AOMedia AV1 Codec
svc_encoder_rtc
1 /*
2  * Copyright (c) 2019, Alliance for Open Media. All Rights Reserved.
3  *
4  * Use of this source code is governed by a BSD-style license
5  * that can be found in the LICENSE file in the root of the source
6  * tree. An additional intellectual property rights grant can be found
7  * in the file PATENTS. All contributing project authors may
8  * be found in the AUTHORS file in the root of the source tree.
9  */
10 
11 // This is an example demonstrating how to implement a multi-layer AOM
12 // encoding scheme for RTC video applications.
13 
14 #include <assert.h>
15 #include <math.h>
16 #include <stdio.h>
17 #include <stdlib.h>
18 #include <string.h>
19 
20 #include "aom/aom_encoder.h"
21 #include "aom/aomcx.h"
22 #include "av1/common/enums.h"
23 #include "av1/encoder/encoder.h"
24 #include "common/args.h"
25 #include "common/tools_common.h"
26 #include "common/video_writer.h"
27 #include "examples/encoder_util.h"
28 #include "aom_ports/aom_timer.h"
29 
30 #define OPTION_BUFFER_SIZE 1024
31 
32 typedef struct {
33  const char *output_filename;
34  char options[OPTION_BUFFER_SIZE];
35  struct AvxInputContext input_ctx;
36  int speed;
37  int aq_mode;
38  int layering_mode;
39  int output_obu;
40  int decode;
41  int tune_content;
42 } AppInput;
43 
44 typedef enum {
45  QUANTIZER = 0,
46  BITRATE,
47  SCALE_FACTOR,
48  AUTO_ALT_REF,
49  ALL_OPTION_TYPES
50 } LAYER_OPTION_TYPE;
51 
52 static const arg_def_t outputfile =
53  ARG_DEF("o", "output", 1, "Output filename");
54 static const arg_def_t frames_arg =
55  ARG_DEF("f", "frames", 1, "Number of frames to encode");
56 static const arg_def_t threads_arg =
57  ARG_DEF("th", "threads", 1, "Number of threads to use");
58 static const arg_def_t width_arg = ARG_DEF("w", "width", 1, "Source width");
59 static const arg_def_t height_arg = ARG_DEF("h", "height", 1, "Source height");
60 static const arg_def_t timebase_arg =
61  ARG_DEF("t", "timebase", 1, "Timebase (num/den)");
62 static const arg_def_t bitrate_arg = ARG_DEF(
63  "b", "target-bitrate", 1, "Encoding bitrate, in kilobits per second");
64 static const arg_def_t spatial_layers_arg =
65  ARG_DEF("sl", "spatial-layers", 1, "Number of spatial SVC layers");
66 static const arg_def_t temporal_layers_arg =
67  ARG_DEF("tl", "temporal-layers", 1, "Number of temporal SVC layers");
68 static const arg_def_t layering_mode_arg =
69  ARG_DEF("lm", "layering-mode", 1, "Temporal layering scheme.");
70 static const arg_def_t kf_dist_arg =
71  ARG_DEF("k", "kf-dist", 1, "Number of frames between keyframes");
72 static const arg_def_t scale_factors_arg =
73  ARG_DEF("r", "scale-factors", 1, "Scale factors (lowest to highest layer)");
74 static const arg_def_t min_q_arg =
75  ARG_DEF(NULL, "min-q", 1, "Minimum quantizer");
76 static const arg_def_t max_q_arg =
77  ARG_DEF(NULL, "max-q", 1, "Maximum quantizer");
78 static const arg_def_t speed_arg =
79  ARG_DEF("sp", "speed", 1, "Speed configuration");
80 static const arg_def_t aqmode_arg =
81  ARG_DEF("aq", "aqmode", 1, "AQ mode off/on");
82 static const arg_def_t bitrates_arg =
83  ARG_DEF("bl", "bitrates", 1,
84  "Bitrates[spatial_layer * num_temporal_layer + temporal_layer]");
85 static const arg_def_t dropframe_thresh_arg =
86  ARG_DEF(NULL, "drop-frame", 1, "Temporal resampling threshold (buf %)");
87 static const arg_def_t error_resilient_arg =
88  ARG_DEF(NULL, "error-resilient", 1, "Error resilient flag");
89 static const arg_def_t output_obu_arg =
90  ARG_DEF(NULL, "output-obu", 1,
91  "Write OBUs when set to 1. Otherwise write IVF files.");
92 static const arg_def_t test_decode_arg =
93  ARG_DEF(NULL, "test-decode", 1,
94  "Attempt to test decoding the output when set to 1. Default is 1.");
95 static const struct arg_enum_list tune_content_enum[] = {
96  { "default", AOM_CONTENT_DEFAULT },
97  { "screen", AOM_CONTENT_SCREEN },
98  { "film", AOM_CONTENT_FILM },
99  { NULL, 0 }
100 };
101 static const arg_def_t tune_content_arg = ARG_DEF_ENUM(
102  NULL, "tune-content", 1, "Tune content type", tune_content_enum);
103 
104 #if CONFIG_AV1_HIGHBITDEPTH
105 static const struct arg_enum_list bitdepth_enum[] = {
106  { "8", AOM_BITS_8 }, { "10", AOM_BITS_10 }, { "12", AOM_BITS_12 }, { NULL, 0 }
107 };
108 
109 static const arg_def_t bitdepth_arg = ARG_DEF_ENUM(
110  "d", "bit-depth", 1, "Bit depth for codec 8, 10 or 12. ", bitdepth_enum);
111 #endif // CONFIG_AV1_HIGHBITDEPTH
112 
113 static const arg_def_t *svc_args[] = { &frames_arg,
114  &outputfile,
115  &width_arg,
116  &height_arg,
117  &timebase_arg,
118  &bitrate_arg,
119  &spatial_layers_arg,
120  &kf_dist_arg,
121  &scale_factors_arg,
122  &min_q_arg,
123  &max_q_arg,
124  &temporal_layers_arg,
125  &layering_mode_arg,
126  &threads_arg,
127  &aqmode_arg,
128 #if CONFIG_AV1_HIGHBITDEPTH
129  &bitdepth_arg,
130 #endif
131  &speed_arg,
132  &bitrates_arg,
133  &dropframe_thresh_arg,
134  &error_resilient_arg,
135  &output_obu_arg,
136  &test_decode_arg,
137  &tune_content_arg,
138  NULL };
139 
140 #define zero(Dest) memset(&(Dest), 0, sizeof(Dest))
141 
142 static const char *exec_name;
143 
144 void usage_exit(void) {
145  fprintf(stderr, "Usage: %s <options> input_filename -o output_filename\n",
146  exec_name);
147  fprintf(stderr, "Options:\n");
148  arg_show_usage(stderr, svc_args);
149  exit(EXIT_FAILURE);
150 }
151 
152 static int file_is_y4m(const char detect[4]) {
153  return memcmp(detect, "YUV4", 4) == 0;
154 }
155 
156 static int fourcc_is_ivf(const char detect[4]) {
157  if (memcmp(detect, "DKIF", 4) == 0) {
158  return 1;
159  }
160  return 0;
161 }
162 
163 static const int option_max_values[ALL_OPTION_TYPES] = { 63, INT_MAX, INT_MAX,
164  1 };
165 
166 static const int option_min_values[ALL_OPTION_TYPES] = { 0, 0, 1, 0 };
167 
168 static void open_input_file(struct AvxInputContext *input,
170  /* Parse certain options from the input file, if possible */
171  input->file = strcmp(input->filename, "-") ? fopen(input->filename, "rb")
172  : set_binary_mode(stdin);
173 
174  if (!input->file) fatal("Failed to open input file");
175 
176  if (!fseeko(input->file, 0, SEEK_END)) {
177  /* Input file is seekable. Figure out how long it is, so we can get
178  * progress info.
179  */
180  input->length = ftello(input->file);
181  rewind(input->file);
182  }
183 
184  /* Default to 1:1 pixel aspect ratio. */
185  input->pixel_aspect_ratio.numerator = 1;
186  input->pixel_aspect_ratio.denominator = 1;
187 
188  /* For RAW input sources, these bytes will applied on the first frame
189  * in read_frame().
