Coverage Report

Created: 2025-06-10 07:27

/src/ghostpdl/base/gdevdevn.c
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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
/* Example DeviceN process color model devices. */
17
18
#include "math_.h"
19
#include "string_.h"
20
#include "gdevprn.h"
21
#include "gsparam.h"
22
#include "gscrd.h"
23
#include "gscrdp.h"
24
#include "gxlum.h"
25
#include "gdevdcrd.h"
26
#include "gstypes.h"
27
#include "gxdcconv.h"
28
#include "gdevdevn.h"
29
#include "gsequivc.h"
30
#include "gxblend.h"
31
#include "gdevp14.h"
32
#include "gdevdevnprn.h"
33
#include "gxdevsop.h"
34
35
/*
36
 * Utility routines for common DeviceN related parameters:
37
 *   SeparationColorNames, SeparationOrder, and MaxSeparations
38
 */
39
40
/* Convert a gray color space to DeviceN colorants. */
41
void
42
gray_cs_to_devn_cm(const gx_device * dev, int * map, frac gray, frac out[])
43
7.27k
{
44
7.27k
    int i = dev->color_info.num_components - 1;
45
46
40.1k
    for(; i >= 0; i--)                  /* Clear colors */
47
32.8k
        out[i] = frac_0;
48
7.27k
    if ((i = map[3]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
49
7.27k
        out[i] = frac_1 - gray;
50
7.27k
}
51
52
/* Convert an RGB color space to DeviceN colorants. */
53
void
54
rgb_cs_to_devn_cm(const gx_device * dev, int * map,
55
                const gs_gstate *pgs, frac r, frac g, frac b, frac out[])
56
0
{
57
0
    int i = dev->color_info.num_components - 1;
58
0
    frac cmyk[4];
59
60
0
    for(; i >= 0; i--)                  /* Clear colors */
61
0
        out[i] = frac_0;
62
0
    color_rgb_to_cmyk(r, g, b, pgs, cmyk, dev->memory);
63
0
    if ((i = map[0]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
64
0
        out[i] = cmyk[0];
65
0
    if ((i = map[1]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
66
0
        out[i] = cmyk[1];
67
0
    if ((i = map[2]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
68
0
        out[i] = cmyk[2];
69
0
    if ((i = map[3]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
70
0
        out[i] = cmyk[3];
71
0
}
72
73
/* Convert a CMYK color space to DeviceN colorants. */
74
void
75
cmyk_cs_to_devn_cm(const gx_device * dev, const int * map,
76
                frac c, frac m, frac y, frac k, frac out[])
77
45.2M
{
78
45.2M
    int i = dev->color_info.num_components - 1;
79
80
226M
    for(; i >= 0; i--)                  /* Clear colors */
81
181M
        out[i] = frac_0;
82
45.2M
    if ((i = map[0]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
83
45.2M
        out[i] = c;
84
45.2M
    if ((i = map[1]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
85
45.2M
        out[i] = m;
86
45.2M
    if ((i = map[2]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
87
45.2M
        out[i] = y;
88
45.2M
    if ((i = map[3]) != GX_DEVICE_COLOR_MAX_COMPONENTS)
89
45.2M
        out[i] = k;
90
45.2M
}
91
92
/* Some devices need to create composite mappings of the spot colorants.
93
   This code was originally in the tiffsep device but was moved here to be
94
   sharable across multiple separation devices that need this capability */
95
96
97
/*
98
* Build the map to be used to create a CMYK equivalent to the current
99
* device components.
100
*/
101
void build_cmyk_map(gx_device *pdev, int num_comp,
102
    equivalent_cmyk_color_params *equiv_cmyk_colors,
103
    cmyk_composite_map * cmyk_map)
104
4.17k
{
105
4.17k
    int comp_num;
106
4.17k
    gs_devn_params *devn_params =  dev_proc(pdev, ret_devn_params)(pdev);
107
108
4.17k
    if (devn_params == NULL)
109
0
        return;
110
111
20.9k
    for (comp_num = 0; comp_num < num_comp; comp_num++) {
112
16.7k
        int sep_num = devn_params->separation_order_map[comp_num];
113
114
16.7k
        cmyk_map[comp_num].c = cmyk_map[comp_num].m =
115
16.7k
            cmyk_map[comp_num].y = cmyk_map[comp_num].k = frac_0;
116
        /* The tiffsep device has 4 standard colors:  CMYK */
117
16.7k
        if (sep_num < devn_params->num_std_colorant_names) {
118
16.7k
            switch (sep_num) {
119
4.17k
            case 0: cmyk_map[comp_num].c = frac_1; break;
120
4.17k
            case 1: cmyk_map[comp_num].m = frac_1; break;
121
4.17k
            case 2: cmyk_map[comp_num].y = frac_1; break;
122
4.17k
            case 3: cmyk_map[comp_num].k = frac_1; break;
123
16.7k
            }
124
16.7k
        } else {
125
83
            sep_num -= devn_params->num_std_colorant_names;
126
83
            if (equiv_cmyk_colors->color[sep_num].color_info_valid) {
127
71
                cmyk_map[comp_num].c = equiv_cmyk_colors->color[sep_num].c;
128
71
                cmyk_map[comp_num].m = equiv_cmyk_colors->color[sep_num].m;
129
71
                cmyk_map[comp_num].y = equiv_cmyk_colors->color[sep_num].y;
130
71
                cmyk_map[comp_num].k = equiv_cmyk_colors->color[sep_num].k;
131
71
            }
132
83
        }
133
16.7k
    }
134
4.17k
}
135
136
/*
137
 * This utility routine calculates the number of bits required to store
138
 * color information.  In general the values are rounded up to an even
139
 * byte boundary except those cases in which mulitple pixels can evenly
140
 * into a single byte.
141
 *
142
 * The parameter are:
143
 *   ncomp - The number of components (colorants) for the device.  Valid
144
 *           values are 1 to GX_DEVICE_COLOR_MAX_COMPONENTS
145
 *   bpc - The number of bits per component.  Valid values are 1, 2, 4, 5,
146
 *         and 8.
147
 * Input values are not tested for validity.
148
 */
149
int
150
bpc_to_depth(uchar ncomp, int bpc)
151
27.5k
{
152
27.5k
    static const byte depths[4][8] = {
153
27.5k
        {1, 2, 0, 4, 8, 0, 0, 8},
154
27.5k
        {2, 4, 0, 8, 16, 0, 0, 16},
155
27.5k
        {4, 8, 0, 16, 16, 0, 0, 24},
156
27.5k
        {4, 8, 0, 16, 32, 0, 0, 32}
157
27.5k
    };
158
159
27.5k
    if (ncomp <=4 && bpc <= 8)
160
3.80k
        return depths[ncomp -1][bpc-1];
161
23.7k
    else
162
23.7k
        return (ncomp * bpc + 7) & ~7;
163
27.5k
}
164
165
#define compare_color_names(name, name_size, str, str_size) \
166
5.30M
    (name_size == str_size && \
167
5.30M
        (strncmp((const char *)name, (const char *)str, name_size) == 0))
168
169
/*
170
 * This routine will check if a name matches any item in a list of process
171
 * color model colorant names.
172
 */
173
static bool
174
check_process_color_names(fixed_colorant_names_list plist,
175
                          const gs_param_string * pstring)
176
0
{
177
0
    if (plist) {
178
0
        uint size = pstring->size;
179
180
0
        while( *plist) {
181
0
            if (compare_color_names(*plist, strlen(*plist), pstring->data, size)) {
182
0
                return true;
183
0
            }
184
0
            plist++;
185
0
        }
186
0
    }
187
0
    return false;
188
0
}
189
190
static int count_process_color_names(fixed_colorant_names_list plist)
191
0
{
192
0
    int count = 0;
193
194
0
    if (plist) {
195
0
        while( *plist){
196
0
            count++;
197
0
            plist++;
198
0
        }
199
0
    }
200
0
    return count;
201
0
}
202
203
/* Check only the separation names */
204
int
205
check_separation_names(const gx_device * dev, const gs_devn_params * pparams,
206
    const char * pname, int name_size, int component_type, int number)
207
110k
{
208
110k
    const gs_separations * separations = &pparams->separations;
209
110k
    int num_spot = separations->num_separations;
210
110k
    int color_component_number = number;
211
110k
    int i;
212
213
111k
    for (i = 0; i<num_spot; i++) {
214
3.68k
        if (compare_color_names((const char *)separations->names[i].data,
215
3.68k
            separations->names[i].size, pname, name_size)) {
216
3.53k
            return color_component_number;
217
3.53k
        }
218
145
        color_component_number++;
219
145
    }
220
107k
    return -1;
221
110k
}
222
223
/*
224
 * This routine will check to see if the color component name  match those
225
 * of either the process color model colorants or the names on the
226
 * SeparationColorNames list.
227
 *
228
 * Parameters:
229
 *   dev - pointer to device data structure.
230
 *   pname - pointer to name (zero termination not required)
231
 *   nlength - length of the name
232
 *
233
 * This routine returns a positive value (0 to n) which is the device colorant
234
 * number if the name is found.  It returns a negative value if not found.
235
 */
236
int
237
check_pcm_and_separation_names(const gx_device * dev,
238
                const gs_devn_params * pparams, const char * pname,
239
                int name_size, int component_type)
240
1.73M
{
241
1.73M
    fixed_colorant_name * pcolor = pparams->std_colorant_names;
242
1.73M
    int color_component_number = 0;
243
244
    /* Check if the component is in the process color model list. */
245
1.73M
    if (pcolor) {
246
5.41M
        while( *pcolor) {
247
5.30M
            if (compare_color_names(pname, name_size, *pcolor, strlen(*pcolor)))
248
1.62M
                return color_component_number;
249
3.67M
            pcolor++;
250
3.67M
            color_component_number++;
251
3.67M
        }
252
1.73M
    }
253
    /* For some devices, Tags is part of the process color model list. If so,
254
     * that throws us off here since it is thrown at the end of the list. Adjust. */
255
110k
    if (device_encodes_tags(dev)) {
256
0
        color_component_number--;
257
0
    }
258
259
110k
    return check_separation_names(dev, pparams, pname, name_size,
260
110k
        component_type, color_component_number);
261
1.73M
}
262
263
/*
264
 * This routine will check to see if the color component name  match those
265
 * that are available amoung the current device's color components.
266
 *
267
 * Parameters:
268
 *   dev - pointer to device data structure.
269
 *   pname - pointer to name (zero termination not required)
270
 *   nlength - length of the name
271
 *   component_type - separation name or not
272
 *   pdevn_params - pointer to device's DeviceN paramters
273
 *   pequiv_colors - pointer to equivalent color structure (may be NULL)
274
 *
275
 * This routine returns a positive value (0 to n) which is the device colorant
276
 * number if the name is found.  It returns GX_DEVICE_COLOR_MAX_COMPONENTS if
277
 * the color component is found but is not being used due to the
278
 * SeparationOrder device parameter.  It returns a negative value if not found.
279
 *
280
 * This routine will also add separations to the device if space is
281
 * available.
282
 */
283
int
284
devn_get_color_comp_index(gx_device * dev, gs_devn_params * pdevn_params,
285
                    equivalent_cmyk_color_params * pequiv_colors,
286
                    const char * pname, int name_size, int component_type,
287
                    int auto_spot_colors)
288
1.73M
{
289
1.73M
    int num_order = pdevn_params->num_separation_order_names;
290
1.73M
    int color_component_number = 0;
291
1.73M
    int num_res_comps = pdevn_params->num_reserved_components;
292
1.73M
    int max_spot_colors = GX_DEVICE_MAX_SEPARATIONS - pdevn_params->num_std_colorant_names - num_res_comps;
293
294
    /*
295
     * Check if the component is in either the process color model list
296
     * or in the SeparationNames list.
297
     */
298
1.73M
    color_component_number = check_pcm_and_separation_names(dev, pdevn_params,
299
1.73M
                                        pname, name_size, component_type);
300
301
    /* If we have a valid component */
302
1.73M
    if (color_component_number >= 0) {
303
        /* Check if the component is in the separation order map. */
304
1.62M
        if (num_order)
305
0
            color_component_number =
306
0
                pdevn_params->separation_order_map[color_component_number];
307
1.62M
        else
308
            /*
309
             * We can have more spot colors than we can image.  We simply
310
             * ignore the component (i.e. treat it the same as we would
311
             * treat a component that is not in the separation order map).
