jcparam.cpp 20 KB

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  1. /*
  2. * jcparam.c
  3. *
  4. * Copyright (C) 1991-1995, 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 optional default-setting code for the JPEG compressor.
  9. * Applications do not have to use this file, but those that don't use it
  10. * must know a lot more about the innards of the JPEG code.
  11. */
  12. // leave this as first line for PCH reasons...
  13. //
  14. #include "../server/exe_headers.h"
  15. #define JPEG_INTERNALS
  16. #include "jinclude.h"
  17. #include "jpeglib.h"
  18. /*
  19. * Quantization table setup routines
  20. */
  21. GLOBAL void
  22. jpeg_add_quant_table (j_compress_ptr cinfo, int which_tbl,
  23. const unsigned int *basic_table,
  24. int scale_factor, boolean force_baseline)
  25. /* Define a quantization table equal to the basic_table times
  26. * a scale factor (given as a percentage).
  27. * If force_baseline is TRUE, the computed quantization table entries
  28. * are limited to 1..255 for JPEG baseline compatibility.
  29. */
  30. {
  31. JQUANT_TBL ** qtblptr = & cinfo->quant_tbl_ptrs[which_tbl];
  32. int i;
  33. long temp;
  34. /* Safety check to ensure start_compress not called yet. */
  35. if (cinfo->global_state != CSTATE_START)
  36. ERREXIT1(cinfo, JERR_BAD_STATE, cinfo->global_state);
  37. if (*qtblptr == NULL)
  38. *qtblptr = jpeg_alloc_quant_table((j_common_ptr) cinfo);
  39. for (i = 0; i < DCTSIZE2; i++) {
  40. temp = ((long) basic_table[i] * scale_factor + 50L) / 100L;
  41. /* limit the values to the valid range */
  42. if (temp <= 0L) temp = 1L;
  43. if (temp > 32767L) temp = 32767L; /* max quantizer needed for 12 bits */
  44. if (force_baseline && temp > 255L)
  45. temp = 255L; /* limit to baseline range if requested */
  46. (*qtblptr)->quantval[i] = (UINT16) temp;
  47. }
  48. /* Initialize sent_table FALSE so table will be written to JPEG file. */
  49. (*qtblptr)->sent_table = FALSE;
  50. }
  51. GLOBAL void
  52. jpeg_set_linear_quality (j_compress_ptr cinfo, int scale_factor,
  53. boolean force_baseline)
  54. /* Set or change the 'quality' (quantization) setting, using default tables
  55. * and a straight percentage-scaling quality scale. In most cases it's better
  56. * to use jpeg_set_quality (below); this entry point is provided for
  57. * applications that insist on a linear percentage scaling.
  58. */
  59. {
  60. /* This is the sample quantization table given in the JPEG spec section K.1,
  61. * but expressed in zigzag order (as are all of our quant. tables).
  62. * The spec says that the values given produce "good" quality, and
  63. * when divided by 2, "very good" quality.
  64. */
  65. static const unsigned int std_luminance_quant_tbl[DCTSIZE2] = {
  66. 16, 11, 12, 14, 12, 10, 16, 14,
  67. 13, 14, 18, 17, 16, 19, 24, 40,
  68. 26, 24, 22, 22, 24, 49, 35, 37,
  69. 29, 40, 58, 51, 61, 60, 57, 51,
  70. 56, 55, 64, 72, 92, 78, 64, 68,
  71. 87, 69, 55, 56, 80, 109, 81, 87,
  72. 95, 98, 103, 104, 103, 62, 77, 113,
  73. 121, 112, 100, 120, 92, 101, 103, 99
  74. };
  75. static const unsigned int std_chrominance_quant_tbl[DCTSIZE2] = {
  76. 17, 18, 18, 24, 21, 24, 47, 26,
  77. 26, 47, 99, 66, 56, 66, 99, 99,
  78. 99, 99, 99, 99, 99, 99, 99, 99,
  79. 99, 99, 99, 99, 99, 99, 99, 99,
  80. 99, 99, 99, 99, 99, 99, 99, 99,
  81. 99, 99, 99, 99, 99, 99, 99, 99,
  82. 99, 99, 99, 99, 99, 99, 99, 99,
  83. 99, 99, 99, 99, 99, 99, 99, 99
  84. };
  85. /* Set up two quantization tables using the specified scaling */
  86. jpeg_add_quant_table(cinfo, 0, std_luminance_quant_tbl,
  87. scale_factor, force_baseline);
  88. jpeg_add_quant_table(cinfo, 1, std_chrominance_quant_tbl,
  89. scale_factor, force_baseline);
  90. }
  91. GLOBAL int
  92. jpeg_quality_scaling (int quality)
  93. /* Convert a user-specified quality rating to a percentage scaling factor
  94. * for an underlying quantization table, using our recommended scaling curve.