190  */
191  input->detect.buf_read = fread(input->detect.buf, 1, 4, input->file);
192  input->detect.position = 0;
193 
194  if (input->detect.buf_read == 4 && file_is_y4m(input->detect.buf)) {
195  if (y4m_input_open(&input->y4m, input->file, input->detect.buf, 4, csp,
196  input->only_i420) >= 0) {
197  input->file_type = FILE_TYPE_Y4M;
198  input->width = input->y4m.pic_w;
199  input->height = input->y4m.pic_h;
200  input->pixel_aspect_ratio.numerator = input->y4m.par_n;
201  input->pixel_aspect_ratio.denominator = input->y4m.par_d;
202  input->framerate.numerator = input->y4m.fps_n;
203  input->framerate.denominator = input->y4m.fps_d;
204  input->fmt = input->y4m.aom_fmt;
205  input->bit_depth = input->y4m.bit_depth;
206  } else {
207  fatal("Unsupported Y4M stream.");
208  }
209  } else if (input->detect.buf_read == 4 && fourcc_is_ivf(input->detect.buf)) {
210  fatal("IVF is not supported as input.");
211  } else {
212  input->file_type = FILE_TYPE_RAW;
213  }
214 }
215 
216 static aom_codec_err_t extract_option(LAYER_OPTION_TYPE type, char *input,
217  int *value0, int *value1) {
218  if (type == SCALE_FACTOR) {
219  *value0 = (int)strtol(input, &input, 10);
220  if (*input++ != '/') return AOM_CODEC_INVALID_PARAM;
221  *value1 = (int)strtol(input, &input, 10);
222 
223  if (*value0 < option_min_values[SCALE_FACTOR] ||
224  *value1 < option_min_values[SCALE_FACTOR] ||
225  *value0 > option_max_values[SCALE_FACTOR] ||
226  *value1 > option_max_values[SCALE_FACTOR] ||
227  *value0 > *value1) // num shouldn't be greater than den
229  } else {
230  *value0 = atoi(input);
231  if (*value0 < option_min_values[type] || *value0 > option_max_values[type])
233  }
234  return AOM_CODEC_OK;
235 }
236 
237 static aom_codec_err_t parse_layer_options_from_string(
238  aom_svc_params_t *svc_params, LAYER_OPTION_TYPE type, const char *input,
239  int *option0, int *option1) {
241  char *input_string;
242  char *token;
243  const char *delim = ",";
244  int num_layers = svc_params->number_spatial_layers;
245  int i = 0;
246 
247  if (type == BITRATE)
248  num_layers =
249  svc_params->number_spatial_layers * svc_params->number_temporal_layers;
250 
251  if (input == NULL || option0 == NULL ||
252  (option1 == NULL && type == SCALE_FACTOR))
254 
255  input_string = malloc(strlen(input));
256  if (!input_string) die("Failed to allocate input string.");
257  memcpy(input_string, input, strlen(input));
258  if (input_string == NULL) return AOM_CODEC_MEM_ERROR;
259  token = strtok(input_string, delim); // NOLINT
260  for (i = 0; i < num_layers; ++i) {
261  if (token != NULL) {
262  res = extract_option(type, token, option0 + i, option1 + i);
263  if (res != AOM_CODEC_OK) break;
264  token = strtok(NULL, delim); // NOLINT
265  } else {
266  break;
267  }
268  }
269  if (res == AOM_CODEC_OK && i != num_layers) {
271  }
272  free(input_string);
273  return res;
274 }
275 
276 static void parse_command_line(int argc, const char **argv_,
277  AppInput *app_input,
278  aom_svc_params_t *svc_params,
279  aom_codec_enc_cfg_t *enc_cfg) {
280  struct arg arg;
281  char **argv = NULL;
282  char **argi = NULL;
283  char **argj = NULL;
284  char string_options[1024] = { 0 };
285 
286  // Default settings
287  svc_params->number_spatial_layers = 1;
288  svc_params->number_temporal_layers = 1;
289  app_input->layering_mode = 0;
290  app_input->output_obu = 0;
291  app_input->decode = 1;
292  enc_cfg->g_threads = 1;
293  enc_cfg->rc_end_usage = AOM_CBR;
294 
295  // process command line options
296  argv = argv_dup(argc - 1, argv_ + 1);
297  if (!argv) {
298  fprintf(stderr, "Error allocating argument list\n");
299  exit(EXIT_FAILURE);
300  }
301  for (argi = argj = argv; (*argj = *argi); argi += arg.argv_step) {
302  arg.argv_step = 1;
303 
304  if (arg_match(&arg, &outputfile, argi)) {
305  app_input->output_filename = arg.val;
306  } else if (arg_match(&arg, &width_arg, argi)) {
307  enc_cfg->g_w = arg_parse_uint(&arg);
308  } else if (arg_match(&arg, &height_arg, argi)) {
309  enc_cfg->g_h = arg_parse_uint(&arg);
310  } else if (arg_match(&arg, &timebase_arg, argi)) {
311  enc_cfg->g_timebase = arg_parse_rational(&arg);
312  } else if (arg_match(&arg, &bitrate_arg, argi)) {
313  enc_cfg->rc_target_bitrate = arg_parse_uint(&arg);
314  } else if (arg_match(&arg, &spatial_layers_arg, argi)) {
315  svc_params->number_spatial_layers = arg_parse_uint(&arg);
316  } else if (arg_match(&arg, &temporal_layers_arg, argi)) {
317  svc_params->number_temporal_layers = arg_parse_uint(&arg);
318  } else if (arg_match(&arg, &speed_arg, argi)) {
319  app_input->speed = arg_parse_uint(&arg);
320  if (app_input->speed > 10) {
321  aom_tools_warn("Mapping speed %d to speed 10.\n", app_input->speed);
322  }
323  } else if (arg_match(&arg, &aqmode_arg, argi)) {
324  app_input->aq_mode = arg_parse_uint(&arg);
325  } else if (arg_match(&arg, &threads_arg, argi)) {
326  enc_cfg->g_threads = arg_parse_uint(&arg);
327  } else if (arg_match(&arg, &layering_mode_arg, argi)) {
328  app_input->layering_mode = arg_parse_int(&arg);
329  } else if (arg_match(&arg, &kf_dist_arg, argi)) {
330  enc_cfg->kf_min_dist = arg_parse_uint(&arg);
331  enc_cfg->kf_max_dist = enc_cfg->kf_min_dist;
332  } else if (arg_match(&arg, &scale_factors_arg, argi)) {
333  parse_layer_options_from_string(svc_params, SCALE_FACTOR, arg.val,
334  svc_params->scaling_factor_num,
335  svc_params->scaling_factor_den);
336  } else if (arg_match(&arg, &min_q_arg, argi)) {
337  enc_cfg->rc_min_quantizer = arg_parse_uint(&arg);
338  } else if (arg_match(&arg, &max_q_arg, argi)) {
339  enc_cfg->rc_max_quantizer = arg_parse_uint(&arg);
340 #if CONFIG_AV1_HIGHBITDEPTH
341  } else if (arg_match(&arg, &bitdepth_arg, argi)) {
342  enc_cfg->g_bit_depth = arg_parse_enum_or_int(&arg);
343  switch (enc_cfg->g_bit_depth) {
344  case AOM_BITS_8:
345  enc_cfg->g_input_bit_depth = 8;
346  enc_cfg->g_profile = 0;
347  break;
348  case AOM_BITS_10:
349  enc_cfg->g_input_bit_depth = 10;
350  enc_cfg->g_profile = 2;
351  break;
352  case AOM_BITS_12:
353  enc_cfg->g_input_bit_depth = 12;
354  enc_cfg->g_profile = 2;
355  break;
356  default:
357  die("Error: Invalid bit depth selected (%d)\n", enc_cfg->g_bit_depth);
358  break;
359  }
360 #endif // CONFIG_VP9_HIGHBITDEPTH
361  } else if (arg_match(&arg, &dropframe_thresh_arg, argi)) {
362  enc_cfg->rc_dropframe_thresh = arg_parse_uint(&arg);
363  } else if (arg_match(&arg, &error_resilient_arg, argi)) {
364  enc_cfg->g_error_resilient = arg_parse_uint(&arg);
365  if (enc_cfg->g_error_resilient != 0 && enc_cfg->g_error_resilient != 1)
366  die("Invalid value for error resilient (0, 1): %d.",
367  enc_cfg->g_error_resilient);
368  } else if (arg_match(&arg, &output_obu_arg, argi)) {
369  app_input->output_obu = arg_parse_uint(&arg);
370  if (app_input->output_obu != 0 && app_input->output_obu != 1)
371  die("Invalid value for obu output flag (0, 1): %d.",
372  app_input->output_obu);
373  } else if (arg_match(&arg, &test_decode_arg, argi)) {
374  app_input->decode = arg_parse_uint(&arg);
375  if (app_input->decode != 0 && app_input->decode != 1)
376  die("Invalid value for test decode flag (0, 1): %d.",
377  app_input->decode);
378  } else if (arg_match(&arg, &tune_content_arg, argi)) {
379  app_input->tune_content = arg_parse_enum_or_int(&arg);
380  printf("tune content %d\n", app_input->tune_content);
381  } else {
382  ++argj;
383  }
384  }
385 
386  // Total bitrate needs to be parsed after the number of layers.
387  for (argi = argj = argv; (*argj = *argi); argi += arg.argv_step) {
388  arg.argv_step = 1;
389  if (arg_match(&arg, &bitrates_arg, argi)) {
390  parse_layer_options_from_string(svc_params, BITRATE, arg.val,
391  svc_params->layer_target_bitrate, NULL);
392  } else {
393  ++argj;
394  }
395  }
396 
397  // There will be a space in front of the string options
398  if (strlen(string_options) > 0)
399  strncpy(app_input->options, string_options, OPTION_BUFFER_SIZE);
400 
401  // Check for unrecognized options
402  for (argi = argv; *argi; ++argi)
403  if (argi[0][0] == '-' && strlen(argi[0]) > 1)
404  die("Error: Unrecognized option %s\n", *argi);
405 
406  if (argv[0] == NULL) {
407  usage_exit();
408  }
409 
410  app_input->input_ctx.filename = argv[0];
411  free(argv);
412 
413  open_input_file(&app_input->input_ctx, 0);
414  if (app_input->input_ctx.file_type == FILE_TYPE_Y4M) {
415  enc_cfg->g_w = app_input->input_ctx.width;
416  enc_cfg->g_h = app_input->input_ctx.height;
417  }
418 
419  if (enc_cfg->g_w < 16 || enc_cfg->g_w % 2 || enc_cfg->g_h < 16 ||
420  enc_cfg->g_h % 2)
421  die("Invalid resolution: %d x %d\n", enc_cfg->g_w, enc_cfg->g_h);
422 
423  printf(
424  "Codec %s\n"
425  "layers: %d\n"
426  "width %u, height: %u\n"
427  "num: %d, den: %d, bitrate: %u\n"
428  "gop size: %u\n",
430  svc_params->number_spatial_layers, enc_cfg->g_w, enc_cfg->g_h,
431  enc_cfg->g_timebase.num, enc_cfg->g_timebase.den,
432  enc_cfg->rc_target_bitrate, enc_cfg->kf_max_dist);
433 }
434 
435 static unsigned int mode_to_num_temporal_layers[11] = { 1, 2, 3, 3, 2, 1,
436  1, 3, 3, 3, 3 };
437 static unsigned int mode_to_num_spatial_layers[11] = { 1, 1, 1, 1, 1, 2,
438  3, 2, 3, 3, 3 };
439 
440 // For rate control encoding stats.
441 struct RateControlMetrics {
442  // Number of input frames per layer.
443  int layer_input_frames[AOM_MAX_TS_LAYERS];
444  // Number of encoded non-key frames per layer.
445  int layer_enc_frames[AOM_MAX_TS_LAYERS];
446  // Framerate per layer layer (cumulative).
447  double layer_framerate[AOM_MAX_TS_LAYERS];
448  // Target average frame size per layer (per-frame-bandwidth per layer).
449  double layer_pfb[AOM_MAX_LAYERS];
450  // Actual average frame size per layer.
451  double layer_avg_frame_size[AOM_MAX_LAYERS];
452  // Average rate mismatch per layer (|target - actual| / target).
453  double layer_avg_rate_mismatch[AOM_MAX_LAYERS];
454  // Actual encoding bitrate per layer (cumulative across temporal layers).
455  double layer_encoding_bitrate[AOM_MAX_LAYERS];
456  // Average of the short-time encoder actual bitrate.
457  // TODO(marpan): Should we add these short-time stats for each layer?
458  double avg_st_encoding_bitrate;
459  // Variance of the short-time encoder actual bitrate.
460  double variance_st_encoding_bitrate;
461  // Window (number of frames) for computing short-timee encoding bitrate.
462  int window_size;
463  // Number of window measurements.
464  int window_count;
465  int layer_target_bitrate[AOM_MAX_LAYERS];
466 };
467 
468 // Reference frames used in this example encoder.
469 enum {
470  SVC_LAST_FRAME = 0,
471  SVC_LAST2_FRAME,
472  SVC_LAST3_FRAME,
473  SVC_GOLDEN_FRAME,
474  SVC_BWDREF_FRAME,
475  SVC_ALTREF2_FRAME,
476  SVC_ALTREF_FRAME
477 };
478 
479 static int read_frame(struct AvxInputContext *input_ctx, aom_image_t *img) {
480  FILE *f = input_ctx->file;
481  y4m_input *y4m = &input_ctx->y4m;
482  int shortread = 0;
483 
484  if (input_ctx->file_type == FILE_TYPE_Y4M) {
485  if (y4m_input_fetch_frame(y4m, f, img) < 1) return 0;
486  } else {
487  shortread = read_yuv_frame(input_ctx, img);
488  }
489 
490  return !shortread;
491 }
492 
493 static void close_input_file(struct AvxInputContext *input) {
494  fclose(input->file);
495  if (input->file_type == FILE_TYPE_Y4M) y4m_input_close(&input->y4m);
496 }
497 
498 // Note: these rate control metrics assume only 1 key frame in the
499 // sequence (i.e., first frame only). So for temporal pattern# 7
500 // (which has key frame for every frame on base layer), the metrics
501 // computation will be off/wrong.
502 // TODO(marpan): Update these metrics to account for multiple key frames
503 // in the stream.
