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  1. /**
  2. * @file dct-test.c
  3. * DCT test. (c) 2001 Fabrice Bellard.
  4. * Started from sample code by Juan J. Sierralta P.
  5. */
  6. #include <stdlib.h>
  7. #include <stdio.h>
  8. #include <string.h>
  9. #include <sys/time.h>
  10. #include <unistd.h>
  11. #include "dsputil.h"
  12. #include "i386/mmx.h"
  13. #include "simple_idct.h"
  14. #include "faandct.h"
  15. #ifndef MAX
  16. #define MAX(a, b) (((a) > (b)) ? (a) : (b))
  17. #endif
  18. /* reference fdct/idct */
  19. extern void fdct(DCTELEM *block);
  20. extern void idct(DCTELEM *block);
  21. extern void init_fdct();
  22. extern void j_rev_dct(DCTELEM *data);
  23. extern void ff_mmx_idct(DCTELEM *data);
  24. extern void ff_mmxext_idct(DCTELEM *data);
  25. extern void odivx_idct_c (short *block);
  26. #define AANSCALE_BITS 12
  27. static const unsigned short aanscales[64] = {
  28. /* precomputed values scaled up by 14 bits */
  29. 16384, 22725, 21407, 19266, 16384, 12873, 8867, 4520,
  30. 22725, 31521, 29692, 26722, 22725, 17855, 12299, 6270,
  31. 21407, 29692, 27969, 25172, 21407, 16819, 11585, 5906,
  32. 19266, 26722, 25172, 22654, 19266, 15137, 10426, 5315,
  33. 16384, 22725, 21407, 19266, 16384, 12873, 8867, 4520,
  34. 12873, 17855, 16819, 15137, 12873, 10114, 6967, 3552,
  35. 8867, 12299, 11585, 10426, 8867, 6967, 4799, 2446,
  36. 4520, 6270, 5906, 5315, 4520, 3552, 2446, 1247
  37. };
  38. uint8_t cropTbl[256 + 2 * MAX_NEG_CROP];
  39. int64_t gettime(void)
  40. {
  41. struct timeval tv;
  42. gettimeofday(&tv,NULL);
  43. return (int64_t)tv.tv_sec * 1000000 + tv.tv_usec;
  44. }
  45. #define NB_ITS 20000
  46. #define NB_ITS_SPEED 50000
  47. static short idct_mmx_perm[64];
  48. static short idct_simple_mmx_perm[64]={
  49. 0x00, 0x08, 0x04, 0x09, 0x01, 0x0C, 0x05, 0x0D,
  50. 0x10, 0x18, 0x14, 0x19, 0x11, 0x1C, 0x15, 0x1D,
  51. 0x20, 0x28, 0x24, 0x29, 0x21, 0x2C, 0x25, 0x2D,
  52. 0x12, 0x1A, 0x16, 0x1B, 0x13, 0x1E, 0x17, 0x1F,
  53. 0x02, 0x0A, 0x06, 0x0B, 0x03, 0x0E, 0x07, 0x0F,
  54. 0x30, 0x38, 0x34, 0x39, 0x31, 0x3C, 0x35, 0x3D,
  55. 0x22, 0x2A, 0x26, 0x2B, 0x23, 0x2E, 0x27, 0x2F,
  56. 0x32, 0x3A, 0x36, 0x3B, 0x33, 0x3E, 0x37, 0x3F,
  57. };
  58. void idct_mmx_init(void)
  59. {
  60. int i;
  61. /* the mmx/mmxext idct uses a reordered input, so we patch scan tables */
  62. for (i = 0; i < 64; i++) {
  63. idct_mmx_perm[i] = (i & 0x38) | ((i & 6) >> 1) | ((i & 1) << 2);
  64. // idct_simple_mmx_perm[i] = simple_block_permute_op(i);
  65. }
  66. }
  67. static DCTELEM block[64] __attribute__ ((aligned (8)));
  68. static DCTELEM block1[64] __attribute__ ((aligned (8)));
  69. static DCTELEM block_org[64] __attribute__ ((aligned (8)));
  70. void dct_error(const char *name, int is_idct,
