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  1. /*
  2. * Copyright (C) 2001-2003 Michael Niedermayer <michaelni@gmx.at>
  3. *
  4. * This file is part of FFmpeg.
  5. *
  6. * FFmpeg is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU Lesser General Public
  8. * License as published by the Free Software Foundation; either
  9. * version 2.1 of the License, or (at your option) any later version.
  10. *
  11. * FFmpeg is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  14. * Lesser General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU Lesser General Public
  17. * License along with FFmpeg; if not, write to the Free Software
  18. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  19. */
  20. #include "config.h"
  21. #define _SVID_SOURCE // needed for MAP_ANONYMOUS
  22. #define _DARWIN_C_SOURCE // needed for MAP_ANON
  23. #include <inttypes.h>
  24. #include <math.h>
  25. #include <stdio.h>
  26. #include <string.h>
  27. #if HAVE_SYS_MMAN_H
  28. #include <sys/mman.h>
  29. #if defined(MAP_ANON) && !defined(MAP_ANONYMOUS)
  30. #define MAP_ANONYMOUS MAP_ANON
  31. #endif
  32. #endif
  33. #if HAVE_VIRTUALALLOC
  34. #define WIN32_LEAN_AND_MEAN
  35. #include <windows.h>
  36. #endif
  37. #include "libavutil/attributes.h"
  38. #include "libavutil/avassert.h"
  39. #include "libavutil/avutil.h"
  40. #include "libavutil/bswap.h"
  41. #include "libavutil/cpu.h"
  42. #include "libavutil/intreadwrite.h"
  43. #include "libavutil/mathematics.h"
  44. #include "libavutil/opt.h"
  45. #include "libavutil/pixdesc.h"
  46. #include "libavutil/x86/asm.h"
  47. #include "libavutil/x86/cpu.h"
  48. #include "rgb2rgb.h"
  49. #include "swscale.h"
  50. #include "swscale_internal.h"
  51. unsigned swscale_version(void)
  52. {
  53. av_assert0(LIBSWSCALE_VERSION_MICRO >= 100);
  54. return LIBSWSCALE_VERSION_INT;
  55. }
  56. const char *swscale_configuration(void)
  57. {
  58. return FFMPEG_CONFIGURATION;
  59. }
  60. const char *swscale_license(void)
  61. {
  62. #define LICENSE_PREFIX "libswscale license: "
  63. return LICENSE_PREFIX FFMPEG_LICENSE + sizeof(LICENSE_PREFIX) - 1;
  64. }
  65. #define RET 0xC3 // near return opcode for x86
  66. typedef struct FormatEntry {
  67. int is_supported_in, is_supported_out;
  68. } FormatEntry;
  69. static const FormatEntry format_entries[AV_PIX_FMT_NB] = {
  70. [AV_PIX_FMT_YUV420P] = { 1, 1 },
  71. [AV_PIX_FMT_YUYV422] = { 1, 1 },
  72. [AV_PIX_FMT_RGB24] = { 1, 1 },
  73. [AV_PIX_FMT_BGR24] = { 1, 1 },
  74. [AV_PIX_FMT_YUV422P] = { 1, 1 },
  75. [AV_PIX_FMT_YUV444P] = { 1, 1 },
  76. [AV_PIX_FMT_YUV410P] = { 1, 1 },
  77. [AV_PIX_FMT_YUV411P] = { 1, 1 },
  78. [AV_PIX_FMT_GRAY8] = { 1, 1 },
  79. [AV_PIX_FMT_MONOWHITE] = { 1, 1 },
  80. [AV_PIX_FMT_MONOBLACK] = { 1, 1 },
  81. [AV_PIX_FMT_PAL8] = { 1, 0 },
  82. [AV_PIX_FMT_YUVJ420P] = { 1, 1 },
  83. [AV_PIX_FMT_YUVJ422P] = { 1, 1 },
  84. [AV_PIX_FMT_YUVJ444P] = { 1, 1 },
  85. [AV_PIX_FMT_UYVY422] = { 1, 1 },
  86. [AV_PIX_FMT_UYYVYY411] = { 0, 0 },
  87. [AV_PIX_FMT_BGR8] = { 1, 1 },
  88. [AV_PIX_FMT_BGR4] = { 0, 1 },
  89. [AV_PIX_FMT_BGR4_BYTE] = { 1, 1 },
  90. [AV_PIX_FMT_RGB8] = { 1, 1 },
  91. [AV_PIX_FMT_RGB4] = { 0, 1 },
  92. [AV_PIX_FMT_RGB4_BYTE] = { 1, 1 },
  93. [AV_PIX_FMT_NV12] = { 1, 1 },
  94. [AV_PIX_FMT_NV21] = { 1, 1 },
  95. [AV_PIX_FMT_ARGB] = { 1, 1 },
  96. [AV_PIX_FMT_RGBA] = { 1, 1 },
  97. [AV_PIX_FMT_ABGR] = { 1, 1 },
  98. [AV_PIX_FMT_BGRA] = { 1, 1 },
  99. [AV_PIX_FMT_0RGB] = { 1, 1 },
  100. [AV_PIX_FMT_RGB0] = { 1, 1 },
  101. [AV_PIX_FMT_0BGR] = { 1, 1 },
  102. [AV_PIX_FMT_BGR0] = { 1, 1 },
  103. [AV_PIX_FMT_GRAY16BE] = { 1, 1 },
  104. [AV_PIX_FMT_GRAY16LE] = { 1, 1 },
  105. [AV_PIX_FMT_YUV440P] = { 1, 1 },
  106. [AV_PIX_FMT_YUVJ440P] = { 1, 1 },
  107. [AV_PIX_FMT_YUVA420P] = { 1, 1 },
  108. [AV_PIX_FMT_YUVA422P] = { 1, 1 },
  109. [AV_PIX_FMT_YUVA444P] = { 1, 1 },
  110. [AV_PIX_FMT_YUVA420P9BE] = { 1, 1 },
  111. [AV_PIX_FMT_YUVA420P9LE] = { 1, 1 },
  112. [AV_PIX_FMT_YUVA422P9BE] = { 1, 1 },
  113. [AV_PIX_FMT_YUVA422P9LE] = { 1, 1 },
  114. [AV_PIX_FMT_YUVA444P9BE] = { 1, 1 },
  115. [AV_PIX_FMT_YUVA444P9LE] = { 1, 1 },
  116. [AV_PIX_FMT_YUVA420P10BE]= { 1, 1 },
  117. [AV_PIX_FMT_YUVA420P10LE]= { 1, 1 },
  118. [AV_PIX_FMT_YUVA422P10BE]= { 1, 1 },
  119. [AV_PIX_FMT_YUVA422P10LE]= { 1, 1 },
  120. [AV_PIX_FMT_YUVA444P10BE]= { 1, 1 },
  121. [AV_PIX_FMT_YUVA444P10LE]= { 1, 1 },
  122. [AV_PIX_FMT_YUVA420P16BE]= { 1, 1 },
  123. [AV_PIX_FMT_YUVA420P16LE]= { 1, 1 },
  124. [AV_PIX_FMT_YUVA422P16BE]= { 1, 1 },
  125. [AV_PIX_FMT_YUVA422P16LE]= { 1, 1 },
  126. [AV_PIX_FMT_YUVA444P16BE]= { 1, 1 },
  127. [AV_PIX_FMT_YUVA444P16LE]= { 1, 1 },
  128. [AV_PIX_FMT_RGB48BE] = { 1, 1 },
  129. [AV_PIX_FMT_RGB48LE] = { 1, 1 },
  130. [AV_PIX_FMT_RGBA64BE] = { 1, 0 },
  131. [AV_PIX_FMT_RGBA64LE] = { 1, 0 },
  132. [AV_PIX_FMT_RGB565BE] = { 1, 1 },
  133. [AV_PIX_FMT_RGB565LE] = { 1, 1 },
  134. [AV_PIX_FMT_RGB555BE] = { 1, 1 },
  135. [AV_PIX_FMT_RGB555LE] = { 1, 1 },
  136. [AV_PIX_FMT_BGR565BE] = { 1, 1 },
  137. [AV_PIX_FMT_BGR565LE] = { 1, 1 },
  138. [AV_PIX_FMT_BGR555BE] = { 1, 1 },
  139. [AV_PIX_FMT_BGR555LE] = { 1, 1 },
  140. [AV_PIX_FMT_YUV420P16LE] = { 1, 1 },
  141. [AV_PIX_FMT_YUV420P16BE] = { 1, 1 },
  142. [AV_PIX_FMT_YUV422P16LE] = { 1, 1 },
  143. [AV_PIX_FMT_YUV422P16BE] = { 1, 1 },
  144. [AV_PIX_FMT_YUV444P16LE] = { 1, 1 },
  145. [AV_PIX_FMT_YUV444P16BE] = { 1, 1 },
  146. [AV_PIX_FMT_RGB444LE] = { 1, 1 },
  147. [AV_PIX_FMT_RGB444BE] = { 1, 1 },
  148. [AV_PIX_FMT_BGR444LE] = { 1, 1 },
  149. [AV_PIX_FMT_BGR444BE] = { 1, 1 },
  150. [AV_PIX_FMT_Y400A] = { 1, 0 },
  151. [AV_PIX_FMT_BGR48BE] = { 1, 1 },
  152. [AV_PIX_FMT_BGR48LE] = { 1, 1 },
  153. [AV_PIX_FMT_BGRA64BE] = { 0, 0 },
  154. [AV_PIX_FMT_BGRA64LE] = { 0, 0 },
  155. [AV_PIX_FMT_YUV420P9BE] = { 1, 1 },
  156. [AV_PIX_FMT_YUV420P9LE] = { 1, 1 },
  157. [AV_PIX_FMT_YUV420P10BE] = { 1, 1 },
  158. [AV_PIX_FMT_YUV420P10LE] = { 1, 1 },
  159. [AV_PIX_FMT_YUV420P12BE] = { 1, 1 },
  160. [AV_PIX_FMT_YUV420P12LE] = { 1, 1 },
  161. [AV_PIX_FMT_YUV420P14BE] = { 1, 1 },
  162. [AV_PIX_FMT_YUV420P14LE] = { 1, 1 },
  163. [AV_PIX_FMT_YUV422P9BE] = { 1, 1 },
  164. [AV_PIX_FMT_YUV422P9LE] = { 1, 1 },
  165. [AV_PIX_FMT_YUV422P10BE] = { 1, 1 },
  166. [AV_PIX_FMT_YUV422P10LE] = { 1, 1 },
  167. [AV_PIX_FMT_YUV422P12BE] = { 1, 1 },
  168. [AV_PIX_FMT_YUV422P12LE] = { 1, 1 },
  169. [AV_PIX_FMT_YUV422P14BE] = { 1, 1 },
  170. [AV_PIX_FMT_YUV422P14LE] = { 1, 1 },
  171. [AV_PIX_FMT_YUV444P9BE] = { 1, 1 },
  172. [AV_PIX_FMT_YUV444P9LE] = { 1, 1 },
  173. [AV_PIX_FMT_YUV444P10BE] = { 1, 1 },
  174. [AV_PIX_FMT_YUV444P10LE] = { 1, 1 },
  175. [AV_PIX_FMT_YUV444P12BE] = { 1, 1 },
  176. [AV_PIX_FMT_YUV444P12LE] = { 1, 1 },
  177. [AV_PIX_FMT_YUV444P14BE] = { 1, 1 },
  178. [AV_PIX_FMT_YUV444P14LE] = { 1, 1 },
  179. [AV_PIX_FMT_GBRP] = { 1, 1 },
  180. [AV_PIX_FMT_GBRP9LE] = { 1, 1 },
  181. [AV_PIX_FMT_GBRP9BE] = { 1, 1 },
  182. [AV_PIX_FMT_GBRP10LE] = { 1, 1 },
  183. [AV_PIX_FMT_GBRP10BE] = { 1, 1 },
  184. [AV_PIX_FMT_GBRP12LE] = { 1, 1 },
  185. [AV_PIX_FMT_GBRP12BE] = { 1, 1 },
  186. [AV_PIX_FMT_GBRP14LE] = { 1, 1 },
  187. [AV_PIX_FMT_GBRP14BE] = { 1, 1 },
  188. [AV_PIX_FMT_GBRP16LE] = { 1, 0 },
  189. [AV_PIX_FMT_GBRP16BE] = { 1, 0 },
  190. };
  191. int sws_isSupportedInput(enum AVPixelFormat pix_fmt)
  192. {
  193. return (unsigned)pix_fmt < AV_PIX_FMT_NB ?
