view src/linuxplay.c @ 5157:1fae11d56ad2

redo memory-usage mechanism, add way of dynamically initializing Lisp objects -------------------- ChangeLog entries follow: -------------------- lisp/ChangeLog addition: 2010-03-18 Ben Wing <ben@xemacs.org> * diagnose.el (show-memory-usage): Rewrite to take into account API changes in memory-usage functions. src/ChangeLog addition: 2010-03-18 Ben Wing <ben@xemacs.org> * alloc.c: * alloc.c (disksave_object_finalization_1): * alloc.c (lisp_object_storage_size): * alloc.c (listu): * alloc.c (listn): * alloc.c (Fobject_memory_usage_stats): * alloc.c (compute_memusage_stats_length): * alloc.c (Fobject_memory_usage): * alloc.c (Ftotal_object_memory_usage): * alloc.c (malloced_storage_size): * alloc.c (common_init_alloc_early): * alloc.c (reinit_alloc_objects_early): * alloc.c (reinit_alloc_early): * alloc.c (init_alloc_once_early): * alloc.c (syms_of_alloc): * alloc.c (reinit_vars_of_alloc): * buffer.c: * buffer.c (struct buffer_stats): * buffer.c (compute_buffer_text_usage): * buffer.c (compute_buffer_usage): * buffer.c (buffer_memory_usage): * buffer.c (buffer_objects_create): * buffer.c (syms_of_buffer): * buffer.c (vars_of_buffer): * console-impl.h (struct console_methods): * dynarr.c (Dynarr_memory_usage): * emacs.c (main_1): * events.c (clear_event_resource): * extents.c: * extents.c (compute_buffer_extent_usage): * extents.c (extent_objects_create): * extents.h: * faces.c: * faces.c (compute_face_cachel_usage): * faces.c (face_objects_create): * faces.h: * general-slots.h: * glyphs.c: * glyphs.c (compute_glyph_cachel_usage): * glyphs.c (glyph_objects_create): * glyphs.h: * lisp.h: * lisp.h (struct usage_stats): * lrecord.h: * lrecord.h (enum lrecord_type): * lrecord.h (struct lrecord_implementation): * lrecord.h (MC_ALLOC_CALL_FINALIZER_FOR_DISKSAVE): * lrecord.h (DEFINE_DUMPABLE_LISP_OBJECT): * lrecord.h (DEFINE_DUMPABLE_SIZABLE_LISP_OBJECT): * lrecord.h (DEFINE_DUMPABLE_FROB_BLOCK_LISP_OBJECT): * lrecord.h (DEFINE_DUMPABLE_FROB_BLOCK_SIZABLE_LISP_OBJECT): * lrecord.h (DEFINE_DUMPABLE_INTERNAL_LISP_OBJECT): * lrecord.h (DEFINE_DUMPABLE_SIZABLE_INTERNAL_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_SIZABLE_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_FROB_BLOCK_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_FROB_BLOCK_SIZABLE_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_INTERNAL_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_SIZABLE_INTERNAL_LISP_OBJECT): * lrecord.h (MAKE_LISP_OBJECT): * lrecord.h (DEFINE_DUMPABLE_MODULE_LISP_OBJECT): * lrecord.h (DEFINE_DUMPABLE_MODULE_SIZABLE_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_MODULE_LISP_OBJECT): * lrecord.h (DEFINE_NODUMP_MODULE_SIZABLE_LISP_OBJECT): * lrecord.h (MAKE_MODULE_LISP_OBJECT): * lrecord.h (INIT_LISP_OBJECT): * lrecord.h (INIT_MODULE_LISP_OBJECT): * lrecord.h (UNDEF_LISP_OBJECT): * lrecord.h (UNDEF_MODULE_LISP_OBJECT): * lrecord.h (DECLARE_LISP_OBJECT): * lrecord.h (DECLARE_MODULE_API_LISP_OBJECT): * lrecord.h (DECLARE_MODULE_LISP_OBJECT): * lstream.c: * lstream.c (syms_of_lstream): * lstream.c (vars_of_lstream): * marker.c: * marker.c (compute_buffer_marker_usage): * mc-alloc.c (mc_alloced_storage_size): * mc-alloc.h: * mule-charset.c: * mule-charset.c (struct charset_stats): * mule-charset.c (compute_charset_usage): * mule-charset.c (charset_memory_usage): * mule-charset.c (mule_charset_objects_create): * mule-charset.c (syms_of_mule_charset): * mule-charset.c (vars_of_mule_charset): * redisplay.c: * redisplay.c (compute_rune_dynarr_usage): * redisplay.c (compute_display_block_dynarr_usage): * redisplay.c (compute_glyph_block_dynarr_usage): * redisplay.c (compute_display_line_dynarr_usage): * redisplay.c (compute_line_start_cache_dynarr_usage): * redisplay.h: * scrollbar-gtk.c (gtk_compute_scrollbar_instance_usage): * scrollbar-msw.c (mswindows_compute_scrollbar_instance_usage): * scrollbar-x.c (x_compute_scrollbar_instance_usage): * scrollbar.c (compute_scrollbar_instance_usage): * scrollbar.h: * symbols.c: * symbols.c (reinit_symbol_objects_early): * symbols.c (init_symbols_once_early): * symbols.c (reinit_symbols_early): * symbols.c (defsymbol_massage_name_1): * symsinit.h: * ui-gtk.c: * ui-gtk.c (emacs_gtk_object_getprop): * ui-gtk.c (emacs_gtk_object_putprop): * ui-gtk.c (ui_gtk_objects_create): * unicode.c (compute_from_unicode_table_size_1): * unicode.c (compute_to_unicode_table_size_1): * unicode.c (compute_from_unicode_table_size): * unicode.c (compute_to_unicode_table_size): * window.c: * window.c (struct window_stats): * window.c (compute_window_mirror_usage): * window.c (compute_window_usage): * window.c (window_memory_usage): * window.c (window_objects_create): * window.c (syms_of_window): * window.c (vars_of_window): * window.h: Redo memory-usage mechanism, make it general; add way of dynamically initializing Lisp object types -- OBJECT_HAS_METHOD(), similar to CONSOLE_HAS_METHOD(). (1) Create OBJECT_HAS_METHOD(), OBJECT_HAS_PROPERTY() etc. for specifying that a Lisp object type has a particular method or property. Call such methods with OBJECT_METH, MAYBE_OBJECT_METH, OBJECT_METH_OR_GIVEN; retrieve properties with OBJECT_PROPERTY. Methods that formerly required a DEFINE_*GENERAL_LISP_OBJECT() to specify them (getprop, putprop, remprop, plist, disksave) now instead use the dynamic-method mechanism. The main benefit of this is that new methods or properties can be added without requiring that the declaration statements of all existing methods be modified. We have to make the `struct lrecord_implementation' non-const, but I don't think this should have any effect on speed -- the only possible method that's really speed-critical is the mark method, and we already extract those out into a separate (non-const) array for increased cache locality. Object methods need to be reinitialized after pdump, so we put them in separate functions such as face_objects_create(), extent_objects_create() and call them appropriately from emacs.c The only current object property (`memusage_stats_list') that objects can specify is a Lisp object and gets staticpro()ed so it only needs to be set during dump time, but because it references symbols that might not exist in a syms_of_() function, we initialize it in vars_of_(). There is also an object property (`num_extra_memusage_stats') that is automatically initialized based on `memusage_stats_list'; we do that in reinit_vars_of_alloc(), which is called after all vars_of_() functions are called. `disksaver' method was renamed `disksave' to correspond with the name normally given to the function (e.g. disksave_lstream()). (2) Generalize the memory-usage mechanism in `buffer-memory-usage', `window-memory-usage', `charset-memory-usage' into an object-type- specific mechanism called by a single function `object-memory-usage'. (Former function `object-memory-usage' renamed to `total-object-memory-usage'). Generalize the mechanism of different "slices" so that we can have different "classes" of memory described and different "slices" onto each class; `t' separates classes, `nil' separates slices. Currently we have three classes defined: the memory of an object itself, non-Lisp-object memory associated with the object (e.g. arrays or dynarrs stored as fields in the object), and Lisp-object memory associated with the object (other internal Lisp objects stored in the object). This isn't completely finished yet and we might need to further separate the "other internal Lisp objects" class into two classes. The memory-usage mechanism uses a `struct usage_stats' (renamed from `struct overhead_stats') to describe a malloc-view onto a set of allocated memory (listing how much was requested and various types of overhead) and a more general `struct generic_usage_stats' (with a `struct usage_stats' in it) to hold all statistics about object memory. `struct generic_usage_stats' contains an array of 32 Bytecounts, which are statistics of unspecified semantics. The intention is that individual types declare a corresponding struct (e.g. `struct window_stats') with the same structure but with specific fields in place of the array, corresponding to specific statistics. The number of such statistics is an object property computed from the list of tags (Lisp symbols describing the statistics) stored in `memusage_stats_list'. The idea here is to allow particular object types to customize the number and semantics of the statistics where completely avoiding consing. This doesn't matter so much yet, but the intention is to have the memory usage of all objects computed at the end of GC, at the same time as other statistics are currently computed. The values for all statistics for a single type would be added up to compute aggregate values for all objects of a specific type. To make this efficient, we can't allow any memory allocation at all. (3) Create some additional functions for creating lists that specify the elements directly as args rather than indirectly through an array: listn() (number of args given), listu() (list terminated by Qunbound). (4) Delete a bit of remaining unused C window_config stuff, also unused lrecord_type_popup_data.
author Ben Wing <ben@xemacs.org>
date Thu, 18 Mar 2010 10:50:06 -0500
parents ed624ab64583
children
line wrap: on
line source

