vp9_reconintra.c 15 KB

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  1. /*
  2. * Copyright (c) 2010 The WebM project authors. 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. #include "./vpx_config.h"
  11. #include "./vpx_dsp_rtcd.h"
  12. #if CONFIG_VP9_HIGHBITDEPTH
  13. #include "vpx_dsp/vpx_dsp_common.h"
  14. #endif // CONFIG_VP9_HIGHBITDEPTH
  15. #include "vpx_mem/vpx_mem.h"
  16. #include "vpx_ports/mem.h"
  17. #include "vpx_ports/vpx_once.h"
  18. #include "vp9/common/vp9_reconintra.h"
  19. #include "vp9/common/vp9_onyxc_int.h"
  20. const TX_TYPE intra_mode_to_tx_type_lookup[INTRA_MODES] = {
  21. DCT_DCT, // DC
  22. ADST_DCT, // V
  23. DCT_ADST, // H
  24. DCT_DCT, // D45
  25. ADST_ADST, // D135
  26. ADST_DCT, // D117
  27. DCT_ADST, // D153
  28. DCT_ADST, // D207
  29. ADST_DCT, // D63
  30. ADST_ADST, // TM
  31. };
  32. enum {
  33. NEED_LEFT = 1 << 1,
  34. NEED_ABOVE = 1 << 2,
  35. NEED_ABOVERIGHT = 1 << 3,
  36. };
  37. static const uint8_t extend_modes[INTRA_MODES] = {
  38. NEED_ABOVE | NEED_LEFT, // DC
  39. NEED_ABOVE, // V
  40. NEED_LEFT, // H
  41. NEED_ABOVERIGHT, // D45
  42. NEED_LEFT | NEED_ABOVE, // D135
  43. NEED_LEFT | NEED_ABOVE, // D117
  44. NEED_LEFT | NEED_ABOVE, // D153
  45. NEED_LEFT, // D207
  46. NEED_ABOVERIGHT, // D63
  47. NEED_LEFT | NEED_ABOVE, // TM
  48. };
  49. typedef void (*intra_pred_fn)(uint8_t *dst, ptrdiff_t stride,
  50. const uint8_t *above, const uint8_t *left);
  51. static intra_pred_fn pred[INTRA_MODES][TX_SIZES];
  52. static intra_pred_fn dc_pred[2][2][TX_SIZES];
  53. #if CONFIG_VP9_HIGHBITDEPTH
  54. typedef void (*intra_high_pred_fn)(uint16_t *dst, ptrdiff_t stride,
  55. const uint16_t *above, const uint16_t *left,
  56. int bd);
  57. static intra_high_pred_fn pred_high[INTRA_MODES][4];
  58. static intra_high_pred_fn dc_pred_high[2][2][4];
  59. #endif // CONFIG_VP9_HIGHBITDEPTH
  60. static void vp9_init_intra_predictors_internal(void) {
  61. #define INIT_ALL_SIZES(p, type) \
  62. p[TX_4X4] = vpx_##type##_predictor_4x4; \
  63. p[TX_8X8] = vpx_##type##_predictor_8x8; \
  64. p[TX_16X16] = vpx_##type##_predictor_16x16; \
  65. p[TX_32X32] = vpx_##type##_predictor_32x32
  66. INIT_ALL_SIZES(pred[V_PRED], v);
  67. INIT_ALL_SIZES(pred[H_PRED], h);
  68. INIT_ALL_SIZES(pred[D207_PRED], d207);
  69. INIT_ALL_SIZES(pred[D45_PRED], d45);
  70. INIT_ALL_SIZES(pred[D63_PRED], d63);
  71. INIT_ALL_SIZES(pred[D117_PRED], d117);
  72. INIT_ALL_SIZES(pred[D135_PRED], d135);
  73. INIT_ALL_SIZES(pred[D153_PRED], d153);
  74. INIT_ALL_SIZES(pred[TM_PRED], tm);
