Coverage Report

Created: 2025-11-11 06:45

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/skcms/skcms.cc
Line
Count
Source
1
/*
2
 * Copyright 2018 Google Inc.
3
 *
4
 * Use of this source code is governed by a BSD-style license that can be
5
 * found in the LICENSE file.
6
 */
7
8
#include "src/skcms_public.h"  // NO_G3_REWRITE
9
#include "src/skcms_internals.h"  // NO_G3_REWRITE
10
#include "src/skcms_Transform.h"  // NO_G3_REWRITE
11
#include <assert.h>
12
#include <float.h>
13
#include <limits.h>
14
#include <stdlib.h>
15
#include <string.h>
16
17
#if defined(__ARM_NEON)
18
    #include <arm_neon.h>
19
#elif defined(__SSE__)
20
    #include <immintrin.h>
21
22
    #if defined(__clang__)
23
        // That #include <immintrin.h> is usually enough, but Clang's headers
24
        // "helpfully" skip including the whole kitchen sink when _MSC_VER is
25
        // defined, because lots of programs on Windows would include that and
26
        // it'd be a lot slower.  But we want all those headers included so we
27
        // can use their features after runtime checks later.
28
        #include <smmintrin.h>
29
        #include <avxintrin.h>
30
        #include <avx2intrin.h>
31
        #include <avx512fintrin.h>
32
        #include <avx512dqintrin.h>
33
    #endif
34
#endif
35
36
using namespace skcms_private;
37
38
static bool sAllowRuntimeCPUDetection = true;
39
40
0
void skcms_DisableRuntimeCPUDetection() {
41
0
    sAllowRuntimeCPUDetection = false;
42
0
}
43
44
36.2M
static float log2f_(float x) {
45
    // The first approximation of log2(x) is its exponent 'e', minus 127.
46
36.2M
    int32_t bits;
47
36.2M
    memcpy(&bits, &x, sizeof(bits));
48
49
36.2M
    float e = (float)bits * (1.0f / (1<<23));
50
51
    // If we use the mantissa too we can refine the error signficantly.
52
36.2M
    int32_t m_bits = (bits & 0x007fffff) | 0x3f000000;
53
36.2M
    float m;
54
36.2M
    memcpy(&m, &m_bits, sizeof(m));
55
56
36.2M
    return (e - 124.225514990f
57
36.2M
              -   1.498030302f*m
58
36.2M
              -   1.725879990f/(0.3520887068f + m));
59
36.2M
}
60
16.5M
static float logf_(float x) {
61
16.5M
    const float ln2 = 0.69314718f;
62
16.5M
    return ln2*log2f_(x);
63
16.5M
}
64
65
19.6M
static float exp2f_(float x) {
66
19.6M
    if (x > 128.0f) {
67
56.1k
        return INFINITY_;
68
19.6M
    } else if (x < -127.0f) {
69
424k
        return 0.0f;
70
424k
    }
71
19.2M
    float fract = x - floorf_(x);
72
73
19.2M
    float fbits = (1.0f * (1<<23)) * (x + 121.274057500f
74
19.2M
                                        -   1.490129070f*fract
75
19.2M
                                        +  27.728023300f/(4.84252568f - fract));
76
77
    // Before we cast fbits to int32_t, check for out of range values to pacify UBSAN.
78
    // INT_MAX is not exactly representable as a float, so exclude it as effectively infinite.
79
    // Negative values are effectively underflow - we'll end up returning a (different) negative
80
    // value, which makes no sense. So clamp to zero.
81
19.2M
    if (fbits >= (float)INT_MAX) {
82
0
        return INFINITY_;
83
19.2M
    } else if (fbits < 0) {
84
24.2k
        return 0;
85
24.2k
    }
86
87
19.1M
    int32_t bits = (int32_t)fbits;
88
19.1M
    memcpy(&x, &bits, sizeof(x));
89
19.1M
    return x;
90
19.2M
}
91
92
// Not static, as it's used by some test tools.
93
68.7M
float powf_(float x, float y) {
94
68.7M
    if (x <= 0.f) {
95
48.9M
        return 0.f;
96
48.9M
    }
97
19.7M
    if (x == 1.f) {
98
103k
        return 1.f;
99
103k
    }
100
19.6M
    return exp2f_(log2f_(x) * y);
101
19.7M
}
102
103
0
static float expf_(float x) {
104
0
    const float log2_e = 1.4426950408889634074f;
105
0
    return exp2f_(log2_e * x);
106
0
}
107
108
40.8M
static float fmaxf_(float x, float y) { return x > y ? x : y; }
109
20.4M
static float fminf_(float x, float y) { return x < y ? x : y; }
110
111
12.6M
static bool isfinitef_(float x) { return 0 == x*0; }
112
113
20.4M
static float minus_1_ulp(float x) {
114
20.4M
    int32_t bits;
115
20.4M
    memcpy(&bits, &x, sizeof(bits));
116
20.4M
    bits = bits - 1;
117
20.4M
    memcpy(&x, &bits, sizeof(bits));
118
20.4M
    return x;
119
20.4M
}
120
121
// Most transfer functions we work with are sRGBish.
122
// For exotic HDR transfer functions, we encode them using a tf.g that makes no sense,
123
// and repurpose the other fields to hold the parameters of the HDR functions.
124
struct TF_PQish  { float A,B,C,D,E,F; };
125
struct TF_HLGish { float R,G,a,b,c,K_minus_1; };
126
// We didn't originally support a scale factor K for HLG, and instead just stored 0 in
127
// the unused `f` field of skcms_TransferFunction for HLGish and HLGInvish transfer functions.
128
// By storing f=K-1, those old unusued f=0 values now mean K=1, a noop scale factor.
129
130
612
static float TFKind_marker(skcms_TFType kind) {
131
    // We'd use different NaNs, but those aren't guaranteed to be preserved by WASM.
132
612
    return -(float)kind;
133
612
}
134
135
static skcms_TFType classify(const skcms_TransferFunction& tf, TF_PQish*   pq = nullptr
136
12.2M
                                                             , TF_HLGish* hlg = nullptr) {
137
12.2M
    if (tf.g < 0) {
138
        // Negative "g" is mapped to enum values; large negative are for sure invalid.
139
3.53k
        if (tf.g < -128) {
140
194
            return skcms_TFType_Invalid;
141
194
        }
142
3.33k
        int enum_g = -static_cast<int>(tf.g);
143
        // Non-whole "g" values are invalid as well.
144
3.33k
        if (static_cast<float>(-enum_g) != tf.g) {
145
1.30k
            return skcms_TFType_Invalid;
146
1.30k
        }
147
        // TODO: soundness checks for PQ/HLG like we do for sRGBish?
148
2.02k
        switch (enum_g) {
149
298
            case skcms_TFType_PQish:
150
298
                if (pq) {
151
141
                    memcpy(pq , &tf.a, sizeof(*pq ));
152
141
                }
153
298
                return skcms_TFType_PQish;
154
452
            case skcms_TFType_HLGish:
155
452
                if (hlg) {
156
325
                    memcpy(hlg, &tf.a, sizeof(*hlg));
157
325
                }
158
452
                return skcms_TFType_HLGish;
159
413
            case skcms_TFType_HLGinvish:
160
413
                if (hlg) {
161
90
                    memcpy(hlg, &tf.a, sizeof(*hlg));
162
90
                }
163
413
                return skcms_TFType_HLGinvish;
164
339
            case skcms_TFType_PQ:
165
339
                if (tf.b != 0.f || tf.c != 0.f || tf.d != 0.f || tf.e != 0.f || tf.f != 0.f) {
166
242
                    return skcms_TFType_Invalid;
167
242
                }
168
97
                return skcms_TFType_PQ;
169
296
            case skcms_TFType_HLG:
170
296
                if (tf.d != 0.f || tf.e != 0.f || tf.f != 0.f) {
171
202
                    return skcms_TFType_Invalid;
172
202
                }
173
94
                return skcms_TFType_HLG;
174
2.02k
        }
175
230
        return skcms_TFType_Invalid;
176
2.02k
    }
177
178
    // Basic soundness checks for sRGBish transfer functions.
179
12.2M
    if (isfinitef_(tf.a + tf.b + tf.c + tf.d + tf.e + tf.f + tf.g)
180
            // a,c,d,g should be non-negative to make any sense.
181
12.2M
            && tf.a >= 0
182
12.2M
            && tf.c >= 0
183
12.2M
            && tf.d >= 0
184
12.2M
            && tf.g >= 0
185
            // Raising a negative value to a fractional tf->g produces complex numbers.