  95. * The input 'quality' factor should be 0 (terrible) to 100 (very good).
  96. */
  97. {
  98. /* Safety limit on quality factor. Convert 0 to 1 to avoid zero divide. */
  99. if (quality <= 0) quality = 1;
  100. if (quality > 100) quality = 100;
  101. /* The basic table is used as-is (scaling 100) for a quality of 50.
  102. * Qualities 50..100 are converted to scaling percentage 200 - 2*Q;
  103. * note that at Q=100 the scaling is 0, which will cause j_add_quant_table
  104. * to make all the table entries 1 (hence, no quantization loss).
  105. * Qualities 1..50 are converted to scaling percentage 5000/Q.
  106. */
  107. if (quality < 50)
  108. quality = 5000 / quality;
  109. else
  110. quality = 200 - quality*2;
  111. return quality;
  112. }
  113. GLOBAL void
  114. jpeg_set_quality (j_compress_ptr cinfo, int quality, boolean force_baseline)
  115. /* Set or change the 'quality' (quantization) setting, using default tables.
  116. * This is the standard quality-adjusting entry point for typical user
  117. * interfaces; only those who want detailed control over quantization tables
  118. * would use the preceding three routines directly.
  119. */
  120. {
  121. /* Convert user 0-100 rating to percentage scaling */
  122. quality = jpeg_quality_scaling(quality);
  123. /* Set up standard quality tables */
  124. jpeg_set_linear_quality(cinfo, quality, force_baseline);
  125. }
  126. /*
  127. * Huffman table setup routines
  128. */
  129. LOCAL void
  130. add_huff_table (j_compress_ptr cinfo,
  131. JHUFF_TBL **htblptr, const UINT8 *bits, const UINT8 *val)
  132. /* Define a Huffman table */
  133. {
  134. if (*htblptr == NULL)
  135. *htblptr = jpeg_alloc_huff_table((j_common_ptr) cinfo);
  136. MEMCOPY((*htblptr)->bits, bits, SIZEOF((*htblptr)->bits));
  137. MEMCOPY((*htblptr)->huffval, val, SIZEOF((*htblptr)->huffval));
  138. /* Initialize sent_table FALSE so table will be written to JPEG file. */
  139. (*htblptr)->sent_table = FALSE;
  140. }
  141. LOCAL void
  142. std_huff_tables (j_compress_ptr cinfo)
  143. /* Set up the standard Huffman tables (cf. JPEG standard section K.3) */
  144. /* IMPORTANT: these are only valid for 8-bit data precision! */
  145. {
  146. static const UINT8 bits_dc_luminance[17] =
  147. { /* 0-base */ 0, 0, 1, 5, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0, 0, 0 };
  148. static const UINT8 val_dc_luminance[] =
  149. { 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 };
  150. static const UINT8 bits_dc_chrominance[17] =
  151. { /* 0-base */ 0, 0, 3, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0 };
  152. static const UINT8 val_dc_chrominance[] =
  153. { 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 };
  154. static const UINT8 bits_ac_luminance[17] =
  155. { /* 0-base */ 0, 0, 2, 1, 3, 3, 2, 4, 3, 5, 5, 4, 4, 0, 0, 1, 0x7d };
  156. static const UINT8 val_ac_luminance[] =
  157. { 0x01, 0x02, 0x03, 0x00, 0x04, 0x11, 0x05, 0x12,