  75. INIT_ALL_SIZES(dc_pred[0][0], dc_128);
  76. INIT_ALL_SIZES(dc_pred[0][1], dc_top);
  77. INIT_ALL_SIZES(dc_pred[1][0], dc_left);
  78. INIT_ALL_SIZES(dc_pred[1][1], dc);
  79. #if CONFIG_VP9_HIGHBITDEPTH
  80. INIT_ALL_SIZES(pred_high[V_PRED], highbd_v);
  81. INIT_ALL_SIZES(pred_high[H_PRED], highbd_h);
  82. INIT_ALL_SIZES(pred_high[D207_PRED], highbd_d207);
  83. INIT_ALL_SIZES(pred_high[D45_PRED], highbd_d45);
  84. INIT_ALL_SIZES(pred_high[D63_PRED], highbd_d63);
  85. INIT_ALL_SIZES(pred_high[D117_PRED], highbd_d117);
  86. INIT_ALL_SIZES(pred_high[D135_PRED], highbd_d135);
  87. INIT_ALL_SIZES(pred_high[D153_PRED], highbd_d153);
  88. INIT_ALL_SIZES(pred_high[TM_PRED], highbd_tm);
  89. INIT_ALL_SIZES(dc_pred_high[0][0], highbd_dc_128);
  90. INIT_ALL_SIZES(dc_pred_high[0][1], highbd_dc_top);
  91. INIT_ALL_SIZES(dc_pred_high[1][0], highbd_dc_left);
  92. INIT_ALL_SIZES(dc_pred_high[1][1], highbd_dc);
  93. #endif // CONFIG_VP9_HIGHBITDEPTH
  94. #undef intra_pred_allsizes
  95. }
  96. #if CONFIG_VP9_HIGHBITDEPTH
  97. static void build_intra_predictors_high(
  98. const MACROBLOCKD *xd, const uint8_t *ref8, int ref_stride, uint8_t *dst8,
  99. int dst_stride, PREDICTION_MODE mode, TX_SIZE tx_size, int up_available,
  100. int left_available, int right_available, int x, int y, int plane, int bd) {
  101. int i;
  102. uint16_t *dst = CONVERT_TO_SHORTPTR(dst8);
  103. uint16_t *ref = CONVERT_TO_SHORTPTR(ref8);
  104. DECLARE_ALIGNED(16, uint16_t, left_col[32]);
  105. DECLARE_ALIGNED(16, uint16_t, above_data[64 + 16]);
  106. uint16_t *above_row = above_data + 16;
  107. const uint16_t *const_above_row = above_row;
  108. const int bs = 4 << tx_size;
  109. int frame_width, frame_height;
  110. int x0, y0;
  111. const struct macroblockd_plane *const pd = &xd->plane[plane];
  112. const int need_left = extend_modes[mode] & NEED_LEFT;
  113. const int need_above = extend_modes[mode] & NEED_ABOVE;
  114. const int need_aboveright = extend_modes[mode] & NEED_ABOVERIGHT;
  115. int base = 128 << (bd - 8);
  116. // 127 127 127 .. 127 127 127 127 127 127
  117. // 129 A B .. Y Z
  118. // 129 C D .. W X
  119. // 129 E F .. U V
  120. // 129 G H .. S T T T T T
  121. // For 10 bit and 12 bit, 127 and 129 are replaced by base -1 and base + 1.
  122. // Get current frame pointer, width and height.
  123. if (plane == 0) {
  124. frame_width = xd->cur_buf->y_width;
  125. frame_height = xd->cur_buf->y_height;
  126. } else {
  127. frame_width = xd->cur_buf->uv_width;
  128. frame_height = xd->cur_buf->uv_height;
  129. }
  130. // Get block position in current frame.
