Coverage Report

Created: 2025-06-10 07:15

/src/ghostpdl/base/gxipixel.c
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Source (jump to first uncovered line)
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/* Copyright (C) 2001-2025 Artifex Software, Inc.
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   All Rights Reserved.
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   This software is provided AS-IS with no warranty, either express or
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   implied.
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   This software is distributed under license and may not be copied,
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   modified or distributed except as expressly authorized under the terms
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   of the license contained in the file LICENSE in this distribution.
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11
   Refer to licensing information at http://www.artifex.com or contact
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   Artifex Software, Inc.,  39 Mesa Street, Suite 108A, San Francisco,
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   CA 94129, USA, for further information.
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*/
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16
17
/* Common code for ImageType 1 and 4 initialization */
18
#include "gx.h"
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#include "math_.h"
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#include "memory_.h"
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#include "gpcheck.h"
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#include "gscdefs.h"            /* for image class table */
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#include "gserrors.h"
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#include "gsstruct.h"
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#include "gsutil.h"
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#include "gxfixed.h"
27
#include "gxfrac.h"
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#include "gxarith.h"
29
#include "gxmatrix.h"
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#include "gsccolor.h"
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#include "gspaint.h"
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#include "gzstate.h"
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#include "gxdevice.h"
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#include "gzpath.h"
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#include "gzcpath.h"
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#include "gxdevmem.h"
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#include "gximage.h"
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#include "gxiparam.h"
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#include "gdevmrop.h"
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#include "gscspace.h"
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#include "gscindex.h"
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#include "gsicc_cache.h"
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#include "gsicc_cms.h"
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#include "gsicc_manage.h"
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#include "gxdevsop.h"
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47
/* Structure descriptors */
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private_st_gx_image_enum();
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50
/* Image class procedures */
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extern_gx_image_class_table();
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/* Enumerator procedures */
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static const gx_image_enum_procs_t image1_enum_procs = {
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    gx_image1_plane_data, gx_image1_end_image, gx_image1_flush
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};
57
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/* GC procedures */
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gs_private_st_ptrs2(st_color_cache, gx_image_color_cache_t, "gx_image_color_cache",
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                    color_cache_enum_ptrs, color_cache_reloc_ptrs,
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                    is_transparent, device_contone);
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static
63
0
ENUM_PTRS_WITH(image_enum_enum_ptrs, gx_image_enum *eptr)
64
0
{
65
0
    int bps;
66
0
    gs_ptr_type_t ret;
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68
    /* Enumerate the used members of clues.dev_color. */
69
0
    index -= gx_image_enum_num_ptrs;
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0
    bps = eptr->unpack_bps;
71
0
    if (eptr->spp != 1)
72
0
        bps = 8;
73
0
    else if (bps > 8 || eptr->unpack == sample_unpack_copy)
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0
        bps = 1;
75
0
    if (index >= (1 << bps) * st_device_color_max_ptrs)         /* done */
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0
        return 0;
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    /* the clues may have been cleared by gx_image_free_enum, but not freed in that */
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    /* function due to being at a different save level. Only trace if dev_color.type != 0. */
79
0
    if (eptr->spp == 1) {
80
0
        if (eptr->clues != NULL) {
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0
            if (eptr->clues[(index/st_device_color_max_ptrs) *
82
0
                (255 / ((1 << bps) - 1))].dev_color.type != 0) {
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0
                ret = ENUM_USING(st_device_color,
84
0
                                 &eptr->clues[(index / st_device_color_max_ptrs) *
85
0
                                 (255 / ((1 << bps) - 1))].dev_color,
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0
                                 sizeof(eptr->clues[0].dev_color),
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0
                                 index % st_device_color_max_ptrs);
88
0
            } else {
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0
                ret = 0;
90
0
            }
91
0
        } else {
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0
            ret = 0;
93
0
        }
94
0
    } else {
95
0
        ret = 0;
96
0
    }
97
0
    if (ret == 0)               /* don't stop early */
98
0
        ENUM_RETURN(0);
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0
    return ret;
100
0
}
101
102
0
#define e1(i,elt) ENUM_PTR(i,gx_image_enum,elt);
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0
gx_image_enum_do_ptrs(e1)
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0
#undef e1
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0
ENUM_PTRS_END
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107
0
static RELOC_PTRS_WITH(image_enum_reloc_ptrs, gx_image_enum *eptr)
108
0
{
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0
    int i;
110
111
0
#define r1(i,elt) RELOC_PTR(gx_image_enum,elt);
112
0
    gx_image_enum_do_ptrs(r1)
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0
#undef r1
114
0
    {
115
0
        int bps = eptr->unpack_bps;
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117
0
        if (eptr->spp != 1)
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0
            bps = 8;
119
0
        else if (bps > 8 || eptr->unpack == sample_unpack_copy)
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0
            bps = 1;
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0
        if (eptr->spp == 1) {
122
0
        for (i = 0; i <= 255; i += 255 / ((1 << bps) - 1))
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0
            RELOC_USING(st_device_color,
124
0
                        &eptr->clues[i].dev_color, sizeof(gx_device_color));
125
0
    }
126
0
}
127
0
}
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0
RELOC_PTRS_END
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/* Forward declarations */
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static int color_draws_b_w(gx_device * dev,
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                            const gx_drawing_color * pdcolor);
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static int image_init_colors(gx_image_enum * penum, int bps, int spp,
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                               gs_image_format_t format,
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                               const float *decode,
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                               const gs_gstate * pgs, gx_device * dev,
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                               const gs_color_space * pcs, bool * pdcb);
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139
/* Procedures for unpacking the input data into bytes or fracs. */
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/*extern SAMPLE_UNPACK_PROC(sample_unpack_copy); *//* declared above */
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142
/*
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 * Do common initialization for processing an ImageType 1 or 4 image.
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 * Allocate the enumerator and fill in the following members:
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 *      rect
146
 */
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int
148
gx_image_enum_alloc(const gs_image_common_t * pic,
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                    const gs_int_rect * prect, gs_memory_t * mem,
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                    gx_image_enum **ppenum)
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265k
{
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265k
    const gs_pixel_image_t *pim = (const gs_pixel_image_t *)pic;
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265k
    int width = pim->Width, height = pim->Height;
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    int bpc = pim->BitsPerComponent;
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265k
    gx_image_enum *penum;
156
157
265k
    if (width < 0 || height < 0)
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0
        return_error(gs_error_rangecheck);
159
265k
    switch (pim->format) {
160
265k
    case gs_image_format_chunky:
161
265k
    case gs_image_format_component_planar:
162
265k
        switch (bpc) {
163
265k
        case 1: case 2: case 4: case 8: case 12: case 16: break;
164
0
        default: return_error(gs_error_rangecheck);
165
265k
        }
166
265k
        break;
167
265k
    case gs_image_format_bit_planar:
168
0
        if (bpc < 1 || bpc > 8)
169
0
            return_error(gs_error_rangecheck);
170
265k
    }
171
265k
    if (prect) {
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93.8k
        if (prect->p.x < 0 || prect->p.y < 0 ||
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93.8k
            prect->q.x < prect->p.x || prect->q.y < prect->p.y ||
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93.8k
            prect->q.x > width || prect->q.y > height
175
93.8k
            )
176
0
            return_error(gs_error_rangecheck);
177
93.8k
    }
178
265k
    *ppenum = NULL;   /* in case alloc fails and caller doesn't check code */
179
265k
    penum = gs_alloc_struct(mem, gx_image_enum, &st_gx_image_enum,
180
265k
                            "gx_default_begin_image");
181
265k
    if (penum == 0)
182
0
        return_error(gs_error_VMerror);
183
265k
    memset(penum, 0, sizeof(gx_image_enum));  /* in case of failure, no dangling pointers */
184
265k
    if (prect) {
185
93.8k
        penum->rect.x = prect->p.x;
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93.8k
        penum->rect.y = prect->p.y;
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93.8k
        penum->rect.w = prect->q.x - prect->p.x;
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93.8k
        penum->rect.h = prect->q.y - prect->p.y;
189
172k
    } else {
190
172k
        penum->rect.x = 0, penum->rect.y = 0;
191
172k
        penum->rect.w = width, penum->rect.h = height;
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172k
    }
193
265k
    penum->rrect.x = penum->rect.x;
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265k
    penum->rrect.y = penum->rect.y;
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265k
    penum->rrect.w = penum->rect.w;
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265k
    penum->rrect.h = penum->rect.h;
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265k
    penum->drect.x = penum->rect.x;
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265k
    penum->drect.y = penum->rect.y;
199
265k
    penum->drect.w = penum->rect.w;
200
265k
    penum->drect.h = penum->rect.h;
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#ifdef DEBUG
202
    if (gs_debug_c('b')) {
203
        dmlprintf2(mem, "[b]Image: w=%d h=%d", width, height);
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        if (prect)
205
            dmprintf4(mem, " ((%d,%d),(%d,%d))",
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                     prect->p.x, prect->p.y, prect->q.x, prect->q.y);
207
    }
208
#endif
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265k
    *ppenum = penum;
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265k
    return 0;
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265k
}
212
213
/* Convert and restrict to a valid range. */
214
720k
static inline fixed float2fixed_rounded_boxed(double src) {
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720k
    float v = floor(src*fixed_scale + 0.5);
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217
720k
    if (v <= min_fixed)
218
47
        return min_fixed;
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719k
    else if (v >= max_fixed)
220
34
        return max_fixed;
221
719k
    else
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719k
        return  (fixed)v;
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720k
}
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225
/* Compute the image matrix combining the ImageMatrix with either the pmat or the pgs ctm */
226
int
227
gx_image_compute_mat(const gs_gstate *pgs, const gs_matrix *pmat, const gs_matrix *ImageMatrix,
228
                     gs_matrix_double *rmat)
229
290k
{
230
290k
    int code = 0;
231
232
290k
    if (pmat == 0)
233
290k
        pmat = &ctm_only(pgs);
234
290k
    if (ImageMatrix->xx == pmat->xx && ImageMatrix->xy == pmat->xy &&
235
290k
        ImageMatrix->yx == pmat->yx && ImageMatrix->yy == pmat->yy) {
236
        /* Process common special case separately to accept singular matrix. */
237
163k
        rmat->xx = rmat->yy = 1.;
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163k
        rmat->xy = rmat->yx = 0.;
239
163k
        rmat->tx = pmat->tx - ImageMatrix->tx;
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163k
        rmat->ty = pmat->ty - ImageMatrix->ty;
241
163k
    } else {
242
127k
        if ((code = gs_matrix_invert_to_double(ImageMatrix, rmat)) < 0 ||
243
127k
            (code = gs_matrix_multiply_double(rmat, pmat, rmat)) < 0
244
127k
            ) {
245
19
            return code;
246
19
        }
247
127k
    }
248
290k
    return code;
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290k
}
250
251
/*
252
 * Finish initialization for processing an ImageType 1 or 4 image.