312
             * Note:  Most device do not allow more spot colors than we can
313
             * image.  (See the options for auto_spot_color in gdevdevn.h.)
314
             */
315
1.62M
            if (color_component_number >= dev->color_info.max_components)
316
0
                color_component_number = GX_DEVICE_COLOR_MAX_COMPONENTS;
317
318
1.62M
        return color_component_number;
319
1.62M
    }
320
    /*
321
     * The given name does not match any of our current components or
322
     * separations.  Check if we should add the spot color to our list.
323
     * If the SeparationOrder parameter has been specified then we should
324
     * already have our complete list of desired spot colorants.
325
     */
326
107k
    if (component_type != SEPARATION_NAME ||
327
107k
            auto_spot_colors == NO_AUTO_SPOT_COLORS ||
328
107k
            pdevn_params->num_separation_order_names != 0)
329
107k
        return -1;      /* Do not add --> indicate colorant unknown. */
330
331
    /* Make sure the name is not "None"  this is sometimes
332
       within a DeviceN list and should not be added as one of the
333
       separations.  */
334
165
    if (strncmp(pname, "None", name_size) == 0) {
335
0
        return -1;
336
0
    }
337
    /* Additive devices should NOT have C/M/Y/K Colorants added to them.
338
     * This is a decision we take here to avoid problems with PDFI not
339
     * counting such colorants as spots. */
340
165
    if (dev->color_info.polarity == GX_CINFO_POLARITY_ADDITIVE) {
341
0
        if (name_size == 5 && strncmp(pname, "Black", 7) == 0)
342
0
            return -1;
343
0
        if (name_size == 4 && strncmp(pname, "Cyan", 4) == 0)
344
0
            return -1;
345
0
        if (name_size == 7 && strncmp(pname, "Magenta", 7) == 0)
346
0
            return -1;
347
0
        if (name_size == 6 && strncmp(pname, "Yellow", 6) == 0)
348
0
            return -1;
349
0
    }
350
351
    /*
352
     * Check if we have room for another spot colorant.
353
     */
354
165
    if (auto_spot_colors == ENABLE_AUTO_SPOT_COLORS)
355
        /* limit max_spot_colors to what the device can handle given max_components */
356
165
        max_spot_colors = min(max_spot_colors,
357
165
                              dev->color_info.max_components - pdevn_params->num_std_colorant_names - num_res_comps);
358
165
    if (pdevn_params->separations.num_separations < max_spot_colors) {
359
165
        byte * sep_name;
360
165
        gs_separations * separations = &pdevn_params->separations;
361
165
        int sep_num = separations->num_separations++;
362
        /* We have a new spot colorant - put in stable memory to avoid "restore" */
363
165
        sep_name = gs_alloc_bytes(dev->memory->stable_memory, name_size, "devn_get_color_comp_index");
364
165
        if (sep_name == NULL) {
365
0
            separations->num_separations--; /* we didn't add it */
366
0
            return -1;
367
0
        }
368
165
        memcpy(sep_name, pname, name_size);
369
165
        separations->names[sep_num].size = name_size;
370
165
        separations->names[sep_num].data = sep_name;
371
165
        color_component_number = sep_num + pdevn_params->num_std_colorant_names;
372
165
        if (color_component_number >= dev->color_info.max_components)
373
0
            color_component_number = GX_DEVICE_COLOR_MAX_COMPONENTS;
374
165
        else
375
165
            pdevn_params->separation_order_map[color_component_number] =
376
165
                                               color_component_number;
377
378
165
        if (pequiv_colors != NULL) {
379
            /* Indicate that we need to find equivalent CMYK color. */
380
165
            pequiv_colors->color[sep_num].color_info_valid = false;
381
165
            pequiv_colors->all_color_info_valid = false;
382
165
        }
383
165
    }
384
385
165
    return color_component_number;
386
165
}
387
388
#define set_param_array(a, d, s)\
389
368k
  (a.data = d, a.size = s, a.persistent = false);
390
391
static int
392
gs_device_supports_spots(gx_device *pdev)
393
239k
{
394
        /* Separations are only valid with a subtractive color model,
395
         * or additive ones that specifically want them. */
396
239k
        if (pdev->color_info.polarity == GX_CINFO_POLARITY_SUBTRACTIVE)
397
239k
                return 1;
398
0
        else if (pdev->color_info.polarity == GX_CINFO_POLARITY_ADDITIVE)
399
0
                return (dev_proc(pdev, dev_spec_op)(pdev, gxdso_is_sep_supporting_additive_device, NULL, 0) > 0);
400
0
        return 0;
401
239k
}
402
403
/* Get parameters.  We provide a default CRD. */
404
int
405
devn_get_params(gx_device * pdev, gs_param_list * plist,
406
    gs_devn_params * pdevn_params, equivalent_cmyk_color_params * pequiv_colors)
407
184k
{
408
184k
    int code, i = 0, spot_num;
409
184k
    bool seprs = false;
410
184k
    gs_param_string_array scna;
411
184k
    gs_param_string_array sona;
412
184k
    gs_param_int_array equiv_cmyk;
413
    /* there are 5 ints  per colorant in equiv_elements: a valid flag and an int for C, M, Y and K */
414
184k
    int equiv_elements[5 * GX_DEVICE_MAX_SEPARATIONS] = { 0 }; /* 5 * max_colors */
415
    /* limit in case num_separations in pdevn_params exceeds what is expected. */
416
184k
    int num_separations = min(pdevn_params->separations.num_separations, sizeof(equiv_elements)/(5*sizeof(int)));
417
418
184k
    set_param_array(scna, NULL, 0);
419
184k
    set_param_array(sona, NULL, 0);
420
421
184k
    if (pequiv_colors != NULL) {
422
184k
        for (spot_num = 0; spot_num < num_separations; spot_num++) {
423
165
            equiv_elements[i++] = pequiv_colors->color[spot_num].color_info_valid ? 1 : 0;
424
165
            equiv_elements[i++] = pequiv_colors->color[spot_num].c;
425
165
            equiv_elements[i++] = pequiv_colors->color[spot_num].m;
426
165
            equiv_elements[i++] = pequiv_colors->color[spot_num].y;
427
165
            equiv_elements[i++] = pequiv_colors->color[spot_num].k;
428
165
        }
429
184k
    }
430
431
184k
    equiv_cmyk.data = equiv_elements;
432
184k
    equiv_cmyk.size = i;
433
184k
    equiv_cmyk.persistent = false;
434
435
184k
    if ( (code = sample_device_crd_get_params(pdev, plist, "CRDDefault")) < 0 ||
436
184k
         (code = param_write_name_array(plist, "SeparationColorNames", &scna)) < 0 ||
437
184k
         (code = param_write_name_array(plist, "SeparationOrder", &sona)) < 0 ||
438
184k
         (code = param_write_bool(plist, "Separations", &seprs)) < 0)
439
0
        return code;
440
441
184k
    if (gs_device_supports_spots(pdev) &&
442
184k
        (code = param_write_int(plist, "PageSpotColors", &(pdevn_params->page_spot_colors))) < 0)
443
0
        return code;
444
445
184k
    if (pdevn_params->separations.num_separations > 0)
446
120
        code = param_write_int_array(plist, ".EquivCMYKColors", &equiv_cmyk);
447
448
184k
    return code;
449
184k
}
450
#undef set_param_array
451
452
#define BEGIN_ARRAY_PARAM(pread, pname, pa, psize, e)\
453
165k
    BEGIN\
454
165k
    switch (code = pread(plist, (param_name = pname), &(pa))) {\
455
37.1k
      case 0:\
456
37.1k
        if ((pa).size != psize) {\
457
0
          ecode = gs_note_error(gs_error_rangecheck);\
458
0
          (pa).data = 0;        /* mark as not filled */\
459
0
        } else
460
#define END_ARRAY_PARAM(pa, e)\
461
0
        goto e;\
462
37.1k
      default:\
463
0
        ecode = code;\
464
0
e:      param_signal_error(plist, param_name, ecode);\
465
128k
      case 1:\
466
128k
        (pa).data = 0;          /* mark as not filled */\
467
330k
    }\
468
330k
    END
469
470
/*
471
 * Utility routine for handling DeviceN related parameters.  This routine
472
 * may modify the color_info, devn_params, and the equiv_cmyk_colors fields.
473
 *
474
 * Note:  This routine does not restore values in case of a problem.  This
475
 * is left to the caller.
476
 */
477
int
478
devn_put_params(gx_device * pdev, gs_param_list * plist,
479
    gs_devn_params * pdevn_params, equivalent_cmyk_color_params * pequiv_colors)
480
55.1k
{
481
55.1k
    int code = 0, ecode, i;
482
55.1k
    gs_param_name param_name;
483
55.1k
    int npcmcolors = pdevn_params->num_std_colorant_names;
484
55.1k
    int num_spot = pdevn_params->separations.num_separations;
485
55.1k
    bool num_spot_changed = false;
486
55.1k
    int num_order = pdevn_params->num_separation_order_names;
487
55.1k
    int max_sep = pdevn_params->max_separations;
488
55.1k
    int page_spot_colors = pdevn_params->page_spot_colors;
489
55.1k
    gs_param_string_array scna;         /* SeparationColorNames array */
490
55.1k
    gs_param_string_array sona;         /* SeparationOrder names array */
491
55.1k
    gs_param_int_array equiv_cmyk;      /* equivalent_cmyk_color_params */
492
55.1k
    int num_res_comps = pdevn_params->num_reserved_components;
493
494
    /* Get the SeparationOrder names */
495
60.5k
    BEGIN_ARRAY_PARAM(param_read_name_array, "SeparationOrder",
496
60.5k
                                        sona, sona.size, sone)
497
5.46k
    {
498
5.46k
        break;
499
5.46k
    } END_ARRAY_PARAM(sona, sone);
500
55.1k
    if (sona.data != 0 && sona.size > pdev->color_info.max_components) {
501
0
        param_signal_error(plist, "SeparationOrder", gs_error_rangecheck);
502
0
        return_error(gs_error_rangecheck);
503
0
    }
504
505
    /* Get the SeparationColorNames */
506
86.8k
    BEGIN_ARRAY_PARAM(param_read_name_array, "SeparationColorNames",
507
86.8k
                                        scna, scna.size, scne)
508
31.6k
    {
509
31.6k
        break;
510
31.6k
    } END_ARRAY_PARAM(scna, scne);
511
55.1k
    if (scna.data != 0 && scna.size > pdev->color_info.max_components) {
512
0
        param_signal_error(plist, "SeparationColorNames", gs_error_rangecheck);
513
0
        return_error(gs_error_rangecheck);
514
0
    }
515
    /* Get the equivalent_cmyk_color_params -- array is N * 5 elements */
516
55.1k
    BEGIN_ARRAY_PARAM(param_read_int_array, ".EquivCMYKColors",
517
55.1k
                                        equiv_cmyk, equiv_cmyk.size, equiv_cmyk_e)
518
0
    {
519
0
        break;
520
0
    } END_ARRAY_PARAM(equiv_cmyk, equiv_cmyk_e);
521
55.1k
    if (equiv_cmyk.data != 0 && equiv_cmyk.size > 5 * pdev->color_info.max_components) {
522
0
        param_signal_error(plist, ".EquivCMYKColors", gs_error_rangecheck);
523
0
        return_error(gs_error_rangecheck);
524
0
    }
525
526
55.1k
    if (gs_device_supports_spots(pdev)) {
527
        /*
528
         * Process the SeparationColorNames.  Remove any names that already
529
         * match the process color model colorant names for the device.
530
         */
531
55.1k
        if (scna.data != 0) {
532
0
            int num_names = scna.size, num_std_names = 0;
533
0
            fixed_colorant_names_list pcomp_names = pdevn_params->std_colorant_names;
534
535
            /* You would expect that pdevn_params->num_std_colorant_names would have this value but it does not.