/* linuxplay.c - play a sound file on the speaker
 **
 ** Copyright (C) 1995,96 by Markus Gutschke (gutschk@math.uni-muenster.de)
 ** This is version 1.3 of linuxplay.c, with platform-independent functions
 ** moved to a different file by Robert Bihlmeyer <robbe@orcus.priv.at>.
 **
 ** Parts of this code were inspired by sunplay.c, which is copyright 1989 by
 ** Jef Poskanzer and 1991,92 by Jamie Zawinski; c.f. sunplay.c for further
 ** information.
 **
 ** Permission to use, copy, modify, and distribute this software and its
 ** documentation for any purpose and without fee is hereby granted, provided
 ** that the above copyright notice appear in all copies and that both that
 ** copyright notice and this permission notice appear in supporting
 ** documentation.  This software is provided "as is" without express or
 ** implied warranty.
 **
 ** Changelog:
 **  1.0  --  first release; supports SunAudio, Wave and RAW file formats
 **           detects (and rejects) VOC file format
 **           tested with PC-Speaker driver only
 **  1.1  --  fixed bug with playback of stereo Wave files
 **           fixed VOC file detection
 **           fixed mono/8bit conversion
 **           cleaned up mixer programming (c.f. VoxWare-SDK)
 **           tested with PC-Speaker driver and with PAS16 soundcard
 **  1.2  --  first (incompatible) attempt at fixing reliable signal handling
 **  1.3  --  changed signal handling to use reliable signals; this is done
 **           by including "syssignal.h"; it fixes nasty program crashes
 **           when using native sound in TTY mode.
 **           added support for DEC audio file format (this is basically the
 **           same as Sun audio, but uses little endian format, instead).
 **           strip the header from Sun audio and DEC audio files in order to
 **           prevent noise at beginning of samples (thanks to Thomas Pundt
 **           <pundtt@math.uni-muenster.de> for pointing out this bug and
 **           providing information on the file format).
 **           added a few more conversion routines.
 **           made the code even more tolerant to the limits imposed by some
 **           soundcards and try to accept soundfiles even if they are not
 **           fully conformant to the standard.
 **  1.4  --  increased header size to 256; I hope there is no sample software
 **           that requires this much.
 **           added code for converting from signed to unsigned format as
 **           some soundcards cannot handle signed 8bit data.
 */

