jdcoefct.cpp 25 KB

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  1. /*
  2. * jdcoefct.c
  3. *
  4. * Copyright (C) 1994-1995, Thomas G. Lane.
  5. * This file is part of the Independent JPEG Group's software.
  6. * For conditions of distribution and use, see the accompanying README file.
  7. *
  8. * This file contains the coefficient buffer controller for decompression.
  9. * This controller is the top level of the JPEG decompressor proper.
  10. * The coefficient buffer lies between entropy decoding and inverse-DCT steps.
  11. *
  12. * In buffered-image mode, this controller is the interface between
  13. * input-oriented processing and output-oriented processing.
  14. * Also, the input side (only) is used when reading a file for transcoding.
  15. */
  16. // leave this as first line for PCH reasons...
  17. //
  18. #include "../server/exe_headers.h"
  19. #define JPEG_INTERNALS
  20. #include "jinclude.h"
  21. #include "jpeglib.h"
  22. /* Block smoothing is only applicable for progressive JPEG, so: */
  23. #ifndef D_PROGRESSIVE_SUPPORTED
  24. #undef BLOCK_SMOOTHING_SUPPORTED
  25. #endif
  26. /* Private buffer controller object */
  27. typedef struct {
  28. struct jpeg_d_coef_controller pub; /* public fields */
  29. /* These variables keep track of the current location of the input side. */
  30. /* cinfo->input_iMCU_row is also used for this. */
  31. JDIMENSION MCU_ctr; /* counts MCUs processed in current row */
  32. int MCU_vert_offset; /* counts MCU rows within iMCU row */
  33. int MCU_rows_per_iMCU_row; /* number of such rows needed */
  34. /* The output side's location is represented by cinfo->output_iMCU_row. */
  35. /* In single-pass modes, it's sufficient to buffer just one MCU.
  36. * We allocate a workspace of D_MAX_BLOCKS_IN_MCU coefficient blocks,
  37. * and let the entropy decoder write into that workspace each time.
  38. * (On 80x86, the workspace is FAR even though it's not really very big;
  39. * this is to keep the module interfaces unchanged when a large coefficient
  40. * buffer is necessary.)
  41. * In multi-pass modes, this array points to the current MCU's blocks
  42. * within the virtual arrays; it is used only by the input side.
  43. */
  44. JBLOCKROW MCU_buffer[D_MAX_BLOCKS_IN_MCU];
  45. #ifdef D_MULTISCAN_FILES_SUPPORTED
  46. /* In multi-pass modes, we need a virtual block array for each component. */
  47. jvirt_barray_ptr whole_image[MAX_COMPONENTS];
  48. #endif
  49. #ifdef BLOCK_SMOOTHING_SUPPORTED
  50. /* When doing block smoothing, we latch coefficient Al values here */
  51. int * coef_bits_latch;
  52. #define SAVED_COEFS 6 /* we save coef_bits[0..5] */
  53. #endif
  54. } my_coef_controller;
  55. typedef my_coef_controller * my_coef_ptr;
  56. /* Forward declarations */
  57. METHODDEF int decompress_onepass
  58. JPP((j_decompress_ptr cinfo, JSAMPIMAGE output_buf));
  59. #ifdef D_MULTISCAN_FILES_SUPPORTED
  60. METHODDEF int decompress_data
  61. JPP((j_decompress_ptr cinfo, JSAMPIMAGE output_buf));
  62. #endif
  63. #ifdef BLOCK_SMOOTHING_SUPPORTED
  64. LOCAL boolean smoothing_ok JPP((j_decompress_ptr cinfo));
  65. METHODDEF int decompress_smooth_data
  66. JPP((j_decompress_ptr cinfo, JSAMPIMAGE output_buf));
  67. #endif
  68. LOCAL void
  69. start_iMCU_row (j_decompress_ptr cinfo)
  70. /* Reset within-iMCU-row counters for a new row (input side) */
  71. {
  72. my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
  73. /* In an interleaved scan, an MCU row is the same as an iMCU row.
  74. * In a noninterleaved scan, an iMCU row has v_samp_factor MCU rows.