253
 * Assumes the following members of *penum are set in addition to those
254
 * set by gx_image_enum_alloc:
255
 *      alpha, use_mask_color, mask_color (if use_mask_color is true),
256
 *      masked, adjust
257
 */
258
int
259
gx_image_enum_begin(gx_device * dev, const gs_gstate * pgs,
260
                    const gs_matrix *pmat, const gs_image_common_t * pic,
261
                const gx_drawing_color * pdcolor, const gx_clip_path * pcpath,
262
                gs_memory_t * mem, gx_image_enum *penum)
263
265k
{
264
265k
    const gs_pixel_image_t *pim = (const gs_pixel_image_t *)pic;
265
265k
    gs_image_format_t format = pim->format;
266
265k
    const int width = pim->Width;
267
265k
    const int height = pim->Height;
268
265k
    const int bps = pim->BitsPerComponent;
269
265k
    bool masked = penum->masked;
270
265k
    const float *decode = pim->Decode;
271
265k
    gs_matrix_double mat;
272
265k
    int index_bps;
273
265k
    gs_color_space *pcs = pim->ColorSpace;
274
265k
    gs_logical_operation_t lop = (pgs ? pgs->log_op : lop_default);
275
265k
    int code;
276
265k
    int log2_xbytes = (bps <= 8 ? 0 : arch_log2_sizeof_frac);
277
265k
    int spp, nplanes, spread;
278
265k
    uint bsize;
279
265k
    byte *buffer = NULL;
280
265k
    fixed mtx, mty;
281
265k
    gs_fixed_point row_extent, col_extent, x_extent, y_extent;
282
265k
    bool device_color = true;
283
265k
    gs_fixed_rect obox, cbox;
284
265k
    bool gridfitimages = 0;
285
265k
    bool in_pattern_accumulator;
286
265k
    bool in_smask;
287
265k
    int orthogonal;
288
265k
    int force_interpolation = 0;
289
290
265k
    penum->pcs = NULL;
291
265k
    penum->clues = NULL;
292
265k
    penum->icc_setup.has_transfer = false;
293
265k
    penum->icc_setup.is_lab = false;
294
265k
    penum->icc_setup.must_halftone = false;
295
265k
    penum->icc_setup.need_decode = false;
296
265k
    penum->Width = width;
297
265k
    penum->Height = height;
298
299
265k
    if ((code = gx_image_compute_mat(pgs, pmat, &(pim->ImageMatrix), &mat)) < 0) {
300
17
        return code;
301
17
    }
302
265k
    lop = lop_sanitize(lop);
303
    /* Grid fit: A common construction in postscript/PDF files is for images
304
     * to be constructed as a series of 'stacked' 1 pixel high images.
305
     * Furthermore, many of these are implemented as an imagemask plotted on
306
     * top of thin rectangles. The different fill rules for images and line
307
     * art produces problems; line art fills a pixel if any part of it is
308
     * touched - images only fill a pixel if the centre of the pixel is
309
     * covered. Bug 692666 is such a problem.
310
     *
311
     * As a workaround for this problem, the code below was introduced. The
312
     * concept is that orthogonal images can be 'grid fitted' (or 'stretch')
313
     * to entirely cover pixels that they touch. Initially I had this working
314
     * for all images regardless of type, but as testing has proceeded, this
315
     * showed more and more regressions, so I've cut the cases back in which
316
     * this code is used until it now only triggers on imagemasks that are
317
     * either 1 pixel high, or wide, and then not if we are rendering a
318
     * glyph (such as from a type3 font).
319
     */
320
321
    /* Ask the device if we are in a pattern accumulator */
322
265k
    in_pattern_accumulator = (dev_proc(dev, dev_spec_op)(dev, gxdso_in_pattern_accumulator, NULL, 0));
323
265k
    if (in_pattern_accumulator < 0)
324
164k
        in_pattern_accumulator = 0;
325
326
    /* Figure out if we are orthogonal */
327
265k
    if (mat.xy == 0 && mat.yx == 0)
328
265k
        orthogonal = 1;
329
285
    else if (mat.xx == 0 && mat.yy == 0)
330
33
        orthogonal = 2;
331
252
    else
332
252
        orthogonal = 0;
333
334
    /* If we are in a pattern accumulator, we choose to always grid fit
335
     * orthogonal images. We do this by asking the device whether we
336
     * should grid fit. This allows us to avoid nasty blank lines around
337
     * the edges of cells. Similarly, for smasks.
338
     */
339
265k
    in_smask = (pim->override_in_smask ||
340
265k
                (dev_proc(dev, dev_spec_op)(dev, gxdso_in_smask, NULL, 0)) > 0);
341
265k
    gridfitimages = (in_smask || in_pattern_accumulator) && orthogonal;
342
343
265k
    if (pgs != NULL && pgs->show_gstate != NULL) {
344
        /* If we're a graphics state, and we're in a text object, then we
345
         * must be in a type3 font. Don't fiddle with it. */
346
265k
    } else if (!gridfitimages &&
347
265k
               (!penum->masked || penum->image_parent_type != 0)) {
348
        /* Other than for images we are specifically looking to grid fit (such as
349
         * ones in a pattern device), we only grid fit imagemasks */
350
185k
    } else if (gridfitimages && (penum->masked && penum->image_parent_type == 0)) {
351
        /* We don't gridfit imagemasks in a pattern accumulator */
352
80.9k
    } else if (pgs != NULL && pgs->fill_adjust.x == 0 && pgs->fill_adjust.y == 0) {
353
        /* If fill adjust is disabled, so is grid fitting */
354
80.9k
    } else if (orthogonal == 1) {
355
80.8k
        if (width == 1 || gridfitimages) {
356
80.7k
            if (mat.xx > 0) {
357
80.6k
                fixed ix0 = int2fixed(fixed2int(float2fixed(mat.tx)));
358
80.6k
                double x1 = mat.tx + mat.xx * width;
359
80.6k
                fixed ix1 = int2fixed(fixed2int_ceiling(float2fixed(x1)));
360
80.6k
                mat.tx = (double)fixed2float(ix0);
361
80.6k
                mat.xx = (double)(fixed2float(ix1 - ix0)/width);
362
80.6k
            } else if (mat.xx < 0) {
363
20
                fixed ix0 = int2fixed(fixed2int_ceiling(float2fixed(mat.tx)));
364
20
                double x1 = mat.tx + mat.xx * width;
365
20
                fixed ix1 = int2fixed(fixed2int(float2fixed(x1)));
366
20
                mat.tx = (double)fixed2float(ix0);
367
20
                mat.xx = (double)(fixed2float(ix1 - ix0)/width);
368
20
            }
369
80.7k
        }
370
80.8k
        if (height == 1 || gridfitimages) {
371
80.7k
            if (mat.yy > 0) {
372
234
                fixed iy0 = int2fixed(fixed2int(float2fixed(mat.ty)));
373
234
                double y1 = mat.ty + mat.yy * height;
374
234
                fixed iy1 = int2fixed(fixed2int_ceiling(float2fixed(y1)));
375
234
                mat.ty = (double)fixed2float(iy0);
376
234
                mat.yy = (double)(fixed2float(iy1 - iy0)/height);
377
80.4k
            } else if (mat.yy < 0) {
378
80.4k
                fixed iy0 = int2fixed(fixed2int_ceiling(float2fixed(mat.ty)));
379
80.4k
                double y1 = mat.ty + mat.yy * height;
380
80.4k
                fixed iy1 = int2fixed(fixed2int(float2fixed(y1)));
381
80.4k
                mat.ty = (double)fixed2float(iy0);
382
80.4k
                mat.yy = ((double)fixed2float(iy1 - iy0)/height);
383
80.4k
            }
384
80.7k
        }
385
80.8k
    } else if (orthogonal == 2) {
386
32
        if (height == 1 || gridfitimages) {
387
0
            if (mat.yx > 0) {
388
0
                fixed ix0 = int2fixed(fixed2int(float2fixed(mat.tx)));
389
0
                double x1 = mat.tx + mat.yx * height;
390
0
                fixed ix1 = int2fixed(fixed2int_ceiling(float2fixed(x1)));
391
0
                mat.tx = (double)fixed2float(ix0);
392
0
                mat.yx = (double)(fixed2float(ix1 - ix0)/height);
393
0
            } else if (mat.yx < 0) {
394
0
                fixed ix0 = int2fixed(fixed2int_ceiling(float2fixed(mat.tx)));
395
0
                double x1 = mat.tx + mat.yx * height;
396
0
                fixed ix1 = int2fixed(fixed2int(float2fixed(x1)));
397
0
                mat.tx = (double)fixed2float(ix0);
398
0
                mat.yx = (double)(fixed2float(ix1 - ix0)/height);
399
0
            }
400
0
        }
401
32
        if (width == 1 || gridfitimages) {
402
0
            if (mat.xy > 0) {
403
0
                fixed iy0 = int2fixed(fixed2int(float2fixed(mat.ty)));
404
0
                double y1 = mat.ty + mat.xy * width;
405
0
                fixed iy1 = int2fixed(fixed2int_ceiling(float2fixed(y1)));
406
0
                mat.ty = (double)fixed2float(iy0);
407
0
                mat.xy = (double)(fixed2float(iy1 - iy0)/width);
408
0
            } else if (mat.xy < 0) {
409
0
                fixed iy0 = int2fixed(fixed2int_ceiling(float2fixed(mat.ty)));
