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Side by Side Diff: third_party/libwebp/enc/frame.c

Issue 12942006: libwebp: update snapshot to v0.3.0-rc6 (Closed) Base URL: svn://svn.chromium.org/chrome/trunk/src
Patch Set: rebase Created 7 years, 9 months ago
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1 // Copyright 2011 Google Inc. All Rights Reserved. 1 // Copyright 2011 Google Inc. All Rights Reserved.
2 // 2 //
3 // This code is licensed under the same terms as WebM: 3 // This code is licensed under the same terms as WebM:
4 // Software License Agreement: http://www.webmproject.org/license/software/ 4 // Software License Agreement: http://www.webmproject.org/license/software/
5 // Additional IP Rights Grant: http://www.webmproject.org/license/additional/ 5 // Additional IP Rights Grant: http://www.webmproject.org/license/additional/
6 // ----------------------------------------------------------------------------- 6 // -----------------------------------------------------------------------------
7 // 7 //
8 // frame coding and analysis 8 // frame coding and analysis
9 // 9 //
10 // Author: Skal (pascal.massimino@gmail.com) 10 // Author: Skal (pascal.massimino@gmail.com)
11 11
12 #include <assert.h>
12 #include <stdlib.h> 13 #include <stdlib.h>
13 #include <string.h> 14 #include <string.h>
14 #include <math.h> 15 #include <math.h>
15 16
16 #include "./vp8enci.h" 17 #include "./vp8enci.h"
17 #include "./cost.h" 18 #include "./cost.h"
18 19
19 #if defined(__cplusplus) || defined(c_plusplus) 20 #if defined(__cplusplus) || defined(c_plusplus)
20 extern "C" { 21 extern "C" {
21 #endif 22 #endif
(...skipping 15 matching lines...) Expand all
37 } VP8Residual; 38 } VP8Residual;
38 39
39 //------------------------------------------------------------------------------ 40 //------------------------------------------------------------------------------
40 // Tables for level coding 41 // Tables for level coding
41 42
42 const uint8_t VP8EncBands[16 + 1] = { 43 const uint8_t VP8EncBands[16 + 1] = {
43 0, 1, 2, 3, 6, 4, 5, 6, 6, 6, 6, 6, 6, 6, 6, 7, 44 0, 1, 2, 3, 6, 4, 5, 6, 6, 6, 6, 6, 6, 6, 6, 7,
44 0 // sentinel 45 0 // sentinel
45 }; 46 };
46 47
47 static const uint8_t kCat3[] = { 173, 148, 140 }; 48 const uint8_t VP8Cat3[] = { 173, 148, 140 };
48 static const uint8_t kCat4[] = { 176, 155, 140, 135 }; 49 const uint8_t VP8Cat4[] = { 176, 155, 140, 135 };
49 static const uint8_t kCat5[] = { 180, 157, 141, 134, 130 }; 50 const uint8_t VP8Cat5[] = { 180, 157, 141, 134, 130 };
50 static const uint8_t kCat6[] = 51 const uint8_t VP8Cat6[] =
51 { 254, 254, 243, 230, 196, 177, 153, 140, 133, 130, 129 }; 52 { 254, 254, 243, 230, 196, 177, 153, 140, 133, 130, 129 };
52 53
53 //------------------------------------------------------------------------------ 54 //------------------------------------------------------------------------------
54 // Reset the statistics about: number of skips, token proba, level cost,... 55 // Reset the statistics about: number of skips, token proba, level cost,...
55 56
56 static void ResetStats(VP8Encoder* const enc, int precalc_cost) { 57 static void ResetStats(VP8Encoder* const enc) {
57 VP8Proba* const proba = &enc->proba_; 58 VP8Proba* const proba = &enc->proba_;
58 if (precalc_cost) VP8CalculateLevelCosts(proba); 59 VP8CalculateLevelCosts(proba);
59 proba->nb_skip_ = 0; 60 proba->nb_skip_ = 0;
60 } 61 }
61 62
62 //------------------------------------------------------------------------------ 63 //------------------------------------------------------------------------------
63 // Skip decision probability 64 // Skip decision probability
64 65
65 #define SKIP_PROBA_THRESHOLD 250 // value below which using skip_proba is OK. 66 #define SKIP_PROBA_THRESHOLD 250 // value below which using skip_proba is OK.
66 67
67 static int CalcSkipProba(uint64_t nb, uint64_t total) { 68 static int CalcSkipProba(uint64_t nb, uint64_t total) {
68 return (int)(total ? (total - nb) * 255 / total : 255); 69 return (int)(total ? (total - nb) * 255 / total : 255);
(...skipping 18 matching lines...) Expand all
87 88
88 //------------------------------------------------------------------------------ 89 //------------------------------------------------------------------------------
89 // Recording of token probabilities. 90 // Recording of token probabilities.
90 91
91 static void ResetTokenStats(VP8Encoder* const enc) { 92 static void ResetTokenStats(VP8Encoder* const enc) {
92 VP8Proba* const proba = &enc->proba_; 93 VP8Proba* const proba = &enc->proba_;
93 memset(proba->stats_, 0, sizeof(proba->stats_)); 94 memset(proba->stats_, 0, sizeof(proba->stats_));
94 } 95 }
95 96
96 // Record proba context used 97 // Record proba context used
97 static int Record(int bit, uint64_t* const stats) { 98 static int Record(int bit, proba_t* const stats) {
98 stats[0] += bit; 99 proba_t p = *stats;
99 stats[1] += 1; 100 if (p >= 0xffff0000u) { // an overflow is inbound.
101 p = ((p + 1u) >> 1) & 0x7fff7fffu; // -> divide the stats by 2.
102 }
103 // record bit count (lower 16 bits) and increment total count (upper 16 bits).
104 p += 0x00010000u + bit;
105 *stats = p;
100 return bit; 106 return bit;
101 } 107 }
102 108
103 // We keep the table free variant around for reference, in case. 109 // We keep the table free variant around for reference, in case.
104 #define USE_LEVEL_CODE_TABLE 110 #define USE_LEVEL_CODE_TABLE
105 111
106 // Simulate block coding, but only record statistics. 112 // Simulate block coding, but only record statistics.
107 // Note: no need to record the fixed probas. 113 // Note: no need to record the fixed probas.