  71. void (*fdct_func)(DCTELEM *block),
  72. void (*fdct_ref)(DCTELEM *block), int test)
  73. {
  74. int it, i, scale;
  75. int err_inf, v;
  76. int64_t err2, ti, ti1, it1;
  77. int64_t sysErr[64], sysErrMax=0;
  78. int maxout=0;
  79. int blockSumErrMax=0, blockSumErr;
  80. srandom(0);
  81. err_inf = 0;
  82. err2 = 0;
  83. for(i=0; i<64; i++) sysErr[i]=0;
  84. for(it=0;it<NB_ITS;it++) {
  85. for(i=0;i<64;i++)
  86. block1[i] = 0;
  87. switch(test){
  88. case 0:
  89. for(i=0;i<64;i++)
  90. block1[i] = (random() % 512) -256;
  91. if (is_idct){
  92. fdct(block1);
  93. for(i=0;i<64;i++)
  94. block1[i]>>=3;
  95. }
  96. break;
  97. case 1:{
  98. int num= (random()%10)+1;
  99. for(i=0;i<num;i++)
  100. block1[random()%64] = (random() % 512) -256;
  101. }break;
  102. case 2:
  103. block1[0]= (random()%4096)-2048;
  104. block1[63]= (block1[0]&1)^1;
  105. break;
  106. }
  107. #if 0 // simulate mismatch control
  108. { int sum=0;
  109. for(i=0;i<64;i++)
  110. sum+=block1[i];
  111. if((sum&1)==0) block1[63]^=1;
  112. }
  113. #endif
  114. for(i=0; i<64; i++)
  115. block_org[i]= block1[i];
  116. if (fdct_func == ff_mmx_idct ||
  117. fdct_func == j_rev_dct || fdct_func == ff_mmxext_idct) {
  118. for(i=0;i<64;i++)
  119. block[idct_mmx_perm[i]] = block1[i];
  120. } else if(fdct_func == ff_simple_idct_mmx ) {
  121. for(i=0;i<64;i++)
  122. block[idct_simple_mmx_perm[i]] = block1[i];
  123. } else {
  124. for(i=0; i<64; i++)
  125. block[i]= block1[i];
  126. }
  127. #if 0 // simulate mismatch control for tested IDCT but not the ref
  128. { int sum=0;
  129. for(i=0;i<64;i++)
  130. sum+=block[i];
  131. if((sum&1)==0) block[63]^=1;
  132. }
  133. #endif
  134. fdct_func(block);
  135. emms(); /* for ff_mmx_idct */
  136. if (fdct_func == fdct_ifast) {
  137. for(i=0; i<64; i++) {
  138. scale = 8*(1 << (AANSCALE_BITS + 11)) / aanscales[i];
  139. block[i] = (block[i] * scale /*+ (1<<(AANSCALE_BITS-1))*/) >> AANSCALE_BITS;
  140. }
  141. }
  142. fdct_ref(block1);
  143. blockSumErr=0;
  144. for(i=0;i<64;i++) {
  145. v = abs(block[i] - block1[i]);
  146. if (v > err_inf)
  147. err_inf = v;
  148. err2 += v * v;
  149. sysErr[i] += block[i] - block1[i];
  150. blockSumErr += v;
  151. if( abs(block[i])>maxout) maxout=abs(block[i]);
  152. }
  153. if(blockSumErrMax < blockSumErr) blockSumErrMax= blockSumErr;
  154. #if 0 // print different matrix pairs
  155. if(blockSumErr){
  156. printf("\n");
  157. for(i=0; i<64; i++){
  158. if((i&7)==0) printf("\n");
  159. printf("%4d ", block_org[i]);
  160. }
  161. for(i=0; i<64; i++){
  162. if((i&7)==0) printf("\n");
  163. printf("%4d ", block[i] - block1[i]);
  164. }
  165. }
  166. #endif
  167. }