  158. 0x21, 0x31, 0x41, 0x06, 0x13, 0x51, 0x61, 0x07,
  159. 0x22, 0x71, 0x14, 0x32, 0x81, 0x91, 0xa1, 0x08,
  160. 0x23, 0x42, 0xb1, 0xc1, 0x15, 0x52, 0xd1, 0xf0,
  161. 0x24, 0x33, 0x62, 0x72, 0x82, 0x09, 0x0a, 0x16,
  162. 0x17, 0x18, 0x19, 0x1a, 0x25, 0x26, 0x27, 0x28,
  163. 0x29, 0x2a, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39,
  164. 0x3a, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48, 0x49,
  165. 0x4a, 0x53, 0x54, 0x55, 0x56, 0x57, 0x58, 0x59,
  166. 0x5a, 0x63, 0x64, 0x65, 0x66, 0x67, 0x68, 0x69,
  167. 0x6a, 0x73, 0x74, 0x75, 0x76, 0x77, 0x78, 0x79,
  168. 0x7a, 0x83, 0x84, 0x85, 0x86, 0x87, 0x88, 0x89,
  169. 0x8a, 0x92, 0x93, 0x94, 0x95, 0x96, 0x97, 0x98,
  170. 0x99, 0x9a, 0xa2, 0xa3, 0xa4, 0xa5, 0xa6, 0xa7,
  171. 0xa8, 0xa9, 0xaa, 0xb2, 0xb3, 0xb4, 0xb5, 0xb6,
  172. 0xb7, 0xb8, 0xb9, 0xba, 0xc2, 0xc3, 0xc4, 0xc5,
  173. 0xc6, 0xc7, 0xc8, 0xc9, 0xca, 0xd2, 0xd3, 0xd4,
  174. 0xd5, 0xd6, 0xd7, 0xd8, 0xd9, 0xda, 0xe1, 0xe2,
  175. 0xe3, 0xe4, 0xe5, 0xe6, 0xe7, 0xe8, 0xe9, 0xea,
  176. 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7, 0xf8,
  177. 0xf9, 0xfa };
  178. static const UINT8 bits_ac_chrominance[17] =
  179. { /* 0-base */ 0, 0, 2, 1, 2, 4, 4, 3, 4, 7, 5, 4, 4, 0, 1, 2, 0x77 };
  180. static const UINT8 val_ac_chrominance[] =
  181. { 0x00, 0x01, 0x02, 0x03, 0x11, 0x04, 0x05, 0x21,
  182. 0x31, 0x06, 0x12, 0x41, 0x51, 0x07, 0x61, 0x71,
  183. 0x13, 0x22, 0x32, 0x81, 0x08, 0x14, 0x42, 0x91,
  184. 0xa1, 0xb1, 0xc1, 0x09, 0x23, 0x33, 0x52, 0xf0,
  185. 0x15, 0x62, 0x72, 0xd1, 0x0a, 0x16, 0x24, 0x34,
  186. 0xe1, 0x25, 0xf1, 0x17, 0x18, 0x19, 0x1a, 0x26,
  187. 0x27, 0x28, 0x29, 0x2a, 0x35, 0x36, 0x37, 0x38,
  188. 0x39, 0x3a, 0x43, 0x44, 0x45, 0x46, 0x47, 0x48,
  189. 0x49, 0x4a, 0x53, 0x54, 0x55, 0x56, 0x57, 0x58,
  190. 0x59, 0x5a, 0x63, 0x64, 0x65, 0x66, 0x67, 0x68,
  191. 0x69, 0x6a, 0x73, 0x74, 0x75, 0x76, 0x77, 0x78,
  192. 0x79, 0x7a, 0x82, 0x83, 0x84, 0x85, 0x86, 0x87,
  193. 0x88, 0x89, 0x8a, 0x92, 0x93, 0x94, 0x95, 0x96,
  194. 0x97, 0x98, 0x99, 0x9a, 0xa2, 0xa3, 0xa4, 0xa5,
  195. 0xa6, 0xa7, 0xa8, 0xa9, 0xaa, 0xb2, 0xb3, 0xb4,
  196. 0xb5, 0xb6, 0xb7, 0xb8, 0xb9, 0xba, 0xc2, 0xc3,
  197. 0xc4, 0xc5, 0xc6, 0xc7, 0xc8, 0xc9, 0xca, 0xd2,
  198. 0xd3, 0xd4, 0xd5, 0xd6, 0xd7, 0xd8, 0xd9, 0xda,
  199. 0xe2, 0xe3, 0xe4, 0xe5, 0xe6, 0xe7, 0xe8, 0xe9,
  200. 0xea, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7, 0xf8,
  201. 0xf9, 0xfa };
  202. add_huff_table(cinfo, &cinfo->dc_huff_tbl_ptrs[0],
  203. bits_dc_luminance, val_dc_luminance);
  204. add_huff_table(cinfo, &cinfo->ac_huff_tbl_ptrs[0],
  205. bits_ac_luminance, val_ac_luminance);
  206. add_huff_table(cinfo, &cinfo->dc_huff_tbl_ptrs[1],
  207. bits_dc_chrominance, val_dc_chrominance);
  208. add_huff_table(cinfo, &cinfo->ac_huff_tbl_ptrs[1],
  209. bits_ac_chrominance, val_ac_chrominance);
  210. }
  211. /*
  212. * Default parameter setup for compression.