108 static int RecordCoeffs(int ctx, const VP8Residual* const res) { 114 static int RecordCoeffs(int ctx, const VP8Residual* const res) {
109 int n = res->first; 115 int n = res->first;
110 uint64_t (*s)[2] = res->stats[VP8EncBands[n]][ctx]; 116 // should be stats[VP8EncBands[n]], but it's equivalent for n=0 or 1
111 if (!Record(res->last >= 0, s[0])) { 117 proba_t* s = res->stats[n][ctx];
118 if (res->last < 0) {
119 Record(0, s + 0);
112 return 0; 120 return 0;
113 } 121 }
114 122 while (n <= res->last) {
115 while (1) { 123 int v;
116 int v = res->coeffs[n++]; 124 Record(1, s + 0); // order of record doesn't matter
117 if (!Record(v != 0, s[1])) { 125 while ((v = res->coeffs[n++]) == 0) {
126 Record(0, s + 1);
118 s = res->stats[VP8EncBands[n]][0]; 127 s = res->stats[VP8EncBands[n]][0];
119 continue;
120 } 128 }
121 if (!Record(2u < (unsigned int)(v + 1), s[2])) { // v = -1 or 1 129 Record(1, s + 1);
130 if (!Record(2u < (unsigned int)(v + 1), s + 2)) { // v = -1 or 1
122 s = res->stats[VP8EncBands[n]][1]; 131 s = res->stats[VP8EncBands[n]][1];
123 } else { 132 } else {
124 v = abs(v); 133 v = abs(v);
125 #if !defined(USE_LEVEL_CODE_TABLE) 134 #if !defined(USE_LEVEL_CODE_TABLE)
126 if (!Record(v > 4, s[3])) { 135 if (!Record(v > 4, s + 3)) {
127 if (Record(v != 2, s[4])) 136 if (Record(v != 2, s + 4))
128 Record(v == 4, s[5]); 137 Record(v == 4, s + 5);
129 } else if (!Record(v > 10, s[6])) { 138 } else if (!Record(v > 10, s + 6)) {
130 Record(v > 6, s[7]); 139 Record(v > 6, s + 7);
131 } else if (!Record((v >= 3 + (8 << 2)), s[8])) { 140 } else if (!Record((v >= 3 + (8 << 2)), s + 8)) {
132 Record((v >= 3 + (8 << 1)), s[9]); 141 Record((v >= 3 + (8 << 1)), s + 9);
133 } else { 142 } else {
134 Record((v >= 3 + (8 << 3)), s[10]); 143 Record((v >= 3 + (8 << 3)), s + 10);
135 } 144 }
136 #else 145 #else
137 if (v > MAX_VARIABLE_LEVEL) 146 if (v > MAX_VARIABLE_LEVEL)
138 v = MAX_VARIABLE_LEVEL; 147 v = MAX_VARIABLE_LEVEL;
139 148
140 { 149 {
141 const int bits = VP8LevelCodes[v - 1][1]; 150 const int bits = VP8LevelCodes[v - 1][1];
142 int pattern = VP8LevelCodes[v - 1][0]; 151 int pattern = VP8LevelCodes[v - 1][0];
143 int i; 152 int i;
144 for (i = 0; (pattern >>= 1) != 0; ++i) { 153 for (i = 0; (pattern >>= 1) != 0; ++i) {
145 const int mask = 2 << i; 154 const int mask = 2 << i;
146 if (pattern & 1) Record(!!(bits & mask), s[3 + i]); 155 if (pattern & 1) Record(!!(bits & mask), s + 3 + i);
147 } 156 }
148 } 157 }
149 #endif 158 #endif
150 s = res->stats[VP8EncBands[n]][2]; 159 s = res->stats[VP8EncBands[n]][2];
151 } 160 }
152 if (n == 16 || !Record(n <= res->last, s[0])) {
153 return 1;
154 }
155 } 161 }
162 if (n < 16) Record(0, s + 0);
163 return 1;
156 } 164 }
157 165
158 // Collect statistics and deduce probabilities for next coding pass. 166 // Collect statistics and deduce probabilities for next coding pass.
159 // Return the total bit-cost for coding the probability updates. 167 // Return the total bit-cost for coding the probability updates.
160 static int CalcTokenProba(uint64_t nb, uint64_t total) { 168 static int CalcTokenProba(int nb, int total) {
161 return (int)(nb ? ((total - nb) * 255 + total / 2) / total : 255); 169 assert(nb <= total);
170 return nb ? (255 - nb * 255 / total) : 255;
162 } 171 }
163 172
164 static int FinalizeTokenProbas(VP8Encoder* const enc) { 173 // Cost of coding 'nb' 1's and 'total-nb' 0's using 'proba' probability.
165 VP8Proba* const proba = &enc->proba_; 174 static int BranchCost(int nb, int total, int proba) {
175 return nb * VP8BitCost(1, proba) + (total - nb) * VP8BitCost(0, proba);
176 }
177
178 static int FinalizeTokenProbas(VP8Proba* const proba) {
179 int has_changed = 0;
166 int size = 0; 180 int size = 0;
167 int t, b, c, p; 181 int t, b, c, p;
168 for (t = 0; t < NUM_TYPES; ++t) { 182 for (t = 0; t < NUM_TYPES; ++t) {
169 for (b = 0; b < NUM_BANDS; ++b) { 183 for (b = 0; b < NUM_BANDS; ++b) {
170 for (c = 0; c < NUM_CTX; ++c) { 184 for (c = 0; c < NUM_CTX; ++c) {
171 for (p = 0; p < NUM_PROBAS; ++p) { 185 for (p = 0; p < NUM_PROBAS; ++p) {
172 const uint64_t* const cnt = proba->stats_[t][b][c][p]; 186 const proba_t stats = proba->stats_[t][b][c][p];
187 const int nb = (stats >> 0) & 0xffff;
188 const int total = (stats >> 16) & 0xffff;
173 const int update_proba = VP8CoeffsUpdateProba[t][b][c][p]; 189 const int update_proba = VP8CoeffsUpdateProba[t][b][c][p];
174 const int old_p = VP8CoeffsProba0[t][b][c][p]; 190 const int old_p = VP8CoeffsProba0[t][b][c][p];
175 const int new_p = CalcTokenProba(cnt[0], cnt[1]); 191 const int new_p = CalcTokenProba(nb, total);
176 const uint64_t old_cost = VP8BranchCost(cnt[0], cnt[1], old_p) 192 const int old_cost = BranchCost(nb, total, old_p)
177 + VP8BitCost(0, update_proba); 193 + VP8BitCost(0, update_proba);
178 const uint64_t new_cost = VP8BranchCost(cnt[0], cnt[1], new_p) 194 const int new_cost = BranchCost(nb, total, new_p)
179 + VP8BitCost(1, update_proba) + 8 * 256; 195 + VP8BitCost(1, update_proba)
196 + 8 * 256;
180 const int use_new_p = (old_cost > new_cost); 197 const int use_new_p = (old_cost > new_cost);
181 size += VP8BitCost(use_new_p, update_proba); 198 size += VP8BitCost(use_new_p, update_proba);
182 if (use_new_p) { // only use proba that seem meaningful enough. 199 if (use_new_p) { // only use proba that seem meaningful enough.
183 proba->coeffs_[t][b][c][p] = new_p; 200 proba->coeffs_[t][b][c][p] = new_p;
201 has_changed |= (new_p != old_p);
184 size += 8 * 256; 202 size += 8 * 256;
185 } else { 203 } else {
186 proba->coeffs_[t][b][c][p] = old_p; 204 proba->coeffs_[t][b][c][p] = old_p;
187 } 205 }
188 } 206 }
189 } 207 }
190 } 208 }
191 } 209 }
210 proba->dirty_ = has_changed;
192 return size; 211 return size;
193 } 212 }
194 213
195 //------------------------------------------------------------------------------ 214 //------------------------------------------------------------------------------
215 // Finalize Segment probability based on the coding tree
216
217 static int GetProba(int a, int b) {
218 const int total = a + b;
219 return (total == 0) ? 255 // that's the default probability.
220 : (255 * a + total / 2) / total; // rounded proba
221 }
222
223 static void SetSegmentProbas(VP8Encoder* const enc) {
224 int p[NUM_MB_SEGMENTS] = { 0 };
225 int n;
226
227 for (n = 0; n < enc->mb_w_ * enc->mb_h_; ++n) {
228 const VP8MBInfo* const mb = &enc->mb_info_[n];
229 p[mb->segment_]++;
230 }
231 if (enc->pic_->stats != NULL) {
232 for (n = 0; n < NUM_MB_SEGMENTS; ++n) {
233 enc->pic_->stats->segment_size[n] = p[n];
234 }
235 }
236 if (enc->segment_hdr_.num_segments_ > 1) {
237 uint8_t* const probas = enc->proba_.segments_;
238 probas[0] = GetProba(p[0] + p[1], p[2] + p[3]);
239 probas[1] = GetProba(p[0], p[1]);
240 probas[2] = GetProba(p[2], p[3]);
241
242 enc->segment_hdr_.update_map_ =
243 (probas[0] != 255) || (probas[1] != 255) || (probas[2] != 255);
244 enc->segment_hdr_.size_ =
245 p[0] * (VP8BitCost(0, probas[0]) + VP8BitCost(0, probas[1])) +
246 p[1] * (VP8BitCost(0, probas[0]) + VP8BitCost(1, probas[1])) +
247 p[2] * (VP8BitCost(1, probas[0]) + VP8BitCost(0, probas[2])) +
248 p[3] * (VP8BitCost(1, probas[0]) + VP8BitCost(1, probas[2]));
249 } else {
250 enc->segment_hdr_.update_map_ = 0;
251 enc->segment_hdr_.size_ = 0;
252 }
253 }
254
255 //------------------------------------------------------------------------------
196 // helper functions for residuals struct VP8Residual. 256 // helper functions for residuals struct VP8Residual.
