Coverage Report

Created: 2026-04-01 07:49

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/Little-CMS/src/cmsopt.c
Line
Count
Source
1
//---------------------------------------------------------------------------------
2
//
3
//  Little Color Management System
4
//  Copyright (c) 1998-2026 Marti Maria Saguer
5
//
6
// Permission is hereby granted, free of charge, to any person obtaining
7
// a copy of this software and associated documentation files (the "Software"),
8
// to deal in the Software without restriction, including without limitation
9
// the rights to use, copy, modify, merge, publish, distribute, sublicense,
10
// and/or sell copies of the Software, and to permit persons to whom the Software
11
// is furnished to do so, subject to the following conditions:
12
//
13
// The above copyright notice and this permission notice shall be included in
14
// all copies or substantial portions of the Software.
15
//
16
// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
17
// EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO
18
// THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
19
// NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE
20
// LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION
21
// OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
22
// WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
23
//
24
//---------------------------------------------------------------------------------
25
//
26
27
#include "lcms2_internal.h"
28
29
30
//----------------------------------------------------------------------------------
31
32
// Optimization for 8 bits, Shaper-CLUT (3 inputs only)
33
typedef struct {
34
35
    cmsContext ContextID;
36
37
    const cmsInterpParams* p;   // Tetrahedrical interpolation parameters. This is a not-owned pointer.
38
39
    cmsUInt16Number rx[256], ry[256], rz[256];
40
    cmsUInt32Number X0[256], Y0[256], Z0[256];  // Precomputed nodes and offsets for 8-bit input data
41
42
43
} Prelin8Data;
44
45
46
// Generic optimization for 16 bits Shaper-CLUT-Shaper (any inputs)
47
typedef struct {
48
49
    cmsContext ContextID;
50
51
    // Number of channels
52
    cmsUInt32Number nInputs;
53
    cmsUInt32Number nOutputs;
54
55
    _cmsInterpFn16 EvalCurveIn16[MAX_INPUT_DIMENSIONS];       // The maximum number of input channels is known in advance
56
    cmsInterpParams*  ParamsCurveIn16[MAX_INPUT_DIMENSIONS];
57
58
    _cmsInterpFn16 EvalCLUT;            // The evaluator for 3D grid
59
    const cmsInterpParams* CLUTparams;  // (not-owned pointer)
60
61
62
    _cmsInterpFn16* EvalCurveOut16;       // Points to an array of curve evaluators in 16 bits (not-owned pointer)
63
    cmsInterpParams**  ParamsCurveOut16;  // Points to an array of references to interpolation params (not-owned pointer)
64
65
66
} Prelin16Data;
67
68
69
// Optimization for matrix-shaper in 8 bits. Numbers are operated in n.14 signed, tables are stored in 1.14 fixed
70
71
typedef cmsInt32Number cmsS1Fixed14Number;   // Note that this may hold more than 16 bits!
72
73
0
#define DOUBLE_TO_1FIXED14(x) ((cmsS1Fixed14Number) floor((x) * 16384.0 + 0.5))
74
75
typedef struct {
76
77
    cmsContext ContextID;
78
79
    cmsS1Fixed14Number Shaper1R[256];  // from 0..255 to 1.14  (0.0...1.0)
80
    cmsS1Fixed14Number Shaper1G[256];
81
    cmsS1Fixed14Number Shaper1B[256];
82
83
    cmsS1Fixed14Number Mat[3][3];     // n.14 to n.14 (needs a saturation after that)
84
    cmsS1Fixed14Number Off[3];
85
86
    cmsUInt16Number Shaper2R[16385];    // 1.14 to 0..255
87
    cmsUInt16Number Shaper2G[16385];
88
    cmsUInt16Number Shaper2B[16385];
89
90
} MatShaper8Data;
91
92
// Curves, optimization is shared between 8 and 16 bits
93
typedef struct {
94
95
    cmsContext ContextID;
96
97
    cmsUInt32Number nCurves;      // Number of curves
98
    cmsUInt32Number nElements;    // Elements in curves
99
    cmsUInt16Number** Curves;     // Points to a dynamically  allocated array
100
101
} Curves16Data;
102
103
104
// Simple optimizations ----------------------------------------------------------------------------------------------------------
105
106
107
// Remove an element in linked chain
108
static
109
void _RemoveElement(cmsStage** head)
110
0
{
111
0
    cmsStage* mpe = *head;
112
0
    cmsStage* next = mpe ->Next;
113
0
    *head = next;
114
0
    cmsStageFree(mpe);
115
0
}
116
117
// Remove all identities in chain. Note that pt actually is a double pointer to the element that holds the pointer.
118
static
119
cmsBool _Remove1Op(cmsPipeline* Lut, cmsStageSignature UnaryOp)
120
0
{
121
0
    cmsStage** pt = &Lut ->Elements;
122
0
    cmsBool AnyOpt = FALSE;
123
124
0
    while (*pt != NULL) {
125
126
0
        if ((*pt) ->Implements == UnaryOp) {
127
0
            _RemoveElement(pt);
128
0
            AnyOpt = TRUE;
129
0
        }
130
0
        else
131
0
            pt = &((*pt) -> Next);
132
0
    }
133
134
0
    return AnyOpt;
135
0
}
136
137
// Same, but only if two adjacent elements are found
138
static
139
cmsBool _Remove2Op(cmsPipeline* Lut, cmsStageSignature Op1, cmsStageSignature Op2)
140
0
{
141
0
    cmsStage** pt1;
142
0
    cmsStage** pt2;
143
0
    cmsBool AnyOpt = FALSE;
144
145
0
    pt1 = &Lut ->Elements;
146
0
    if (*pt1 == NULL) return AnyOpt;
147
148
0
    while (*pt1 != NULL) {
149
150
0
        pt2 = &((*pt1) -> Next);
151
0
        if (*pt2 == NULL) return AnyOpt;
152
153
0
        if ((*pt1) ->Implements == Op1 && (*pt2) ->Implements == Op2) {
154
0
            _RemoveElement(pt2);
155
0
            _RemoveElement(pt1);
156
0
            AnyOpt = TRUE;
157
0
        }
158
0
        else
159
0
            pt1 = &((*pt1) -> Next);
160
0
    }
161
162
0
    return AnyOpt;
163
0
}
164
165
166
static
167
cmsBool CloseEnoughFloat(cmsFloat64Number a, cmsFloat64Number b)
168
0
{
169
0
       return fabs(b - a) < 0.00001f;
170
0
}
171
172
static
173
cmsBool  isFloatMatrixIdentity(const cmsMAT3* a)
174
0
{
175
0
       cmsMAT3 Identity;
176
0
       int i, j;
177
178
0
       _cmsMAT3identity(&Identity);
179
180
0
       for (i = 0; i < 3; i++)
181
0
              for (j = 0; j < 3; j++)
182
0
                     if (!CloseEnoughFloat(a->v[i].n[j], Identity.v[i].n[j])) return FALSE;
183
184
0
       return TRUE;
185
0
}
186
187
// if two adjacent matrices are found, multiply them. 
188
static
189
cmsBool _MultiplyMatrix(cmsPipeline* Lut)
190
0
{
191
0
       cmsStage** pt1;
192
0
       cmsStage** pt2;
193
0
       cmsStage*  chain;
194
0
       cmsBool AnyOpt = FALSE;
195
196
0
       pt1 = &Lut->Elements;
197
0
       if (*pt1 == NULL) return AnyOpt;
198
199
0
       while (*pt1 != NULL) {
200
201
0
              pt2 = &((*pt1)->Next);
202
0
              if (*pt2 == NULL) return AnyOpt;
203
204
0
              if ((*pt1)->Implements == cmsSigMatrixElemType && (*pt2)->Implements == cmsSigMatrixElemType) {
205
206
                     // Get both matrices
207
0
                     _cmsStageMatrixData* m1 = (_cmsStageMatrixData*) cmsStageData(*pt1);
208
0
                     _cmsStageMatrixData* m2 = (_cmsStageMatrixData*) cmsStageData(*pt2);
209
0
                     cmsMAT3 res;
210
                     
211
                     // Input offset and output offset should be zero to use this optimization
212
0
                     if (m1->Offset != NULL || m2 ->Offset != NULL || 
213
0
                            cmsStageInputChannels(*pt1) != 3 || cmsStageOutputChannels(*pt1) != 3 ||                            
214
0
                            cmsStageInputChannels(*pt2) != 3 || cmsStageOutputChannels(*pt2) != 3)
215
0
                            return FALSE;
216
217
                     // Multiply both matrices to get the result
218
0
                     _cmsMAT3per(&res, (cmsMAT3*)m2->Double, (cmsMAT3*)m1->Double);
219
220
                     // Get the next in chain after the matrices
221
0
                     chain = (*pt2)->Next;
222
223
                     // Remove both matrices
224
0
                     _RemoveElement(pt2);
225
0
                     _RemoveElement(pt1);
226
227
                     // Now what if the result is a plain identity?                     
228
0
                     if (!isFloatMatrixIdentity(&res)) {
229
230
                            // We can not get rid of full matrix                            
231
0
                            cmsStage* Multmat = cmsStageAllocMatrix(Lut->ContextID, 3, 3, (const cmsFloat64Number*) &res, NULL);
232
0
                            if (Multmat == NULL) return FALSE;  // Should never happen
233
234
                            // Recover the chain
235
0
                            Multmat->Next = chain;
236
0
                            *pt1 = Multmat;
237
0
                     }
238
239
0
                     AnyOpt = TRUE;
240
0
              }
241
0
              else
242
0
                     pt1 = &((*pt1)->Next);
243
0
       }
244
245
0
       return AnyOpt;
246
0
}
247
248
249
// Preoptimize just gets rif of no-ops coming paired. Conversion from v2 to v4 followed
250
// by a v4 to v2 and vice-versa. The elements are then discarded.
251
static
252
cmsBool PreOptimize(cmsPipeline* Lut)
253
0
{
254
0
    cmsBool AnyOpt = FALSE, Opt;
255
256
0
    do {
257
258
0
        Opt = FALSE;
259
260
        // Remove all identities
261
0
        Opt |= _Remove1Op(Lut, cmsSigIdentityElemType);
262
263
        // Remove XYZ2Lab followed by Lab2XYZ
264
0
        Opt |= _Remove2Op(Lut, cmsSigXYZ2LabElemType, cmsSigLab2XYZElemType);
265
266
        // Remove Lab2XYZ followed by XYZ2Lab
267
0
        Opt |= _Remove2Op(Lut, cmsSigLab2XYZElemType, cmsSigXYZ2LabElemType);
268
269
        // Remove V4 to V2 followed by V2 to V4
270
0
        Opt |= _Remove2Op(Lut, cmsSigLabV4toV2, cmsSigLabV2toV4);
271
272
        // Remove V2 to V4 followed by V4 to V2
273
0
        Opt |= _Remove2Op(Lut, cmsSigLabV2toV4, cmsSigLabV4toV2);
274
275
        // Remove float pcs Lab conversions
276
0
        Opt |= _Remove2Op(Lut, cmsSigLab2FloatPCS, cmsSigFloatPCS2Lab);
277
278
        // Remove float pcs Lab conversions
279
0
        Opt |= _Remove2Op(Lut, cmsSigXYZ2FloatPCS, cmsSigFloatPCS2XYZ);
280
281
        // Simplify matrix. 
