Coverage Report

Created: 2025-06-10 06:49

/src/ghostpdl/base/gxclimag.c
Line
Count
Source (jump to first uncovered line)
1
/* Copyright (C) 2001-2024 Artifex Software, Inc.
2
   All Rights Reserved.
3
4
   This software is provided AS-IS with no warranty, either express or
5
   implied.
6
7
   This software is distributed under license and may not be copied,
8
   modified or distributed except as expressly authorized under the terms
9
   of the license contained in the file LICENSE in this distribution.
10
11
   Refer to licensing information at http://www.artifex.com or contact
12
   Artifex Software, Inc.,  39 Mesa Street, Suite 108A, San Francisco,
13
   CA 94129, USA, for further information.
14
*/
15
16
17
/* Higher-level image operations for band lists */
18
#include "math_.h"
19
#include "memory_.h"
20
#include "string_.h"    /* for strcmp */
21
#include "gx.h"
22
#include "gserrors.h"
23
#include "gscspace.h"
24
#include "gscdefs.h"            /* for image type table */
25
#include "gxarith.h"
26
#include "gxcspace.h"
27
#include "gxpcolor.h"
28
#include "gxdevice.h"
29
#include "gxdevmem.h"           /* must precede gxcldev.h */
30
#include "gxcldev.h"
31
#include "gxclpath.h"
32
#include "gxfmap.h"
33
#include "gxiparam.h"
34
#include "gxpath.h"
35
#include "stream.h"
36
#include "strimpl.h"            /* for sisparam.h */
37
#include "sisparam.h"
38
#include "gxcomp.h"
39
#include "gsserial.h"
40
#include "gxdhtserial.h"
41
#include "gsptype1.h"
42
#include "gsicc_manage.h"
43
#include "gsicc_cache.h"
44
#include "gxdevsop.h"
45
#include "gscindex.h"
46
#include "gsicc_cms.h"
47
#include "gximdecode.h"
48
49
extern_gx_image_type_table();
50
51
/* Define whether we should use high-level images. */
52
/* (See below for additional restrictions.) */
53
static const bool USE_HL_IMAGES = true;
54
55
/* Forward references */
56
static int cmd_put_set_data_x(gx_device_clist_writer * cldev,
57
                               gx_clist_state * pcls, int data_x);
58
static bool check_rect_for_trivial_clip(
59
    const gx_clip_path *pcpath,  /* May be NULL, clip to evaluate */
60
    int px, int py, int qx, int qy  /* corners of box to test */
61
);
62
63
static bool
64
palette_has_color(const gs_color_space *pcs, const gs_pixel_image_t * const pim)
65
0
{
66
0
    gs_color_space *pbcs = pcs->base_space;
67
0
    gs_color_space_index base_type = gs_color_space_get_index(pbcs);
68
0
    bool ((*is_neutral)(void*, int));
69
0
    int bps = pim->BitsPerComponent;
70
0
    int num_entries = 1 << bps;
71
0
    int k;
72
0
    byte psrc[4];
73
74
0
    switch(base_type) {
75
76
0
    case gs_color_space_index_DeviceGray:
77
0
    case gs_color_space_index_CIEA:
78
0
        return false;
79
0
        break;
80
81
0
    case gs_color_space_index_DeviceRGB:
82
0
    case gs_color_space_index_CIEABC:
83
0
    case gs_color_space_index_CIEDEF:
84
0
        is_neutral = &gsicc_mcm_monitor_rgb;
85
0
        break;
86
87
0
    case gs_color_space_index_DeviceCMYK:
88
0
    case gs_color_space_index_CIEDEFG:
89
0
        is_neutral = &gsicc_mcm_monitor_cmyk;
90
0
        break;
91
92
0
     case gs_color_space_index_DevicePixel:
93
0
     case gs_color_space_index_DeviceN:
94
0
     case gs_color_space_index_Separation:
95
0
     case gs_color_space_index_Indexed:
96
0
     case gs_color_space_index_Pattern:
97
0
        return true;
98
0
        break;
99
100
0
     case gs_color_space_index_ICC:
101
0
        switch(pbcs->cmm_icc_profile_data->data_cs) {
102
0
        case gsRGB:
103
0
            is_neutral = &gsicc_mcm_monitor_rgb;
104
0
            break;
105
106
0
        case gsCMYK:
107
0
            is_neutral = &gsicc_mcm_monitor_cmyk;
108
0
            break;
109
110
0
        case gsCIELAB:
111
0
            is_neutral = &gsicc_mcm_monitor_lab;
112
0
            break;
113
114
0
        default:
115
0
            return true;
116
0
        }
117
0
        break;
118
0
     default:
119
0
        return true;
120
0
    }
121
    /* Now go through the palette with the check color function */
122
0
    for (k = 0; k < num_entries; k++) {
123
0
        (void)gs_cspace_indexed_lookup_bytes(pcs, (float) k, psrc); /* this always returns 0 */
124
0
        if (!is_neutral(psrc, 1)) {
125
            /* Has color end this now */
126
0
            return true;
127
0
        }
128
0
    }
129
    /* Must not have color */
130
0
    return false;
131
0
}
132
133
134
/* ------ Driver procedures ------ */
135
136
int
137
clist_fill_mask(gx_device * dev,
138
                const byte * data, int data_x, int raster, gx_bitmap_id id,
139
                int rx, int ry, int rwidth, int rheight,
140
                const gx_drawing_color * pdcolor, int depth,
141
                gs_logical_operation_t lop, const gx_clip_path * pcpath)
142
77.0k
{
143
77.0k
    gx_device_clist_writer * const cdev =
144
77.0k
        &((gx_device_clist *)dev)->writer;
145
77.0k
    const byte *orig_data = data;       /* for writing tile */
146
77.0k
    int orig_data_x = data_x;   /* ditto */
147
77.0k
    int orig_x = rx;            /* ditto */
148
77.0k
    int orig_width = rwidth;    /* ditto */
149
77.0k
    int orig_height = rheight;  /* ditto */
150
77.0k
    int y0;
151
77.0k
    byte copy_op =
152
77.0k
        (depth > 1 ? cmd_op_copy_color_alpha :
153
77.0k
         cmd_op_copy_mono_planes);  /* Plane not needed here */
154
77.0k
    bool slow_rop =
155
77.0k
        cmd_slow_rop(dev, lop_know_S_0(lop), pdcolor) ||
156
77.0k
        cmd_slow_rop(dev, lop_know_S_1(lop), pdcolor);
157
77.0k
    cmd_rects_enum_t re;
158
159
    /* If depth > 1, this call will be translated to a copy_alpha call. */
160
    /* if the target device can't perform copy_alpha, exit now. */
161
77.0k
    if (depth > 1 && (cdev->disable_mask & clist_disable_copy_alpha) != 0)
162
0
        return_error(gs_error_unknownerror);
163
164
77.0k
    crop_copy(cdev, data, data_x, raster, id, rx, ry, rwidth, rheight);
165
77.0k
    if (rwidth <= 0 || rheight <= 0)
166
23.4k
        return 0;
167
53.5k
    y0 = ry;                    /* must do after fit_copy */
168
169
    /* If non-trivial clipping & complex clipping disabled, default */
170
    /* Also default for uncached bitmap or non-default lop; */
171
    /* We could handle more RasterOp cases here directly, but it */
172
    /* doesn't seem worth the trouble right now. */
173
    /* Lastly, the command list will translate calls with depth > 1 to */
174
    /* copy_alpha calls, so the device color must be pure */
175
53.5k
    if (((cdev->disable_mask & clist_disable_complex_clip) &&
176
53.5k
         !check_rect_for_trivial_clip(pcpath, rx, ry, rx + rwidth, ry + rheight)) ||
177
53.5k
        gs_debug_c('`') || id == gx_no_bitmap_id || lop != lop_default ||
178
53.5k
        (depth > 1 && !color_writes_pure(pdcolor, lop))
179
53.5k
        )
180
1.51k
  copy:
181
1.51k
        return gx_default_fill_mask(dev, data, data_x, raster, id,
182
1.51k
                                    rx, ry, rwidth, rheight, pdcolor, depth,
183
1.51k
                                    lop, pcpath);
184
185
52.8k
    if (cmd_check_clip_path(cdev, pcpath))
186
423
        cmd_clear_known(cdev, clip_path_known);
187
52.8k
    if (cdev->permanent_error < 0)
188
0
      return (cdev->permanent_error);
189
    /* If needed, update the trans_bbox */
190
52.8k
    if (cdev->pdf14_needed) {
191
29.6k
        gs_int_rect bbox;
192
193
29.6k
        bbox.p.x = rx;
194
29.6k
        bbox.q.x = rx + rwidth - 1;
195
29.6k
        bbox.p.y = ry;
196
29.6k
        bbox.q.y = ry + rheight - 1;
197
198
29.6k
        clist_update_trans_bbox(cdev, &bbox);
199
29.6k
    }
200
52.8k
    RECT_ENUM_INIT(re, ry, rheight);
201
93.1k
    do {
202
93.1k
        int code;
203
93.1k
        ulong offset_temp;
204
205
93.1k
        RECT_STEP_INIT(re);
206
93.1k
        code = cmd_update_lop(cdev, re.pcls, lop);
207
93.1k
        if (code < 0)
208
0
            return code;
209
93.1k
        if (depth > 1 && !re.pcls->color_is_alpha) {
210
0
            byte *dp;
211
212
0
            code = set_cmd_put_op(&dp, cdev, re.pcls, cmd_opv_set_copy_alpha, 1);
213
0
            if (code < 0)
214
0
                return code;
215
0
            re.pcls->color_is_alpha = 1;
216
0
        }
217
93.1k
        code = cmd_do_write_unknown(cdev, re.pcls, clip_path_known);
218
93.1k
        if (code >= 0)
219
93.1k
            code = cmd_do_enable_clip(cdev, re.pcls, pcpath != NULL);
220
93.1k
        if (code < 0)
221
0
            return code;
222
93.1k
        code = cmd_put_drawing_color(cdev, re.pcls, pdcolor, &re,
223
93.1k
                                     devn_not_tile_fill);
224
93.1k
        if (code == gs_error_unregistered)
225
0
            return code;
226
93.1k
        if (depth > 1 && code >= 0)
227
0
            code = cmd_set_color1(cdev, re.pcls, pdcolor->colors.pure);
228
93.1k
        if (code < 0)
229
0
            return code;
230
93.1k
        re.pcls->color_usage.slow_rop |= slow_rop;
231
        /* Put it in the cache if possible. */
232
93.1k
        if (!cls_has_tile_id(cdev, re.pcls, id, offset_temp)) {
233
89.3k
            gx_strip_bitmap tile;
234
235
89.3k
            tile.data = (byte *) orig_data;     /* actually const */
236
89.3k
            tile.raster = raster;
237
89.3k
            tile.size.x = tile.rep_width = orig_width;
238
89.3k
            tile.size.y = tile.rep_height = orig_height;
239
89.3k
            tile.rep_shift = tile.shift = 0;
240
89.3k
            tile.id = id;
241
89.3k
            tile.num_planes = 1;
242
89.3k
            code = clist_change_bits(cdev, re.pcls, &tile, depth);
243
89.3k
            if (code < 0) {
244
                /* Something went wrong; just copy the bits. */
245
0
                goto copy;
246
0
            }
247
89.3k
        }
248
93.1k
        {
249
93.1k
            gx_cmd_rect rect;
250
93.1k
            int rsize;
251
93.1k
            byte op = copy_op + cmd_copy_use_tile;
252
253
            /* Output a command to copy the entire character. */
254
            /* It will be truncated properly per band. */
255
93.1k
            rect.x = orig_x, rect.y = y0;
256
93.1k
            rect.width = orig_width, rect.height = re.yend - y0;
257
93.1k
            rsize = 1 + cmd_sizexy(rect);
258
93.1k
            if (depth == 1) rsize = rsize + cmd_sizew(0);  /* need planar_height 0 setting */
259
93.1k
            code = (orig_data_x ?
260
93.1k
                    cmd_put_set_data_x(cdev, re.pcls, orig_data_x) : 0);
261
93.1k
            if (code >= 0) {
262
93.1k
                byte *dp;
263
264
93.1k
                code = set_cmd_put_op(&dp, cdev, re.pcls, op, rsize);
265
                /*
266
                 * The following conditional is unnecessary: the two
267
                 * statements inside it should go outside the
268
                 * HANDLE_RECT.  They are here solely to pacify
269
                 * stupid compilers that don't understand that dp
270
                 * will always be set if control gets past the
271
                 * HANDLE_RECT.