410
0
                double y1 = mat.ty + mat.xy * width;
411
0
                fixed iy1 = int2fixed(fixed2int(float2fixed(y1)));
412
0
                mat.ty = (double)fixed2float(iy0);
413
0
                mat.xy = ((double)fixed2float(iy1 - iy0)/width);
414
0
            }
415
0
        }
416
32
    }
417
418
    /* When rendering to a pattern accumulator, if we are downscaling
419
     * then enable interpolation, as otherwise dropouts can cause
420
     * serious problems. */
421
265k
    if (in_pattern_accumulator) {
422
27
        double ome = ((double)(fixed_1 - fixed_epsilon)) / (double)fixed_1; /* One Minus Epsilon */
423
424
27
        if (orthogonal == 1) {
425
27
            if ((mat.xx > -ome && mat.xx < ome) || (mat.yy > -ome && mat.yy < ome)) {
426
24
                force_interpolation = true;
427
24
            }
428
27
        } else if (orthogonal == 2) {
429
0
            if ((mat.xy > -ome && mat.xy < ome) || (mat.yx > -ome && mat.yx < ome)) {
430
0
                force_interpolation = true;
431
0
            }
432
0
        }
433
27
    }
434
435
    /* Can we restrict the amount of image we need? */
436
265k
    while (!pim->imagematrices_are_untrustworthy) /* So we can break out of it */
437
265k
    {
438
265k
        gs_rect rect, rect_src;
439
265k
        gs_matrix mi;
440
265k
        const gs_matrix *m = pgs != NULL ? &ctm_only(pgs) : NULL;
441
265k
        gs_int_rect irect;
442
265k
        if (m == NULL || (code = gs_matrix_invert(m, &mi)) < 0 ||
443
265k
            (code = gs_matrix_multiply(&mi, &pic->ImageMatrix, &mi)) < 0) {
444
            /* Give up trying to shrink the render box, but continue processing */
445
232
            break;
446
232
        }
447
265k
        if (pcpath)
448
53.7k
        {
449
53.7k
            gs_fixed_rect obox;
450
53.7k
            gx_cpath_outer_box(pcpath, &obox);
451
53.7k
            rect.p.x = fixed2float(obox.p.x);
452
53.7k
            rect.p.y = fixed2float(obox.p.y);
453
53.7k
            rect.q.x = fixed2float(obox.q.x);
454
53.7k
            rect.q.y = fixed2float(obox.q.y);
455
53.7k
        }
456
211k
        else
457
211k
        {
458
211k
            rect.p.x = 0;
459
211k
            rect.p.y = 0;
460
211k
            rect.q.x = dev->width;
461
211k
            rect.q.y = dev->height;
462
211k
        }
463
        /* rect is in destination space. Calculate rect_src, in source space. */
464
265k
        code = gs_bbox_transform(&rect, &mi, &rect_src);
465
265k
        if (code < 0) {
466
            /* Give up trying to shrink the render/decode boxes, but continue processing */
467
0
            break;
468
0
        }
469
        /* Need to expand the region to allow for the fact that the mitchell
470
         * scaler reads multiple pixels in. */
471
        /* If mi.{xx,yy} > 1 then we are downscaling. During downscaling,
472
         * the support increases to ensure that we don't lose pixels contributions
473
         * entirely. */
474
265k
        if (pim->Interpolate)
475
0
        {
476
0
            float support = any_abs(mi.xx);
477
0
            int isupport;
478
0
            if (any_abs(mi.yy) > support)
479
0
                support = any_abs(mi.yy);
480
0
            if (any_abs(mi.xy) > support)
481
0
                support = any_abs(mi.xy);
482
0
            if (any_abs(mi.yx) > support)
483
0
                support = any_abs(mi.yx);
484
            /* If upscaling (support < 1) then we need 2 extra lines on each side of the source region
485
             * (2 being the maximum support for mitchell scaling).
486
             * If downscaling, then the number of lines is increased to avoid individual
487
             * contributions dropping out. */
488
0
            isupport = 2; /* Mitchell support. */
489
0
            if (support > 1)
490
0
                isupport = (int)ceil(isupport * support);
491
0
            rect_src.p.x -= isupport;
492
0
            rect_src.p.y -= isupport;
493
0
            rect_src.q.x += isupport;
494
0
            rect_src.q.y += isupport+1; /* +1 is a fudge! */
495
0
        }
496
265k
        irect.p.x = (int)floor(rect_src.p.x);
497
265k
        irect.p.y = (int)floor(rect_src.p.y);
498
265k
        irect.q.x = (int)ceil(rect_src.q.x);
499
265k
        irect.q.y = (int)ceil(rect_src.q.y);
500
        /* We therefore only need to render within irect. Restrict rrect to this. */
501
265k
        if (penum->rrect.x < irect.p.x) {
502
662
            penum->rrect.w -= irect.p.x - penum->rrect.x;
503
662
            if (penum->rrect.w < 0)
504
25
               penum->rrect.w = 0;
505
662
            penum->rrect.x = irect.p.x;
506
662
        }
507
265k
        if (penum->rrect.x + penum->rrect.w > irect.q.x) {
508
444
            penum->rrect.w = irect.q.x - penum->rrect.x;
509
444
            if (penum->rrect.w < 0)
510
23
                penum->rrect.w = 0;
511
444
        }
512
265k
        if (penum->rrect.y < irect.p.y) {
513
24.1k
            penum->rrect.h -= irect.p.y - penum->rrect.y;
514
24.1k
            if (penum->rrect.h < 0)
515
16
                penum->rrect.h = 0;
516
24.1k
            penum->rrect.y = irect.p.y;
517
24.1k
        }
518
265k
        if (penum->rrect.y + penum->rrect.h > irect.q.y) {
519
26.3k
            penum->rrect.h = irect.q.y - penum->rrect.y;
520
26.3k
            if (penum->rrect.h < 0)
521
27
                penum->rrect.h = 0;
522
26.3k
        }
523
265k
        if (penum->drect.x < irect.p.x) {
524
662
            penum->drect.w -= irect.p.x - penum->drect.x;
525
662
            if (penum->drect.w < 0)
526
25
               penum->drect.w = 0;
527
662
            penum->drect.x = irect.p.x;
528
662
        }
529
265k
        if (penum->drect.x + penum->drect.w > irect.q.x) {
530
444
            penum->drect.w = irect.q.x - penum->drect.x;
531
444
            if (penum->drect.w < 0)
532
23
                penum->drect.w = 0;
533
444
        }
534
265k
        if (penum->drect.y < irect.p.y) {
535
24.1k
            penum->drect.h -= irect.p.y - penum->drect.y;
536
24.1k
            if (penum->drect.h < 0)
537
16
                penum->drect.h = 0;
538
24.1k
            penum->drect.y = irect.p.y;
539
24.1k
        }
540
265k
        if (penum->drect.y + penum->drect.h > irect.q.y) {
541
26.3k
            penum->drect.h = irect.q.y - penum->drect.y;
542
26.3k
            if (penum->drect.h < 0)
543
27
                penum->drect.h = 0;
544
26.3k
        }
545
265k
        break; /* Out of the while */
546
265k
    }
547
    /* Check for the intersection being null */
548
265k
    if (penum->drect.x + penum->drect.w <= penum->rect.x  ||
549
265k
        penum->rect.x  + penum->rect.w  <= penum->drect.x ||
550
265k
        penum->drect.y + penum->drect.h <= penum->rect.y  ||
551
265k
        penum->rect.y  + penum->rect.h  <= penum->drect.y)
552
298
    {
553
          /* Something may have gone wrong with the floating point above.
554
           * set the region to something sane. */
555
298
        penum->drect.x = penum->rect.x;
556
298
        penum->drect.y = penum->rect.y;
557
298
        penum->drect.w = 0;
558
298
        penum->drect.h = 0;
559
298
    }
560
265k
    if (penum->rrect.x + penum->rrect.w <= penum->drect.x  ||
561
265k
        penum->drect.x + penum->drect.w  <= penum->rrect.x ||
562
265k
        penum->rrect.y + penum->rrect.h <= penum->drect.y  ||
563
265k
        penum->drect.y + penum->drect.h  <= penum->rrect.y)
564
298
    {
565
          /* Something may have gone wrong with the floating point above.
566
           * set the region to something sane. */
567
298
        penum->rrect.x = penum->drect.x;
568
298
        penum->rrect.y = penum->drect.y;
569
298
        penum->rrect.w = 0;
570
298
        penum->rrect.h = 0;
571
298
    }
572
573
    /*penum->matrix = mat;*/
574
265k
    penum->matrix.xx = mat.xx;
575
265k
    penum->matrix.xy = mat.xy;
576
265k
    penum->matrix.yx = mat.yx;
577
265k
    penum->matrix.yy = mat.yy;
578
265k
    penum->matrix.tx = mat.tx;
579
265k
    penum->matrix.ty = mat.ty;
580
265k
    if_debug6m('b', mem, " [%g %g %g %g %g %g]\n",
581
265k
              mat.xx, mat.xy, mat.yx, mat.yy, mat.tx, mat.ty);
582
    /* following works for 1, 2, 4, 8, 12, 16 */
583
265k
    index_bps = (bps < 8 ? bps >> 1 : (bps >> 2) + 1);
584
    /*
585
     * Compute extents with distance transformation.