  168. for(i=0; i<64; i++) sysErrMax= MAX(sysErrMax, ABS(sysErr[i]));
  169. #if 1 // dump systematic errors
  170. for(i=0; i<64; i++){
  171. if(i%8==0) printf("\n");
  172. printf("%5d ", (int)sysErr[i]);
  173. }
  174. printf("\n");
  175. #endif
  176. printf("%s %s: err_inf=%d err2=%0.8f syserr=%0.8f maxout=%d blockSumErr=%d\n",
  177. is_idct ? "IDCT" : "DCT",
  178. name, err_inf, (double)err2 / NB_ITS / 64.0, (double)sysErrMax / NB_ITS, maxout, blockSumErrMax);
  179. #if 1 //Speed test
  180. /* speed test */
  181. for(i=0;i<64;i++)
  182. block1[i] = 0;
  183. switch(test){
  184. case 0:
  185. for(i=0;i<64;i++)
  186. block1[i] = (random() % 512) -256;
  187. if (is_idct){
  188. fdct(block1);
  189. for(i=0;i<64;i++)
  190. block1[i]>>=3;
  191. }
  192. break;
  193. case 1:{
  194. case 2:
  195. block1[0] = (random() % 512) -256;
  196. block1[1] = (random() % 512) -256;
  197. block1[2] = (random() % 512) -256;
  198. block1[3] = (random() % 512) -256;
  199. }break;
  200. }
  201. if (fdct_func == ff_mmx_idct ||
  202. fdct_func == j_rev_dct || fdct_func == ff_mmxext_idct) {
  203. for(i=0;i<64;i++)
  204. block[idct_mmx_perm[i]] = block1[i];
  205. } else if(fdct_func == ff_simple_idct_mmx ) {
  206. for(i=0;i<64;i++)
  207. block[idct_simple_mmx_perm[i]] = block1[i];
  208. } else {
  209. for(i=0; i<64; i++)
  210. block[i]= block1[i];
  211. }
  212. ti = gettime();
  213. it1 = 0;
  214. do {
  215. for(it=0;it<NB_ITS_SPEED;it++) {
  216. for(i=0; i<64; i++)
  217. block[i]= block1[i];
  218. // memcpy(block, block1, sizeof(DCTELEM) * 64);
  219. // dont memcpy especially not fastmemcpy because it does movntq !!!
  220. fdct_func(block);
  221. }
  222. it1 += NB_ITS_SPEED;
  223. ti1 = gettime() - ti;
  224. } while (ti1 < 1000000);
  225. emms();
  226. printf("%s %s: %0.1f kdct/s\n",
  227. is_idct ? "IDCT" : "DCT",
  228. name, (double)it1 * 1000.0 / (double)ti1);
  229. #endif
  230. }
  231. static uint8_t img_dest[64] __attribute__ ((aligned (8)));
  232. static uint8_t img_dest1[64] __attribute__ ((aligned (8)));
  233. void idct248_ref(uint8_t *dest, int linesize, int16_t *block)
  234. {
  235. static int init;
  236. static double c8[8][8];
  237. static double c4[4][4];
  238. double block1[64], block2[64], block3[64];
  239. double s, sum, v;
  240. int i, j, k;
  241. if (!init) {
  242. init = 1;
  243. for(i=0;i<8;i++) {
  244. sum = 0;
  245. for(j=0;j<8;j++) {
  246. s = (i==0) ? sqrt(1.0/8.0) : sqrt(1.0/4.0);
  247. c8[i][j] = s * cos(M_PI * i * (j + 0.5) / 8.0);
  248. sum += c8[i][j] * c8[i][j];
  249. }
  250. }
  251. for(i=0;i<4;i++) {
  252. sum = 0;
  253. for(j=0;j<4;j++) {
  254. s = (i==0) ? sqrt(1.0/4.0) : sqrt(1.0/2.0);
  255. c4[i][j] = s * cos(M_PI * i * (j + 0.5) / 4.0);
  256. sum += c4[i][j] * c4[i][j];