536
             * That appears to be copied from the 'ncomps' of the device and that has to be the number of components
537
             * in the 'base' colour model, 1, 3 or 4 for Gray, RGB or CMYK. Other kinds of DeviceN devices can have
538
             * additional standard names, eg Tags, or Artifex Orange and Artifex Green, but these are not counted in
539
             * the num_std_colorant_names. They are, however, listed in pdevn_params->std_colorant_names (when is a
540
             * std_colorant_name not a std_colorant_name ?), which is checked to see if a SeparationOrder name is one
541
             * of the inks we are already dealing with. If it is, then we *don't* add it to num_spots.
542
             * So we need to actually count the number of colorants in std_colorant_names to make sure that we
543
             * don't exceed the maximum number of components.
544
             */
545
0
            num_std_names = count_process_color_names(pcomp_names);
546
0
            num_spot = 0;
547
            /* And now we check each ink to see if it's already in the separations list. If not then we count
548
             * up the number of new inks
549
             */
550
0
            for (i = 0; i < num_names; i++) {
551
                /* Verify that the name is not one of our process colorants */
552
0
                if (!check_process_color_names(pcomp_names, &scna.data[i])) {
553
0
                    if (check_separation_names(pdev, pdevn_params, (const char *)scna.data[i].data, scna.data[i].size, 0, 0) < 0)
554
0
                        num_spot++;
555
0
                }
556
0
            }
557
            /* Now we can check the number of standard colourants (eg CMYKOG) + number of existing separations + number of new separations
558
             * and make sure we have enough components to handle all of them
559
             */
560
0
            if (num_std_names + pdevn_params->separations.num_separations + num_spot > pdev->color_info.max_components) {
561
0
                param_signal_error(plist, "SeparationColorNames", gs_error_rangecheck);
562
0
                return_error(gs_error_rangecheck);
563
0
            }
564
            /* Save this value because we need it after the loop */
565
0
            num_spot = pdevn_params->separations.num_separations;
566
            /* Now go through the ink names again, this time if we get a new one we add it to the list of
567
             * separations. We can do that safely now because we know we can't overflow the array of names.
568
             */
569
0
            for (i = 0; i < num_names; i++) {
570
                /* Verify that the name is not one of our process colorants */
571
0
                if (!check_process_color_names(pcomp_names, &scna.data[i])) {
572
0
                    if (check_separation_names(pdev, pdevn_params, (const char *)scna.data[i].data, scna.data[i].size, 0, 0) < 0) {
573
                        /* We have a new separation */
574
0
                        byte * sep_name;
575
0
                        int name_size = scna.data[i].size;
576
577
0
                        sep_name = (byte *)gs_alloc_bytes(pdev->memory,
578
0
                            name_size, "devicen_put_params_no_sep_order");
579
0
                        if (sep_name == NULL) {
580
0
                            param_signal_error(plist, "SeparationColorNames", gs_error_VMerror);
581
0
                            return_error(gs_error_VMerror);
582
0
                        }
583
0
                        memcpy(sep_name, scna.data[i].data, name_size);
584
0
                        pdevn_params->separations.names[pdevn_params->separations.num_separations].size = name_size;
585
0
                        pdevn_params->separations.names[pdevn_params->separations.num_separations].data = sep_name;
586
0
                        if (pequiv_colors != NULL) {
587
                            /* Indicate that we need to find equivalent CMYK color. */
588
0
                            pequiv_colors->color[num_spot].color_info_valid = false;
589
0
                            pequiv_colors->all_color_info_valid = false;
590
0
                        }
591
0
                        pdevn_params->separations.num_separations++;
592
0
                        num_spot_changed = true;
593
0
                    }
594
0
                }
595
0
            }
596
597
0
            for (i = num_spot; i < pdevn_params->separations.num_separations; i++)
598
0
                pdevn_params->separation_order_map[i + pdevn_params->num_std_colorant_names] =
599
0
                i + pdevn_params->num_std_colorant_names;
600
            /* We use num_spot below, to reset pdevn_params->separations.num_separations, set it
601
             * here in case it gets used elsewhere
602
             */
603
0
            num_spot = pdevn_params->separations.num_separations;
604
0
        }
605
        /* Process any .EquivCMYKColors info */
606
55.1k
        if (equiv_cmyk.data != 0 && pequiv_colors != 0) {
607
0
            int spot_num = 0;
608
609
0
            for (i=0; i < equiv_cmyk.size; i += 5) { /* valid, C, M, Y, K for each equiv_color */
610
0
                if (equiv_cmyk.data[i] == 0) {
611
                    /* This occurs if we've added a spot, but not yet set it's equiv color */
612
0
                    pequiv_colors->color[spot_num].color_info_valid = false;
613
0
                    pequiv_colors->all_color_info_valid = false;
614
0
                } else {
615
0
                    pequiv_colors->color[spot_num].color_info_valid = true;
616
0
                    pequiv_colors->color[spot_num].c = (frac)(equiv_cmyk.data[i+1]);
617
0
                    pequiv_colors->color[spot_num].m = (frac)(equiv_cmyk.data[i+2]);
618
0
                    pequiv_colors->color[spot_num].y = (frac)(equiv_cmyk.data[i+3]);
619
0
                    pequiv_colors->color[spot_num].k = (frac)(equiv_cmyk.data[i+4]);
620
0
                }
621
0
                spot_num++;
622
0
            }
623
0
        }
624
        /*
625
         * Process the SeparationOrder names.
626
         */
627
55.1k
        if (sona.data != 0) {
628
0
            int comp_num;
629
630
0
            num_order = sona.size;
631
0
            for (i = 0; i < num_order; i++) {
632
                /*
633
                 * Check if names match either the process color model or
634
                 * SeparationColorNames.  If not then error.
635
                 */
636
0
                if ((comp_num = (*dev_proc(pdev, get_color_comp_index))
637
0
                                (pdev, (const char *)sona.data[i].data,
638
0
                                sona.data[i].size, SEPARATION_NAME)) < 0) {
639
0
                    param_signal_error(plist, "SeparationOrder", gs_error_rangecheck);
640
0
                    return_error(gs_error_rangecheck);
641
0
                }
642
0
                pdevn_params->separation_order_map[i] = comp_num;
643
                /* If the device enabled AUTO_SPOT_COLORS some separations may */
644
                /* have been added. Adjust num_spots if so.                    */
645
0
                if (num_spot != pdevn_params->separations.num_separations) {
646
0
                    num_spot = pdevn_params->separations.num_separations;
647
0
                    num_spot_changed = true;
648
0
                }
649
0
            }
650
0
        }
651
        /*
652
         * Adobe says that MaxSeparations is supposed to be 'read only'
653
         * however we use this to allow the specification of the maximum
654
         * number of separations.  Memory is allocated for the specified
655
         * number of separations.  This allows us to then accept separation
656
         * colors in color spaces even if they we not specified at the start
657
         * of the image file.
658
         */
659
55.1k
        code = param_read_int(plist, param_name = "MaxSeparations", &max_sep);
660
55.1k
        switch (code) {
661
0
            default:
662
0
                param_signal_error(plist, param_name, code);
663
49.6k
            case 1:
664
49.6k
                break;
665
5.46k
            case 0:
666
5.46k
                if (max_sep < 1 || max_sep > GX_DEVICE_COLOR_MAX_COMPONENTS) {
667
0
                    param_signal_error(plist, "MaxSeparations", gs_error_rangecheck);
668
0
                    return_error(gs_error_rangecheck);
669
0
                }
670
55.1k
        }
671
        /*
672
         * The PDF interpreter scans the resources for pages to try to
673
         * determine the number of spot colors.  (Unfortuneately there is
674
         * no way to determine the number of spot colors for a PS page
675
         * except to interpret the entire page.)  The spot color count for
676
         * a PDF page may be high since there may be spot colors in a PDF
677
         * page's resources that are not used.  However this does give us
678
         * an upper limit on the number of spot colors.  A value of -1
679
         * indicates that the number of spot colors in unknown (a PS file).
680
         */
681
55.1k
        code = param_read_int(plist, param_name = "PageSpotColors",
682
55.1k
                                                        &page_spot_colors);
683
55.1k
        switch (code) {
684
0
            default:
685
0
                param_signal_error(plist, param_name, code);
686
40.3k
            case 1:
687
40.3k
                break;
688
14.7k
            case 0:
689
14.7k
                if (page_spot_colors < -1) {
690
0
                    param_signal_error(plist, "PageSpotColors", gs_error_rangecheck);
691
0
                    return_error(gs_error_rangecheck);
692
0
                }
693
14.7k
                if (page_spot_colors > pdev->color_info.max_components - pdevn_params->num_std_colorant_names - num_res_comps)
694
0
                    page_spot_colors = pdev->color_info.max_components - pdevn_params->num_std_colorant_names - num_res_comps;
695
                    /* Need to leave room for the process colors (and tags!) in GX_DEVICE_COLOR_MAX_COMPONENTS  */
696
55.1k
        }
697
        /*
698
         * The DeviceN device can have zero components if nothing has been
699
         * specified.  This causes some problems so force at least one
700
         * component until something is specified.
701
         */
702
55.1k
        if (!pdev->color_info.num_components)
703
0
            pdev->color_info.num_components = 1;
704
        /*
705
         * Update the number of device components if we have changes in
706
         * SeparationColorNames, SeparationOrder, or MaxSeparations.
707
         */
708
55.1k
        if (num_spot_changed || pdevn_params->max_separations != max_sep ||
709
55.1k
                    pdevn_params->num_separation_order_names != num_order ||
710
55.1k
                    pdevn_params->page_spot_colors != page_spot_colors) {
711
10.9k
            int has_tags = device_encodes_tags(pdev);
712
10.9k
            pdevn_params->separations.num_separations = num_spot;
713
10.9k
            pdevn_params->num_separation_order_names = num_order;
714
10.9k
            pdevn_params->max_separations = max_sep;
715
10.9k
            pdevn_params->page_spot_colors = page_spot_colors;
716
10.9k
            if (max_sep != 0)
717
5.46k
                 pdev->color_info.max_components = max_sep;
718
            /*
719
             * If we have SeparationOrder specified then the number of
720
             * components is given by the number of names in the list.
721
             * Otherwise check if the MaxSeparations parameter has specified
722
             * a value.  If so then use that value, otherwise use the number
723
             * of ProcessColorModel components plus the number of
724
             * SeparationColorNames is used.
725
             */
726
10.9k
            pdev->color_info.num_components = (num_order)
727
10.9k
                ? num_order
728
10.9k
                : (page_spot_colors >= 0)
729
10.9k
                    ? npcmcolors + page_spot_colors
730
10.9k
                    : pdev->color_info.max_components;
731
10.9k
            pdev->color_info.num_components += has_tags;
732
733
10.9k
            if (pdev->color_info.num_components >
734
10.9k
                    pdev->color_info.max_components)
735
0
                pdev->color_info.num_components =
736
0
                        pdev->color_info.max_components;
737
738
10.9k
            if (pdev->color_info.num_components > pdev->num_planar_planes)
739
5.47k
                pdev->num_planar_planes = pdev->color_info.num_components;
740
741
            /*
742
             * See earlier comment about the depth and non compressed
743
             * pixel encoding.
