00001
00002
00003
00004
00005
00006
00007
00008
00009
00010
00011
00012
00013
00014
00015
00016
00017
00018
00019
00020
00021
00022
00029 #include "libavutil/channel_layout.h"
00030 #include "avcodec.h"
00031 #include "get_bits.h"
00032 #include "golomb.h"
00033 #include "internal.h"
00034 #include "unary.h"
00035 #include "ralfdata.h"
00036
00037 #define FILTER_NONE 0
00038 #define FILTER_RAW 642
00039
00040 typedef struct VLCSet {
00041 VLC filter_params;
00042 VLC bias;
00043 VLC coding_mode;
00044 VLC filter_coeffs[10][11];
00045 VLC short_codes[15];
00046 VLC long_codes[125];
00047 } VLCSet;
00048
00049 #define RALF_MAX_PKT_SIZE 8192
00050
00051 typedef struct RALFContext {
00052 AVFrame frame;
00053
00054 int version;
00055 int max_frame_size;
00056 VLCSet sets[3];
00057 int32_t channel_data[2][4096];
00058
00059 int filter_params;
00060 int filter_length;
00061 int filter_bits;
00062 int32_t filter[64];
00063
00064 int bias[2];
00065
00066 int num_blocks;
00067 int sample_offset;
00068 int block_size[1 << 12];
00069 int block_pts[1 << 12];
00070
00071 uint8_t pkt[16384];
00072 int has_pkt;
00073 } RALFContext;
00074
00075 #define MAX_ELEMS 644 // no RALF table uses more than that
00076
00077 static int init_ralf_vlc(VLC *vlc, const uint8_t *data, int elems)
00078 {
00079 uint8_t lens[MAX_ELEMS];
00080 uint16_t codes[MAX_ELEMS];
00081 int counts[17], prefixes[18];
00082 int i, cur_len;
00083 int max_bits = 0;
00084 int nb = 0;
00085
00086 for (i = 0; i <= 16; i++)
00087 counts[i] = 0;
00088 for (i = 0; i < elems; i++) {
00089 cur_len = (nb ? *data & 0xF : *data >> 4) + 1;
00090 counts[cur_len]++;
00091 max_bits = FFMAX(max_bits, cur_len);
00092 lens[i] = cur_len;
00093 data += nb;
00094 nb ^= 1;
00095 }
00096 prefixes[1] = 0;
00097 for (i = 1; i <= 16; i++)
00098 prefixes[i + 1] = (prefixes[i] + counts[i]) << 1;
00099
00100 for (i = 0; i < elems; i++)
00101 codes[i] = prefixes[lens[i]]++;
00102
00103 return ff_init_vlc_sparse(vlc, FFMIN(max_bits, 9), elems,
00104 lens, 1, 1, codes, 2, 2, NULL, 0, 0, 0);
00105 }
00106
00107 static av_cold int decode_close(AVCodecContext *avctx)
00108 {
00109 RALFContext *ctx = avctx->priv_data;
00110 int i, j, k;
00111
00112 for (i = 0; i < 3; i++) {
00113 ff_free_vlc(&ctx->sets[i].filter_params);
00114 ff_free_vlc(&ctx->sets[i].bias);
00115 ff_free_vlc(&ctx->sets[i].coding_mode);
00116 for (j = 0; j < 10; j++)
00117 for (k = 0; k < 11; k++)
00118 ff_free_vlc(&ctx->sets[i].filter_coeffs[j][k]);
00119 for (j = 0; j < 15; j++)
00120 ff_free_vlc(&ctx->sets[i].short_codes[j]);
00121 for (j = 0; j < 125; j++)
00122 ff_free_vlc(&ctx->sets[i].long_codes[j]);
00123 }
00124
00125 return 0;
00126 }
00127
00128 static av_cold int decode_init(AVCodecContext *avctx)
00129 {
00130 RALFContext *ctx = avctx->priv_data;
00131 int i, j, k;
00132 int ret;
00133
00134 if (avctx->extradata_size < 24 || memcmp(avctx->extradata, "LSD:", 4)) {
00135 av_log(avctx, AV_LOG_ERROR, "Extradata is not groovy, dude\n");
00136 return AVERROR_INVALIDDATA;
00137 }
00138
