist = delay; peak = rel; } } /* Incremenatlly approach the correct attenuation for the next peak */ atten -= (atten - peak) / (float)(peak_dist + 1); if (peak_dist-- == 0) { peak_dist = f_round(delay); peak = 0.0f; } /* Cacluate the apropriate gain reduction and write it back into the * buffer */ gain = amp_buffer[(buffer_pos - f_round(delay)) & (buffer_len - 1)]; amp_buffer[(buffer_pos - f_round(delay)) & (buffer_len - 1)] = 1.0f / db2lin(atten); gain=1.0f / db2lin(atten); buffer_write(out_1[pos], buffer[(2 * (buffer_pos + 1)) & buffer_mask] * gain); buffer_write(out_2[pos], buffer[(2 * (buffer_pos + 1)+1) & buffer_mask] * gain); /* Ensure that the signal really can't be over the limit */ #if 0 XXX FIXME XXX if (out_1[pos] < -max) { buffer_write(out_1[pos], -max); } else if (out_1[pos] > max) { buffer_write(out_1[pos], max); } if (out_2[pos] < -max) { buffer_write(out_2[pos], -max); } else if (out_2[pos] > max) { buffer_write(out_2[pos], max); } #endif buffer_pos++; } plugin_data->buffer_pos = buffer_pos; plugin_data->peak = peak; plugin_data->peak_dist = peak_dist; plugin_data->atten = atten; plugin_data->last_delay = delay; *(plugin_data->attenuation) = atten; *(plugin_data->latency) = buffer_len - 1; ]]> buffer); free(plugin_data->amp_buffer); ]]> Limit (dB)

The maximum output amplitude. Peaks over this level will be attenuated as smoothly as possible to bring them as close as possible to this level.

Lookahead time (s)

The delay time used by the lookahead predictor. The longer the time the smoother the limiting will be, but will tend to make the changes in dynamic range more obvious.

Attenuation (dB)

The current limiting attenuation of the signal coming out of the delay buffer.

Input 1 Input 2 Output 1 Output 2 latency
ladspa-0.4.17/lowpass_iir_1891.xml000066400000000000000000000052331300111216200165740ustar00rootroot00000000000000 #include "config.h" #include "util/iir.h" #include "ladspa-util.h" Glame Lowpass Filter

IIR lowpass filter based using chebishev coefficients. The filter allows you to tweak the number of stages used for filtering. Every stage adds two more poles, which leads to a steeper dropoff. More stages need more CPU power. This filter was ported from the glame multitrack editor to ladspa.

sample_rate = s_rate; chebyshev(iirf, gt, 2*CLAMP((int)stages,1,10), IIR_STAGE_LOWPASS, cutoff/(float)sample_rate, 0.5f); iir_process_buffer_ns_5(iirf, gt, input, output, sample_count,RUN_ADDING); // Unused variable (void)(run_adding_gain); gt = init_iir_stage(IIR_STAGE_LOWPASS,10,3,2); iirf = init_iirf_t(gt); chebyshev(iirf, gt, 2*CLAMP(f_round(*(plugin_data->stages)),1,10), IIR_STAGE_LOWPASS, *(plugin_data->cutoff)/(float)sample_rate, 0.5f); free_iirf_t(plugin_data->iirf, plugin_data->gt); free_iir_stage(plugin_data->gt); Cutoff Frequency Stages(2 poles per stage) Input Output
ladspa-0.4.17/ls_filter_1908.xml000066400000000000000000000047271300111216200162320ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/ls_filter.h" LS Filter

This is a filter created for the LinkSampler project - its designed to closely follow the filter used in giga sampler.

filt); ]]> Filter type (0=LP, 1=BP, 2=HP)

The type of the filter, 0 for low pass, 1 for band pass, 2 for high pass.

Cutoff frequency (Hz)

Controls the frequency at which the filter starts to effect the audio signal.

eg. a lowpass filter with a cutoff frequency of 1000 Hz will only let frequencies below 1000 Hz through.

Resonance

Creates a peak at the cutoff frequency, for the classic overdriven filter sound. At high values the peak at the cutoff will overwhelm the filtered signal.

Input Output
ladspa-0.4.17/makestub.pl000077500000000000000000000354721300111216200152200ustar00rootroot00000000000000#!/usr/bin/perl -w use XML::Parser; $xml_line = 1; if (@ARGV != 1) { die "Usage: $0 "; } $filename = $ARGV[0]; $run_adding_broken = 0; $xmlp = new XML::Parser(Style => 'Tree', ParseParamEnt => 1, ErrorContext => 3, NoLWP => 1); @tree = $xmlp -> parsefile($filename); open(XML, $filename); @xml_source = ; @required_calls = ('instantiate', 'connect_port', 'cleanup'); $root = $tree[0]; if ($$root[0] ne "ladspa") { die "This doesn't look like a valid ladspa description file"; } # Pointer to element $ladspa = $root->[1]; if ($ladspa->[3] ne "global") { die "Can't find global section. Should be immediately after ladspa\n"; } @globtags = @{ $ladspa->[4] }; for ($i=3; $i<@globtags; $i+=4) { $foo = $globtags[$i]; unless (ref($foo)) { if ($foo eq "meta") { $global{$globtags[$i+1]->[0]->{'name'}} = $globtags[$i+1]->[0]->{'value'}; } if ($foo eq "include") { push(@includes, $globtags[$i+1]->[0]->{'file'}); } if ($foo eq "code") { $g_code = $globtags[$i+1]->[2]; $g_code =~ s/^\s*\n//; $g_code =~ s/\t/ /g; $g_code =~ /^( *)/; $xml_indent = " " x length($1); $g_code =~ s/(^|\n)$xml_indent/$1/g; $g_code =~ s/\s+$//; $global_code .= $g_code."\n\n"; } } } for (my $i=7; $i<@{$ladspa}; $i+=4) { $foo = $ladspa->[$i]; if ($foo eq "plugin") { &process_plugin($ladspa->[$i+1]); push(@allports, @ports); @ports = (); } } # General headers print < \#include \#ifndef WIN32 \#include "config.h" \#endif \#ifdef ENABLE_NLS \#include \#endif \#define _ISOC9X_SOURCE 1 \#define _ISOC99_SOURCE 1 \#define __USE_ISOC99 1 \#define __USE_ISOC9X 1 \#include \#include "ladspa.h" \#ifdef WIN32 \#define _WINDOWS_DLL_EXPORT_ __declspec(dllexport) int bIsFirstTime = 1; static void __attribute__((constructor)) swh_init(); // forward declaration \#else \#define _WINDOWS_DLL_EXPORT_ \#endif EOB for $inc (@includes) { print "#include \"$inc\"\n"; } unless ($global_code) { $global_code = ""; } my $glob_code_start = find_el_line("code"); print "#line $glob_code_start \"$filename\"\n" if $glob_code_start && $xml_line; print "\n$global_code"; my $n = 0; $last_plugin = ""; for $port (@allports) { if ($port->{'plugin'} ne $last_plugin) { $n = 0; $last_plugin = $port->{'plugin'}; } $pl = uc($port->{'plugin'}.'_'.$port->{'label'}); printf("#define %-30s $n\n", $pl); $n++; } print $globals; print <[0]->{'id'}; $label = $tree->[0]->{'label'}; if (!$id) { die "Plugin '$label' has no id"; } if (!$label) { die "Plugin #$id has no label"; } push(@plugins, $label); %i_data = (); for ($i=3; $i<@{$tree}; $i+=4) { $foo = $tree->[$i]; if ($foo eq "name") { $name = $tree->[$i+1]->[2]; } if ($foo eq "callback") { push(@callbacks, $tree->[$i+1]->[0]->{'event'}); $callback_code{$label.'_'.$tree->[$i+1]->[0]->{'event'}} = $tree->[$i+1]->[2]; } if ($foo eq "port") { push(@ports, &process_port($tree->[$i+1])); } if ($foo eq "instance-data") { $i_data{$tree->[$i+1]->[0]->{'label'}} = $tree->[$i+1]->[0]->{'type'}; } } my @calls = (); my %MARK = (); grep($MARK{$_}++, @callbacks, @required_calls); @calls = sort keys %MARK; for $call (@calls) { my $call_start = find_el_line("callback", "event" => $call); if ($call_start) { $call_start++; if ($xml_line ) { $cc_marker = "#line $call_start \"$filename\"\n"; } else { $cc_marker = ""; } } else { $cc_marker = ""; } if ($call eq "instantiate") { $c = ""; if ($callback_code{"${label}_instantiate"}) { $c .= "\t\u$label *plugin_data = (\u$label *)calloc(1, sizeof(\u$label));\n"; for $var (sort keys %i_data) { if ($i_data{$var} =~ /\*/) { $c .= "\t$i_data{$var}$var = NULL;\n"; } else { #$c .= "\t$i_data{$var} $var = 0;\n"; $c .= "\t$i_data{$var} $var;\n"; } } $c .= "\n".$cc_marker; $c .= reindent_callback($callback_code{"${label}_instantiate"})."\n\n"; for $var (sort keys %i_data) { $c .= "\tplugin_data->$var = $var;\n"; } $c .= "\n\treturn (LADSPA_Handle)plugin_data;" } else { $c .= "\t\u$label *plugin_data = (\u$label *)calloc(1, sizeof(\u$label));\n"; $c .= "\tplugin_data->run_adding_gain = 1.0f;\n"; $c .= "\n\treturn (LADSPA_Handle)plugin_data;" } $code .= <{'label'}); if ($port->{'watch'}) { $watch = "\n plugin->$port->{'watch'} = 1;"; } else { $watch = ""; } $code .= <$port->{label} = data;$watch break; EOB } $code .= <{'dir'} eq "input") { $const = "const "; } else { $const = ""; } if ($port->{'type'} eq "audio") { $run_code .= "\n /* $port->{name} (array of floats of length sample_count) */\n"; $run_code .= " ${const}LADSPA_Data * const ".$port->{'label'}." = plugin_data->".$port->{'label'}.";\n"; } elsif ($port->{'dir'} eq "input") { $run_code .= "\n /* $port->{name} (float value) */\n"; $run_code .= " const LADSPA_Data ".$port->{'label'}." = *(plugin_data->".$port->{'label'}.");\n"; } } for $var (sort keys %i_data) { $run_code .= " $i_data{$var} $var = plugin_data->$var;\n"; } if ($callback_code{"${label}_run"}) { $cb_code = $callback_code{"${label}_run"}; $cb_code =~ s/^\n//; $cb_code =~ s/\t/ /g; $cb_code =~ /^( *)/; $xml_indent = " " x length($1); $cb_code =~ s/(^|\n)$xml_indent/$1\t/g; $cb_code =~ s/\s+$//; } else { $cb_code = <run_adding_gain = gain; } static void runAdding\u$label(LADSPA_Handle instance, unsigned long sample_count) { \u$label *plugin_data = (\u$label *)instance; LADSPA_Data run_adding_gain = plugin_data->run_adding_gain; $run_code EOB } } $run_code = ""; $globals .= " static LADSPA_Descriptor *${label}Descriptor = NULL;\n"; $num_ports = @ports; $init_code .= <UniqueID = $id; ${label}Descriptor->Label = "$label"; ${label}Descriptor->Properties = $properties; ${label}Descriptor->Name = D_("$name"); ${label}Descriptor->Maker = "$maker"; ${label}Descriptor->Copyright = "$copyright"; ${label}Descriptor->PortCount = $num_ports; port_descriptors = (LADSPA_PortDescriptor *)calloc($num_ports, sizeof(LADSPA_PortDescriptor)); ${label}Descriptor->PortDescriptors = (const LADSPA_PortDescriptor *)port_descriptors; port_range_hints = (LADSPA_PortRangeHint *)calloc($num_ports, sizeof(LADSPA_PortRangeHint)); ${label}Descriptor->PortRangeHints = (const LADSPA_PortRangeHint *)port_range_hints; port_names = (char **)calloc($num_ports, sizeof(char*)); ${label}Descriptor->PortNames = (const char **)port_names; EOB $fini_code .= <PortDescriptors); free((char **)${label}Descriptor->PortNames); free((LADSPA_PortRangeHint *)${label}Descriptor->PortRangeHints); free(${label}Descriptor); } ${label}Descriptor = NULL; EOB $globals .= "\ntypedef struct {\n"; for $port (@ports) { my $min = ""; my $max = ""; $l = uc($port->{'label'}); $d = uc($port->{'dir'}); $t = uc($port->{'type'}); $n = $port->{'name'}; $p = uc($label); $min = $port->{'min'} if defined $port->{'min'}; $max = $port->{'max'} if defined $port->{'max'}; if (defined $port->{'hints'}) { $hints = $port->{'hints'}; } else { $hints = ""; } $init_code .= <[0]->{'label'}; $$pname{'watch'} = $tree->[0]->{'watch'}; $$pname{'dir'} = $tree->[0]->{'dir'}; $$pname{'type'} = $tree->[0]->{'type'}; if (!$$pname{'label'} || !$$pname{'dir'} || !$$pname{'type'}) { die "Ports must have a label, dir(ection) and type"; } my $hints = ""; if ($tree->[0]->{'hint'}) { for $h (split(/[ ,]+/, $tree->[0]->{'hint'})) { $hints .= " | LADSPA_HINT_\U$h"; } } $$pname{'hints'} = $hints; for (my $el=3; $el<@{$tree}; $el+=4) { $foo = $tree->[$el]; if ($foo eq "name") { $$pname{'name'} = $tree->[$el+1]->[2]; } if ($foo eq "range") { $$pname{'min'} = $tree->[$el+1]->[0]->{'min'}; $$pname{'max'} = $tree->[$el+1]->[0]->{'max'}; } } return \%$pname; } sub reindent_callback { local ($cb_code) = @_; $cb_code =~ s/^\n//; $cb_code =~ s/\t/ /g; $cb_code =~ /^( *)/; $xml_indent = " " x length($1); $cb_code =~ s/(^|\n)$xml_indent/$1\t/g; $cb_code =~ s/\s+$//; return $cb_code; } sub find_el_line { local ($el, @rest) = @_; my $cnt = 0; my %attrs = (); while (@rest) { my $key = shift @rest; $attrs{$key} = shift @rest; } if (%attrs) { my $in_el = 0; my $num_attrs = length keys %attrs; my $matched = 0; for $line (@xml_source) { $cnt++; $in_el = 1 if $line =~ /<\s*$el[ \n>]/; if ($in_el) { for $attr (keys %attrs) { my $val = $attrs{$attr}; $matched++ if $line =~ /$attr\s*=\s*"$val"/; } } if ($matched >= $num_attrs) { return $cnt; } if ($line =~ />/) { $in_el = 0; $matched = 0; } } } else { for $line (@xml_source) { $cnt++; return $cnt if $line =~ /<\s*$el\s*>/; } } return 0; } ladspa-0.4.17/matrix_ms_st_1421.xml000066400000000000000000000025301300111216200167340ustar00rootroot00000000000000 Matrix: MS to Stereo Width

The width of the dematrixed stereo field. 1 will give you normal width, 0 will make it completely mono, < 1 will make it narrower and > 1 will make it wider.

Mid Side Left Right
ladspa-0.4.17/matrix_spatialiser_1422.xml000066400000000000000000000127231300111216200201350ustar00rootroot00000000000000 Matrix Spatialiser

current_m_gain = current_m_gain; plugin_data->current_s_gain = current_s_gain; ]]> Input L Input R Width

Output L Output R
ladspa-0.4.17/matrix_st_ms_1420.xml000066400000000000000000000020361300111216200167340ustar00rootroot00000000000000 Matrix: Stereo to MS Left Right Mid Side ladspa-0.4.17/mbeq_1197.xml000066400000000000000000000212141300111216200151610ustar00rootroot00000000000000 typedef fftwf_plan fft_plan; typedef float fftw_real; #else #ifdef EXPLICIT_S #include #else #include #endif //EXPLICIT_S typedef rfftw_plan fft_plan; #endif //FFTW3 #include "ladspa-util.h" #define FFT_LENGTH 1024 #define OVER_SAMP 4 #define BANDS 15 float bands[BANDS] = { 50.00f, 100.00f, 155.56f, 220.00f, 311.13f, 440.00f, 622.25f, 880.00f, 1244.51f, 1760.00f, 2489.02f, 3519.95, 4978.04f, 9956.08f, 19912.16f }; ]]> Multiband EQ

This is a fairly typical multiband graphical equalizer. It's implemented using a FFT, so it takes quite a lot of CPU power, but should have less phase effects than an equivalent filter implementation.

If the input signal is at too low a sample rate then the top bands will be ignored, the highest useful band will always be a high shelf.

coeffiecnt lookup table db_table = malloc(1000 * sizeof(float)); for (i=0; i < 1000; i++) { db = ((float)i/10) - 70; db_table[i] = pow(10.0f, db/20.0f); } // Create FFT bin -> band + delta tables bin = 0; while (bin <= bands[0]/hz_per_bin) { bin_base[bin] = 0; bin_delta[bin++] = 0.0f; } for (i = 1; i < BANDS-1 && bin < (FFT_LENGTH/2)-1 && bands[i+1] < s_rate/2; i++) { last_bin = bin; next_bin = (bands[i+1])/hz_per_bin; while (bin <= next_bin) { bin_base[bin] = i; bin_delta[bin] = (float)(bin - last_bin) / (float)(next_bin - last_bin); bin++; } } for (; bin < (FFT_LENGTH/2); bin++) { bin_base[bin] = BANDS-1; bin_delta[bin] = 0.0f; } ]]> in_fifo); free(plugin_data->out_fifo); free(plugin_data->out_accum); free(plugin_data->real); free(plugin_data->comp); free(plugin_data->window); free(plugin_data->bin_base); free(plugin_data->bin_delta); free(plugin_data->db_table); ]]> = FFT_LENGTH) { fifo_pos = fft_latency; // Window input FIFO for (i=0; i < FFT_LENGTH; i++) { real[i] = in_fifo[i] * window[i]; } // Run the real->complex transform #ifdef FFTW3 fftwf_execute(plan_rc); #else rfftw_one(plan_rc, real, comp); #endif // Multiply the bins magnitudes by the coeficients comp[0] *= coefs[0]; for (i = 1; i < FFT_LENGTH/2; i++) { comp[i] *= coefs[i]; comp[FFT_LENGTH-i] *= coefs[i]; } // Run the complex->real transform #ifdef FFTW3 fftwf_execute(plan_cr); #else rfftw_one(plan_cr, comp, real); #endif // Window into the output accumulator for (i = 0; i < FFT_LENGTH; i++) { out_accum[i] += 0.9186162f * window[i] * real[i]/(FFT_LENGTH * OVER_SAMP); } for (i = 0; i < step_size; i++) { out_fifo[i] = out_accum[i]; } // Shift output accumulator memmove(out_accum, out_accum + step_size, FFT_LENGTH*sizeof(LADSPA_Data)); // Shift input fifo for (i = 0; i < fft_latency; i++) { in_fifo[i] = in_fifo[i+step_size]; } } } // Store the fifo_position plugin_data->fifo_pos = fifo_pos; *(plugin_data->latency) = fft_latency; ]]> 50Hz gain (low shelving) 100Hz gain 156Hz gain 220Hz gain 311Hz gain 440Hz gain 622Hz gain 880Hz gain 1250Hz gain 1750Hz gain 2500Hz gain 3500Hz gain 5000Hz gain 10000Hz gain 20000Hz gain Input Output latency
ladspa-0.4.17/metadata/000077500000000000000000000000001300111216200146125ustar00rootroot00000000000000ladspa-0.4.17/metadata/Makefile.am000066400000000000000000000005341300111216200166500ustar00rootroot00000000000000pkgdata_DATA = swh-plugins.rdf swh-aux.rdf swh-scales.rdf EXTRA_DIST = lxml2rdf.pl txt2scale.pl scale-points.txt $(pkgdata_DATA) pkgdatadir = $(datadir)/ladspa/rdf swh-plugins.rdf: @top_srcdir@/*.xml ./lxml2rdf.pl $(sort $^) > $@ xmllint -noout swh-plugins.rdf swh-scales.rdf: scale-points.txt ./txt2scale.pl scale-points.txt > swh-scales.rdf ladspa-0.4.17/metadata/lxml2rdf.pl000077500000000000000000000056301300111216200167100ustar00rootroot00000000000000#!/usr/bin/perl -w print < ]> EOB $ocnt = 0; while (<>) { if (m()) { #$plabel = $1; $pid = $2; if ($3) { @classes = split(",", $4); $class = shift @classes; } else { $class = "Plugin"; } %defaults = (); %min = (); %max = (); print " \n"; while ($extra_class = shift @classes) { print " \n"; } if ($pcreator) { print " $pcreator\n"; } $ocnt = 0; } if ($ocnt == 0 && m((.*?))) { print " $1\n"; } if (m()) { $ocnt++; next if ($3 eq "audio"); print " \n"; print " \n"; print " \n"; $hints = $5; if ($hints && $hints =~ m((default_[a-z0-9]+))) { $defaults{$ocnt} = $hints; } } if (m( 1) { print " \n"; print " \n"; for $i (sort keys %defaults) { $dp = $defaults{$i} =~ m((default_[a-z0-9]+)); if ($dp) { $hint = $1; } else { $hint = ""; } if ($hint eq "default_0") { $val = 0.0; } elsif ($hint eq "default_1") { $val = 1.0; } elsif ($hint eq "default_440") { $val = 440.0; } elsif ($hint eq "default_minimum") { $val = $min{$i}; } elsif ($hint eq "default_low") { $val = $min{$i} * 0.75 + $max{$i} * 0.25; } elsif ($hint eq "default_middle") { $val = ( $min{$i} + $max{$i} ) / 2.0; } elsif ($hint eq "default_high") { $val = $min{$i} * 0.25 + $max{$i} * 0.75; } elsif ($hint eq "default_maximum") { $val = $max{$i}; } else { print STDERR "ERROR $defaults{$i}\n"; $val = "ERROR"; } print " \n"; print " \n"; print " \n"; print " \n"; print " \n"; } print " \n"; print " \n"; } print " \n\n"; } } print "\n"; ladspa-0.4.17/metadata/scale-points.txt000066400000000000000000000012431300111216200177540ustar00rootroot000000000000001416.0 1 sine 2 triangle 3 square 4 saw 1432.1 -1 down 1 up 1185.0 0 none 1 half wave 2 full wave 1415.0 1 sine 2 triangle 3 square 4 saw 1410.7 -1 key listen 0 gate 1 bypass 1921.8 -1 key listen 0 gate 1 bypass 1922.8 -1 key listen 0 gate 1 bypass 1200.1 0 sine 1 triangle 2 saw 3 square 4 S&H 1200.3 0 sine 1 triangle 2 saw 3 square 4 S&H 1200.5 0 sine 1 triangle 2 saw 3 square 4 S&H 1200.7 0 sine 1 triangle 2 saw 3 square 4 S&H 1908.0 0 LP 1 BP 2 HP 1188.0 0 none 1 AM 2 RM 1189.0 0 none 1 AM 2 RM 1214.2 0 none 1 LP 2 HP 3 BP 4 BR 5 AP ladspa-0.4.17/metadata/swh-aux.rdf000066400000000000000000000012051300111216200167010ustar00rootroot00000000000000 ]> ladspa-0.4.17/metadata/swh-plugins.rdf000066400000000000000000005312061300111216200175760ustar00rootroot00000000000000 ]> Steve Harris <steve@plugin.org.uk> Aliasing Andy Wingo <wingo at pobox dot com> Allpass delay line, noninterpolating Andy Wingo <wingo at pobox dot com> Allpass delay line, linear interpolation Andy Wingo <wingo at pobox dot com> Allpass delay line, cubic spline interpolation Steve Harris <steve@plugin.org.uk> AM pitchshifter Steve Harris <steve@plugin.org.uk> Simple amplifier Steve Harris <steve@plugin.org.uk> Analogue Oscillator Alexander Ehlert <mag@glame.de> Glame Bandpass Analog Filter Alexander Ehlert <mag@glame.de> Glame Bandpass Filter Steve Harris <steve@plugin.org.uk> Bode frequency shifter Steve Harris <steve@plugin.org.uk> Bode frequency shifter (CV) Alexander Ehlert <mag@glame.de> Glame Butterworth X-over Filter Alexander Ehlert <mag@glame.de> GLAME Butterworth Lowpass Alexander Ehlert <mag@glame.de> GLAME Butterworth Highpass Steve Harris <steve@plugin.org.uk> Chebyshev distortion Steve Harris <steve@plugin.org.uk> Comb Filter Andy Wingo <wingo at pobox dot com> Comb delay line, noninterpolating Andy Wingo <wingo at pobox dot com> Comb delay line, linear interpolation Andy Wingo <wingo at pobox dot com> Comb delay line, cubic spline interpolation Steve Harris <steve@plugin.org.uk> Comb Splitter Steve Harris <steve@plugin.org.uk> Constant Signal Generator Steve Harris <steve@plugin.org.uk> Crossover distortion Steve Harris <steve@plugin.org.uk> DC Offset Remover Steve Harris <steve@plugin.org.uk> Debug Plugin Andy Wingo <wingo at pobox dot com> Exponential signal decay Steve Harris <steve@plugin.org.uk> Decimator Steve Harris <steve@plugin.org.uk> Declipper Andy Wingo <wingo at pobox dot com> Simple delay line, noninterpolating Andy Wingo <wingo at pobox dot com> Simple delay line, linear interpolation Andy Wingo <wingo at pobox dot com> Simple delay line, cubic spline interpolation Steve Harris <steve@plugin.org.uk> Delayorama Steve Harris <steve@plugin.org.uk> Diode Processor Steve Harris <steve@plugin.org.uk> Audio Divider (Suboctave Generator) Steve Harris <steve@plugin.org.uk> DJ EQ (mono) Steve Harris <steve@plugin.org.uk> DJ EQ Steve Harris <steve@plugin.org.uk> DJ flanger Steve Harris <steve@plugin.org.uk> Dyson compressor Steve Harris <steve@plugin.org.uk> Fractionally Addressed Delay Line Steve Harris <steve@plugin.org.uk> Fast Lookahead limiter Steve Harris <steve@plugin.org.uk> Flanger Steve Harris <steve@plugin.org.uk> FM Oscillator Steve Harris <steve@plugin.org.uk> Foldover distortion Steve Harris <steve@plugin.org.uk> Fast overdrive Steve Harris <steve@plugin.org.uk> Frequency tracker Steve Harris <steve@plugin.org.uk> Gate Steve Harris <steve@plugin.org.uk> Gate Steve Harris <steve@plugin.org.uk> Stereo Gate Steve Harris <steve@plugin.org.uk> Giant flange Steve Harris <steve@plugin.org.uk> Gong model Steve Harris <steve@plugin.org.uk> Gong beater Steve Harris <steve@plugin.org.uk> GSM simulator Juhana Sadeharju <kouhia at nic.funet.fi>, LADSPAification by Steve Harris <steve@plugin.org.uk> GVerb Marcus Andersson Hard Limiter Steve Harris <steve@plugin.org.uk> Harmonic generator Steve Harris <steve@plugin.org.uk> Hermes Filter Alexander Ehlert <mag@glame.de> Glame Highpass Filter Steve Harris <steve@plugin.org.uk> Hilbert transformer Steve Harris <steve@plugin.org.uk> Impulse convolver Andy Wingo <wingo at pobox dot com> Nonbandlimited single-sample impulses (Frequency: Control) Steve Harris <steve@plugin.org.uk> Inverter Steve Harris <steve@plugin.org.uk> Karaoke Steve Harris <steve@plugin.org.uk> Artificial latency Steve Harris <steve@plugin.org.uk> L/C/R Delay Steve Harris <steve@plugin.org.uk> Lookahead limiter Steve Harris <steve@plugin.org.uk> Lookahead limiter (fixed latency) Alexander Ehlert <mag@glame.de> Glame Lowpass Filter Steve Harris <steve@plugin.org.uk> LS Filter Steve Harris <steve@plugin.org.uk> Matrix: MS to Stereo Joern Nettingsmeier <nettings@folkwang-hochschule.de> Matrix Spatialiser Steve Harris <steve@plugin.org.uk> Matrix: Stereo to MS Steve Harris <steve@plugin.org.uk> Multiband EQ Steve Harris <steve@plugin.org.uk> Modulatable delay Steve Harris <steve@plugin.org.uk> Multivoice Chorus Alexander Ehlert <mag@glame.de> Mag's Notch Filter Steve Harris <steve@plugin.org.uk> LFO Phaser Steve Harris <steve@plugin.org.uk> 4 x 4 pole allpass Steve Harris <steve@plugin.org.uk> Auto phaser Steve Harris <steve@plugin.org.uk> Pitch Scaler Steve Harris <steve@plugin.org.uk> Higher Quality Pitch Scaler Steve Harris <steve@plugin.org.uk> Plate reverb Steve Harris <steve@plugin.org.uk> Pointer cast distortion Steve Harris <steve@plugin.org.uk> Rate shifter Steve Harris <steve@plugin.org.uk> Retro Flanger Jesse Chappell <jesse at essej dot net> Reverse Delay (5s max) Steve Harris <steve@plugin.org.uk> Ringmod with two inputs Steve Harris <steve@plugin.org.uk> Ringmod with LFO Steve Harris <steve@plugin.org.uk> Barry's Satan Maximiser Steve Harris <steve@plugin.org.uk> SC1 Steve Harris <steve@plugin.org.uk> SC2 Steve Harris <steve@plugin.org.uk> SC3 Steve Harris <steve@plugin.org.uk> SC4 Steve Harris <steve@plugin.org.uk> SC4 mono Steve Harris <steve@plugin.org.uk> SE4 Steve Harris <steve@plugin.org.uk> Wave shaper Steve Harris <steve@plugin.org.uk> Signal sifter Steve Harris <steve@plugin.org.uk> Sine + cosine oscillator Steve Harris <steve@plugin.org.uk> Single band parametric Steve Harris <steve@plugin.org.uk> Sinus wavewrapper Steve Harris <steve@plugin.org.uk> Smooth Decimator Frank Neumann <franky@users.sourceforge.net> Mono to Stereo splitter Steve Harris <steve@plugin.org.uk> Step Demuxer Steve Harris <steve@plugin.org.uk> Surround matrix encoder Steve Harris <steve@plugin.org.uk> State Variable Filter Steve Harris <steve@plugin.org.uk> Tape Delay Simulation Steve Harris <steve@plugin.org.uk> Transient mangler Steve Harris <steve@plugin.org.uk> Triple band parametric with shelves Steve Harris <steve@plugin.org.uk> Valve saturation Steve Harris <steve@plugin.org.uk> Valve rectifier Achim Settelmeier <settel-linux@sirlab.de> (adapted by Josh Green and Hexasoft) Vocoder Steve Harris <steve@plugin.org.uk> VyNil (Vinyl Effect) Steve Harris <steve@plugin.org.uk> Wave Terrain Oscillator Steve Harris <steve@plugin.org.uk> Crossfade Steve Harris <steve@plugin.org.uk> Crossfade (4 outs) Steve Harris <steve@plugin.org.uk> z-1 ladspa-0.4.17/metadata/swh-scales.rdf000066400000000000000000000210531300111216200173610ustar00rootroot00000000000000 ]> ladspa-0.4.17/metadata/txt2scale.pl000077500000000000000000000020151300111216200170610ustar00rootroot00000000000000#!/usr/bin/perl -w print < ]> EOB $first = 1; $port = ""; while (<>) { chomp; if (/^([0-9]+\.[0-9]+)/) { $port = $1; if (!$first) { &endScale; } $first = 0; print < EOB } if (/^\s*([0-9]+)\s+(.*)/) { print < EOB } } if (!$first) { &endScale; } print < EOB sub endScale { print < EOB } ladspa-0.4.17/mkspec.pl000077500000000000000000000020141300111216200146510ustar00rootroot00000000000000#!/usr/bin/perl -w $package = shift(@ARGV); $version = shift(@ARGV); @files = @ARGV; open(OUT, ">swh-plugins-$version.spec") || die "Can't create spec file: $!"; print OUT < #include "ladspa-util.h" Modulatable delay

A delay whose tap can be modulated at audio rate.

Requested by Matthias Nagorni at LinuxTag 2002, in order to make a Leslie simulator.

buffer); ]]> write_ptr = write_ptr; ]]> Base delay (s) Delay (s) Input Output
ladspa-0.4.17/multivoice_chorus_1201.xml000066400000000000000000000171061300111216200177670ustar00rootroot00000000000000 Multivoice Chorus

This is an implementation of a Multivoice (as opposed to Multiscale) chorus algorithm. Its uses a novel, sinc based noise interpolation method to produce a subtle modulation law which makes it possible to get away with larger numbers of voices without the metallic, artificial sound common in chorus effects.

delay_tbl); free(plugin_data->prev_peak_pos); free(plugin_data->next_peak_pos); free(plugin_data->prev_peak_amp); free(plugin_data->next_peak_amp); free(plugin_data->dp_targ); free(plugin_data->dp_curr); ]]> 0) { law_separation = law_p / laws; } else { law_separation = 0; } // Calculate voice spread in samples base_offset = (f_clamp(voice_spread, 0.0f, 2.0f) * sample_rate) / 1000; // Calculate base delay size in samples d_base = (f_clamp(delay_base, 5.0f, 40.0f) * sample_rate) / 1000; // Calculate delay depth in samples delay_depth = f_clamp((law_p * f_clamp(detune, 0.0f, 10.0f)) / (100.0f * M_PI), 0.0f, delay_size - d_base - 1 - (base_offset * laws)); // Calculate output attenuation atten = DB_CO(f_clamp(attendb, -100.0, 24.0)); for (pos = 0; pos < sample_count; pos++) { // N times per law 'frequency' splurge a new set of windowed data // into one of the N law buffers. Keeps the laws out of phase. if (laws > 0 && (count % law_separation) == 0) { next_peak_amp[law_roll] = (float)rand() / (float)RAND_MAX; next_peak_pos[law_roll] = count + law_p; } if (laws > 0 && (count % law_separation) == law_separation/2) { prev_peak_amp[law_roll] = (float)rand() / (float)RAND_MAX; prev_peak_pos[law_roll] = count + law_p; // Pick the next law to be changed law_roll = (law_roll + 1) % laws; } out = input[pos]; if (count % 16 < laws) { unsigned int t = count % 16; // Calculate sinus phases float n_ph = (float)(law_p - abs(next_peak_pos[t] - count))/law_p; float p_ph = n_ph + 0.5f; if (p_ph > 1.0f) { p_ph -= 1.0f; } dp_targ[t] = f_sin_sq(3.1415926f*p_ph)*prev_peak_amp[t] + f_sin_sq(3.1415926f*n_ph)*next_peak_amp[t]; } for (t=0; tcount = count; plugin_data->law_pos = law_pos; plugin_data->last_law_p = last_law_p; plugin_data->law_roll = law_roll; plugin_data->delay_pos = delay_pos; ]]> Number of voices Delay base (ms) Voice separation (ms)

The individual voices can either be running at the same base delay (set this to zero) or staggered.

Setting this to non-zero values can make the output sound richer, but will make it sound grainy with some type of signal.

Detune (%)

The maximum amount that a voice will be detuned by. I recommend a value of 1, but you may be able to get away with higher values if the signal is less harmonic.

LFO frequency (Hz)

The frequency that the detune effect will be modulated at. A matter of taste, for most types of input lower will be more subtle.

Output attenuation (dB)

With large numbers of voices the output can become too high, so use this to trim the amplitude to a more helpful level.

Input Output
ladspa-0.4.17/notch_iir_1894.xml000066400000000000000000000075071300111216200162300ustar00rootroot00000000000000 #include "config.h" #include "util/iir.h" Mag's Notch Filter

IIR notch filter based using chebishev coefficients. The filter allows you to tweak the number of stages used for filtering. Every stage adds two more poles, which leads to a steeper dropoff. More stages need more CPU power.

sample_rate = s_rate; ufc = lfc = 0.0f; ufc = (center - width*0.5f)/(float)sample_rate; lfc = (center + width*0.5f)/(float)sample_rate; chebyshev(iirf1, first, 2*CLAMP((int)stages,1,10), IIR_STAGE_LOWPASS, ufc, 0.5f); chebyshev(iirf2, second, 2*CLAMP((int)stages,1,10), IIR_STAGE_HIGHPASS, lfc, 0.5f); iir_process_buffer_ns_5(iirf1, first, input, output, sample_count, RUN_ADDING); iir_process_buffer_ns_5(iirf2, second, input, output, sample_count, 1); /* add to first buffer */ // Unused variable (void)(run_adding_gain); ufc = (*(plugin_data->center) - *(plugin_data->width)*0.5f)/(float)sample_rate; lfc = (*(plugin_data->center) + *(plugin_data->width)*0.5f)/(float)sample_rate; first = init_iir_stage(IIR_STAGE_LOWPASS,10,3,2); second = init_iir_stage(IIR_STAGE_HIGHPASS,10,3,2); iirf1 = init_iirf_t(first); iirf2 = init_iirf_t(second); chebyshev(iirf1, first, 2*CLAMP((int)(*(plugin_data->stages)),1,10), IIR_STAGE_LOWPASS, ufc, 0.5f); chebyshev(iirf2, second, 2*CLAMP((int)(*(plugin_data->stages)),1,10), IIR_STAGE_HIGHPASS, lfc, 0.5f); free_iirf_t(plugin_data->iirf1, plugin_data->first); free_iirf_t(plugin_data->iirf2, plugin_data->second); free_iir_stage(plugin_data->first); free_iir_stage(plugin_data->second); Center Frequency (Hz) Bandwidth (Hz) Stages(2 poles per stage) Input Output
ladspa-0.4.17/phasers_1217.xml000066400000000000000000000263051300111216200157010ustar00rootroot00000000000000 a1) + a->zm1; a->zm1 = y * a->a1 + x; return y; } inline static void ap_set_delay(allpass *a, float d) { a->a1 = (1.0f - d) / (1.0f + d); } inline static void ap_clear(allpass *a) { a->a1 = 0.0f; a->zm1 = 0.0f; } typedef struct { float ga; float gr; float env; } envelope; inline static float env_run(envelope *e, float in) { float env_lvl = e->env; in = fabs(in); if (env_lvl < in) { env_lvl = e->ga * (env_lvl - in) + in; } else { env_lvl = e->gr * (env_lvl - in) + in; } e->env = env_lvl; return env_lvl; } // Set attack time in samples inline static void env_set_attack(envelope *e, float a) { e->ga = f_exp(-1.0f/a); } // Set release time in samples inline static void env_set_release(envelope *e, float r) { e->gr = f_exp(-1.0f/r); } ]]> LFO Phaser ap); free(plugin_data->lfo_tbl); ]]> ym1 = ym1; plugin_data->count = count; plugin_data->lfo_pos = lfo_pos; ]]> LFO rate (Hz) LFO depth Feedback Spread (octaves) Input Output 4 x 4 pole allpass ap); ]]> y0 = y0; plugin_data->y1 = y1; plugin_data->y2 = y2; plugin_data->y3 = y3; ]]> Frequency 1 Feedback 1 Frequency 2 Feedback 2 Frequency 3 Feedback 3 Frequency 4 Feedback 4 Input Output Auto phaser ap); free(plugin_data->env); ]]> ym1 = ym1; ]]> Attack time (s) Decay time (s) Modulation depth Feedback Spread (octaves) Input Output ladspa-0.4.17/pitch_scale_1193.xml000066400000000000000000000104331300111216200165100ustar00rootroot00000000000000 Pitch Scaler

A pitch shifter implementation that scales the harmonics appropriately with the base frequencies. It is an implementation of Stephen M. Sprengler's pitch scaler design. It gives reasonable, general purpose results for small changes, but won't give Antares or Eventide anything to worry about.