  194. format_entries[pix_fmt].is_supported_in : 0;
  195. }
  196. int sws_isSupportedOutput(enum AVPixelFormat pix_fmt)
  197. {
  198. return (unsigned)pix_fmt < AV_PIX_FMT_NB ?
  199. format_entries[pix_fmt].is_supported_out : 0;
  200. }
  201. extern const int32_t ff_yuv2rgb_coeffs[8][4];
  202. #if FF_API_SWS_FORMAT_NAME
  203. const char *sws_format_name(enum AVPixelFormat format)
  204. {
  205. const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(format);
  206. if (desc)
  207. return desc->name;
  208. else
  209. return "Unknown format";
  210. }
  211. #endif
  212. static double getSplineCoeff(double a, double b, double c, double d,
  213. double dist)
  214. {
  215. if (dist <= 1.0)
  216. return ((d * dist + c) * dist + b) * dist + a;
  217. else
  218. return getSplineCoeff(0.0,
  219. b + 2.0 * c + 3.0 * d,
  220. c + 3.0 * d,
  221. -b - 3.0 * c - 6.0 * d,
  222. dist - 1.0);
  223. }
  224. static int initFilter(int16_t **outFilter, int32_t **filterPos,
  225. int *outFilterSize, int xInc, int srcW, int dstW,
  226. int filterAlign, int one, int flags, int cpu_flags,
  227. SwsVector *srcFilter, SwsVector *dstFilter,
  228. double param[2])
  229. {
  230. int i;
  231. int filterSize;
  232. int filter2Size;
  233. int minFilterSize;
  234. int64_t *filter = NULL;
  235. int64_t *filter2 = NULL;
  236. const int64_t fone = 1LL << (54 - FFMIN(av_log2(srcW/dstW), 8));
  237. int ret = -1;
  238. emms_c(); // FIXME should not be required but IS (even for non-MMX versions)
  239. // NOTE: the +3 is for the MMX(+1) / SSE(+3) scaler which reads over the end
  240. FF_ALLOC_OR_GOTO(NULL, *filterPos, (dstW + 3) * sizeof(**filterPos), fail);
  241. if (FFABS(xInc - 0x10000) < 10) { // unscaled
  242. int i;
  243. filterSize = 1;
  244. FF_ALLOCZ_OR_GOTO(NULL, filter,
  245. dstW * sizeof(*filter) * filterSize, fail);
  246. for (i = 0; i < dstW; i++) {
  247. filter[i * filterSize] = fone;
  248. (*filterPos)[i] = i;
  249. }
  250. } else if (flags & SWS_POINT) { // lame looking point sampling mode
  251. int i;
  252. int64_t xDstInSrc;
  253. filterSize = 1;
  254. FF_ALLOC_OR_GOTO(NULL, filter,
  255. dstW * sizeof(*filter) * filterSize, fail);
  256. xDstInSrc = xInc / 2 - 0x8000;
  257. for (i = 0; i < dstW; i++) {
  258. int xx = (xDstInSrc - ((filterSize - 1) << 15) + (1 << 15)) >> 16;
  259. (*filterPos)[i] = xx;
  260. filter[i] = fone;
  261. xDstInSrc += xInc;
  262. }
  263. } else if ((xInc <= (1 << 16) && (flags & SWS_AREA)) ||
  264. (flags & SWS_FAST_BILINEAR)) { // bilinear upscale
  265. int i;
  266. int64_t xDstInSrc;
  267. filterSize = 2;
  268. FF_ALLOC_OR_GOTO(NULL, filter,
  269. dstW * sizeof(*filter) * filterSize, fail);
  270. xDstInSrc = xInc / 2 - 0x8000;
  271. for (i = 0; i < dstW; i++) {
  272. int xx = (xDstInSrc - ((filterSize - 1) << 15) + (1 << 15)) >> 16;
  273. int j;
  274. (*filterPos)[i] = xx;
  275. // bilinear upscale / linear interpolate / area averaging
  276. for (j = 0; j < filterSize; j++) {
  277. int64_t coeff= fone - FFABS(((int64_t)xx<<16) - xDstInSrc)*(fone>>16);
  278. if (coeff < 0)
  279. coeff = 0;
  280. filter[i * filterSize + j] = coeff;
  281. xx++;
  282. }
  283. xDstInSrc += xInc;
  284. }
  285. } else {
  286. int64_t xDstInSrc;
  287. int sizeFactor;
  288. if (flags & SWS_BICUBIC)
  289. sizeFactor = 4;
  290. else if (flags & SWS_X)
  291. sizeFactor = 8;
  292. else if (flags & SWS_AREA)
  293. sizeFactor = 1; // downscale only, for upscale it is bilinear
  294. else if (flags & SWS_GAUSS)
  295. sizeFactor = 8; // infinite ;)
  296. else if (flags & SWS_LANCZOS)
  297. sizeFactor = param[0] != SWS_PARAM_DEFAULT ? ceil(2 * param[0]) : 6;
  298. else if (flags & SWS_SINC)
  299. sizeFactor = 20; // infinite ;)
  300. else if (flags & SWS_SPLINE)
  301. sizeFactor = 20; // infinite ;)
  302. else if (flags & SWS_BILINEAR)
  303. sizeFactor = 2;
  304. else {
  305. av_assert0(0);
  306. }
  307. if (xInc <= 1 << 16)
  308. filterSize = 1 + sizeFactor; // upscale
  309. else
  310. filterSize = 1 + (sizeFactor * srcW + dstW - 1) / dstW;
  311. filterSize = FFMIN(filterSize, srcW - 2);
  312. filterSize = FFMAX(filterSize, 1);
  313. FF_ALLOC_OR_GOTO(NULL, filter,
  314. dstW * sizeof(*filter) * filterSize, fail);
  315. xDstInSrc = xInc - 0x10000;
  316. for (i = 0; i < dstW; i++) {
  317. int xx = (xDstInSrc - ((filterSize - 2) << 16)) / (1 << 17);
  318. int j;
  319. (*filterPos)[i] = xx;
  320. for (j = 0; j < filterSize; j++) {
  321. int64_t d = (FFABS(((int64_t)xx << 17) - xDstInSrc)) << 13;
  322. double floatd;
  323. int64_t coeff;
  324. if (xInc > 1 << 16)
  325. d = d * dstW / srcW;
  326. floatd = d * (1.0 / (1 << 30));
  327. if (flags & SWS_BICUBIC) {
  328. int64_t B = (param[0] != SWS_PARAM_DEFAULT ? param[0] : 0) * (1 << 24);
  329. int64_t C = (param[1] != SWS_PARAM_DEFAULT ? param[1] : 0.6) * (1 << 24);
  330. if (d >= 1LL << 31) {
  331. coeff = 0.0;
  332. } else {
  333. int64_t dd = (d * d) >> 30;
  334. int64_t ddd = (dd * d) >> 30;
  335. if (d < 1LL << 30)
  336. coeff = (12 * (1 << 24) - 9 * B - 6 * C) * ddd +
  337. (-18 * (1 << 24) + 12 * B + 6 * C) * dd +
  338. (6 * (1 << 24) - 2 * B) * (1 << 30);
  339. else
  340. coeff = (-B - 6 * C) * ddd +
  341. (6 * B + 30 * C) * dd +
  342. (-12 * B - 48 * C) * d +
  343. (8 * B + 24 * C) * (1 << 30);
  344. }
  345. coeff /= (1LL<<54)/fone;
  346. }
  347. #if 0
  348. else if (flags & SWS_X) {
  349. double p = param ? param * 0.01 : 0.3;
  350. coeff = d ? sin(d * M_PI) / (d * M_PI) : 1.0;
  351. coeff *= pow(2.0, -p * d * d);
  352. }
  353. #endif
  354. else if (flags & SWS_X) {
  355. double A = param[0] != SWS_PARAM_DEFAULT ? param[0] : 1.0;
  356. double c;
  357. if (floatd < 1.0)
  358. c = cos(floatd * M_PI);
  359. else
  360. c = -1.0;
  361. if (c < 0.0)
  362. c = -pow(-c, A);
  363. else
  364. c = pow(c, A);
  365. coeff = (c * 0.5 + 0.5) * fone;
  366. } else if (flags & SWS_AREA) {
  367. int64_t d2 = d - (1 << 29);
  368. if (d2 * xInc < -(1LL << (29 + 16)))
  369. coeff = 1.0 * (1LL << (30 + 16));
  370. else if (d2 * xInc < (1LL << (29 + 16)))
  371. coeff = -d2 * xInc + (1LL << (29 + 16));
  372. else
  373. coeff = 0.0;
  374. coeff *= fone >> (30 + 16);
  375. } else if (flags & SWS_GAUSS) {
  376. double p = param[0] != SWS_PARAM_DEFAULT ? param[0] : 3.0;
  377. coeff = (pow(2.0, -p * floatd * floatd)) * fone;
  378. } else if (flags & SWS_SINC) {
  379. coeff = (d ? sin(floatd * M_PI) / (floatd * M_PI) : 1.0) * fone;
  380. } else if (flags & SWS_LANCZOS) {
  381. double p = param[0] != SWS_PARAM_DEFAULT ? param[0] : 3.0;
  382. coeff = (d ? sin(floatd * M_PI) * sin(floatd * M_PI / p) /
  383. (floatd * floatd * M_PI * M_PI / p) : 1.0) * fone;
  384. if (floatd > p)
  385. coeff = 0;
  386. } else if (flags & SWS_BILINEAR) {
  387. coeff = (1 << 30) - d;
  388. if (coeff < 0)
  389. coeff = 0;
  390. coeff *= fone >> 30;
  391. } else if (flags & SWS_SPLINE) {
  392. double p = -2.196152422706632;
  393. coeff = getSplineCoeff(1.0, 0.0, p, -p - 1.0, floatd) * fone;
  394. } else {
  395. av_assert0(0);
  396. }
  397. filter[i * filterSize + j] = coeff;
  398. xx++;
  399. }
  400. xDstInSrc += 2 * xInc;
  401. }
  402. }
  403. /* apply src & dst Filter to filter -> filter2
  404. * av_free(filter);
  405. */
  406. av_assert0(filterSize > 0);
  407. filter2Size = filterSize;
  408. if (srcFilter)
  409. filter2Size += srcFilter->length - 1;
  410. if (dstFilter)
  411. filter2Size += dstFilter->length - 1;
  412. av_assert0(filter2Size > 0);
  413. FF_ALLOCZ_OR_GOTO(NULL, filter2, filter2Size * dstW * sizeof(*filter2), fail);
  414. for (i = 0; i < dstW; i++) {
  415. int j, k;
  416. if (srcFilter) {
  417. for (k = 0; k < srcFilter->length; k++) {
  418. for (j = 0; j < filterSize; j++)
  419. filter2[i * filter2Size + k + j] +=
  420. srcFilter->coeff[k] * filter[i * filterSize + j];
  421. }
  422. } else {
  423. for (j = 0; j < filterSize; j++)
  424. filter2[i * filter2Size + j] = filter[i * filterSize + j];
  425. }
  426. // FIXME dstFilter
  427. (*filterPos)[i] += (filterSize - 1) / 2 - (filter2Size - 1) / 2;
  428. }
  429. av_freep(&filter);
  430. /* try to reduce the filter-size (step1 find size and shift left) */
  431. // Assume it is near normalized (*0.5 or *2.0 is OK but * 0.001 is not).