00139 ctx->version = AV_RB16(avctx->extradata + 4);
00140 if (ctx->version != 0x103) {
00141 av_log_ask_for_sample(avctx, "unknown version %X\n", ctx->version);
00142 return AVERROR_PATCHWELCOME;
00143 }
00144
00145 avctx->channels = AV_RB16(avctx->extradata + 8);
00146 avctx->sample_rate = AV_RB32(avctx->extradata + 12);
00147 if (avctx->channels < 1 || avctx->channels > 2
00148 || avctx->sample_rate < 8000 || avctx->sample_rate > 96000) {
00149 av_log(avctx, AV_LOG_ERROR, "Invalid coding parameters %d Hz %d ch\n",
00150 avctx->sample_rate, avctx->channels);
00151 return AVERROR_INVALIDDATA;
00152 }
00153 avctx->sample_fmt = AV_SAMPLE_FMT_S16P;
00154 avctx->channel_layout = (avctx->channels == 2) ? AV_CH_LAYOUT_STEREO
00155 : AV_CH_LAYOUT_MONO;
00156
00157 avcodec_get_frame_defaults(&ctx->frame);
00158 avctx->coded_frame = &ctx->frame;
00159
00160 ctx->max_frame_size = AV_RB32(avctx->extradata + 16);
00161 if (ctx->max_frame_size > (1 << 20) || !ctx->max_frame_size) {
00162 av_log(avctx, AV_LOG_ERROR, "invalid frame size %d\n",
00163 ctx->max_frame_size);
00164 }
00165 ctx->max_frame_size = FFMAX(ctx->max_frame_size, avctx->sample_rate);
00166
00167 for (i = 0; i < 3; i++) {
00168 ret = init_ralf_vlc(&ctx->sets[i].filter_params, filter_param_def[i],
00169 FILTERPARAM_ELEMENTS);
00170 if (ret < 0) {
00171 decode_close(avctx);
00172 return ret;
00173 }
00174 ret = init_ralf_vlc(&ctx->sets[i].bias, bias_def[i], BIAS_ELEMENTS);
00175 if (ret < 0) {
00176 decode_close(avctx);
00177 return ret;
00178 }
00179 ret = init_ralf_vlc(&ctx->sets[i].coding_mode, coding_mode_def[i],
00180 CODING_MODE_ELEMENTS);
00181 if (ret < 0) {
00182 decode_close(avctx);
00183 return ret;
00184 }
00185 for (j = 0; j < 10; j++) {
00186 for (k = 0; k < 11; k++) {
00187 ret = init_ralf_vlc(&ctx->sets[i].filter_coeffs[j][k],
00188 filter_coeffs_def[i][j][k],
00189 FILTER_COEFFS_ELEMENTS);
00190 if (ret < 0) {
00191 decode_close(avctx);
00192 return ret;
00193 }
00194 }
00195 }
00196 for (j = 0; j < 15; j++) {
00197 ret = init_ralf_vlc(&ctx->sets[i].short_codes[j],
00198 short_codes_def[i][j], SHORT_CODES_ELEMENTS);
00199 if (ret < 0) {
00200 decode_close(avctx);
00201 return ret;
00202 }
00203 }
00204 for (j = 0; j < 125; j++) {
00205 ret = init_ralf_vlc(&ctx->sets[i].long_codes[j],
00206 long_codes_def[i][j], LONG_CODES_ELEMENTS);
00207 if (ret < 0) {
00208 decode_close(avctx);
00209 return ret;
00210 }
00211 }
00212 }
00213
00214 return 0;
00215 }
00216
00217 static inline int extend_code(GetBitContext *gb, int val, int range, int bits)
00218 {
00219 if (val == 0) {
00220 val = -range - get_ue_golomb(gb);
00221 } else if (val == range * 2) {
00222 val = range + get_ue_golomb(gb);
00223 } else {
00224 val -= range;
00225 }
00226 if (bits)
00227 val = (val << bits) | get_bits(gb, bits);
00228 return val;
00229 }
00230
00231 static int decode_channel(RALFContext *ctx, GetBitContext *gb, int ch,
00232 int length, int mode, int bits)
00233 {
00234 int i, t;
00235 int code_params;
00236 VLCSet *set = ctx->sets + mode;