/* Synched up with: Not in FSF. */

/* This file Mule-ized by Ben Wing, 5-15-01. */

/* XEmacs beta testers say:  undef this by default. */
#undef NOVOLUMECTRLFORMULAW /* Changing the volume for uLaw-encoded
			       samples sounds very poor; possibly,
			       this is true only for the PC-Snd
			       driver, so undefine this symbol at your
			       discretion */

#include <config.h>
#include "lisp.h"

#include "miscplay.h"
#include "sound.h"

#include "syssignal.h"
#include "sysfile.h"
#include "systty.h" /* for sys/ioctl.h */
#include SOUNDCARD_H_FILE /* Path computed by configure */

static  SIGTYPE (*sighup_handler) (int);
static  SIGTYPE (*sigint_handler) (int);

static int           mix_fd;
static int           audio_vol;
static int           audio_fd;
static const Ascbyte *audio_dev = "/dev/dsp";

/* Intercept SIGINT and SIGHUP in order to close the audio and mixer
   devices before terminating sound output; this requires reliable
   signals as provided by "syssignal.h" */
static SIGTYPE
sighandler (int sig)
{
  if (mix_fd > 0) {
    if (audio_vol >= 0) {
      ioctl(mix_fd,SOUND_MIXER_WRITE_PCM,&audio_vol);
      audio_vol = -1; }
    if (mix_fd != audio_fd)
      close(mix_fd);
    mix_fd = -1; }
  if (audio_fd > 0) {
    ioctl(audio_fd,SNDCTL_DSP_SYNC,NULL);
    ioctl(audio_fd,SNDCTL_DSP_RESET,NULL);
    close(audio_fd);
    audio_fd = -1; }
  if (sig == SIGHUP && sighup_handler)      sighup_handler(sig);
  else if (sig == SIGINT && sigint_handler) sigint_handler(sig);
  else exit(1);
}

/* Initialize the soundcard and mixer device with the parameters that we
   found in the header of the sound file. If the soundcard is not capable of
   natively supporting the required parameters, then try to set up conversion
   routines.
   The difficulty with setting up the sound card is that the parameters are
   not fully orthogonal; changing one of them might affect some of the
   others, too. Thus we do quite a lot of double checking; actually most of
   this is not needed right now, but it will come in handy, if the kernel's
   sounddriver ever changes or if third-party sounddrivers are used. */
static int
audio_init(int mixx_fd, int auddio_fd, int fmt, int speed,
	   int tracks, int *volume,
	   size_t (**sndcnv) (void **, size_t *sz, void **))
{
  int i,the_speed,the_stereo,the_fmt;

  *sndcnv = sndcnvnop;

  if (ioctl(auddio_fd,SNDCTL_DSP_SYNC,NULL) < 0) {
    sound_perror("SNDCTL_DSP_SYNC");
    return(0); }

  /* Initialize sound hardware with preferred parameters */

  /* If the sound hardware cannot support 16 bit format or requires a
     different byte sex then try to drop to 8 bit format */

  the_fmt = fmt;
  if(ioctl(audio_fd,SNDCTL_DSP_SETFMT,&the_fmt) < 0) {
  	sound_perror("SNDCTL_DSP_SETFMT");
  	return(0);
  }

  if (fmt != the_fmt) {
    if (fmt == AFMT_S16_LE || fmt == AFMT_S16_BE) {
      *sndcnv = fmt == AFMT_S16_BE ? sndcnv2byteBE : sndcnv2byteLE;
      if (((i=fmt=AFMT_U8),ioctl(audio_fd,SNDCTL_DSP_SETFMT,&i)) < 0 ||
	  fmt != i || ioctl(audio_fd,SNDCTL_DSP_SETFMT,&the_fmt) < 0 ||
	  fmt != the_fmt) {
  	sound_perror("SNDCTL_DSP_SETFMT");
  	return(0); } }
    else if (fmt == AFMT_MU_LAW && the_fmt == AFMT_U8 ) {
      /* the kernel will convert for us */ }
    else {
      sound_perror("SNDCTL_DSP_SETFMT");
      return(0); } }
  else if (fmt == AFMT_S8) {
    *sndcnv = sndcnv2unsigned;
    if (((i=fmt=AFMT_U8),ioctl(audio_fd,SNDCTL_DSP_SETFMT,&i)) < 0 ||
        fmt != i || ioctl(audio_fd,SNDCTL_DSP_SETFMT,&the_fmt) < 0 ||
        fmt != the_fmt) {
      sound_perror("SNDCTRL_DSP_SETFMT");
      return(0); } }