  257. }
  258. }
  259. }
  260. /* butterfly */
  261. s = 0.5 * sqrt(2.0);
  262. for(i=0;i<4;i++) {
  263. for(j=0;j<8;j++) {
  264. block1[8*(2*i)+j] = (block[8*(2*i)+j] + block[8*(2*i+1)+j]) * s;
  265. block1[8*(2*i+1)+j] = (block[8*(2*i)+j] - block[8*(2*i+1)+j]) * s;
  266. }
  267. }
  268. /* idct8 on lines */
  269. for(i=0;i<8;i++) {
  270. for(j=0;j<8;j++) {
  271. sum = 0;
  272. for(k=0;k<8;k++)
  273. sum += c8[k][j] * block1[8*i+k];
  274. block2[8*i+j] = sum;
  275. }
  276. }
  277. /* idct4 */
  278. for(i=0;i<8;i++) {
  279. for(j=0;j<4;j++) {
  280. /* top */
  281. sum = 0;
  282. for(k=0;k<4;k++)
  283. sum += c4[k][j] * block2[8*(2*k)+i];
  284. block3[8*(2*j)+i] = sum;
  285. /* bottom */
  286. sum = 0;
  287. for(k=0;k<4;k++)
  288. sum += c4[k][j] * block2[8*(2*k+1)+i];
  289. block3[8*(2*j+1)+i] = sum;
  290. }
  291. }
  292. /* clamp and store the result */
  293. for(i=0;i<8;i++) {
  294. for(j=0;j<8;j++) {
  295. v = block3[8*i+j];
  296. if (v < 0)
  297. v = 0;
  298. else if (v > 255)
  299. v = 255;
  300. dest[i * linesize + j] = (int)rint(v);
  301. }
  302. }
  303. }
  304. void idct248_error(const char *name,
  305. void (*idct248_put)(uint8_t *dest, int line_size, int16_t *block))
  306. {
  307. int it, i, it1, ti, ti1, err_max, v;
  308. srandom(0);
  309. /* just one test to see if code is correct (precision is less
  310. important here) */
  311. err_max = 0;
  312. for(it=0;it<NB_ITS;it++) {
  313. /* XXX: use forward transform to generate values */
  314. for(i=0;i<64;i++)
  315. block1[i] = (random() % 256) - 128;
  316. block1[0] += 1024;
  317. for(i=0; i<64; i++)
  318. block[i]= block1[i];
  319. idct248_ref(img_dest1, 8, block);
  320. for(i=0; i<64; i++)
  321. block[i]= block1[i];
  322. idct248_put(img_dest, 8, block);
  323. for(i=0;i<64;i++) {
  324. v = abs((int)img_dest[i] - (int)img_dest1[i]);
  325. if (v == 255)
  326. printf("%d %d\n", img_dest[i], img_dest1[i]);
  327. if (v > err_max)
  328. err_max = v;
  329. }
  330. #if 0
  331. printf("ref=\n");
  332. for(i=0;i<8;i++) {
  333. int j;
  334. for(j=0;j<8;j++) {
  335. printf(" %3d", img_dest1[i*8+j]);
  336. }
  337. printf("\n");
  338. }
  339. printf("out=\n");
  340. for(i=0;i<8;i++) {
  341. int j;
  342. for(j=0;j<8;j++) {
  343. printf(" %3d", img_dest[i*8+j]);
  344. }
  345. printf("\n");
  346. }
  347. #endif
  348. }
  349. printf("%s %s: err_inf=%d\n",
  350. 1 ? "IDCT248" : "DCT248",
  351. name, err_max);
  352. ti = gettime();
  353. it1 = 0;
  354. do {
  355. for(it=0;it<NB_ITS_SPEED;it++) {
  356. for(i=0; i<64; i++)
  357. block[i]= block1[i];
  358. // memcpy(block, block1, sizeof(DCTELEM) * 64);
  359. // dont memcpy especially not fastmemcpy because it does movntq !!!
