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e2b7c4dea3
read the header from the .au file and do a sanity check pass only the data to the audio device call flush() so that program does not exit until playback is complete call all the other methods to verify that they work minimally call setparameters with a bunch of bugs arguments linuxaudiodev.c: use explicit O_WRONLY and O_RDONLY instead of 1 and 0 add a string name to each of the entries in audio_types[] add AFMT_A_LAW to the list of known formats add x_mode attribute to lad object, stores imode from open call test ioctl return value as == -1, not < 0 in read() method, resize string before return add getptr() method, that calls does ioctl on GETIPTR or GETOPTR depending on x_mode in setparameters() method, do better error checking and raise ValueErrors; also use ioctl calls recommended by Open Sound System Programmer's Guido (www.opensound.com) use PyModule_AddXXX to define names in module
491 lines
12 KiB
C
491 lines
12 KiB
C
/* Hey Emacs, this is -*-C-*-
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******************************************************************************
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* linuxaudiodev.c -- Linux audio device for python.
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*
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* Author : Peter Bosch
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* Created On : Thu Mar 2 21:10:33 2000
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* Last Modified By: Peter Bosch
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* Last Modified On: Fri Mar 24 11:27:00 2000
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* Status : Unknown, Use with caution!
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*
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* Unless other notices are present in any part of this file
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* explicitly claiming copyrights for other people and/or
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* organizations, the contents of this file is fully copyright
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* (C) 2000 Peter Bosch, all rights reserved.
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******************************************************************************
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*/
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#include "Python.h"
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#include "structmember.h"
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#ifdef HAVE_UNISTD_H
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#include <unistd.h>
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#endif
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#ifdef HAVE_FCNTL_H
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#include <fcntl.h>
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#else
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#define O_RDONLY 00
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#define O_WRONLY 01
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#endif
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#include <sys/ioctl.h>
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#if defined(linux)
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#include <linux/soundcard.h>
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typedef unsigned long uint32_t;
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#elif defined(__FreeBSD__)
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#include <machine/soundcard.h>
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#ifndef SNDCTL_DSP_CHANNELS
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#define SNDCTL_DSP_CHANNELS SOUND_PCM_WRITE_CHANNELS
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#endif
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#endif
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typedef struct {
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PyObject_HEAD;
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int x_fd; /* The open file */
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int x_mode; /* file mode */
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int x_icount; /* Input count */
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int x_ocount; /* Output count */
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uint32_t x_afmts; /* Audio formats supported by hardware*/
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} lad_t;
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/* XXX several format defined in soundcard.h are not supported,
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including _NE (native endian) options and S32 options
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*/
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static struct {
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int a_bps;
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uint32_t a_fmt;
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char *a_name;
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} audio_types[] = {
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{ 8, AFMT_MU_LAW, "Logarithmic mu-law audio" },
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{ 8, AFMT_A_LAW, "Logarithmic A-law audio" },
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{ 8, AFMT_U8, "Standard unsigned 8-bit audio" },
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{ 8, AFMT_S8, "Standard signed 8-bit audio" },
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{ 16, AFMT_U16_BE, "Big-endian 16-bit unsigned format" },
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{ 16, AFMT_U16_LE, "Little-endian 16-bit unsigned format" },
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{ 16, AFMT_S16_BE, "Big-endian 16-bit signed format" },
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{ 16, AFMT_S16_LE, "Little-endian 16-bit signed format" },
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};
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static int n_audio_types = sizeof(audio_types) / sizeof(audio_types[0]);
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staticforward PyTypeObject Ladtype;
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static PyObject *LinuxAudioError;
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static lad_t *
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newladobject(PyObject *arg)
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{
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lad_t *xp;
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int fd, afmts, imode;
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char *mode;
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char *basedev;
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/* Check arg for r/w/rw */
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if (!PyArg_ParseTuple(arg, "s:open", &mode)) return NULL;
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if (strcmp(mode, "r") == 0)
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imode = O_RDONLY;
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else if (strcmp(mode, "w") == 0)
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imode = O_WRONLY;
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else {
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PyErr_SetString(LinuxAudioError, "Mode should be one of 'r', or 'w'");
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return NULL;
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}
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/* Open the correct device. The base device name comes from the
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* AUDIODEV environment variable first, then /dev/dsp. The
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* control device tacks "ctl" onto the base device name.
