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1 /*
2  * Copyright (c) 2017, Alliance for Open Media. All rights reserved
3  *
4  * This source code is subject to the terms of the BSD 2 Clause License and
5  * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
6  * was not distributed with this source code in the LICENSE file, you can
7  * obtain it at www.aomedia.org/license/software. If the Alliance for Open
8  * Media Patent License 1.0 was not distributed with this source code in the
9  * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
10  */
11 
12 #include <assert.h>
13 
14 #include "config/aom_config.h"
15 #include "config/aom_scale_rtcd.h"
16 
17 #include "aom/aom_codec.h"
18 #include "aom_dsp/bitreader_buffer.h"
19 #include "aom_ports/mem_ops.h"
20 
21 #include "av1/common/common.h"
22 #include "av1/common/obu_util.h"
23 #include "av1/common/timing.h"
24 #include "av1/decoder/decoder.h"
25 #include "av1/decoder/decodeframe.h"
26 #include "av1/decoder/obu.h"
27 
aom_get_num_layers_from_operating_point_idc(int operating_point_idc,unsigned int * number_spatial_layers,unsigned int * number_temporal_layers)28 aom_codec_err_t aom_get_num_layers_from_operating_point_idc(
29     int operating_point_idc, unsigned int *number_spatial_layers,
30     unsigned int *number_temporal_layers) {
31   // derive number of spatial/temporal layers from operating_point_idc
32 
33   if (!number_spatial_layers || !number_temporal_layers)
34     return AOM_CODEC_INVALID_PARAM;
35 
36   if (operating_point_idc == 0) {
37     *number_temporal_layers = 1;
38     *number_spatial_layers = 1;
39   } else {
40     *number_spatial_layers = 0;
41     *number_temporal_layers = 0;
42     for (int j = 0; j < MAX_NUM_SPATIAL_LAYERS; j++) {
43       *number_spatial_layers +=
44           (operating_point_idc >> (j + MAX_NUM_TEMPORAL_LAYERS)) & 0x1;
45     }
46     for (int j = 0; j < MAX_NUM_TEMPORAL_LAYERS; j++) {
47       *number_temporal_layers += (operating_point_idc >> j) & 0x1;
48     }
49   }
50 
51   return AOM_CODEC_OK;
52 }
53 
is_obu_in_current_operating_point(AV1Decoder * pbi,const ObuHeader * obu_header)54 static int is_obu_in_current_operating_point(AV1Decoder *pbi,
55                                              const ObuHeader *obu_header) {
56   if (!pbi->current_operating_point || !obu_header->has_extension) {
57     return 1;
58   }
59 
60   if ((pbi->current_operating_point >> obu_header->temporal_layer_id) & 0x1 &&
61       (pbi->current_operating_point >> (obu_header->spatial_layer_id + 8)) &
62           0x1) {
63     return 1;
64   }
65   return 0;
66 }
67 
byte_alignment(AV1_COMMON * const cm,struct aom_read_bit_buffer * const rb)68 static int byte_alignment(AV1_COMMON *const cm,
69                           struct aom_read_bit_buffer *const rb) {
70   while (rb->bit_offset & 7) {
71     if (aom_rb_read_bit(rb)) {
72       cm->error->error_code = AOM_CODEC_CORRUPT_FRAME;
73       return -1;
74     }
75   }
76   return 0;
77 }
78 
read_temporal_delimiter_obu()79 static uint32_t read_temporal_delimiter_obu() { return 0; }
80 
81 // Returns a boolean that indicates success.
read_bitstream_level(AV1_LEVEL * seq_level_idx,struct aom_read_bit_buffer * rb)82 static int read_bitstream_level(AV1_LEVEL *seq_level_idx,
83                                 struct aom_read_bit_buffer *rb) {
84   *seq_level_idx = aom_rb_read_literal(rb, LEVEL_BITS);
85   if (!is_valid_seq_level_idx(*seq_level_idx)) return 0;
86   return 1;
87 }
88 
89 // Returns whether two sequence headers are consistent with each other.
90 // Note that the 'op_params' field is not compared per Section 7.5 in the spec:
91 //   Within a particular coded video sequence, the contents of
92 //   sequence_header_obu must be bit-identical each time the sequence header
93 //   appears except for the contents of operating_parameters_info.
are_seq_headers_consistent(const SequenceHeader * seq_params_old,const SequenceHeader * seq_params_new)94 static int are_seq_headers_consistent(const SequenceHeader *seq_params_old,
95                                       const SequenceHeader *seq_params_new) {
96   return !memcmp(seq_params_old, seq_params_new,
97                  offsetof(SequenceHeader, op_params));
98 }
99 
100 // On success, sets pbi->sequence_header_ready to 1 and returns the number of
101 // bytes read from 'rb'.
102 // On failure, sets pbi->common.error.error_code and returns 0.
read_sequence_header_obu(AV1Decoder * pbi,struct aom_read_bit_buffer * rb)103 static uint32_t read_sequence_header_obu(AV1Decoder *pbi,
104                                          struct aom_read_bit_buffer *rb) {
105   AV1_COMMON *const cm = &pbi->common;
106   const uint32_t saved_bit_offset = rb->bit_offset;
107 
108   // Verify rb has been configured to report errors.
109   assert(rb->error_handler);
110 
111   // Use a local variable to store the information as we decode. At the end,
112   // if no errors have occurred, cm->seq_params is updated.