197 257
198 static void InitResidual(int first, int coeff_type, 258 static void InitResidual(int first, int coeff_type,
199 VP8Encoder* const enc, VP8Residual* const res) { 259 VP8Encoder* const enc, VP8Residual* const res) {
200 res->coeff_type = coeff_type; 260 res->coeff_type = coeff_type;
201 res->prob = enc->proba_.coeffs_[coeff_type]; 261 res->prob = enc->proba_.coeffs_[coeff_type];
202 res->stats = enc->proba_.stats_[coeff_type]; 262 res->stats = enc->proba_.stats_[coeff_type];
203 res->cost = enc->proba_.level_cost_[coeff_type]; 263 res->cost = enc->proba_.level_cost_[coeff_type];
204 res->first = first; 264 res->first = first;
205 } 265 }
206 266
207 static void SetResidualCoeffs(const int16_t* const coeffs, 267 static void SetResidualCoeffs(const int16_t* const coeffs,
208 VP8Residual* const res) { 268 VP8Residual* const res) {
209 int n; 269 int n;
210 res->last = -1; 270 res->last = -1;
211 for (n = 15; n >= res->first; --n) { 271 for (n = 15; n >= res->first; --n) {
212 if (coeffs[n]) { 272 if (coeffs[n]) {
213 res->last = n; 273 res->last = n;
214 break; 274 break;
215 } 275 }
216 } 276 }
217 res->coeffs = coeffs; 277 res->coeffs = coeffs;
218 } 278 }
219 279
220 //------------------------------------------------------------------------------ 280 //------------------------------------------------------------------------------
221 // Mode costs 281 // Mode costs
222 282
223 static int GetResidualCost(int ctx, const VP8Residual* const res) { 283 static int GetResidualCost(int ctx0, const VP8Residual* const res) {
224 int n = res->first; 284 int n = res->first;
225 const uint8_t* p = res->prob[VP8EncBands[n]][ctx]; 285 // should be prob[VP8EncBands[n]], but it's equivalent for n=0 or 1
226 const uint16_t *t = res->cost[VP8EncBands[n]][ctx]; 286 int p0 = res->prob[n][ctx0][0];
227 int last_p0 = p[0]; 287 const uint16_t* t = res->cost[n][ctx0];
228 int cost; 288 int cost;
229 289
230 if (res->last < 0) { 290 if (res->last < 0) {
231 return VP8BitCost(0, last_p0); 291 return VP8BitCost(0, p0);
232 } 292 }
233 cost = 0; 293 cost = 0;
234 while (n <= res->last) { 294 while (n < res->last) {
235 const int v = res->coeffs[n]; 295 int v = res->coeffs[n];
236 const int b = VP8EncBands[n + 1]; 296 const int b = VP8EncBands[n + 1];
237 ++n; 297 ++n;
238 if (v == 0) { 298 if (v == 0) {
239 cost += VP8LevelCost(t, 0); 299 // short-case for VP8LevelCost(t, 0) (note: VP8LevelFixedCosts[0] == 0):
240 p = res->prob[b][0]; 300 cost += t[0];
241 t = res->cost[b][0]; 301 t = res->cost[b][0];
242 continue; 302 continue;
243 } 303 }
244 cost += VP8BitCost(1, last_p0); 304 v = abs(v);
245 if (2u >= (unsigned int)(v + 1)) { // v = -1 or 1 305 cost += VP8BitCost(1, p0);
246 cost += VP8LevelCost(t, 1); 306 cost += VP8LevelCost(t, v);
247 p = res->prob[b][1]; 307 {
248 t = res->cost[b][1]; 308 const int ctx = (v == 1) ? 1 : 2;
249 } else { 309 p0 = res->prob[b][ctx][0];
250 cost += VP8LevelCost(t, abs(v)); 310 t = res->cost[b][ctx];
251 p = res->prob[b][2];
252 t = res->cost[b][2];
253 } 311 }
254 last_p0 = p[0];
255 } 312 }
256 if (n < 16) cost += VP8BitCost(0, last_p0); 313 // Last coefficient is always non-zero
314 {
315 const int v = abs(res->coeffs[n]);
316 assert(v != 0);
317 cost += VP8BitCost(1, p0);
318 cost += VP8LevelCost(t, v);
319 if (n < 15) {
320 const int b = VP8EncBands[n + 1];
321 const int ctx = (v == 1) ? 1 : 2;
322 const int last_p0 = res->prob[b][ctx][0];
323 cost += VP8BitCost(0, last_p0);
324 }
325 }
257 return cost; 326 return cost;
258 } 327 }
259 328
260 int VP8GetCostLuma4(VP8EncIterator* const it, const int16_t levels[16]) { 329 int VP8GetCostLuma4(VP8EncIterator* const it, const int16_t levels[16]) {
261 const int x = (it->i4_ & 3), y = (it->i4_ >> 2); 330 const int x = (it->i4_ & 3), y = (it->i4_ >> 2);
262 VP8Residual res; 331 VP8Residual res;
263 VP8Encoder* const enc = it->enc_; 332 VP8Encoder* const enc = it->enc_;
264 int R = 0; 333 int R = 0;
265 int ctx; 334 int ctx;
266 335
(...skipping 50 matching lines...) Expand 10 before | Expand all | Expand 10 after
317 } 386 }
318 } 387 }
319 return R; 388 return R;
320 } 389 }
321 390
322 //------------------------------------------------------------------------------ 391 //------------------------------------------------------------------------------
323 // Coefficient coding 392 // Coefficient coding
324 393
325 static int PutCoeffs(VP8BitWriter* const bw, int ctx, const VP8Residual* res) { 394 static int PutCoeffs(VP8BitWriter* const bw, int ctx, const VP8Residual* res) {
326 int n = res->first; 395 int n = res->first;
327 const uint8_t* p = res->prob[VP8EncBands[n]][ctx]; 396 // should be prob[VP8EncBands[n]], but it's equivalent for n=0 or 1
397 const uint8_t* p = res->prob[n][ctx];
328 if (!VP8PutBit(bw, res->last >= 0, p[0])) { 398 if (!VP8PutBit(bw, res->last >= 0, p[0])) {
329 return 0; 399 return 0;
330 } 400 }
331 401
332 while (n < 16) { 402 while (n < 16) {
333 const int c = res->coeffs[n++]; 403 const int c = res->coeffs[n++];
334 const int sign = c < 0; 404 const int sign = c < 0;
335 int v = sign ? -c : c; 405 int v = sign ? -c : c;
336 if (!VP8PutBit(bw, v != 0, p[1])) { 406 if (!VP8PutBit(bw, v != 0, p[1])) {
337 p = res->prob[VP8EncBands[n]][0]; 407 p = res->prob[VP8EncBands[n]][0];
338 continue; 408 continue;
339 } 409 }
340 if (!VP8PutBit(bw, v > 1, p[2])) { 410 if (!VP8PutBit(bw, v > 1, p[2])) {
341 p = res->prob[VP8EncBands[n]][1]; 411 p = res->prob[VP8EncBands[n]][1];
342 } else { 412 } else {
343 if (!VP8PutBit(bw, v > 4, p[3])) { 413 if (!VP8PutBit(bw, v > 4, p[3])) {
344 if (VP8PutBit(bw, v != 2, p[4])) 414 if (VP8PutBit(bw, v != 2, p[4]))