744
             */
745
10.9k
            if (pdev->num_planar_planes)
746
10.9k
                pdev->color_info.depth = bpc_to_depth(pdev->num_planar_planes,
747
10.9k
                                                      pdevn_params->bitspercomponent);
748
0
            else
749
0
                pdev->color_info.depth = bpc_to_depth(pdev->color_info.num_components,
750
0
                                                      pdevn_params->bitspercomponent);
751
10.9k
        }
752
55.1k
    }
753
55.1k
    if (code >= 0)
754
55.1k
    {
755
55.1k
        int ecode = dev_proc(pdev, dev_spec_op)(pdev, gxdso_adjust_colors, NULL, 0);
756
55.1k
        if (ecode < 0 && ecode != gs_error_undefined)
757
0
            code = ecode;
758
55.1k
    }
759
55.1k
    return code;
760
55.1k
}
761
762
/* Free the copied deviceN parameters */
763
void
764
devn_free_params(gx_device *thread_cdev)
765
1.55M
{
766
1.55M
    gs_devn_params *devn_params;
767
1.55M
    int k;
768
769
1.55M
    devn_params = dev_proc(thread_cdev, ret_devn_params)(thread_cdev);
770
1.55M
    if (devn_params == NULL) return;
771
772
1.54M
    for (k = 0; k < devn_params->separations.num_separations; k++) {
773
321
        gs_free_object(thread_cdev->memory,
774
321
                       devn_params->separations.names[k].data,
775
321
                       "devn_free_params");
776
321
        devn_params->separations.names[k].data = NULL;
777
321
    }
778
779
1.54M
    for (k = 0; k < devn_params->pdf14_separations.num_separations; k++) {
780
0
        gs_free_object(thread_cdev->memory,
781
0
                       devn_params->pdf14_separations.names[k].data,
782
0
                       "devn_free_params");
783
0
        devn_params->pdf14_separations.names[k].data = NULL;
784
0
    }
785
1.54M
}
786
787
/* This is used to copy the deviceN parameters from the parent clist device to the
788
   individual thread clist devices for multi-threaded rendering */
789
int
790
devn_copy_params(gx_device * psrcdev, gx_device * pdesdev)
791
103k
{
792
103k
    gs_devn_params *src_devn_params, *des_devn_params;
793
103k
    int code = 0;
794
103k
    int k;
795
796
    /* Get pointers to the parameters */
797
103k
    src_devn_params = dev_proc(psrcdev, ret_devn_params)(psrcdev);
798
103k
    des_devn_params = dev_proc(pdesdev, ret_devn_params)(pdesdev);
799
103k
    if (src_devn_params == NULL || des_devn_params == NULL)
800
50
        return gs_note_error(gs_error_undefined);
801
802
    /* First the easy items */
803
103k
    des_devn_params->bitspercomponent = src_devn_params->bitspercomponent;
804
103k
    des_devn_params->max_separations = src_devn_params->max_separations;
805
103k
    des_devn_params->num_separation_order_names =
806
103k
        src_devn_params->num_separation_order_names;
807
103k
    des_devn_params->num_std_colorant_names =
808
103k
        src_devn_params->num_std_colorant_names;
809
103k
    des_devn_params->page_spot_colors = src_devn_params->page_spot_colors;
810
103k
    des_devn_params->std_colorant_names = src_devn_params->std_colorant_names;
811
103k
    des_devn_params->separations.num_separations
812
103k
        = src_devn_params->separations.num_separations;
813
    /* Now the more complex structures */
814
    /* Spot color names */
815
103k
    for (k = 0; k < des_devn_params->separations.num_separations; k++) {
816
321
        byte * sep_name;
817
321
        int name_size = src_devn_params->separations.names[k].size;
818
321
        sep_name = (byte *)gs_alloc_bytes(pdesdev->memory->stable_memory,
819
321
                                          name_size, "devn_copy_params");
820
321
        if (sep_name == NULL) {
821
0
            return_error(gs_error_VMerror);
822
0
        }
823
321
        memcpy(sep_name, src_devn_params->separations.names[k].data, name_size);
824
321
        des_devn_params->separations.names[k].size = name_size;
825
321
        des_devn_params->separations.names[k].data = sep_name;
826
321
    }
827
    /* Order map */
828
103k
    memcpy(des_devn_params->separation_order_map,
829
103k
           src_devn_params->separation_order_map, sizeof(gs_separation_map));
830
831
    /* Handle the PDF14 items if they are there */
832
103k
    des_devn_params->pdf14_separations.num_separations
833
103k
        = src_devn_params->pdf14_separations.num_separations;
834
103k
    for (k = 0; k < des_devn_params->pdf14_separations.num_separations; k++) {
835
0
        byte * sep_name;
836
0
        int name_size = src_devn_params->pdf14_separations.names[k].size;
837
0
        sep_name = (byte *)gs_alloc_bytes(pdesdev->memory->stable_memory,
838
0
                                          name_size, "devn_copy_params");
839
0
        if (sep_name == NULL) {
840
0
            return_error(gs_error_VMerror);
841
0
        }
842
0
        memcpy(sep_name, src_devn_params->pdf14_separations.names[k].data,
843
0
               name_size);
844
0
        des_devn_params->pdf14_separations.names[k].size = name_size;
845
0
        des_devn_params->pdf14_separations.names[k].data = sep_name;
846
0
    }
847
103k
    return code;
848
103k
}
849
850
static int
851
compare_equivalent_cmyk_color_params(const equivalent_cmyk_color_params *pequiv_colors1, const equivalent_cmyk_color_params *pequiv_colors2)
852
42.3k
{
853
42.3k
  int i;
854
42.3k
  if (pequiv_colors1->all_color_info_valid != pequiv_colors2->all_color_info_valid)
855
0
    return(1);
856
2.75M
  for (i=0;  i<GX_DEVICE_MAX_SEPARATIONS;  i++) {
857
2.71M
    if (pequiv_colors1->color[i].color_info_valid != pequiv_colors2->color[i].color_info_valid)
858
0
      return(1);
859
2.71M
    if (pequiv_colors1->color[i].c                != pequiv_colors2->color[i].c               )
860
0
      return(1);
861
2.71M
    if (pequiv_colors1->color[i].m                != pequiv_colors2->color[i].m               )
862
0
      return(1);
863
2.71M
    if (pequiv_colors1->color[i].y                != pequiv_colors2->color[i].y               )
864
0
      return(1);
865
2.71M
    if (pequiv_colors1->color[i].k                != pequiv_colors2->color[i].k               )
866
0
      return(1);
867
2.71M
  }
868
42.3k
  return(0);
869
42.3k
}
870
871
static bool separations_equal(const gs_separations *p1, const gs_separations *p2)
872
84.7k
{
873
84.7k
    int k;
874
875
84.7k
    if (p1->num_separations != p2->num_separations)
876
0
        return false;
877
84.7k
    for (k = 0; k < p1->num_separations; k++) {
878
0
        if (p1->names[k].size != p2->names[k].size)
879
0
            return false;
880
0
        else if (p1->names[k].size > 0) {
881
0
            if (memcmp(p1->names[k].data, p2->names[k].data, p1->names[k].size) != 0)
882
0
                return false;
883
0
        }
884
0
    }
885
84.7k
    return true;
886
84.7k
}
887
888
static bool devn_params_equal(const gs_devn_params *p1, const gs_devn_params *p2)
889
46.2k
{
890
46.2k
    if (p1->bitspercomponent != p2->bitspercomponent)
891
0
        return false;
892
46.2k
    if (p1->max_separations != p2->max_separations)
893
0
        return false;
894
46.2k
    if (p1->num_separation_order_names != p2->num_separation_order_names)
895
0
        return false;
896
46.2k
    if (p1->num_std_colorant_names != p2->num_std_colorant_names)
897
0
        return false;
898
46.2k
    if (p1->page_spot_colors != p2->page_spot_colors)
899
3.89k
        return false;
900
42.3k
    if (!separations_equal(&p1->pdf14_separations, &p2->pdf14_separations))
901
0
        return false;
902
42.3k
    if (!separations_equal(&p1->separations, &p2->separations))
903
0
        return false;
904
42.3k
    if (memcmp(p1->separation_order_map, p2->separation_order_map, sizeof(gs_separation_map)) != 0)
905
0
        return false;
906
42.3k
    if (p1->std_colorant_names != p2->std_colorant_names)
907
0
        return false;
908
42.3k
    return true;
909
42.3k
}
910
911
int
912
devn_generic_put_params(gx_device *pdev, gs_param_list *plist,
913
                        gs_devn_params *pdevn_params, equivalent_cmyk_color_params *pequiv_colors,
914
                        int is_printer)
915
55.1k
{
916
55.1k
    int code;
917
    /* Save current data in case we have a problem */
918
55.1k
    gx_device_color_info save_info = pdev->color_info;
919
55.1k
    gs_devn_params saved_devn_params = *pdevn_params;
920
55.1k
    equivalent_cmyk_color_params saved_equiv_colors;
921
55.1k
    int save_planes = pdev->num_planar_planes;
922
923
55.1k
    if (pequiv_colors != NULL)
924
55.1k
        saved_equiv_colors = *pequiv_colors;
925
926
    /* Use utility routine to handle parameters */
927
55.1k
    code = devn_put_params(pdev, plist, pdevn_params, pequiv_colors);
928
929
    /* Check for default printer parameters */
930
55.1k
    if (is_printer && code >= 0)
931
55.1k
        code = gdev_prn_put_params(pdev, plist);
932
933
    /* If we have an error then restore original data. */
934
55.1k
    if (code < 0) {
935
20
        pdev->color_info = save_info;
936
20
        *pdevn_params = saved_devn_params;
937
20
        if (pequiv_colors != NULL)
938
20
           *pequiv_colors = saved_equiv_colors;
939
20
        return code;
940
20
    }
941
942
    /* If anything changed, then close the device, etc. */
943
55.1k
    if (!gx_color_info_equal(&pdev->color_info, &save_info) ||
944
55.1k
        !devn_params_equal(pdevn_params, &saved_devn_params) ||
945
55.1k
        (pequiv_colors != NULL &&
946
42.3k
            compare_equivalent_cmyk_color_params(pequiv_colors, &saved_equiv_colors)) ||
947
55.1k
        pdev->num_planar_planes != save_planes) {
948
12.7k
        gx_device *parent_dev = pdev;
949
12.7k
        gx_device_color_info resave_info = pdev->color_info;
950
12.7k
        int resave_planes = pdev->num_planar_planes;
951
952
12.7k
        while (parent_dev->parent != NULL)
953
0
            parent_dev = parent_dev->parent;
954
955
        /* Temporarily restore the old color_info, so the close happens with
956
         * the old version. In particular this allows Nup to flush properly. */
957
12.7k
        pdev->color_info = save_info;
958
12.7k
        pdev->num_planar_planes = save_planes;
959
12.7k
        gs_closedevice(parent_dev);
960
        /* Then put the shiny new color_info back in. */
961
12.7k
        pdev->color_info = resave_info;
962
12.7k
        pdev->num_planar_planes = resave_planes;
963
        /* Reset the separable and linear shift, masks, bits. */
964
12.7k
        set_linear_color_bits_mask_shift(pdev);
965
12.7k
    }
966
    /*
967
     * Also check for parameters which are being passed from the PDF 1.4
968
     * compositior clist write device.  This device needs to pass info
969
     * to the PDF 1.4 compositor clist reader device.  However this device
970
     * is not crated until the clist is being read.  Thus we have to buffer
971
     * this info in the output device.   (This is only needed for devices
972
     * which support spot colors.)
973
     */
974
55.1k
    code = pdf14_put_devn_params(pdev, pdevn_params, plist);
975
55.1k
    return code;
976
55.1k
}
977
978
/*
979
 * Utility routine for handling DeviceN related parameters in a
980
 * standard raster printer type device.