113   SequenceHeader sh = *cm->seq_params;
114   SequenceHeader *const seq_params = &sh;
115 
116   seq_params->profile = av1_read_profile(rb);
117   if (seq_params->profile > CONFIG_MAX_DECODE_PROFILE) {
118     pbi->error.error_code = AOM_CODEC_UNSUP_BITSTREAM;
119     return 0;
120   }
121 
122   // Still picture or not
123   seq_params->still_picture = aom_rb_read_bit(rb);
124   seq_params->reduced_still_picture_hdr = aom_rb_read_bit(rb);
125   // Video must have reduced_still_picture_hdr = 0
126   if (!seq_params->still_picture && seq_params->reduced_still_picture_hdr) {
127     pbi->error.error_code = AOM_CODEC_UNSUP_BITSTREAM;
128     return 0;
129   }
130 
131   if (seq_params->reduced_still_picture_hdr) {
132     seq_params->timing_info_present = 0;
133     seq_params->decoder_model_info_present_flag = 0;
134     seq_params->display_model_info_present_flag = 0;
135     seq_params->operating_points_cnt_minus_1 = 0;
136     seq_params->operating_point_idc[0] = 0;
137     if (!read_bitstream_level(&seq_params->seq_level_idx[0], rb)) {
138       pbi->error.error_code = AOM_CODEC_UNSUP_BITSTREAM;
139       return 0;
140     }
141     seq_params->tier[0] = 0;
142     seq_params->op_params[0].decoder_model_param_present_flag = 0;
143     seq_params->op_params[0].display_model_param_present_flag = 0;
144   } else {
145     seq_params->timing_info_present = aom_rb_read_bit(rb);
146     if (seq_params->timing_info_present) {
147       av1_read_timing_info_header(&seq_params->timing_info, &pbi->error, rb);
148 
149       seq_params->decoder_model_info_present_flag = aom_rb_read_bit(rb);
150       if (seq_params->decoder_model_info_present_flag)
151         av1_read_decoder_model_info(&seq_params->decoder_model_info, rb);
152     } else {
153       seq_params->decoder_model_info_present_flag = 0;
154     }
155     seq_params->display_model_info_present_flag = aom_rb_read_bit(rb);
156     seq_params->operating_points_cnt_minus_1 =
157         aom_rb_read_literal(rb, OP_POINTS_CNT_MINUS_1_BITS);
158     for (int i = 0; i < seq_params->operating_points_cnt_minus_1 + 1; i++) {
159       seq_params->operating_point_idc[i] =
160           aom_rb_read_literal(rb, OP_POINTS_IDC_BITS);
161       if (!read_bitstream_level(&seq_params->seq_level_idx[i], rb)) {
162         pbi->error.error_code = AOM_CODEC_UNSUP_BITSTREAM;
163         return 0;
164       }
165       // This is the seq_level_idx[i] > 7 check in the spec. seq_level_idx 7
166       // is equivalent to level 3.3.
167       if (seq_params->seq_level_idx[i] >= SEQ_LEVEL_4_0)
168         seq_params->tier[i] = aom_rb_read_bit(rb);
169       else
170         seq_params->tier[i] = 0;
171       if (seq_params->decoder_model_info_present_flag) {
172         seq_params->op_params[i].decoder_model_param_present_flag =
173             aom_rb_read_bit(rb);
174         if (seq_params->op_params[i].decoder_model_param_present_flag)
175           av1_read_op_parameters_info(&seq_params->op_params[i],
176                                       seq_params->decoder_model_info
177                                           .encoder_decoder_buffer_delay_length,
178                                       rb);
179       } else {
180         seq_params->op_params[i].decoder_model_param_present_flag = 0;
181       }
182       if (seq_params->timing_info_present &&
183           (seq_params->timing_info.equal_picture_interval ||
184            seq_params->op_params[i].decoder_model_param_present_flag)) {
185         seq_params->op_params[i].bitrate = av1_max_level_bitrate(
186             seq_params->profile, seq_params->seq_level_idx[i],
187             seq_params->tier[i]);
188         // Level with seq_level_idx = 31 returns a high "dummy" bitrate to pass
189         // the check
190         if (seq_params->op_params[i].bitrate == 0)
191           aom_internal_error(&pbi->error, AOM_CODEC_UNSUP_BITSTREAM,
192                              "AV1 does not support this combination of "
193                              "profile, level, and tier.");
194         // Buffer size in bits/s is bitrate in bits/s * 1 s
195         seq_params->op_params[i].buffer_size = seq_params->op_params[i].bitrate;
196       }
197       if (seq_params->timing_info_present &&
198           seq_params->timing_info.equal_picture_interval &&
199           !seq_params->op_params[i].decoder_model_param_present_flag) {
200         // When the decoder_model_parameters are not sent for this op, set
201         // the default ones that can be used with the resource availability mode
202         seq_params->op_params[i].decoder_buffer_delay = 70000;
203         seq_params->op_params[i].encoder_buffer_delay = 20000;
204         seq_params->op_params[i].low_delay_mode_flag = 0;
205       }
206 
207       if (seq_params->display_model_info_present_flag) {
208         seq_params->op_params[i].display_model_param_present_flag =
209             aom_rb_read_bit(rb);
210         if (seq_params->op_params[i].display_model_param_present_flag) {
211           seq_params->op_params[i].initial_display_delay =
212               aom_rb_read_literal(rb, 4) + 1;
213           if (seq_params->op_params[i].initial_display_delay > 10)
214             aom_internal_error(
215                 &pbi->error, AOM_CODEC_UNSUP_BITSTREAM,
216                 "AV1 does not support more than 10 decoded frames delay");
217         } else {
218           seq_params->op_params[i].initial_display_delay = 10;
219         }
220       } else {
221         seq_params->op_params[i].display_model_param_present_flag = 0;
222         seq_params->op_params[i].initial_display_delay = 10;
223       }
224     }
225   }
226   // This decoder supports all levels.  Choose operating point provided by
227   // external means
228   int operating_point = pbi->operating_point;
229   if (operating_point < 0 ||
230       operating_point > seq_params->operating_points_cnt_minus_1)
231     operating_point = 0;
232   pbi->current_operating_point =
233       seq_params->operating_point_idc[operating_point];
234   if (aom_get_num_layers_from_operating_point_idc(
235           pbi->current_operating_point, &pbi->number_spatial_layers,
236           &pbi->number_temporal_layers) != AOM_CODEC_OK) {
237     pbi->error.error_code = AOM_CODEC_ERROR;
238     return 0;
239   }
240 
241   av1_read_sequence_header(cm, rb, seq_params);
242 
243   av1_read_color_config(rb, pbi->allow_lowbitdepth, seq_params, &pbi->error);
244   if (!(seq_params->subsampling_x == 0 && seq_params->subsampling_y == 0) &&
245       !(seq_params->subsampling_x == 1 && seq_params->subsampling_y == 1) &&
246       !(seq_params->subsampling_x == 1 && seq_params->subsampling_y == 0)) {
247     aom_internal_error(&pbi->error, AOM_CODEC_UNSUP_BITSTREAM,
248                        "Only 4:4:4, 4:2:2 and 4:2:0 are currently supported, "
249                        "%d %d subsampling is not supported.\n",
250                        seq_params->subsampling_x, seq_params->subsampling_y);
251   }
252 
253   seq_params->film_grain_params_present = aom_rb_read_bit(rb);
254 
255   if (av1_check_trailing_bits(pbi, rb) != 0) {
256     // pbi->error.error_code is already set.
257     return 0;
258   }
259 
260   // If a sequence header has been decoded before, we check if the new
261   // one is consistent with the old one.