  213. *
  214. * Applications that don't choose to use this routine must do their
  215. * own setup of all these parameters. Alternately, you can call this
  216. * to establish defaults and then alter parameters selectively. This
  217. * is the recommended approach since, if we add any new parameters,
  218. * your code will still work (they'll be set to reasonable defaults).
  219. */
  220. GLOBAL void
  221. jpeg_set_defaults (j_compress_ptr cinfo)
  222. {
  223. int i;
  224. /* Safety check to ensure start_compress not called yet. */
  225. if (cinfo->global_state != CSTATE_START)
  226. ERREXIT1(cinfo, JERR_BAD_STATE, cinfo->global_state);
  227. /* Allocate comp_info array large enough for maximum component count.
  228. * Array is made permanent in case application wants to compress
  229. * multiple images at same param settings.
  230. */
  231. if (cinfo->comp_info == NULL)
  232. cinfo->comp_info = (jpeg_component_info *)
  233. (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
  234. MAX_COMPONENTS * SIZEOF(jpeg_component_info));
  235. /* Initialize everything not dependent on the color space */
  236. cinfo->data_precision = BITS_IN_JSAMPLE;
  237. /* Set up two quantization tables using default quality of 75 */
  238. jpeg_set_quality(cinfo, 75, TRUE);
  239. /* Set up two Huffman tables */
  240. std_huff_tables(cinfo);
  241. /* Initialize default arithmetic coding conditioning */
  242. for (i = 0; i < NUM_ARITH_TBLS; i++) {
  243. cinfo->arith_dc_L[i] = 0;
  244. cinfo->arith_dc_U[i] = 1;
  245. cinfo->arith_ac_K[i] = 5;
  246. }
  247. /* Default is no multiple-scan output */
  248. cinfo->scan_info = NULL;
  249. cinfo->num_scans = 0;
  250. /* Expect normal source image, not raw downsampled data */
  251. cinfo->raw_data_in = FALSE;
  252. /* Use Huffman coding, not arithmetic coding, by default */
  253. cinfo->arith_code = FALSE;
  254. /* By default, do extra passes to optimize entropy coding */
  255. cinfo->optimize_coding = TRUE;
  256. /* The standard Huffman tables are only valid for 8-bit data precision.
  257. * If the precision is higher, force optimization on so that usable
  258. * tables will be computed. This test can be removed if default tables
  259. * are supplied that are valid for the desired precision.
  260. */
  261. if (cinfo->data_precision > 8)
  262. cinfo->optimize_coding = TRUE;
  263. /* By default, use the simpler non-cosited sampling alignment */
  264. cinfo->CCIR601_sampling = FALSE;
  265. /* No input smoothing */
  266. cinfo->smoothing_factor = 0;
  267. /* DCT algorithm preference */
  268. cinfo->dct_method = JDCT_DEFAULT;
  269. /* No restart markers */
  270. cinfo->restart_interval = 0;
  271. cinfo->restart_in_rows = 0;
  272. /* Fill in default JFIF marker parameters. Note that whether the marker
  273. * will actually be written is determined by jpeg_set_colorspace.
