1 /* Copyright (C) 1997, 1998, 1999, 2000 Aladdin Enterprises. All rights reserved.
2
3 This software is provided AS-IS with no warranty, either express or
4 implied.
5
6 This software is distributed under license and may not be copied,
7 modified or distributed except as expressly authorized under the terms
8 of the license contained in the file LICENSE in this distribution.
9
10 For more information about licensing, please refer to
11 http://www.ghostscript.com/licensing/. For information on
12 commercial licensing, go to http://www.artifex.com/licensing/ or
13 contact Artifex Software, Inc., 101 Lucas Valley Road #110,
14 San Rafael, CA 94903, U.S.A., +1(415)492-9861.
15 */
16
17 /* $Id: gximage3.c,v 1.15 2005/03/29 14:26:26 igor Exp $ */
18 /* ImageType 3 image implementation */
19 #include "math_.h" /* for ceil, floor */
20 #include "memory_.h"
21 #include "gx.h"
22 #include "gserrors.h"
23 #include "gsbitops.h"
24 #include "gscspace.h"
25 #include "gsstruct.h"
26 #include "gxdevice.h"
27 #include "gxdevmem.h"
28 #include "gxclipm.h"
29 #include "gximage3.h"
30 #include "gxistate.h"
31
32 /* Forward references */
33 private dev_proc_begin_typed_image(gx_begin_image3);
34 private image_enum_proc_plane_data(gx_image3_plane_data);
35 private image_enum_proc_end_image(gx_image3_end_image);
36 private image_enum_proc_flush(gx_image3_flush);
37 private image_enum_proc_planes_wanted(gx_image3_planes_wanted);
38
39 /* GC descriptor */
40 private_st_gs_image3();
41
42 /* Define the image type for ImageType 3 images. */
43 const gx_image_type_t gs_image_type_3 = {
44 &st_gs_image3, gx_begin_image3, gx_data_image_source_size,
45 gx_image_no_sput, gx_image_no_sget, gx_image_default_release, 3
46 };
47 private const gx_image_enum_procs_t image3_enum_procs = {
48 gx_image3_plane_data, gx_image3_end_image,
49 gx_image3_flush, gx_image3_planes_wanted
50 };
51
52 /* Initialize an ImageType 3 image. */
53 void
gs_image3_t_init(gs_image3_t * pim,const gs_color_space * color_space,gs_image3_interleave_type_t interleave_type)54 gs_image3_t_init(gs_image3_t * pim, const gs_color_space * color_space,
55 gs_image3_interleave_type_t interleave_type)
56 {
57 gs_pixel_image_t_init((gs_pixel_image_t *) pim, color_space);
58 pim->type = &gs_image_type_3;
59 pim->InterleaveType = interleave_type;
60 gs_data_image_t_init(&pim->MaskDict, -1);
61 }
62
63 /*
64 * We implement ImageType 3 images by interposing a mask clipper in
65 * front of an ordinary ImageType 1 image. Note that we build up the
66 * mask row-by-row as we are processing the image.
67 *
68 * We export a generalized form of the begin_image procedure for use by
69 * the PDF and PostScript writers.