262   if (pbi->sequence_header_ready) {
263     if (!are_seq_headers_consistent(cm->seq_params, seq_params))
264       pbi->sequence_header_changed = 1;
265   }
266 
267   *cm->seq_params = *seq_params;
268   pbi->sequence_header_ready = 1;
269 
270   return ((rb->bit_offset - saved_bit_offset + 7) >> 3);
271 }
272 
273 // On success, returns the frame header size. On failure, calls
274 // aom_internal_error and does not return. If show existing frame,
275 // also marks the data processing to end after the frame header.
read_frame_header_obu(AV1Decoder * pbi,struct aom_read_bit_buffer * rb,const uint8_t * data,const uint8_t ** p_data_end,int trailing_bits_present)276 static uint32_t read_frame_header_obu(AV1Decoder *pbi,
277                                       struct aom_read_bit_buffer *rb,
278                                       const uint8_t *data,
279                                       const uint8_t **p_data_end,
280                                       int trailing_bits_present) {
281   const uint32_t hdr_size =
282       av1_decode_frame_headers_and_setup(pbi, rb, trailing_bits_present);
283   const AV1_COMMON *cm = &pbi->common;
284   if (cm->show_existing_frame) {
285     *p_data_end = data + hdr_size;
286   }
287   return hdr_size;
288 }
289 
290 // On success, returns the tile group header size. On failure, calls
291 // aom_internal_error() and returns -1.
read_tile_group_header(AV1Decoder * pbi,struct aom_read_bit_buffer * rb,int * start_tile,int * end_tile,int tile_start_implicit)292 static int32_t read_tile_group_header(AV1Decoder *pbi,
293                                       struct aom_read_bit_buffer *rb,
294                                       int *start_tile, int *end_tile,
295                                       int tile_start_implicit) {
296   AV1_COMMON *const cm = &pbi->common;
297   CommonTileParams *const tiles = &cm->tiles;
298   uint32_t saved_bit_offset = rb->bit_offset;
299   int tile_start_and_end_present_flag = 0;
300   const int num_tiles = tiles->rows * tiles->cols;
301 
302   if (!tiles->large_scale && num_tiles > 1) {
303     tile_start_and_end_present_flag = aom_rb_read_bit(rb);
304     if (tile_start_implicit && tile_start_and_end_present_flag) {
305       aom_internal_error(
306           &pbi->error, AOM_CODEC_UNSUP_BITSTREAM,
307           "For OBU_FRAME type obu tile_start_and_end_present_flag must be 0");
308       return -1;
309     }
310   }
311   if (tiles->large_scale || num_tiles == 1 ||
312       !tile_start_and_end_present_flag) {
313     *start_tile = 0;
314     *end_tile = num_tiles - 1;
315   } else {
316     int tile_bits = tiles->log2_rows + tiles->log2_cols;
317     *start_tile = aom_rb_read_literal(rb, tile_bits);
318     *end_tile = aom_rb_read_literal(rb, tile_bits);
319   }
320   if (*start_tile != pbi->next_start_tile) {
321     aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
322                        "tg_start (%d) must be equal to %d", *start_tile,
323                        pbi->next_start_tile);
324     return -1;
325   }
326   if (*start_tile > *end_tile) {
327     aom_internal_error(
328         &pbi->error, AOM_CODEC_CORRUPT_FRAME,
329         "tg_end (%d) must be greater than or equal to tg_start (%d)", *end_tile,
330         *start_tile);
331     return -1;
332   }
333   if (*end_tile >= num_tiles) {
334     aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
335                        "tg_end (%d) must be less than NumTiles (%d)", *end_tile,
336                        num_tiles);
337     return -1;
338   }
339   pbi->next_start_tile = (*end_tile == num_tiles - 1) ? 0 : *end_tile + 1;
340 
341   return ((rb->bit_offset - saved_bit_offset + 7) >> 3);
342 }
343 
344 // On success, returns the tile group OBU size. On failure, sets
345 // pbi->common.error.error_code and returns 0.
read_one_tile_group_obu(AV1Decoder * pbi,struct aom_read_bit_buffer * rb,int is_first_tg,const uint8_t * data,const uint8_t * data_end,const uint8_t ** p_data_end,int * is_last_tg,int tile_start_implicit)346 static uint32_t read_one_tile_group_obu(
347     AV1Decoder *pbi, struct aom_read_bit_buffer *rb, int is_first_tg,
348     const uint8_t *data, const uint8_t *data_end, const uint8_t **p_data_end,
349     int *is_last_tg, int tile_start_implicit) {
350   AV1_COMMON *const cm = &pbi->common;
351   int start_tile, end_tile;
352   int32_t header_size, tg_payload_size;
353 
354   assert((rb->bit_offset & 7) == 0);
355   assert(rb->bit_buffer + aom_rb_bytes_read(rb) == data);
356 
357   header_size = read_tile_group_header(pbi, rb, &start_tile, &end_tile,
358                                        tile_start_implicit);
359   if (header_size == -1 || byte_alignment(cm, rb)) return 0;
360   data += header_size;
361   av1_decode_tg_tiles_and_wrapup(pbi, data, data_end, p_data_end, start_tile,
362                                  end_tile, is_first_tg);
363 
364   tg_payload_size = (uint32_t)(*p_data_end - data);
365 
366   *is_last_tg = end_tile == cm->tiles.rows * cm->tiles.cols - 1;
367   return header_size + tg_payload_size;
368 }
369 
alloc_tile_list_buffer(AV1Decoder * pbi)370 static void alloc_tile_list_buffer(AV1Decoder *pbi) {
371   // The resolution of the output frame is read out from the bitstream. The data
372   // are stored in the order of Y plane, U plane and V plane. As an example, for
373   // image format 4:2:0, the output frame of U plane and V plane is 1/4 of the
374   // output frame.
375   AV1_COMMON *const cm = &pbi->common;
376   int tile_width, tile_height;
377   av1_get_uniform_tile_size(cm, &tile_width, &tile_height);
378   const int tile_width_in_pixels = tile_width * MI_SIZE;
379   const int tile_height_in_pixels = tile_height * MI_SIZE;
380   const int output_frame_width =
381       (pbi->output_frame_width_in_tiles_minus_1 + 1) * tile_width_in_pixels;
382   const int output_frame_height =
383       (pbi->output_frame_height_in_tiles_minus_1 + 1) * tile_height_in_pixels;
384   // The output frame is used to store the decoded tile list. The decoded tile
385   // list has to fit into 1 output frame.
386   assert((pbi->tile_count_minus_1 + 1) <=
387          (pbi->output_frame_width_in_tiles_minus_1 + 1) *
388              (pbi->output_frame_height_in_tiles_minus_1 + 1));
389 
390   // Allocate the tile list output buffer.