345 VP8PutBit(bw, v == 4, p[5]); 415 VP8PutBit(bw, v == 4, p[5]);
346 } else if (!VP8PutBit(bw, v > 10, p[6])) { 416 } else if (!VP8PutBit(bw, v > 10, p[6])) {
347 if (!VP8PutBit(bw, v > 6, p[7])) { 417 if (!VP8PutBit(bw, v > 6, p[7])) {
348 VP8PutBit(bw, v == 6, 159); 418 VP8PutBit(bw, v == 6, 159);
349 } else { 419 } else {
350 VP8PutBit(bw, v >= 9, 165); 420 VP8PutBit(bw, v >= 9, 165);
351 VP8PutBit(bw, !(v & 1), 145); 421 VP8PutBit(bw, !(v & 1), 145);
352 } 422 }
353 } else { 423 } else {
354 int mask; 424 int mask;
355 const uint8_t* tab; 425 const uint8_t* tab;
356 if (v < 3 + (8 << 1)) { // kCat3 (3b) 426 if (v < 3 + (8 << 1)) { // VP8Cat3 (3b)
357 VP8PutBit(bw, 0, p[8]); 427 VP8PutBit(bw, 0, p[8]);
358 VP8PutBit(bw, 0, p[9]); 428 VP8PutBit(bw, 0, p[9]);
359 v -= 3 + (8 << 0); 429 v -= 3 + (8 << 0);
360 mask = 1 << 2; 430 mask = 1 << 2;
361 tab = kCat3; 431 tab = VP8Cat3;
362 } else if (v < 3 + (8 << 2)) { // kCat4 (4b) 432 } else if (v < 3 + (8 << 2)) { // VP8Cat4 (4b)
363 VP8PutBit(bw, 0, p[8]); 433 VP8PutBit(bw, 0, p[8]);
364 VP8PutBit(bw, 1, p[9]); 434 VP8PutBit(bw, 1, p[9]);
365 v -= 3 + (8 << 1); 435 v -= 3 + (8 << 1);
366 mask = 1 << 3; 436 mask = 1 << 3;
367 tab = kCat4; 437 tab = VP8Cat4;
368 } else if (v < 3 + (8 << 3)) { // kCat5 (5b) 438 } else if (v < 3 + (8 << 3)) { // VP8Cat5 (5b)
369 VP8PutBit(bw, 1, p[8]); 439 VP8PutBit(bw, 1, p[8]);
370 VP8PutBit(bw, 0, p[10]); 440 VP8PutBit(bw, 0, p[10]);
371 v -= 3 + (8 << 2); 441 v -= 3 + (8 << 2);
372 mask = 1 << 4; 442 mask = 1 << 4;
373 tab = kCat5; 443 tab = VP8Cat5;
374 } else { // kCat6 (11b) 444 } else { // VP8Cat6 (11b)
375 VP8PutBit(bw, 1, p[8]); 445 VP8PutBit(bw, 1, p[8]);
376 VP8PutBit(bw, 1, p[10]); 446 VP8PutBit(bw, 1, p[10]);
377 v -= 3 + (8 << 3); 447 v -= 3 + (8 << 3);
378 mask = 1 << 10; 448 mask = 1 << 10;
379 tab = kCat6; 449 tab = VP8Cat6;
380 } 450 }
381 while (mask) { 451 while (mask) {
382 VP8PutBit(bw, !!(v & mask), *tab++); 452 VP8PutBit(bw, !!(v & mask), *tab++);
383 mask >>= 1; 453 mask >>= 1;
384 } 454 }
385 } 455 }
386 p = res->prob[VP8EncBands[n]][2]; 456 p = res->prob[VP8EncBands[n]][2];
387 } 457 }
388 VP8PutBitUniform(bw, sign); 458 VP8PutBitUniform(bw, sign);
389 if (n == 16 || !VP8PutBit(bw, n <= res->last, p[0])) { 459 if (n == 16 || !VP8PutBit(bw, n <= res->last, p[0])) {
390 return 1; // EOB 460 return 1; // EOB
391 } 461 }
392 } 462 }
393 return 1; 463 return 1;
394 } 464 }
395 465
396 static void CodeResiduals(VP8BitWriter* const bw, 466 static void CodeResiduals(VP8BitWriter* const bw, VP8EncIterator* const it,
397 VP8EncIterator* const it,
398 const VP8ModeScore* const rd) { 467 const VP8ModeScore* const rd) {
399 int x, y, ch; 468 int x, y, ch;
400 VP8Residual res; 469 VP8Residual res;
401 uint64_t pos1, pos2, pos3; 470 uint64_t pos1, pos2, pos3;
402 const int i16 = (it->mb_->type_ == 1); 471 const int i16 = (it->mb_->type_ == 1);
403 const int segment = it->mb_->segment_; 472 const int segment = it->mb_->segment_;
404 VP8Encoder* const enc = it->enc_; 473 VP8Encoder* const enc = it->enc_;
405 474
406 VP8IteratorNzToBytes(it); 475 VP8IteratorNzToBytes(it);
407 476
(...skipping 79 matching lines...) Expand 10 before | Expand all | Expand 10 after
487 } 556 }
488 } 557 }
489 } 558 }
490 559
491 VP8IteratorBytesToNz(it); 560 VP8IteratorBytesToNz(it);
492 } 561 }
493 562
494 //------------------------------------------------------------------------------ 563 //------------------------------------------------------------------------------
495 // Token buffer 564 // Token buffer
496 565
497 #ifdef USE_TOKEN_BUFFER 566 #if !defined(DISABLE_TOKEN_BUFFER)
498 567
499 void VP8TBufferInit(VP8TBuffer* const b) { 568 static void RecordTokens(VP8EncIterator* const it, const VP8ModeScore* const rd,
500 b->rows_ = NULL; 569 VP8TBuffer* const tokens) {
501 b->tokens_ = NULL;
502 b->last_ = &b->rows_;
503 b->left_ = 0;
504 b->error_ = 0;
505 }
506
507 int VP8TBufferNewPage(VP8TBuffer* const b) {
508 VP8Tokens* const page = b->error_ ? NULL : (VP8Tokens*)malloc(sizeof(*page));
509 if (page == NULL) {
510 b->error_ = 1;
511 return 0;
512 }
513 *b->last_ = page;
514 b->last_ = &page->next_;
515 b->left_ = MAX_NUM_TOKEN;
516 b->tokens_ = page->tokens_;
517 return 1;
518 }
519
520 void VP8TBufferClear(VP8TBuffer* const b) {
521 if (b != NULL) {
522 const VP8Tokens* p = b->rows_;
523 while (p != NULL) {
524 const VP8Tokens* const next = p->next_;
525 free((void*)p);
526 p = next;
527 }
528 VP8TBufferInit(b);
529 }
530 }
531
532 int VP8EmitTokens(const VP8TBuffer* const b, VP8BitWriter* const bw,
533 const uint8_t* const probas) {
534 VP8Tokens* p = b->rows_;
535 if (b->error_) return 0;
536 while (p != NULL) {
537 const int N = (p->next_ == NULL) ? b->left_ : 0;
538 int n = MAX_NUM_TOKEN;
539 while (n-- > N) {
540 VP8PutBit(bw, (p->tokens_[n] >> 15) & 1, probas[p->tokens_[n] & 0x7fff]);
541 }
542 p = p->next_;
543 }
544 return 1;
545 }
546
547 #define TOKEN_ID(b, ctx, p) ((p) + NUM_PROBAS * ((ctx) + (b) * NUM_CTX))
548
549 static int RecordCoeffTokens(int ctx, const VP8Residual* const res,
550 VP8TBuffer* tokens) {
551 int n = res->first;
552 int b = VP8EncBands[n];
553 if (!VP8AddToken(tokens, res->last >= 0, TOKEN_ID(b, ctx, 0))) {
554 return 0;
555 }
556
557 while (n < 16) {
558 const int c = res->coeffs[n++];
559 const int sign = c < 0;
560 int v = sign ? -c : c;
561 const int base_id = TOKEN_ID(b, ctx, 0);
562 if (!VP8AddToken(tokens, v != 0, base_id + 1)) {
563 b = VP8EncBands[n];
564 ctx = 0;
565 continue;
566 }
567 if (!VP8AddToken(tokens, v > 1, base_id + 2)) {
568 b = VP8EncBands[n];
569 ctx = 1;
570 } else {
571 if (!VP8AddToken(tokens, v > 4, base_id + 3)) {
572 if (VP8AddToken(tokens, v != 2, base_id + 4))