00237 VLC *code_vlc; int range, range2, add_bits;
00238 int *dst = ctx->channel_data[ch];
00239
00240 ctx->filter_params = get_vlc2(gb, set->filter_params.table, 9, 2);
00241 ctx->filter_bits = (ctx->filter_params - 2) >> 6;
00242 ctx->filter_length = ctx->filter_params - (ctx->filter_bits << 6) - 1;
00243
00244 if (ctx->filter_params == FILTER_RAW) {
00245 for (i = 0; i < length; i++)
00246 dst[i] = get_bits(gb, bits);
00247 ctx->bias[ch] = 0;
00248 return 0;
00249 }
00250
00251 ctx->bias[ch] = get_vlc2(gb, set->bias.table, 9, 2);
00252 ctx->bias[ch] = extend_code(gb, ctx->bias[ch], 127, 4);
00253
00254 if (ctx->filter_params == FILTER_NONE) {
00255 memset(dst, 0, sizeof(*dst) * length);
00256 return 0;
00257 }
00258
00259 if (ctx->filter_params > 1) {
00260 int cmode = 0, coeff = 0;
00261 VLC *vlc = set->filter_coeffs[ctx->filter_bits] + 5;
00262
00263 add_bits = ctx->filter_bits;
00264
00265 for (i = 0; i < ctx->filter_length; i++) {
00266 t = get_vlc2(gb, vlc[cmode].table, vlc[cmode].bits, 2);
00267 t = extend_code(gb, t, 21, add_bits);
00268 if (!cmode)
00269 coeff -= 12 << add_bits;
00270 coeff = t - coeff;
00271 ctx->filter[i] = coeff;
00272
00273 cmode = coeff >> add_bits;
00274 if (cmode < 0) {
00275 cmode = -1 - av_log2(-cmode);
00276 if (cmode < -5)
00277 cmode = -5;
00278 } else if (cmode > 0) {
00279 cmode = 1 + av_log2(cmode);
00280 if (cmode > 5)
00281 cmode = 5;
00282 }
00283 }
00284 }
00285
00286 code_params = get_vlc2(gb, set->coding_mode.table, set->coding_mode.bits, 2);
00287 if (code_params >= 15) {
00288 add_bits = av_clip((code_params / 5 - 3) / 2, 0, 10);
00289 if (add_bits > 9 && (code_params % 5) != 2)
00290 add_bits--;
00291 range = 10;
00292 range2 = 21;
00293 code_vlc = set->long_codes + code_params - 15;
00294 } else {
00295 add_bits = 0;
00296 range = 6;
00297 range2 = 13;
00298 code_vlc = set->short_codes + code_params;
00299 }
00300
00301 for (i = 0; i < length; i += 2) {
00302 int code1, code2;
00303
00304 t = get_vlc2(gb, code_vlc->table, code_vlc->bits, 2);
00305 code1 = t / range2;
00306 code2 = t % range2;
00307 dst[i] = extend_code(gb, code1, range, 0) << add_bits;
00308 dst[i + 1] = extend_code(gb, code2, range, 0) << add_bits;
00309 if (add_bits) {
00310 dst[i] |= get_bits(gb, add_bits);
00311 dst[i + 1] |= get_bits(gb, add_bits);
00312 }
00313 }
00314
00315 return 0;
00316 }
00317
00318 static void apply_lpc(RALFContext *ctx, int ch, int length, int bits)
00319 {
00320 int i, j, acc;
00321 int *audio = ctx->channel_data[ch];
00322 int bias = 1 << (ctx->filter_bits - 1);
00323 int max_clip = (1 << bits) - 1, min_clip = -max_clip - 1;
00324
00325 for (i = 1; i < length; i++) {
00326 int flen = FFMIN(ctx->filter_length, i);
00327
00328 acc = 0;
00329 for (j = 0; j < flen; j++)
00330 acc += ctx->filter[j] * audio[i - j - 1];
00331 if (acc < 0) {
00332 acc = (acc + bias - 1) >> ctx->filter_bits;
00333 acc = FFMAX(acc, min_clip);
00334 } else {
00335 acc = (acc + bias) >> ctx->filter_bits;
00336 acc = FFMIN(acc, max_clip);
00337 }
00338 audio[i] += acc;