586
     */
587
265k
    if (mat.tx > 0)
588
228k
        mtx = float2fixed(mat.tx);
589
37.4k
    else { /* Use positive values to ensure round down. */
590
37.4k
        int f = (int)-mat.tx + 1;
591
592
37.4k
        mtx = float2fixed(mat.tx + f) - int2fixed(f);
593
37.4k
    }
594
265k
    if (mat.ty > 0)
595
114k
        mty = float2fixed(mat.ty);
596
151k
    else {  /* Use positive values to ensure round down. */
597
151k
        int f = (int)-mat.ty + 1;
598
599
151k
        mty = float2fixed(mat.ty + f) - int2fixed(f);
600
151k
    }
601
602
265k
    row_extent.x = float2fixed_rounded_boxed(width * mat.xx);
603
265k
    row_extent.y =
604
265k
        (is_fzero(mat.xy) ? fixed_0 :
605
265k
         float2fixed_rounded_boxed(width * mat.xy));
606
265k
    col_extent.x =
607
265k
        (is_fzero(mat.yx) ? fixed_0 :
608
265k
         float2fixed_rounded_boxed(height * mat.yx));
609
265k
    col_extent.y = float2fixed_rounded_boxed(height * mat.yy);
610
265k
    gx_image_enum_common_init((gx_image_enum_common_t *)penum,
611
265k
                              (const gs_data_image_t *)pim,
612
265k
                              &image1_enum_procs, dev,
613
265k
                              (masked ? 1 : (penum->alpha ? cs_num_components(pcs)+1 : cs_num_components(pcs))),
614
265k
                              format);
615
265k
    if (penum->rect.w == width && penum->rect.h == height) {
616
172k
        x_extent = row_extent;
617
172k
        y_extent = col_extent;
618
172k
    } else {
619
93.7k
        int rw = penum->rect.w, rh = penum->rect.h;
620
621
93.7k
        x_extent.x = float2fixed_rounded_boxed(rw * mat.xx);
622
93.7k
        x_extent.y =
623
93.7k
            (is_fzero(mat.xy) ? fixed_0 :
624
93.7k
             float2fixed_rounded_boxed(rw * mat.xy));
625
93.7k
        y_extent.x =
626
93.7k
            (is_fzero(mat.yx) ? fixed_0 :
627
93.7k
             float2fixed_rounded_boxed(rh * mat.yx));
628
93.7k
        y_extent.y = float2fixed_rounded_boxed(rh * mat.yy);
629
93.7k
    }
630
    /* Set icolor0 and icolor1 to point to image clues locations if we have
631
       1spp or an imagemask, otherwise image clues is not used and
632
       we have these values point to other member variables */
633
265k
    if (masked || cs_num_components(pcs) == 1) {
634
        /* Go ahead and allocate now if not already done.  For a mask
635
           we really should only do 2 values. For now, the goal is to
636
           eliminate the 256 bytes for the >8bpp image enumerator */
637
52.9k
        penum->clues = (gx_image_clue*) gs_alloc_bytes(mem, sizeof(gx_image_clue)*256,
638
52.9k
                             "gx_image_enum_begin");
639
52.9k
        if (penum->clues == NULL) {
640
0
            code = gs_error_VMerror;
641
0
            goto fail;
642
0
        }
643
52.9k
        penum->icolor0 = &(penum->clues[0].dev_color);
644
52.9k
        penum->icolor1 = &(penum->clues[255].dev_color);
645
213k
    } else {
646
213k
        penum->icolor0 = &(penum->icolor0_val);
647
213k
        penum->icolor1 = &(penum->icolor1_val);
648
213k
    }
649
265k
    penum->icolor0->tag = penum->icolor1->tag = device_current_tag(dev);
650
651
265k
    if (masked) {       /* This is imagemask. */
652
262
        if (bps != 1 || pcs != NULL || penum->alpha || decode[0] == decode[1]) {
653
6
            code = gs_error_rangecheck;
654
6
            goto fail;
655
6
        }
656
        /* Initialize color entries 0 and 255. */
657
262
        set_nonclient_dev_color(penum->icolor0, gx_no_color_index);
658
256
        set_nonclient_dev_color(penum->icolor1, gx_no_color_index);
659
256
        *(penum->icolor1) = *pdcolor;
660
256
        memcpy(&penum->map[0].table.lookup4x1to32[0],
661
256
               (decode[0] < decode[1] ? lookup4x1to32_inverted :
662
256
                lookup4x1to32_identity),
663
256
               16 * 4);
664
256
        penum->map[0].decoding = sd_none;
665
256
        spp = 1;
666
256
        lop = rop3_know_S_0(lop);
667
265k
    } else {                    /* This is image, not imagemask. */
668
265k
        const gs_color_space_type *pcst = pcs->type;
669
265k
        int b_w_color;
670
671
265k
        spp = cs_num_components(pcs);
672
265k
        if (spp < 0) {          /* Pattern not allowed */
673
0
            code = gs_error_rangecheck;
674
0
            goto fail;
675
0
        }
676
265k
        if (penum->alpha)
677
0
            ++spp;
678
        /* Use a less expensive format if possible. */
679
265k
        switch (format) {
680
0
        case gs_image_format_bit_planar:
681
0
            if (bps > 1)
682
0
                break;
683
0
            format = gs_image_format_component_planar;
684
0
        case gs_image_format_component_planar:
685
0
            if (spp == 1)
686
0
                format = gs_image_format_chunky;
687
265k
        default:                /* chunky */
688
265k
            break;
689
265k
        }
690
691
265k
        if (pcs->cmm_icc_profile_data != NULL) {
692
264k
            device_color = false;
693
264k
        } else {
694
1.07k
            device_color = (*pcst->concrete_space) (pcs, pgs) == pcs;
695
1.07k
        }
696
697
265k
        code = image_init_colors(penum, bps, spp, format, decode, pgs, dev,
698
265k
                          pcs, &device_color);
699
265k
        if (code < 0) {
700
0
            gs_free_object(mem, penum->clues, "gx_image_enum_begin");
701
0
            gs_free_object(mem, penum, "gx_default_begin_image");
702
0
            return gs_throw(code, "Image colors initialization failed");
703
0
        }
704
        /* If we have a CIE based color space and the icc equivalent profile
705
           is not yet set, go ahead and handle that now.  It may already
706
           be done due to the above init_colors which may go through remap. */
707
265k
        if (gs_color_space_is_PSCIE(pcs) && pcs->icc_equivalent == NULL) {
708
0
            code = gs_colorspace_set_icc_equivalent((gs_color_space *)pcs, &(penum->icc_setup.is_lab),
709
0
                                                pgs->memory);
710
0
            if (code < 0)
711
0
                goto fail;
712
0
            if (penum->icc_setup.is_lab) {
713
                /* Free what ever profile was created and use the icc manager's
714
                   cielab profile */
715
0
                gs_color_space *curr_pcs = (gs_color_space *)pcs;
716
0
                rc_decrement(curr_pcs->icc_equivalent,"gx_image_enum_begin");
717
0
                gsicc_adjust_profile_rc(curr_pcs->cmm_icc_profile_data, -1,"gx_image_enum_begin");
718
0
                curr_pcs->cmm_icc_profile_data = pgs->icc_manager->lab_profile;
719
0
                gsicc_adjust_profile_rc(curr_pcs->cmm_icc_profile_data, 1,"gx_image_enum_begin");
720
0
            }
721
0
        }
722
        /* Try to transform non-default RasterOps to something */
723
        /* that we implement less expensively. */
724
265k
        if (!pim->CombineWithColor)
725
265k
            lop = rop3_know_T_0(lop);
726
0
        else if ((rop3_uses_T(lop) && color_draws_b_w(dev, pdcolor) == 0))
727
0
            lop = rop3_know_T_0(lop);
728
729
265k
        if (lop != rop3_S &&    /* if best case, no more work needed */
730
265k
            !rop3_uses_T(lop) && bps == 1 && spp == 1 &&
731
265k
            (b_w_color =
732
0
             color_draws_b_w(dev, penum->icolor0)) >= 0 &&
733
265k
            color_draws_b_w(dev, penum->icolor1) == (b_w_color ^ 1)
734
265k
            ) {
735
0
            if (b_w_color) {    /* Swap the colors and invert the RasterOp source. */
736
0
                gx_device_color dcolor;
737
738
0
                dcolor = *(penum->icolor0);
739
0
                *(penum->icolor0) = *(penum->icolor1);
740
0
                *(penum->icolor1) = dcolor;
741
0
                lop = rop3_invert_S(lop);
742
0
            }
743
            /*
744
             * At this point, we know that the source pixels
745
             * correspond directly to the S input for the raster op,
746
             * i.e., icolor0 is black and icolor1 is white.
747
             */
748
0
            switch (lop) {
749
0
                case rop3_D & rop3_S:
750
                    /* Implement this as an inverted mask writing 0s. */
751
0
                    *(penum->icolor1) = *(penum->icolor0);
752
                    /* (falls through) */
753
0
                case rop3_D | rop3_not(rop3_S):
754
                    /* Implement this as an inverted mask writing 1s. */
755
0
                    memcpy(&penum->map[0].table.lookup4x1to32[0],
756
0
                           lookup4x1to32_inverted, 16 * 4);
757
0
                  rmask:        /* Fill in the remaining parameters for a mask. */
758
0
                    penum->masked = masked = true;
759
0
                    set_nonclient_dev_color(penum->icolor0, gx_no_color_index);
760
0
                    penum->map[0].decoding = sd_none;
761
0
                    lop = rop3_T;
762
0
                    break;
763
0
                case rop3_D & rop3_not(rop3_S):
764
                    /* Implement this as a mask writing 0s. */
765
0
                    *(penum->icolor1) = *(penum->icolor0);
766
                    /* (falls through) */
767
0
                case rop3_D | rop3_S:
768
                    /* Implement this as a mask writing 1s. */
769
0
                    memcpy(&penum->map[0].table.lookup4x1to32[0],
770
0
                           lookup4x1to32_identity, 16 * 4);
771
0
                    goto rmask;
772
0
                default:
773
0
                    ;
774
0
            }
775
0
        }
776
265k
    }
777
265k
    penum->device_color = device_color;
778
    /*
779
     * Adjust width upward for unpacking up to 7 trailing bits in
780
     * the row, plus 1 byte for end-of-run, plus up to 7 leading
781
     * bits for data_x offset within a packed byte.