573 VP8AddToken(tokens, v == 4, base_id + 5);
574 } else if (!VP8AddToken(tokens, v > 10, base_id + 6)) {
575 if (!VP8AddToken(tokens, v > 6, base_id + 7)) {
576 // VP8AddToken(tokens, v == 6, 159);
577 } else {
578 // VP8AddToken(tokens, v >= 9, 165);
579 // VP8AddToken(tokens, !(v & 1), 145);
580 }
581 } else {
582 int mask;
583 const uint8_t* tab;
584 if (v < 3 + (8 << 1)) { // kCat3 (3b)
585 VP8AddToken(tokens, 0, base_id + 8);
586 VP8AddToken(tokens, 0, base_id + 9);
587 v -= 3 + (8 << 0);
588 mask = 1 << 2;
589 tab = kCat3;
590 } else if (v < 3 + (8 << 2)) { // kCat4 (4b)
591 VP8AddToken(tokens, 0, base_id + 8);
592 VP8AddToken(tokens, 1, base_id + 9);
593 v -= 3 + (8 << 1);
594 mask = 1 << 3;
595 tab = kCat4;
596 } else if (v < 3 + (8 << 3)) { // kCat5 (5b)
597 VP8AddToken(tokens, 1, base_id + 8);
598 VP8AddToken(tokens, 0, base_id + 10);
599 v -= 3 + (8 << 2);
600 mask = 1 << 4;
601 tab = kCat5;
602 } else { // kCat6 (11b)
603 VP8AddToken(tokens, 1, base_id + 8);
604 VP8AddToken(tokens, 1, base_id + 10);
605 v -= 3 + (8 << 3);
606 mask = 1 << 10;
607 tab = kCat6;
608 }
609 while (mask) {
610 // VP8AddToken(tokens, !!(v & mask), *tab++);
611 mask >>= 1;
612 }
613 }
614 ctx = 2;
615 }
616 b = VP8EncBands[n];
617 // VP8PutBitUniform(bw, sign);
618 if (n == 16 || !VP8AddToken(tokens, n <= res->last, TOKEN_ID(b, ctx, 0))) {
619 return 1; // EOB
620 }
621 }
622 return 1;
623 }
624
625 static void RecordTokens(VP8EncIterator* const it,
626 const VP8ModeScore* const rd, VP8TBuffer tokens[2]) {
627 int x, y, ch; 570 int x, y, ch;
628 VP8Residual res; 571 VP8Residual res;
629 VP8Encoder* const enc = it->enc_; 572 VP8Encoder* const enc = it->enc_;
630 573
631 VP8IteratorNzToBytes(it); 574 VP8IteratorNzToBytes(it);
632 if (it->mb_->type_ == 1) { // i16x16 575 if (it->mb_->type_ == 1) { // i16x16
576 const int ctx = it->top_nz_[8] + it->left_nz_[8];
633 InitResidual(0, 1, enc, &res); 577 InitResidual(0, 1, enc, &res);
634 SetResidualCoeffs(rd->y_dc_levels, &res); 578 SetResidualCoeffs(rd->y_dc_levels, &res);
635 // TODO(skal): FIX -> it->top_nz_[8] = it->left_nz_[8] = 579 it->top_nz_[8] = it->left_nz_[8] =
636 RecordCoeffTokens(it->top_nz_[8] + it->left_nz_[8], &res, &tokens[0]); 580 VP8RecordCoeffTokens(ctx, 1,
581 res.first, res.last, res.coeffs, tokens);
582 RecordCoeffs(ctx, &res);
637 InitResidual(1, 0, enc, &res); 583 InitResidual(1, 0, enc, &res);
638 } else { 584 } else {
639 InitResidual(0, 3, enc, &res); 585 InitResidual(0, 3, enc, &res);
640 } 586 }
641 587
642 // luma-AC 588 // luma-AC
643 for (y = 0; y < 4; ++y) { 589 for (y = 0; y < 4; ++y) {
644 for (x = 0; x < 4; ++x) { 590 for (x = 0; x < 4; ++x) {
645 const int ctx = it->top_nz_[x] + it->left_nz_[y]; 591 const int ctx = it->top_nz_[x] + it->left_nz_[y];
646 SetResidualCoeffs(rd->y_ac_levels[x + y * 4], &res); 592 SetResidualCoeffs(rd->y_ac_levels[x + y * 4], &res);
647 it->top_nz_[x] = it->left_nz_[y] = 593 it->top_nz_[x] = it->left_nz_[y] =
648 RecordCoeffTokens(ctx, &res, &tokens[0]); 594 VP8RecordCoeffTokens(ctx, res.coeff_type,
595 res.first, res.last, res.coeffs, tokens);
596 RecordCoeffs(ctx, &res);
649 } 597 }
650 } 598 }
651 599
652 // U/V 600 // U/V
653 InitResidual(0, 2, enc, &res); 601 InitResidual(0, 2, enc, &res);
654 for (ch = 0; ch <= 2; ch += 2) { 602 for (ch = 0; ch <= 2; ch += 2) {
655 for (y = 0; y < 2; ++y) { 603 for (y = 0; y < 2; ++y) {
656 for (x = 0; x < 2; ++x) { 604 for (x = 0; x < 2; ++x) {
657 const int ctx = it->top_nz_[4 + ch + x] + it->left_nz_[4 + ch + y]; 605 const int ctx = it->top_nz_[4 + ch + x] + it->left_nz_[4 + ch + y];
658 SetResidualCoeffs(rd->uv_levels[ch * 2 + x + y * 2], &res); 606 SetResidualCoeffs(rd->uv_levels[ch * 2 + x + y * 2], &res);
659 it->top_nz_[4 + ch + x] = it->left_nz_[4 + ch + y] = 607 it->top_nz_[4 + ch + x] = it->left_nz_[4 + ch + y] =
660 RecordCoeffTokens(ctx, &res, &tokens[1]); 608 VP8RecordCoeffTokens(ctx, 2,
609 res.first, res.last, res.coeffs, tokens);
610 RecordCoeffs(ctx, &res);
661 } 611 }
662 } 612 }
663 } 613 }
614 VP8IteratorBytesToNz(it);
664 } 615 }
665 616
666 #endif // USE_TOKEN_BUFFER 617 #endif // !DISABLE_TOKEN_BUFFER
667 618
668 //------------------------------------------------------------------------------ 619 //------------------------------------------------------------------------------
669 // ExtraInfo map / Debug function 620 // ExtraInfo map / Debug function
670 621
671 #if SEGMENT_VISU 622 #if SEGMENT_VISU
672 static void SetBlock(uint8_t* p, int value, int size) { 623 static void SetBlock(uint8_t* p, int value, int size) {
673 int y; 624 int y;
674 for (y = 0; y < size; ++y) { 625 for (y = 0; y < size; ++y) {
675 memset(p, value, size); 626 memset(p, value, size);
676 p += BPS; 627 p += BPS;
677 } 628 }
678 } 629 }
679 #endif 630 #endif
680 631
681 static void ResetSSE(VP8Encoder* const enc) { 632 static void ResetSSE(VP8Encoder* const enc) {
682 memset(enc->sse_, 0, sizeof(enc->sse_)); 633 enc->sse_[0] = 0;
634 enc->sse_[1] = 0;
635 enc->sse_[2] = 0;
636 // Note: enc->sse_[3] is managed by alpha.c
683 enc->sse_count_ = 0; 637 enc->sse_count_ = 0;
684 } 638 }
685 639
686 static void StoreSSE(const VP8EncIterator* const it) { 640 static void StoreSSE(const VP8EncIterator* const it) {
687 VP8Encoder* const enc = it->enc_; 641 VP8Encoder* const enc = it->enc_;
688 const uint8_t* const in = it->yuv_in_; 642 const uint8_t* const in = it->yuv_in_;
689 const uint8_t* const out = it->yuv_out_; 643 const uint8_t* const out = it->yuv_out_;
690 // Note: not totally accurate at boundary. And doesn't include in-loop filter. 644 // Note: not totally accurate at boundary. And doesn't include in-loop filter.