  75. * But at the bottom of the image, process only what's left.
  76. */
  77. if (cinfo->comps_in_scan > 1) {
  78. coef->MCU_rows_per_iMCU_row = 1;
  79. } else {
  80. if (cinfo->input_iMCU_row < (cinfo->total_iMCU_rows-1))
  81. coef->MCU_rows_per_iMCU_row = cinfo->cur_comp_info[0]->v_samp_factor;
  82. else
  83. coef->MCU_rows_per_iMCU_row = cinfo->cur_comp_info[0]->last_row_height;
  84. }
  85. coef->MCU_ctr = 0;
  86. coef->MCU_vert_offset = 0;
  87. }
  88. /*
  89. * Initialize for an input processing pass.
  90. */
  91. METHODDEF void
  92. start_input_pass (j_decompress_ptr cinfo)
  93. {
  94. cinfo->input_iMCU_row = 0;
  95. start_iMCU_row(cinfo);
  96. }
  97. /*
  98. * Initialize for an output processing pass.
  99. */
  100. METHODDEF void
  101. start_output_pass (j_decompress_ptr cinfo)
  102. {
  103. #ifdef BLOCK_SMOOTHING_SUPPORTED
  104. my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
  105. /* If multipass, check to see whether to use block smoothing on this pass */
  106. if (coef->pub.coef_arrays != NULL) {
  107. if (cinfo->do_block_smoothing && smoothing_ok(cinfo))
  108. coef->pub.decompress_data = decompress_smooth_data;
  109. else
  110. coef->pub.decompress_data = decompress_data;
  111. }
  112. #endif
  113. cinfo->output_iMCU_row = 0;
  114. }
  115. /*
  116. * Decompress and return some data in the single-pass case.
  117. * Always attempts to emit one fully interleaved MCU row ("iMCU" row).
  118. * Input and output must run in lockstep since we have only a one-MCU buffer.
  119. * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
  120. *
  121. * NB: output_buf contains a plane for each component in image.
  122. * For single pass, this is the same as the components in the scan.
  123. */
  124. METHODDEF int
  125. decompress_onepass (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
  126. {
  127. my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
  128. JDIMENSION MCU_col_num; /* index of current MCU within row */
  129. JDIMENSION last_MCU_col = cinfo->MCUs_per_row - 1;
  130. JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
  131. int blkn, ci, xindex, yindex, yoffset, useful_width;
  132. JSAMPARRAY output_ptr;
  133. JDIMENSION start_col, output_col;
  134. jpeg_component_info *compptr;
  135. inverse_DCT_method_ptr inverse_DCT;
  136. /* Loop to process as much as one whole iMCU row */
  137. for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
  138. yoffset++) {
  139. for (MCU_col_num = coef->MCU_ctr; MCU_col_num <= last_MCU_col;
  140. MCU_col_num++) {
  141. /* Try to fetch an MCU. Entropy decoder expects buffer to be zeroed. */
  142. jzero_far((void FAR *) coef->MCU_buffer[0],
  143. (size_t) (cinfo->blocks_in_MCU * SIZEOF(JBLOCK)));
  144. if (! (*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
  145. /* Suspension forced; update state counters and exit */
  146. coef->MCU_vert_offset = yoffset;
  147. coef->MCU_ctr = MCU_col_num;
  148. return JPEG_SUSPENDED;
  149. }
  150. /* Determine where data should go in output_buf and do the IDCT thing.
  151. * We skip dummy blocks at the right and bottom edges (but blkn gets
  152. * incremented past them!). Note the inner loop relies on having
  153. * allocated the MCU_buffer[] blocks sequentially.