282
0
        Opt |= _MultiplyMatrix(Lut);
283
284
0
        if (Opt) AnyOpt = TRUE;
285
286
0
    } while (Opt);
287
288
0
    return AnyOpt;
289
0
}
290
291
static
292
void Eval16nop1D(CMSREGISTER const cmsUInt16Number Input[],
293
                 CMSREGISTER cmsUInt16Number Output[],
294
                 CMSREGISTER const struct _cms_interp_struc* p)
295
0
{
296
0
    Output[0] = Input[0];
297
298
0
    cmsUNUSED_PARAMETER(p);
299
0
}
300
301
static
302
void PrelinEval16(CMSREGISTER const cmsUInt16Number Input[],
303
                  CMSREGISTER cmsUInt16Number Output[],
304
                  CMSREGISTER const void* D)
305
0
{
306
0
    Prelin16Data* p16 = (Prelin16Data*) D;
307
0
    cmsUInt16Number  StageABC[MAX_INPUT_DIMENSIONS];
308
0
    cmsUInt16Number  StageDEF[cmsMAXCHANNELS];
309
0
    cmsUInt32Number i;
310
311
0
    for (i=0; i < p16 ->nInputs; i++) {
312
313
0
        p16 ->EvalCurveIn16[i](&Input[i], &StageABC[i], p16 ->ParamsCurveIn16[i]);
314
0
    }
315
316
0
    p16 ->EvalCLUT(StageABC, StageDEF, p16 ->CLUTparams);
317
318
0
    for (i=0; i < p16 ->nOutputs; i++) {
319
320
0
        p16 ->EvalCurveOut16[i](&StageDEF[i], &Output[i], p16 ->ParamsCurveOut16[i]);
321
0
    }
322
0
}
323
324
325
static
326
void PrelinOpt16free(cmsContext ContextID, void* ptr)
327
0
{
328
0
    Prelin16Data* p16 = (Prelin16Data*) ptr;
329
330
0
    _cmsFree(ContextID, p16 ->EvalCurveOut16);
331
0
    _cmsFree(ContextID, p16 ->ParamsCurveOut16);
332
333
0
    _cmsFree(ContextID, p16);
334
0
}
335
336
static
337
void* Prelin16dup(cmsContext ContextID, const void* ptr)
338
0
{
339
0
    Prelin16Data* p16 = (Prelin16Data*) ptr;
340
0
    Prelin16Data* Duped = (Prelin16Data*) _cmsDupMem(ContextID, p16, sizeof(Prelin16Data));
341
342
0
    if (Duped == NULL) return NULL;
343
344
0
    Duped->EvalCurveOut16 = (_cmsInterpFn16*) _cmsDupMem(ContextID, p16->EvalCurveOut16, p16->nOutputs * sizeof(_cmsInterpFn16));
345
0
    Duped->ParamsCurveOut16 = (cmsInterpParams**)_cmsDupMem(ContextID, p16->ParamsCurveOut16, p16->nOutputs * sizeof(cmsInterpParams*));
346
347
0
    return Duped;
348
0
}
349
350
351
static
352
Prelin16Data* PrelinOpt16alloc(cmsContext ContextID,
353
                               const cmsInterpParams* ColorMap,
354
                               cmsUInt32Number nInputs, cmsToneCurve** In,
355
                               cmsUInt32Number nOutputs, cmsToneCurve** Out )
356
0
{
357
0
    cmsUInt32Number i;
358
0
    Prelin16Data* p16 = (Prelin16Data*)_cmsMallocZero(ContextID, sizeof(Prelin16Data));
359
0
    if (p16 == NULL) return NULL;
360
361
0
    p16 ->nInputs = nInputs;
362
0
    p16 ->nOutputs = nOutputs;
363
364
365
0
    for (i=0; i < nInputs; i++) {
366
367
0
        if (In == NULL) {
368
0
            p16 -> ParamsCurveIn16[i] = NULL;
369
0
            p16 -> EvalCurveIn16[i] = Eval16nop1D;
370
371
0
        }
372
0
        else {
373
0
            p16 -> ParamsCurveIn16[i] = In[i] ->InterpParams;
374
0
            p16 -> EvalCurveIn16[i] = p16 ->ParamsCurveIn16[i]->Interpolation.Lerp16;
375
0
        }
376
0
    }
377
378
0
    p16 ->CLUTparams = ColorMap;
379
0
    p16 ->EvalCLUT   = ColorMap ->Interpolation.Lerp16;
380
381
382
0
    p16 -> EvalCurveOut16 = (_cmsInterpFn16*) _cmsCalloc(ContextID, nOutputs, sizeof(_cmsInterpFn16));
383
0
    if (p16->EvalCurveOut16 == NULL)
384
0
    {
385
0
        _cmsFree(ContextID, p16);
386
0
        return NULL;
387
0
    }
388
389
0
    p16 -> ParamsCurveOut16 = (cmsInterpParams**) _cmsCalloc(ContextID, nOutputs, sizeof(cmsInterpParams* ));
390
0
    if (p16->ParamsCurveOut16 == NULL)
391
0
    {
392
393
0
        _cmsFree(ContextID, p16->EvalCurveOut16);
394
0
        _cmsFree(ContextID, p16);
395
0
        return NULL;
396
0
    }
397
398
0
    for (i=0; i < nOutputs; i++) {
399
400
0
        if (Out == NULL) {
401
0
            p16 ->ParamsCurveOut16[i] = NULL;
402
0
            p16 -> EvalCurveOut16[i] = Eval16nop1D;
403
0
        }
404
0
        else {
405
406
0
            p16 ->ParamsCurveOut16[i] = Out[i] ->InterpParams;
407
0
            p16 -> EvalCurveOut16[i] = p16 ->ParamsCurveOut16[i]->Interpolation.Lerp16;
408
0
        }
409
0
    }
410
411
0
    return p16;
412
0
}
413
414
415
416
// Resampling ---------------------------------------------------------------------------------
417
418
0
#define PRELINEARIZATION_POINTS 4096
419
420
// Sampler implemented by another LUT. This is a clean way to precalculate the devicelink 3D CLUT for
421
// almost any transform. We use floating point precision and then convert from floating point to 16 bits.
422
static
423
cmsInt32Number XFormSampler16(CMSREGISTER const cmsUInt16Number In[], 
424
                              CMSREGISTER cmsUInt16Number Out[], 
425
                              CMSREGISTER void* Cargo)
426
0
{
427
0
    cmsPipeline* Lut = (cmsPipeline*) Cargo;
428
0
    cmsFloat32Number InFloat[cmsMAXCHANNELS], OutFloat[cmsMAXCHANNELS];
429
0
    cmsUInt32Number i;
430
431
0
    _cmsAssert(Lut -> InputChannels < cmsMAXCHANNELS);
432
0
    _cmsAssert(Lut -> OutputChannels < cmsMAXCHANNELS);
433
434
    // From 16 bit to floating point
435
0
    for (i=0; i < Lut ->InputChannels; i++)
436
0
        InFloat[i] = (cmsFloat32Number) (In[i] / 65535.0);
437
438
    // Evaluate in floating point
439
0
    cmsPipelineEvalFloat(InFloat, OutFloat, Lut);
440
441
    // Back to 16 bits representation
442
0
    for (i=0; i < Lut ->OutputChannels; i++)
443
0
        Out[i] = _cmsQuickSaturateWord(OutFloat[i] * 65535.0);
444
445
    // Always succeed
446
0
    return TRUE;
447
0
}
448
449
// Try to see if the curves of a given MPE are linear
450
static
451
cmsBool AllCurvesAreLinear(cmsStage* mpe)
452
0
{
453
0
    cmsToneCurve** Curves;
454
0
    cmsUInt32Number i, n;
455
456
0
    Curves = _cmsStageGetPtrToCurveSet(mpe);
457
0
    if (Curves == NULL) return FALSE;
458
459
0
    n = cmsStageOutputChannels(mpe);
460
461
0
    for (i=0; i < n; i++) {
462
0
        if (!cmsIsToneCurveLinear(Curves[i])) return FALSE;
463
0
    }
464
465
0
    return TRUE;
466
0
}
467
468
// This function replaces a specific node placed in "At" by the "Value" numbers. Its purpose
469
// is to fix scum dot on broken profiles/transforms. Works on 1, 3 and 4 channels
470
static
471
cmsBool  PatchLUT(cmsStage* CLUT, cmsUInt16Number At[], cmsUInt16Number Value[],
472
                  cmsUInt32Number nChannelsOut, cmsUInt32Number nChannelsIn)
473
0
{
474
0
    _cmsStageCLutData* Grid = (_cmsStageCLutData*) CLUT ->Data;
475
0
    cmsInterpParams* p16  = Grid ->Params;
476
0
    cmsFloat64Number px, py, pz, pw;
477
0
    int        x0, y0, z0, w0;
478
0
    int        i, index;
479
480
0
    if (CLUT -> Type != cmsSigCLutElemType) {
481
0
        cmsSignalError(CLUT->ContextID, cmsERROR_INTERNAL, "(internal) Attempt to PatchLUT on non-lut stage");
482
0
        return FALSE;
483
0
    }
484
485
0
    if (nChannelsIn == 4) {
486
487
0
        px = ((cmsFloat64Number) At[0] * (p16->Domain[0])) / 65535.0;
488
0
        py = ((cmsFloat64Number) At[1] * (p16->Domain[1])) / 65535.0;
489
0
        pz = ((cmsFloat64Number) At[2] * (p16->Domain[2])) / 65535.0;
490
0
        pw = ((cmsFloat64Number) At[3] * (p16->Domain[3])) / 65535.0;
491
492
0
        x0 = (int) floor(px);
493
0
        y0 = (int) floor(py);
494
0
        z0 = (int) floor(pz);
495
0
        w0 = (int) floor(pw);
496
497
0
        if (((px - x0) != 0) ||
498
0
            ((py - y0) != 0) ||
499
0
            ((pz - z0) != 0) ||
500
0
            ((pw - w0) != 0)) return FALSE; // Not on exact node
501
502
0
        index = (int) p16 -> opta[3] * x0 +
503
0
                (int) p16 -> opta[2] * y0 +
504
0
                (int) p16 -> opta[1] * z0 +
505
0
                (int) p16 -> opta[0] * w0;
506
0
    }
507
0
    else
508
0
        if (nChannelsIn == 3) {
509
510
0
            px = ((cmsFloat64Number) At[0] * (p16->Domain[0])) / 65535.0;
511
0
            py = ((cmsFloat64Number) At[1] * (p16->Domain[1])) / 65535.0;
512
0
            pz = ((cmsFloat64Number) At[2] * (p16->Domain[2])) / 65535.0;
513
           
514
0
            x0 = (int) floor(px);
515
0
            y0 = (int) floor(py);
516
0
            z0 = (int) floor(pz);
517
           
518
0
            if (((px - x0) != 0) ||
519
0
                ((py - y0) != 0) ||
520
0
                ((pz - z0) != 0)) return FALSE;  // Not on exact node
521
522
0
            index = (int) p16 -> opta[2] * x0 +
523
0
                    (int) p16 -> opta[1] * y0 +
524
0
                    (int) p16 -> opta[0] * z0;
525
0
        }
526
0
        else
527
0
            if (nChannelsIn == 1) {
528
529
0
                px = ((cmsFloat64Number) At[0] * (p16->Domain[0])) / 65535.0;
530
                
531
0
                x0 = (int) floor(px);
532
                
533
0
                if (((px - x0) != 0)) return FALSE; // Not on exact node
534
535
0
                index = (int) p16 -> opta[0] * x0;
536
0
            }
537
0
            else {
538
0
                cmsSignalError(CLUT->ContextID, cmsERROR_INTERNAL, "(internal) %d Channels are not supported on PatchLUT", nChannelsIn);
539
0
                return FALSE;
540
0
            }
541
542
0
    for (i = 0; i < (int) nChannelsOut; i++)
543
0
        Grid->Tab.T[index + i] = Value[i];
544
545
0
    return TRUE;
546
0
}
547
548
// Auxiliary, to see if two values are equal or very different
549
static
550
cmsBool WhitesAreEqual(cmsUInt32Number n, cmsUInt16Number White1[], cmsUInt16Number White2[] )
551
0
{
552
0
    cmsUInt32Number i;
553
554
0
    for (i=0; i < n; i++) {
555
556
0
        if (abs(White1[i] - White2[i]) > 0xf000) return TRUE;  // Values are so extremely different that the fixup should be avoided
557
0
        if (White1[i] != White2[i]) return FALSE;
558
0
    }
559
0
    return TRUE;
560
0
}
561
562
563
// Locate the node for the white point and fix it to pure white in order to avoid scum dot.
