vp9_aq_cyclicrefresh.c 23.6 KB
Newer Older
1 2 3 4 5 6 7 8 9 10 11 12 13
/*
 *  Copyright (c) 2014 The WebM project authors. All Rights Reserved.
 *
 *  Use of this source code is governed by a BSD-style license
 *  that can be found in the LICENSE file in the root of the source
 *  tree. An additional intellectual property rights grant can be found
 *  in the file PATENTS.  All contributing project authors may
 *  be found in the AUTHORS file in the root of the source tree.
 */

#include <limits.h>
#include <math.h>

14
#include "vpx_dsp/vpx_dsp_common.h"
15 16
#include "vpx_ports/system_state.h"

Marco Paniconi's avatar
Marco Paniconi committed
17
#include "vp9/encoder/vp9_aq_cyclicrefresh.h"
18 19 20 21 22 23

#include "vp9/common/vp9_seg_common.h"

#include "vp9/encoder/vp9_ratectrl.h"
#include "vp9/encoder/vp9_segmentation.h"

24
struct CYCLIC_REFRESH {
25
  // Percentage of blocks per frame that are targeted as candidates
26
  // for cyclic refresh.
27
  int percent_refresh;
28 29
  // Maximum q-delta as percentage of base q.
  int max_qdelta_perc;
30 31
  // Superblock starting index for cycling through the frame.
  int sb_index;
32 33 34
  // Controls how long block will need to wait to be refreshed again, in
  // excess of the cycle time, i.e., in the case of all zero motion, block
  // will be refreshed every (100/percent_refresh + time_for_refresh) frames.
35
  int time_for_refresh;
Marco's avatar
Marco committed
36
  // Target number of (8x8) blocks that are set for delta-q.
37
  int target_num_seg_blocks;
Marco's avatar
Marco committed
38 39 40
  // Actual number of (8x8) blocks that were applied delta-q.
  int actual_num_seg1_blocks;
  int actual_num_seg2_blocks;
41 42 43 44
  // RD mult. parameters for segment 1.
  int rdmult;
  // Cyclic refresh map.
  signed char *map;
45 46
  // Map of the last q a block was coded at.
  uint8_t *last_coded_q_map;
47 48
  // Thresholds applied to the projected rate/distortion of the coding block,
  // when deciding whether block should be refreshed.
49 50
  int64_t thresh_rate_sb;
  int64_t thresh_dist_sb;
51 52 53
  // Threshold applied to the motion vector (in units of 1/8 pel) of the
  // coding block, when deciding whether block should be refreshed.
  int16_t motion_thresh;
54 55
  // Rate target ratio to set q delta.
  double rate_ratio_qdelta;
56
  // Boost factor for rate target ratio, for segment CR_SEGMENT_ID_BOOST2.
57
  int rate_boost_fac;
58
  double low_content_avg;
59
  int qindex_delta[3];
60 61 62
};

CYCLIC_REFRESH *vp9_cyclic_refresh_alloc(int mi_rows, int mi_cols) {
63
  size_t last_coded_q_map_size;
64 65 66 67 68 69 70 71 72
  CYCLIC_REFRESH *const cr = vpx_calloc(1, sizeof(*cr));
  if (cr == NULL)
    return NULL;

  cr->map = vpx_calloc(mi_rows * mi_cols, sizeof(*cr->map));
  if (cr->map == NULL) {
    vpx_free(cr);
    return NULL;
  }
73 74 75 76 77 78 79 80
  last_coded_q_map_size = mi_rows * mi_cols * sizeof(*cr->last_coded_q_map);
  cr->last_coded_q_map = vpx_malloc(last_coded_q_map_size);
  if (cr->last_coded_q_map == NULL) {
    vpx_free(cr);
    return NULL;
  }
  assert(MAXQ <= 255);
  memset(cr->last_coded_q_map, MAXQ, last_coded_q_map_size);
81 82 83 84 85 86

  return cr;
}

void vp9_cyclic_refresh_free(CYCLIC_REFRESH *cr) {
  vpx_free(cr->map);
87
  vpx_free(cr->last_coded_q_map);
88 89
  vpx_free(cr);
}
90 91