981
 */
982
int
983
devn_printer_put_params(gx_device *pdev, gs_param_list *plist,
984
        gs_devn_params *pdevn_params, equivalent_cmyk_color_params *pequiv_colors)
985
55.1k
{
986
55.1k
    return devn_generic_put_params(pdev, plist, pdevn_params, pequiv_colors, 1);
987
55.1k
}
988
989
/*
990
 * Free a set of separation names
991
 */
992
void
993
free_separation_names(gs_memory_t * mem,
994
                gs_separations * pseparation)
995
9.60k
{
996
9.60k
    int i;
997
998
    /* Discard the sub levels. */
999
9.76k
    for (i = 0; i < pseparation->num_separations; i++) {
1000
165
        gs_free_object(mem->stable_memory, pseparation->names[i].data,
1001
165
                                "free_separation_names");
1002
165
        pseparation->names[i].data = NULL;
1003
165
        pseparation->names[i].size = 0;
1004
165
    }
1005
9.60k
    pseparation->num_separations = 0;
1006
9.60k
    return;
1007
9.60k
}
1008
1009
/* ***************** The spotcmyk and devicen devices ***************** */
1010
1011
/* Define the device parameters. */
1012
#ifndef X_DPI
1013
#  define X_DPI 72
1014
#endif
1015
#ifndef Y_DPI
1016
#  define Y_DPI 72
1017
#endif
1018
1019
/* The device descriptor */
1020
static dev_proc_open_device(spotcmyk_prn_open);
1021
static dev_proc_print_page(spotcmyk_print_page);
1022
1023
/* GC procedures */
1024
1025
static
1026
182k
ENUM_PTRS_WITH(gx_devn_prn_device_enum_ptrs, gx_devn_prn_device *pdev)
1027
182k
{
1028
182k
    if (index < pdev->devn_params.separations.num_separations)
1029
0
        ENUM_RETURN(pdev->devn_params.separations.names[index].data);
1030
182k
    ENUM_PREFIX(st_device_printer,
1031
182k
                    pdev->devn_params.separations.num_separations);
1032
182k
}
1033
1034
182k
ENUM_PTRS_END
1035
3.57k
static RELOC_PTRS_WITH(gx_devn_prn_device_reloc_ptrs, gx_devn_prn_device *pdev)
1036
3.57k
{
1037
3.57k
    RELOC_PREFIX(st_device_printer);
1038
3.57k
    {
1039
3.57k
        int i;
1040
1041
3.57k
        for (i = 0; i < pdev->devn_params.separations.num_separations; ++i) {
1042
0
            RELOC_PTR(gx_devn_prn_device, devn_params.separations.names[i].data);
1043
0
        }
1044
3.57k
    }
1045
3.57k
}
1046
3.57k
RELOC_PTRS_END
1047
1048
void
1049
gx_devn_prn_device_finalize(const gs_memory_t *cmem, void *vpdev)
1050
7.49k
{
1051
7.49k
    devn_free_params((gx_device*) vpdev);
1052
7.49k
    gx_device_finalize(cmem, vpdev);
1053
7.49k
}
1054
1055
/* Even though gx_devn_prn_device_finalize is the same as gx_device_finalize, */
1056
/* we need to implement it separately because st_composite_final */
1057
/* declares all 3 procedures as private. */
1058
static void
1059
static_gx_devn_prn_device_finalize(const gs_memory_t *cmem, void *vpdev)
1060
0
{
1061
0
    gx_devn_prn_device_finalize(cmem, vpdev);
1062
0
}
1063
1064
gs_public_st_composite_final(st_gx_devn_prn_device, gx_devn_prn_device,
1065
    "gx_devn_prn_device", gx_devn_prn_device_enum_ptrs, gx_devn_prn_device_reloc_ptrs,
1066
    static_gx_devn_prn_device_finalize);
1067
1068
static void
1069
devicen_initialize_device_procs(gx_device *dev)
1070
0
{
1071
0
    set_dev_proc(dev, open_device, spotcmyk_prn_open);
1072
0
    set_dev_proc(dev, output_page, gdev_prn_output_page_seekable);
1073
0
    set_dev_proc(dev, close_device, gdev_prn_close);
1074
0
    set_dev_proc(dev, get_params, gx_devn_prn_get_params);
1075
0
    set_dev_proc(dev, put_params, gx_devn_prn_put_params);
1076
0
    set_dev_proc(dev, get_page_device, gx_page_device_get_page_device);
1077
0
    set_dev_proc(dev, get_color_mapping_procs, gx_devn_prn_get_color_mapping_procs);
1078
0
    set_dev_proc(dev, get_color_comp_index, gx_devn_prn_get_color_comp_index);
1079
0
    set_dev_proc(dev, encode_color, gx_devn_prn_encode_color);
1080
0
    set_dev_proc(dev, decode_color, gx_devn_prn_decode_color);
1081
0
    set_dev_proc(dev, update_spot_equivalent_colors, gx_devn_prn_update_spot_equivalent_colors);
1082
0
    set_dev_proc(dev, ret_devn_params, gx_devn_prn_ret_devn_params);
1083
0
}
1084
1085
fixed_colorant_name DeviceGrayComponents[] = {
1086
        "Gray",
1087
        0              /* List terminator */
1088
};
1089
1090
fixed_colorant_name DeviceRGBComponents[] = {
1091
        "Red",
1092
        "Green",
1093
        "Blue",
1094
        0              /* List terminator */
1095
};
1096
1097
fixed_colorant_name DeviceCMYKComponents[] = {
1098
        "Cyan",
1099
        "Magenta",
1100
        "Yellow",
1101
        "Black",
1102
        0               /* List terminator */
1103
};
1104
1105
#define gx_devn_prn_device_body(init, dname, ncomp, pol, depth, mg, mc, cn)\
1106
    std_device_full_body_type_extended(gx_devn_prn_device, init, dname,\
1107
          &st_gx_devn_prn_device,\
1108
          (int)((long)(DEFAULT_WIDTH_10THS) * (X_DPI) / 10),\
1109
          (int)((long)(DEFAULT_HEIGHT_10THS) * (Y_DPI) / 10),\
1110
          X_DPI, Y_DPI,\
1111
          GX_DEVICE_COLOR_MAX_COMPONENTS,       /* MaxComponents */\
1112
          ncomp,                /* NumComp */\
1113
          pol,                  /* Polarity */\
1114
          depth, 0,             /* Depth, GrayIndex */\
1115
          mg, mc,               /* MaxGray, MaxColor */\
1116
          mg + 1, mc + 1,       /* DitherGray, DitherColor */\
1117
          GX_CINFO_SEP_LIN,     /* Linear & Separable */\
1118
          cn,                   /* Process color model name */\
1119
          0, 0,                 /* offsets */\
1120
          0, 0, 0, 0            /* margins */\
1121
        ),\
1122
        prn_device_body_rest_(spotcmyk_print_page)
1123
1124
/*
1125
 * Example device with CMYK and spot color support
1126
 */
1127
const gx_devn_prn_device gs_spotcmyk_device =
1128
{
1129
    gx_devn_prn_device_body(devicen_initialize_device_procs, "spotcmyk",
1130
                            4, GX_CINFO_POLARITY_SUBTRACTIVE, 4, 1, 1,
1131
                            "DeviceCMYK"),
1132
    /* DeviceN device specific parameters */
1133
    { 1,                        /* Bits per color - must match ncomp, depth, etc. above */
1134
      DeviceCMYKComponents,     /* Names of color model colorants */
1135
      4,                        /* Number colorants for CMYK */
1136
      0,                        /* MaxSeparations has not been specified */
1137
      -1,                       /* PageSpotColors has not been specified */
1138
      {0},                      /* SeparationNames */
1139
      0,                        /* SeparationOrder names */
1140
      {0, 1, 2, 3, 4, 5, 6, 7 } /* Initial component SeparationOrder */
1141
    }
1142
};
1143
1144
/*
1145
 * Example DeviceN color device
1146
 */
1147
const gx_devn_prn_device gs_devicen_device =
1148
{
1149
    gx_devn_prn_device_body(devicen_initialize_device_procs, "devicen",
1150
                            4, GX_CINFO_POLARITY_SUBTRACTIVE, 32, 255, 255,
1151
                            "DeviceCMYK"),
1152
    /* DeviceN device specific parameters */
1153
    { 8,                        /* Bits per color - must match ncomp, depth, etc. above */
1154
      DeviceCMYKComponents,     /* Names of color model colorants */
1155
      4,                        /* Number colorants for CMYK */
1156
      0,                        /* MaxSeparations has not been specified */
1157
      -1,                       /* PageSpotColors has not been specified */
1158
      {0},                      /* SeparationNames */
1159
      0,                        /* SeparationOrder names */
1160
      {0, 1, 2, 3, 4, 5, 6, 7 } /* Initial component SeparationOrder */
1161
    }
1162
};
1163
1164
/* Open the psd devices */
1165
int
1166
spotcmyk_prn_open(gx_device * pdev)
1167
0
{
1168
0
    int code = gdev_prn_open(pdev);
1169
1170
0
    while (pdev->child)
1171
0
        pdev = pdev->child;
1172
1173
0
    set_linear_color_bits_mask_shift(pdev);
1174
0
    pdev->color_info.separable_and_linear = GX_CINFO_SEP_LIN;
1175
0
    return code;
1176
0
}
1177
1178
/* Color mapping routines for the spotcmyk device */
1179
1180
static void
1181
gray_cs_to_spotcmyk_cm(const gx_device * dev, frac gray, frac out[])
1182
0
{
1183
0
    int * map = ((gx_devn_prn_device *) dev)->devn_params.separation_order_map;
1184
1185
0
    gray_cs_to_devn_cm(dev, map, gray, out);
1186
0
}
1187
1188
static void
1189
rgb_cs_to_spotcmyk_cm(const gx_device * dev, const gs_gstate *pgs,
1190
                                   frac r, frac g, frac b, frac out[])
1191
0
{
1192
0
    int * map = ((gx_devn_prn_device *) dev)->devn_params.separation_order_map;
1193
1194
0
    rgb_cs_to_devn_cm(dev, map, pgs, r, g, b, out);
1195
0
}
1196
1197
static void
1198
cmyk_cs_to_spotcmyk_cm(const gx_device * dev, frac c, frac m, frac y, frac k, frac out[])
1199
0
{
1200
0
    int * map = ((gx_devn_prn_device *) dev)->devn_params.separation_order_map;
1201
1202
0
    cmyk_cs_to_devn_cm(dev, map, c, m, y, k, out);
1203
0
}
1204
1205
static const gx_cm_color_map_procs spotCMYK_procs = {
1206
    gray_cs_to_spotcmyk_cm, rgb_cs_to_spotcmyk_cm, cmyk_cs_to_spotcmyk_cm
1207
};
1208
1209
const gx_cm_color_map_procs *
1210
gx_devn_prn_get_color_mapping_procs(const gx_device * dev, const gx_device **map_dev)
1211
0
{
1212
0
    *map_dev = dev;
1213
0
    return &spotCMYK_procs;
1214
0
}
1215
1216
/*
1217
 * Encode a list of colorant values into a gx_color_index_value.
1218
 */
1219
gx_color_index
1220
gx_devn_prn_encode_color(gx_device *dev, const gx_color_value colors[])
1221
14
{
1222
14
    int bpc = ((gx_devn_prn_device *)dev)->devn_params.bitspercomponent;
1223
14
    gx_color_index color = 0;
1224
14
    int i = 0;
1225
14
    uchar ncomp = dev->color_info.num_components;
1226
14
    COLROUND_VARS;
1227
1228
14
    COLROUND_SETUP(bpc);
1229
70
    for (; i<ncomp; i++) {
1230
56
        color <<= bpc;
1231
56
        color |= COLROUND_ROUND(colors[i]);
1232
56
    }
1233
14
    return (color == gx_no_color_index ? color ^ 1 : color);
1234
14
}
1235
1236
/*
1237
 * Decode a gx_color_index value back to a list of colorant values.
1238
 */
1239
int
1240
gx_devn_prn_decode_color(gx_device * dev, gx_color_index color, gx_color_value * out)
1241
0
{
1242
0
    int bpc = ((gx_devn_prn_device *)dev)->devn_params.bitspercomponent;
1243
0
    int mask = (1 << bpc) - 1;
1244
0
    int i = 0;
1245
0
    uchar ncomp = dev->color_info.num_components;
1246
0
    COLDUP_VARS;
1247
1248
0
    COLDUP_SETUP(bpc);
1249
0
    for (; i<ncomp; i++) {
1250
0
        out[ncomp - i - 1] = COLDUP_DUP(color & mask);
1251
0
        color >>= bpc;
1252
0
    }
1253
0
    return 0;
1254
0
}
1255
1256
/* Get parameters. */
1257
int
1258
gx_devn_prn_get_params(gx_device *dev, gs_param_list *plist)
1259
51.9k
{
1260
51.9k
    gx_devn_prn_device *pdev = (gx_devn_prn_device *)dev;
1261
51.9k
    int code = gdev_prn_get_params(dev, plist);
1262
1263
51.9k
    if (code < 0)
1264
0
        return code;
1265
51.9k
    return devn_get_params(dev, plist, &pdev->devn_params,
1266
51.9k
                           &pdev->equiv_cmyk_colors);
1267
51.9k
}
1268
1269
/* Set parameters. */
1270
int
1271
gx_devn_prn_put_params(gx_device *dev, gs_param_list *plist)
1272
14.1k
{
1273
14.1k
    gx_devn_prn_device *pdev = (gx_devn_prn_device *)dev;
1274
1275
14.1k
    return devn_printer_put_params(dev, plist, &pdev->devn_params,
1276
14.1k
                                   &pdev->equiv_cmyk_colors);
1277
14.1k
}
1278
1279
/*
1280
 *  Device proc for returning a pointer to DeviceN parameter structure
1281
 */
1282
gs_devn_params *
1283
gx_devn_prn_ret_devn_params(gx_device * dev)
1284
52.1k
{
1285
52.1k
    gx_devn_prn_device *pdev = (gx_devn_prn_device *)dev;
1286
1287
52.1k
    return &pdev->devn_params;
1288
52.1k
}
1289
1290
const gs_devn_params *
1291
gx_devn_prn_ret_devn_params_const(const gx_device * dev)
1292
2.24M
{
1293
2.24M
    const gx_devn_prn_device *pdev = (const gx_devn_prn_device *)dev;
1294
1295
2.24M
    return &pdev->devn_params;
1296
2.24M
}
1297
1298
/*
1299
 *  Device proc for updating the equivalent CMYK color for spot colors.