  /* The PCSP driver does not support reading of the sampling rate via the
     SOUND_PCM_READ_RATE ioctl; determine "the_speed" here */
  the_speed = speed; ioctl(audio_fd,SNDCTL_DSP_SPEED,&the_speed);
  /* The PCSP driver does not support reading of the mono/stereo flag, thus
     we assume, that failure to change this mode means we are in mono mode  */
  if (((i = (the_stereo = tracks)-1),ioctl(audio_fd,SNDCTL_DSP_STEREO,&i)) < 0)
    the_stereo = 1;

  /* Try to request stereo playback (if needed); if this cannot be supported
     by the hardware, then install conversion routines for mono playback */

  /* This ioctl will fail if we use the PCSP driver; thus the value of
     "the_stereo" is still unchanged */
  ioctl(audio_fd,SOUND_PCM_READ_CHANNELS,&the_stereo);
  if (tracks != the_stereo) {
    if (tracks == 2) {
      tracks = 1;
      *sndcnv = *sndcnv == sndcnv2byteLE   ? sndcnv2monobyteLE :
              *sndcnv == sndcnv2byteBE   ? sndcnv2monobyteBE :
              *sndcnv == sndcnv2unsigned ? sndcnv2monounsigned :
	the_fmt == AFMT_S16_LE ? sndcnv16_2monoLE :
	the_fmt == AFMT_S16_BE ? sndcnv16_2monoBE :
	the_fmt == AFMT_S8     ? sndcnv8S_2mono :
	the_fmt == AFMT_U8     ? sndcnv8U_2mono :
	the_fmt == AFMT_MU_LAW ? sndcnvULaw_2mono : NULL;
      if (*sndcnv == NULL) { /* this should not happen */
	sound_perror("SNDCTL_DSP_STEREO");
	return(0); }
      /* Switch to mono mode */
      if (((i = 0),ioctl(audio_fd,SNDCTL_DSP_STEREO,&i)) < 0 || i) {
  	sound_perror("SNDCTL_DSP_STEREO");
	return(0); }
      /* Now double check that everything is set as expected */
      if (((i = AFMT_QUERY),ioctl(audio_fd,SNDCTL_DSP_SETFMT,&i)) < 0 ||
	  (i != the_fmt &&
	   (((i=the_fmt),ioctl(audio_fd,SNDCTL_DSP_SETFMT,&i)) < 0 ||
	    i != the_fmt ||
	    ((i = AFMT_QUERY),ioctl(audio_fd,SNDCTL_DSP_SETFMT,&i)) < 0 ||
	    i != the_fmt)) ||
	  (ioctl(audio_fd,SOUND_PCM_READ_CHANNELS,&i) >= 0 &&
	   i != 1)) {
	/* There was no way that we could set the soundcard to a meaningful
           mode */
 	sound_perror("SNDCTL_DSP_SETFMT and SNDCTL_DSP_STEREO");
  	return(0); } }
    else {
      /* Somebody set the soundcard to stereo even though we requested
         mono; this should not happen... */
      if (((i = the_stereo = tracks),ioctl(audio_fd,SNDCTL_DSP_STEREO,&i))<0 ||
	  i != the_stereo-1) {
	sound_perror("SNDCTL_DSP_STEREO");
	return(0); }
      if (((i = AFMT_QUERY),ioctl(audio_fd,SNDCTL_DSP_SETFMT,&i)) < 0 ||
	  i != the_fmt) {
	sound_perror("SNDCTL_DSP_SETFMT");
	return(0); } } }