272
                 */
273
93.1k
                if (code >= 0) {
274
93.1k
                    dp++;
275
93.1k
                    if (depth == 1) {
276
93.1k
                        cmd_putw(0, &dp);
277
93.1k
                    }
278
93.1k
                    cmd_putxy(rect, &dp);
279
93.1k
                }
280
93.1k
            }
281
93.1k
            if (code < 0)
282
0
                return code;
283
93.1k
            re.pcls->rect = rect;
284
93.1k
        }
285
93.1k
    } while ((re.y += re.height) < re.yend);
286
52.8k
    return 0;
287
52.8k
}
288
289
/* ------ Bitmap image driver procedures ------ */
290
291
/* Define the structure for keeping track of progress through an image. */
292
typedef struct clist_image_enum_s {
293
    gx_image_enum_common;
294
    /* Arguments of begin_image */
295
    gs_pixel_image_t image;     /* only uses Width, Height, Interpolate */
296
    gx_drawing_color dcolor;    /* only pure right now */
297
    gs_int_rect rect;
298
    const gx_clip_path *pcpath;
299
    /* Set at creation time */
300
    gs_image_format_t format;
301
    gs_int_point support;       /* extra source pixels for interpolation */
302
    int bits_per_plane;         /* bits per pixel per plane */
303
    gs_matrix matrix;           /* image space -> device space */
304
    bool uses_color;
305
    bool masked;
306
    clist_color_space_t color_space;
307
    int ymin, ymax;
308
    gx_color_usage_t color_usage;
309
    /* begin_image command prepared & ready to output */
310
    /****** SIZE COMPUTATION IS WRONG, TIED TO gximage.c, gsmatrix.c ******/
311
    byte begin_image_command[3 +
312
                            /* Width, Height */
313
                            2 * cmd_sizew_max +
314
                            /* ImageMatrix */
315
                            1 + 6 * sizeof(float) +
316
                            /* Decode */
317
                            (GS_IMAGE_MAX_COMPONENTS + 3) / 4 +
318
                              GS_IMAGE_MAX_COMPONENTS * 2 * sizeof(float) +
319
                            /* MaskColors */
320
                            GS_IMAGE_MAX_COMPONENTS * cmd_sizew_max +
321
                            /* rect */
322
                            4 * cmd_sizew_max];
323
    int begin_image_command_length;
324
    /* Updated dynamically */
325
    int y;
326
    bool color_map_is_known;
327
    bool monitor_color;
328
    image_decode_t decode;
329
    byte *buffer;  /* needed for unpacking during monitoring */
330
} clist_image_enum;
331
gs_private_st_suffix_add3(st_clist_image_enum, clist_image_enum,
332
                          "clist_image_enum", clist_image_enum_enum_ptrs,
333
                          clist_image_enum_reloc_ptrs, st_gx_image_enum_common,
334
                          pcpath, color_space.space, buffer);
335
336
static image_enum_proc_plane_data(clist_image_plane_data);
337
static image_enum_proc_end_image(clist_image_end_image);
338
static const gx_image_enum_procs_t clist_image_enum_procs =
339
{
340
    clist_image_plane_data, clist_image_end_image
341
};
342
343
/* data_size is number of bytes per component, width is number of pixels in the row. */
344
static bool
345
row_has_color(byte *data_ptr, clist_image_enum *pie_c, int data_size, int width)
346
0
{
347
0
    clist_color_space_t pclcs = pie_c->color_space;
348
0
    bool ((*is_neutral)(void*, int));
349
0
    int step_size = data_size * pie_c->decode.spp;
350
0
    byte *ptr;
351
0
    bool is_mono;
352
0
    int k;
353
354
0
    if (pclcs.icc_info.is_lab) {
355
0
        is_neutral = &gsicc_mcm_monitor_lab;
356
0
    } else {
357
0
        switch(pclcs.icc_info.icc_num_components) {
358
0
        case 3:
359
0
            is_neutral = &gsicc_mcm_monitor_rgb;
360
0
            break;
361
0
        case 4:
362
0
            is_neutral = &gsicc_mcm_monitor_cmyk;
363
0
            break;
364
0
        default:
365
0
            return true;
366
0
        }
367
0
    }
368
    /* Now go through the raster line and determine if we have any color. */
369
0
    ptr = data_ptr;
370
0
    for (k = 0; k < width; k++) {
371
0
        is_mono = is_neutral(ptr, data_size);
372
0
        if (!is_mono) {
373
0
            return true;
374
0
        }
375
0
        ptr += step_size;
376
0
    }
377
0
    return false;
378
0
}
379
380
/* Forward declarations */
381
static bool image_band_box(gx_device * dev, const clist_image_enum * pie,
382
                            int y, int h, gs_int_rect * pbox);
383
static int begin_image_command(byte *buf, uint buf_size,
384
                                const gs_image_common_t *pic);
385
static int cmd_image_plane_data(gx_device_clist_writer * cldev,
386
                                 gx_clist_state * pcls,
387
                                 const gx_image_plane_t * planes,
388
                                 const gx_image_enum_common_t * pie,
389
                                 uint bytes_per_plane,
390
                                 const uint * offsets, int dx, int h);
391
static int cmd_image_plane_data_mon(gx_device_clist_writer * cldev,
392
                                 gx_clist_state * pcls,
393
                                 const gx_image_plane_t * planes,
394
                                 const gx_image_enum_common_t * pie,
395
                                 uint bytes_per_plane,
396
                                 const uint * offsets, int dx, int h,
397
                                 bool *found_color);
398
static uint clist_image_unknowns(gx_device *dev,
399
                                  const clist_image_enum *pie);
400
static int write_image_end_all(gx_device *dev,
401
                                const clist_image_enum *pie);
402
403
/*
404
 * Since currently we are limited to writing a single subrectangle of the
405
 * image for each band, images that are rotated by angles other than
406
 * multiples of 90 degrees may wind up writing many copies of the data.
407
 * Eventually we will fix this by breaking up the image into multiple
408
 * subrectangles, but for now, don't use the high-level approach if it would
409
 * cause the data to explode because of this.
410
 */
411
static bool
412
image_matrix_ok_to_band(const gs_matrix * pmat)
413
831
{
414
831
    double t;
415
    /* Detecting a downscale when it's really noscale upsets some
416
     * customers code, so we add a fudge factor in here. This may
417
     * cause us to allow the use of high level images for some downscales
418
     * that are *nearly* noscales, but our code will cope with that. */
419
831
    float one = (float)(1.0 - 1e-5);
420
421
    /* Don't band if the matrix is (nearly) singular. */
422
831
    if (fabs(pmat->xx * pmat->yy - pmat->xy * pmat->yx) < 0.001)
423
0
        return false;
424
    /* If it's portrait, then we encode it if not a downscale */
425
831
    if (is_xxyy(pmat))
426
806
        return (fabs(pmat->xx) >= one) && (fabs(pmat->yy) >= one);
427
    /* If it's landscape, then we encode it if not a downscale */
428
25
    if (is_xyyx(pmat))
429
25
        return (fabs(pmat->xy) >= one) && (fabs(pmat->yx) >= one);
430
    /* Skewed, so do more expensive downscale test */
431
0
    if ((pmat->xx * pmat->xx + pmat->xy * pmat->xy < one) ||
432
0
        (pmat->yx * pmat->yx + pmat->yy * pmat->yy < one))
433
0
        return false;
434
    /* Otherwise only encode it if it doesn't rotate too much */
435
0
    t = (fabs(pmat->xx) + fabs(pmat->yy)) /
436
0
        (fabs(pmat->xy) + fabs(pmat->yx));
437
0
    return (t < 0.2 || t > 5);
438
0
}
439
440
/* Start processing an image. */
441
int
442
clist_begin_typed_image(gx_device * dev, const gs_gstate * pgs,
443
                        const gs_matrix * pmat, const gs_image_common_t * pic,
444
                        const gs_int_rect * prect, const gx_drawing_color * pdcolor,
445
                        const gx_clip_path * pcpath, gs_memory_t * mem,
446
                        gx_image_enum_common_t ** pinfo)
447
834
{
448
834
    const gs_pixel_image_t * const pim = (const gs_pixel_image_t *)pic;
449
834
    gx_device_clist_writer * const cdev =
450
834
        &((gx_device_clist *)dev)->writer;
451
834
    clist_image_enum *pie = 0;
452
834
    int base_index;
453
834
    bool indexed;
454
834
    bool masked = false;
455
834
    bool has_alpha = false;
456
834
    int num_components;
457
834
    int bits_per_pixel;
458
834
    bool uses_color;
459
834
    bool varying_depths = false;
460
834
    gs_matrix mat;
461
834
    gs_rect sbox, dbox;
462
834
    gs_image_format_t format;
463
834
    gx_color_usage_bits color_usage = 0;
464
834
    int code;
465
834
    bool mask_use_hl;
466
834
    clist_icc_color_t icc_zero_init = { 0 };
467
834
    cmm_profile_t *src_profile;
468
834
    cmm_srcgtag_profile_t *srcgtag_profile;
469
834
    gsicc_rendering_intents_t renderingintent;
470
834
    gsicc_blackptcomp_t blackptcomp;
471
834
    gsicc_rendering_param_t stored_rendering_cond;
472
834
    gsicc_rendering_param_t dev_render_cond;
473
834
    gs_gstate *pgs_nonconst = (gs_gstate*) pgs;
474
834
    bool intent_changed = false;
475
834
    bool bp_changed = false;
476
834
    cmm_dev_profile_t *dev_profile = NULL;
477
834
    cmm_profile_t *gs_output_profile;
478
834
    bool is_planar_dev = !!dev->num_planar_planes;
479
834
    bool render_is_valid;
480
834
    int csi;
481
834
    gx_clip_path *lpcpath = NULL;
482
483
834
    if (pgs == NULL) {
484
        /* At this time, this cannot/should not ever happen,
485
           so it's fatal if it does.
486
         */
487
0
        return_error(gs_error_Fatal);
488
0
    }
489
834
    renderingintent = pgs->renderingintent;
490
834
    blackptcomp = pgs->blackptcomp;
491
492
    /* We can only handle a limited set of image types. */
493
834
    switch ((gs_debug_c('`') ? -1 : pic->type->index)) {
494
831
    case 1:
495
831
        masked = ((const gs_image1_t *)pim)->ImageMask;
496
831
        has_alpha = ((const gs_image1_t *)pim)->Alpha != 0;
497
        /* fall through */
498
831
    case 4:
499
831
        if (pmat == 0)
500
831
            break;
501
3
    default:
502
3
        goto use_default;
503
834
    }
504
831
    format = pim->format;
505
    /* See above for why we allocate the enumerator as immovable. */
506
831
    pie = gs_alloc_struct_immovable(mem, clist_image_enum,
507
831
                                    &st_clist_image_enum,
508
831
                                    "clist_begin_typed_image");
509
831
    if (pie == 0)
510
0
        return_error(gs_error_VMerror);
511
831
#ifdef PACIFY_VALGRIND
512
    /* The following memset is required to avoid a valgrind warning
513
     * in:
514
     *   gs -I./gs/lib -sOutputFile=out.pgm -dMaxBitmap=10000
515
     *      -sDEVICE=pgmraw -r300 -Z: -sDEFAULTPAPERSIZE=letter
516
     *      -dNOPAUSE -dBATCH -K2000000 -dClusterJob -dJOBSERVER
517
     *      tests_private/ps/ps3cet/11-14.PS
518
     * Setting the individual elements of the structure directly is
519
     * not enough, which leads me to believe that we are writing the
520
     * entire struct out, padding and all.
521
     */
522
831
    memset(&pie->color_space.icc_info, 0, sizeof(pie->color_space.icc_info));
523
831
#endif
524
831
    pie->memory = mem;
525
831
    pie->buffer = NULL;
526
831
    pie->masked = masked;
527
831
    *pinfo = (gx_image_enum_common_t *) pie;
528
    /* num_planes and plane_depths[] are set later, */
529
    /* by gx_image_enum_common_init. */
530
831
    if (masked) {
531
522
        base_index = gs_color_space_index_DeviceGray;   /* arbitrary */
532
522
        indexed = false;
533
522
        num_components = 1;
534
522
        uses_color = true;
535
        /* cmd_put_drawing_color handles color_usage */
536
522
    } else {
537
309
        const gs_color_space *pcs = pim->ColorSpace;
538
539
309
        base_index = gs_color_space_get_index(pcs);
540
309
        if (base_index == gs_color_space_index_Indexed) {
541
206
            const gs_color_space *pbcs =
542
206
                gs_color_space_indexed_base_space(pcs);
543
544
206
            indexed = true;
545
206
            base_index = gs_color_space_get_index(pbcs);
546
206
            num_components = 1;
547
206
        } else {
548
103
            indexed = false;
549
103
            num_components = gs_color_space_num_components(pcs);
550
103
        }
551
309
        uses_color = pim->CombineWithColor &&
552
309
                    (rop3_uses_T(pgs->log_op) || rop3_uses_S(pgs->log_op));
553
309
    }
554
831
    code = gx_image_enum_common_init((gx_image_enum_common_t *) pie,
555
831
                                     (const gs_data_image_t *) pim,
556
831
                                     &clist_image_enum_procs, dev,
557
831
                                     num_components, format);
558
831
    {
559
831
        int i;
560
561
831
        for (i = 1; i < pie->num_planes; ++i)
562
0
            varying_depths |= pie->plane_depths[i] != pie->plane_depths[0];
563
831
    }
564
565
    /* Now, check to see if we can't handle this as a high level image. */
566
831
    if (code < 0)
567
0
        goto use_default;
568
831
    if (!USE_HL_IMAGES) /* Always use the default. */
569
0
        goto use_default;
570
831
    if (cdev->disable_mask & clist_disable_hl_image)
571
0
        goto use_default;
572
831
    if (cdev->image_enum_id != gs_no_id) /* Can't handle nested images */
573
0
        goto use_default;
574
831
    if (base_index > gs_color_space_index_DeviceCMYK &&
575
831
        base_index != gs_color_space_index_ICC)
576
        /****** Can only handle Gray, RGB, CMYK and ICC ******/
577
0
        goto use_default;
578
831
    if (has_alpha)
579
        /****** CAN'T HANDLE IMAGES WITH ALPHA YET ******/
580
0
        goto use_default;
581
831
    if (varying_depths)
582
        /****** CAN'T HANDLE IMAGES WITH IRREGULAR DEPTHS ******/
583
0
        goto use_default;
584
831
    if ((code = gs_matrix_invert(&pim->ImageMatrix, &mat)) < 0 ||
585
831
        (code = gs_matrix_multiply(&mat, &ctm_only(pgs), &mat)) < 0 ||
586
831
        !(cdev->disable_mask & clist_disable_nonrect_hl_image ?
