Files
avolkov 7b0505facc Added WAVE file output to AIFF converter; fixed AIFF decoding bug which caused 8 extra samples in the output
git-svn-id: svn://svn.code.sf.net/p/sc2/code/trunk@3609 8092fc87-c524-0410-9efc-e669fe64eaf9
2011-05-14 17:27:36 +00:00

417 lines
9.3 KiB
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.
*/
/* Wave format encoder/decoder */
#include <stdio.h>
#include <memory.h>
#include <errno.h>
#include "wav.h"
#define wave_FormatHeader_size 16
#define wave_ChunkHeader_size 8
static bool read_le_16 (FILE *fp, uint16_t *v)
{
uint8_t buf[2];
if (fread(buf, sizeof(buf), 1, fp) != 1)
return false;
*v = (buf[1] << 8) | buf[0];
return true;
}
static bool read_le_32 (FILE *fp, uint32_t *v)
{
uint8_t buf[4];
if (fread(buf, sizeof(buf), 1, fp) != 1)
return false;
*v = (buf[3] << 24) | (buf[2] << 16) | (buf[1] << 8) | buf[0];
return true;
}
static bool write_le_16 (FILE *fp, uint16_t v)
{
uint8_t buf[2];
buf[0] = v;
buf[1] = v >> 8;
return fwrite(buf, sizeof(buf), 1, fp) == 1;
}
static bool write_le_32 (FILE *fp, uint32_t v)
{
uint8_t buf[4];
buf[0] = v;
buf[1] = v >> 8;
buf[2] = v >> 16;
buf[3] = v >> 24;
return fwrite(buf, sizeof(buf), 1, fp) == 1;
}
static bool wave_readFileHeader(wave_File *wave, wave_FileHeader *hdr)
{
if (!read_le_32(wave->fp, &hdr->id) ||
!read_le_32(wave->fp, &hdr->size) ||
!read_le_32(wave->fp, &hdr->type))
{
wave->last_error = errno;
return false;
}
return true;
}
static bool wave_writeFileHeader(wave_File *wave, const wave_FileHeader *hdr)
{
if (!write_le_32(wave->fp, hdr->id) ||
!write_le_32(wave->fp, hdr->size) ||
!write_le_32(wave->fp, hdr->type))
{
wave->last_error = errno;
return false;
}
return true;
}
static bool wave_readChunkHeader(wave_File *wave, wave_ChunkHeader *chunk)
{
if (!read_le_32(wave->fp, &chunk->id) ||
!read_le_32(wave->fp, &chunk->size))
{
wave->last_error = errno;
return false;
}
return true;
}
static bool wave_writeChunkHeader(wave_File *wave, const wave_ChunkHeader *chunk)
{
if (!write_le_32(wave->fp, chunk->id) ||
!write_le_32(wave->fp, chunk->size))
{
wave->last_error = errno;
return false;
}
return true;
}
static bool wave_readFormatHeader(wave_File *wave, wave_FormatHeader *fmt)
{
if (!read_le_16(wave->fp, &fmt->format) ||
!read_le_16(wave->fp, &fmt->channels) ||
!read_le_32(wave->fp, &fmt->samplesPerSec) ||
!read_le_32(wave->fp, &fmt->bytesPerSec) ||
!read_le_16(wave->fp, &fmt->blockAlign) ||
!read_le_16(wave->fp, &fmt->bitsPerSample))
{
wave->last_error = errno;
return false;
}
return true;
}
static bool wave_writeFormatHeader(wave_File *wave, const wave_FormatHeader *fmt)
{
if (!write_le_16(wave->fp, fmt->format) ||
!write_le_16(wave->fp, fmt->channels) ||
!write_le_32(wave->fp, fmt->samplesPerSec) ||
!write_le_32(wave->fp, fmt->bytesPerSec) ||
!write_le_16(wave->fp, fmt->blockAlign) ||
!write_le_16(wave->fp, fmt->bitsPerSample))
{
wave->last_error = errno;
