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rtpdec_h264.c
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1 /*
2  * RTP H264 Protocol (RFC3984)
3  * Copyright (c) 2006 Ryan Martell
4  *
5  * This file is part of FFmpeg.
6  *
7  * FFmpeg is free software; you can redistribute it and/or
8  * modify it under the terms of the GNU Lesser General Public
9  * License as published by the Free Software Foundation; either
10  * version 2.1 of the License, or (at your option) any later version.
11  *
12  * FFmpeg is distributed in the hope that it will be useful,
13  * but WITHOUT ANY WARRANTY; without even the implied warranty of
14  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
15  * Lesser General Public License for more details.
16  *
17  * You should have received a copy of the GNU Lesser General Public
18  * License along with FFmpeg; if not, write to the Free Software
19  * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
20  */
21 
22 /**
23  * @file
24  * @brief H.264 / RTP Code (RFC3984)
25  * @author Ryan Martell <rdm4@martellventures.com>
26  *
27  * @note Notes:
28  * Notes:
29  * This currently supports packetization mode:
30  * Single Nal Unit Mode (0), or
31  * Non-Interleaved Mode (1). It currently does not support
32  * Interleaved Mode (2). (This requires implementing STAP-B, MTAP16, MTAP24,
33  * FU-B packet types)
34  */
35 
36 #include "libavutil/attributes.h"
37 #include "libavutil/base64.h"
38 #include "libavutil/avstring.h"
39 #include "libavcodec/get_bits.h"
40 #include "avformat.h"
41 
42 #include "network.h"
43 #include <assert.h>
44 
45 #include "rtpdec.h"
46 #include "rtpdec_formats.h"
47 
48 struct PayloadContext {
49  // sdp setup parameters
54 #ifdef DEBUG
55  int packet_types_received[32];
56 #endif
57 };
58 
59 #ifdef DEBUG
60 #define COUNT_NAL_TYPE(data, nal) data->packet_types_received[(nal) & 0x1f]++
61 #else
62 #define COUNT_NAL_TYPE(data, nal) do { } while (0)
63 #endif
64 
65 static const uint8_t start_sequence[] = { 0, 0, 0, 1 };
66 
68  PayloadContext *h264_data,
69  char *attr, char *value)
70 {
71  AVCodecContext *codec = stream->codec;
72  assert(codec->codec_id == AV_CODEC_ID_H264);
73  assert(h264_data != NULL);
74 
75  if (!strcmp(attr, "packetization-mode")) {
76  av_log(codec, AV_LOG_DEBUG, "RTP Packetization Mode: %d\n", atoi(value));
77  h264_data->packetization_mode = atoi(value);
78  /*
79  * Packetization Mode:
80  * 0 or not present: Single NAL mode (Only nals from 1-23 are allowed)
81  * 1: Non-interleaved Mode: 1-23, 24 (STAP-A), 28 (FU-A) are allowed.
82  * 2: Interleaved Mode: 25 (STAP-B), 26 (MTAP16), 27 (MTAP24), 28 (FU-A),
83  * and 29 (FU-B) are allowed.
84  */
85  if (h264_data->packetization_mode > 1)
86  av_log(codec, AV_LOG_ERROR,
87  "Interleaved RTP mode is not supported yet.\n");
88  } else if (!strcmp(attr, "profile-level-id")) {
89  if (strlen(value) == 6) {
90  char buffer[3];
91  // 6 characters=3 bytes, in hex.