  274. */
  275. cinfo->density_unit = 0; /* Pixel size is unknown by default */
  276. cinfo->X_density = 1; /* Pixel aspect ratio is square by default */
  277. cinfo->Y_density = 1;
  278. /* Choose JPEG colorspace based on input space, set defaults accordingly */
  279. jpeg_default_colorspace(cinfo);
  280. }
  281. /*
  282. * Select an appropriate JPEG colorspace for in_color_space.
  283. */
  284. GLOBAL void
  285. jpeg_default_colorspace (j_compress_ptr cinfo)
  286. {
  287. switch (cinfo->in_color_space) {
  288. case JCS_GRAYSCALE:
  289. jpeg_set_colorspace(cinfo, JCS_GRAYSCALE);
  290. break;
  291. case JCS_RGB:
  292. jpeg_set_colorspace(cinfo, JCS_YCbCr);
  293. break;
  294. case JCS_YCbCr:
  295. jpeg_set_colorspace(cinfo, JCS_YCbCr);
  296. break;
  297. case JCS_CMYK:
  298. jpeg_set_colorspace(cinfo, JCS_CMYK); /* By default, no translation */
  299. break;
  300. case JCS_YCCK:
  301. jpeg_set_colorspace(cinfo, JCS_YCCK);
  302. break;
  303. case JCS_UNKNOWN:
  304. jpeg_set_colorspace(cinfo, JCS_UNKNOWN);
  305. break;
  306. default:
  307. ERREXIT(cinfo, JERR_BAD_IN_COLORSPACE);
  308. }
  309. }
  310. /*
  311. * Set the JPEG colorspace, and choose colorspace-dependent default values.
  312. */
  313. GLOBAL void
  314. jpeg_set_colorspace (j_compress_ptr cinfo, J_COLOR_SPACE colorspace)
  315. {
  316. jpeg_component_info * compptr;
  317. int ci;
  318. #define SET_COMP(index,id,hsamp,vsamp,quant,dctbl,actbl) \
  319. (compptr = &cinfo->comp_info[index], \
  320. compptr->component_id = (id), \
  321. compptr->h_samp_factor = (hsamp), \
  322. compptr->v_samp_factor = (vsamp), \
  323. compptr->quant_tbl_no = (quant), \
  324. compptr->dc_tbl_no = (dctbl), \
  325. compptr->ac_tbl_no = (actbl) )
  326. /* Safety check to ensure start_compress not called yet. */
  327. if (cinfo->global_state != CSTATE_START)
  328. ERREXIT1(cinfo, JERR_BAD_STATE, cinfo->global_state);
  329. /* For all colorspaces, we use Q and Huff tables 0 for luminance components,
  330. * tables 1 for chrominance components.
  331. */
  332. cinfo->jpeg_color_space = colorspace;
  333. cinfo->write_JFIF_header = FALSE; /* No marker for non-JFIF colorspaces */
  334. cinfo->write_Adobe_marker = FALSE; /* write no Adobe marker by default */
  335. switch (colorspace) {
  336. case JCS_GRAYSCALE:
  337. cinfo->write_JFIF_header = TRUE; /* Write a JFIF marker */
  338. cinfo->num_components = 1;
  339. /* JFIF specifies component ID 1 */
  340. SET_COMP(0, 1, 1,1, 0, 0,0);
  341. break;
  342. case JCS_RGB:
  343. cinfo->write_Adobe_marker = TRUE; /* write Adobe marker to flag RGB */
  344. cinfo->num_components = 3;
  345. SET_COMP(0, 0x52 /* 'R' */, 1,1, 0, 0,0);
  346. SET_COMP(1, 0x47 /* 'G' */, 1,1, 0, 0,0);
  347. SET_COMP(2, 0x42 /* 'B' */, 1,1, 0, 0,0);
  348. break;
  349. case JCS_YCbCr:
  350. cinfo->write_JFIF_header = TRUE; /* Write a JFIF marker */
  351. cinfo->num_components = 3;
  352. /* JFIF specifies component IDs 1,2,3 */