564
static
565
cmsBool FixWhiteMisalignment(cmsPipeline* Lut, cmsColorSpaceSignature EntryColorSpace, cmsColorSpaceSignature ExitColorSpace)
566
0
{
567
0
    cmsUInt16Number *WhitePointIn, *WhitePointOut;
568
0
    cmsUInt16Number  WhiteIn[cmsMAXCHANNELS], WhiteOut[cmsMAXCHANNELS], ObtainedOut[cmsMAXCHANNELS];
569
0
    cmsUInt32Number i, nOuts, nIns;
570
0
    cmsStage *PreLin = NULL, *CLUT = NULL, *PostLin = NULL;
571
572
0
    if (!_cmsEndPointsBySpace(EntryColorSpace,
573
0
        &WhitePointIn, NULL, &nIns)) return FALSE;
574
575
0
    if (!_cmsEndPointsBySpace(ExitColorSpace,
576
0
        &WhitePointOut, NULL, &nOuts)) return FALSE;
577
578
    // It needs to be fixed?
579
0
    if (Lut ->InputChannels != nIns) return FALSE;
580
0
    if (Lut ->OutputChannels != nOuts) return FALSE;
581
582
0
    cmsPipelineEval16(WhitePointIn, ObtainedOut, Lut);
583
584
0
    if (WhitesAreEqual(nOuts, WhitePointOut, ObtainedOut)) return TRUE; // whites already match
585
586
    // Check if the LUT comes as Prelin, CLUT or Postlin. We allow all combinations
587
0
    if (!cmsPipelineCheckAndRetreiveStages(Lut, 3, cmsSigCurveSetElemType, cmsSigCLutElemType, cmsSigCurveSetElemType, &PreLin, &CLUT, &PostLin))
588
0
        if (!cmsPipelineCheckAndRetreiveStages(Lut, 2, cmsSigCurveSetElemType, cmsSigCLutElemType, &PreLin, &CLUT))
589
0
            if (!cmsPipelineCheckAndRetreiveStages(Lut, 2, cmsSigCLutElemType, cmsSigCurveSetElemType, &CLUT, &PostLin))
590
0
                if (!cmsPipelineCheckAndRetreiveStages(Lut, 1, cmsSigCLutElemType, &CLUT))
591
0
                    return FALSE;
592
593
    // We need to interpolate white points of both, pre and post curves
594
0
    if (PreLin) {
595
596
0
        cmsToneCurve** Curves = _cmsStageGetPtrToCurveSet(PreLin);
597
598
0
        for (i=0; i < nIns; i++) {
599
0
            WhiteIn[i] = cmsEvalToneCurve16(Curves[i], WhitePointIn[i]);
600
0
        }
601
0
    }
602
0
    else {
603
0
        for (i=0; i < nIns; i++)
604
0
            WhiteIn[i] = WhitePointIn[i];
605
0
    }
606
607
    // If any post-linearization, we need to find how is represented white before the curve, do
608
    // a reverse interpolation in this case.
609
0
    if (PostLin) {
610
611
0
        cmsToneCurve** Curves = _cmsStageGetPtrToCurveSet(PostLin);
612
613
0
        for (i=0; i < nOuts; i++) {
614
615
0
            cmsToneCurve* InversePostLin = cmsReverseToneCurve(Curves[i]);
616
0
            if (InversePostLin == NULL) {
617
0
                WhiteOut[i] = WhitePointOut[i];    
618
619
0
            } else {
620
621
0
                WhiteOut[i] = cmsEvalToneCurve16(InversePostLin, WhitePointOut[i]);
622
0
                cmsFreeToneCurve(InversePostLin);
623
0
            }
624
0
        }
625
0
    }
626
0
    else {
627
0
        for (i=0; i < nOuts; i++)
628
0
            WhiteOut[i] = WhitePointOut[i];
629
0
    }
630
631
    // Ok, proceed with patching. May fail and we don't care if it fails
632
0
    PatchLUT(CLUT, WhiteIn, WhiteOut, nOuts, nIns);
633
634
0
    return TRUE;
635
0
}
636
637
// -----------------------------------------------------------------------------------------------------------------------------------------------
638
// This function creates simple LUT from complex ones. The generated LUT has an optional set of
639
// prelinearization curves, a CLUT of nGridPoints and optional postlinearization tables.
640
// These curves have to exist in the original LUT in order to be used in the simplified output.
641
// Caller may also use the flags to allow this feature.
642
// LUTS with all curves will be simplified to a single curve. Parametric curves are lost.
643
// This function should be used on 16-bits LUTS only, as floating point losses precision when simplified
644
// -----------------------------------------------------------------------------------------------------------------------------------------------
645
646
static
647
cmsBool OptimizeByResampling(cmsPipeline** Lut, cmsUInt32Number Intent, cmsUInt32Number* InputFormat, cmsUInt32Number* OutputFormat, cmsUInt32Number* dwFlags)
648
0
{
649
0
    cmsPipeline* Src = NULL;
650
0
    cmsPipeline* Dest = NULL;
651
0
    cmsStage* CLUT;
652
0
    cmsStage *KeepPreLin = NULL, *KeepPostLin = NULL;
653
0
    cmsUInt32Number nGridPoints;
654
0
    cmsColorSpaceSignature ColorSpace, OutputColorSpace;
655
0
    cmsStage *NewPreLin = NULL;
656
0
    cmsStage *NewPostLin = NULL;
657
0
    _cmsStageCLutData* DataCLUT;
658
0
    cmsToneCurve** DataSetIn;
659
0
    cmsToneCurve** DataSetOut;
660
0
    Prelin16Data* p16;
661
662
    // This is a lossy optimization! does not apply in floating-point cases
663
0
    if (_cmsFormatterIsFloat(*InputFormat) || _cmsFormatterIsFloat(*OutputFormat)) return FALSE;
664
665
0
    ColorSpace       = _cmsICCcolorSpace((int) T_COLORSPACE(*InputFormat));
666
0
    OutputColorSpace = _cmsICCcolorSpace((int) T_COLORSPACE(*OutputFormat));
667
668
    // Color space must be specified
669
0
    if (ColorSpace == (cmsColorSpaceSignature)0 ||
670
0
        OutputColorSpace == (cmsColorSpaceSignature)0) return FALSE;
671
       
672
    // For empty LUTs, 2 points are enough
673
0
    if (cmsPipelineStageCount(*Lut) == 0)
674
0
        nGridPoints = 2;
675
0
    else
676
0
    {
677
0
        nGridPoints = _cmsReasonableGridpointsByColorspace(ColorSpace, *dwFlags);
678
679
        // Lab16 as input cannot be optimized by a CLUT due to centering issues, thanks to Mike Chaney for discovering this.
680
0
        if (!(*dwFlags & cmsFLAGS_FORCE_CLUT) && (ColorSpace == cmsSigLabData) && (T_BYTES(*InputFormat) == 2)) return FALSE;
681
0
    }
682
683
0
    Src = *Lut;
684
685
    // Allocate an empty LUT
686
0
    Dest =  cmsPipelineAlloc(Src ->ContextID, Src ->InputChannels, Src ->OutputChannels);
687
0
    if (!Dest) return FALSE;
688
689
    // Prelinearization tables are kept unless indicated by flags
690
0
    if (*dwFlags & cmsFLAGS_CLUT_PRE_LINEARIZATION) {
691
692
        // Get a pointer to the prelinearization element
693
0
        cmsStage* PreLin = cmsPipelineGetPtrToFirstStage(Src);
694
695
        // Check if suitable
696
0
        if (PreLin && PreLin ->Type == cmsSigCurveSetElemType) {
697
698
            // Maybe this is a linear tram, so we can avoid the whole stuff
699
0
            if (!AllCurvesAreLinear(PreLin)) {
700
701
                // All seems ok, proceed.
702
0
                NewPreLin = cmsStageDup(PreLin);
703
0
                if(!cmsPipelineInsertStage(Dest, cmsAT_BEGIN, NewPreLin))
704
0
                    goto Error;
705
706
                // Remove prelinearization. Since we have duplicated the curve
707
                // in destination LUT, the sampling should be applied after this stage.
708
0
                cmsPipelineUnlinkStage(Src, cmsAT_BEGIN, &KeepPreLin);
709
0
            }
710
0
        }
711
0
    }
712
713
    // Allocate the CLUT
714
0
    CLUT = cmsStageAllocCLut16bit(Src ->ContextID, nGridPoints, Src ->InputChannels, Src->OutputChannels, NULL);
715
0
    if (CLUT == NULL) goto Error;
716
717
    // Add the CLUT to the destination LUT
718
0
    if (!cmsPipelineInsertStage(Dest, cmsAT_END, CLUT)) {
719
0
        goto Error;
720
0
    }
721
722
    // Postlinearization tables are kept unless indicated by flags
723
0
    if (*dwFlags & cmsFLAGS_CLUT_POST_LINEARIZATION) {
724
725
        // Get a pointer to the postlinearization if present
726
0
        cmsStage* PostLin = cmsPipelineGetPtrToLastStage(Src);
727
728
        // Check if suitable
729
0
        if (PostLin && cmsStageType(PostLin) == cmsSigCurveSetElemType) {
730
731
            // Maybe this is a linear tram, so we can avoid the whole stuff
732
0
            if (!AllCurvesAreLinear(PostLin)) {
733
734
                // All seems ok, proceed.
735
0
                NewPostLin = cmsStageDup(PostLin);
736
0
                if (!cmsPipelineInsertStage(Dest, cmsAT_END, NewPostLin))
737
0
                    goto Error;
738
739
                // In destination LUT, the sampling should be applied after this stage.
740
0
                cmsPipelineUnlinkStage(Src, cmsAT_END, &KeepPostLin);
741
0
            }
742
0
        }
743
0
    }
744
745
    // Now its time to do the sampling. We have to ignore pre/post linearization
746
    // The source LUT without pre/post curves is passed as parameter.
747
0
    if (!cmsStageSampleCLut16bit(CLUT, XFormSampler16, (void*) Src, 0)) {
748
0
Error:
749
        // Ops, something went wrong, Restore stages
750
0
        if (KeepPreLin != NULL) {
751
0
            if (!cmsPipelineInsertStage(Src, cmsAT_BEGIN, KeepPreLin)) {
752
0
                _cmsAssert(0); // This never happens
753
0
            }
754
0
        }
755
0
        if (KeepPostLin != NULL) {
756
0
            if (!cmsPipelineInsertStage(Src, cmsAT_END,   KeepPostLin)) {
757
0
                _cmsAssert(0); // This never happens
758
0
            }
759
0
        }
760
0
        cmsPipelineFree(Dest);
761
0
        return FALSE;
762
0
    }
763
764
    // Done.