391   // Note: if cm->seq_params->use_highbitdepth is 1 and
392   // cm->seq_params->bit_depth is 8, we could allocate less memory, namely, 8
393   // bits/pixel.
394   if (aom_alloc_frame_buffer(&pbi->tile_list_outbuf, output_frame_width,
395                              output_frame_height, cm->seq_params->subsampling_x,
396                              cm->seq_params->subsampling_y,
397                              (cm->seq_params->use_highbitdepth &&
398                               (cm->seq_params->bit_depth > AOM_BITS_8)),
399                              0, cm->features.byte_alignment, 0))
400     aom_internal_error(&pbi->error, AOM_CODEC_MEM_ERROR,
401                        "Failed to allocate the tile list output buffer");
402 }
403 
yv12_tile_copy(const YV12_BUFFER_CONFIG * src,int hstart1,int hend1,int vstart1,int vend1,YV12_BUFFER_CONFIG * dst,int hstart2,int vstart2,int plane)404 static void yv12_tile_copy(const YV12_BUFFER_CONFIG *src, int hstart1,
405                            int hend1, int vstart1, int vend1,
406                            YV12_BUFFER_CONFIG *dst, int hstart2, int vstart2,
407                            int plane) {
408   const int src_stride = (plane > 0) ? src->strides[1] : src->strides[0];
409   const int dst_stride = (plane > 0) ? dst->strides[1] : dst->strides[0];
410   int row, col;
411 
412   assert(src->flags & YV12_FLAG_HIGHBITDEPTH);
413   assert(!(dst->flags & YV12_FLAG_HIGHBITDEPTH));
414 
415   const uint16_t *src16 =
416       CONVERT_TO_SHORTPTR(src->buffers[plane] + vstart1 * src_stride + hstart1);
417   uint8_t *dst8 = dst->buffers[plane] + vstart2 * dst_stride + hstart2;
418 
419   for (row = vstart1; row < vend1; ++row) {
420     for (col = 0; col < (hend1 - hstart1); ++col) *dst8++ = (uint8_t)(*src16++);
421     src16 += src_stride - (hend1 - hstart1);
422     dst8 += dst_stride - (hend1 - hstart1);
423   }
424   return;
425 }
426 
copy_decoded_tile_to_tile_list_buffer(AV1Decoder * pbi,int tile_idx)427 static void copy_decoded_tile_to_tile_list_buffer(AV1Decoder *pbi,
428                                                   int tile_idx) {
429   AV1_COMMON *const cm = &pbi->common;
430   int tile_width, tile_height;
431   av1_get_uniform_tile_size(cm, &tile_width, &tile_height);
432   const int tile_width_in_pixels = tile_width * MI_SIZE;
433   const int tile_height_in_pixels = tile_height * MI_SIZE;
434   const int ssy = cm->seq_params->subsampling_y;
435   const int ssx = cm->seq_params->subsampling_x;
436   const int num_planes = av1_num_planes(cm);
437 
438   YV12_BUFFER_CONFIG *cur_frame = &cm->cur_frame->buf;
439   const int tr = tile_idx / (pbi->output_frame_width_in_tiles_minus_1 + 1);
440   const int tc = tile_idx % (pbi->output_frame_width_in_tiles_minus_1 + 1);
441   int plane;
442 
443   // Copy decoded tile to the tile list output buffer.
444   for (plane = 0; plane < num_planes; ++plane) {
445     const int shift_x = plane > 0 ? ssx : 0;
446     const int shift_y = plane > 0 ? ssy : 0;
447     const int h = tile_height_in_pixels >> shift_y;
448     const int w = tile_width_in_pixels >> shift_x;
449 
450     // src offset
451     int vstart1 = pbi->dec_tile_row * h;
452     int vend1 = vstart1 + h;
453     int hstart1 = pbi->dec_tile_col * w;
454     int hend1 = hstart1 + w;
455     // dst offset
456     int vstart2 = tr * h;
457     int hstart2 = tc * w;
458 
459     if (cm->seq_params->use_highbitdepth &&
460         cm->seq_params->bit_depth == AOM_BITS_8) {
461       yv12_tile_copy(cur_frame, hstart1, hend1, vstart1, vend1,
462                      &pbi->tile_list_outbuf, hstart2, vstart2, plane);
463     } else {
464       switch (plane) {
465         case 0:
466           aom_yv12_partial_copy_y(cur_frame, hstart1, hend1, vstart1, vend1,
467                                   &pbi->tile_list_outbuf, hstart2, vstart2);
468           break;
469         case 1:
470           aom_yv12_partial_copy_u(cur_frame, hstart1, hend1, vstart1, vend1,
471                                   &pbi->tile_list_outbuf, hstart2, vstart2);
472           break;
473         case 2:
474           aom_yv12_partial_copy_v(cur_frame, hstart1, hend1, vstart1, vend1,
475                                   &pbi->tile_list_outbuf, hstart2, vstart2);
476           break;
477         default: assert(0);
478       }
479     }
480   }
481 }
482 
483 // Only called while large_scale_tile = 1.
484 //
485 // On success, returns the tile list OBU size. On failure, sets
486 // pbi->common.error.error_code and returns 0.
read_and_decode_one_tile_list(AV1Decoder * pbi,struct aom_read_bit_buffer * rb,const uint8_t * data,const uint8_t * data_end,const uint8_t ** p_data_end,int * frame_decoding_finished)487 static uint32_t read_and_decode_one_tile_list(AV1Decoder *pbi,
488                                               struct aom_read_bit_buffer *rb,
489                                               const uint8_t *data,
490                                               const uint8_t *data_end,
491                                               const uint8_t **p_data_end,
492                                               int *frame_decoding_finished) {
493   AV1_COMMON *const cm = &pbi->common;
494   uint32_t tile_list_payload_size = 0;
495   const int num_tiles = cm->tiles.cols * cm->tiles.rows;
496   const int start_tile = 0;
497   const int end_tile = num_tiles - 1;
498   int i = 0;
499 
500   // Process the tile list info.
501   pbi->output_frame_width_in_tiles_minus_1 = aom_rb_read_literal(rb, 8);
502   pbi->output_frame_height_in_tiles_minus_1 = aom_rb_read_literal(rb, 8);
503   pbi->tile_count_minus_1 = aom_rb_read_literal(rb, 16);
504   if (pbi->tile_count_minus_1 > MAX_TILES - 1) {
505     pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
506     return 0;
507   }
508 
509   // Allocate output frame buffer for the tile list.