92  uint8_t profile_idc;
93  uint8_t profile_iop;
94  uint8_t level_idc;
95 
96  buffer[0] = value[0];
97  buffer[1] = value[1];
98  buffer[2] = '\0';
99  profile_idc = strtol(buffer, NULL, 16);
100  buffer[0] = value[2];
101  buffer[1] = value[3];
102  profile_iop = strtol(buffer, NULL, 16);
103  buffer[0] = value[4];
104  buffer[1] = value[5];
105  level_idc = strtol(buffer, NULL, 16);
106 
107  av_log(codec, AV_LOG_DEBUG,
108  "RTP Profile IDC: %x Profile IOP: %x Level: %x\n",
109  profile_idc, profile_iop, level_idc);
110  h264_data->profile_idc = profile_idc;
111  h264_data->profile_iop = profile_iop;
112  h264_data->level_idc = level_idc;
113  }
114  } else if (!strcmp(attr, "sprop-parameter-sets")) {
115  codec->extradata_size = 0;
116  av_freep(&codec->extradata);
117 
118  while (*value) {
119  char base64packet[1024];
120  uint8_t decoded_packet[1024];
121  int packet_size;
122  char *dst = base64packet;
123 
124  while (*value && *value != ','
125  && (dst - base64packet) < sizeof(base64packet) - 1) {
126  *dst++ = *value++;
127  }
128  *dst++ = '\0';
129 
130  if (*value == ',')
131  value++;
132 
133  packet_size = av_base64_decode(decoded_packet, base64packet,
134  sizeof(decoded_packet));
135  if (packet_size > 0) {
136  uint8_t *dest = av_malloc(packet_size + sizeof(start_sequence) +
137  codec->extradata_size +
139  if (!dest) {
140  av_log(codec, AV_LOG_ERROR,
141  "Unable to allocate memory for extradata!\n");
142  return AVERROR(ENOMEM);
143  }
144  if (codec->extradata_size) {
145  memcpy(dest, codec->extradata, codec->extradata_size);
146  av_free(codec->extradata);
147  }
148 
149  memcpy(dest + codec->extradata_size, start_sequence,
150  sizeof(start_sequence));
151  memcpy(dest + codec->extradata_size + sizeof(start_sequence),
152  decoded_packet, packet_size);
153  memset(dest + codec->extradata_size + sizeof(start_sequence) +
154  packet_size, 0, FF_INPUT_BUFFER_PADDING_SIZE);
155 
156  codec->extradata = dest;
157  codec->extradata_size += sizeof(start_sequence) + packet_size;
158  }
159  }
160  av_log(codec, AV_LOG_DEBUG, "Extradata set to %p (size: %d)!\n",
161  codec->extradata, codec->extradata_size);
162  }
163  return 0;
164 }
165 
166 // return 0 on packet, no more left, 1 on packet, 1 on partial packet
168  AVStream *st, AVPacket *pkt, uint32_t *timestamp,
169  const uint8_t *buf, int len, uint16_t seq,
170  int flags)
171 {
172  uint8_t nal;
173  uint8_t type;
174  int result = 0;
175 
176  if (!len) {
177  av_log(ctx, AV_LOG_ERROR, "Empty H264 RTP packet\n");
178  return AVERROR_INVALIDDATA;
179  }
180  nal = buf[0];
181  type = nal & 0x1f;
182 
183  assert(data);
184  assert(buf);
185 
186  /* Simplify the case (these are all the nal types used internally by
187  * the h264 codec). */
188  if (type >= 1 && type <= 23)
189  type = 1;
190  switch (type) {
191  case 0: // undefined, but pass them through
192  case 1:
193  if ((result = av_new_packet(pkt, len + sizeof(start_sequence))) < 0)
194  return result;
195  memcpy(pkt->data, start_sequence, sizeof(start_sequence));
196  memcpy(pkt->data + sizeof(start_sequence), buf, len);
197  COUNT_NAL_TYPE(data, nal);
198  break;
199 
200  case 24: // STAP-A (one packet, multiple nals)
201  // consume the STAP-A NAL
202  buf++;
203  len--;
204  // first we are going to figure out the total size
205  {
206  int pass = 0;
207  int total_length = 0;
208  uint8_t *dst = NULL;
209 
210  for (pass = 0; pass < 2; pass++) {
211  const uint8_t *src = buf;
212  int src_len = len;
213 
214  while (src_len > 2) {
215  uint16_t nal_size = AV_RB16(src);
216 
217  // consume the length of the aggregate
218  src += 2;
219  src_len -= 2;
220 
221  if (nal_size <= src_len) {
222  if (pass == 0) {
223  // counting
224  total_length += sizeof(start_sequence) + nal_size;
225  } else {
226  // copying
227  assert(dst);
228  memcpy(dst, start_sequence, sizeof(start_sequence));
229  dst += sizeof(start_sequence);
230  memcpy(dst, src, nal_size);
231  COUNT_NAL_TYPE(data, *src);
232  dst += nal_size;
233  }
234  } else {
235  av_log(ctx, AV_LOG_ERROR,
236  "nal size exceeds length: %d %d\n", nal_size, src_len);
237  }
238 
239  // eat what we handled
240  src += nal_size;
241  src_len -= nal_size;
242 
243  if (src_len < 0)
244  av_log(ctx, AV_LOG_ERROR,
245  "Consumed more bytes than we got! (%d)\n", src_len);
246  }
247 
248  if (pass == 0) {
249  /* now we know the total size of the packet (with the
250  * start sequences added) */
251  if ((result = av_new_packet(pkt, total_length)) < 0)
252  return result;
253  dst = pkt->data;
254  } else {
255  assert(dst - pkt->data == total_length);
256  }
257  }
258  }
259  break;
260 
261  case 25: // STAP-B
262  case 26: // MTAP-16
263  case 27: // MTAP-24
264  case 29: // FU-B
265  av_log(ctx, AV_LOG_ERROR,
266  "Unhandled type (%d) (See RFC for implementation details\n",
267  type);
268  result = AVERROR(ENOSYS);
269  break;
270 
271  case 28: // FU-A (fragmented nal)
272  buf++;
273  len--; // skip the fu_indicator
274  if (len > 1) {
275  // these are the same as above, we just redo them here for clarity
276  uint8_t fu_indicator = nal;
277  uint8_t fu_header = *buf;
278  uint8_t start_bit = fu_header >> 7;
279  uint8_t av_unused end_bit = (fu_header & 0x40) >> 6;
280  uint8_t nal_type = fu_header & 0x1f;
281  uint8_t reconstructed_nal;
282 
283  // Reconstruct this packet's true nal; only the data follows.