The FFT block size and oversampling has been kept at a minimum to keep the CPU usage low.

pitch_scale(buffers, mult, FRAME_LENGTH, OVER_SAMP, sample_count, sample_rate, input, output, RUN_ADDING, run_adding_gain); *(plugin_data->latency) = FRAME_LENGTH - (FRAME_LENGTH / OVER_SAMP); int i; float arg; buffers = malloc(sizeof(sbuffers)); sample_rate = s_rate; buffers->gInFIFO = malloc(FRAME_LENGTH * sizeof(float)); buffers->gOutFIFO = malloc(FRAME_LENGTH * sizeof(float)); buffers->gLastPhase = malloc(FRAME_LENGTH * sizeof(float)); buffers->gSumPhase = malloc(FRAME_LENGTH * sizeof(float)); buffers->gOutputAccum = malloc(2*FRAME_LENGTH * sizeof(float)); buffers->gAnaFreq = malloc(FRAME_LENGTH * sizeof(float)); buffers->gAnaMagn = malloc(FRAME_LENGTH * sizeof(float)); buffers->gSynFreq = malloc(FRAME_LENGTH * sizeof(float)); buffers->gSynMagn = malloc(FRAME_LENGTH * sizeof(float)); buffers->gWindow = malloc(FRAME_LENGTH * sizeof(float)); /* if (aplan == NULL) { #ifdef FFTW3 aplan = fftwf_plan_r2r_1d(FRAME_LENGTH, ps_in, ps_out, FFTW_R2HC, FFTW_MEASURE); splan = fftwf_plan_r2r_1d(FRAME_LENGTH, ps_in, ps_out, FFTW_HC2R, FFTW_MEASURE); #else aplan = rfftw_create_plan(FRAME_LENGTH, FFTW_REAL_TO_COMPLEX, FFTW_ESTIMATE); splan = rfftw_create_plan(FRAME_LENGTH, FFTW_COMPLEX_TO_REAL, FFTW_ESTIMATE); #endif } */ arg = 2.0f * M_PI / (float)(FRAME_LENGTH-1); for (i=0; i < FRAME_LENGTH; i++) { // Blackman-Harris buffers->gWindow[i] = 0.35875f - 0.48829f * cos(arg * (float)i) + 0.14128f * cos(2.0f * arg * (float)i) - 0.01168f * cos(3.0f * arg * (float)i); // Gain correction buffers->gWindow[i] *= 0.761f; } memset(buffers->gInFIFO, 0, FRAME_LENGTH*sizeof(float)); memset(buffers->gOutFIFO, 0, FRAME_LENGTH*sizeof(float)); memset(buffers->gLastPhase, 0, FRAME_LENGTH*sizeof(float)/2); memset(buffers->gSumPhase, 0, FRAME_LENGTH*sizeof(float)/2); memset(buffers->gOutputAccum, 0, 2*FRAME_LENGTH*sizeof(float)); memset(buffers->gAnaFreq, 0, FRAME_LENGTH*sizeof(float)); memset(buffers->gAnaMagn, 0, FRAME_LENGTH*sizeof(float)); buffers->gRover = 0; sample_rate = sample_rate; /* do one run to make sure the plans are set up */ pitch_scale(buffers, 1.0, FRAME_LENGTH, 4, FRAME_LENGTH, sample_rate, buffers->gInFIFO, buffers->gOutFIFO, 0, 0.0f); buffers->gInFIFO); free (plugin_data->buffers->gOutFIFO); free (plugin_data->buffers->gLastPhase); free (plugin_data->buffers->gSumPhase); free (plugin_data->buffers->gOutputAccum); free (plugin_data->buffers->gAnaFreq); free (plugin_data->buffers->gAnaMagn); free (plugin_data->buffers->gSynFreq); free (plugin_data->buffers->gSynMagn); free (plugin_data->buffers->gWindow); free (plugin_data->buffers); ]]> Pitch co-efficient Input Output latency
ladspa-0.4.17/pitch_scale_1194.xml000066400000000000000000000103461300111216200165140ustar00rootroot00000000000000 #include "util/pitchscale.h" #define FRAME_LENGTH 4096 #define OVER_SAMP 16 Higher Quality Pitch Scaler

A pitch shifter implementation that scales the harmonics appropriately with the base frequencies. It is an implementation of Stephen M. Sprengler's pitch scaler design. It gives reasonable, general purpose results for small changes, but won't give Antares or Eventide anything to worry about.

The FFT block size and oversampling has been kept at reasonable levels to keep the CPU usage low, but it is smoother than the other Pitch Scaler.

pitch_scale(buffers, mult, FRAME_LENGTH, OVER_SAMP, sample_count, sample_rate, input, output, RUN_ADDING, run_adding_gain); *(plugin_data->latency) = FRAME_LENGTH - (FRAME_LENGTH / OVER_SAMP); int i; float arg; buffers = malloc(sizeof(sbuffers)); sample_rate = s_rate; buffers->gInFIFO = malloc(FRAME_LENGTH * sizeof(float)); buffers->gOutFIFO = malloc(FRAME_LENGTH * sizeof(float)); buffers->gLastPhase = malloc(FRAME_LENGTH * sizeof(float)); buffers->gSumPhase = malloc(FRAME_LENGTH * sizeof(float)); buffers->gOutputAccum = malloc(2*FRAME_LENGTH * sizeof(float)); buffers->gAnaFreq = malloc(FRAME_LENGTH * sizeof(float)); buffers->gAnaMagn = malloc(FRAME_LENGTH * sizeof(float)); buffers->gSynFreq = malloc(FRAME_LENGTH * sizeof(float)); buffers->gSynMagn = malloc(FRAME_LENGTH * sizeof(float)); buffers->gWindow = malloc(FRAME_LENGTH * sizeof(float)); arg = 2.0f * M_PI / (float)(FRAME_LENGTH-1); for (i=0; i < FRAME_LENGTH; i++) { // Blackman-Harris buffers->gWindow[i] = 0.35875f - 0.48829f * cos(arg * (float)i) + 0.14128f * cos(2.0f * arg * (float)i) - 0.01168f * cos(3.0f * arg * (float)i); // Gain correction buffers->gWindow[i] *= 0.761f; } gInFIFO, 0, FRAME_LENGTH*sizeof(float)); memset(buffers->gOutFIFO, 0, FRAME_LENGTH*sizeof(float)); memset(buffers->gLastPhase, 0, FRAME_LENGTH*sizeof(float)/2); memset(buffers->gSumPhase, 0, FRAME_LENGTH*sizeof(float)/2); memset(buffers->gOutputAccum, 0, 2*FRAME_LENGTH*sizeof(float)); memset(buffers->gAnaFreq, 0, FRAME_LENGTH*sizeof(float)); memset(buffers->gAnaMagn, 0, FRAME_LENGTH*sizeof(float)); buffers->gRover = 0; pitch_scale(buffers, 1.0, FRAME_LENGTH, 16, FRAME_LENGTH, sample_rate, buffers->gInFIFO, buffers->gOutFIFO, 0, 0.0f); ]]> buffers->gInFIFO); free (plugin_data->buffers->gOutFIFO); free (plugin_data->buffers->gLastPhase); free (plugin_data->buffers->gSumPhase); free (plugin_data->buffers->gOutputAccum); free (plugin_data->buffers->gAnaFreq); free (plugin_data->buffers->gAnaMagn); free (plugin_data->buffers->gSynFreq); free (plugin_data->buffers->gSynMagn); free (plugin_data->buffers->gWindow); free (plugin_data->buffers); ]]> Pitch co-efficient

The pitch scaling factor, a value of 2.0 will increase the pitch by one octave, etc.

Input Output latency
ladspa-0.4.17/plate_1423.xml000066400000000000000000000102071300111216200153320ustar00rootroot00000000000000 #include "util/waveguide_nl.h" #define LP_INNER 0.96f #define LP_OUTER 0.983f #define RUN_WG(n, junct_a, junct_b) waveguide_nl_process_lin(w[n], junct_a - out[n*2+1], junct_b - out[n*2], out+n*2, out+n*2+1) Plate reverb

A physical model of a steel plate reverb.

Based on Josep Comajuncosas' gong model, it uses 8 linear waveguides to model the plate.

size * scale); } for (pos=0; pos<4; pos++) { waveguide_nl_set_fc(w[pos], LP_INNER * lpscale); } for (; pos<8; pos++) { waveguide_nl_set_fc(w[pos], LP_OUTER * lpscale); } for (pos = 0; pos < sample_count; pos++) { const float alpha = (out[0] + out[2] + out[4] + out[6]) * 0.5f + input[pos]; const float beta = (out[1] + out[9] + out[14]) * 0.666666666f; const float gamma = (out[3] + out[8] + out[11]) * 0.666666666f; const float delta = (out[5] + out[10] + out[13]) * 0.666666666f; const float epsilon = (out[7] + out[12] + out[15]) * 0.666666666f; RUN_WG(0, beta, alpha); RUN_WG(1, gamma, alpha); RUN_WG(2, delta, alpha); RUN_WG(3, epsilon, alpha); RUN_WG(4, beta, gamma); RUN_WG(5, gamma, delta); RUN_WG(6, delta, epsilon); RUN_WG(7, epsilon, beta); buffer_write(outputl[pos], beta * wet + input[pos] * (1.0f - wet)); buffer_write(outputr[pos], gamma * wet + input[pos] * (1.0f - wet)); } ]]> w[i]); } free(plugin_data->w); free(plugin_data->out); ]]> Reverb time

Controls the RT60 time of the reverb. Actually controls the size of the plate. The mapping between plate size and RT60 time is just a heuristic, so it's not very accurate.

Damping

Controls the degree that the surface of the plate is damped.

Dry/wet mix

Controls the balance between the dry and wet signals.