510   alloc_tile_list_buffer(pbi);
511 
512   uint32_t tile_list_info_bytes = 4;
513   tile_list_payload_size += tile_list_info_bytes;
514   data += tile_list_info_bytes;
515 
516   int tile_idx = 0;
517   for (i = 0; i <= pbi->tile_count_minus_1; i++) {
518     // Process 1 tile.
519     // Reset the bit reader.
520     rb->bit_offset = 0;
521     rb->bit_buffer = data;
522 
523     // Read out the tile info.
524     uint32_t tile_info_bytes = 5;
525     // Set reference for each tile.
526     int ref_idx = aom_rb_read_literal(rb, 8);
527     if (ref_idx >= MAX_EXTERNAL_REFERENCES) {
528       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
529       return 0;
530     }
531     av1_set_reference_dec(cm, cm->remapped_ref_idx[0], 1,
532                           &pbi->ext_refs.refs[ref_idx]);
533 
534     pbi->dec_tile_row = aom_rb_read_literal(rb, 8);
535     pbi->dec_tile_col = aom_rb_read_literal(rb, 8);
536     if (pbi->dec_tile_row < 0 || pbi->dec_tile_col < 0 ||
537         pbi->dec_tile_row >= cm->tiles.rows ||
538         pbi->dec_tile_col >= cm->tiles.cols) {
539       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
540       return 0;
541     }
542 
543     pbi->coded_tile_data_size = aom_rb_read_literal(rb, 16) + 1;
544     data += tile_info_bytes;
545     if ((size_t)(data_end - data) < pbi->coded_tile_data_size) {
546       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
547       return 0;
548     }
549 
550     av1_decode_tg_tiles_and_wrapup(pbi, data, data + pbi->coded_tile_data_size,
551                                    p_data_end, start_tile, end_tile, 0);
552     uint32_t tile_payload_size = (uint32_t)(*p_data_end - data);
553 
554     tile_list_payload_size += tile_info_bytes + tile_payload_size;
555 
556     // Update data ptr for next tile decoding.
557     data = *p_data_end;
558     assert(data <= data_end);
559 
560     // Copy the decoded tile to the tile list output buffer.
561     copy_decoded_tile_to_tile_list_buffer(pbi, tile_idx);
562     tile_idx++;
563   }
564 
565   *frame_decoding_finished = 1;
566   return tile_list_payload_size;
567 }
568 
569 // Returns the last nonzero byte index in 'data'. If there is no nonzero byte in
570 // 'data', returns -1.
get_last_nonzero_byte_index(const uint8_t * data,size_t sz)571 static int get_last_nonzero_byte_index(const uint8_t *data, size_t sz) {
572   // Scan backward and return on the first nonzero byte.
573   int i = (int)sz - 1;
574   while (i >= 0 && data[i] == 0) {
575     --i;
576   }
577   return i;
578 }
579 
580 // Allocates metadata that was read and adds it to the decoders metadata array.
alloc_read_metadata(AV1Decoder * const pbi,OBU_METADATA_TYPE metadata_type,const uint8_t * data,size_t sz,aom_metadata_insert_flags_t insert_flag)581 static void alloc_read_metadata(AV1Decoder *const pbi,
582                                 OBU_METADATA_TYPE metadata_type,
583                                 const uint8_t *data, size_t sz,
584                                 aom_metadata_insert_flags_t insert_flag) {
585   if (!pbi->metadata) {
586     pbi->metadata = aom_img_metadata_array_alloc(0);
587     if (!pbi->metadata) {
588       aom_internal_error(&pbi->error, AOM_CODEC_MEM_ERROR,
589                          "Failed to allocate metadata array");
590     }
591   }
592   aom_metadata_t *metadata =
593       aom_img_metadata_alloc(metadata_type, data, sz, insert_flag);
594   if (!metadata) {
595     aom_internal_error(&pbi->error, AOM_CODEC_MEM_ERROR,
596                        "Error allocating metadata");
597   }
598   aom_metadata_t **metadata_array =
599       (aom_metadata_t **)realloc(pbi->metadata->metadata_array,
600                                  (pbi->metadata->sz + 1) * sizeof(metadata));
601   if (!metadata_array) {
602     aom_img_metadata_free(metadata);
603     aom_internal_error(&pbi->error, AOM_CODEC_MEM_ERROR,
604                        "Error growing metadata array");
605   }
606   pbi->metadata->metadata_array = metadata_array;
607   pbi->metadata->metadata_array[pbi->metadata->sz] = metadata;
608   pbi->metadata->sz++;
609 }
610 
611 // On failure, calls aom_internal_error() and does not return.
read_metadata_itut_t35(AV1Decoder * const pbi,const uint8_t * data,size_t sz)612 static void read_metadata_itut_t35(AV1Decoder *const pbi, const uint8_t *data,
613                                    size_t sz) {
614   if (sz == 0) {
615     aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
616                        "itu_t_t35_country_code is missing");
617   }
618   int country_code_size = 1;
619   if (*data == 0xFF) {
620     if (sz == 1) {
621       aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
622                          "itu_t_t35_country_code_extension_byte is missing");
623     }
624     ++country_code_size;
625   }
626   int end_index = get_last_nonzero_byte_index(data, sz);
627   if (end_index < country_code_size) {
628     aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
629                        "No trailing bits found in ITU-T T.35 metadata OBU");
630   }
631   // itu_t_t35_payload_bytes is byte aligned. Section 6.7.2 of the spec says:
632   //   itu_t_t35_payload_bytes shall be bytes containing data registered as
633   //   specified in Recommendation ITU-T T.35.
634   // Therefore the first trailing byte should be 0x80.
635   if (data[end_index] != 0x80) {
636     aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
637                        "The last nonzero byte of the ITU-T T.35 metadata OBU "
638                        "is 0x%02x, should be 0x80.",
639                        data[end_index]);
640   }
641   alloc_read_metadata(pbi, OBU_METADATA_TYPE_ITUT_T35, data, end_index,
642                       AOM_MIF_ANY_FRAME);
643 }
644 
645 // On success, returns the number of bytes read from 'data'. On failure, calls
646 // aom_internal_error() and does not return.
read_metadata_hdr_cll(AV1Decoder * const pbi,const uint8_t * data,size_t sz)647 static size_t read_metadata_hdr_cll(AV1Decoder *const pbi, const uint8_t *data,
648                                     size_t sz) {
649   const size_t kHdrCllPayloadSize = 4;
650   if (sz < kHdrCllPayloadSize) {
651     aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
652                        "Incorrect HDR CLL metadata payload size");
653   }
654   alloc_read_metadata(pbi, OBU_METADATA_TYPE_HDR_CLL, data, kHdrCllPayloadSize,
655                       AOM_MIF_ANY_FRAME);
656   return kHdrCllPayloadSize;
657 }
658 
659 // On success, returns the number of bytes read from 'data'. On failure, calls
660 // aom_internal_error() and does not return.