186
12.2M
            && tf.a * tf.d + tf.b >= 0) {
187
12.2M
        return skcms_TFType_sRGBish;
188
12.2M
    }
189
190
558
    return skcms_TFType_Invalid;
191
12.2M
}
192
193
0
skcms_TFType skcms_TransferFunction_getType(const skcms_TransferFunction* tf) {
194
0
    return classify(*tf);
195
0
}
196
3.33k
bool skcms_TransferFunction_isSRGBish(const skcms_TransferFunction* tf) {
197
3.33k
    return classify(*tf) == skcms_TFType_sRGBish;
198
3.33k
}
199
19
bool skcms_TransferFunction_isPQish(const skcms_TransferFunction* tf) {
200
19
    return classify(*tf) == skcms_TFType_PQish;
201
19
}
202
37
bool skcms_TransferFunction_isHLGish(const skcms_TransferFunction* tf) {
203
37
    return classify(*tf) == skcms_TFType_HLGish;
204
37
}
205
0
bool skcms_TransferFunction_isPQ(const skcms_TransferFunction* tf) {
206
0
    return classify(*tf) == skcms_TFType_PQ;
207
0
}
208
0
bool skcms_TransferFunction_isHLG(const skcms_TransferFunction* tf) {
209
0
    return classify(*tf) == skcms_TFType_HLG;
210
0
}
211
212
bool skcms_TransferFunction_makePQish(skcms_TransferFunction* tf,
213
                                      float A, float B, float C,
214
19
                                      float D, float E, float F) {
215
19
    *tf = { TFKind_marker(skcms_TFType_PQish), A,B,C,D,E,F };
216
19
    assert(skcms_TransferFunction_isPQish(tf));
217
19
    return true;
218
19
}
219
220
bool skcms_TransferFunction_makeScaledHLGish(skcms_TransferFunction* tf,
221
                                             float K, float R, float G,
222
37
                                             float a, float b, float c) {
223
37
    *tf = { TFKind_marker(skcms_TFType_HLGish), R,G, a,b,c, K-1.0f };
224
37
    assert(skcms_TransferFunction_isHLGish(tf));
225
37
    return true;
226
37
}
227
228
void skcms_TransferFunction_makePQ(
229
    skcms_TransferFunction* tf,
230
0
    float hdr_reference_white_luminance) {
231
0
    *tf = { TFKind_marker(skcms_TFType_PQ),
232
0
            hdr_reference_white_luminance,
233
0
            0.f,0.f,0.f,0.f,0.f };
234
0
    assert(skcms_TransferFunction_isPQ(tf));
235
0
}
236
237
void skcms_TransferFunction_makeHLG(
238
    skcms_TransferFunction* tf,
239
    float hdr_reference_white_luminance,
240
    float peak_luminance,
241
0
    float system_gamma) {
242
0
    *tf = { TFKind_marker(skcms_TFType_HLG),
243
0
            hdr_reference_white_luminance,
244
0
            peak_luminance,
245
0
            system_gamma,
246
0
            0.f, 0.f, 0.f };
247
0
    assert(skcms_TransferFunction_isHLG(tf));
248
0
}
249
250
12.0M
float skcms_TransferFunction_eval(const skcms_TransferFunction* tf, float x) {
251
12.0M
    float sign = x < 0 ? -1.0f : 1.0f;
252
12.0M
    x *= sign;
253
254
12.0M
    TF_PQish  pq;
255
12.0M
    TF_HLGish hlg;
256
12.0M
    switch (classify(*tf, &pq, &hlg)) {
257
0
        case skcms_TFType_Invalid: break;
258
259
0
        case skcms_TFType_HLG: {
260
0
            const float a = 0.17883277f;
261
0
            const float b = 0.28466892f;
262
0
            const float c = 0.55991073f;
263
0
            return sign * (x <= 0.5f ? x*x/3.f : (expf_((x-c)/a) + b) / 12.f);
264
0
        }
265
266
0
        case skcms_TFType_HLGish: {
267
0
            const float K = hlg.K_minus_1 + 1.0f;
268
0
            return K * sign * (x*hlg.R <= 1 ? powf_(x*hlg.R, hlg.G)
269
0
                                            : expf_((x-hlg.c)*hlg.a) + hlg.b);
270
0
        }
271
272
        // skcms_TransferFunction_invert() inverts R, G, and a for HLGinvish so this math is fast.
273
0
        case skcms_TFType_HLGinvish: {
274
0
            const float K = hlg.K_minus_1 + 1.0f;
275
0
            x /= K;
276
0
            return sign * (x <= 1 ? hlg.R * powf_(x, hlg.G)
277
0
                                  : hlg.a * logf_(x - hlg.b) + hlg.c);
278
0
        }
279
280
12.0M
        case skcms_TFType_sRGBish:
281
12.0M
            return sign * (x < tf->d ?       tf->c * x + tf->f
282
12.0M
                                     : powf_(tf->a * x + tf->b, tf->g) + tf->e);
283
284
0
        case skcms_TFType_PQ: {
285
0
            const float c1 =  107 / 128.f;
286
0
            const float c2 = 2413 / 128.f;
287
0
            const float c3 = 2392 / 128.f;
288
0
            const float m1 = 1305 / 8192.f;
289
0
            const float m2 = 2523 / 32.f;
290
0
            const float p = powf_(x, 1.f / m2);
291
0
            return powf_((p - c1) / (c2 - c3 * p), 1.f / m1);
292
0
        }
293
294
0
        case skcms_TFType_PQish:
295
0
            return sign *
296
0
                   powf_((pq.A + pq.B * powf_(x, pq.C)) / (pq.D + pq.E * powf_(x, pq.C)), pq.F);
297
12.0M
    }
298
0
    return 0;
299
12.0M
}
300
301
302
20.4M
static float eval_curve(const skcms_Curve* curve, float x) {
303
20.4M
    if (curve->table_entries == 0) {
304
0
        return skcms_TransferFunction_eval(&curve->parametric, x);
305
0
    }
306
307
20.4M
    float ix = fmaxf_(0, fminf_(x, 1)) * static_cast<float>(curve->table_entries - 1);
308
20.4M
    int   lo = (int)                   ix        ,
309
20.4M
          hi = (int)(float)minus_1_ulp(ix + 1.0f);
310
20.4M
    float t = ix - (float)lo;
311
312
20.4M
    float l, h;
313
20.4M
    if (curve->table_8) {
314
11.5k
        l = curve->table_8[lo] * (1/255.0f);
315
11.5k
        h = curve->table_8[hi] * (1/255.0f);
316
20.3M
    } else {
317
20.3M
        uint16_t be_l, be_h;
318
20.3M
        memcpy(&be_l, curve->table_16 + 2*lo, 2);
319
20.3M
        memcpy(&be_h, curve->table_16 + 2*hi, 2);
320
20.3M
        uint16_t le_l = ((be_l << 8) | (be_l >> 8)) & 0xffff;
321
20.3M
        uint16_t le_h = ((be_h << 8) | (be_h >> 8)) & 0xffff;
322
20.3M
        l = le_l * (1/65535.0f);
323
20.3M
        h = le_h * (1/65535.0f);
324
20.3M
    }
325
20.4M
    return l + (h-l)*t;
326
20.4M
}
327
328
6.60k
float skcms_MaxRoundtripError(const skcms_Curve* curve, const skcms_TransferFunction* inv_tf) {
329
6.60k
    uint32_t N = curve->table_entries > 256 ? curve->table_entries : 256;
330
6.60k
    const float dx = 1.0f / static_cast<float>(N - 1);
331
6.60k
    float err = 0;
332
12.0M
    for (uint32_t i = 0; i < N; i++) {
333
12.0M
        float x = static_cast<float>(i) * dx,
334
12.0M
              y = eval_curve(curve, x);
335
12.0M
        err = fmaxf_(err, fabsf_(x - skcms_TransferFunction_eval(inv_tf, y)));
336
12.0M
    }
337
6.60k
    return err;
338
6.60k
}
339
340
0
bool skcms_AreApproximateInverses(const skcms_Curve* curve, const skcms_TransferFunction* inv_tf) {
341
0
    return skcms_MaxRoundtripError(curve, inv_tf) < (1/512.0f);
342
0
}
343
344
// Additional ICC signature values that are only used internally
345
enum {
346
    // File signature
347
    skcms_Signature_acsp = 0x61637370,
348
349
    // Tag signatures
350
    skcms_Signature_rTRC = 0x72545243,
351
    skcms_Signature_gTRC = 0x67545243,
352
    skcms_Signature_bTRC = 0x62545243,
353
    skcms_Signature_kTRC = 0x6B545243,
354
355
    skcms_Signature_rXYZ = 0x7258595A,
356
    skcms_Signature_gXYZ = 0x6758595A,
357
    skcms_Signature_bXYZ = 0x6258595A,
358
359
    skcms_Signature_A2B0 = 0x41324230,
360
    skcms_Signature_B2A0 = 0x42324130,
361
362
    skcms_Signature_CHAD = 0x63686164,
363
    skcms_Signature_WTPT = 0x77747074,
364
365
    skcms_Signature_CICP = 0x63696370,
366
367
    // Type signatures
368
    skcms_Signature_curv = 0x63757276,
369
    skcms_Signature_mft1 = 0x6D667431,
370
    skcms_Signature_mft2 = 0x6D667432,
371
    skcms_Signature_mAB  = 0x6D414220,
372