70 */
71 typedef struct gx_image3_enum_s {
72 gx_image_enum_common;
73 gx_device *mdev; /* gx_device_memory in default impl. */
74 gx_device *pcdev; /* gx_device_mask_clip in default impl. */
75 gx_image_enum_common_t *mask_info;
76 gx_image_enum_common_t *pixel_info;
77 gs_image3_interleave_type_t InterleaveType;
78 int num_components; /* (not counting mask) */
79 int bpc; /* BitsPerComponent */
80 gs_memory_t *memory;
81 int mask_width, mask_height, mask_full_height;
82 int pixel_width, pixel_height, pixel_full_height;
83 byte *mask_data; /* (if chunky) */
84 byte *pixel_data; /* (if chunky) */
85 /* The following are the only members that change dynamically. */
86 int mask_y;
87 int pixel_y;
88 int mask_skip; /* # of mask rows to skip, see below */
89 } gx_image3_enum_t;
90
91 extern_st(st_gx_image_enum_common);
92 gs_private_st_suffix_add6(st_image3_enum, gx_image3_enum_t, "gx_image3_enum_t",
93 image3_enum_enum_ptrs, image3_enum_reloc_ptrs, st_gx_image_enum_common,
94 mdev, pcdev, pixel_info, mask_info, pixel_data, mask_data);
95
96 /* Define the default implementation of ImageType 3 processing. */
97 private IMAGE3_MAKE_MID_PROC(make_mid_default); /* check prototype */
98 private int
make_mid_default(gx_device ** pmidev,gx_device * dev,int width,int height,gs_memory_t * mem)99 make_mid_default(gx_device **pmidev, gx_device *dev, int width, int height,
100 gs_memory_t *mem)
101 {
102 gx_device_memory *midev =
103 gs_alloc_struct(mem, gx_device_memory, &st_device_memory,
104 "make_mid_default");
105 int code;
106
107 if (midev == 0)
108 return_error(gs_error_VMerror);
109 gs_make_mem_mono_device(midev, mem, NULL);
110 midev->bitmap_memory = mem;
111 midev->width = width;
112 midev->height = height;
113 check_device_separable((gx_device *)midev);
114 gx_device_fill_in_procs((gx_device *)midev);
115 code = dev_proc(midev, open_device)((gx_device *)midev);
116 if (code < 0) {
117 gs_free_object(mem, midev, "make_mid_default");
118 return code;
119 }
120 midev->is_open = true;
121 dev_proc(midev, fill_rectangle)
122 ((gx_device *)midev, 0, 0, width, height, (gx_color_index)0);
123 *pmidev = (gx_device *)midev;
124 return 0;
125 }
126 private IMAGE3_MAKE_MCDE_PROC(make_mcde_default); /* check prototype */
127 private int
make_mcde_default(gx_device * dev,const gs_imager_state * pis,const gs_matrix * pmat,const gs_image_common_t * pic,const gs_int_rect * prect,const gx_drawing_color * pdcolor,const gx_clip_path * pcpath,gs_memory_t * mem,gx_image_enum_common_t ** pinfo,gx_device ** pmcdev,gx_device * midev,gx_image_enum_common_t * pminfo,const gs_int_point * origin)128 make_mcde_default(gx_device *dev, const gs_imager_state *pis,
129 const gs_matrix *pmat, const gs_image_common_t *pic,
130 const gs_int_rect *prect, const gx_drawing_color *pdcolor,
131 const gx_clip_path *pcpath, gs_memory_t *mem,
132 gx_image_enum_common_t **pinfo,
133 gx_device **pmcdev, gx_device *midev,
134 gx_image_enum_common_t *pminfo,
135 const gs_int_point *origin)
136 {
137 gx_device_memory *const mdev = (gx_device_memory *)midev;
138 gx_device_mask_clip *mcdev =
139 gs_alloc_struct(mem, gx_device_mask_clip, &st_device_mask_clip,
140 "make_mcde_default");
141 gx_strip_bitmap bits; /* only gx_bitmap */
142 int code;
143
144 if (mcdev == 0)
145 return_error(gs_error_VMerror);
146 bits.data = mdev->base;
147 bits.raster = mdev->raster;
148 bits.size.x = mdev->width;
149 bits.size.y = mdev->height;
150 bits.id = gx_no_bitmap_id;
151 code = gx_mask_clip_initialize(mcdev, &gs_mask_clip_device,
152 (const gx_bitmap *)&bits, dev,
153 origin->x, origin->y, mem);
154 if (code < 0) {
155 gs_free_object(mem, mcdev, "make_mcde_default");
156 return code;
157 }
158 mcdev->tiles = bits;
159 code = dev_proc(mcdev, begin_typed_image)
160 ((gx_device *)mcdev, pis, pmat, pic, prect, pdcolor, pcpath, mem,
161 pinfo);
162 if (code < 0) {
163 gs_free_object(mem, mcdev, "make_mcde_default");
164 return code;
165 }
166 *pmcdev = (gx_device *)mcdev;
167 return 0;
168 }
169 private int
gx_begin_image3(gx_device * dev,const gs_imager_state * pis,const gs_matrix * pmat,const gs_image_common_t * pic,const gs_int_rect * prect,const gx_drawing_color * pdcolor,const gx_clip_path * pcpath,gs_memory_t * mem,gx_image_enum_common_t ** pinfo)170 gx_begin_image3(gx_device * dev,
171 const gs_imager_state * pis, const gs_matrix * pmat,
172 const gs_image_common_t * pic, const gs_int_rect * prect,
173 const gx_drawing_color * pdcolor, const gx_clip_path * pcpath,
174 gs_memory_t * mem, gx_image_enum_common_t ** pinfo)
175 {
176 return gx_begin_image3_generic(dev, pis, pmat, pic, prect, pdcolor,
177 pcpath, mem, make_mid_default,
178 make_mcde_default, pinfo);
179 }
180
181 /*
182 * Begin a generic ImageType 3 image, with client handling the creation of
183 * the mask image and mask clip devices.