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*
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* Note that the only difference between /dev/audio and /dev/dsp
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* is that the former uses logarithmic mu-law encoding and the
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* latter uses 8-bit unsigned encoding.
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*/
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basedev = getenv("AUDIODEV");
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if (!basedev)
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basedev = "/dev/dsp";
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if ((fd = open(basedev, imode)) == -1) {
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PyErr_SetFromErrnoWithFilename(LinuxAudioError, basedev);
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return NULL;
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}
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if (imode == O_WRONLY && ioctl(fd, SNDCTL_DSP_NONBLOCK, NULL) == -1) {
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PyErr_SetFromErrnoWithFilename(LinuxAudioError, basedev);
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return NULL;
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}
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if (ioctl(fd, SNDCTL_DSP_GETFMTS, &afmts) == -1) {
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PyErr_SetFromErrnoWithFilename(LinuxAudioError, basedev);
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return NULL;
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}
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/* Create and initialize the object */
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if ((xp = PyObject_New(lad_t, &Ladtype)) == NULL) {
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close(fd);
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return NULL;
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}
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xp->x_fd = fd;
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xp->x_mode = imode;
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xp->x_icount = xp->x_ocount = 0;
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xp->x_afmts = afmts;
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return xp;
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}
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static void
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lad_dealloc(lad_t *xp)
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{
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/* if already closed, don't reclose it */
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if (xp->x_fd != -1)
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close(xp->x_fd);
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PyObject_Del(xp);
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}
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static PyObject *
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lad_read(lad_t *self, PyObject *args)
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{
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int size, count;
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char *cp;
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PyObject *rv;
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if (!PyArg_ParseTuple(args, "i:read", &size))
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return NULL;
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rv = PyString_FromStringAndSize(NULL, size);
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if (rv == NULL)
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return NULL;
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cp = PyString_AS_STRING(rv);
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if ((count = read(self->x_fd, cp, size)) < 0) {
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PyErr_SetFromErrno(LinuxAudioError);
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Py_DECREF(rv);
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return NULL;
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}
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self->x_icount += count;
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if (_PyString_Resize(&rv, count) == -1)
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return NULL;
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return rv;
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}
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static PyObject *
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lad_write(lad_t *self, PyObject *args)
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{
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char *cp;
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int rv, size;
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if (!PyArg_ParseTuple(args, "s#:write", &cp, &size))
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return NULL;
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while (size > 0) {
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if ((rv = write(self->x_fd, cp, size)) == -1) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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self->x_ocount += rv;
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size -= rv;
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cp += rv;
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}
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Py_INCREF(Py_None);
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return Py_None;
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}
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static PyObject *
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lad_close(lad_t *self, PyObject *args)
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{
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if (!PyArg_ParseTuple(args, ":close"))
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return NULL;
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if (self->x_fd >= 0) {
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close(self->x_fd);
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self->x_fd = -1;
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}
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Py_INCREF(Py_None);
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return Py_None;
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}
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static PyObject *
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lad_fileno(lad_t *self, PyObject *args)
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{
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if (!PyArg_ParseTuple(args, ":fileno"))
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return NULL;
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return PyInt_FromLong(self->x_fd);
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}
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static PyObject *
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lad_setparameters(lad_t *self, PyObject *args)
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{
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int rate, ssize, nchannels, n, fmt, emulate=0;
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if (!PyArg_ParseTuple(args, "iiii|i:setparameters",
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&rate, &ssize, &nchannels, &fmt, &emulate))
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return NULL;
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if (rate < 0) {
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PyErr_Format(PyExc_ValueError, "expected rate >= 0, not %d",
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rate);
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return NULL;
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}
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if (ssize < 0) {