765
766
0
    if (KeepPreLin != NULL) cmsStageFree(KeepPreLin);
767
0
    if (KeepPostLin != NULL) cmsStageFree(KeepPostLin);
768
0
    cmsPipelineFree(Src);
769
770
0
    DataCLUT = (_cmsStageCLutData*) CLUT ->Data;
771
772
0
    if (NewPreLin == NULL) DataSetIn = NULL;
773
0
    else DataSetIn = ((_cmsStageToneCurvesData*) NewPreLin ->Data) ->TheCurves;
774
775
0
    if (NewPostLin == NULL) DataSetOut = NULL;
776
0
    else  DataSetOut = ((_cmsStageToneCurvesData*) NewPostLin ->Data) ->TheCurves;
777
778
779
0
    if (DataSetIn == NULL && DataSetOut == NULL) {
780
781
0
        _cmsPipelineSetOptimizationParameters(Dest, (_cmsPipelineEval16Fn) DataCLUT->Params->Interpolation.Lerp16, DataCLUT->Params, NULL, NULL);
782
0
    }
783
0
    else {
784
785
0
        p16 = PrelinOpt16alloc(Dest ->ContextID,
786
0
            DataCLUT ->Params,
787
0
            Dest ->InputChannels,
788
0
            DataSetIn,
789
0
            Dest ->OutputChannels,
790
0
            DataSetOut);
791
792
0
        if (p16 == NULL) {
793
0
            cmsPipelineFree(Dest);
794
0
            return FALSE;
795
0
        }
796
797
0
        _cmsPipelineSetOptimizationParameters(Dest, PrelinEval16, (void*) p16, PrelinOpt16free, Prelin16dup);
798
0
    }
799
800
801
    // Don't fix white on absolute colorimetric
802
0
    if (Intent == INTENT_ABSOLUTE_COLORIMETRIC)
803
0
        *dwFlags |= cmsFLAGS_NOWHITEONWHITEFIXUP;
804
805
0
    if (!(*dwFlags & cmsFLAGS_NOWHITEONWHITEFIXUP)) {
806
807
0
        FixWhiteMisalignment(Dest, ColorSpace, OutputColorSpace);
808
0
    }
809
810
0
    *Lut = Dest;
811
0
    return TRUE;
812
813
0
    cmsUNUSED_PARAMETER(Intent);
814
0
}
815
816
817
// -----------------------------------------------------------------------------------------------------------------------------------------------
818
// Fixes the gamma balancing of transform. This is described in my paper "Prelinearization Stages on
819
// Color-Management Application-Specific Integrated Circuits (ASICs)" presented at NIP24. It only works
820
// for RGB transforms. See the paper for more details
821
// -----------------------------------------------------------------------------------------------------------------------------------------------
822
823
824
// Normalize endpoints by slope limiting max and min. This assures endpoints as well.
825
// Descending curves are handled as well.
826
static
827
void SlopeLimiting(cmsToneCurve* g)
828
0
{
829
0
    int BeginVal, EndVal;
830
0
    int AtBegin = (int) floor((cmsFloat64Number) g ->nEntries * 0.02 + 0.5);   // Cutoff at 2%
831
0
    int AtEnd   = (int) g ->nEntries - AtBegin - 1;                                  // And 98%
832
0
    cmsFloat64Number Val, Slope, beta;
833
0
    int i;
834
835
0
    if (cmsIsToneCurveDescending(g)) {
836
0
        BeginVal = 0xffff; EndVal = 0;
837
0
    }
838
0
    else {
839
0
        BeginVal = 0; EndVal = 0xffff;
840
0
    }
841
842
    // Compute slope and offset for begin of curve
843
0
    Val   = g ->Table16[AtBegin];
844
0
    Slope = (Val - BeginVal) / AtBegin;
845
0
    beta  = Val - Slope * AtBegin;
846
847
0
    for (i=0; i < AtBegin; i++)
848
0
        g ->Table16[i] = _cmsQuickSaturateWord(i * Slope + beta);
849
850
    // Compute slope and offset for the end
851
0
    Val   = g ->Table16[AtEnd];
852
0
    Slope = (EndVal - Val) / AtBegin;   // AtBegin holds the X interval, which is same in both cases
853
0
    beta  = Val - Slope * AtEnd;
854
855
0
    for (i = AtEnd; i < (int) g ->nEntries; i++)
856
0
        g ->Table16[i] = _cmsQuickSaturateWord(i * Slope + beta);
857
0
}
858
859
860
// Precomputes tables for 8-bit on input devicelink.
861
static
862
Prelin8Data* PrelinOpt8alloc(cmsContext ContextID, const cmsInterpParams* p, cmsToneCurve* G[3])
863
0
{
864
0
    int i;
865
0
    cmsUInt16Number Input[3];
866
0
    cmsS15Fixed16Number v1, v2, v3;
867
0
    Prelin8Data* p8;
868
869
0
    p8 = (Prelin8Data*)_cmsMallocZero(ContextID, sizeof(Prelin8Data));
870
0
    if (p8 == NULL) return NULL;
871
872
    // Since this only works for 8 bit input, values comes always as x * 257,
873
    // we can safely take msb byte (x << 8 + x)
874
875
0
    for (i=0; i < 256; i++) {
876
877
0
        if (G != NULL) {
878
879
            // Get 16-bit representation
880
0
            Input[0] = cmsEvalToneCurve16(G[0], FROM_8_TO_16(i));
881
0
            Input[1] = cmsEvalToneCurve16(G[1], FROM_8_TO_16(i));
882
0
            Input[2] = cmsEvalToneCurve16(G[2], FROM_8_TO_16(i));
883
0
        }
884
0
        else {
885
0
            Input[0] = FROM_8_TO_16(i);
886
0
            Input[1] = FROM_8_TO_16(i);
887
0
            Input[2] = FROM_8_TO_16(i);
888
0
        }
889
890
891
        // Move to 0..1.0 in fixed domain
892
0
        v1 = _cmsToFixedDomain((int) (Input[0] * p -> Domain[0]));
893
0
        v2 = _cmsToFixedDomain((int) (Input[1] * p -> Domain[1]));
894
0
        v3 = _cmsToFixedDomain((int) (Input[2] * p -> Domain[2]));
895
896
        // Store the precalculated table of nodes
897
0
        p8 ->X0[i] = (p->opta[2] * FIXED_TO_INT(v1));
898
0
        p8 ->Y0[i] = (p->opta[1] * FIXED_TO_INT(v2));
899
0
        p8 ->Z0[i] = (p->opta[0] * FIXED_TO_INT(v3));
900
901
        // Store the precalculated table of offsets
902
0
        p8 ->rx[i] = (cmsUInt16Number) FIXED_REST_TO_INT(v1);
903
0
        p8 ->ry[i] = (cmsUInt16Number) FIXED_REST_TO_INT(v2);
904
0
        p8 ->rz[i] = (cmsUInt16Number) FIXED_REST_TO_INT(v3);
905
0
    }
906
907
0
    p8 ->ContextID = ContextID;
908
0
    p8 ->p = p;
909
910
0
    return p8;
911
0
}
912
913
static
914
void Prelin8free(cmsContext ContextID, void* ptr)
915
0
{
916
0
    _cmsFree(ContextID, ptr);
917
0
}
918
919
static
920
void* Prelin8dup(cmsContext ContextID, const void* ptr)
921
0
{
922
0
    return _cmsDupMem(ContextID, ptr, sizeof(Prelin8Data));
923
0
}
924
925
926
927
// A optimized interpolation for 8-bit input.
928
0
#define DENS(i,j,k) (LutTable[(i)+(j)+(k)+OutChan])
929
static CMS_NO_SANITIZE
930
void PrelinEval8(CMSREGISTER const cmsUInt16Number Input[],
931
                 CMSREGISTER cmsUInt16Number Output[],
932
                 CMSREGISTER const void* D)
933
0
{
934
935
0
    cmsUInt8Number         r, g, b;
936
0
    cmsS15Fixed16Number    rx, ry, rz;
937
0
    cmsS15Fixed16Number    c0, c1, c2, c3, Rest;
938
0
    int                    OutChan;
939
0
    CMSREGISTER cmsS15Fixed16Number X0, X1, Y0, Y1, Z0, Z1;
940
0
    Prelin8Data* p8 = (Prelin8Data*) D;
941
0
    CMSREGISTER const cmsInterpParams* p = p8 ->p;
942
0
    int                    TotalOut = (int) p -> nOutputs;
943
0
    const cmsUInt16Number* LutTable = (const cmsUInt16Number*) p->Table;
944
945
0
    r = (cmsUInt8Number) (Input[0] >> 8);
946
0
    g = (cmsUInt8Number) (Input[1] >> 8);
947
0
    b = (cmsUInt8Number) (Input[2] >> 8);
948
949
0
    X0 = (cmsS15Fixed16Number) p8->X0[r];
950
0
    Y0 = (cmsS15Fixed16Number) p8->Y0[g];
951
0
    Z0 = (cmsS15Fixed16Number) p8->Z0[b];
952
953
0
    rx = p8 ->rx[r];
954
0
    ry = p8 ->ry[g];
955
0
    rz = p8 ->rz[b];
956
957
0
    X1 = X0 + (cmsS15Fixed16Number)((rx == 0) ? 0 :  p ->opta[2]);
958
0
    Y1 = Y0 + (cmsS15Fixed16Number)((ry == 0) ? 0 :  p ->opta[1]);
959
0
    Z1 = Z0 + (cmsS15Fixed16Number)((rz == 0) ? 0 :  p ->opta[0]);
960
961
962
    // These are the 6 Tetrahedral
963
0
    for (OutChan=0; OutChan < TotalOut; OutChan++) {
964
965
0
        c0 = DENS(X0, Y0, Z0);
966
967
0
        if (rx >= ry && ry >= rz)
968
0
        {
969
0
            c1 = DENS(X1, Y0, Z0) - c0;
970
0
            c2 = DENS(X1, Y1, Z0) - DENS(X1, Y0, Z0);
971
0
            c3 = DENS(X1, Y1, Z1) - DENS(X1, Y1, Z0);
972
0
        }
973
0
        else
974
0
            if (rx >= rz && rz >= ry)
975
0
            {
976
0
                c1 = DENS(X1, Y0, Z0) - c0;
977
0
                c2 = DENS(X1, Y1, Z1) - DENS(X1, Y0, Z1);
978
0
                c3 = DENS(X1, Y0, Z1) - DENS(X1, Y0, Z0);
979
0
            }
980
0
            else
981
0
                if (rz >= rx && rx >= ry)
982
0
                {
983
0
                    c1 = DENS(X1, Y0, Z1) - DENS(X0, Y0, Z1);
984
0
                    c2 = DENS(X1, Y1, Z1) - DENS(X1, Y0, Z1);
985
0
                    c3 = DENS(X0, Y0, Z1) - c0;
986
0
                }
987
0
                else
988
0
                    if (ry >= rx && rx >= rz)
989
0
                    {
990
0
                        c1 = DENS(X1, Y1, Z0) - DENS(X0, Y1, Z0);
991
0
                        c2 = DENS(X0, Y1, Z0) - c0;
992
0
                        c3 = DENS(X1, Y1, Z1) - DENS(X1, Y1, Z0);
993
0
                    }
994
0
                    else
995
0
                        if (ry >= rz && rz >= rx)
996
0
                        {
997
0
                            c1 = DENS(X1, Y1, Z1) - DENS(X0, Y1, Z1);
998
0
                            c2 = DENS(X0, Y1, Z0) - c0;
999
0
                            c3 = DENS(X0, Y1, Z1) - DENS(X0, Y1, Z0);
1000
0
                        }
1001
0
                        else
1002
0
                            if (rz >= ry && ry >= rx)
1003
0
                            {
1004
0
                                c1 = DENS(X1, Y1, Z1) - DENS(X0, Y1, Z1);
1005
0
                                c2 = DENS(X0, Y1, Z1) - DENS(X0, Y0, Z1);
1006
0
                                c3 = DENS(X0, Y0, Z1) - c0;
1007
0
                            }
1008
0
                            else  {
1009
0
                                c1 = c2 = c3 = 0;
1010
0
                            }
1011
1012
0
        Rest = c1 * rx + c2 * ry + c3 * rz + 0x8001;
1013
0
        Output[OutChan] = (cmsUInt16Number) (c0 + ((Rest + (Rest >> 16)) >> 16));
1014
1015
0
    }
1016
0
}
1017
1018
#undef DENS
1019
1020
1021
// Curves that contain wide empty areas are not optimizeable
1022
static
1023
cmsBool IsDegenerated(const cmsToneCurve* g)
1024
0
{
1025
0
    cmsUInt32Number i, Zeros = 0, Poles = 0;
1026
0
    cmsUInt32Number nEntries = g ->nEntries;
1027
1028
0
    for (i=0; i < nEntries; i++) {
1029
1030
0
        if (g ->Table16[i] == 0x0000) Zeros++;
1031
0
        if (g ->Table16[i] == 0xffff) Poles++;
1032
0
    }
1033
1034
0
    if (Zeros == 1 && Poles == 1) return FALSE;  // For linear tables
1035
0
    if (Zeros > (nEntries / 20)) return TRUE;  // Degenerated, many zeros
1036
0
    if (Poles > (nEntries / 20)) return TRUE;  // Degenerated, many poles
