Coverage Report

Created: 2026-05-24 06:10

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/lcms/src/cmslut.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
// Allocates an empty multi profile element
31
cmsStage* CMSEXPORT _cmsStageAllocPlaceholder(cmsContext ContextID,
32
                                cmsStageSignature Type,
33
                                cmsUInt32Number InputChannels,
34
                                cmsUInt32Number OutputChannels,
35
                                _cmsStageEvalFn     EvalPtr,
36
                                _cmsStageDupElemFn  DupElemPtr,
37
                                _cmsStageFreeElemFn FreePtr,
38
                                void*             Data)
39
47.5k
{
40
47.5k
    cmsStage* ph = (cmsStage*) _cmsMallocZero(ContextID, sizeof(cmsStage));
41
42
47.5k
    if (ph == NULL) return NULL;
43
44
45
47.5k
    ph ->ContextID = ContextID;
46
47
47.5k
    ph ->Type       = Type;
48
47.5k
    ph ->Implements = Type;   // By default, no clue on what is implementing
49
50
47.5k
    ph ->InputChannels  = InputChannels;
51
47.5k
    ph ->OutputChannels = OutputChannels;
52
47.5k
    ph ->EvalPtr        = EvalPtr;
53
47.5k
    ph ->DupElemPtr     = DupElemPtr;
54
47.5k
    ph ->FreePtr        = FreePtr;
55
47.5k
    ph ->Data           = Data;
56
57
47.5k
    return ph;
58
47.5k
}
59
60
61
static
62
void EvaluateIdentity(const cmsFloat32Number In[],
63
                            cmsFloat32Number Out[],
64
                      const cmsStage *mpe)
65
0
{
66
0
    memmove(Out, In, mpe ->InputChannels * sizeof(cmsFloat32Number));
67
0
}
68
69
70
cmsStage* CMSEXPORT cmsStageAllocIdentity(cmsContext ContextID, cmsUInt32Number nChannels)
71
0
{
72
0
    return _cmsStageAllocPlaceholder(ContextID,
73
0
                                   cmsSigIdentityElemType,
74
0
                                   nChannels, nChannels,
75
0
                                   EvaluateIdentity,
76
0
                                   NULL,
77
0
                                   NULL,
78
0
                                   NULL);
79
0
 }
80
81
// Conversion functions. From floating point to 16 bits
82
static
83
void FromFloatTo16(const cmsFloat32Number In[], cmsUInt16Number Out[], cmsUInt32Number n)
84
3.66M
{
85
3.66M
    cmsUInt32Number i;
86
87
14.6M
    for (i=0; i < n; i++) {
88
11.0M
        Out[i] = _cmsQuickSaturateWord(In[i] * 65535.0);
89
11.0M
    }
90
3.66M
}
91
92
// From 16 bits to floating point
93
static
94
void From16ToFloat(const cmsUInt16Number In[], cmsFloat32Number Out[], cmsUInt32Number n)
95
3.66M
{
96
3.66M
    cmsUInt32Number i;
97
98
14.6M
    for (i=0; i < n; i++) {
99
11.0M
        Out[i] = (cmsFloat32Number) In[i] / 65535.0F;
100
11.0M
    }
101
3.66M
}
102
103
104
// This function is quite useful to analyze the structure of a LUT and retrieve the MPE elements
105
// that conform the LUT. It should be called with the LUT, the number of expected elements and
106
// then a list of expected types followed with a list of cmsFloat64Number pointers to MPE elements. If
107
// the function founds a match with current pipeline, it fills the pointers and returns TRUE
108
// if not, returns FALSE without touching anything. Setting pointers to NULL does bypass
109
// the storage process.
110
cmsBool  CMSEXPORT cmsPipelineCheckAndRetreiveStages(const cmsPipeline* Lut, cmsUInt32Number n, ...)
111
635
{
112
635
    va_list args;
113
635
    cmsUInt32Number i;
114
635
    cmsStage* mpe;
115
635
    cmsStageSignature Type;
116
635
    void** ElemPtr;
117
118
    // Make sure same number of elements
119
635
    if (cmsPipelineStageCount(Lut) != n) return FALSE;
120
121
635
    va_start(args, n);
122
123
    // Iterate across asked types
124
176
    mpe = Lut ->Elements;
125
581
    for (i=0; i < n; i++) {
126
127
        // Get asked type. cmsStageSignature is promoted to int by compiler
128
423
        Type  = (cmsStageSignature)va_arg(args, int);
129
423
        if (mpe ->Type != Type) {
130
131
18
            va_end(args);       // Mismatch. We are done.
132
18
            return FALSE;
133
18
        }
134
405
        mpe = mpe ->Next;
135
405
    }
136
137
    // Found a combination, fill pointers if not NULL
138
158
    mpe = Lut ->Elements;
139
559
    for (i=0; i < n; i++) {
140
141
401
        ElemPtr = va_arg(args, void**);
142
401
        if (ElemPtr != NULL)
143
401
            *ElemPtr = mpe;
144
145
401
        mpe = mpe ->Next;
146
401
    }
147
148
158
    va_end(args);
149
158
    return TRUE;
150
176
}
151
152
// Below there are implementations for several types of elements. Each type may be implemented by a
153
// evaluation function, a duplication function, a function to free resources and a constructor.
154
155
// *************************************************************************************************
156
// Type cmsSigCurveSetElemType (curves)
157
// *************************************************************************************************
158
159
cmsToneCurve** _cmsStageGetPtrToCurveSet(const cmsStage* mpe)
160
0
{
161
0
    _cmsStageToneCurvesData* Data = (_cmsStageToneCurvesData*) mpe ->Data;
162
163
0
    return Data ->TheCurves;
164
0
}
165
166
static
167
void EvaluateCurves(const cmsFloat32Number In[],
168
                    cmsFloat32Number Out[],
169
                    const cmsStage *mpe)
170
13.4M
{
171
13.4M
    _cmsStageToneCurvesData* Data;
172
13.4M
    cmsUInt32Number i;
173
174
13.4M
    _cmsAssert(mpe != NULL);
175
176
13.4M
    Data = (_cmsStageToneCurvesData*) mpe ->Data;
177
13.4M
    if (Data == NULL) return;
178
179
13.4M
    if (Data ->TheCurves == NULL) return;
180
181
53.7M
    for (i=0; i < Data ->nCurves; i++) {
182
40.3M
        Out[i] = cmsEvalToneCurveFloat(Data ->TheCurves[i], In[i]);
183
40.3M
    }
184
13.4M
}
185
186
static
187
void CurveSetElemTypeFree(cmsStage* mpe)
188
12.0k
{
189
12.0k
    _cmsStageToneCurvesData* Data;
190
12.0k
    cmsUInt32Number i;
191
192
12.0k
    _cmsAssert(mpe != NULL);
193
194
12.0k
    Data = (_cmsStageToneCurvesData*) mpe ->Data;
195
12.0k
    if (Data == NULL) return;
196
197
12.0k
    if (Data ->TheCurves != NULL) {
198
49.7k
        for (i=0; i < Data ->nCurves; i++) {
199
37.6k
            if (Data ->TheCurves[i] != NULL)
200
37.6k
                cmsFreeToneCurve(Data ->TheCurves[i]);
201
37.6k
        }
202
12.0k
    }
203
12.0k
    _cmsFree(mpe ->ContextID, Data ->TheCurves);
204
12.0k
    _cmsFree(mpe ->ContextID, Data);
205
12.0k
}
206
207
208
static
209
void* CurveSetDup(cmsStage* mpe)
210
6.62k
{
211
6.62k
    _cmsStageToneCurvesData* Data = (_cmsStageToneCurvesData*) mpe ->Data;
212
6.62k
    _cmsStageToneCurvesData* NewElem;
213
6.62k
    cmsUInt32Number i;
214
215
6.62k
    NewElem = (_cmsStageToneCurvesData*) _cmsMallocZero(mpe ->ContextID, sizeof(_cmsStageToneCurvesData));
216
6.62k
    if (NewElem == NULL) return NULL;
217
218
6.62k
    NewElem ->nCurves   = Data ->nCurves;
219
6.62k
    NewElem ->TheCurves = (cmsToneCurve**) _cmsCalloc(mpe ->ContextID, NewElem ->nCurves, sizeof(cmsToneCurve*));
220
221
6.62k
    if (NewElem ->TheCurves == NULL) goto Error;
222
223
28.1k
    for (i=0; i < NewElem ->nCurves; i++) {
224
225
        // Duplicate each curve. It may fail.