  131. x0 = (-xd->mb_to_left_edge >> (3 + pd->subsampling_x)) + x;
  132. y0 = (-xd->mb_to_top_edge >> (3 + pd->subsampling_y)) + y;
  133. // NEED_LEFT
  134. if (need_left) {
  135. if (left_available) {
  136. if (xd->mb_to_bottom_edge < 0) {
  137. /* slower path if the block needs border extension */
  138. if (y0 + bs <= frame_height) {
  139. for (i = 0; i < bs; ++i) left_col[i] = ref[i * ref_stride - 1];
  140. } else {
  141. const int extend_bottom = frame_height - y0;
  142. for (i = 0; i < extend_bottom; ++i)
  143. left_col[i] = ref[i * ref_stride - 1];
  144. for (; i < bs; ++i)
  145. left_col[i] = ref[(extend_bottom - 1) * ref_stride - 1];
  146. }
  147. } else {
  148. /* faster path if the block does not need extension */
  149. for (i = 0; i < bs; ++i) left_col[i] = ref[i * ref_stride - 1];
  150. }
  151. } else {
  152. vpx_memset16(left_col, base + 1, bs);
  153. }
  154. }
  155. // NEED_ABOVE
  156. if (need_above) {
  157. if (up_available) {
  158. const uint16_t *above_ref = ref - ref_stride;
  159. if (xd->mb_to_right_edge < 0) {
  160. /* slower path if the block needs border extension */
  161. if (x0 + bs <= frame_width) {
  162. memcpy(above_row, above_ref, bs * sizeof(above_row[0]));
  163. } else if (x0 <= frame_width) {
  164. const int r = frame_width - x0;
  165. memcpy(above_row, above_ref, r * sizeof(above_row[0]));
  166. vpx_memset16(above_row + r, above_row[r - 1], x0 + bs - frame_width);
  167. }
  168. } else {
  169. /* faster path if the block does not need extension */
  170. if (bs == 4 && right_available && left_available) {
  171. const_above_row = above_ref;
  172. } else {
  173. memcpy(above_row, above_ref, bs * sizeof(above_row[0]));
  174. }
  175. }
  176. above_row[-1] = left_available ? above_ref[-1] : (base + 1);
  177. } else {
  178. vpx_memset16(above_row, base - 1, bs);
  179. above_row[-1] = base - 1;
  180. }
  181. }
  182. // NEED_ABOVERIGHT
  183. if (need_aboveright) {
  184. if (up_available) {
  185. const uint16_t *above_ref = ref - ref_stride;
  186. if (xd->mb_to_right_edge < 0) {
  187. /* slower path if the block needs border extension */
  188. if (x0 + 2 * bs <= frame_width) {
  189. if (right_available && bs == 4) {
  190. memcpy(above_row, above_ref, 2 * bs * sizeof(above_row[0]));
  191. } else {
  192. memcpy(above_row, above_ref, bs * sizeof(above_row[0]));
  193. vpx_memset16(above_row + bs, above_row[bs - 1], bs);
  194. }
  195. } else if (x0 + bs <= frame_width) {
  196. const int r = frame_width - x0;
  197. if (right_available && bs == 4) {
  198. memcpy(above_row, above_ref, r * sizeof(above_row[0]));
  199. vpx_memset16(above_row + r, above_row[r - 1],
  200. x0 + 2 * bs - frame_width);
  201. } else {
  202. memcpy(above_row, above_ref, bs * sizeof(above_row[0]));
  203. vpx_memset16(above_row + bs, above_row[bs - 1], bs);
  204. }
  205. } else if (x0 <= frame_width) {
  206. const int r = frame_width - x0;
  207. memcpy(above_row, above_ref, r * sizeof(above_row[0]));
  208. vpx_memset16(above_row + r, above_row[r - 1],
  209. x0 + 2 * bs - frame_width);
  210. }
  211. above_row[-1] = left_available ? above_ref[-1] : (base + 1);
  212. } else {
  213. /* faster path if the block does not need extension */
  214. if (bs == 4 && right_available && left_available) {
  215. const_above_row = above_ref;
  216. } else {