587
0
          (is_xxyy(&mat) || is_xyyx(&mat)) :
588
831
          image_matrix_ok_to_band(&mat)))
589
83
        goto use_default;
590
591
748
    mask_use_hl =
592
748
        masked && ( gx_dc_is_pattern1_color(pdcolor) || gx_dc_is_pure(pdcolor) );
593
748
    if (!mask_use_hl && uses_color && !gx_dc_is_pure(pdcolor) &&
594
748
             !gx_dc_is_pattern1_color_clist_based(pdcolor))
595
        /* Only add in masks that are pure or pattern or pattern trans types */
596
493
        goto use_default;
597
598
    /* We've passed the tests; code it as a high level image */
599
255
    {
600
255
        int bytes_per_plane, bytes_per_row;
601
602
255
        bits_per_pixel = pim->BitsPerComponent * num_components;
603
255
        pie->decode.bps = bits_per_pixel/num_components;
604
255
        pie->decode.spp = num_components;
605
255
        pie->image = *pim;
606
255
        pie->dcolor = *pdcolor;
607
255
        if (prect)
608
0
            pie->rect = *prect;
609
255
        else {
610
255
            pie->rect.p.x = 0, pie->rect.p.y = 0;
611
255
            pie->rect.q.x = pim->Width, pie->rect.q.y = pim->Height;
612
255
        }
613
255
        pie->pgs = pgs;
614
255
        pie->pgs_level = pgs->level;
615
616
255
        if (pcpath) {
617
255
            lpcpath = gx_cpath_alloc(mem, "clist_begin_typed_image(lpcpath)");
618
255
            if (!lpcpath) {
619
0
                goto use_default;
620
0
            }
621
255
            code = gx_cpath_copy(pcpath, lpcpath);
622
255
            if (code < 0) {
623
0
                goto use_default;
624
0
            }
625
255
        }
626
255
        pie->pcpath = lpcpath;
627
628
255
        pie->buffer = NULL;
629
255
        pie->format = format;
630
255
        pie->bits_per_plane = bits_per_pixel / pie->num_planes;
631
255
        pie->matrix = mat;
632
255
        pie->uses_color = uses_color;
633
255
        if (masked) {
634
29
            pie->color_space.byte1 = 0;  /* arbitrary */
635
29
            pie->color_space.icc_info = icc_zero_init;
636
29
            pie->color_space.space = 0;
637
29
            pie->color_space.id = gs_no_id;
638
226
        } else {
639
            /* Check for presence of ICC profiles in standard Device Color Spaces
640
               This can happen if a default space was initialized. It should
641
               typically have assigned to it one of the default ICC profiles */
642
226
            if (indexed) {
643
126
                if (pim->ColorSpace->base_space->cmm_icc_profile_data) {
644
126
                    base_index = gs_color_space_index_ICC;
645
126
                }
646
126
            } else {
647
100
                if (pim->ColorSpace->cmm_icc_profile_data) {
648
100
                    base_index = gs_color_space_index_ICC;
649
100
                }
650
100
            }
651
226
            pie->color_space.byte1 = (base_index << 4) |
652
226
                (indexed ? (pim->ColorSpace->params.indexed.use_proc ? 12 : 8) : 0);
653
226
            pie->color_space.id =
654
226
                (pie->color_space.space = pim->ColorSpace)->id;
655
            /* Get the hash code of the ICC space */
656
226
            if ( base_index == gs_color_space_index_ICC ) {
657
226
                code = dev_proc(dev, get_profile)(dev,  &dev_profile);
658
226
                gsicc_extract_profile(dev->graphics_type_tag, dev_profile,
659
226
                                      &(gs_output_profile),
660
226
                                      (&(dev_render_cond)));
661
226
                if (!indexed) {
662
100
                    src_profile = pim->ColorSpace->cmm_icc_profile_data;
663
126
                } else {
664
126
                    src_profile =
665
126
                        pim->ColorSpace->base_space->cmm_icc_profile_data;
666
126
                }
667
                /* Initialize the rendering conditions to what we currently
668
                   have before we may blow them away with what is set in
669
                   the srcgtag information */
670
226
                stored_rendering_cond.graphics_type_tag = GS_IMAGE_TAG;
671
226
                stored_rendering_cond.override_icc =
672
226
                                dev_render_cond.override_icc;
673
226
                stored_rendering_cond.preserve_black =
674
226
                                dev_render_cond.preserve_black;
675
226
                stored_rendering_cond.cmm = gsCMM_DEFAULT;  /* Unless spec. below */
676
                /* We may need to do some substitions for the source profile */
677
226
                if (pgs->icc_manager->srcgtag_profile != NULL) {
678
0
                    srcgtag_profile = pgs->icc_manager->srcgtag_profile;
679
0
                    if (src_profile->data_cs == gsRGB) {
680
0
                        if (srcgtag_profile->rgb_profiles[gsSRC_IMAGPRO] != NULL) {
681
                            /* We only do this replacement depending upon the
682
                               ICC override setting for this object and the
683
                               original color space of this object */
684
0
                            csi = gsicc_get_default_type(src_profile);
685
0
                            if (srcgtag_profile->rgb_rend_cond[gsSRC_IMAGPRO].override_icc ||
686
0
                                csi == gs_color_space_index_DeviceRGB) {
687
0
                                src_profile =
688
0
                                    srcgtag_profile->rgb_profiles[gsSRC_IMAGPRO];
689
0
                                pgs_nonconst->renderingintent =
690
0
                                    srcgtag_profile->rgb_rend_cond[gsSRC_IMAGPRO].rendering_intent;
691
0
                                pgs_nonconst->blackptcomp =
692
0
                                    srcgtag_profile->rgb_rend_cond[gsSRC_IMAGPRO].black_point_comp;
693
0
                                stored_rendering_cond =
694
0
                                    srcgtag_profile->rgb_rend_cond[gsSRC_IMAGPRO];
695
0
                            }
696
0
                        } else {
697
                            /* A possible do not use CM case */
698
0
                            stored_rendering_cond.cmm =
699
0
                                srcgtag_profile->rgb_rend_cond[gsSRC_IMAGPRO].cmm;
700
0
                        }
701
0
                    } else if (src_profile->data_cs == gsCMYK) {
702
0
                        if (srcgtag_profile->cmyk_profiles[gsSRC_IMAGPRO] != NULL) {
703
0
                            csi = gsicc_get_default_type(src_profile);
704
0
                            if (srcgtag_profile->cmyk_rend_cond[gsSRC_IMAGPRO].override_icc ||
705
0
                                csi == gs_color_space_index_DeviceCMYK) {
706
0
                                src_profile =
707
0
                                    srcgtag_profile->cmyk_profiles[gsSRC_IMAGPRO];
708
0
                                pgs_nonconst->renderingintent =
709
0
                                    srcgtag_profile->cmyk_rend_cond[gsSRC_IMAGPRO].rendering_intent;
710
0
                                pgs_nonconst->blackptcomp =
711
0
                                    srcgtag_profile->cmyk_rend_cond[gsSRC_IMAGPRO].black_point_comp;
712
0
                                stored_rendering_cond =
713
0
                                    srcgtag_profile->cmyk_rend_cond[gsSRC_IMAGPRO];
714
0
                            }
715
0
                        } else {
716
                            /* A possible do not use CM case */
717
0
                            stored_rendering_cond.cmm =
718
0
                                srcgtag_profile->cmyk_rend_cond[gsSRC_IMAGPRO].cmm;
719
0
                        }
720
0
                    }
721
0
                }
722
                /* If the device RI is set and we are not  setting the RI from
723
                   the source structure, then override any RI specified in the
724
                   document by the RI specified in the device */
725
226
                if (!(pgs_nonconst->renderingintent & gsRI_OVERRIDE)) {  /* was set by source? */
726
                    /* No it was not.  See if we should override with the
727
                       device setting */
728
226
                    if (dev_render_cond.rendering_intent != gsRINOTSPECIFIED) {
729
0
                        pgs_nonconst->renderingintent =
730
0
                                        dev_render_cond.rendering_intent;
731
0
                        }
732
226
                }
733
                /* We have a similar issue to deal with with respect to the
734
                   black point.  */
735
226
                if (!(pgs_nonconst->blackptcomp & gsBP_OVERRIDE)) {
736
226
                    if (dev_render_cond.black_point_comp != gsBPNOTSPECIFIED) {
737
0
                        pgs_nonconst->blackptcomp =
738
0
                                            dev_render_cond.black_point_comp;
739
0
                    }
740
226
                }
741
226
                if (renderingintent != pgs_nonconst->renderingintent)
742
0
                    intent_changed = true;
743
226
                if (blackptcomp != pgs_nonconst->blackptcomp)
744
0
                    bp_changed = true;
745
                /* Set for the rendering param structure also */
746
226
                stored_rendering_cond.rendering_intent =
747
226
                                                pgs_nonconst->renderingintent;
748
226
                stored_rendering_cond.black_point_comp =
749
226
                                                pgs_nonconst->blackptcomp;
750
226
                stored_rendering_cond.graphics_type_tag = GS_IMAGE_TAG;
751
226
                if (!(src_profile->hash_is_valid)) {
752
0
                    int64_t hash;
753
0
                    gsicc_get_icc_buff_hash(src_profile->buffer, &hash,
754
0
                                            src_profile->buffer_size);
755
0
                    src_profile->hashcode = hash;
756
0
                    src_profile->hash_is_valid = true;
757
0
                }
758
226
                pie->color_space.icc_info.icc_hash = src_profile->hashcode;
759
226
                pie->color_space.icc_info.icc_num_components =
760
226
                    src_profile->num_comps;
761
226
                pie->color_space.icc_info.is_lab = src_profile->islab;
762
226
                pie->color_space.icc_info.default_match = src_profile->default_match;
763
226
                pie->color_space.icc_info.data_cs = src_profile->data_cs;
764
226
                src_profile->rend_cond = stored_rendering_cond;
765
226
                render_is_valid = src_profile->rend_is_valid;
766
226
                src_profile->rend_is_valid = true;
767
226
                clist_icc_addentry(cdev, src_profile->hashcode, src_profile);
768
226
                src_profile->rend_is_valid = render_is_valid;
769
226
            } else {
770
0
                pie->color_space.icc_info = icc_zero_init;
771
0
            }
772
226
        }
773
255
        pie->y = pie->rect.p.y;
774
        /* Image row has to fit in cmd writer's buffer */
775
255
        bytes_per_plane =
776
255
            (pim->Width * pie->bits_per_plane + 7) >> 3;
777
255
        bytes_per_row = bytes_per_plane * pie->num_planes;
778
255
        bytes_per_row = max(bytes_per_row, 1);
779
255
        if (cmd_largest_size + bytes_per_row > cdev->cend - cdev->cbuf)
780
0
            goto use_default;
781
255
    }
782
255
    if (pim->Interpolate) {
783
0
        pie->support.x = pie->support.y = MAX_ISCALE_SUPPORT + 1;
784
255
    } else {
785
255
        pie->support.x = pie->support.y = 0;
786
255
    }
787
255
    sbox.p.x = pie->rect.p.x - pie->support.x;
788
255
    sbox.p.y = pie->rect.p.y - pie->support.y;
789
255
    sbox.q.x = pie->rect.q.x + pie->support.x;
790
255
    sbox.q.y = pie->rect.q.y + pie->support.y;
791
255
    gs_bbox_transform(&sbox, &mat, &dbox);
792
793
255
    if (cdev->disable_mask & clist_disable_complex_clip)
794
0
        if (!check_rect_for_trivial_clip(lpcpath,
795
0
                                (int)floor(dbox.p.x), (int)floor(dbox.p.y),
796
0
                                (int)ceil(dbox.q.x), (int)ceil(dbox.q.y)))
797
0
            goto use_default;
798
799
    /* If we are going out to a halftone device and the size of the stored
800
       image at device resolution and color space is going to be smaller,
801
       go ahead and do the default handler. This occurs only for planar
802
       devices where if we prerender we will end up doing the fast theshold
803
       halftone and going out as copy_planes commands into the clist.
804
       There is already a test above with regard to the posture so that
805
       we are only doing portrait or landscape cases if we are here.  Only
806
       question is penum->image_parent_type == gs_image_type1 */
807
255
    if (dev_profile == NULL) {
808
29
        gsicc_rendering_param_t temp_render_cond;
809
29
        code = dev_proc(dev, get_profile)(dev,  &dev_profile);
810
29
        if (code < 0)
811
0
            return code;
812
29
        gsicc_extract_profile(dev->graphics_type_tag, dev_profile,
813
29
                                              &(gs_output_profile),
814
29
                                              &(temp_render_cond));
815
29
    }
816
    /* Decide if we need to do any monitoring of the colors.  Note that multiple source
817
       (planes) is treated as color */
818
255
    pie->decode.unpack = NULL;
819
255
    if (dev_profile->pageneutralcolor && pie->color_space.icc_info.data_cs != gsGRAY) {
820
        /* If it is an index image, then check the pallete only */
821
0
        if (!indexed) {
822
0
            pie->monitor_color = true;
823
            /* Set up the unpacking proc for monitoring */
824
0
            get_unpack_proc((gx_image_enum_common_t*) pie, &(pie->decode),
825
0
                             pim->format, pim->Decode);
826
0
            get_map(&(pie->decode), pim->format, pim->Decode);
827
0
            if (pie->decode.unpack == NULL) {
828
                /* If we cant unpack, then end monitoring now. Treat as has color */
829
0
                dev_profile->pageneutralcolor = false;
830
0
                code = gsicc_mcm_end_monitor(pgs->icc_link_cache, dev);
831
0
                if (code < 0)
832
0
                    return code;
833
0
            } else {
834
                /* We need to allocate the buffer for unpacking during monitoring.