1037
1038
0
    return FALSE;
1039
0
}
1040
1041
// --------------------------------------------------------------------------------------------------------------
1042
// We need xput over here
1043
1044
static
1045
cmsBool OptimizeByComputingLinearization(cmsPipeline** Lut, cmsUInt32Number Intent, cmsUInt32Number* InputFormat, cmsUInt32Number* OutputFormat, cmsUInt32Number* dwFlags)
1046
0
{
1047
0
    cmsPipeline* OriginalLut;
1048
0
    cmsUInt32Number nGridPoints;
1049
0
    cmsToneCurve *Trans[cmsMAXCHANNELS], *TransReverse[cmsMAXCHANNELS];
1050
0
    cmsUInt32Number t, i;
1051
0
    cmsFloat32Number v, In[cmsMAXCHANNELS], Out[cmsMAXCHANNELS];
1052
0
    cmsBool lIsSuitable, lIsLinear;
1053
0
    cmsPipeline* OptimizedLUT = NULL, *LutPlusCurves = NULL;
1054
0
    cmsStage* OptimizedCLUTmpe;
1055
0
    cmsColorSpaceSignature ColorSpace, OutputColorSpace;
1056
0
    cmsStage* OptimizedPrelinMpe;
1057
0
    cmsToneCurve** OptimizedPrelinCurves;
1058
0
    _cmsStageCLutData* OptimizedPrelinCLUT;
1059
1060
1061
    // This is a lossy optimization! does not apply in floating-point cases
1062
0
    if (_cmsFormatterIsFloat(*InputFormat) || _cmsFormatterIsFloat(*OutputFormat)) return FALSE;
1063
1064
    // Only on chunky RGB
1065
0
    if (T_COLORSPACE(*InputFormat)  != PT_RGB) return FALSE;
1066
0
    if (T_PLANAR(*InputFormat)) return FALSE;
1067
1068
0
    if (T_COLORSPACE(*OutputFormat) != PT_RGB) return FALSE;
1069
0
    if (T_PLANAR(*OutputFormat)) return FALSE;
1070
1071
    // On 16 bits, user has to specify the feature
1072
0
    if (!_cmsFormatterIs8bit(*InputFormat)) {
1073
0
        if (!(*dwFlags & cmsFLAGS_CLUT_PRE_LINEARIZATION)) return FALSE;
1074
0
    }
1075
1076
0
    OriginalLut = *Lut;
1077
   
1078
0
    ColorSpace       = _cmsICCcolorSpace((int) T_COLORSPACE(*InputFormat));
1079
0
    OutputColorSpace = _cmsICCcolorSpace((int) T_COLORSPACE(*OutputFormat));
1080
1081
    // Color space must be specified
1082
0
    if (ColorSpace == (cmsColorSpaceSignature)0 ||
1083
0
        OutputColorSpace == (cmsColorSpaceSignature)0) return FALSE;
1084
1085
0
    nGridPoints      = _cmsReasonableGridpointsByColorspace(ColorSpace, *dwFlags);
1086
1087
    // Empty gamma containers
1088
0
    memset(Trans, 0, sizeof(Trans));
1089
0
    memset(TransReverse, 0, sizeof(TransReverse));
1090
1091
    // If the last stage of the original lut are curves, and those curves are
1092
    // degenerated, it is likely the transform is squeezing and clipping
1093
    // the output from previous CLUT. We cannot optimize this case     
1094
0
    {
1095
0
        cmsStage* last = cmsPipelineGetPtrToLastStage(OriginalLut);
1096
1097
0
        if (last == NULL) goto Error;
1098
0
        if (cmsStageType(last) == cmsSigCurveSetElemType) {
1099
1100
0
            _cmsStageToneCurvesData* Data = (_cmsStageToneCurvesData*)cmsStageData(last);
1101
0
            for (i = 0; i < Data->nCurves; i++) {
1102
0
                if (IsDegenerated(Data->TheCurves[i]))
1103
0
                    goto Error;
1104
0
            }
1105
0
        }
1106
0
    }
1107
1108
0
    for (t = 0; t < OriginalLut ->InputChannels; t++) {
1109
0
        Trans[t] = cmsBuildTabulatedToneCurve16(OriginalLut ->ContextID, PRELINEARIZATION_POINTS, NULL);
1110
0
        if (Trans[t] == NULL) goto Error;
1111
0
    }
1112
1113
    // Populate the curves
1114
0
    for (i=0; i < PRELINEARIZATION_POINTS; i++) {
1115
1116
0
        v = (cmsFloat32Number) ((cmsFloat64Number) i / (PRELINEARIZATION_POINTS - 1));
1117
1118
        // Feed input with a gray ramp
1119
0
        for (t=0; t < OriginalLut ->InputChannels; t++)
1120
0
            In[t] = v;
1121
1122
        // Evaluate the gray value
1123
0
        cmsPipelineEvalFloat(In, Out, OriginalLut);
1124
1125
        // Store result in curve
1126
0
        for (t=0; t < OriginalLut ->InputChannels; t++)
1127
0
        {
1128
0
            if (Trans[t]->Table16 != NULL)
1129
0
                Trans[t] ->Table16[i] = _cmsQuickSaturateWord(Out[t] * 65535.0);
1130
0
        }
1131
0
    }
1132
1133
    // Slope-limit the obtained curves
1134
0
    for (t = 0; t < OriginalLut ->InputChannels; t++)
1135
0
        SlopeLimiting(Trans[t]);
1136
1137
    // Check for validity. lIsLinear is here for debug purposes
1138
0
    lIsSuitable = TRUE;
1139
0
    lIsLinear   = TRUE;
1140
0
    for (t=0; (lIsSuitable && (t < OriginalLut ->InputChannels)); t++) {
1141
1142
        // Exclude if already linear
1143
0
        if (!cmsIsToneCurveLinear(Trans[t]))
1144
0
            lIsLinear = FALSE;
1145
1146
        // Exclude if non-monotonic
1147
0
        if (!cmsIsToneCurveMonotonic(Trans[t]))
1148
0
            lIsSuitable = FALSE;
1149
1150
0
        if (IsDegenerated(Trans[t]))
1151
0
            lIsSuitable = FALSE;
1152
0
    }
1153
1154
    // If it is not suitable, just quit
1155
0
    if (!lIsSuitable) goto Error;
1156
1157
    // Invert curves if possible
1158
0
    for (t = 0; t < OriginalLut ->InputChannels; t++) {
1159
0
        TransReverse[t] = cmsReverseToneCurveEx(PRELINEARIZATION_POINTS, Trans[t]);
1160
0
        if (TransReverse[t] == NULL) goto Error;
1161
0
    }
1162
1163
    // Now inset the reversed curves at the begin of transform
1164
0
    LutPlusCurves = cmsPipelineDup(OriginalLut);
1165
0
    if (LutPlusCurves == NULL) goto Error;
1166
1167
0
    if (!cmsPipelineInsertStage(LutPlusCurves, cmsAT_BEGIN, cmsStageAllocToneCurves(OriginalLut ->ContextID, OriginalLut ->InputChannels, TransReverse)))
1168
0
        goto Error;
1169
1170
    // Create the result LUT
1171
0
    OptimizedLUT = cmsPipelineAlloc(OriginalLut ->ContextID, OriginalLut ->InputChannels, OriginalLut ->OutputChannels);
1172
0
    if (OptimizedLUT == NULL) goto Error;
1173
1174
0
    OptimizedPrelinMpe = cmsStageAllocToneCurves(OriginalLut ->ContextID, OriginalLut ->InputChannels, Trans);
1175
1176
    // Create and insert the curves at the beginning
1177
0
    if (!cmsPipelineInsertStage(OptimizedLUT, cmsAT_BEGIN, OptimizedPrelinMpe))
1178
0
        goto Error;
1179
1180
    // Allocate the CLUT for result
1181
0
    OptimizedCLUTmpe = cmsStageAllocCLut16bit(OriginalLut ->ContextID, nGridPoints, OriginalLut ->InputChannels, OriginalLut ->OutputChannels, NULL);
1182
1183
    // Add the CLUT to the destination LUT
1184
0
    if (!cmsPipelineInsertStage(OptimizedLUT, cmsAT_END, OptimizedCLUTmpe))
1185
0
        goto Error;
1186
1187
    // Resample the LUT
1188
0
    if (!cmsStageSampleCLut16bit(OptimizedCLUTmpe, XFormSampler16, (void*) LutPlusCurves, 0)) goto Error;
1189
1190
    // Free resources
1191
0
    for (t = 0; t < OriginalLut ->InputChannels; t++) {
1192
1193
0
        if (Trans[t]) cmsFreeToneCurve(Trans[t]);
1194
0
        if (TransReverse[t]) cmsFreeToneCurve(TransReverse[t]);
1195
1196
0
        Trans[t] = NULL;
1197
0
        TransReverse[t] = NULL;
1198
0
    }
1199
1200
0
    cmsPipelineFree(LutPlusCurves);
1201
0
    LutPlusCurves = NULL;
1202
1203
0
    OptimizedPrelinCurves = _cmsStageGetPtrToCurveSet(OptimizedPrelinMpe);
1204
0
    OptimizedPrelinCLUT   = (_cmsStageCLutData*) OptimizedCLUTmpe ->Data;
1205
1206
    // Set the evaluator if 8-bit
1207
0
    if (_cmsFormatterIs8bit(*InputFormat)) {
1208
1209
0
        Prelin8Data* p8 = PrelinOpt8alloc(OptimizedLUT ->ContextID,
1210
0
                                                OptimizedPrelinCLUT ->Params,
1211
0
                                                OptimizedPrelinCurves);
1212
0
        if (p8 == NULL) goto Error;
1213
1214
0
        _cmsPipelineSetOptimizationParameters(OptimizedLUT, PrelinEval8, (void*) p8, Prelin8free, Prelin8dup);
1215
1216
0
    }
1217
0
    else
1218
0
    {
1219
0
        Prelin16Data* p16 = PrelinOpt16alloc(OptimizedLUT ->ContextID,
1220
0
            OptimizedPrelinCLUT ->Params,
1221
0
            3, OptimizedPrelinCurves, 3, NULL);
1222
1223
0
        if (p16 == NULL) goto Error;
1224
1225
0
        _cmsPipelineSetOptimizationParameters(OptimizedLUT, PrelinEval16, (void*) p16, PrelinOpt16free, Prelin16dup);
1226
1227
0
    }
1228
1229
    // Don't fix white on absolute colorimetric
1230
0
    if (Intent == INTENT_ABSOLUTE_COLORIMETRIC)
1231
0
        *dwFlags |= cmsFLAGS_NOWHITEONWHITEFIXUP;
1232
1233
0
    if (!(*dwFlags & cmsFLAGS_NOWHITEONWHITEFIXUP)) {
1234
1235
0
        if (!FixWhiteMisalignment(OptimizedLUT, ColorSpace, OutputColorSpace)) {
1236
1237
0
           goto Error;
1238
0
        }
1239
0
    }
1240
1241
    // And return the obtained LUT
1242
1243
0
    cmsPipelineFree(OriginalLut);
1244
0
    *Lut = OptimizedLUT;
1245
0
    return TRUE;
1246
1247
0
Error:
1248
1249
0
    for (t = 0; t < OriginalLut ->InputChannels; t++) {
1250
1251
0
        if (Trans[t]) cmsFreeToneCurve(Trans[t]);
1252
0
        if (TransReverse[t]) cmsFreeToneCurve(TransReverse[t]);
1253
0
    }
1254
1255
0
    if (LutPlusCurves != NULL) cmsPipelineFree(LutPlusCurves);
1256
0
    if (OptimizedLUT != NULL) cmsPipelineFree(OptimizedLUT);
1257
1258
0
    return FALSE;
1259
1260
0
    cmsUNUSED_PARAMETER(Intent);
1261
0
    cmsUNUSED_PARAMETER(lIsLinear);
1262
0
}
1263
1264
1265
// Curves optimizer ------------------------------------------------------------------------------------------------------------------
1266
1267
static
1268
void CurvesFree(cmsContext ContextID, void* ptr)
1269
0
{
1270
0
     Curves16Data* Data = (Curves16Data*) ptr;
1271
0
     cmsUInt32Number i;
1272
1273
0
     for (i=0; i < Data -> nCurves; i++) {
1274
1275
0
         _cmsFree(ContextID, Data ->Curves[i]);
1276
0
     }
1277
1278
0
     _cmsFree(ContextID, Data ->Curves);
1279
0
     _cmsFree(ContextID, ptr);
1280
0
}
1281
1282
static
1283
void* CurvesDup(cmsContext ContextID, const void* ptr)
1284
0
{
1285
0
    Curves16Data* Data = (Curves16Data*)_cmsDupMem(ContextID, ptr, sizeof(Curves16Data));
1286
0
    cmsUInt32Number i;
1287
1288
0
    if (Data == NULL) return NULL;
1289
1290
0
    Data->Curves = (cmsUInt16Number**) _cmsDupMem(ContextID, Data->Curves, Data->nCurves * sizeof(cmsUInt16Number*));
1291
1292
0
    for (i=0; i < Data -> nCurves; i++) {
1293
0
        Data->Curves[i] = (cmsUInt16Number*) _cmsDupMem(ContextID, Data->Curves[i], Data->nElements * sizeof(cmsUInt16Number));
1294
0
    }
1295
1296
0
    return (void*) Data;
1297
0
}
1298
1299
// Precomputes tables for 8-bit on input devicelink.