// Check if we should turn off cyclic refresh based on bitrate condition.
92 93
static int apply_cyclic_refresh_bitrate(const VP9_COMMON *cm,
                                        const RATE_CONTROL *rc) {
94 95 96
  // Turn off cyclic refresh if bits available per frame is not sufficiently
  // larger than bit cost of segmentation. Segment map bit cost should scale
  // with number of seg blocks, so compare available bits to number of blocks.
97
  // Average bits available per frame = avg_frame_bandwidth
98
  // Number of (8x8) blocks in frame = mi_rows * mi_cols;
99
  const float factor = 0.25;
100
  const int number_blocks = cm->mi_rows  * cm->mi_cols;
101
  // The condition below corresponds to turning off at target bitrates:
102
  // (at 30fps), ~12kbps for CIF, 36kbps for VGA, 100kps for HD/720p.
103 104
  // Also turn off at very small frame sizes, to avoid too large fraction of
  // superblocks to be refreshed per frame. Threshold below is less than QCIF.
105
  if (rc->avg_frame_bandwidth < factor * number_blocks ||
106 107 108 109
      number_blocks / 64 < 5)
    return 0;
  else
    return 1;
110 111 112 113 114 115
}

// Check if this coding block, of size bsize, should be considered for refresh
// (lower-qp coding). Decision can be based on various factors, such as
// size of the coding block (i.e., below min_block size rejected), coding
// mode, and rate/distortion.
116 117
static int candidate_refresh_aq(const CYCLIC_REFRESH *cr,
                                const MB_MODE_INFO *mbmi,
118
                                int64_t rate,
119 120
                                int64_t dist,
                                int bsize) {
121
  MV mv = mbmi->mv[0].as_mv;
122
  // Reject the block for lower-qp coding if projected distortion
123 124 125
  // is above the threshold, and any of the following is true:
  // 1) mode uses large mv
  // 2) mode is an intra-mode
126 127 128 129 130 131
  // Otherwise accept for refresh.
  if (dist > cr->thresh_dist_sb &&
      (mv.row > cr->motion_thresh || mv.row < -cr->motion_thresh ||
       mv.col > cr->motion_thresh || mv.col < -cr->motion_thresh ||
       !is_inter_block(mbmi)))
    return CR_SEGMENT_ID_BASE;
Marco's avatar
Marco committed
132
  else  if (bsize >= BLOCK_16X16 &&
133 134
            rate < cr->thresh_rate_sb &&
            is_inter_block(mbmi) &&
135
            mbmi->mv[0].as_int == 0 &&
136
            cr->rate_boost_fac > 10)
137 138
    // More aggressive delta-q for bigger blocks with zero motion.
    return CR_SEGMENT_ID_BOOST2;
139
  else
140
    return CR_SEGMENT_ID_BOOST1;
141 142
}

143
// Compute delta-q for the segment.
144
static int compute_deltaq(const VP9_COMP *cpi, int q, double rate_factor) {
145 146 147
  const CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  const RATE_CONTROL *const rc = &cpi->rc;
  int deltaq = vp9_compute_qdelta_by_rate(rc, cpi->common.frame_type,
148
                                          q, rate_factor,
149 150 151 152 153 154 155 156
                                          cpi->common.bit_depth);
  if ((-deltaq) > cr->max_qdelta_perc * q / 100) {
    deltaq = -cr->max_qdelta_perc * q / 100;
  }
  return deltaq;
}