  217. memcpy(above_row, above_ref, bs * sizeof(above_row[0]));
  218. if (bs == 4 && right_available)
  219. memcpy(above_row + bs, above_ref + bs, bs * sizeof(above_row[0]));
  220. else
  221. vpx_memset16(above_row + bs, above_row[bs - 1], bs);
  222. above_row[-1] = left_available ? above_ref[-1] : (base + 1);
  223. }
  224. }
  225. } else {
  226. vpx_memset16(above_row, base - 1, bs * 2);
  227. above_row[-1] = base - 1;
  228. }
  229. }
  230. // predict
  231. if (mode == DC_PRED) {
  232. dc_pred_high[left_available][up_available][tx_size](
  233. dst, dst_stride, const_above_row, left_col, xd->bd);
  234. } else {
  235. pred_high[mode][tx_size](dst, dst_stride, const_above_row, left_col,
  236. xd->bd);
  237. }
  238. }
  239. #endif // CONFIG_VP9_HIGHBITDEPTH
  240. static void build_intra_predictors(const MACROBLOCKD *xd, const uint8_t *ref,
  241. int ref_stride, uint8_t *dst, int dst_stride,
  242. PREDICTION_MODE mode, TX_SIZE tx_size,
  243. int up_available, int left_available,
  244. int right_available, int x, int y,
  245. int plane) {
  246. int i;
  247. DECLARE_ALIGNED(16, uint8_t, left_col[32]);
  248. DECLARE_ALIGNED(16, uint8_t, above_data[64 + 16]);
  249. uint8_t *above_row = above_data + 16;
  250. const uint8_t *const_above_row = above_row;
  251. const int bs = 4 << tx_size;
  252. int frame_width, frame_height;
  253. int x0, y0;
  254. const struct macroblockd_plane *const pd = &xd->plane[plane];
  255. // 127 127 127 .. 127 127 127 127 127 127
  256. // 129 A B .. Y Z
  257. // 129 C D .. W X
  258. // 129 E F .. U V
  259. // 129 G H .. S T T T T T
  260. // ..
  261. // Get current frame pointer, width and height.
  262. if (plane == 0) {
  263. frame_width = xd->cur_buf->y_width;
  264. frame_height = xd->cur_buf->y_height;
  265. } else {
  266. frame_width = xd->cur_buf->uv_width;
  267. frame_height = xd->cur_buf->uv_height;
  268. }
  269. // Get block position in current frame.
  270. x0 = (-xd->mb_to_left_edge >> (3 + pd->subsampling_x)) + x;
  271. y0 = (-xd->mb_to_top_edge >> (3 + pd->subsampling_y)) + y;
  272. // NEED_LEFT
  273. if (extend_modes[mode] & NEED_LEFT) {
  274. if (left_available) {
  275. if (xd->mb_to_bottom_edge < 0) {
  276. /* slower path if the block needs border extension */
  277. if (y0 + bs <= frame_height) {
  278. for (i = 0; i < bs; ++i) left_col[i] = ref[i * ref_stride - 1];
  279. } else {
  280. const int extend_bottom = frame_height - y0;
  281. for (i = 0; i < extend_bottom; ++i)
  282. left_col[i] = ref[i * ref_stride - 1];
  283. for (; i < bs; ++i)
  284. left_col[i] = ref[(extend_bottom - 1) * ref_stride - 1];
  285. }
  286. } else {
  287. /* faster path if the block does not need extension */
  288. for (i = 0; i < bs; ++i) left_col[i] = ref[i * ref_stride - 1];
  289. }
  290. } else {
  291. memset(left_col, 129, bs);
  292. }
  293. }
  294. // NEED_ABOVE
  295. if (extend_modes[mode] & NEED_ABOVE) {
  296. if (up_available) {
  297. const uint8_t *above_ref = ref - ref_stride;
  298. if (xd->mb_to_right_edge < 0) {
  299. /* slower path if the block needs border extension */
  300. if (x0 + bs <= frame_width) {
  301. memcpy(above_row, above_ref, bs);
  302. } else if (x0 <= frame_width) {
  303. const int r = frame_width - x0;
  304. memcpy(above_row, above_ref, r);
  305. memset(above_row + r, above_row[r - 1], x0 + bs - frame_width);