226
21.5k
        NewElem ->TheCurves[i] = cmsDupToneCurve(Data ->TheCurves[i]);
227
21.5k
        if (NewElem ->TheCurves[i] == NULL) goto Error;
228
229
230
21.5k
    }
231
6.62k
    return (void*) NewElem;
232
233
0
Error:
234
235
0
    if (NewElem ->TheCurves != NULL) {
236
0
        for (i=0; i < NewElem ->nCurves; i++) {
237
0
            if (NewElem ->TheCurves[i])
238
0
                cmsFreeToneCurve(NewElem ->TheCurves[i]);
239
0
        }
240
0
    }
241
0
    _cmsFree(mpe ->ContextID, NewElem ->TheCurves);
242
0
    _cmsFree(mpe ->ContextID, NewElem);
243
0
    return NULL;
244
6.62k
}
245
246
247
// Curves == NULL forces identity curves
248
cmsStage* CMSEXPORT cmsStageAllocToneCurves(cmsContext ContextID, cmsUInt32Number nChannels, cmsToneCurve* const Curves[])
249
5.44k
{
250
5.44k
    cmsUInt32Number i;
251
5.44k
    _cmsStageToneCurvesData* NewElem;
252
5.44k
    cmsStage* NewMPE;
253
254
255
5.44k
    NewMPE = _cmsStageAllocPlaceholder(ContextID, cmsSigCurveSetElemType, nChannels, nChannels,
256
5.44k
                                     EvaluateCurves, CurveSetDup, CurveSetElemTypeFree, NULL );
257
5.44k
    if (NewMPE == NULL) return NULL;
258
259
5.44k
    NewElem = (_cmsStageToneCurvesData*) _cmsMallocZero(ContextID, sizeof(_cmsStageToneCurvesData));
260
5.44k
    if (NewElem == NULL) {
261
0
        cmsStageFree(NewMPE);
262
0
        return NULL;
263
0
    }
264
265
5.44k
    NewMPE ->Data  = (void*) NewElem;
266
267
5.44k
    NewElem ->nCurves   = nChannels;
268
5.44k
    NewElem ->TheCurves = (cmsToneCurve**) _cmsCalloc(ContextID, nChannels, sizeof(cmsToneCurve*));
269
5.44k
    if (NewElem ->TheCurves == NULL) {
270
0
        cmsStageFree(NewMPE);
271
0
        return NULL;
272
0
    }
273
274
21.6k
    for (i=0; i < nChannels; i++) {
275
276
16.1k
        if (Curves == NULL) {
277
0
            NewElem ->TheCurves[i] = cmsBuildGamma(ContextID, 1.0);
278
0
        }
279
16.1k
        else {
280
16.1k
            NewElem ->TheCurves[i] = cmsDupToneCurve(Curves[i]);
281
16.1k
        }
282
283
16.1k
        if (NewElem ->TheCurves[i] == NULL) {
284
0
            cmsStageFree(NewMPE);
285
0
            return NULL;
286
0
        }
287
288
16.1k
    }
289
290
5.44k
   return NewMPE;
291
5.44k
}
292
293
294
// Create a bunch of identity curves
295
cmsStage* CMSEXPORT _cmsStageAllocIdentityCurves(cmsContext ContextID, cmsUInt32Number nChannels)
296
0
{
297
0
    cmsStage* mpe = cmsStageAllocToneCurves(ContextID, nChannels, NULL);
298
299
0
    if (mpe == NULL) return NULL;
300
0
    mpe ->Implements = cmsSigIdentityElemType;
301
0
    return mpe;
302
0
}
303
304
305
// *************************************************************************************************
306
// Type cmsSigMatrixElemType (Matrices)
307
// *************************************************************************************************
308
309
310
// Special care should be taken here because precision loss. A temporary cmsFloat64Number buffer is being used
311
static
312
void EvaluateMatrix(const cmsFloat32Number In[],
313
                    cmsFloat32Number Out[],
314
                    const cmsStage *mpe)
315
46.3M
{
316
46.3M
    cmsUInt32Number i, j;
317
46.3M
    _cmsStageMatrixData* Data = (_cmsStageMatrixData*) mpe ->Data;
318
46.3M
    cmsFloat64Number Tmp;
319
320
    // Input is already in 0..1.0 notation
321
185M
    for (i=0; i < mpe ->OutputChannels; i++) {
322
323
138M
        Tmp = 0;
324
555M
        for (j=0; j < mpe->InputChannels; j++) {
325
416M
            Tmp += In[j] * Data->Double[i*mpe->InputChannels + j];
326
416M
        }
327
328
138M
        if (Data ->Offset != NULL)
329
89.0M
            Tmp += Data->Offset[i];
330
331
138M
        Out[i] = (cmsFloat32Number) Tmp;
332
138M
    }
333
334
335
    // Output in 0..1.0 domain
336
46.3M
}
337
338
339
// Duplicate a yet-existing matrix element
340
static
341
void* MatrixElemDup(cmsStage* mpe)
342
10.6k
{
343
10.6k
    _cmsStageMatrixData* Data = (_cmsStageMatrixData*) mpe ->Data;
344
10.6k
    _cmsStageMatrixData* NewElem;
345
10.6k
    cmsUInt32Number sz;
346
347
10.6k
    NewElem = (_cmsStageMatrixData*) _cmsMallocZero(mpe ->ContextID, sizeof(_cmsStageMatrixData));
348
10.6k
    if (NewElem == NULL) return NULL;
349
350
10.6k
    sz = mpe ->InputChannels * mpe ->OutputChannels;
351
352
10.6k
    NewElem ->Double = (cmsFloat64Number*) _cmsDupMem(mpe ->ContextID, Data ->Double, sz * sizeof(cmsFloat64Number)) ;
353
354
10.6k
    if (Data ->Offset)
355
2.65k
        NewElem ->Offset = (cmsFloat64Number*) _cmsDupMem(mpe ->ContextID,
356
2.65k
                                                Data ->Offset, mpe -> OutputChannels * sizeof(cmsFloat64Number)) ;
357
358
10.6k
    return (void*) NewElem;
359
10.6k
}
360
361
362
static
363
void MatrixElemTypeFree(cmsStage* mpe)
364
20.4k
{
365
20.4k
    _cmsStageMatrixData* Data = (_cmsStageMatrixData*) mpe ->Data;
366
20.4k
    if (Data == NULL)
367
0
        return;
368
20.4k
    if (Data ->Double)
369
20.4k
        _cmsFree(mpe ->ContextID, Data ->Double);
370
371
20.4k
    if (Data ->Offset)
372
4.70k
        _cmsFree(mpe ->ContextID, Data ->Offset);
373
374
20.4k
    _cmsFree(mpe ->ContextID, mpe ->Data);
375
20.4k
}
376
377
378
379
cmsStage*  CMSEXPORT cmsStageAllocMatrix(cmsContext ContextID, cmsUInt32Number Rows, cmsUInt32Number Cols,
380
                                     const cmsFloat64Number* Matrix, const cmsFloat64Number* Offset)
381
9.82k
{
382
9.82k
    cmsUInt32Number i, n;
383
9.82k
    _cmsStageMatrixData* NewElem;
384
9.82k
    cmsStage* NewMPE;
385
386
9.82k
    n = Rows * Cols;
387
388
    // Check for overflow
389
9.82k
    if (n == 0) return NULL;
390
9.82k
    if (n >= UINT_MAX / Cols) return NULL;
391
9.82k
    if (n >= UINT_MAX / Rows) return NULL;
392
9.82k
    if (n < Rows || n < Cols) return NULL;
393
394
9.82k
    NewMPE = _cmsStageAllocPlaceholder(ContextID, cmsSigMatrixElemType, Cols, Rows,
395
9.82k
                                     EvaluateMatrix, MatrixElemDup, MatrixElemTypeFree, NULL );
396
9.82k
    if (NewMPE == NULL) return NULL;
397
398
399
9.82k
    NewElem = (_cmsStageMatrixData*) _cmsMallocZero(ContextID, sizeof(_cmsStageMatrixData));
400
9.82k
    if (NewElem == NULL) goto Error;
401
9.82k
    NewMPE->Data = (void*)NewElem;
402
403
9.82k
    NewElem ->Double = (cmsFloat64Number*) _cmsCalloc(ContextID, n, sizeof(cmsFloat64Number));
404
9.82k
    if (NewElem->Double == NULL) goto Error;
405
   
406
97.6k
    for (i=0; i < n; i++) {
407
87.8k
        NewElem ->Double[i] = Matrix[i];
408
87.8k
    }
409
410
9.82k
    if (Offset != NULL) {
411
412
2.04k
        NewElem ->Offset = (cmsFloat64Number*) _cmsCalloc(ContextID, Rows, sizeof(cmsFloat64Number));
413
2.04k
        if (NewElem->Offset == NULL) goto Error;
414
           
415
8.12k
        for (i=0; i < Rows; i++) {
416
6.07k
                NewElem ->Offset[i] = Offset[i];
417
6.07k
        }
418
2.04k
    }
419
    
420
9.82k
    return NewMPE;
421
422
0
Error:
423
0
    cmsStageFree(NewMPE);
424
0
    return NULL;
425
9.82k
}
426
427
428
// *************************************************************************************************
429
// Type cmsSigCLutElemType
430
// *************************************************************************************************
431
432
433
// Evaluate in true floating point
434
static
435
void EvaluateCLUTfloat(const cmsFloat32Number In[], cmsFloat32Number Out[], const cmsStage *mpe)
436
20.3M
{
437
20.3M
    _cmsStageCLutData* Data = (_cmsStageCLutData*) mpe ->Data;
438
439
20.3M
    Data -> Params ->Interpolation.LerpFloat(In, Out, Data->Params);
440
20.3M
}
441
442
443
// Convert to 16 bits, evaluate, and back to floating point
444
static
445
void EvaluateCLUTfloatIn16(const cmsFloat32Number In[], cmsFloat32Number Out[], const cmsStage *mpe)
446
3.66M
{
447
3.66M
    _cmsStageCLutData* Data = (_cmsStageCLutData*) mpe ->Data;
448
3.66M
    cmsUInt16Number In16[MAX_STAGE_CHANNELS], Out16[MAX_STAGE_CHANNELS];
449
450
3.66M
    _cmsAssert(mpe ->InputChannels  <= MAX_STAGE_CHANNELS);
451
3.66M
    _cmsAssert(mpe ->OutputChannels <= MAX_STAGE_CHANNELS);
452
453
3.66M
    FromFloatTo16(In, In16, mpe ->InputChannels);
454
3.66M
    Data -> Params ->Interpolation.Lerp16(In16, Out16, Data->Params);
455
3.66M