284  /* The original nal forbidden bit and NRI are stored in this
285  * packet's nal. */
286  reconstructed_nal = fu_indicator & 0xe0;
287  reconstructed_nal |= nal_type;
288 
289  // skip the fu_header
290  buf++;
291  len--;
292 
293  if (start_bit)
294  COUNT_NAL_TYPE(data, nal_type);
295  if (start_bit) {
296  /* copy in the start sequence, and the reconstructed nal */
297  if ((result = av_new_packet(pkt, sizeof(start_sequence) + sizeof(nal) + len)) < 0)
298  return result;
299  memcpy(pkt->data, start_sequence, sizeof(start_sequence));
300  pkt->data[sizeof(start_sequence)] = reconstructed_nal;
301  memcpy(pkt->data + sizeof(start_sequence) + sizeof(nal), buf, len);
302  } else {
303  if ((result = av_new_packet(pkt, len)) < 0)
304  return result;
305  memcpy(pkt->data, buf, len);
306  }
307  } else {
308  av_log(ctx, AV_LOG_ERROR, "Too short data for FU-A H264 RTP packet\n");
309  result = AVERROR_INVALIDDATA;
310  }
311  break;
312 
313  case 30: // undefined
314  case 31: // undefined
315  default:
316  av_log(ctx, AV_LOG_ERROR, "Undefined type (%d)\n", type);
317  result = AVERROR_INVALIDDATA;
318  break;
319  }
320 
321  pkt->stream_index = st->index;
322 
323  return result;
324 }
325 
327 {
329 }
330 
332 {
333 #ifdef DEBUG
334  int ii;
335 
336  for (ii = 0; ii < 32; ii++) {
337  if (data->packet_types_received[ii])
338  av_log(NULL, AV_LOG_DEBUG, "Received %d packets of type %d\n",
339  data->packet_types_received[ii], ii);
340  }
341 #endif
342 
343  av_free(data);
344 }
345 
346 static av_cold int h264_init(AVFormatContext *s, int st_index,
348 {
349  if (st_index < 0)
350  return 0;
351  s->streams[st_index]->need_parsing = AVSTREAM_PARSE_FULL;
352  return 0;
353 }
354 
355 static int parse_h264_sdp_line(AVFormatContext *s, int st_index,
356  PayloadContext *h264_data, const char *line)
357 {
358  AVStream *stream;
359  AVCodecContext *codec;
360  const char *p = line;
361 
362  if (st_index < 0)
363  return 0;
364 
365  stream = s->streams[st_index];
366  codec = stream->codec;
367 
368  if (av_strstart(p, "framesize:", &p)) {
369  char buf1[50];
370  char *dst = buf1;
371 
372  // remove the protocol identifier
373  while (*p && *p == ' ')
374  p++; // strip spaces.
375  while (*p && *p != ' ')
376  p++; // eat protocol identifier
377  while (*p && *p == ' ')
378  p++; // strip trailing spaces.
379  while (*p && *p != '-' && (dst - buf1) < sizeof(buf1) - 1)
380  *dst++ = *p++;
381  *dst = '\0';
382 
383  // a='framesize:96 320-240'
384  // set our parameters
385  codec->width = atoi(buf1);
386  codec->height = atoi(p + 1); // skip the -
387  } else if (av_strstart(p, "fmtp:", &p)) {
388  return ff_parse_fmtp(stream, h264_data, p, sdp_parse_fmtp_config_h264);
389  } else if (av_strstart(p, "cliprect:", &p)) {
390  // could use this if we wanted.
391  }
392 
393  return 0;
394 }
395 
397  .enc_name = "H264",
398  .codec_type = AVMEDIA_TYPE_VIDEO,
399  .codec_id = AV_CODEC_ID_H264,
400  .init = h264_init,
401  .parse_sdp_a_line = parse_h264_sdp_line,
402  .alloc = h264_new_context,
403  .free = h264_free_context,
404  .parse_packet = h264_handle_packet
405 };