  154. */
  155. blkn = 0; /* index of current DCT block within MCU */
  156. for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
  157. compptr = cinfo->cur_comp_info[ci];
  158. /* Don't bother to IDCT an uninteresting component. */
  159. if (! compptr->component_needed) {
  160. blkn += compptr->MCU_blocks;
  161. continue;
  162. }
  163. inverse_DCT = cinfo->idct->inverse_DCT[compptr->component_index];
  164. useful_width = (MCU_col_num < last_MCU_col) ? compptr->MCU_width
  165. : compptr->last_col_width;
  166. output_ptr = output_buf[ci] + yoffset * compptr->DCT_scaled_size;
  167. start_col = MCU_col_num * compptr->MCU_sample_width;
  168. for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
  169. if (cinfo->input_iMCU_row < last_iMCU_row ||
  170. yoffset+yindex < compptr->last_row_height) {
  171. output_col = start_col;
  172. for (xindex = 0; xindex < useful_width; xindex++) {
  173. (*inverse_DCT) (cinfo, compptr,
  174. (JCOEFPTR) coef->MCU_buffer[blkn+xindex],
  175. output_ptr, output_col);
  176. output_col += compptr->DCT_scaled_size;
  177. }
  178. }
  179. blkn += compptr->MCU_width;
  180. output_ptr += compptr->DCT_scaled_size;
  181. }
  182. }
  183. }
  184. /* Completed an MCU row, but perhaps not an iMCU row */
  185. coef->MCU_ctr = 0;
  186. }
  187. /* Completed the iMCU row, advance counters for next one */
  188. cinfo->output_iMCU_row++;
  189. if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
  190. start_iMCU_row(cinfo);
  191. return JPEG_ROW_COMPLETED;
  192. }
  193. /* Completed the scan */
  194. (*cinfo->inputctl->finish_input_pass) (cinfo);
  195. return JPEG_SCAN_COMPLETED;
  196. }
  197. /*
  198. * Dummy consume-input routine for single-pass operation.
  199. */
  200. METHODDEF int
  201. dummy_consume_data (j_decompress_ptr cinfo)
  202. {
  203. return JPEG_SUSPENDED; /* Always indicate nothing was done */
  204. }
  205. #ifdef D_MULTISCAN_FILES_SUPPORTED
  206. /*
  207. * Consume input data and store it in the full-image coefficient buffer.
  208. * We read as much as one fully interleaved MCU row ("iMCU" row) per call,
  209. * ie, v_samp_factor block rows for each component in the scan.
  210. * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
  211. */
  212. METHODDEF int
  213. consume_data (j_decompress_ptr cinfo)
  214. {
  215. my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
  216. JDIMENSION MCU_col_num; /* index of current MCU within row */
  217. int blkn, ci, xindex, yindex, yoffset;
  218. JDIMENSION start_col;
  219. JBLOCKARRAY buffer[MAX_COMPS_IN_SCAN];
  220. JBLOCKROW buffer_ptr;
  221. jpeg_component_info *compptr;
  222. /* Align the virtual buffers for the components used in this scan. */
  223. for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
  224. compptr = cinfo->cur_comp_info[ci];
  225. buffer[ci] = (*cinfo->mem->access_virt_barray)
  226. ((j_common_ptr) cinfo, coef->whole_image[compptr->component_index],
  227. cinfo->input_iMCU_row * compptr->v_samp_factor,
  228. (JDIMENSION) compptr->v_samp_factor, TRUE);
  229. /* Note: entropy decoder expects buffer to be zeroed,
  230. * but this is handled automatically by the memory manager
  231. * because we requested a pre-zeroed array.