  306. }
  307. } else {
  308. /* faster path if the block does not need extension */
  309. if (bs == 4 && right_available && left_available) {
  310. const_above_row = above_ref;
  311. } else {
  312. memcpy(above_row, above_ref, bs);
  313. }
  314. }
  315. above_row[-1] = left_available ? above_ref[-1] : 129;
  316. } else {
  317. memset(above_row, 127, bs);
  318. above_row[-1] = 127;
  319. }
  320. }
  321. // NEED_ABOVERIGHT
  322. if (extend_modes[mode] & NEED_ABOVERIGHT) {
  323. if (up_available) {
  324. const uint8_t *above_ref = ref - ref_stride;
  325. if (xd->mb_to_right_edge < 0) {
  326. /* slower path if the block needs border extension */
  327. if (x0 + 2 * bs <= frame_width) {
  328. if (right_available && bs == 4) {
  329. memcpy(above_row, above_ref, 2 * bs);
  330. } else {
  331. memcpy(above_row, above_ref, bs);
  332. memset(above_row + bs, above_row[bs - 1], bs);
  333. }
  334. } else if (x0 + bs <= frame_width) {
  335. const int r = frame_width - x0;
  336. if (right_available && bs == 4) {
  337. memcpy(above_row, above_ref, r);
  338. memset(above_row + r, above_row[r - 1], x0 + 2 * bs - frame_width);
  339. } else {
  340. memcpy(above_row, above_ref, bs);
  341. memset(above_row + bs, above_row[bs - 1], bs);
  342. }
  343. } else if (x0 <= frame_width) {
  344. const int r = frame_width - x0;
  345. memcpy(above_row, above_ref, r);
  346. memset(above_row + r, above_row[r - 1], x0 + 2 * bs - frame_width);
  347. }
  348. } else {
  349. /* faster path if the block does not need extension */
  350. if (bs == 4 && right_available && left_available) {
  351. const_above_row = above_ref;
  352. } else {
  353. memcpy(above_row, above_ref, bs);
  354. if (bs == 4 && right_available)
  355. memcpy(above_row + bs, above_ref + bs, bs);
  356. else
  357. memset(above_row + bs, above_row[bs - 1], bs);
  358. }
  359. }
  360. above_row[-1] = left_available ? above_ref[-1] : 129;
  361. } else {
  362. memset(above_row, 127, bs * 2);
  363. above_row[-1] = 127;
  364. }
  365. }
  366. // predict
  367. if (mode == DC_PRED) {
  368. dc_pred[left_available][up_available][tx_size](dst, dst_stride,
  369. const_above_row, left_col);
  370. } else {
  371. pred[mode][tx_size](dst, dst_stride, const_above_row, left_col);
  372. }
  373. }
  374. void vp9_predict_intra_block(const MACROBLOCKD *xd, int bwl_in, TX_SIZE tx_size,
  375. PREDICTION_MODE mode, const uint8_t *ref,
  376. int ref_stride, uint8_t *dst, int dst_stride,
  377. int aoff, int loff, int plane) {
  378. const int bw = (1 << bwl_in);
  379. const int txw = (1 << tx_size);
  380. const int have_top = loff || (xd->above_mi != NULL);
  381. const int have_left = aoff || (xd->left_mi != NULL);
  382. const int have_right = (aoff + txw) < bw;
  383. const int x = aoff * 4;
  384. const int y = loff * 4;
  385. #if CONFIG_VP9_HIGHBITDEPTH
  386. if (xd->cur_buf->flags & YV12_FLAG_HIGHBITDEPTH) {
  387. build_intra_predictors_high(xd, ref, ref_stride, dst, dst_stride, mode,
  388. tx_size, have_top, have_left, have_right, x, y,
  389. plane, xd->bd);
  390. return;
  391. }
  392. #endif
  393. build_intra_predictors(xd, ref, ref_stride, dst, dst_stride, mode, tx_size,
  394. have_top, have_left, have_right, x, y, plane);
  395. }
  396. void vp9_init_intra_predictors(void) {
  397. once(vp9_init_intra_predictors_internal);
  398. }