// For the just encoded frame, estimate the bits, incorporating the delta-q
157 158 159
// from non-base segment. For now ignore effect of multiple segments
// (with different delta-q). Note this function is called in the postencode
// (called from rc_update_rate_correction_factors()).
160 161 162 163 164 165 166
int vp9_cyclic_refresh_estimate_bits_at_q(const VP9_COMP *cpi,
                                          double correction_factor) {
  const VP9_COMMON *const cm = &cpi->common;
  const CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  int estimated_bits;
  int mbs = cm->MBs;
  int num8x8bl = mbs << 2;
167
  // Weight for non-base segments: use actual number of blocks refreshed in
168
  // previous/just encoded frame. Note number of blocks here is in 8x8 units.
Marco's avatar
Marco committed
169 170
  double weight_segment1 = (double)cr->actual_num_seg1_blocks / num8x8bl;
  double weight_segment2 = (double)cr->actual_num_seg2_blocks / num8x8bl;
171
  // Take segment weighted average for estimated bits.
Marco's avatar
Marco committed
172
  estimated_bits = (int)((1.0 - weight_segment1 - weight_segment2) *
173 174
      vp9_estimate_bits_at_q(cm->frame_type, cm->base_qindex, mbs,
                             correction_factor, cm->bit_depth) +
Marco's avatar
Marco committed
175 176
                             weight_segment1 *
      vp9_estimate_bits_at_q(cm->frame_type,
177
                             cm->base_qindex + cr->qindex_delta[1], mbs,
Marco's avatar
Marco committed
178 179 180
                             correction_factor, cm->bit_depth) +
                             weight_segment2 *
      vp9_estimate_bits_at_q(cm->frame_type,
181
                             cm->base_qindex + cr->qindex_delta[2], mbs,
182 183 184 185 186 187 188
                             correction_factor, cm->bit_depth));
  return estimated_bits;
}

// Prior to encoding the frame, estimate the bits per mb, for a given q = i and
// a corresponding delta-q (for segment 1). This function is called in the
// rc_regulate_q() to set the base qp index.
189 190
// Note: the segment map is set to either 0/CR_SEGMENT_ID_BASE (no refresh) or
// to 1/CR_SEGMENT_ID_BOOST1 (refresh) for each superblock, prior to encoding.
191 192 193 194 195 196
int vp9_cyclic_refresh_rc_bits_per_mb(const VP9_COMP *cpi, int i,
                                      double correction_factor) {
  const VP9_COMMON *const cm = &cpi->common;
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  int bits_per_mb;
  int num8x8bl = cm->MBs << 2;
Marco's avatar
Marco committed
197 198 199 200 201
  // Weight for segment prior to encoding: take the average of the target
  // number for the frame to be encoded and the actual from the previous frame.
  double weight_segment = (double)((cr->target_num_seg_blocks +
      cr->actual_num_seg1_blocks + cr->actual_num_seg2_blocks) >> 1) /
      num8x8bl;
202
  // Compute delta-q corresponding to qindex i.
203
  int deltaq = compute_deltaq(cpi, i, cr->rate_ratio_qdelta);
204 205 206 207 208 209 210 211 212
  // Take segment weighted average for bits per mb.
  bits_per_mb = (int)((1.0 - weight_segment) *
      vp9_rc_bits_per_mb(cm->frame_type, i, correction_factor, cm->bit_depth) +
      weight_segment *
      vp9_rc_bits_per_mb(cm->frame_type, i + deltaq, correction_factor,
                         cm->bit_depth));
  return bits_per_mb;
}