504 static void set_rate_control_metrics(struct RateControlMetrics *rc,
505  double framerate,
506  unsigned int ss_number_layers,
507  unsigned int ts_number_layers) {
508  int ts_rate_decimator[AOM_MAX_TS_LAYERS] = { 1 };
509  ts_rate_decimator[0] = 1;
510  if (ts_number_layers == 2) {
511  ts_rate_decimator[0] = 2;
512  ts_rate_decimator[1] = 1;
513  }
514  if (ts_number_layers == 3) {
515  ts_rate_decimator[0] = 4;
516  ts_rate_decimator[1] = 2;
517  ts_rate_decimator[2] = 1;
518  }
519  // Set the layer (cumulative) framerate and the target layer (non-cumulative)
520  // per-frame-bandwidth, for the rate control encoding stats below.
521  for (unsigned int sl = 0; sl < ss_number_layers; ++sl) {
522  unsigned int i = sl * ts_number_layers;
523  rc->layer_framerate[0] = framerate / ts_rate_decimator[0];
524  rc->layer_pfb[i] =
525  1000.0 * rc->layer_target_bitrate[i] / rc->layer_framerate[0];
526  for (unsigned int tl = 0; tl < ts_number_layers; ++tl) {
527  i = sl * ts_number_layers + tl;
528  if (tl > 0) {
529  rc->layer_framerate[tl] = framerate / ts_rate_decimator[tl];
530  rc->layer_pfb[i] =
531  1000.0 *
532  (rc->layer_target_bitrate[i] - rc->layer_target_bitrate[i - 1]) /
533  (rc->layer_framerate[tl] - rc->layer_framerate[tl - 1]);
534  }
535  rc->layer_input_frames[tl] = 0;
536  rc->layer_enc_frames[tl] = 0;
537  rc->layer_encoding_bitrate[i] = 0.0;
538  rc->layer_avg_frame_size[i] = 0.0;
539  rc->layer_avg_rate_mismatch[i] = 0.0;
540  }
541  }
542  rc->window_count = 0;
543  rc->window_size = 15;
544  rc->avg_st_encoding_bitrate = 0.0;
545  rc->variance_st_encoding_bitrate = 0.0;
546 }
547 
548 static void printout_rate_control_summary(struct RateControlMetrics *rc,
549  int frame_cnt,
550  unsigned int ss_number_layers,
551  unsigned int ts_number_layers) {
552  int tot_num_frames = 0;
553  double perc_fluctuation = 0.0;
554  printf("Total number of processed frames: %d\n\n", frame_cnt - 1);
555  printf("Rate control layer stats for %u layer(s):\n\n", ts_number_layers);
556  for (unsigned int sl = 0; sl < ss_number_layers; ++sl) {
557  tot_num_frames = 0;
558  for (unsigned int tl = 0; tl < ts_number_layers; ++tl) {
559  unsigned int i = sl * ts_number_layers + tl;
560  const int num_dropped =
561  tl > 0 ? rc->layer_input_frames[tl] - rc->layer_enc_frames[tl]
562  : rc->layer_input_frames[tl] - rc->layer_enc_frames[tl] - 1;
563  tot_num_frames += rc->layer_input_frames[tl];
564  rc->layer_encoding_bitrate[i] = 0.001 * rc->layer_framerate[tl] *
565  rc->layer_encoding_bitrate[i] /
566  tot_num_frames;
567  rc->layer_avg_frame_size[i] =
568  rc->layer_avg_frame_size[i] / rc->layer_enc_frames[tl];
569  rc->layer_avg_rate_mismatch[i] =
570  100.0 * rc->layer_avg_rate_mismatch[i] / rc->layer_enc_frames[tl];
571  printf("For layer#: %u %u \n", sl, tl);
572  printf("Bitrate (target vs actual): %d %f\n", rc->layer_target_bitrate[i],
573  rc->layer_encoding_bitrate[i]);
574  printf("Average frame size (target vs actual): %f %f\n", rc->layer_pfb[i],
575  rc->layer_avg_frame_size[i]);
576  printf("Average rate_mismatch: %f\n", rc->layer_avg_rate_mismatch[i]);
577  printf(
578  "Number of input frames, encoded (non-key) frames, "
579  "and perc dropped frames: %d %d %f\n",
580  rc->layer_input_frames[tl], rc->layer_enc_frames[tl],
581  100.0 * num_dropped / rc->layer_input_frames[tl]);
582  printf("\n");
583  }
584  }
585  rc->avg_st_encoding_bitrate = rc->avg_st_encoding_bitrate / rc->window_count;
586  rc->variance_st_encoding_bitrate =
587  rc->variance_st_encoding_bitrate / rc->window_count -
588  (rc->avg_st_encoding_bitrate * rc->avg_st_encoding_bitrate);
589  perc_fluctuation = 100.0 * sqrt(rc->variance_st_encoding_bitrate) /
590  rc->avg_st_encoding_bitrate;
591  printf("Short-time stats, for window of %d frames:\n", rc->window_size);
592  printf("Average, rms-variance, and percent-fluct: %f %f %f\n",
593  rc->avg_st_encoding_bitrate, sqrt(rc->variance_st_encoding_bitrate),
594  perc_fluctuation);
595  if (frame_cnt - 1 != tot_num_frames)
596  die("Error: Number of input frames not equal to output!\n");
597 }
598 
599 // Layer pattern configuration.
600 static void set_layer_pattern(
601  int layering_mode, int superframe_cnt, aom_svc_layer_id_t *layer_id,
602  aom_svc_ref_frame_config_t *ref_frame_config,
603  aom_svc_ref_frame_comp_pred_t *ref_frame_comp_pred, int *use_svc_control,
604  int spatial_layer_id, int is_key_frame, int ksvc_mode, int speed) {
605  // Setting this flag to 1 enables simplex example of
606  // RPS (Reference Picture Selection) for 1 layer.
607  int use_rps_example = 0;
608  int i;
609  int enable_longterm_temporal_ref = 1;
610  int shift = (layering_mode == 8) ? 2 : 0;
611  *use_svc_control = 1;
612  layer_id->spatial_layer_id = spatial_layer_id;
613  int lag_index = 0;
614  int base_count = superframe_cnt >> 2;
615  ref_frame_comp_pred->use_comp_pred[0] = 0; // GOLDEN_LAST
616  ref_frame_comp_pred->use_comp_pred[1] = 0; // LAST2_LAST
617  ref_frame_comp_pred->use_comp_pred[2] = 0; // ALTREF_LAST
618  // Set the reference map buffer idx for the 7 references:
619  // LAST_FRAME (0), LAST2_FRAME(1), LAST3_FRAME(2), GOLDEN_FRAME(3),
620  // BWDREF_FRAME(4), ALTREF2_FRAME(5), ALTREF_FRAME(6).
621  for (i = 0; i < INTER_REFS_PER_FRAME; i++) ref_frame_config->ref_idx[i] = i;
622  for (i = 0; i < INTER_REFS_PER_FRAME; i++) ref_frame_config->reference[i] = 0;
623  for (i = 0; i < REF_FRAMES; i++) ref_frame_config->refresh[i] = 0;
624 
625  if (ksvc_mode) {
626  // Same pattern as case 9, but the reference strucutre will be constrained
627  // below.
628  layering_mode = 9;
629  }
630  switch (layering_mode) {
631  case 0:
632  if (use_rps_example == 0) {
633  // 1-layer: update LAST on every frame, reference LAST.
634  layer_id->temporal_layer_id = 0;
635  layer_id->spatial_layer_id = 0;
636  ref_frame_config->refresh[0] = 1;
637  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
638  } else {
639  // Pattern of 2 references (ALTREF and GOLDEN) trailing
640  // LAST by 4 and 8 frame, with some switching logic to
641  // sometimes only predict from longer-term reference.
642  // This is simple example to test RPS (reference picture selection)
643  // as method to handle network packet loss.
644  int last_idx = 0;
645  int last_idx_refresh = 0;
646  int gld_idx = 0;
647  int alt_ref_idx = 0;
648  int lag_alt = 4;
649  int lag_gld = 8;
650  layer_id->temporal_layer_id = 0;
651  layer_id->spatial_layer_id = 0;
652  int sh = 8; // slots 0 - 7.
653  // Moving index slot for last: 0 - (sh - 1)
654  if (superframe_cnt > 1) last_idx = (superframe_cnt - 1) % sh;
655  // Moving index for refresh of last: one ahead for next frame.
656  last_idx_refresh = superframe_cnt % sh;
657  // Moving index for gld_ref, lag behind current by lag_gld
658  if (superframe_cnt > lag_gld) gld_idx = (superframe_cnt - lag_gld) % sh;
659  // Moving index for alt_ref, lag behind LAST by lag_alt frames.
660  if (superframe_cnt > lag_alt)
661  alt_ref_idx = (superframe_cnt - lag_alt) % sh;
662  // Set the ref_idx.
663  // Default all references to slot for last.
664  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
665  ref_frame_config->ref_idx[i] = last_idx;
666  // Set the ref_idx for the relevant references.
667  ref_frame_config->ref_idx[SVC_LAST_FRAME] = last_idx;
668  ref_frame_config->ref_idx[SVC_LAST2_FRAME] = last_idx_refresh;
669  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = gld_idx;
670  ref_frame_config->ref_idx[SVC_ALTREF_FRAME] = alt_ref_idx;
671  // Refresh this slot, which will become LAST on next frame.
672  ref_frame_config->refresh[last_idx_refresh] = 1;
673  // Reference LAST, ALTREF, and GOLDEN
674  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
675  ref_frame_config->reference[SVC_ALTREF_FRAME] = 1;
676  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
677  // Switch to only ALTREF for frames 200 to 250.
678  if (superframe_cnt >= 200 && superframe_cnt < 250) {
679  ref_frame_config->reference[SVC_LAST_FRAME] = 0;
680  ref_frame_config->reference[SVC_ALTREF_FRAME] = 1;
681  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 0;
682  }
683  // Switch to only GOLDEN for frames 400 to 450.
684  if (superframe_cnt >= 400 && superframe_cnt < 450) {
685  ref_frame_config->reference[SVC_LAST_FRAME] = 0;
686  ref_frame_config->reference[SVC_ALTREF_FRAME] = 0;
687  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
688  }
689  }
690  break;
691  case 1:
692  // 2-temporal layer.
693  // 1 3 5
694  // 0 2 4
695  if (superframe_cnt % 2 == 0) {
696  layer_id->temporal_layer_id = 0;
697  // Update LAST on layer 0, reference LAST.
698  ref_frame_config->refresh[0] = 1;
699  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
700  } else {
701  layer_id->temporal_layer_id = 1;
702  // No updates on layer 1, only reference LAST (TL0).
703  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
704  }
705  break;
706  case 2:
707  // 3-temporal layer:
708  // 1 3 5 7
709  // 2 6
710  // 0 4 8
711  if (superframe_cnt % 4 == 0) {
712  // Base layer.
713  layer_id->temporal_layer_id = 0;
714  // Update LAST on layer 0, reference LAST.
715  ref_frame_config->refresh[0] = 1;
716  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
717  } else if ((superframe_cnt - 1) % 4 == 0) {
718  layer_id->temporal_layer_id = 2;
719  // First top layer: no updates, only reference LAST (TL0).
720  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
721  } else if ((superframe_cnt - 2) % 4 == 0) {
722  layer_id->temporal_layer_id = 1;
723  // Middle layer (TL1): update LAST2, only reference LAST (TL0).