691 enc->sse_[0] += VP8SSE16x16(in + Y_OFF, out + Y_OFF); 645 enc->sse_[0] += VP8SSE16x16(in + Y_OFF, out + Y_OFF);
692 enc->sse_[1] += VP8SSE8x8(in + U_OFF, out + U_OFF); 646 enc->sse_[1] += VP8SSE8x8(in + U_OFF, out + U_OFF);
(...skipping 18 matching lines...) Expand all
711 switch (pic->extra_info_type) { 665 switch (pic->extra_info_type) {
712 case 1: *info = mb->type_; break; 666 case 1: *info = mb->type_; break;
713 case 2: *info = mb->segment_; break; 667 case 2: *info = mb->segment_; break;
714 case 3: *info = enc->dqm_[mb->segment_].quant_; break; 668 case 3: *info = enc->dqm_[mb->segment_].quant_; break;
715 case 4: *info = (mb->type_ == 1) ? it->preds_[0] : 0xff; break; 669 case 4: *info = (mb->type_ == 1) ? it->preds_[0] : 0xff; break;
716 case 5: *info = mb->uv_mode_; break; 670 case 5: *info = mb->uv_mode_; break;
717 case 6: { 671 case 6: {
718 const int b = (int)((it->luma_bits_ + it->uv_bits_ + 7) >> 3); 672 const int b = (int)((it->luma_bits_ + it->uv_bits_ + 7) >> 3);
719 *info = (b > 255) ? 255 : b; break; 673 *info = (b > 255) ? 255 : b; break;
720 } 674 }
675 case 7: *info = mb->alpha_; break;
721 default: *info = 0; break; 676 default: *info = 0; break;
722 }; 677 };
723 } 678 }
724 #if SEGMENT_VISU // visualize segments and prediction modes 679 #if SEGMENT_VISU // visualize segments and prediction modes
725 SetBlock(it->yuv_out_ + Y_OFF, mb->segment_ * 64, 16); 680 SetBlock(it->yuv_out_ + Y_OFF, mb->segment_ * 64, 16);
726 SetBlock(it->yuv_out_ + U_OFF, it->preds_[0] * 64, 8); 681 SetBlock(it->yuv_out_ + U_OFF, it->preds_[0] * 64, 8);
727 SetBlock(it->yuv_out_ + V_OFF, mb->uv_mode_ * 64, 8); 682 SetBlock(it->yuv_out_ + V_OFF, mb->uv_mode_ * 64, 8);
728 #endif 683 #endif
729 } 684 }
730 685
731 //------------------------------------------------------------------------------ 686 //------------------------------------------------------------------------------
732 // Main loops 687 // StatLoop(): only collect statistics (number of skips, token usage, ...).
733 // 688 // This is used for deciding optimal probabilities. It also modifies the
734 // VP8EncLoop(): does the final bitstream coding. 689 // quantizer value if some target (size, PNSR) was specified.
735
736 static void ResetAfterSkip(VP8EncIterator* const it) {
737 if (it->mb_->type_ == 1) {
738 *it->nz_ = 0; // reset all predictors
739 it->left_nz_[8] = 0;
740 } else {
741 *it->nz_ &= (1 << 24); // preserve the dc_nz bit
742 }
743 }
744
745 int VP8EncLoop(VP8Encoder* const enc) {
746 int i, s, p;
747 int ok = 1;
748 VP8EncIterator it;
749 VP8ModeScore info;
750 const int dont_use_skip = !enc->proba_.use_skip_proba_;
751 const int rd_opt = enc->rd_opt_level_;
752 const int kAverageBytesPerMB = 5; // TODO: have a kTable[quality/10]
753 const int bytes_per_parts =
754 enc->mb_w_ * enc->mb_h_ * kAverageBytesPerMB / enc->num_parts_;
755
756 // Initialize the bit-writers
757 for (p = 0; p < enc->num_parts_; ++p) {
758 VP8BitWriterInit(enc->parts_ + p, bytes_per_parts);
759 }
760
761 ResetStats(enc, rd_opt != 0);
762 ResetSSE(enc);
763
764 VP8IteratorInit(enc, &it);
765 VP8InitFilter(&it);
766 do {
767 VP8IteratorImport(&it);
768 // Warning! order is important: first call VP8Decimate() and
769 // *then* decide how to code the skip decision if there's one.
770 if (!VP8Decimate(&it, &info, rd_opt) || dont_use_skip) {
771 CodeResiduals(it.bw_, &it, &info);
772 } else { // reset predictors after a skip
773 ResetAfterSkip(&it);
774 }
775 #ifdef WEBP_EXPERIMENTAL_FEATURES
776 if (enc->use_layer_) {
777 VP8EncCodeLayerBlock(&it);
778 }
779 #endif
780 StoreSideInfo(&it);
781 VP8StoreFilterStats(&it);
782 VP8IteratorExport(&it);
783 ok = VP8IteratorProgress(&it, 20);
784 } while (ok && VP8IteratorNext(&it, it.yuv_out_));
785
786 if (ok) { // Finalize the partitions, check for extra errors.
787 for (p = 0; p < enc->num_parts_; ++p) {
788 VP8BitWriterFinish(enc->parts_ + p);
789 ok &= !enc->parts_[p].error_;
790 }
791 }
792
793 if (ok) { // All good. Finish up.
794 if (enc->pic_->stats) { // finalize byte counters...
795 for (i = 0; i <= 2; ++i) {
796 for (s = 0; s < NUM_MB_SEGMENTS; ++s) {
797 enc->residual_bytes_[i][s] = (int)((it.bit_count_[s][i] + 7) >> 3);
798 }
799 }
800 }
801 VP8AdjustFilterStrength(&it); // ...and store filter stats.
802 } else {
803 // Something bad happened -> need to do some memory cleanup.
804 VP8EncFreeBitWriters(enc);
805 }
806
807 return ok;
808 }
809
810 //------------------------------------------------------------------------------
811 // VP8StatLoop(): only collect statistics (number of skips, token usage, ...)
812 // This is used for deciding optimal probabilities. It also
813 // modifies the quantizer value if some target (size, PNSR)
814 // was specified.