213 214 215
// Prior to coding a given prediction block, of size bsize at (mi_row, mi_col),
// check if we should reset the segment_id, and update the cyclic_refresh map
// and segmentation map.
216 217 218
void vp9_cyclic_refresh_update_segment(VP9_COMP *const cpi,
                                       MB_MODE_INFO *const mbmi,
                                       int mi_row, int mi_col,
219 220
                                       BLOCK_SIZE bsize,
                                       int64_t rate,
Marco's avatar
Marco committed
221 222
                                       int64_t dist,
                                       int skip) {
223
  const VP9_COMMON *const cm = &cpi->common;
224
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
225 226
  const int bw = num_8x8_blocks_wide_lookup[bsize];
  const int bh = num_8x8_blocks_high_lookup[bsize];
227 228
  const int xmis = VPXMIN(cm->mi_cols - mi_col, bw);
  const int ymis = VPXMIN(cm->mi_rows - mi_row, bh);
229
  const int block_index = mi_row * cm->mi_cols + mi_col;
230 231
  const int refresh_this_block = candidate_refresh_aq(cr, mbmi, rate, dist,
                                                      bsize);
232 233 234
  // Default is to not update the refresh map.
  int new_map_value = cr->map[block_index];
  int x = 0; int y = 0;
235

236 237
  // If this block is labeled for refresh, check if we should reset the
  // segment_id.
Marco's avatar
Marco committed
238
  if (cyclic_refresh_segment_id_boosted(mbmi->segment_id)) {
239
    mbmi->segment_id = refresh_this_block;
Marco's avatar
Marco committed
240 241 242 243
    // Reset segment_id if will be skipped.
    if (skip)
      mbmi->segment_id = CR_SEGMENT_ID_BASE;
  }
244 245 246 247 248

  // Update the cyclic refresh map, to be used for setting segmentation map
  // for the next frame. If the block  will be refreshed this frame, mark it
  // as clean. The magnitude of the -ve influences how long before we consider
  // it for refresh again.
249
  if (cyclic_refresh_segment_id_boosted(mbmi->segment_id)) {
250 251 252 253 254 255 256 257 258 259 260
    new_map_value = -cr->time_for_refresh;
  } else if (refresh_this_block) {
    // Else if it is accepted as candidate for refresh, and has not already
    // been refreshed (marked as 1) then mark it as a candidate for cleanup
    // for future time (marked as 0), otherwise don't update it.
    if (cr->map[block_index] == 1)
      new_map_value = 0;
  } else {
    // Leave it marked as block that is not candidate for refresh.
    new_map_value = 1;
  }
261

262 263 264 265
  // Update entries in the cyclic refresh map with new_map_value, and
  // copy mbmi->segment_id into global segmentation map.
  for (y = 0; y < ymis; y++)
    for (x = 0; x < xmis; x++) {
266 267 268 269 270 271 272 273 274 275
      int map_offset = block_index + y * cm->mi_cols + x;
      cr->map[map_offset] = new_map_value;
      cpi->segmentation_map[map_offset] = mbmi->segment_id;
      // Inter skip blocks were clearly not coded at the current qindex, so
      // don't update the map for them. For cases where motion is non-zero or
      // the reference frame isn't the previous frame, the previous value in
      // the map for this spatial location is not entirely correct.
      if (!is_inter_block(mbmi) || !skip)
        cr->last_coded_q_map[map_offset] = clamp(
            cm->base_qindex + cr->qindex_delta[mbmi->segment_id], 0, MAXQ);
276
    }
277 278 279
}

// Update the actual number of blocks that were applied the segment delta q.
280
void vp9_cyclic_refresh_postencode(VP9_COMP *const cpi) {
281 282 283 284
  VP9_COMMON *const cm = &cpi->common;
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  unsigned char *const seg_map = cpi->segmentation_map;
  int mi_row, mi_col;
Marco's avatar
Marco committed
285 286
  cr->actual_num_seg1_blocks = 0;
  cr->actual_num_seg2_blocks = 0;
287
  for (mi_row = 0; mi_row < cm->mi_rows; mi_row++)
288
    for (mi_col = 0; mi_col < cm->mi_cols; mi_col++) {
Marco's avatar
Marco committed
289 290 291 292 293 294
      if (cyclic_refresh_segment_id(
          seg_map[mi_row * cm->mi_cols + mi_col]) == CR_SEGMENT_ID_BOOST1)
        cr->actual_num_seg1_blocks++;
      else if (cyclic_refresh_segment_id(
          seg_map[mi_row * cm->mi_cols + mi_col]) == CR_SEGMENT_ID_BOOST2)
        cr->actual_num_seg2_blocks++;
295
    }
296 297
}