    skcms_Signature_mBA  = 0x6D424120,
373
    skcms_Signature_para = 0x70617261,
374
    skcms_Signature_sf32 = 0x73663332,
375
    // XYZ is also a PCS signature, so it's defined in skcms.h
376
    // skcms_Signature_XYZ = 0x58595A20,
377
};
378
379
4.72k
static uint16_t read_big_u16(const uint8_t* ptr) {
380
4.72k
    uint16_t be;
381
4.72k
    memcpy(&be, ptr, sizeof(be));
382
#if defined(_MSC_VER)
383
    return _byteswap_ushort(be);
384
#else
385
4.72k
    return __builtin_bswap16(be);
386
4.72k
#endif
387
4.72k
}
388
389
261k
static uint32_t read_big_u32(const uint8_t* ptr) {
390
261k
    uint32_t be;
391
261k
    memcpy(&be, ptr, sizeof(be));
392
#if defined(_MSC_VER)
393
    return _byteswap_ulong(be);
394
#else
395
261k
    return __builtin_bswap32(be);
396
261k
#endif
397
261k
}
398
399
35.2k
static int32_t read_big_i32(const uint8_t* ptr) {
400
35.2k
    return (int32_t)read_big_u32(ptr);
401
35.2k
}
402
403
35.2k
static float read_big_fixed(const uint8_t* ptr) {
404
35.2k
    return static_cast<float>(read_big_i32(ptr)) * (1.0f / 65536.0f);
405
35.2k
}
406
407
// Maps to an in-memory profile so that fields line up to the locations specified
408
// in ICC.1:2010, section 7.2
409
typedef struct {
410
    uint8_t size                [ 4];
411
    uint8_t cmm_type            [ 4];
412
    uint8_t version             [ 4];
413
    uint8_t profile_class       [ 4];
414
    uint8_t data_color_space    [ 4];
415
    uint8_t pcs                 [ 4];
416
    uint8_t creation_date_time  [12];
417
    uint8_t signature           [ 4];
418
    uint8_t platform            [ 4];
419
    uint8_t flags               [ 4];
420
    uint8_t device_manufacturer [ 4];
421
    uint8_t device_model        [ 4];
422
    uint8_t device_attributes   [ 8];
423
    uint8_t rendering_intent    [ 4];
424
    uint8_t illuminant_X        [ 4];
425
    uint8_t illuminant_Y        [ 4];
426
    uint8_t illuminant_Z        [ 4];
427
    uint8_t creator             [ 4];
428
    uint8_t profile_id          [16];
429
    uint8_t reserved            [28];
430
    uint8_t tag_count           [ 4]; // Technically not part of header, but required
431
} header_Layout;
432
433
typedef struct {
434
    uint8_t signature [4];
435
    uint8_t offset    [4];
436
    uint8_t size      [4];
437
} tag_Layout;
438
439
29.1k
static const tag_Layout* get_tag_table(const skcms_ICCProfile* profile) {
440
29.1k
    return (const tag_Layout*)(profile->buffer + SAFE_SIZEOF(header_Layout));
441
29.1k
}
442
443
// s15Fixed16ArrayType is technically variable sized, holding N values. However, the only valid
444
// use of the type is for the CHAD tag that stores exactly nine values.
445
typedef struct {
446
    uint8_t type     [ 4];
447
    uint8_t reserved [ 4];
448
    uint8_t values   [36];
449
} sf32_Layout;
450
451
0
bool skcms_GetCHAD(const skcms_ICCProfile* profile, skcms_Matrix3x3* m) {
452
0
    skcms_ICCTag tag;
453
0
    if (!skcms_GetTagBySignature(profile, skcms_Signature_CHAD, &tag)) {
454
0
        return false;
455
0
    }
456
457
0
    if (tag.type != skcms_Signature_sf32 || tag.size < SAFE_SIZEOF(sf32_Layout)) {
458
0
        return false;
459
0
    }
460
461
0
    const sf32_Layout* sf32Tag = (const sf32_Layout*)tag.buf;
462
0
    const uint8_t* values = sf32Tag->values;
463
0
    for (int r = 0; r < 3; ++r)
464
0
    for (int c = 0; c < 3; ++c, values += 4) {
465
0
        m->vals[r][c] = read_big_fixed(values);
466
0
    }
467
0
    return true;
468
0
}
469
470
// XYZType is technically variable sized, holding N XYZ triples. However, the only valid uses of
471
// the type are for tags/data that store exactly one triple.
472
typedef struct {
473
    uint8_t type     [4];
474
    uint8_t reserved [4];
475
    uint8_t X        [4];
476
    uint8_t Y        [4];
477
    uint8_t Z        [4];
478
} XYZ_Layout;
479
480
3.12k
static bool read_tag_xyz(const skcms_ICCTag* tag, float* x, float* y, float* z) {
481
3.12k
    if (tag->type != skcms_Signature_XYZ || tag->size < SAFE_SIZEOF(XYZ_Layout)) {
482
129
        return false;
483
129
    }
484
485
2.99k
    const XYZ_Layout* xyzTag = (const XYZ_Layout*)tag->buf;
486
487
2.99k
    *x = read_big_fixed(xyzTag->X);
488
2.99k
    *y = read_big_fixed(xyzTag->Y);
489
2.99k
    *z = read_big_fixed(xyzTag->Z);
490
2.99k
    return true;
491
3.12k
}
492
493
0
bool skcms_GetWTPT(const skcms_ICCProfile* profile, float xyz[3]) {
494
0
    skcms_ICCTag tag;
495
0
    return skcms_GetTagBySignature(profile, skcms_Signature_WTPT, &tag) &&
496
0
           read_tag_xyz(&tag, &xyz[0], &xyz[1], &xyz[2]);
497
0
}
498
499
0
static int data_color_space_channel_count(uint32_t data_color_space) {
500
0
    switch (data_color_space) {
501
0
        case skcms_Signature_CMYK:   return 4;
502
0
        case skcms_Signature_Gray:   return 1;
503
0
        case skcms_Signature_RGB:    return 3;
504
0
        case skcms_Signature_Lab:    return 3;
505
0
        case skcms_Signature_XYZ:    return 3;
506
0
        case skcms_Signature_CIELUV: return 3;
507
0
        case skcms_Signature_YCbCr:  return 3;
508
0
        case skcms_Signature_CIEYxy: return 3;
509
0
        case skcms_Signature_HSV:    return 3;
510
0
        case skcms_Signature_HLS:    return 3;
511
0
        case skcms_Signature_CMY:    return 3;
512
0
        case skcms_Signature_2CLR:   return 2;
513
0
        case skcms_Signature_3CLR:   return 3;
514
0
        case skcms_Signature_4CLR:   return 4;
515
0
        case skcms_Signature_5CLR:   return 5;
516
0
        case skcms_Signature_6CLR:   return 6;
517
0
        case skcms_Signature_7CLR:   return 7;
518
0
        case skcms_Signature_8CLR:   return 8;
519
0
        case skcms_Signature_9CLR:   return 9;
520
0
        case skcms_Signature_10CLR:  return 10;
521
0
        case skcms_Signature_11CLR:  return 11;
522
0
        case skcms_Signature_12CLR:  return 12;
523
0
        case skcms_Signature_13CLR:  return 13;
524
0
        case skcms_Signature_14CLR:  return 14;
525
0
        case skcms_Signature_15CLR:  return 15;
526
0
        default:                     return -1;
527
0
    }
528
0
}
529
530
0
int skcms_GetInputChannelCount(const skcms_ICCProfile* profile) {
531
0
    int a2b_count = 0;
532
0
    if (profile->has_A2B) {
533
0
        a2b_count = profile->A2B.input_channels != 0
534
0
                        ? static_cast<int>(profile->A2B.input_channels)
535
0
                        : 3;
536
0
    }
537
538
0
    skcms_ICCTag tag;
539
0
    int trc_count = 0;
540
0
    if (skcms_GetTagBySignature(profile, skcms_Signature_kTRC, &tag)) {
541
0
        trc_count = 1;
542
0
    } else if (profile->has_trc) {
543
0
        trc_count = 3;
544
0
    }
545
546
0
    int dcs_count = data_color_space_channel_count(profile->data_color_space);
547
548
0
    if (dcs_count < 0) {
549
0
        return -1;
550
0
    }
551
552
0
    if (a2b_count > 0 && a2b_count != dcs_count) {
553
0
        return -1;
554
0
    }
555
0
    if (trc_count > 0 && trc_count != dcs_count) {
556
0
        return -1;
557
0
    }
558
559
0
    return dcs_count;
560
0
}
561
562
static bool read_to_XYZD50(const skcms_ICCTag* rXYZ, const skcms_ICCTag* gXYZ,
563
1.07k
                           const skcms_ICCTag* bXYZ, skcms_Matrix3x3* toXYZ) {
564
1.07k
    return read_tag_xyz(rXYZ, &toXYZ->vals[0][0], &toXYZ->vals[1][0], &toXYZ->vals[2][0]) &&
565
1.05k
           read_tag_xyz(gXYZ, &toXYZ->vals[0][1], &toXYZ->vals[1][1], &toXYZ->vals[2][1]) &&
566
998
           read_tag_xyz(bXYZ, &toXYZ->vals[0][2], &toXYZ->vals[1][2], &toXYZ->vals[2][2]);