    From16ToFloat(Out16, Out,  mpe ->OutputChannels);
456
3.66M
}
457
458
459
// Given an hypercube of b dimensions, with Dims[] number of nodes by dimension, calculate the total amount of nodes
460
static
461
cmsUInt32Number CubeSize(const cmsUInt32Number Dims[], cmsUInt32Number b)
462
6.21k
{
463
6.21k
    cmsUInt32Number dim;
464
6.21k
    cmsUInt64Number rv;
465
466
6.21k
    _cmsAssert(Dims != NULL);
467
468
26.8k
    for (rv = 1; b > 0; b--) {
469
470
20.7k
        dim = Dims[b-1];
471
20.7k
        if (dim <= 1) return 0;  
472
473
        // Check for overflow
474
20.7k
        if (rv > UINT_MAX / dim) return 0;
475
476
20.6k
        rv *= dim;
477
20.6k
    }
478
479
    // Again, prevent overflow
480
6.16k
    if (rv > UINT_MAX / 15) return 0;
481
482
6.16k
    return (cmsUInt32Number) rv;
483
6.16k
}
484
485
static
486
void* CLUTElemDup(cmsStage* mpe)
487
8.18k
{
488
8.18k
    _cmsStageCLutData* Data = (_cmsStageCLutData*) mpe ->Data;
489
8.18k
    _cmsStageCLutData* NewElem;
490
491
492
8.18k
    NewElem = (_cmsStageCLutData*) _cmsMallocZero(mpe ->ContextID, sizeof(_cmsStageCLutData));
493
8.18k
    if (NewElem == NULL) return NULL;
494
495
8.18k
    NewElem ->nEntries       = Data ->nEntries;
496
8.18k
    NewElem ->HasFloatValues = Data ->HasFloatValues;
497
498
8.18k
    if (Data ->Tab.T) {
499
500
8.18k
        if (Data ->HasFloatValues) {
501
1.57k
            NewElem ->Tab.TFloat = (cmsFloat32Number*) _cmsDupMem(mpe ->ContextID, Data ->Tab.TFloat, Data ->nEntries * sizeof (cmsFloat32Number));
502
1.57k
            if (NewElem ->Tab.TFloat == NULL)
503
0
                goto Error;
504
6.60k
        } else {
505
6.60k
            NewElem ->Tab.T = (cmsUInt16Number*) _cmsDupMem(mpe ->ContextID, Data ->Tab.T, Data ->nEntries * sizeof (cmsUInt16Number));
506
6.60k
            if (NewElem ->Tab.T == NULL)
507
0
                goto Error;
508
6.60k
        }
509
8.18k
    }
510
511
8.18k
    NewElem ->Params   = _cmsComputeInterpParamsEx(mpe ->ContextID,
512
8.18k
                                                   Data ->Params ->nSamples,
513
8.18k
                                                   Data ->Params ->nInputs,
514
8.18k
                                                   Data ->Params ->nOutputs,
515
8.18k
                                                   NewElem ->Tab.T,
516
8.18k
                                                   Data ->Params ->dwFlags);
517
8.18k
    if (NewElem->Params != NULL)
518
8.18k
        return (void*) NewElem;
519
0
 Error:
520
0
    if (NewElem->Tab.T)
521
        // This works for both types
522
0
        _cmsFree(mpe ->ContextID, NewElem -> Tab.T);
523
0
    _cmsFree(mpe ->ContextID, NewElem);
524
0
    return NULL;
525
8.18k
}
526
527
528
static
529
void CLutElemTypeFree(cmsStage* mpe)
530
12.5k
{
531
532
12.5k
    _cmsStageCLutData* Data = (_cmsStageCLutData*) mpe ->Data;
533
534
    // Already empty
535
12.5k
    if (Data == NULL) return;
536
537
    // This works for both types
538
12.5k
    if (Data -> Tab.T)
539
12.4k
        _cmsFree(mpe ->ContextID, Data -> Tab.T);
540
541
12.5k
    _cmsFreeInterpParams(Data ->Params);
542
12.5k
    _cmsFree(mpe ->ContextID, mpe ->Data);
543
12.5k
}
544
545
546
// Allocates a 16-bit multidimensional CLUT. This is evaluated at 16-bit precision. Table may have different
547
// granularity on each dimension.
548
cmsStage* CMSEXPORT cmsStageAllocCLut16bitGranular(cmsContext ContextID,
549
                                         const cmsUInt32Number clutPoints[],
550
                                         cmsUInt32Number inputChan,
551
                                         cmsUInt32Number outputChan,
552
                                         const cmsUInt16Number* Table)
553
2.73k
{
554
2.73k
    cmsUInt32Number i, n;
555
2.73k
    _cmsStageCLutData* NewElem;
556
2.73k
    cmsStage* NewMPE;
557
558
2.73k
    _cmsAssert(clutPoints != NULL);
559
560
2.73k
    if (inputChan > MAX_INPUT_DIMENSIONS) {
561
0
        cmsSignalError(ContextID, cmsERROR_RANGE, "Too many input channels (%d channels, max=%d)", inputChan, MAX_INPUT_DIMENSIONS);
562
0
        return NULL;
563
0
    }
564
565
2.73k
    NewMPE = _cmsStageAllocPlaceholder(ContextID, cmsSigCLutElemType, inputChan, outputChan,
566
2.73k
                                     EvaluateCLUTfloatIn16, CLUTElemDup, CLutElemTypeFree, NULL );
567
568
2.73k
    if (NewMPE == NULL) return NULL;
569
570
2.73k
    NewElem = (_cmsStageCLutData*) _cmsMallocZero(ContextID, sizeof(_cmsStageCLutData));
571
2.73k
    if (NewElem == NULL) {
572
0
        cmsStageFree(NewMPE);
573
0
        return NULL;
574
0
    }
575
576
2.73k
    NewMPE ->Data  = (void*) NewElem;
577
578
2.73k
    NewElem -> nEntries = n = outputChan * CubeSize(clutPoints, inputChan);
579
2.73k
    NewElem -> HasFloatValues = FALSE;
580
581
2.73k
    if (n == 0) {
582
27
        cmsStageFree(NewMPE);
583
27
        return NULL;
584
27
    }
585
586
587
2.70k
    NewElem ->Tab.T  = (cmsUInt16Number*) _cmsCalloc(ContextID, n, sizeof(cmsUInt16Number));
588
2.70k
    if (NewElem ->Tab.T == NULL) {
589
18
        cmsStageFree(NewMPE);
590
18
        return NULL;
591
18
    }
592
593
2.68k
    if (Table != NULL) {
594
1.65M
        for (i=0; i < n; i++) {
595
1.65M
            NewElem ->Tab.T[i] = Table[i];
596
1.65M
        }
597
681
    }
598
599
2.68k
    NewElem ->Params = _cmsComputeInterpParamsEx(ContextID, clutPoints, inputChan, outputChan, NewElem ->Tab.T, CMS_LERP_FLAGS_16BITS);
600
2.68k
    if (NewElem ->Params == NULL) {
601
0
        cmsStageFree(NewMPE);
602
0
        return NULL;
603
0
    }
604
605
2.68k
    return NewMPE;
606
2.68k
}
607
608
cmsStage* CMSEXPORT cmsStageAllocCLut16bit(cmsContext ContextID,
609
                                    cmsUInt32Number nGridPoints,
610
                                    cmsUInt32Number inputChan,
611
                                    cmsUInt32Number outputChan,
612
                                    const cmsUInt16Number* Table)
613
879
{
614
879
    cmsUInt32Number Dimensions[MAX_INPUT_DIMENSIONS];
615
879
    int i;
616
617
   // Our resulting LUT would be same gridpoints on all dimensions
618
14.0k
    for (i=0; i < MAX_INPUT_DIMENSIONS; i++)
619
13.1k
        Dimensions[i] = nGridPoints;
620
621
879
    return cmsStageAllocCLut16bitGranular(ContextID, Dimensions, inputChan, outputChan, Table);
622
879
}
623
624
625
cmsStage* CMSEXPORT cmsStageAllocCLutFloat(cmsContext ContextID,
626
                                       cmsUInt32Number nGridPoints,
627
                                       cmsUInt32Number inputChan,
628
                                       cmsUInt32Number outputChan,
629
                                       const cmsFloat32Number* Table)
630
0
{
631
0
   cmsUInt32Number Dimensions[MAX_INPUT_DIMENSIONS];
632
0
   int i;
633
634
    // Our resulting LUT would be same gridpoints on all dimensions
635
0
    for (i=0; i < MAX_INPUT_DIMENSIONS; i++)
636
0
        Dimensions[i] = nGridPoints;
637
638
0
    return cmsStageAllocCLutFloatGranular(ContextID, Dimensions, inputChan, outputChan, Table);
639
0
}
640
641
642
643
cmsStage* CMSEXPORT cmsStageAllocCLutFloatGranular(cmsContext ContextID, const cmsUInt32Number clutPoints[], cmsUInt32Number inputChan, cmsUInt32Number outputChan, const cmsFloat32Number* Table)
644
1.63k
{
645
1.63k
    cmsUInt32Number i, n;
646
1.63k
    _cmsStageCLutData* NewElem;
647
1.63k
    cmsStage* NewMPE;
648
649
1.63k
    _cmsAssert(clutPoints != NULL);
650
651
1.63k
    if (inputChan > MAX_INPUT_DIMENSIONS) {
652
0
        cmsSignalError(ContextID, cmsERROR_RANGE, "Too many input channels (%d channels, max=%d)", inputChan, MAX_INPUT_DIMENSIONS);
653
0
        return NULL;
654
0
    }
655
656
1.63k
    NewMPE = _cmsStageAllocPlaceholder(ContextID, cmsSigCLutElemType, inputChan, outputChan,
657
1.63k
                                             EvaluateCLUTfloat, CLUTElemDup, CLutElemTypeFree, NULL);
658
1.63k
    if (NewMPE == NULL) return NULL;
659
660
661
1.63k
    NewElem = (_cmsStageCLutData*) _cmsMallocZero(ContextID, sizeof(_cmsStageCLutData));
662
1.63k
    if (NewElem == NULL) {
663
0
        cmsStageFree(NewMPE);
664
0
        return NULL;
665
0
    }
666
667
1.63k
    NewMPE ->Data  = (void*) NewElem;
668
669
    // There is a potential integer overflow on conputing n and nEntries.