298 299 300 301 302 303 304 305
// Set golden frame update interval, for non-svc 1 pass CBR mode.
void vp9_cyclic_refresh_set_golden_update(VP9_COMP *const cpi) {
  RATE_CONTROL *const rc = &cpi->rc;
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  // Set minimum gf_interval for GF update to a multiple (== 2) of refresh
  // period. Depending on past encoding stats, GF flag may be reset and update
  // may not occur until next baseline_gf_interval.
  if (cr->percent_refresh > 0)
306
    rc->baseline_gf_interval = 4 * (100 / cr->percent_refresh);
307
  else
308
    rc->baseline_gf_interval = 40;
309 310
}

311 312 313 314
// Update some encoding stats (from the just encoded frame). If this frame's
// background has high motion, refresh the golden frame. Otherwise, if the
// golden reference is to be updated check if we should NOT update the golden
// ref.
315 316 317 318 319 320
void vp9_cyclic_refresh_check_golden_update(VP9_COMP *const cpi) {
  VP9_COMMON *const cm = &cpi->common;
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  int mi_row, mi_col;
  double fraction_low = 0.0;
  int low_content_frame = 0;
321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344

  MODE_INFO **mi = cm->mi_grid_visible;
  RATE_CONTROL *const rc = &cpi->rc;
  const int rows = cm->mi_rows, cols = cm->mi_cols;
  int cnt1 = 0, cnt2 = 0;
  int force_gf_refresh = 0;

  for (mi_row = 0; mi_row < rows; mi_row++) {
    for (mi_col = 0; mi_col < cols; mi_col++) {
      int16_t abs_mvr = mi[0]->mbmi.mv[0].as_mv.row >= 0 ?
          mi[0]->mbmi.mv[0].as_mv.row : -1 * mi[0]->mbmi.mv[0].as_mv.row;
      int16_t abs_mvc = mi[0]->mbmi.mv[0].as_mv.col >= 0 ?
          mi[0]->mbmi.mv[0].as_mv.col : -1 * mi[0]->mbmi.mv[0].as_mv.col;

      // Calculate the motion of the background.
      if (abs_mvr <= 16 && abs_mvc <= 16) {
        cnt1++;
        if (abs_mvr == 0 && abs_mvc == 0)
          cnt2++;
      }
      mi++;

      // Accumulate low_content_frame.
      if (cr->map[mi_row * cols + mi_col] < 1)
345 346
        low_content_frame++;
    }
347 348 349 350 351 352
    mi += 8;
  }

  // For video conference clips, if the background has high motion in current
  // frame because of the camera movement, set this frame as the golden frame.
  // Use 70% and 5% as the thresholds for golden frame refreshing.
353 354 355 356
  // Also, force this frame as a golden update frame if this frame will change
  // the resolution (resize_pending != 0).
  if (cpi->resize_pending != 0 ||
     (cnt1 * 10 > (70 * rows * cols) && cnt2 * 20 < cnt1)) {
357 358 359 360 361 362 363 364 365
    vp9_cyclic_refresh_set_golden_update(cpi);
    rc->frames_till_gf_update_due = rc->baseline_gf_interval;

    if (rc->frames_till_gf_update_due > rc->frames_to_key)
      rc->frames_till_gf_update_due = rc->frames_to_key;
    cpi->refresh_golden_frame = 1;
    force_gf_refresh = 1;
  }