Input Left output Right output
ladspa-0.4.17/po/000077500000000000000000000000001300111216200134505ustar00rootroot00000000000000ladspa-0.4.17/po/.gitignore000066400000000000000000000002711300111216200154400ustar00rootroot00000000000000/boldquot.sed /en@boldquot.header /en@quot.header /insert-header.sin /Makefile.in.in /Makevars.template /Rules-quot /quot.sed /remove-potcdate.sed /remove-potcdate.sin /stamp-po /*.gmo ladspa-0.4.17/po/Makevars000066400000000000000000000021421300111216200151430ustar00rootroot00000000000000# Makefile variables for PO directory in any package using GNU gettext. # Usually the message domain is the same as the package name. DOMAIN = $(PACKAGE) # These two variables depend on the location of this directory. subdir = po top_builddir = .. # These options get passed to xgettext. XGETTEXT_OPTIONS = --keyword=_ --keyword=N_ # This is the copyright holder that gets inserted into the header of the # $(DOMAIN).pot file. Set this to the copyright holder of the surrounding # package. (Note that the msgstr strings, extracted from the package's # sources, belong to the copyright holder of the package.) Translators are # expected to transfer the copyright for their translations to this person # or entity, or to disclaim their copyright. The empty string stands for # the public domain; in this case the translators are expected to disclaim # their copyright. COPYRIGHT_HOLDER = JAMin project # This is the list of locale categories, beyond LC_MESSAGES, for which the # message catalogs shall be used. It is usually empty. EXTRA_LOCALE_CATEGORIES = MSGID_BUGS_ADDRESS = jamin-devel@lists.sourceforge.net ladspa-0.4.17/po/POTFILES.in000066400000000000000000000030541300111216200152270ustar00rootroot00000000000000amp_1181.c diode_1185.c divider_1186.c shaper_1187.c ringmod_1188.c comb_1190.c declip_1195.c foverdrive_1196.c sinus_wavewrapper_1198.c hermes_filter_1200.c multivoice_chorus_1201.c flanger_1191.c decimator_1202.c single_para_1203.c triple_para_1204.c transient_1206.c fad_delay_1192.c dc_remove_1207.c retro_flange_1208.c valve_1209.c sifter_1210.c tape_delay_1211.c step_muxer_1212.c foldover_1213.c svf_1214.c gsm_1215.c gverb_1216.c phasers_1217.c harmonic_gen_1220.c surround_encoder_1401.c delayorama_1402.c dyson_compress_1403.c crossover_dist_1404.c valve_rect_1405.c split_1406.c alias_1407.c satan_maximiser_1408.c karaoke_1409.c gate_1410.c comb_splitter_1411.c wave_terrain_1412.c hard_limiter_1413.c smooth_decimate_1414.c fm_osc_1415.c analogue_osc_1416.c rate_shifter_1417.c freq_tracker_1418.c mod_delay_1419.c matrix_st_ms_1420.c matrix_ms_st_1421.c matrix_spatialiser_1422.c plate_1423.c gong_1424.c sc1_1425.c sc2_1426.c sc3_1427.c zm1_1428.c inv_1429.c chebstortion_1430.c bode_shifter_1431.c bode_shifter_cv_1432.c am_pitchshift_1433.c sc4_1882.c lcr_delay_1436.c giant_flange_1437.c dj_flanger_1438.c gong_beater_1439.c hilbert_1440.c sin_cos_1881.c se4_1883.c bandpass_a_iir_1893.c bandpass_iir_1892.c highpass_iir_1890.c lowpass_iir_1891.c notch_iir_1894.c dj_eq_1901.c butterworth_1902.c allpass_1895.c comb_1887.c decay_1886.c delay_1898.c impulse_1885.c vynil_1905.c revdelay_1605.c ls_filter_1908.c const_1909.c pointer_cast_1910.c fast_lookahead_limiter_1913.c latency_1914.c xfade_1915.c mbeq_1197.c pitch_scale_1193.c pitch_scale_1194.c imp_1199.c ladspa-0.4.17/po/de.po000066400000000000000000001064451300111216200144120ustar00rootroot00000000000000# translation of swh-plugins 0.4.15-1 to German # Copyright (C) 2009 Steve Harris # This file is distributed under the same license as the swh-plugins package. # Chris Leick , 2009. # msgid "" msgstr "" "Project-Id-Version: swh-plugins 0.4.15-1\n" "POT-Creation-Date: 2003-03-09 16:06+0000\n" "PO-Revision-Date: 2009-04-01 12:02+0100\n" "Last-Translator: Chris Leick \n" "Language-Team: German \n" "MIME-Version: 1.0\n" "Content-Type: text/plain; charset=UTF-8\n" "Content-Transfer-Encoding: 8bit\n" "Plural-Forms: nplurals=2; plural=(n != 1);\n" #: alias_1407.xml:51 msgid "Aliasing" msgstr "Aliasing" #: alias_1407.xml:76 msgid "Aliasing level" msgstr "Aliasing-Stufe" #: alias_1407.xml:86 amp_1181.xml:83 am_pitchshift_1433.xml:177 #: bode_shifter_1431.xml:193 bode_shifter_cv_1432.xml:195 #: chebstortion_1430.xml:187 comb_1190.xml:132 comb_splitter_1411.xml:126 #: crossover_dist_1404.xml:103 dc_remove_1207.xml:80 debug_1184.xml:113 #: decimator_1202.xml:127 declip_1195.xml:84 delayorama_1402.xml:355 #: diode_1185.xml:98 divider_1186.xml:119 dj_flanger_1438.xml:189 #: dyson_compress_1403.xml:406 fad_delay_1192.xml:154 flanger_1191.xml:234 #: foldover_1213.xml:94 foverdrive_1196.xml:82 freq_tracker_1418.xml:111 #: gate_1410.xml:248 giant_flange_1437.xml:278 gong_1424.xml:425 #: gong_beater_1439.xml:151 gsm_1215.xml:194 gverb_1216.xml:196 #: hard_limiter_1413.xml:110 harmonic_gen_1220.xml:248 #: hermes_filter_1200.xml:991 imp_1199.xml:290 inv_1429.xml:70 #: mbeq_1197.xml:380 mod_delay_1419.xml:123 multivoice_chorus_1201.xml:281 #: phasers_1217.xml:247 phasers_1217.xml:381 phasers_1217.xml:485 #: pitch_scale_1193.xml:91 pitch_scale_1194.xml:90 plate_1423.xml:160 #: rate_shifter_1417.xml:125 retro_flange_1208.xml:238 ringmod_1188.xml:109 #: ringmod_1188.xml:233 satan_maximiser_1408.xml:141 sc1_1425.xml:198 #: sc2_1426.xml:202 shaper_1187.xml:93 sifter_1210.xml:203 #: single_para_1203.xml:119 sinus_wavewrapper_1198.xml:84 #: smooth_decimate_1414.xml:120 split_1406.xml:72 svf_1214.xml:167 #: tape_delay_1211.xml:262 transient_1206.xml:177 triple_para_1204.xml:255 #: valve_1209.xml:128 valve_rect_1405.xml:156 zm1_1428.xml:80 msgid "Input" msgstr "Eingang" #: alias_1407.xml:93 amp_1181.xml:90 am_pitchshift_1433.xml:184 #: analogue_osc_1416.xml:168 chebstortion_1430.xml:197 comb_1190.xml:139 #: crossover_dist_1404.xml:110 dc_remove_1207.xml:87 debug_1184.xml:120 #: decimator_1202.xml:137 declip_1195.xml:94 delayorama_1402.xml:362 #: diode_1185.xml:105 divider_1186.xml:126 dj_flanger_1438.xml:196 #: dyson_compress_1403.xml:413 fad_delay_1192.xml:161 flanger_1191.xml:241 #: fm_osc_1415.xml:102 foldover_1213.xml:101 foverdrive_1196.xml:89 #: gate_1410.xml:255 giant_flange_1437.xml:285 gong_1424.xml:432 #: gong_beater_1439.xml:158 gsm_1215.xml:201 hard_limiter_1413.xml:117 #: harmonic_gen_1220.xml:258 hermes_filter_1200.xml:1001 imp_1199.xml:297 #: inv_1429.xml:77 mbeq_1197.xml:387 mod_delay_1419.xml:130 #: multivoice_chorus_1201.xml:288 phasers_1217.xml:254 phasers_1217.xml:388 #: phasers_1217.xml:492 pitch_scale_1193.xml:98 pitch_scale_1194.xml:97 #: rate_shifter_1417.xml:132 retro_flange_1208.xml:245 ringmod_1188.xml:126 #: ringmod_1188.xml:240 satan_maximiser_1408.xml:148 sc1_1425.xml:205 #: sc2_1426.xml:209 shaper_1187.xml:103 sifter_1210.xml:210 #: single_para_1203.xml:129 sinus_wavewrapper_1198.xml:94 #: smooth_decimate_1414.xml:127 step_muxer_1212.xml:222 svf_1214.xml:177 #: tape_delay_1211.xml:269 transient_1206.xml:187 triple_para_1204.xml:265 #: valve_1209.xml:135 valve_rect_1405.xml:163 zm1_1428.xml:87 msgid "Output" msgstr "Ausgang" #: amp_1181.xml:48 msgid "Simple amplifier" msgstr "Einfacher Verstärker" #: amp_1181.xml:73 msgid "Amps gain (dB)" msgstr "Verstärkung (dB)" #: am_pitchshift_1433.xml:132 msgid "AM pitchshifter" msgstr "AM-Tonhöhenschieber" #: am_pitchshift_1433.xml:157 msgid "Pitch shift" msgstr "Tonhöhenschieber" #: am_pitchshift_1433.xml:167 msgid "Buffer size" msgstr "Puffergröße" #: analogue_osc_1416.xml:103 msgid "Analogue Oscillator" msgstr "Analoger Oszillator" #: analogue_osc_1416.xml:128 fm_osc_1415.xml:82 msgid "Waveform (1=sin, 2=tri, 3=squ, 4=saw)" msgstr "" "Wellenform (1=sinusförmig, 2=dreieckig, 3=quadratisch, 4=sägezahnförmig)" #: analogue_osc_1416.xml:138 fm_osc_1415.xml:92 freq_tracker_1418.xml:118 #: ringmod_1188.xml:183 single_para_1203.xml:99 msgid "Frequency (Hz)" msgstr "Frequenz (Hz)" #: analogue_osc_1416.xml:148 msgid "Warmth" msgstr "Wärme" #: analogue_osc_1416.xml:158 msgid "Instability" msgstr "Instabilität" #: bode_shifter_1431.xml:158 msgid "Bode frequency shifter" msgstr "Bode-Frequenzschieber" #: bode_shifter_1431.xml:183 msgid "Frequency shift" msgstr "Frequenzverschiebung" #: bode_shifter_1431.xml:200 bode_shifter_cv_1432.xml:222 msgid "Down out" msgstr "Unten heraus" #: bode_shifter_1431.xml:207 bode_shifter_cv_1432.xml:229 msgid "Up out" msgstr "Oben heraus" #: bode_shifter_cv_1432.xml:150 # CV ist ein »kapazitiver Teiler«. # Siehe auch: http://www.guitar-letter.de/Knowledge/Grundlagen/DieLautstaer # keeinstellunginderElektrogitarre.htm msgid "Bode frequency shifter (CV)" msgstr "Bode-Frequenzschieber (CV)" #: bode_shifter_cv_1432.xml:175 msgid "Base shift" msgstr "Grundverschiebung" #: bode_shifter_cv_1432.xml:185 msgid "Mix (-1=down, +1=up)" msgstr "Mix (-1=ab, +1=auf)" #: bode_shifter_cv_1432.xml:202 msgid "CV Attenuation" msgstr "CV-Dämpfung" #: bode_shifter_cv_1432.xml:212 msgid "Shift CV" msgstr "CV verschieben" #: bode_shifter_cv_1432.xml:236 msgid "Mix out" msgstr "Mixen" #: chebstortion_1430.xml:152 msgid "Chebyshev distortion" msgstr "Tschebyscheff-Amplitudenverzerrung" #: chebstortion_1430.xml:177 valve_rect_1405.xml:146 msgid "Distortion" msgstr "Verzerrung" #: comb_1190.xml:87 msgid "Comb Filter" msgstr "Kammfilter" #: comb_1190.xml:112 comb_splitter_1411.xml:116 msgid "Band separation (Hz)" msgstr "Bandtrennung (Hz)" #: comb_1190.xml:122 flanger_1191.xml:224 giant_flange_1437.xml:258 #: lcr_delay_1436.xml:241 phasers_1217.xml:227 phasers_1217.xml:465 msgid "Feedback" msgstr "Feedback" #: comb_splitter_1411.xml:91 msgid "Comb Splitter" msgstr "Kammspalter" #: comb_splitter_1411.xml:133 lookahead_limiter_1435.xml:200 split_1406.xml:82 msgid "Output 1" msgstr "Ausgang 1" #: comb_splitter_1411.xml:140 lookahead_limiter_1435.xml:207 split_1406.xml:92 msgid "Output 2" msgstr "Ausgang 2" #: crossover_dist_1404.xml:58 msgid "Crossover distortion" msgstr "Übergangs-Amplitudenverzerrung" #: crossover_dist_1404.xml:83 msgid "Crossover amplitude" msgstr "Übergangs-Amplitude" #: crossover_dist_1404.xml:93 smooth_decimate_1414.xml:110 msgid "Smoothing" msgstr "Glätten" #: dc_remove_1207.xml:55 msgid "DC Offset Remover" msgstr "DC-Versatz-Entferner" #: debug_1184.xml:68 msgid "Debug Plugin" msgstr "Fehlersuch-Erweiterung" #: debug_1184.xml:93 msgid "Display all values?" msgstr "Alle Werte anzeigen?" #: debug_1184.xml:103 msgid "Reset counters?" msgstr "Zähler zurücksetzen?" #: decimator_1202.xml:82 msgid "Decimator" msgstr "Dezimierer" #: decimator_1202.xml:107 msgid "Bit depth" msgstr "Bit-Tiefe" #: decimator_1202.xml:117 msgid "Sample rate (Hz)" msgstr "Abtastrate (Hz)" #: declip_1195.xml:59 msgid "Declipper" msgstr "Begrenzungsentferner" #: delayorama_1402.xml:220 msgid "Delayorama" msgstr "" #: delayorama_1402.xml:245 msgid "Random seed" msgstr "Anfangswert für Zufallsgenerator" #: delayorama_1402.xml:255 hermes_filter_1200.xml:621 msgid "Input gain (dB)" msgstr "Eingangsverstärkung (dB)" #: delayorama_1402.xml:265 dj_flanger_1438.xml:179 msgid "Feedback (%)" msgstr "Feedback (%)" #: delayorama_1402.xml:275 msgid "Number of taps" msgstr "Anzahl der Taps" #: delayorama_1402.xml:285 msgid "First delay (s)" msgstr "Erste Verzögerung (s)" #: delayorama_1402.xml:295 msgid "Delay range (s)" msgstr "Verzögerungsbereich (s)" #: delayorama_1402.xml:305 msgid "Delay change" msgstr "Verzögerungsänderung" #: delayorama_1402.xml:315 msgid "Delay random (%)" msgstr "Zufällige Verzögerung (%)" #: delayorama_1402.xml:325 msgid "Amplitude change" msgstr "Amplitudenänderung" #: delayorama_1402.xml:335 msgid "Amplitude random (%)" msgstr "Zufallsamplitude (%)" #: delayorama_1402.xml:345 gsm_1215.xml:164 plate_1423.xml:150 msgid "Dry/wet mix" msgstr "Trockener/nasser Mix" #: diode_1185.xml:63 msgid "Diode Processor" msgstr "Diodenprozessor" #: diode_1185.xml:88 msgid "Mode (0 for none, 1 for half wave, 2 for full wave)" msgstr "Modus (0 für keine, 1 für halbe Welle, 2 für ganze Welle)" #: divider_1186.xml:84 msgid "Audio Divider (Suboctave Generator)" msgstr "Audio-Teiler (Unteroktaven-Generator)" #: divider_1186.xml:109 msgid "Denominator" msgstr "Nenner" #: dj_flanger_1438.xml:124 msgid "DJ flanger" msgstr "" #: dj_flanger_1438.xml:149 msgid "LFO sync" msgstr "" #: dj_flanger_1438.xml:159 msgid "LFO period (s)" msgstr "LFO-Periode (s)" #: dj_flanger_1438.xml:169 msgid "LFO depth (ms)" msgstr "LFO-Tiefe (ms)" #: dyson_compress_1403.xml:341 msgid "Dyson compressor" msgstr "Dyson-Kompressor" #: dyson_compress_1403.xml:366 msgid "Peak limit (dB)" msgstr "Spitzenbegrenzung (dB)" #: dyson_compress_1403.xml:376 msgid "Release time (s)" msgstr "Abklingzeit (s)" #: dyson_compress_1403.xml:386 msgid "Fast compression ratio" msgstr "Schnelles Verdichtungsverhältnis" #: dyson_compress_1403.xml:396 msgid "Compression ratio" msgstr "Verdichtungsverhältnis" #: fad_delay_1192.xml:109 msgid "Fractionally Addressed Delay Line" msgstr "Unterbrochen adressierte Verzögerungslinie" #: fad_delay_1192.xml:134 msgid "Delay (seconds)" msgstr "Verzögerung (Sekunden)" #: fad_delay_1192.xml:144 msgid "Feedback (dB)" msgstr "Feedback (dB)" #: flanger_1191.xml:169 msgid "Flanger" msgstr "" #: flanger_1191.xml:194 multivoice_chorus_1201.xml:231 msgid "Delay base (ms)" msgstr "Verzögerungsbasis (ms)" #: flanger_1191.xml:204 msgid "Max slowdown (ms)" msgstr "Maximale Verzögerung (ms)" #: flanger_1191.xml:214 multivoice_chorus_1201.xml:261 msgid "LFO frequency (Hz)" msgstr "LFO-Frequenz (Hz)" #: fm_osc_1415.xml:57 msgid "FM Oscillator" msgstr "FM-Oszillator" #: foldover_1213.xml:49 msgid "Foldover distortion" msgstr "" #: foldover_1213.xml:74 msgid "Drive" msgstr "" #: foldover_1213.xml:84 msgid "Skew" msgstr "Schräge" #: foverdrive_1196.xml:47 msgid "Fast overdrive" msgstr "Schnell übersteuern" #: foverdrive_1196.xml:72 msgid "Drive level" msgstr "" #: freq_tracker_1418.xml:76 msgid "Frequency tracker" msgstr "Frequenz-Verfolger" #: freq_tracker_1418.xml:101 msgid "Tracking speed" msgstr "Verfolgungsgeschwindigkeit" #: gate_1410.xml:143 msgid "Gate" msgstr "Tor" #: gate_1410.xml:168 msgid "LF key filter (Hz)" msgstr "LF-Schlüsselfilter (Hz)" #: gate_1410.xml:178 msgid "HF key filter (Hz)" msgstr "HF-Schlüsselfilter (Hz)" #: gate_1410.xml:188 msgid "Threshold (dB)" msgstr "Schwelle (dB)" #: gate_1410.xml:198 msgid "Attack (ms)" msgstr "Anschlag (ms)" #: gate_1410.xml:208 msgid "Hold (ms)" msgstr "Halten (ms)" #: gate_1410.xml:218 msgid "Decay (ms)" msgstr "Ausklingen (ms)" #: gate_1410.xml:228 msgid "Range (dB)" msgstr "Bereich (dB)" #: gate_1410.xml:238 msgid "Output select (-1 = key listen, 0 = gate, 1 = bypass)" msgstr "" #: giant_flange_1437.xml:183 msgid "Giant flange" msgstr "" #: giant_flange_1437.xml:208 msgid "Double delay" msgstr "Doppelte Verzögerung" #: giant_flange_1437.xml:218 msgid "LFO frequency 1 (Hz)" msgstr "LFO-Frequenz 1 (Hz)" #: giant_flange_1437.xml:228 msgid "Delay 1 range (s)" msgstr "Verzögerung-1-Bereich (s)" #: giant_flange_1437.xml:238 msgid "LFO frequency 2 (Hz)" msgstr "LFO-Frequenz 2 (Hz)" #: giant_flange_1437.xml:248 msgid "Delay 2 range (s)" msgstr "Verzögerung-2-Bereich (s)" #: giant_flange_1437.xml:268 lcr_delay_1436.xml:281 msgid "Dry/Wet level" msgstr "Trocken-/Nass-Stufe" #: gong_1424.xml:130 msgid "Gong model" msgstr "Gongmodell" #: gong_1424.xml:155 msgid "Inner damping" msgstr "Innere Dämpfung" #: gong_1424.xml:165 msgid "Outer damping" msgstr "Äußere Dämpfung" #: gong_1424.xml:175 msgid "Mic position" msgstr "Micro-Position" #: gong_1424.xml:185 msgid "Inner size 1" msgstr "Innere Größe 1" #: gong_1424.xml:195 msgid "Inner stiffness 1 +" msgstr "Innere Starre 1 +" #: gong_1424.xml:205 msgid "Inner stiffness 1 -" msgstr "Innere Starre 1 -" #: gong_1424.xml:215 msgid "Inner size 2" msgstr "Innere Größe 2" #: gong_1424.xml:225 msgid "Inner stiffness 2 +" msgstr "Innere Starre 2 +" #: gong_1424.xml:235 msgid "Inner stiffness 2 -" msgstr "Innere Starre 2 -" #: gong_1424.xml:245 msgid "Inner size 3" msgstr "Innere Größe 3" #: gong_1424.xml:255 msgid "Inner stiffness 3 +" msgstr "Innere Starre 3 +" #: gong_1424.xml:265 msgid "Inner stiffness 3 -" msgstr "Innere Starre 3 -" #: gong_1424.xml:275 msgid "Inner size 4" msgstr "Innere Größe 4" #: gong_1424.xml:285 msgid "Inner stiffness 4 +" msgstr "Innere Starre 4 +" #: gong_1424.xml:295 msgid "Inner stiffness 4 -" msgstr "Innere Starre 4 -" #: gong_1424.xml:305 msgid "Outer size 1" msgstr "Äußere Größe 1" #: gong_1424.xml:315 msgid "Outer stiffness 1 +" msgstr "Äußere Starre 1 +" #: gong_1424.xml:325 msgid "Outer stiffness 1 -" msgstr "Äußere Starre 1 -" #: gong_1424.xml:335 msgid "Outer size 2" msgstr "Äußere Größe 2" #: gong_1424.xml:345 msgid "Outer stiffness 2 +" msgstr "Äußere Starre 2 +" #: gong_1424.xml:355 msgid "Outer stiffness 2 -" msgstr "Äußere Starre 2 -" #: gong_1424.xml:365 msgid "Outer size 3" msgstr "Äußere Größe 3" #: gong_1424.xml:375 msgid "Outer stiffness 3 +" msgstr "Äußere Starre 3 +" #: gong_1424.xml:385 msgid "Outer stiffness 3 -" msgstr "Äußere Starre 3 -" #: gong_1424.xml:395 msgid "Outer size 4" msgstr "Äußere Größe 4" #: gong_1424.xml:405 msgid "Outer stiffness 4 +" msgstr "Äußere Starre 4 +" #: gong_1424.xml:415 msgid "Outer stiffness 4 -" msgstr "Äußere Starre 4 -" #: gong_beater_1439.xml:96 msgid "Gong beater" msgstr "Gongschläger" #: gong_beater_1439.xml:121 msgid "Impulse gain (dB)" msgstr "Impuls-Zunahme" #: gong_beater_1439.xml:131 msgid "Strike gain (dB)" msgstr "Schlag-Zunahme (dB)" #: gong_beater_1439.xml:141 msgid "Strike duration (s)" msgstr "Schlagdauer (s)" #: gsm_1215.xml:139 msgid "GSM simulator" msgstr "GSM-Simulator" #: gsm_1215.xml:174 msgid "Number of passes" msgstr "Anzahl der Durchgänge" #: gsm_1215.xml:184 msgid "Error rate (bits/block)" msgstr "Fehlerquote (Bits/Block)" #: gverb_1216.xml:101 msgid "GVerb" msgstr "GVerb" #: gverb_1216.xml:126 msgid "Roomsize (m)" msgstr "Raumgröße (m)" #: gverb_1216.xml:136 msgid "Reverb time (s)" msgstr "Hallzeit (s)" #: gverb_1216.xml:146 plate_1423.xml:140 msgid "Damping" msgstr "Dämpfung" #: gverb_1216.xml:156 msgid "Input bandwidth" msgstr "Eingangsbandbreite" #: gverb_1216.xml:166 msgid "Dry signal level (dB)" msgstr "Trockene Sognalstufe (dB)" #: gverb_1216.xml:176 msgid "Early reflection level (dB)" msgstr "Anfängliche Spiegelungsstufe (dB)" #: gverb_1216.xml:186 msgid "Tail level (dB)" msgstr "Endstufe (dB)" #: gverb_1216.xml:203 plate_1423.xml:167 sc3_1427.xml:233 sc4_1434.xml:238 msgid "Left output" msgstr "Linker Ausgang" #: gverb_1216.xml:210 plate_1423.xml:174 sc3_1427.xml:240 sc4_1434.xml:245 msgid "Right output" msgstr "Rechter Ausgang" #: hard_limiter_1413.xml:55 msgid "Hard Limiter" msgstr "Harter Begrenzer" #: hard_limiter_1413.xml:80 msgid "dB limit" msgstr "dB-Begrenzung" #: hard_limiter_1413.xml:90 msgid "Wet level" msgstr "Trockene Stufe" #: hard_limiter_1413.xml:100 msgid "Residue level" msgstr "Reststufe" #: harmonic_gen_1220.xml:123 msgid "Harmonic generator" msgstr "Obertongenerator" #: harmonic_gen_1220.xml:148 msgid "Fundamental magnitude" msgstr "Grundlegende Größenordnung" #: harmonic_gen_1220.xml:158 msgid "2nd harmonic magnitude" msgstr "2. Oberton-Größenordnung" #: harmonic_gen_1220.xml:168 msgid "3rd harmonic magnitude" msgstr "3. Oberton-Größenordnung" #: harmonic_gen_1220.xml:178 msgid "4th harmonic magnitude" msgstr "4. Oberton-Größenordnung" #: harmonic_gen_1220.xml:188 msgid "5th harmonic magnitude" msgstr "5. Oberton-Größenordnung" #: harmonic_gen_1220.xml:198 msgid "6th harmonic magnitude" msgstr "6. Oberton-Größenordnung" #: harmonic_gen_1220.xml:208 msgid "7th harmonic magnitude" msgstr "7. Oberton-Größenordnung" #: harmonic_gen_1220.xml:218 msgid "8th harmonic magnitude" msgstr "8. Oberton-Größenordnung" #: harmonic_gen_1220.xml:228 msgid "9th harmonic magnitude" msgstr "9. Oberton-Größenordnung" #: harmonic_gen_1220.xml:238 msgid "10th harmonic magnitude" msgstr "10. Oberton-Größenordnung" #: hermes_filter_1200.xml:446 msgid "Hermes Filter" msgstr "Hermes-Filter" #: hermes_filter_1200.xml:471 msgid "LFO1 freq (Hz)" msgstr "LFO1-Freq. (Hz)" #: hermes_filter_1200.xml:481 msgid "LFO1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h)" msgstr "" "LFO1-Welle (0 = sinusförmig, 1 = dreieckig, 2 = sägezahnförmig, " "3 = quadratisch, 4 = s&h)" #: hermes_filter_1200.xml:491 msgid "LFO2 freq (Hz)" msgstr "LFO2-Freq. (Hz)" #: hermes_filter_1200.xml:501 msgid "LFO2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h)" msgstr "" "LFO2-Welle (0 = sinusförmig, 1 = dreieckig, 2 = sägezahnförmig, " "3 = quadratisch, 4 = s&h)" #: hermes_filter_1200.xml:511 msgid "Osc1 freq (Hz)" msgstr "Osz1-Freq. (Hz)" #: hermes_filter_1200.xml:521 msgid "Osc1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise)" msgstr "" "Osz1-Welle (0 = sinusförmig, 1 = dreieckig, 2 = sägezahnförmig, " "3 = quadratisch, 4 = Rauschen)" #: hermes_filter_1200.xml:531 msgid "Osc2 freq (Hz)" msgstr "Osz2-Freq. (Hz)" #: hermes_filter_1200.xml:541 msgid "Osc2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise)" msgstr "" "Osz2-Welle (0 = sinusförmig, 1 = dreieckig, 2 = sägezahnförmig, " "3 = quadratisch, 4 = Rauschen)" #: hermes_filter_1200.xml:551 msgid "Ringmod 1 depth (0=none, 1=AM, 2=RM)" msgstr "Ringmod-1-Tiefe (0=keine, 1=AM, 2=RM)" #: hermes_filter_1200.xml:561 msgid "Ringmod 2 depth (0=none, 1=AM, 2=RM)" msgstr "Ringmod-2-Tiefe (0=keine, 1=AM, 2=RM)" #: hermes_filter_1200.xml:571 msgid "Ringmod 3 depth (0=none, 1=AM, 2=RM)" msgstr "Ringmod-3-Tiefe (0=keine, 1=AM, 2=RM)" #: hermes_filter_1200.xml:581 msgid "Osc1 gain (dB)" msgstr "Osz1-Zunahme (dB)" #: hermes_filter_1200.xml:591 msgid "RM1 gain (dB)" msgstr "RM1-Zunahme (dB)" #: hermes_filter_1200.xml:601 msgid "Osc2 gain (dB)" msgstr "Osz2-Zunahme (dB)" #: hermes_filter_1200.xml:611 msgid "RM2 gain (dB)" msgstr "RM2-Zunahme (dB)" #: hermes_filter_1200.xml:631 msgid "RM3 gain (dB)" msgstr "RM3-Zunahme (dB)" #: hermes_filter_1200.xml:641 msgid "Xover lower freq" msgstr "Xover niedrigere Freq." #: hermes_filter_1200.xml:651 msgid "Xover upper freq" msgstr "Xover höhere Freq." #: hermes_filter_1200.xml:661 msgid "Dist1 drive" msgstr "Dist1-Schwung" #: hermes_filter_1200.xml:671 msgid "Dist2 drive" msgstr "Dist2-Schwung" #: hermes_filter_1200.xml:681 msgid "Dist3 drive" msgstr "Dist3-Schwung" #: hermes_filter_1200.xml:691 msgid "Filt1 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "Filt1-Typ (0=kein, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" #: hermes_filter_1200.xml:701 msgid "Filt1 freq" msgstr "Filt1-Freq." #: hermes_filter_1200.xml:711 msgid "Filt1 q" msgstr "Filt1 q" #: hermes_filter_1200.xml:721 msgid "Filt1 resonance" msgstr "Filt1 Resonanz" #: hermes_filter_1200.xml:731 msgid "Filt1 LFO1 level" msgstr "Filt1-LFO1-Stufe" #: hermes_filter_1200.xml:741 msgid "Filt1 LFO2 level" msgstr "Filt1-LFO2-Stufe" #: hermes_filter_1200.xml:751 msgid "Filt2 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "Filt2-Typ (0=kein, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" #: hermes_filter_1200.xml:761 msgid "Filt2 freq" msgstr "Filt2-Freq." #: hermes_filter_1200.xml:771 msgid "Filt2 q" msgstr "Filt2 q" #: hermes_filter_1200.xml:781 msgid "Filt2 resonance" msgstr "Filt2 Resonanz" #: hermes_filter_1200.xml:791 msgid "Filt2 LFO1 level" msgstr "Filt2-LFO1-Stufe" #: hermes_filter_1200.xml:801 msgid "Filt2 LFO2 level" msgstr "Filt2-LFO2-Stufe" #: hermes_filter_1200.xml:811 msgid "Filt3 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "Filt3-Typ (0=kein, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" #: hermes_filter_1200.xml:821 msgid "Filt3 freq" msgstr "Filt3-Freq." #: hermes_filter_1200.xml:831 msgid "Filt3 q" msgstr "Filt3 q" #: hermes_filter_1200.xml:841 msgid "Filt3 resonance" msgstr "Filt3 Resonanz" #: hermes_filter_1200.xml:851 msgid "Filt3 LFO1 level" msgstr "Filt3-LFO1-Stufe" #: hermes_filter_1200.xml:861 msgid "Filt3 LFO2 level" msgstr "Filt3-LFO2-Stufe" #: hermes_filter_1200.xml:871 msgid "Delay1 length (s)" msgstr "Verzögerung1-Länge (s)" #: hermes_filter_1200.xml:881 msgid "Delay1 feedback" msgstr "Verzögerung1-Feedback" #: hermes_filter_1200.xml:891 msgid "Delay1 wetness" msgstr "Verzögerung1-Nässe" #: hermes_filter_1200.xml:901 msgid "Delay2 length (s)" msgstr "Verzögerung2-Länge (s)" #: hermes_filter_1200.xml:911 msgid "Delay2 feedback" msgstr "Verzögerung2-Feedback" #: hermes_filter_1200.xml:921 msgid "Delay2 wetness" msgstr "Verzögerung2-Nässe" #: hermes_filter_1200.xml:931 msgid "Delay3 length (s)" msgstr "Verzögerung3-Länge (s)" #: hermes_filter_1200.xml:941 msgid "Delay3 feedback" msgstr "Verzögerung3-Feedback" #: hermes_filter_1200.xml:951 msgid "Delay3 wetness" msgstr "Verzögerung3-Nässe" #: hermes_filter_1200.xml:961 triple_para_1204.xml:135 msgid "Band 1 gain (dB)" msgstr "Band-1-Zunahme (dB)" #: hermes_filter_1200.xml:971 triple_para_1204.xml:165 msgid "Band 2 gain (dB)" msgstr "Band-2-Zunahme (dB)" #: hermes_filter_1200.xml:981 triple_para_1204.xml:195 msgid "Band 3 gain (dB)" msgstr "Band-3-Zunahme (dB)" #: imp_1199.xml:235 msgid "Impulse convolver" msgstr "Impuls-Zusammenroller" #: imp_1199.xml:260 msgid "Impulse ID" msgstr "Impuls-ID" #: imp_1199.xml:270 msgid "High latency mode" msgstr "Modus mit hoher Wartezeit" #: imp_1199.xml:280 single_para_1203.xml:89 msgid "Gain (dB)" msgstr "Zunahme (dB)" #: inv_1429.xml:45 msgid "Inverter" msgstr "Wechselrichter" #: karaoke_1409.xml:50 msgid "Karaoke" msgstr "Karaoke" #: karaoke_1409.xml:75 msgid "Vocal volume (dB)" msgstr "Stimmenlautstärke" #: karaoke_1409.xml:85 msgid "Left in" msgstr "Links ein" #: karaoke_1409.xml:92 msgid "Right in" msgstr "Rechts ein" #: karaoke_1409.xml:99 msgid "Left out" msgstr "Links aus" #: karaoke_1409.xml:106 msgid "Right out" msgstr "Rechts aus" #: lcr_delay_1436.xml:156 msgid "L/C/R Delay" msgstr "L/C/R-Verzögerung" #: lcr_delay_1436.xml:181 msgid "L delay (ms)" msgstr "L-Verzögerung (ms)" #: lcr_delay_1436.xml:191 msgid "L level" msgstr "L-Stufe" #: lcr_delay_1436.xml:201 msgid "C delay (ms)" msgstr "C-Verzögerung (ms)" #: lcr_delay_1436.xml:211 msgid "C level" msgstr "C-Stufe" #: lcr_delay_1436.xml:221 msgid "R delay (ms)" msgstr "R-Verzögerung (ms)" #: lcr_delay_1436.xml:231 msgid "R level" msgstr "R-Stufe" #: lcr_delay_1436.xml:251 msgid "High damp (%)" msgstr "Hohe Feuchtigkeit (%)" #: lcr_delay_1436.xml:261 msgid "Low damp (%)" msgstr "Niedrige Feuchtigkeit (%)" #: lcr_delay_1436.xml:271 msgid "Spread" msgstr "Ausbreitung" #: lcr_delay_1436.xml:291 msgid "L input" msgstr "L-Eingang" #: lcr_delay_1436.xml:298 msgid "R input" msgstr "R-Eingang" #: lcr_delay_1436.xml:305 msgid "L output" msgstr "L-Ausgang" #: lcr_delay_1436.xml:312 msgid "R output" msgstr "R-Ausgang" #: lookahead_limiter_1435.xml:131 msgid "Lookahead limiter" msgstr "Vorgriff-Begrenzer" #: lookahead_limiter_1435.xml:156 msgid "Limit (dB)" msgstr "Begrenzung (dB)" #: lookahead_limiter_1435.xml:166 msgid "Lookahead delay" msgstr "Vorgriff-Verzögerung" #: lookahead_limiter_1435.xml:176 msgid "Attenuation (dB)" msgstr "Dämpfung (dB)" #: lookahead_limiter_1435.xml:186 step_muxer_1212.xml:166 msgid "Input 1" msgstr "Eingang 1" #: lookahead_limiter_1435.xml:193 step_muxer_1212.xml:173 msgid "Input 2" msgstr "Eingang 2" #: matrix_ms_st_1421.xml:45 msgid "Matrix: MS to Stereo" msgstr "Matrix: MS zu Stereo" #: matrix_ms_st_1421.xml:70 matrix_spatialiser_1422.xml:205 msgid "Width" msgstr "Breite" #: matrix_ms_st_1421.xml:80 matrix_st_ms_1420.xml:84 msgid "Mid" msgstr "Mittlere" #: matrix_ms_st_1421.xml:87 matrix_st_ms_1420.xml:91 msgid "Side" msgstr "Seite" #: matrix_ms_st_1421.xml:94 matrix_st_ms_1420.xml:70 msgid "Left" msgstr "Links" #: matrix_ms_st_1421.xml:101 matrix_st_ms_1420.xml:77 msgid "Right" msgstr "Rechts" #: matrix_spatialiser_1422.xml:166 msgid "Matrix Spatialiser" msgstr "" #: matrix_spatialiser_1422.xml:191 msgid "Input L" msgstr "Eingang L" #: matrix_spatialiser_1422.xml:198 msgid "Input R" msgstr "Eingang R" #: matrix_spatialiser_1422.xml:215 msgid "Output L" msgstr "Ausgang L" #: matrix_spatialiser_1422.xml:222 msgid "Output R" msgstr "Ausgang R" #: matrix_st_ms_1420.xml:45 msgid "Matrix: Stereo to MS" msgstr "Matrix: Stereo zu MS" #: mbeq_1197.xml:205 msgid "Multiband EQ" msgstr "Multiband EQ" #: mbeq_1197.xml:230 msgid "50Hz gain (low shelving)" msgstr "50Hz Zunahme (niedrige Aufstellung)" #: mbeq_1197.xml:240 msgid "100Hz gain" msgstr "100Hz Zunahme" #: mbeq_1197.xml:250 msgid "156Hz gain" msgstr "156Hz Zunahme" #: mbeq_1197.xml:260 msgid "220Hz gain" msgstr "220Hz Zunahme" #: mbeq_1197.xml:270 msgid "311Hz gain" msgstr "311Hz Zunahme" #: mbeq_1197.xml:280 msgid "440Hz gain" msgstr "440Hz Zunahme" #: mbeq_1197.xml:290 msgid "622Hz gain" msgstr "622Hz Zunahme" #: mbeq_1197.xml:300 msgid "880Hz gain" msgstr "880Hz Zunahme" #: mbeq_1197.xml:310 msgid "1250Hz gain" msgstr "1250Hz Zunahme" #: mbeq_1197.xml:320 msgid "1750Hz gain" msgstr "1750Hz Zunahme" #: mbeq_1197.xml:330 msgid "2500Hz gain" msgstr "2500Hz Zunahme" #: mbeq_1197.xml:340 msgid "3500Hz gain" msgstr "3500Hz Zunahme" #: mbeq_1197.xml:350 msgid "5000Hz gain" msgstr "5000Hz Zunahme" #: mbeq_1197.xml:360 msgid "10000Hz gain" msgstr "10000Hz Zunahme" #: mbeq_1197.xml:370 msgid "20000Hz gain" msgstr "20000Hz Zunahme" #: mod_delay_1419.xml:78 msgid "Modulatable delay" msgstr "Regelbare Verzögerung" #: mod_delay_1419.xml:103 msgid "Base delay (s)" msgstr "Grundverzögerung (s)" #: mod_delay_1419.xml:113 msgid "Delay (s)" msgstr "Verzögerung (s)" #: multivoice_chorus_1201.xml:196 msgid "Multivoice Chorus" msgstr "Mehrstimmiger Chor" #: multivoice_chorus_1201.xml:221 msgid "Number of voices" msgstr "Anzahl der Stimmen" #: multivoice_chorus_1201.xml:241 msgid "Voice separation (ms)" msgstr "Stimmentrennung (ms)" #: multivoice_chorus_1201.xml:251 msgid "Detune (%)" msgstr "Verstimmung (%)" #: multivoice_chorus_1201.xml:271 msgid "Output attenuation (dB)" msgstr "Ausgangsdämpfung (dB)" #: phasers_1217.xml:182 msgid "LFO Phaser" msgstr "" #: phasers_1217.xml:207 msgid "LFO rate (Hz)" msgstr "LFO-Rate (Hz)" #: phasers_1217.xml:217 msgid "LFO depth" msgstr "LFO-Tiefe" #: phasers_1217.xml:237 phasers_1217.xml:475 msgid "Spread (octaves)" msgstr "Ausbreitung (Oktaven)" #: phasers_1217.xml:276 msgid "4 x 4 pole allpass" msgstr "4 x 4 Pol-Allpass" #: phasers_1217.xml:301 msgid "Frequency 1" msgstr "Frequenz 1" #: phasers_1217.xml:311 msgid "Feedback 1" msgstr "Feedback 1" #: phasers_1217.xml:321 msgid "Frequency 2" msgstr "Frequenz 2" #: phasers_1217.xml:331 msgid "Feedback 2" msgstr "Feedback 2" #: phasers_1217.xml:341 msgid "Frequency 3" msgstr "Frequenz 3" #: phasers_1217.xml:351 msgid "Feedback 3" msgstr "Feedback 3" #: phasers_1217.xml:361 msgid "Frequency 4" msgstr "Frequenz 4" #: phasers_1217.xml:371 msgid "Feedback 4" msgstr "Feedback 4" #: phasers_1217.xml:410 msgid "Auto phaser" msgstr "" #: phasers_1217.xml:435 msgid "Attack time (s)" msgstr "Anschlagzeit (s)" #: phasers_1217.xml:445 msgid "Decay time (s)" msgstr "Abklingzeit (s)" #: phasers_1217.xml:455 msgid "Modulation depth" msgstr "Regeltiefe" #: pitch_scale_1193.xml:56 msgid "Pitch Scaler" msgstr "" #: pitch_scale_1193.xml:81 pitch_scale_1194.xml:80 msgid "Pitch co-efficient" msgstr "" #: pitch_scale_1194.xml:55 msgid "Higher Quality Pitch Scaler" msgstr "" #: plate_1423.xml:105 msgid "Plate reverb" msgstr "Blech-Hall" #: plate_1423.xml:130 msgid "Reverb time" msgstr "Hallzeit" #: rate_shifter_1417.xml:90 msgid "Rate shifter" msgstr "Anteil-Schieber" #: rate_shifter_1417.xml:115 msgid "Rate" msgstr "Anteil" #: retro_flange_1208.xml:193 msgid "Retro Flanger" msgstr "" #: retro_flange_1208.xml:218 msgid "Average stall (ms)" msgstr "" #: retro_flange_1208.xml:228 msgid "Flange frequency (Hz)" msgstr "" #: ringmod_1188.xml:74 msgid "Ringmod with two inputs" msgstr "Ringmod mit zwei Eingängen" #: ringmod_1188.xml:99 ringmod_1188.xml:173 msgid "Modulation depth (0=none, 1=AM, 2=RM)" msgstr "Regeltiefe (0=keine, 1=AM, 2=RM)" #: ringmod_1188.xml:116 msgid "Modulator" msgstr "Regler" #: ringmod_1188.xml:148 msgid "Ringmod with LFO" msgstr "Ringmod mit LFO" #: ringmod_1188.xml:193 msgid "Sine level" msgstr "Sinus-Stufe" #: ringmod_1188.xml:203 msgid "Triangle level" msgstr "Triangelstufe" #: ringmod_1188.xml:213 msgid "Sawtooth level" msgstr "Sägezahnstufe" #: ringmod_1188.xml:223 msgid "Square level" msgstr "Quadratstufe" #: satan_maximiser_1408.xml:96 msgid "Barry's Satan Maximiser" msgstr "Barrys Satan-Maximierer" #: satan_maximiser_1408.xml:121 msgid "Decay time (samples)" msgstr "Ausklingzeit (Muster)" #: satan_maximiser_1408.xml:131 msgid "Knee point (dB)" msgstr "Kniepunkt (dB)" #: sc1_1425.xml:113 msgid "SC1" msgstr "SC1" #: sc1_1425.xml:138 sc2_1426.xml:135 sc3_1427.xml:142 sc4_1434.xml:144 msgid "Attack time (ms)" msgstr "Anschlagzeit (ms)" #: sc1_1425.xml:148 sc2_1426.xml:145 sc3_1427.xml:152 sc4_1434.xml:154 msgid "Release time (ms)" msgstr "Freigabezeit (ms)" #: sc1_1425.xml:158 sc2_1426.xml:155 sc3_1427.xml:162 sc4_1434.xml:164 msgid "Threshold level (dB)" msgstr "Schwellenstufe (dB)" #: sc1_1425.xml:168 sc2_1426.xml:165 sc3_1427.xml:172 sc4_1434.xml:174 msgid "Ratio (1:n)" msgstr "Verhältnis (1:n)" #: sc1_1425.xml:178 sc2_1426.xml:175 sc3_1427.xml:182 sc4_1434.xml:184 msgid "Knee radius (dB)" msgstr "Knieradius (dB)" #: sc1_1425.xml:188 sc2_1426.xml:185 sc3_1427.xml:192 sc4_1434.xml:194 msgid "Makeup gain (dB)" msgstr "Aufbauzunahme (dB)" #: sc2_1426.xml:110 msgid "SC2" msgstr "SC2" #: sc2_1426.xml:195 sc3_1427.xml:212 msgid "Sidechain" msgstr "" #: sc3_1427.xml:117 msgid "SC3" msgstr "SC3" #: sc3_1427.xml:202 msgid "Chain balance" msgstr "" #: sc3_1427.xml:219 sc4_1434.xml:224 msgid "Left input" msgstr "Linker Eingang" #: sc3_1427.xml:226 sc4_1434.xml:231 msgid "Right input" msgstr "Rechter Eingang" #: sc4_1434.xml:119 msgid "SC4" msgstr "SC4" #: sc4_1434.xml:204 msgid "Amplitude (dB)" msgstr "Amplitude (dB)" #: sc4_1434.xml:214 msgid "Gain reduction (dB)" msgstr "Zunahmeverminderung (dB)" #: shaper_1187.xml:58 msgid "Wave shaper" msgstr "Wellenformer" #: shaper_1187.xml:83 msgid "Waveshape" msgstr "Wellenform" #: sifter_1210.xml:168 msgid "Signal sifter" msgstr "Signal-Schieber" #: sifter_1210.xml:193 msgid "Sift size" msgstr "Schiebegröße" #: single_para_1203.xml:64 msgid "Single band parametric" msgstr "Einzelband parametrisch" #: single_para_1203.xml:109 msgid "Bandwidth (octaves)" msgstr "Bandbreite (Oktaven)" #: sinus_wavewrapper_1198.xml:49 msgid "Sinus wavewrapper" msgstr "Sinuswellen-Hülle" #: sinus_wavewrapper_1198.xml:74 msgid "Wrap degree" msgstr "Verhüllungsgrad" #: smooth_decimate_1414.xml:75 msgid "Smooth Decimator" msgstr "Glatter Verminderer" #: smooth_decimate_1414.xml:100 msgid "Resample rate" msgstr "Wiederabtast-Rate" #: split_1406.xml:47 msgid "Mono to Stereo splitter" msgstr "Mono-zu-Stereo-Spalter" #: step_muxer_1212.xml:124 msgid "Step Demuxer" msgstr "" #: step_muxer_1212.xml:149 msgid "Crossfade time (in ms)" msgstr "" #: step_muxer_1212.xml:159 msgid "Clock" msgstr "Takt" #: step_muxer_1212.xml:180 msgid "Input 3" msgstr "Eingang 3" #: step_muxer_1212.xml:187 msgid "Input 4" msgstr "Eingang 4" #: step_muxer_1212.xml:194 msgid "Input 5" msgstr "Eingang 5" #: step_muxer_1212.xml:201 msgid "Input 6" msgstr "Eingang 6" #: step_muxer_1212.xml:208 msgid "Input 7" msgstr "Eingang 7" #: step_muxer_1212.xml:215 msgid "Input 8" msgstr "Eingang 8" #: surround_encoder_1401.xml:97 msgid "Surround matrix encoder" msgstr "Umgebungsmatrix-Geber" #: surround_encoder_1401.xml:122 msgid "L" msgstr "L" #: surround_encoder_1401.xml:129 msgid "R" msgstr "R" #: surround_encoder_1401.xml:136 msgid "C" msgstr "C" #: surround_encoder_1401.xml:143 msgid "S" msgstr "S" #: surround_encoder_1401.xml:150 msgid "Lt" msgstr "Lt" #: surround_encoder_1401.xml:157 msgid "Rt" msgstr "Rt" #: svf_1214.xml:142 msgid "State Variable Filter" msgstr "Statusvariablenfilter" #: svf_1214.xml:187 msgid "Filter type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "Filtertyp (0=kein, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" #: svf_1214.xml:197 msgid "Filter freq" msgstr "Filter Freq." #: svf_1214.xml:207 msgid "Filter Q" msgstr "Filter Q" #: svf_1214.xml:217 msgid "Filter resonance" msgstr "Filterresonanz" #: tape_delay_1211.xml:137 msgid "Tape Delay Simulation" msgstr "Bandverzögerungs-Simulation" #: tape_delay_1211.xml:162 msgid "Tape speed (inches/sec, 1=normal)" msgstr "Bandgeschwindigkeit (Inch/Sek, 1=Normal)" #: tape_delay_1211.xml:172 msgid "Dry level (dB)" msgstr "Trockenstufe (dB)" #: tape_delay_1211.xml:182 msgid "Tap 1 distance (inches)" msgstr "Tap-1-Entfernung (Inch)" #: tape_delay_1211.xml:192 msgid "Tap 1 level (dB)" msgstr "Tap-1-Stufe (dB)" #: tape_delay_1211.xml:202 msgid "Tap 2 distance (inches)" msgstr "Tap-2-Entfernung (Inch)" #: tape_delay_1211.xml:212 msgid "Tap 2 level (dB)" msgstr "Tap-2-Stufe (dB)" #: tape_delay_1211.xml:222 msgid "Tap 3 distance (inches)" msgstr "Tap-3-Entfernung (Inch)" #: tape_delay_1211.xml:232 msgid "Tap 3 level (dB)" msgstr "Tap-3-Stufe (dB)" #: tape_delay_1211.xml:242 msgid "Tap 4 distance (inches)" msgstr "Tap-4-Entfernung (Inch)" #: tape_delay_1211.xml:252 msgid "Tap 4 level (dB)" msgstr "Tap-4-Stufe (dB)" #: transient_1206.xml:132 msgid "Transient mangler" msgstr "" #: transient_1206.xml:157 msgid "Attack speed" msgstr "Anschlaggeschwindigkeit" #: transient_1206.xml:167 msgid "Sustain time" msgstr "Ausklingzeit" #: triple_para_1204.xml:80 msgid "Triple band parametric with shelves" msgstr "" #: triple_para_1204.xml:105 msgid "Low-shelving gain (dB)" msgstr "" #: triple_para_1204.xml:115 msgid "Low-shelving frequency (Hz)" msgstr "" #: triple_para_1204.xml:125 msgid "Low-shelving slope" msgstr "" #: triple_para_1204.xml:145 msgid "Band 1 frequency (Hz)" msgstr "Band-1-Frequenz (Hz)" #: triple_para_1204.xml:155 msgid "Band 1 bandwidth (octaves)" msgstr "Band-1-Bandbreite (Oktaven)" #: triple_para_1204.xml:175 msgid "Band 2 frequency (Hz)" msgstr "Band-2-Frequenz (Hz)" #: triple_para_1204.xml:185 msgid "Band 2 bandwidth (octaves)" msgstr "Band-2-Bandbreite (Oktaven)" #: triple_para_1204.xml:205 msgid "Band 3 frequency (Hz)" msgstr "Band-3-Frequenz (Hz)" #: triple_para_1204.xml:215 msgid "Band 3 bandwidth (octaves)" msgstr "Band-3-Bandbreite (Oktaven)" #: triple_para_1204.xml:225 msgid "High-shelving gain (dB)" msgstr "" #: triple_para_1204.xml:235 msgid "High-shelving frequency (Hz)" msgstr "" #: triple_para_1204.xml:245 msgid "High-shelving slope" msgstr "" #: valve_1209.xml:83 msgid "Valve saturation" msgstr "Ventilsättigung" #: valve_1209.xml:108 msgid "Distortion level" msgstr "Amplitudenverzerrungsstufe" #: valve_1209.xml:118 msgid "Distortion character" msgstr "Amplitudenverzerrungscharakter" #: valve_rect_1405.xml:111 msgid "Valve rectifier" msgstr "Ventilgleichrichter" #: valve_rect_1405.xml:136 msgid "Sag level" msgstr "Durchhangstufe" #: wave_terrain_1412.xml:49 msgid "Wave Terrain Oscillator" msgstr "Wellenbodenoszillator" #: wave_terrain_1412.xml:74 msgid "x" msgstr "x" #: wave_terrain_1412.xml:81 msgid "y" msgstr "y" #: wave_terrain_1412.xml:88 msgid "z" msgstr "z" #: zm1_1428.xml:55 msgid "z-1" msgstr "z-1" ladspa-0.4.17/po/en_GB.po000066400000000000000000000713521300111216200147720ustar00rootroot00000000000000# English translations for PACKAGE package. # Copyright (C) 2003 Steve Harris # This file is distributed under the same license as the PACKAGE package. # Stephen Harris , 2003. # msgid "" msgstr "" "Project-Id-Version: swh-plugins 0.3.6\n" "POT-Creation-Date: 2003-03-09 16:06+0000\n" "PO-Revision-Date: 2003-03-09 14:09+0000\n" "Last-Translator: Stephen Harris \n" "Language-Team: English \n" "MIME-Version: 1.0\n" "Content-Type: text/plain; charset=ISO-8859-1\n" "Content-Transfer-Encoding: 8bit\n" "Plural-Forms: nplurals=2; plural=(n != 1);\n" #: alias_1407.xml:51 msgid "Aliasing" msgstr "" #: alias_1407.xml:76 msgid "Aliasing level" msgstr "" #: alias_1407.xml:86 amp_1181.xml:83 am_pitchshift_1433.xml:177 #: bode_shifter_1431.xml:193 bode_shifter_cv_1432.xml:195 #: chebstortion_1430.xml:187 comb_1190.xml:132 comb_splitter_1411.xml:126 #: crossover_dist_1404.xml:103 dc_remove_1207.xml:80 debug_1184.xml:113 #: decimator_1202.xml:127 declip_1195.xml:84 delayorama_1402.xml:355 #: diode_1185.xml:98 divider_1186.xml:119 dj_flanger_1438.xml:189 #: dyson_compress_1403.xml:406 fad_delay_1192.xml:154 flanger_1191.xml:234 #: foldover_1213.xml:94 foverdrive_1196.xml:82 freq_tracker_1418.xml:111 #: gate_1410.xml:248 giant_flange_1437.xml:278 gong_1424.xml:425 #: gong_beater_1439.xml:151 gsm_1215.xml:194 gverb_1216.xml:196 #: hard_limiter_1413.xml:110 harmonic_gen_1220.xml:248 #: hermes_filter_1200.xml:991 imp_1199.xml:290 inv_1429.xml:70 #: mbeq_1197.xml:380 mod_delay_1419.xml:123 multivoice_chorus_1201.xml:281 #: phasers_1217.xml:247 phasers_1217.xml:381 phasers_1217.xml:485 #: pitch_scale_1193.xml:91 pitch_scale_1194.xml:90 plate_1423.xml:160 #: rate_shifter_1417.xml:125 retro_flange_1208.xml:238 ringmod_1188.xml:109 #: ringmod_1188.xml:233 satan_maximiser_1408.xml:141 sc1_1425.xml:198 #: sc2_1426.xml:202 shaper_1187.xml:93 sifter_1210.xml:203 #: single_para_1203.xml:119 sinus_wavewrapper_1198.xml:84 #: smooth_decimate_1414.xml:120 split_1406.xml:72 svf_1214.xml:167 #: tape_delay_1211.xml:262 transient_1206.xml:177 triple_para_1204.xml:255 #: valve_1209.xml:128 valve_rect_1405.xml:156 zm1_1428.xml:80 msgid "Input" msgstr "" #: alias_1407.xml:93 amp_1181.xml:90 am_pitchshift_1433.xml:184 #: analogue_osc_1416.xml:168 chebstortion_1430.xml:197 comb_1190.xml:139 #: crossover_dist_1404.xml:110 dc_remove_1207.xml:87 debug_1184.xml:120 #: decimator_1202.xml:137 declip_1195.xml:94 delayorama_1402.xml:362 #: diode_1185.xml:105 divider_1186.xml:126 dj_flanger_1438.xml:196 #: dyson_compress_1403.xml:413 fad_delay_1192.xml:161 flanger_1191.xml:241 #: fm_osc_1415.xml:102 foldover_1213.xml:101 foverdrive_1196.xml:89 #: gate_1410.xml:255 giant_flange_1437.xml:285 gong_1424.xml:432 #: gong_beater_1439.xml:158 gsm_1215.xml:201 hard_limiter_1413.xml:117 #: harmonic_gen_1220.xml:258 hermes_filter_1200.xml:1001 imp_1199.xml:297 #: inv_1429.xml:77 mbeq_1197.xml:387 mod_delay_1419.xml:130 #: multivoice_chorus_1201.xml:288 phasers_1217.xml:254 phasers_1217.xml:388 #: phasers_1217.xml:492 pitch_scale_1193.xml:98 pitch_scale_1194.xml:97 #: rate_shifter_1417.xml:132 retro_flange_1208.xml:245 ringmod_1188.xml:126 #: ringmod_1188.xml:240 satan_maximiser_1408.xml:148 sc1_1425.xml:205 #: sc2_1426.xml:209 shaper_1187.xml:103 sifter_1210.xml:210 #: single_para_1203.xml:129 sinus_wavewrapper_1198.xml:94 #: smooth_decimate_1414.xml:127 step_muxer_1212.xml:222 svf_1214.xml:177 #: tape_delay_1211.xml:269 transient_1206.xml:187 triple_para_1204.xml:265 #: valve_1209.xml:135 valve_rect_1405.xml:163 zm1_1428.xml:87 msgid "Output" msgstr "" #: amp_1181.xml:48 msgid "Simple amplifier" msgstr "" #: amp_1181.xml:73 msgid "Amps gain (dB)" msgstr "" #: am_pitchshift_1433.xml:132 msgid "AM pitchshifter" msgstr "" #: am_pitchshift_1433.xml:157 msgid "Pitch shift" msgstr "" #: am_pitchshift_1433.xml:167 msgid "Buffer size" msgstr "" #: analogue_osc_1416.xml:103 msgid "Analogue Oscillator" msgstr "" #: analogue_osc_1416.xml:128 fm_osc_1415.xml:82 msgid "Waveform (1=sin, 2=tri, 3=squ, 4=saw)" msgstr "" #: analogue_osc_1416.xml:138 fm_osc_1415.xml:92 freq_tracker_1418.xml:118 #: ringmod_1188.xml:183 single_para_1203.xml:99 msgid "Frequency (Hz)" msgstr "" #: analogue_osc_1416.xml:148 msgid "Warmth" msgstr "" #: analogue_osc_1416.xml:158 msgid "Instability" msgstr "" #: bode_shifter_1431.xml:158 msgid "Bode frequency shifter" msgstr "" #: bode_shifter_1431.xml:183 msgid "Frequency shift" msgstr "" #: bode_shifter_1431.xml:200 bode_shifter_cv_1432.xml:222 msgid "Down out" msgstr "" #: bode_shifter_1431.xml:207 bode_shifter_cv_1432.xml:229 msgid "Up out" msgstr "" #: bode_shifter_cv_1432.xml:150 msgid "Bode frequency shifter (CV)" msgstr "" #: bode_shifter_cv_1432.xml:175 msgid "Base shift" msgstr "" #: bode_shifter_cv_1432.xml:185 msgid "Mix (-1=down, +1=up)" msgstr "" #: bode_shifter_cv_1432.xml:202 msgid "CV Attenuation" msgstr "" #: bode_shifter_cv_1432.xml:212 msgid "Shift CV" msgstr "" #: bode_shifter_cv_1432.xml:236 msgid "Mix out" msgstr "" #: chebstortion_1430.xml:152 msgid "Chebyshev distortion" msgstr "" #: chebstortion_1430.xml:177 valve_rect_1405.xml:146 msgid "Distortion" msgstr "" #: comb_1190.xml:87 msgid "Comb Filter" msgstr "" #: comb_1190.xml:112 comb_splitter_1411.xml:116 msgid "Band separation (Hz)" msgstr "" #: comb_1190.xml:122 flanger_1191.xml:224 giant_flange_1437.xml:258 #: lcr_delay_1436.xml:241 phasers_1217.xml:227 phasers_1217.xml:465 msgid "Feedback" msgstr "" #: comb_splitter_1411.xml:91 msgid "Comb Splitter" msgstr "" #: comb_splitter_1411.xml:133 lookahead_limiter_1435.xml:200 split_1406.xml:82 msgid "Output 1" msgstr "" #: comb_splitter_1411.xml:140 lookahead_limiter_1435.xml:207 split_1406.xml:92 msgid "Output 2" msgstr "" #: crossover_dist_1404.xml:58 msgid "Crossover distortion" msgstr "" #: crossover_dist_1404.xml:83 msgid "Crossover amplitude" msgstr "" #: crossover_dist_1404.xml:93 smooth_decimate_1414.xml:110 msgid "Smoothing" msgstr "" #: dc_remove_1207.xml:55 msgid "DC Offset Remover" msgstr "" #: debug_1184.xml:68 msgid "Debug Plugin" msgstr "" #: debug_1184.xml:93 msgid "Display all values?" msgstr "" #: debug_1184.xml:103 msgid "Reset counters?" msgstr "" #: decimator_1202.xml:82 msgid "Decimator" msgstr "" #: decimator_1202.xml:107 msgid "Bit depth" msgstr "" #: decimator_1202.xml:117 msgid "Sample rate (Hz)" msgstr "" #: declip_1195.xml:59 msgid "Declipper" msgstr "" #: delayorama_1402.xml:220 msgid "Delayorama" msgstr "" #: delayorama_1402.xml:245 msgid "Random seed" msgstr "" #: delayorama_1402.xml:255 hermes_filter_1200.xml:621 msgid "Input gain (dB)" msgstr "" #: delayorama_1402.xml:265 dj_flanger_1438.xml:179 msgid "Feedback (%)" msgstr "" #: delayorama_1402.xml:275 msgid "Number of taps" msgstr "" #: delayorama_1402.xml:285 msgid "First delay (s)" msgstr "" #: delayorama_1402.xml:295 msgid "Delay range (s)" msgstr "" #: delayorama_1402.xml:305 msgid "Delay change" msgstr "" #: delayorama_1402.xml:315 msgid "Delay random (%)" msgstr "" #: delayorama_1402.xml:325 msgid "Amplitude change" msgstr "" #: delayorama_1402.xml:335 msgid "Amplitude random (%)" msgstr "" #: delayorama_1402.xml:345 gsm_1215.xml:164 plate_1423.xml:150 msgid "Dry/wet mix" msgstr "" #: diode_1185.xml:63 msgid "Diode Processor" msgstr "" #: diode_1185.xml:88 msgid "Mode (0 for none, 1 for half wave, 2 for full wave)" msgstr "" #: divider_1186.xml:84 msgid "Audio Divider (Suboctave Generator)" msgstr "" #: divider_1186.xml:109 msgid "Denominator" msgstr "" #: dj_flanger_1438.xml:124 msgid "DJ flanger" msgstr "" #: dj_flanger_1438.xml:149 msgid "LFO sync" msgstr "" #: dj_flanger_1438.xml:159 msgid "LFO period (s)" msgstr "" #: dj_flanger_1438.xml:169 msgid "LFO depth (ms)" msgstr "" #: dyson_compress_1403.xml:341 msgid "Dyson compressor" msgstr "" #: dyson_compress_1403.xml:366 msgid "Peak limit (dB)" msgstr "" #: dyson_compress_1403.xml:376 msgid "Release time (s)" msgstr "" #: dyson_compress_1403.xml:386 msgid "Fast compression ratio" msgstr "" #: dyson_compress_1403.xml:396 msgid "Compression ratio" msgstr "" #: fad_delay_1192.xml:109 msgid "Fractionally Addressed Delay Line" msgstr "" #: fad_delay_1192.xml:134 msgid "Delay (seconds)" msgstr "" #: fad_delay_1192.xml:144 msgid "Feedback (dB)" msgstr "" #: flanger_1191.xml:169 msgid "Flanger" msgstr "" #: flanger_1191.xml:194 multivoice_chorus_1201.xml:231 msgid "Delay base (ms)" msgstr "" #: flanger_1191.xml:204 msgid "Max slowdown (ms)" msgstr "" #: flanger_1191.xml:214 multivoice_chorus_1201.xml:261 msgid "LFO frequency (Hz)" msgstr "" #: fm_osc_1415.xml:57 msgid "FM Oscillator" msgstr "" #: foldover_1213.xml:49 msgid "Foldover distortion" msgstr "" #: foldover_1213.xml:74 msgid "Drive" msgstr "" #: foldover_1213.xml:84 msgid "Skew" msgstr "" #: foverdrive_1196.xml:47 msgid "Fast overdrive" msgstr "" #: foverdrive_1196.xml:72 msgid "Drive level" msgstr "" #: freq_tracker_1418.xml:76 msgid "Frequency tracker" msgstr "" #: freq_tracker_1418.xml:101 msgid "Tracking speed" msgstr "" #: gate_1410.xml:143 msgid "Gate" msgstr "" #: gate_1410.xml:168 msgid "LF key filter (Hz)" msgstr "" #: gate_1410.xml:178 msgid "HF key filter (Hz)" msgstr "" #: gate_1410.xml:188 msgid "Threshold (dB)" msgstr "" #: gate_1410.xml:198 msgid "Attack (ms)" msgstr "" #: gate_1410.xml:208 msgid "Hold (ms)" msgstr "" #: gate_1410.xml:218 msgid "Decay (ms)" msgstr "" #: gate_1410.xml:228 msgid "Range (dB)" msgstr "" #: gate_1410.xml:238 msgid "Output select (-1 = key listen, 0 = gate, 1 = bypass)" msgstr "" #: giant_flange_1437.xml:183 msgid "Giant flange" msgstr "" #: giant_flange_1437.xml:208 msgid "Double delay" msgstr "" #: giant_flange_1437.xml:218 msgid "LFO frequency 1 (Hz)" msgstr "" #: giant_flange_1437.xml:228 msgid "Delay 1 range (s)" msgstr "" #: giant_flange_1437.xml:238 msgid "LFO frequency 2 (Hz)" msgstr "" #: giant_flange_1437.xml:248 msgid "Delay 2 range (s)" msgstr "" #: giant_flange_1437.xml:268 lcr_delay_1436.xml:281 msgid "Dry/Wet level" msgstr "" #: gong_1424.xml:130 msgid "Gong model" msgstr "" #: gong_1424.xml:155 msgid "Inner damping" msgstr "" #: gong_1424.xml:165 msgid "Outer damping" msgstr "" #: gong_1424.xml:175 msgid "Mic position" msgstr "" #: gong_1424.xml:185 msgid "Inner size 1" msgstr "" #: gong_1424.xml:195 msgid "Inner stiffness 1 +" msgstr "" #: gong_1424.xml:205 msgid "Inner stiffness 1 -" msgstr "" #: gong_1424.xml:215 msgid "Inner size 2" msgstr "" #: gong_1424.xml:225 msgid "Inner stiffness 2 +" msgstr "" #: gong_1424.xml:235 msgid "Inner stiffness 2 -" msgstr "" #: gong_1424.xml:245 msgid "Inner size 3" msgstr "" #: gong_1424.xml:255 msgid "Inner stiffness 3 +" msgstr "" #: gong_1424.xml:265 msgid "Inner stiffness 3 -" msgstr "" #: gong_1424.xml:275 msgid "Inner size 4" msgstr "" #: gong_1424.xml:285 msgid "Inner stiffness 4 +" msgstr "" #: gong_1424.xml:295 msgid "Inner stiffness 4 -" msgstr "" #: gong_1424.xml:305 msgid "Outer size 1" msgstr "" #: gong_1424.xml:315 msgid "Outer stiffness 1 +" msgstr "" #: gong_1424.xml:325 msgid "Outer stiffness 1 -" msgstr "" #: gong_1424.xml:335 msgid "Outer size 2" msgstr "" #: gong_1424.xml:345 msgid "Outer stiffness 2 +" msgstr "" #: gong_1424.xml:355 msgid "Outer stiffness 2 -" msgstr "" #: gong_1424.xml:365 msgid "Outer size 3" msgstr "" #: gong_1424.xml:375 msgid "Outer stiffness 3 +" msgstr "" #: gong_1424.xml:385 msgid "Outer stiffness 3 -" msgstr "" #: gong_1424.xml:395 msgid "Outer size 4" msgstr "" #: gong_1424.xml:405 msgid "Outer stiffness 4 +" msgstr "" #: gong_1424.xml:415 msgid "Outer stiffness 4 -" msgstr "" #: gong_beater_1439.xml:96 msgid "Gong beater" msgstr "" #: gong_beater_1439.xml:121 msgid "Impulse gain (dB)" msgstr "" #: gong_beater_1439.xml:131 msgid "Strike gain (dB)" msgstr "" #: gong_beater_1439.xml:141 msgid "Strike duration (s)" msgstr "" #: gsm_1215.xml:139 msgid "GSM simulator" msgstr "" #: gsm_1215.xml:174 msgid "Number of passes" msgstr "" #: gsm_1215.xml:184 msgid "Error rate (bits/block)" msgstr "" #: gverb_1216.xml:101 msgid "GVerb" msgstr "" #: gverb_1216.xml:126 msgid "Roomsize (m)" msgstr "" #: gverb_1216.xml:136 msgid "Reverb time (s)" msgstr "" #: gverb_1216.xml:146 plate_1423.xml:140 msgid "Damping" msgstr "" #: gverb_1216.xml:156 msgid "Input bandwidth" msgstr "" #: gverb_1216.xml:166 msgid "Dry signal level (dB)" msgstr "" #: gverb_1216.xml:176 msgid "Early reflection level (dB)" msgstr "" #: gverb_1216.xml:186 msgid "Tail level (dB)" msgstr "" #: gverb_1216.xml:203 plate_1423.xml:167 sc3_1427.xml:233 sc4_1434.xml:238 msgid "Left output" msgstr "" #: gverb_1216.xml:210 plate_1423.xml:174 sc3_1427.xml:240 sc4_1434.xml:245 msgid "Right output" msgstr "" #: hard_limiter_1413.xml:55 msgid "Hard Limiter" msgstr "" #: hard_limiter_1413.xml:80 msgid "dB limit" msgstr "" #: hard_limiter_1413.xml:90 msgid "Wet level" msgstr "" #: hard_limiter_1413.xml:100 msgid "Residue level" msgstr "" #: harmonic_gen_1220.xml:123 msgid "Harmonic generator" msgstr "" #: harmonic_gen_1220.xml:148 msgid "Fundamental magnitude" msgstr "" #: harmonic_gen_1220.xml:158 msgid "2nd harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:168 msgid "3rd harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:178 msgid "4th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:188 msgid "5th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:198 msgid "6th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:208 msgid "7th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:218 msgid "8th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:228 msgid "9th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:238 msgid "10th harmonic magnitude" msgstr "" #: hermes_filter_1200.xml:446 msgid "Hermes Filter" msgstr "" #: hermes_filter_1200.xml:471 msgid "LFO1 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:481 msgid "LFO1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h)" msgstr "" #: hermes_filter_1200.xml:491 msgid "LFO2 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:501 msgid "LFO2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h)" msgstr "" #: hermes_filter_1200.xml:511 msgid "Osc1 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:521 msgid "Osc1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise)" msgstr "" #: hermes_filter_1200.xml:531 msgid "Osc2 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:541 msgid "Osc2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise)" msgstr "" #: hermes_filter_1200.xml:551 msgid "Ringmod 1 depth (0=none, 1=AM, 2=RM)" msgstr "" #: hermes_filter_1200.xml:561 msgid "Ringmod 2 depth (0=none, 1=AM, 2=RM)" msgstr "" #: hermes_filter_1200.xml:571 msgid "Ringmod 3 depth (0=none, 1=AM, 2=RM)" msgstr "" #: hermes_filter_1200.xml:581 msgid "Osc1 gain (dB)" msgstr "" #: hermes_filter_1200.xml:591 msgid "RM1 gain (dB)" msgstr "" #: hermes_filter_1200.xml:601 msgid "Osc2 gain (dB)" msgstr "" #: hermes_filter_1200.xml:611 msgid "RM2 gain (dB)" msgstr "" #: hermes_filter_1200.xml:631 msgid "RM3 gain (dB)" msgstr "" #: hermes_filter_1200.xml:641 msgid "Xover lower freq" msgstr "" #: hermes_filter_1200.xml:651 msgid "Xover upper freq" msgstr "" #: hermes_filter_1200.xml:661 msgid "Dist1 drive" msgstr "" #: hermes_filter_1200.xml:671 msgid "Dist2 drive" msgstr "" #: hermes_filter_1200.xml:681 msgid "Dist3 drive" msgstr "" #: hermes_filter_1200.xml:691 msgid "Filt1 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: hermes_filter_1200.xml:701 msgid "Filt1 freq" msgstr "" #: hermes_filter_1200.xml:711 msgid "Filt1 q" msgstr "" #: hermes_filter_1200.xml:721 msgid "Filt1 resonance" msgstr "" #: hermes_filter_1200.xml:731 msgid "Filt1 LFO1 level" msgstr "" #: hermes_filter_1200.xml:741 msgid "Filt1 LFO2 level" msgstr "" #: hermes_filter_1200.xml:751 msgid "Filt2 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: hermes_filter_1200.xml:761 msgid "Filt2 freq" msgstr "" #: hermes_filter_1200.xml:771 msgid "Filt2 q" msgstr "" #: hermes_filter_1200.xml:781 msgid "Filt2 resonance" msgstr "" #: hermes_filter_1200.xml:791 msgid "Filt2 LFO1 level" msgstr "" #: hermes_filter_1200.xml:801 msgid "Filt2 LFO2 level" msgstr "" #: hermes_filter_1200.xml:811 msgid "Filt3 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: hermes_filter_1200.xml:821 msgid "Filt3 freq" msgstr "" #: hermes_filter_1200.xml:831 msgid "Filt3 q" msgstr "" #: hermes_filter_1200.xml:841 msgid "Filt3 resonance" msgstr "" #: hermes_filter_1200.xml:851 msgid "Filt3 LFO1 level" msgstr "" #: hermes_filter_1200.xml:861 msgid "Filt3 LFO2 level" msgstr "" #: hermes_filter_1200.xml:871 msgid "Delay1 length (s)" msgstr "" #: hermes_filter_1200.xml:881 msgid "Delay1 feedback" msgstr "" #: hermes_filter_1200.xml:891 msgid "Delay1 wetness" msgstr "" #: hermes_filter_1200.xml:901 msgid "Delay2 length (s)" msgstr "" #: hermes_filter_1200.xml:911 msgid "Delay2 feedback" msgstr "" #: hermes_filter_1200.xml:921 msgid "Delay2 wetness" msgstr "" #: hermes_filter_1200.xml:931 msgid "Delay3 length (s)" msgstr "" #: hermes_filter_1200.xml:941 msgid "Delay3 feedback" msgstr "" #: hermes_filter_1200.xml:951 msgid "Delay3 wetness" msgstr "" #: hermes_filter_1200.xml:961 triple_para_1204.xml:135 msgid "Band 1 gain (dB)" msgstr "" #: hermes_filter_1200.xml:971 triple_para_1204.xml:165 msgid "Band 2 gain (dB)" msgstr "" #: hermes_filter_1200.xml:981 triple_para_1204.xml:195 msgid "Band 3 gain (dB)" msgstr "" #: imp_1199.xml:235 msgid "Impulse convolver" msgstr "" #: imp_1199.xml:260 msgid "Impulse ID" msgstr "" #: imp_1199.xml:270 msgid "High latency mode" msgstr "" #: imp_1199.xml:280 single_para_1203.xml:89 msgid "Gain (dB)" msgstr "" #: inv_1429.xml:45 msgid "Inverter" msgstr "" #: karaoke_1409.xml:50 msgid "Karaoke" msgstr "" #: karaoke_1409.xml:75 msgid "Vocal volume (dB)" msgstr "" #: karaoke_1409.xml:85 msgid "Left in" msgstr "" #: karaoke_1409.xml:92 msgid "Right in" msgstr "" #: karaoke_1409.xml:99 msgid "Left out" msgstr "" #: karaoke_1409.xml:106 msgid "Right out" msgstr "" #: lcr_delay_1436.xml:156 msgid "L/C/R Delay" msgstr "" #: lcr_delay_1436.xml:181 msgid "L delay (ms)" msgstr "" #: lcr_delay_1436.xml:191 msgid "L level" msgstr "" #: lcr_delay_1436.xml:201 msgid "C delay (ms)" msgstr "" #: lcr_delay_1436.xml:211 msgid "C level" msgstr "" #: lcr_delay_1436.xml:221 msgid "R delay (ms)" msgstr "" #: lcr_delay_1436.xml:231 msgid "R level" msgstr "" #: lcr_delay_1436.xml:251 msgid "High damp (%)" msgstr "" #: lcr_delay_1436.xml:261 msgid "Low damp (%)" msgstr "" #: lcr_delay_1436.xml:271 msgid "Spread" msgstr "" #: lcr_delay_1436.xml:291 msgid "L input" msgstr "" #: lcr_delay_1436.xml:298 msgid "R input" msgstr "" #: lcr_delay_1436.xml:305 msgid "L output" msgstr "" #: lcr_delay_1436.xml:312 msgid "R output" msgstr "" #: lookahead_limiter_1435.xml:131 msgid "Lookahead limiter" msgstr "" #: lookahead_limiter_1435.xml:156 msgid "Limit (dB)" msgstr "" #: lookahead_limiter_1435.xml:166 msgid "Lookahead delay" msgstr "" #: lookahead_limiter_1435.xml:176 msgid "Attenuation (dB)" msgstr "" #: lookahead_limiter_1435.xml:186 step_muxer_1212.xml:166 msgid "Input 1" msgstr "" #: lookahead_limiter_1435.xml:193 step_muxer_1212.xml:173 msgid "Input 2" msgstr "" #: matrix_ms_st_1421.xml:45 msgid "Matrix: MS to Stereo" msgstr "" #: matrix_ms_st_1421.xml:70 matrix_spatialiser_1422.xml:205 msgid "Width" msgstr "" #: matrix_ms_st_1421.xml:80 matrix_st_ms_1420.xml:84 msgid "Mid" msgstr "" #: matrix_ms_st_1421.xml:87 matrix_st_ms_1420.xml:91 msgid "Side" msgstr "" #: matrix_ms_st_1421.xml:94 matrix_st_ms_1420.xml:70 msgid "Left" msgstr "" #: matrix_ms_st_1421.xml:101 matrix_st_ms_1420.xml:77 msgid "Right" msgstr "" #: matrix_spatialiser_1422.xml:166 msgid "Matrix Spatialiser" msgstr "" #: matrix_spatialiser_1422.xml:191 msgid "Input L" msgstr "" #: matrix_spatialiser_1422.xml:198 msgid "Input R" msgstr "" #: matrix_spatialiser_1422.xml:215 msgid "Output L" msgstr "" #: matrix_spatialiser_1422.xml:222 msgid "Output R" msgstr "" #: matrix_st_ms_1420.xml:45 msgid "Matrix: Stereo to MS" msgstr "" #: mbeq_1197.xml:205 msgid "Multiband EQ" msgstr "" #: mbeq_1197.xml:230 msgid "50Hz gain (low shelving)" msgstr "" #: mbeq_1197.xml:240 msgid "100Hz gain" msgstr "" #: mbeq_1197.xml:250 msgid "156Hz gain" msgstr "" #: mbeq_1197.xml:260 msgid "220Hz gain" msgstr "" #: mbeq_1197.xml:270 msgid "311Hz gain" msgstr "" #: mbeq_1197.xml:280 msgid "440Hz gain" msgstr "" #: mbeq_1197.xml:290 msgid "622Hz gain" msgstr "" #: mbeq_1197.xml:300 msgid "880Hz gain" msgstr "" #: mbeq_1197.xml:310 msgid "1250Hz gain" msgstr "" #: mbeq_1197.xml:320 msgid "1750Hz gain" msgstr "" #: mbeq_1197.xml:330 msgid "2500Hz gain" msgstr "" #: mbeq_1197.xml:340 msgid "3500Hz gain" msgstr "" #: mbeq_1197.xml:350 msgid "5000Hz gain" msgstr "" #: mbeq_1197.xml:360 msgid "10000Hz gain" msgstr "" #: mbeq_1197.xml:370 msgid "20000Hz gain" msgstr "" #: mod_delay_1419.xml:78 msgid "Modulatable delay" msgstr "" #: mod_delay_1419.xml:103 msgid "Base delay (s)" msgstr "" #: mod_delay_1419.xml:113 msgid "Delay (s)" msgstr "" #: multivoice_chorus_1201.xml:196 msgid "Multivoice Chorus" msgstr "" #: multivoice_chorus_1201.xml:221 msgid "Number of voices" msgstr "" #: multivoice_chorus_1201.xml:241 msgid "Voice separation (ms)" msgstr "" #: multivoice_chorus_1201.xml:251 msgid "Detune (%)" msgstr "" #: multivoice_chorus_1201.xml:271 msgid "Output attenuation (dB)" msgstr "" #: phasers_1217.xml:182 msgid "LFO Phaser" msgstr "" #: phasers_1217.xml:207 msgid "LFO rate (Hz)" msgstr "" #: phasers_1217.xml:217 msgid "LFO depth" msgstr "" #: phasers_1217.xml:237 phasers_1217.xml:475 msgid "Spread (octaves)" msgstr "" #: phasers_1217.xml:276 msgid "4 x 4 pole allpass" msgstr "" #: phasers_1217.xml:301 msgid "Frequency 1" msgstr "" #: phasers_1217.xml:311 msgid "Feedback 1" msgstr "" #: phasers_1217.xml:321 msgid "Frequency 2" msgstr "" #: phasers_1217.xml:331 msgid "Feedback 2" msgstr "" #: phasers_1217.xml:341 msgid "Frequency 3" msgstr "" #: phasers_1217.xml:351 msgid "Feedback 3" msgstr "" #: phasers_1217.xml:361 msgid "Frequency 4" msgstr "" #: phasers_1217.xml:371 msgid "Feedback 4" msgstr "" #: phasers_1217.xml:410 msgid "Auto phaser" msgstr "" #: phasers_1217.xml:435 msgid "Attack time (s)" msgstr "" #: phasers_1217.xml:445 msgid "Decay time (s)" msgstr "" #: phasers_1217.xml:455 msgid "Modulation depth" msgstr "" #: pitch_scale_1193.xml:56 msgid "Pitch Scaler" msgstr "" #: pitch_scale_1193.xml:81 pitch_scale_1194.xml:80 msgid "Pitch co-efficient" msgstr "" #: pitch_scale_1194.xml:55 msgid "Higher Quality Pitch Scaler" msgstr "" #: plate_1423.xml:105 msgid "Plate reverb" msgstr "" #: plate_1423.xml:130 msgid "Reverb time" msgstr "" #: rate_shifter_1417.xml:90 msgid "Rate shifter" msgstr "" #: rate_shifter_1417.xml:115 msgid "Rate" msgstr "" #: retro_flange_1208.xml:193 msgid "Retro Flanger" msgstr "" #: retro_flange_1208.xml:218 msgid "Average stall (ms)" msgstr "" #: retro_flange_1208.xml:228 msgid "Flange frequency (Hz)" msgstr "" #: ringmod_1188.xml:74 msgid "Ringmod with two inputs" msgstr "" #: ringmod_1188.xml:99 ringmod_1188.xml:173 msgid "Modulation depth (0=none, 1=AM, 2=RM)" msgstr "" #: ringmod_1188.xml:116 msgid "Modulator" msgstr "" #: ringmod_1188.xml:148 msgid "Ringmod with LFO" msgstr "" #: ringmod_1188.xml:193 msgid "Sine level" msgstr "" #: ringmod_1188.xml:203 msgid "Triangle level" msgstr "" #: ringmod_1188.xml:213 msgid "Sawtooth level" msgstr "" #: ringmod_1188.xml:223 msgid "Square level" msgstr "" #: satan_maximiser_1408.xml:96 msgid "Barry's Satan Maximiser" msgstr "" #: satan_maximiser_1408.xml:121 msgid "Decay time (samples)" msgstr "" #: satan_maximiser_1408.xml:131 msgid "Knee point (dB)" msgstr "" #: sc1_1425.xml:113 msgid "SC1" msgstr "" #: sc1_1425.xml:138 sc2_1426.xml:135 sc3_1427.xml:142 sc4_1434.xml:144 msgid "Attack time (ms)" msgstr "" #: sc1_1425.xml:148 sc2_1426.xml:145 sc3_1427.xml:152 sc4_1434.xml:154 msgid "Release time (ms)" msgstr "" #: sc1_1425.xml:158 sc2_1426.xml:155 sc3_1427.xml:162 sc4_1434.xml:164 msgid "Threshold level (dB)" msgstr "" #: sc1_1425.xml:168 sc2_1426.xml:165 sc3_1427.xml:172 sc4_1434.xml:174 msgid "Ratio (1:n)" msgstr "" #: sc1_1425.xml:178 sc2_1426.xml:175 sc3_1427.xml:182 sc4_1434.xml:184 msgid "Knee radius (dB)" msgstr "" #: sc1_1425.xml:188 sc2_1426.xml:185 sc3_1427.xml:192 sc4_1434.xml:194 msgid "Makeup gain (dB)" msgstr "" #: sc2_1426.xml:110 msgid "SC2" msgstr "" #: sc2_1426.xml:195 sc3_1427.xml:212 msgid "Sidechain" msgstr "" #: sc3_1427.xml:117 msgid "SC3" msgstr "" #: sc3_1427.xml:202 msgid "Chain balance" msgstr "" #: sc3_1427.xml:219 sc4_1434.xml:224 msgid "Left input" msgstr "" #: sc3_1427.xml:226 sc4_1434.xml:231 msgid "Right input" msgstr "" #: sc4_1434.xml:119 msgid "SC4" msgstr "" #: sc4_1434.xml:204 msgid "Amplitude (dB)" msgstr "" #: sc4_1434.xml:214 msgid "Gain reduction (dB)" msgstr "" #: shaper_1187.xml:58 msgid "Wave shaper" msgstr "" #: shaper_1187.xml:83 msgid "Waveshape" msgstr "" #: sifter_1210.xml:168 msgid "Signal sifter" msgstr "" #: sifter_1210.xml:193 msgid "Sift size" msgstr "" #: single_para_1203.xml:64 msgid "Single band parametric" msgstr "" #: single_para_1203.xml:109 msgid "Bandwidth (octaves)" msgstr "" #: sinus_wavewrapper_1198.xml:49 msgid "Sinus wavewrapper" msgstr "" #: sinus_wavewrapper_1198.xml:74 msgid "Wrap degree" msgstr "" #: smooth_decimate_1414.xml:75 msgid "Smooth Decimator" msgstr "" #: smooth_decimate_1414.xml:100 msgid "Resample rate" msgstr "" #: split_1406.xml:47 msgid "Mono to Stereo splitter" msgstr "" #: step_muxer_1212.xml:124 msgid "Step Demuxer" msgstr "" #: step_muxer_1212.xml:149 msgid "Crossfade time (in ms)" msgstr "" #: step_muxer_1212.xml:159 msgid "Clock" msgstr "" #: step_muxer_1212.xml:180 msgid "Input 3" msgstr "" #: step_muxer_1212.xml:187 msgid "Input 4" msgstr "" #: step_muxer_1212.xml:194 msgid "Input 5" msgstr "" #: step_muxer_1212.xml:201 msgid "Input 6" msgstr "" #: step_muxer_1212.xml:208 msgid "Input 7" msgstr "" #: step_muxer_1212.xml:215 msgid "Input 8" msgstr "" #: surround_encoder_1401.xml:97 msgid "Surround matrix encoder" msgstr "" #: surround_encoder_1401.xml:122 msgid "L" msgstr "" #: surround_encoder_1401.xml:129 msgid "R" msgstr "" #: surround_encoder_1401.xml:136 msgid "C" msgstr "" #: surround_encoder_1401.xml:143 msgid "S" msgstr "" #: surround_encoder_1401.xml:150 msgid "Lt" msgstr "" #: surround_encoder_1401.xml:157 msgid "Rt" msgstr "" #: svf_1214.xml:142 msgid "State Variable Filter" msgstr "" #: svf_1214.xml:187 msgid "Filter type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: svf_1214.xml:197 msgid "Filter freq" msgstr "" #: svf_1214.xml:207 msgid "Filter Q" msgstr "" #: svf_1214.xml:217 msgid "Filter resonance" msgstr "" #: tape_delay_1211.xml:137 msgid "Tape Delay Simulation" msgstr "" #: tape_delay_1211.xml:162 msgid "Tape speed (inches/sec, 1=normal)" msgstr "" #: tape_delay_1211.xml:172 msgid "Dry level (dB)" msgstr "" #: tape_delay_1211.xml:182 msgid "Tap 1 distance (inches)" msgstr "" #: tape_delay_1211.xml:192 msgid "Tap 1 level (dB)" msgstr "" #: tape_delay_1211.xml:202 msgid "Tap 2 distance (inches)" msgstr "" #: tape_delay_1211.xml:212 msgid "Tap 2 level (dB)" msgstr "" #: tape_delay_1211.xml:222 msgid "Tap 3 distance (inches)" msgstr "" #: tape_delay_1211.xml:232 msgid "Tap 3 level (dB)" msgstr "" #: tape_delay_1211.xml:242 msgid "Tap 4 distance (inches)" msgstr "" #: tape_delay_1211.xml:252 msgid "Tap 4 level (dB)" msgstr "" #: transient_1206.xml:132 msgid "Transient mangler" msgstr "" #: transient_1206.xml:157 msgid "Attack speed" msgstr "" #: transient_1206.xml:167 msgid "Sustain time" msgstr "" #: triple_para_1204.xml:80 msgid "Triple band parametric with shelves" msgstr "" #: triple_para_1204.xml:105 msgid "Low-shelving gain (dB)" msgstr "" #: triple_para_1204.xml:115 msgid "Low-shelving frequency (Hz)" msgstr "" #: triple_para_1204.xml:125 msgid "Low-shelving slope" msgstr "" #: triple_para_1204.xml:145 msgid "Band 1 frequency (Hz)" msgstr "" #: triple_para_1204.xml:155 msgid "Band 1 bandwidth (octaves)" msgstr "" #: triple_para_1204.xml:175 msgid "Band 2 frequency (Hz)" msgstr "" #: triple_para_1204.xml:185 msgid "Band 2 bandwidth (octaves)" msgstr "" #: triple_para_1204.xml:205 msgid "Band 3 frequency (Hz)" msgstr "" #: triple_para_1204.xml:215 msgid "Band 3 bandwidth (octaves)" msgstr "" #: triple_para_1204.xml:225 msgid "High-shelving gain (dB)" msgstr "" #: triple_para_1204.xml:235 msgid "High-shelving frequency (Hz)" msgstr "" #: triple_para_1204.xml:245 msgid "High-shelving slope" msgstr "" #: valve_1209.xml:83 msgid "Valve saturation" msgstr "" #: valve_1209.xml:108 msgid "Distortion level" msgstr "" #: valve_1209.xml:118 msgid "Distortion character" msgstr "" #: valve_rect_1405.xml:111 msgid "Valve rectifier" msgstr "" #: valve_rect_1405.xml:136 msgid "Sag level" msgstr "" #: wave_terrain_1412.xml:49 msgid "Wave Terrain Oscillator" msgstr "" #: wave_terrain_1412.xml:74 msgid "x" msgstr "" #: wave_terrain_1412.xml:81 msgid "y" msgstr "" #: wave_terrain_1412.xml:88 msgid "z" msgstr "" #: zm1_1428.xml:55 msgid "z-1" msgstr "" ladspa-0.4.17/po/swh-plugins.pot000066400000000000000000000712101300111216200164550ustar00rootroot00000000000000# SOME DESCRIPTIVE TITLE. # Copyright (C) YEAR Steve Harris # This file is distributed under the same license as the PACKAGE package. # FIRST AUTHOR , YEAR. # #, fuzzy msgid "" msgstr "" "Project-Id-Version: PACKAGE VERSION\n" "POT-Creation-Date: 2003-03-09 16:06+0000\n" "PO-Revision-Date: YEAR-MO-DA HO:MI+ZONE\n" "Last-Translator: FULL NAME \n" "Language-Team: LANGUAGE \n" "MIME-Version: 1.0\n" "Content-Type: text/plain; charset=CHARSET\n" "Content-Transfer-Encoding: 8bit\n" #: alias_1407.xml:51 msgid "Aliasing" msgstr "" #: alias_1407.xml:76 msgid "Aliasing level" msgstr "" #: alias_1407.xml:86 amp_1181.xml:83 am_pitchshift_1433.xml:177 #: bode_shifter_1431.xml:193 bode_shifter_cv_1432.xml:195 #: chebstortion_1430.xml:187 comb_1190.xml:132 comb_splitter_1411.xml:126 #: crossover_dist_1404.xml:103 dc_remove_1207.xml:80 debug_1184.xml:113 #: decimator_1202.xml:127 declip_1195.xml:84 delayorama_1402.xml:355 #: diode_1185.xml:98 divider_1186.xml:119 dj_flanger_1438.xml:189 #: dyson_compress_1403.xml:406 fad_delay_1192.xml:154 flanger_1191.xml:234 #: foldover_1213.xml:94 foverdrive_1196.xml:82 freq_tracker_1418.xml:111 #: gate_1410.xml:248 giant_flange_1437.xml:278 gong_1424.xml:425 #: gong_beater_1439.xml:151 gsm_1215.xml:194 gverb_1216.xml:196 #: hard_limiter_1413.xml:110 harmonic_gen_1220.xml:248 #: hermes_filter_1200.xml:991 imp_1199.xml:290 inv_1429.xml:70 #: mbeq_1197.xml:380 mod_delay_1419.xml:123 multivoice_chorus_1201.xml:281 #: phasers_1217.xml:247 phasers_1217.xml:381 phasers_1217.xml:485 #: pitch_scale_1193.xml:91 pitch_scale_1194.xml:90 plate_1423.xml:160 #: rate_shifter_1417.xml:125 retro_flange_1208.xml:238 ringmod_1188.xml:109 #: ringmod_1188.xml:233 satan_maximiser_1408.xml:141 sc1_1425.xml:198 #: sc2_1426.xml:202 shaper_1187.xml:93 sifter_1210.xml:203 #: single_para_1203.xml:119 sinus_wavewrapper_1198.xml:84 #: smooth_decimate_1414.xml:120 split_1406.xml:72 svf_1214.xml:167 #: tape_delay_1211.xml:262 transient_1206.xml:177 triple_para_1204.xml:255 #: valve_1209.xml:128 valve_rect_1405.xml:156 zm1_1428.xml:80 msgid "Input" msgstr "" #: alias_1407.xml:93 amp_1181.xml:90 am_pitchshift_1433.xml:184 #: analogue_osc_1416.xml:168 chebstortion_1430.xml:197 comb_1190.xml:139 #: crossover_dist_1404.xml:110 dc_remove_1207.xml:87 debug_1184.xml:120 #: decimator_1202.xml:137 declip_1195.xml:94 delayorama_1402.xml:362 #: diode_1185.xml:105 divider_1186.xml:126 dj_flanger_1438.xml:196 #: dyson_compress_1403.xml:413 fad_delay_1192.xml:161 flanger_1191.xml:241 #: fm_osc_1415.xml:102 foldover_1213.xml:101 foverdrive_1196.xml:89 #: gate_1410.xml:255 giant_flange_1437.xml:285 gong_1424.xml:432 #: gong_beater_1439.xml:158 gsm_1215.xml:201 hard_limiter_1413.xml:117 #: harmonic_gen_1220.xml:258 hermes_filter_1200.xml:1001 imp_1199.xml:297 #: inv_1429.xml:77 mbeq_1197.xml:387 mod_delay_1419.xml:130 #: multivoice_chorus_1201.xml:288 phasers_1217.xml:254 phasers_1217.xml:388 #: phasers_1217.xml:492 pitch_scale_1193.xml:98 pitch_scale_1194.xml:97 #: rate_shifter_1417.xml:132 retro_flange_1208.xml:245 ringmod_1188.xml:126 #: ringmod_1188.xml:240 satan_maximiser_1408.xml:148 sc1_1425.xml:205 #: sc2_1426.xml:209 shaper_1187.xml:103 sifter_1210.xml:210 #: single_para_1203.xml:129 sinus_wavewrapper_1198.xml:94 #: smooth_decimate_1414.xml:127 step_muxer_1212.xml:222 svf_1214.xml:177 #: tape_delay_1211.xml:269 transient_1206.xml:187 triple_para_1204.xml:265 #: valve_1209.xml:135 valve_rect_1405.xml:163 zm1_1428.xml:87 msgid "Output" msgstr "" #: amp_1181.xml:48 msgid "Simple amplifier" msgstr "" #: amp_1181.xml:73 msgid "Amps gain (dB)" msgstr "" #: am_pitchshift_1433.xml:132 msgid "AM pitchshifter" msgstr "" #: am_pitchshift_1433.xml:157 msgid "Pitch shift" msgstr "" #: am_pitchshift_1433.xml:167 msgid "Buffer size" msgstr "" #: analogue_osc_1416.xml:103 msgid "Analogue Oscillator" msgstr "" #: analogue_osc_1416.xml:128 fm_osc_1415.xml:82 msgid "Waveform (1=sin, 2=tri, 3=squ, 4=saw)" msgstr "" #: analogue_osc_1416.xml:138 fm_osc_1415.xml:92 freq_tracker_1418.xml:118 #: ringmod_1188.xml:183 single_para_1203.xml:99 msgid "Frequency (Hz)" msgstr "" #: analogue_osc_1416.xml:148 msgid "Warmth" msgstr "" #: analogue_osc_1416.xml:158 msgid "Instability" msgstr "" #: bode_shifter_1431.xml:158 msgid "Bode frequency shifter" msgstr "" #: bode_shifter_1431.xml:183 msgid "Frequency shift" msgstr "" #: bode_shifter_1431.xml:200 bode_shifter_cv_1432.xml:222 msgid "Down out" msgstr "" #: bode_shifter_1431.xml:207 bode_shifter_cv_1432.xml:229 msgid "Up out" msgstr "" #: bode_shifter_cv_1432.xml:150 msgid "Bode frequency shifter (CV)" msgstr "" #: bode_shifter_cv_1432.xml:175 msgid "Base shift" msgstr "" #: bode_shifter_cv_1432.xml:185 msgid "Mix (-1=down, +1=up)" msgstr "" #: bode_shifter_cv_1432.xml:202 msgid "CV Attenuation" msgstr "" #: bode_shifter_cv_1432.xml:212 msgid "Shift CV" msgstr "" #: bode_shifter_cv_1432.xml:236 msgid "Mix out" msgstr "" #: chebstortion_1430.xml:152 msgid "Chebyshev distortion" msgstr "" #: chebstortion_1430.xml:177 valve_rect_1405.xml:146 msgid "Distortion" msgstr "" #: comb_1190.xml:87 msgid "Comb Filter" msgstr "" #: comb_1190.xml:112 comb_splitter_1411.xml:116 msgid "Band separation (Hz)" msgstr "" #: comb_1190.xml:122 flanger_1191.xml:224 giant_flange_1437.xml:258 #: lcr_delay_1436.xml:241 phasers_1217.xml:227 phasers_1217.xml:465 msgid "Feedback" msgstr "" #: comb_splitter_1411.xml:91 msgid "Comb Splitter" msgstr "" #: comb_splitter_1411.xml:133 lookahead_limiter_1435.xml:200 split_1406.xml:82 msgid "Output 1" msgstr "" #: comb_splitter_1411.xml:140 lookahead_limiter_1435.xml:207 split_1406.xml:92 msgid "Output 2" msgstr "" #: crossover_dist_1404.xml:58 msgid "Crossover distortion" msgstr "" #: crossover_dist_1404.xml:83 msgid "Crossover amplitude" msgstr "" #: crossover_dist_1404.xml:93 smooth_decimate_1414.xml:110 msgid "Smoothing" msgstr "" #: dc_remove_1207.xml:55 msgid "DC Offset Remover" msgstr "" #: debug_1184.xml:68 msgid "Debug Plugin" msgstr "" #: debug_1184.xml:93 msgid "Display all values?" msgstr "" #: debug_1184.xml:103 msgid "Reset counters?" msgstr "" #: decimator_1202.xml:82 msgid "Decimator" msgstr "" #: decimator_1202.xml:107 msgid "Bit depth" msgstr "" #: decimator_1202.xml:117 msgid "Sample rate (Hz)" msgstr "" #: declip_1195.xml:59 msgid "Declipper" msgstr "" #: delayorama_1402.xml:220 msgid "Delayorama" msgstr "" #: delayorama_1402.xml:245 msgid "Random seed" msgstr "" #: delayorama_1402.xml:255 hermes_filter_1200.xml:621 msgid "Input gain (dB)" msgstr "" #: delayorama_1402.xml:265 dj_flanger_1438.xml:179 msgid "Feedback (%)" msgstr "" #: delayorama_1402.xml:275 msgid "Number of taps" msgstr "" #: delayorama_1402.xml:285 msgid "First delay (s)" msgstr "" #: delayorama_1402.xml:295 msgid "Delay range (s)" msgstr "" #: delayorama_1402.xml:305 msgid "Delay change" msgstr "" #: delayorama_1402.xml:315 msgid "Delay random (%)" msgstr "" #: delayorama_1402.xml:325 msgid "Amplitude change" msgstr "" #: delayorama_1402.xml:335 msgid "Amplitude random (%)" msgstr "" #: delayorama_1402.xml:345 gsm_1215.xml:164 plate_1423.xml:150 msgid "Dry/wet mix" msgstr "" #: diode_1185.xml:63 msgid "Diode Processor" msgstr "" #: diode_1185.xml:88 msgid "Mode (0 for none, 1 for half wave, 2 for full wave)" msgstr "" #: divider_1186.xml:84 msgid "Audio Divider (Suboctave Generator)" msgstr "" #: divider_1186.xml:109 msgid "Denominator" msgstr "" #: dj_flanger_1438.xml:124 msgid "DJ flanger" msgstr "" #: dj_flanger_1438.xml:149 msgid "LFO sync" msgstr "" #: dj_flanger_1438.xml:159 msgid "LFO period (s)" msgstr "" #: dj_flanger_1438.xml:169 msgid "LFO depth (ms)" msgstr "" #: dyson_compress_1403.xml:341 msgid "Dyson compressor" msgstr "" #: dyson_compress_1403.xml:366 msgid "Peak limit (dB)" msgstr "" #: dyson_compress_1403.xml:376 msgid "Release time (s)" msgstr "" #: dyson_compress_1403.xml:386 msgid "Fast compression ratio" msgstr "" #: dyson_compress_1403.xml:396 msgid "Compression ratio" msgstr "" #: fad_delay_1192.xml:109 msgid "Fractionally Addressed Delay Line" msgstr "" #: fad_delay_1192.xml:134 msgid "Delay (seconds)" msgstr "" #: fad_delay_1192.xml:144 msgid "Feedback (dB)" msgstr "" #: flanger_1191.xml:169 msgid "Flanger" msgstr "" #: flanger_1191.xml:194 multivoice_chorus_1201.xml:231 msgid "Delay base (ms)" msgstr "" #: flanger_1191.xml:204 msgid "Max slowdown (ms)" msgstr "" #: flanger_1191.xml:214 multivoice_chorus_1201.xml:261 msgid "LFO frequency (Hz)" msgstr "" #: fm_osc_1415.xml:57 msgid "FM Oscillator" msgstr "" #: foldover_1213.xml:49 msgid "Foldover distortion" msgstr "" #: foldover_1213.xml:74 msgid "Drive" msgstr "" #: foldover_1213.xml:84 msgid "Skew" msgstr "" #: foverdrive_1196.xml:47 msgid "Fast overdrive" msgstr "" #: foverdrive_1196.xml:72 msgid "Drive level" msgstr "" #: freq_tracker_1418.xml:76 msgid "Frequency tracker" msgstr "" #: freq_tracker_1418.xml:101 msgid "Tracking speed" msgstr "" #: gate_1410.xml:143 msgid "Gate" msgstr "" #: gate_1410.xml:168 msgid "LF key filter (Hz)" msgstr "" #: gate_1410.xml:178 msgid "HF key filter (Hz)" msgstr "" #: gate_1410.xml:188 msgid "Threshold (dB)" msgstr "" #: gate_1410.xml:198 msgid "Attack (ms)" msgstr "" #: gate_1410.xml:208 msgid "Hold (ms)" msgstr "" #: gate_1410.xml:218 msgid "Decay (ms)" msgstr "" #: gate_1410.xml:228 msgid "Range (dB)" msgstr "" #: gate_1410.xml:238 msgid "Output select (-1 = key listen, 0 = gate, 1 = bypass)" msgstr "" #: giant_flange_1437.xml:183 msgid "Giant flange" msgstr "" #: giant_flange_1437.xml:208 msgid "Double delay" msgstr "" #: giant_flange_1437.xml:218 msgid "LFO frequency 1 (Hz)" msgstr "" #: giant_flange_1437.xml:228 msgid "Delay 1 range (s)" msgstr "" #: giant_flange_1437.xml:238 msgid "LFO frequency 2 (Hz)" msgstr "" #: giant_flange_1437.xml:248 msgid "Delay 2 range (s)" msgstr "" #: giant_flange_1437.xml:268 lcr_delay_1436.xml:281 msgid "Dry/Wet level" msgstr "" #: gong_1424.xml:130 msgid "Gong model" msgstr "" #: gong_1424.xml:155 msgid "Inner damping" msgstr "" #: gong_1424.xml:165 msgid "Outer damping" msgstr "" #: gong_1424.xml:175 msgid "Mic position" msgstr "" #: gong_1424.xml:185 msgid "Inner size 1" msgstr "" #: gong_1424.xml:195 msgid "Inner stiffness 1 +" msgstr "" #: gong_1424.xml:205 msgid "Inner stiffness 1 -" msgstr "" #: gong_1424.xml:215 msgid "Inner size 2" msgstr "" #: gong_1424.xml:225 msgid "Inner stiffness 2 +" msgstr "" #: gong_1424.xml:235 msgid "Inner stiffness 2 -" msgstr "" #: gong_1424.xml:245 msgid "Inner size 3" msgstr "" #: gong_1424.xml:255 msgid "Inner stiffness 3 +" msgstr "" #: gong_1424.xml:265 msgid "Inner stiffness 3 -" msgstr "" #: gong_1424.xml:275 msgid "Inner size 4" msgstr "" #: gong_1424.xml:285 msgid "Inner stiffness 4 +" msgstr "" #: gong_1424.xml:295 msgid "Inner stiffness 4 -" msgstr "" #: gong_1424.xml:305 msgid "Outer size 1" msgstr "" #: gong_1424.xml:315 msgid "Outer stiffness 1 +" msgstr "" #: gong_1424.xml:325 msgid "Outer stiffness 1 -" msgstr "" #: gong_1424.xml:335 msgid "Outer size 2" msgstr "" #: gong_1424.xml:345 msgid "Outer stiffness 2 +" msgstr "" #: gong_1424.xml:355 msgid "Outer stiffness 2 -" msgstr "" #: gong_1424.xml:365 msgid "Outer size 3" msgstr "" #: gong_1424.xml:375 msgid "Outer stiffness 3 +" msgstr "" #: gong_1424.xml:385 msgid "Outer stiffness 3 -" msgstr "" #: gong_1424.xml:395 msgid "Outer size 4" msgstr "" #: gong_1424.xml:405 msgid "Outer stiffness 4 +" msgstr "" #: gong_1424.xml:415 msgid "Outer stiffness 4 -" msgstr "" #: gong_beater_1439.xml:96 msgid "Gong beater" msgstr "" #: gong_beater_1439.xml:121 msgid "Impulse gain (dB)" msgstr "" #: gong_beater_1439.xml:131 msgid "Strike gain (dB)" msgstr "" #: gong_beater_1439.xml:141 msgid "Strike duration (s)" msgstr "" #: gsm_1215.xml:139 msgid "GSM simulator" msgstr "" #: gsm_1215.xml:174 msgid "Number of passes" msgstr "" #: gsm_1215.xml:184 msgid "Error rate (bits/block)" msgstr "" #: gverb_1216.xml:101 msgid "GVerb" msgstr "" #: gverb_1216.xml:126 msgid "Roomsize (m)" msgstr "" #: gverb_1216.xml:136 msgid "Reverb time (s)" msgstr "" #: gverb_1216.xml:146 plate_1423.xml:140 msgid "Damping" msgstr "" #: gverb_1216.xml:156 msgid "Input bandwidth" msgstr "" #: gverb_1216.xml:166 msgid "Dry signal level (dB)" msgstr "" #: gverb_1216.xml:176 msgid "Early reflection level (dB)" msgstr "" #: gverb_1216.xml:186 msgid "Tail level (dB)" msgstr "" #: gverb_1216.xml:203 plate_1423.xml:167 sc3_1427.xml:233 sc4_1434.xml:238 msgid "Left output" msgstr "" #: gverb_1216.xml:210 plate_1423.xml:174 sc3_1427.xml:240 sc4_1434.xml:245 msgid "Right output" msgstr "" #: hard_limiter_1413.xml:55 msgid "Hard Limiter" msgstr "" #: hard_limiter_1413.xml:80 msgid "dB limit" msgstr "" #: hard_limiter_1413.xml:90 msgid "Wet level" msgstr "" #: hard_limiter_1413.xml:100 msgid "Residue level" msgstr "" #: harmonic_gen_1220.xml:123 msgid "Harmonic generator" msgstr "" #: harmonic_gen_1220.xml:148 msgid "Fundamental magnitude" msgstr "" #: harmonic_gen_1220.xml:158 msgid "2nd harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:168 msgid "3rd harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:178 msgid "4th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:188 msgid "5th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:198 msgid "6th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:208 msgid "7th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:218 msgid "8th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:228 msgid "9th harmonic magnitude" msgstr "" #: harmonic_gen_1220.xml:238 msgid "10th harmonic magnitude" msgstr "" #: hermes_filter_1200.xml:446 msgid "Hermes Filter" msgstr "" #: hermes_filter_1200.xml:471 msgid "LFO1 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:481 msgid "LFO1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h)" msgstr "" #: hermes_filter_1200.xml:491 msgid "LFO2 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:501 msgid "LFO2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = s&h)" msgstr "" #: hermes_filter_1200.xml:511 msgid "Osc1 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:521 msgid "Osc1 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise)" msgstr "" #: hermes_filter_1200.xml:531 msgid "Osc2 freq (Hz)" msgstr "" #: hermes_filter_1200.xml:541 msgid "Osc2 wave (0 = sin, 1 = tri, 2 = saw, 3 = squ, 4 = noise)" msgstr "" #: hermes_filter_1200.xml:551 msgid "Ringmod 1 depth (0=none, 1=AM, 2=RM)" msgstr "" #: hermes_filter_1200.xml:561 msgid "Ringmod 2 depth (0=none, 1=AM, 2=RM)" msgstr "" #: hermes_filter_1200.xml:571 msgid "Ringmod 3 depth (0=none, 1=AM, 2=RM)" msgstr "" #: hermes_filter_1200.xml:581 msgid "Osc1 gain (dB)" msgstr "" #: hermes_filter_1200.xml:591 msgid "RM1 gain (dB)" msgstr "" #: hermes_filter_1200.xml:601 msgid "Osc2 gain (dB)" msgstr "" #: hermes_filter_1200.xml:611 msgid "RM2 gain (dB)" msgstr "" #: hermes_filter_1200.xml:631 msgid "RM3 gain (dB)" msgstr "" #: hermes_filter_1200.xml:641 msgid "Xover lower freq" msgstr "" #: hermes_filter_1200.xml:651 msgid "Xover upper freq" msgstr "" #: hermes_filter_1200.xml:661 msgid "Dist1 drive" msgstr "" #: hermes_filter_1200.xml:671 msgid "Dist2 drive" msgstr "" #: hermes_filter_1200.xml:681 msgid "Dist3 drive" msgstr "" #: hermes_filter_1200.xml:691 msgid "Filt1 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: hermes_filter_1200.xml:701 msgid "Filt1 freq" msgstr "" #: hermes_filter_1200.xml:711 msgid "Filt1 q" msgstr "" #: hermes_filter_1200.xml:721 msgid "Filt1 resonance" msgstr "" #: hermes_filter_1200.xml:731 msgid "Filt1 LFO1 level" msgstr "" #: hermes_filter_1200.xml:741 msgid "Filt1 LFO2 level" msgstr "" #: hermes_filter_1200.xml:751 msgid "Filt2 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: hermes_filter_1200.xml:761 msgid "Filt2 freq" msgstr "" #: hermes_filter_1200.xml:771 msgid "Filt2 q" msgstr "" #: hermes_filter_1200.xml:781 msgid "Filt2 resonance" msgstr "" #: hermes_filter_1200.xml:791 msgid "Filt2 LFO1 level" msgstr "" #: hermes_filter_1200.xml:801 msgid "Filt2 LFO2 level" msgstr "" #: hermes_filter_1200.xml:811 msgid "Filt3 type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: hermes_filter_1200.xml:821 msgid "Filt3 freq" msgstr "" #: hermes_filter_1200.xml:831 msgid "Filt3 q" msgstr "" #: hermes_filter_1200.xml:841 msgid "Filt3 resonance" msgstr "" #: hermes_filter_1200.xml:851 msgid "Filt3 LFO1 level" msgstr "" #: hermes_filter_1200.xml:861 msgid "Filt3 LFO2 level" msgstr "" #: hermes_filter_1200.xml:871 msgid "Delay1 length (s)" msgstr "" #: hermes_filter_1200.xml:881 msgid "Delay1 feedback" msgstr "" #: hermes_filter_1200.xml:891 msgid "Delay1 wetness" msgstr "" #: hermes_filter_1200.xml:901 msgid "Delay2 length (s)" msgstr "" #: hermes_filter_1200.xml:911 msgid "Delay2 feedback" msgstr "" #: hermes_filter_1200.xml:921 msgid "Delay2 wetness" msgstr "" #: hermes_filter_1200.xml:931 msgid "Delay3 length (s)" msgstr "" #: hermes_filter_1200.xml:941 msgid "Delay3 feedback" msgstr "" #: hermes_filter_1200.xml:951 msgid "Delay3 wetness" msgstr "" #: hermes_filter_1200.xml:961 triple_para_1204.xml:135 msgid "Band 1 gain (dB)" msgstr "" #: hermes_filter_1200.xml:971 triple_para_1204.xml:165 msgid "Band 2 gain (dB)" msgstr "" #: hermes_filter_1200.xml:981 triple_para_1204.xml:195 msgid "Band 3 gain (dB)" msgstr "" #: imp_1199.xml:235 msgid "Impulse convolver" msgstr "" #: imp_1199.xml:260 msgid "Impulse ID" msgstr "" #: imp_1199.xml:270 msgid "High latency mode" msgstr "" #: imp_1199.xml:280 single_para_1203.xml:89 msgid "Gain (dB)" msgstr "" #: inv_1429.xml:45 msgid "Inverter" msgstr "" #: karaoke_1409.xml:50 msgid "Karaoke" msgstr "" #: karaoke_1409.xml:75 msgid "Vocal volume (dB)" msgstr "" #: karaoke_1409.xml:85 msgid "Left in" msgstr "" #: karaoke_1409.xml:92 msgid "Right in" msgstr "" #: karaoke_1409.xml:99 msgid "Left out" msgstr "" #: karaoke_1409.xml:106 msgid "Right out" msgstr "" #: lcr_delay_1436.xml:156 msgid "L/C/R Delay" msgstr "" #: lcr_delay_1436.xml:181 msgid "L delay (ms)" msgstr "" #: lcr_delay_1436.xml:191 msgid "L level" msgstr "" #: lcr_delay_1436.xml:201 msgid "C delay (ms)" msgstr "" #: lcr_delay_1436.xml:211 msgid "C level" msgstr "" #: lcr_delay_1436.xml:221 msgid "R delay (ms)" msgstr "" #: lcr_delay_1436.xml:231 msgid "R level" msgstr "" #: lcr_delay_1436.xml:251 msgid "High damp (%)" msgstr "" #: lcr_delay_1436.xml:261 msgid "Low damp (%)" msgstr "" #: lcr_delay_1436.xml:271 msgid "Spread" msgstr "" #: lcr_delay_1436.xml:291 msgid "L input" msgstr "" #: lcr_delay_1436.xml:298 msgid "R input" msgstr "" #: lcr_delay_1436.xml:305 msgid "L output" msgstr "" #: lcr_delay_1436.xml:312 msgid "R output" msgstr "" #: lookahead_limiter_1435.xml:131 msgid "Lookahead limiter" msgstr "" #: lookahead_limiter_1435.xml:156 msgid "Limit (dB)" msgstr "" #: lookahead_limiter_1435.xml:166 msgid "Lookahead delay" msgstr "" #: lookahead_limiter_1435.xml:176 msgid "Attenuation (dB)" msgstr "" #: lookahead_limiter_1435.xml:186 step_muxer_1212.xml:166 msgid "Input 1" msgstr "" #: lookahead_limiter_1435.xml:193 step_muxer_1212.xml:173 msgid "Input 2" msgstr "" #: matrix_ms_st_1421.xml:45 msgid "Matrix: MS to Stereo" msgstr "" #: matrix_ms_st_1421.xml:70 matrix_spatialiser_1422.xml:205 msgid "Width" msgstr "" #: matrix_ms_st_1421.xml:80 matrix_st_ms_1420.xml:84 msgid "Mid" msgstr "" #: matrix_ms_st_1421.xml:87 matrix_st_ms_1420.xml:91 msgid "Side" msgstr "" #: matrix_ms_st_1421.xml:94 matrix_st_ms_1420.xml:70 msgid "Left" msgstr "" #: matrix_ms_st_1421.xml:101 matrix_st_ms_1420.xml:77 msgid "Right" msgstr "" #: matrix_spatialiser_1422.xml:166 msgid "Matrix Spatialiser" msgstr "" #: matrix_spatialiser_1422.xml:191 msgid "Input L" msgstr "" #: matrix_spatialiser_1422.xml:198 msgid "Input R" msgstr "" #: matrix_spatialiser_1422.xml:215 msgid "Output L" msgstr "" #: matrix_spatialiser_1422.xml:222 msgid "Output R" msgstr "" #: matrix_st_ms_1420.xml:45 msgid "Matrix: Stereo to MS" msgstr "" #: mbeq_1197.xml:205 msgid "Multiband EQ" msgstr "" #: mbeq_1197.xml:230 msgid "50Hz gain (low shelving)" msgstr "" #: mbeq_1197.xml:240 msgid "100Hz gain" msgstr "" #: mbeq_1197.xml:250 msgid "156Hz gain" msgstr "" #: mbeq_1197.xml:260 msgid "220Hz gain" msgstr "" #: mbeq_1197.xml:270 msgid "311Hz gain" msgstr "" #: mbeq_1197.xml:280 msgid "440Hz gain" msgstr "" #: mbeq_1197.xml:290 msgid "622Hz gain" msgstr "" #: mbeq_1197.xml:300 msgid "880Hz gain" msgstr "" #: mbeq_1197.xml:310 msgid "1250Hz gain" msgstr "" #: mbeq_1197.xml:320 msgid "1750Hz gain" msgstr "" #: mbeq_1197.xml:330 msgid "2500Hz gain" msgstr "" #: mbeq_1197.xml:340 msgid "3500Hz gain" msgstr "" #: mbeq_1197.xml:350 msgid "5000Hz gain" msgstr "" #: mbeq_1197.xml:360 msgid "10000Hz gain" msgstr "" #: mbeq_1197.xml:370 msgid "20000Hz gain" msgstr "" #: mod_delay_1419.xml:78 msgid "Modulatable delay" msgstr "" #: mod_delay_1419.xml:103 msgid "Base delay (s)" msgstr "" #: mod_delay_1419.xml:113 msgid "Delay (s)" msgstr "" #: multivoice_chorus_1201.xml:196 msgid "Multivoice Chorus" msgstr "" #: multivoice_chorus_1201.xml:221 msgid "Number of voices" msgstr "" #: multivoice_chorus_1201.xml:241 msgid "Voice separation (ms)" msgstr "" #: multivoice_chorus_1201.xml:251 msgid "Detune (%)" msgstr "" #: multivoice_chorus_1201.xml:271 msgid "Output attenuation (dB)" msgstr "" #: phasers_1217.xml:182 msgid "LFO Phaser" msgstr "" #: phasers_1217.xml:207 msgid "LFO rate (Hz)" msgstr "" #: phasers_1217.xml:217 msgid "LFO depth" msgstr "" #: phasers_1217.xml:237 phasers_1217.xml:475 msgid "Spread (octaves)" msgstr "" #: phasers_1217.xml:276 msgid "4 x 4 pole allpass" msgstr "" #: phasers_1217.xml:301 msgid "Frequency 1" msgstr "" #: phasers_1217.xml:311 msgid "Feedback 1" msgstr "" #: phasers_1217.xml:321 msgid "Frequency 2" msgstr "" #: phasers_1217.xml:331 msgid "Feedback 2" msgstr "" #: phasers_1217.xml:341 msgid "Frequency 3" msgstr "" #: phasers_1217.xml:351 msgid "Feedback 3" msgstr "" #: phasers_1217.xml:361 msgid "Frequency 4" msgstr "" #: phasers_1217.xml:371 msgid "Feedback 4" msgstr "" #: phasers_1217.xml:410 msgid "Auto phaser" msgstr "" #: phasers_1217.xml:435 msgid "Attack time (s)" msgstr "" #: phasers_1217.xml:445 msgid "Decay time (s)" msgstr "" #: phasers_1217.xml:455 msgid "Modulation depth" msgstr "" #: pitch_scale_1193.xml:56 msgid "Pitch Scaler" msgstr "" #: pitch_scale_1193.xml:81 pitch_scale_1194.xml:80 msgid "Pitch co-efficient" msgstr "" #: pitch_scale_1194.xml:55 msgid "Higher Quality Pitch Scaler" msgstr "" #: plate_1423.xml:105 msgid "Plate reverb" msgstr "" #: plate_1423.xml:130 msgid "Reverb time" msgstr "" #: rate_shifter_1417.xml:90 msgid "Rate shifter" msgstr "" #: rate_shifter_1417.xml:115 msgid "Rate" msgstr "" #: retro_flange_1208.xml:193 msgid "Retro Flanger" msgstr "" #: retro_flange_1208.xml:218 msgid "Average stall (ms)" msgstr "" #: retro_flange_1208.xml:228 msgid "Flange frequency (Hz)" msgstr "" #: ringmod_1188.xml:74 msgid "Ringmod with two inputs" msgstr "" #: ringmod_1188.xml:99 ringmod_1188.xml:173 msgid "Modulation depth (0=none, 1=AM, 2=RM)" msgstr "" #: ringmod_1188.xml:116 msgid "Modulator" msgstr "" #: ringmod_1188.xml:148 msgid "Ringmod with LFO" msgstr "" #: ringmod_1188.xml:193 msgid "Sine level" msgstr "" #: ringmod_1188.xml:203 msgid "Triangle level" msgstr "" #: ringmod_1188.xml:213 msgid "Sawtooth level" msgstr "" #: ringmod_1188.xml:223 msgid "Square level" msgstr "" #: satan_maximiser_1408.xml:96 msgid "Barry's Satan Maximiser" msgstr "" #: satan_maximiser_1408.xml:121 msgid "Decay time (samples)" msgstr "" #: satan_maximiser_1408.xml:131 msgid "Knee point (dB)" msgstr "" #: sc1_1425.xml:113 msgid "SC1" msgstr "" #: sc1_1425.xml:138 sc2_1426.xml:135 sc3_1427.xml:142 sc4_1434.xml:144 msgid "Attack time (ms)" msgstr "" #: sc1_1425.xml:148 sc2_1426.xml:145 sc3_1427.xml:152 sc4_1434.xml:154 msgid "Release time (ms)" msgstr "" #: sc1_1425.xml:158 sc2_1426.xml:155 sc3_1427.xml:162 sc4_1434.xml:164 msgid "Threshold level (dB)" msgstr "" #: sc1_1425.xml:168 sc2_1426.xml:165 sc3_1427.xml:172 sc4_1434.xml:174 msgid "Ratio (1:n)" msgstr "" #: sc1_1425.xml:178 sc2_1426.xml:175 sc3_1427.xml:182 sc4_1434.xml:184 msgid "Knee radius (dB)" msgstr "" #: sc1_1425.xml:188 sc2_1426.xml:185 sc3_1427.xml:192 sc4_1434.xml:194 msgid "Makeup gain (dB)" msgstr "" #: sc2_1426.xml:110 msgid "SC2" msgstr "" #: sc2_1426.xml:195 sc3_1427.xml:212 msgid "Sidechain" msgstr "" #: sc3_1427.xml:117 msgid "SC3" msgstr "" #: sc3_1427.xml:202 msgid "Chain balance" msgstr "" #: sc3_1427.xml:219 sc4_1434.xml:224 msgid "Left input" msgstr "" #: sc3_1427.xml:226 sc4_1434.xml:231 msgid "Right input" msgstr "" #: sc4_1434.xml:119 msgid "SC4" msgstr "" #: sc4_1434.xml:204 msgid "Amplitude (dB)" msgstr "" #: sc4_1434.xml:214 msgid "Gain reduction (dB)" msgstr "" #: shaper_1187.xml:58 msgid "Wave shaper" msgstr "" #: shaper_1187.xml:83 msgid "Waveshape" msgstr "" #: sifter_1210.xml:168 msgid "Signal sifter" msgstr "" #: sifter_1210.xml:193 msgid "Sift size" msgstr "" #: single_para_1203.xml:64 msgid "Single band parametric" msgstr "" #: single_para_1203.xml:109 msgid "Bandwidth (octaves)" msgstr "" #: sinus_wavewrapper_1198.xml:49 msgid "Sinus wavewrapper" msgstr "" #: sinus_wavewrapper_1198.xml:74 msgid "Wrap degree" msgstr "" #: smooth_decimate_1414.xml:75 msgid "Smooth Decimator" msgstr "" #: smooth_decimate_1414.xml:100 msgid "Resample rate" msgstr "" #: split_1406.xml:47 msgid "Mono to Stereo splitter" msgstr "" #: step_muxer_1212.xml:124 msgid "Step Demuxer" msgstr "" #: step_muxer_1212.xml:149 msgid "Crossfade time (in ms)" msgstr "" #: step_muxer_1212.xml:159 msgid "Clock" msgstr "" #: step_muxer_1212.xml:180 msgid "Input 3" msgstr "" #: step_muxer_1212.xml:187 msgid "Input 4" msgstr "" #: step_muxer_1212.xml:194 msgid "Input 5" msgstr "" #: step_muxer_1212.xml:201 msgid "Input 6" msgstr "" #: step_muxer_1212.xml:208 msgid "Input 7" msgstr "" #: step_muxer_1212.xml:215 msgid "Input 8" msgstr "" #: surround_encoder_1401.xml:97 msgid "Surround matrix encoder" msgstr "" #: surround_encoder_1401.xml:122 msgid "L" msgstr "" #: surround_encoder_1401.xml:129 msgid "R" msgstr "" #: surround_encoder_1401.xml:136 msgid "C" msgstr "" #: surround_encoder_1401.xml:143 msgid "S" msgstr "" #: surround_encoder_1401.xml:150 msgid "Lt" msgstr "" #: surround_encoder_1401.xml:157 msgid "Rt" msgstr "" #: svf_1214.xml:142 msgid "State Variable Filter" msgstr "" #: svf_1214.xml:187 msgid "Filter type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)" msgstr "" #: svf_1214.xml:197 msgid "Filter freq" msgstr "" #: svf_1214.xml:207 msgid "Filter Q" msgstr "" #: svf_1214.xml:217 msgid "Filter resonance" msgstr "" #: tape_delay_1211.xml:137 msgid "Tape Delay Simulation" msgstr "" #: tape_delay_1211.xml:162 msgid "Tape speed (inches/sec, 1=normal)" msgstr "" #: tape_delay_1211.xml:172 msgid "Dry level (dB)" msgstr "" #: tape_delay_1211.xml:182 msgid "Tap 1 distance (inches)" msgstr "" #: tape_delay_1211.xml:192 msgid "Tap 1 level (dB)" msgstr "" #: tape_delay_1211.xml:202 msgid "Tap 2 distance (inches)" msgstr "" #: tape_delay_1211.xml:212 msgid "Tap 2 level (dB)" msgstr "" #: tape_delay_1211.xml:222 msgid "Tap 3 distance (inches)" msgstr "" #: tape_delay_1211.xml:232 msgid "Tap 3 level (dB)" msgstr "" #: tape_delay_1211.xml:242 msgid "Tap 4 distance (inches)" msgstr "" #: tape_delay_1211.xml:252 msgid "Tap 4 level (dB)" msgstr "" #: transient_1206.xml:132 msgid "Transient mangler" msgstr "" #: transient_1206.xml:157 msgid "Attack speed" msgstr "" #: transient_1206.xml:167 msgid "Sustain time" msgstr "" #: triple_para_1204.xml:80 msgid "Triple band parametric with shelves" msgstr "" #: triple_para_1204.xml:105 msgid "Low-shelving gain (dB)" msgstr "" #: triple_para_1204.xml:115 msgid "Low-shelving frequency (Hz)" msgstr "" #: triple_para_1204.xml:125 msgid "Low-shelving slope" msgstr "" #: triple_para_1204.xml:145 msgid "Band 1 frequency (Hz)" msgstr "" #: triple_para_1204.xml:155 msgid "Band 1 bandwidth (octaves)" msgstr "" #: triple_para_1204.xml:175 msgid "Band 2 frequency (Hz)" msgstr "" #: triple_para_1204.xml:185 msgid "Band 2 bandwidth (octaves)" msgstr "" #: triple_para_1204.xml:205 msgid "Band 3 frequency (Hz)" msgstr "" #: triple_para_1204.xml:215 msgid "Band 3 bandwidth (octaves)" msgstr "" #: triple_para_1204.xml:225 msgid "High-shelving gain (dB)" msgstr "" #: triple_para_1204.xml:235 msgid "High-shelving frequency (Hz)" msgstr "" #: triple_para_1204.xml:245 msgid "High-shelving slope" msgstr "" #: valve_1209.xml:83 msgid "Valve saturation" msgstr "" #: valve_1209.xml:108 msgid "Distortion level" msgstr "" #: valve_1209.xml:118 msgid "Distortion character" msgstr "" #: valve_rect_1405.xml:111 msgid "Valve rectifier" msgstr "" #: valve_rect_1405.xml:136 msgid "Sag level" msgstr "" #: wave_terrain_1412.xml:49 msgid "Wave Terrain Oscillator" msgstr "" #: wave_terrain_1412.xml:74 msgid "x" msgstr "" #: wave_terrain_1412.xml:81 msgid "y" msgstr "" #: wave_terrain_1412.xml:88 msgid "z" msgstr "" #: zm1_1428.xml:55 msgid "z-1" msgstr "" ladspa-0.4.17/pointer_cast_1910.xml000066400000000000000000000050151300111216200167210ustar00rootroot00000000000000 #include "ladspa-util.h" #include "util/biquad.h" typedef union { LADSPA_Data fp; int in; } pcast; ]]> Pointer cast distortion