835
                    This is mainly for the 12bit case */
836
0
                int bsize = ((pie->decode.bps > 8 ? (pim->Width) * 2 : pim->Width) + 15) * num_components;
837
0
                pie->buffer = gs_alloc_bytes(mem, bsize, "image buffer");
838
0
                if (pie->buffer == 0) {
839
0
                    gs_free_object(mem, pie, "clist_begin_typed_image");
840
0
                    *pinfo = NULL;
841
0
                    return_error(gs_error_VMerror);
842
0
                }
843
0
            }
844
0
        } else {
845
0
            pie->monitor_color = false;
846
            /* Check the Palette here */
847
0
            if (palette_has_color(pim->ColorSpace, pim)) {
848
                /* Has color.  We are done monitoring */
849
0
                dev_profile->pageneutralcolor = false;
850
0
                code = gsicc_mcm_end_monitor(pgs->icc_link_cache, dev);
851
0
                if (code < 0)
852
0
                    return code;
853
0
            }
854
0
        }
855
255
    } else {
856
255
        pie->monitor_color = false;
857
255
    }
858
255
    if (gx_device_must_halftone(dev) && pim->BitsPerComponent == 8 && !masked &&
859
255
        (dev->color_info.num_components == 1 || is_planar_dev) &&
860
255
        dev_profile->prebandthreshold) {
861
8
        int dev_width = (int)(ceil(dbox.q.x) - floor(dbox.p.x));
862
8
        int dev_height = (int)(ceil(dbox.q.y) - floor(dbox.p.y));
863
864
8
        int src_size = pim->Height *
865
8
                       bitmap_raster(pim->Width * pim->BitsPerComponent *
866
8
                                     num_components);
867
8
        int des_size = dev_height * bitmap_raster(dev_width *
868
8
                                                  dev->color_info.depth);
869
8
        if (src_size > des_size)
870
1
            goto use_default;
871
8
    }
872
    /* Create the begin_image command. */
873
254
    if ((pie->begin_image_command_length =
874
254
         begin_image_command(pie->begin_image_command,
875
254
                             sizeof(pie->begin_image_command), pic)) < 0)
876
0
        goto use_default;
877
254
    if (!masked) {
878
        /*
879
         * Calculate (conservatively) the set of colors that this image
880
         * might generate.  For single-component images we can sample
881
         * this. We generate all the possible colors now; otherwise,
882
         * we assume that any color might be generated.  It is possible
883
         * to do better than this, but we won't bother unless there's
884
         * evidence that it's worthwhile.
885
         */
886
225
        gx_color_usage_bits all = gx_color_usage_all(cdev);
887
888
225
        if (num_components > 1)
889
87
            color_usage = all;
890
138
        else {
891
138
            const gs_color_space *pcs = pim->ColorSpace;
892
138
            cs_proc_remap_color((*remap_color)) = pcs->type->remap_color;
893
138
            gs_client_color cc;
894
138
            gx_drawing_color dcolor;
895
138
            int i;
896
138
            int max_value = indexed ? pcs->params.indexed.hival : 1;
897
898
695
            for (i = 0; i <= max_value; ++i) {
899
                /* Enumerate the indexed colors, or just Black (DeviceGray = 0) */
900
557
                cc.paint.values[0] = (double)i;
901
557
                code = remap_color(&cc, pcs, &dcolor, pgs, dev,
902
557
                            gs_color_select_source);
903
557
                if (code < 0)
904
0
                    break;
905
557
                color_usage |= cmd_drawing_color_usage(cdev, &dcolor);
906
557
            }
907
138
            if (code < 0)
908
0
                goto use_default;
909
138
        }
910
225
    }
911
254
    pie->color_usage.or = color_usage;
912
254
    pie->color_usage.slow_rop =
913
254
        cmd_slow_rop(dev, pgs->log_op, (uses_color ? pdcolor : NULL));
914
254
    pie->color_map_is_known = false;
915
    /*
916
     * Calculate a (slightly conservative) Y bounding interval for the image
917
     * in device space.
918
     */
919
254
    {
920
254
        int y0 = (int)floor(dbox.p.y - 0.51);   /* adjust + rounding slop */
921
254
        int y1 = (int)ceil(dbox.q.y + 0.51);    /* ditto */
922
923
254
        if (lpcpath) {
924
254
            gs_fixed_rect obox;
925
254
            gx_cpath_outer_box(lpcpath, &obox);
926
254
            pie->ymin = max(0, max(y0, fixed2int(obox.p.y)));
927
254
            pie->ymax = min(min(y1, fixed2int(obox.q.y)), dev->height);
928
254
        } else {
929
0
            pie->ymin = max(y0, 0);
930
0
            pie->ymax = min(y1, dev->height);
931
0
        }
932
254
    }
933
934
    /*
935
     * Make sure the CTM, color space, and clipping region (and, for
936
     * masked images or images with CombineWithColor, the current color)
937
     * are known at the time of the begin_image command.
938
     */
939
254
    cmd_clear_known(cdev, clist_image_unknowns(dev, pie) | begin_image_known);
940
    /* Because the rendering intent may be driven by the source color
941
       settings we may have needed to overide the intent.  Need to break the const
942
       on the pgs here for this and reset back */
943
254
    if (intent_changed)
944
0
        pgs_nonconst->renderingintent = renderingintent;
945
254
    if (bp_changed)
946
0
        pgs_nonconst->blackptcomp = blackptcomp;
947
948
254
    cdev->image_enum_id = pie->id;
949
254
    return 0;
950
    /*
951
     * We couldn't handle the image.  It is up to the caller to use the default
952
     * algorithms, which break the image up into rectangles or small pixmaps.
953
     * If we are doing the PDF14 transparency device then we want to make sure we do
954
     * NOT use the target device.  In this case we return -1.
955
     */
956
580
use_default:
957
580
    if (pie != NULL)
958
577
        gs_free_object(mem, pie->buffer, "clist_begin_typed_image");
959
580
    gs_free_object(mem, pie, "clist_begin_typed_image");
960
580
    *pinfo = NULL;
961
962
580
    if (lpcpath != NULL)
963
1
        gx_cpath_free(lpcpath, "clist_begin_typed_image(lpcpath)");
964
965
580
    if (pgs->has_transparency){
966
80
        return -1;
967
500
    } else {
968
500
        return gx_default_begin_typed_image(dev, pgs, pmat, pic, prect,
969
500
                                            pdcolor, pcpath, mem, pinfo);
970
500
    }
971
580
}
972
973
/* Error cleanup for clist_image_plane_data. */
974
static inline int
975
clist_image_plane_data_retry_cleanup(gx_device *dev, clist_image_enum *pie, int yh_used, int code)
976
0
{
977
0
    gx_device_clist_writer * const cdev =
978
0
        &((gx_device_clist *)dev)->writer;
979
0
980
0
    ++cdev->ignore_lo_mem_warnings;
981
0
    {
982
0
        code = write_image_end_all(dev, pie);
983
0
    }
984
0
    --cdev->ignore_lo_mem_warnings;
985
0
    /* Update sub-rect */
986
0
    if (!pie->image.Interpolate)
987
0
        pie->rect.p.y += yh_used;  /* interpolate & mem recovery currently incompat */
988
0
    return code;
989
0
}
990
991
/* Process the next piece of an image. */
992
static int
993
clist_image_plane_data(gx_image_enum_common_t * info,
994
                       const gx_image_plane_t * planes, int yh,
995
                       int *rows_used)
996
258
{
997
258
    gx_device *dev = info->dev;
998
258
    gx_device_clist_writer * const cdev =
999
258
        &((gx_device_clist *)dev)->writer;
1000
258
    clist_image_enum *pie = (clist_image_enum *) info;
1001
258
    gs_rect sbox, dbox;
1002
258
    int y_orig = pie->y;
1003
258
    int yh_used = min(yh, pie->rect.q.y - y_orig);
1004
258
    int y0, y1;
1005
258
    int ry, rheight;
1006
258
    int code;
1007
258
    cmd_rects_enum_t re;
1008
258
    bool found_color = false;
1009
1010
#ifdef DEBUG
1011
    if (pie->id != cdev->image_enum_id) {
1012
        lprintf2("end_image id = %lu != clist image id = %lu!\n",
1013
                 (ulong) pie->id, (ulong) cdev->image_enum_id);
1014
        *rows_used = 0;
1015
        return_error(gs_error_Fatal);
1016
    }
1017
#endif
1018
1019
258
    if (info->pgs != NULL && info->pgs->level < info->pgs_level)
1020
0
        return_error(gs_error_undefinedresult);
1021
1022
    /****** CAN'T HANDLE VARYING data_x VALUES YET ******/
1023
258
    {
1024
258
        int i;
1025
1026
258
        for (i = 1; i < info->num_planes; ++i)
1027
0
            if (planes[i].data_x != planes[0].data_x) {
1028
0
                *rows_used = 0;
1029
0
                return_error(gs_error_rangecheck);
1030
0
            }
1031
258
    }
1032
258
    sbox.p.x = pie->rect.p.x - pie->support.x;
1033
258
    sbox.p.y = (y0 = y_orig) - pie->support.y;
1034
258
    sbox.q.x = pie->rect.q.x + pie->support.x;
1035
258
    sbox.q.y = (y1 = pie->y += yh_used) + pie->support.y;
1036
258
    code = gs_bbox_transform(&sbox, &pie->matrix, &dbox);
1037
258
    if (code < 0)
1038
0
        return code;
1039
    /*
1040
     * In order to keep the band list consistent, we must write out
1041
     * the image data in precisely those bands whose begin_image
1042
     * Y range includes the respective image scan lines.  Because of
1043
     * rounding, we must expand the dbox by a little extra, and then
1044
     * use image_band_box to calculate the precise range for each band.
1045
     * This is slow, but we don't see any faster way to do it in the
1046
     * general case.
1047
     */
1048
258
    {
1049
258
        int ry0 = (int)floor(dbox.p.y) - 2;
1050
258
        int ry1 = (int)ceil(dbox.q.y) + 2;
1051
258
        int band_height0 = cdev->page_info.band_params.BandHeight;
1052
1053
        /*
1054
         * Make sure we don't go into any bands beyond the Y range
1055
         * determined at begin_image time.
1056
         */
1057
258
        if (ry0 < pie->ymin)
1058
234
            ry0 = pie->ymin;
1059
258
        if (ry1 > pie->ymax)
1060
161
            ry1 = pie->ymax;
1061
        /*
1062
         * If the image extends off the page in the Y direction,
1063
         * we may have ry0 > ry1.  Check for this here.
1064
         */
1065
258
        if (ry0 >= ry1)
1066
34
            goto done;
1067
        /* Expand the range out to band boundaries. */
1068
224
        ry = ry0 / band_height0 * band_height0;
1069
224
        rheight = min(ROUND_UP(ry1, band_height0), dev->height) - ry;
1070
224
    }
1071
1072
224
    if (cdev->permanent_error < 0)
1073
0
      return (cdev->permanent_error);
1074
    /* If needed, update the trans_bbox */
1075
224
    if (cdev->pdf14_needed) {
1076
120
        gs_int_rect bbox;
1077
1078
120
        bbox.p.x = (int)floor(dbox.p.x);
1079
120
        bbox.q.x = (int)ceil(dbox.q.x);
1080
120
        bbox.p.y = pie->ymin;
1081
120
        bbox.q.y = pie->ymax;
1082
1083
120
        clist_update_trans_bbox(cdev, &bbox);
1084
120
    }
1085
    /* Make sure clip_path for the cdev is not stale -- update from image_enum */
1086
224
    cdev->clip_path = NULL;
1087
224
    cmd_check_clip_path(cdev, pie->pcpath);
1088
1089
224
    RECT_ENUM_INIT(re, ry, rheight);
1090
685
    do {
1091
685
        gs_int_rect ibox;
1092
685
        gs_int_rect entire_box;
1093
1094
685
        RECT_STEP_INIT(re);
1095
        /*
1096
         * Just transmit the subset of the data that intersects this band.
1097
         * Note that y and height always define a complete band.
1098
         */
1099
1100
685
        if (!image_band_box(dev, pie, re.y, re.height, &ibox))
1101
4
            continue;
1102
        /*
1103
         * The transmitted subrectangle has to be computed at the time
1104
         * we write the begin_image command; this in turn controls how
1105
         * much of each scan line we write out.