  232. */
  233. }
  234. /* Loop to process one whole iMCU row */
  235. for (yoffset = coef->MCU_vert_offset; yoffset < coef->MCU_rows_per_iMCU_row;
  236. yoffset++) {
  237. for (MCU_col_num = coef->MCU_ctr; MCU_col_num < cinfo->MCUs_per_row;
  238. MCU_col_num++) {
  239. /* Construct list of pointers to DCT blocks belonging to this MCU */
  240. blkn = 0; /* index of current DCT block within MCU */
  241. for (ci = 0; ci < cinfo->comps_in_scan; ci++) {
  242. compptr = cinfo->cur_comp_info[ci];
  243. start_col = MCU_col_num * compptr->MCU_width;
  244. for (yindex = 0; yindex < compptr->MCU_height; yindex++) {
  245. buffer_ptr = buffer[ci][yindex+yoffset] + start_col;
  246. for (xindex = 0; xindex < compptr->MCU_width; xindex++) {
  247. coef->MCU_buffer[blkn++] = buffer_ptr++;
  248. }
  249. }
  250. }
  251. /* Try to fetch the MCU. */
  252. if (! (*cinfo->entropy->decode_mcu) (cinfo, coef->MCU_buffer)) {
  253. /* Suspension forced; update state counters and exit */
  254. coef->MCU_vert_offset = yoffset;
  255. coef->MCU_ctr = MCU_col_num;
  256. return JPEG_SUSPENDED;
  257. }
  258. }
  259. /* Completed an MCU row, but perhaps not an iMCU row */
  260. coef->MCU_ctr = 0;
  261. }
  262. /* Completed the iMCU row, advance counters for next one */
  263. if (++(cinfo->input_iMCU_row) < cinfo->total_iMCU_rows) {
  264. start_iMCU_row(cinfo);
  265. return JPEG_ROW_COMPLETED;
  266. }
  267. /* Completed the scan */
  268. (*cinfo->inputctl->finish_input_pass) (cinfo);
  269. return JPEG_SCAN_COMPLETED;
  270. }
  271. /*
  272. * Decompress and return some data in the multi-pass case.
  273. * Always attempts to emit one fully interleaved MCU row ("iMCU" row).
  274. * Return value is JPEG_ROW_COMPLETED, JPEG_SCAN_COMPLETED, or JPEG_SUSPENDED.
  275. *
  276. * NB: output_buf contains a plane for each component in image.
  277. */
  278. METHODDEF int
  279. decompress_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
  280. {
  281. my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
  282. JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
  283. JDIMENSION block_num;
  284. int ci, block_row, block_rows;
  285. JBLOCKARRAY buffer;
  286. JBLOCKROW buffer_ptr;
  287. JSAMPARRAY output_ptr;
  288. JDIMENSION output_col;
  289. jpeg_component_info *compptr;
  290. inverse_DCT_method_ptr inverse_DCT;
  291. /* Force some input to be done if we are getting ahead of the input. */
  292. while (cinfo->input_scan_number < cinfo->output_scan_number ||
  293. (cinfo->input_scan_number == cinfo->output_scan_number &&
  294. cinfo->input_iMCU_row <= cinfo->output_iMCU_row)) {
  295. if ((*cinfo->inputctl->consume_input)(cinfo) == JPEG_SUSPENDED)
  296. return JPEG_SUSPENDED;
  297. }
  298. /* OK, output from the virtual arrays. */
  299. for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
  300. ci++, compptr++) {
  301. /* Don't bother to IDCT an uninteresting component. */
  302. if (! compptr->component_needed)
  303. continue;
  304. /* Align the virtual buffer for this component. */
  305. buffer = (*cinfo->mem->access_virt_barray)
  306. ((j_common_ptr) cinfo, coef->whole_image[ci],
  307. cinfo->output_iMCU_row * compptr->v_samp_factor,
  308. (JDIMENSION) compptr->v_samp_factor, FALSE);
  309. /* Count non-dummy DCT block rows in this iMCU row. */
  310. if (cinfo->output_iMCU_row < last_iMCU_row)
  311. block_rows = compptr->v_samp_factor;
  312. else {
  313. /* NB: can't use last_row_height here; it is input-side-dependent! */
  314. block_rows = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
  315. if (block_rows == 0) block_rows = compptr->v_samp_factor;
  316. }
  317. inverse_DCT = cinfo->idct->inverse_DCT[ci];
  318. output_ptr = output_buf[ci];
  319. /* Loop over all DCT blocks to be processed. */
  320. for (block_row = 0; block_row < block_rows; block_row++) {
  321. buffer_ptr = buffer[block_row];
  322. output_col = 0;
  323. for (block_num = 0; block_num < compptr->width_in_blocks; block_num++) {
  324. (*inverse_DCT) (cinfo, compptr, (JCOEFPTR) buffer_ptr,
  325. output_ptr, output_col);
  326. buffer_ptr++;
  327. output_col += compptr->DCT_scaled_size;
  328. }
  329. output_ptr += compptr->DCT_scaled_size;
  330. }
  331. }
  332. if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
  333. return JPEG_ROW_COMPLETED;
  334. return JPEG_SCAN_COMPLETED;
  335. }
  336. #endif /* D_MULTISCAN_FILES_SUPPORTED */
  337. #ifdef BLOCK_SMOOTHING_SUPPORTED
  338. /*
  339. * This code applies interblock smoothing as described by section K.8
  340. * of the JPEG standard: the first 5 AC coefficients are estimated from
  341. * the DC values of a DCT block and its 8 neighboring blocks.