1300
 */
1301
int
1302
gx_devn_prn_update_spot_equivalent_colors(gx_device *dev, const gs_gstate * pgs, const gs_color_space *pcs)
1303
5.17k
{
1304
5.17k
    gx_devn_prn_device *pdev = (gx_devn_prn_device *)dev;
1305
1306
5.17k
    return update_spot_equivalent_cmyk_colors(dev, pgs, pcs, &pdev->devn_params,
1307
5.17k
                                              &pdev->equiv_cmyk_colors);
1308
5.17k
}
1309
1310
/*
1311
 * This routine will check to see if the color component name  match those
1312
 * that are available amoung the current device's color components.
1313
 *
1314
 * Parameters:
1315
 *   dev - pointer to device data structure.
1316
 *   pname - pointer to name (zero termination not required)
1317
 *   nlength - length of the name
1318
 *
1319
 * This routine returns a positive value (0 to n) which is the device colorant
1320
 * number if the name is found.  It returns GX_DEVICE_COLOR_MAX_COMPONENTS if
1321
 * the colorant is not being used due to a SeparationOrder device parameter.
1322
 * It returns a negative value if not found.
1323
 */
1324
int
1325
gx_devn_prn_get_color_comp_index(gx_device * dev, const char * pname,
1326
                                        int name_size, int component_type)
1327
166k
{
1328
166k
    gx_devn_prn_device *pdev = (gx_devn_prn_device *)dev;
1329
1330
166k
    return devn_get_color_comp_index(dev,
1331
166k
                                     &pdev->devn_params,
1332
166k
                                     &pdev->equiv_cmyk_colors,
1333
166k
                                     pname,
1334
166k
                                     name_size,
1335
166k
                                     component_type,
1336
166k
                                     ENABLE_AUTO_SPOT_COLORS);
1337
166k
}
1338
1339
/*
1340
 * This routine will extract a specified set of bits from a buffer and pack
1341
 * them into a given buffer.
1342
 *
1343
 * Parameters:
1344
 *   source - The source of the data
1345
 *   dest - The destination for the data
1346
 *   depth - The size of the bits per pixel - must be a multiple of 8
1347
 *   first_bit - The location of the first data bit (LSB).
1348
 *   bit_width - The number of bits to be extracted.
1349
 *   npixel - The number of pixels.
1350
 *
1351
 * Returns:
1352
 *   Length of the output line (in bytes)
1353
 *   Data in dest.
1354
 */
1355
int
1356
repack_data(byte * source, byte * dest, int depth, int first_bit,
1357
                int bit_width, int npixel)
1358
0
{
1359
0
    int in_nbyte = depth >> 3;          /* Number of bytes per input pixel */
1360
0
    int out_nbyte = bit_width >> 3;     /* Number of bytes per output pixel */
1361
0
    gx_color_index mask = 1;
1362
0
    gx_color_index data;
1363
0
    int i, j, length = 0;
1364
0
    byte temp;
1365
0
    byte * out = dest;
1366
0
    int in_bit_start = 8 - depth;
1367
0
    int out_bit_start = 8 - bit_width;
1368
0
    int in_byte_loc = in_bit_start, out_byte_loc = out_bit_start;
1369
1370
0
    mask = (mask << bit_width) - 1;
1371
0
    for (i=0; i<npixel; i++) {
1372
        /* Get the pixel data */
1373
0
        if (!in_nbyte) {                /* Multiple pixels per byte */
1374
0
            data = *source;
1375
0
            data >>= in_byte_loc;
1376
0
            in_byte_loc -= depth;
1377
0
            if (in_byte_loc < 0) {      /* If finished with byte */
1378
0
                in_byte_loc = in_bit_start;
1379
0
                source++;
1380
0
            }
1381
0
        }
1382
0
        else {                          /* One or more bytes per pixel */
1383
0
            data = *source++;
1384
0
            for (j=1; j<in_nbyte; j++)
1385
0
                data = (data << 8) + *source++;
1386
0
        }
1387
0
        data >>= first_bit;
1388
0
        data &= mask;
1389
1390
        /* Put the output data */
1391
0
        if (!out_nbyte) {               /* Multiple pixels per byte */
1392
0
            temp = (byte)(*out & ~(mask << out_byte_loc));
1393
0
            *out = (byte)(temp | (data << out_byte_loc));
1394
0
            out_byte_loc -= bit_width;
1395
0
            if (out_byte_loc < 0) {     /* If finished with byte */
1396
0
                out_byte_loc = out_bit_start;
1397
0
                out++;
1398
0
            }
1399
0
        }
1400
0
        else {                          /* One or more bytes per pixel */
1401
0
            *out++ = (byte)(data >> ((out_nbyte - 1) * 8));
1402
0
            for (j=1; j<out_nbyte; j++) {
1403
0
                *out++ = (byte)(data >> ((out_nbyte - 1 - j) * 8));
1404
0
            }
1405
0
        }
1406
0
    }
1407
    /* Return the number of bytes in the destination buffer. */
1408
0
    if (out_byte_loc != out_bit_start) {        /* If partially filled last byte */
1409
0
        *out = *out & ((~0) << out_byte_loc);   /* Mask unused part of last byte */
1410
0
        out++;
1411
0
    }
1412
0
    length = out - dest;
1413
0
    return length;
1414
0
}
1415
1416
static int devn_write_pcx_file(gx_device_printer * pdev, char * filename, int ncomp,
1417
                            int bpc, int pcmlinelength);
1418
/*
1419
 * This is an example print page routine for a DeviceN device.  This routine
1420
 * will handle a DeviceN, a CMYK with spot colors, or an RGB process color model.
1421
 *
1422
 * This routine creates several output files.  If the process color model is
1423
 * RGB or CMYK then a bit image file is created which contains the data for the
1424
 * process color model data.  This data is put into the given file stream.
1425
 * I.e. into the output file specified by the user.  This file is not created
1426
 * for the DeviceN process color model.  A separate bit image file is created
1427
 * is created for the data for each of the given spot colors.  The names for
1428
 * these files are created by taking the given output file name and appending
1429
 * "sn" (where n is the spot color number 0 to ...) to the output file name.
1430
 * The results are unknown if the output file is stdout etc.
1431
 *
1432
 * After the bit image files are created, then a set of PCX format files are
1433
 * created from the bit image files.  This files have a ".pcx" appended to the
1434
 * end of the files.  Thus a CMYK process color model with two spot colors
1435
 * would end up with a total of six files being created.  (xxx, xxxs0, xxxs1,
1436
 * xxx.pcx, xxxs0.pcx, and xxxs1.pcx).
1437
 *
1438
 * I do not assume that any users will actually want to create all of these
1439
 * different files.  However I wanted to show an example of how each of the
1440
 * spot * colorants could be unpacked from the process color model colorants.
1441
 * The bit images files are an easy way to show this without the complication
1442
 * of trying to put the data into a specific format.  However I do not have a
1443
 * tool which will display the bit image data directly so I needed to convert
1444
 * it to a form which I can view.  Thus the PCX format files are being created.
1445
 * Note:  The PCX implementation is not complete.  There are many (most)
1446
 * combinations of bits per pixel and number of colorants that are not supported.
1447
 */
1448
static int
1449
spotcmyk_print_page(gx_device_printer * pdev, gp_file * prn_stream)
1450
0
{
1451
0
    int line_size = gdev_mem_bytes_per_scan_line((gx_device *) pdev);
1452
0
    byte *in = gs_alloc_bytes(pdev->memory, line_size, "spotcmyk_print_page(in)");
1453
0
    byte *buf = gs_alloc_bytes(pdev->memory, line_size + 3, "spotcmyk_print_page(buf)");
1454
0
    const gx_devn_prn_device * pdevn = (gx_devn_prn_device *) pdev;
1455
0
    uint npcmcolors = pdevn->devn_params.num_std_colorant_names;
1456
0
    uchar ncomp = pdevn->color_info.num_components;
1457
0
    int depth = pdevn->color_info.depth;
1458
0
    int nspot = pdevn->devn_params.separations.num_separations;
1459
0
    int bpc = pdevn->devn_params.bitspercomponent;
1460
0
    int lnum = 0, bottom = pdev->height;
1461
0
    int width = pdev->width;
1462
0
    gp_file * spot_file[GX_DEVICE_COLOR_MAX_COMPONENTS] = {0};
1463
0
    uint i;
1464
0
    int code = 0;
1465
0
    int first_bit;
1466
0
    int pcmlinelength = 0; /* Initialize against indeterminizm in case of pdev->height == 0. */
1467
0
    int linelength[GX_DEVICE_COLOR_MAX_COMPONENTS];
1468
0
    byte *data;
1469
0
    char *spotname = (char *)gs_alloc_bytes(pdev->memory, gp_file_name_sizeof, "spotcmyk_print_page(spotname)");
1470
1471
0
    if (in == NULL || buf == NULL || spotname == NULL) {
1472
0
        code = gs_note_error(gs_error_VMerror);
1473
0
        goto prn_done;
1474
0
    }
1475
    /*
1476
     * Check if the SeparationOrder list has changed the order of the process
1477
     * color model colorants. If so then we will treat all colorants as if they
1478
     * are spot colors.
1479
     */
1480
0
    for (i = 0; i < npcmcolors; i++)
1481
0
        if (pdevn->devn_params.separation_order_map[i] != i)
1482
0
            break;
1483
0
    if (i < npcmcolors || ncomp < npcmcolors) {
1484
0
        nspot = ncomp;
1485
0
        npcmcolors = 0;
1486
0
    }
1487
1488
    /* Open the output files for the spot colors */
1489
0
    for(i = 0; i < nspot; i++) {
1490
0
        gs_snprintf(spotname, gp_file_name_sizeof, "%ss%d", pdevn->fname, i);
1491
0
        code = gs_add_control_path(pdev->memory, gs_permit_file_writing, spotname);
1492
0
        if (code < 0)
1493
0
            goto prn_done;
1494
0
        spot_file[i] = gp_fopen(pdev->memory, spotname, "wb");
1495
0
        (void)gs_remove_control_path(pdev->memory, gs_permit_file_writing, spotname);
1496
0
        if (spot_file[i] == NULL) {
1497
0
            code = gs_note_error(gs_error_VMerror);
1498
0
            goto prn_done;
1499
0
        }
1500
0
    }
1501
1502
    /* Now create the output bit image files */
1503
0
    for (; lnum < bottom; ++lnum) {
1504
0
        code = gdev_prn_get_bits(pdev, lnum, in, &data);
1505
0
        if (code < 0)
1506
0
            goto prn_done;
1507
        /* Now put the pcm data into the output file */
1508
0
        if (npcmcolors) {
1509
0
            first_bit = bpc * (ncomp - npcmcolors);
1510
0
            pcmlinelength = repack_data(data, buf, depth, first_bit, bpc * npcmcolors, width);
1511
0
            gp_fwrite(buf, 1, pcmlinelength, prn_stream);
1512
0
        }
1513
        /* Put spot color data into the output files */
1514
0
        for (i = 0; i < nspot; i++) {
1515
0
            first_bit = bpc * (nspot - 1 - i);
1516
0
            linelength[i] = repack_data(data, buf, depth, first_bit, bpc, width);
1517
0
            gp_fwrite(buf, 1, linelength[i], spot_file[i]);
1518
0
        }
1519
0
    }
1520
1521
    /* Close the bit image files */
1522
0
    for(i = 0; i < nspot; i++) {
1523
0
        gp_fclose(spot_file[i]);
1524
0
        spot_file[i] = NULL;
1525
0
    }
1526
1527
    /* Now convert the bit image files into PCX files */
1528
0
    if (npcmcolors) {
1529
0
        code = devn_write_pcx_file(pdev, (char *) &pdevn->fname,
1530
0
                                npcmcolors, bpc, pcmlinelength);
1531
0
        if (code < 0)
1532
0
            goto prn_done;
1533
0
    }
1534
0
    for(i = 0; i < nspot; i++) {
1535
0
        gs_snprintf(spotname, gp_file_name_sizeof, "%ss%d", pdevn->fname, i);
1536
0
        code = devn_write_pcx_file(pdev, spotname, 1, bpc, linelength[i]);
1537
0
        if (code < 0)
1538
0
            goto prn_done;
1539
0
    }
1540
1541
    /* Clean up and exit */
1542
0
  prn_done:
1543
0
    for(i = 0; i < nspot; i++) {
1544
0
        if (spot_file[i] != NULL)
1545
0
            gp_fclose(spot_file[i]);
1546
0
    }
1547
0
    if (in != NULL)
1548
0
        gs_free_object(pdev->memory, in, "spotcmyk_print_page(in)");
1549
0
    if (buf != NULL)
1550
0
        gs_free_object(pdev->memory, buf, "spotcmyk_print_page(buf)");
1551
0
    if (spotname != NULL)
1552
0
        gs_free_object(pdev->memory, spotname, "spotcmyk_print_page(spotname)");
1553
0
    return code;
1554
0
}
1555
1556
/*
1557
 * We are using the PCX output format.  This is done for simplicity.