724  ref_frame_config->refresh[1] = 1;
725  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
726  } else if ((superframe_cnt - 3) % 4 == 0) {
727  layer_id->temporal_layer_id = 2;
728  // Second top layer: no updates, only reference LAST.
729  // Set buffer idx for LAST to slot 1, since that was the slot
730  // updated in previous frame. So LAST is TL1 frame.
731  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
732  ref_frame_config->ref_idx[SVC_LAST2_FRAME] = 0;
733  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
734  }
735  break;
736  case 3:
737  // 3 TL, same as above, except allow for predicting
738  // off 2 more references (GOLDEN and ALTREF), with
739  // GOLDEN updated periodically, and ALTREF lagging from
740  // LAST from ~4 frames. Both GOLDEN and ALTREF
741  // can only be updated on base temporal layer.
742 
743  // Keep golden fixed at slot 3.
744  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 3;
745  // Cyclically refresh slots 5, 6, 7, for lag altref.
746  lag_index = 5;
747  if (base_count > 0) {
748  lag_index = 5 + (base_count % 3);
749  if (superframe_cnt % 4 != 0) lag_index = 5 + ((base_count + 1) % 3);
750  }
751  // Set the altref slot to lag_index.
752  ref_frame_config->ref_idx[SVC_ALTREF_FRAME] = lag_index;
753  if (superframe_cnt % 4 == 0) {
754  // Base layer.
755  layer_id->temporal_layer_id = 0;
756  // Update LAST on layer 0, reference LAST.
757  ref_frame_config->refresh[0] = 1;
758  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
759  // Refresh GOLDEN every x ~10 base layer frames.
760  if (base_count % 10 == 0) ref_frame_config->refresh[3] = 1;
761  // Refresh lag_index slot, needed for lagging altref.
762  ref_frame_config->refresh[lag_index] = 1;
763  } else if ((superframe_cnt - 1) % 4 == 0) {
764  layer_id->temporal_layer_id = 2;
765  // First top layer: no updates, only reference LAST (TL0).
766  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
767  } else if ((superframe_cnt - 2) % 4 == 0) {
768  layer_id->temporal_layer_id = 1;
769  // Middle layer (TL1): update LAST2, only reference LAST (TL0).
770  ref_frame_config->refresh[1] = 1;
771  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
772  } else if ((superframe_cnt - 3) % 4 == 0) {
773  layer_id->temporal_layer_id = 2;
774  // Second top layer: no updates, only reference LAST.
775  // Set buffer idx for LAST to slot 1, since that was the slot
776  // updated in previous frame. So LAST is TL1 frame.
777  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
778  ref_frame_config->ref_idx[SVC_LAST2_FRAME] = 0;
779  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
780  }
781  // Every frame can reference GOLDEN AND ALTREF.
782  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
783  ref_frame_config->reference[SVC_ALTREF_FRAME] = 1;
784  // Allow for compound prediction using LAST and ALTREF.
785  if (speed >= 7) ref_frame_comp_pred->use_comp_pred[2] = 1;
786  break;
787  case 4:
788  // 3-temporal layer: but middle layer updates GF, so 2nd TL2 will
789  // only reference GF (not LAST). Other frames only reference LAST.
790  // 1 3 5 7
791  // 2 6
792  // 0 4 8
793  if (superframe_cnt % 4 == 0) {
794  // Base layer.
795  layer_id->temporal_layer_id = 0;
796  // Update LAST on layer 0, only reference LAST.
797  ref_frame_config->refresh[0] = 1;
798  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
799  } else if ((superframe_cnt - 1) % 4 == 0) {
800  layer_id->temporal_layer_id = 2;
801  // First top layer: no updates, only reference LAST (TL0).
802  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
803  } else if ((superframe_cnt - 2) % 4 == 0) {
804  layer_id->temporal_layer_id = 1;
805  // Middle layer (TL1): update GF, only reference LAST (TL0).
806  ref_frame_config->refresh[3] = 1;
807  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
808  } else if ((superframe_cnt - 3) % 4 == 0) {
809  layer_id->temporal_layer_id = 2;
810  // Second top layer: no updates, only reference GF.
811  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
812  }
813  break;
814  case 5:
815  // 2 spatial layers, 1 temporal.
816  layer_id->temporal_layer_id = 0;
817  if (layer_id->spatial_layer_id == 0) {
818  // Reference LAST, update LAST.
819  ref_frame_config->refresh[0] = 1;
820  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
821  } else if (layer_id->spatial_layer_id == 1) {
822  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 1
823  // and GOLDEN to slot 0. Update slot 1 (LAST).
824  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
825  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 0;
826  ref_frame_config->refresh[1] = 1;
827  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
828  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
829  }
830  break;
831  case 6:
832  // 3 spatial layers, 1 temporal.
833  // Note for this case, we set the buffer idx for all references to be
834  // either LAST or GOLDEN, which are always valid references, since decoder
835  // will check if any of the 7 references is valid scale in
836  // valid_ref_frame_size().
837  layer_id->temporal_layer_id = 0;
838  if (layer_id->spatial_layer_id == 0) {
839  // Reference LAST, update LAST. Set all buffer_idx to 0.
840  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
841  ref_frame_config->ref_idx[i] = 0;
842  ref_frame_config->refresh[0] = 1;
843  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
844  } else if (layer_id->spatial_layer_id == 1) {
845  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 1
846  // and GOLDEN (and all other refs) to slot 0.
847  // Update slot 1 (LAST).
848  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
849  ref_frame_config->ref_idx[i] = 0;
850  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
851  ref_frame_config->refresh[1] = 1;
852  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
853  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
854  } else if (layer_id->spatial_layer_id == 2) {
855  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 2
856  // and GOLDEN (and all other refs) to slot 1.
857  // Update slot 2 (LAST).
858  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
859  ref_frame_config->ref_idx[i] = 1;
860  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 2;
861  ref_frame_config->refresh[2] = 1;
862  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
863  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
864  // For 3 spatial layer case: allow for top spatial layer to use
865  // additional temporal reference. Update every 10 frames.
866  if (enable_longterm_temporal_ref) {
867  ref_frame_config->ref_idx[SVC_ALTREF_FRAME] = REF_FRAMES - 1;
868  ref_frame_config->reference[SVC_ALTREF_FRAME] = 1;
869  if (base_count % 10 == 0)
870  ref_frame_config->refresh[REF_FRAMES - 1] = 1;
871  }
872  }
873  break;
874  case 7:
875  // 2 spatial and 3 temporal layer.
876  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
877  if (superframe_cnt % 4 == 0) {
878  // Base temporal layer
879  layer_id->temporal_layer_id = 0;
880  if (layer_id->spatial_layer_id == 0) {
881  // Reference LAST, update LAST
882  // Set all buffer_idx to 0
883  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
884  ref_frame_config->ref_idx[i] = 0;
885  ref_frame_config->refresh[0] = 1;
886  } else if (layer_id->spatial_layer_id == 1) {
887  // Reference LAST and GOLDEN.
888  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
889  ref_frame_config->ref_idx[i] = 0;
890  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
891  ref_frame_config->refresh[1] = 1;
892  }
893  } else if ((superframe_cnt - 1) % 4 == 0) {
894  // First top temporal enhancement layer.
895  layer_id->temporal_layer_id = 2;
896  if (layer_id->spatial_layer_id == 0) {
897  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
898  ref_frame_config->ref_idx[i] = 0;
899  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 3;
900  ref_frame_config->refresh[3] = 1;
901  } else if (layer_id->spatial_layer_id == 1) {
902  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 1,
903  // GOLDEN (and all other refs) to slot 3.
904  // No update.
905  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
906  ref_frame_config->ref_idx[i] = 3;
907  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
908  }
909  } else if ((superframe_cnt - 2) % 4 == 0) {
910  // Middle temporal enhancement layer.
911  layer_id->temporal_layer_id = 1;
912  if (layer_id->spatial_layer_id == 0) {
913  // Reference LAST.
914  // Set all buffer_idx to 0.
915  // Set GOLDEN to slot 5 and update slot 5.
916  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
917  ref_frame_config->ref_idx[i] = 0;
918  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 5 - shift;
919  ref_frame_config->refresh[5 - shift] = 1;
920  } else if (layer_id->spatial_layer_id == 1) {
921  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 1,
922  // GOLDEN (and all other refs) to slot 5.
923  // Set LAST3 to slot 6 and update slot 6.
924  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
925  ref_frame_config->ref_idx[i] = 5 - shift;
926  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
927  ref_frame_config->ref_idx[SVC_LAST3_FRAME] = 6 - shift;
928  ref_frame_config->refresh[6 - shift] = 1;
929  }
930  } else if ((superframe_cnt - 3) % 4 == 0) {
931  // Second top temporal enhancement layer.
932  layer_id->temporal_layer_id = 2;
933  if (layer_id->spatial_layer_id == 0) {
934  // Set LAST to slot 5 and reference LAST.
935  // Set GOLDEN to slot 3 and update slot 3.
936  // Set all other buffer_idx to 0.
937  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
938  ref_frame_config->ref_idx[i] = 0;
939  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 5 - shift;
940  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 3;
941  ref_frame_config->refresh[3] = 1;
942  } else if (layer_id->spatial_layer_id == 1) {
943  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 6,
944  // GOLDEN to slot 3. No update.
945  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
946  ref_frame_config->ref_idx[i] = 0;
947  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 6 - shift;
948  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 3;
949  }
950  }
951  break;
952  case 8:
953  // 3 spatial and 3 temporal layer.
954  // Same as case 9 but overalap in the buffer slot updates.
955  // (shift = 2). The slots 3 and 4 updated by first TL2 are
956  // reused for update in TL1 superframe.
957  // Note for this case, frame order hint must be disabled for
958  // lower resolutios (operating points > 0) to be decoedable.
959  case 9:
960  // 3 spatial and 3 temporal layer.
961  // No overlap in buffer updates between TL2 and TL1.
962  // TL2 updates slot 3 and 4, TL1 updates 5, 6, 7.
963  // Set the references via the svc_ref_frame_config control.
964  // Always reference LAST.
965  ref_frame_config->reference[SVC_LAST_FRAME] = 1;
966  if (superframe_cnt % 4 == 0) {
967  // Base temporal layer.
968  layer_id->temporal_layer_id = 0;
969  if (layer_id->spatial_layer_id == 0) {
970  // Reference LAST, update LAST.
971  // Set all buffer_idx to 0.
972  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
973  ref_frame_config->ref_idx[i] = 0;
974  ref_frame_config->refresh[0] = 1;
975  } else if (layer_id->spatial_layer_id == 1) {
976  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 1,
977  // GOLDEN (and all other refs) to slot 0.
978  // Update slot 1 (LAST).
979  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
980  ref_frame_config->ref_idx[i] = 0;
981  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
982  ref_frame_config->refresh[1] = 1;
983  } else if (layer_id->spatial_layer_id == 2) {
984  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 2,
985  // GOLDEN (and all other refs) to slot 1.
986  // Update slot 2 (LAST).
987  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
988  ref_frame_config->ref_idx[i] = 1;
989  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 2;
990  ref_frame_config->refresh[2] = 1;
991  }
992  } else if ((superframe_cnt - 1) % 4 == 0) {
993  // First top temporal enhancement layer.