1106
         */
1107
681
        {
1108
681
            int band_ymax = min(re.band_end, pie->ymax);
1109
681
            int band_ymin = max(re.band_end - re.band_height, pie->ymin);
1110
1111
681
            if (!image_band_box(dev, pie, band_ymin,
1112
681
                                band_ymax - band_ymin, &entire_box))
1113
0
                continue;
1114
681
        }
1115
1116
681
        re.pcls->color_usage.or |= pie->color_usage.or;
1117
681
        re.pcls->color_usage.slow_rop |= pie->color_usage.slow_rop;
1118
1119
        /* Write out begin_image & its preamble for this band */
1120
681
        if (!(re.pcls->known & begin_image_known)) {
1121
657
            gs_logical_operation_t lop = pie->pgs->log_op;
1122
657
            byte *dp;
1123
657
            byte *bp = pie->begin_image_command +
1124
657
                pie->begin_image_command_length;
1125
657
            uint len;
1126
657
            byte image_op = cmd_opv_begin_image;
1127
1128
            /* Make sure the gs_gstate is up to date. */
1129
657
            code = (pie->color_map_is_known ? 0 :
1130
657
                    cmd_put_color_mapping(cdev, pie->pgs));
1131
657
            pie->color_map_is_known = true;
1132
657
            if (code >= 0) {
1133
657
                uint want_known = ctm_known | clip_path_known |
1134
657
                            op_bm_tk_known | ais_known |
1135
657
                            fill_alpha_known | stroke_alpha_known | fill_adjust_known |
1136
657
                            (pie->color_space.id == gs_no_id ? 0 :
1137
657
                                                     color_space_known);
1138
1139
657
                code = cmd_do_write_unknown(cdev, re.pcls, want_known);
1140
657
            }
1141
657
            if (code >= 0)
1142
657
                code = cmd_do_enable_clip(cdev, re.pcls, pie->pcpath != NULL);
1143
657
            if (code >= 0)
1144
657
                code = cmd_update_lop(cdev, re.pcls, lop);
1145
657
            if (code < 0)
1146
0
                return code;
1147
            /* Does the result of this image depend upon the current color in the
1148
             * graphics state? If so, we need to send it. */
1149
657
            if (pie->uses_color) {
1150
                /* We want to write the color taking into account the entire image so */
1151
                /* we set re.rect_nbands from pie->ymin and pie->ymax so that we will */
1152
                /* make the decision to write 'all_bands' the same for the whole image */
1153
                /* This is slightly more efficient, and is required for patterns with */
1154
                /* transparency that push the group at the begin_image step.          */
1155
9
                re.rect_nbands = ((pie->ymax + re.band_height - 1) / re.band_height) -
1156
9
                                 ((pie->ymin) / re.band_height);
1157
9
                code = cmd_put_drawing_color(cdev, re.pcls, &pie->dcolor,
1158
9
                                             &re, devn_not_tile_fill);
1159
9
                if (code < 0)
1160
0
                    return code;
1161
9
                if (!pie->masked) {
1162
                    /* In PS and PDF, masked == uses_color. In PCL, due to rops, we can
1163
                     * have a non-imagemask image that relies on the current graphics
1164
                     * color. C303.BIN page 20 has an example of this. Normally the above
1165
                     * call the cmd_put_drawing_color will have sent through the halftone
1166
                     * phase, but we can be in the situation where the current drawing
1167
                     * color is pure (so no phase is sent), but the colors in the image
1168
                     * are not (so a phase must be sent). Accordingly, we catch that
1169
                     * here. */
1170
0
                    if (pie->pgs->screen_phase[gs_color_select_texture].x != re.pcls->screen_phase[gs_color_select_texture].x ||
1171
0
                        pie->pgs->screen_phase[gs_color_select_texture].y != re.pcls->screen_phase[gs_color_select_texture].y) {
1172
0
                        code = cmd_set_screen_phase_generic(cdev, re.pcls,
1173
0
                                                            pie->pgs->screen_phase[gs_color_select_texture].x,
1174
0
                                                            pie->pgs->screen_phase[gs_color_select_texture].y,
1175
0
                                                            gs_color_select_texture, true);
1176
0
                        if (code < 0)
1177
0
                            return code;
1178
0
                    }
1179
0
                    if (pie->pgs->screen_phase[gs_color_select_source].x != re.pcls->screen_phase[gs_color_select_source].x ||
1180
0
                        pie->pgs->screen_phase[gs_color_select_source].y != re.pcls->screen_phase[gs_color_select_source].y) {
1181
0
                        code = cmd_set_screen_phase_generic(cdev, re.pcls,
1182
0
                                                            pie->pgs->screen_phase[gs_color_select_source].x,
1183
0
                                                            pie->pgs->screen_phase[gs_color_select_source].y,
1184
0
                                                            gs_color_select_source, true);
1185
0
                        if (code < 0)
1186
0
                            return code;
1187
0
                    }
1188
0
                }
1189
648
            } else if (0 != re.pcls->tile_phase.x || 0 != re.pcls->tile_phase.y) {
1190
0
                code = cmd_set_tile_phase(cdev, re.pcls, 0, 0);
1191
0
                if (code < 0)
1192
0
                    return code;
1193
0
            }
1194
657
            if (entire_box.p.x != 0 || entire_box.p.y != 0 ||
1195
657
                entire_box.q.x != pie->image.Width ||
1196
657
                entire_box.q.y != pie->image.Height
1197
657
                ) {
1198
635
                image_op = cmd_opv_begin_image_rect;
1199
635
                cmd_put2w(entire_box.p.x, entire_box.p.y, &bp);
1200
635
                cmd_put2w(pie->image.Width - entire_box.q.x,
1201
635
                          pie->image.Height - entire_box.q.y, &bp);
1202
635
                }
1203
657
            len = bp - pie->begin_image_command;
1204
657
            code =
1205
657
                set_cmd_put_op(&dp, cdev, re.pcls, image_op, 1 + len);
1206
657
            if (code < 0)
1207
0
                return code;
1208
657
            memcpy(dp + 1, pie->begin_image_command, len);
1209
1210
            /* Mark band's begin_image as known */
1211
657
            re.pcls->known |= begin_image_known;
1212
657
        }
1213
1214
        /*
1215
         * The data that we write out must use the X values set by
1216
         * begin_image, which may cover a larger interval than the ones
1217
         * actually needed for these particular scan lines if the image is
1218
         * rotated.
1219
         */
1220
681
        {
1221
            /*
1222
             * image_band_box ensures that b{x,y}{0,1} fall within
1223
             * pie->rect.
1224
             */
1225
681
            int bx0 = entire_box.p.x, bx1 = entire_box.q.x;
1226
681
            int by0 = ibox.p.y, by1 = ibox.q.y;
1227
681
            int bpp = pie->bits_per_plane;
1228
681
            int num_planes = pie->num_planes;
1229
681
            uint offsets[GS_IMAGE_MAX_COMPONENTS];
1230
681
            int i, iy, ih, xskip, xoff, nrows;
1231
681
            uint bytes_per_plane, bytes_per_row, rows_per_cmd;
1232
1233
681
            if (by0 < y0)
1234
24
                by0 = y0;
1235
681
            if (by1 > y1)
1236
95
                by1 = y1;
1237
            /*
1238
             * Make sure we're skipping an integral number of pixels, by
1239
             * truncating the initial X coordinate to the next lower
1240
             * value that is an exact multiple of a byte.
1241
             */
1242
681
            xoff = bx0 - pie->rect.p.x;
1243
681
            xskip = xoff & -(int)"\001\010\004\010\002\010\004\010"[bpp & 7];
1244
1.36k
            for (i = 0; i < num_planes; ++i)
1245
681
                offsets[i] =
1246
681
                    (by0 - y0) * planes[i].raster + ((xskip * bpp) >> 3);
1247
681
            bytes_per_plane = ((bx1 - (pie->rect.p.x + xskip)) * bpp + 7) >> 3;
1248
681
            bytes_per_row = bytes_per_plane * pie->num_planes;
1249
681
            rows_per_cmd =
1250
681
                (data_bits_size - cmd_largest_size) / max(bytes_per_row, 1);
1251
1252
681
            if (rows_per_cmd == 0) {
1253
                /* The reader will have to buffer a row separately. */
1254
0
                rows_per_cmd = 1;
1255
0
            }
1256
681
            if (pie->monitor_color) {
1257
0
                for (iy = by0, ih = by1 - by0; ih > 0; iy += nrows, ih -= nrows) {
1258
0
                    nrows = min(ih, rows_per_cmd);
1259
0
                    if (!found_color) {
1260
0
                        code = cmd_image_plane_data_mon(cdev, re.pcls, planes, info,
1261
0
                                                    bytes_per_plane, offsets,
1262
0
                                                    xoff - xskip, nrows,
1263
0
                                                    &found_color);
1264
0
                        if (found_color) {
1265
                            /* Has color.  We are done monitoring */
1266
0
                            cmm_dev_profile_t *dev_profile;
1267
0
                            code = dev_proc(dev, get_profile)(dev,  &dev_profile);
1268
0
                            dev_profile->pageneutralcolor = false;
1269
0
                            code |= gsicc_mcm_end_monitor(pie->pgs->icc_link_cache, dev);
1270
0
                            pie->monitor_color = false;
1271
0
                        }
1272
0
                    } else {
1273
0
                        code = cmd_image_plane_data(cdev, re.pcls, planes, info,
1274
0
                                                    bytes_per_plane, offsets,
1275
0
                                                    xoff - xskip, nrows);
1276
0
                    }
1277
0
                    if (code < 0)
1278
0
                        return code;
1279
0
                    for (i = 0; i < num_planes; ++i)
1280
0
                        offsets[i] += planes[i].raster * nrows;
1281
0
                }
1282
681
            } else {
1283
1.36k
                for (iy = by0, ih = by1 - by0; ih > 0; iy += nrows, ih -= nrows) {
1284
681
                    nrows = min(ih, rows_per_cmd);
1285
681
                    code = cmd_image_plane_data(cdev, re.pcls, planes, info,
1286
681
                                                bytes_per_plane, offsets,
1287
681
                                                xoff - xskip, nrows);
1288
681
                    if (code < 0)
1289
0
                        return code;
1290
1.36k
                    for (i = 0; i < num_planes; ++i)
1291
681
                        offsets[i] += planes[i].raster * nrows;
1292
681
                }
1293
681
            }
1294
681
        }
1295
685
    } while ((re.y += re.height) < re.yend);
1296
258
 done:
1297
258
    *rows_used = pie->y - y_orig;
1298
258
    return pie->y >= pie->rect.q.y;
1299
224
}
1300
1301
/* Clean up by releasing the buffers. */
1302
static int
1303
clist_image_end_image(gx_image_enum_common_t * info, bool draw_last)
1304
254
{
1305
254
    gx_device *dev = info->dev;
1306
254
    gx_device_clist_writer * const cdev =
1307
254
        &((gx_device_clist *)dev)->writer;
1308
254
    clist_image_enum *pie = (clist_image_enum *) info;
1309
254
    int code;
1310
1311
#ifdef DEBUG
1312
    if (pie->id != cdev->image_enum_id) {
1313
        lprintf2("end_image id = %lu != clist image id = %lu!\n",
1314
                 (ulong) pie->id, (ulong) cdev->image_enum_id);
1315
        return_error(gs_error_Fatal);
1316
    }
1317
#endif
1318
254
    code = write_image_end_all(dev, pie);
1319
254
    cdev->image_enum_id = gs_no_id;
1320
254
    gx_cpath_free((gx_clip_path *)pie->pcpath, "clist_image_end_image(pie->pcpath)");
1321
254
    cdev->clip_path = NULL;
1322
254
    cdev->clip_path_id = gs_no_id;
1323
254
    gx_image_free_enum(&info);
1324
254
    return code;
1325
254
}
1326
1327
/* Create a compositor device. */
1328
int
1329
clist_composite(gx_device * dev,
1330
                        gx_device ** pcdev, const gs_composite_t * pcte,
1331
                        gs_gstate * pgs, gs_memory_t * mem, gx_device *cldev)
1332
555
{
1333
555
    byte * dp;
1334
555
    uint size = 0, size_dummy;
1335
555
    gx_device_clist_writer * const cdev =
1336
555
                    &((gx_device_clist *)dev)->writer;
1337
555
    int ry, rheight, cropping_op;
1338
555
    int band_height = cdev->page_info.band_params.BandHeight;
1339
555
    int last_band = cdev->nbands - 1;
1340
555
    int first_band = 0, no_of_bands = cdev->nbands;
1341
555