567
1.07k
}
568
569
typedef struct {
570
    uint8_t type          [4];
571
    uint8_t reserved_a    [4];
572
    uint8_t function_type [2];
573
    uint8_t reserved_b    [2];
574
    uint8_t variable      [1/*variable*/];  // 1, 3, 4, 5, or 7 s15.16, depending on function_type
575
} para_Layout;
576
577
static bool read_curve_para(const uint8_t* buf, uint32_t size,
578
3.36k
                            skcms_Curve* curve, uint32_t* curve_size) {
579
3.36k
    if (size < SAFE_FIXED_SIZE(para_Layout)) {
580
3
        return false;
581
3
    }
582
583
3.36k
    const para_Layout* paraTag = (const para_Layout*)buf;
584
585
3.36k
    enum { kG = 0, kGAB = 1, kGABC = 2, kGABCD = 3, kGABCDEF = 4 };
586
3.36k
    uint16_t function_type = read_big_u16(paraTag->function_type);
587
3.36k
    if (function_type > kGABCDEF) {
588
14
        return false;
589
14
    }
590
591
3.34k
    static const uint32_t curve_bytes[] = { 4, 12, 16, 20, 28 };
592
3.34k
    if (size < SAFE_FIXED_SIZE(para_Layout) + curve_bytes[function_type]) {
593
5
        return false;
594
5
    }
595
596
3.34k
    if (curve_size) {
597
3.14k
        *curve_size = SAFE_FIXED_SIZE(para_Layout) + curve_bytes[function_type];
598
3.14k
    }
599
600
3.34k
    curve->table_entries = 0;
601
3.34k
    curve->parametric.a  = 1.0f;
602
3.34k
    curve->parametric.b  = 0.0f;
603
3.34k
    curve->parametric.c  = 0.0f;
604
3.34k
    curve->parametric.d  = 0.0f;
605
3.34k
    curve->parametric.e  = 0.0f;
606
3.34k
    curve->parametric.f  = 0.0f;
607
3.34k
    curve->parametric.g  = read_big_fixed(paraTag->variable);
608
609
3.34k
    switch (function_type) {
610
128
        case kGAB:
611
128
            curve->parametric.a = read_big_fixed(paraTag->variable + 4);
612
128
            curve->parametric.b = read_big_fixed(paraTag->variable + 8);
613
128
            if (curve->parametric.a == 0) {
614
2
                return false;
615
2
            }
616
126
            curve->parametric.d = -curve->parametric.b / curve->parametric.a;
617
126
            break;
618
62
        case kGABC:
619
62
            curve->parametric.a = read_big_fixed(paraTag->variable + 4);
620
62
            curve->parametric.b = read_big_fixed(paraTag->variable + 8);
621
62
            curve->parametric.e = read_big_fixed(paraTag->variable + 12);
622
62
            if (curve->parametric.a == 0) {
623
1
                return false;
624
1
            }
625
61
            curve->parametric.d = -curve->parametric.b / curve->parametric.a;
626
61
            curve->parametric.f = curve->parametric.e;
627
61
            break;
628
123
        case kGABCD:
629
123
            curve->parametric.a = read_big_fixed(paraTag->variable + 4);
630
123
            curve->parametric.b = read_big_fixed(paraTag->variable + 8);
631
123
            curve->parametric.c = read_big_fixed(paraTag->variable + 12);
632
123
            curve->parametric.d = read_big_fixed(paraTag->variable + 16);
633
123
            break;
634
212
        case kGABCDEF:
635
212
            curve->parametric.a = read_big_fixed(paraTag->variable + 4);
636
212
            curve->parametric.b = read_big_fixed(paraTag->variable + 8);
637
212
            curve->parametric.c = read_big_fixed(paraTag->variable + 12);
638
212
            curve->parametric.d = read_big_fixed(paraTag->variable + 16);
639
212
            curve->parametric.e = read_big_fixed(paraTag->variable + 20);
640
212
            curve->parametric.f = read_big_fixed(paraTag->variable + 24);
641
212
            break;
642
3.34k
    }
643
3.33k
    return skcms_TransferFunction_isSRGBish(&curve->parametric);
644
3.34k
}
645
646
typedef struct {
647
    uint8_t type          [4];
648
    uint8_t reserved      [4];
649
    uint8_t value_count   [4];
650
    uint8_t variable      [1/*variable*/];  // value_count, 8.8 if 1, uint16 (n*65535) if > 1
651
} curv_Layout;
652
653
static bool read_curve_curv(const uint8_t* buf, uint32_t size,
654
8.49k
                            skcms_Curve* curve, uint32_t* curve_size) {
655
8.49k
    if (size < SAFE_FIXED_SIZE(curv_Layout)) {
656
4
        return false;
657
4
    }
658
659
8.48k
    const curv_Layout* curvTag = (const curv_Layout*)buf;
660
661
8.48k
    uint32_t value_count = read_big_u32(curvTag->value_count);
662
8.48k
    if (size < SAFE_FIXED_SIZE(curv_Layout) + value_count * SAFE_SIZEOF(uint16_t)) {
663
58
        return false;
664
58
    }
665
666
8.42k
    if (curve_size) {
667
5.33k
        *curve_size = SAFE_FIXED_SIZE(curv_Layout) + value_count * SAFE_SIZEOF(uint16_t);
668
5.33k
    }
669
670
8.42k
    if (value_count < 2) {
671
1.93k
        curve->table_entries = 0;
672
1.93k
        curve->parametric.a  = 1.0f;
673
1.93k
        curve->parametric.b  = 0.0f;
674
1.93k
        curve->parametric.c  = 0.0f;
675
1.93k
        curve->parametric.d  = 0.0f;
676
1.93k
        curve->parametric.e  = 0.0f;
677
1.93k
        curve->parametric.f  = 0.0f;
678
1.93k
        if (value_count == 0) {
679
            // Empty tables are a shorthand for an identity curve
680
1.00k
            curve->parametric.g = 1.0f;
681
1.00k
        } else {
682
            // Single entry tables are a shorthand for simple gamma
683
931
            curve->parametric.g = read_big_u16(curvTag->variable) * (1.0f / 256.0f);
684
931
        }
685
6.49k
    } else {
686
6.49k
        curve->table_8       = nullptr;
687
6.49k
        curve->table_16      = curvTag->variable;
688
6.49k
        curve->table_entries = value_count;
689
6.49k
    }
690
691
8.42k
    return true;
692
8.48k
}
693
694
// Parses both curveType and parametricCurveType data. Ensures that at most 'size' bytes are read.
695
// If curve_size is not nullptr, writes the number of bytes used by the curve in (*curve_size).
696
static bool read_curve(const uint8_t* buf, uint32_t size,
697
11.9k
                       skcms_Curve* curve, uint32_t* curve_size) {
698
11.9k
    if (!buf || size < 4 || !curve) {
699
10
        return false;
700
10
    }
701
702
11.9k
    uint32_t type = read_big_u32(buf);
703
11.9k
    if (type == skcms_Signature_para) {
704
3.36k
        return read_curve_para(buf, size, curve, curve_size);
705
8.61k
    } else if (type == skcms_Signature_curv) {
706
8.49k
        return read_curve_curv(buf, size, curve, curve_size);
707
8.49k
    }
708
709
124
    return false;
710
11.9k
}
711
712
// mft1 and mft2 share a large chunk of data
713
typedef struct {
714
    uint8_t type                 [ 4];
715
    uint8_t reserved_a           [ 4];
716
    uint8_t input_channels       [ 1];
717
    uint8_t output_channels      [ 1];
718
    uint8_t grid_points          [ 1];
719
    uint8_t reserved_b           [ 1];
720
    uint8_t matrix               [36];
721
} mft_CommonLayout;
722
723
typedef struct {
724
    mft_CommonLayout common      [1];
725
726
    uint8_t variable             [1/*variable*/];
727
} mft1_Layout;
728
729
typedef struct {
730
    mft_CommonLayout common      [1];
731
732
    uint8_t input_table_entries  [2];
733
    uint8_t output_table_entries [2];
734
    uint8_t variable             [1/*variable*/];
735
} mft2_Layout;
736
737
257
static bool read_mft_common(const mft_CommonLayout* mftTag, skcms_A2B* a2b) {
738
    // MFT matrices are applied before the first set of curves, but must be identity unless the
739
    // input is PCSXYZ. We don't support PCSXYZ profiles, so we ignore this matrix. Note that the
740
    // matrix in skcms_A2B is applied later in the pipe, so supporting this would require another
741
    // field/flag.