This distortion is created by treating the floating point representation of the input signal as a 0.32 1's complement fixedpoint integer. Its very unmusical but supprisingly recognisable. I'm not sure that its useful for anything, but it can make interesting noises.

filt); ]]> Effect cutoff freq (Hz)

Controls the frequencies that will be passed to the effect.

Dry/wet mix

Controls the ammunt of distorting mixed into the output.

Input Output
ladspa-0.4.17/rate_shifter_1417.xml000066400000000000000000000060411300111216200167100ustar00rootroot00000000000000 #include "ladspa-util.h" Rate shifter

Stretches or compresses the input with a ringbuffer.

Because of the ringbuffer you will get stretches of silence or clicks when the read pointer passes the write pointer.

The ringbuffer is about 2.7-3.0s long, depending on the sample rate.

Versions with variable buffer sizes or declicking code would be easy (but a bit less efficient); shout if you would find them useful.

buffer); ]]> read_ptr.all = read_ptr.all; plugin_data->write_ptr = write_ptr; ]]> Rate

The rate of the output signal; eg. 2.0 will double the speed. Negative numbers will play backwards.

Pretty much any value will work, but the ranges give what most people are going to want to use. You can get some interesting sounds with very high numbers (e.g. 2000).

Input Output
ladspa-0.4.17/retro_flange_1208.xml000066400000000000000000000135521300111216200167030ustar00rootroot00000000000000 Retro Flanger

A model of someone flanging the input.

Models the tape saturation effects, and frequency smear of a manual flanger. The results are a slightly distorted, but more subtle flanger sound that you get from a normal digital flanger.

delay_line); free(plugin_data->buffer); ]]> 1.0f) { p_ph -= 1.0f; } law = f_sin_sq(3.1415926f*p_ph)*prev_law_peak + f_sin_sq(3.1415926f*n_ph)*next_law_peak; increment = inc_base / (delay_depth * law + 0.2); fph = f_trunc(phase); last_phase = fph; lin_int = phase - (float)fph; out += LIN_INTERP(lin_int, buffer[(fph+1) % buffer_size], buffer[(fph+2) % buffer_size]); phase += increment; lin_inc = 1.0f / (floor(phase) - last_phase + 1); lin_inc = lin_inc > 1.0f ? 1.0f : lin_inc; lin_int = 0.0f; for (track = last_phase; track < phase; track++) { lin_int += lin_inc; buffer[track % buffer_size] = LIN_INTERP(lin_int, last_in, input[pos]); } last_in = input[pos]; buffer_write(output[pos], out * 0.707f); if (phase >= buffer_size) { phase -= buffer_size; } } // Store current phase in instance plugin_data->phase = phase; plugin_data->prev_law_peak = prev_law_peak; plugin_data->next_law_peak = next_law_peak; plugin_data->prev_law_pos = prev_law_pos; plugin_data->next_law_pos = next_law_pos; plugin_data->last_phase = last_phase; plugin_data->last_in = last_in; plugin_data->count = count; plugin_data->last_law_p = last_law_p; plugin_data->delay_pos = delay_pos; plugin_data->z0 = z0; plugin_data->z1 = z1; plugin_data->z2 = z2; ]]> Average stall (ms)

The average time difference between the two tapes, per stall

Flange frequency (Hz)

The rate the tape is stalled at.

Input Output
ladspa-0.4.17/revdelay_1605.xml000066400000000000000000000135311300111216200160450ustar00rootroot00000000000000 #define MIN(a,b) ((a) < (b) ? (a) : (b)) #define CALC_DELAY(delaytime) \ (f_clamp (delaytime * sample_rate, 1.f, (float)(buffer_size + 1))) ]]> Reverse Delay (5s max)

A reverse delay not really modelled on any existing one. You'll want to set the Crossfade Samples parameter to something reasonably small (but more than 20) for most applications, but you can try larger values if you start getting clicking.

buffer); ]]> last_delay_time = delay_time; plugin_data->delay_samples = delay_samples = CALC_DELAY (delay_time); } if (delay_time == last_delay_time) { long idelay_samples = (long)delay_samples; delay2 = idelay_samples * 2; if (xfadesamp > idelay_samples) { /* force it to half */ xfadesamp = idelay_samples / 2; } for (i=0; i (idelay_samples - xfadesamp)) { fadescale = (idelay_samples - (write_phase % idelay_samples)) / (1.0 * xfadesamp); } else { fadescale = 1.0; } buffer[write_phase] = fadescale * (insamp + (feedback * read)); buffer[write_phase] = flush_to_zero(buffer[write_phase]); buffer_write(out[i], read); write_phase = (write_phase + 1) % delay2; } } else { float next_delay_samples = CALC_DELAY (delay_time); float delay_samples_slope = (next_delay_samples - delay_samples) / sample_count; for (i=0; i (idelay_samples - xfade_samp)) { fadescale = (idelay_samples - (write_phase % idelay_samples)) / (1.0 * xfade_samp); } else { fadescale = 1.0; } buffer[write_phase] = fadescale * (insamp + (feedback * read)); buffer[write_phase] = flush_to_zero(buffer[write_phase]); buffer_write(out[i], read); } plugin_data->last_delay_time = delay_time; plugin_data->delay_samples = delay_samples; } plugin_data->write_phase = write_phase; ]]> Input Output Delay Time (s) Dry Level (dB)

Controls the level of the dry input signal in dB's.

Wet Level (dB)

Controls the level of the delayed signal in dB's.

Feedback Crossfade samples
ladspa-0.4.17/ringmod_1188.xml000066400000000000000000000106341300111216200157000ustar00rootroot00000000000000 #include "ladspa-util.h" int refcount; LADSPA_Data *sin_tbl, *tri_tbl, *saw_tbl, *squ_tbl; long sample_rate; Ringmod with two inputs

This is a simple 2 input ring modulator.

It is important that the modulator input is bounded to (-1, +1), otherwise you will get rubbish on the output.

unsigned long pos; float tmpa = depth * 0.5f; float tmpb = 2.0f - depth; for (pos = 0; pos < sample_count; pos++) { buffer_write(output[pos], input[pos] * (tmpa * modulator[pos] + tmpb)); } Modulation depth (0=none, 1=AM, 2=RM) Input

This is the audio input.