    int code = pcte->type->procs.write(pcte, 0, &size, cdev);
1342
555
    int temp_cropping_min, temp_cropping_max;
1343
555
    int newdev;
1344
1345
555
    CMD_CHECK_LAST_OP_BLOCK_DEFINED(cdev);
1346
1347
    /* determine the amount of space required */
1348
555
    if (code < 0 && code != gs_error_rangecheck)
1349
0
        return code;
1350
555
    size += 2 + 1;      /* 2 bytes for the command code, one for the id */
1351
1352
    /* Create a compositor device for clist writing (if needed) */
1353
555
    code = pcte->type->procs.clist_compositor_write_update(pcte, dev,
1354
555
                                                        pcdev, pgs, mem);
1355
555
    if (code < 0)
1356
0
        return code;
1357
555
    newdev = code == 1;
1358
1359
555
    CMD_CHECK_LAST_OP_BLOCK_DEFINED(cdev);
1360
1361
555
    code = pcte->type->procs.get_cropping(pcte, &ry, &rheight, cdev->cropping_min, cdev->cropping_max);
1362
1363
555
    CMD_CHECK_LAST_OP_BLOCK_DEFINED(cdev);
1364
1365
555
    if (code < 0)
1366
0
        return code;
1367
1368
555
    cropping_op = code;
1369
555
    code = 0;
1370
1371
555
    if (cropping_op == PUSHCROP || cropping_op == SAMEAS_PUSHCROP_BUTNOPUSH) {
1372
9
        first_band = ry / band_height;
1373
9
        last_band = (ry + rheight - 1) / band_height;
1374
546
    } else if (cropping_op == POPCROP || cropping_op == CURRBANDS) {
1375
9
        first_band = cdev->cropping_min / band_height;
1376
9
        last_band = (cdev->cropping_max - 1) / band_height;
1377
9
    }
1378
1379
555
    if (last_band - first_band > no_of_bands * 2 / 3) {
1380
        /* Covering many bands, so write "all bands" command for shorter clist. */
1381
553
        cropping_op = ALLBANDS;
1382
553
    }
1383
1384
    /* Using 'v' here instead of 'L' since this is used almost exclusively with
1385
       the transparency code */
1386
1387
#ifdef DEBUG
1388
    if (gs_debug_c('v')) {
1389
1390
        if(cropping_op != 0) {
1391
1392
           dmprintf2(dev->memory, "[v] cropping_op = %d. Total number of bands is %d \n",
1393
                     cropping_op, no_of_bands);
1394
           dmprintf2(dev->memory, "[v]  Writing out from band %d through band %d \n",
1395
                     first_band, last_band);
1396
1397
        } else {
1398
1399
           dmprintf1(dev->memory, "[v] cropping_op = %d. Writing out to all bands \n",
1400
                     cropping_op);
1401
1402
        }
1403
    }
1404
#endif
1405
1406
555
    if (cropping_op == ALLBANDS) {
1407
        /* overprint applies to all bands */
1408
553
        size_dummy = size;
1409
553
        code = set_cmd_put_all_extended_op(& dp,
1410
553
                                   (gx_device_clist_writer *)dev,
1411
553
                                   cmd_opv_ext_composite,
1412
553
                                   size );
1413
553
        if (code < 0)
1414
0
            return code;
1415
1416
        /* insert the compositor identifier */
1417
553
        dp[2] = pcte->type->comp_id;
1418
1419
        /* serialize the remainder of the compositor */
1420
553
        if ((code = pcte->type->procs.write(pcte, dp + 3, &size_dummy, cdev)) < 0)
1421
0
            ((gx_device_clist_writer *)dev)->cnext = dp;
1422
1423
553
        if (code >= 0 && newdev)
1424
35
            code = 1; /* Return 1 to indicate we created a new device. */
1425
553
        return code;
1426
553
    }
1427
2
    if (cropping_op == PUSHCROP) {
1428
1
        code = clist_writer_push_cropping(cdev, ry, rheight);
1429
1
        if (code < 0)
1430
0
            return code;
1431
1
    }
1432
2
    if (cropping_op == SAMEAS_PUSHCROP_BUTNOPUSH) {
1433
        /* Set the range even though it is not pushed until the group occurs
1434
           This occurs only when we had blend changes with a group push */
1435
0
        temp_cropping_min = max(cdev->cropping_min, ry);
1436
0
        temp_cropping_max = min(cdev->cropping_max, ry + rheight);
1437
2
    } else {
1438
2
        temp_cropping_min = cdev->cropping_min;
1439
2
        temp_cropping_max = cdev->cropping_max;
1440
2
    }
1441
    /* Adjust the lower and upper bound to allow for image gridfitting changing boundaries */
1442
2
    if (temp_cropping_min > 0)
1443
2
        temp_cropping_min--;
1444
2
    if (temp_cropping_max < dev->height - 1)
1445
2
        temp_cropping_max++;
1446
2
    if (temp_cropping_min < temp_cropping_max) {
1447
        /* The pdf14 compositor could be applied
1448
           only to bands covered by the pcte->params.bbox. */
1449
2
        cmd_rects_enum_t re;
1450
1451
2
        RECT_ENUM_INIT(re, temp_cropping_min, temp_cropping_max - temp_cropping_min);
1452
8
        do {
1453
8
            RECT_STEP_INIT(re);
1454
8
            code = set_cmd_put_extended_op(&dp, cdev, re.pcls, cmd_opv_ext_composite, size);
1455
8
            if (code >= 0) {
1456
8
                size_dummy = size;
1457
8
                dp[2] = pcte->type->comp_id;
1458
8
                code = pcte->type->procs.write(pcte, dp + 3, &size_dummy, cdev);
1459
8
            }
1460
8
            if (code < 0)
1461
0
                return code;
1462
8
        } while ((re.y += re.height) < re.yend);
1463
2
    }
1464
2
    if (cropping_op == POPCROP) {
1465
1
        code = clist_writer_pop_cropping(cdev);
1466
1
        if (code < 0)
1467
0
            return code;
1468
1
    }
1469
1470
2
    if (newdev)
1471
0
        code = 1; /* Return 1 to indicate we created a new device. */
1472
1473
2
    return code;
1474
2
}
1475
1476
/* ------ Utilities ------ */
1477
1478
/* Add a command to set data_x. */
1479
static int
1480
cmd_put_set_data_x(gx_device_clist_writer * cldev, gx_clist_state * pcls,
1481
                   int data_x)
1482
0
{
1483
0
    byte *dp;
1484
0
    int code;
1485
1486
0
    if (data_x > 0x1f) {
1487
0
        int dx_msb = data_x >> 5;
1488
1489
0
        code = set_cmd_put_op(&dp, cldev, pcls, cmd_opv_set_misc,
1490
0
                              2 + cmd_size_w(dx_msb));
1491
0
        if (code >= 0) {
1492
0
            dp[1] = cmd_set_misc_data_x + 0x20 + (data_x & 0x1f);
1493
0
            cmd_put_w(dx_msb, dp + 2);
1494
0
        }
1495
0
    } else {
1496
0
        code = set_cmd_put_op(&dp, cldev, pcls, cmd_opv_set_misc, 2);
1497
0
        if (code >= 0)
1498
0
            dp[1] = cmd_set_misc_data_x + data_x;
1499
0
    }
1500
0
    return code;
1501
0
}
1502
1503
/* Add commands to represent a full (device) halftone. */
1504
int
1505
cmd_put_halftone(gx_device_clist_writer * cldev, const gx_device_halftone * pdht)
1506
65
{
1507
65
    uint    ht_size = 0, req_size;
1508
65
    byte *  dp;
1509
65
    byte *  dp0 = 0;
1510
65
    byte *  pht_buff = 0;
1511
65
    int     code = gx_ht_write(pdht, (gx_device *)cldev, 0, &ht_size);
1512
1513
    /*
1514
     * Determine the required size, and if necessary allocate a buffer.
1515
     *
1516
     * The full serialized representation consists of:
1517
     *  command code (2 bytes)
1518
     *  length of serialized halftone (enc_u_sizew(ht_size)
1519
     *  one or more halfton segments, which consist of:
1520
     *    command code (2 bytes)
1521
     *    segment size (enc_u_sizew(seg_size) (seg_size < cbuf_ht_seg_max_size)
1522
     *    the serialized halftone segment (seg_size)
1523
     *
1524
     * Serialized halftones may be larger than the command buffer, so it
1525
     * is sent in segments. The cmd_opv_extend/cmd_opv_ext_put_halftone
1526
     * combination indicates that a device halftone is being sent, and
1527
     * provides the length of the entire halftone. This is followed by
1528
     * one or more cmd_opv_extend/cmd_opv_ext_ht_seg commands, which
1529
     * convey the segments of the serialized hafltone. The reader can
1530
     * identify the final segment by adding segment lengths.
1531
     *
1532
     * This complexity is hidden from the serialization code. If the
1533
     * halftone is larger than a single halftone buffer, we allocate a
1534
     * buffer to hold the entire representation, and divided into
1535
     * segments in this routine.
1536
     */
1537
65
    if (code < 0 && code != gs_error_rangecheck)
1538
0
        return code;
1539
65
    req_size = 2 + enc_u_sizew(ht_size);
1540
1541
    /* output the "put halftone" command */
1542
65
    if ((code = set_cmd_put_all_extended_op(&dp, cldev, cmd_opv_ext_put_halftone, req_size)) < 0)
1543
0
        return code;
1544
65
    dp += 2;
1545
65
    enc_u_putw(ht_size, dp);
1546
1547
    /* see if a separate allocated buffer is required */
1548
65
    if (ht_size > cbuf_ht_seg_max_size) {
1549
26
        pht_buff = gs_alloc_bytes( cldev->bandlist_memory,
1550
26
                                   ht_size,
1551
26
                                   "cmd_put_halftone" );
1552
26
        if (pht_buff == 0)
1553
0
            return_error(gs_error_VMerror);
1554
39
    } else {
1555
        /* send the only segment command */
1556
39
        req_size += ht_size;
1557
39
        code = set_cmd_put_all_extended_op(&dp, cldev, cmd_opv_ext_put_ht_seg, req_size);
1558
39
        if (code < 0)
1559
0
            return code;
1560
39
        dp0 = dp;
1561
39
        dp += 2;
1562
39
        enc_u_putw(ht_size, dp);
1563
39
        pht_buff = dp;
1564
39
    }
1565
1566
    /* serialize the halftone */
1567
65
    code = gx_ht_write(pdht, (gx_device *)cldev, pht_buff, &ht_size);
1568
65
    if (code < 0) {
1569
0
        if (ht_size > cbuf_ht_seg_max_size)
1570
0
            gs_free_object( cldev->bandlist_memory,
1571
0
                            pht_buff,
1572
0
                            "cmd_put_halftone" );
1573
0
        else
1574
0
            cldev->cnext = dp0;
1575
0
        return code;
1576
0
    }
1577
1578
    /*
1579
     * If the halftone fit into a single command buffer, we are done.
1580
     * Otherwise, process the individual segments.
1581
     *
1582
     * If bandlist memory is exhausted while processing the segments,
1583
     * we do not make any attempt to recover the partially submitted
1584
     * halftone. The reader will discard any partially sent hafltone
1585
     * when it receives the next cmd_opv_extend/
1586
     * cmd_opv_ext_put_halftone combination.
1587
     */
1588
65
    if (ht_size > cbuf_ht_seg_max_size) {
1589
26
        byte *  pbuff = pht_buff;
1590
1591
78
        while (ht_size > 0 && code >= 0) {
1592
52
            int     seg_size, tmp_size;
1593
1594
52
            seg_size = ( ht_size > cbuf_ht_seg_max_size ? cbuf_ht_seg_max_size
1595
52
                                                        : ht_size );
1596
52
            tmp_size = 2 + enc_u_sizew(seg_size) + seg_size;
1597
52
            code = set_cmd_put_all_extended_op(&dp, cldev, cmd_opv_ext_put_ht_seg, tmp_size);
1598
52
            if (code >= 0) {
1599
52
                dp += 2;
1600
52
                enc_u_putw(seg_size, dp);
1601
52
                memcpy(dp, pbuff, seg_size);
1602
52
                ht_size -= seg_size;
1603
52
                pbuff += seg_size;
1604
52
            }
1605
52
        }
1606
26
        gs_free_object( cldev->bandlist_memory, pht_buff, "cmd_put_halftone");
1607
26
        pht_buff = 0;
1608
26
    }
1609
1610
65
    if (code >= 0)
1611
65
        cldev->device_halftone_id = pdht->id;
1612
1613
65
    return code;
1614
65
}
1615
1616
/* Write out any necessary color mapping data. */
1617
int
1618
cmd_put_color_mapping(gx_device_clist_writer * cldev,
1619
                      const gs_gstate * pgs)
1620
234
{
1621
234
    int code;
1622
234
    const gx_device_halftone *pdht = gx_select_dev_ht(pgs);
1623
1624
    /* Put out the halftone, if present, and target is not contone. */
1625
234
    if (pdht && pdht->id != cldev->device_halftone_id && !device_is_contone(cldev->target)) {
1626
29
        code = cmd_put_halftone(cldev, pdht);
1627
29
        if (code < 0)
1628
0
            return code;
1629
29
        cldev->device_halftone_id = pdht->id;
1630
29
    }
1631
    /* Put the under color removal and black generation functions */
1632
234
    code = cmd_put_color_map(cldev, cmd_map_black_generation,
1633
234
                                 0, pgs->black_generation,
1634
234
                                 &cldev->black_generation_id);
1635
234
    if (code < 0)
1636
0
        return code;
1637
234
    code = cmd_put_color_map(cldev, cmd_map_undercolor_removal,
1638
234
                                 0, pgs->undercolor_removal,
1639
234
                                 &cldev->undercolor_removal_id);
1640
234
    if (code < 0)
1641
0
        return code;
1642
    /* Now put out the transfer functions. */
1643
234
    {
1644
234
        uint which = 0;
1645
234
        bool send_default_comp = false;
1646
234
        int i;
1647
234
        gs_id default_comp_id, xfer_ids[4];
1648
1649
        /*
1650
         * Determine the ids for the transfer functions that we currently
1651
         * have in the set_transfer structure.  The halftone xfer funcs
1652
         * are sent in cmd_put_halftone.