184 */
185 private bool check_image3_extent(floatp mask_coeff, floatp data_coeff);
186 int
gx_begin_image3_generic(gx_device * dev,const gs_imager_state * pis,const gs_matrix * pmat,const gs_image_common_t * pic,const gs_int_rect * prect,const gx_drawing_color * pdcolor,const gx_clip_path * pcpath,gs_memory_t * mem,image3_make_mid_proc_t make_mid,image3_make_mcde_proc_t make_mcde,gx_image_enum_common_t ** pinfo)187 gx_begin_image3_generic(gx_device * dev,
188 const gs_imager_state *pis, const gs_matrix *pmat,
189 const gs_image_common_t *pic, const gs_int_rect *prect,
190 const gx_drawing_color *pdcolor,
191 const gx_clip_path *pcpath, gs_memory_t *mem,
192 image3_make_mid_proc_t make_mid,
193 image3_make_mcde_proc_t make_mcde,
194 gx_image_enum_common_t **pinfo)
195 {
196 const gs_image3_t *pim = (const gs_image3_t *)pic;
197 gx_image3_enum_t *penum;
198 gs_int_rect mask_rect, data_rect;
199 gx_device *mdev = 0;
200 gx_device *pcdev = 0;
201 gs_image_t i_pixel, i_mask;
202 gs_matrix mi_pixel, mi_mask, mat;
203 gs_rect mrect;
204 gs_int_point origin;
205 int code;
206
207 /* Validate the parameters. */
208 if (pim->Height <= 0 || pim->MaskDict.Height <= 0)
209 return_error(gs_error_rangecheck);
210 switch (pim->InterleaveType) {
211 default:
212 return_error(gs_error_rangecheck);
213 case interleave_chunky:
214 if (pim->MaskDict.Width != pim->Width ||
215 pim->MaskDict.Height != pim->Height ||
216 pim->MaskDict.BitsPerComponent != pim->BitsPerComponent ||
217 pim->format != gs_image_format_chunky
218 )
219 return_error(gs_error_rangecheck);
220 break;
221 case interleave_scan_lines:
222 if (pim->MaskDict.Height % pim->Height != 0 &&
223 pim->Height % pim->MaskDict.Height != 0
224 )
225 return_error(gs_error_rangecheck);
226 /* falls through */
227 case interleave_separate_source:
228 if (pim->MaskDict.BitsPerComponent != 1)
229 return_error(gs_error_rangecheck);
230 }
231 if (!check_image3_extent(pim->ImageMatrix.xx,
232 pim->MaskDict.ImageMatrix.xx) ||
233 !check_image3_extent(pim->ImageMatrix.xy,
234 pim->MaskDict.ImageMatrix.xy) ||
235 !check_image3_extent(pim->ImageMatrix.yx,
236 pim->MaskDict.ImageMatrix.yx) ||
237 !check_image3_extent(pim->ImageMatrix.yy,
238 pim->MaskDict.ImageMatrix.yy)
239 )
240 return_error(gs_error_rangecheck);
241 if ((code = gs_matrix_invert(&pim->ImageMatrix, &mi_pixel)) < 0 ||
242 (code = gs_matrix_invert(&pim->MaskDict.ImageMatrix, &mi_mask)) < 0
243 )
244 return code;
245 if (fabs(mi_pixel.tx - mi_mask.tx) >= 0.5 ||
246 fabs(mi_pixel.ty - mi_mask.ty) >= 0.5
247 )
248 return_error(gs_error_rangecheck);
249 {
250 gs_point ep, em;
251
252 if ((code = gs_point_transform(pim->Width, pim->Height, &mi_pixel,
253 &ep)) < 0 ||
254 (code = gs_point_transform(pim->MaskDict.Width,
255 pim->MaskDict.Height, &mi_mask,
256 &em)) < 0
257 )
258 return code;
259 if (fabs(ep.x - em.x) >= 0.5 || fabs(ep.y - em.y) >= 0.5)
260 return_error(gs_error_rangecheck);
261 }
262 penum = gs_alloc_struct(mem, gx_image3_enum_t, &st_image3_enum,
263 "gx_begin_image3");
264 if (penum == 0)
265 return_error(gs_error_VMerror);
266 penum->num_components =
267 gs_color_space_num_components(pim->ColorSpace);