  /* Fail if deviations from desired sampling frequency are too big */

  /* This ioctl will fail if we use the PCSP driver; thus the value of
     "the_speed" is still unchanged */
  ioctl(audio_fd,SOUND_PCM_READ_RATE,&the_speed);
  if (speed*14 < the_speed*10 || speed*6 > the_speed*10) {
    Extbyte buffer[256];
    sprintf(buffer,"SNDCTL_DSP_SPEED (req: %d, rtn: %d)",speed,the_speed);
    sound_perror(buffer);
    return(0); }

  /* Use the mixer device for setting the playback volume */
  if (mixx_fd > 0) {
    int vol = *volume & 0xFF;
    if (ioctl(mixx_fd,SOUND_MIXER_READ_PCM,volume) < 0)
      *volume = -1;
    if (vol < 0) vol = 0; else if (vol > 100) vol = 100;
#ifdef NOVOLUMECTRLFORMULAW
    if (fmt == AFMT_MU_LAW)
      vol = 100;
#endif
    vol |= 256*vol;
    /* Do not signal an error, if volume control is unavailable! */
    ioctl(mixx_fd,SOUND_MIXER_WRITE_PCM,&vol); }

#if defined(LINUXPLAYSTANDALONE) && 1
  /* Debugging output is displayed only when compiled as stand-alone version */
  {int the_volume;
  the_fmt = AFMT_QUERY;
  ioctl(audio_fd,SNDCTL_DSP_SETFMT,&the_fmt);
  ioctl(auddio_fd,SOUND_PCM_READ_CHANNELS,&the_stereo);
  ioctl(auddio_fd,SOUND_PCM_READ_RATE,&the_speed);
  ioctl(mixx_fd,SOUND_MIXER_READ_PCM,&the_volume);
  fprintf(stderr,"%s, %s, %dHz, L:%d/R:%d\n",
	  the_fmt == AFMT_MU_LAW ? "AFMT_MU_LAW" :
	  the_fmt == AFMT_A_LAW ? "AFMT_A_LAW" :
	  the_fmt == AFMT_IMA_ADPCM ? "AFMT_IMA_ADPCM" :
	  the_fmt == AFMT_U8 ? "AFMT_U8" :
	  the_fmt == AFMT_S16_LE ? "AFMT_S16_LE" :
	  the_fmt == AFMT_S16_BE ? "AFMT_S16_BE" :
	  the_fmt == AFMT_S8 ? "AFMT_S8" :
	  the_fmt == AFMT_U16_LE ? "AFMT_U16_LE" :
	  the_fmt == AFMT_U16_BE ? "AFMT_U16_BE" :
	  the_fmt == AFMT_MPEG ? "AFMT_MPEG" :
	  "AFMT_???",
	  the_stereo == 2 ? "stereo" : "mono",
	  the_speed,
	  the_volume / 256, the_volume % 256); }
#endif

  return(1);
}

/* XEmacs requires code both for playback of pre-loaded data and for playback
   from a soundfile; we use one function for both cases.

   Returns 1 on succes. 0 otherwise.
*/
static int
linux_play_data_or_file(int fd, Binbyte *data,
			int length, int volume)
{
  size_t         (*parsesndfile)(void **dayta,size_t *sz,void **outbuf);
  size_t         (*sndcnv)(void **dayta,size_t *sz,void **);
  fmtType        ffmt;
  int            fmt,speed,tracks;
  void           *pptr, *optr, *cptr, *sptr;
  int            wrtn, crtn;
  size_t         prtn, rrtn;
  Binbyte        sndbuf[SNDBUFSZ];

  /* We need to read at least the header information before we can start
     doing anything */
  if (!data || length < HEADERSZ) {
    if (fd < 0) return 0;
    else {
      length = read (fd,sndbuf,SNDBUFSZ);
      if (length < HEADERSZ)
	return 0;
      data   = sndbuf;
      length = SNDBUFSZ; }
  }

  ffmt = analyze_format(data,&fmt,&speed,&tracks,&parsesndfile);

  if (ffmt != fmtRaw && ffmt != fmtSunAudio && ffmt != fmtWave) {
    sound_warn("Unsupported file format (neither RAW, nor Sun/DECAudio, nor WAVE)");
      return 0; }