1653
         */
1654
234
#define get_id(pgs, color, color_num) \
1655
702
    ((pgs->set_transfer.color != NULL && pgs->set_transfer.color_num >= 0) \
1656
702
        ? pgs->set_transfer.color->id\
1657
702
        : pgs->set_transfer.gray->id)
1658
1659
234
        xfer_ids[0] = get_id(pgs, red, red_component_num);
1660
234
        xfer_ids[1] = get_id(pgs, green, green_component_num);
1661
234
        xfer_ids[2] = get_id(pgs, blue, blue_component_num);
1662
234
        xfer_ids[3] = default_comp_id = pgs->set_transfer.gray->id;
1663
234
#undef get_id
1664
1665
1.17k
        for (i = 0; i < countof(cldev->transfer_ids); ++i) {
1666
936
            if (xfer_ids[i] != cldev->transfer_ids[i])
1667
312
                which |= 1 << i;
1668
936
            if (xfer_ids[i] == default_comp_id &&
1669
936
                cldev->transfer_ids[i] != default_comp_id)
1670
312
                send_default_comp = true;
1671
936
        }
1672
        /* There are 3 cases for transfer functions: nothing to write, */
1673
        /* a single function, and multiple functions. */
1674
234
        if (which == 0)
1675
156
            return 0;
1676
        /*
1677
         * Send default transfer function if changed or we need it for a
1678
         * component
1679
         */
1680
78
        if (send_default_comp || cldev->transfer_ids[0] != default_comp_id) {
1681
78
            gs_id dummy = gs_no_id;
1682
1683
78
            code = cmd_put_color_map(cldev, cmd_map_transfer, 0,
1684
78
                pgs->set_transfer.gray, &dummy);
1685
78
            if (code < 0)
1686
0
                return code;
1687
            /* Sending a default will force all xfers to default */
1688
390
            for (i = 0; i < countof(cldev->transfer_ids); ++i)
1689
312
                cldev->transfer_ids[i] = default_comp_id;
1690
78
        }
1691
        /* Send any transfer functions which have changed */
1692
78
        if (cldev->transfer_ids[0] != xfer_ids[0]) {
1693
0
            code = cmd_put_color_map(cldev, cmd_map_transfer_0,
1694
0
                        pgs->set_transfer.red_component_num,
1695
0
                        pgs->set_transfer.red, &cldev->transfer_ids[0]);
1696
0
            if (code < 0)
1697
0
                return code;
1698
0
        }
1699
78
        if (cldev->transfer_ids[1] != xfer_ids[1]) {
1700
0
            code = cmd_put_color_map(cldev, cmd_map_transfer_1,
1701
0
                        pgs->set_transfer.green_component_num,
1702
0
                        pgs->set_transfer.green, &cldev->transfer_ids[1]);
1703
0
            if (code < 0)
1704
0
                return code;
1705
0
        }
1706
78
        if (cldev->transfer_ids[2] != xfer_ids[2]) {
1707
0
            code = cmd_put_color_map(cldev, cmd_map_transfer_2,
1708
0
                        pgs->set_transfer.blue_component_num,
1709
0
                        pgs->set_transfer.blue, &cldev->transfer_ids[2]);
1710
0
            if (code < 0)
1711
0
                return code;
1712
0
        }
1713
78
    }
1714
1715
78
    return 0;
1716
78
}
1717
1718
/*
1719
 * Compute the subrectangle of an image that intersects a band;
1720
 * return false if it is empty.
1721
 * It is OK for this to be too large; in fact, with the present
1722
 * algorithm, it will be quite a bit too large if the transformation isn't
1723
 * well-behaved ("well-behaved" meaning either xy = yx = 0 or xx = yy = 0).
1724
 */
1725
0
#define I_FLOOR(x) ((int)floor(x))
1726
0
#define I_CEIL(x) ((int)ceil(x))
1727
static void
1728
box_merge_point(gs_int_rect * pbox, double x, double y)
1729
0
{
1730
0
    int t;
1731
1732
0
    if ((t = I_FLOOR(x)) < pbox->p.x)
1733
0
        pbox->p.x = t;
1734
0
    if ((t = I_CEIL(x)) > pbox->q.x)
1735
0
        pbox->q.x = t;
1736
0
    if ((t = I_FLOOR(y)) < pbox->p.y)
1737
0
        pbox->p.y = t;
1738
0
    if ((t = I_CEIL(y)) > pbox->q.y)
1739
0
        pbox->q.y = t;
1740
0
}
1741
static bool
1742
image_band_box(gx_device * dev, const clist_image_enum * pie, int y, int h,
1743
               gs_int_rect * pbox)
1744
1.36k
{
1745
1.36k
    fixed by0 = int2fixed(y);
1746
1.36k
    fixed by1 = int2fixed(y + h);
1747
1.36k
    int
1748
1.36k
        px = pie->rect.p.x, py = pie->rect.p.y,
1749
1.36k
        qx = pie->rect.q.x, qy = pie->rect.q.y;
1750
1.36k
    gs_fixed_rect cbox;         /* device clipping box */
1751
1.36k
    gs_rect bbox;               /* cbox intersected with band */
1752
1753
    /* Intersect the device clipping box and the band. */
1754
1.36k
    (*dev_proc(dev, get_clipping_box)) (dev, &cbox);
1755
    /* The fixed_half here is to allow for adjustment. */
1756
1.36k
    bbox.p.x = fixed2float(cbox.p.x - fixed_half);
1757
1.36k
    bbox.q.x = fixed2float(cbox.q.x + fixed_half);
1758
1.36k
    bbox.p.y = fixed2float(max(cbox.p.y, by0) - fixed_half);
1759
1.36k
    bbox.q.y = fixed2float(min(cbox.q.y, by1) + fixed_half);
1760
    /* Limit the box further if possible (because of a clipping path) */
1761
1.36k
    if (bbox.p.y < pie->ymin)
1762
447
        bbox.p.y = pie->ymin;
1763
1.36k
    if (bbox.q.y > pie->ymax)
1764
339
        bbox.q.y = pie->ymax;
1765
#ifdef DEBUG
1766
    if (gs_debug_c('b')) {
1767
        dmlprintf6(dev->memory, "[b]band box for (%d,%d),(%d,%d), band (%d,%d) =>\n",
1768
                   px, py, qx, qy, y, y + h);
1769
        dmlprintf10(dev->memory, "      (%g,%g),(%g,%g), matrix=[%g %g %g %g %g %g]\n",
1770
                    bbox.p.x, bbox.p.y, bbox.q.x, bbox.q.y,
1771
                    pie->matrix.xx, pie->matrix.xy, pie->matrix.yx,
1772
                    pie->matrix.yy, pie->matrix.tx, pie->matrix.ty);
1773
    }
1774
#endif
1775
1.36k
    if (is_xxyy(&pie->matrix) || is_xyyx(&pie->matrix)) {
1776
        /*
1777
         * The inverse transform of the band is a rectangle aligned with
1778
         * the coordinate axes, so we can just intersect it with the
1779
         * image subrectangle.
1780
         */
1781
1.36k
        gs_rect ibox;           /* bbox transformed back to image space */
1782
1783
1.36k
        if (gs_bbox_transform_inverse(&bbox, &pie->matrix, &ibox) < 0)
1784
0
            return false;
1785
1.36k
        pbox->p.x = max(px, I_FLOOR(ibox.p.x));
1786
1.36k
        pbox->q.x = min(qx, I_CEIL(ibox.q.x));
1787
1.36k
        pbox->p.y = max(py, I_FLOOR(ibox.p.y));
1788
1.36k
        pbox->q.y = min(qy, I_CEIL(ibox.q.y));
1789
1.36k
    } else {
1790
        /*
1791
         * The inverse transform of the band is not aligned with the
1792
         * axes, i.e., is a general parallelogram.  To compute an exact
1793
         * bounding box, we need to find the intersections of this
1794
         * parallelogram with the image subrectangle.
1795
         *
1796
         * There is probably a much more efficient way to do this
1797
         * computation, but we don't know what it is.
1798
         */
1799
0
        gs_point rect[4];
1800
0
        gs_point corners[5];
1801
0
        int i;
1802
1803
        /* Store the corners of the image rectangle. */
1804
0
        rect[0].x = rect[3].x = px;
1805
0
        rect[1].x = rect[2].x = qx;
1806
0
        rect[0].y = rect[1].y = py;
1807
0
        rect[2].y = rect[3].y = qy;
1808
        /*
1809
         * Compute the corners of the clipped band in image space.  If
1810
         * the matrix is singular or an overflow occurs, the result will
1811
         * be nonsense: in this case, there isn't anything useful we
1812
         * can do, so return an empty intersection.
1813
         */
1814
0
        if (gs_point_transform_inverse(bbox.p.x, bbox.p.y, &pie->matrix,
1815
0
                                       &corners[0]) < 0 ||
1816
0
            gs_point_transform_inverse(bbox.q.x, bbox.p.y, &pie->matrix,
1817
0
                                       &corners[1]) < 0 ||
1818
0
            gs_point_transform_inverse(bbox.q.x, bbox.q.y, &pie->matrix,
1819
0
                                       &corners[2]) < 0 ||
1820
0
            gs_point_transform_inverse(bbox.p.x, bbox.q.y, &pie->matrix,
1821
0
                                       &corners[3]) < 0
1822
0
            ) {
1823
0
            if_debug0m('b', dev->memory,
1824
0
                       "[b]can't inverse-transform a band corner!\n");
1825
0
            return false;
1826
0
        }
1827
0
        corners[4] = corners[0];
1828
0
        pbox->p.x = qx, pbox->p.y = qy;
1829
0
        pbox->q.x = px, pbox->q.y = py;
1830
        /*
1831
         * We iterate over both the image rectangle and the band
1832
         * parallelogram in a single loop for convenience, even though
1833
         * there is no coupling between the two.
1834
         */
1835
0
        for (i = 0; i < 4; ++i) {
1836
0
            gs_point pa, pt;
1837
0
            double dx, dy;
1838
1839
            /* Check the image corner for being inside the band. */
1840
0
            pa = rect[i];
1841
0
            gs_point_transform(pa.x, pa.y, &pie->matrix, &pt);
1842
0
            if (pt.x >= bbox.p.x && pt.x <= bbox.q.x &&
1843
0
                pt.y >= bbox.p.y && pt.y <= bbox.q.y
1844
0
                )
1845
0
                box_merge_point(pbox, pa.x, pa.y);
1846
            /* Check the band corner for being inside the image. */
1847
0
            pa = corners[i];
1848
0
            if (pa.x >= px && pa.x <= qx && pa.y >= py && pa.y <= qy)
1849
0
                box_merge_point(pbox, pa.x, pa.y);
1850
            /* Check for intersections of band edges with image edges. */
1851
0
            dx = corners[i + 1].x - pa.x;
1852
0
            dy = corners[i + 1].y - pa.y;
1853
0
#define in_range(t, tc, p, q)\
1854
0
  (0 <= t && t <= 1 && (t = tc) >= p && t <= q)
1855
0
            if (dx != 0) {
1856
0
                double t = (px - pa.x) / dx;
1857
1858
0
                if_debug3m('b', dev->memory, "   (px) t=%g => (%d,%g)\n",
1859
0
                           t, px, pa.y + t * dy);
1860
0
                if (in_range(t, pa.y + t * dy, py, qy))
1861
0
                    box_merge_point(pbox, (double) px, t);
1862
0
                t = (qx - pa.x) / dx;
1863
0
                if_debug3m('b', dev->memory, "   (qx) t=%g => (%d,%g)\n",
1864
0
                           t, qx, pa.y + t * dy);
1865
0
                if (in_range(t, pa.y + t * dy, py, qy))
1866
0
                    box_merge_point(pbox, (double) qx, t);
1867
0
            }
1868
0
            if (dy != 0) {
1869
0
                double t = (py - pa.y) / dy;
1870
1871
0
                if_debug3m('b', dev->memory, "   (py) t=%g => (%g,%d)\n",
1872
0
                           t, pa.x + t * dx, py);
1873
0
                if (in_range(t, pa.x + t * dx, px, qx))
1874
0
                    box_merge_point(pbox, t, (double) py);
1875
0
                t = (qy - pa.y) / dy;
1876
0
                if_debug3m('b', dev->memory, "   (qy) t=%g => (%g,%d)\n",
1877
0
                           t, pa.x + t * dx, qy);
1878
0
                if (in_range(t, pa.x + t * dx, px, qx))
1879
0
                    box_merge_point(pbox, t, (double) qy);
1880
0
            }
1881
0
#undef in_range
1882
0
        }
1883
0
    }
1884
1.36k
    if_debug4m('b', dev->memory, "    => (%d,%d),(%d,%d)\n",
1885
1.36k
               pbox->p.x, pbox->p.y, pbox->q.x, pbox->q.y);
1886
    /*
1887
     * If necessary, add pixels around the edges so we will have
1888
     * enough information to do interpolation.
1889
     */
1890
1.36k
    if ((pbox->p.x -= pie->support.x) < pie->rect.p.x)
1891
0
        pbox->p.x = pie->rect.p.x;
1892
1.36k
    if ((pbox->p.y -= pie->support.y) < pie->rect.p.y)
1893
0
        pbox->p.y = pie->rect.p.y;
1894
1.36k
    if ((pbox->q.x += pie->support.x) > pie->rect.q.x)
1895
0
        pbox->q.x = pie->rect.q.x;
1896
1.36k
    if ((pbox->q.y += pie->support.y) > pie->rect.q.y)
1897
0
        pbox->q.y = pie->rect.q.y;
1898
1.36k
    return (pbox->p.x < pbox->q.x && pbox->p.y < pbox->q.y);
1899
1.36k
}
1900
1901
inline static bool
1902
icc_info_notequal(clist_icc_color_t info1, clist_icc_color_t info2)
1903
11
{
1904
11
    if (info1.data_cs != info2.data_cs || info1.default_match != info2.default_match ||
1905
11
        info1.icc_num_components != info2.icc_num_components || info1.is_lab != info2.is_lab ||
1906
11
        info1.icc_hash != info2.icc_hash)
1907
0
        return true;
1908
11
    else
1909
11
        return false;
1910
11
}
1911
1912
/* Determine which image-related properties are unknown */
1913
static uint     /* mask of unknown properties(see pcls->known) */
1914
clist_image_unknowns(gx_device *dev, const clist_image_enum *pie)
1915
254
{
1916
254
    gx_device_clist_writer * const cdev =
1917
254
        &((gx_device_clist *)dev)->writer;
1918
254
    const gs_gstate *const pgs = pie->pgs;
1919
254
    uint unknown = 0;
1920
1921
    /*
1922
     * Determine if the CTM, color space, fill_adjust and clipping region,
1923
     * (and, for masked images or images with CombineWithColor, the current
1924
     * color) are unknown. Set the device state in anticipation of the
1925
     * values becoming known.