  342. * We apply smoothing only for progressive JPEG decoding, and only if
  343. * the coefficients it can estimate are not yet known to full precision.
  344. */
  345. /*
  346. * Determine whether block smoothing is applicable and safe.
  347. * We also latch the current states of the coef_bits[] entries for the
  348. * AC coefficients; otherwise, if the input side of the decompressor
  349. * advances into a new scan, we might think the coefficients are known
  350. * more accurately than they really are.
  351. */
  352. LOCAL boolean
  353. smoothing_ok (j_decompress_ptr cinfo)
  354. {
  355. my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
  356. boolean smoothing_useful = FALSE;
  357. int ci, coefi;
  358. jpeg_component_info *compptr;
  359. JQUANT_TBL * qtable;
  360. int * coef_bits;
  361. int * coef_bits_latch;
  362. if (! cinfo->progressive_mode || cinfo->coef_bits == NULL)
  363. return FALSE;
  364. /* Allocate latch area if not already done */
  365. if (coef->coef_bits_latch == NULL)
  366. coef->coef_bits_latch = (int *)
  367. (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
  368. cinfo->num_components *
  369. (SAVED_COEFS * SIZEOF(int)));
  370. coef_bits_latch = coef->coef_bits_latch;
  371. for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
  372. ci++, compptr++) {
  373. /* All components' quantization values must already be latched. */
  374. if ((qtable = compptr->quant_table) == NULL)
  375. return FALSE;
  376. /* Verify DC & first 5 AC quantizers are nonzero to avoid zero-divide. */
  377. for (coefi = 0; coefi <= 5; coefi++) {
  378. if (qtable->quantval[coefi] == 0)
  379. return FALSE;
  380. }
  381. /* DC values must be at least partly known for all components. */
  382. coef_bits = cinfo->coef_bits[ci];
  383. if (coef_bits[0] < 0)
  384. return FALSE;
  385. /* Block smoothing is helpful if some AC coefficients remain inaccurate. */
  386. for (coefi = 1; coefi <= 5; coefi++) {
  387. coef_bits_latch[coefi] = coef_bits[coefi];
  388. if (coef_bits[coefi] != 0)
  389. smoothing_useful = TRUE;
  390. }
  391. coef_bits_latch += SAVED_COEFS;
  392. }
  393. return smoothing_useful;
  394. }
  395. /*
  396. * Variant of decompress_data for use when doing block smoothing.
  397. */
  398. METHODDEF int
  399. decompress_smooth_data (j_decompress_ptr cinfo, JSAMPIMAGE output_buf)
  400. {
  401. my_coef_ptr coef = (my_coef_ptr) cinfo->coef;
  402. JDIMENSION last_iMCU_row = cinfo->total_iMCU_rows - 1;
  403. JDIMENSION block_num, last_block_column;
  404. int ci, block_row, block_rows, access_rows;
  405. JBLOCKARRAY buffer;
  406. JBLOCKROW buffer_ptr, prev_block_row, next_block_row;
  407. JSAMPARRAY output_ptr;
  408. JDIMENSION output_col;
  409. jpeg_component_info *compptr;
  410. inverse_DCT_method_ptr inverse_DCT;
  411. boolean first_row, last_row;
  412. JBLOCK workspace;
  413. int *coef_bits;
  414. JQUANT_TBL *quanttbl;
  415. INT32 Q00,Q01,Q02,Q10,Q11,Q20, num;
  416. int DC1,DC2,DC3,DC4,DC5,DC6,DC7,DC8,DC9;
  417. int Al, pred;
  418. /* Force some input to be done if we are getting ahead of the input. */
  419. while (cinfo->input_scan_number <= cinfo->output_scan_number &&
  420. ! cinfo->inputctl->eoi_reached) {
  421. if (cinfo->input_scan_number == cinfo->output_scan_number) {
  422. /* If input is working on current scan, we ordinarily want it to
  423. * have completed the current row. But if input scan is DC,
  424. * we want it to keep one row ahead so that next block row's DC
  425. * values are up to date.