670
1.63k
    NewElem -> nEntries = n = outputChan * CubeSize(clutPoints, inputChan);
671
1.63k
    NewElem -> HasFloatValues = TRUE;
672
673
1.63k
    if (n == 0) {
674
21
        cmsStageFree(NewMPE);
675
21
        return NULL;
676
21
    }
677
678
1.61k
    NewElem ->Tab.TFloat  = (cmsFloat32Number*) _cmsCalloc(ContextID, n, sizeof(cmsFloat32Number));
679
1.61k
    if (NewElem ->Tab.TFloat == NULL) {
680
20
        cmsStageFree(NewMPE);
681
20
        return NULL;
682
20
    }
683
684
1.59k
    if (Table != NULL) {
685
0
        for (i=0; i < n; i++) {
686
0
            NewElem ->Tab.TFloat[i] = Table[i];
687
0
        }
688
0
    }
689
690
1.59k
    NewElem ->Params = _cmsComputeInterpParamsEx(ContextID, clutPoints,  inputChan, outputChan, NewElem ->Tab.TFloat, CMS_LERP_FLAGS_FLOAT);
691
1.59k
    if (NewElem ->Params == NULL) {
692
0
        cmsStageFree(NewMPE);
693
0
        return NULL;
694
0
    }
695
696
1.59k
    return NewMPE;
697
1.59k
}
698
699
700
static
701
int IdentitySampler(CMSREGISTER const cmsUInt16Number In[], CMSREGISTER cmsUInt16Number Out[], CMSREGISTER void * Cargo)
702
13.1k
{
703
13.1k
    int nChan = *(int*) Cargo;
704
13.1k
    int i;
705
706
52.7k
    for (i=0; i < nChan; i++)
707
39.5k
        Out[i] = In[i];
708
709
13.1k
    return 1;
710
13.1k
}
711
712
// Creates an MPE that just copies input to output
713
cmsStage* CMSEXPORT _cmsStageAllocIdentityCLut(cmsContext ContextID, cmsUInt32Number nChan)
714
1.64k
{
715
1.64k
    cmsUInt32Number Dimensions[MAX_INPUT_DIMENSIONS];
716
1.64k
    cmsStage* mpe ;
717
1.64k
    int i;
718
719
26.3k
    for (i=0; i < MAX_INPUT_DIMENSIONS; i++)
720
24.7k
        Dimensions[i] = 2;
721
722
1.64k
    mpe = cmsStageAllocCLut16bitGranular(ContextID, Dimensions, nChan, nChan, NULL);
723
1.64k
    if (mpe == NULL) return NULL;
724
725
1.64k
    if (!cmsStageSampleCLut16bit(mpe, IdentitySampler, &nChan, 0)) {
726
0
        cmsStageFree(mpe);
727
0
        return NULL;
728
0
    }
729
730
1.64k
    mpe ->Implements = cmsSigIdentityElemType;
731
1.64k
    return mpe;
732
1.64k
}
733
734
735
736
// Quantize a value 0 <= i < MaxSamples to 0..0xffff
737
cmsUInt16Number CMSEXPORT _cmsQuantizeVal(cmsFloat64Number i, cmsUInt32Number MaxSamples)
738
21.3M
{
739
21.3M
    cmsFloat64Number x;
740
741
21.3M
    x = ((cmsFloat64Number) i * 65535.) / (cmsFloat64Number) (MaxSamples - 1);
742
21.3M
    return _cmsQuickSaturateWord(x);
743
21.3M
}
744
745
746
// This routine does a sweep on whole input space, and calls its callback
747
// function on knots. returns TRUE if all ok, FALSE otherwise.
748
cmsBool CMSEXPORT cmsStageSampleCLut16bit(cmsStage* mpe, cmsSAMPLER16 Sampler, void * Cargo, cmsUInt32Number dwFlags)
749
1.84k
{
750
1.84k
    int i, t, index, rest;
751
1.84k
    cmsUInt32Number nTotalPoints;
752
1.84k
    cmsUInt32Number nInputs, nOutputs;
753
1.84k
    cmsUInt32Number* nSamples;
754
1.84k
    cmsUInt16Number In[MAX_INPUT_DIMENSIONS+1], Out[MAX_STAGE_CHANNELS];
755
1.84k
    _cmsStageCLutData* clut;
756
757
1.84k
    if (mpe == NULL) return FALSE;
758
759
1.84k
    clut = (_cmsStageCLutData*) mpe->Data;
760
761
1.84k
    if (clut == NULL) return FALSE;
762
763
1.84k
    nSamples = clut->Params ->nSamples;
764
1.84k
    nInputs  = clut->Params ->nInputs;
765
1.84k
    nOutputs = clut->Params ->nOutputs;
766
767
1.84k
    if (nInputs <= 0) return FALSE;
768
1.84k
    if (nOutputs <= 0) return FALSE;
769
1.84k
    if (nInputs > MAX_INPUT_DIMENSIONS) return FALSE;
770
1.84k
    if (nOutputs >= MAX_STAGE_CHANNELS) return FALSE;
771
772
1.84k
    memset(In, 0, sizeof(In));
773
1.84k
    memset(Out, 0, sizeof(Out));
774
775
1.84k
    nTotalPoints = CubeSize(nSamples, nInputs);
776
1.84k
    if (nTotalPoints == 0) return FALSE;
777
778
1.84k
    index = 0;
779
7.13M
    for (i = 0; i < (int) nTotalPoints; i++) {
780
781
7.12M
        rest = i;
782
28.5M
        for (t = (int)nInputs - 1; t >= 0; --t) {
783
784
21.3M
            cmsUInt32Number  Colorant = rest % nSamples[t];
785
786
21.3M
            rest /= nSamples[t];
787
788
21.3M
            In[t] = _cmsQuantizeVal(Colorant, nSamples[t]);
789
21.3M
        }
790
791
7.12M
        if (clut ->Tab.T != NULL) {
792
28.5M
            for (t = 0; t < (int)nOutputs; t++)
793
21.3M
                Out[t] = clut->Tab.T[index + t];
794
7.12M
        }
795
796
7.12M
        if (!Sampler(In, Out, Cargo))
797
0
            return FALSE;
798
799
7.12M
        if (!(dwFlags & SAMPLER_INSPECT)) {
800
801
7.12M
            if (clut ->Tab.T != NULL) {
802
28.5M
                for (t=0; t < (int) nOutputs; t++)
803
21.3M
                    clut->Tab.T[index + t] = Out[t];
804
7.12M
            }
805
7.12M
        }
806
807
7.12M
        index += nOutputs;
808
7.12M
    }
809
810
1.84k
    return TRUE;
811
1.84k
}
812
813
// Same as anterior, but for floating point
814
cmsBool CMSEXPORT cmsStageSampleCLutFloat(cmsStage* mpe, cmsSAMPLERFLOAT Sampler, void * Cargo, cmsUInt32Number dwFlags)
815
0
{
816
0
    int i, t, index, rest;
817
0
    cmsUInt32Number nTotalPoints;
818
0
    cmsUInt32Number nInputs, nOutputs;
819
0
    cmsUInt32Number* nSamples;
820
0
    cmsFloat32Number In[MAX_INPUT_DIMENSIONS+1], Out[MAX_STAGE_CHANNELS];
821
0
    _cmsStageCLutData* clut;
822
823
0
    if (mpe == NULL) return FALSE;
824
825
0
    clut = (_cmsStageCLutData*)mpe->Data;
826
827
0
    if (clut == NULL) return FALSE;
828
829
0
    nSamples = clut->Params ->nSamples;
830
0
    nInputs  = clut->Params ->nInputs;
831
0
    nOutputs = clut->Params ->nOutputs;
832
833
0
    if (nInputs <= 0) return FALSE;
834
0
    if (nOutputs <= 0) return FALSE;
835
0
    if (nInputs  > MAX_INPUT_DIMENSIONS) return FALSE;
836
0
    if (nOutputs >= MAX_STAGE_CHANNELS) return FALSE;
837
838
0
    nTotalPoints = CubeSize(nSamples, nInputs);
839
0
    if (nTotalPoints == 0) return FALSE;
840
841
0
    index = 0;
842
0
    for (i = 0; i < (int)nTotalPoints; i++) {
843
844
0
        rest = i;
845
0
        for (t = (int) nInputs-1; t >=0; --t) {
846
847
0
            cmsUInt32Number  Colorant = rest % nSamples[t];
848
849
0
            rest /= nSamples[t];
850
851
0
            In[t] =  (cmsFloat32Number) (_cmsQuantizeVal(Colorant, nSamples[t]) / 65535.0);
852
0
        }
853
854
0
        if (clut ->Tab.TFloat != NULL) {
855
0
            for (t=0; t < (int) nOutputs; t++)
856
0
                Out[t] = clut->Tab.TFloat[index + t];
857
0
        }
858
859
0
        if (!Sampler(In, Out, Cargo))
860
0
            return FALSE;
861
862
0
        if (!(dwFlags & SAMPLER_INSPECT)) {
863
864
0
            if (clut ->Tab.TFloat != NULL) {
865
0
                for (t=0; t < (int) nOutputs; t++)
866
0
                    clut->Tab.TFloat[index + t] = Out[t];
867
0
            }
868
0
        }
869
870
0
        index += nOutputs;
871
0
    }
872
873
0
    return TRUE;
874
0
}
875
876
877
878
// This routine does a sweep on whole input space, and calls its callback
879
// function on knots. returns TRUE if all ok, FALSE otherwise.