782
     */
783
265k
    bsize = ((bps > 8 ? width * 2 : width) + 15) * spp;
784
265k
    buffer = gs_alloc_bytes(mem, bsize, "image buffer");
785
265k
    if (buffer == 0) {
786
0
        code = gs_error_VMerror;
787
0
        goto fail;
788
0
    }
789
265k
    penum->bps = bps;
790
265k
    penum->unpack_bps = bps;
791
265k
    penum->log2_xbytes = log2_xbytes;
792
265k
    penum->spp = spp;
793
265k
    switch (format) {
794
265k
    case gs_image_format_chunky:
795
265k
        nplanes = 1;
796
265k
        spread = 1 << log2_xbytes;
797
265k
        break;
798
0
    case gs_image_format_component_planar:
799
0
        nplanes = spp;
800
0
        spread = spp << log2_xbytes;
801
0
        break;
802
0
    case gs_image_format_bit_planar:
803
0
        nplanes = spp * bps;
804
0
        spread = spp << log2_xbytes;
805
0
        break;
806
0
    default:
807
        /* No other cases are possible (checked by gx_image_enum_alloc). */
808
0
        return_error(gs_error_Fatal);
809
265k
    }
810
265k
    penum->num_planes = nplanes;
811
265k
    penum->spread = spread;
812
    /*
813
     * If we're asked to interpolate in a partial image, we have to
814
     * assume that the client either really only is interested in
815
     * the given sub-image, or else is constructing output out of
816
     * overlapping pieces.
817
     */
818
265k
    penum->interpolate = force_interpolation ? interp_force : pim->Interpolate ? interp_on : interp_off;
819
265k
    penum->x_extent = x_extent;
820
265k
    penum->y_extent = y_extent;
821
265k
    penum->posture =
822
265k
        ((x_extent.y | y_extent.x) == 0 ? image_portrait :
823
265k
         (x_extent.x | y_extent.y) == 0 ? image_landscape :
824
285
         image_skewed);
825
265k
    penum->pgs = pgs;
826
265k
    if (pgs != NULL)
827
265k
        penum->pgs_level = pgs->level;
828
265k
    penum->pcs = pcs;
829
265k
    rc_increment_cs(pcs); /* Grab a ref (will decrement in gx_image1_end_image() */
830
265k
    penum->memory = mem;
831
265k
    penum->buffer = buffer;
832
265k
    penum->buffer_size = bsize;
833
265k
    penum->line = NULL;
834
265k
    penum->icc_link = NULL;
835
265k
    penum->color_cache = NULL;
836
265k
    penum->ht_buffer = NULL;
837
265k
    penum->thresh_buffer = NULL;
838
265k
    penum->use_cie_range = false;
839
265k
    penum->line_size = 0;
840
265k
    penum->use_rop = lop != (masked ? rop3_T : rop3_S);
841
#ifdef DEBUG
842
    if (gs_debug_c('*')) {
843
        if (penum->use_rop)
844
            dmprintf1(mem, "[%03x]", lop);
845
        dmprintf5(mem, "%c%d%c%dx%d ",
846
                 (masked ? (color_is_pure(pdcolor) ? 'm' : 'h') : 'i'),
847
                 bps,
848
                 (penum->posture == image_portrait ? ' ' :
849
                  penum->posture == image_landscape ? 'L' : 'T'),
850
                 width, height);
851
    }
852
#endif
853
265k
    penum->slow_loop = 0;
854
265k
    if (pcpath == 0) {
855
212k
        (*dev_proc(dev, get_clipping_box)) (dev, &obox);
856
212k
        cbox = obox;
857
212k
        penum->clip_image = 0;
858
212k
    } else
859
53.9k
        penum->clip_image =
860
53.9k
            (gx_cpath_outer_box(pcpath, &obox) |        /* not || */
861
53.9k
             gx_cpath_inner_box(pcpath, &cbox) ?
862
53.6k
             0 : image_clip_region);
863
265k
    penum->clip_outer = obox;
864
265k
    penum->clip_inner = cbox;
865
265k
    penum->log_op = rop3_T;     /* rop device takes care of this */
866
265k
    penum->clip_dev = 0;        /* in case we bail out */
867
265k
    penum->rop_dev = 0;         /* ditto */
868
265k
    penum->scaler = 0;          /* ditto */
869
    /*
870
     * If all four extrema of the image fall within the clipping
871
     * rectangle, clipping is never required.  When making this check,
872
     * we must carefully take into account the fact that we only care
873
     * about pixel centers.
874
     */
875
265k
    {
876
265k
        fixed
877
265k
            epx = min(row_extent.x, 0) + min(col_extent.x, 0),
878
265k
            eqx = max(row_extent.x, 0) + max(col_extent.x, 0),
879
265k
            epy = min(row_extent.y, 0) + min(col_extent.y, 0),
880
265k
            eqy = max(row_extent.y, 0) + max(col_extent.y, 0);
881
882
265k
        {
883
265k
            int hwx, hwy;
884
885
265k
            switch (penum->posture) {
886
265k
                case image_portrait:
887
265k
                    hwx = width, hwy = height;
888
265k
                    break;
889
33
                case image_landscape:
890
33
                    hwx = height, hwy = width;
891
33
                    break;
892
252
                default:
893
252
                    hwx = hwy = 0;
894
265k
            }
895
            /*
896
             * If the image is only 1 sample wide or high,
897
             * and is less than 1 device pixel wide or high,
898
             * move it slightly so that it covers pixel centers.
899
             * This is a hack to work around a bug in some old
900
             * versions of TeX/dvips, which use 1-bit-high images
901
             * to draw horizontal and vertical lines without
902
             * positioning them properly.
903
             */
904
265k
            if (hwx == 1 && eqx - epx < fixed_1) {
905
0
                fixed diff =
906
0
                arith_rshift_1(row_extent.x + col_extent.x);
907
908
0
                mtx = (((mtx + diff) | fixed_half) & -fixed_half) - diff;
909
0
            }
910
265k
            if (hwy == 1 && eqy - epy < fixed_1) {
911
0
                fixed diff =
912
0
                arith_rshift_1(row_extent.y + col_extent.y);
913
914
0
                mty = (((mty + diff) | fixed_half) & -fixed_half) - diff;
915
0
            }
916
265k
        }
917
265k
        if_debug5m('b', mem, "[b]Image: %sspp=%d, bps=%d, mt=(%g,%g)\n",
918
265k
                   (masked? "masked, " : ""), spp, bps,
919
265k
                   fixed2float(mtx), fixed2float(mty));
920
265k
        if_debug9m('b', mem,
921
265k
                   "[b]   cbox=(%g,%g),(%g,%g), obox=(%g,%g),(%g,%g), clip_image=0x%x\n",
922
265k
                   fixed2float(cbox.p.x), fixed2float(cbox.p.y),
923
265k
                   fixed2float(cbox.q.x), fixed2float(cbox.q.y),
924
265k
                   fixed2float(obox.p.x), fixed2float(obox.p.y),
925
265k
                   fixed2float(obox.q.x), fixed2float(obox.q.y),
926
265k
                   penum->clip_image);
927
        /* These DDAs enumerate the starting position of each source pixel
928
         * row in device space. */
929
265k
        dda_init(penum->dda.row.x, mtx, col_extent.x, height);
930
265k
        dda_init(penum->dda.row.y, mty, col_extent.y, height);
931
265k
        if (dda_will_overflow(penum->dda.row.x) ||
932
265k
            dda_will_overflow(penum->dda.row.y))
933
0
        {
934
0
            code = gs_error_rangecheck;
935
0
            goto fail;
936
0
        }
937
265k
        if (penum->posture == image_portrait) {
938
265k
            penum->dst_width = row_extent.x;
939
265k
            penum->dst_height = col_extent.y;
940
265k
        } else {
941
285
            penum->dst_width = col_extent.x;
942
285
            penum->dst_height = row_extent.y;
943
285
        }
944
        /* For gs_image_class_0_interpolate. */
945
265k
        penum->yi0 = fixed2int_pixround_perfect(dda_current(penum->dda.row.y)); /* For gs_image_class_0_interpolate. */
946
265k
        if (penum->rect.y) {
947
87.3k
            int y = penum->rect.y;
948
949
11.8M
            while (y--) {
950
11.7M
                dda_next(penum->dda.row.x);
951
11.7M
                dda_next(penum->dda.row.y);
952
11.7M
            }
953
87.3k
        }
954
265k
        penum->cur.x = penum->prev.x = dda_current(penum->dda.row.x);
955
265k
        penum->cur.y = penum->prev.y = dda_current(penum->dda.row.y);
956
        /* These DDAs enumerate the starting positions of each row of our
957
         * source pixel data, in the subrectangle ('strip') that we are
958
         * actually rendering. */
959
265k
        dda_init(penum->dda.strip.x, penum->cur.x, row_extent.x, width);
960
265k
        dda_init(penum->dda.strip.y, penum->cur.y, row_extent.y, width);
961
265k
        if (dda_will_overflow(penum->dda.strip.x) ||
962
265k
            dda_will_overflow(penum->dda.strip.y))
963
0
        {
964
0
            code = gs_error_rangecheck;
965
0
            goto fail;
966
0
        }
967
265k
        if (penum->rect.x) {
968
489
            dda_advance(penum->dda.strip.x, penum->rect.x);
969
489
            dda_advance(penum->dda.strip.y, penum->rect.x);
970
489
        }
971
265k
        {
972
265k
            fixed ox = dda_current(penum->dda.strip.x);
973
265k
            fixed oy = dda_current(penum->dda.strip.y);
974
975
265k
            if (!penum->clip_image)     /* i.e., not clip region */
976
265k
                penum->clip_image =
977
265k
                    (fixed_pixround(ox + epx) < fixed_pixround(cbox.p.x) ?