  426. */
  427. JDIMENSION delta = (cinfo->Ss == 0) ? 1 : 0;
  428. if (cinfo->input_iMCU_row > cinfo->output_iMCU_row+delta)
  429. break;
  430. }
  431. if ((*cinfo->inputctl->consume_input)(cinfo) == JPEG_SUSPENDED)
  432. return JPEG_SUSPENDED;
  433. }
  434. /* OK, output from the virtual arrays. */
  435. for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
  436. ci++, compptr++) {
  437. /* Don't bother to IDCT an uninteresting component. */
  438. if (! compptr->component_needed)
  439. continue;
  440. /* Count non-dummy DCT block rows in this iMCU row. */
  441. if (cinfo->output_iMCU_row < last_iMCU_row) {
  442. block_rows = compptr->v_samp_factor;
  443. access_rows = block_rows * 2; /* this and next iMCU row */
  444. last_row = FALSE;
  445. } else {
  446. /* NB: can't use last_row_height here; it is input-side-dependent! */
  447. block_rows = (int) (compptr->height_in_blocks % compptr->v_samp_factor);
  448. if (block_rows == 0) block_rows = compptr->v_samp_factor;
  449. access_rows = block_rows; /* this iMCU row only */
  450. last_row = TRUE;
  451. }
  452. /* Align the virtual buffer for this component. */
  453. if (cinfo->output_iMCU_row > 0) {
  454. access_rows += compptr->v_samp_factor; /* prior iMCU row too */
  455. buffer = (*cinfo->mem->access_virt_barray)
  456. ((j_common_ptr) cinfo, coef->whole_image[ci],
  457. (cinfo->output_iMCU_row - 1) * compptr->v_samp_factor,
  458. (JDIMENSION) access_rows, FALSE);
  459. buffer += compptr->v_samp_factor; /* point to current iMCU row */
  460. first_row = FALSE;
  461. } else {
  462. buffer = (*cinfo->mem->access_virt_barray)
  463. ((j_common_ptr) cinfo, coef->whole_image[ci],
  464. (JDIMENSION) 0, (JDIMENSION) access_rows, FALSE);
  465. first_row = TRUE;
  466. }
  467. /* Fetch component-dependent info */
  468. coef_bits = coef->coef_bits_latch + (ci * SAVED_COEFS);
  469. quanttbl = compptr->quant_table;
  470. Q00 = quanttbl->quantval[0];
  471. Q01 = quanttbl->quantval[1];
  472. Q10 = quanttbl->quantval[2];
  473. Q20 = quanttbl->quantval[3];
  474. Q11 = quanttbl->quantval[4];
  475. Q02 = quanttbl->quantval[5];
  476. inverse_DCT = cinfo->idct->inverse_DCT[ci];
  477. output_ptr = output_buf[ci];
  478. /* Loop over all DCT blocks to be processed. */
  479. for (block_row = 0; block_row < block_rows; block_row++) {
  480. buffer_ptr = buffer[block_row];
  481. if (first_row && block_row == 0)
  482. prev_block_row = buffer_ptr;
  483. else
  484. prev_block_row = buffer[block_row-1];
  485. if (last_row && block_row == block_rows-1)
  486. next_block_row = buffer_ptr;
  487. else
  488. next_block_row = buffer[block_row+1];
  489. /* We fetch the surrounding DC values using a sliding-register approach.
  490. * Initialize all nine here so as to do the right thing on narrow pics.