read_metadata_hdr_mdcv(AV1Decoder * const pbi,const uint8_t * data,size_t sz)661 static size_t read_metadata_hdr_mdcv(AV1Decoder *const pbi, const uint8_t *data,
662                                      size_t sz) {
663   const size_t kMdcvPayloadSize = 24;
664   if (sz < kMdcvPayloadSize) {
665     aom_internal_error(&pbi->error, AOM_CODEC_CORRUPT_FRAME,
666                        "Incorrect HDR MDCV metadata payload size");
667   }
668   alloc_read_metadata(pbi, OBU_METADATA_TYPE_HDR_MDCV, data, kMdcvPayloadSize,
669                       AOM_MIF_ANY_FRAME);
670   return kMdcvPayloadSize;
671 }
672 
scalability_structure(struct aom_read_bit_buffer * rb)673 static void scalability_structure(struct aom_read_bit_buffer *rb) {
674   const int spatial_layers_cnt_minus_1 = aom_rb_read_literal(rb, 2);
675   const int spatial_layer_dimensions_present_flag = aom_rb_read_bit(rb);
676   const int spatial_layer_description_present_flag = aom_rb_read_bit(rb);
677   const int temporal_group_description_present_flag = aom_rb_read_bit(rb);
678   // scalability_structure_reserved_3bits must be set to zero and be ignored by
679   // decoders.
680   aom_rb_read_literal(rb, 3);
681 
682   if (spatial_layer_dimensions_present_flag) {
683     for (int i = 0; i <= spatial_layers_cnt_minus_1; i++) {
684       aom_rb_read_literal(rb, 16);
685       aom_rb_read_literal(rb, 16);
686     }
687   }
688   if (spatial_layer_description_present_flag) {
689     for (int i = 0; i <= spatial_layers_cnt_minus_1; i++) {
690       aom_rb_read_literal(rb, 8);
691     }
692   }
693   if (temporal_group_description_present_flag) {
694     const int temporal_group_size = aom_rb_read_literal(rb, 8);
695     for (int i = 0; i < temporal_group_size; i++) {
696       aom_rb_read_literal(rb, 3);
697       aom_rb_read_bit(rb);
698       aom_rb_read_bit(rb);
699       const int temporal_group_ref_cnt = aom_rb_read_literal(rb, 3);
700       for (int j = 0; j < temporal_group_ref_cnt; j++) {
701         aom_rb_read_literal(rb, 8);
702       }
703     }
704   }
705 }
706 
read_metadata_scalability(struct aom_read_bit_buffer * rb)707 static void read_metadata_scalability(struct aom_read_bit_buffer *rb) {
708   const int scalability_mode_idc = aom_rb_read_literal(rb, 8);
709   if (scalability_mode_idc == SCALABILITY_SS) {
710     scalability_structure(rb);
711   }
712 }
713 
read_metadata_timecode(struct aom_read_bit_buffer * rb)714 static void read_metadata_timecode(struct aom_read_bit_buffer *rb) {
715   aom_rb_read_literal(rb, 5);  // counting_type f(5)
716   const int full_timestamp_flag =
717       aom_rb_read_bit(rb);     // full_timestamp_flag f(1)
718   aom_rb_read_bit(rb);         // discontinuity_flag (f1)
719   aom_rb_read_bit(rb);         // cnt_dropped_flag f(1)
720   aom_rb_read_literal(rb, 9);  // n_frames f(9)
721   if (full_timestamp_flag) {
722     aom_rb_read_literal(rb, 6);  // seconds_value f(6)
723     aom_rb_read_literal(rb, 6);  // minutes_value f(6)
724     aom_rb_read_literal(rb, 5);  // hours_value f(5)
725   } else {
726     const int seconds_flag = aom_rb_read_bit(rb);  // seconds_flag f(1)
727     if (seconds_flag) {
728       aom_rb_read_literal(rb, 6);                    // seconds_value f(6)
729       const int minutes_flag = aom_rb_read_bit(rb);  // minutes_flag f(1)
730       if (minutes_flag) {
731         aom_rb_read_literal(rb, 6);                  // minutes_value f(6)
732         const int hours_flag = aom_rb_read_bit(rb);  // hours_flag f(1)
733         if (hours_flag) {
734           aom_rb_read_literal(rb, 5);  // hours_value f(5)
735         }
736       }
737     }
738   }
739   // time_offset_length f(5)
740   const int time_offset_length = aom_rb_read_literal(rb, 5);
741   if (time_offset_length) {
742     // time_offset_value f(time_offset_length)
743     aom_rb_read_literal(rb, time_offset_length);
744   }
745 }
746 
747 // Returns the last nonzero byte in 'data'. If there is no nonzero byte in
748 // 'data', returns 0.
749 //
750 // Call this function to check the following requirement in the spec:
751 //   This implies that when any payload data is present for this OBU type, at
752 //   least one byte of the payload data (including the trailing bit) shall not
753 //   be equal to 0.
get_last_nonzero_byte(const uint8_t * data,size_t sz)754 static uint8_t get_last_nonzero_byte(const uint8_t *data, size_t sz) {
755   // Scan backward and return on the first nonzero byte.
756   size_t i = sz;
757   while (i != 0) {
758     --i;
759     if (data[i] != 0) return data[i];
760   }
761   return 0;
762 }
763 
764 // Checks the metadata for correct syntax but ignores the parsed metadata.
765 //
766 // On success, returns the number of bytes read from 'data'. On failure, sets
767 // pbi->common.error.error_code and returns 0, or calls aom_internal_error()
768 // and does not return.
read_metadata(AV1Decoder * pbi,const uint8_t * data,size_t sz)769 static size_t read_metadata(AV1Decoder *pbi, const uint8_t *data, size_t sz) {
770   size_t type_length;
771   uint64_t type_value;
772   if (aom_uleb_decode(data, sz, &type_value, &type_length) < 0) {
773     pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
774     return 0;
775   }
776   const OBU_METADATA_TYPE metadata_type = (OBU_METADATA_TYPE)type_value;
777   if (metadata_type == 0 || metadata_type >= 6) {
778     // If metadata_type is reserved for future use or a user private value,
779     // ignore the entire OBU and just check trailing bits.