880
cmsBool CMSEXPORT cmsSliceSpace16(cmsUInt32Number nInputs, const cmsUInt32Number clutPoints[],
881
                                         cmsSAMPLER16 Sampler, void * Cargo)
882
0
{
883
0
    int i, t, rest;
884
0
    cmsUInt32Number nTotalPoints;
885
0
    cmsUInt16Number In[cmsMAXCHANNELS];
886
887
0
    if (nInputs >= cmsMAXCHANNELS) return FALSE;
888
889
0
    nTotalPoints = CubeSize(clutPoints, nInputs);
890
0
    if (nTotalPoints == 0) return FALSE;
891
892
0
    for (i = 0; i < (int) nTotalPoints; i++) {
893
894
0
        rest = i;
895
0
        for (t = (int) nInputs-1; t >=0; --t) {
896
897
0
            cmsUInt32Number  Colorant = rest % clutPoints[t];
898
899
0
            rest /= clutPoints[t];
900
0
            In[t] = _cmsQuantizeVal(Colorant, clutPoints[t]);
901
902
0
        }
903
904
0
        if (!Sampler(In, NULL, Cargo))
905
0
            return FALSE;
906
0
    }
907
908
0
    return TRUE;
909
0
}
910
911
cmsInt32Number CMSEXPORT cmsSliceSpaceFloat(cmsUInt32Number nInputs, const cmsUInt32Number clutPoints[],
912
                                            cmsSAMPLERFLOAT Sampler, void * Cargo)
913
0
{
914
0
    int i, t, rest;
915
0
    cmsUInt32Number nTotalPoints;
916
0
    cmsFloat32Number In[cmsMAXCHANNELS];
917
918
0
    if (nInputs >= cmsMAXCHANNELS) return FALSE;
919
920
0
    nTotalPoints = CubeSize(clutPoints, nInputs);
921
0
    if (nTotalPoints == 0) return FALSE;
922
923
0
    for (i = 0; i < (int) nTotalPoints; i++) {
924
925
0
        rest = i;
926
0
        for (t = (int) nInputs-1; t >=0; --t) {
927
928
0
            cmsUInt32Number  Colorant = rest % clutPoints[t];
929
930
0
            rest /= clutPoints[t];
931
0
            In[t] =  (cmsFloat32Number) (_cmsQuantizeVal(Colorant, clutPoints[t]) / 65535.0);
932
933
0
        }
934
935
0
        if (!Sampler(In, NULL, Cargo))
936
0
            return FALSE;
937
0
    }
938
939
0
    return TRUE;
940
0
}
941
942
// ********************************************************************************
943
// Type cmsSigLab2XYZElemType
944
// ********************************************************************************
945
946
947
static
948
void EvaluateLab2XYZ(const cmsFloat32Number In[],
949
                     cmsFloat32Number Out[],
950
                     const cmsStage *mpe)
951
5.82M
{
952
5.82M
    cmsCIELab Lab;
953
5.82M
    cmsCIEXYZ XYZ;
954
5.82M
    const cmsFloat64Number XYZadj = MAX_ENCODEABLE_XYZ;
955
956
    // V4 rules
957
5.82M
    Lab.L = In[0] * 100.0;
958
5.82M
    Lab.a = In[1] * 255.0 - 128.0;
959
5.82M
    Lab.b = In[2] * 255.0 - 128.0;
960
961
5.82M
    cmsLab2XYZ(NULL, &XYZ, &Lab);
962
963
    // From XYZ, range 0..19997 to 0..1.0, note that 1.99997 comes from 0xffff
964
    // encoded as 1.15 fixed point, so 1 + (32767.0 / 32768.0)
965
966
5.82M
    Out[0] = (cmsFloat32Number) ((cmsFloat64Number) XYZ.X / XYZadj);
967
5.82M
    Out[1] = (cmsFloat32Number) ((cmsFloat64Number) XYZ.Y / XYZadj);
968
5.82M
    Out[2] = (cmsFloat32Number) ((cmsFloat64Number) XYZ.Z / XYZadj);
969
5.82M
    return;
970
971
0
    cmsUNUSED_PARAMETER(mpe);
972
0
}
973
974
975
// No dup or free routines needed, as the structure has no pointers in it.
976
cmsStage* CMSEXPORT _cmsStageAllocLab2XYZ(cmsContext ContextID)
977
913
{
978
913
    return _cmsStageAllocPlaceholder(ContextID, cmsSigLab2XYZElemType, 3, 3, EvaluateLab2XYZ, NULL, NULL, NULL);
979
913
}
980
981
// ********************************************************************************
982
983
// v2 L=100 is supposed to be placed on 0xFF00. There is no reasonable
984
// number of gridpoints that would make exact match. However, a prelinearization
985
// of 258 entries, would map 0xFF00 exactly on entry 257, and this is good to avoid scum dot.
986
// Almost all what we need but unfortunately, the rest of entries should be scaled by
987
// (255*257/256) and this is not exact.
988
989
cmsStage* _cmsStageAllocLabV2ToV4curves(cmsContext ContextID)
990
0
{
991
0
    cmsStage* mpe;
992
0
    cmsToneCurve* LabTable[3];
993
0
    int i, j;
994
995
0
    LabTable[0] = cmsBuildTabulatedToneCurve16(ContextID, 258, NULL);
996
0
    LabTable[1] = cmsBuildTabulatedToneCurve16(ContextID, 258, NULL);
997
0
    LabTable[2] = cmsBuildTabulatedToneCurve16(ContextID, 258, NULL);
998
999
0
    for (j=0; j < 3; j++) {
1000
1001
0
        if (LabTable[j] == NULL) {
1002
0
            cmsFreeToneCurveTriple(LabTable);
1003
0
            return NULL;
1004
0
        }
1005
1006
        // We need to map * (0xffff / 0xff00), that's same as (257 / 256)
1007
        // So we can use 258-entry tables to do the trick (i / 257) * (255 * 257) * (257 / 256);
1008
0
        for (i=0; i < 257; i++)  {
1009
1010
0
            LabTable[j]->Table16[i] = (cmsUInt16Number) ((i * 0xffff + 0x80) >> 8);
1011
0
        }
1012
1013
0
        LabTable[j] ->Table16[257] = 0xffff;
1014
0
    }
1015
1016
0
    mpe = cmsStageAllocToneCurves(ContextID, 3, LabTable);
1017
0
    cmsFreeToneCurveTriple(LabTable);
1018
1019
0
    if (mpe == NULL) return NULL;
1020
0
    mpe ->Implements = cmsSigLabV2toV4;
1021
0
    return mpe;
1022
0
}
1023
1024
// ********************************************************************************
1025
1026
// Matrix-based conversion, which is more accurate, but slower and cannot properly be saved in devicelink profiles
1027
cmsStage* CMSEXPORT _cmsStageAllocLabV2ToV4(cmsContext ContextID)
1028
2.32k
{
1029
2.32k
    static const cmsFloat64Number V2ToV4[] = { 65535.0/65280.0, 0, 0,
1030
2.32k
                                     0, 65535.0/65280.0, 0,
1031
2.32k
                                     0, 0, 65535.0/65280.0
1032
2.32k
                                     };
1033
1034
2.32k
    cmsStage *mpe = cmsStageAllocMatrix(ContextID, 3, 3, V2ToV4, NULL);
1035
1036
2.32k
    if (mpe == NULL) return mpe;
1037
2.32k
    mpe ->Implements = cmsSigLabV2toV4;
1038
2.32k
    return mpe;
1039
2.32k
}
1040
1041
1042
// Reverse direction
1043
cmsStage* CMSEXPORT _cmsStageAllocLabV4ToV2(cmsContext ContextID)
1044
1.78k
{
1045
1.78k
    static const cmsFloat64Number V4ToV2[] = { 65280.0/65535.0, 0, 0,
1046
1.78k
                                     0, 65280.0/65535.0, 0,
1047
1.78k
                                     0, 0, 65280.0/65535.0
1048
1.78k
                                     };
1049
1050
1.78k
     cmsStage *mpe = cmsStageAllocMatrix(ContextID, 3, 3, V4ToV2, NULL);
1051
1052
1.78k
    if (mpe == NULL) return mpe;
1053
1.78k
    mpe ->Implements = cmsSigLabV4toV2;
1054
1.78k
    return mpe;
1055
1.78k
}
1056
1057
1058
// To Lab to float. Note that the MPE gives numbers in normal Lab range
1059
// and we need 0..1.0 range for the formatters
1060
// L* : 0...100 => 0...1.0  (L* / 100)
1061
// ab* : -128..+127 to 0..1  ((ab* + 128) / 255)
1062
1063
cmsStage* _cmsStageNormalizeFromLabFloat(cmsContext ContextID)
1064
217
{
1065
217
    static const cmsFloat64Number a1[] = {
1066
217
        1.0/100.0, 0, 0,
1067
217
        0, 1.0/255.0, 0,
1068
217
        0, 0, 1.0/255.0
1069
217
    };
1070
1071
217
    static const cmsFloat64Number o1[] = {
1072
217
        0,
1073
217
        128.0/255.0,
1074
217
        128.0/255.0
1075
217
    };
1076
1077
217
    cmsStage *mpe = cmsStageAllocMatrix(ContextID, 3, 3, a1, o1);
1078
1079
217
    if (mpe == NULL) return mpe;
1080
217
    mpe ->Implements = cmsSigLab2FloatPCS;
1081
217
    return mpe;
1082
217
}
1083
1084
// From XYZ to floating point PCS
1085
cmsStage* _cmsStageNormalizeFromXyzFloat(cmsContext ContextID)
1086
79
{
1087
237
#define n (32768.0/65535.0)
1088
79
    static const cmsFloat64Number a1[] = {
1089
79
        n, 0, 0,
1090
79
        0, n, 0,
1091
79
        0, 0, n
1092
79
    };
1093
79
#undef n
1094
1095
79
    cmsStage *mpe =  cmsStageAllocMatrix(ContextID, 3, 3, a1, NULL);
1096
1097
79
    if (mpe == NULL) return mpe;
1098
79
    mpe ->Implements = cmsSigXYZ2FloatPCS;
1099
79
    return mpe;
1100
79
}
1101
1102
cmsStage* _cmsStageNormalizeToLabFloat(cmsContext ContextID)