994  layer_id->temporal_layer_id = 2;
995  if (layer_id->spatial_layer_id == 0) {
996  // Reference LAST (slot 0).
997  // Set GOLDEN to slot 3 and update slot 3.
998  // Set all other buffer_idx to slot 0.
999  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1000  ref_frame_config->ref_idx[i] = 0;
1001  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 3;
1002  ref_frame_config->refresh[3] = 1;
1003  } else if (layer_id->spatial_layer_id == 1) {
1004  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 1,
1005  // GOLDEN (and all other refs) to slot 3.
1006  // Set LAST2 to slot 4 and Update slot 4.
1007  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1008  ref_frame_config->ref_idx[i] = 3;
1009  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
1010  ref_frame_config->ref_idx[SVC_LAST2_FRAME] = 4;
1011  ref_frame_config->refresh[4] = 1;
1012  } else if (layer_id->spatial_layer_id == 2) {
1013  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 2,
1014  // GOLDEN (and all other refs) to slot 4.
1015  // No update.
1016  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1017  ref_frame_config->ref_idx[i] = 4;
1018  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 2;
1019  }
1020  } else if ((superframe_cnt - 2) % 4 == 0) {
1021  // Middle temporal enhancement layer.
1022  layer_id->temporal_layer_id = 1;
1023  if (layer_id->spatial_layer_id == 0) {
1024  // Reference LAST.
1025  // Set all buffer_idx to 0.
1026  // Set GOLDEN to slot 5 and update slot 5.
1027  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1028  ref_frame_config->ref_idx[i] = 0;
1029  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 5 - shift;
1030  ref_frame_config->refresh[5 - shift] = 1;
1031  } else if (layer_id->spatial_layer_id == 1) {
1032  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 1,
1033  // GOLDEN (and all other refs) to slot 5.
1034  // Set LAST3 to slot 6 and update slot 6.
1035  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1036  ref_frame_config->ref_idx[i] = 5 - shift;
1037  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 1;
1038  ref_frame_config->ref_idx[SVC_LAST3_FRAME] = 6 - shift;
1039  ref_frame_config->refresh[6 - shift] = 1;
1040  } else if (layer_id->spatial_layer_id == 2) {
1041  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 2,
1042  // GOLDEN (and all other refs) to slot 6.
1043  // Set LAST3 to slot 7 and update slot 7.
1044  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1045  ref_frame_config->ref_idx[i] = 6 - shift;
1046  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 2;
1047  ref_frame_config->ref_idx[SVC_LAST3_FRAME] = 7 - shift;
1048  ref_frame_config->refresh[7 - shift] = 1;
1049  }
1050  } else if ((superframe_cnt - 3) % 4 == 0) {
1051  // Second top temporal enhancement layer.
1052  layer_id->temporal_layer_id = 2;
1053  if (layer_id->spatial_layer_id == 0) {
1054  // Set LAST to slot 5 and reference LAST.
1055  // Set GOLDEN to slot 3 and update slot 3.
1056  // Set all other buffer_idx to 0.
1057  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1058  ref_frame_config->ref_idx[i] = 0;
1059  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 5 - shift;
1060  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 3;
1061  ref_frame_config->refresh[3] = 1;
1062  } else if (layer_id->spatial_layer_id == 1) {
1063  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 6,
1064  // GOLDEN to slot 3. Set LAST2 to slot 4 and update slot 4.
1065  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1066  ref_frame_config->ref_idx[i] = 0;
1067  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 6 - shift;
1068  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 3;
1069  ref_frame_config->ref_idx[SVC_LAST2_FRAME] = 4;
1070  ref_frame_config->refresh[4] = 1;
1071  } else if (layer_id->spatial_layer_id == 2) {
1072  // Reference LAST and GOLDEN. Set buffer_idx for LAST to slot 7,
1073  // GOLDEN to slot 4. No update.
1074  for (i = 0; i < INTER_REFS_PER_FRAME; i++)
1075  ref_frame_config->ref_idx[i] = 0;
1076  ref_frame_config->ref_idx[SVC_LAST_FRAME] = 7 - shift;
1077  ref_frame_config->ref_idx[SVC_GOLDEN_FRAME] = 4;
1078  }
1079  }
1080  if (layer_id->spatial_layer_id > 0) {
1081  // Always reference GOLDEN (inter-layer prediction).
1082  ref_frame_config->reference[SVC_GOLDEN_FRAME] = 1;
1083  if (ksvc_mode) {
1084  // KSVC: only keep the inter-layer reference (GOLDEN) for
1085  // superframes whose base is key.
1086  if (!is_key_frame) ref_frame_config->reference[SVC_GOLDEN_FRAME] = 0;
1087  }
1088  if (is_key_frame && layer_id->spatial_layer_id > 1) {
1089  // On superframes whose base is key: remove LAST to avoid prediction
1090  // off layer two levels below.
1091  ref_frame_config->reference[SVC_LAST_FRAME] = 0;
1092  }
1093  }
1094  // For 3 spatial layer case 8 (where there is free buffer slot):
1095  // allow for top spatial layer to use additional temporal reference.
1096  // Additional reference is only updated on base temporal layer, every
1097  // 10 TL0 frames here.
1098  if (enable_longterm_temporal_ref && layer_id->spatial_layer_id == 2 &&
1099  layering_mode == 8) {
1100  ref_frame_config->ref_idx[SVC_ALTREF_FRAME] = REF_FRAMES - 1;
1101  if (!is_key_frame) ref_frame_config->reference[SVC_ALTREF_FRAME] = 1;
1102  if (base_count % 10 == 0 && layer_id->temporal_layer_id == 0)
1103  ref_frame_config->refresh[REF_FRAMES - 1] = 1;
1104  }
1105  break;
1106  default: assert(0); die("Error: Unsupported temporal layering mode!\n");
1107  }
1108 }
1109 
1110 #if CONFIG_AV1_DECODER
1111 static void test_decode(aom_codec_ctx_t *encoder, aom_codec_ctx_t *decoder,
1112  const int frames_out, int *mismatch_seen) {
1113  aom_image_t enc_img, dec_img;
1114 
1115  if (*mismatch_seen) return;
1116 
1117  /* Get the internal reference frame */
1120 
1121 #if CONFIG_AV1_HIGHBITDEPTH
1122  if ((enc_img.fmt & AOM_IMG_FMT_HIGHBITDEPTH) !=
1123  (dec_img.fmt & AOM_IMG_FMT_HIGHBITDEPTH)) {
1124  if (enc_img.fmt & AOM_IMG_FMT_HIGHBITDEPTH) {
1125  aom_image_t enc_hbd_img;
1126  aom_img_alloc(&enc_hbd_img, enc_img.fmt - AOM_IMG_FMT_HIGHBITDEPTH,
1127  enc_img.d_w, enc_img.d_h, 16);
1128  aom_img_truncate_16_to_8(&enc_hbd_img, &enc_img);
1129  enc_img = enc_hbd_img;
1130  }
1131  if (dec_img.fmt & AOM_IMG_FMT_HIGHBITDEPTH) {
1132  aom_image_t dec_hbd_img;
1133  aom_img_alloc(&dec_hbd_img, dec_img.fmt - AOM_IMG_FMT_HIGHBITDEPTH,
1134  dec_img.d_w, dec_img.d_h, 16);
1135  aom_img_truncate_16_to_8(&dec_hbd_img, &dec_img);
1136  dec_img = dec_hbd_img;
1137  }
1138  }
1139 #endif
1140 
1141  if (!aom_compare_img(&enc_img, &dec_img)) {
1142  int y[4], u[4], v[4];
1143 #if CONFIG_AV1_HIGHBITDEPTH
1144  if (enc_img.fmt & AOM_IMG_FMT_HIGHBITDEPTH) {
1145  aom_find_mismatch_high(&enc_img, &dec_img, y, u, v);
1146  } else {
1147  aom_find_mismatch(&enc_img, &dec_img, y, u, v);
1148  }
1149 #else
1150  aom_find_mismatch(&enc_img, &dec_img, y, u, v);
1151 #endif
1152  decoder->err = 1;
1153  printf(
1154  "Encode/decode mismatch on frame %d at"
1155  " Y[%d, %d] {%d/%d},"
1156  " U[%d, %d] {%d/%d},"
1157  " V[%d, %d] {%d/%d}",
1158  frames_out, y[0], y[1], y[2], y[3], u[0], u[1], u[2], u[3], v[0], v[1],
1159  v[2], v[3]);
1160  *mismatch_seen = frames_out;
1161  }
1162 
1163  aom_img_free(&enc_img);
1164  aom_img_free(&dec_img);
1165 }
1166 #endif // CONFIG_AV1_DECODER
1167 
1168 int main(int argc, const char **argv) {
1169  AppInput app_input;
1170  AvxVideoWriter *outfile[AOM_MAX_LAYERS] = { NULL };
1171  FILE *obu_files[AOM_MAX_LAYERS] = { NULL };
1172  AvxVideoWriter *total_layer_file = NULL;
1173  FILE *total_layer_obu_file = NULL;
1174  aom_codec_enc_cfg_t cfg;
1175  int frame_cnt = 0;
1176  aom_image_t raw;
1177  int frame_avail;
1178  int got_data = 0;
1179  int flags = 0;
1180  unsigned i;
1181  int pts = 0; // PTS starts at 0.
1182  int frame_duration = 1; // 1 timebase tick per frame.
1183  aom_svc_layer_id_t layer_id;
1184  aom_svc_params_t svc_params;
1185  aom_svc_ref_frame_config_t ref_frame_config;
1186  aom_svc_ref_frame_comp_pred_t ref_frame_comp_pred;
1187 
1188 #if CONFIG_INTERNAL_STATS
1189  FILE *stats_file = fopen("opsnr.stt", "a");
1190  if (stats_file == NULL) {
1191  die("Cannot open opsnr.stt\n");
1192  }
1193 #endif
1194 #if CONFIG_AV1_DECODER
1195  int mismatch_seen = 0;
1196  aom_codec_ctx_t decoder;
1197 #endif
1198 
1199  struct RateControlMetrics rc;
1200  int64_t cx_time = 0;
1201  int64_t cx_time_layer[AOM_MAX_LAYERS]; // max number of layers.
1202  int frame_cnt_layer[AOM_MAX_LAYERS];
1203  double sum_bitrate = 0.0;
1204  double sum_bitrate2 = 0.0;
1205  double framerate = 30.0;
1206  int use_svc_control = 1;
1207  int set_err_resil_frame = 0;
1208  zero(rc.layer_target_bitrate);
1209  memset(&layer_id, 0, sizeof(aom_svc_layer_id_t));
1210  memset(&app_input, 0, sizeof(AppInput));
1211  memset(&svc_params, 0, sizeof(svc_params));
1212 
1213  // Flag to test dynamic scaling of source frames for single
1214  // spatial stream, using the scaling_mode control.
1215  const int test_dynamic_scaling_single_layer = 0;
1216 
1217  /* Setup default input stream settings */
1218  app_input.input_ctx.framerate.numerator = 30;
1219  app_input.input_ctx.framerate.denominator = 1;
1220  app_input.input_ctx.only_i420 = 1;
1221  app_input.input_ctx.bit_depth = 0;
1222  app_input.speed = 7;
1223  exec_name = argv[0];
1224 
1225  // start with default encoder configuration
1228  if (res) {
1229  die("Failed to get config: %s\n", aom_codec_err_to_string(res));
1230  }
1231 
1232  // Real time parameters.