268 gx_image_enum_common_init((gx_image_enum_common_t *) penum,
269 (const gs_data_image_t *)pim,
270 &image3_enum_procs, dev,
271 1 + penum->num_components,
272 pim->format);
273 /* Initialize pointers now in case we bail out. */
274 penum->mask_data = 0;
275 penum->pixel_data = 0;
276 if (prect) {
277 long lmw = pim->MaskDict.Width, lmh = pim->MaskDict.Height;
278
279 data_rect = *prect;
280 mask_rect.p.x = (int)(data_rect.p.x * lmw / pim->Width);
281 mask_rect.p.y = (int)(data_rect.p.y * lmh / pim->Height);
282 mask_rect.q.x = (int)((data_rect.q.x + pim->Width - 1) * lmw /
283 pim->Width);
284 mask_rect.q.y = (int)((data_rect.q.y + pim->Height - 1) * lmh /
285 pim->Height);
286 } else {
287 mask_rect.p.x = mask_rect.p.y = 0;
288 mask_rect.q.x = pim->MaskDict.Width;
289 mask_rect.q.y = pim->MaskDict.Height;
290 data_rect.p.x = data_rect.p.y = 0;
291 data_rect.q.x = pim->Width;
292 data_rect.q.y = pim->Height;
293 }
294 penum->mask_width = mask_rect.q.x - mask_rect.p.x;
295 penum->mask_height = mask_rect.q.y - mask_rect.p.y;
296 penum->mask_full_height = pim->MaskDict.Height;
297 penum->mask_y = 0;
298 penum->mask_skip = 0;
299 penum->pixel_width = data_rect.q.x - data_rect.p.x;
300 penum->pixel_height = data_rect.q.y - data_rect.p.y;
301 penum->pixel_full_height = pim->Height;
302 penum->pixel_y = 0;
303 penum->mask_info = 0;
304 penum->pixel_info = 0;
305 if (pim->InterleaveType == interleave_chunky) {
306 /* Allocate row buffers for the mask and pixel data. */
307 penum->pixel_data =
308 gs_alloc_bytes(mem,
309 (penum->pixel_width * pim->BitsPerComponent *
310 penum->num_components + 7) >> 3,
311 "gx_begin_image3(pixel_data)");
312 penum->mask_data =
313 gs_alloc_bytes(mem, (penum->mask_width + 7) >> 3,
314 "gx_begin_image3(mask_data)");
315 if (penum->pixel_data == 0 || penum->mask_data == 0) {
316 code = gs_note_error(gs_error_VMerror);
317 goto out1;
318 }
319 }
320 penum->InterleaveType = pim->InterleaveType;
321 penum->bpc = pim->BitsPerComponent;
322 penum->memory = mem;
323 mrect.p.x = mrect.p.y = 0;
324 mrect.q.x = pim->MaskDict.Width;
325 mrect.q.y = pim->MaskDict.Height;
326 if (pmat == 0)
327 pmat = &ctm_only(pis);
328 if ((code = gs_matrix_multiply(&mi_mask, pmat, &mat)) < 0 ||
329 (code = gs_bbox_transform(&mrect, &mat, &mrect)) < 0
330 )
331 return code;
332
333 origin.x = (mrect.p.x < 0) ? (int)ceil(mrect.p.x) : (int)floor(mrect.p.x);
334 origin.y = (mrect.p.y < 0) ? (int)ceil(mrect.p.y) : (int)floor(mrect.p.y);
335 code = make_mid(&mdev, dev, (int)ceil(mrect.q.x) - origin.x,
336 (int)ceil(mrect.q.y) - origin.y, mem);
337 if (code < 0)
338 goto out1;
339 penum->mdev = mdev;
340 gs_image_t_init_mask(&i_mask, false);
341 i_mask.adjust = false;
342 {
343 const gx_image_type_t *type1 = i_mask.type;
344
345 *(gs_data_image_t *)&i_mask = pim->MaskDict;
346 i_mask.type = type1;
347 i_mask.BitsPerComponent = 1;
348 }
349 {
350 gx_drawing_color dcolor;
351 gs_matrix m_mat;
352
353 set_nonclient_dev_color(&dcolor, 1);
354 /*
355 * Adjust the translation for rendering the mask to include a
356 * negative translation by origin.{x,y} in device space.