  432. minFilterSize = 0;
  433. for (i = dstW - 1; i >= 0; i--) {
  434. int min = filter2Size;
  435. int j;
  436. int64_t cutOff = 0.0;
  437. /* get rid of near zero elements on the left by shifting left */
  438. for (j = 0; j < filter2Size; j++) {
  439. int k;
  440. cutOff += FFABS(filter2[i * filter2Size]);
  441. if (cutOff > SWS_MAX_REDUCE_CUTOFF * fone)
  442. break;
  443. /* preserve monotonicity because the core can't handle the
  444. * filter otherwise */
  445. if (i < dstW - 1 && (*filterPos)[i] >= (*filterPos)[i + 1])
  446. break;
  447. // move filter coefficients left
  448. for (k = 1; k < filter2Size; k++)
  449. filter2[i * filter2Size + k - 1] = filter2[i * filter2Size + k];
  450. filter2[i * filter2Size + k - 1] = 0;
  451. (*filterPos)[i]++;
  452. }
  453. cutOff = 0;
  454. /* count near zeros on the right */
  455. for (j = filter2Size - 1; j > 0; j--) {
  456. cutOff += FFABS(filter2[i * filter2Size + j]);
  457. if (cutOff > SWS_MAX_REDUCE_CUTOFF * fone)
  458. break;
  459. min--;
  460. }
  461. if (min > minFilterSize)
  462. minFilterSize = min;
  463. }
  464. if (HAVE_ALTIVEC && cpu_flags & AV_CPU_FLAG_ALTIVEC) {
  465. // we can handle the special case 4, so we don't want to go the full 8
  466. if (minFilterSize < 5)
  467. filterAlign = 4;
  468. /* We really don't want to waste our time doing useless computation, so
  469. * fall back on the scalar C code for very small filters.
  470. * Vectorizing is worth it only if you have a decent-sized vector. */
  471. if (minFilterSize < 3)
  472. filterAlign = 1;
  473. }
  474. if (INLINE_MMX(cpu_flags)) {
  475. // special case for unscaled vertical filtering
  476. if (minFilterSize == 1 && filterAlign == 2)
  477. filterAlign = 1;
  478. }
  479. av_assert0(minFilterSize > 0);
  480. filterSize = (minFilterSize + (filterAlign - 1)) & (~(filterAlign - 1));
  481. av_assert0(filterSize > 0);
  482. filter = av_malloc(filterSize * dstW * sizeof(*filter));
  483. if (filterSize >= MAX_FILTER_SIZE * 16 /
  484. ((flags & SWS_ACCURATE_RND) ? APCK_SIZE : 16) || !filter) {
  485. av_log(NULL, AV_LOG_ERROR, "sws: filterSize %d is too large, try less extreem scaling or increase MAX_FILTER_SIZE and recompile\n", filterSize);
  486. goto fail;
  487. }
  488. *outFilterSize = filterSize;
  489. if (flags & SWS_PRINT_INFO)
  490. av_log(NULL, AV_LOG_VERBOSE,
  491. "SwScaler: reducing / aligning filtersize %d -> %d\n",
  492. filter2Size, filterSize);
  493. /* try to reduce the filter-size (step2 reduce it) */
  494. for (i = 0; i < dstW; i++) {
  495. int j;
  496. for (j = 0; j < filterSize; j++) {
  497. if (j >= filter2Size)
  498. filter[i * filterSize + j] = 0;
  499. else
  500. filter[i * filterSize + j] = filter2[i * filter2Size + j];
  501. if ((flags & SWS_BITEXACT) && j >= minFilterSize)
  502. filter[i * filterSize + j] = 0;
  503. }
  504. }
  505. // FIXME try to align filterPos if possible
  506. // fix borders
  507. for (i = 0; i < dstW; i++) {
  508. int j;
  509. if ((*filterPos)[i] < 0) {
  510. // move filter coefficients left to compensate for filterPos
  511. for (j = 1; j < filterSize; j++) {
  512. int left = FFMAX(j + (*filterPos)[i], 0);
  513. filter[i * filterSize + left] += filter[i * filterSize + j];
  514. filter[i * filterSize + j] = 0;
  515. }
  516. (*filterPos)[i]= 0;
  517. }
  518. if ((*filterPos)[i] + filterSize > srcW) {
  519. int shift = (*filterPos)[i] + filterSize - srcW;
  520. // move filter coefficients right to compensate for filterPos
  521. for (j = filterSize - 2; j >= 0; j--) {
  522. int right = FFMIN(j + shift, filterSize - 1);
  523. filter[i * filterSize + right] += filter[i * filterSize + j];
  524. filter[i * filterSize + j] = 0;
  525. }
  526. (*filterPos)[i]= srcW - filterSize;
  527. }
  528. }
  529. // Note the +1 is for the MMX scaler which reads over the end
  530. /* align at 16 for AltiVec (needed by hScale_altivec_real) */
  531. FF_ALLOCZ_OR_GOTO(NULL, *outFilter,
  532. *outFilterSize * (dstW + 3) * sizeof(int16_t), fail);
  533. /* normalize & store in outFilter */
  534. for (i = 0; i < dstW; i++) {
  535. int j;
  536. int64_t error = 0;
  537. int64_t sum = 0;
  538. for (j = 0; j < filterSize; j++) {
  539. sum += filter[i * filterSize + j];
  540. }
  541. sum = (sum + one / 2) / one;
  542. for (j = 0; j < *outFilterSize; j++) {
  543. int64_t v = filter[i * filterSize + j] + error;
  544. int intV = ROUNDED_DIV(v, sum);
  545. (*outFilter)[i * (*outFilterSize) + j] = intV;
  546. error = v - intV * sum;
  547. }
  548. }
  549. (*filterPos)[dstW + 0] =
  550. (*filterPos)[dstW + 1] =
  551. (*filterPos)[dstW + 2] = (*filterPos)[dstW - 1]; /* the MMX/SSE scaler will
  552. * read over the end */
  553. for (i = 0; i < *outFilterSize; i++) {
  554. int k = (dstW - 1) * (*outFilterSize) + i;
  555. (*outFilter)[k + 1 * (*outFilterSize)] =
  556. (*outFilter)[k + 2 * (*outFilterSize)] =
  557. (*outFilter)[k + 3 * (*outFilterSize)] = (*outFilter)[k];
  558. }
  559. ret = 0;
  560. fail:
  561. if(ret < 0)
  562. av_log(NULL, AV_LOG_ERROR, "sws: initFilter failed\n");
  563. av_free(filter);
  564. av_free(filter2);
  565. return ret;
  566. }
  567. #if HAVE_MMXEXT_INLINE
  568. static int init_hscaler_mmxext(int dstW, int xInc, uint8_t *filterCode,
  569. int16_t *filter, int32_t *filterPos,
  570. int numSplits)
  571. {
  572. uint8_t *fragmentA;
  573. x86_reg imm8OfPShufW1A;
  574. x86_reg imm8OfPShufW2A;
  575. x86_reg fragmentLengthA;
  576. uint8_t *fragmentB;
  577. x86_reg imm8OfPShufW1B;
  578. x86_reg imm8OfPShufW2B;
  579. x86_reg fragmentLengthB;
  580. int fragmentPos;
  581. int xpos, i;
  582. // create an optimized horizontal scaling routine
  583. /* This scaler is made of runtime-generated MMXEXT code using specially tuned
  584. * pshufw instructions. For every four output pixels, if four input pixels
  585. * are enough for the fast bilinear scaling, then a chunk of fragmentB is
  586. * used. If five input pixels are needed, then a chunk of fragmentA is used.
  587. */
  588. // code fragment
  589. __asm__ volatile (
  590. "jmp 9f \n\t"
  591. // Begin
  592. "0: \n\t"
  593. "movq (%%"REG_d", %%"REG_a"), %%mm3 \n\t"
  594. "movd (%%"REG_c", %%"REG_S"), %%mm0 \n\t"
  595. "movd 1(%%"REG_c", %%"REG_S"), %%mm1 \n\t"
  596. "punpcklbw %%mm7, %%mm1 \n\t"
  597. "punpcklbw %%mm7, %%mm0 \n\t"
  598. "pshufw $0xFF, %%mm1, %%mm1 \n\t"
  599. "1: \n\t"
  600. "pshufw $0xFF, %%mm0, %%mm0 \n\t"
  601. "2: \n\t"
  602. "psubw %%mm1, %%mm0 \n\t"
  603. "movl 8(%%"REG_b", %%"REG_a"), %%esi \n\t"
  604. "pmullw %%mm3, %%mm0 \n\t"
  605. "psllw $7, %%mm1 \n\t"
  606. "paddw %%mm1, %%mm0 \n\t"
  607. "movq %%mm0, (%%"REG_D", %%"REG_a") \n\t"
  608. "add $8, %%"REG_a" \n\t"
  609. // End
  610. "9: \n\t"
  611. // "int $3 \n\t"
  612. "lea " LOCAL_MANGLE(0b) ", %0 \n\t"
  613. "lea " LOCAL_MANGLE(1b) ", %1 \n\t"
  614. "lea " LOCAL_MANGLE(2b) ", %2 \n\t"
  615. "dec %1 \n\t"
  616. "dec %2 \n\t"
  617. "sub %0, %1 \n\t"
  618. "sub %0, %2 \n\t"
  619. "lea " LOCAL_MANGLE(9b) ", %3 \n\t"
  620. "sub %0, %3 \n\t"
  621. : "=r" (fragmentA), "=r" (imm8OfPShufW1A), "=r" (imm8OfPShufW2A),
  622. "=r" (fragmentLengthA)
  623. );
  624. __asm__ volatile (
  625. "jmp 9f \n\t"
  626. // Begin
  627. "0: \n\t"
  628. "movq (%%"REG_d", %%"REG_a"), %%mm3 \n\t"
  629. "movd (%%"REG_c", %%"REG_S"), %%mm0 \n\t"
  630. "punpcklbw %%mm7, %%mm0 \n\t"
  631. "pshufw $0xFF, %%mm0, %%mm1 \n\t"
  632. "1: \n\t"
  633. "pshufw $0xFF, %%mm0, %%mm0 \n\t"
  634. "2: \n\t"
  635. "psubw %%mm1, %%mm0 \n\t"
  636. "movl 8(%%"REG_b", %%"REG_a"), %%esi \n\t"
  637. "pmullw %%mm3, %%mm0 \n\t"
  638. "psllw $7, %%mm1 \n\t"
  639. "paddw %%mm1, %%mm0 \n\t"
  640. "movq %%mm0, (%%"REG_D", %%"REG_a") \n\t"
  641. "add $8, %%"REG_a" \n\t"
  642. // End
  643. "9: \n\t"
  644. // "int $3 \n\t"
  645. "lea " LOCAL_MANGLE(0b) ", %0 \n\t"
  646. "lea " LOCAL_MANGLE(1b) ", %1 \n\t"
  647. "lea " LOCAL_MANGLE(2b) ", %2 \n\t"
  648. "dec %1 \n\t"
  649. "dec %2 \n\t"
  650. "sub %0, %1 \n\t"
  651. "sub %0, %2 \n\t"
  652. "lea " LOCAL_MANGLE(9b) ", %3 \n\t"
  653. "sub %0, %3 \n\t"
  654. : "=r" (fragmentB), "=r" (imm8OfPShufW1B), "=r" (imm8OfPShufW2B),
  655. "=r" (fragmentLengthB)
  656. );