1234 
1235  cfg.rc_end_usage = AOM_CBR;
1236  cfg.rc_min_quantizer = 2;
1237  cfg.rc_max_quantizer = 52;
1238  cfg.rc_undershoot_pct = 50;
1239  cfg.rc_overshoot_pct = 50;
1240  cfg.rc_buf_initial_sz = 600;
1241  cfg.rc_buf_optimal_sz = 600;
1242  cfg.rc_buf_sz = 1000;
1243  cfg.rc_resize_mode = 0; // Set to RESIZE_DYNAMIC for dynamic resize.
1244  cfg.g_lag_in_frames = 0;
1245  cfg.kf_mode = AOM_KF_AUTO;
1246 
1247  parse_command_line(argc, argv, &app_input, &svc_params, &cfg);
1248 
1249  unsigned int ts_number_layers = svc_params.number_temporal_layers;
1250  unsigned int ss_number_layers = svc_params.number_spatial_layers;
1251 
1252  unsigned int width = cfg.g_w;
1253  unsigned int height = cfg.g_h;
1254 
1255  if (app_input.layering_mode >= 0) {
1256  if (ts_number_layers !=
1257  mode_to_num_temporal_layers[app_input.layering_mode] ||
1258  ss_number_layers !=
1259  mode_to_num_spatial_layers[app_input.layering_mode]) {
1260  die("Number of layers doesn't match layering mode.");
1261  }
1262  }
1263 
1264  // Y4M reader has its own allocation.
1265  if (app_input.input_ctx.file_type != FILE_TYPE_Y4M) {
1266  if (!aom_img_alloc(&raw, AOM_IMG_FMT_I420, width, height, 32)) {
1267  die("Failed to allocate image (%dx%d)", width, height);
1268  }
1269  }
1270 
1271  aom_codec_iface_t *encoder = get_aom_encoder_by_short_name("av1");
1272 
1273  memcpy(&rc.layer_target_bitrate[0], &svc_params.layer_target_bitrate[0],
1274  sizeof(svc_params.layer_target_bitrate));
1275 
1276  unsigned int total_rate = 0;
1277  for (i = 0; i < ss_number_layers; i++) {
1278  total_rate +=
1279  svc_params
1280  .layer_target_bitrate[i * ts_number_layers + ts_number_layers - 1];
1281  }
1282  if (total_rate != cfg.rc_target_bitrate) {
1283  die("Incorrect total target bitrate");
1284  }
1285 
1286  svc_params.framerate_factor[0] = 1;
1287  if (ts_number_layers == 2) {
1288  svc_params.framerate_factor[0] = 2;
1289  svc_params.framerate_factor[1] = 1;
1290  } else if (ts_number_layers == 3) {
1291  svc_params.framerate_factor[0] = 4;
1292  svc_params.framerate_factor[1] = 2;
1293  svc_params.framerate_factor[2] = 1;
1294  }
1295 
1296  if (app_input.input_ctx.file_type == FILE_TYPE_Y4M) {
1297  // Override these settings with the info from Y4M file.
1298  cfg.g_w = app_input.input_ctx.width;
1299  cfg.g_h = app_input.input_ctx.height;
1300  // g_timebase is the reciprocal of frame rate.
1301  cfg.g_timebase.num = app_input.input_ctx.framerate.denominator;
1302  cfg.g_timebase.den = app_input.input_ctx.framerate.numerator;
1303  }
1304  framerate = cfg.g_timebase.den / cfg.g_timebase.num;
1305  set_rate_control_metrics(&rc, framerate, ss_number_layers, ts_number_layers);
1306 
1307  AvxVideoInfo info;
1308  info.codec_fourcc = get_fourcc_by_aom_encoder(encoder);
1309  info.frame_width = cfg.g_w;
1310  info.frame_height = cfg.g_h;
1311  info.time_base.numerator = cfg.g_timebase.num;
1312  info.time_base.denominator = cfg.g_timebase.den;
1313  // Open an output file for each stream.
1314  for (unsigned int sl = 0; sl < ss_number_layers; ++sl) {
1315  for (unsigned tl = 0; tl < ts_number_layers; ++tl) {
1316  i = sl * ts_number_layers + tl;
1317  char file_name[PATH_MAX];
1318  snprintf(file_name, sizeof(file_name), "%s_%u.av1",
1319  app_input.output_filename, i);
1320  if (app_input.output_obu) {
1321  obu_files[i] = fopen(file_name, "wb");
1322  if (!obu_files[i]) die("Failed to open %s for writing", file_name);
1323  } else {
1324  outfile[i] = aom_video_writer_open(file_name, kContainerIVF, &info);
1325  if (!outfile[i]) die("Failed to open %s for writing", file_name);
1326  }
1327  }
1328  }
1329  if (app_input.output_obu) {
1330  total_layer_obu_file = fopen(app_input.output_filename, "wb");
1331  if (!total_layer_obu_file)
1332  die("Failed to open %s for writing", app_input.output_filename);
1333  } else {
1334  total_layer_file =
1335  aom_video_writer_open(app_input.output_filename, kContainerIVF, &info);
1336  if (!total_layer_file)
1337  die("Failed to open %s for writing", app_input.output_filename);
1338  }
1339 
1340  // Initialize codec.
1341  aom_codec_ctx_t codec;
1342  if (aom_codec_enc_init(&codec, encoder, &cfg, 0))
1343  die("Failed to initialize encoder");
1344 
1345 #if CONFIG_AV1_DECODER
1346  if (app_input.decode) {
1347  if (aom_codec_dec_init(&decoder, get_aom_decoder_by_index(0), NULL, 0)) {
1348  die("Failed to initialize decoder");
1349  }
1350  }
1351 #endif
1352 
1353  aom_codec_control(&codec, AOME_SET_CPUUSED, app_input.speed);
1354  aom_codec_control(&codec, AV1E_SET_AQ_MODE, app_input.aq_mode ? 3 : 0);
1369 
1370  // Settings to reduce key frame encoding time.
1376 
1378  cfg.g_threads ? get_msb(cfg.g_threads) : 0);
1379  if (cfg.g_threads > 1) aom_codec_control(&codec, AV1E_SET_ROW_MT, 1);
1380 
1381  aom_codec_control(&codec, AV1E_SET_TUNE_CONTENT, app_input.tune_content);
1382  if (app_input.tune_content == AOM_CONTENT_SCREEN) {
1385  // INTRABC is currently disabled for rt mode, as it's too slow.
1387  }
1388 
1389  svc_params.number_spatial_layers = ss_number_layers;
1390  svc_params.number_temporal_layers = ts_number_layers;
1391  for (i = 0; i < ss_number_layers * ts_number_layers; ++i) {
1392  svc_params.max_quantizers[i] = cfg.rc_max_quantizer;
1393  svc_params.min_quantizers[i] = cfg.rc_min_quantizer;
1394  }
1395  for (i = 0; i < ss_number_layers; ++i) {
1396  svc_params.scaling_factor_num[i] = 1;
1397  svc_params.scaling_factor_den[i] = 1;
1398  }
1399  if (ss_number_layers == 2) {
1400  svc_params.scaling_factor_num[0] = 1;
1401  svc_params.scaling_factor_den[0] = 2;
1402  } else if (ss_number_layers == 3) {
1403  svc_params.scaling_factor_num[0] = 1;
1404  svc_params.scaling_factor_den[0] = 4;
1405  svc_params.scaling_factor_num[1] = 1;
1406  svc_params.scaling_factor_den[1] = 2;
1407  }
1408  aom_codec_control(&codec, AV1E_SET_SVC_PARAMS, &svc_params);
1409  // TODO(aomedia:3032): Configure KSVC in fixed mode.
1410 
1411  // This controls the maximum target size of the key frame.
1412  // For generating smaller key frames, use a smaller max_intra_size_pct
1413  // value, like 100 or 200.
1414  {
1415  const int max_intra_size_pct = 300;
1417  max_intra_size_pct);
1418  }
1419 
1420  for (unsigned int lx = 0; lx < ts_number_layers * ss_number_layers; lx++) {
1421  cx_time_layer[lx] = 0;
1422  frame_cnt_layer[lx] = 0;
1423  }
1424 
1425  frame_avail = 1;
1426  while (frame_avail || got_data) {
1427  struct aom_usec_timer timer;
1428  frame_avail = read_frame(&(app_input.input_ctx), &raw);
1429  // Loop over spatial layers.
1430  for (unsigned int slx = 0; slx < ss_number_layers; slx++) {
1431  aom_codec_iter_t iter = NULL;
1432  const aom_codec_cx_pkt_t *pkt;
1433  int layer = 0;
1434  // Flag for superframe whose base is key.
1435  int is_key_frame = (frame_cnt % cfg.kf_max_dist) == 0;
1436  // For flexible mode:
1437  if (app_input.layering_mode >= 0) {
1438  // Set the reference/update flags, layer_id, and reference_map
1439  // buffer index.
1440  set_layer_pattern(app_input.layering_mode, frame_cnt, &layer_id,
1441  &ref_frame_config, &ref_frame_comp_pred,
1442  &use_svc_control, slx, is_key_frame,
1443  (app_input.layering_mode == 10), app_input.speed);
1444  aom_codec_control(&codec, AV1E_SET_SVC_LAYER_ID, &layer_id);
1445  if (use_svc_control) {
1447  &ref_frame_config);
1449  &ref_frame_comp_pred);
1450  }
1451  } else {
1452  // Only up to 3 temporal layers supported in fixed mode.
1453  // Only need to set spatial and temporal layer_id: reference
1454  // prediction, refresh, and buffer_idx are set internally.
1455  layer_id.spatial_layer_id = slx;
1456  layer_id.temporal_layer_id = 0;
1457  if (ts_number_layers == 2) {
1458  layer_id.temporal_layer_id = (frame_cnt % 2) != 0;
1459  } else if (ts_number_layers == 3) {
1460  if (frame_cnt % 2 != 0)
1461  layer_id.temporal_layer_id = 2;
1462  else if ((frame_cnt > 1) && ((frame_cnt - 2) % 4 == 0))
1463  layer_id.temporal_layer_id = 1;
1464  }
1465  aom_codec_control(&codec, AV1E_SET_SVC_LAYER_ID, &layer_id);
1466  }
1467 
1468  if (set_err_resil_frame) {
1469  // Set error_resilient per frame: off/0 for base layer and
1470  // on/1 for enhancement layer frames.
1471  int err_resil_mode =
1472  (layer_id.spatial_layer_id > 0 || layer_id.temporal_layer_id > 0);
1474  err_resil_mode);
1475  }
1476 
1477  layer = slx * ts_number_layers + layer_id.temporal_layer_id;
1478  if (frame_avail && slx == 0) ++rc.layer_input_frames[layer];
1479 
1480  if (test_dynamic_scaling_single_layer) {
1481  // Example to scale source down by 2x2, then 4x4, and then back up to
1482  // 2x2, and then back to original.
1483  int frame_2x2 = 200;
1484  int frame_4x4 = 400;
1485  int frame_2x2up = 600;
1486  int frame_orig = 800;
1487  if (frame_cnt >= frame_2x2 && frame_cnt < frame_4x4) {
1488  // Scale source down by 2x2.