1300
static
1301
Curves16Data* CurvesAlloc(cmsContext ContextID, cmsUInt32Number nCurves, cmsUInt32Number nElements, cmsToneCurve** G)
1302
0
{
1303
0
    cmsUInt32Number i, j;
1304
0
    Curves16Data* c16;
1305
1306
0
    c16 = (Curves16Data*)_cmsMallocZero(ContextID, sizeof(Curves16Data));
1307
0
    if (c16 == NULL) return NULL;
1308
1309
0
    c16 ->nCurves = nCurves;
1310
0
    c16 ->nElements = nElements;
1311
1312
0
    c16->Curves = (cmsUInt16Number**) _cmsCalloc(ContextID, nCurves, sizeof(cmsUInt16Number*));
1313
0
    if (c16->Curves == NULL) {
1314
0
        _cmsFree(ContextID, c16);
1315
0
        return NULL;
1316
0
    }
1317
1318
0
    for (i=0; i < nCurves; i++) {
1319
1320
0
        c16->Curves[i] = (cmsUInt16Number*) _cmsCalloc(ContextID, nElements, sizeof(cmsUInt16Number));
1321
1322
0
        if (c16->Curves[i] == NULL) {
1323
1324
0
            for (j=0; j < i; j++) {
1325
0
                _cmsFree(ContextID, c16->Curves[j]);
1326
0
            }
1327
0
            _cmsFree(ContextID, c16->Curves);
1328
0
            _cmsFree(ContextID, c16);
1329
0
            return NULL;
1330
0
        }
1331
1332
0
        if (nElements == 256U) {
1333
1334
0
            for (j=0; j < nElements; j++) {
1335
1336
0
                c16 ->Curves[i][j] = cmsEvalToneCurve16(G[i], FROM_8_TO_16(j));
1337
0
            }
1338
0
        }
1339
0
        else {
1340
1341
0
            for (j=0; j < nElements; j++) {
1342
0
                c16 ->Curves[i][j] = cmsEvalToneCurve16(G[i], (cmsUInt16Number) j);
1343
0
            }
1344
0
        }
1345
0
    }
1346
1347
0
    return c16;
1348
0
}
1349
1350
static
1351
void FastEvaluateCurves8(CMSREGISTER const cmsUInt16Number In[],
1352
                         CMSREGISTER cmsUInt16Number Out[],
1353
                         CMSREGISTER const void* D)
1354
0
{
1355
0
    Curves16Data* Data = (Curves16Data*) D;
1356
0
    int x;
1357
0
    cmsUInt32Number i;
1358
1359
0
    for (i=0; i < Data ->nCurves; i++) {
1360
1361
0
         x = (In[i] >> 8);
1362
0
         Out[i] = Data -> Curves[i][x];
1363
0
    }
1364
0
}
1365
1366
1367
static
1368
void FastEvaluateCurves16(CMSREGISTER const cmsUInt16Number In[],
1369
                          CMSREGISTER cmsUInt16Number Out[],
1370
                          CMSREGISTER const void* D)
1371
0
{
1372
0
    Curves16Data* Data = (Curves16Data*) D;
1373
0
    cmsUInt32Number i;
1374
1375
0
    for (i=0; i < Data ->nCurves; i++) {
1376
0
         Out[i] = Data -> Curves[i][In[i]];
1377
0
    }
1378
0
}
1379
1380
1381
static
1382
void FastIdentity16(CMSREGISTER const cmsUInt16Number In[],
1383
                    CMSREGISTER cmsUInt16Number Out[],
1384
                    CMSREGISTER const void* D)
1385
0
{
1386
0
    cmsPipeline* Lut = (cmsPipeline*) D;
1387
0
    cmsUInt32Number i;
1388
1389
0
    for (i=0; i < Lut ->InputChannels; i++) {
1390
0
         Out[i] = In[i];
1391
0
    }
1392
0
}
1393
1394
1395
// If the target LUT holds only curves, the optimization procedure is to join all those
1396
// curves together. That only works on curves and does not work on matrices.
1397
static
1398
cmsBool OptimizeByJoiningCurves(cmsPipeline** Lut, cmsUInt32Number Intent, cmsUInt32Number* InputFormat, cmsUInt32Number* OutputFormat, cmsUInt32Number* dwFlags)
1399
0
{
1400
0
    cmsToneCurve** GammaTables = NULL;
1401
0
    cmsFloat32Number InFloat[cmsMAXCHANNELS], OutFloat[cmsMAXCHANNELS];
1402
0
    cmsUInt32Number i, j;
1403
0
    cmsPipeline* Src = *Lut;
1404
0
    cmsPipeline* Dest = NULL;
1405
0
    cmsStage* mpe;
1406
0
    cmsStage* ObtainedCurves = NULL;
1407
1408
1409
    // This is a lossy optimization! does not apply in floating-point cases
1410
0
    if (_cmsFormatterIsFloat(*InputFormat) || _cmsFormatterIsFloat(*OutputFormat)) return FALSE;
1411
1412
    //  Only curves in this LUT?
1413
0
    for (mpe = cmsPipelineGetPtrToFirstStage(Src);
1414
0
         mpe != NULL;
1415
0
         mpe = cmsStageNext(mpe)) {
1416
0
            if (cmsStageType(mpe) != cmsSigCurveSetElemType) return FALSE;
1417
0
    }
1418
1419
    // Allocate an empty LUT
1420
0
    Dest =  cmsPipelineAlloc(Src ->ContextID, Src ->InputChannels, Src ->OutputChannels);
1421
0
    if (Dest == NULL) return FALSE;
1422
1423
    // Create target curves
1424
0
    GammaTables = (cmsToneCurve**) _cmsCalloc(Src ->ContextID, Src ->InputChannels, sizeof(cmsToneCurve*));
1425
0
    if (GammaTables == NULL) goto Error;
1426
1427
0
    for (i=0; i < Src ->InputChannels; i++) {
1428
0
        GammaTables[i] = cmsBuildTabulatedToneCurve16(Src ->ContextID, PRELINEARIZATION_POINTS, NULL);
1429
0
        if (GammaTables[i] == NULL) goto Error;
1430
0
    }
1431
1432
    // Compute 16 bit result by using floating point
1433
0
    for (i=0; i < PRELINEARIZATION_POINTS; i++) {
1434
1435
0
        for (j=0; j < Src ->InputChannels; j++)
1436
0
            InFloat[j] = (cmsFloat32Number) ((cmsFloat64Number) i / (PRELINEARIZATION_POINTS - 1));
1437
1438
0
        cmsPipelineEvalFloat(InFloat, OutFloat, Src);
1439
1440
0
        for (j=0; j < Src ->InputChannels; j++)
1441
0
            GammaTables[j] -> Table16[i] = _cmsQuickSaturateWord(OutFloat[j] * 65535.0);
1442
0
    }
1443
1444
0
    ObtainedCurves = cmsStageAllocToneCurves(Src ->ContextID, Src ->InputChannels, GammaTables);
1445
0
    if (ObtainedCurves == NULL) goto Error;
1446
1447
0
    for (i=0; i < Src ->InputChannels; i++) {
1448
0
        cmsFreeToneCurve(GammaTables[i]);
1449
0
        GammaTables[i] = NULL;
1450
0
    }
1451
1452
0
    if (GammaTables != NULL) {
1453
0
        _cmsFree(Src->ContextID, GammaTables);
1454
0
        GammaTables = NULL;
1455
0
    }
1456
1457
    // Maybe the curves are linear at the end
1458
0
    if (!AllCurvesAreLinear(ObtainedCurves)) {
1459
0
       _cmsStageToneCurvesData* Data;
1460
1461
0
        if (!cmsPipelineInsertStage(Dest, cmsAT_BEGIN, ObtainedCurves))
1462
0
            goto Error;
1463
0
        Data = (_cmsStageToneCurvesData*) cmsStageData(ObtainedCurves);
1464
0
        ObtainedCurves = NULL;
1465
1466
        // If the curves are to be applied in 8 bits, we can save memory
1467
0
        if (_cmsFormatterIs8bit(*InputFormat)) {
1468
0
             Curves16Data* c16 = CurvesAlloc(Dest ->ContextID, Data ->nCurves, 256, Data ->TheCurves);
1469
1470
0
             if (c16 == NULL) goto Error;
1471
0
             *dwFlags |= cmsFLAGS_NOCACHE;
1472
0
            _cmsPipelineSetOptimizationParameters(Dest, FastEvaluateCurves8, c16, CurvesFree, CurvesDup);
1473
1474
0
        }
1475
0
        else {
1476
0
             Curves16Data* c16 = CurvesAlloc(Dest ->ContextID, Data ->nCurves, 65536, Data ->TheCurves);
1477
1478
0
             if (c16 == NULL) goto Error;
1479
0
             *dwFlags |= cmsFLAGS_NOCACHE;
1480
0
            _cmsPipelineSetOptimizationParameters(Dest, FastEvaluateCurves16, c16, CurvesFree, CurvesDup);
1481
0
        }
1482
0
    }
1483
0
    else {
1484
1485
        // LUT optimizes to nothing. Set the identity LUT
1486
0
        cmsStageFree(ObtainedCurves);
1487
0
        ObtainedCurves = NULL;
1488
1489
0
        if (!cmsPipelineInsertStage(Dest, cmsAT_BEGIN, cmsStageAllocIdentity(Dest ->ContextID, Src ->InputChannels)))
1490
0
            goto Error;
1491
1492
0
        *dwFlags |= cmsFLAGS_NOCACHE;
1493
0
        _cmsPipelineSetOptimizationParameters(Dest, FastIdentity16, (void*) Dest, NULL, NULL);
1494
0
    }
1495
1496
    // We are done.