  657. xpos = 0; // lumXInc/2 - 0x8000; // difference between pixel centers
  658. fragmentPos = 0;
  659. for (i = 0; i < dstW / numSplits; i++) {
  660. int xx = xpos >> 16;
  661. if ((i & 3) == 0) {
  662. int a = 0;
  663. int b = ((xpos + xInc) >> 16) - xx;
  664. int c = ((xpos + xInc * 2) >> 16) - xx;
  665. int d = ((xpos + xInc * 3) >> 16) - xx;
  666. int inc = (d + 1 < 4);
  667. uint8_t *fragment = (d + 1 < 4) ? fragmentB : fragmentA;
  668. x86_reg imm8OfPShufW1 = (d + 1 < 4) ? imm8OfPShufW1B : imm8OfPShufW1A;
  669. x86_reg imm8OfPShufW2 = (d + 1 < 4) ? imm8OfPShufW2B : imm8OfPShufW2A;
  670. x86_reg fragmentLength = (d + 1 < 4) ? fragmentLengthB : fragmentLengthA;
  671. int maxShift = 3 - (d + inc);
  672. int shift = 0;
  673. if (filterCode) {
  674. filter[i] = ((xpos & 0xFFFF) ^ 0xFFFF) >> 9;
  675. filter[i + 1] = (((xpos + xInc) & 0xFFFF) ^ 0xFFFF) >> 9;
  676. filter[i + 2] = (((xpos + xInc * 2) & 0xFFFF) ^ 0xFFFF) >> 9;
  677. filter[i + 3] = (((xpos + xInc * 3) & 0xFFFF) ^ 0xFFFF) >> 9;
  678. filterPos[i / 2] = xx;
  679. memcpy(filterCode + fragmentPos, fragment, fragmentLength);
  680. filterCode[fragmentPos + imm8OfPShufW1] = (a + inc) |
  681. ((b + inc) << 2) |
  682. ((c + inc) << 4) |
  683. ((d + inc) << 6);
  684. filterCode[fragmentPos + imm8OfPShufW2] = a | (b << 2) |
  685. (c << 4) |
  686. (d << 6);
  687. if (i + 4 - inc >= dstW)
  688. shift = maxShift; // avoid overread
  689. else if ((filterPos[i / 2] & 3) <= maxShift)
  690. shift = filterPos[i / 2] & 3; // align
  691. if (shift && i >= shift) {
  692. filterCode[fragmentPos + imm8OfPShufW1] += 0x55 * shift;
  693. filterCode[fragmentPos + imm8OfPShufW2] += 0x55 * shift;
  694. filterPos[i / 2] -= shift;
  695. }
  696. }
  697. fragmentPos += fragmentLength;
  698. if (filterCode)
  699. filterCode[fragmentPos] = RET;
  700. }
  701. xpos += xInc;
  702. }
  703. if (filterCode)
  704. filterPos[((i / 2) + 1) & (~1)] = xpos >> 16; // needed to jump to the next part
  705. return fragmentPos + 1;
  706. }
  707. #endif /* HAVE_MMXEXT_INLINE */
  708. static void getSubSampleFactors(int *h, int *v, enum AVPixelFormat format)
  709. {
  710. const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(format);
  711. *h = desc->log2_chroma_w;
  712. *v = desc->log2_chroma_h;
  713. }
  714. static void fill_rgb2yuv_table(SwsContext *c, const int table[4], int dstRange)
  715. {
  716. int64_t W,V,Z;
  717. int64_t vr = table[0];
  718. int64_t ub = table[1];
  719. int64_t ug = -table[2];
  720. int64_t vg = -table[3];
  721. int64_t ONE = 65536;
  722. int64_t cy = ONE;
  723. uint8_t *p = (uint8_t*)c->input_rgb2yuv_table;
  724. int i;
  725. static const int8_t map[] = {
  726. BY_IDX, GY_IDX, -1 , BY_IDX, BY_IDX, GY_IDX, -1 , BY_IDX,
  727. RY_IDX, -1 , GY_IDX, RY_IDX, RY_IDX, -1 , GY_IDX, RY_IDX,
  728. RY_IDX, GY_IDX, -1 , RY_IDX, RY_IDX, GY_IDX, -1 , RY_IDX,
  729. BY_IDX, -1 , GY_IDX, BY_IDX, BY_IDX, -1 , GY_IDX, BY_IDX,
  730. BU_IDX, GU_IDX, -1 , BU_IDX, BU_IDX, GU_IDX, -1 , BU_IDX,
  731. RU_IDX, -1 , GU_IDX, RU_IDX, RU_IDX, -1 , GU_IDX, RU_IDX,
  732. RU_IDX, GU_IDX, -1 , RU_IDX, RU_IDX, GU_IDX, -1 , RU_IDX,
  733. BU_IDX, -1 , GU_IDX, BU_IDX, BU_IDX, -1 , GU_IDX, BU_IDX,
  734. BV_IDX, GV_IDX, -1 , BV_IDX, BV_IDX, GV_IDX, -1 , BV_IDX,
  735. RV_IDX, -1 , GV_IDX, RV_IDX, RV_IDX, -1 , GV_IDX, RV_IDX,
  736. RV_IDX, GV_IDX, -1 , RV_IDX, RV_IDX, GV_IDX, -1 , RV_IDX,
  737. BV_IDX, -1 , GV_IDX, BV_IDX, BV_IDX, -1 , GV_IDX, BV_IDX,
  738. RY_IDX, BY_IDX, RY_IDX, BY_IDX, RY_IDX, BY_IDX, RY_IDX, BY_IDX,
  739. BY_IDX, RY_IDX, BY_IDX, RY_IDX, BY_IDX, RY_IDX, BY_IDX, RY_IDX,
  740. GY_IDX, -1 , GY_IDX, -1 , GY_IDX, -1 , GY_IDX, -1 ,
  741. -1 , GY_IDX, -1 , GY_IDX, -1 , GY_IDX, -1 , GY_IDX,
  742. RU_IDX, BU_IDX, RU_IDX, BU_IDX, RU_IDX, BU_IDX, RU_IDX, BU_IDX,
  743. BU_IDX, RU_IDX, BU_IDX, RU_IDX, BU_IDX, RU_IDX, BU_IDX, RU_IDX,
  744. GU_IDX, -1 , GU_IDX, -1 , GU_IDX, -1 , GU_IDX, -1 ,
  745. -1 , GU_IDX, -1 , GU_IDX, -1 , GU_IDX, -1 , GU_IDX,
  746. RV_IDX, BV_IDX, RV_IDX, BV_IDX, RV_IDX, BV_IDX, RV_IDX, BV_IDX,
  747. BV_IDX, RV_IDX, BV_IDX, RV_IDX, BV_IDX, RV_IDX, BV_IDX, RV_IDX,
  748. GV_IDX, -1 , GV_IDX, -1 , GV_IDX, -1 , GV_IDX, -1 ,
  749. -1 , GV_IDX, -1 , GV_IDX, -1 , GV_IDX, -1 , GV_IDX,
  750. };
  751. dstRange = 0; //FIXME range = 1 is handled elsewhere
  752. if (!dstRange) {
  753. cy = cy * 255 / 219;
  754. } else {
  755. vr = vr * 224 / 255;
  756. ub = ub * 224 / 255;
  757. ug = ug * 224 / 255;
  758. vg = vg * 224 / 255;
  759. }
  760. W = ONE*ug/ub;
  761. V = ONE*vg/vr;
  762. Z = ONE-W-V;
  763. c->input_rgb2yuv_table[RY_IDX] = -(1 << RGB2YUV_SHIFT)*ONE*V/(Z*cy);
  764. c->input_rgb2yuv_table[GY_IDX] = (1 << RGB2YUV_SHIFT)*ONE*ONE/(Z*cy);
  765. c->input_rgb2yuv_table[BY_IDX] = -(1 << RGB2YUV_SHIFT)*ONE*W/(Z*cy);
  766. c->input_rgb2yuv_table[RU_IDX] = (1 << RGB2YUV_SHIFT)*ONE*V/(Z*ub);
  767. c->input_rgb2yuv_table[GU_IDX] = -(1 << RGB2YUV_SHIFT)*ONE*ONE/(Z*ub);
  768. c->input_rgb2yuv_table[BU_IDX] = (1 << RGB2YUV_SHIFT)*(ONE + ONE*W/Z)/ub;
  769. c->input_rgb2yuv_table[RV_IDX] = (1 << RGB2YUV_SHIFT)*(ONE + ONE*V/Z)/vr;
  770. c->input_rgb2yuv_table[GV_IDX] = -(1 << RGB2YUV_SHIFT)*ONE*ONE/(Z*vr);
  771. c->input_rgb2yuv_table[BV_IDX] = (1 << RGB2YUV_SHIFT)*ONE*W/(Z*vr);
  772. if(/*!dstRange && */table == ff_yuv2rgb_coeffs[SWS_CS_DEFAULT]) {
  773. c->input_rgb2yuv_table[BY_IDX] = ((int)(0.114 * 219 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  774. c->input_rgb2yuv_table[BV_IDX] = (-(int)(0.081 * 224 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  775. c->input_rgb2yuv_table[BU_IDX] = ((int)(0.500 * 224 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  776. c->input_rgb2yuv_table[GY_IDX] = ((int)(0.587 * 219 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  777. c->input_rgb2yuv_table[GV_IDX] = (-(int)(0.419 * 224 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  778. c->input_rgb2yuv_table[GU_IDX] = (-(int)(0.331 * 224 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  779. c->input_rgb2yuv_table[RY_IDX] = ((int)(0.299 * 219 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  780. c->input_rgb2yuv_table[RV_IDX] = ((int)(0.500 * 224 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  781. c->input_rgb2yuv_table[RU_IDX] = (-(int)(0.169 * 224 / 255 * (1 << RGB2YUV_SHIFT) + 0.5));
  782. }
  783. for(i=0; i<FF_ARRAY_ELEMS(map); i++)
  784. AV_WL16(p + 16*4 + 2*i, map[i] >= 0 ? c->input_rgb2yuv_table[map[i]] : 0);
  785. }
  786. int sws_setColorspaceDetails(struct SwsContext *c, const int inv_table[4],
  787. int srcRange, const int table[4], int dstRange,
  788. int brightness, int contrast, int saturation)
  789. {
  790. const AVPixFmtDescriptor *desc_dst = av_pix_fmt_desc_get(c->dstFormat);
  791. const AVPixFmtDescriptor *desc_src = av_pix_fmt_desc_get(c->srcFormat);
  792. memcpy(c->srcColorspaceTable, inv_table, sizeof(int) * 4);
  793. memcpy(c->dstColorspaceTable, table, sizeof(int) * 4);
  794. if(!isYUV(c->dstFormat) && !isGray(c->dstFormat))
  795. dstRange = 0;
  796. if(!isYUV(c->srcFormat) && !isGray(c->srcFormat))
  797. srcRange = 0;
  798. c->brightness = brightness;
  799. c->contrast = contrast;
  800. c->saturation = saturation;
  801. c->srcRange = srcRange;
  802. c->dstRange = dstRange;
  803. if ((isYUV(c->dstFormat) || isGray(c->dstFormat)) && (isYUV(c->srcFormat) || isGray(c->srcFormat)))
  804. return -1;
  805. c->dstFormatBpp = av_get_bits_per_pixel(desc_dst);
  806. c->srcFormatBpp = av_get_bits_per_pixel(desc_src);
  807. ff_yuv2rgb_c_init_tables(c, inv_table, srcRange, brightness,
  808. contrast, saturation);
  809. // FIXME factorize
  810. if (HAVE_ALTIVEC && av_get_cpu_flags() & AV_CPU_FLAG_ALTIVEC)
  811. ff_yuv2rgb_init_tables_altivec(c, inv_table, brightness,
  812. contrast, saturation);
  813. fill_rgb2yuv_table(c, table, dstRange);
  814. return 0;
  815. }
  816. int sws_getColorspaceDetails(struct SwsContext *c, int **inv_table,
  817. int *srcRange, int **table, int *dstRange,
  818. int *brightness, int *contrast, int *saturation)
  819. {
  820. if (!c || isYUV(c->dstFormat) || isGray(c->dstFormat))
  821. return -1;
  822. *inv_table = c->srcColorspaceTable;
  823. *table = c->dstColorspaceTable;
  824. *srcRange = c->srcRange;
  825. *dstRange = c->dstRange;