742
257
    a2b->matrix_channels = 0;
743
257
    a2b-> input_channels = mftTag-> input_channels[0];
744
257
    a2b->output_channels = mftTag->output_channels[0];
745
746
    // We require exactly three (ie XYZ/Lab/RGB) output channels
747
257
    if (a2b->output_channels != ARRAY_COUNT(a2b->output_curves)) {
748
23
        return false;
749
23
    }
750
    // We require at least one, and no more than four (ie CMYK) input channels
751
234
    if (a2b->input_channels < 1 || a2b->input_channels > ARRAY_COUNT(a2b->input_curves)) {
752
21
        return false;
753
21
    }
754
755
814
    for (uint32_t i = 0; i < a2b->input_channels; ++i) {
756
601
        a2b->grid_points[i] = mftTag->grid_points[0];
757
601
    }
758
    // The grid only makes sense with at least two points along each axis
759
213
    if (a2b->grid_points[0] < 2) {
760
4
        return false;
761
4
    }
762
209
    return true;
763
213
}
764
765
// All as the A2B version above, except where noted.
766
190
static bool read_mft_common(const mft_CommonLayout* mftTag, skcms_B2A* b2a) {
767
    // Same as A2B.
768
190
    b2a->matrix_channels = 0;
769
190
    b2a-> input_channels = mftTag-> input_channels[0];
770
190
    b2a->output_channels = mftTag->output_channels[0];
771
772
773
    // For B2A, exactly 3 input channels (XYZ) and 3 (RGB) or 4 (CMYK) output channels.
774
190
    if (b2a->input_channels != ARRAY_COUNT(b2a->input_curves)) {
775
28
        return false;
776
28
    }
777
162
    if (b2a->output_channels < 3 || b2a->output_channels > ARRAY_COUNT(b2a->output_curves)) {
778
23
        return false;
779
23
    }
780
781
    // Same as A2B.
782
556
    for (uint32_t i = 0; i < b2a->input_channels; ++i) {
783
417
        b2a->grid_points[i] = mftTag->grid_points[0];
784
417
    }
785
139
    if (b2a->grid_points[0] < 2) {
786
4
        return false;
787
4
    }
788
135
    return true;
789
139
}
790
791
template <typename A2B_or_B2A>
792
static bool init_tables(const uint8_t* table_base, uint64_t max_tables_len, uint32_t byte_width,
793
                        uint32_t input_table_entries, uint32_t output_table_entries,
794
301
                        A2B_or_B2A* out) {
795
    // byte_width is 1 or 2, [input|output]_table_entries are in [2, 4096], so no overflow
796
301
    uint32_t byte_len_per_input_table  = input_table_entries * byte_width;
797
301
    uint32_t byte_len_per_output_table = output_table_entries * byte_width;
798
799
    // [input|output]_channels are <= 4, so still no overflow
800
301
    uint32_t byte_len_all_input_tables  = out->input_channels * byte_len_per_input_table;
801
301
    uint32_t byte_len_all_output_tables = out->output_channels * byte_len_per_output_table;
802
803
301
    uint64_t grid_size = out->output_channels * byte_width;
804
1.16k
    for (uint32_t axis = 0; axis < out->input_channels; ++axis) {
805
866
        grid_size *= out->grid_points[axis];
806
866
    }
807
808
301
    if (max_tables_len < byte_len_all_input_tables + grid_size + byte_len_all_output_tables) {
809
123
        return false;
810
123
    }
811
812
655
    for (uint32_t i = 0; i < out->input_channels; ++i) {
813
477
        out->input_curves[i].table_entries = input_table_entries;
814
477
        if (byte_width == 1) {
815
178
            out->input_curves[i].table_8  = table_base + i * byte_len_per_input_table;
816
178
            out->input_curves[i].table_16 = nullptr;
817
299
        } else {
818
299
            out->input_curves[i].table_8  = nullptr;
819
299
            out->input_curves[i].table_16 = table_base + i * byte_len_per_input_table;
820
299
        }
821
477
    }
822
823
178
    if (byte_width == 1) {
824
74
        out->grid_8  = table_base + byte_len_all_input_tables;
825
74
        out->grid_16 = nullptr;
826
104
    } else {
827
104
        out->grid_8  = nullptr;
828
104
        out->grid_16 = table_base + byte_len_all_input_tables;
829
104
    }
830
831
178
    const uint8_t* output_table_base = table_base + byte_len_all_input_tables + grid_size;
832
724
    for (uint32_t i = 0; i < out->output_channels; ++i) {
833
546
        out->output_curves[i].table_entries = output_table_entries;
834
546
        if (byte_width == 1) {
835
228
            out->output_curves[i].table_8  = output_table_base + i * byte_len_per_output_table;
836
228
            out->output_curves[i].table_16 = nullptr;
837
318
        } else {
838
318
            out->output_curves[i].table_8  = nullptr;
839
318
            out->output_curves[i].table_16 = output_table_base + i * byte_len_per_output_table;
840
318
        }
841
546
    }
842
843
178
    return true;
844
301
}
skcms.cc:bool init_tables<skcms_A2B>(unsigned char const*, unsigned long, unsigned int, unsigned int, unsigned int, skcms_A2B*)
Line
Count
Source
794
188
                        A2B_or_B2A* out) {
795
    // byte_width is 1 or 2, [input|output]_table_entries are in [2, 4096], so no overflow
796
188
    uint32_t byte_len_per_input_table  = input_table_entries * byte_width;
797
188
    uint32_t byte_len_per_output_table = output_table_entries * byte_width;
798
799
    // [input|output]_channels are <= 4, so still no overflow
800
188
    uint32_t byte_len_all_input_tables  = out->input_channels * byte_len_per_input_table;
801
188
    uint32_t byte_len_all_output_tables = out->output_channels * byte_len_per_output_table;
802
803
188
    uint64_t grid_size = out->output_channels * byte_width;
804
715
    for (uint32_t axis = 0; axis < out->input_channels; ++axis) {
805
527
        grid_size *= out->grid_points[axis];
806
527
    }
807
808
188
    if (max_tables_len < byte_len_all_input_tables + grid_size + byte_len_all_output_tables) {
809
67
        return false;
810
67
    }
811
812
427
    for (uint32_t i = 0; i < out->input_channels; ++i) {
813
306
        out->input_curves[i].table_entries = input_table_entries;
814
306
        if (byte_width == 1) {
815
103
            out->input_curves[i].table_8  = table_base + i * byte_len_per_input_table;
816
103
            out->input_curves[i].table_16 = nullptr;
817
203
        } else {
818
203
            out->input_curves[i].table_8  = nullptr;
819
203
            out->input_curves[i].table_16 = table_base + i * byte_len_per_input_table;
820
203
        }
821
306
    }
822
823
121
    if (byte_width == 1) {
824
49
        out->grid_8  = table_base + byte_len_all_input_tables;
825
49
        out->grid_16 = nullptr;
826
72
    } else {
827
72
        out->grid_8  = nullptr;
828
72
        out->grid_16 = table_base + byte_len_all_input_tables;
829
72
    }
830
831
121
    const uint8_t* output_table_base = table_base + byte_len_all_input_tables + grid_size;
832
484
    for (uint32_t i = 0; i < out->output_channels; ++i) {
833
363
        out->output_curves[i].table_entries = output_table_entries;
834
363
        if (byte_width == 1) {
835
147
            out->output_curves[i].table_8  = output_table_base + i * byte_len_per_output_table;
836
147
            out->output_curves[i].table_16 = nullptr;
837
216
        } else {
838
216
            out->output_curves[i].table_8  = nullptr;
839
216
            out->output_curves[i].table_16 = output_table_base + i * byte_len_per_output_table;
840
216
        }
841
363
    }
842
843
121
    return true;
844
188
}
skcms.cc:bool init_tables<skcms_B2A>(unsigned char const*, unsigned long, unsigned int, unsigned int, unsigned int, skcms_B2A*)
Line
Count
Source
794
113
                        A2B_or_B2A* out) {
795
    // byte_width is 1 or 2, [input|output]_table_entries are in [2, 4096], so no overflow
796
113
    uint32_t byte_len_per_input_table  = input_table_entries * byte_width;
797
113
    uint32_t byte_len_per_output_table = output_table_entries * byte_width;
798
799
    // [input|output]_channels are <= 4, so still no overflow
800
113
    uint32_t byte_len_all_input_tables  = out->input_channels * byte_len_per_input_table;
801
113
    uint32_t byte_len_all_output_tables = out->output_channels * byte_len_per_output_table;
802
803
113
    uint64_t grid_size = out->output_channels * byte_width;
804
452
    for (uint32_t axis = 0; axis < out->input_channels; ++axis) {