978
264k
                     image_clip_xmin : 0) +
979
265k
                    (fixed_pixround(ox + eqx) >= fixed_pixround(cbox.q.x) ?
980
190k
                     image_clip_xmax : 0) +
981
265k
                    (fixed_pixround(oy + epy) < fixed_pixround(cbox.p.y) ?
982
171k
                     image_clip_ymin : 0) +
983
265k
                    (fixed_pixround(oy + eqy) >= fixed_pixround(cbox.q.y) ?
984
248k
                     image_clip_ymax : 0);
985
265k
        }
986
265k
    }
987
0
    penum->y = 0;
988
265k
    penum->used.x = 0;
989
265k
    penum->used.y = 0;
990
265k
    if (penum->clip_image && pcpath) {  /* Set up the clipping device. */
991
53.2k
        gx_device_clip *cdev =
992
53.2k
            gs_alloc_struct(mem, gx_device_clip,
993
53.2k
                            &st_device_clip, "image clipper");
994
995
53.2k
        if (cdev == NULL) {
996
0
            code = gs_error_VMerror;
997
0
            goto fail;
998
0
        }
999
53.2k
        gx_make_clip_device_in_heap(cdev, pcpath, dev, mem);
1000
53.2k
        penum->clip_dev = cdev;
1001
53.2k
        penum->dev = (gx_device *)cdev; /* Will restore this in a mo. Hacky! */
1002
53.2k
    }
1003
265k
    if (penum->use_rop) {       /* Set up the RasterOp source device. */
1004
0
        gx_device_rop_texture *rtdev;
1005
1006
0
        code = gx_alloc_rop_texture_device(&rtdev, mem,
1007
0
                                           "image RasterOp");
1008
0
        if (code < 0)
1009
0
            goto fail;
1010
        /* The 'target' must not be NULL for gx_make_rop_texture_device */
1011
0
        if (!penum->clip_dev && !dev)
1012
0
            return_error(gs_error_undefined);
1013
1014
0
        gx_make_rop_texture_device(rtdev,
1015
0
                                   (penum->clip_dev != 0 ?
1016
0
                                    (gx_device *) penum->clip_dev :
1017
0
                                    dev), lop, pdcolor);
1018
0
        gx_device_retain((gx_device *)rtdev, true);
1019
0
        penum->rop_dev = rtdev;
1020
0
        penum->dev = (gx_device *)rtdev; /* Will restore this in a mo. Hacky! */
1021
0
    }
1022
265k
    {
1023
265k
        static sample_unpack_proc_t procs[2][6] = {
1024
265k
        {   sample_unpack_1, sample_unpack_2,
1025
265k
            sample_unpack_4, sample_unpack_8,
1026
265k
            sample_unpack_12, sample_unpack_16
1027
265k
        },
1028
265k
        {   sample_unpack_1_interleaved, sample_unpack_2_interleaved,
1029
265k
            sample_unpack_4_interleaved, sample_unpack_8_interleaved,
1030
265k
            sample_unpack_12, sample_unpack_16
1031
265k
        }};
1032
265k
        int num_planes = penum->num_planes;
1033
265k
        bool interleaved = (num_planes == 1 && penum->plane_depths[0] != penum->bps);
1034
265k
        irender_proc_t render_fn = NULL;
1035
265k
        int i;
1036
1037
265k
        if (interleaved) {
1038
213k
            int num_components = penum->plane_depths[0] / penum->bps;
1039
1040
644k
            for (i = 1; i < num_components; i++) {
1041
431k
                if (decode[0] != decode[i * 2 + 0] ||
1042
431k
                    decode[1] != decode[i * 2 + 1])
1043
0
                    break;
1044
431k
            }
1045
213k
            if (i == num_components)
1046
213k
                interleaved = false; /* Use single table. */
1047
213k
        }
1048
265k
        penum->unpack = procs[interleaved][index_bps];
1049
1050
265k
        if_debug1m('b', mem, "[b]unpack=%d\n", bps);
1051
        /* Set up pixel0 for image class procedures. */
1052
265k
        penum->dda.pixel0 = penum->dda.strip;
1053
265k
        penum->skip_next_line = NULL;
1054
1.27M
        for (i = 0; i < gx_image_class_table_count; ++i) {
1055
1.27M
            code = gx_image_class_table[i](penum, &render_fn);
1056
1.27M
            if (code < 0)
1057
0
                goto fail;
1058
1059
1.27M
            if (render_fn != NULL) {
1060
265k
                penum->render = render_fn;
1061
265k
                break;
1062
265k
            }
1063
1.27M
        }
1064
265k
        penum->dev = dev; /* Restore this (in case it was changed to cdev or rtdev) */
1065
265k
        if (i == gx_image_class_table_count) {
1066
            /* No available class can handle this image. */
1067
0
            return_error(gs_error_rangecheck);
1068
0
        }
1069
265k
    }
1070
265k
    return 0;
1071
1072
6
fail:
1073
6
    gs_free_object(mem, buffer, "image buffer");
1074
6
    gs_free_object(mem, penum->clues, "gx_image_enum_begin");
1075
6
    if (penum->clip_dev != NULL) {
1076
0
        rc_decrement(penum->clip_dev, "error in gx_begin_image1");
1077
0
        penum->clip_dev = NULL;
1078
0
    }
1079
6
    gs_free_object(mem, penum->clip_dev, "image clipper");
1080
6
    rc_decrement_cs(penum->pcs, "error in gx_begin_image1");
1081
6
    penum->pcs = NULL;
1082
6
    gs_free_object(mem, penum, "gx_begin_image1");
1083
6
    return code;
1084
265k
}
1085
1086
/* If a drawing color is black or white, return 0 or 1 respectively, */
1087
/* otherwise return -1. */
1088
static int
1089
color_draws_b_w(gx_device * dev, const gx_drawing_color * pdcolor)
1090
0
{
1091
0
    if (color_is_pure(pdcolor)) {
1092
0
        gx_color_value rgb[3];
1093
1094
0
        (*dev_proc(dev, map_color_rgb)) (dev, gx_dc_pure_color(pdcolor),
1095
0
                                         rgb);
1096
0
        if (!(rgb[0] | rgb[1] | rgb[2]))
1097
0
            return 0;
1098
0
        if ((rgb[0] & rgb[1] & rgb[2]) == gx_max_color_value)
1099
0
            return 1;
1100
0
    }
1101
0
    return -1;
1102
0
}
1103
1104
1105
static void
1106
image_cache_decode(gx_image_enum *penum, byte input, byte *output, bool scale)
1107
0
{
1108
0
    float temp;
1109
1110
0
    switch ( penum->map[0].decoding ) {
1111
0
        case sd_none:
1112
0
            *output = input;
1113
0
            break;
1114
0
        case sd_lookup:
1115
0
            temp = penum->map[0].decode_lookup[input >> 4]*255.0f;
1116
0
            if (temp > 255) temp = 255;
1117
0
            if (temp < 0 ) temp = 0;
1118
0
            *output = (unsigned char) temp;
1119
0
            break;
1120
0
        case sd_compute:
1121
0
            temp = penum->map[0].decode_base +
1122
0
                (float) input * penum->map[0].decode_factor;
1123
0
            if (scale) {
1124
0
                temp = temp * 255.0;
1125
0
            }
1126
0
            if (temp > 255) temp = 255;
1127
0
            if (temp < 0 ) temp = 0;
1128
0
            *output = (unsigned char) temp;
1129
0
            break;
1130
0
        default:
1131
0
            *output = 0;
1132
0
            break;
1133
0
    }
1134
0
}
1135
1136
static bool
1137
decode_range_needed(gx_image_enum *penum)
1138
0
{
1139
0
    bool scale = true;
1140
1141
0
    if (penum->map[0].decoding == sd_compute) {
1142
0
        if (!(gs_color_space_is_ICC(penum->pcs) ||
1143
0
            gs_color_space_is_PSCIE(penum->pcs))) {
1144
0
            scale = false;
1145
0
        }
1146
0
    }
1147
0
    return scale;
1148
0
}
1149
1150
/* A special case where we go ahead and initialize the whole index cache with
1151
   contone.  Device colors.  If we are halftoning we will then go ahead and
1152
   apply the thresholds to the device contone values.  Only used for gray,
1153
   rgb or cmyk source colors (No DeviceN for now) */
1154
/* TO DO  Add in PSCIE decoder */
1155
int
1156
image_init_color_cache(gx_image_enum * penum, int bps, int spp)
1157
0
{
1158
0
    int num_des_comp = penum->dev->color_info.num_components;
1159
0
    int num_src_comp;
1160
0
    int num_entries = 1 << bps;
1161
0
    bool need_decode = penum->icc_setup.need_decode;
1162
0
    bool has_transfer = penum->icc_setup.has_transfer;
1163
0
    byte value;
1164
0
    bool decode_scale = true;
1165
0
    int k, kk;
1166
0
    byte psrc[4];
1167
0
    byte *temp_buffer;
1168
0
    byte *byte_ptr;
1169
0
    bool is_indexed = (gs_color_space_get_index(penum->pcs) ==
1170
0
                                            gs_color_space_index_Indexed);
1171
0
    bool free_temp_buffer = true;
1172
0
    gsicc_bufferdesc_t input_buff_desc;
1173
0
    gsicc_bufferdesc_t output_buff_desc;
1174
0
    gx_color_value conc[GX_DEVICE_COLOR_MAX_COMPONENTS];
1175
0
    int code;
1176
1177
0
    if (penum->icc_link == NULL) {
1178
0
        return gs_rethrow(-1, "ICC Link not created during image render color");
1179
0
    }
1180
0
    if (is_indexed) {
1181
0
        num_src_comp = gs_color_space_num_components(penum->pcs->base_space);
1182
0
    } else {
1183
        /* Detect case where cache is not needed.  Colors are already in the
1184
           device space.  Need to fast track this one and halftone row directly.