Modulator

This is the modulator input.

Output
Ringmod with LFO

This is a simple ring modulator and LFO.

long i; sample_rate = s_rate; if (refcount++ == 0) { sin_tbl = malloc(sizeof(LADSPA_Data) * sample_rate); for (i = 0; i < sample_rate; i++) { sin_tbl[i] = sin(i * 2 * M_PI / sample_rate); } tri_tbl = malloc(sizeof(LADSPA_Data) * sample_rate); for (i = 0; i < sample_rate; i++) { tri_tbl[i] = acos(cos(i * 2 * M_PI / sample_rate)) / M_PI * 2 - 1; } squ_tbl = malloc(sizeof(LADSPA_Data) * sample_rate); for (i = 0; i < sample_rate; i++) { squ_tbl[i] = (i < sample_rate/2) ? 1 : -1; } saw_tbl = malloc(sizeof(LADSPA_Data) * sample_rate); for (i = 0; i < sample_rate; i++) { saw_tbl[i] = ((2.0 * i) - (float)sample_rate) / (float)sample_rate; } } offset = 0; offset = 0; plugin_data = plugin_data; if (--refcount == 0) { free(sin_tbl); free(tri_tbl); free(squ_tbl); free(saw_tbl); } LADSPA_Data scale = fabs(sin) + fabs(tri) + fabs(saw) + fabs(squ); int o; unsigned long pos; // Rescale to more useful value const float depth = depthp * 0.5f; if (scale == 0.0) { scale = 1.0; } for (pos = 0; pos < sample_count; pos++) { o = f_round(offset); buffer_write(output[pos], input[pos] * (depth * (((sin / scale) * sin_tbl[o]) + ((tri / scale) * tri_tbl[o]) + ((saw / scale) * saw_tbl[o]) + ((squ / scale) * squ_tbl[o])) + (1.0f - depth))); offset += freq; if (offset > sample_rate) { offset -= sample_rate; } } plugin_data->offset = offset; Modulation depth (0=none, 1=AM, 2=RM) Frequency (Hz) Sine level Triangle level Sawtooth level Square level Input Output
ladspa-0.4.17/satan_maximiser_1408.xml000066400000000000000000000056601300111216200174230ustar00rootroot00000000000000 #include "ladspa-util.h" #define BUFFER_SIZE 16 #define BUFFER_MASK 15 ]]> Barry's Satan Maximiser

Formerly Stupid Compressor. Thanks to Matt Yee-King for the name.

Compresses signals with a stupidly short attack and decay, infinite ratio and hard knee. Not really as a compressor, but good harsh (non-musical) distortion.

buffer); ]]> env) { env = fabs(input[pos]); } else { env = fabs(input[pos]) * env_tr + env * (1.0f - env_tr); } if (env <= knee) { env_sc = 1.0f / knee; } else { env_sc = 1.0f / env; } buffer[buffer_pos] = input[pos]; buffer_write(output[pos], buffer[(buffer_pos - delay) & BUFFER_MASK] * env_sc); buffer_pos = (buffer_pos + 1) & BUFFER_MASK; } plugin_data->env = env; plugin_data->buffer_pos = buffer_pos; ]]> Decay time (samples)

Controls the envelope decay time.

Knee point (dB)

Controls the knee roll-off point, ie. the point above which the compression kicks in. 0 will have no effect, -90 will remove virtually all dynamic range.

Input Output
ladspa-0.4.17/sc1_1425.xml000066400000000000000000000110561300111216200147200ustar00rootroot00000000000000 SC1

An high quality, reasonably low CPU cost RMS compressor designed for musical work.

It has controls for the compression point, compression ratio and knee softness.

rms); free(plugin_data->as); ]]> env) { env = env * ga + amp * (1.0f - ga); } else { env = env * gr + amp * (1.0f - gr); } if (count++ % 4 == 3) { amp = rms_env_process(rms, sum * 0.25f); sum = 0.0f; if (env <= knee_min) { gain_t = 1.0f; } else if (env < knee_max) { const float x = -(threshold - knee - lin2db(env)) / knee; gain_t = db2lin(-knee * rs * x * x * 0.25f); } else { gain_t = db2lin((threshold - lin2db(env)) * rs); } } gain = gain * ef_a + gain_t * ef_ai; buffer_write(output[pos], input[pos] * gain * mug); } plugin_data->sum = sum; plugin_data->amp = amp; plugin_data->gain = gain; plugin_data->gain_t = gain_t; plugin_data->env = env; plugin_data->count = count; ]]> Attack time (ms)

The attack time in milliseconds.

Release time (ms)

The release time in milliseconds.

Threshold level (dB)

The point at which the compressor will start to kick in.

Ratio (1:n)

The gain reduction ratio used when the signal level exceeds the threshold.

Knee radius (dB)

The distance from the threshold where the knee curve starts.

Makeup gain (dB)

Controls the gain of the makeup input signal in dB's.

Input Output
ladspa-0.4.17/sc2_1426.xml000066400000000000000000000110401300111216200147130ustar00rootroot00000000000000 SC2

A compressor with sidechain. Based on the code for SC1.

rms); free(plugin_data->as); ]]> env) { env = env * ga + amp * (1.0f - ga); } else { env = env * gr + amp * (1.0f - gr); } if (count++ % 4 == 3) { amp = rms_env_process(rms, sum * 0.25f); sum = 0.0f; if (env <= knee_min) { gain_t = 1.0f; } else if (env < knee_max) { const float x = -(threshold - knee - lin2db(env)) / knee; gain_t = db2lin(-knee * rs * x * x * 0.25f); } else { gain_t = db2lin((threshold - lin2db(env)) * rs); } } gain = gain * ef_a + gain_t * ef_ai; buffer_write(output[pos], input[pos] * gain * mug); } plugin_data->sum = sum; plugin_data->amp = amp; plugin_data->gain = gain; plugin_data->gain_t = gain_t; plugin_data->env = env; plugin_data->count = count; ]]> Attack time (ms)

The attack time in milliseconds.

Release time (ms)

The release time in milliseconds.

Threshold level (dB)

The point at which the compressor will start to kick in.

Ratio (1:n)

The gain reduction ratio used when the signal level exceeds the threshold.

Knee radius (dB)

The distance from the threshold where the knee curve starts.

Makeup gain (dB)

Controls the gain of the makeup input signal in dB's.

Sidechain Input Output
ladspa-0.4.17/sc3_1427.xml000066400000000000000000000124301300111216200147210ustar00rootroot00000000000000 SC3

A stereo compressor with sidechain input. Based on the code for SC1.

rms); free(plugin_data->as); ]]> env) { env = env * ga + amp * (1.0f - ga); } else { env = env * gr + amp * (1.0f - gr); } if (count++ % 4 == 3) { amp = rms_env_process(rms, sum * 0.25f); sum = 0.0f; if (isnan(env)) { // This can happen sometimes, but I dont know why env = 0.0f; } else if (env <= knee_min) { gain_t = 1.0f; } else if (env < knee_max) { const float x = -(threshold - knee - lin2db(env)) / knee; gain_t = db2lin(-knee * rs * x * x * 0.25f); } else { gain_t = db2lin((threshold - lin2db(env)) * rs); } } gain = gain * ef_a + gain_t * ef_ai; buffer_write(left_out[pos], left_in[pos] * gain * mug); buffer_write(right_out[pos], right_in[pos] * gain * mug); } plugin_data->sum = sum; plugin_data->amp = amp; plugin_data->gain = gain; plugin_data->gain_t = gain_t; plugin_data->env = env; plugin_data->count = count; ]]> Attack time (ms)

The attack time in milliseconds.

Release time (ms)

The release time in milliseconds.

Threshold level (dB)

The point at which the compressor will start to kick in.

Ratio (1:n)

The gain reduction ratio used when the signal level exceeds the threshold.

Knee radius (dB)

The distance from the threshold where the knee curve starts.

Makeup gain (dB)

Controls the gain of the makeup input signal in dB's.

Chain balance

Controls the chain signal used, 0 = Left+right in, 1 = Sidechain.

Sidechain Left input Right input Left output Right output
ladspa-0.4.17/sc4_1882.xml000066400000000000000000000145511300111216200147350ustar00rootroot00000000000000 SC4

A stereo compressor with variable envelope follower for RMS / peak behaviour. Based on the code for SC1.

rms); free(plugin_data->as); ]]> env_rms) { env_rms = env_rms * ga + amp * (1.0f - ga); } else { env_rms = env_rms * gr + amp * (1.0f - gr); } round_to_zero(&env_rms); if (lev_in > env_peak) { env_peak = env_peak * ga + lev_in * (1.0f - ga); } else { env_peak = env_peak * gr + lev_in * (1.0f - gr); } round_to_zero(&env_peak); if ((count++ & 3) == 3) { amp = rms_env_process(rms, sum * 0.25f); sum = 0.0f; if (isnan(env_rms)) { // This can happen sometimes, but I don't know why env_rms = 0.0f; } env = LIN_INTERP(rms_peak, env_rms, env_peak); if (env <= knee_min) { gain_t = 1.0f; } else if (env < knee_max) { const float x = -(threshold - knee - lin2db(env)) / knee; gain_t = db2lin(-knee * rs * x * x * 0.25f); } else { gain_t = db2lin((threshold - lin2db(env)) * rs); } } gain = gain * ef_a + gain_t * ef_ai; buffer_write(left_out[pos], left_in[pos] * gain * mug); buffer_write(right_out[pos], right_in[pos] * gain * mug); } plugin_data->sum = sum; plugin_data->amp = amp; plugin_data->gain = gain; plugin_data->gain_t = gain_t; plugin_data->env = env; plugin_data->env_rms = env_rms; plugin_data->env_peak = env_peak; plugin_data->count = count; *(plugin_data->amplitude) = lin2db(env); *(plugin_data->gain_red) = lin2db(gain); ]]> RMS/peak

The balance between the RMS and peak envelope followers.

RMS is generally better for subtle, musical compression and peak is better for heavier, fast compression and percussion.

Attack time (ms)

The attack time in milliseconds.

Release time (ms)

The release time in milliseconds.

Threshold level (dB)

The point at which the compressor will start to kick in.

Ratio (1:n)

The gain reduction ratio used when the signal level exceeds the threshold.

Knee radius (dB)

The distance from the threshold where the knee curve starts.

Makeup gain (dB)

Controls the gain of the makeup input signal in dB's.

Amplitude (dB)

The level of the input signal, in decibels.

Gain reduction (dB)

The degree of gain reduction applied to the input signal, in decibels.

Left input Right input Left output Right output
ladspa-0.4.17/sc4m_1916.xml000066400000000000000000000136311300111216200151060ustar00rootroot00000000000000 SC4 mono

A mono compressor with variable envelope follower for RMS / peak behaviour. Based on the code for SC4.

rms); free(plugin_data->as); ]]> env_rms) { env_rms = env_rms * ga + amp * (1.0f - ga); } else { env_rms = env_rms * gr + amp * (1.0f - gr); } round_to_zero(&env_rms); if (lev_in > env_peak) { env_peak = env_peak * ga + lev_in * (1.0f - ga); } else { env_peak = env_peak * gr + lev_in * (1.0f - gr); } round_to_zero(&env_peak); if ((count++ & 3) == 3) { amp = rms_env_process(rms, sum * 0.25f); sum = 0.0f; env = LIN_INTERP(rms_peak, env_rms, env_peak); if (env <= knee_min) { gain_t = 1.0f; } else if (env < knee_max) { const float x = -(threshold - knee - lin2db(env)) / knee; gain_t = db2lin(-knee * rs * x * x * 0.25f); } else { gain_t = db2lin((threshold - lin2db(env)) * rs); } } gain = gain * ef_a + gain_t * ef_ai; buffer_write(output[pos], input[pos] * gain * mug); } plugin_data->sum = sum; plugin_data->amp = amp; plugin_data->gain = gain; plugin_data->gain_t = gain_t; plugin_data->env = env; plugin_data->env_rms = env_rms; plugin_data->env_peak = env_peak; plugin_data->count = count; *(plugin_data->amplitude) = lin2db(env); *(plugin_data->gain_red) = lin2db(gain); ]]> RMS/peak

The balance between the RMS and peak envelope followers.

RMS is generally better for subtle, musical compression and peak is better for heavier, fast compression and percussion.

Attack time (ms)

The attack time in milliseconds.

Release time (ms)

The release time in milliseconds.

Threshold level (dB)

The point at which the compressor will start to kick in.

Ratio (1:n)

The gain reduction ratio used when the signal level exceeds the threshold.

Knee radius (dB)

The distance from the threshold where the knee curve starts.

Makeup gain (dB)

Controls the gain of the makeup input signal in dB's.

Amplitude (dB)

The level of the input signal, in decibels.

Gain reduction (dB)

The degree of gain reduction applied to the input signal, in decibels.

Input Output
ladspa-0.4.17/se4_1883.xml000066400000000000000000000143571300111216200147440ustar00rootroot00000000000000 SE4

A stereo expander with variable envelope follower for RMS / peak behaviour. Based on the code for SC1.

rms); free(plugin_data->as); ]]> env_rms) { env_rms = env_rms * ga + amp * (1.0f - ga); } else { env_rms = env_rms * gr + amp * (1.0f - gr); } if (lev_in > env_peak) { env_peak = env_peak * ga + lev_in * (1.0f - ga); } else { env_peak = env_peak * gr + lev_in * (1.0f - gr); } if ((count++ & 3) == 3) { amp = rms_env_process(rms, sum * 0.25f); sum = 0.0f; if (isnan(env_rms)) { // This can happen sometimes, but I don't know why env_rms = 0.0f; } env = LIN_INTERP(rms_peak, env_rms, env_peak); if (env <= knee_min) { gain_t = 1.0f; } else if (env < knee_max) { const float x = -(threshold - knee - lin2db(env)) / knee; gain_t = db2lin(-knee * rs * x * x * 0.25f); } else { gain_t = db2lin((threshold - lin2db(env)) * rs); } } gain = gain * ef_a + gain_t * ef_ai; buffer_write(left_out[pos], left_in[pos] * gain * mug); buffer_write(right_out[pos], right_in[pos] * gain * mug); } plugin_data->sum = sum; plugin_data->amp = amp; plugin_data->gain = gain; plugin_data->gain_t = gain_t; plugin_data->env = env; plugin_data->env_rms = env_rms; plugin_data->env_peak = env_peak; plugin_data->count = count; *(plugin_data->amplitude) = lin2db(env); *(plugin_data->gain_exp) = lin2db(gain); ]]> RMS/peak

The balance between the RMS and peak envelope followers.

Attack time (ms)

The attack time in milliseconds.

Release time (ms)

The release time in milliseconds.

Threshold level (dB)

The point at which the expander will start to kick in.

Ratio (1:n)

The gain expansion ratio used when the signal level exceeds the threshold.

Knee radius (dB)

The distance from the threshold where the knee curve starts.

Attenuation (dB)

Controls the gain of the output signal in dB's. Used to correct for excessive amplitude caused by the extra dynamic range.

Amplitude (dB)

The level of the input signal, in decibels.

Gain expansion (dB)

The degree of gain expansion applied to the input signal, in decibels.

Left input Right input Left output Right output
ladspa-0.4.17/shaper_1187.xml000066400000000000000000000030471300111216200155220ustar00rootroot00000000000000 Wave shaper

This plugin reshapes the wave by an exponential function, inspiration was taken from the Nord module of the same name.

If you are getting rubbish out then it's probably because the host isn't using the input/output range hints, which are very important for this plugin.

-1.0f) { shape = 1.0f; } else if (shape < 0) { shape = -1.0f / shape; } else { shape = shapep; } for (pos = 0; pos < sample_count; pos++) { if (input[pos] < 0.0f) { buffer_write(output[pos], -pow(-input[pos], shape)); } else { buffer_write(output[pos], pow(input[pos], shape)); } } ]]> Waveshape

Positive values have an expanding effect, and negative values have a compressing effect.

Input Output
ladspa-0.4.17/sifter_1210.xml000066400000000000000000000104421300111216200155140ustar00rootroot00000000000000 pivot) { q_sort(array, pivot+1, right); } } inline int partition(LADSPA_Data array[], int left, int right) { float pivot = array[left]; while (left < right) { while (array[right] >= pivot && left < right) { right--; } if (left != right) { array[left] = array[right]; left++; } while (array[left] <= pivot && left < right) { left++; } if (left != right) { array[right] = array[left]; right--; } } array[left] = pivot; return left; } ]]> Signal sifter

Sorts and mixes blocks of the input signal to give a "bumpy ramp" effect.

Certain types of input will produce silence on the output (mostly ones with only low frequency components).

This is a very odd effect, and doesn't really have any music applications, but can produce some interesting noises.

b1); free(plugin_data->b2); free(plugin_data->ob); free(plugin_data->rc); ]]> = bsize) { float wstep = (float)MAX_BSIZE / (float)b1ptr, wpos = 0.0f; q_sort(b1, 0, b1ptr); for (i=0; i= bsize) { float wstep = (float)MAX_BSIZE / (float)b2ptr, wpos = 0.0f; int offset = (b2ptr+1)/2; q_sort(b2, 0, b2ptr); for (i=0; ib1ptr = b1ptr; plugin_data->b2ptr = b2ptr; ]]> Sift size Input Output
ladspa-0.4.17/sin_cos_1881.xml000066400000000000000000000043001300111216200156670ustar00rootroot00000000000000 #include "ladspa-util.h" Sine + cosine oscillator

This is a simple oscillator that outputs sinewaves with a 90 degree phase shift between them.

The current implementation is very inefficient, but I will improve it later.

2.0 * M_PI) { phi -= 2.0 * M_PI; } plugin_data->phi = phi; plugin_data->last_om = target_om; ]]> Base frequency (Hz)

The base frequency of the output waves.

Pitch offset

The pitch offset of the output waves. Final oscillator frequency is $base + 2\^pitch$.

Sine output Cosine output
ladspa-0.4.17/single_para_1203.xml000066400000000000000000000047641300111216200165200ustar00rootroot00000000000000 #include "util/biquad.h" Single band parametric

A single band of a parametric filter.

filter); ]]> Gain (dB)

The attenuation/gain of the eq.

Frequency (Hz)

The centre frequency (ie. point of most/least attenuation).

Beware of high values for Frequency and Bandwidth, if the high pitch (Frequency * 2$^{Bandwidth}$) goes over half the sample rate you will get aliasing.

Note: if your host offers you a frequency range between 0 and 0.4 then it's not rendering the input parameter correctly, the input frequency will actually be that number multiplied by the sample rate (e.g. 44.1kHz).

Bandwidth (octaves)

The pitch difference from the centre before the attenuation has reached half the gain.

Input Output
ladspa-0.4.17/sinus_wavewrapper_1198.xml000066400000000000000000000022541300111216200200250ustar00rootroot00000000000000 Sinus wavewrapper

Produces an unusual distortion effect, for a more amp like tone, see the valve saturation plugin (section \ref{valve}).

Wrap degree Input Output
ladspa-0.4.17/smooth_decimate_1414.xml000066400000000000000000000046461300111216200174030ustar00rootroot00000000000000 #include "ladspa-util.h" Smooth Decimator = 1.0f) { accum -= 1.0f; buffer_pos = (buffer_pos + 1) & 7; buffer[buffer_pos] = input[pos]; } smoothed = cube_interp(accum, buffer[(buffer_pos - 3) & 7], buffer[(buffer_pos - 2) & 7], buffer[(buffer_pos - 1) & 7], buffer[buffer_pos]); buffer_write(output[pos], LIN_INTERP(smooth, buffer[(buffer_pos - 3) & 7], smoothed)); } plugin_data->accum = accum; plugin_data->buffer_pos = buffer_pos; ]]> buffer); ]]> Resample rate

The rate at which the output signal will be resampled

Smoothing

The amount of smoothing on the output signal.

Input Output
ladspa-0.4.17/split_1406.xml000066400000000000000000000021261300111216200153620ustar00rootroot00000000000000 Mono to Stereo splitter

Takes a mono input signal, and outputs it to both left and right channel, thus \"stereophizing" it.

unsigned long pos; for (pos = 0; pos < sample_count; pos++) { const LADSPA_Data in = input[pos]; buffer_write(out1[pos], in); buffer_write(out2[pos], in); } Input Output 1 Output 2
ladspa-0.4.17/step_muxer_1212.xml000066400000000000000000000102531300111216200164150ustar00rootroot00000000000000 Step Demuxer

Inputs up to 8 signals and switches between them on the output when the signal on the clock input goes high.

This plugin is untested, and may not work.

ch_state); free(plugin_data->ch_gain); ]]> = 1.0f) { ch_gain[ch] = 1.0f; ch_state[ch] = STABLE; } // Channel is still being faded out } else if (ch_state[ch] == FADE_OUT) { ch_gain[ch] -= fade_inc; if (ch_gain[ch] <= 0.0f) { ch_gain[ch] = 0.0f; ch_state[ch] = STABLE; } } } // Check for clock signal if (last_clock <= 0.0f && clock[pos] > 0.0f) { ch_state[current_ch] = FADE_OUT; current_ch = (current_ch + 1) % 8; ch_state[current_ch] = FADE_IN; } } // Save state data plugin_data->current_ch = current_ch; plugin_data->last_clock = last_clock; ]]> Crossfade time (in ms) Clock Input 1 Input 2 Input 3 Input 4 Input 5 Input 6 Input 7 Input 8 Output
ladspa-0.4.17/surround_encoder_1401.xml000066400000000000000000000163471300111216200176140ustar00rootroot00000000000000 Surround matrix encoder

I haven't been able to test this plugin, so there may be bugs. I have successfully tested the algorithm, but the implementation is suspect.

\subsubsection{What does it do?}

It allows you to encode four channels of sound into a stereo compatible stream that will be decoded by a Dolby\footnote{"Dolby" is a trademark of Dolby Laboratories.} Surround/Pro-Logic decoder into Left, Right, Center and Surround signals.

This is not a proper implementation of Pro-logic, there is no Dolby B processing done on the surround channel, which would help, but would be using Dolby intellectual property.

\subsubsection{Caveats}

Obviously you can't wedge four channels into two without loss, so something has to give. You will probably notice significant cross-talk between the channels, but the decoder should do cross-talk correction, which will help a lot. A side effect of this is that it will make left-right panning unusual, the sources will dwell near the left and right speakers and zip across the centre channel. Because of this it is only really possible to master surround recordings through a pre-logic decoder. Do not attempt to use a conventional 5 point surround multichannel setup, it behaves very differently.

In addition to this, output from this process is not entirely mono compatible, in mono output the L, C and R will be preserved as per a stereo recording (centre will be mixed equally), but the surround channel will be totally lost.

Careful gain control on the output is required, as the level of the output will be greater than the L and R inputs, but different to the sum amplitude of the input signals.

Widely panned reverb fed to the L and R channels will often leak into the S channel, if this is not desired (often it is) reduce the width of the stereo image.

The encoding will survive some processes (eg. copying to CD, MD etc.), but may not survive conversion to MP3 or recording to tape with azimuth errors.

\subsubsection{Legalese}

This is a four channel matrix encoder, it happens to be compatible with Dolby Surround Pro-Logic.

This implementation does not convey a license nor imply a right under any patent, or any other industrial or intellectual property right of Dolby Laboratories.

buffer_size = (int)(0.0072f * s_rate); buffer_pos = 0; buffer = calloc(buffer_size, sizeof(LADSPA_Data)); delay = calloc(D_SIZE, sizeof(LADSPA_Data)); dptr = 0; memset(buffer, 0, buffer_size * sizeof(LADSPA_Data)); free(plugin_data->buffer); free(plugin_data->delay); dptr = dptr; plugin_data->buffer_pos = buffer_pos; ]]> L

Left channel input. Can be treated as per normal stereo recoding, except that the speaker should be at -22.5$^\circ$, rather than the normal stereo -30$^\circ$.

R

Right channel input. As per left channel.

C

Center channel input. Will be directly in front of the listener, stereo and mono compatible.

S

Surround channel. Should sound from the rear speakers, may also leak into the left and right. Has slight delay and bandwidth reduction (cut below 100 Hz, and above 7 KHz) for leakage and noise reduction and enhanced psychoacoustic effects.

Not mono compatible.

Lt Rt
ladspa-0.4.17/svf_1214.xml000066400000000000000000000102361300111216200150230ustar00rootroot00000000000000 f = 2.0f * sin(M_PI * fc / (float)(fs * F_R)); sv->q = 2.0f * cos(pow(q, 0.1f) * M_PI * 0.5f); sv->qnrm = sqrt(sv->q/2.0+0.01); switch(t) { case F_LP: sv->op = &(sv->l); break; case F_HP: sv->op = &(sv->h); break; case F_BP: sv->op = &(sv->b); break; case F_BR: sv->op = &(sv->n); break; default: sv->op = &(sv->p); } } /* Run one sample through the SV filter. Filter is by andy@vellocet */ static inline float run_svf(sv_filter *sv, float in) { float out; int i; in = sv->qnrm * in ; for (i=0; i < F_R; i++) { // very slight waveshape for extra stability sv->b = flush_to_zero(sv->b - sv->b * sv->b * sv->b * 0.001f); // regular state variable code here // the notch and peaking outputs are optional sv->h = flush_to_zero(in - sv->l - sv->q * sv->b); sv->b = sv->b + sv->f * sv->h; sv->l = flush_to_zero(sv->l + sv->f * sv->b); sv->n = sv->l + sv->h; sv->p = sv->l - sv->h; out = *(sv->op); in = out; } return out; } ]]> State Variable Filter

An oversampled state variable filter with a few tweaks.

Quite a nice State Variable Filter, tends to be unstable with high resonance and Q values, but good when kept under control.

sample_rate = s_rate; svf = calloc(1, sizeof(sv_filter)); setup_svf(svf, 0, 0, 0, 0); free(plugin_data->svf); b * filt_res))); } ]]> Input Output Filter type (0=none, 1=LP, 2=HP, 3=BP, 4=BR, 5=AP)

Select between no filtering, low-pass, high-pass, band-pass, band-reject and all-pass.

Filter freq

Cutoff frequency, beware of high values with low sample rates.

Filter Q

The filters Q, or cutoff slope.

Filter resonance

The filter's resonance, sort of separate from Q but very related (implemented with feedback).

Do not use with the bandpass mode.

ladspa-0.4.17/tape_delay_1211.xml000066400000000000000000000130201300111216200163230ustar00rootroot00000000000000 Tape Delay Simulation

Correctly models the tape motion and some of the smear effect, there is no simulation for the head saturation yet, as I don't have a good model of it. When I get one I will add it.

The way the tape accelerates and decelerates gives a nicer delay effect for many purposes.

int i; for (i = 0; i < buffer_size; i++) { buffer[i] = 0; } phase = 0; last_phase = 0; last_in = 0.0f; last2_in = 0.0f; last3_in = 0.0f; sample_rate = sample_rate; z0 = 0.0f; z1 = 0.0f; z2 = 0.0f; buffer); ]]> 1.0f ? 1.0f : lin_inc; lin_int = 0.0f; for (track = last_phase; track < phase; track++) { lin_int += lin_inc; buffer[track & buffer_mask] = cube_interp(lin_int, last3_in, last2_in, last_in, input[pos]); } last3_in = last2_in; last2_in = last_in; last_in = input[pos]; out += input[pos] * da; buffer_write(output[pos], out); if (phase >= buffer_size) { phase -= buffer_size; } } // Store current phase in instance plugin_data->phase = phase; plugin_data->last_phase = last_phase; plugin_data->last_in = last_in; plugin_data->last2_in = last2_in; plugin_data->last3_in = last3_in; plugin_data->z0 = z0; plugin_data->z1 = z1; plugin_data->z2 = z2; ]]> Tape speed (inches/sec, 1=normal) Dry level (dB) Tap 1 distance (inches) Tap 1 level (dB) Tap 2 distance (inches) Tap 2 level (dB) Tap 3 distance (inches) Tap 3 level (dB) Tap 4 distance (inches) Tap 4 level (dB) Input Output
ladspa-0.4.17/timetest/000077500000000000000000000000001300111216200146705ustar00rootroot00000000000000ladspa-0.4.17/timetest/autotimetest.pl000077500000000000000000000046531300111216200177670ustar00rootroot00000000000000#!/usr/bin/perl -w $html = 0; $skip = 0; while (@ARGV) { $plugin = shift(@ARGV).""; if ($plugin eq "--html") { $html = 1; print "\n"; print "\n"; next; } @data = `analyseplugin $plugin`; $port = 0; $ins = 0; $id = 0; $seen = 0; for (@data) { if (/Plugin Name: "(.*?)"/) { if ($seen) { #&run($port, $ins, $id, $title); &run; } if (/Debug/) { $skip = 1; } $title = $1; $seen = 1; $ins = 0; $id = 0; $port = 0; } if (/Plugin Label: "(.*?)"/) { $label = $1; } if (/Plugin Unique ID: (\d+)/) { $id = $1; } if (/"(.*?)" input, control, ([0-9.e-]+).*? to ([0-9.e-]+)/i) { #$name[$port] = $1; $min[$port] = $2; if ($min[$port] eq "...") { $min[$port] = 0.0; } $max[$port] = $3; if ($max[$port] eq "...") { $max[$port] = $min[$port]; } $port++; } if (/input, audio/) { $ins++; } } if ($skip) { $skip = 0; next; } &run; } #&run; #&run($port, $ins, $id, $title); if ($html) { print "
UIDNamePIII MHzCycles /
sample
\n"; } sub run { #local ($port, $ins, $id, $title) = @_; my $afile = "XXX"; if ($ins == 1) { $afile = "happyness-ext-m.wav"; } elsif ($ins == 2) { $afile = "happyness-ext-s.wav"; } else { print STDERR "No valid input file for $id\n"; #next; } if ($html) { printf("$id$title"); } else { printf("%-48s ", $title); } my $base = ""; for $i (0..$port-1) { $base .= " ".($min[$i]+$max[$i])/2; } $cycles = 9999999999999; $pers = 99999999; for (1..5) { $cmd = "applyplugin ../testdata/$afile /dev/null $plugin $label$base 2>&1"; $out = `$cmd`; last if ($? != 0); chomp $out; $out =~ /Plugin cycles: (\d+) \((\d+)\//; if (!$1) { print STDERR "$? $out\n$cmd\n"; $err = 1; } if ($1 < $cycles) { $cycles = $1; } if ($2 < $pers) { $pers = $2; } } if ($err || $?) { if ($html) { print "??????\n\n"; } else { print "???\n$cmd\n"; } $err = 0; return; } $cycles /= 8000000.0; if ($html) { printf "%.1f$pers\n", $cycles; } else { printf "%3.1f\t%d\n", $cycles, $pers; } } ladspa-0.4.17/timetest/timecmp000077500000000000000000000021101300111216200162460ustar00rootroot00000000000000#!/usr/bin/perl -w my $pattern = shift @ARGV; my $reps = 4; open(RC, "timetest.rc"); while() { next if /^\s*#/; next if /^\s*$/; next if ($pattern && !/$pattern/); @stuff = split("\t"); $name = $stuff[0]; $line = $stuff[1]; chomp $line; $line =~ /(\S+\.so)/; $command = $line." 2>&1"; $cycles = 10000000000; $pers = 100000; my $count; for $count (1..$reps+1) { $out = `$command`; chomp $out; $out =~ /Plugin cycles: (\d+) \((\d+)\//; if ($1 < $cycles) { $cycles = $1; } if ($2 < $pers) { $pers = $2; } } $out =~ /UID: (\d+)/; $UID = $1; $acycles = $cycles; $line =~ s/(.*\.\.)/$1\/icc-so/; #print $line."\n"; $command = $line." 2>&1"; $cycles = 10000000000; $pers = 100000; $ok = 1; for $count (1..$reps+1) { $out = `$command`; chomp $out; unless ($out =~ /Plugin cycles: (\d+) \((\d+)\//) { print("ERROR\t$name\n"); $ok = 0; last; } if ($1 < $cycles) { $cycles = $1; } if ($2 < $pers) { $pers = $2; } } next if !$ok; $out =~ /UID: (\d+)/; $UID = $1; print sprintf("%.3f", ($cycles/$acycles))."\t$name\n"; } ladspa-0.4.17/timetest/timetest000077500000000000000000000024371300111216200164620ustar00rootroot00000000000000#!/usr/bin/perl -w my $pattern = shift @ARGV; my $reps = 4; open(RC, "timetest.rc"); open(DATA, ">timetest.results"); print("\n"); print("\n"); while() { next if /^\s*#/; next if /^\s*$/; next if ($pattern && !/$pattern/); @stuff = split("\t"); $name = $stuff[0]; $line = $stuff[1]; chomp $line; $line =~ /(\S+\.so)/; $command = $line." 2>&1"; $cycles = 10000000000; $pers = 100000; my $count; for $count (1..$reps+1) { $out = `$command`; chomp $out; $out =~ /Plugin cycles: (\d+) \((\d+)\//; if ($1 < $cycles) { $cycles = $1; } if ($2 < $pers) { $pers = $2; } } $out =~ /UID: (\d+)/; $UID = $1; $cycles /= 1000000; $doc = "http://plugin.org.uk/ladspa-swh/docs/ladspa-swh.html#id$UID"; print("\n"); print DATA "$UID ".sprintf("%.2f", $cycles/8)." ".sprintf("%.0f", $pers)."\n"; } print("
PluginPIII MHz used to process
44.1k/16bit mono file
Cycles per sample
", $name, "", sprintf("%.2f", $cycles/8), "", sprintf("%.0f", $pers),"
\n"); ladspa-0.4.17/timetest/timetest.rc000066400000000000000000000074171300111216200170650ustar00rootroot00000000000000Amp applyplugin ../testdata/happyness-ext-m.wav /dev/null ../amp_1181.so amp 0 Fast overdrive applyplugin ../testdata/happyness-ext-m.wav /dev/null ../foverdrive_1196.so foverdrive 1 #Overdrive (with colouration) applyplugin ../testdata/happyness-ext-m.wav /dev/null ../overdrive_1182.so overdrive 0 0.5 0.5 0.5 Comb filter applyplugin ../testdata/happyness-ext-m.wav /dev/null ../comb_1190.so comb 500 50 150 Waveshaper applyplugin ../testdata/happyness-ext-m.wav /dev/null ../shaper_1187.so shaper 5 Ringmod w/ LFO applyplugin ../testdata/happyness-ext-m.wav /dev/null ../ringmod_1188.so ringmod_1i1o1l 2 50 0.3 0.4 0.5 0.6 Audio divider applyplugin ../testdata/happyness-ext-m.wav /dev/null ../divider_1186.so divider 8 Diode processor applyplugin ../testdata/happyness-ext-m.wav /dev/null ../diode_1185.so diode 1.5 Decliper applyplugin ../testdata/happyness-ext-m.wav /dev/null ../declip_1195.so declip Pitch scaler applyplugin ../testdata/happyness-ext-m.wav /dev/null ../pitch_scale_1193.so pitchScale 0.7 Pitch scaler (high quality) applyplugin ../testdata/happyness-ext-m.wav /dev/null ../pitch_scale_1194.so pitchScaleHQ 0.7 16 band EQ applyplugin ../testdata/happyness-ext-m.wav /dev/null ../mbeq_1197.so mbeq -70 -60 -50 -40 -30 -20 -10 -5 +5 +10 +5 0 0 0 0 0 Sinus wavewrapper applyplugin ../testdata/happyness-ext-m.wav /dev/null ../sinus_wavewrapper_1198.so sinusWavewrapper 0.2 Hermes filter applyplugin ../testdata/happyness-ext-m.wav /dev/null ../hermes_filter_1200.so hermesFilter 3 0 0.27 1 100 1 40 1 1.5 1 2 -4 -4 -50 -70 -70 -70 200 1000 3 1 3 5 1500 0.65 0 130 0 5 400 0.8 0 0 -177 1 150 0.9 0.97 30 30 0.025 0.9 0.5 0.05 0.7 0.5 0.1 0.5 0.5 0 -20 -20 Chorus (3 voice) applyplugin ../testdata/happyness-ext-m.wav /dev/null ../multivoice_chorus_1201.so multivoiceChorus 3 20 3 1 10 0 Flanger applyplugin ../testdata/happyness-ext-m.wav /dev/null ../flanger_1191.so flanger 1 0.3 0.5 0.7 Decimator applyplugin ../testdata/happyness-ext-m.wav /dev/null ../decimator_1202.so decimator 4 1000 Analogue style oscilator applyplugin ../testdata/happyness-ext-m.wav /dev/null ../analogue_osc_1205.so analogueOsc 50 0 Transient processor applyplugin ../testdata/happyness-ext-m.wav /dev/null ../transient_1206.so transient 0.7 -0.7 Fractional Delay applyplugin ../testdata/happyness-ext-m.wav /dev/null ../fad_delay_1192.so fadDelay 3 -10 DC offset remover applyplugin ../testdata/happyness-ext-m.wav /dev/null ../dc_remove_1207.so dcRemove Retro flanger applyplugin ../testdata/happyness-ext-m.wav /dev/null ../retro_flange_1208.so retroFlange 5 4 Valve saturation applyplugin ../testdata/happyness-ext-m.wav /dev/null ../valve_1209.so valve 0.5 0.5 Sifter applyplugin ../testdata/happyness-ext-m.wav /dev/null ../sifter_1210.so sifter 32 Tape style delay (4 taps) applyplugin ../testdata/happyness-ext-m.wav /dev/null ../tape_delay_1211.so tapeDelay 1 -10 0.1 -10 0.2 -10 0.3 -10 0.4 -10 Foldover distorter applyplugin ../testdata/happyness-ext-m.wav /dev/null ../foldover_1213.so foldover 0.5 0.5 State variable filter applyplugin ../testdata/happyness-ext-m.wav /dev/null ../amp_1181.so amp -89 ../svf_1214.so svf 2 3000 0.5 0.5 GSM phone effect applyplugin ../testdata/happyness-ext-m.wav /dev/null ../gsm_1215.so gsm 0.5 1 0 GVerb (reverb) applyplugin ../testdata/happyness-ext-m.wav /dev/null ../gverb_1216.so gverb 150 5 0.5 0.25 0 0 0 LFO Phaser applyplugin ../testdata/happyness-ext-m.wav /dev/null ../phasers_1217.so lfoPhaser 10 0.5 0.6 1 4x4 pole allpass applyplugin ../testdata/happyness-ext-m.wav /dev/null ../phasers_1217.so fourByFourPole 1000 0.7 2000 -0.7 3000 0.8 4000 -0.8 Auto phaser applyplugin ../testdata/happyness-ext-m.wav /dev/null ../phasers_1217.so autoPhaser 1 0.1 0.0001 0.6 0.01 Harmonic generator applyplugin ../testdata/happyness-ext-m.wav /dev/null ../harmonic_gen_1220.so harmonicGen 1 0 0 0 0 0 0 0 0 0 ladspa-0.4.17/transient_1206.xml000066400000000000000000000103611300111216200162340ustar00rootroot00000000000000 Transient mangler buffer = calloc(BUFFER_SIZE, sizeof(float)); fast_buffer_sum = 0.1; medi_buffer_sum = 0.1; slow_buffer_sum = 0.1; buffer_pos = 0; fast_track = 0.0; medi_track = 0.0; slow_track = 0.0; count = 0; sample_rate = s_rate; memset(buffer, '\0', BUFFER_SIZE * sizeof(float)); fast_buffer_sum = 0.1; medi_buffer_sum = 0.1; slow_buffer_sum = 0.1; buffer_pos = 0; fast_track = 0.1; medi_track = 0.1; slow_track = 0.1; count = 0; sample_rate = sample_rate; buffer); ]]> slow_sum_size) { fast_track += (fast_buffer_sum/fast_sum_size - fast_track) * fast_track_lag; medi_track += (medi_buffer_sum/medi_sum_size - medi_track) * medi_track_lag; slow_track += (slow_buffer_sum/slow_sum_size - slow_track) * slow_track_lag; } // Attack ratio = (fast_track + ASTAB) / (medi_track + ASTAB); if (ratio * attack > 1.0f) { in *= ratio * attack; } else if (ratio * attack < -1.0f) { in /= ratio * -attack; } // Sustain ratio = (slow_track + SSTAB) / (medi_track + SSTAB); if (ratio * sustain > 1.0f) { in *= ratio * sustain; } else if (ratio * sustain < -1.0f) { in /= ratio * -sustain; } buffer_write(output[pos], in); buffer_pos = (buffer_pos + 1) % BUFFER_SIZE; } plugin_data->count = count; plugin_data->fast_track = fast_track; plugin_data->medi_track = medi_track; plugin_data->slow_track = slow_track; plugin_data->buffer_pos = buffer_pos; plugin_data->fast_buffer_sum = fast_buffer_sum; plugin_data->medi_buffer_sum = medi_buffer_sum; plugin_data->slow_buffer_sum = slow_buffer_sum; ]]> Attack speed Sustain time Input Output ladspa-0.4.17/triple_para_1204.xml000066400000000000000000000114131300111216200165240ustar00rootroot00000000000000 #include "util/biquad.h" Triple band parametric with shelves

Actually five bands of eq, but the first and last are locked to shelving filters.