  826. *brightness = c->brightness;
  827. *contrast = c->contrast;
  828. *saturation = c->saturation;
  829. return 0;
  830. }
  831. static int handle_jpeg(enum AVPixelFormat *format)
  832. {
  833. switch (*format) {
  834. case AV_PIX_FMT_YUVJ420P:
  835. *format = AV_PIX_FMT_YUV420P;
  836. return 1;
  837. case AV_PIX_FMT_YUVJ422P:
  838. *format = AV_PIX_FMT_YUV422P;
  839. return 1;
  840. case AV_PIX_FMT_YUVJ444P:
  841. *format = AV_PIX_FMT_YUV444P;
  842. return 1;
  843. case AV_PIX_FMT_YUVJ440P:
  844. *format = AV_PIX_FMT_YUV440P;
  845. return 1;
  846. default:
  847. return 0;
  848. }
  849. }
  850. static int handle_0alpha(enum AVPixelFormat *format)
  851. {
  852. switch (*format) {
  853. case AV_PIX_FMT_0BGR : *format = AV_PIX_FMT_ABGR ; return 1;
  854. case AV_PIX_FMT_BGR0 : *format = AV_PIX_FMT_BGRA ; return 4;
  855. case AV_PIX_FMT_0RGB : *format = AV_PIX_FMT_ARGB ; return 1;
  856. case AV_PIX_FMT_RGB0 : *format = AV_PIX_FMT_RGBA ; return 4;
  857. default: return 0;
  858. }
  859. }
  860. SwsContext *sws_alloc_context(void)
  861. {
  862. SwsContext *c = av_mallocz(sizeof(SwsContext));
  863. if (c) {
  864. c->av_class = &sws_context_class;
  865. av_opt_set_defaults(c);
  866. }
  867. return c;
  868. }
  869. av_cold int sws_init_context(SwsContext *c, SwsFilter *srcFilter,
  870. SwsFilter *dstFilter)
  871. {
  872. int i, j;
  873. int usesVFilter, usesHFilter;
  874. int unscaled;
  875. SwsFilter dummyFilter = { NULL, NULL, NULL, NULL };
  876. int srcW = c->srcW;
  877. int srcH = c->srcH;
  878. int dstW = c->dstW;
  879. int dstH = c->dstH;
  880. int dst_stride = FFALIGN(dstW * sizeof(int16_t) + 66, 16);
  881. int flags, cpu_flags;
  882. enum AVPixelFormat srcFormat = c->srcFormat;
  883. enum AVPixelFormat dstFormat = c->dstFormat;
  884. const AVPixFmtDescriptor *desc_src = av_pix_fmt_desc_get(srcFormat);
  885. const AVPixFmtDescriptor *desc_dst = av_pix_fmt_desc_get(dstFormat);
  886. cpu_flags = av_get_cpu_flags();
  887. flags = c->flags;
  888. emms_c();
  889. if (!rgb15to16)
  890. sws_rgb2rgb_init();
  891. unscaled = (srcW == dstW && srcH == dstH);
  892. handle_jpeg(&srcFormat);
  893. handle_jpeg(&dstFormat);
  894. handle_0alpha(&srcFormat);
  895. handle_0alpha(&dstFormat);
  896. if(srcFormat!=c->srcFormat || dstFormat!=c->dstFormat){
  897. av_log(c, AV_LOG_WARNING, "deprecated pixel format used, make sure you did set range correctly\n");
  898. c->srcFormat= srcFormat;
  899. c->dstFormat= dstFormat;
  900. }
  901. if (!sws_isSupportedInput(srcFormat)) {
  902. av_log(c, AV_LOG_ERROR, "%s is not supported as input pixel format\n",
  903. av_get_pix_fmt_name(srcFormat));
  904. return AVERROR(EINVAL);
  905. }
  906. if (!sws_isSupportedOutput(dstFormat)) {
  907. av_log(c, AV_LOG_ERROR, "%s is not supported as output pixel format\n",
  908. av_get_pix_fmt_name(dstFormat));
  909. return AVERROR(EINVAL);
  910. }
  911. i = flags & (SWS_POINT |
  912. SWS_AREA |
  913. SWS_BILINEAR |
  914. SWS_FAST_BILINEAR |
  915. SWS_BICUBIC |
  916. SWS_X |
  917. SWS_GAUSS |
  918. SWS_LANCZOS |
  919. SWS_SINC |
  920. SWS_SPLINE |
  921. SWS_BICUBLIN);
  922. if (!i || (i & (i - 1))) {
  923. av_log(c, AV_LOG_ERROR, "Exactly one scaler algorithm must be chosen, got %X\n", i);
  924. return AVERROR(EINVAL);
  925. }
  926. /* sanity check */
  927. if (srcW < 1 || srcH < 1 || dstW < 1 || dstH < 1) {
  928. /* FIXME check if these are enough and try to lower them after
  929. * fixing the relevant parts of the code */
  930. av_log(c, AV_LOG_ERROR, "%dx%d -> %dx%d is invalid scaling dimension\n",
  931. srcW, srcH, dstW, dstH);
  932. return AVERROR(EINVAL);
  933. }
  934. if (!dstFilter)
  935. dstFilter = &dummyFilter;
  936. if (!srcFilter)
  937. srcFilter = &dummyFilter;
  938. c->lumXInc = (((int64_t)srcW << 16) + (dstW >> 1)) / dstW;
  939. c->lumYInc = (((int64_t)srcH << 16) + (dstH >> 1)) / dstH;
  940. c->dstFormatBpp = av_get_bits_per_pixel(desc_dst);
  941. c->srcFormatBpp = av_get_bits_per_pixel(desc_src);
  942. c->vRounder = 4 * 0x0001000100010001ULL;
  943. usesVFilter = (srcFilter->lumV && srcFilter->lumV->length > 1) ||
  944. (srcFilter->chrV && srcFilter->chrV->length > 1) ||
  945. (dstFilter->lumV && dstFilter->lumV->length > 1) ||
  946. (dstFilter->chrV && dstFilter->chrV->length > 1);
  947. usesHFilter = (srcFilter->lumH && srcFilter->lumH->length > 1) ||
  948. (srcFilter->chrH && srcFilter->chrH->length > 1) ||
  949. (dstFilter->lumH && dstFilter->lumH->length > 1) ||
  950. (dstFilter->chrH && dstFilter->chrH->length > 1);
  951. getSubSampleFactors(&c->chrSrcHSubSample, &c->chrSrcVSubSample, srcFormat);
  952. getSubSampleFactors(&c->chrDstHSubSample, &c->chrDstVSubSample, dstFormat);
  953. if (isAnyRGB(dstFormat) && !(flags&SWS_FULL_CHR_H_INT)) {
  954. if (dstW&1) {
  955. av_log(c, AV_LOG_DEBUG, "Forcing full internal H chroma due to odd output size\n");
  956. flags |= SWS_FULL_CHR_H_INT;
  957. c->flags = flags;
  958. }
  959. }
  960. if(dstFormat == AV_PIX_FMT_BGR4_BYTE ||
  961. dstFormat == AV_PIX_FMT_RGB4_BYTE ||
  962. dstFormat == AV_PIX_FMT_BGR8 ||
  963. dstFormat == AV_PIX_FMT_RGB8) {
  964. if (flags & SWS_ERROR_DIFFUSION && !(flags & SWS_FULL_CHR_H_INT)) {
  965. av_log(c, AV_LOG_DEBUG,
  966. "Error diffusion dither is only supported in full chroma interpolation for destination format '%s'\n",
  967. av_get_pix_fmt_name(dstFormat));
  968. flags |= SWS_FULL_CHR_H_INT;
  969. c->flags = flags;
  970. }
  971. if (!(flags & SWS_ERROR_DIFFUSION) && (flags & SWS_FULL_CHR_H_INT)) {
  972. av_log(c, AV_LOG_DEBUG,
  973. "Ordered dither is not supported in full chroma interpolation for destination format '%s'\n",
  974. av_get_pix_fmt_name(dstFormat));
  975. flags |= SWS_ERROR_DIFFUSION;
  976. c->flags = flags;
  977. }
  978. }
  979. if (isPlanarRGB(dstFormat)) {
  980. if (!(flags & SWS_FULL_CHR_H_INT)) {
  981. av_log(c, AV_LOG_DEBUG,
  982. "%s output is not supported with half chroma resolution, switching to full\n",
  983. av_get_pix_fmt_name(dstFormat));
  984. flags |= SWS_FULL_CHR_H_INT;
  985. c->flags = flags;
  986. }
  987. }
  988. /* reuse chroma for 2 pixels RGB/BGR unless user wants full
  989. * chroma interpolation */
  990. if (flags & SWS_FULL_CHR_H_INT &&
  991. isAnyRGB(dstFormat) &&
  992. !isPlanarRGB(dstFormat) &&
  993. dstFormat != AV_PIX_FMT_RGBA &&
  994. dstFormat != AV_PIX_FMT_ARGB &&
  995. dstFormat != AV_PIX_FMT_BGRA &&
  996. dstFormat != AV_PIX_FMT_ABGR &&
  997. dstFormat != AV_PIX_FMT_RGB24 &&
  998. dstFormat != AV_PIX_FMT_BGR24 &&
  999. dstFormat != AV_PIX_FMT_BGR4_BYTE &&
  1000. dstFormat != AV_PIX_FMT_RGB4_BYTE &&
  1001. dstFormat != AV_PIX_FMT_BGR8 &&
  1002. dstFormat != AV_PIX_FMT_RGB8
  1003. ) {
  1004. av_log(c, AV_LOG_WARNING,
  1005. "full chroma interpolation for destination format '%s' not yet implemented\n",
  1006. av_get_pix_fmt_name(dstFormat));
  1007. flags &= ~SWS_FULL_CHR_H_INT;
  1008. c->flags = flags;
  1009. }
  1010. if (isAnyRGB(dstFormat) && !(flags & SWS_FULL_CHR_H_INT))
  1011. c->chrDstHSubSample = 1;
  1012. // drop some chroma lines if the user wants it
  1013. c->vChrDrop = (flags & SWS_SRC_V_CHR_DROP_MASK) >>
  1014. SWS_SRC_V_CHR_DROP_SHIFT;
  1015. c->chrSrcVSubSample += c->vChrDrop;
  1016. /* drop every other pixel for chroma calculation unless user
  1017. * wants full chroma */
  1018. if (isAnyRGB(srcFormat) && !(flags & SWS_FULL_CHR_H_INP) &&
  1019. srcFormat != AV_PIX_FMT_RGB8 && srcFormat != AV_PIX_FMT_BGR8 &&
  1020. srcFormat != AV_PIX_FMT_RGB4 && srcFormat != AV_PIX_FMT_BGR4 &&
  1021. srcFormat != AV_PIX_FMT_RGB4_BYTE && srcFormat != AV_PIX_FMT_BGR4_BYTE &&
  1022. srcFormat != AV_PIX_FMT_GBRP9BE && srcFormat != AV_PIX_FMT_GBRP9LE &&
  1023. srcFormat != AV_PIX_FMT_GBRP10BE && srcFormat != AV_PIX_FMT_GBRP10LE &&
  1024. srcFormat != AV_PIX_FMT_GBRP12BE && srcFormat != AV_PIX_FMT_GBRP12LE &&
  1025. srcFormat != AV_PIX_FMT_GBRP14BE && srcFormat != AV_PIX_FMT_GBRP14LE &&
  1026. srcFormat != AV_PIX_FMT_GBRP16BE && srcFormat != AV_PIX_FMT_GBRP16LE &&
  1027. ((dstW >> c->chrDstHSubSample) <= (srcW >> 1) ||
  1028. (flags & SWS_FAST_BILINEAR)))
  1029. c->chrSrcHSubSample = 1;
  1030. // Note the -((-x)>>y) is so that we always round toward +inf.