357 */
358 m_mat = *pmat;
359 m_mat.tx -= origin.x;
360 m_mat.ty -= origin.y;
361 /*
362 * Note that pis = NULL here, since we don't want to have to
363 * create another imager state with default log_op, etc.
364 */
365 code = gx_device_begin_typed_image(mdev, NULL, &m_mat,
366 (const gs_image_common_t *)&i_mask,
367 &mask_rect, &dcolor, NULL, mem,
368 &penum->mask_info);
369 if (code < 0)
370 goto out2;
371 }
372 gs_image_t_init(&i_pixel, pim->ColorSpace);
373 {
374 const gx_image_type_t *type1 = i_pixel.type;
375 const bool mask = i_pixel.ImageMask;
376
377 /* On gcc 2.95.4 for Alpha all structures are padded to 8 byte
378 * boundary but sizeof(bool) == 4. First member of the subclass
379 * is restored because it is overwritten by padding data.
380 */
381 *(gs_pixel_image_t *)&i_pixel = *(const gs_pixel_image_t *)pim;
382 i_pixel.ImageMask = mask;
383 i_pixel.type = type1;
384 }
385 code = make_mcde(dev, pis, pmat, (const gs_image_common_t *)&i_pixel,
386 prect, pdcolor, pcpath, mem, &penum->pixel_info,
387 &pcdev, mdev, penum->mask_info, &origin);
388 if (code < 0)
389 goto out3;
390 penum->pcdev = pcdev;
391 /*
392 * Set num_planes, plane_widths, and plane_depths from the values in the
393 * enumerators for the mask and the image data.
394 */
395 switch (pim->InterleaveType) {
396 case interleave_chunky:
397 /* Add the mask data to the depth of the image data. */
398 penum->num_planes = 1;
399 penum->plane_widths[0] = pim->Width;
400 penum->plane_depths[0] =
401 penum->pixel_info->plane_depths[0] *
402 (penum->num_components + 1) / penum->num_components;
403 break;
404 case interleave_scan_lines:
405 /*
406 * There is only 1 plane, with dynamically changing width & depth.
407 * Initialize it for the mask data, since that is what will be
408 * read first.
409 */
410 penum->num_planes = 1;
411 penum->plane_depths[0] = 1;
412 penum->plane_widths[0] = pim->MaskDict.Width;
413 break;
414 case interleave_separate_source:
415 /* Insert the mask data as a separate plane before the image data. */
416 penum->num_planes = penum->pixel_info->num_planes + 1;
417 penum->plane_widths[0] = pim->MaskDict.Width;
418 penum->plane_depths[0] = 1;
419 memcpy(&penum->plane_widths[1], &penum->pixel_info->plane_widths[0],
420 (penum->num_planes - 1) * sizeof(penum->plane_widths[0]));
421 memcpy(&penum->plane_depths[1], &penum->pixel_info->plane_depths[0],
422 (penum->num_planes - 1) * sizeof(penum->plane_depths[0]));
423 break;
424 }
425 gx_device_retain(mdev, true); /* will free explicitly */
426 gx_device_retain(pcdev, true); /* ditto */
427 *pinfo = (gx_image_enum_common_t *) penum;
428 return 0;
429 out3:
430 gx_image_end(penum->mask_info, false);
431 out2:
432 gs_closedevice(mdev);
433 gs_free_object(mem, mdev, "gx_begin_image3(mdev)");
434 out1:
435 gs_free_object(mem, penum->mask_data, "gx_begin_image3(mask_data)");
436 gs_free_object(mem, penum->pixel_data, "gx_begin_image3(pixel_data)");
437 gs_free_object(mem, penum, "gx_begin_image3");
438 return code;
439 }
440 private bool
check_image3_extent(floatp mask_coeff,floatp data_coeff)441 check_image3_extent(floatp mask_coeff, floatp data_coeff)
442 {
443 if (mask_coeff == 0)
444 return data_coeff == 0;
445 if (data_coeff == 0 || (mask_coeff > 0) != (data_coeff > 0))
446 return false;
447 return true;
448 }
449
450 /*
451 * Return > 0 if we want more mask now, < 0 if we want more data now,
452 * 0 if we want both.