1103
57
{
1104
57
    static const cmsFloat64Number a1[] = {
1105
57
        100.0, 0, 0,
1106
57
        0, 255.0, 0,
1107
57
        0, 0, 255.0
1108
57
    };
1109
1110
57
    static const cmsFloat64Number o1[] = {
1111
57
        0,
1112
57
        -128.0,
1113
57
        -128.0
1114
57
    };
1115
1116
57
    cmsStage *mpe =  cmsStageAllocMatrix(ContextID, 3, 3, a1, o1);
1117
57
    if (mpe == NULL) return mpe;
1118
57
    mpe ->Implements = cmsSigFloatPCS2Lab;
1119
57
    return mpe;
1120
57
}
1121
1122
cmsStage* _cmsStageNormalizeToXyzFloat(cmsContext ContextID)
1123
60
{
1124
180
#define n (65535.0/32768.0)
1125
1126
60
    static const cmsFloat64Number a1[] = {
1127
60
        n, 0, 0,
1128
60
        0, n, 0,
1129
60
        0, 0, n
1130
60
    };
1131
60
#undef n
1132
1133
60
    cmsStage *mpe = cmsStageAllocMatrix(ContextID, 3, 3, a1, NULL);
1134
60
    if (mpe == NULL) return mpe;
1135
60
    mpe ->Implements = cmsSigFloatPCS2XYZ;
1136
60
    return mpe;
1137
60
}
1138
1139
// Clips values smaller than zero
1140
static
1141
void Clipper(const cmsFloat32Number In[], cmsFloat32Number Out[], const cmsStage *mpe)
1142
0
{
1143
0
       cmsUInt32Number i;
1144
0
       for (i = 0; i < mpe->InputChannels; i++) {
1145
1146
0
              cmsFloat32Number n = In[i];
1147
0
              Out[i] = n < 0 ? 0 : n;
1148
0
       }
1149
0
}
1150
1151
cmsStage*  _cmsStageClipNegatives(cmsContext ContextID, cmsUInt32Number nChannels)
1152
0
{
1153
0
       return _cmsStageAllocPlaceholder(ContextID, cmsSigClipNegativesElemType,
1154
0
              nChannels, nChannels, Clipper, NULL, NULL, NULL);
1155
0
}
1156
1157
// ********************************************************************************
1158
// Type cmsSigXYZ2LabElemType
1159
// ********************************************************************************
1160
1161
static
1162
void EvaluateXYZ2Lab(const cmsFloat32Number In[], cmsFloat32Number Out[], const cmsStage *mpe)
1163
1.46k
{
1164
1.46k
    cmsCIELab Lab;
1165
1.46k
    cmsCIEXYZ XYZ;
1166
1.46k
    const cmsFloat64Number XYZadj = MAX_ENCODEABLE_XYZ;
1167
1168
    // From 0..1.0 to XYZ
1169
1170
1.46k
    XYZ.X = In[0] * XYZadj;
1171
1.46k
    XYZ.Y = In[1] * XYZadj;
1172
1.46k
    XYZ.Z = In[2] * XYZadj;
1173
1174
1.46k
    cmsXYZ2Lab(NULL, &Lab, &XYZ);
1175
1176
    // From V4 Lab to 0..1.0
1177
1178
1.46k
    Out[0] = (cmsFloat32Number) (Lab.L / 100.0);
1179
1.46k
    Out[1] = (cmsFloat32Number) ((Lab.a + 128.0) / 255.0);
1180
1.46k
    Out[2] = (cmsFloat32Number) ((Lab.b + 128.0) / 255.0);
1181
1.46k
    return;
1182
1183
0
    cmsUNUSED_PARAMETER(mpe);
1184
0
}
1185
1186
cmsStage* CMSEXPORT _cmsStageAllocXYZ2Lab(cmsContext ContextID)
1187
1.49k
{
1188
1.49k
    return _cmsStageAllocPlaceholder(ContextID, cmsSigXYZ2LabElemType, 3, 3, EvaluateXYZ2Lab, NULL, NULL, NULL);
1189
1190
1.49k
}
1191
1192
// ********************************************************************************
1193
1194
// For v4, S-Shaped curves are placed in a/b axis to increase resolution near gray
1195
1196
cmsStage* _cmsStageAllocLabPrelin(cmsContext ContextID)
1197
0
{
1198
0
    cmsToneCurve* LabTable[3];
1199
0
    cmsFloat64Number Params[1] =  {2.4} ;
1200
1201
0
    LabTable[0] = cmsBuildGamma(ContextID, 1.0);
1202
0
    LabTable[1] = cmsBuildParametricToneCurve(ContextID, 108, Params);
1203
0
    LabTable[2] = cmsBuildParametricToneCurve(ContextID, 108, Params);
1204
1205
0
    return cmsStageAllocToneCurves(ContextID, 3, LabTable);
1206
0
}
1207
1208
1209
// Free a single MPE
1210
void CMSEXPORT cmsStageFree(cmsStage* mpe)
1211
47.5k
{
1212
47.5k
    if (mpe ->FreePtr)
1213
45.1k
        mpe ->FreePtr(mpe);
1214
1215
47.5k
    _cmsFree(mpe ->ContextID, mpe);
1216
47.5k
}
1217
1218
1219
cmsUInt32Number  CMSEXPORT cmsStageInputChannels(const cmsStage* mpe)
1220
30
{
1221
30
    return mpe ->InputChannels;
1222
30
}
1223
1224
cmsUInt32Number  CMSEXPORT cmsStageOutputChannels(const cmsStage* mpe)
1225
24
{
1226
24
    return mpe ->OutputChannels;
1227
24
}
1228
1229
cmsStageSignature CMSEXPORT cmsStageType(const cmsStage* mpe)
1230
19.1k
{
1231
19.1k
    return mpe -> Type;
1232
19.1k
}
1233
1234
void* CMSEXPORT cmsStageData(const cmsStage* mpe)
1235
777
{
1236
777
    return mpe -> Data;
1237
777
}
1238
1239
cmsContext CMSEXPORT cmsGetStageContextID(const cmsStage* mpe)
1240
0
{
1241
0
    return mpe -> ContextID;
1242
0
}
1243
1244
cmsStage*  CMSEXPORT cmsStageNext(const cmsStage* mpe)
1245
18.3k
{
1246
18.3k
    return mpe -> Next;
1247
18.3k
}
1248
1249
1250
// Duplicates an MPE
1251
cmsStage* CMSEXPORT cmsStageDup(cmsStage* mpe)
1252
25.4k
{
1253
25.4k
    cmsStage* NewMPE;
1254
1255
25.4k
    if (mpe == NULL) return NULL;
1256
25.4k
    NewMPE = _cmsStageAllocPlaceholder(mpe ->ContextID,
1257
25.4k
                                     mpe ->Type,
1258
25.4k
                                     mpe ->InputChannels,
1259
25.4k
                                     mpe ->OutputChannels,
1260
25.4k
                                     mpe ->EvalPtr,
1261
25.4k
                                     mpe ->DupElemPtr,
1262
25.4k
                                     mpe ->FreePtr,
1263
25.4k
                                     NULL);
1264
25.4k
    if (NewMPE == NULL) return NULL;
1265
1266
25.4k
    NewMPE ->Implements = mpe ->Implements;
1267
1268
25.4k
    if (mpe ->DupElemPtr) {
1269
1270
25.4k
        NewMPE ->Data = mpe ->DupElemPtr(mpe);
1271
1272
25.4k
        if (NewMPE->Data == NULL) {
1273
1274
0
            cmsStageFree(NewMPE);
1275
0
            return NULL;
1276
0
        }
1277
1278
25.4k
    } else {
1279
1280
5
        NewMPE ->Data       = NULL;
1281
5
    }
1282
1283
25.4k
    return NewMPE;
1284
25.4k
}
1285
1286
1287
// ***********************************************************************************************************
1288
1289
// This function sets up the channel count
1290
static
1291
cmsBool BlessLUT(cmsPipeline* lut)
1292
68.2k
{
1293
    // We can set the input/output channels only if we have elements.
1294
68.2k
    if (lut ->Elements != NULL) {
1295
1296
49.7k
        cmsStage* prev;
1297
49.7k
        cmsStage* next;
1298
49.7k
        cmsStage* First;
1299
49.7k
        cmsStage* Last;
1300
1301
49.7k
        First  = cmsPipelineGetPtrToFirstStage(lut);
1302
49.7k
        Last   = cmsPipelineGetPtrToLastStage(lut);
1303
1304
49.7k
        if (First == NULL || Last == NULL) return FALSE;
1305
1306
49.7k
        lut->InputChannels = First->InputChannels;
1307
49.7k
        lut->OutputChannels = Last->OutputChannels;
1308
1309
        // Check chain consistency
1310
49.7k
        prev = First;
1311
49.7k
        next = prev->Next;
1312
1313
351k
        while (next != NULL)
1314
302k
        {
1315
302k
            if (next->InputChannels != prev->OutputChannels)
1316
244
                return FALSE;
1317
1318
302k
            next = next->Next;
1319
302k
            prev = prev->Next;
1320
302k
    }
1321
49.7k
}
1322
1323
68.0k
    return TRUE;    
1324
68.2k
}
1325
1326
1327
// Default to evaluate the LUT on 16 bit-basis. Precision is retained.
1328
static
1329
void _LUTeval16(CMSREGISTER const cmsUInt16Number In[], CMSREGISTER cmsUInt16Number Out[],  CMSREGISTER const void* D)
1330
884
{
1331
884
    cmsPipeline* lut = (cmsPipeline*) D;
1332
884
    cmsStage *mpe;
1333
884
    cmsFloat32Number Storage[2][MAX_STAGE_CHANNELS];
1334
884
    int Phase = 0, NextPhase;
1335
1336
884
    From16ToFloat(In, &Storage[Phase][0], lut ->InputChannels);
1337
1338
884
    for (mpe = lut ->Elements;
1339
6.92k
         mpe != NULL;
1340
6.04k
         mpe = mpe ->Next) {
1341
1342
6.04k
             NextPhase = Phase ^ 1;
1343
6.04k
             mpe ->EvalPtr(&Storage[Phase][0], &Storage[NextPhase][0], mpe);
1344
6.04k
             Phase = NextPhase;
1345
6.04k
    }
1346
1347
1348
884
    FromFloatTo16(&Storage[Phase][0], Out, lut ->OutputChannels);
1349
884
}
1350
1351
1352
1353
// Does evaluate the LUT on cmsFloat32Number-basis.