  353. /* We default to 2x2 subsamples of chrominance */
  354. SET_COMP(0, 1, 2,2, 0, 0,0);
  355. SET_COMP(1, 2, 1,1, 1, 1,1);
  356. SET_COMP(2, 3, 1,1, 1, 1,1);
  357. break;
  358. case JCS_CMYK:
  359. cinfo->write_Adobe_marker = TRUE; /* write Adobe marker to flag CMYK */
  360. cinfo->num_components = 4;
  361. SET_COMP(0, 0x43 /* 'C' */, 1,1, 0, 0,0);
  362. SET_COMP(1, 0x4D /* 'M' */, 1,1, 0, 0,0);
  363. SET_COMP(2, 0x59 /* 'Y' */, 1,1, 0, 0,0);
  364. SET_COMP(3, 0x4B /* 'K' */, 1,1, 0, 0,0);
  365. break;
  366. case JCS_YCCK:
  367. cinfo->write_Adobe_marker = TRUE; /* write Adobe marker to flag YCCK */
  368. cinfo->num_components = 4;
  369. SET_COMP(0, 1, 2,2, 0, 0,0);
  370. SET_COMP(1, 2, 1,1, 1, 1,1);
  371. SET_COMP(2, 3, 1,1, 1, 1,1);
  372. SET_COMP(3, 4, 2,2, 0, 0,0);
  373. break;
  374. case JCS_UNKNOWN:
  375. cinfo->num_components = cinfo->input_components;
  376. if (cinfo->num_components < 1 || cinfo->num_components > MAX_COMPONENTS)
  377. ERREXIT2(cinfo, JERR_COMPONENT_COUNT, cinfo->num_components,
  378. MAX_COMPONENTS);
  379. for (ci = 0; ci < cinfo->num_components; ci++) {
  380. SET_COMP(ci, ci, 1,1, 0, 0,0);
  381. }
  382. break;
  383. default:
  384. ERREXIT(cinfo, JERR_BAD_J_COLORSPACE);
  385. }
  386. }
  387. #ifdef C_PROGRESSIVE_SUPPORTED
  388. LOCAL jpeg_scan_info *
  389. fill_a_scan (jpeg_scan_info * scanptr, int ci,
  390. int Ss, int Se, int Ah, int Al)
  391. /* Support routine: generate one scan for specified component */
  392. {
  393. scanptr->comps_in_scan = 1;
  394. scanptr->component_index[0] = ci;
  395. scanptr->Ss = Ss;
  396. scanptr->Se = Se;
  397. scanptr->Ah = Ah;
  398. scanptr->Al = Al;
  399. scanptr++;
  400. return scanptr;
  401. }
  402. LOCAL jpeg_scan_info *
  403. fill_scans (jpeg_scan_info * scanptr, int ncomps,
  404. int Ss, int Se, int Ah, int Al)
  405. /* Support routine: generate one scan for each component */
  406. {
  407. int ci;
  408. for (ci = 0; ci < ncomps; ci++) {
  409. scanptr->comps_in_scan = 1;
  410. scanptr->component_index[0] = ci;
  411. scanptr->Ss = Ss;
  412. scanptr->Se = Se;
  413. scanptr->Ah = Ah;
  414. scanptr->Al = Al;
  415. scanptr++;
  416. }
  417. return scanptr;
  418. }
  419. LOCAL jpeg_scan_info *
  420. fill_dc_scans (jpeg_scan_info * scanptr, int ncomps, int Ah, int Al)
  421. /* Support routine: generate interleaved DC scan if possible, else N scans */
  422. {
  423. int ci;
  424. if (ncomps <= MAX_COMPS_IN_SCAN) {
  425. /* Single interleaved DC scan */
  426. scanptr->comps_in_scan = ncomps;
  427. for (ci = 0; ci < ncomps; ci++)
  428. scanptr->component_index[ci] = ci;
  429. scanptr->Ss = scanptr->Se = 0;
  430. scanptr->Ah = Ah;
  431. scanptr->Al = Al;
  432. scanptr++;
  433. } else {
  434. /* Noninterleaved DC scan for each component */
  435. scanptr = fill_scans(scanptr, ncomps, 0, 0, Ah, Al);
  436. }
  437. return scanptr;
  438. }
  439. /*
  440. * Create a recommended progressive-JPEG script.