1497
0
    cmsPipelineFree(Src);
1498
0
    *Lut = Dest;
1499
0
    return TRUE;
1500
1501
0
Error:
1502
1503
0
    if (ObtainedCurves != NULL) cmsStageFree(ObtainedCurves);
1504
0
    if (GammaTables != NULL) {
1505
0
        for (i=0; i < Src ->InputChannels; i++) {
1506
0
            if (GammaTables[i] != NULL) cmsFreeToneCurve(GammaTables[i]);
1507
0
        }
1508
1509
0
        _cmsFree(Src ->ContextID, GammaTables);
1510
0
    }
1511
1512
0
    if (Dest != NULL) cmsPipelineFree(Dest);
1513
0
    return FALSE;
1514
1515
0
    cmsUNUSED_PARAMETER(Intent);
1516
0
    cmsUNUSED_PARAMETER(InputFormat);
1517
0
    cmsUNUSED_PARAMETER(OutputFormat);
1518
0
    cmsUNUSED_PARAMETER(dwFlags);
1519
0
}
1520
1521
// -------------------------------------------------------------------------------------------------------------------------------------
1522
// LUT is Shaper - Matrix - Matrix - Shaper, which is very frequent when combining two matrix-shaper profiles
1523
1524
1525
static
1526
void  FreeMatShaper(cmsContext ContextID, void* Data)
1527
0
{
1528
0
    if (Data != NULL) _cmsFree(ContextID, Data);
1529
0
}
1530
1531
static
1532
void* DupMatShaper(cmsContext ContextID, const void* Data)
1533
0
{
1534
0
    return _cmsDupMem(ContextID, Data, sizeof(MatShaper8Data));
1535
0
}
1536
1537
1538
// A fast matrix-shaper evaluator for 8 bits. This is a bit tricky since I'm using 1.14 signed fixed point
1539
// to accomplish some performance. Actually it takes 256x3 16 bits tables and 16385 x 3 tables of 8 bits,
1540
// in total about 50K, and the performance boost is huge!
1541
static CMS_NO_SANITIZE
1542
void MatShaperEval16(CMSREGISTER const cmsUInt16Number In[],
1543
                     CMSREGISTER cmsUInt16Number Out[],
1544
                     CMSREGISTER const void* D)
1545
0
{
1546
0
    MatShaper8Data* p = (MatShaper8Data*) D;
1547
0
    cmsS1Fixed14Number l1, l2, l3, r, g, b;
1548
0
    cmsUInt32Number ri, gi, bi;
1549
1550
    // In this case (and only in this case!) we can use this simplification since
1551
    // In[] is assured to come from a 8 bit number. (a << 8 | a)
1552
0
    ri = In[0] & 0xFFU;
1553
0
    gi = In[1] & 0xFFU;
1554
0
    bi = In[2] & 0xFFU;
1555
1556
    // Across first shaper, which also converts to 1.14 fixed point
1557
0
    r = p->Shaper1R[ri];
1558
0
    g = p->Shaper1G[gi];
1559
0
    b = p->Shaper1B[bi];
1560
1561
    // Evaluate the matrix in 1.14 fixed point
1562
0
    l1 =  (p->Mat[0][0] * r + p->Mat[0][1] * g + p->Mat[0][2] * b + p->Off[0] + 0x2000) >> 14;
1563
0
    l2 =  (p->Mat[1][0] * r + p->Mat[1][1] * g + p->Mat[1][2] * b + p->Off[1] + 0x2000) >> 14;
1564
0
    l3 =  (p->Mat[2][0] * r + p->Mat[2][1] * g + p->Mat[2][2] * b + p->Off[2] + 0x2000) >> 14;
1565
1566
    // Now we have to clip to 0..1.0 range
1567
0
    ri = (l1 < 0) ? 0 : ((l1 > 16384) ? 16384U : (cmsUInt32Number) l1);
1568
0
    gi = (l2 < 0) ? 0 : ((l2 > 16384) ? 16384U : (cmsUInt32Number) l2);
1569
0
    bi = (l3 < 0) ? 0 : ((l3 > 16384) ? 16384U : (cmsUInt32Number) l3);
1570
1571
    // And across second shaper,
1572
0
    Out[0] = p->Shaper2R[ri];
1573
0
    Out[1] = p->Shaper2G[gi];
1574
0
    Out[2] = p->Shaper2B[bi];
1575
1576
0
}
1577
1578
// This table converts from 8 bits to 1.14 after applying the curve
1579
static
1580
void FillFirstShaper(cmsS1Fixed14Number* Table, cmsToneCurve* Curve)
1581
0
{
1582
0
    int i;
1583
0
    cmsFloat32Number R, y;
1584
1585
0
    for (i=0; i < 256; i++) {
1586
1587
0
        R   = (cmsFloat32Number) (i / 255.0);
1588
0
        y   = cmsEvalToneCurveFloat(Curve, R);
1589
1590
0
        if (y < 131072.0)
1591
0
            Table[i] = DOUBLE_TO_1FIXED14(y);
1592
0
        else
1593
0
            Table[i] = 0x7fffffff;
1594
0
    }
1595
0
}
1596
1597
// This table converts form 1.14 (being 0x4000 the last entry) to 8 bits after applying the curve
1598
static
1599
void FillSecondShaper(cmsUInt16Number* Table, cmsToneCurve* Curve, cmsBool Is8BitsOutput)
1600
0
{
1601
0
    int i;
1602
0
    cmsFloat32Number R, Val;
1603
1604
0
    for (i=0; i < 16385; i++) {
1605
1606
0
        R   = (cmsFloat32Number) (i / 16384.0);
1607
0
        Val = cmsEvalToneCurveFloat(Curve, R);    // Val comes 0..1.0
1608
1609
0
        if (Val < 0)
1610
0
            Val = 0;
1611
1612
0
        if (Val > 1.0)
1613
0
            Val = 1.0;
1614
1615
0
        if (Is8BitsOutput) {
1616
1617
            // If 8 bits output, we can optimize further by computing the / 257 part.
1618
            // first we compute the resulting byte and then we store the byte times
1619
            // 257. This quantization allows to round very quick by doing a >> 8, but
1620
            // since the low byte is always equal to msb, we can do a & 0xff and this works!
1621
0
            cmsUInt16Number w = _cmsQuickSaturateWord(Val * 65535.0);
1622
0
            cmsUInt8Number  b = FROM_16_TO_8(w);
1623
1624
0
            Table[i] = FROM_8_TO_16(b);
1625
0
        }
1626
0
        else Table[i]  = _cmsQuickSaturateWord(Val * 65535.0);
1627
0
    }
1628
0
}
1629
1630
// Compute the matrix-shaper structure
1631
static
1632
cmsBool SetMatShaper(cmsPipeline* Dest, cmsToneCurve* Curve1[3], cmsMAT3* Mat, cmsVEC3* Off, cmsToneCurve* Curve2[3], cmsUInt32Number* OutputFormat)
1633
0
{
1634
0
    MatShaper8Data* p;
1635
0
    int i, j;
1636
0
    cmsBool Is8Bits = _cmsFormatterIs8bit(*OutputFormat);
1637
1638
    // Allocate a big chuck of memory to store precomputed tables
1639
0
    p = (MatShaper8Data*) _cmsMalloc(Dest ->ContextID, sizeof(MatShaper8Data));
1640
0
    if (p == NULL) return FALSE;
1641
1642
0
    p -> ContextID = Dest -> ContextID;
1643
1644
    // Precompute tables
1645
0
    FillFirstShaper(p ->Shaper1R, Curve1[0]);
1646
0
    FillFirstShaper(p ->Shaper1G, Curve1[1]);
1647
0
    FillFirstShaper(p ->Shaper1B, Curve1[2]);
1648
1649
0
    FillSecondShaper(p ->Shaper2R, Curve2[0], Is8Bits);
1650
0
    FillSecondShaper(p ->Shaper2G, Curve2[1], Is8Bits);
1651
0
    FillSecondShaper(p ->Shaper2B, Curve2[2], Is8Bits);
1652
1653
    // Convert matrix to nFixed14. Note that those values may take more than 16 bits 
1654
0
    for (i=0; i < 3; i++) {
1655
0
        for (j=0; j < 3; j++) {
1656
0
            p ->Mat[i][j] = DOUBLE_TO_1FIXED14(Mat->v[i].n[j]);
1657
0
        }
1658
0
    }
1659
1660
0
    for (i=0; i < 3; i++) {
1661
1662
0
        if (Off == NULL) {
1663
0
            p ->Off[i] = 0;
1664
0
        }
1665
0
        else {
1666
0
            p ->Off[i] = DOUBLE_TO_1FIXED14(Off->n[i]);
1667
0
        }
1668
0
    }
1669
1670
    // Mark as optimized for faster formatter
1671
0
    if (Is8Bits)
1672
0
        *OutputFormat |= OPTIMIZED_SH(1);
1673
1674
    // Fill function pointers
1675
0
    _cmsPipelineSetOptimizationParameters(Dest, MatShaperEval16, (void*) p, FreeMatShaper, DupMatShaper);
1676
0
    return TRUE;
1677
0
}
1678
1679
//  8 bits on input allows matrix-shaper boot up to 25 Mpixels per second on RGB. That's fast!
1680
static
1681
cmsBool OptimizeMatrixShaper(cmsPipeline** Lut, cmsUInt32Number Intent, cmsUInt32Number* InputFormat, cmsUInt32Number* OutputFormat, cmsUInt32Number* dwFlags)
1682
0
{
1683
0
       cmsStage* Curve1, *Curve2;
1684
0
       cmsStage* Matrix1, *Matrix2;
1685
0
       cmsMAT3 res;
1686
0
       cmsBool IdentityMat;
1687
0
       cmsPipeline* Dest, *Src;
1688
0
       cmsFloat64Number* Offset;
1689
1690
       // Only works on RGB to RGB
1691
0
       if (T_CHANNELS(*InputFormat) != 3 || T_CHANNELS(*OutputFormat) != 3) return FALSE;
1692
1693
       // Only works on 8 bit input
1694
0
       if (!_cmsFormatterIs8bit(*InputFormat)) return FALSE;
1695
1696
       // Seems suitable, proceed
1697
0
       Src = *Lut;
1698
1699
       // Check for:
1700
       // 
1701
       //    shaper-matrix-matrix-shaper 
1702
       //    shaper-matrix-shaper
1703
       // 
1704
       // Both of those constructs are possible (first because abs. colorimetric). 
1705
       // additionally, In the first case, the input matrix offset should be zero.
1706
1707
0
       IdentityMat = FALSE;
1708
0
       if (cmsPipelineCheckAndRetreiveStages(Src, 4,
1709
0
              cmsSigCurveSetElemType, cmsSigMatrixElemType, cmsSigMatrixElemType, cmsSigCurveSetElemType,
1710
0
              &Curve1, &Matrix1, &Matrix2, &Curve2)) {
1711
1712
              // Get both matrices
1713
0
              _cmsStageMatrixData* Data1 = (_cmsStageMatrixData*)cmsStageData(Matrix1);
1714
0
              _cmsStageMatrixData* Data2 = (_cmsStageMatrixData*)cmsStageData(Matrix2);
1715
1716
              // Only RGB to RGB
1717
0
              if (Matrix1->InputChannels != 3 || Matrix1->OutputChannels != 3 ||
1718
0
                  Matrix2->InputChannels != 3 || Matrix2->OutputChannels != 3) return FALSE;
1719
1720
              // Input offset should be zero
1721
0
              if (Data1->Offset != NULL) return FALSE;
1722
1723
              // Multiply both matrices to get the result
1724
0
              _cmsMAT3per(&res, (cmsMAT3*)Data2->Double, (cmsMAT3*)Data1->Double);
1725
1726
              // Only 2nd matrix has offset, or it is zero 
1727
0
              Offset = Data2->Offset;
1728
1729
              // Now the result is in res + Data2 -> Offset. Maybe is a plain identity?