366
  fraction_low =
367
      (double)low_content_frame / (rows * cols);
368 369
  // Update average.
  cr->low_content_avg = (fraction_low + 3 * cr->low_content_avg) / 4;
370
  if (!force_gf_refresh && cpi->refresh_golden_frame == 1) {
371 372 373 374 375 376 377 378 379 380
    // Don't update golden reference if the amount of low_content for the
    // current encoded frame is small, or if the recursive average of the
    // low_content over the update interval window falls below threshold.
    if (fraction_low < 0.8 || cr->low_content_avg < 0.7)
      cpi->refresh_golden_frame = 0;
    // Reset for next internal.
    cr->low_content_avg = fraction_low;
  }
}

381 382
// Update the segmentation map, and related quantities: cyclic refresh map,
// refresh sb_index, and target number of blocks to be refreshed.
383 384 385 386
// The map is set to either 0/CR_SEGMENT_ID_BASE (no refresh) or to
// 1/CR_SEGMENT_ID_BOOST1 (refresh) for each superblock.
// Blocks labeled as BOOST1 may later get set to BOOST2 (during the
// encoding of the superblock).
387
static void cyclic_refresh_update_map(VP9_COMP *const cpi) {
388 389 390 391 392
  VP9_COMMON *const cm = &cpi->common;
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  unsigned char *const seg_map = cpi->segmentation_map;
  int i, block_count, bl_index, sb_rows, sb_cols, sbs_in_frame;
  int xmis, ymis, x, y;
James Zern's avatar
James Zern committed
393
  memset(seg_map, CR_SEGMENT_ID_BASE, cm->mi_rows * cm->mi_cols);
394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411
  sb_cols = (cm->mi_cols + MI_BLOCK_SIZE - 1) / MI_BLOCK_SIZE;
  sb_rows = (cm->mi_rows + MI_BLOCK_SIZE - 1) / MI_BLOCK_SIZE;
  sbs_in_frame = sb_cols * sb_rows;
  // Number of target blocks to get the q delta (segment 1).
  block_count = cr->percent_refresh * cm->mi_rows * cm->mi_cols / 100;
  // Set the segmentation map: cycle through the superblocks, starting at
  // cr->mb_index, and stopping when either block_count blocks have been found
  // to be refreshed, or we have passed through whole frame.
  assert(cr->sb_index < sbs_in_frame);
  i = cr->sb_index;
  cr->target_num_seg_blocks = 0;
  do {
    int sum_map = 0;
    // Get the mi_row/mi_col corresponding to superblock index i.
    int sb_row_index = (i / sb_cols);
    int sb_col_index = i - sb_row_index * sb_cols;
    int mi_row = sb_row_index * MI_BLOCK_SIZE;
    int mi_col = sb_col_index * MI_BLOCK_SIZE;
412 413 414 415
    int qindex_thresh =
        cpi->oxcf.content == VP9E_CONTENT_SCREEN
            ? vp9_get_qindex(&cm->seg, CR_SEGMENT_ID_BOOST2, cm->base_qindex)
            : 0;
416 417 418 419
    assert(mi_row >= 0 && mi_row < cm->mi_rows);
    assert(mi_col >= 0 && mi_col < cm->mi_cols);
    bl_index = mi_row * cm->mi_cols + mi_col;
    // Loop through all 8x8 blocks in superblock and update map.
420 421 422 423
    xmis =
        VPXMIN(cm->mi_cols - mi_col, num_8x8_blocks_wide_lookup[BLOCK_64X64]);
    ymis =
        VPXMIN(cm->mi_rows - mi_row, num_8x8_blocks_high_lookup[BLOCK_64X64]);
424 425 426 427 428 429 430
    for (y = 0; y < ymis; y++) {
      for (x = 0; x < xmis; x++) {
        const int bl_index2 = bl_index + y * cm->mi_cols + x;
        // If the block is as a candidate for clean up then mark it
        // for possible boost/refresh (segment 1). The segment id may get
        // reset to 0 later if block gets coded anything other than ZEROMV.
        if (cr->map[bl_index2] == 0) {
431 432
          if (cr->last_coded_q_map[bl_index2] > qindex_thresh)
            sum_map++;
433 434 435 436 437 438 439 440 441 442
        } else if (cr->map[bl_index2] < 0) {
          cr->map[bl_index2]++;
        }
      }
    }
    // Enforce constant segment over superblock.
    // If segment is at least half of superblock, set to 1.
    if (sum_map >= xmis * ymis / 2) {
      for (y = 0; y < ymis; y++)
        for (x = 0; x < xmis; x++) {
443
          seg_map[bl_index + y * cm->mi_cols + x] = CR_SEGMENT_ID_BOOST1;
444 445 446 447 448 449 450 451 452
        }
      cr->target_num_seg_blocks += xmis * ymis;
    }
    i++;
    if (i == sbs_in_frame) {
      i = 0;
    }
  } while (cr->target_num_seg_blocks < block_count && i != cr->sb_index);
  cr->sb_index = i;
453 454
}