1558
 * Much of the following code was copied from gdevpcx.c.
1559
 */
1560
1561
/* ------ Private definitions ------ */
1562
1563
/* All two-byte quantities are stored LSB-first! */
1564
#if ARCH_IS_BIG_ENDIAN
1565
#  define assign_ushort(a,v) a = ((v) >> 8) + ((v) << 8)
1566
#else
1567
0
#  define assign_ushort(a,v) a = (v)
1568
#endif
1569
1570
typedef struct pcx_header_s {
1571
    byte manuf;                 /* always 0x0a */
1572
    byte version;
1573
#define version_2_5                     0
1574
0
#define version_2_8_with_palette        2
1575
#define version_2_8_without_palette     3
1576
0
#define version_3_0 /* with palette */  5
1577
    byte encoding;              /* 1=RLE */
1578
    byte bpp;                   /* bits per pixel per plane */
1579
    ushort x1;                  /* X of upper left corner */
1580
    ushort y1;                  /* Y of upper left corner */
1581
    ushort x2;                  /* x1 + width - 1 */
1582
    ushort y2;                  /* y1 + height - 1 */
1583
    ushort hres;                /* horz. resolution (dots per inch) */
1584
    ushort vres;                /* vert. resolution (dots per inch) */
1585
    byte palette[16 * 3];       /* color palette */
1586
    byte reserved;
1587
    byte nplanes;               /* number of color planes */
1588
    ushort bpl;                 /* number of bytes per line (uncompressed) */
1589
    ushort palinfo;
1590
#define palinfo_color   1
1591
#define palinfo_gray    2
1592
    byte xtra[58];              /* fill out header to 128 bytes */
1593
} pcx_header;
1594
1595
/* Define the prototype header. */
1596
static const pcx_header pcx_header_prototype =
1597
{
1598
    10,                         /* manuf */
1599
    0,                          /* version (variable) */
1600
    1,                          /* encoding */
1601
    0,                          /* bpp (variable) */
1602
    00, 00,                     /* x1, y1 */
1603
    00, 00,                     /* x2, y2 (variable) */
1604
    00, 00,                     /* hres, vres (variable) */
1605
    {0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,        /* palette (variable) */
1606
     0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
1607
     0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
1608
     0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0},
1609
    0,                          /* reserved */
1610
    0,                          /* nplanes (variable) */
1611
    00,                         /* bpl (variable) */
1612
    00,                         /* palinfo (variable) */
1613
    {0, 0, 0, 0, 0, 0, 0, 0, 0, 0,      /* xtra */
1614
     0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
1615
     0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
1616
     0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}
1617
};
1618
1619
/* Forward declarations */
1620
static void devn_pcx_write_rle(const byte *, const byte *, int, gp_file *);
1621
static int devn_pcx_write_page(gx_device_printer * pdev, gp_file * infile,
1622
    int linesize, gp_file * outfile, pcx_header * phdr, bool planar, int depth);
1623
1624
static const byte pcx_cmyk_palette[16 * 3] =
1625
{
1626
    0xff, 0xff, 0xff, 0x00, 0x00, 0x00, 0xff, 0xff, 0x00, 0x0f, 0x0f, 0x00,
1627
    0xff, 0x00, 0xff, 0x0f, 0x00, 0x0f, 0xff, 0x00, 0x00, 0x0f, 0x00, 0x00,
1628
    0x00, 0xff, 0xff, 0x00, 0x0f, 0x0f, 0x00, 0xff, 0x00, 0x00, 0x0f, 0x00,
1629
    0x00, 0x00, 0xff, 0x00, 0x00, 0x0f, 0x1f, 0x1f, 0x1f, 0x0f, 0x0f, 0x0f,
1630
};
1631
1632
static const byte pcx_ega_palette[16 * 3] =
1633
{
1634
    0x00, 0x00, 0x00, 0x00, 0x00, 0xaa, 0x00, 0xaa, 0x00, 0x00, 0xaa, 0xaa,
1635
    0xaa, 0x00, 0x00, 0xaa, 0x00, 0xaa, 0xaa, 0xaa, 0x00, 0xaa, 0xaa, 0xaa,
1636
    0x55, 0x55, 0x55, 0x55, 0x55, 0xff, 0x55, 0xff, 0x55, 0x55, 0xff, 0xff,
1637
    0xff, 0x55, 0x55, 0xff, 0x55, 0xff, 0xff, 0xff, 0x55, 0xff, 0xff, 0xff
1638
};
1639
1640
/*
1641
 * This routine will set up the revision and palatte for the output
1642
 * file.
1643
 *
1644
 * Please note that this routine does not currently handle all possible
1645
 * combinations of bits and planes.
1646
 *
1647
 * Input parameters:
1648
 *   pdev - Pointer to device data structure
1649
 *   file - output file
1650
 *   header - The header structure to hold the data.
1651
 *   bits_per_plane - The number of bits per plane.
1652
 *   num_planes - The number of planes.
1653
 */
1654
static bool
1655
devn_setup_pcx_header(gx_device_printer * pdev, pcx_header * phdr, int num_planes, int bits_per_plane)
1656
0
{
1657
0
    bool planar = true; /* Invalid cases could cause an indeterminizm. */
1658
1659
0
    *phdr = pcx_header_prototype;
1660
0
    phdr->bpp = bits_per_plane;
1661
0
    phdr->nplanes = num_planes;
1662
1663
0
    switch (num_planes) {
1664
0
        case 1:
1665
0
            switch (bits_per_plane) {
1666
0
                case 1:
1667
0
                        phdr->version = version_2_8_with_palette;
1668
0
                        assign_ushort(phdr->palinfo, palinfo_gray);
1669
0
                        memcpy((byte *) phdr->palette, "\000\000\000\377\377\377", 6);
1670
0
                        planar = false;
1671
0
                        break;
1672
0
                case 2:                         /* Not defined */
1673
0
                        break;
1674
0
                case 4:
1675
0
                        phdr->version = version_2_8_with_palette;
1676
0
                        memcpy((byte *) phdr->palette, pcx_ega_palette, sizeof(pcx_ega_palette));
1677
0
                        planar = true;
1678
0
                        break;
1679
0
                case 5:                         /* Not defined */
1680
0
                        break;
1681
0
                case 8:
1682
0
                        phdr->version = version_3_0;
1683
0
                        assign_ushort(phdr->palinfo, palinfo_gray);
1684
0
                        planar = false;
1685
0
                        break;
1686
0
                case 16:                        /* Not defined */
1687
0
                        break;
1688
0
            }
1689
0
            break;
1690
0
        case 2:
1691
0
            switch (bits_per_plane) {
1692
0
                case 1:                         /* Not defined */
1693
0
                        break;
1694
0
                case 2:                         /* Not defined */
1695
0
                        break;
1696
0
                case 4:                         /* Not defined */
1697
0
                        break;
1698
0
                case 5:                         /* Not defined */
1699
0
                        break;
1700
0
                case 8:                         /* Not defined */
1701
0
                        break;
1702
0
                case 16:                        /* Not defined */
1703
0
                        break;
1704
0
            }
1705
0
            break;
1706
0
        case 3:
1707
0
            switch (bits_per_plane) {
1708
0
                case 1:                         /* Not defined */
1709
0
                        break;
1710
0
                case 2:                         /* Not defined */
1711
0
                        break;
1712
0
                case 4:                         /* Not defined */
1713
0
                        break;
1714
0
                case 5:                         /* Not defined */
1715
0
                        break;
1716
0
                case 8:
1717
0
                        phdr->version = version_3_0;
1718
0
                        assign_ushort(phdr->palinfo, palinfo_color);
1719
0
                        planar = true;
1720
0
                        break;
1721
0
                case 16:                        /* Not defined */
1722
0
                        break;
1723
0
            }
1724
0
            break;
1725
0
        case 4:
1726
0
            switch (bits_per_plane) {
1727
0
                case 1:
1728
0
                        phdr->version = 2;
1729
0
                        memcpy((byte *) phdr->palette, pcx_cmyk_palette,
1730
0
                                sizeof(pcx_cmyk_palette));
1731
0
                        planar = false;
1732
0
                        phdr->bpp = 4;
1733
0
                        phdr->nplanes = 1;
1734
0
                        break;
1735
0
                case 2:                         /* Not defined */
1736
0
                        break;
1737
0
                case 4:                         /* Not defined */
1738
0
                        break;
1739
0
                case 5:                         /* Not defined */
1740
0
                        break;
1741
0
                case 8:                         /* Not defined */
1742
0
                        break;
1743
0
                case 16:                        /* Not defined */
1744
0
                        break;
1745
0
            }
1746
0
            break;
1747
0
    }
1748
0
    return planar;
1749
0
}
1750
1751
/* Write a palette on a file. */
1752
static int
1753
pc_write_mono_palette(gx_device * dev, uint max_index, gp_file * file)
1754
0
{
1755
0
    uint i, c;
1756
0
    gx_color_value rgb[3];
1757
1758
0
    for (i = 0; i < max_index; i++) {
1759
0
        rgb[0] = rgb[1] = rgb[2] = i << 8;
1760
0
        for (c = 0; c < 3; c++) {
1761
0
            byte b = gx_color_value_to_byte(rgb[c]);
1762
1763
0
            gp_fputc(b, file);
1764
0
        }
1765
0
    }
1766
0
    return 0;
1767
0
}
1768
/*
1769
 * This routine will send any output data required at the end of a file
1770
 * for a particular combination of planes and bits per plane.
1771
 *
1772
 * Please note that most combinations do not require anything at the end
1773
 * of a data file.
1774
 *
1775
 * Input parameters:
1776
 *   pdev - Pointer to device data structure
1777
 *   file - output file
1778
 *   header - The header structure to hold the data.
1779
 *   bits_per_plane - The number of bits per plane.
1780
 *   num_planes - The number of planes.