805
339
        grid_size *= out->grid_points[axis];
806
339
    }
807
808
113
    if (max_tables_len < byte_len_all_input_tables + grid_size + byte_len_all_output_tables) {
809
56
        return false;
810
56
    }
811
812
228
    for (uint32_t i = 0; i < out->input_channels; ++i) {
813
171
        out->input_curves[i].table_entries = input_table_entries;
814
171
        if (byte_width == 1) {
815
75
            out->input_curves[i].table_8  = table_base + i * byte_len_per_input_table;
816
75
            out->input_curves[i].table_16 = nullptr;
817
96
        } else {
818
96
            out->input_curves[i].table_8  = nullptr;
819
96
            out->input_curves[i].table_16 = table_base + i * byte_len_per_input_table;
820
96
        }
821
171
    }
822
823
57
    if (byte_width == 1) {
824
25
        out->grid_8  = table_base + byte_len_all_input_tables;
825
25
        out->grid_16 = nullptr;
826
32
    } else {
827
32
        out->grid_8  = nullptr;
828
32
        out->grid_16 = table_base + byte_len_all_input_tables;
829
32
    }
830
831
57
    const uint8_t* output_table_base = table_base + byte_len_all_input_tables + grid_size;
832
240
    for (uint32_t i = 0; i < out->output_channels; ++i) {
833
183
        out->output_curves[i].table_entries = output_table_entries;
834
183
        if (byte_width == 1) {
835
81
            out->output_curves[i].table_8  = output_table_base + i * byte_len_per_output_table;
836
81
            out->output_curves[i].table_16 = nullptr;
837
102
        } else {
838
102
            out->output_curves[i].table_8  = nullptr;
839
102
            out->output_curves[i].table_16 = output_table_base + i * byte_len_per_output_table;
840
102
        }
841
183
    }
842
843
57
    return true;
844
113
}
845
846
template <typename A2B_or_B2A>
847
185
static bool read_tag_mft1(const skcms_ICCTag* tag, A2B_or_B2A* out) {
848
185
    if (tag->size < SAFE_FIXED_SIZE(mft1_Layout)) {
849
7
        return false;
850
7
    }
851
852
178
    const mft1_Layout* mftTag = (const mft1_Layout*)tag->buf;
853
178
    if (!read_mft_common(mftTag->common, out)) {
854
50
        return false;
855
50
    }
856
857
128
    uint32_t input_table_entries  = 256;
858
128
    uint32_t output_table_entries = 256;
859
860
128
    return init_tables(mftTag->variable, tag->size - SAFE_FIXED_SIZE(mft1_Layout), 1,
861
128
                       input_table_entries, output_table_entries, out);
862
178
}
skcms.cc:bool read_tag_mft1<skcms_A2B>(skcms_ICCTag const*, skcms_A2B*)
Line
Count
Source
847
110
static bool read_tag_mft1(const skcms_ICCTag* tag, A2B_or_B2A* out) {
848
110
    if (tag->size < SAFE_FIXED_SIZE(mft1_Layout)) {
849
5
        return false;
850
5
    }
851
852
105
    const mft1_Layout* mftTag = (const mft1_Layout*)tag->buf;
853
105
    if (!read_mft_common(mftTag->common, out)) {
854
25
        return false;
855
25
    }
856
857
80
    uint32_t input_table_entries  = 256;
858
80
    uint32_t output_table_entries = 256;
859
860
    return init_tables(mftTag->variable, tag->size - SAFE_FIXED_SIZE(mft1_Layout), 1,
861
80
                       input_table_entries, output_table_entries, out);
862
105
}
skcms.cc:bool read_tag_mft1<skcms_B2A>(skcms_ICCTag const*, skcms_B2A*)
Line
Count
Source
847
75
static bool read_tag_mft1(const skcms_ICCTag* tag, A2B_or_B2A* out) {
848
75
    if (tag->size < SAFE_FIXED_SIZE(mft1_Layout)) {
849
2
        return false;
850
2
    }
851
852
73
    const mft1_Layout* mftTag = (const mft1_Layout*)tag->buf;
853
73
    if (!read_mft_common(mftTag->common, out)) {
854
25
        return false;
855
25
    }
856
857
48
    uint32_t input_table_entries  = 256;
858
48
    uint32_t output_table_entries = 256;
859
860
    return init_tables(mftTag->variable, tag->size - SAFE_FIXED_SIZE(mft1_Layout), 1,
861
48
                       input_table_entries, output_table_entries, out);
862
73
}
863
864
template <typename A2B_or_B2A>
865
282
static bool read_tag_mft2(const skcms_ICCTag* tag, A2B_or_B2A* out) {
866
282
    if (tag->size < SAFE_FIXED_SIZE(mft2_Layout)) {
867
13
        return false;
868
13
    }
869
870
269
    const mft2_Layout* mftTag = (const mft2_Layout*)tag->buf;
871
269
    if (!read_mft_common(mftTag->common, out)) {
872
53
        return false;
873
53
    }
874
875
216
    uint32_t input_table_entries = read_big_u16(mftTag->input_table_entries);
876
216
    uint32_t output_table_entries = read_big_u16(mftTag->output_table_entries);
877
878
    // ICC spec mandates that 2 <= table_entries <= 4096
879
216
    if (input_table_entries < 2 || input_table_entries > 4096 ||
880
195
        output_table_entries < 2 || output_table_entries > 4096) {
881
43
        return false;
882
43
    }
883
884
173
    return init_tables(mftTag->variable, tag->size - SAFE_FIXED_SIZE(mft2_Layout), 2,
885
173
                       input_table_entries, output_table_entries, out);
886
216
}
skcms.cc:bool read_tag_mft2<skcms_A2B>(skcms_ICCTag const*, skcms_A2B*)
Line
Count
Source
865
159
static bool read_tag_mft2(const skcms_ICCTag* tag, A2B_or_B2A* out) {
866
159
    if (tag->size < SAFE_FIXED_SIZE(mft2_Layout)) {
867
7
        return false;
868
7
    }
869
870
152
    const mft2_Layout* mftTag = (const mft2_Layout*)tag->buf;
871
152
    if (!read_mft_common(mftTag->common, out)) {
872
23
        return false;
873
23
    }
874
875
129
    uint32_t input_table_entries = read_big_u16(mftTag->input_table_entries);
876
129
    uint32_t output_table_entries = read_big_u16(mftTag->output_table_entries);
877
878
    // ICC spec mandates that 2 <= table_entries <= 4096
879
129
    if (input_table_entries < 2 || input_table_entries > 4096 ||
880
118
        output_table_entries < 2 || output_table_entries > 4096) {
881
21
        return false;
882
21
    }
883
884
108
    return init_tables(mftTag->variable, tag->size - SAFE_FIXED_SIZE(mft2_Layout), 2,
885
108
                       input_table_entries, output_table_entries, out);
886
129
}
skcms.cc:bool read_tag_mft2<skcms_B2A>(skcms_ICCTag const*, skcms_B2A*)
Line
Count
Source
865
123
static bool read_tag_mft2(const skcms_ICCTag* tag, A2B_or_B2A* out) {
866
123
    if (tag->size < SAFE_FIXED_SIZE(mft2_Layout)) {
867
6
        return false;
868
6
    }
869
870
117
    const mft2_Layout* mftTag = (const mft2_Layout*)tag->buf;
871
117
    if (!read_mft_common(mftTag->common, out)) {
872
30
        return false;
873
30
    }
874
875
87
    uint32_t input_table_entries = read_big_u16(mftTag->input_table_entries);
876
87
    uint32_t output_table_entries = read_big_u16(mftTag->output_table_entries);
877
878
    // ICC spec mandates that 2 <= table_entries <= 4096
879
87
    if (input_table_entries < 2 || input_table_entries > 4096 ||
880
77
        output_table_entries < 2 || output_table_entries > 4096) {
881
22
        return false;
882
22
    }
883
884
65
    return init_tables(mftTag->variable, tag->size - SAFE_FIXED_SIZE(mft2_Layout), 2,
885
65
                       input_table_entries, output_table_entries, out);
886
87
}
887
888
static bool read_curves(const uint8_t* buf, uint32_t size, uint32_t curve_offset,
889
3.39k
                        uint32_t num_curves, skcms_Curve* curves) {
890
11.8k
    for (uint32_t i = 0; i < num_curves; ++i) {
891
9.02k
        if (curve_offset > size) {
892
371
            return false;
893
371
        }
894
895
8.65k
        uint32_t curve_bytes;
896
8.65k
        if (!read_curve(buf + curve_offset, size - curve_offset, &curves[i], &curve_bytes)) {
897
191
            return false;
898
191
        }
899
900
8.46k
        if (curve_bytes > UINT32_MAX - 3) {
901
0
            return false;
902
0
        }
903
8.46k
        curve_bytes = (curve_bytes + 3) & ~3U;
904
905
8.46k
        uint64_t new_offset_64 = (uint64_t)curve_offset + curve_bytes;
906
8.46k
        curve_offset = (uint32_t)new_offset_64;
907
8.46k
        if (new_offset_64 != curve_offset) {
908
0
            return false;
909
0
        }
910
8.46k
    }
911
912
2.83k
    return true;
913
3.39k
}
914
915
// mAB and mBA tags use the same encoding, including color lookup tables.