455
// Set cyclic refresh parameters.
456 457
void vp9_cyclic_refresh_update_parameters(VP9_COMP *const cpi) {
  const RATE_CONTROL *const rc = &cpi->rc;
458
  const VP9_COMMON *const cm = &cpi->common;
459 460
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  cr->percent_refresh = 10;
461 462
  cr->max_qdelta_perc = 50;
  cr->time_for_refresh = 0;
463
  // Use larger delta-qp (increase rate_ratio_qdelta) for first few (~4)
464
  // periods of the refresh cycle, after a key frame.
Marco's avatar
Marco committed
465 466 467 468
  // Account for larger interval on base layer for temporal layers.
  if (cr->percent_refresh > 0 &&
      rc->frames_since_key <  (4 * cpi->svc.number_temporal_layers) *
      (100 / cr->percent_refresh))
469 470 471
    cr->rate_ratio_qdelta = 3.0;
  else
    cr->rate_ratio_qdelta = 2.0;
472 473 474 475 476
  // Adjust some parameters for low resolutions at low bitrates.
  if (cm->width <= 352 &&
      cm->height <= 288 &&
      rc->avg_frame_bandwidth < 3400) {
    cr->motion_thresh = 4;
477
    cr->rate_boost_fac = 10;
478 479
  } else {
    cr->motion_thresh = 32;
480
    cr->rate_boost_fac = 17;
481
  }
482 483
}

484
// Setup cyclic background refresh: set delta q and segmentation map.
485
void vp9_cyclic_refresh_setup(VP9_COMP *const cpi) {
486
  VP9_COMMON *const cm = &cpi->common;
487
  const RATE_CONTROL *const rc = &cpi->rc;
488
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
489
  struct segmentation *const seg = &cm->seg;
490
  const int apply_cyclic_refresh  = apply_cyclic_refresh_bitrate(cm, rc);
491 492
  if (cm->current_video_frame == 0)
    cr->low_content_avg = 0.0;
493 494
  // Don't apply refresh on key frame or enhancement layer frames.
  if (!apply_cyclic_refresh ||
495
      (cm->frame_type == KEY_FRAME) ||
496 497
      (cpi->svc.temporal_layer_id > 0) ||
      (cpi->svc.spatial_layer_id > 0)) {
498
    // Set segmentation map to 0 and disable.
499
    unsigned char *const seg_map = cpi->segmentation_map;
James Zern's avatar
James Zern committed
500
    memset(seg_map, 0, cm->mi_rows * cm->mi_cols);
501
    vp9_disable_segmentation(&cm->seg);
502 503 504
    if (cm->frame_type == KEY_FRAME) {
      memset(cr->last_coded_q_map, MAXQ,
             cm->mi_rows * cm->mi_cols * sizeof(*cr->last_coded_q_map));
505
      cr->sb_index = 0;
506
    }
507 508 509
    return;
  } else {
    int qindex_delta = 0;
510
    int qindex2;
511
    const double q = vp9_convert_qindex_to_q(cm->base_qindex, cm->bit_depth);
512
    vpx_clear_system_state();
513
    // Set rate threshold to some multiple (set to 2 for now) of the target
514
    // rate (target is given by sb64_target_rate and scaled by 256).
Marco's avatar
Marco committed
515
    cr->thresh_rate_sb = ((int64_t)(rc->sb64_target_rate) << 8) << 2;
516
    // Distortion threshold, quadratic in Q, scale factor to be adjusted.
Marco's avatar
Marco committed
517 518 519
    // q will not exceed 457, so (q * q) is within 32bit; see:
    // vp9_convert_qindex_to_q(), vp9_ac_quant(), ac_qlookup*[].
    cr->thresh_dist_sb = ((int64_t)(q * q)) << 2;
520