780     if (get_last_nonzero_byte(data + type_length, sz - type_length) == 0) {
781       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
782       return 0;
783     }
784     return sz;
785   }
786   if (metadata_type == OBU_METADATA_TYPE_ITUT_T35) {
787     // read_metadata_itut_t35() checks trailing bits.
788     read_metadata_itut_t35(pbi, data + type_length, sz - type_length);
789     return sz;
790   } else if (metadata_type == OBU_METADATA_TYPE_HDR_CLL) {
791     size_t bytes_read =
792         type_length +
793         read_metadata_hdr_cll(pbi, data + type_length, sz - type_length);
794     if (get_last_nonzero_byte(data + bytes_read, sz - bytes_read) != 0x80) {
795       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
796       return 0;
797     }
798     return sz;
799   } else if (metadata_type == OBU_METADATA_TYPE_HDR_MDCV) {
800     size_t bytes_read =
801         type_length +
802         read_metadata_hdr_mdcv(pbi, data + type_length, sz - type_length);
803     if (get_last_nonzero_byte(data + bytes_read, sz - bytes_read) != 0x80) {
804       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
805       return 0;
806     }
807     return sz;
808   }
809 
810   struct aom_read_bit_buffer rb;
811   av1_init_read_bit_buffer(pbi, &rb, data + type_length, data + sz);
812   if (metadata_type == OBU_METADATA_TYPE_SCALABILITY) {
813     read_metadata_scalability(&rb);
814   } else {
815     assert(metadata_type == OBU_METADATA_TYPE_TIMECODE);
816     read_metadata_timecode(&rb);
817   }
818   if (av1_check_trailing_bits(pbi, &rb) != 0) {
819     // pbi->error.error_code is already set.
820     return 0;
821   }
822   assert((rb.bit_offset & 7) == 0);
823   return type_length + (rb.bit_offset >> 3);
824 }
825 
826 // On success, returns 'sz'. On failure, sets pbi->common.error.error_code and
827 // returns 0.
read_padding(AV1_COMMON * const cm,const uint8_t * data,size_t sz)828 static size_t read_padding(AV1_COMMON *const cm, const uint8_t *data,
829                            size_t sz) {
830   // The spec allows a padding OBU to be header-only (i.e., obu_size = 0). So
831   // check trailing bits only if sz > 0.
832   if (sz > 0) {
833     // The payload of a padding OBU is byte aligned. Therefore the first
834     // trailing byte should be 0x80. See https://crbug.com/aomedia/2393.
835     const uint8_t last_nonzero_byte = get_last_nonzero_byte(data, sz);
836     if (last_nonzero_byte != 0x80) {
837       cm->error->error_code = AOM_CODEC_CORRUPT_FRAME;
838       return 0;
839     }
840   }
841   return sz;
842 }
843 
844 // On success, returns a boolean that indicates whether the decoding of the
845 // current frame is finished. On failure, sets pbi->error.error_code and
846 // returns -1.
aom_decode_frame_from_obus(struct AV1Decoder * pbi,const uint8_t * data,const uint8_t * data_end,const uint8_t ** p_data_end)847 int aom_decode_frame_from_obus(struct AV1Decoder *pbi, const uint8_t *data,
848                                const uint8_t *data_end,
849                                const uint8_t **p_data_end) {
850   AV1_COMMON *const cm = &pbi->common;
851   int frame_decoding_finished = 0;
852   int is_first_tg_obu_received = 1;
853   // Whenever pbi->seen_frame_header is set to 1, frame_header is set to the
854   // beginning of the frame_header_obu and frame_header_size is set to its
855   // size. This allows us to check if a redundant frame_header_obu is a copy
856   // of the previous frame_header_obu.
857   //
858   // Initialize frame_header to a dummy nonnull pointer, otherwise the Clang
859   // Static Analyzer in clang 7.0.1 will falsely warn that a null pointer is
860   // passed as an argument to a 'nonnull' parameter of memcmp(). The initial
861   // value will not be used.
862   const uint8_t *frame_header = data;
863   uint32_t frame_header_size = 0;
864   ObuHeader obu_header;
865   memset(&obu_header, 0, sizeof(obu_header));
866   pbi->seen_frame_header = 0;
867   pbi->next_start_tile = 0;
868   pbi->num_tile_groups = 0;
869 
870   if (data_end < data) {
871     pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
872     return -1;
873   }
874 
875   // Reset pbi->camera_frame_header_ready to 0 if cm->tiles.large_scale = 0.
876   if (!cm->tiles.large_scale) pbi->camera_frame_header_ready = 0;
877 
878   // decode frame as a series of OBUs
879   while (!frame_decoding_finished && pbi->error.error_code == AOM_CODEC_OK) {
880     struct aom_read_bit_buffer rb;
881     size_t payload_size = 0;
882     size_t decoded_payload_size = 0;
883     size_t obu_payload_offset = 0;
884     size_t bytes_read = 0;
885     const size_t bytes_available = data_end - data;
886 
887     if (bytes_available == 0 && !pbi->seen_frame_header) {
888       *p_data_end = data;
889       pbi->error.error_code = AOM_CODEC_OK;
890       break;
891     }
892 
893     aom_codec_err_t status =
894         aom_read_obu_header_and_size(data, bytes_available, pbi->is_annexb,
895                                      &obu_header, &payload_size, &bytes_read);
896 
897     if (status != AOM_CODEC_OK) {
898       pbi->error.error_code = status;
899       return -1;
900     }
901 
902     // Record obu size header information.
903     pbi->obu_size_hdr.data = data + obu_header.size;
904     pbi->obu_size_hdr.size = bytes_read - obu_header.size;
905 
906     // Note: aom_read_obu_header_and_size() takes care of checking that this
907     // doesn't cause 'data' to advance past 'data_end'.
908     data += bytes_read;
909 
910     if ((size_t)(data_end - data) < payload_size) {
911       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
912       return -1;
913     }
914 
915     cm->temporal_layer_id = obu_header.temporal_layer_id;
916     cm->spatial_layer_id = obu_header.spatial_layer_id;
917 
918     if (obu_header.type != OBU_TEMPORAL_DELIMITER &&
919         obu_header.type != OBU_SEQUENCE_HEADER) {
920       // don't decode obu if it's not in current operating mode
921       if (!is_obu_in_current_operating_point(pbi, &obu_header)) {
922         data += payload_size;
923         continue;
924       }
925     }
926 
927     av1_init_read_bit_buffer(pbi, &rb, data, data + payload_size);
928 
929     switch (obu_header.type) {
930       case OBU_TEMPORAL_DELIMITER:
931         decoded_payload_size = read_temporal_delimiter_obu();
932         if (pbi->seen_frame_header) {
933           // A new temporal unit has started, but the frame in the previous
934           // temporal unit is incomplete.