00339 }
00340 }
00341
00342 static int decode_block(AVCodecContext *avctx, GetBitContext *gb,
00343 int16_t *dst0, int16_t *dst1)
00344 {
00345 RALFContext *ctx = avctx->priv_data;
00346 int len, ch, ret;
00347 int dmode, mode[2], bits[2];
00348 int *ch0, *ch1;
00349 int i, t, t2;
00350
00351 len = 12 - get_unary(gb, 0, 6);
00352
00353 if (len <= 7) len ^= 1;
00354 len = 1 << len;
00355
00356 if (ctx->sample_offset + len > ctx->max_frame_size) {
00357 av_log(avctx, AV_LOG_ERROR,
00358 "Decoder's stomach is crying, it ate too many samples\n");
00359 return AVERROR_INVALIDDATA;
00360 }
00361
00362 if (avctx->channels > 1)
00363 dmode = get_bits(gb, 2) + 1;
00364 else
00365 dmode = 0;
00366
00367 mode[0] = (dmode == 4) ? 1 : 0;
00368 mode[1] = (dmode >= 2) ? 2 : 0;
00369 bits[0] = 16;
00370 bits[1] = (mode[1] == 2) ? 17 : 16;
00371
00372 for (ch = 0; ch < avctx->channels; ch++) {
00373 if ((ret = decode_channel(ctx, gb, ch, len, mode[ch], bits[ch])) < 0)
00374 return ret;
00375 if (ctx->filter_params > 1 && ctx->filter_params != FILTER_RAW) {
00376 ctx->filter_bits += 3;
00377 apply_lpc(ctx, ch, len, bits[ch]);
00378 }
00379 if (get_bits_left(gb) < 0)
00380 return AVERROR_INVALIDDATA;
00381 }
00382 ch0 = ctx->channel_data[0];
00383 ch1 = ctx->channel_data[1];
00384 switch (dmode) {
00385 case 0:
00386 for (i = 0; i < len; i++)
00387 dst0[i] = ch0[i] + ctx->bias[0];
00388 break;
00389 case 1:
00390 for (i = 0; i < len; i++) {
00391 dst0[i] = ch0[i] + ctx->bias[0];
00392 dst1[i] = ch1[i] + ctx->bias[1];
00393 }
00394 break;
00395 case 2:
00396 for (i = 0; i < len; i++) {
00397 ch0[i] += ctx->bias[0];
00398 dst0[i] = ch0[i];
00399 dst1[i] = ch0[i] - (ch1[i] + ctx->bias[1]);
00400 }
00401 break;
00402 case 3:
00403 for (i = 0; i < len; i++) {
00404 t = ch0[i] + ctx->bias[0];
00405 t2 = ch1[i] + ctx->bias[1];
00406 dst0[i] = t + t2;
00407 dst1[i] = t;
00408 }
00409 break;
00410 case 4:
00411 for (i = 0; i < len; i++) {
00412 t = ch1[i] + ctx->bias[1];
00413 t2 = ((ch0[i] + ctx->bias[0]) << 1) | (t & 1);
00414 dst0[i] = (t2 + t) / 2;
00415 dst1[i] = (t2 - t) / 2;
00416 }
00417 break;
00418 }
00419
00420 ctx->sample_offset += len;
00421
00422 return 0;
00423 }
00424
00425 static int decode_frame(AVCodecContext *avctx, void *data, int *got_frame_ptr,
00426 AVPacket *avpkt)
00427 {
00428 RALFContext *ctx = avctx->priv_data;
00429 int16_t *samples0;
00430 int16_t *samples1;
00431 int ret;
00432 GetBitContext gb;
00433 int table_size, table_bytes, i;
00434 const uint8_t *src, *block_pointer;
00435 int src_size;
00436 int bytes_left;
00437
00438 if (ctx->has_pkt) {
00439 ctx->has_pkt = 0;
00440 table_bytes = (AV_RB16(avpkt->data) + 7) >> 3;
00441 if (table_bytes + 3 > avpkt->size || avpkt->size > RALF_MAX_PKT_SIZE) {
00442 av_log(avctx, AV_LOG_ERROR, "Wrong packet's breath smells of wrong data!\n");
00443 return AVERROR_INVALIDDATA;
00444 }
00445 if (memcmp(ctx->pkt, avpkt->data, 2 + table_bytes)) {
00446 av_log(avctx, AV_LOG_ERROR, "Wrong packet tails are wrong!\n");
00447 return AVERROR_INVALIDDATA;