  491. */
  492. DC1 = DC2 = DC3 = (int) prev_block_row[0][0];
  493. DC4 = DC5 = DC6 = (int) buffer_ptr[0][0];
  494. DC7 = DC8 = DC9 = (int) next_block_row[0][0];
  495. output_col = 0;
  496. last_block_column = compptr->width_in_blocks - 1;
  497. for (block_num = 0; block_num <= last_block_column; block_num++) {
  498. /* Fetch current DCT block into workspace so we can modify it. */
  499. jcopy_block_row(buffer_ptr, (JBLOCKROW) workspace, (JDIMENSION) 1);
  500. /* Update DC values */
  501. if (block_num < last_block_column) {
  502. DC3 = (int) prev_block_row[1][0];
  503. DC6 = (int) buffer_ptr[1][0];
  504. DC9 = (int) next_block_row[1][0];
  505. }
  506. /* Compute coefficient estimates per K.8.
  507. * An estimate is applied only if coefficient is still zero,
  508. * and is not known to be fully accurate.
  509. */
  510. /* AC01 */
  511. if ((Al=coef_bits[1]) != 0 && workspace[1] == 0) {
  512. num = 36 * Q00 * (DC4 - DC6);
  513. if (num >= 0) {
  514. pred = (int) (((Q01<<7) + num) / (Q01<<8));
  515. if (Al > 0 && pred >= (1<<Al))
  516. pred = (1<<Al)-1;
  517. } else {
  518. pred = (int) (((Q01<<7) - num) / (Q01<<8));
  519. if (Al > 0 && pred >= (1<<Al))
  520. pred = (1<<Al)-1;
  521. pred = -pred;
  522. }
  523. workspace[1] = (JCOEF) pred;
  524. }
  525. /* AC10 */
  526. if ((Al=coef_bits[2]) != 0 && workspace[8] == 0) {
  527. num = 36 * Q00 * (DC2 - DC8);
  528. if (num >= 0) {
  529. pred = (int) (((Q10<<7) + num) / (Q10<<8));
  530. if (Al > 0 && pred >= (1<<Al))
  531. pred = (1<<Al)-1;
  532. } else {
  533. pred = (int) (((Q10<<7) - num) / (Q10<<8));
  534. if (Al > 0 && pred >= (1<<Al))
  535. pred = (1<<Al)-1;
  536. pred = -pred;
  537. }
  538. workspace[8] = (JCOEF) pred;
  539. }
  540. /* AC20 */
  541. if ((Al=coef_bits[3]) != 0 && workspace[16] == 0) {
  542. num = 9 * Q00 * (DC2 + DC8 - 2*DC5);
  543. if (num >= 0) {
  544. pred = (int) (((Q20<<7) + num) / (Q20<<8));
  545. if (Al > 0 && pred >= (1<<Al))
  546. pred = (1<<Al)-1;
  547. } else {
  548. pred = (int) (((Q20<<7) - num) / (Q20<<8));
  549. if (Al > 0 && pred >= (1<<Al))
  550. pred = (1<<Al)-1;
  551. pred = -pred;
  552. }
  553. workspace[16] = (JCOEF) pred;
  554. }
  555. /* AC11 */
  556. if ((Al=coef_bits[4]) != 0 && workspace[9] == 0) {
  557. num = 5 * Q00 * (DC1 - DC3 - DC7 + DC9);
  558. if (num >= 0) {
  559. pred = (int) (((Q11<<7) + num) / (Q11<<8));
  560. if (Al > 0 && pred >= (1<<Al))
  561. pred = (1<<Al)-1;
  562. } else {
  563. pred = (int) (((Q11<<7) - num) / (Q11<<8));
  564. if (Al > 0 && pred >= (1<<Al))
  565. pred = (1<<Al)-1;
  566. pred = -pred;
  567. }
  568. workspace[9] = (JCOEF) pred;
  569. }
  570. /* AC02 */
  571. if ((Al=coef_bits[5]) != 0 && workspace[2] == 0) {
  572. num = 9 * Q00 * (DC4 + DC6 - 2*DC5);
  573. if (num >= 0) {
  574. pred = (int) (((Q02<<7) + num) / (Q02<<8));
  575. if (Al > 0 && pred >= (1<<Al))
  576. pred = (1<<Al)-1;
  577. } else {
  578. pred = (int) (((Q02<<7) - num) / (Q02<<8));
  579. if (Al > 0 && pred >= (1<<Al))
  580. pred = (1<<Al)-1;
  581. pred = -pred;
  582. }
  583. workspace[2] = (JCOEF) pred;
  584. }
  585. /* OK, do the IDCT */
  586. (*inverse_DCT) (cinfo, compptr, (JCOEFPTR) workspace,
  587. output_ptr, output_col);
  588. /* Advance for next column */
  589. DC1 = DC2; DC2 = DC3;
  590. DC4 = DC5; DC5 = DC6;
  591. DC7 = DC8; DC8 = DC9;
  592. buffer_ptr++, prev_block_row++, next_block_row++;
  593. output_col += compptr->DCT_scaled_size;
  594. }
  595. output_ptr += compptr->DCT_scaled_size;
  596. }
  597. }
  598. if (++(cinfo->output_iMCU_row) < cinfo->total_iMCU_rows)
  599. return JPEG_ROW_COMPLETED;
  600. return JPEG_SCAN_COMPLETED;
  601. }
  602. #endif /* BLOCK_SMOOTHING_SUPPORTED */
  603. /*
  604. * Initialize coefficient buffer controller.