For details see the single band parametric (section \ref{singlePara}).

free(plugin_data->filters); Low-shelving gain (dB) Low-shelving frequency (Hz) Low-shelving slope Band 1 gain (dB) Band 1 frequency (Hz) Band 1 bandwidth (octaves) Band 2 gain (dB) Band 2 frequency (Hz) Band 2 bandwidth (octaves) Band 3 gain (dB) Band 3 frequency (Hz) Band 3 bandwidth (octaves) High-shelving gain (dB) High-shelving frequency (Hz) High-shelving slope Input Output
ladspa-0.4.17/util/000077500000000000000000000000001300111216200140075ustar00rootroot00000000000000ladspa-0.4.17/util/Makefile.am000066400000000000000000000010521300111216200160410ustar00rootroot00000000000000LIBTOOL=libtool RANLIB=ranlib noinst_HEADERS = rms.h db.h blo.h pitchscale.h waveguide_nl.h biquad.h iir.h buffer.h ls_filter.h noinst_LIBRARIES = librms.a libdb.a libblo.a libpitchscale.a libiir.a librms_a_SOURCES = rms.c libdb_a_SOURCES = db.c libblo_a_SOURCES = blo.c libblo_a_CFLAGS = -I@top_srcdir@ libpitchscale_a_SOURCES = pitchscale.c libpitchscale_a_CFLAGS = $(FFTW_CFLAGS) #libpitchscale_a_LIBS = $(FFTW_LIBS) libiir_a_SOURCES = iir.c libiir_a_CPPFLAGS = -I@top_srcdir@ #libbuffer_a_SOURCES = buffer.c # Disable autoheader. AUTOHEADER=echo ladspa-0.4.17/util/biquad.h000066400000000000000000000105321300111216200154260ustar00rootroot00000000000000#ifndef BIQUAD_H #define BIQUAD_H #define LN_2_2 0.34657359f // ln(2)/2 #include "ladspa-util.h" #ifndef LIMIT #define LIMIT(v,l,u) (vu?u:v)) #endif #ifndef BIQUAD_TYPE #define BIQUAD_TYPE float #endif typedef BIQUAD_TYPE bq_t; /* Biquad filter (adapted from lisp code by Eli Brandt, http://www.cs.cmu.edu/~eli/) */ typedef struct { bq_t a1; bq_t a2; bq_t b0; bq_t b1; bq_t b2; bq_t x1; bq_t x2; bq_t y1; bq_t y2; } biquad; static inline void biquad_init(biquad *f) { f->x1 = 0.0f; f->x2 = 0.0f; f->y1 = 0.0f; f->y2 = 0.0f; } static inline void eq_set_params(biquad *f, bq_t fc, bq_t gain, bq_t bw, bq_t fs); static inline void eq_set_params(biquad *f, bq_t fc, bq_t gain, bq_t bw, bq_t fs) { bq_t w = 2.0f * M_PI * LIMIT(fc, 1.0f, fs/2.0f) / fs; bq_t cw = cosf(w); bq_t sw = sinf(w); bq_t J = pow(10.0f, gain * 0.025f); bq_t g = sw * sinhf(LN_2_2 * LIMIT(bw, 0.0001f, 4.0f) * w / sw); bq_t a0r = 1.0f / (1.0f + (g / J)); f->b0 = (1.0f + (g * J)) * a0r; f->b1 = (-2.0f * cw) * a0r; f->b2 = (1.0f - (g * J)) * a0r; f->a1 = -(f->b1); f->a2 = ((g / J) - 1.0f) * a0r; } static inline void ls_set_params(biquad *f, bq_t fc, bq_t gain, bq_t slope, bq_t fs); static inline void ls_set_params(biquad *f, bq_t fc, bq_t gain, bq_t slope, bq_t fs) { bq_t w = 2.0f * M_PI * LIMIT(fc, 1.0, fs/2.0) / fs; bq_t cw = cosf(w); bq_t sw = sinf(w); bq_t A = powf(10.0f, gain * 0.025f); bq_t b = sqrt(((1.0f + A * A) / LIMIT(slope, 0.0001f, 1.0f)) - ((A - 1.0f) * (A - 1.0))); bq_t apc = cw * (A + 1.0f); bq_t amc = cw * (A - 1.0f); bq_t bs = b * sw; bq_t a0r = 1.0f / (A + 1.0f + amc + bs); f->b0 = a0r * A * (A + 1.0f - amc + bs); f->b1 = a0r * 2.0f * A * (A - 1.0f - apc); f->b2 = a0r * A * (A + 1.0f - amc - bs); f->a1 = a0r * 2.0f * (A - 1.0f + apc); f->a2 = a0r * (-A - 1.0f - amc + bs); } static inline void hs_set_params(biquad *f, bq_t fc, bq_t gain, bq_t slope, bq_t fs); static inline void hs_set_params(biquad *f, bq_t fc, bq_t gain, bq_t slope, bq_t fs) { bq_t w = 2.0f * M_PI * LIMIT(fc, 1.0, fs/2.0) / fs; bq_t cw = cosf(w); bq_t sw = sinf(w); bq_t A = powf(10.0f, gain * 0.025f); bq_t b = sqrt(((1.0f + A * A) / LIMIT(slope, 0.0001f, 1.0f)) - ((A - 1.0f) * (A - 1.0f))); bq_t apc = cw * (A + 1.0f); bq_t amc = cw * (A - 1.0f); bq_t bs = b * sw; bq_t a0r = 1.0f / (A + 1.0f - amc + bs); f->b0 = a0r * A * (A + 1.0f + amc + bs); f->b1 = a0r * -2.0f * A * (A - 1.0f + apc); f->b2 = a0r * A * (A + 1.0f + amc - bs); f->a1 = a0r * -2.0f * (A - 1.0f - apc); f->a2 = a0r * (-A - 1.0f + amc + bs); } static inline void lp_set_params(biquad *f, bq_t fc, bq_t bw, bq_t fs) { bq_t omega = 2.0 * M_PI * fc/fs; bq_t sn = sin(omega); bq_t cs = cos(omega); bq_t alpha = sn * sinh(M_LN2 / 2.0 * bw * omega / sn); const float a0r = 1.0 / (1.0 + alpha); f->b0 = a0r * (1.0 - cs) * 0.5; f->b1 = a0r * (1.0 - cs); f->b2 = a0r * (1.0 - cs) * 0.5; f->a1 = a0r * (2.0 * cs); f->a2 = a0r * (alpha - 1.0); } static inline void hp_set_params(biquad *f, bq_t fc, bq_t bw, bq_t fs) { bq_t omega = 2.0 * M_PI * fc/fs; bq_t sn = sin(omega); bq_t cs = cos(omega); bq_t alpha = sn * sinh(M_LN2 / 2.0 * bw * omega / sn); const float a0r = 1.0 / (1.0 + alpha); f->b0 = a0r * (1.0 + cs) * 0.5; f->b1 = a0r * -(1.0 + cs); f->b2 = a0r * (1.0 + cs) * 0.5; f->a1 = a0r * (2.0 * cs); f->a2 = a0r * (alpha - 1.0); } static inline void bp_set_params(biquad *f, bq_t fc, bq_t bw, bq_t fs) { bq_t omega = 2.0 * M_PI * fc/fs; bq_t sn = sin(omega); bq_t cs = cos(omega); bq_t alpha = sn * sinh(M_LN2 / 2.0 * bw * omega / sn); const float a0r = 1.0 / (1.0 + alpha); f->b0 = a0r * alpha; f->b1 = 0.0; f->b2 = a0r * -alpha; f->a1 = a0r * (2.0 * cs); f->a2 = a0r * (alpha - 1.0); } static inline bq_t biquad_run(biquad *f, const bq_t x) { bq_t y; y = f->b0 * x + f->b1 * f->x1 + f->b2 * f->x2 + f->a1 * f->y1 + f->a2 * f->y2; y = flush_to_zero(y); f->x2 = f->x1; f->x1 = x; f->y2 = f->y1; f->y1 = y; return y; } static inline bq_t biquad_run_fb(biquad *f, bq_t x, const bq_t fb) { bq_t y; x += f->y1 * fb * 0.98; y = f->b0 * x + f->b1 * f->x1 + f->b2 * f->x2 + f->a1 * f->y1 + f->a2 * f->y2; y = flush_to_zero(y); f->x2 = f->x1; f->x1 = x; f->y2 = f->y1; f->y1 = y; return y; } #endif ladspa-0.4.17/util/blo.c000066400000000000000000000163441300111216200147370ustar00rootroot00000000000000/* Copyright (C) 2002 Steve Harris This program is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. This program is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with this program; if not, write to the Free Software Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */ #include #include #include #include #include #include "blo.h" /* Create the lookup tables needed to generate the bandlimited signals, we * create sin tables (As well as the usual sin, square, saw), which is almost * completely pointless, but doesn't cost much ram. * * Memory use is roughly 8 * table_size * num_of_harmonics, eg. 2048 point * tables with 64 harmonics costs ~1Meg. The oscilators will be accurate down * to sample_rate / (2 * number_of_harmonics) Hz, below that they will sound a * bit soft. */ blo_h_tables *blo_h_tables_new(int table_size) { blo_h_tables *this; float *all_tables = NULL; float *table; float table_size_f = table_size; float max; unsigned int table_count = 0; unsigned int i, h; size_t all_tables_size = sizeof(float) * (table_size + BLO_TABLE_WR) * (BLO_N_HARMONICS - 1) * 2; int shm_fd; char shm_path[128]; this = malloc(sizeof(blo_h_tables)); this->alloc_size = all_tables_size; this->table_size = table_size; this->table_mask = table_size - 1; this->store_type = BLO_MMAP; snprintf(shm_path, 128, "/blo-1-%dx%dx%d.tbl", BLO_N_WAVES, BLO_N_HARMONICS, table_size + BLO_TABLE_WR); if ((shm_fd = shm_open(shm_path, O_RDONLY, 0)) > 0) { /* There is an existing SHM segment that matches what we want */ all_tables = mmap(0, all_tables_size, PROT_READ, MAP_SHARED, shm_fd, 0); close(shm_fd); this->alloc_space = all_tables; /* Map the pointers to the correct places in SHM */ /* The zero harmonics tables (trivial) */ table = BLO_NEXT_TABLE; for (i=0; ih_tables[i][0] = table; } /* The 1st harmonic table (trivial) */ table = BLO_NEXT_TABLE; for (i=0; ih_tables[i][1] = table; } /* The sin 2nd+ harmonics sine tables (trivial) */ for (h=2; hh_tables[BLO_SINE][h] = table; } /* The tri 2nd+ harmonics tables */ table = this->h_tables[BLO_TRI][1]; for (h=2; hh_tables[BLO_TRI][h] = table; } else { /* Odd harmonic add sin(hp)/h^2 */ table = BLO_NEXT_TABLE; this->h_tables[BLO_TRI][h] = table; } } /* The square 2nd+ harmonics tables */ table = this->h_tables[BLO_SQUARE][1]; for (h=2; hh_tables[BLO_SQUARE][h] = table; } else { /* Odd harmonic add sin(hp)/h */ table = BLO_NEXT_TABLE; this->h_tables[BLO_SQUARE][h] = table; } } /* The saw 2nd+ harmonics tables */ for (h=2; hh_tables[BLO_SAW][h] = table; } return this; } else if ((shm_fd = shm_open(shm_path, O_CREAT | O_RDWR, 0644)) > 0) { /* There is no existing SHM segment, but we can make one */ ftruncate(shm_fd, all_tables_size); all_tables = mmap(0, all_tables_size, PROT_READ | PROT_WRITE, MAP_SHARED, shm_fd, 0); close(shm_fd); } /* Fallback case, can't map a SHM segment, just malloc it and suffer */ if (!all_tables) { all_tables = malloc(all_tables_size); this->store_type = BLO_MALLOC; } this->alloc_space = all_tables; /* Calculate the harmonic amplitudes and place the index pointers */ /* Make a zero harmonics table (trivial) */ table = BLO_NEXT_TABLE; for (i=0; ih_tables[i][0] = table; } /* Make a 1st harmonic table (trivial) */ table = BLO_NEXT_TABLE; for (i=0; ih_tables[i][1] = table; } /* Make the sin 2nd+ harmonics tables (trivial) */ for (h=2; hh_tables[BLO_SINE][h] = table; } /* Make the tri 2nd+ harmonics tables */ table = this->h_tables[BLO_TRI][1]; for (h=2; hh_tables[BLO_TRI][h] = table; } else { float sign = 1.0f; if (h % 4 == 3) { sign = -1.0f; } /* Odd harmonic add sin(hp)/h^2 */ table = BLO_NEXT_TABLE; this->h_tables[BLO_TRI][h] = table; for (i=0; ih_tables[BLO_TRI][h - 1][i] + sign * BLO_SIN_GEN((float)i * (float)h) / ((float)h * (float) h); } } } /* Make the square 2nd+ harmonics tables */ table = this->h_tables[BLO_SQUARE][1]; for (h=2; hh_tables[BLO_SQUARE][h] = table; } else { /* Odd harmonic add sin(hp)/h */ table = BLO_NEXT_TABLE; this->h_tables[BLO_SQUARE][h] = table; for (i=0; ih_tables[BLO_SQUARE][h - 1][i] + BLO_SIN_GEN((float)i * (float)h) / (float)h; } } } /* Make the saw 2nd+ harmonics tables */ for (h=2; hh_tables[BLO_SAW][h] = table; for (i=0; ih_tables[BLO_SAW][h - 1][i] + BLO_SIN_GEN((float)i * (float)h) / (float)h; } } /* Normalise table levels */ for (h=1; h max) { max = fabs(table[i]); } } max = 1.0f / max; for (i=0; istore_type == BLO_MMAP) { munmap(tables->alloc_space, tables->alloc_size); } else { free(tables->alloc_space); } free(tables); } blo_h_osc *blo_h_new(blo_h_tables *tables, unsigned int wave, float sample_rate) { blo_h_osc *this = malloc(sizeof(blo_h_osc)); this->tables = tables; this->wave = wave; this->sample_rate = sample_rate; this->nyquist = sample_rate * 0.49f; this->ph.all = 0; this->ph_coef = ((float)(tables->table_size) * 65536.0f) / sample_rate; this->ph_mask = tables->table_size * 65536 - 1; this->table_mask = tables->table_mask; this->table_size = tables->table_size; this->table = tables->h_tables[0][0]; this->table_b = tables->h_tables[0][0]; return this; } void blo_h_free(blo_h_osc *osc) { free(osc); } ladspa-0.4.17/util/blo.h000066400000000000000000000135071300111216200147420ustar00rootroot00000000000000/* Copyright (C) 2002 Steve Harris This program is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. This program is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with this program; if not, write to the Free Software Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */ #include #include #include #include "ladspa-util.h" #define BLO_N_WAVES 4 #define BLO_SINE 0 #define BLO_TRI 1 #define BLO_SQUARE 2 #define BLO_SAW 3 #define BLO_MMAP 0 #define BLO_MALLOC 1 #ifndef BLO_N_HARMONICS #define BLO_N_HARMONICS 64 #endif /* The wraparaound off the end of the basic wavetable, used by the * interpolators. */ #define BLO_TABLE_WR 4 #define BLO_SIN_GEN(phase) sin((phase) * 2.0f * (float)M_PI / table_size_f) #define BLO_NEXT_TABLE (all_tables + (table_count++ * (table_size + BLO_TABLE_WR))) typedef struct { float *h_tables[BLO_N_WAVES][BLO_N_HARMONICS]; float *alloc_space; size_t alloc_size; int table_size; int table_mask; int store_type; } blo_h_tables; typedef union { int all; struct { unsigned short fr; short in; } part; } blo_fixp; typedef struct { blo_h_tables *tables; float sample_rate; float nyquist; unsigned int wave; blo_fixp ph; blo_fixp om; float ph_coef; int ph_mask; int table_mask; int table_size; int topbit; float *table; float *table_b; float xfade; } blo_h_osc; blo_h_tables *blo_h_tables_new(int table_size); void blo_h_tables_free(blo_h_tables *tables); blo_h_osc *blo_h_new(blo_h_tables *tables, unsigned int wave, float sample_rate); void blo_h_free(blo_h_osc *osc); /* Set frequency for static oscilator, less cycles, but won't modulate as well * You can't use blo_osc_hd_run_* until you've called the _hd version of this * function. */ static inline void blo_hs_set_freq(blo_h_osc *this, const float f) { unsigned int tab_num; const float ff = fabs(f) + 0.00001f; // Prevent div by zero // This needs to be a cast, no idea why this->om.all = (int)(f * this->ph_coef); tab_num = f_round(this->nyquist / ff - 0.5f); if (tab_num >= BLO_N_HARMONICS) { tab_num = BLO_N_HARMONICS - 1; } this->table_b = this->tables->h_tables[this->wave][tab_num]; } /* Set frequency for dynamic oscilator, can only used with _hd run calls. */ static inline void blo_hd_set_freq(blo_h_osc *this, const float f) { int tab_num; const float ff = fabs(f) + 0.00001f; // Prevent div by zero this->om.all = f_round(f * this->ph_coef); tab_num = abs(f_round(this->nyquist / ff - 0.5f)); if (tab_num >= BLO_N_HARMONICS) { tab_num = BLO_N_HARMONICS - 1; } else if (tab_num < 0) { tab_num = 0; } this->table = this->tables->h_tables[this->wave][tab_num]; this->xfade = this->nyquist / ff - tab_num; if (this->xfade > 1.0f) { this->xfade = 1.0f; } if (--tab_num < 0) { tab_num = 0; } this->table_b = this->tables->h_tables[this->wave][tab_num]; } /* Run static oscilator, returns amplitude for current phase and advances the * phase. Uses linear interpoation */ static inline float blo_hs_run_lin(blo_h_osc *this) { const float frac = (float)(this->ph.part.fr) * 0.00001525878f; const int idx = this->ph.part.in; this->ph.all += this->om.all; this->ph.all &= this->ph_mask; if (this->topbit != (this->ph.all & this->table_size)) { this->topbit = this->ph.all & this->table_size; this->table = this->table_b; } return this->table[idx] * (1.0f - frac) + this->table[idx+1] * frac; } /* Run static oscilator, returns amplitude for current phase and advances the * phase. Uses cubic interpoation */ static inline float blo_hs_run_cub(blo_h_osc *this) { const float frac = (float)(this->ph.part.fr) * 0.00001525878f; const int idx = this->ph.part.in; float *t = this->table; this->ph.all += this->om.all; this->ph.all &= this->ph_mask; if (this->topbit != (this->ph.all & this->table_size)) { this->topbit = this->ph.all & this->table_size; this->table = this->table_b; t = this->table_b; } return cube_interp(frac, t[idx], t[idx+1], t[idx+2], t[idx+3]); } /* Run dynamic oscilator, returns amplitude for current phase and advances the * phase, ensures harmonics won't suddently pop into existence, takes more * cycles and has slightly less high frequency partials than the static * version */ static inline float blo_hd_run_lin(blo_h_osc * const this) { float low, high; const float frac = (float)(this->ph.part.fr) * 0.00001525878f; const int idx = this->ph.part.in; this->ph.all += this->om.all; this->ph.all &= this->ph_mask; low = LIN_INTERP(frac, this->table_b[idx], this->table_b[idx+1]); high = LIN_INTERP(frac, this->table[idx], this->table[idx+1]); return LIN_INTERP(this->xfade, low, high); } /* Run dynamic oscilator, returns amplitude for current phase and advances the * phase, ensures harmonics won't suddently pop into existence, takes more * cycles and has slightly less high frequency partials than the static * version. This one uses cubic interpolation. */ static inline float blo_hd_run_cub(blo_h_osc * const this) { float low, high; const float frac = (float)(this->ph.part.fr) * 0.00001525878f; const int idx = this->ph.part.in; const float *tl = this->table_b; const float *th = this->table; this->ph.all += this->om.all; this->ph.all &= this->ph_mask; low = cube_interp(frac, tl[idx], tl[idx+1], tl[idx+2], tl[idx+3]); high = cube_interp(frac, th[idx], th[idx+1], th[idx+2], th[idx+3]); return LIN_INTERP(this->xfade, low, high); } ladspa-0.4.17/util/buffer.c000066400000000000000000000000001300111216200154120ustar00rootroot00000000000000ladspa-0.4.17/util/buffer.h000066400000000000000000000004221300111216200154270ustar00rootroot00000000000000#ifndef _BUFFER_H #define _BUFFER_H /* substract buffer b from a, save in c * * this could be sped up by vector operations */ static inline void buffer_sub(const float* a, const float *b, float *c, int cnt) { int i; for(i=0;i #include #include "db.h" float db_data[DB_TABLE_SIZE]; float lin_data[LIN_TABLE_SIZE]; void db_init() { unsigned int i; for (i=0; i LIN_TABLE_SIZE - 3) { return lin_data[LIN_TABLE_SIZE - 2]; } return cube_interp(ofs, lin_data[base-1], lin_data[base], lin_data[base+1], lin_data[base+2]); } static inline float f_db2lin_lerp(float db) { float scale = (db - DB_MIN) * (float)LIN_TABLE_SIZE / (DB_MAX - DB_MIN); int base = f_round(scale - 0.5f); float ofs = scale - base; if (base < 1) { return 0.0f; } else if (base > LIN_TABLE_SIZE - 3) { return lin_data[LIN_TABLE_SIZE - 2]; } return (1.0f - ofs) * lin_data[base] + ofs * lin_data[base+1]; } static inline float f_lin2db_cube(float lin) { float scale = (lin - LIN_MIN) * (float)DB_TABLE_SIZE / (LIN_MAX - LIN_MIN); int base = f_round(scale - 0.5f); float ofs = scale - base; if (base < 2) { return db_data[2] * scale * 0.5f - 23 * (2.0f - scale); } else if (base > DB_TABLE_SIZE - 3) { return db_data[DB_TABLE_SIZE - 2]; } return cube_interp(ofs, db_data[base-1], db_data[base], db_data[base+1], db_data[base+2]); } static inline float f_lin2db_lerp(float lin) { float scale = (lin - LIN_MIN) * (float)DB_TABLE_SIZE / (LIN_MAX - LIN_MIN); int base = f_round(scale - 0.5f); float ofs = scale - base; if (base < 2) { return db_data[2] * scale * 0.5f - 23.0f * (2.0f - scale); } else if (base > DB_TABLE_SIZE - 2) { return db_data[DB_TABLE_SIZE - 1]; } return (1.0f - ofs) * db_data[base] + ofs * db_data[base+1]; } #endif ladspa-0.4.17/util/iir.c000066400000000000000000000136201300111216200147400ustar00rootroot00000000000000/* * iir.c * Copyright (C) 2000-2003 Alexander Ehlert * * This program is free software; you can redistribute it and/or modify * it under the terms of the GNU General Public License as published by * the Free Software Foundation; either version 2 of the License, or * (at your option) any later version. * * This program is distributed in the hope that it will be useful, * but WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the * GNU General Public License for more details. * * You should have received a copy of the GNU General Public License * along with this program; if not, write to the Free Software * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA * * A port of my glame lowpass/highpass/bandpass filters due to public demand in #lad * Try out the original at glame.sourceforge.net ;-) */ #include #include "../config.h" #include #include #include "iir.h" /* To get better filter accuracy I decided to compute the single * stages of the filter seperatly and apply them one by one * to the sample data. According to the DSPGUIDE chapter 20 pp339 * filters are more stable when applied in stages. * Who doesn't like that can still combine * all stages to one stage by just convoluting the single stages. * But in the moment it's up to the user that he knows what he's doing. * float accuracy can't be enough for certain parameters. */ #define DPRINTF(x) /* (hopefully) generic description of an iir filter */ iir_stage_t *init_iir_stage(int mode, int nstages, int na, int nb){ iir_stage_t *dum=NULL; int i; if ((dum=ALLOCN(1,iir_stage_t))){ dum->mode=mode; dum->nstages=0; dum->availst=nstages; dum->na=na; dum->nb=nb; dum->fc=-1.0; dum->coeff=(gliirt **)malloc(nstages*sizeof(gliirt *)); for(i=0;icoeff[i]=(gliirt *)malloc((na+nb)*sizeof(gliirt)); } return dum; } /* be sure to combine stages with some na, nb count! */ void combine_iir_stages(int mode, iir_stage_t* gt, iir_stage_t *first, iir_stage_t *second, int upf, int ups){ int stages, i, j, cnt; if ( (upf==-1) && (ups==-1)) return; stages = first->nstages + second->nstages; gt->nstages = stages; cnt = first->na + first->nb; /* copy coefficients */ if (upf!=-1) for(i=0; instages; i++) for(j=0; jcoeff[i][j]=first->coeff[i][j]; if (ups!=-1) for(i=first->nstages; icoeff[i][j]=second->coeff[i-first->nstages][j]; } void free_iir_stage(iir_stage_t *gt){ int i; for(i=0;iavailst;i++) if (gt->coeff[i]) free(gt->coeff[i]); if (gt->coeff) free(gt->coeff); if (gt) free(gt); } /* center: frequency already normalized between 0 and 0.5 of sampling * bandwidth given in octaves between lower and upper -3dB point */ void calc_2polebandpass(iirf_t* iirf, iir_stage_t* gt, float fc, float bw, long sample_rate) { double omega, alpha, bandwidth, center, gain; int i; if ( (gt->fc==fc) && (gt->bw==bw) ) return; /*reset_iirf_t(iirf, gt, 1);*/ gt->fc = fc; gt->bw = bw; gt->nstages = 1; fc = CLAMP(fc, 0.0, (float)sample_rate*0.45f); /* if i go all the way up to 0.5 it doesn't work */ center = fc/(float)sample_rate; /* bandwidth is given in octaves */ bandwidth = log((fc+bw*0.5)/MAX(fc-bw*0.5,0.01))/log(2.0); omega = 2.0*M_PI*center; alpha = sin(omega)*sinh(log(2.0)/2.0*bandwidth*omega/sin(omega)); gt->coeff[0][0] = alpha; gt->coeff[0][1] = 0.0; gt->coeff[0][2] = -alpha; gt->coeff[0][3] = 2.0 * cos(omega); gt->coeff[0][4] = alpha - 1.0; gain = 1.0 + alpha; for(i=0;i<5;i++) gt->coeff[0][i]/=gain; } /* chebyshev calculates coefficients for a chebyshev filter * a,b coefficients * n number of poles(2,4,6,...) * m 0..lowpass, 1..highpass * fc cutoff frequency in percent of samplerate * pr percent ripple in passband (0.5 is optimal) * * Code from DSPGUIDE Chapter 20, pp341 * online version http://www.dspguide.com */ #define chebtype double int chebyshev_stage(iir_stage_t *gt, int n){ chebtype h,rp,ip,es,kx,vx,t,w,m,d,k,gain; chebtype x[3], y[2], a[3], b[2]; int res=-1,i; if (n>gt->availst) goto _error; if (gt->na+gt->nb!=5) goto _error; h=M_PI/((chebtype)gt->np*2.0)+n*M_PI/(chebtype)gt->np; rp=-cos(h); ip=sin(h); if(gt->ppr>0.0) { h=100.0/(100.0-gt->ppr); es=sqrt(h*h-1.0); h=1.0/es; vx=1.0/(chebtype)gt->np*log(h+sqrt(h*h+1.0)); kx=1.0/(chebtype)gt->np*log(h+sqrt(h*h-1.0)); kx=(exp(kx)+exp(-kx))/2.0; h=exp(vx); rp*=(h-1.0/h)*0.5/kx; ip*=(h+1.0/h)*0.5/kx; } t=2.0*tan(0.5); w=2.0*M_PI*gt->fc; m=rp*rp+ip*ip; d=4.0-4.0*rp*t+m*t*t; x[0]=t*t/d; x[1]=2*x[0]; x[2]=x[0]; y[0]=(8.0-2.0*m*t*t)/d; y[1]=(-4.0-4.0*rp*t-m*t*t)/d; if (gt->mode==IIR_STAGE_HIGHPASS) k=-cos(w*0.5+0.5)/cos(w*0.5-0.5); else k=sin(0.5-w*0.5)/sin(0.5+w*0.5); d=1+y[0]*k-y[1]*k*k; a[0]=(x[0]-x[1]*k+x[2]*k*k)/d; a[1]=(-2.0*x[0]*k+x[1]+x[1]*k*k-2.0*x[2]*k)/d; a[2]=(x[0]*k*k-x[1]*k+x[2])/d; b[0]=(2.0*k+y[0]+y[0]*k*k-2.0*y[1]*k)/d; b[1]=(-k*k-y[0]*k+y[1])/d; if(gt->mode==IIR_STAGE_HIGHPASS){ a[1]=-a[1]; b[0]=-b[0]; } if(gt->mode==IIR_STAGE_HIGHPASS) gain=(a[0]-a[1]+a[2])/(1.0+b[0]-b[1]); else gain=(a[0]+a[1]+a[2])/(1.0-b[0]-b[1]); for(i=0;i<3;i++) a[i]/=gain; gt->coeff[n][0]=(gliirt)(a[0]); gt->coeff[n][1]=(gliirt)(a[1]); gt->coeff[n][2]=(gliirt)(a[2]); gt->coeff[n][3]=(gliirt)(b[0]); gt->coeff[n][4]=(gliirt)(b[1]); res=0; _error: return res; } int chebyshev(iirf_t* iirf, iir_stage_t* gt, int n, int mode, float fc, float pr){ int i; if ( (gt->fc==fc) && (gt->np==n) && (gt->ppr=pr) ) return -1; if (n%2!=0) return -1; if ((mode!=IIR_STAGE_HIGHPASS) && (mode!=IIR_STAGE_LOWPASS)) return -1; fc=CLAMP(fc, 0.0001f, 0.4999f); if ((n/2)>gt->nstages) reset_iirf_t(iirf,gt,n/2); gt->ppr=pr; gt->fc=fc; gt->np=n; gt->nstages=n/2; for(i=0;i /* header file for IIR framework */ typedef struct iir_stage iir_stage_t; typedef struct iirf iirf_t; // defines this to float if your brave and you'll see what happens.. #define gliirt float #define CLAMP(x,mi,ma) ( (x < mi) ? mi : ( (x>ma) ? ma : x)) #ifndef MIN #define MIN(a, b) ((a)<(b)?(a):(b)) #endif #ifndef MAX #define MAX(a, b) ((a)>(b)?(a):(b)) #endif /* alloc zeroed mem, malloc/calloc syntax. */ #define ALLOC(type) (type *)calloc(1, sizeof(type)) #define ALLOCN(n, type) (n == 0 ? NULL : (type *)calloc((n), sizeof(type))) /* supported filter modes by lib */ #define IIR_STAGE_LOWPASS 0 #define IIR_STAGE_HIGHPASS 1 #define IIR_STAGE_BANDPASS 2 #define IIR_STAGE_BANDPASS_A 3 struct iir_stage { int np; /* Number of poles */ int mode; /* Filter mode low/high/bandpass... */ int availst; /* Number of allocated stages */ int nstages; /* Number of active filterstages */ int na; /* number of a coefficients per stage */ int nb; /* number of b coefficients per stage */ gliirt fc; /* cutoff/center frequency */ gliirt bw; /* bandwidth for bandpass */ gliirt ppr; /* percent of ripple in passband */ gliirt spr; /* percent of ripple in stopband */ gliirt **coeff; /* Actual filter coefficients */ }; struct iirf { gliirt *iring; gliirt *oring; int ipos; int opos; }; // allocate ringbuffers for iir calculation static inline iirf_t* init_iirf_t(iir_stage_t* gt) { int i; iirf_t* iirf=ALLOCN(gt->availst,iirf_t); for(i=0;iavailst;i++){ iirf[i].iring=ALLOCN(gt->na,gliirt); iirf[i].oring=ALLOCN(gt->nb+1,gliirt); iirf[i].ipos=0; iirf[i].opos=0; } return iirf; }; static inline void free_iirf_t(iirf_t* iirf, iir_stage_t* gt) { int i; for(i=0;iavailst;i++){ if (iirf[i].iring) free(iirf[i].iring); if (iirf[i].oring) free(iirf[i].oring); } if (iirf) free(iirf); }; static inline void reset_iirf_t(iirf_t* iirf, iir_stage_t* gt, int n) { int i; for(i=0;ina); memset(iirf[i].oring, 0, sizeof(gliirt)*(gt->nb+1)); } }; iir_stage_t *init_iir_stage(int mode, int nstages, int na, int nb); void combine_iir_stages(int mode, iir_stage_t* gt, iir_stage_t *first, iir_stage_t *second, int upf, int ups); void free_iir_stage(iir_stage_t *gt); void calc_2polebandpass(iirf_t* iirf, iir_stage_t* gt, float fc, float bw, long sample_rate); // for chebyshev we need iir stages with na=3, nb=2 // na are the forward coefficients // nb are the recursive coefficients int chebyshev(iirf_t* iirf, iir_stage_t* gt, int n, int mode, float fc, float pr); /* calculate butterworth coefficients * coefficient calculation taken from http://musicdsp.org/showArchiveComment.php?ArchiveID=38 * mode = 0 -> lowpass * mode !=0 -> highpass * * f -> cutoff frequency * r -> resonance */ static inline void butterworth_stage(iir_stage_t *gt, int mode, float f, float r, long sample_rate) { float c, a1, a2, a3, b1, b2; /* lowpass coefficients */ if (mode==0) { c = 1.0f / tan(M_PI * f / sample_rate ) ; a1 = 1.0f / ( 1.0f + r * c + c * c); a2 = 2.0f * a1; a3 = a1; b1 = -2.0f * ( 1.0f - c*c) * a1; b2 = -( 1.0f - r * c + c * c) * a1; } else { /* highpass coefficients */ c = tan(M_PI * f / sample_rate ); a1 = 1.0f / ( 1.0f + r * c + c * c); a2 = -2.0f*a1; a3 = a1; b1 = -2.0f * ( c*c - 1.0f) * a1; b2 = -( 1.0f - r * c + c * c) * a1; } gt->fc = f; gt->nstages = 1; gt->coeff[0][0] = a1; gt->coeff[0][1] = a2; gt->coeff[0][2] = a3; gt->coeff[0][3] = b1; gt->coeff[0][4] = b2; }; /* process function */ static inline void iir_process_buffer(iirf_t* iirf, iir_stage_t* gt, const float *indata, float *outdata, const long numSampsToProcess, int add) { unsigned long pos; int i,nb,nt,j,z,ipos,opos; if(gt->nstages==0) { if (indata==outdata) return; memcpy(outdata, indata, numSampsToProcess*sizeof(float)); return; } nb=gt->nb+1; nt=gt->na+gt->nb; ipos = iirf[0].ipos; opos = iirf[0].opos; if (add==0) for(pos=0; posnstages;i++){ if (i>0) iirf[i].iring[ipos]=iirf[i-1].oring[opos]; iirf[i].oring[opos]=0.0; /* y[n]=a0*x[n]+a1*x[n-1]+... */ z=ipos; for(j=0;jna;j++){ if(z==-1) z=gt->na-1; iirf[i].oring[opos]+=gt->coeff[i][j]*iirf[i].iring[z--]; } /* y[n]=y[n]+b1*y[n-1]+b2*y[n-2]+... */ z=opos-1; for(j=gt->na;jnb; iirf[i].oring[opos]+=gt->coeff[i][j]*iirf[i].oring[z--]; } } /* No matter if we process it in place */ outdata[pos]=(float)iirf[gt->nstages-1].oring[opos]; /* Adjust ringbuffers */ ipos++; if (ipos==gt->na) ipos=0; opos++; if (opos==nb) opos=0; } else for(pos=0; posnstages;i++){ if (i>0) iirf[i].iring[ipos]=iirf[i-1].oring[opos]; iirf[i].oring[opos]=0.0; /* y[n]=a0*x[n]+a1*x[n-1]+... */ z=ipos; for(j=0;jna;j++){ if(z==-1) z=gt->na-1; iirf[i].oring[opos]+=gt->coeff[i][j]*iirf[i].iring[z--]; } /* y[n]=y[n]+b1*y[n-1]+b2*y[n-2]+... */ z=opos-1; for(j=gt->na;jnb; iirf[i].oring[opos]+=gt->coeff[i][j]*iirf[i].oring[z--]; } } /* Now it matters if we process it in place */ outdata[pos]+=(float)iirf[gt->nstages-1].oring[opos]; /* Adjust ringbuffers */ ipos++; if (ipos==gt->na) ipos=0; opos++; if (opos==nb) opos=0; } iirf[0].ipos = ipos; iirf[0].opos = opos; }; /* process function for 3a and 2b coeffs */ static inline void iir_process_buffer_1s_5(iirf_t* iirf, iir_stage_t* gt, const float *indata, float *outdata, const long numSampsToProcess, int add) { unsigned long pos; if (add==0) for(pos=0; poscoeff[0][0]*iirf[0].iring[2] + gt->coeff[0][1]*iirf[0].iring[1] + gt->coeff[0][2]*iirf[0].iring[0] + gt->coeff[0][3]*iirf[0].oring[1] + gt->coeff[0][4]*iirf[0].oring[0]); outdata[pos]=(float)iirf[0].oring[2]; } else for(pos=0; poscoeff[0][0]*iirf[0].iring[2] + gt->coeff[0][1]*iirf[0].iring[1] + gt->coeff[0][2]*iirf[0].iring[0] + gt->coeff[0][3]*iirf[0].oring[1] + gt->coeff[0][4]*iirf[0].oring[0]); } }; /* process function */ static inline void iir_process_buffer_ns_5(iirf_t* iirf, iir_stage_t* gt, const float *indata, float *outdata, const long numSampsToProcess, int add) { unsigned long pos; int i; if (add==0) for(pos=0; poscoeff[0][0]*iirf[0].iring[2] + gt->coeff[0][1]*iirf[0].iring[1] + gt->coeff[0][2]*iirf[0].iring[0] + gt->coeff[0][3]*iirf[0].oring[1] + gt->coeff[0][4]*iirf[0].oring[0]); for(i=1;instages;i++){ iirf[i].iring[0]=iirf[i].iring[1]; iirf[i].iring[1]=iirf[i].iring[2]; iirf[i].iring[2]=iirf[i-1].oring[2]; iirf[i].oring[0]=iirf[i].oring[1]; iirf[i].oring[1]=iirf[i].oring[2]; /* y[n]=a0*x[n]+a1*x[n-1]+... */ /* y[n]=y[n]+b1*y[n-1]+b2*y[n-2]+... */ iirf[i].oring[2] = flush_to_zero(gt->coeff[i][0]*iirf[i].iring[2] + gt->coeff[i][1]*iirf[i].iring[1] + gt->coeff[i][2]*iirf[i].iring[0] + gt->coeff[i][3]*iirf[i].oring[1] + gt->coeff[i][4]*iirf[i].oring[0]); } /* No matter if we process it in place */ outdata[pos]=(float)iirf[gt->nstages-1].oring[2]; } else for(pos=0; poscoeff[0][0]*iirf[0].iring[2] + gt->coeff[0][1]*iirf[0].iring[1] + gt->coeff[0][2]*iirf[0].iring[0] + gt->coeff[0][3]*iirf[0].oring[1] + gt->coeff[0][4]*iirf[0].oring[0]); for(i=1;instages;i++){ iirf[i].iring[0]=iirf[i].iring[1]; iirf[i].iring[1]=iirf[i].iring[2]; iirf[i].iring[2]=iirf[i-1].oring[2]; iirf[i].oring[0]=iirf[i].oring[1]; iirf[i].oring[1]=iirf[i].oring[2]; /* y[n]=a0*x[n]+a1*x[n-1]+... */ /* y[n]=y[n]+b1*y[n-1]+b2*y[n-2]+... */ iirf[i].oring[2] = flush_to_zero( gt->coeff[i][0]*iirf[i].iring[2] + gt->coeff[i][1]*iirf[i].iring[1] + gt->coeff[i][2]*iirf[i].iring[0] + gt->coeff[i][3]*iirf[i].oring[1] + gt->coeff[i][4]*iirf[i].oring[0]); } /* No matter if we process it in place */ outdata[pos]+=(float)iirf[gt->nstages-1].oring[2]; } }; #endif ladspa-0.4.17/util/ls_filter.h000066400000000000000000000026001300111216200161410ustar00rootroot00000000000000#ifndef LS_FILTER_H #define LS_FILTER_H #include #define FILT_MIDI_2_FREQ(m) (m * 80.0f + 10.0f) #define FILT_MIDI_2_RESO(m) (m * 0.00787f) #define LSF_BW 0.9 #define LSF_FB 0.9f typedef struct { biquad filt; biquad bp_filt; bq_t scale; bq_t resonance; } ls_filt; typedef enum { LS_FILT_TYPE_LP = 0, LS_FILT_TYPE_BP = 1, LS_FILT_TYPE_HP = 2 } ls_filt_type; static inline void ls_filt_init(ls_filt *f) { biquad_init(&(f->filt)); biquad_init(&(f->bp_filt)); } static inline void ls_filt_setup(ls_filt *f, ls_filt_type t, bq_t cutoff, bq_t resonance, bq_t fs) { bp_set_params(&(f->bp_filt), cutoff, 0.7, fs); switch(t) { case LS_FILT_TYPE_LP: lp_set_params(&(f->filt), cutoff, 1.0 - resonance * LSF_BW, fs); break; case LS_FILT_TYPE_BP: bp_set_params(&(f->filt), cutoff, 1.0 - resonance * LSF_BW, fs); break; case LS_FILT_TYPE_HP: hp_set_params(&(f->filt), cutoff, 1.0 - resonance * LSF_BW, fs); break; default: /* oops, its not a known type - should really happen, but lets make the output silent just in case */ lp_set_params(&(f->filt), 1.0, 1.0, fs); break; } f->scale = 1.0f - resonance * 0.7f; f->resonance = resonance; } static inline bq_t ls_filt_run(ls_filt *f, bq_t in) { return biquad_run(&(f->filt), in) * f->scale + biquad_run_fb(&(f->bp_filt), in, f->resonance * LSF_FB) * f->resonance; } #endif ladspa-0.4.17/util/pitchscale.c000066400000000000000000000243071300111216200163000ustar00rootroot00000000000000/**************************************************************************** * * NAME: smsPitchScale.cp * VERSION: 1.01 * HOME URL: http://www.dspdimension.com * KNOWN BUGS: none * * SYNOPSIS: Routine for doing pitch scaling while maintaining * duration using the Short Time Fourier Transform. * * DESCRIPTION: The routine takes a pitchScale factor value which is between 0.5 * (one octave down) and 2. (one octave up). A value of exactly 1 does not change * the pitch. numSampsToProcess tells the routine how many samples in indata[0... * numSampsToProcess-1] should be pitch scaled and moved to outdata[0 ... * numSampsToProcess-1]. The two buffers can be identical (ie. it can process the * data in-place). fftFrameLength defines the FFT frame size used for the * processing. Typical values are 1024, 2048 and 4096. It may be any value <= * MAX_FFT_FRAME_LENGTH but it MUST be a power of 2. osamp is the STFT * oversampling factor which also determines the overlap between adjacent STFT * frames. It should at least be 4 for moderate scaling ratios. A value of 32 is * recommended for best quality. sampleRate takes the sample rate for the signal * in unit Hz, ie. 44100 for 44.1 kHz audio. The data passed to the routine in * indata[] should be in the range [-1.0, 1.0), which is also the output range * for the data. * * COPYRIGHT 1999 Stephan M. Sprenger * * The Wide Open License (WOL) * * Permission to use, copy, modify, distribute and sell this software and its * documentation for any purpose is hereby granted without fee, provided that * the above copyright notice and this license appear in all source copies. * THIS SOFTWARE IS PROVIDED "AS IS" WITHOUT EXPRESS OR IMPLIED WARRANTY OF * ANY KIND. See http://www.dspguru.com/wol.htm for more information. * *****************************************************************************/ #include #include "../config.h" #include #include "pitchscale.h" static float ps_in[MAX_FRAME_LENGTH*2], ps_out[MAX_FRAME_LENGTH*2]; static fft_plan aplan = NULL, splan = NULL; void pitch_scale(sbuffers *buffers, const double pitchScale, const long fftFrameLength, const long osamp, const long numSampsToProcess, const double sampleRate, const float *indata, float *outdata, const int adding, const float gain) { /* Routine smsPitchScale(). See top of file for explanation Purpose: doing pitch scaling while maintaining duration using the Short Time Fourier Transform. Author: (c)1999 Stephan M. Sprenger */ double magn, phase, tmp; double freqPerBin, expct; long i,k, qpd, index, inFifoLatency, stepSize, fftFrameSize2; double phaseArr[MAX_FRAME_LENGTH]; float ri[16]; float *gInFIFO = buffers->gInFIFO; float *gOutFIFO = buffers->gOutFIFO; float *gLastPhase = buffers->gLastPhase; float *gSumPhase = buffers->gSumPhase; float *gOutputAccum = buffers->gOutputAccum; float *gAnaFreq = buffers->gAnaFreq; float *gAnaMagn = buffers->gAnaMagn; float *gSynFreq = buffers->gSynFreq; float *gSynMagn = buffers->gSynMagn; float *gWindow = buffers->gWindow; long gRover = buffers->gRover; if (aplan == NULL) { int i; for (i=0; i= fftFrameLength) { gRover = inFifoLatency; /* do windowing and store */ for (k = 0; k < fftFrameLength; k++) { ps_in[k] = gInFIFO[k] * gWindow[k]; } /* As long as we have not yet collected enough data just read in */ /* ***************** ANALYSIS ******************* */ /* do transform */ #ifdef FFTW3 fftwf_execute(aplan); #else rfftw_one(aplan, ps_in, ps_out); #endif /* this is the analysis step */ /* Hard math first, we can 3dnow this */ for (k = 1; k <= fftFrameSize2; k+=8) { float *mb = &gAnaMagn[k]; ri[0] = ps_out[k]; ri[2] = ps_out[k+1]; ri[4] = ps_out[k+2]; ri[6] = ps_out[k+3]; ri[8] = ps_out[k+4]; ri[10] = ps_out[k+5]; ri[12] = ps_out[k+6]; ri[14] = ps_out[k+7]; ri[1] = ps_out[fftFrameLength - k]; ri[3] = ps_out[fftFrameLength - (k + 1)]; ri[5] = ps_out[fftFrameLength - (k + 2)]; ri[7] = ps_out[fftFrameLength - (k + 3)]; ri[9] = ps_out[fftFrameLength - (k + 4)]; ri[11] = ps_out[fftFrameLength - (k + 5)]; ri[13] = ps_out[fftFrameLength - (k + 6)]; ri[15] = ps_out[fftFrameLength - (k + 7)]; /* compute magnitude and phase. */ #ifdef ACCEL_3DNOW #warning Using processor specific 3DNow! accelerations __asm__ __volatile__ ( " \n\ femms \n\ movq (%%eax), %%mm0 \n\ movq 8(%%eax), %%mm1 \n\ movq 16(%%eax), %%mm2 \n\ movq 24(%%eax), %%mm3 \n\ movq 32(%%eax), %%mm4 \n\ movq 40(%%eax), %%mm5 \n\ movq 48(%%eax), %%mm6 \n\ movq 56(%%eax), %%mm7 \n\ # do the squares and add \n\ pfmul %%mm0, %%mm0 \n\ pfacc %%mm0, %%mm0 \n\ pfmul %%mm1, %%mm1 \n\ pfacc %%mm1, %%mm1 \n\ pfmul %%mm2, %%mm2 \n\ pfacc %%mm2, %%mm2 \n\ pfmul %%mm3, %%mm3 \n\ pfacc %%mm3, %%mm3 \n\ pfmul %%mm4, %%mm4 \n\ pfacc %%mm4, %%mm4 \n\ pfmul %%mm5, %%mm5 \n\ pfacc %%mm5, %%mm5 \n\ pfmul %%mm6, %%mm6 \n\ pfacc %%mm6, %%mm6 \n\ pfmul %%mm7, %%mm7 \n\ pfacc %%mm7, %%mm7 \n\ # Recip square roots. \n\ pfrsqrt %%mm0, %%mm0 \n\ pfrsqrt %%mm1, %%mm1 \n\ pfrsqrt %%mm2, %%mm2 \n\ pfrsqrt %%mm3, %%mm3 \n\ pfrsqrt %%mm4, %%mm4 \n\ pfrsqrt %%mm5, %%mm5 \n\ pfrsqrt %%mm6, %%mm6 \n\ pfrsqrt %%mm7, %%mm7 \n\ pfrcp %%mm0, %%mm0 \n\ pfrcp %%mm1, %%mm1 \n\ pfrcp %%mm2, %%mm2 \n\ pfrcp %%mm3, %%mm3 \n\ pfrcp %%mm4, %%mm4 \n\ pfrcp %%mm5, %%mm5 \n\ pfrcp %%mm6, %%mm6 \n\ pfrcp %%mm7, %%mm7 \n\ # ship em out \n\ movd %%mm0, (%%edx) \n\ movd %%mm1, 4(%%edx) \n\ movd %%mm2, 8(%%edx) \n\ movd %%mm3, 12(%%edx) \n\ movd %%mm4, 16(%%edx) \n\ movd %%mm5, 20(%%edx) \n\ movd %%mm6, 24(%%edx) \n\ movd %%mm7, 28(%%edx) \n\ femms \n\ " : : "a" (ri), "d" (mb) : "memory"); #else mb[0] = sqrt(ri[0]*ri[0]+ ri[1]*ri[1]); mb[1] = sqrt(ri[2]*ri[2] + ri[3]*ri[3]); mb[2] = sqrt(ri[4]*ri[4] + ri[5]*ri[5]); mb[3] = sqrt(ri[6]*ri[6] + ri[7]*ri[7]); #endif phaseArr[k] = atan2(ri[1], ri[0]); phaseArr[k+1] = atan2(ri[3], ri[2]); phaseArr[k+2] = atan2(ri[5], ri[4]); phaseArr[k+3] = atan2(ri[7], ri[6]); phaseArr[k+4] = atan2(ri[9], ri[8]); phaseArr[k+5] = atan2(ri[11], ri[10]); phaseArr[k+6] = atan2(ri[13], ri[12]); phaseArr[k+7] = atan2(ri[15], ri[14]); } for (k = 1; k <= fftFrameSize2; k++) { /* compute phase difference */ tmp = phaseArr[k] - gLastPhase[k]; gLastPhase[k] = phaseArr[k]; /* subtract expected phase difference */ tmp -= (double)k*expct; /* map delta phase into +/- Pi interval */ qpd = tmp/M_PI; if (qpd >= 0) qpd += qpd&1; else qpd -= qpd&1; tmp -= M_PI*(double)qpd; /* get deviation from bin frequency from the +/- Pi interval */ tmp = osamp*tmp/(2.0f*M_PI); /* compute the k-th partials' true frequency */ tmp = (double)k*freqPerBin + tmp*freqPerBin; /* store magnitude and true frequency in analysis arrays */ gAnaFreq[k] = tmp; } /* ***************** PROCESSING ******************* */ /* this does the actual pitch scaling */ memset(gSynMagn, 0, fftFrameLength*sizeof(float)); memset(gSynFreq, 0, fftFrameLength*sizeof(float)); for (k = 0; k <= fftFrameSize2; k++) { index = k/pitchScale; if (index <= fftFrameSize2) { /* new bin overrides existing if magnitude is higher */ if (gAnaMagn[index] > gSynMagn[k]) { gSynMagn[k] = gAnaMagn[index]; gSynFreq[k] = gAnaFreq[index] * pitchScale; } /* fill empty bins with nearest neighbour */ if ((gSynFreq[k] == 0.) && (k > 0)) { gSynFreq[k] = gSynFreq[k-1]; gSynMagn[k] = gSynMagn[k-1]; } } } /* ***************** SYNTHESIS ******************* */ /* this is the synthesis step */ for (k = 1; k <= fftFrameSize2; k++) { /* get magnitude and true frequency from synthesis arrays */ magn = gSynMagn[k]; tmp = gSynFreq[k]; /* subtract bin mid frequency */ tmp -= (double)k*freqPerBin; /* get bin deviation from freq deviation */ tmp /= freqPerBin; /* take osamp into account */ tmp = 2.*M_PI*tmp/osamp; /* add the overlap phase advance back in */ tmp += (double)k*expct; /* accumulate delta phase to get bin phase */ gSumPhase[k] += tmp; phase = gSumPhase[k]; ps_in[k] = magn*cosf(phase); ps_in[fftFrameLength - k] = magn*sinf(phase); } /* do inverse transform */ #ifdef FFTW3 fftwf_execute(splan); #else rfftw_one(splan, ps_in, ps_out); #endif /* do windowing and add to output accumulator */ for(k=0; k < fftFrameLength; k++) { gOutputAccum[k] += 2.0f*gWindow[k]*ps_out[k]/(fftFrameSize2*osamp); } for (k = 0; k < stepSize; k++) gOutFIFO[k] = gOutputAccum[k]; /* shift accumulator */ memmove(gOutputAccum, gOutputAccum+stepSize, fftFrameLength*sizeof(float)); /* move input FIFO */ for (k = 0; k < inFifoLatency; k++) gInFIFO[k] = gInFIFO[k+stepSize]; } } buffers->gRover = gRover; } ladspa-0.4.17/util/pitchscale.h000066400000000000000000000015021300111216200162750ustar00rootroot00000000000000#ifndef PITCHSCALE_H #define PITCHSCALE_H #include #ifdef FFTW3 #include typedef fftwf_plan fft_plan; typedef float fftw_real; #else #ifdef EXPLICIT_S #include #else #include #endif //EXPLICIT_S typedef rfftw_plan fft_plan; #endif //FFTW3 typedef struct { float *gInFIFO; float *gOutFIFO; float *gLastPhase; float *gSumPhase; float *gOutputAccum; float *gAnaFreq; float *gAnaMagn; float *gSynFreq; float *gSynMagn; float *gWindow; long gRover; } sbuffers; #define MAX_FRAME_LENGTH 4096 #define true 1 #define false 0 void pitch_scale(sbuffers *buffers, const double pitchScale, const long fftFrameLength, const long osamp, const long numSampsToProcess, const double sampleRate, const float *indata, float *outdata, const int adding, const float gain); #endif ladspa-0.4.17/util/rms.c000066400000000000000000000005021300111216200147510ustar00rootroot00000000000000#include #include "rms.h" rms_env *rms_env_new() { rms_env *new = (rms_env *)calloc(1, sizeof(rms_env)); return new; } void rms_env_reset(rms_env *r) { unsigned int i; for (i=0; ibuffer[i] = 0.0f; } r->pos = 0; r->sum = 0.0f; } void rms_env_free(rms_env *r) { free(r); } ladspa-0.4.17/util/rms.h000066400000000000000000000011341300111216200147600ustar00rootroot00000000000000#ifndef _RMS_H #define _RMS_H #include #define RMS_BUF_SIZE 64 typedef struct { float buffer[RMS_BUF_SIZE]; unsigned int pos; float sum; } rms_env; rms_env *rms_env_new(); static inline float rms_env_process(rms_env *r, float x); void rms_env_reset(rms_env *r); void rms_env_free(rms_env *r); inline static float rms_env_process(rms_env *r, const float x) { r->sum -= r->buffer[r->pos]; r->sum += x; if (r->sum < 1.0e-6) { r->sum = 0.0f; } r->buffer[r->pos] = x; r->pos = (r->pos + 1) & (RMS_BUF_SIZE - 1); return sqrt(r->sum / (float)RMS_BUF_SIZE); } #endif ladspa-0.4.17/util/waveguide_nl.h000066400000000000000000000061001300111216200166260ustar00rootroot00000000000000#ifndef WAVEGUIDE_NL_H #define WAVEGUIDE_NL_H #include #include typedef struct { int size; float *buffer[2]; int ptr; int delay; float fc; float lp[2]; float a1a; float a1b; float zm1[2]; } waveguide_nl; waveguide_nl *waveguide_nl_new(int size, float fc, float da, float db) { waveguide_nl *wg = malloc(sizeof(waveguide_nl)); wg->size = size; wg->delay = size; wg->buffer[0] = calloc(size, sizeof(float)); wg->buffer[1] = calloc(size, sizeof(float)); wg->ptr = 0; wg->fc = fc; wg->lp[0] = 0.0f; wg->lp[1] = 0.0f; wg->zm1[0] = 0.0f; wg->zm1[1] = 0.0f; wg->a1a = (1.0f - da) / (1.0f + da); wg->a1b = (1.0f - db) / (1.0f + db); return wg; } inline void waveguide_nl_reset(waveguide_nl *wg) { memset(wg->buffer[0], 0, wg->size * sizeof(float)); memset(wg->buffer[1], 0, wg->size * sizeof(float)); wg->lp[0] = 0.0f; wg->lp[1] = 0.0f; wg->zm1[0] = 0.0f; wg->zm1[1] = 0.0f; } inline void waveguide_nl_free(waveguide_nl *wg) { if (!wg) { return; } free(wg->buffer[0]); free(wg->buffer[1]); free(wg); } inline void waveguide_nl_set_delay(waveguide_nl *wg, int delay) { if (delay > wg->size) { wg->delay = wg->size; } else if (delay < 1) { wg->delay = 1; } else { wg->delay = delay; } } inline void waveguide_nl_set_fc(waveguide_nl *wg, float fc) { wg->fc = fc; } inline void waveguide_nl_set_ap(waveguide_nl *wg, float da, float db) { wg->a1a = (1.0f - da) / (1.0f + da); wg->a1b = (1.0f - db) / (1.0f + db); } inline void waveguide_nl_process_lin(waveguide_nl *wg, float in0, float in1, float *out0, float *out1) { float tmp; *out0 = wg->buffer[0][(wg->ptr + wg->delay) % wg->size]; *out0 = wg->lp[0] * (wg->fc - 1.0f) + wg->fc * *out0; wg->lp[0] = *out0; tmp = *out0 * -(wg->a1a) + wg->zm1[0]; wg->zm1[0] = tmp * wg->a1a + *out0; *out0 = tmp; *out1 = wg->buffer[1][(wg->ptr + wg->delay) % wg->size]; *out1 = wg->lp[1] * (wg->fc - 1.0f) + wg->fc * *out1; wg->lp[1] = *out1; tmp = *out1 * -(wg->a1a) + wg->zm1[1]; wg->zm1[1] = tmp * wg->a1a + *out1; *out1 = tmp; wg->buffer[0][wg->ptr] = in0; wg->buffer[1][wg->ptr] = in1; wg->ptr--; if (wg->ptr < 0) { wg->ptr += wg->size; } } inline void waveguide_nl_process(waveguide_nl *wg, float in0, float in1, float *out0, float *out1) { float tmp; float a1; float b; *out0 = wg->buffer[0][(wg->ptr + wg->delay) % wg->size]; *out0 = wg->lp[0] * (wg->fc - 1.0f) + wg->fc * *out0; wg->lp[0] = *out0; b = (*out0 + 1.0) * 6.0f; if (b > 1.0f) { b = 1.0f; } if (b < 0.0f) { b = 0.0f; } a1 = b * wg->a1a + (1.0f - b) * wg->a1b; tmp = *out0 * -a1 + wg->zm1[0]; wg->zm1[0] = tmp * a1 + *out0; *out0 = tmp; *out1 = wg->buffer[1][(wg->ptr + wg->delay) % wg->size]; *out1 = wg->lp[1] * (wg->fc - 1.0f) + wg->fc * *out1; wg->lp[1] = *out1; b = (*out1 + 1.0) * 6.0f; if (b > 1.0f) { b = 1.0f; } if (b < 0.0f) { b = 0.0f; } a1 = b * wg->a1a + (1.0f - b) * wg->a1b; tmp = *out1 * -a1 + wg->zm1[1]; wg->zm1[1] = tmp * a1 + *out1; *out1 = tmp; wg->buffer[0][wg->ptr] = in0; wg->buffer[1][wg->ptr] = in1; wg->ptr--; if (wg->ptr < 0) { wg->ptr += wg->size; } } #endif ladspa-0.4.17/valve_1209.xml000066400000000000000000000047261300111216200153550ustar00rootroot00000000000000 Valve saturation