return false;
}
return true;
}
bool wave_open(wave_File *wave, const char *filename)
{
wave_FileHeader fileHdr;
wave_ChunkHeader chunkHdr;
long dataLeft;
memset(wave, 0, sizeof(*wave));
wave->fp = fopen(filename, "rb");
if (!wave->fp)
{
wave->last_error = errno;
return false;
}
// read wave header
if (!wave_readFileHeader(wave, &fileHdr))
{
wave->last_error = errno;
wave_close(wave);
return false;
}
if (fileHdr.id != wave_RiffID || fileHdr.type != wave_WaveID)
{
fprintf(stderr, "wave_open(): "
"not a wave file, ID 0x%08x, Type 0x%08x",
(unsigned)fileHdr.id, (unsigned)fileHdr.type);
wave_close(wave);
return false;
}
for (dataLeft = ((fileHdr.size + 1) & ~1) - 4; dataLeft > 0;
dataLeft -= (((chunkHdr.size + 1) & ~1) + 8))
{
if (!wave_readChunkHeader(wave, &chunkHdr))
{
wave_close(wave);
return false;
}
if (chunkHdr.id == wave_FmtID)
{
if (!wave_readFormatHeader(wave, &wave->fmtHdr))
{
wave_close(wave);
return false;
}
fseek(wave->fp, chunkHdr.size - 16, SEEK_CUR);
}
else
{
if (chunkHdr.id == wave_DataID)
{
wave->data_size = chunkHdr.size;
wave->data_ofs = ftell(wave->fp);
}
fseek(wave->fp, chunkHdr.size, SEEK_CUR);
}
// 2-align the file ptr
// XXX: I do not think this is necessary in WAVE files;
// possibly a remnant of ported AIFF reader
fseek(wave->fp, chunkHdr.size & 1, SEEK_CUR);
}
if (!wave->data_size || !wave->data_ofs)
{
fprintf(stderr, "wave_open(): bad wave file,"
" no DATA chunk found");
wave_close(wave);
return false;
}
if (wave->fmtHdr.format != WAVE_FORMAT_PCM)
{ // not a PCM format
fprintf(stderr, "wave_open(): unsupported format %x",
wave->fmtHdr.format);
wave_close(wave);
return false;
}
if (dataLeft != 0)
{
fprintf(stderr, "wave_open(): bad or unsupported wave file, "
"size in header does not match read chunks");
}
wave->bytesPerSample = (wave->fmtHdr.bitsPerSample + 7) >> 3;
if (wave->bytesPerSample == 3)
{
fprintf(stderr, "wave_open(): 24-bit data is not fully supported\n");
}
fseek(wave->fp, wave->data_ofs, SEEK_SET);
wave->max_pcm = wave->data_size / wave->fmtHdr.blockAlign;
wave->cur_pcm = 0;
wave->last_error = 0;
return true;
}
static bool wave_writeHeaders(wave_File *wave)
{
wave_FileHeader fileHdr;
wave_ChunkHeader chunkHdr;
fileHdr.id = wave_RiffID;
fileHdr.size = 4 + wave_ChunkHeader_size + wave_FormatHeader_size
+ wave_ChunkHeader_size + wave->data_size;
fileHdr.type = wave_WaveID;
if (!wave_writeFileHeader(wave, &fileHdr))
return false;
chunkHdr.id = wave_FmtID;
chunkHdr.size = wave_FormatHeader_size;
if (!wave_writeChunkHeader(wave, &chunkHdr) ||
!wave_writeFormatHeader(wave, &wave->fmtHdr))
return false;
chunkHdr.id = wave_DataID;
chunkHdr.size = wave->data_size;
if (!wave_writeChunkHeader(wave, &chunkHdr))
return false;
return true;
}
bool wave_create(wave_File *wave, const char *filename)
{
memset(wave, 0, sizeof(*wave));
wave->fp = fopen(filename, "wb");
if (!wave->fp)
{