935           pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
936           return -1;
937         }
938         break;
939       case OBU_SEQUENCE_HEADER:
940         decoded_payload_size = read_sequence_header_obu(pbi, &rb);
941         if (pbi->error.error_code != AOM_CODEC_OK) return -1;
942         // The sequence header should not change in the middle of a frame.
943         if (pbi->sequence_header_changed && pbi->seen_frame_header) {
944           pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
945           return -1;
946         }
947         break;
948       case OBU_FRAME_HEADER:
949       case OBU_REDUNDANT_FRAME_HEADER:
950       case OBU_FRAME:
951         if (obu_header.type == OBU_REDUNDANT_FRAME_HEADER) {
952           if (!pbi->seen_frame_header) {
953             pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
954             return -1;
955           }
956         } else {
957           // OBU_FRAME_HEADER or OBU_FRAME.
958           if (pbi->seen_frame_header) {
959             pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
960             return -1;
961           }
962         }
963         // Only decode first frame header received
964         if (!pbi->seen_frame_header ||
965             (cm->tiles.large_scale && !pbi->camera_frame_header_ready)) {
966           frame_header_size = read_frame_header_obu(
967               pbi, &rb, data, p_data_end, obu_header.type != OBU_FRAME);
968           frame_header = data;
969           pbi->seen_frame_header = 1;
970           if (!pbi->ext_tile_debug && cm->tiles.large_scale)
971             pbi->camera_frame_header_ready = 1;
972         } else {
973           // Verify that the frame_header_obu is identical to the original
974           // frame_header_obu.
975           if (frame_header_size > payload_size ||
976               memcmp(data, frame_header, frame_header_size) != 0) {
977             pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
978             return -1;
979           }
980           assert(rb.bit_offset == 0);
981           rb.bit_offset = 8 * frame_header_size;
982         }
983 
984         decoded_payload_size = frame_header_size;
985         pbi->frame_header_size = frame_header_size;
986         cm->cur_frame->temporal_id = obu_header.temporal_layer_id;
987         cm->cur_frame->spatial_id = obu_header.spatial_layer_id;
988 
989         if (cm->show_existing_frame) {
990           if (obu_header.type == OBU_FRAME) {
991             pbi->error.error_code = AOM_CODEC_UNSUP_BITSTREAM;
992             return -1;
993           }
994           frame_decoding_finished = 1;
995           pbi->seen_frame_header = 0;
996 
997           if (cm->show_frame &&
998               !cm->seq_params->order_hint_info.enable_order_hint) {
999             ++cm->current_frame.frame_number;
1000           }
1001           break;
1002         }
1003 
1004         // In large scale tile coding, decode the common camera frame header
1005         // before any tile list OBU.
1006         if (!pbi->ext_tile_debug && pbi->camera_frame_header_ready) {
1007           frame_decoding_finished = 1;
1008           // Skip the rest of the frame data.
1009           decoded_payload_size = payload_size;
1010           // Update data_end.
1011           *p_data_end = data_end;
1012           break;
1013         }
1014 
1015         if (obu_header.type != OBU_FRAME) break;
1016         obu_payload_offset = frame_header_size;
1017         // Byte align the reader before reading the tile group.
1018         // byte_alignment() has set pbi->error.error_code if it returns -1.
1019         if (byte_alignment(cm, &rb)) return -1;
1020         AOM_FALLTHROUGH_INTENDED;  // fall through to read tile group.
1021       case OBU_TILE_GROUP:
1022         if (!pbi->seen_frame_header) {
1023           pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
1024           return -1;
1025         }
1026         if (obu_payload_offset > payload_size) {
1027           pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
1028           return -1;
1029         }
1030         decoded_payload_size += read_one_tile_group_obu(
1031             pbi, &rb, is_first_tg_obu_received, data + obu_payload_offset,
1032             data + payload_size, p_data_end, &frame_decoding_finished,
1033             obu_header.type == OBU_FRAME);
1034         if (pbi->error.error_code != AOM_CODEC_OK) return -1;
1035         is_first_tg_obu_received = 0;
1036         if (frame_decoding_finished) {
1037           pbi->seen_frame_header = 0;
1038           pbi->next_start_tile = 0;
1039         }
1040         pbi->num_tile_groups++;
1041         break;
1042       case OBU_METADATA:
1043         decoded_payload_size = read_metadata(pbi, data, payload_size);
1044         if (pbi->error.error_code != AOM_CODEC_OK) return -1;
1045         break;
1046       case OBU_TILE_LIST:
1047         if (CONFIG_NORMAL_TILE_MODE) {
1048           pbi->error.error_code = AOM_CODEC_UNSUP_BITSTREAM;
1049           return -1;
1050         }
1051 
1052         // This OBU type is purely for the large scale tile coding mode.
1053         // The common camera frame header has to be already decoded.
1054         if (!pbi->camera_frame_header_ready) {
1055           pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
1056           return -1;
1057         }
1058 
1059         cm->tiles.large_scale = 1;
1060         av1_set_single_tile_decoding_mode(cm);
1061         decoded_payload_size =
1062             read_and_decode_one_tile_list(pbi, &rb, data, data + payload_size,
1063                                           p_data_end, &frame_decoding_finished);
1064         if (pbi->error.error_code != AOM_CODEC_OK) return -1;
1065         break;
1066       case OBU_PADDING:
1067         decoded_payload_size = read_padding(cm, data, payload_size);
1068         if (pbi->error.error_code != AOM_CODEC_OK) return -1;
1069         break;
1070       default:
1071         // Skip unrecognized OBUs
1072         if (payload_size > 0 &&
1073             get_last_nonzero_byte(data, payload_size) == 0) {
1074           pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
1075           return -1;
1076         }
1077         decoded_payload_size = payload_size;
1078         break;
1079     }
1080 
1081     // Check that the signalled OBU size matches the actual amount of data read
1082     if (decoded_payload_size > payload_size) {
1083       pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
1084       return -1;
1085     }
1086 
1087     // If there are extra padding bytes, they should all be zero
1088     while (decoded_payload_size < payload_size) {
1089       uint8_t padding_byte = data[decoded_payload_size++];
1090       if (padding_byte != 0) {
1091         pbi->error.error_code = AOM_CODEC_CORRUPT_FRAME;
1092         return -1;
1093       }
1094     }
1095 
1096     data += payload_size;
1097   }
1098 
1099   if (pbi->error.error_code != AOM_CODEC_OK) return -1;
1100   return frame_decoding_finished;
1101 }
1102