1185
           Detected in gximono.c by looking if penum->color_cache is NULL */
1186
0
        if (penum->icc_link->is_identity && !need_decode && !has_transfer) {
1187
0
            return 0;
1188
0
        }
1189
0
        num_src_comp = 1;
1190
0
    }
1191
    /* Allocate cache of device contone values */
1192
0
    penum->color_cache = gs_alloc_struct(penum->memory, gx_image_color_cache_t,
1193
0
                                         &st_color_cache,
1194
0
                                         "image_init_color_cache");
1195
0
    if (penum->color_cache == NULL)
1196
0
        return_error(gs_error_VMerror);
1197
1198
0
    penum->color_cache->device_contone = (byte*) gs_alloc_bytes(penum->memory,
1199
0
                   num_des_comp * num_entries * sizeof(byte), "image_init_color_cache");
1200
0
    penum->color_cache->is_transparent = (bool*) gs_alloc_bytes(penum->memory,
1201
0
             num_entries * sizeof(bool), "image_init_color_cache");
1202
0
    if (penum->color_cache->device_contone == NULL || penum->color_cache->is_transparent == NULL) {
1203
0
        gs_free_object(penum->memory, penum->color_cache->device_contone, "image_init_color_cache");
1204
0
        gs_free_object(penum->memory, penum->color_cache->is_transparent, "image_init_color_cache");
1205
0
        gs_free_object(penum->memory, penum->color_cache, "image_init_color_cache");
1206
0
        penum->color_cache = NULL;
1207
0
        return_error(gs_error_VMerror);
1208
0
    }
1209
    /* Initialize */
1210
0
    memset(penum->color_cache->is_transparent,0,num_entries * sizeof(bool));
1211
    /* Depending upon if we need decode and ICC CM, fill the cache a couple
1212
       different ways. If the link is the identity, then we don't need to do any
1213
       color conversions except for potentially a decode.  This is written in
1214
       the manner shown below so that the common case of no decode and indexed
1215
       image with a look-up-table uses the table data directly or does as many
1216
       operations with memcpy as we can */
1217
    /* Need to check the decode output range so we know how we need to scale.
1218
       We want 8 bit output */
1219
0
    if (need_decode) {
1220
0
        decode_scale = decode_range_needed(penum);
1221
0
    }
1222
0
    if (penum->icc_link->is_identity) {
1223
        /* No CM needed.  */
1224
0
        if (need_decode || has_transfer) {
1225
            /* Slower case.  This could be sped up later to avoid the tests
1226
               within the loop by use of specialized loops.  */
1227
0
            for (k = 0; k < num_entries; k++) {
1228
                /* Data is in k */
1229
0
                if (need_decode) {
1230
0
                    image_cache_decode(penum, k, &value, decode_scale);
1231
0
                } else {
1232
0
                    value = k;
1233
0
                }
1234
                /* Data is in value */
1235
0
                if (is_indexed) {
1236
0
                    gs_cspace_indexed_lookup_bytes(penum->pcs, value, psrc);
1237
0
                } else {
1238
0
                    psrc[0] = value;
1239
0
                }
1240
                /* Data is in psrc */
1241
                /* These silly transforms need to go away. ToDo. */
1242
0
                if (has_transfer) {
1243
0
                    for (kk = 0; kk < num_des_comp; kk++) {
1244
0
                        conc[kk] = gx_color_value_from_byte(psrc[kk]);
1245
0
                    }
1246
0
                    cmap_transfer(&(conc[0]), penum->pgs, penum->dev);
1247
0
                    for (kk = 0; kk < num_des_comp; kk++) {
1248
0
                        psrc[kk] = gx_color_value_to_byte(conc[kk]);
1249
0
                    }
1250
0
                }
1251
0
                memcpy(&(penum->color_cache->device_contone[k * num_des_comp]),
1252
0
                               psrc, num_des_comp);
1253
0
            }
1254
0
        } else {
1255
            /* Indexing only.  No CM, decode or transfer functions. */
1256
0
            for (k = 0; k < num_entries; k++) {
1257
0
                gs_cspace_indexed_lookup_bytes(penum->pcs, (float)k, psrc);
1258
0
                memcpy(&(penum->color_cache->device_contone[k * num_des_comp]),
1259
0
                           psrc, num_des_comp);
1260
0
            }
1261
0
        }
1262
0
    } else {
1263
        /* Need CM */
1264
        /* We need to worry about if the source is indexed and if we need
1265
           to decode first.  Then we can apply CM. Create a temp buffer in
1266
           the source space and then transform it with one call */
1267
0
        temp_buffer = (byte*) gs_alloc_bytes(penum->memory,
1268
0
                                             (size_t)num_entries * num_src_comp,
1269
0
                                             "image_init_color_cache");
1270
0
        if (temp_buffer == NULL)
1271
0
            return_error(gs_error_VMerror);
1272
1273
0
        if (need_decode) {
1274
0
            if (is_indexed) {
1275
                /* Decode and lookup in index */
1276
0
                for (k = 0; k < num_entries; k++) {
1277
0
                    image_cache_decode(penum, k, &value, decode_scale);
1278
0
                    gs_cspace_indexed_lookup_bytes(penum->pcs, value, psrc);
1279
0
                    memcpy(&(temp_buffer[k * num_src_comp]), psrc, num_src_comp);
1280
0
                }
1281
0
            } else {
1282
                /* Decode only */
1283
0
                for (k = 0; k < num_entries; k++) {
1284
0
                    image_cache_decode(penum, k, &(temp_buffer[k]), decode_scale);
1285
0
                }
1286
0
            }
1287
0
        } else {
1288
            /* No Decode */
1289
0
            if (is_indexed) {
1290
                /* If index uses a num_entries sized table then just use its pointer */
1291
0
                if (penum->pcs->params.indexed.use_proc ||
1292
0
                    penum->pcs->params.indexed.hival < (num_entries - 1)) {
1293
                    /* Have to do the slow way */
1294
0
                    for (k = 0; k <= penum->pcs->params.indexed.hival; k++) {
1295
0
                        gs_cspace_indexed_lookup_bytes(penum->pcs, (float)k, psrc);
1296
0
                        memcpy(&(temp_buffer[k * num_src_comp]), psrc, num_src_comp);
1297
0
                    }
1298
                    /* just use psrc results from converting 'hival' to fill the remaining slots */
1299
0
                    for (; k < num_entries; k++) {
1300
0
                        memcpy(&(temp_buffer[k * num_src_comp]), psrc, num_src_comp);
1301
0
                    }
1302
0
                } else {
1303
                    /* Use the index table directly. */
1304
0
                    gs_free_object(penum->memory, temp_buffer, "image_init_color_cache");
1305
0
                    free_temp_buffer = false;
1306
0
                    temp_buffer = (byte *)(penum->pcs->params.indexed.lookup.table.data);
1307
0
                }
1308
0
            } else {
1309
                /* CM only */
1310
0
                for (k = 0; k < num_entries; k++) {
1311
0
                    temp_buffer[k] = k;
1312
0
                }
1313
0
            }
1314
0
        }
1315
        /* Set up the buffer descriptors. */
1316
0
        gsicc_init_buffer(&input_buff_desc, num_src_comp, 1, false, false, false,
1317
0
                          0, num_entries * num_src_comp, 1, num_entries);
1318
0
        gsicc_init_buffer(&output_buff_desc, num_des_comp, 1, false, false, false,
1319
0
                          0, num_entries * num_des_comp,
1320
0
                      1, num_entries);
1321
0
        code = (penum->icc_link->procs.map_buffer)(penum->dev, penum->icc_link,
1322
0
                                            &input_buff_desc, &output_buff_desc,
1323
0
                                            (void*) temp_buffer,
1324
0
                                            (void*) penum->color_cache->device_contone);
1325
0
        if (code < 0)
1326
0
            return gs_rethrow(code, "Failure to map color buffer");
1327
1328
        /* Check if we need to apply any transfer functions.  If so then do it now */
1329
0
        if (has_transfer) {
1330
0
            for (k = 0; k < num_entries; k++) {
1331
0
                byte_ptr =
1332
0
                    &(penum->color_cache->device_contone[k * num_des_comp]);
1333
0
                for (kk = 0; kk < num_des_comp; kk++) {
1334
0
                    conc[kk] = gx_color_value_from_byte(byte_ptr[kk]);
1335
0
                }
1336
0
                cmap_transfer(&(conc[0]), penum->pgs, penum->dev);
1337
0
                for (kk = 0; kk < num_des_comp; kk++) {
1338
0
                    byte_ptr[kk] = gx_color_value_to_byte(conc[kk]);
1339
0
                }
1340
0
            }
1341
0
        }
1342
0
        if (free_temp_buffer)
1343
0
            gs_free_object(penum->memory, temp_buffer, "image_init_color_cache");
1344
0
    }
1345
0
    return 0;
1346
0
}
1347
1348
/* Export this for use by image_render_ functions */
1349
void
1350
image_init_clues(gx_image_enum * penum, int bps, int spp)
1351
104k
{
1352
    /* Initialize the color table */
1353
104k
#define ictype(i)\
1354
104k
  penum->clues[i].dev_color.type
1355
1356
104k
    switch ((spp == 1 ? bps : 8)) {
1357
103k
        case 8:         /* includes all color images */
1358
103k
            {
1359
103k
                register gx_image_clue *pcht = &penum->clues[0];
1360
103k
                register int n = 64;    /* 8 bits means 256 clues, do   */