453 */
454 private int
planes_next(const gx_image3_enum_t * penum)455 planes_next(const gx_image3_enum_t *penum)
456 {
457 /*
458 * The invariant we need to maintain is that we always have at least as
459 * much mask as pixel data, i.e., mask_y / mask_full_height >=
460 * pixel_y / pixel_full_height, or, to avoid floating point,
461 * mask_y * pixel_full_height >= pixel_y * mask_full_height.
462 * We know this condition is true now;
463 * return a value that indicates how to maintain it.
464 */
465 int mask_h = penum->mask_full_height;
466 int pixel_h = penum->pixel_full_height;
467 long current = penum->pixel_y * (long)mask_h -
468 penum->mask_y * (long)pixel_h;
469
470 #ifdef DEBUG
471 if (current > 0)
472 lprintf4("planes_next invariant fails: %d/%d > %d/%d\n",
473 penum->pixel_y, penum->pixel_full_height,
474 penum->mask_y, penum->mask_full_height);
475 #endif
476 return ((current += mask_h) <= 0 ? -1 :
477 current - pixel_h <= 0 ? 0 : 1);
478 }
479
480 /* Process the next piece of an ImageType 3 image. */
481 private int
gx_image3_plane_data(gx_image_enum_common_t * info,const gx_image_plane_t * planes,int height,int * rows_used)482 gx_image3_plane_data(gx_image_enum_common_t * info,
483 const gx_image_plane_t * planes, int height,
484 int *rows_used)
485 {
486 gx_image3_enum_t *penum = (gx_image3_enum_t *) info;
487 int pixel_height = penum->pixel_height;
488 int pixel_used = 0;
489 int mask_height = penum->mask_height;
490 int mask_used = 0;
491 int h1 = max(pixel_height - penum->pixel_y, mask_height - penum->mask_y);
492 int h = min(height, h1);
493 const gx_image_plane_t *pixel_planes;
494 gx_image_plane_t pixel_plane, mask_plane;
495 int code = 0;
496
497 /* Initialized rows_used in case we get an error. */
498 *rows_used = 0;
499 switch (penum->InterleaveType) {
500 case interleave_chunky:
501 if (h <= 0)
502 return 0;
503 if (h > 1) {
504 /* Do the operation one row at a time. */
505 int h_orig = h;
506
507 mask_plane = planes[0];
508 do {
509 code = gx_image3_plane_data(info, &mask_plane, 1,
510 rows_used);
511 h -= *rows_used;
512 if (code)
513 break;
514 mask_plane.data += mask_plane.raster;
515 } while (h);
516 *rows_used = h_orig - h;
517 return code;
518 } {
519 /* Pull apart the source data and the mask data. */
520 int bpc = penum->bpc;
521 int num_components = penum->num_components;
522 int width = penum->pixel_width;
523
524 /* We do this in the simplest (not fastest) way for now. */
525 uint bit_x = bpc * (num_components + 1) * planes[0].data_x;
526
527 sample_load_declare_setup(sptr, sbit,
528 planes[0].data + (bit_x >> 3),
529 bit_x & 7, bpc);
530 sample_store_declare_setup(mptr, mbit, mbbyte,
531 penum->mask_data, 0, 1);
532 sample_store_declare_setup(pptr, pbit, pbbyte,
533 penum->pixel_data, 0, bpc);
534 int x;
535
536 mask_plane.data = mptr;
537 mask_plane.data_x = 0;
538 /* raster doesn't matter */
539 pixel_plane.data = pptr;
540 pixel_plane.data_x = 0;