1926
     */
1927
254
    if (cdev->gs_gstate.ctm.xx != pgs->ctm.xx ||
1928
254
        cdev->gs_gstate.ctm.xy != pgs->ctm.xy ||
1929
254
        cdev->gs_gstate.ctm.yx != pgs->ctm.yx ||
1930
254
        cdev->gs_gstate.ctm.yy != pgs->ctm.yy ||
1931
254
        cdev->gs_gstate.ctm.tx != pgs->ctm.tx ||
1932
254
        cdev->gs_gstate.ctm.ty != pgs->ctm.ty
1933
254
        ) {
1934
249
        unknown |= ctm_known;
1935
249
        cdev->gs_gstate.ctm = pgs->ctm;
1936
249
    }
1937
254
    if (pie->color_space.id == gs_no_id) { /* masked image */
1938
29
        cdev->color_space.space = 0; /* for GC */
1939
225
    } else {                    /* not masked */
1940
225
        if (cdev->color_space.id != pie->color_space.id ||
1941
225
            cdev->color_space.space != pie->color_space.space ||
1942
225
            icc_info_notequal(cdev->color_space.icc_info, pie->color_space.icc_info)) {
1943
214
            unknown |= color_space_known;
1944
214
            cdev->color_space.space = pie->color_space.space;
1945
214
            cdev->color_space = pie->color_space;
1946
214
            memcpy(&(cdev->color_space.icc_info), &(pie->color_space.icc_info), sizeof(clist_icc_color_t));
1947
214
        }
1948
225
    }
1949
254
    if (cdev->gs_gstate.fill_adjust.x != pgs->fill_adjust.x ||
1950
254
        cdev->gs_gstate.fill_adjust.y != pgs->fill_adjust.y) {
1951
1
        unknown |= fill_adjust_known;
1952
1
        cdev->gs_gstate.fill_adjust = pgs->fill_adjust;
1953
1
    }
1954
254
    if (cmd_check_clip_path(cdev, pie->pcpath))
1955
254
        unknown |= clip_path_known;
1956
    /*
1957
     * Note: overprint and overprint_mode are implemented via a compositor
1958
     * device, which is passed separately through the command list. Hence,
1959
     * though both parameters are passed in the state as well, this usually
1960
     * has no effect.
1961
     */
1962
254
    if (cdev->gs_gstate.overprint != pgs->overprint ||
1963
254
        cdev->gs_gstate.overprint_mode != pgs->overprint_mode ||
1964
254
        cdev->gs_gstate.blend_mode != pgs->blend_mode ||
1965
254
        cdev->gs_gstate.text_knockout != pgs->text_knockout ||
1966
254
        cdev->gs_gstate.renderingintent != pgs->renderingintent) {
1967
13
        unknown |= op_bm_tk_known;
1968
13
        cdev->gs_gstate.overprint = pgs->overprint;
1969
13
        cdev->gs_gstate.overprint_mode = pgs->overprint_mode;
1970
13
        cdev->gs_gstate.blend_mode = pgs->blend_mode;
1971
13
        cdev->gs_gstate.text_knockout = pgs->text_knockout;
1972
13
        cdev->gs_gstate.renderingintent = pgs->renderingintent;
1973
13
    }
1974
254
    if (cdev->gs_gstate.alphaisshape != pgs->alphaisshape) {
1975
0
        unknown |= ais_known;
1976
0
        cdev->gs_gstate.alphaisshape = pgs->alphaisshape;
1977
0
    }
1978
254
    if (cdev->gs_gstate.strokeconstantalpha != pgs->strokeconstantalpha) {
1979
0
        unknown |= stroke_alpha_known;
1980
0
        cdev->gs_gstate.strokeconstantalpha = pgs->strokeconstantalpha;
1981
0
    }
1982
254
    if (cdev->gs_gstate.fillconstantalpha != pgs->fillconstantalpha) {
1983
0
        unknown |= fill_alpha_known;
1984
0
        cdev->gs_gstate.fillconstantalpha = pgs->fillconstantalpha;
1985
0
    }
1986
254
    return unknown;
1987
254
}
1988
1989
/* Construct the begin_image command. */
1990
static int
1991
begin_image_command(byte *buf, uint buf_size, const gs_image_common_t *pic)
1992
254
{
1993
254
    int i;
1994
254
    stream s;
1995
254
    const gs_color_space *ignore_pcs;
1996
254
    int code;
1997
1998
1.04k
    for (i = 0; i < gx_image_type_table_count; ++i)
1999
1.04k
        if (gx_image_type_table[i] == pic->type)
2000
254
            break;
2001
254
    if (i >= gx_image_type_table_count)
2002
0
        return_error(gs_error_rangecheck);
2003
254
    s_init(&s, NULL);
2004
254
    swrite_string(&s, buf, buf_size);
2005
254
    sputc(&s, (byte)i);
2006
254
    code = pic->type->sput(pic, &s, &ignore_pcs);
2007
254
    return (code < 0 ? code : stell(&s));
2008
254
}
2009
2010
/* Write data for a partial image. */
2011
static int
2012
cmd_image_plane_data(gx_device_clist_writer * cldev, gx_clist_state * pcls,
2013
                     const gx_image_plane_t * planes,
2014
                     const gx_image_enum_common_t * pie,
2015
                     uint bytes_per_plane, const uint * offsets,
2016
                     int dx, int h)
2017
681
{
2018
681
    int data_x = planes[0].data_x + dx;
2019
681
    uint nbytes = bytes_per_plane * pie->num_planes * h;
2020
681
    uint len = 1 + cmd_size2w(h, bytes_per_plane) + nbytes;
2021
681
    byte *dp;
2022
681
    uint offset = 0;
2023
681
    int plane, i;
2024
681
    int code;
2025
2026
681
    if (data_x) {
2027
0
        code = cmd_put_set_data_x(cldev, pcls, data_x);
2028
0
        if (code < 0)
2029
0
            return code;
2030
0
        offset = ((data_x & ~7) * cldev->clist_color_info.depth) >> 3;
2031
0
    }
2032
681
    code = set_cmd_put_op(&dp, cldev, pcls, cmd_opv_image_data, len);
2033
681
    if (code < 0)
2034
0
        return code;
2035
681
    dp++;
2036
681
    cmd_put2w(h, bytes_per_plane, &dp);
2037
1.36k
    for (plane = 0; plane < pie->num_planes; ++plane)
2038
1.81k
        for (i = 0; i < h; ++i) {
2039
1.13k
            memcpy(dp,
2040
1.13k
                   planes[plane].data + i * planes[plane].raster +
2041
1.13k
                   offsets[plane] + offset,
2042
1.13k
                   bytes_per_plane);
2043
1.13k
            dp += bytes_per_plane;
2044
1.13k
        }
2045
681
    return 0;
2046
681
}
2047
2048
/* Write data for a partial image with color monitor. */
2049
static int
2050
cmd_image_plane_data_mon(gx_device_clist_writer * cldev, gx_clist_state * pcls,
2051
                     const gx_image_plane_t * planes,
2052
                     const gx_image_enum_common_t * pie,
2053
                     uint bytes_per_plane, const uint * offsets,
2054
                     int dx, int h, bool *found_color)
2055
0
{
2056
0
    clist_image_enum *pie_c = (clist_image_enum *) pie;
2057
0
    int data_x = planes[0].data_x + dx;
2058
0
    uint nbytes = bytes_per_plane * pie->num_planes * h;
2059
0
    uint len = 1 + cmd_size2w(h, bytes_per_plane) + nbytes;
2060
0
    byte *dp;
2061
0
    uint offset = 0;
2062
0
    int plane, i;
2063
0
    int code;
2064
0
    int width = pie_c->rect.q.x - pie_c->rect.p.x;
2065
0
    int dsize = (((width + (planes[0]).data_x) * pie_c->decode.spp *
2066
0
        pie_c->decode.bps / pie->num_planes + 7) >> 3);
2067
0
    int data_size = pie_c->decode.spread / pie->num_planes;
2068
2069
0
    *found_color = false;
2070
2071
0
    if (data_x) {
2072
0
        code = cmd_put_set_data_x(cldev, pcls, data_x);
2073
0
        if (code < 0)
2074
0
            return code;
2075
0
        offset = ((data_x & ~7) * cldev->clist_color_info.depth) >> 3;
2076
0
    }
2077
0
    code = set_cmd_put_op(&dp, cldev, pcls, cmd_opv_image_data, len);
2078
0
    if (code < 0)
2079
0
        return code;
2080
0
    dp++;
2081
2082
0
    cmd_put2w(h, bytes_per_plane, &dp);
2083
2084
0
    for (i = 0; i < h; ++i) {
2085
0
        if (!(*found_color)) {
2086
            /* Here we need to unpack and actually look at the image data
2087
               to see if we have any non-neutral colors */
2088
0
            int pdata_x;
2089
0
            byte *data_ptr =  (byte *)(planes[0].data + i * planes[0].raster + offsets[0] + offset);
2090
0
            byte *buffer = (byte *)(*pie_c->decode.unpack)(pie_c->buffer, &pdata_x,
2091
0
                                     data_ptr, 0, dsize, pie_c->decode.map,
2092
0
                pie_c->decode.spread, pie_c->decode.spp);
2093
2094
0
            for (plane = 1; plane < pie->num_planes; ++plane) {
2095
                /* unpack planes after the first (if any), relying on spread to place the */
2096
                /* data at the correct spacing, with the buffer start adjusted for each plane */
2097
0
                data_ptr = (byte *)(planes[plane].data + i * planes[plane].raster + offsets[plane] + offset);
2098
0
                (*pie_c->decode.unpack)(pie_c->buffer + (data_size * plane), &pdata_x, data_ptr, 0,
2099
0
                    dsize, pie_c->decode.map, pie_c->decode.spread, pie_c->decode.spp);
2100
0
            }
2101
0
            if (row_has_color(buffer, pie_c, data_size, width)) {
2102
                /* Has color.  We are done monitoring */
2103
0
                *found_color = true;
2104
0
            }
2105
0
        }
2106
        /* Now copy the plane data into the clist buffer */
2107
0
        for (plane = 0; plane < pie->num_planes; ++plane) {
2108
0
            memcpy(dp, planes[plane].data + i * planes[plane].raster +
2109
0
                   offsets[plane] + offset, bytes_per_plane);
2110
0
            dp += bytes_per_plane;
2111
0
        }
2112
0
    }
2113
0
    return 0;
2114
0
}
2115
2116
/* Write image_end commands into all bands */
2117
static int      /* ret 0 ok, else -ve error status */
2118
write_image_end_all(gx_device *dev, const clist_image_enum *pie)
2119
254
{
2120
254
    gx_device_clist_writer * const cdev =
2121
254
        &((gx_device_clist *)dev)->writer;
2122
254
    int code;
2123
254
    int ry = pie->ymin;
2124
254
    int rheight = pie->ymax - ry;
2125
254
    cmd_rects_enum_t re;
2126
2127
    /*
2128
     * We need to check specially for images lying entirely outside the
2129
     * page, since the RECT writing logic doesn't do this.
2130
     */
2131
254
    if (pie->ymax < 0 || ry >= dev->height)
2132
35
        return 0;
2133
219
    if (cdev->permanent_error < 0)
2134
0
      return (cdev->permanent_error);
2135
219
    RECT_ENUM_INIT(re, ry, rheight);
2136
873
    do {
2137
873
        byte *dp;
2138
2139
873
        RECT_STEP_INIT(re);
2140
873
        if (re.pcls->known & begin_image_known) {
2141
657
            if_debug1m('L', dev->memory, "[L]image_end for band %d\n", re.band);
2142
657
            code = set_cmd_put_op(&dp, cdev, re.pcls, cmd_opv_image_data, 2);
2143
657
            if (code < 0)
2144
0
                return code;
2145
657
            dp[1] = 0;      /* EOD */
2146
657
            re.pcls->known ^= begin_image_known;
2147
657
        }
2148
873
    } while ((re.y += re.height) < re.yend);
2149
    /* Make sure to clean up the buffer if we were monitoring */
2150
219
    if (pie->buffer != NULL) {
2151
0
        gs_free_object(pie->memory, pie->buffer, "write_image_end_all");
2152
0
    }
2153
219
    return 0;
2154
219
}
2155
2156
/*
2157
 * Compare a rectangle vs. clip path.  Return true if there is no clipping
2158
 * path, if the rectangle is unclipped, or if the clipping path is a
2159
 * rectangle and intersects the given rectangle.
2160
 */
2161
static bool
2162
check_rect_for_trivial_clip(
2163
    const gx_clip_path *pcpath, /* May be NULL, clip to evaluate */
2164
    int px, int py, int qx, int qy      /* corners of box to test */
2165
)
2166
0
{
2167
0
    gs_fixed_rect obox;
2168
0
    gs_fixed_rect imgbox;
2169
2170
0
    if (!pcpath)
2171
0
        return true;
2172
2173
0
    imgbox.p.x = int2fixed(px);
2174
0
    imgbox.p.y = int2fixed(py);
2175
0
    imgbox.q.x = int2fixed(qx);
2176
0
    imgbox.q.y = int2fixed(qy);
2177
0
    if (gx_cpath_includes_rectangle(pcpath,
2178
0
                                    imgbox.p.x, imgbox.p.y,
2179
0
                                    imgbox.q.x, imgbox.q.y))
2180
0
        return true;
2181
2182
0
    return (gx_cpath_outer_box(pcpath, &obox) /* cpath is rectangle */ &&
2183
0
            obox.p.x <= imgbox.q.x && obox.q.x >= imgbox.p.x &&
2184
0
            obox.p.y <= imgbox.q.y && obox.q.y >= imgbox.p.y );
2185
0
}