815 690
816 #define kHeaderSizeEstimate (15 + 20 + 10) // TODO: fix better 691 #define kHeaderSizeEstimate (15 + 20 + 10) // TODO: fix better
817 692
818 static int OneStatPass(VP8Encoder* const enc, float q, int rd_opt, int nb_mbs, 693 static void SetLoopParams(VP8Encoder* const enc, float q) {
819 float* const PSNR, int percent_delta) {
820 VP8EncIterator it;
821 uint64_t size = 0;
822 uint64_t distortion = 0;
823 const uint64_t pixel_count = nb_mbs * 384;
824
825 // Make sure the quality parameter is inside valid bounds 694 // Make sure the quality parameter is inside valid bounds
826 if (q < 0.) { 695 if (q < 0.) {
827 q = 0; 696 q = 0;
828 } else if (q > 100.) { 697 } else if (q > 100.) {
829 q = 100; 698 q = 100;
830 } 699 }
831 700
832 VP8SetSegmentParams(enc, q); // setup segment quantizations and filters 701 VP8SetSegmentParams(enc, q); // setup segment quantizations and filters
702 SetSegmentProbas(enc); // compute segment probabilities
833 703
834 ResetStats(enc, rd_opt != 0); 704 ResetStats(enc);
835 ResetTokenStats(enc); 705 ResetTokenStats(enc);
836 706
707 ResetSSE(enc);
708 }
709
710 static int OneStatPass(VP8Encoder* const enc, float q, VP8RDLevel rd_opt,
711 int nb_mbs, float* const PSNR, int percent_delta) {
712 VP8EncIterator it;
713 uint64_t size = 0;
714 uint64_t distortion = 0;
715 const uint64_t pixel_count = nb_mbs * 384;
716
717 SetLoopParams(enc, q);
718
837 VP8IteratorInit(enc, &it); 719 VP8IteratorInit(enc, &it);
838 do { 720 do {
839 VP8ModeScore info; 721 VP8ModeScore info;
840 VP8IteratorImport(&it); 722 VP8IteratorImport(&it);
841 if (VP8Decimate(&it, &info, rd_opt)) { 723 if (VP8Decimate(&it, &info, rd_opt)) {
842 // Just record the number of skips and act like skip_proba is not used. 724 // Just record the number of skips and act like skip_proba is not used.
843 enc->proba_.nb_skip_++; 725 enc->proba_.nb_skip_++;
844 } 726 }
845 RecordResiduals(&it, &info); 727 RecordResiduals(&it, &info);
846 size += info.R; 728 size += info.R;
847 distortion += info.D; 729 distortion += info.D;
848 if (percent_delta && !VP8IteratorProgress(&it, percent_delta)) 730 if (percent_delta && !VP8IteratorProgress(&it, percent_delta))
849 return 0; 731 return 0;
850 } while (VP8IteratorNext(&it, it.yuv_out_) && --nb_mbs > 0); 732 } while (VP8IteratorNext(&it, it.yuv_out_) && --nb_mbs > 0);
851 size += FinalizeSkipProba(enc); 733 size += FinalizeSkipProba(enc);
852 size += FinalizeTokenProbas(enc); 734 size += FinalizeTokenProbas(&enc->proba_);
853 size += enc->segment_hdr_.size_; 735 size += enc->segment_hdr_.size_;
854 size = ((size + 1024) >> 11) + kHeaderSizeEstimate; 736 size = ((size + 1024) >> 11) + kHeaderSizeEstimate;
855 737
856 if (PSNR) { 738 if (PSNR) {
857 *PSNR = (float)(10.* log10(255. * 255. * pixel_count / distortion)); 739 *PSNR = (float)(10.* log10(255. * 255. * pixel_count / distortion));
858 } 740 }
859 return (int)size; 741 return (int)size;
860 } 742 }
861 743
862 // successive refinement increments. 744 // successive refinement increments.
863 static const int dqs[] = { 20, 15, 10, 8, 6, 4, 2, 1, 0 }; 745 static const int dqs[] = { 20, 15, 10, 8, 6, 4, 2, 1, 0 };
864 746
865 int VP8StatLoop(VP8Encoder* const enc) { 747 static int StatLoop(VP8Encoder* const enc) {
866 const int do_search = 748 const int method = enc->method_;
867 (enc->config_->target_size > 0 || enc->config_->target_PSNR > 0); 749 const int do_search = enc->do_search_;
868 const int fast_probe = (enc->method_ < 2 && !do_search); 750 const int fast_probe = ((method == 0 || method == 3) && !do_search);
869 float q = enc->config_->quality; 751 float q = enc->config_->quality;
870 const int max_passes = enc->config_->pass; 752 const int max_passes = enc->config_->pass;
871 const int task_percent = 20; 753 const int task_percent = 20;
872 const int percent_per_pass = (task_percent + max_passes / 2) / max_passes; 754 const int percent_per_pass = (task_percent + max_passes / 2) / max_passes;
873 const int final_percent = enc->percent_ + task_percent; 755 const int final_percent = enc->percent_ + task_percent;
874 int pass; 756 int pass;
875 int nb_mbs; 757 int nb_mbs;
876 758
877 // Fast mode: quick analysis pass over few mbs. Better than nothing. 759 // Fast mode: quick analysis pass over few mbs. Better than nothing.
878 nb_mbs = enc->mb_w_ * enc->mb_h_; 760 nb_mbs = enc->mb_w_ * enc->mb_h_;
879 if (fast_probe && nb_mbs > 100) nb_mbs = 100; 761 if (fast_probe) {
762 if (method == 3) { // we need more stats for method 3 to be reliable.
763 nb_mbs = (nb_mbs > 200) ? nb_mbs >> 1 : 100;
764 } else {
765 nb_mbs = (nb_mbs > 200) ? nb_mbs >> 2 : 50;
766 }
767 }
880 768
881 // No target size: just do several pass without changing 'q' 769 // No target size: just do several pass without changing 'q'
882 if (!do_search) { 770 if (!do_search) {
883 for (pass = 0; pass < max_passes; ++pass) { 771 for (pass = 0; pass < max_passes; ++pass) {
884 const int rd_opt = (enc->method_ > 2); 772 const VP8RDLevel rd_opt = (method >= 3) ? RD_OPT_BASIC : RD_OPT_NONE;
885 if (!OneStatPass(enc, q, rd_opt, nb_mbs, NULL, percent_per_pass)) { 773 if (!OneStatPass(enc, q, rd_opt, nb_mbs, NULL, percent_per_pass)) {
886 return 0; 774 return 0;
887 } 775 }
888 } 776 }
889 } else { 777 } else {
890 // binary search for a size close to target 778 // binary search for a size close to target
891 for (pass = 0; pass < max_passes && (dqs[pass] > 0); ++pass) { 779 for (pass = 0; pass < max_passes && (dqs[pass] > 0); ++pass) {
892 const int rd_opt = 1;
893 float PSNR; 780 float PSNR;
894 int criterion; 781 int criterion;
895 const int size = OneStatPass(enc, q, rd_opt, nb_mbs, &PSNR, 782 const int size = OneStatPass(enc, q, RD_OPT_BASIC, nb_mbs, &PSNR,
896 percent_per_pass); 783 percent_per_pass);
897 #if DEBUG_SEARCH 784 #if DEBUG_SEARCH
898 printf("#%d size=%d PSNR=%.2f q=%.2f\n", pass, size, PSNR, q); 785 printf("#%d size=%d PSNR=%.2f q=%.2f\n", pass, size, PSNR, q);
899 #endif 786 #endif
900 if (!size) return 0; 787 if (size == 0) return 0;
901 if (enc->config_->target_PSNR > 0) { 788 if (enc->config_->target_PSNR > 0) {
902 criterion = (PSNR < enc->config_->target_PSNR); 789 criterion = (PSNR < enc->config_->target_PSNR);
903 } else { 790 } else {
904 criterion = (size < enc->config_->target_size); 791 criterion = (size < enc->config_->target_size);
905 } 792 }
906 // dichotomize 793 // dichotomize
907 if (criterion) { 794 if (criterion) {
908 q += dqs[pass]; 795 q += dqs[pass];
909 } else { 796 } else {
910 q -= dqs[pass]; 797 q -= dqs[pass];
911 } 798 }
912 } 799 }
913 } 800 }
801 VP8CalculateLevelCosts(&enc->proba_); // finalize costs
914 return WebPReportProgress(enc->pic_, final_percent, &enc->percent_); 802 return WebPReportProgress(enc->pic_, final_percent, &enc->percent_);
915 } 803 }
916 804
917 //------------------------------------------------------------------------------ 805 //------------------------------------------------------------------------------
806 // Main loops
807 //
808
809 static const int kAverageBytesPerMB[8] = { 50, 24, 16, 9, 7, 5, 3, 2 };
810
811 static int PreLoopInitialize(VP8Encoder* const enc) {
812 int p;
813 int ok = 1;
814 const int average_bytes_per_MB = kAverageBytesPerMB[enc->base_quant_ >> 4];
815 const int bytes_per_parts =
816 enc->mb_w_ * enc->mb_h_ * average_bytes_per_MB / enc->num_parts_;
817 // Initialize the bit-writers
818 for (p = 0; ok && p < enc->num_parts_; ++p) {
819 ok = VP8BitWriterInit(enc->parts_ + p, bytes_per_parts);
820 }
821 if (!ok) VP8EncFreeBitWriters(enc); // malloc error occurred
822 return ok;
823 }
824
825 static int PostLoopFinalize(VP8EncIterator* const it, int ok) {
826 VP8Encoder* const enc = it->enc_;
827 if (ok) { // Finalize the partitions, check for extra errors.