wave->last_error = errno;
return false;
}
wave->fmtHdr.format = WAVE_FORMAT_PCM;
if (!wave_writeHeaders(wave))
{
wave->last_error = errno;
return false;
}
wave->data_ofs = ftell(wave->fp);
wave->writing = true;
return true;
}
static bool wave_flushHeaders(wave_File *wave)
{
wave->data_size = wave->max_pcm * wave->fmtHdr.blockAlign;
fseek(wave->fp, 0, SEEK_SET);
if (!wave_writeHeaders(wave))
{
wave->last_error = errno;
return false;
}
return true;
}
void wave_close(wave_File *wave)
{
if (wave->fp)
{
if (wave->writing)
wave_flushHeaders(wave);
fclose(wave->fp);
}
memset(wave, 0, sizeof(*wave));
}
bool wave_setFormat(wave_File *wave, uint16_t chans, uint16_t bitsPerSample,
uint32_t freq)
{
wave->fmtHdr.format = WAVE_FORMAT_PCM;
wave->fmtHdr.channels = chans;
wave->fmtHdr.bitsPerSample = bitsPerSample;
wave->bytesPerSample = (bitsPerSample + 7) >> 3;
if (wave->bytesPerSample == 3)
{
fprintf(stderr, "wave_setFormat(): 24-bit data is not fully supported\n");
}
wave->fmtHdr.samplesPerSec = freq;
wave->fmtHdr.blockAlign = wave->bytesPerSample * chans;
wave->fmtHdr.bytesPerSec = wave->fmtHdr.blockAlign * freq;
return true;
}
uint32_t wave_readData(wave_File *wave, void *buf, uint32_t bufsize)
{
uint32_t pcm;
uint8_t *ptr = (uint8_t*)buf;
uint32_t size;
uint32_t left;
pcm = bufsize / wave->fmtHdr.blockAlign;
if (pcm > wave->max_pcm - wave->cur_pcm)
pcm = wave->max_pcm - wave->cur_pcm;
pcm = fread(buf, wave->fmtHdr.blockAlign, pcm, wave->fp);
wave->cur_pcm += pcm;
size = pcm * wave->fmtHdr.blockAlign;
// WAVE files store data little-endian and we need it in machine order
// Let the compiler optimize this away if it is not necessary
switch (wave->bytesPerSample)
{
case 2:
for (left = size / 2; left > 0; --left, ptr += 2)
*(int16_t*)ptr = (ptr[1] << 8) | ptr[0];
break;
case 3:
// TODO
break;
case 4:
for (left = size / 4; left > 0; --left, ptr += 4)
*(int32_t*)ptr = (ptr[3] << 24) | (ptr[2] << 16) | (ptr[1] << 8) | ptr[0];
break;
}
return size;
}
uint32_t wave_writeData(wave_File *wave, void *buf, uint32_t bufsize)
{
uint32_t pcm;
uint8_t *ptr = (uint8_t*)buf;
uint32_t size;
uint32_t left;
pcm = bufsize / wave->fmtHdr.blockAlign;
size = pcm * wave->fmtHdr.blockAlign;
// WAVE files store data little-endian and we have it in machine order
// Let the compiler optimize this away if it is not necessary
switch (wave->bytesPerSample)
{
case 2:
for (left = size / 2; left > 0; --left, ptr += 2)
{
int16_t v = *(int16_t*)ptr;
ptr[0] = (v & 0xff);
ptr[1] = (v >> 8);
}
break;
case 3:
// TODO
break;
case 4:
for (left = size / 4; left > 0; --left, ptr += 4)
{
int32_t v = *(int32_t*)ptr;
ptr[0] = (v & 0xff);
ptr[1] = (v >> 8);
ptr[2] = (v >> 16);
ptr[3] = (v >> 24);
}
break;
}
pcm = fwrite(buf, wave->fmtHdr.blockAlign, pcm, wave->fp);
wave->cur_pcm += pcm;
wave->max_pcm = wave->cur_pcm;
size = pcm * wave->fmtHdr.blockAlign;
wave->data_size += size;
return size;
}