521 522 523 524 525 526 527 528 529 530 531 532 533 534
    // Set up segmentation.
    // Clear down the segment map.
    vp9_enable_segmentation(&cm->seg);
    vp9_clearall_segfeatures(seg);
    // Select delta coding method.
    seg->abs_delta = SEGMENT_DELTADATA;

    // Note: setting temporal_update has no effect, as the seg-map coding method
    // (temporal or spatial) is determined in vp9_choose_segmap_coding_method(),
    // based on the coding cost of each method. For error_resilient mode on the
    // last_frame_seg_map is set to 0, so if temporal coding is used, it is
    // relative to 0 previous map.
    // seg->temporal_update = 0;

535 536 537 538 539 540
    // Segment BASE "Q" feature is disabled so it defaults to the baseline Q.
    vp9_disable_segfeature(seg, CR_SEGMENT_ID_BASE, SEG_LVL_ALT_Q);
    // Use segment BOOST1 for in-frame Q adjustment.
    vp9_enable_segfeature(seg, CR_SEGMENT_ID_BOOST1, SEG_LVL_ALT_Q);
    // Use segment BOOST2 for more aggressive in-frame Q adjustment.
    vp9_enable_segfeature(seg, CR_SEGMENT_ID_BOOST2, SEG_LVL_ALT_Q);
541

542 543
    // Set the q delta for segment BOOST1.
    qindex_delta = compute_deltaq(cpi, cm->base_qindex, cr->rate_ratio_qdelta);
544
    cr->qindex_delta[1] = qindex_delta;
545

546
    // Compute rd-mult for segment BOOST1.
547
    qindex2 = clamp(cm->base_qindex + cm->y_dc_delta_q + qindex_delta, 0, MAXQ);
Marco's avatar
Marco committed
548

549 550
    cr->rdmult = vp9_compute_rd_mult(cpi, qindex2);

551 552 553
    vp9_set_segdata(seg, CR_SEGMENT_ID_BOOST1, SEG_LVL_ALT_Q, qindex_delta);

    // Set a more aggressive (higher) q delta for segment BOOST2.
554
    qindex_delta = compute_deltaq(
555 556 557
        cpi, cm->base_qindex,
        VPXMIN(CR_MAX_RATE_TARGET_RATIO,
               0.1 * cr->rate_boost_fac * cr->rate_ratio_qdelta));
558
    cr->qindex_delta[2] = qindex_delta;
559
    vp9_set_segdata(seg, CR_SEGMENT_ID_BOOST2, SEG_LVL_ALT_Q, qindex_delta);
560

561
    // Update the segmentation and refresh map.
562
    cyclic_refresh_update_map(cpi);
563 564
  }
}
565 566 567 568

int vp9_cyclic_refresh_get_rdmult(const CYCLIC_REFRESH *cr) {
  return cr->rdmult;
}
569 570 571 572 573 574

void vp9_cyclic_refresh_reset_resize(VP9_COMP *const cpi) {
  const VP9_COMMON *const cm = &cpi->common;
  CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
  memset(cr->map, 0, cm->mi_rows * cm->mi_cols);
  cr->sb_index = 0;
575
  cpi->refresh_golden_frame = 1;
576
}