828 int p;
829 for (p = 0; p < enc->num_parts_; ++p) {
830 VP8BitWriterFinish(enc->parts_ + p);
831 ok &= !enc->parts_[p].error_;
832 }
833 }
834
835 if (ok) { // All good. Finish up.
836 if (enc->pic_->stats) { // finalize byte counters...
837 int i, s;
838 for (i = 0; i <= 2; ++i) {
839 for (s = 0; s < NUM_MB_SEGMENTS; ++s) {
840 enc->residual_bytes_[i][s] = (int)((it->bit_count_[s][i] + 7) >> 3);
841 }
842 }
843 }
844 VP8AdjustFilterStrength(it); // ...and store filter stats.
845 } else {
846 // Something bad happened -> need to do some memory cleanup.
847 VP8EncFreeBitWriters(enc);
848 }
849 return ok;
850 }
851
852 //------------------------------------------------------------------------------
853 // VP8EncLoop(): does the final bitstream coding.
854
855 static void ResetAfterSkip(VP8EncIterator* const it) {
856 if (it->mb_->type_ == 1) {
857 *it->nz_ = 0; // reset all predictors
858 it->left_nz_[8] = 0;
859 } else {
860 *it->nz_ &= (1 << 24); // preserve the dc_nz bit
861 }
862 }
863
864 int VP8EncLoop(VP8Encoder* const enc) {
865 VP8EncIterator it;
866 int ok = PreLoopInitialize(enc);
867 if (!ok) return 0;
868
869 StatLoop(enc); // stats-collection loop
870
871 VP8IteratorInit(enc, &it);
872 VP8InitFilter(&it);
873 do {
874 VP8ModeScore info;
875 const int dont_use_skip = !enc->proba_.use_skip_proba_;
876 const VP8RDLevel rd_opt = enc->rd_opt_level_;
877
878 VP8IteratorImport(&it);
879 // Warning! order is important: first call VP8Decimate() and
880 // *then* decide how to code the skip decision if there's one.
881 if (!VP8Decimate(&it, &info, rd_opt) || dont_use_skip) {
882 CodeResiduals(it.bw_, &it, &info);
883 } else { // reset predictors after a skip
884 ResetAfterSkip(&it);
885 }
886 #ifdef WEBP_EXPERIMENTAL_FEATURES
887 if (enc->use_layer_) {
888 VP8EncCodeLayerBlock(&it);
889 }
890 #endif
891 StoreSideInfo(&it);
892 VP8StoreFilterStats(&it);
893 VP8IteratorExport(&it);
894 ok = VP8IteratorProgress(&it, 20);
895 } while (ok && VP8IteratorNext(&it, it.yuv_out_));
896
897 return PostLoopFinalize(&it, ok);
898 }
899
900 //------------------------------------------------------------------------------
901 // Single pass using Token Buffer.
902
903 #if !defined(DISABLE_TOKEN_BUFFER)
904
905 #define MIN_COUNT 96 // minimum number of macroblocks before updating stats
906
907 int VP8EncTokenLoop(VP8Encoder* const enc) {
908 int ok;
909 // Roughly refresh the proba height times per pass
910 int max_count = (enc->mb_w_ * enc->mb_h_) >> 3;
911 int cnt;
912 VP8EncIterator it;
913 VP8Proba* const proba = &enc->proba_;
914 const VP8RDLevel rd_opt = enc->rd_opt_level_;
915
916 if (max_count < MIN_COUNT) max_count = MIN_COUNT;
917 cnt = max_count;
918
919 assert(enc->num_parts_ == 1);
920 assert(enc->use_tokens_);
921 assert(proba->use_skip_proba_ == 0);
922 assert(rd_opt >= RD_OPT_BASIC); // otherwise, token-buffer won't be useful
923 assert(!enc->do_search_); // TODO(skal): handle pass and dichotomy
924
925 SetLoopParams(enc, enc->config_->quality);
926
927 ok = PreLoopInitialize(enc);
928 if (!ok) return 0;
929
930 VP8IteratorInit(enc, &it);
931 VP8InitFilter(&it);
932 do {
933 VP8ModeScore info;
934 VP8IteratorImport(&it);
935 if (--cnt < 0) {
936 FinalizeTokenProbas(proba);
937 VP8CalculateLevelCosts(proba); // refresh cost tables for rd-opt
938 cnt = max_count;
939 }
940 VP8Decimate(&it, &info, rd_opt);
941 RecordTokens(&it, &info, &enc->tokens_);
942 #ifdef WEBP_EXPERIMENTAL_FEATURES
943 if (enc->use_layer_) {
944 VP8EncCodeLayerBlock(&it);
945 }
946 #endif
947 StoreSideInfo(&it);
948 VP8StoreFilterStats(&it);
949 VP8IteratorExport(&it);
950 ok = VP8IteratorProgress(&it, 20);
951 } while (ok && VP8IteratorNext(&it, it.yuv_out_));
952
953 ok = ok && WebPReportProgress(enc->pic_, enc->percent_ + 20, &enc->percent_);
954
955 if (ok) {
956 FinalizeTokenProbas(proba);
957 ok = VP8EmitTokens(&enc->tokens_, enc->parts_ + 0,
958 (const uint8_t*)proba->coeffs_, 1);
959 }
960
961 return PostLoopFinalize(&it, ok);
962 }
963
964 #else
965
966 int VP8EncTokenLoop(VP8Encoder* const enc) {
967 (void)enc;
968 return 0; // we shouldn't be here.
969 }
970
971 #endif // DISABLE_TOKEN_BUFFER
972
973 //------------------------------------------------------------------------------
918 974
919 #if defined(__cplusplus) || defined(c_plusplus) 975 #if defined(__cplusplus) || defined(c_plusplus)
920 } // extern "C" 976 } // extern "C"
921 #endif 977 #endif
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