  605. */
  606. GLOBAL void
  607. jinit_d_coef_controller (j_decompress_ptr cinfo, boolean need_full_buffer)
  608. {
  609. my_coef_ptr coef;
  610. coef = (my_coef_ptr)
  611. (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_IMAGE,
  612. SIZEOF(my_coef_controller));
  613. cinfo->coef = (struct jpeg_d_coef_controller *) coef;
  614. coef->pub.start_input_pass = start_input_pass;
  615. coef->pub.start_output_pass = start_output_pass;
  616. #ifdef BLOCK_SMOOTHING_SUPPORTED
  617. coef->coef_bits_latch = NULL;
  618. #endif
  619. /* Create the coefficient buffer. */
  620. if (need_full_buffer) {
  621. #ifdef D_MULTISCAN_FILES_SUPPORTED
  622. /* Allocate a full-image virtual array for each component, */
  623. /* padded to a multiple of samp_factor DCT blocks in each direction. */
  624. /* Note we ask for a pre-zeroed array. */
  625. int ci, access_rows;
  626. jpeg_component_info *compptr;
  627. for (ci = 0, compptr = cinfo->comp_info; ci < cinfo->num_components;
  628. ci++, compptr++) {
  629. access_rows = compptr->v_samp_factor;
  630. #ifdef BLOCK_SMOOTHING_SUPPORTED
  631. /* If block smoothing could be used, need a bigger window */
  632. if (cinfo->progressive_mode)
  633. access_rows *= 3;
  634. #endif
  635. coef->whole_image[ci] = (*cinfo->mem->request_virt_barray)
  636. ((j_common_ptr) cinfo, JPOOL_IMAGE, TRUE,
  637. (JDIMENSION) jround_up((long) compptr->width_in_blocks,
  638. (long) compptr->h_samp_factor),
  639. (JDIMENSION) jround_up((long) compptr->height_in_blocks,
  640. (long) compptr->v_samp_factor),
  641. (JDIMENSION) access_rows);
  642. }
  643. coef->pub.consume_data = consume_data;
  644. coef->pub.decompress_data = decompress_data;
  645. coef->pub.coef_arrays = coef->whole_image; /* link to virtual arrays */
  646. #else
  647. ERREXIT(cinfo, JERR_NOT_COMPILED);
  648. #endif
  649. } else {
  650. /* We only need a single-MCU buffer. */
  651. JBLOCKROW buffer;
  652. int i;
  653. buffer = (JBLOCKROW)
  654. (*cinfo->mem->alloc_large) ((j_common_ptr) cinfo, JPOOL_IMAGE,
  655. D_MAX_BLOCKS_IN_MCU * SIZEOF(JBLOCK));
  656. for (i = 0; i < D_MAX_BLOCKS_IN_MCU; i++) {
  657. coef->MCU_buffer[i] = buffer + i;
  658. }
  659. coef->pub.consume_data = dummy_consume_data;
  660. coef->pub.decompress_data = decompress_onepass;
  661. coef->pub.coef_arrays = NULL; /* flag for no virtual arrays */
  662. }
  663. }