916
typedef struct {
917
    uint8_t type                 [ 4];
918
    uint8_t reserved_a           [ 4];
919
    uint8_t input_channels       [ 1];
920
    uint8_t output_channels      [ 1];
921
    uint8_t reserved_b           [ 2];
922
    uint8_t b_curve_offset       [ 4];
923
    uint8_t matrix_offset        [ 4];
924
    uint8_t m_curve_offset       [ 4];
925
    uint8_t clut_offset          [ 4];
926
    uint8_t a_curve_offset       [ 4];
927
} mAB_or_mBA_Layout;
928
929
typedef struct {
930
    uint8_t grid_points          [16];
931
    uint8_t grid_byte_width      [ 1];
932
    uint8_t reserved             [ 3];
933
    uint8_t variable             [1/*variable*/];
934
} CLUT_Layout;
935
936
811
static bool read_tag_mab(const skcms_ICCTag* tag, skcms_A2B* a2b, bool pcs_is_xyz) {
937
811
    if (tag->size < SAFE_SIZEOF(mAB_or_mBA_Layout)) {
938
4
        return false;
939
4
    }
940
941
807
    const mAB_or_mBA_Layout* mABTag = (const mAB_or_mBA_Layout*)tag->buf;
942
943
807
    a2b->input_channels  = mABTag->input_channels[0];
944
807
    a2b->output_channels = mABTag->output_channels[0];
945
946
    // We require exactly three (ie XYZ/Lab/RGB) output channels
947
807
    if (a2b->output_channels != ARRAY_COUNT(a2b->output_curves)) {
948
6
        return false;
949
6
    }
950
    // We require no more than four (ie CMYK) input channels
951
801
    if (a2b->input_channels > ARRAY_COUNT(a2b->input_curves)) {
952
6
        return false;
953
6
    }
954
955
795
    uint32_t b_curve_offset = read_big_u32(mABTag->b_curve_offset);
956
795
    uint32_t matrix_offset  = read_big_u32(mABTag->matrix_offset);
957
795
    uint32_t m_curve_offset = read_big_u32(mABTag->m_curve_offset);
958
795
    uint32_t clut_offset    = read_big_u32(mABTag->clut_offset);
959
795
    uint32_t a_curve_offset = read_big_u32(mABTag->a_curve_offset);
960
961
    // "B" curves must be present
962
795
    if (0 == b_curve_offset) {
963
1
        return false;
964
1
    }
965
966
794
    if (!read_curves(tag->buf, tag->size, b_curve_offset, a2b->output_channels,
967
794
                     a2b->output_curves)) {
968
147
        return false;
969
147
    }
970
971
    // "M" curves and Matrix must be used together
972
647
    if (0 != m_curve_offset) {
973
459
        if (0 == matrix_offset) {
974
5
            return false;
975
5
        }
976
454
        a2b->matrix_channels = a2b->output_channels;
977
454
        if (!read_curves(tag->buf, tag->size, m_curve_offset, a2b->matrix_channels,
978
454
                         a2b->matrix_curves)) {
979
77
            return false;
980
77
        }
981
982
        // Read matrix, which is stored as a row-major 3x3, followed by the fourth column
983
377
        if (tag->size < matrix_offset + 12 * SAFE_SIZEOF(uint32_t)) {
984
57
            return false;
985
57
        }
986
320
        float encoding_factor = pcs_is_xyz ? (65535 / 32768.0f) : 1.0f;
987
320
        const uint8_t* mtx_buf = tag->buf + matrix_offset;
988
320
        a2b->matrix.vals[0][0] = encoding_factor * read_big_fixed(mtx_buf +  0);
989
320
        a2b->matrix.vals[0][1] = encoding_factor * read_big_fixed(mtx_buf +  4);
990
320
        a2b->matrix.vals[0][2] = encoding_factor * read_big_fixed(mtx_buf +  8);
991
320
        a2b->matrix.vals[1][0] = encoding_factor * read_big_fixed(mtx_buf + 12);
992
320
        a2b->matrix.vals[1][1] = encoding_factor * read_big_fixed(mtx_buf + 16);
993
320
        a2b->matrix.vals[1][2] = encoding_factor * read_big_fixed(mtx_buf + 20);
994
320
        a2b->matrix.vals[2][0] = encoding_factor * read_big_fixed(mtx_buf + 24);
995
320
        a2b->matrix.vals[2][1] = encoding_factor * read_big_fixed(mtx_buf + 28);
996
320
        a2b->matrix.vals[2][2] = encoding_factor * read_big_fixed(mtx_buf + 32);
997
320
        a2b->matrix.vals[0][3] = encoding_factor * read_big_fixed(mtx_buf + 36);
998
320
        a2b->matrix.vals[1][3] = encoding_factor * read_big_fixed(mtx_buf + 40);
999
320
        a2b->matrix.vals[2][3] = encoding_factor * read_big_fixed(mtx_buf + 44);
1000
320
    } else {
1001
188
        if (0 != matrix_offset) {
1002
46
            return false;
1003
46
        }
1004
142
        a2b->matrix_channels = 0;
1005
142
    }
1006
1007
    // "A" curves and CLUT must be used together
1008
462
    if (0 != a_curve_offset) {
1009
392
        if (0 == clut_offset) {
1010
1
            return false;
1011
1
        }
1012
391
        if (!read_curves(tag->buf, tag->size, a_curve_offset, a2b->input_channels,
1013
391
                         a2b->input_curves)) {
1014
23
            return false;
1015
23
        }
1016
1017
368
        if (tag->size < clut_offset + SAFE_FIXED_SIZE(CLUT_Layout)) {
1018
88
            return false;
1019
88
        }
1020
280
        const CLUT_Layout* clut = (const CLUT_Layout*)(tag->buf + clut_offset);
1021
1022
280
        if (clut->grid_byte_width[0] == 1) {
1023
166
            a2b->grid_8  = clut->variable;
1024
166
            a2b->grid_16 = nullptr;
1025
166
        } else if (clut->grid_byte_width[0] == 2) {
1026
96
            a2b->grid_8  = nullptr;
1027
96
            a2b->grid_16 = clut->variable;
1028
96
        } else {
1029
18
            return false;
1030
18
        }
1031
1032
262
        uint64_t grid_size = a2b->output_channels * clut->grid_byte_width[0];  // the payload
1033
930
        for (uint32_t i = 0; i < a2b->input_channels; ++i) {
1034
670
            a2b->grid_points[i] = clut->grid_points[i];
1035
            // The grid only makes sense with at least two points along each axis
1036
670
            if (a2b->grid_points[i] < 2) {
1037
2
                return false;
1038
2
            }
1039
668
            grid_size *= a2b->grid_points[i];
1040
668
        }
1041
260
        if (tag->size < clut_offset + SAFE_FIXED_SIZE(CLUT_Layout) + grid_size) {
1042
51
            return false;
1043
51
        }
1044
260
    } else {
1045
70
        if (0 != clut_offset) {
1046
49
            return false;
1047
49
        }
1048
1049
        // If there is no CLUT, the number of input and output channels must match
1050
21
        if (a2b->input_channels != a2b->output_channels) {
1051
3
            return false;
1052
3
        }
1053
1054
        // Zero out the number of input channels to signal that we're skipping this stage
1055
18
        a2b->input_channels = 0;
1056
18
    }
1057
1058
227
    return true;
1059
462
}
1060
1061
// Exactly the same as read_tag_mab(), except where there are comments.
1062
// TODO: refactor the two to eliminate common code?
1063
902
static bool read_tag_mba(const skcms_ICCTag* tag, skcms_B2A* b2a, bool pcs_is_xyz) {
1064
902
    if (tag->size < SAFE_SIZEOF(mAB_or_mBA_Layout)) {
1065
5
        return false;
1066
5
    }
1067
1068
897
    const mAB_or_mBA_Layout* mBATag = (const mAB_or_mBA_Layout*)tag->buf;
1069
1070
897
    b2a->input_channels  = mBATag->input_channels[0];
1071
897
    b2a->output_channels = mBATag->output_channels[0];
1072
1073
    // Require exactly 3 inputs (XYZ) and 3 (RGB) or 4 (CMYK) outputs.