  1031. c->chrSrcW = -((-srcW) >> c->chrSrcHSubSample);
  1032. c->chrSrcH = -((-srcH) >> c->chrSrcVSubSample);
  1033. c->chrDstW = -((-dstW) >> c->chrDstHSubSample);
  1034. c->chrDstH = -((-dstH) >> c->chrDstVSubSample);
  1035. FF_ALLOC_OR_GOTO(c, c->formatConvBuffer, FFALIGN(srcW*2+78, 16) * 2, fail);
  1036. /* unscaled special cases */
  1037. if (unscaled && !usesHFilter && !usesVFilter &&
  1038. (c->srcRange == c->dstRange || isAnyRGB(dstFormat))) {
  1039. ff_get_unscaled_swscale(c);
  1040. if (c->swScale) {
  1041. if (flags & SWS_PRINT_INFO)
  1042. av_log(c, AV_LOG_INFO,
  1043. "using unscaled %s -> %s special converter\n",
  1044. av_get_pix_fmt_name(srcFormat), av_get_pix_fmt_name(dstFormat));
  1045. return 0;
  1046. }
  1047. }
  1048. c->srcBpc = 1 + desc_src->comp[0].depth_minus1;
  1049. if (c->srcBpc < 8)
  1050. c->srcBpc = 8;
  1051. c->dstBpc = 1 + desc_dst->comp[0].depth_minus1;
  1052. if (c->dstBpc < 8)
  1053. c->dstBpc = 8;
  1054. if (isAnyRGB(srcFormat) || srcFormat == AV_PIX_FMT_PAL8)
  1055. c->srcBpc = 16;
  1056. if (c->dstBpc == 16)
  1057. dst_stride <<= 1;
  1058. if (INLINE_MMXEXT(cpu_flags) && c->srcBpc == 8 && c->dstBpc <= 14) {
  1059. c->canMMXEXTBeUsed = (dstW >= srcW && (dstW & 31) == 0 &&
  1060. (srcW & 15) == 0) ? 1 : 0;
  1061. if (!c->canMMXEXTBeUsed && dstW >= srcW && (srcW & 15) == 0
  1062. && (flags & SWS_FAST_BILINEAR)) {
  1063. if (flags & SWS_PRINT_INFO)
  1064. av_log(c, AV_LOG_INFO,
  1065. "output width is not a multiple of 32 -> no MMXEXT scaler\n");
  1066. }
  1067. if (usesHFilter || isNBPS(c->srcFormat) || is16BPS(c->srcFormat) || isAnyRGB(c->srcFormat))
  1068. c->canMMXEXTBeUsed = 0;
  1069. } else
  1070. c->canMMXEXTBeUsed = 0;
  1071. c->chrXInc = (((int64_t)c->chrSrcW << 16) + (c->chrDstW >> 1)) / c->chrDstW;
  1072. c->chrYInc = (((int64_t)c->chrSrcH << 16) + (c->chrDstH >> 1)) / c->chrDstH;
  1073. /* Match pixel 0 of the src to pixel 0 of dst and match pixel n-2 of src
  1074. * to pixel n-2 of dst, but only for the FAST_BILINEAR mode otherwise do
  1075. * correct scaling.
  1076. * n-2 is the last chrominance sample available.
  1077. * This is not perfect, but no one should notice the difference, the more
  1078. * correct variant would be like the vertical one, but that would require
  1079. * some special code for the first and last pixel */
  1080. if (flags & SWS_FAST_BILINEAR) {
  1081. if (c->canMMXEXTBeUsed) {
  1082. c->lumXInc += 20;
  1083. c->chrXInc += 20;
  1084. }
  1085. // we don't use the x86 asm scaler if MMX is available
  1086. else if (INLINE_MMX(cpu_flags) && c->dstBpc <= 14) {
  1087. c->lumXInc = ((int64_t)(srcW - 2) << 16) / (dstW - 2) - 20;
  1088. c->chrXInc = ((int64_t)(c->chrSrcW - 2) << 16) / (c->chrDstW - 2) - 20;
  1089. }
  1090. }
  1091. #define USE_MMAP (HAVE_MMAP && HAVE_MPROTECT && defined MAP_ANONYMOUS)
  1092. /* precalculate horizontal scaler filter coefficients */
  1093. {
  1094. #if HAVE_MMXEXT_INLINE
  1095. // can't downscale !!!
  1096. if (c->canMMXEXTBeUsed && (flags & SWS_FAST_BILINEAR)) {
  1097. c->lumMmxextFilterCodeSize = init_hscaler_mmxext(dstW, c->lumXInc, NULL,
  1098. NULL, NULL, 8);
  1099. c->chrMmxextFilterCodeSize = init_hscaler_mmxext(c->chrDstW, c->chrXInc,
  1100. NULL, NULL, NULL, 4);
  1101. #if USE_MMAP
  1102. c->lumMmxextFilterCode = mmap(NULL, c->lumMmxextFilterCodeSize,
  1103. PROT_READ | PROT_WRITE,
  1104. MAP_PRIVATE | MAP_ANONYMOUS,
  1105. -1, 0);
  1106. c->chrMmxextFilterCode = mmap(NULL, c->chrMmxextFilterCodeSize,
  1107. PROT_READ | PROT_WRITE,
  1108. MAP_PRIVATE | MAP_ANONYMOUS,
  1109. -1, 0);
  1110. #elif HAVE_VIRTUALALLOC
  1111. c->lumMmxextFilterCode = VirtualAlloc(NULL,
  1112. c->lumMmxextFilterCodeSize,
  1113. MEM_COMMIT,
  1114. PAGE_EXECUTE_READWRITE);
  1115. c->chrMmxextFilterCode = VirtualAlloc(NULL,
  1116. c->chrMmxextFilterCodeSize,
  1117. MEM_COMMIT,
  1118. PAGE_EXECUTE_READWRITE);
  1119. #else
  1120. c->lumMmxextFilterCode = av_malloc(c->lumMmxextFilterCodeSize);
  1121. c->chrMmxextFilterCode = av_malloc(c->chrMmxextFilterCodeSize);
  1122. #endif
  1123. #ifdef MAP_ANONYMOUS
  1124. if (c->lumMmxextFilterCode == MAP_FAILED || c->chrMmxextFilterCode == MAP_FAILED)
  1125. #else
  1126. if (!c->lumMmxextFilterCode || !c->chrMmxextFilterCode)
  1127. #endif
  1128. {
  1129. av_log(c, AV_LOG_ERROR, "Failed to allocate MMX2FilterCode\n");
  1130. return AVERROR(ENOMEM);
  1131. }
  1132. FF_ALLOCZ_OR_GOTO(c, c->hLumFilter, (dstW / 8 + 8) * sizeof(int16_t), fail);
  1133. FF_ALLOCZ_OR_GOTO(c, c->hChrFilter, (c->chrDstW / 4 + 8) * sizeof(int16_t), fail);
  1134. FF_ALLOCZ_OR_GOTO(c, c->hLumFilterPos, (dstW / 2 / 8 + 8) * sizeof(int32_t), fail);
  1135. FF_ALLOCZ_OR_GOTO(c, c->hChrFilterPos, (c->chrDstW / 2 / 4 + 8) * sizeof(int32_t), fail);
  1136. init_hscaler_mmxext( dstW, c->lumXInc, c->lumMmxextFilterCode,
  1137. c->hLumFilter, (uint32_t*)c->hLumFilterPos, 8);
  1138. init_hscaler_mmxext(c->chrDstW, c->chrXInc, c->chrMmxextFilterCode,
  1139. c->hChrFilter, (uint32_t*)c->hChrFilterPos, 4);
  1140. #if USE_MMAP
  1141. mprotect(c->lumMmxextFilterCode, c->lumMmxextFilterCodeSize, PROT_EXEC | PROT_READ);
  1142. mprotect(c->chrMmxextFilterCode, c->chrMmxextFilterCodeSize, PROT_EXEC | PROT_READ);
  1143. #endif
  1144. } else
  1145. #endif /* HAVE_MMXEXT_INLINE */
  1146. {
  1147. const int filterAlign =
  1148. (HAVE_MMX && cpu_flags & AV_CPU_FLAG_MMX) ? 4 :
  1149. (HAVE_ALTIVEC && cpu_flags & AV_CPU_FLAG_ALTIVEC) ? 8 :
  1150. 1;
  1151. if (initFilter(&c->hLumFilter, &c->hLumFilterPos,
  1152. &c->hLumFilterSize, c->lumXInc,
  1153. srcW, dstW, filterAlign, 1 << 14,
  1154. (flags & SWS_BICUBLIN) ? (flags | SWS_BICUBIC) : flags,
  1155. cpu_flags, srcFilter->lumH, dstFilter->lumH,
  1156. c->param) < 0)
  1157. goto fail;
  1158. if (initFilter(&c->hChrFilter, &c->hChrFilterPos,
  1159. &c->hChrFilterSize, c->chrXInc,
  1160. c->chrSrcW, c->chrDstW, filterAlign, 1 << 14,
  1161. (flags & SWS_BICUBLIN) ? (flags | SWS_BILINEAR) : flags,
  1162. cpu_flags, srcFilter->chrH, dstFilter->chrH,
  1163. c->param) < 0)
  1164. goto fail;
  1165. }
  1166. } // initialize horizontal stuff
  1167. /* precalculate vertical scaler filter coefficients */
  1168. {
  1169. const int filterAlign =
  1170. (HAVE_MMX && cpu_flags & AV_CPU_FLAG_MMX) ? 2 :
  1171. (HAVE_ALTIVEC && cpu_flags & AV_CPU_FLAG_ALTIVEC) ? 8 :
  1172. 1;
  1173. if (initFilter(&c->vLumFilter, &c->vLumFilterPos, &c->vLumFilterSize,
  1174. c->lumYInc, srcH, dstH, filterAlign, (1 << 12),
  1175. (flags & SWS_BICUBLIN) ? (flags | SWS_BICUBIC) : flags,
  1176. cpu_flags, srcFilter->lumV, dstFilter->lumV,
  1177. c->param) < 0)
  1178. goto fail;
  1179. if (initFilter(&c->vChrFilter, &c->vChrFilterPos, &c->vChrFilterSize,
  1180. c->chrYInc, c->chrSrcH, c->chrDstH,
  1181. filterAlign, (1 << 12),
  1182. (flags & SWS_BICUBLIN) ? (flags | SWS_BILINEAR) : flags,
  1183. cpu_flags, srcFilter->chrV, dstFilter->chrV,
  1184. c->param) < 0)
  1185. goto fail;
  1186. #if HAVE_ALTIVEC
  1187. FF_ALLOC_OR_GOTO(c, c->vYCoeffsBank, sizeof(vector signed short) * c->vLumFilterSize * c->dstH, fail);
  1188. FF_ALLOC_OR_GOTO(c, c->vCCoeffsBank, sizeof(vector signed short) * c->vChrFilterSize * c->chrDstH, fail);
  1189. for (i = 0; i < c->vLumFilterSize * c->dstH; i++) {
  1190. int j;
  1191. short *p = (short *)&c->vYCoeffsBank[i];
  1192. for (j = 0; j < 8; j++)
  1193. p[j] = c->vLumFilter[i];
  1194. }
  1195. for (i = 0; i < c->vChrFilterSize * c->chrDstH; i++) {
  1196. int j;
  1197. short *p = (short *)&c->vCCoeffsBank[i];
  1198. for (j = 0; j < 8; j++)
  1199. p[j] = c->vChrFilter[i];
  1200. }
  1201. #endif
  1202. }
  1203. // calculate buffer sizes so that they won't run out while handling these damn slices
  1204. c->vLumBufSize = c->vLumFilterSize;
  1205. c->vChrBufSize = c->vChrFilterSize;
  1206. for (i = 0; i < dstH; i++) {
  1207. int chrI = (int64_t)i * c->chrDstH / dstH;
  1208. int nextSlice = FFMAX(c->vLumFilterPos[i] + c->vLumFilterSize - 1,
  1209. ((c->vChrFilterPos[chrI] + c->vChrFilterSize - 1)
  1210. << c->chrSrcVSubSample));
  1211. nextSlice >>= c->chrSrcVSubSample;
  1212. nextSlice <<= c->chrSrcVSubSample;
  1213. if (c->vLumFilterPos[i] + c->vLumBufSize < nextSlice)
  1214. c->vLumBufSize = nextSlice - c->vLumFilterPos[i];
  1215. if (c->vChrFilterPos[chrI] + c->vChrBufSize <
  1216. (nextSlice >> c->chrSrcVSubSample))
  1217. c->vChrBufSize = (nextSlice >> c->chrSrcVSubSample) -
  1218. c->vChrFilterPos[chrI];
  1219. }
  1220. for (i = 0; i < 4; i++)
  1221. FF_ALLOCZ_OR_GOTO(c, c->dither_error[i], (c->dstW+2) * sizeof(int), fail);
  1222. /* Allocate pixbufs (we use dynamic allocation because otherwise we would
  1223. * need to allocate several megabytes to handle all possible cases) */
  1224. FF_ALLOC_OR_GOTO(c, c->lumPixBuf, c->vLumBufSize * 3 * sizeof(int16_t *), fail);