541 /* raster doesn't matter */
542 pixel_planes = &pixel_plane;
543 for (x = 0; x < width; ++x) {
544 uint value;
545 int i;
546
547 sample_load_next12(value, sptr, sbit, bpc);
548 sample_store_next12(value != 0, mptr, mbit, 1, mbbyte);
549 for (i = 0; i < num_components; ++i) {
550 sample_load_next12(value, sptr, sbit, bpc);
551 sample_store_next12(value, pptr, pbit, bpc, pbbyte);
552 }
553 }
554 sample_store_flush(mptr, mbit, 1, mbbyte);
555 sample_store_flush(pptr, pbit, bpc, pbbyte);
556 }
557 break;
558 case interleave_scan_lines:
559 if (planes_next(penum) >= 0) {
560 /* This is mask data. */
561 mask_plane = planes[0];
562 pixel_planes = &pixel_plane;
563 pixel_plane.data = 0;
564 } else {
565 /* This is pixel data. */
566 mask_plane.data = 0;
567 pixel_planes = planes;
568 }
569 break;
570 case interleave_separate_source:
571 /*
572 * In order to be able to recover from interruptions, we must
573 * limit separate-source processing to 1 scan line at a time.
574 */
575 if (h > 1)
576 h = 1;
577 mask_plane = planes[0];
578 pixel_planes = planes + 1;
579 break;
580 default: /* not possible */
581 return_error(gs_error_rangecheck);
582 }
583 /*
584 * Process the mask data first, so it will set up the mask
585 * device for clipping the pixel data.
586 */
587 if (mask_plane.data) {
588 /*
589 * If, on the last call, we processed some mask rows successfully
590 * but processing the pixel rows was interrupted, we set rows_used
591 * to indicate the number of pixel rows processed (since there is
592 * no way to return two rows_used values). If this happened, some
593 * mask rows may get presented again. We must skip over them
594 * rather than processing them again.
595 */
596 int skip = penum->mask_skip;
597
598 if (skip >= h) {
599 penum->mask_skip = skip - (mask_used = h);
600 } else {
601 int mask_h = h - skip;
602
603 mask_plane.data += skip * mask_plane.raster;
604 penum->mask_skip = 0;
605 code = gx_image_plane_data_rows(penum->mask_info, &mask_plane,
606 mask_h, &mask_used);
607 mask_used += skip;
608 }
609 *rows_used = mask_used;
610 penum->mask_y += mask_used;
611 if (code < 0)
612 return code;
613 }
614 if (pixel_planes[0].data) {
615 /*
616 * If necessary, flush any buffered mask data to the mask clipping
617 * device.
618 */
619 gx_image_flush(penum->mask_info);
620 code = gx_image_plane_data_rows(penum->pixel_info, pixel_planes, h,
621 &pixel_used);
622 /*
623 * There isn't any way to set rows_used if different amounts of
624 * the mask and pixel data were used. Fake it.
625 */
626 *rows_used = pixel_used;
627 /*
628 * Don't return code yet: we must account for the fact that
629 * some mask data may have been processed.
630 */
631 penum->pixel_y += pixel_used;
632 if (code < 0) {
633 /*
634 * We must prevent the mask data from being processed again.
635 * We rely on the fact that h > 1 is only possible if the
636 * mask and pixel data have the same Y scaling.