1781
 */
1782
static int
1783
devn_finish_pcx_file(gx_device_printer * pdev, gp_file * file, pcx_header * header, int num_planes, int bits_per_plane)
1784
0
{
1785
0
    switch (num_planes) {
1786
0
        case 1:
1787
0
            switch (bits_per_plane) {
1788
0
                case 1:                         /* Do nothing */
1789
0
                        break;
1790
0
                case 2:                         /* Not defined */
1791
0
                        break;
1792
0
                case 4:                         /* Do nothing */
1793
0
                        break;
1794
0
                case 5:                         /* Not defined */
1795
0
                        break;
1796
0
                case 8:
1797
0
                        gp_fputc(0x0c, file);
1798
0
                        return pc_write_mono_palette((gx_device *) pdev, 256, file);
1799
0
                case 16:                        /* Not defined */
1800
0
                        break;
1801
0
            }
1802
0
            break;
1803
0
        case 2:
1804
0
            switch (bits_per_plane) {
1805
0
                case 1:                         /* Not defined */
1806
0
                        break;
1807
0
                case 2:                         /* Not defined */
1808
0
                        break;
1809
0
                case 4:                         /* Not defined */
1810
0
                        break;
1811
0
                case 5:                         /* Not defined */
1812
0
                        break;
1813
0
                case 8:                         /* Not defined */
1814
0
                        break;
1815
0
                case 16:                        /* Not defined */
1816
0
                        break;
1817
0
            }
1818
0
            break;
1819
0
        case 3:
1820
0
            switch (bits_per_plane) {
1821
0
                case 1:                         /* Not defined */
1822
0
                        break;
1823
0
                case 2:                         /* Not defined */
1824
0
                        break;
1825
0
                case 4:                         /* Not defined */
1826
0
                        break;
1827
0
                case 5:                         /* Not defined */
1828
0
                        break;
1829
0
                case 8:                         /* Do nothing */
1830
0
                        break;
1831
0
                case 16:                        /* Not defined */
1832
0
                        break;
1833
0
            }
1834
0
            break;
1835
0
        case 4:
1836
0
            switch (bits_per_plane) {
1837
0
                case 1:                         /* Do nothing */
1838
0
                        break;
1839
0
                case 2:                         /* Not defined */
1840
0
                        break;
1841
0
                case 4:                         /* Not defined */
1842
0
                        break;
1843
0
                case 5:                         /* Not defined */
1844
0
                        break;
1845
0
                case 8:                         /* Not defined */
1846
0
                        break;
1847
0
                case 16:                        /* Not defined */
1848
0
                        break;
1849
0
            }
1850
0
            break;
1851
0
    }
1852
0
    return 0;
1853
0
}
1854
1855
/* Send the page to the printer. */
1856
static int
1857
devn_write_pcx_file(gx_device_printer * pdev, char * filename, int ncomp,
1858
                            int bpc, int linesize)
1859
0
{
1860
0
    pcx_header header;
1861
0
    int code;
1862
0
    bool planar;
1863
0
    char *outname = (char *)gs_alloc_bytes(pdev->memory, gp_file_name_sizeof, "devn_write_pcx_file(outname)");
1864
0
    gp_file * in = NULL;
1865
0
    gp_file * out = NULL;
1866
0
    int depth = bpc_to_depth(ncomp, bpc);
1867
1868
0
    if (outname == NULL) {
1869
0
        code = gs_note_error(gs_error_VMerror);
1870
0
        goto done;
1871
0
    }
1872
1873
0
    code = gs_add_control_path(pdev->memory, gs_permit_file_reading, filename);
1874
0
    if (code < 0)
1875
0
        goto done;
1876
1877
0
    in = gp_fopen(pdev->memory, filename, "rb");
1878
0
    if (!in) {
1879
0
        code = gs_note_error(gs_error_invalidfileaccess);
1880
0
        goto done;
1881
0
    }
1882
0
    gs_snprintf(outname, gp_file_name_sizeof, "%s.pcx", filename);
1883
0
    code = gs_add_control_path(pdev->memory, gs_permit_file_writing, outname);
1884
0
    if (code < 0)
1885
0
        goto done;
1886
0
    out = gp_fopen(pdev->memory, outname, "wb");
1887
0
    if (!out) {
1888
0
        code = gs_note_error(gs_error_invalidfileaccess);
1889
0
        goto done;
1890
0
    }
1891
1892
0
    if (ncomp == 4 && bpc == 8) {
1893
0
        ncomp = 3;    /* we will convert 32-bit to 24-bit RGB */
1894
0
    }
1895
0
    planar = devn_setup_pcx_header(pdev, &header, ncomp, bpc);
1896
0
    code = devn_pcx_write_page(pdev, in, linesize, out, &header, planar, depth);
1897
0
    if (code >= 0)
1898
0
        code = devn_finish_pcx_file(pdev, out, &header, ncomp, bpc);
1899
1900
0
done:
1901
0
    (void)gs_remove_control_path(pdev->memory, gs_permit_file_reading, filename);
1902
0
    (void)gs_remove_control_path(pdev->memory, gs_permit_file_writing, outname);
1903
0
    if (in)
1904
0
      gp_fclose(in);
1905
0
    if (out)
1906
0
      gp_fclose(out);
1907
1908
0
    if (outname)
1909
0
      gs_free_object(pdev->memory, outname, "spotcmyk_print_page(outname)");
1910
1911
0
    return code;
1912
0
}
1913
1914
/* Write out a page in PCX format. */
1915
/* This routine is used for all formats. */
1916
/* The caller has set header->bpp, nplanes, and palette. */
1917
static int
1918
devn_pcx_write_page(gx_device_printer * pdev, gp_file * infile, int linesize, gp_file * outfile,
1919
               pcx_header * phdr, bool planar, int depth)
1920
0
{
1921
0
    int raster = linesize;
1922
0
    uint rsize = ROUND_UP((pdev->width * phdr->bpp + 7) >> 3, 2);       /* PCX format requires even */
1923
0
    int height = pdev->height;
1924
0
    uint lsize = raster + rsize;
1925
0
    byte *line = gs_alloc_bytes(pdev->memory, lsize, "pcx file buffer");
1926
0
    byte *rgb_buff = NULL;
1927
0
    byte *plane = line + raster;
1928
0
    bool convert_to_rgb = false;
1929
0
    int y;
1930
0
    int code = 0;               /* return code */
1931
1932
0
    if (line == 0)              /* can't allocate line buffer */
1933
0
        return_error(gs_error_VMerror);
1934
0
    if (pdev->color_info.num_components == 4 && depth == 32) {
1935
0
        rgb_buff = gs_alloc_bytes(pdev->memory, lsize, "pcx_rgb_buff");
1936
0
        if (rgb_buff == 0)              /* can't allocate line buffer */
1937
0
            return_error(gs_error_VMerror);
1938
0
        raster = (raster * 3) / 4;  /* will be rounded up to even later */
1939
0
        depth = 24;     /* we will be writing 24-bit rgb */
1940
0
        convert_to_rgb = true;
1941
0
    }
1942
1943
    /* Fill in the other variable entries in the header struct. */
1944
1945
0
    assign_ushort(phdr->x2, pdev->width - 1);
1946
0
    assign_ushort(phdr->y2, height - 1);
1947
0
    assign_ushort(phdr->hres, (int)pdev->x_pixels_per_inch);
1948
0
    assign_ushort(phdr->vres, (int)pdev->y_pixels_per_inch);
1949
0
    assign_ushort(phdr->bpl, (planar || depth == 1 ? rsize :
1950
0
                              raster + (raster & 1)));
1951
1952
    /* Write the header. */
1953
1954
0
    if (gp_fwrite((const char *)phdr, 1, 128, outfile) < 128) {
1955
0
        code = gs_error_ioerror;
1956
0
        goto pcx_done;
1957
0
    }
1958
    /* Write the contents of the image. */
1959
0
    for (y = 0; y < height; y++) {
1960
0
        byte *row = line;
1961
0
        byte *end;
1962
1963
0
        code = gp_fread(line, sizeof(byte), linesize, infile);
1964
0
        if (code < 0)
1965
0
            break;
1966
        /* If needed, convert to rgb */
1967
0
        if (convert_to_rgb) {
1968
0
            int i;
1969
0
            byte *row_in = line;
1970
1971
            /* Transform the data. */
1972
0
            row = rgb_buff; /* adjust to converted output buffer */
1973
0
            for (i=0; i < linesize; i += 4) {
1974
0
                *row++ = ((255 - row_in[0]) * (255 - row_in[3])) / 255;
1975
0
                *row++ = ((255 - row_in[1]) * (255 - row_in[3])) / 255;
1976
0
                *row++ = ((255 - row_in[2]) * (255 - row_in[3])) / 255;
1977
0
                row_in += 4;
1978
0
            }
1979
0
            row = rgb_buff; /* adjust to converted output buffer */
1980
0
        }
1981
0
        end = row + raster;
1982
0
        if (!planar) {          /* Just write the bits. */
1983
0
            if (raster & 1) {   /* Round to even, with predictable padding. */
1984
0
                *end = end[-1];
1985
0
                ++end;
1986
0
            }
1987
0
            devn_pcx_write_rle(row, end, 1, outfile);
1988
0
        } else
1989
0
            switch (depth) {
1990
1991
0
                case 4:
1992
0
                    {
1993
0
                        byte *pend = plane + rsize;
1994
0
                        int shift;
1995
1996
0
                        for (shift = 0; shift < 4; shift++) {
1997
0
                            register byte *from, *to;
1998
0
                            register int bright = 1 << shift;
1999
0
                            register int bleft = bright << 4;
2000
2001
0
                            for (from = row, to = plane;
2002
0
                                 from < end; from += 4
2003
0
                                ) {
2004
0
                                *to++ =
2005
0
                                    (from[0] & bleft ? 0x80 : 0) |
2006
0
                                    (from[0] & bright ? 0x40 : 0) |
2007
0
                                    (from[1] & bleft ? 0x20 : 0) |
2008
0
                                    (from[1] & bright ? 0x10 : 0) |
2009
0
                                    (from[2] & bleft ? 0x08 : 0) |
2010
0
                                    (from[2] & bright ? 0x04 : 0) |
2011
0
                                    (from[3] & bleft ? 0x02 : 0) |
2012
0
                                    (from[3] & bright ? 0x01 : 0);
2013
0
                            }
2014
                            /* We might be one byte short of rsize. */
2015
0
                            if (to < pend)
2016
0
                                *to = to[-1];
2017
0
                            devn_pcx_write_rle(plane, pend, 1, outfile);
2018
0
                        }
2019
0
                    }
2020
0
                    break;
2021
2022
0
                case 24:
2023
0
                    {
2024
0
                        int pnum;
2025
2026
0
                        for (pnum = 0; pnum < 3; ++pnum) {
2027
0
                            devn_pcx_write_rle(row + pnum, row + raster, 3, outfile);
2028
0
                            if (pdev->width & 1)
2029
0
                                gp_fputc(0, outfile);              /* pad to even */
2030
0
                        }
2031
0
                    }
2032
0
                    break;
2033
2034
0
                default:
2035
0
                    code = gs_note_error(gs_error_rangecheck);
2036
0
                    goto pcx_done;
2037
2038
0
            }
2039
0
        code = 0;
2040
0
    }
2041
2042
0
  pcx_done:
2043
0
    if (rgb_buff != NULL)
2044
0
        gs_free_object(pdev->memory, rgb_buff, "pcx_rgb_buff");
2045
0
    gs_free_object(pdev->memory, line, "pcx file buffer");
2046
2047
0
    return code;
2048
0
}
2049
2050
/* ------ Internal routines ------ */
2051
2052
/* Write one line in PCX run-length-encoded format. */
2053
static void
2054
devn_pcx_write_rle(const byte * from, const byte * end, int step, gp_file * file)
2055
0
{  /*
2056
    * The PCX format theoretically allows encoding runs of 63
2057
    * identical bytes, but some readers can't handle repetition
2058
    * counts greater than 15.
2059
    */
2060
0
#define MAX_RUN_COUNT 15
2061
0
    int max_run = step * MAX_RUN_COUNT;
2062
2063
0
    while (from < end) {
2064
0
        byte data = *from;
2065
2066
0
        from += step;
2067
0
        if (from >= end || data != *from) {
2068
0
            if (data >= 0xc0)
2069
0
                gp_fputc(0xc1, file);
2070
0
        } else {
2071
0
            const byte *start = from;
2072
2073
0
            while ((from < end) && (*from == data))
2074
0
                from += step;
2075
            /* Now (from - start) / step + 1 is the run length. */
2076
0
            while (from - start >= max_run) {
2077
0
                gp_fputc(0xc0 + MAX_RUN_COUNT, file);
2078
0
                gp_fputc(data, file);
2079
0
                start += max_run;
2080
0
            }
2081
0
            if (from > start || data >= 0xc0)
2082
0
                gp_fputc((from - start) / step + 0xc1, file);
2083
0
        }
2084
0
        gp_fputc(data, file);
2085
0
    }
2086
0
#undef MAX_RUN_COUNT
2087
0
}