1361
                                        /* 4 at a time for efficiency   */
1362
6.60M
                do {
1363
6.60M
                    pcht[0].dev_color.type =
1364
6.60M
                        pcht[1].dev_color.type =
1365
6.60M
                        pcht[2].dev_color.type =
1366
6.60M
                        pcht[3].dev_color.type =
1367
6.60M
                        gx_dc_type_none;
1368
6.60M
                    pcht[0].key = pcht[1].key =
1369
6.60M
                        pcht[2].key = pcht[3].key = 0;
1370
6.60M
                    pcht += 4;
1371
6.60M
                }
1372
6.60M
                while (--n > 0);
1373
103k
                penum->clues[0].key = 1;        /* guarantee no hit */
1374
103k
                break;
1375
0
            }
1376
42
        case 4:
1377
42
            ictype(17) = ictype(2 * 17) = ictype(3 * 17) =
1378
42
                ictype(4 * 17) = ictype(6 * 17) = ictype(7 * 17) =
1379
42
                ictype(8 * 17) = ictype(9 * 17) = ictype(11 * 17) =
1380
42
                ictype(12 * 17) = ictype(13 * 17) = ictype(14 * 17) =
1381
42
                gx_dc_type_none;
1382
            /* falls through */
1383
48
        case 2:
1384
48
            ictype(5 * 17) = ictype(10 * 17) = gx_dc_type_none;
1385
104k
#undef ictype
1386
104k
    }
1387
104k
}
1388
1389
/* Initialize the color mapping tables for a non-mask image. */
1390
static int
1391
image_init_colors(gx_image_enum * penum, int bps, int spp,
1392
                  gs_image_format_t format, const float *decode /*[spp*2] */ ,
1393
                  const gs_gstate * pgs, gx_device * dev,
1394
                  const gs_color_space * pcs, bool * pdcb)
1395
265k
{
1396
265k
    int ci, decode_type, code;
1397
265k
    static const float default_decode[] = {
1398
265k
        0.0, 1.0, 0.0, 1.0, 0.0, 1.0, 0.0, 1.0, 0.0, 1.0
1399
265k
    };
1400
1401
    /* Clues are only used with image_mono_render */
1402
265k
    if (spp == 1) {
1403
52.6k
        image_init_clues(penum, bps, spp);
1404
52.6k
    }
1405
265k
    decode_type = 3; /* 0=custom, 1=identity, 2=inverted, 3=impossible */
1406
744k
    for (ci = 0; ci < spp; ci +=2 ) {
1407
478k
        decode_type &= (decode[ci] == 0. && decode[ci + 1] == 1.) |
1408
478k
                       (decode[ci] == 1. && decode[ci + 1] == 0.) << 1;
1409
478k
    }
1410
1411
    /* Initialize the maps from samples to intensities. */
1412
963k
    for (ci = 0; ci < spp; ci++) {
1413
697k
        sample_map *pmap = &penum->map[ci];
1414
1415
        /* If the decoding is [0 1] or [1 0], we can fold it */
1416
        /* into the expansion of the sample values; */
1417
        /* otherwise, we have to use the floating point method. */
1418
1419
697k
        const float *this_decode = &decode[ci * 2];
1420
697k
        const float *map_decode;        /* decoding used to */
1421
                                        /* construct the expansion map */
1422
697k
        const float *real_decode;       /* decoding for expanded samples */
1423
1424
697k
        map_decode = real_decode = this_decode;
1425
697k
        if (!(decode_type & 1)) {
1426
218
            if ((decode_type & 2) && bps <= 8) {
1427
4
                real_decode = default_decode;
1428
214
            } else {
1429
214
                *pdcb = false;
1430
214
                map_decode = default_decode;
1431
214
            }
1432
218
        }
1433
697k
        if (bps > 2 || format != gs_image_format_chunky) {
1434
696k
            if (bps <= 8)
1435
696k
                image_init_map(&pmap->table.lookup8[0], 1 << bps,
1436
696k
                               map_decode);
1437
696k
        } else {                /* The map index encompasses more than one pixel. */
1438
1.02k
            byte map[4];
1439
1.02k
            register int i;
1440
1441
1.02k
            image_init_map(&map[0], 1 << bps, map_decode);
1442
1.02k
            switch (bps) {
1443
1.02k
                case 1:
1444
1.02k
                    {
1445
1.02k
                        register bits32 *p = &pmap->table.lookup4x1to32[0];
1446
1447
1.02k
                        if (map[0] == 0 && map[1] == 0xff)
1448
1.02k
                            memcpy((byte *) p, lookup4x1to32_identity, 16 * 4);
1449
0
                        else if (map[0] == 0xff && map[1] == 0)
1450
0
                            memcpy((byte *) p, lookup4x1to32_inverted, 16 * 4);
1451
0
                        else
1452
0
                            for (i = 0; i < 16; i++, p++)
1453
0
                                ((byte *) p)[0] = map[i >> 3],
1454
0
                                    ((byte *) p)[1] = map[(i >> 2) & 1],
1455
0
                                    ((byte *) p)[2] = map[(i >> 1) & 1],
1456
0
                                    ((byte *) p)[3] = map[i & 1];
1457
1.02k
                    }
1458
1.02k
                    break;
1459
3
                case 2:
1460
3
                    {
1461
3
                        register bits16 *p = &pmap->table.lookup2x2to16[0];
1462
1463
51
                        for (i = 0; i < 16; i++, p++)
1464
48
                            ((byte *) p)[0] = map[i >> 2],
1465
48
                                ((byte *) p)[1] = map[i & 3];
1466
3
                    }
1467
3
                    break;
1468
1.02k
            }
1469
1.02k
        }
1470
697k
        pmap->decode_base /* = decode_lookup[0] */  = real_decode[0];
1471
697k
        pmap->decode_factor =
1472
697k
            (real_decode[1] - real_decode[0]) /
1473
697k
            (bps <= 8 ? 255.0 : (float)frac_1);
1474
697k
        pmap->decode_max /* = decode_lookup[15] */  = real_decode[1];
1475
697k
        if (decode_type) {
1476
697k
            pmap->decoding = sd_none;
1477
697k
            pmap->inverted = map_decode[0] != 0;
1478
697k
        } else if (bps <= 4) {
1479
3
            int step = 15 / ((1 << bps) - 1);
1480
3
            int i;
1481
1482
3
            pmap->decoding = sd_lookup;
1483
9
            for (i = 15 - step; i > 0; i -= step)
1484
6
                pmap->decode_lookup[i] = pmap->decode_base +
1485
6
                    i * (255.0 / 15) * pmap->decode_factor;
1486
3
            pmap->inverted = 0;
1487
211
        } else {
1488
211
            pmap->decoding = sd_compute;
1489
211
            pmap->inverted = 0;
1490
211
        }
1491
697k
        if (spp == 1) {         /* and ci == 0 *//* Pre-map entries 0 and 255. */
1492
52.6k
            gs_client_color cc;
1493
1494
            /* Image clues are used in this case */
1495
52.6k
            cc.paint.values[0] = real_decode[0];
1496
52.6k
            code = (*pcs->type->remap_color) (&cc, pcs, penum->icolor0,
1497
52.6k
                                       pgs, dev, gs_color_select_source);
1498
52.6k
            if (code < 0)
1499
0
                return code;
1500
52.6k
            cc.paint.values[0] = real_decode[1];
1501
52.6k
            code = (*pcs->type->remap_color) (&cc, pcs, penum->icolor1,
1502
52.6k
                                       pgs, dev, gs_color_select_source);
1503
52.6k
            if (code < 0)
1504
0
                return code;
1505
52.6k
        }
1506
697k
    }
1507
265k
    return 0;
1508
265k
}
1509
/* Construct a mapping table for sample values. */
1510
/* map_size is 2, 4, 16, or 256.  Note that 255 % (map_size - 1) == 0, */
1511
/* so the division 0xffffL / (map_size - 1) is always exact. */
1512
void
1513
image_init_map(byte * map, int map_size, const float *decode)
1514
697k
{
1515
697k
    float min_v = decode[0];
1516
697k
    float diff_v = decode[1] - min_v;
1517
1518
697k
    if (diff_v == 1 || diff_v == -1) {  /* We can do the stepping with integers, without overflow. */
1519
697k
        byte *limit = map + map_size;
1520
697k
        uint value = (uint)(min_v * 0xffffL);
1521
697k
        int diff = (int)(diff_v * (0xffffL / (map_size - 1)));
1522
1523
179M
        for (; map != limit; map++, value += diff)
1524
178M
            *map = value >> 8;
1525
697k
    } else {                    /* Step in floating point, with clamping. */
1526
0
        int i;
1527
1528
0
        for (i = 0; i < map_size; ++i) {
1529
0
            int value = (int)((min_v + diff_v * i / (map_size - 1)) * 255);
1530
1531
0
            map[i] = (value < 0 ? 0 : value > 255 ? 255 : value);
1532
0
        }
1533
0
    }
1534
697k
}
1535
1536
/*
1537
 * Scale a pair of mask_color values to match the scaling of each sample to
1538
 * a full byte, and complement and swap them if the map incorporates
1539
 * a Decode = [1 0] inversion.
1540
 */
1541
void
1542
gx_image_scale_mask_colors(gx_image_enum *penum, int component_index)
1543
42
{
1544
42
    uint scale = 255 / ((1 << penum->bps) - 1);
1545
42
    uint *values = &penum->mask_color.values[component_index * 2];
1546
42
    uint v0 = values[0] *= scale;
1547
42
    uint v1 = values[1] *= scale;
1548
1549
42
    if (penum->map[component_index].decoding == sd_none &&
1550
42
        penum->map[component_index].inverted
1551
42
        ) {
1552
0
        values[0] = 255 - v1;
1553
0
        values[1] = 255 - v0;
1554
0
    }
1555
42
}
1556
1557
/* Used to indicate for ICC procesing if we have decoding to do */
1558
bool
1559
gx_has_transfer(const gs_gstate *pgs, int num_comps)
1560
299k
{
1561
299k
    int k;
1562
1563
1.19M
    for (k = 0; k < num_comps; k++) {
1564
900k
        if (pgs->effective_transfer[k]->proc != gs_identity_transfer) {
1565
1
            return(true);
1566
1
        }
1567
900k
    }
1568
299k
    return(false);
1569
299k
}