637 */
638 if (mask_used > pixel_used) {
639 int skip = mask_used - pixel_used;
640
641 penum->mask_skip = skip;
642 penum->mask_y -= skip;
643 mask_used = pixel_used;
644 }
645 }
646 }
647 if_debug5('b', "[b]image3 h=%d %smask_y=%d %spixel_y=%d\n",
648 h, (mask_plane.data ? "+" : ""), penum->mask_y,
649 (pixel_planes[0].data ? "+" : ""), penum->pixel_y);
650 if (penum->mask_y >= penum->mask_height &&
651 penum->pixel_y >= penum->pixel_height)
652 return 1;
653 if (penum->InterleaveType == interleave_scan_lines) {
654 /* Update the width and depth in the enumerator. */
655 if (planes_next(penum) >= 0) { /* want mask data next */
656 penum->plane_widths[0] = penum->mask_width;
657 penum->plane_depths[0] = 1;
658 } else { /* want pixel data next */
659 penum->plane_widths[0] = penum->pixel_width;
660 penum->plane_depths[0] = penum->pixel_info->plane_depths[0];
661 }
662 }
663 /*
664 * The mask may be complete (gx_image_plane_data_rows returned 1),
665 * but there may still be pixel rows to go, so don't return 1 here.
666 */
667 return (code < 0 ? code : 0);
668 }
669
670 /* Flush buffered data. */
671 private int
gx_image3_flush(gx_image_enum_common_t * info)672 gx_image3_flush(gx_image_enum_common_t * info)
673 {
674 gx_image3_enum_t * const penum = (gx_image3_enum_t *) info;
675 int code = gx_image_flush(penum->mask_info);
676
677 if (code >= 0)
678 code = gx_image_flush(penum->pixel_info);
679 return code;
680 }
681
682 /* Determine which data planes are wanted. */
683 private bool
gx_image3_planes_wanted(const gx_image_enum_common_t * info,byte * wanted)684 gx_image3_planes_wanted(const gx_image_enum_common_t * info, byte *wanted)
685 {
686 const gx_image3_enum_t * const penum = (const gx_image3_enum_t *) info;
687
688 switch (penum->InterleaveType) {
689 case interleave_chunky: /* only 1 plane */
690 wanted[0] = 0xff;
691 return true;
692 case interleave_scan_lines: /* only 1 plane, but varying width/depth */
693 wanted[0] = 0xff;
694 return false;
695 case interleave_separate_source: {
696 /*
697 * We always want at least as much of the mask to be filled as the
698 * pixel data. next > 0 iff we've processed more data than mask.
699 * Plane 0 is the mask, planes [1 .. num_planes - 1] are pixel data.
700 */
701 int next = planes_next(penum);
702
703 wanted[0] = (next >= 0 ? 0xff : 0);
704 memset(wanted + 1, (next <= 0 ? 0xff : 0), info->num_planes - 1);
705 /*
706 * In principle, wanted will always be true for both mask and pixel
707 * data if the full_heights are equal. Unfortunately, even in this
708 * case, processing may be interrupted after a mask row has been
709 * passed to the underlying image processor but before the data row
710 * has been passed, in which case pixel data will be 'wanted', but
711 * not mask data, for the next call. Therefore, we must return
712 * false.
713 */
714 return false
715 /*(next == 0 &&
716 penum->mask_full_height == penum->pixel_full_height)*/;
717 }
718 default: /* can't happen */
719 memset(wanted, 0, info->num_planes);
720 return false;
721 }
722 }
723
724 /* Clean up after processing an ImageType 3 image. */
725 private int
gx_image3_end_image(gx_image_enum_common_t * info,bool draw_last)726 gx_image3_end_image(gx_image_enum_common_t * info, bool draw_last)
727 {
728 gx_image3_enum_t *penum = (gx_image3_enum_t *) info;
729 gs_memory_t *mem = penum->memory;
730 gx_device *mdev = penum->mdev;
731 int mcode = gx_image_end(penum->mask_info, draw_last);
732 gx_device *pcdev = penum->pcdev;
733 int pcode = gx_image_end(penum->pixel_info, draw_last);
734 int code1 = gs_closedevice(pcdev);
735 int code2 = gs_closedevice(mdev);
736
737 gs_free_object(mem, penum->mask_data,
738 "gx_image3_end_image(mask_data)");
739 gs_free_object(mem, penum->pixel_data,
740 "gx_image3_end_image(pixel_data)");
741 gs_free_object(mem, pcdev, "gx_image3_end_image(pcdev)");
742 gs_free_object(mem, mdev, "gx_image3_end_image(mdev)");
743 gs_free_object(mem, penum, "gx_image3_end_image");
744 return (pcode < 0 ? pcode : mcode < 0 ? mcode : code1 < 0 ? code1 : code2);
745 }
746