00448 }
00449
00450 src = ctx->pkt;
00451 src_size = RALF_MAX_PKT_SIZE + avpkt->size;
00452 memcpy(ctx->pkt + RALF_MAX_PKT_SIZE, avpkt->data + 2 + table_bytes,
00453 avpkt->size - 2 - table_bytes);
00454 } else {
00455 if (avpkt->size == RALF_MAX_PKT_SIZE) {
00456 memcpy(ctx->pkt, avpkt->data, avpkt->size);
00457 ctx->has_pkt = 1;
00458 *got_frame_ptr = 0;
00459
00460 return avpkt->size;
00461 }
00462 src = avpkt->data;
00463 src_size = avpkt->size;
00464 }
00465
00466 ctx->frame.nb_samples = ctx->max_frame_size;
00467 if ((ret = ff_get_buffer(avctx, &ctx->frame)) < 0) {
00468 av_log(avctx, AV_LOG_ERROR, "Me fail get_buffer()? That's unpossible!\n");
00469 return ret;
00470 }
00471 samples0 = (int16_t *)ctx->frame.data[0];
00472 samples1 = (int16_t *)ctx->frame.data[1];
00473
00474 if (src_size < 5) {
00475 av_log(avctx, AV_LOG_ERROR, "too short packets are too short!\n");
00476 return AVERROR_INVALIDDATA;
00477 }
00478 table_size = AV_RB16(src);
00479 table_bytes = (table_size + 7) >> 3;
00480 if (src_size < table_bytes + 3) {
00481 av_log(avctx, AV_LOG_ERROR, "short packets are short!\n");
00482 return AVERROR_INVALIDDATA;
00483 }
00484 init_get_bits(&gb, src + 2, table_size);
00485 ctx->num_blocks = 0;
00486 while (get_bits_left(&gb) > 0) {
00487 ctx->block_size[ctx->num_blocks] = get_bits(&gb, 15);
00488 if (get_bits1(&gb)) {
00489 ctx->block_pts[ctx->num_blocks] = get_bits(&gb, 9);
00490 } else {
00491 ctx->block_pts[ctx->num_blocks] = 0;
00492 }
00493 ctx->num_blocks++;
00494 }
00495
00496 block_pointer = src + table_bytes + 2;
00497 bytes_left = src_size - table_bytes - 2;
00498 ctx->sample_offset = 0;
00499 for (i = 0; i < ctx->num_blocks; i++) {
00500 if (bytes_left < ctx->block_size[i]) {
00501 av_log(avctx, AV_LOG_ERROR, "I'm pedaling backwards\n");
00502 break;
00503 }
00504 init_get_bits(&gb, block_pointer, ctx->block_size[i] * 8);
00505 if (decode_block(avctx, &gb, samples0 + ctx->sample_offset,
00506 samples1 + ctx->sample_offset) < 0) {
00507 av_log(avctx, AV_LOG_ERROR, "Sir, I got carsick in your office. Not decoding the rest of packet.\n");
00508 break;
00509 }
00510 block_pointer += ctx->block_size[i];
00511 bytes_left -= ctx->block_size[i];
00512 }
00513
00514 ctx->frame.nb_samples = ctx->sample_offset;
00515 *got_frame_ptr = ctx->sample_offset > 0;
00516 *(AVFrame*)data = ctx->frame;
00517
00518 return avpkt->size;
00519 }
00520
00521 static void decode_flush(AVCodecContext *avctx)
00522 {
00523 RALFContext *ctx = avctx->priv_data;
00524
00525 ctx->has_pkt = 0;
00526 }
00527
00528
00529 AVCodec ff_ralf_decoder = {
00530 .name = "ralf",
00531 .type = AVMEDIA_TYPE_AUDIO,
00532 .id = AV_CODEC_ID_RALF,
00533 .priv_data_size = sizeof(RALFContext),
00534 .init = decode_init,
00535 .close = decode_close,
00536 .decode = decode_frame,
00537 .flush = decode_flush,
00538 .capabilities = CODEC_CAP_DR1,
00539 .long_name = NULL_IF_CONFIG_SMALL("RealAudio Lossless"),
00540 .sample_fmts = (const enum AVSampleFormat[]) { AV_SAMPLE_FMT_S16P,
00541 AV_SAMPLE_FMT_NONE },
00542 };