  360. idct248_put(img_dest, 8, block);
  361. }
  362. it1 += NB_ITS_SPEED;
  363. ti1 = gettime() - ti;
  364. } while (ti1 < 1000000);
  365. emms();
  366. printf("%s %s: %0.1f kdct/s\n",
  367. 1 ? "IDCT248" : "DCT248",
  368. name, (double)it1 * 1000.0 / (double)ti1);
  369. }
  370. void help(void)
  371. {
  372. printf("dct-test [-i] [<test-number>]\n"
  373. "test-number 0 -> test with random matrixes\n"
  374. " 1 -> test with random sparse matrixes\n"
  375. " 2 -> do 3. test from mpeg4 std\n"
  376. "-i test IDCT implementations\n"
  377. "-4 test IDCT248 implementations\n");
  378. exit(1);
  379. }
  380. int main(int argc, char **argv)
  381. {
  382. int test_idct = 0, test_248_dct = 0;
  383. int c,i;
  384. int test=1;
  385. init_fdct();
  386. idct_mmx_init();
  387. for(i=0;i<256;i++) cropTbl[i + MAX_NEG_CROP] = i;
  388. for(i=0;i<MAX_NEG_CROP;i++) {
  389. cropTbl[i] = 0;
  390. cropTbl[i + MAX_NEG_CROP + 256] = 255;
  391. }
  392. for(;;) {
  393. c = getopt(argc, argv, "ih4");
  394. if (c == -1)
  395. break;
  396. switch(c) {
  397. case 'i':
  398. test_idct = 1;
  399. break;
  400. case '4':
  401. test_248_dct = 1;
  402. break;
  403. default :
  404. case 'h':
  405. help();
  406. break;
  407. }
  408. }
  409. if(optind <argc) test= atoi(argv[optind]);
  410. printf("ffmpeg DCT/IDCT test\n");
  411. if (test_248_dct) {
  412. idct248_error("SIMPLE-C", simple_idct248_put);
  413. } else {
  414. if (!test_idct) {
  415. dct_error("REF-DBL", 0, fdct, fdct, test); /* only to verify code ! */
  416. dct_error("IJG-AAN-INT", 0, fdct_ifast, fdct, test);
  417. dct_error("IJG-LLM-INT", 0, ff_jpeg_fdct_islow, fdct, test);
  418. dct_error("MMX", 0, ff_fdct_mmx, fdct, test);
  419. dct_error("FAAN", 0, ff_faandct, fdct, test);
  420. } else {
  421. dct_error("REF-DBL", 1, idct, idct, test);
  422. dct_error("INT", 1, j_rev_dct, idct, test);
  423. dct_error("LIBMPEG2-MMX", 1, ff_mmx_idct, idct, test);
  424. dct_error("LIBMPEG2-MMXEXT", 1, ff_mmxext_idct, idct, test);
  425. dct_error("SIMPLE-C", 1, simple_idct, idct, test);
  426. dct_error("SIMPLE-MMX", 1, ff_simple_idct_mmx, idct, test);
  427. // dct_error("ODIVX-C", 1, odivx_idct_c, idct);
  428. //printf(" test against odivx idct\n");
  429. // dct_error("REF", 1, idct, odivx_idct_c);
  430. // dct_error("INT", 1, j_rev_dct, odivx_idct_c);
  431. // dct_error("MMX", 1, ff_mmx_idct, odivx_idct_c);
  432. // dct_error("MMXEXT", 1, ff_mmxext_idct, odivx_idct_c);
  433. // dct_error("SIMPLE-C", 1, simple_idct, odivx_idct_c);
  434. // dct_error("SIMPLE-MMX", 1, ff_simple_idct_mmx, odivx_idct_c);
  435. // dct_error("ODIVX-C", 1, odivx_idct_c, odivx_idct_c);
  436. }
  437. }
  438. return 0;
  439. }