  /* The VoxWare-SDK discourages opening /dev/audio; opening /dev/dsp and
     properly initializing it via ioctl() is preferred */
  if ((audio_fd=open(audio_dev, O_WRONLY | O_NONBLOCK, 0)) < 0) {
    /* JV. Much too verbose. In addition this can crash. See NOTE: in
       Fplay_sound 
       sound_perror(audio_dev); */
    if (mix_fd > 0 && mix_fd != audio_fd) { close(mix_fd); mix_fd = -1; }
    return 0; }

  /* The VoxWare-SDK discourages direct manipulation of the mixer device as
     this could lead to problems, when multiple sound cards are installed */
  mix_fd = audio_fd;

  sighup_handler = EMACS_SIGNAL (SIGHUP, sighandler);
  sigint_handler = EMACS_SIGNAL (SIGINT, sighandler);

  if (!audio_init(mix_fd,audio_fd,fmt,speed,tracks,&volume,&sndcnv))
    goto END_OF_PLAY;
  audio_vol = volume;

  reset_parsestate();

  /* Mainloop: read a block of data, parse its contents, perform all
               the necessary conversions and output it to the sound
               device; repeat until all data has been processed */
  rrtn = length;
  do {
    for (pptr = data; (prtn = parsesndfile(&pptr,&rrtn,&optr)) > 0; )
      for (cptr = optr; (crtn = sndcnv(&cptr,&prtn,&sptr)) > 0; ) {
	for (;;) {
	  if ((wrtn = write(audio_fd,sptr,crtn)) < 0) {
	    sound_perror("write"); goto END_OF_PLAY; }
	  else if (wrtn) break;
	  else if (ioctl(audio_fd,SNDCTL_DSP_SYNC,NULL) < 0) {
	    sound_perror("SNDCTL_DSP_SYNC"); goto END_OF_PLAY; } }
	if (wrtn != crtn) {
	  Extbyte buf[255];
	  sprintf(buf,"play: crtn = %d, wrtn = %d",crtn,wrtn);
	  sound_warn(buf);
	  goto END_OF_PLAY; } }
    if (fd >= 0) {
      if ((rrtn = read(fd,sndbuf,SNDBUFSZ)) < 0) {
	sound_perror("read"); goto END_OF_PLAY; } }
    else
      break;
  } while (rrtn > 0);

  if (ffmt == fmtWave)
    parse_wave_complete();


END_OF_PLAY:
  /* Now cleanup all used resources */

  ioctl(audio_fd,SNDCTL_DSP_SYNC,NULL);
  ioctl(audio_fd,SNDCTL_DSP_RESET,NULL);

  EMACS_SIGNAL (SIGHUP,sighup_handler);
  EMACS_SIGNAL (SIGINT,sigint_handler);

  if (mix_fd > 0) {
    if (audio_vol >= 0) {
      ioctl(mix_fd,SOUND_MIXER_WRITE_PCM,&audio_vol);
      audio_vol = -1; }
    if (mix_fd != audio_fd)
      close(mix_fd);
    mix_fd = -1; }

  close(audio_fd);
  audio_fd = -1;

  return 1;
}

/* Call "linux_play_data_or_file" with the appropriate parameters for
   playing a soundfile */
void
play_sound_file (Extbyte *sound_file, int volume)
{
  int fd;

  if ((fd=open(sound_file,O_RDONLY,0)) < 0) {
    sound_perror(sound_file);
    return; }
  linux_play_data_or_file(fd,NULL,0,volume);
  close(fd);
  return;
}

/* Call "linux_play_data_or_file" with the appropriate parameters for
   playing pre-loaded data */
int
play_sound_data (Binbyte *data, int length, int volume)
{
  return linux_play_data_or_file(-1,data,length,volume);
}