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PyErr_Format(PyExc_ValueError, "expected sample size >= 0, not %d",
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ssize);
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return NULL;
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}
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if (nchannels != 1 && nchannels != 2) {
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PyErr_Format(PyExc_ValueError, "nchannels must be 1 or 2, not %d",
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nchannels);
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return NULL;
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}
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if (ioctl(self->x_fd, SNDCTL_DSP_SPEED, &rate) == -1) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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if (ioctl(self->x_fd, SNDCTL_DSP_CHANNELS, &nchannels) == -1) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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for (n = 0; n < n_audio_types; n++)
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if (fmt == audio_types[n].a_fmt)
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break;
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if (n == n_audio_types) {
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PyErr_Format(PyExc_ValueError, "unknown audio encoding: %d", fmt);
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return NULL;
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}
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if (audio_types[n].a_bps != ssize) {
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PyErr_Format(PyExc_ValueError,
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"sample size %d expected for %s: %d received",
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audio_types[n].a_bps, audio_types[n].a_name, ssize);
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return NULL;
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}
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if (emulate == 0) {
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if ((self->x_afmts & audio_types[n].a_fmt) == 0) {
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PyErr_Format(PyExc_ValueError,
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"format not supported by device: %s",
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audio_types[n].a_name);
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return NULL;
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}
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}
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if (ioctl(self->x_fd, SNDCTL_DSP_SETFMT,
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&audio_types[n].a_fmt) == -1) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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Py_INCREF(Py_None);
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return Py_None;
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}
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static int
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_ssize(lad_t *self, int *nchannels, int *ssize)
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{
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int fmt;
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fmt = 0;
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if (ioctl(self->x_fd, SNDCTL_DSP_SETFMT, &fmt) < 0)
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return -errno;
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switch (fmt) {
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case AFMT_MU_LAW:
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case AFMT_A_LAW:
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case AFMT_U8:
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case AFMT_S8:
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*ssize = sizeof(char);
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break;
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case AFMT_S16_LE:
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case AFMT_S16_BE:
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case AFMT_U16_LE:
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case AFMT_U16_BE:
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*ssize = sizeof(short);
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break;
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case AFMT_MPEG:
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case AFMT_IMA_ADPCM:
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default:
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return -EOPNOTSUPP;
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}
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*nchannels = 0;
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if (ioctl(self->x_fd, SNDCTL_DSP_CHANNELS, nchannels) < 0)
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return -errno;
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return 0;
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}
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/* bufsize returns the size of the hardware audio buffer in number
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of samples */
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static PyObject *
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lad_bufsize(lad_t *self, PyObject *args)
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{
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audio_buf_info ai;
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int nchannels, ssize;
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if (!PyArg_ParseTuple(args, ":bufsize")) return NULL;
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if (_ssize(self, &nchannels, &ssize) < 0) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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if (ioctl(self->x_fd, SNDCTL_DSP_GETOSPACE, &ai) < 0) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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return PyInt_FromLong((ai.fragstotal * ai.fragsize) / (nchannels * ssize));
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}
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/* obufcount returns the number of samples that are available in the
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hardware for playing */
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static PyObject *
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lad_obufcount(lad_t *self, PyObject *args)
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{
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audio_buf_info ai;
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int nchannels, ssize;
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if (!PyArg_ParseTuple(args, ":obufcount"))
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return NULL;
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if (_ssize(self, &nchannels, &ssize) < 0) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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if (ioctl(self->x_fd, SNDCTL_DSP_GETOSPACE, &ai) < 0) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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return PyInt_FromLong((ai.fragstotal * ai.fragsize - ai.bytes) /
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(ssize * nchannels));
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}
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/* obufcount returns the number of samples that can be played without
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blocking */
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static PyObject *
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lad_obuffree(lad_t *self, PyObject *args)
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{
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audio_buf_info ai;
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int nchannels, ssize;
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if (!PyArg_ParseTuple(args, ":obuffree"))