1354
static
1355
void _LUTevalFloat(const cmsFloat32Number In[], cmsFloat32Number Out[], const void* D)
1356
7.11M
{
1357
7.11M
    cmsPipeline* lut = (cmsPipeline*) D;
1358
7.11M
    cmsStage *mpe;
1359
7.11M
    cmsFloat32Number Storage[2][MAX_STAGE_CHANNELS];
1360
7.11M
    int Phase = 0, NextPhase;
1361
1362
7.11M
    memmove(&Storage[Phase][0], In, lut ->InputChannels  * sizeof(cmsFloat32Number));
1363
1364
7.11M
    for (mpe = lut ->Elements;
1365
96.7M
         mpe != NULL;
1366
89.6M
         mpe = mpe ->Next) {
1367
1368
89.6M
              NextPhase = Phase ^ 1;
1369
89.6M
              mpe ->EvalPtr(&Storage[Phase][0], &Storage[NextPhase][0], mpe);
1370
89.6M
              Phase = NextPhase;
1371
89.6M
    }
1372
1373
7.11M
    memmove(Out, &Storage[Phase][0], lut ->OutputChannels * sizeof(cmsFloat32Number));
1374
7.11M
}
1375
1376
1377
// LUT Creation & Destruction
1378
cmsPipeline* CMSEXPORT cmsPipelineAlloc(cmsContext ContextID, cmsUInt32Number InputChannels, cmsUInt32Number OutputChannels)
1379
18.3k
{
1380
18.3k
       cmsPipeline* NewLUT;
1381
1382
       // A value of zero in channels is allowed as placeholder
1383
18.3k
       if (InputChannels >= cmsMAXCHANNELS ||
1384
18.3k
           OutputChannels >= cmsMAXCHANNELS) return NULL;
1385
1386
18.3k
       NewLUT = (cmsPipeline*) _cmsMallocZero(ContextID, sizeof(cmsPipeline));
1387
18.3k
       if (NewLUT == NULL) return NULL;
1388
1389
18.3k
       NewLUT -> InputChannels  = InputChannels;
1390
18.3k
       NewLUT -> OutputChannels = OutputChannels;
1391
1392
18.3k
       NewLUT ->Eval16Fn    = _LUTeval16;
1393
18.3k
       NewLUT ->EvalFloatFn = _LUTevalFloat;
1394
18.3k
       NewLUT ->DupDataFn   = NULL;
1395
18.3k
       NewLUT ->FreeDataFn  = NULL;
1396
18.3k
       NewLUT ->Data        = NewLUT;
1397
18.3k
       NewLUT ->ContextID   = ContextID;
1398
1399
18.3k
       if (!BlessLUT(NewLUT))
1400
0
       {
1401
0
           _cmsFree(ContextID, NewLUT);
1402
0
           return NULL;
1403
0
       }
1404
1405
18.3k
       return NewLUT;
1406
18.3k
}
1407
1408
cmsContext CMSEXPORT cmsGetPipelineContextID(const cmsPipeline* lut)
1409
0
{
1410
0
    _cmsAssert(lut != NULL);
1411
0
    return lut ->ContextID;
1412
0
}
1413
1414
cmsUInt32Number CMSEXPORT cmsPipelineInputChannels(const cmsPipeline* lut)
1415
2.90k
{
1416
2.90k
    _cmsAssert(lut != NULL);
1417
2.90k
    return lut ->InputChannels;
1418
2.90k
}
1419
1420
cmsUInt32Number CMSEXPORT cmsPipelineOutputChannels(const cmsPipeline* lut)
1421
2.34k
{
1422
2.34k
    _cmsAssert(lut != NULL);
1423
2.34k
    return lut ->OutputChannels;
1424
2.34k
}
1425
1426
// Free a profile elements LUT
1427
void CMSEXPORT cmsPipelineFree(cmsPipeline* lut)
1428
18.3k
{
1429
18.3k
    cmsStage *mpe, *Next;
1430
1431
18.3k
    if (lut == NULL) return;
1432
1433
18.3k
    for (mpe = lut ->Elements;
1434
60.8k
        mpe != NULL;
1435
42.5k
        mpe = Next) {
1436
1437
42.5k
            Next = mpe ->Next;
1438
42.5k
            cmsStageFree(mpe);
1439
42.5k
    }
1440
1441
18.3k
    if (lut ->FreeDataFn) lut ->FreeDataFn(lut ->ContextID, lut ->Data);
1442
1443
18.3k
    _cmsFree(lut ->ContextID, lut);
1444
18.3k
}
1445
1446
1447
// Default to evaluate the LUT on 16 bit-basis.
1448
void CMSEXPORT cmsPipelineEval16(const cmsUInt16Number In[], cmsUInt16Number Out[],  const cmsPipeline* lut)
1449
198
{
1450
198
    _cmsAssert(lut != NULL);
1451
198
    lut ->Eval16Fn(In, Out, lut->Data);
1452
198
}
1453
1454
1455
// Does evaluate the LUT on cmsFloat32Number-basis.
1456
void CMSEXPORT cmsPipelineEvalFloat(const cmsFloat32Number In[], cmsFloat32Number Out[], const cmsPipeline* lut)
1457
7.11M
{
1458
7.11M
    _cmsAssert(lut != NULL);
1459
7.11M
    lut ->EvalFloatFn(In, Out, lut);
1460
7.11M
}
1461
1462
1463
1464
// Duplicates a LUT
1465
cmsPipeline* CMSEXPORT cmsPipelineDup(const cmsPipeline* lut)
1466
5.72k
{
1467
5.72k
    cmsPipeline* NewLUT;
1468
5.72k
    cmsStage *NewMPE, *Anterior = NULL, *mpe;
1469
5.72k
    cmsBool  First = TRUE;
1470
1471
5.72k
    if (lut == NULL) return NULL;
1472
1473
5.01k
    NewLUT = cmsPipelineAlloc(lut ->ContextID, lut ->InputChannels, lut ->OutputChannels);
1474
5.01k
    if (NewLUT == NULL) return NULL;
1475
1476
5.01k
    for (mpe = lut ->Elements;
1477
13.5k
         mpe != NULL;
1478
8.55k
         mpe = mpe ->Next) {
1479
1480
8.55k
             NewMPE = cmsStageDup(mpe);
1481
1482
8.55k
             if (NewMPE == NULL) {
1483
0
                 cmsPipelineFree(NewLUT);
1484
0
                 return NULL;
1485
0
             }
1486
1487
8.55k
             if (First) {
1488
4.86k
                 NewLUT ->Elements = NewMPE;
1489
4.86k
                 First = FALSE;
1490
4.86k
             }
1491
3.68k
             else {
1492
3.68k
                if (Anterior != NULL) 
1493
3.68k
                    Anterior ->Next = NewMPE;
1494
3.68k
             }
1495
1496
8.55k
            Anterior = NewMPE;
1497
8.55k
    }
1498
1499
5.01k
    NewLUT ->Eval16Fn    = lut ->Eval16Fn;
1500
5.01k
    NewLUT ->EvalFloatFn = lut ->EvalFloatFn;
1501
5.01k
    NewLUT ->DupDataFn   = lut ->DupDataFn;
1502
5.01k
    NewLUT ->FreeDataFn  = lut ->FreeDataFn;
1503
1504
5.01k
    if (NewLUT ->DupDataFn != NULL)
1505
0
        NewLUT ->Data = NewLUT ->DupDataFn(lut ->ContextID, lut->Data);
1506
1507
1508
5.01k
    NewLUT ->SaveAs8Bits    = lut ->SaveAs8Bits;
1509
1510
5.01k
    if (!BlessLUT(NewLUT))
1511
0
    {
1512
0
        _cmsFree(lut->ContextID, NewLUT);
1513
0
        return NULL;
1514
0
    }
1515
1516
5.01k
    return NewLUT;
1517
5.01k
}
1518
1519
1520
int CMSEXPORT cmsPipelineInsertStage(cmsPipeline* lut, cmsStageLoc loc, cmsStage* mpe)
1521
39.8k
{
1522
39.8k
    cmsStage* Anterior = NULL, *pt;
1523
1524
39.8k
    if (lut == NULL || mpe == NULL)
1525
996
        return FALSE;
1526
1527
38.8k
    switch (loc) {
1528
1529
3.70k
        case cmsAT_BEGIN:
1530
3.70k
            mpe ->Next = lut ->Elements;
1531
3.70k
            lut ->Elements = mpe;
1532
3.70k
            break;
1533
1534
35.1k
        case cmsAT_END:
1535
1536
35.1k
            if (lut ->Elements == NULL)
1537
8.10k
                lut ->Elements = mpe;
1538
27.0k
            else {
1539
1540
27.0k
                for (pt = lut ->Elements;
1541
300k
                     pt != NULL;
1542
273k
                     pt = pt -> Next) Anterior = pt;
1543
                
1544
27.0k
                Anterior ->Next = mpe;
1545
27.0k
                mpe ->Next = NULL;
1546
27.0k
            }
1547
35.1k
            break;
1548
0
        default:;
1549
0
            return FALSE;
1550
38.8k
    }
1551
1552
38.8k
    return BlessLUT(lut);    
1553
38.8k
}
1554
1555
// Unlink an element and return the pointer to it
1556
void CMSEXPORT cmsPipelineUnlinkStage(cmsPipeline* lut, cmsStageLoc loc, cmsStage** mpe)
1557
0
{
1558
0
    cmsStage *Anterior, *pt, *Last;
1559
0
    cmsStage *Unlinked = NULL;
1560
1561
1562
    // If empty LUT, there is nothing to remove
1563
0
    if (lut ->Elements == NULL) {
1564
0
        if (mpe) *mpe = NULL;
1565
0
        return;
1566
0
    }
1567
1568
    // On depending on the strategy...