  1225. FF_ALLOC_OR_GOTO(c, c->chrUPixBuf, c->vChrBufSize * 3 * sizeof(int16_t *), fail);
  1226. FF_ALLOC_OR_GOTO(c, c->chrVPixBuf, c->vChrBufSize * 3 * sizeof(int16_t *), fail);
  1227. if (CONFIG_SWSCALE_ALPHA && isALPHA(c->srcFormat) && isALPHA(c->dstFormat))
  1228. FF_ALLOCZ_OR_GOTO(c, c->alpPixBuf, c->vLumBufSize * 3 * sizeof(int16_t *), fail);
  1229. /* Note we need at least one pixel more at the end because of the MMX code
  1230. * (just in case someone wants to replace the 4000/8000). */
  1231. /* align at 16 bytes for AltiVec */
  1232. for (i = 0; i < c->vLumBufSize; i++) {
  1233. FF_ALLOCZ_OR_GOTO(c, c->lumPixBuf[i + c->vLumBufSize],
  1234. dst_stride + 16, fail);
  1235. c->lumPixBuf[i] = c->lumPixBuf[i + c->vLumBufSize];
  1236. }
  1237. // 64 / c->scalingBpp is the same as 16 / sizeof(scaling_intermediate)
  1238. c->uv_off = (dst_stride>>1) + 64 / (c->dstBpc &~ 7);
  1239. c->uv_offx2 = dst_stride + 16;
  1240. for (i = 0; i < c->vChrBufSize; i++) {
  1241. FF_ALLOC_OR_GOTO(c, c->chrUPixBuf[i + c->vChrBufSize],
  1242. dst_stride * 2 + 32, fail);
  1243. c->chrUPixBuf[i] = c->chrUPixBuf[i + c->vChrBufSize];
  1244. c->chrVPixBuf[i] = c->chrVPixBuf[i + c->vChrBufSize]
  1245. = c->chrUPixBuf[i] + (dst_stride >> 1) + 8;
  1246. }
  1247. if (CONFIG_SWSCALE_ALPHA && c->alpPixBuf)
  1248. for (i = 0; i < c->vLumBufSize; i++) {
  1249. FF_ALLOCZ_OR_GOTO(c, c->alpPixBuf[i + c->vLumBufSize],
  1250. dst_stride + 16, fail);
  1251. c->alpPixBuf[i] = c->alpPixBuf[i + c->vLumBufSize];
  1252. }
  1253. // try to avoid drawing green stuff between the right end and the stride end
  1254. for (i = 0; i < c->vChrBufSize; i++)
  1255. if(desc_dst->comp[0].depth_minus1 == 15){
  1256. av_assert0(c->dstBpc > 14);
  1257. for(j=0; j<dst_stride/2+1; j++)
  1258. ((int32_t*)(c->chrUPixBuf[i]))[j] = 1<<18;
  1259. } else
  1260. for(j=0; j<dst_stride+1; j++)
  1261. ((int16_t*)(c->chrUPixBuf[i]))[j] = 1<<14;
  1262. av_assert0(c->chrDstH <= dstH);
  1263. if (flags & SWS_PRINT_INFO) {
  1264. if (flags & SWS_FAST_BILINEAR)
  1265. av_log(c, AV_LOG_INFO, "FAST_BILINEAR scaler, ");
  1266. else if (flags & SWS_BILINEAR)
  1267. av_log(c, AV_LOG_INFO, "BILINEAR scaler, ");
  1268. else if (flags & SWS_BICUBIC)
  1269. av_log(c, AV_LOG_INFO, "BICUBIC scaler, ");
  1270. else if (flags & SWS_X)
  1271. av_log(c, AV_LOG_INFO, "Experimental scaler, ");
  1272. else if (flags & SWS_POINT)
  1273. av_log(c, AV_LOG_INFO, "Nearest Neighbor / POINT scaler, ");
  1274. else if (flags & SWS_AREA)
  1275. av_log(c, AV_LOG_INFO, "Area Averaging scaler, ");
  1276. else if (flags & SWS_BICUBLIN)
  1277. av_log(c, AV_LOG_INFO, "luma BICUBIC / chroma BILINEAR scaler, ");
  1278. else if (flags & SWS_GAUSS)
  1279. av_log(c, AV_LOG_INFO, "Gaussian scaler, ");
  1280. else if (flags & SWS_SINC)
  1281. av_log(c, AV_LOG_INFO, "Sinc scaler, ");
  1282. else if (flags & SWS_LANCZOS)
  1283. av_log(c, AV_LOG_INFO, "Lanczos scaler, ");
  1284. else if (flags & SWS_SPLINE)
  1285. av_log(c, AV_LOG_INFO, "Bicubic spline scaler, ");
  1286. else
  1287. av_log(c, AV_LOG_INFO, "ehh flags invalid?! ");
  1288. av_log(c, AV_LOG_INFO, "from %s to %s%s ",
  1289. av_get_pix_fmt_name(srcFormat),
  1290. #ifdef DITHER1XBPP
  1291. dstFormat == AV_PIX_FMT_BGR555 || dstFormat == AV_PIX_FMT_BGR565 ||
  1292. dstFormat == AV_PIX_FMT_RGB444BE || dstFormat == AV_PIX_FMT_RGB444LE ||
  1293. dstFormat == AV_PIX_FMT_BGR444BE || dstFormat == AV_PIX_FMT_BGR444LE ?
  1294. "dithered " : "",
  1295. #else
  1296. "",
  1297. #endif
  1298. av_get_pix_fmt_name(dstFormat));
  1299. if (INLINE_MMXEXT(cpu_flags))
  1300. av_log(c, AV_LOG_INFO, "using MMXEXT\n");
  1301. else if (INLINE_AMD3DNOW(cpu_flags))
  1302. av_log(c, AV_LOG_INFO, "using 3DNOW\n");
  1303. else if (INLINE_MMX(cpu_flags))
  1304. av_log(c, AV_LOG_INFO, "using MMX\n");
  1305. else if (HAVE_ALTIVEC && cpu_flags & AV_CPU_FLAG_ALTIVEC)
  1306. av_log(c, AV_LOG_INFO, "using AltiVec\n");
  1307. else
  1308. av_log(c, AV_LOG_INFO, "using C\n");
  1309. av_log(c, AV_LOG_VERBOSE, "%dx%d -> %dx%d\n", srcW, srcH, dstW, dstH);
  1310. av_log(c, AV_LOG_DEBUG,
  1311. "lum srcW=%d srcH=%d dstW=%d dstH=%d xInc=%d yInc=%d\n",
  1312. c->srcW, c->srcH, c->dstW, c->dstH, c->lumXInc, c->lumYInc);
  1313. av_log(c, AV_LOG_DEBUG,
  1314. "chr srcW=%d srcH=%d dstW=%d dstH=%d xInc=%d yInc=%d\n",
  1315. c->chrSrcW, c->chrSrcH, c->chrDstW, c->chrDstH,
  1316. c->chrXInc, c->chrYInc);
  1317. }
  1318. c->swScale = ff_getSwsFunc(c);
  1319. return 0;
  1320. fail: // FIXME replace things by appropriate error codes
  1321. return -1;
  1322. }
  1323. #if FF_API_SWS_GETCONTEXT
  1324. SwsContext *sws_getContext(int srcW, int srcH, enum AVPixelFormat srcFormat,
  1325. int dstW, int dstH, enum AVPixelFormat dstFormat,
  1326. int flags, SwsFilter *srcFilter,
  1327. SwsFilter *dstFilter, const double *param)
  1328. {
  1329. SwsContext *c;
  1330. if (!(c = sws_alloc_context()))
  1331. return NULL;
  1332. c->flags = flags;
  1333. c->srcW = srcW;
  1334. c->srcH = srcH;
  1335. c->dstW = dstW;
  1336. c->dstH = dstH;
  1337. c->srcRange = handle_jpeg(&srcFormat);
  1338. c->dstRange = handle_jpeg(&dstFormat);
  1339. c->src0Alpha = handle_0alpha(&srcFormat);
  1340. c->dst0Alpha = handle_0alpha(&dstFormat);
  1341. c->srcFormat = srcFormat;
  1342. c->dstFormat = dstFormat;
  1343. if (param) {
  1344. c->param[0] = param[0];
  1345. c->param[1] = param[1];
  1346. }
  1347. sws_setColorspaceDetails(c, ff_yuv2rgb_coeffs[SWS_CS_DEFAULT], c->srcRange,
  1348. ff_yuv2rgb_coeffs[SWS_CS_DEFAULT] /* FIXME*/,
  1349. c->dstRange, 0, 1 << 16, 1 << 16);
  1350. if (sws_init_context(c, srcFilter, dstFilter) < 0) {
  1351. sws_freeContext(c);
  1352. return NULL;
  1353. }
  1354. return c;
  1355. }
  1356. #endif
  1357. SwsFilter *sws_getDefaultFilter(float lumaGBlur, float chromaGBlur,
  1358. float lumaSharpen, float chromaSharpen,
  1359. float chromaHShift, float chromaVShift,
  1360. int verbose)
  1361. {
  1362. SwsFilter *filter = av_malloc(sizeof(SwsFilter));
  1363. if (!filter)
  1364. return NULL;
  1365. if (lumaGBlur != 0.0) {
  1366. filter->lumH = sws_getGaussianVec(lumaGBlur, 3.0);
  1367. filter->lumV = sws_getGaussianVec(lumaGBlur, 3.0);
  1368. } else {
  1369. filter->lumH = sws_getIdentityVec();
  1370. filter->lumV = sws_getIdentityVec();
  1371. }
  1372. if (chromaGBlur != 0.0) {
  1373. filter->chrH = sws_getGaussianVec(chromaGBlur, 3.0);
  1374. filter->chrV = sws_getGaussianVec(chromaGBlur, 3.0);
  1375. } else {
  1376. filter->chrH = sws_getIdentityVec();
  1377. filter->chrV = sws_getIdentityVec();
  1378. }
  1379. if (chromaSharpen != 0.0) {
  1380. SwsVector *id = sws_getIdentityVec();
  1381. sws_scaleVec(filter->chrH, -chromaSharpen);
  1382. sws_scaleVec(filter->chrV, -chromaSharpen);
  1383. sws_addVec(filter->chrH, id);
  1384. sws_addVec(filter->chrV, id);
  1385. sws_freeVec(id);
  1386. }
  1387. if (lumaSharpen != 0.0) {
  1388. SwsVector *id = sws_getIdentityVec();
  1389. sws_scaleVec(filter->lumH, -lumaSharpen);
  1390. sws_scaleVec(filter->lumV, -lumaSharpen);
  1391. sws_addVec(filter->lumH, id);
  1392. sws_addVec(filter->lumV, id);
  1393. sws_freeVec(id);
  1394. }
  1395. if (chromaHShift != 0.0)
  1396. sws_shiftVec(filter->chrH, (int)(chromaHShift + 0.5));
  1397. if (chromaVShift != 0.0)
  1398. sws_shiftVec(filter->chrV, (int)(chromaVShift + 0.5));
  1399. sws_normalizeVec(filter->chrH, 1.0);
  1400. sws_normalizeVec(filter->chrV, 1.0);
  1401. sws_normalizeVec(filter->lumH, 1.0);
  1402. sws_normalizeVec(filter->lumV, 1.0);
  1403. if (verbose)
  1404. sws_printVec2(filter->chrH, NULL, AV_LOG_DEBUG);
  1405. if (verbose)
  1406. sws_printVec2(filter->lumH, NULL, AV_LOG_DEBUG);
  1407. return filter;
  1408. }
  1409. SwsVector *sws_allocVec(int length)
  1410. {
  1411. SwsVector *vec;
  1412. if(length <= 0 || length > INT_MAX/ sizeof(double))
  1413. return NULL;
  1414. vec = av_malloc(sizeof(SwsVector));
  1415. if (!vec)
  1416. return NULL;
  1417. vec->length = length;
  1418. vec->coeff = av_malloc(sizeof(double) * length);
  1419. if (!vec->coeff)
  1420. av_freep(&vec);
  1421. return vec;
  1422. }
  1423. SwsVector *sws_getGaussianVec(double variance, double quality)
  1424. {
  1425. const int length = (int)(variance * quality + 0.5) | 1;
  1426. int i;
  1427. double middle = (length - 1) * 0.5;
  1428. SwsVector *vec;
  1429. if(variance < 0 || quality < 0)
  1430. return NULL;
  1431. vec = sws_allocVec(length);
  1432. if (!vec)
  1433. return NULL;
  1434. for (i = 0; i < length; i++) {
  1435. double dist = i - middle;
  1436. vec->coeff[i] = exp(-dist * dist / (2 * variance * variance)) /
  1437. sqrt(2 * variance * M_PI);
  1438. }
  1439. sws_normalizeVec(vec, 1.0);
  1440. return vec;
  1441. }
  1442. SwsVector *sws_getConstVec(double c, int length)
  1443. {