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return NULL;
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if (_ssize(self, &nchannels, &ssize) < 0) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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if (ioctl(self->x_fd, SNDCTL_DSP_GETOSPACE, &ai) < 0) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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return PyInt_FromLong(ai.bytes / (ssize * nchannels));
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}
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/* Flush the device */
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static PyObject *
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lad_flush(lad_t *self, PyObject *args)
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{
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if (!PyArg_ParseTuple(args, ":flush")) return NULL;
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if (ioctl(self->x_fd, SNDCTL_DSP_SYNC, NULL) == -1) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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Py_INCREF(Py_None);
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return Py_None;
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}
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static PyObject *
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lad_getptr(lad_t *self, PyObject *args)
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{
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count_info info;
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int req;
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if (!PyArg_ParseTuple(args, ":getptr"))
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return NULL;
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if (self->x_mode == O_RDONLY)
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req = SNDCTL_DSP_GETIPTR;
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else
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req = SNDCTL_DSP_GETOPTR;
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if (ioctl(self->x_fd, req, &info) == -1) {
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PyErr_SetFromErrno(LinuxAudioError);
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return NULL;
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}
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return Py_BuildValue("iii", info.bytes, info.blocks, info.ptr);
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}
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static PyMethodDef lad_methods[] = {
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{ "read", (PyCFunction)lad_read, METH_VARARGS },
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{ "write", (PyCFunction)lad_write, METH_VARARGS },
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{ "setparameters", (PyCFunction)lad_setparameters, METH_VARARGS },
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{ "bufsize", (PyCFunction)lad_bufsize, METH_VARARGS },
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{ "obufcount", (PyCFunction)lad_obufcount, METH_VARARGS },
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{ "obuffree", (PyCFunction)lad_obuffree, METH_VARARGS },
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{ "flush", (PyCFunction)lad_flush, METH_VARARGS },
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{ "close", (PyCFunction)lad_close, METH_VARARGS },
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{ "fileno", (PyCFunction)lad_fileno, METH_VARARGS },
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{ "getptr", (PyCFunction)lad_getptr, METH_VARARGS },
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{ NULL, NULL} /* sentinel */
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};
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static PyObject *
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lad_getattr(lad_t *xp, char *name)
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{
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return Py_FindMethod(lad_methods, (PyObject *)xp, name);
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}
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static PyTypeObject Ladtype = {
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PyObject_HEAD_INIT(&PyType_Type)
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0, /*ob_size*/
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"linux_audio_device", /*tp_name*/
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sizeof(lad_t), /*tp_size*/
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0, /*tp_itemsize*/
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/* methods */
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(destructor)lad_dealloc, /*tp_dealloc*/
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0, /*tp_print*/
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(getattrfunc)lad_getattr, /*tp_getattr*/
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0, /*tp_setattr*/
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0, /*tp_compare*/
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0, /*tp_repr*/
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};
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static PyObject *
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ladopen(PyObject *self, PyObject *args)
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{
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return (PyObject *)newladobject(args);
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}
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static PyMethodDef linuxaudiodev_methods[] = {
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{ "open", ladopen, METH_VARARGS },
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{ 0, 0 },
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};
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void
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initlinuxaudiodev(void)
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{
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PyObject *m;
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m = Py_InitModule("linuxaudiodev", linuxaudiodev_methods);
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LinuxAudioError = PyErr_NewException("linuxaudiodev.error", NULL, NULL);
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if (LinuxAudioError)
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PyModule_AddObject(m, "error", LinuxAudioError);
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if (PyModule_AddIntConstant(m, "AFMT_MU_LAW", (long)AFMT_MU_LAW) == -1)
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return;
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if (PyModule_AddIntConstant(m, "AFMT_A_LAW", (long)AFMT_A_LAW) == -1)
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return;
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if (PyModule_AddIntConstant(m, "AFMT_U8", (long)AFMT_U8) == -1)
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return;
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if (PyModule_AddIntConstant(m, "AFMT_S8", (long)AFMT_S8) == -1)
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return;
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if (PyModule_AddIntConstant(m, "AFMT_U16_BE", (long)AFMT_U16_BE) == -1)
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return;
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if (PyModule_AddIntConstant(m, "AFMT_U16_LE", (long)AFMT_U16_LE) == -1)
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return;
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if (PyModule_AddIntConstant(m, "AFMT_S16_BE", (long)AFMT_S16_BE) == -1)
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return;
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if (PyModule_AddIntConstant(m, "AFMT_S16_LE", (long)AFMT_S16_LE) == -1)
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return;
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return;
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}
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