1569
0
    switch (loc) {
1570
1571
0
        case cmsAT_BEGIN:
1572
0
            {
1573
0
                cmsStage* elem = lut ->Elements;
1574
1575
0
                lut ->Elements = elem -> Next;
1576
0
                elem ->Next = NULL;
1577
0
                Unlinked = elem;
1578
1579
0
            }
1580
0
            break;
1581
1582
0
        case cmsAT_END:
1583
0
            Anterior = Last = NULL;
1584
0
            for (pt = lut ->Elements;
1585
0
                pt != NULL;
1586
0
                pt = pt -> Next) {
1587
0
                    Anterior = Last;
1588
0
                    Last = pt;
1589
0
            }
1590
1591
0
            Unlinked = Last;  // Next already points to NULL
1592
1593
            // Truncate the chain
1594
0
            if (Anterior)
1595
0
                Anterior ->Next = NULL;
1596
0
            else
1597
0
                lut ->Elements = NULL;
1598
0
            break;
1599
0
        default:;
1600
0
    }
1601
1602
0
    if (mpe)
1603
0
        *mpe = Unlinked;
1604
0
    else
1605
0
        cmsStageFree(Unlinked);
1606
1607
    // May fail, but we ignore it
1608
0
    BlessLUT(lut);
1609
0
}
1610
1611
1612
// Concatenate two LUT into a new single one
1613
cmsBool  CMSEXPORT cmsPipelineCat(cmsPipeline* l1, const cmsPipeline* l2)
1614
6.16k
{
1615
6.16k
    cmsStage* mpe;
1616
1617
    // If both LUTS does not have elements, we need to inherit
1618
    // the number of channels
1619
6.16k
    if (l1 ->Elements == NULL && l2 ->Elements == NULL) {
1620
65
        l1 ->InputChannels  = l2 ->InputChannels;
1621
65
        l1 ->OutputChannels = l2 ->OutputChannels;
1622
65
    }
1623
1624
    // Cat second
1625
6.16k
    for (mpe = l2 ->Elements;
1626
22.8k
         mpe != NULL;
1627
16.7k
         mpe = mpe ->Next) {
1628
1629
            // We have to dup each element
1630
16.7k
            if (!cmsPipelineInsertStage(l1, cmsAT_END, cmsStageDup(mpe)))
1631
80
                return FALSE;
1632
16.7k
    }
1633
1634
6.08k
    return BlessLUT(l1);    
1635
6.16k
}
1636
1637
1638
cmsBool CMSEXPORT cmsPipelineSetSaveAs8bitsFlag(cmsPipeline* lut, cmsBool On)
1639
0
{
1640
0
    cmsBool Anterior = lut ->SaveAs8Bits;
1641
1642
0
    lut ->SaveAs8Bits = On;
1643
0
    return Anterior;
1644
0
}
1645
1646
1647
cmsStage* CMSEXPORT cmsPipelineGetPtrToFirstStage(const cmsPipeline* lut)
1648
54.6k
{
1649
54.6k
    return lut ->Elements;
1650
54.6k
}
1651
1652
cmsStage* CMSEXPORT cmsPipelineGetPtrToLastStage(const cmsPipeline* lut)
1653
49.7k
{
1654
49.7k
    cmsStage *mpe, *Anterior = NULL;
1655
1656
401k
    for (mpe = lut ->Elements; mpe != NULL; mpe = mpe ->Next)
1657
352k
        Anterior = mpe;
1658
1659
49.7k
    return Anterior;
1660
49.7k
}
1661
1662
cmsUInt32Number CMSEXPORT cmsPipelineStageCount(const cmsPipeline* lut)
1663
833
{
1664
833
    cmsStage *mpe;
1665
833
    cmsUInt32Number n;
1666
1667
6.57k
    for (n=0, mpe = lut ->Elements; mpe != NULL; mpe = mpe ->Next)
1668
5.74k
            n++;
1669
1670
833
    return n;
1671
833
}
1672
1673
// This function may be used to set the optional evaluator and a block of private data. If private data is being used, an optional
1674
// duplicator and free functions should also be specified in order to duplicate the LUT construct. Use NULL to inhibit such functionality.
1675
void CMSEXPORT _cmsPipelineSetOptimizationParameters(cmsPipeline* Lut,
1676
                                        _cmsPipelineEval16Fn Eval16,
1677
                                        void* PrivateData,
1678
                                        _cmsFreeUserDataFn FreePrivateDataFn,
1679
                                        _cmsDupUserDataFn  DupPrivateDataFn)
1680
307
{
1681
1682
307
    Lut ->Eval16Fn = Eval16;
1683
307
    Lut ->DupDataFn = DupPrivateDataFn;
1684
307
    Lut ->FreeDataFn = FreePrivateDataFn;
1685
307
    Lut ->Data = PrivateData;
1686
307
}
1687
1688
1689
// ----------------------------------------------------------- Reverse interpolation
1690
// Here's how it goes. The derivative Df(x) of the function f is the linear
1691
// transformation that best approximates f near the point x. It can be represented
1692
// by a matrix A whose entries are the partial derivatives of the components of f
1693
// with respect to all the coordinates. This is know as the Jacobian
1694
//
1695
// The best linear approximation to f is given by the matrix equation:
1696
//
1697
// y-y0 = A (x-x0)
1698
//
1699
// So, if x0 is a good "guess" for the zero of f, then solving for the zero of this
1700
// linear approximation will give a "better guess" for the zero of f. Thus let y=0,
1701
// and since y0=f(x0) one can solve the above equation for x. This leads to the
1702
// Newton's method formula:
1703
//
1704
// xn+1 = xn - A-1 f(xn)
1705
//
1706
// where xn+1 denotes the (n+1)-st guess, obtained from the n-th guess xn in the
1707
// fashion described above. Iterating this will give better and better approximations
1708
// if you have a "good enough" initial guess.
1709
1710
1711
0
#define JACOBIAN_EPSILON            0.001f
1712
0
#define INVERSION_MAX_ITERATIONS    30
1713
1714
// Increment with reflexion on boundary
1715
static
1716
void IncDelta(cmsFloat32Number *Val)
1717
0
{
1718
0
    if (*Val < (1.0 - JACOBIAN_EPSILON))
1719
1720
0
        *Val += JACOBIAN_EPSILON;
1721
1722
0
    else
1723
0
        *Val -= JACOBIAN_EPSILON;
1724
1725
0
}
1726
1727
1728
1729
// Euclidean distance between two vectors of n elements each one
1730
static
1731
cmsFloat32Number EuclideanDistance(cmsFloat32Number a[], cmsFloat32Number b[], int n)
1732
0
{
1733
0
    cmsFloat32Number sum = 0;
1734
0
    int i;
1735
1736
0
    for (i=0; i < n; i++) {
1737
0
        cmsFloat32Number dif = b[i] - a[i];
1738
0
        sum +=  dif * dif;
1739
0
    }
1740
1741
0
    return sqrtf(sum);
1742
0
}
1743
1744
1745
// Evaluate a LUT in reverse direction. It only searches on 3->3 LUT. Uses Newton method
1746
//
1747
// x1 <- x - [J(x)]^-1 * f(x)
1748
//
1749
// lut: The LUT on where to do the search
1750
// Target: LabK, 3 values of Lab plus destination K which is fixed
1751
// Result: The obtained CMYK
1752
// Hint:   Location where begin the search
1753
1754
cmsBool CMSEXPORT cmsPipelineEvalReverseFloat(cmsFloat32Number Target[],
1755
                                              cmsFloat32Number Result[],
1756
                                              cmsFloat32Number Hint[],
1757
                                              const cmsPipeline* lut)
1758
0
{
1759
0
    cmsUInt32Number  i, j;
1760
0
    cmsFloat64Number  error, LastError = 1E20;
1761
0
    cmsFloat32Number  fx[4], x[4], xd[4], fxd[4];
1762
0
    cmsVEC3 tmp, tmp2;
1763
0
    cmsMAT3 Jacobian;
1764
    
1765
    // Only 3->3 and 4->3 are supported
1766
0
    if (lut ->InputChannels != 3 && lut ->InputChannels != 4) return FALSE;
1767
0
    if (lut ->OutputChannels != 3) return FALSE;
1768
   
1769
    // Take the hint as starting point if specified
1770
0
    if (Hint == NULL) {
1771
1772
        // Begin at any point, we choose 1/3 of CMY axis
1773
0
        x[0] = x[1] = x[2] = 0.3f;
1774
0
    }
1775
0
    else {
1776
1777
        // Only copy 3 channels from hint...
1778
0
        for (j=0; j < 3; j++)
1779
0
            x[j] = Hint[j];
1780
0
    }
1781
1782
    // If Lut is 4-dimensions, then grab target[3], which is fixed
1783
0
    if (lut ->InputChannels == 4) {
1784
0
        x[3] = Target[3];
1785
0
    }
1786
0
    else x[3] = 0; // To keep lint happy
1787
1788
1789
    // Iterate
1790
0
    for (i = 0; i < INVERSION_MAX_ITERATIONS; i++) {
1791
1792
        // Get beginning fx
1793
0
        cmsPipelineEvalFloat(x, fx, lut);
1794
1795
        // Compute error
1796
0
        error = EuclideanDistance(fx, Target, 3);
1797
1798
        // If not convergent, return last safe value
1799
0
        if (error >= LastError)
1800
0
            break;
1801
1802
        // Keep latest values
1803
0
        LastError     = error;
1804
0
        for (j=0; j < lut ->InputChannels; j++)
1805
0
                Result[j] = x[j];
1806
1807
        // Found an exact match?
1808
0
        if (error <= 0)
1809
0
            break;
1810
1811
        // Obtain slope (the Jacobian)
1812
0
        for (j = 0; j < 3; j++) {
1813
1814
0
            xd[0] = x[0];
1815
0
            xd[1] = x[1];
1816
0
            xd[2] = x[2];
1817
0
            xd[3] = x[3];  // Keep fixed channel
1818
1819
0
            IncDelta(&xd[j]);
1820
1821
0
            cmsPipelineEvalFloat(xd, fxd, lut);
1822
1823
0
            Jacobian.v[0].n[j] = ((fxd[0] - fx[0]) / JACOBIAN_EPSILON);
1824
0
            Jacobian.v[1].n[j] = ((fxd[1] - fx[1]) / JACOBIAN_EPSILON);
1825
0
            Jacobian.v[2].n[j] = ((fxd[2] - fx[2]) / JACOBIAN_EPSILON);
1826
0
        }
1827
1828
        // Solve system
1829
0
        tmp2.n[0] = fx[0] - Target[0];
1830
0
        tmp2.n[1] = fx[1] - Target[1];
1831
0
        tmp2.n[2] = fx[2] - Target[2];
1832
1833
0
        if (!_cmsMAT3solve(&tmp, &Jacobian, &tmp2))
1834
0
            return FALSE;
1835
1836
        // Move our guess
1837
0
        x[0] -= (cmsFloat32Number) tmp.n[0];
1838
0
        x[1] -= (cmsFloat32Number) tmp.n[1];
1839
0
        x[2] -= (cmsFloat32Number) tmp.n[2];
1840
1841
        // Some clipping....
1842
0
        for (j=0; j < 3; j++) {
1843
0
            if (x[j] < 0) x[j] = 0;
1844
0
            else
1845
0
                if (x[j] > 1.0) x[j] = 1.0;
1846
0
        }
1847
0
    }
1848
1849
0
    return TRUE;
1850
0
}
1851
1852