A model of valve (tube) distortion, lacking some of the harmonics you would get in a real tube amp, but sounds good nonetheless.

Taken from Ragnar Bendiksen's thesis: \url{https://web.archive.org/web/20050212034404/http://www.notam02.no/~rbendiks/Diplom/Innhold.html}.

itm1 = itm1; plugin_data->otm1 = otm1; ]]> Distortion level

How hard the signal is driven against the limit of the amplifier.

Distortion character

The hardness of the sound, low for soft, high for hard.

Input Output
ladspa-0.4.17/valve_rect_1405.xml000066400000000000000000000064461300111216200163710ustar00rootroot00000000000000 Valve rectifier avg); ]]> lp1tm1) { lp1tm1 = x; } else { lp1tm1 = 0.9999f * lp1tm1 + 0.0001f * x; } avgs -= avg[apos]; avgs += lp1tm1; avg[apos++] = lp1tm1; apos %= avg_size; lp2tm1 = 0.999f * lp2tm1 + avgs*avg_sizer * 0.001f; q = lp1tm1 * sag - lp2tm1 * 1.02f - 1.0f; if (q > -0.01f) { q = -0.01f; } else if (q < -1.0f) { q = -1.0f; } if (input[pos] == q) { fx = 1.0f / dist + q / (1.0f - f_exp(dist * q)); } else { fx = (input[pos] - q) / (1.0f - f_exp(-dist * (input[pos] - q))) + q / (1.0f - f_exp(dist * q)); } buffer_write(output[pos], fx); } plugin_data->lp1tm1 = lp1tm1; plugin_data->lp2tm1 = lp2tm1; plugin_data->avgs = avgs; plugin_data->apos = apos; ]]> Sag level

The level of power supply sag that will be caused by attacks.

Distortion

How harsh the distortion caused by the sag will be.

Input Output
ladspa-0.4.17/vocoder_1337.xml000066400000000000000000000257141300111216200157030ustar00rootroot00000000000000 high1[i] = sample - bands->f[i] * bands->mid1[i] - bands->low1[i]; bands->mid1[i] += bands->high1[i] * bands->c[i]; bands->low1[i] += bands->mid1[i]; bands->high2[i] = bands->low1[i] - bands->f[i] * bands->mid2[i] - bands->low2[i]; bands->mid2[i] += bands->high2[i] * bands->c[i]; bands->low2[i] += bands->mid2[i]; bands->y[i] = bands->high2[i] * bands->att[i]; } } ]]> Vocoder

ctrl_band_levels); ]]> ctrl_band_levels[0] = band1; plugin_data->ctrl_band_levels[1] = band2; plugin_data->ctrl_band_levels[2] = band3; plugin_data->ctrl_band_levels[3] = band4; plugin_data->ctrl_band_levels[4] = band5; plugin_data->ctrl_band_levels[5] = band6; plugin_data->ctrl_band_levels[6] = band7; plugin_data->ctrl_band_levels[7] = band8; plugin_data->ctrl_band_levels[8] = band9; plugin_data->ctrl_band_levels[9] = band10; plugin_data->ctrl_band_levels[10] = band11; plugin_data->ctrl_band_levels[11] = band12; plugin_data->ctrl_band_levels[12] = band13; plugin_data->ctrl_band_levels[13] = band14; plugin_data->ctrl_band_levels[14] = band15; plugin_data->ctrl_band_levels[15] = band16; numbands = (int)(*plugin_data->ctrl_band_count); if (numbands < 1 || numbands > MAX_BANDS) numbands = MAX_BANDS; /* initialize bandpass information if num_bands control has changed, or on first run */ if (plugin_data->num_bands != numbands) { plugin_data->num_bands = numbands; memset(&plugin_data->bands_formant, 0, sizeof(struct bandpasses)); for(i=0; i < numbands; i++) { a = 16.0 * i/(double)numbands; // stretch existing bands if (a < 4.0) plugin_data->bands_formant.freq[i] = 150 + 420 * a / 4.0; else plugin_data->bands_formant.freq[i] = 600 * pow (1.23, a - 4.0); c = plugin_data->bands_formant.freq[i] * 2 * M_PI / plugin_data->sample_rate; plugin_data->bands_formant.c[i] = c * c; plugin_data->bands_formant.f[i] = 0.4/c; plugin_data->bands_formant.att[i] = 1/(6.0 + ((exp (plugin_data->bands_formant.freq[i] / plugin_data->sample_rate) - 1) * 10)); plugin_data->bands_out.decay[i] = decay_table[(int)a]; plugin_data->bands_out.level[i] = CLAMP (plugin_data->ctrl_band_levels[i], 0.0, 1.0); } memcpy(&plugin_data->bands_carrier, &plugin_data->bands_formant, sizeof(struct bandpasses)); } else /* get current values of band level controls */ { for (i = 0; i < numbands; i++) plugin_data->bands_out.level[i] = CLAMP (plugin_data->ctrl_band_levels[i], 0.0, 1.0); } for (i=0; i < sample_count; i++) { doBandpasses (&(plugin_data->bands_carrier), plugin_data->port_carrier[i], plugin_data->num_bands); doBandpasses (&(plugin_data->bands_formant), plugin_data->port_formant[i], plugin_data->num_bands); LADSPA_Data sample = 0.0; for (j=0; j < numbands; j++) { plugin_data->bands_out.oldval[j] = plugin_data->bands_out.oldval[j] + (fabs (plugin_data->bands_formant.y[j]) - plugin_data->bands_out.oldval[j]) * plugin_data->bands_out.decay[j]; x = plugin_data->bands_carrier.y[j] * plugin_data->bands_out.oldval[j]; sample += x * plugin_data->bands_out.level[j]; } /* treat paning + main volume */ pan = (int)(*plugin_data->ctrl_pan); fl = fr = 1.0f; if (pan != 0) { /* no paning, don't compute useless values */ if (pan > 0) { /* reduce left */ fl = (100.-pan)/100.; } else { fr = (100.+pan)/100.; } } /* apply volume and paning */ plugin_data->port_output[i] = sample * plugin_data->main_vol * fl; plugin_data->port_output2[i] = sample * plugin_data->main_vol * fr; } // Suppress unused warnings (void)(sample_rate); (void)(num_bands); (void)(main_vol); (void)(bands_formant); (void)(bands_carrier); (void)(bands_out); (void)(ctrl_band_levels); (void)(port_formant); (void)(port_carrier); (void)(port_output); (void)(port_output2); (void)(ctrl_band_count); (void)(ctrl_pan); (void)(run_adding_gain); ]]> Formant-in

Signal to use as formant, such as a human voice.

Carrier-in

Signal to use as carrier. Use a saw wave, not a sine wave, as carrier should contain a broad wave spectrum, with several overtones.

Output-out

Left output.

Output2-out

Right output.

Number of bands

Number of frequency bands to divide the signals. Use as an equalizer.

Left/Right

Pan between left and right outputs.

Band 1 Level Band 2 Level Band 3 Level Band 4 Level Band 5 Level Band 6 Level Band 7 Level Band 8 Level Band 9 Level Band 10 Level Band 11 Level Band 12 Level Band 13 Level Band 14 Level Band 15 Level Band 16 Level
ladspa-0.4.17/vynil_1905.xml000066400000000000000000000207511300111216200154000ustar00rootroot00000000000000 #include #include "ladspa-util.h" #include "util/biquad.h" #define BUF_LEN 0.1 #define CLICK_BUF_SIZE 4096 #define df(x) ((sinf(x) + 1.0f) * 0.5f) inline static float noise(); inline static float noise() { static unsigned int randSeed = 23; randSeed = (randSeed * 196314165) + 907633515; return randSeed / (float)INT_MAX - 1.0f; } ]]> VyNil (Vinyl Effect) 1.0f) { phi -= 1.0f; } if ((unsigned int)rand() < click_prob) { click_buffer_omega.all = ((rand() >> 6) + 1000) * rpm; click_gain = noise_amp * 5.0f * noise(); } } deflec = deflec * 0.1f + deflec_target * 0.9f; /* matrix into mid_side representation (this is roughly what stereo * LPs do) */ buffer_m[buffer_pos] = in_l[pos] + in_r[pos]; buffer_s[buffer_pos] = in_l[pos] - in_r[pos]; /* cacluate the effects of the surface warping */ ofs = fs * 0.009f * deflec; o1 = f_round(floorf(ofs)); o2 = f_round(ceilf(ofs)); ofs -= o1; src_m = LIN_INTERP(ofs, buffer_m[(buffer_pos - o1 - 1) & buffer_mask], buffer_m[(buffer_pos - o2 - 1) & buffer_mask]); src_s = LIN_INTERP(ofs, buffer_s[(buffer_pos - o1 - 1) & buffer_mask], buffer_s[(buffer_pos - o2 - 1) & buffer_mask]); src_m = biquad_run(lowp_m, src_m + click_buffer[click_buffer_pos.part.in & (CLICK_BUF_SIZE - 1)] * click_gain); /* waveshaper */ src_m = LIN_INTERP(age, src_m, sinf(src_m * wrap_gain + wrap_bias)); /* output highpass */ src_m = biquad_run(highp, src_m) + biquad_run(noise_filt, noise()) * noise_amp + click_buffer[click_buffer_pos.part.in & (CLICK_BUF_SIZE - 1)] * click_gain * 0.5f; /* stereo seperation filter */ src_s = biquad_run(lowp_s, src_s) * stereo; buffer_write(out_l[pos], (src_s + src_m) * 0.5f); buffer_write(out_r[pos], (src_m - src_s) * 0.5f); /* roll buffer indexes */ buffer_pos = (buffer_pos + 1) & buffer_mask; click_buffer_pos.all += click_buffer_omega.all; if (click_buffer_pos.part.in >= CLICK_BUF_SIZE) { click_buffer_pos.all = 0; click_buffer_omega.all = 0; } sample_cnt++; } plugin_data->buffer_pos = buffer_pos; plugin_data->click_buffer_pos = click_buffer_pos; plugin_data->click_buffer_omega = click_buffer_omega; plugin_data->click_gain = click_gain; plugin_data->sample_cnt = sample_cnt; plugin_data->def_target = deflec_target; plugin_data->def = deflec; plugin_data->phi = phi; ]]> buffer_m); free(plugin_data->buffer_s); free(plugin_data->click_buffer); free(plugin_data->highp); free(plugin_data->lowp_m); free(plugin_data->lowp_s); free(plugin_data->noise_filt); ]]> Year

The date of the recording/playback equipment to be simulated.

RPM

The rotational speed of the platter.

Surface warping

The degree of variation in height of the record surface.

Crackle

The number of scratches on the record surface.

Wear

The amount of wear on the grooves.

Input L Input R Output L Output R
ladspa-0.4.17/wave_terrain_1412.xml000066400000000000000000000024311300111216200167110ustar00rootroot00000000000000 Wave Terrain Oscillator

A Wave Terrain oscillator, taken from Curtis Roads' example in {\em The Computer Music Tutorial}.

Inputs x and y move the cursor around on a 2D landscape "wavetable" that is used to generate the output. The function used is z = (x - y) * (x - 1) * (x + 1) * (y - 1) * (y + 1).

x y z
ladspa-0.4.17/xfade_1915.xml000066400000000000000000000066231300111216200153310ustar00rootroot00000000000000 #include "ladspa-util.h" Crossfade Crossfade

Controls the degree to which the inputs are mixed into the output. A value of -1 means that the output is just the A input, and a value of 1.0 means that it is just the B input.

Input A left Input A right Input B left Input B right Output left Output right
Crossfade (4 outs) Crossfade

Controls the degree to which the inputs are mixed into the output. A value of -1 means that the output is just the A input, and a value of 1.0 means that it is just the B input.

Input A left Input A right Input B left Input B right Output A left Output A right Output B left Output B right
ladspa-0.4.17/zm1_1428.xml000066400000000000000000000022061300111216200147410ustar00rootroot00000000000000 z-1

A plugin that implements the $z^{-1}$ function (a single sample delay).

xm1 = xm1; ]]> Input Output