1489  struct aom_scaling_mode mode = { AOME_ONETWO, AOME_ONETWO };
1490  aom_codec_control(&codec, AOME_SET_SCALEMODE, &mode);
1491  } else if (frame_cnt >= frame_4x4 && frame_cnt < frame_2x2up) {
1492  // Scale source down by 4x4.
1493  struct aom_scaling_mode mode = { AOME_ONEFOUR, AOME_ONEFOUR };
1494  aom_codec_control(&codec, AOME_SET_SCALEMODE, &mode);
1495  } else if (frame_cnt >= frame_2x2up && frame_cnt < frame_orig) {
1496  // Source back up to 2x2.
1497  struct aom_scaling_mode mode = { AOME_ONETWO, AOME_ONETWO };
1498  aom_codec_control(&codec, AOME_SET_SCALEMODE, &mode);
1499  } else if (frame_cnt >= frame_orig) {
1500  // Source back up to original resolution (no scaling).
1501  struct aom_scaling_mode mode = { AOME_NORMAL, AOME_NORMAL };
1502  aom_codec_control(&codec, AOME_SET_SCALEMODE, &mode);
1503  }
1504  if (frame_cnt == frame_2x2 || frame_cnt == frame_4x4 ||
1505  frame_cnt == frame_2x2up || frame_cnt == frame_orig) {
1506  // For dynamic resize testing on single layer: refresh all references
1507  // on the resized frame: this is to avoid decode error:
1508  // if resize goes down by >= 4x4 then libaom decoder will throw an
1509  // error that some reference (even though not used) is beyond the
1510  // limit size (must be smaller than 4x4).
1511  for (i = 0; i < REF_FRAMES; i++) ref_frame_config.refresh[i] = 1;
1512  if (use_svc_control) {
1514  &ref_frame_config);
1516  &ref_frame_comp_pred);
1517  }
1518  }
1519  }
1520 
1521  // Do the layer encode.
1522  aom_usec_timer_start(&timer);
1523  if (aom_codec_encode(&codec, frame_avail ? &raw : NULL, pts, 1, flags))
1524  die_codec(&codec, "Failed to encode frame");
1525  aom_usec_timer_mark(&timer);
1526  cx_time += aom_usec_timer_elapsed(&timer);
1527  cx_time_layer[layer] += aom_usec_timer_elapsed(&timer);
1528  frame_cnt_layer[layer] += 1;
1529 
1530  got_data = 0;
1531  while ((pkt = aom_codec_get_cx_data(&codec, &iter))) {
1532  got_data = 1;
1533  switch (pkt->kind) {
1535  for (unsigned int sl = layer_id.spatial_layer_id;
1536  sl < ss_number_layers; ++sl) {
1537  for (unsigned tl = layer_id.temporal_layer_id;
1538  tl < ts_number_layers; ++tl) {
1539  unsigned int j = sl * ts_number_layers + tl;
1540  if (app_input.output_obu) {
1541  fwrite(pkt->data.frame.buf, 1, pkt->data.frame.sz,
1542  obu_files[j]);
1543  } else {
1544  aom_video_writer_write_frame(outfile[j], pkt->data.frame.buf,
1545  pkt->data.frame.sz, pts);
1546  }
1547  if (sl == (unsigned int)layer_id.spatial_layer_id)
1548  rc.layer_encoding_bitrate[j] += 8.0 * pkt->data.frame.sz;
1549  }
1550  }
1551  // Write everything into the top layer.
1552  if (app_input.output_obu) {
1553  fwrite(pkt->data.frame.buf, 1, pkt->data.frame.sz,
1554  total_layer_obu_file);
1555  } else {
1556  aom_video_writer_write_frame(total_layer_file,
1557  pkt->data.frame.buf,
1558  pkt->data.frame.sz, pts);
1559  }
1560  // Keep count of rate control stats per layer (for non-key).
1561  if (!(pkt->data.frame.flags & AOM_FRAME_IS_KEY)) {
1562  unsigned int j = layer_id.spatial_layer_id * ts_number_layers +
1563  layer_id.temporal_layer_id;
1564  rc.layer_avg_frame_size[j] += 8.0 * pkt->data.frame.sz;
1565  rc.layer_avg_rate_mismatch[j] +=
1566  fabs(8.0 * pkt->data.frame.sz - rc.layer_pfb[j]) /
1567  rc.layer_pfb[j];
1568  if (slx == 0) ++rc.layer_enc_frames[layer_id.temporal_layer_id];
1569  }
1570 
1571  // Update for short-time encoding bitrate states, for moving window
1572  // of size rc->window, shifted by rc->window / 2.
1573  // Ignore first window segment, due to key frame.
1574  // For spatial layers: only do this for top/highest SL.
1575  if (frame_cnt > rc.window_size && slx == ss_number_layers - 1) {
1576  sum_bitrate += 0.001 * 8.0 * pkt->data.frame.sz * framerate;
1577  rc.window_size = (rc.window_size <= 0) ? 1 : rc.window_size;
1578  if (frame_cnt % rc.window_size == 0) {
1579  rc.window_count += 1;
1580  rc.avg_st_encoding_bitrate += sum_bitrate / rc.window_size;
1581  rc.variance_st_encoding_bitrate +=
1582  (sum_bitrate / rc.window_size) *
1583  (sum_bitrate / rc.window_size);
1584  sum_bitrate = 0.0;
1585  }
1586  }
1587  // Second shifted window.
1588  if (frame_cnt > rc.window_size + rc.window_size / 2 &&
1589  slx == ss_number_layers - 1) {
1590  sum_bitrate2 += 0.001 * 8.0 * pkt->data.frame.sz * framerate;
1591  if (frame_cnt > 2 * rc.window_size &&
1592  frame_cnt % rc.window_size == 0) {
1593  rc.window_count += 1;
1594  rc.avg_st_encoding_bitrate += sum_bitrate2 / rc.window_size;
1595  rc.variance_st_encoding_bitrate +=
1596  (sum_bitrate2 / rc.window_size) *
1597  (sum_bitrate2 / rc.window_size);
1598  sum_bitrate2 = 0.0;
1599  }
1600  }
1601 
1602 #if CONFIG_AV1_DECODER
1603  if (app_input.decode) {
1604  if (aom_codec_decode(&decoder, pkt->data.frame.buf,
1605  (unsigned int)pkt->data.frame.sz, NULL))
1606  die_codec(&decoder, "Failed to decode frame.");
1607  }
1608 #endif
1609 
1610  break;
1611  default: break;
1612  }
1613  }
1614 #if CONFIG_AV1_DECODER
1615  if (app_input.decode) {
1616  // Don't look for mismatch on top spatial and top temporal layers as
1617  // they are non reference frames.
1618  if ((ss_number_layers > 1 || ts_number_layers > 1) &&
1619  !(layer_id.temporal_layer_id > 0 &&
1620  layer_id.temporal_layer_id == (int)ts_number_layers - 1)) {
1621  test_decode(&codec, &decoder, frame_cnt, &mismatch_seen);
1622  }
1623  }
1624 #endif
1625  } // loop over spatial layers
1626  ++frame_cnt;
1627  pts += frame_duration;
1628  }
1629 
1630  close_input_file(&(app_input.input_ctx));
1631  printout_rate_control_summary(&rc, frame_cnt, ss_number_layers,
1632  ts_number_layers);
1633 
1634  printf("\n");
1635  for (unsigned int slx = 0; slx < ss_number_layers; slx++)
1636  for (unsigned int tlx = 0; tlx < ts_number_layers; tlx++) {
1637  int lx = slx * ts_number_layers + tlx;
1638  printf("Per layer encoding time/FPS stats for encoder: %d %d %d %f %f \n",
1639  slx, tlx, frame_cnt_layer[lx],
1640  (float)cx_time_layer[lx] / (double)(frame_cnt_layer[lx] * 1000),
1641  1000000 * (double)frame_cnt_layer[lx] / (double)cx_time_layer[lx]);
1642  }
1643 
1644  printf("\n");
1645  printf("Frame cnt and encoding time/FPS stats for encoding: %d %f %f\n",
1646  frame_cnt, 1000 * (float)cx_time / (double)(frame_cnt * 1000000),
1647  1000000 * (double)frame_cnt / (double)cx_time);
1648 
1649  if (aom_codec_destroy(&codec)) die_codec(&codec, "Failed to destroy codec");
1650 
1651 #if CONFIG_INTERNAL_STATS
1652  if (mismatch_seen) {
1653  fprintf(stats_file, "First mismatch occurred in frame %d\n", mismatch_seen);
1654  } else {
1655  fprintf(stats_file, "No mismatch detected in recon buffers\n");
1656  }
1657  fclose(stats_file);
1658 #endif
1659 
1660  // Try to rewrite the output file headers with the actual frame count.
1661  for (i = 0; i < ss_number_layers * ts_number_layers; ++i)
1662  aom_video_writer_close(outfile[i]);
1663  aom_video_writer_close(total_layer_file);
1664 
1665  if (app_input.input_ctx.file_type != FILE_TYPE_Y4M) {
1666  aom_img_free(&raw);
1667  }
1668  return EXIT_SUCCESS;
1669 }
Describes the encoder algorithm interface to applications.
enum aom_chroma_sample_position aom_chroma_sample_position_t
List of chroma sample positions.
aom_image_t * aom_img_alloc(aom_image_t *img, aom_img_fmt_t fmt, unsigned int d_w, unsigned int d_h, unsigned int align)
Open a descriptor, allocating storage for the underlying image.
#define AOM_IMG_FMT_HIGHBITDEPTH
Definition: aom_image.h:38
@ AOM_IMG_FMT_I420
Definition: aom_image.h:45
void aom_img_free(aom_image_t *img)
Close an image descriptor.
Provides definitions for using AOM or AV1 encoder algorithm within the aom Codec Interface.
Declares top-level encoder structures and functions.
#define AOM_MAX_LAYERS
Definition: aomcx.h:1601
aom_codec_iface_t * aom_codec_av1_cx(void)
The interface to the AV1 encoder.
#define AOM_MAX_TS_LAYERS
Definition: aomcx.h:1603
@ AV1E_SET_ROW_MT
Codec control function to enable the row based multi-threading of the encoder, unsigned int parameter...
Definition: aomcx.h:361
@ AV1E_SET_ENABLE_SMOOTH_INTRA
Codec control function to turn on / off smooth intra modes usage, int parameter.
Definition: aomcx.h:1070
@ AV1E_SET_ENABLE_TPL_MODEL
Codec control function to enable RDO modulated by frame temporal dependency, unsigned int parameter.
Definition: aomcx.h:408
@ AV1E_SET_AQ_MODE
Codec control function to set adaptive quantization mode, unsigned int parameter.
Definition: aomcx.h:468
@ AV1E_SET_SVC_LAYER_ID
Codec control function to set the layer id, aom_svc_layer_id_t* parameter.
Definition: aomcx.h:1276
@ AV1E_SET_SVC_REF_FRAME_CONFIG
Codec control function to set reference frame config: the ref_idx and the refresh flags for each buff...
Definition: aomcx.h:1287
@ AV1E_SET_TUNE_CONTENT
Codec control function to set content type, aom_tune_content parameter.
Definition: aomcx.h:497
@ AV1E_SET_CDF_UPDATE_MODE
Codec control function to set CDF update mode, unsigned int parameter.