  1444. int i;
  1445. SwsVector *vec = sws_allocVec(length);
  1446. if (!vec)
  1447. return NULL;
  1448. for (i = 0; i < length; i++)
  1449. vec->coeff[i] = c;
  1450. return vec;
  1451. }
  1452. SwsVector *sws_getIdentityVec(void)
  1453. {
  1454. return sws_getConstVec(1.0, 1);
  1455. }
  1456. static double sws_dcVec(SwsVector *a)
  1457. {
  1458. int i;
  1459. double sum = 0;
  1460. for (i = 0; i < a->length; i++)
  1461. sum += a->coeff[i];
  1462. return sum;
  1463. }
  1464. void sws_scaleVec(SwsVector *a, double scalar)
  1465. {
  1466. int i;
  1467. for (i = 0; i < a->length; i++)
  1468. a->coeff[i] *= scalar;
  1469. }
  1470. void sws_normalizeVec(SwsVector *a, double height)
  1471. {
  1472. sws_scaleVec(a, height / sws_dcVec(a));
  1473. }
  1474. static SwsVector *sws_getConvVec(SwsVector *a, SwsVector *b)
  1475. {
  1476. int length = a->length + b->length - 1;
  1477. int i, j;
  1478. SwsVector *vec = sws_getConstVec(0.0, length);
  1479. if (!vec)
  1480. return NULL;
  1481. for (i = 0; i < a->length; i++) {
  1482. for (j = 0; j < b->length; j++) {
  1483. vec->coeff[i + j] += a->coeff[i] * b->coeff[j];
  1484. }
  1485. }
  1486. return vec;
  1487. }
  1488. static SwsVector *sws_sumVec(SwsVector *a, SwsVector *b)
  1489. {
  1490. int length = FFMAX(a->length, b->length);
  1491. int i;
  1492. SwsVector *vec = sws_getConstVec(0.0, length);
  1493. if (!vec)
  1494. return NULL;
  1495. for (i = 0; i < a->length; i++)
  1496. vec->coeff[i + (length - 1) / 2 - (a->length - 1) / 2] += a->coeff[i];
  1497. for (i = 0; i < b->length; i++)
  1498. vec->coeff[i + (length - 1) / 2 - (b->length - 1) / 2] += b->coeff[i];
  1499. return vec;
  1500. }
  1501. static SwsVector *sws_diffVec(SwsVector *a, SwsVector *b)
  1502. {
  1503. int length = FFMAX(a->length, b->length);
  1504. int i;
  1505. SwsVector *vec = sws_getConstVec(0.0, length);
  1506. if (!vec)
  1507. return NULL;
  1508. for (i = 0; i < a->length; i++)
  1509. vec->coeff[i + (length - 1) / 2 - (a->length - 1) / 2] += a->coeff[i];
  1510. for (i = 0; i < b->length; i++)
  1511. vec->coeff[i + (length - 1) / 2 - (b->length - 1) / 2] -= b->coeff[i];
  1512. return vec;
  1513. }
  1514. /* shift left / or right if "shift" is negative */
  1515. static SwsVector *sws_getShiftedVec(SwsVector *a, int shift)
  1516. {
  1517. int length = a->length + FFABS(shift) * 2;
  1518. int i;
  1519. SwsVector *vec = sws_getConstVec(0.0, length);
  1520. if (!vec)
  1521. return NULL;
  1522. for (i = 0; i < a->length; i++) {
  1523. vec->coeff[i + (length - 1) / 2 -
  1524. (a->length - 1) / 2 - shift] = a->coeff[i];
  1525. }
  1526. return vec;
  1527. }
  1528. void sws_shiftVec(SwsVector *a, int shift)
  1529. {
  1530. SwsVector *shifted = sws_getShiftedVec(a, shift);
  1531. av_free(a->coeff);
  1532. a->coeff = shifted->coeff;
  1533. a->length = shifted->length;
  1534. av_free(shifted);
  1535. }
  1536. void sws_addVec(SwsVector *a, SwsVector *b)
  1537. {
  1538. SwsVector *sum = sws_sumVec(a, b);
  1539. av_free(a->coeff);
  1540. a->coeff = sum->coeff;
  1541. a->length = sum->length;
  1542. av_free(sum);
  1543. }
  1544. void sws_subVec(SwsVector *a, SwsVector *b)
  1545. {
  1546. SwsVector *diff = sws_diffVec(a, b);
  1547. av_free(a->coeff);
  1548. a->coeff = diff->coeff;
  1549. a->length = diff->length;
  1550. av_free(diff);
  1551. }
  1552. void sws_convVec(SwsVector *a, SwsVector *b)
  1553. {
  1554. SwsVector *conv = sws_getConvVec(a, b);
  1555. av_free(a->coeff);
  1556. a->coeff = conv->coeff;
  1557. a->length = conv->length;
  1558. av_free(conv);
  1559. }
  1560. SwsVector *sws_cloneVec(SwsVector *a)
  1561. {
  1562. int i;
  1563. SwsVector *vec = sws_allocVec(a->length);
  1564. if (!vec)
  1565. return NULL;
  1566. for (i = 0; i < a->length; i++)
  1567. vec->coeff[i] = a->coeff[i];
  1568. return vec;
  1569. }
  1570. void sws_printVec2(SwsVector *a, AVClass *log_ctx, int log_level)
  1571. {
  1572. int i;
  1573. double max = 0;
  1574. double min = 0;
  1575. double range;
  1576. for (i = 0; i < a->length; i++)
  1577. if (a->coeff[i] > max)
  1578. max = a->coeff[i];
  1579. for (i = 0; i < a->length; i++)
  1580. if (a->coeff[i] < min)
  1581. min = a->coeff[i];
  1582. range = max - min;
  1583. for (i = 0; i < a->length; i++) {
  1584. int x = (int)((a->coeff[i] - min) * 60.0 / range + 0.5);
  1585. av_log(log_ctx, log_level, "%1.3f ", a->coeff[i]);
  1586. for (; x > 0; x--)
  1587. av_log(log_ctx, log_level, " ");
  1588. av_log(log_ctx, log_level, "|\n");
  1589. }
  1590. }
  1591. void sws_freeVec(SwsVector *a)
  1592. {
  1593. if (!a)
  1594. return;
  1595. av_freep(&a->coeff);
  1596. a->length = 0;
  1597. av_free(a);
  1598. }
  1599. void sws_freeFilter(SwsFilter *filter)
  1600. {
  1601. if (!filter)
  1602. return;
  1603. if (filter->lumH)
  1604. sws_freeVec(filter->lumH);
  1605. if (filter->lumV)
  1606. sws_freeVec(filter->lumV);
  1607. if (filter->chrH)
  1608. sws_freeVec(filter->chrH);
  1609. if (filter->chrV)
  1610. sws_freeVec(filter->chrV);
  1611. av_free(filter);
  1612. }
  1613. void sws_freeContext(SwsContext *c)
  1614. {
  1615. int i;
  1616. if (!c)
  1617. return;
  1618. if (c->lumPixBuf) {
  1619. for (i = 0; i < c->vLumBufSize; i++)
  1620. av_freep(&c->lumPixBuf[i]);
  1621. av_freep(&c->lumPixBuf);
  1622. }
  1623. if (c->chrUPixBuf) {
  1624. for (i = 0; i < c->vChrBufSize; i++)
  1625. av_freep(&c->chrUPixBuf[i]);
  1626. av_freep(&c->chrUPixBuf);
  1627. av_freep(&c->chrVPixBuf);
  1628. }
  1629. if (CONFIG_SWSCALE_ALPHA && c->alpPixBuf) {
  1630. for (i = 0; i < c->vLumBufSize; i++)
  1631. av_freep(&c->alpPixBuf[i]);
  1632. av_freep(&c->alpPixBuf);
  1633. }
  1634. for (i = 0; i < 4; i++)
  1635. av_freep(&c->dither_error[i]);
  1636. av_freep(&c->vLumFilter);
  1637. av_freep(&c->vChrFilter);
  1638. av_freep(&c->hLumFilter);
  1639. av_freep(&c->hChrFilter);
  1640. #if HAVE_ALTIVEC
  1641. av_freep(&c->vYCoeffsBank);
  1642. av_freep(&c->vCCoeffsBank);
  1643. #endif
  1644. av_freep(&c->vLumFilterPos);
  1645. av_freep(&c->vChrFilterPos);
  1646. av_freep(&c->hLumFilterPos);
  1647. av_freep(&c->hChrFilterPos);
  1648. #if HAVE_MMX_INLINE
  1649. #if USE_MMAP
  1650. if (c->lumMmxextFilterCode)
  1651. munmap(c->lumMmxextFilterCode, c->lumMmxextFilterCodeSize);
  1652. if (c->chrMmxextFilterCode)
  1653. munmap(c->chrMmxextFilterCode, c->chrMmxextFilterCodeSize);
  1654. #elif HAVE_VIRTUALALLOC
  1655. if (c->lumMmxextFilterCode)
  1656. VirtualFree(c->lumMmxextFilterCode, 0, MEM_RELEASE);
  1657. if (c->chrMmxextFilterCode)
  1658. VirtualFree(c->chrMmxextFilterCode, 0, MEM_RELEASE);
  1659. #else
  1660. av_free(c->lumMmxextFilterCode);
  1661. av_free(c->chrMmxextFilterCode);
  1662. #endif
  1663. c->lumMmxextFilterCode = NULL;
  1664. c->chrMmxextFilterCode = NULL;
  1665. #endif /* HAVE_MMX_INLINE */
  1666. av_freep(&c->yuvTable);
  1667. av_freep(&c->formatConvBuffer);
  1668. av_free(c);
  1669. }
  1670. struct SwsContext *sws_getCachedContext(struct SwsContext *context, int srcW,
  1671. int srcH, enum AVPixelFormat srcFormat,
  1672. int dstW, int dstH,
  1673. enum AVPixelFormat dstFormat, int flags,
  1674. SwsFilter *srcFilter,
  1675. SwsFilter *dstFilter,
  1676. const double *param)
  1677. {
  1678. static const double default_param[2] = { SWS_PARAM_DEFAULT,
  1679. SWS_PARAM_DEFAULT };
  1680. if (!param)
  1681. param = default_param;
  1682. if (context &&
  1683. (context->srcW != srcW ||
  1684. context->srcH != srcH ||
  1685. context->srcFormat != srcFormat ||
  1686. context->dstW != dstW ||
  1687. context->dstH != dstH ||
  1688. context->dstFormat != dstFormat ||
  1689. context->flags != flags ||
  1690. context->param[0] != param[0] ||
  1691. context->param[1] != param[1])) {
  1692. sws_freeContext(context);
  1693. context = NULL;
  1694. }
  1695. if (!context) {
  1696. if (!(context = sws_alloc_context()))
  1697. return NULL;
  1698. context->srcW = srcW;
  1699. context->srcH = srcH;
  1700. context->srcRange = handle_jpeg(&srcFormat);
  1701. context->src0Alpha = handle_0alpha(&srcFormat);
  1702. context->srcFormat = srcFormat;
  1703. context->dstW = dstW;
  1704. context->dstH = dstH;
  1705. context->dstRange = handle_jpeg(&dstFormat);
  1706. context->dst0Alpha = handle_0alpha(&dstFormat);
  1707. context->dstFormat = dstFormat;
  1708. context->flags = flags;
  1709. context->param[0] = param[0];
  1710. context->param[1] = param[1];
  1711. sws_setColorspaceDetails(context, ff_yuv2rgb_coeffs[SWS_CS_DEFAULT],
  1712. context->srcRange,
  1713. ff_yuv2rgb_coeffs[SWS_CS_DEFAULT] /* FIXME*/,
  1714. context->dstRange, 0, 1 << 16, 1 << 16);
  1715. if (sws_init_context(context, srcFilter, dstFilter) < 0) {
  1716. sws_freeContext(context);
  1717. return NULL;
  1718. }
  1719. }
  1720. return context;
  1721. }