1730
0
              if (_cmsMAT3isIdentity(&res) && Offset == NULL) {
1731
1732
                     // We can get rid of full matrix
1733
0
                     IdentityMat = TRUE;
1734
0
              }
1735
1736
0
       }
1737
0
       else {
1738
1739
0
              if (cmsPipelineCheckAndRetreiveStages(Src, 3,
1740
0
                     cmsSigCurveSetElemType, cmsSigMatrixElemType, cmsSigCurveSetElemType,
1741
0
                     &Curve1, &Matrix1, &Curve2)) {
1742
1743
0
                     _cmsStageMatrixData* Data = (_cmsStageMatrixData*)cmsStageData(Matrix1);
1744
1745
0
                     if (Matrix1->InputChannels != 3 || Matrix1->OutputChannels != 3) return FALSE;
1746
1747
                     // Copy the matrix to our result
1748
0
                     memcpy(&res, Data->Double, sizeof(res));
1749
1750
                     // Preserve the Odffset (may be NULL as a zero offset)
1751
0
                     Offset = Data->Offset;
1752
1753
0
                     if (_cmsMAT3isIdentity(&res) && Offset == NULL) {
1754
1755
                            // We can get rid of full matrix
1756
0
                            IdentityMat = TRUE;
1757
0
                     }
1758
0
              }
1759
0
              else
1760
0
                     return FALSE; // Not optimizeable this time
1761
1762
0
       }
1763
1764
      // Allocate an empty LUT
1765
0
    Dest =  cmsPipelineAlloc(Src ->ContextID, Src ->InputChannels, Src ->OutputChannels);
1766
0
    if (!Dest) return FALSE;
1767
1768
    // Assamble the new LUT
1769
0
    if (!cmsPipelineInsertStage(Dest, cmsAT_BEGIN, cmsStageDup(Curve1)))
1770
0
        goto Error;
1771
1772
0
    if (!IdentityMat) {
1773
1774
0
           if (!cmsPipelineInsertStage(Dest, cmsAT_END, cmsStageAllocMatrix(Dest->ContextID, 3, 3, (const cmsFloat64Number*)&res, Offset)))
1775
0
                  goto Error;
1776
0
    }
1777
1778
0
    if (!cmsPipelineInsertStage(Dest, cmsAT_END, cmsStageDup(Curve2)))
1779
0
        goto Error;
1780
1781
    // If identity on matrix, we can further optimize the curves, so call the join curves routine
1782
0
    if (IdentityMat) {
1783
1784
0
        OptimizeByJoiningCurves(&Dest, Intent, InputFormat, OutputFormat, dwFlags);
1785
0
    }
1786
0
    else {
1787
0
        _cmsStageToneCurvesData* mpeC1 = (_cmsStageToneCurvesData*) cmsStageData(Curve1);
1788
0
        _cmsStageToneCurvesData* mpeC2 = (_cmsStageToneCurvesData*) cmsStageData(Curve2);
1789
1790
        // In this particular optimization, cache does not help as it takes more time to deal with
1791
        // the cache than with the pixel handling
1792
0
        *dwFlags |= cmsFLAGS_NOCACHE;
1793
1794
        // Setup the optimizarion routines
1795
0
        SetMatShaper(Dest, mpeC1 ->TheCurves, &res, (cmsVEC3*) Offset, mpeC2->TheCurves, OutputFormat);
1796
0
    }
1797
1798
0
    cmsPipelineFree(Src);
1799
0
    *Lut = Dest;
1800
0
    return TRUE;
1801
0
Error:
1802
    // Leave Src unchanged
1803
0
    cmsPipelineFree(Dest);
1804
0
    return FALSE;
1805
0
}
1806
1807
1808
// -------------------------------------------------------------------------------------------------------------------------------------
1809
// Optimization plug-ins
1810
1811
// List of optimizations
1812
typedef struct _cmsOptimizationCollection_st {
1813
1814
    _cmsOPToptimizeFn  OptimizePtr;
1815
1816
    struct _cmsOptimizationCollection_st *Next;
1817
1818
} _cmsOptimizationCollection;
1819
1820
1821
// The built-in list. We currently implement 4 types of optimizations. Joining of curves, matrix-shaper, linearization and resampling
1822
static _cmsOptimizationCollection DefaultOptimization[] = {
1823
1824
    { OptimizeByJoiningCurves,            &DefaultOptimization[1] },
1825
    { OptimizeMatrixShaper,               &DefaultOptimization[2] },
1826
    { OptimizeByComputingLinearization,   &DefaultOptimization[3] },
1827
    { OptimizeByResampling,               NULL }
1828
};
1829
1830
// The linked list head
1831
_cmsOptimizationPluginChunkType _cmsOptimizationPluginChunk = { NULL };
1832
1833
1834
// Duplicates the zone of memory used by the plug-in in the new context
1835
static
1836
void DupPluginOptimizationList(struct _cmsContext_struct* ctx, 
1837
                               const struct _cmsContext_struct* src)
1838
0
{
1839
0
   _cmsOptimizationPluginChunkType newHead = { NULL };
1840
0
   _cmsOptimizationCollection*  entry;
1841
0
   _cmsOptimizationCollection*  Anterior = NULL;
1842
0
   _cmsOptimizationPluginChunkType* head = (_cmsOptimizationPluginChunkType*) src->chunks[OptimizationPlugin];
1843
1844
0
    _cmsAssert(ctx != NULL);
1845
0
    _cmsAssert(head != NULL);
1846
1847
    // Walk the list copying all nodes
1848
0
   for (entry = head->OptimizationCollection;
1849
0
        entry != NULL;
1850
0
        entry = entry ->Next) {
1851
1852
0
            _cmsOptimizationCollection *newEntry = ( _cmsOptimizationCollection *) _cmsSubAllocDup(ctx ->MemPool, entry, sizeof(_cmsOptimizationCollection));
1853
   
1854
0
            if (newEntry == NULL) 
1855
0
                return;
1856
1857
            // We want to keep the linked list order, so this is a little bit tricky
1858
0
            newEntry -> Next = NULL;
1859
0
            if (Anterior)
1860
0
                Anterior -> Next = newEntry;
1861
     
1862
0
            Anterior = newEntry;
1863
1864
0
            if (newHead.OptimizationCollection == NULL)
1865
0
                newHead.OptimizationCollection = newEntry;
1866
0
    }
1867
1868
0
  ctx ->chunks[OptimizationPlugin] = _cmsSubAllocDup(ctx->MemPool, &newHead, sizeof(_cmsOptimizationPluginChunkType));
1869
0
}
1870
1871
void  _cmsAllocOptimizationPluginChunk(struct _cmsContext_struct* ctx, 
1872
                                         const struct _cmsContext_struct* src)
1873
0
{
1874
0
  if (src != NULL) {
1875
1876
        // Copy all linked list
1877
0
       DupPluginOptimizationList(ctx, src);
1878
0
    }
1879
0
    else {
1880
0
        static _cmsOptimizationPluginChunkType OptimizationPluginChunkType = { NULL };
1881
0
        ctx ->chunks[OptimizationPlugin] = _cmsSubAllocDup(ctx ->MemPool, &OptimizationPluginChunkType, sizeof(_cmsOptimizationPluginChunkType));
1882
0
    }
1883
0
}
1884
1885
1886
// Register new ways to optimize
1887
cmsBool  _cmsRegisterOptimizationPlugin(cmsContext ContextID, cmsPluginBase* Data)
1888
0
{
1889
0
    cmsPluginOptimization* Plugin = (cmsPluginOptimization*) Data;
1890
0
    _cmsOptimizationPluginChunkType* ctx = ( _cmsOptimizationPluginChunkType*) _cmsContextGetClientChunk(ContextID, OptimizationPlugin);
1891
0
    _cmsOptimizationCollection* fl;
1892
1893
0
    if (Data == NULL) {
1894
1895
0
        ctx->OptimizationCollection = NULL;
1896
0
        return TRUE;
1897
0
    }
1898
1899
    // Optimizer callback is required
1900
0
    if (Plugin ->OptimizePtr == NULL) return FALSE;
1901
1902
0
    fl = (_cmsOptimizationCollection*) _cmsPluginMalloc(ContextID, sizeof(_cmsOptimizationCollection));
1903
0
    if (fl == NULL) return FALSE;
1904
1905
    // Copy the parameters
1906
0
    fl ->OptimizePtr = Plugin ->OptimizePtr;
1907
1908
    // Keep linked list
1909
0
    fl ->Next = ctx->OptimizationCollection;
1910
1911
    // Set the head
1912
0
    ctx ->OptimizationCollection = fl;
1913
1914
    // All is ok
1915
0
    return TRUE;
1916
0
}
1917
1918
// The entry point for LUT optimization
1919
cmsBool CMSEXPORT _cmsOptimizePipeline(cmsContext ContextID,
1920
                             cmsPipeline**    PtrLut,
1921
                             cmsUInt32Number  Intent,
1922
                             cmsUInt32Number* InputFormat,
1923
                             cmsUInt32Number* OutputFormat,
1924
                             cmsUInt32Number* dwFlags)
1925
0
{
1926
0
    _cmsOptimizationPluginChunkType* ctx = ( _cmsOptimizationPluginChunkType*) _cmsContextGetClientChunk(ContextID, OptimizationPlugin);
1927
0
    _cmsOptimizationCollection* Opts;
1928
0
    cmsBool AnySuccess = FALSE;
1929
0
    cmsStage* mpe;
1930
1931
    // A CLUT is being asked, so force this specific optimization
1932
0
    if (*dwFlags & cmsFLAGS_FORCE_CLUT) {
1933
1934
0
        PreOptimize(*PtrLut);
1935
0
        return OptimizeByResampling(PtrLut, Intent, InputFormat, OutputFormat, dwFlags);
1936
0
    }
1937
1938
    // Anything to optimize?
1939
0
    if ((*PtrLut) ->Elements == NULL) {
1940
0
        _cmsPipelineSetOptimizationParameters(*PtrLut, FastIdentity16, (void*) *PtrLut, NULL, NULL);
1941
0
        return TRUE;
1942
0
    }
1943
1944
    // Named color pipelines cannot be optimized 
1945
0
    for (mpe = cmsPipelineGetPtrToFirstStage(*PtrLut);
1946
0
        mpe != NULL;
1947
0
        mpe = cmsStageNext(mpe)) {        
1948
0
            if (cmsStageType(mpe) == cmsSigNamedColorElemType) return FALSE;
1949
0
    }
1950
1951
    // Try to get rid of identities and trivial conversions.
1952
0
    AnySuccess = PreOptimize(*PtrLut);
1953
1954
    // After removal do we end with an identity?
1955
0
    if ((*PtrLut) ->Elements == NULL) {
1956
0
        _cmsPipelineSetOptimizationParameters(*PtrLut, FastIdentity16, (void*) *PtrLut, NULL, NULL);
1957
0
        return TRUE;
1958
0
    }
1959
1960
    // Do not optimize, keep all precision
1961
0
    if (*dwFlags & cmsFLAGS_NOOPTIMIZE)
1962
0
        return FALSE;
1963
1964
    // Try plug-in optimizations 
1965
0
    for (Opts = ctx->OptimizationCollection;
1966
0
         Opts != NULL;
1967
0
         Opts = Opts ->Next) {
1968
1969
            // If one schema succeeded, we are done
1970
0
            if (Opts ->OptimizePtr(PtrLut, Intent, InputFormat, OutputFormat, dwFlags)) {
1971
1972
0
                return TRUE;    // Optimized!
1973
0
            }
1974
0
    }
1975
1976
   // Try built-in optimizations 
1977
0
    for (Opts = DefaultOptimization;
1978
0
         Opts != NULL;
1979
0
         Opts = Opts ->Next) {
1980
1981
0
            if (Opts ->OptimizePtr(PtrLut, Intent, InputFormat, OutputFormat, dwFlags)) {
1982
1983
0
                return TRUE;  
1984
0
            }
1985
0
    }
1986
1987
    // Only simple optimizations succeeded
1988
0
    return AnySuccess;
1989
0
}
1990
1991
1992