Definition: aomcx.h:506
@ AV1E_SET_ENABLE_ANGLE_DELTA
Codec control function to turn on/off intra angle delta, int parameter.
Definition: aomcx.h:1117
@ AV1E_SET_MV_COST_UPD_FREQ
Control to set frequency of the cost updates for motion vectors, unsigned int parameter.
Definition: aomcx.h:1254
@ AV1E_SET_INTRA_DEFAULT_TX_ONLY
Control to use default tx type only for intra modes, int parameter.
Definition: aomcx.h:1203
@ AV1E_SET_SVC_REF_FRAME_COMP_PRED
Codec control function to set reference frame compound prediction. aom_svc_ref_frame_comp_pred_t* par...
Definition: aomcx.h:1392
@ AV1E_SET_ENABLE_INTRABC
Codec control function to turn on/off intra block copy mode, int parameter.
Definition: aomcx.h:1113
@ AV1E_SET_ENABLE_WARPED_MOTION
Codec control function to turn on / off warped motion usage at sequence level, int parameter.
Definition: aomcx.h:1038
@ AV1E_SET_COEFF_COST_UPD_FREQ
Control to set frequency of the cost updates for coefficients, unsigned int parameter.
Definition: aomcx.h:1234
@ AV1E_SET_ENABLE_CDEF
Codec control function to encode with CDEF, unsigned int parameter.
Definition: aomcx.h:670
@ AV1E_SET_DV_COST_UPD_FREQ
Control to set frequency of the cost updates for intrabc motion vectors, unsigned int parameter.
Definition: aomcx.h:1358
@ AV1E_SET_SVC_PARAMS
Codec control function to set SVC parameters, aom_svc_params_t* parameter.
Definition: aomcx.h:1281
@ AV1E_SET_ENABLE_FILTER_INTRA
Codec control function to turn on / off filter intra usage at sequence level, int parameter.
Definition: aomcx.h:1059
@ AV1E_SET_ENABLE_PALETTE
Codec control function to turn on/off palette mode, int parameter.
Definition: aomcx.h:1109
@ AV1E_SET_ENABLE_CFL_INTRA
Codec control function to turn on / off CFL uv intra mode usage, int parameter.
Definition: aomcx.h:1088
@ AOME_SET_MAX_INTRA_BITRATE_PCT
Codec control function to set max data rate for intra frames, unsigned int parameter.
Definition: aomcx.h:306
@ AV1E_SET_ERROR_RESILIENT_MODE
Codec control function to enable error_resilient_mode, int parameter.
Definition: aomcx.h:442
@ AV1E_SET_ENABLE_OBMC
Codec control function to predict with OBMC mode, unsigned int parameter.
Definition: aomcx.h:697
@ AV1E_SET_LOOPFILTER_CONTROL
Codec control to control loop filter.
Definition: aomcx.h:1407
@ AOME_SET_SCALEMODE
Codec control function to set encoder scaling mode for the next frame to be coded,...
Definition: aomcx.h:197
@ AV1E_SET_TILE_COLUMNS
Codec control function to set number of tile columns. unsigned int parameter.
Definition: aomcx.h:380
@ AV1E_SET_ENABLE_ORDER_HINT
Codec control function to turn on / off frame order hint (int parameter). Affects: joint compound mod...
Definition: aomcx.h:865
@ AV1E_SET_DELTAQ_MODE
Codec control function to set the delta q mode, unsigned int parameter.
Definition: aomcx.h:1131
@ AV1E_SET_ENABLE_GLOBAL_MOTION
Codec control function to turn on / off global motion usage for a sequence, int parameter.
Definition: aomcx.h:1028
@ AOME_SET_CPUUSED
Codec control function to set encoder internal speed settings, int parameter.
Definition: aomcx.h:220
@ AV1E_SET_GF_CBR_BOOST_PCT
Boost percentage for Golden Frame in CBR mode, unsigned int parameter.
Definition: aomcx.h:339
@ AV1E_SET_MODE_COST_UPD_FREQ
Control to set frequency of the cost updates for mode, unsigned int parameter.
Definition: aomcx.h:1244
@ AV1_GET_NEW_FRAME_IMAGE
Codec control function to get a pointer to the new frame.
Definition: aom.h:70
const char * aom_codec_iface_name(aom_codec_iface_t *iface)
Return the name for a given interface.
aom_codec_err_t aom_codec_control(aom_codec_ctx_t *ctx, int ctrl_id,...)
Algorithm Control.
const struct aom_codec_iface aom_codec_iface_t
Codec interface structure.
Definition: aom_codec.h:254
const char * aom_codec_err_to_string(aom_codec_err_t err)
Convert error number to printable string.
aom_codec_err_t aom_codec_destroy(aom_codec_ctx_t *ctx)
Destroy a codec instance.
aom_codec_err_t
Algorithm return codes.
Definition: aom_codec.h:155
#define AOM_CODEC_CONTROL_TYPECHECKED(ctx, id, data)
aom_codec_control wrapper macro (adds type-checking, less flexible)
Definition: aom_codec.h:521
const void * aom_codec_iter_t
Iterator.
Definition: aom_codec.h:288
#define AOM_FRAME_IS_KEY
Definition: aom_codec.h:271
@ AOM_BITS_12
Definition: aom_codec.h:321
@ AOM_BITS_8
Definition: aom_codec.h:319
@ AOM_BITS_10
Definition: aom_codec.h:320
@ AOM_CODEC_INVALID_PARAM
An application-supplied parameter is not valid.
Definition: aom_codec.h:200
@ AOM_CODEC_MEM_ERROR
Memory operation failed.
Definition: aom_codec.h:163
@ AOM_CODEC_OK
Operation completed without error.
Definition: aom_codec.h:157
aom_codec_err_t aom_codec_decode(aom_codec_ctx_t *ctx, const uint8_t *data, size_t data_sz, void *user_priv)
Decode data.
#define aom_codec_dec_init(ctx, iface, cfg, flags)
Convenience macro for aom_codec_dec_init_ver()
Definition: aom_decoder.h:129
aom_codec_err_t aom_codec_encode(aom_codec_ctx_t *ctx, const aom_image_t *img, aom_codec_pts_t pts, unsigned long duration, aom_enc_frame_flags_t flags)
Encode a frame.
#define aom_codec_enc_init(ctx, iface, cfg, flags)
Convenience macro for aom_codec_enc_init_ver()
Definition: aom_encoder.h:935
aom_codec_err_t aom_codec_enc_config_default(aom_codec_iface_t *iface, aom_codec_enc_cfg_t *cfg, unsigned int usage)
Get the default configuration for a usage.
#define AOM_USAGE_REALTIME
usage parameter analogous to AV1 REALTIME mode.
Definition: aom_encoder.h:1008
const aom_codec_cx_pkt_t * aom_codec_get_cx_data(aom_codec_ctx_t *ctx, aom_codec_iter_t *iter)
Encoded data iterator.
@ AOM_CBR
Definition: aom_encoder.h:185
@ AOM_KF_AUTO
Definition: aom_encoder.h:200
@ AOM_CODEC_CX_FRAME_PKT
Definition: aom_encoder.h:108
Codec context structure.
Definition: aom_codec.h:298
aom_codec_err_t err
Definition: aom_codec.h:301
Encoder output packet.
Definition: aom_encoder.h:120
enum aom_codec_cx_pkt_kind kind
Definition: aom_encoder.h:121
union aom_codec_cx_pkt::@1 data
struct aom_codec_cx_pkt::@1::@2 frame
Encoder configuration structure.
Definition: aom_encoder.h:385
unsigned int g_input_bit_depth
Bit-depth of the input frames.
Definition: aom_encoder.h:473
unsigned int rc_dropframe_thresh
Temporal resampling configuration, if supported by the codec.
Definition: aom_encoder.h:538
struct aom_rational g_timebase
Stream timebase units.
Definition: aom_encoder.h:487
unsigned int g_usage
Algorithm specific "usage" value.
Definition: aom_encoder.h:397
unsigned int rc_buf_sz
Decoder Buffer Size.
Definition: aom_encoder.h:702
unsigned int g_h
Height of the frame.
Definition: aom_encoder.h:433
enum aom_kf_mode kf_mode
Keyframe placement mode.
Definition: aom_encoder.h:765
enum aom_rc_mode rc_end_usage
Rate control algorithm to use.
Definition: aom_encoder.h:621
unsigned int g_threads
Maximum number of threads to use.
Definition: aom_encoder.h:405
unsigned int kf_min_dist
Keyframe minimum interval.
Definition: aom_encoder.h:774
unsigned int g_lag_in_frames
Allow lagged encoding.
Definition: aom_encoder.h:516
unsigned int rc_buf_initial_sz
Decoder Buffer Initial Size.
Definition: aom_encoder.h:711
unsigned int g_profile
Bitstream profile to use.
Definition: aom_encoder.h:415
aom_bit_depth_t g_bit_depth
Bit-depth of the codec.
Definition: aom_encoder.h:465
unsigned int g_w
Width of the frame.
Definition: aom_encoder.h:424
unsigned int rc_undershoot_pct
Rate control adaptation undershoot control.
Definition: aom_encoder.h:678
unsigned int kf_max_dist
Keyframe maximum interval.
Definition: aom_encoder.h:783
aom_codec_er_flags_t g_error_resilient
Enable error resilient modes.
Definition: aom_encoder.h:495
unsigned int rc_max_quantizer
Maximum (Worst Quality) Quantizer.
Definition: aom_encoder.h:665
unsigned int rc_buf_optimal_sz
Decoder Buffer Optimal Size.
Definition: aom_encoder.h:720
unsigned int rc_min_quantizer
Minimum (Best Quality) Quantizer.
Definition: aom_encoder.h:655
unsigned int rc_target_bitrate
Target data rate.
Definition: aom_encoder.h:641
unsigned int rc_resize_mode
Mode for spatial resampling, if supported by the codec.
Definition: aom_encoder.h:547
unsigned int rc_overshoot_pct
Rate control adaptation overshoot control.
Definition: aom_encoder.h:687
Image Descriptor.
Definition: aom_image.h:180
aom_img_fmt_t fmt
Definition: aom_image.h:181
unsigned int d_w
Definition: aom_image.h:195
unsigned int d_h
Definition: aom_image.h:196
int num
Definition: aom_encoder.h:163
int den
Definition: aom_encoder.h:164
aom image scaling mode
Definition: aomcx.h:1548
Definition: aomcx.h:1606
int temporal_layer_id
Definition: aomcx.h:1608
int spatial_layer_id
Definition: aomcx.h:1607
Definition: aomcx.h:1612
int max_quantizers[32]
Definition: aomcx.h:1615
int number_spatial_layers
Definition: aomcx.h:1613
int layer_target_bitrate[32]
Definition: aomcx.h:1620
int framerate_factor[8]
Definition: aomcx.h:1622
int min_quantizers[32]
Definition: aomcx.h:1616
int scaling_factor_den[4]
Definition: aomcx.h:1618
int number_temporal_layers
Definition: aomcx.h:1614
int scaling_factor_num[4]
Definition: aomcx.h:1617
Definition: aomcx.h:1636
int use_comp_pred[3]
Definition: aomcx.h:1639
Definition: aomcx.h:1626
int reference[7]
Definition: aomcx.h:1629
int refresh[8]
Definition: aomcx.h:1632
int ref_idx[7]
Definition: aomcx.h:1631