  441. * cinfo->num_components and cinfo->jpeg_color_space must be correct.
  442. */
  443. GLOBAL void
  444. jpeg_simple_progression (j_compress_ptr cinfo)
  445. {
  446. int ncomps = cinfo->num_components;
  447. int nscans;
  448. jpeg_scan_info * scanptr;
  449. /* Safety check to ensure start_compress not called yet. */
  450. if (cinfo->global_state != CSTATE_START)
  451. ERREXIT1(cinfo, JERR_BAD_STATE, cinfo->global_state);
  452. /* Figure space needed for script. Calculation must match code below! */
  453. if (ncomps == 3 && cinfo->jpeg_color_space == JCS_YCbCr) {
  454. /* Custom script for YCbCr color images. */
  455. nscans = 10;
  456. } else {
  457. /* All-purpose script for other color spaces. */
  458. if (ncomps > MAX_COMPS_IN_SCAN)
  459. nscans = 6 * ncomps; /* 2 DC + 4 AC scans per component */
  460. else
  461. nscans = 2 + 4 * ncomps; /* 2 DC scans; 4 AC scans per component */
  462. }
  463. /* Allocate space for script. */
  464. /* We use permanent pool just in case application re-uses script. */
  465. scanptr = (jpeg_scan_info *)
  466. (*cinfo->mem->alloc_small) ((j_common_ptr) cinfo, JPOOL_PERMANENT,
  467. nscans * SIZEOF(jpeg_scan_info));
  468. cinfo->scan_info = scanptr;
  469. cinfo->num_scans = nscans;
  470. if (ncomps == 3 && cinfo->jpeg_color_space == JCS_YCbCr) {
  471. /* Custom script for YCbCr color images. */
  472. /* Initial DC scan */
  473. scanptr = fill_dc_scans(scanptr, ncomps, 0, 1);
  474. /* Initial AC scan: get some luma data out in a hurry */
  475. scanptr = fill_a_scan(scanptr, 0, 1, 5, 0, 2);
  476. /* Chroma data is too small to be worth expending many scans on */
  477. scanptr = fill_a_scan(scanptr, 2, 1, 63, 0, 1);
  478. scanptr = fill_a_scan(scanptr, 1, 1, 63, 0, 1);
  479. /* Complete spectral selection for luma AC */
  480. scanptr = fill_a_scan(scanptr, 0, 6, 63, 0, 2);
  481. /* Refine next bit of luma AC */
  482. scanptr = fill_a_scan(scanptr, 0, 1, 63, 2, 1);
  483. /* Finish DC successive approximation */
  484. scanptr = fill_dc_scans(scanptr, ncomps, 1, 0);
  485. /* Finish AC successive approximation */
  486. scanptr = fill_a_scan(scanptr, 2, 1, 63, 1, 0);
  487. scanptr = fill_a_scan(scanptr, 1, 1, 63, 1, 0);
  488. /* Luma bottom bit comes last since it's usually largest scan */
  489. scanptr = fill_a_scan(scanptr, 0, 1, 63, 1, 0);
  490. } else {
  491. /* All-purpose script for other color spaces. */
  492. /* Successive approximation first pass */
  493. scanptr = fill_dc_scans(scanptr, ncomps, 0, 1);
  494. scanptr = fill_scans(scanptr, ncomps, 1, 5, 0, 2);
  495. scanptr = fill_scans(scanptr, ncomps, 6, 63, 0, 2);
  496. /* Successive approximation second pass */
  497. scanptr = fill_scans(scanptr, ncomps, 1, 63, 2, 1);
  498. /* Successive approximation final pass */
  499. scanptr = fill_dc_scans(scanptr, ncomps, 1, 0);
  500. scanptr = fill_scans(scanptr, ncomps, 1, 63, 1, 0);
  501. }
  502. }
  503. #endif /* C_PROGRESSIVE_SUPPORTED */