1074
897
    if (b2a->input_channels != ARRAY_COUNT(b2a->input_curves)) {
1075
9
        return false;
1076
9
    }
1077
888
    if (b2a->output_channels < 3 || b2a->output_channels > ARRAY_COUNT(b2a->output_curves)) {
1078
12
        return false;
1079
12
    }
1080
1081
876
    uint32_t b_curve_offset = read_big_u32(mBATag->b_curve_offset);
1082
876
    uint32_t matrix_offset  = read_big_u32(mBATag->matrix_offset);
1083
876
    uint32_t m_curve_offset = read_big_u32(mBATag->m_curve_offset);
1084
876
    uint32_t clut_offset    = read_big_u32(mBATag->clut_offset);
1085
876
    uint32_t a_curve_offset = read_big_u32(mBATag->a_curve_offset);
1086
1087
876
    if (0 == b_curve_offset) {
1088
2
        return false;
1089
2
    }
1090
1091
    // "B" curves are our inputs, not outputs.
1092
874
    if (!read_curves(tag->buf, tag->size, b_curve_offset, b2a->input_channels,
1093
874
                     b2a->input_curves)) {
1094
167
        return false;
1095
167
    }
1096
1097
707
    if (0 != m_curve_offset) {
1098
499
        if (0 == matrix_offset) {
1099
4
            return false;
1100
4
        }
1101
        // Matrix channels is tied to input_channels (3), not output_channels.
1102
495
        b2a->matrix_channels = b2a->input_channels;
1103
1104
495
        if (!read_curves(tag->buf, tag->size, m_curve_offset, b2a->matrix_channels,
1105
495
                         b2a->matrix_curves)) {
1106
74
            return false;
1107
74
        }
1108
1109
421
        if (tag->size < matrix_offset + 12 * SAFE_SIZEOF(uint32_t)) {
1110
53
            return false;
1111
53
        }
1112
368
        float encoding_factor = pcs_is_xyz ? (32768 / 65535.0f) : 1.0f;  // TODO: understand
1113
368
        const uint8_t* mtx_buf = tag->buf + matrix_offset;
1114
368
        b2a->matrix.vals[0][0] = encoding_factor * read_big_fixed(mtx_buf +  0);
1115
368
        b2a->matrix.vals[0][1] = encoding_factor * read_big_fixed(mtx_buf +  4);
1116
368
        b2a->matrix.vals[0][2] = encoding_factor * read_big_fixed(mtx_buf +  8);
1117
368
        b2a->matrix.vals[1][0] = encoding_factor * read_big_fixed(mtx_buf + 12);
1118
368
        b2a->matrix.vals[1][1] = encoding_factor * read_big_fixed(mtx_buf + 16);
1119
368
        b2a->matrix.vals[1][2] = encoding_factor * read_big_fixed(mtx_buf + 20);
1120
368
        b2a->matrix.vals[2][0] = encoding_factor * read_big_fixed(mtx_buf + 24);
1121
368
        b2a->matrix.vals[2][1] = encoding_factor * read_big_fixed(mtx_buf + 28);
1122
368
        b2a->matrix.vals[2][2] = encoding_factor * read_big_fixed(mtx_buf + 32);
1123
368
        b2a->matrix.vals[0][3] = encoding_factor * read_big_fixed(mtx_buf + 36);
1124
368
        b2a->matrix.vals[1][3] = encoding_factor * read_big_fixed(mtx_buf + 40);
1125
368
        b2a->matrix.vals[2][3] = encoding_factor * read_big_fixed(mtx_buf + 44);
1126
368
    } else {
1127
208
        if (0 != matrix_offset) {
1128
49
            return false;
1129
49
        }
1130
159
        b2a->matrix_channels = 0;
1131
159
    }
1132
1133
527
    if (0 != a_curve_offset) {
1134
387
        if (0 == clut_offset) {
1135
1
            return false;
1136
1
        }
1137
1138
        // "A" curves are our output, not input.
1139
386
        if (!read_curves(tag->buf, tag->size, a_curve_offset, b2a->output_channels,
1140
386
                         b2a->output_curves)) {
1141
74
            return false;
1142
74
        }
1143
1144
312
        if (tag->size < clut_offset + SAFE_FIXED_SIZE(CLUT_Layout)) {
1145
61
            return false;
1146
61
        }
1147
251
        const CLUT_Layout* clut = (const CLUT_Layout*)(tag->buf + clut_offset);
1148
1149
251
        if (clut->grid_byte_width[0] == 1) {
1150
191
            b2a->grid_8  = clut->variable;
1151
191
            b2a->grid_16 = nullptr;
1152
191
        } else if (clut->grid_byte_width[0] == 2) {
1153
49
            b2a->grid_8  = nullptr;
1154
49
            b2a->grid_16 = clut->variable;
1155
49
        } else {
1156
11
            return false;
1157
11
        }
1158
1159
240
        uint64_t grid_size = b2a->output_channels * clut->grid_byte_width[0];
1160
946
        for (uint32_t i = 0; i < b2a->input_channels; ++i) {
1161
712
            b2a->grid_points[i] = clut->grid_points[i];
1162
712
            if (b2a->grid_points[i] < 2) {
1163
6
                return false;
1164
6
            }
1165
706
            grid_size *= b2a->grid_points[i];
1166
706
        }
1167
234
        if (tag->size < clut_offset + SAFE_FIXED_SIZE(CLUT_Layout) + grid_size) {
1168
38
            return false;
1169
38
        }
1170
234
    } else {
1171
140
        if (0 != clut_offset) {
1172
54
            return false;
1173
54
        }
1174
1175
86
        if (b2a->input_channels != b2a->output_channels) {
1176
1
            return false;
1177
1
        }
1178
1179
        // Zero out *output* channels to skip this stage.
1180
85
        b2a->output_channels = 0;
1181
85
    }
1182
281
    return true;
1183
527
}
1184
1185
// If you pass f, we'll fit a possibly-non-zero value for *f.
1186
// If you pass nullptr, we'll assume you want *f to be treated as zero.
1187
static int fit_linear(const skcms_Curve* curve, int N, float tol,
1188
4.65k
                      float* c, float* d, float* f = nullptr) {
1189
4.65k
    assert(N > 1);
1190
    // We iteratively fit the first points to the TF's linear piece.
1191
    // We want the cx + f line to pass through the first and last points we fit exactly.
1192
    //
1193
    // As we walk along the points we find the minimum and maximum slope of the line before the
1194
    // error would exceed our tolerance.  We stop when the range [slope_min, slope_max] becomes
1195
    // emtpy, when we definitely can't add any more points.
1196
    //
1197
    // Some points' error intervals may intersect the running interval but not lie fully
1198
    // within it.  So we keep track of the last point we saw that is a valid end point candidate,
1199
    // and once the search is done, back up to build the line through *that* point.
1200
4.65k
    const float dx = 1.0f / static_cast<float>(N - 1);
1201
1202
4.65k
    int lin_points = 1;
1203
1204
4.65k
    float f_zero = 0.0f;
1205
4.65k
    if (f) {
1206
2.81k
        *f = eval_curve(curve, 0);
1207
2.81k
    } else {
1208
1.84k
        f = &f_zero;
1209
1.84k
    }
1210
1211
1212
4.65k
    float slope_min = -INFINITY_;
1213
4.65k
    float slope_max = +INFINITY_;
1214
56.8k
    for (int i = 1; i < N; ++i) {
1215
55.9k
        float x = static_cast<float>(i) * dx;
1216
55.9k
        float y = eval_curve(curve, x);
1217
1218
55.9k
        float slope_max_i = (y + tol - *f) / x,
1219
55.9k
              slope_min_i = (y - tol - *f) / x;
1220
55.9k
        if (slope_max_i < slope_min || slope_max < slope_min_i) {
1221
            // Slope intervals would no longer overlap.
1222
3.73k
            break;
1223
3.73k
        }
1224
52.2k
        slope_max = fminf_(slope_max, slope_max_i);
1225
52.2k
        slope_min = fmaxf_(slope_min, slope_min_i);
1226
1227
52.2k
        float cur_slope = (y - *f) / x;
1228
52.2k
        if (slope_min <= cur_slope && cur_slope <= slope_max) {
1229
48.7k
            lin_points = i + 1;
1230
48.7k
            *c = cur_slope;
1231
48.7k
        }
1232
52.2k
    }
1233
1234
    // Set D to the last point that met our tolerance.
1235
4.65k
    *d = static_cast<float>(lin_points - 1) * dx;
1236
4.65k
    return lin_points;
1237
4.65k
}
1238
1239
// If this skcms_Curve holds an identity table, rewrite it as an identity skcms_TransferFunction.
1240
5.14k
static void canonicalize_identity(skcms_Curve* curve) {
1241
5.14k
    if (curve->table_entries && curve->table_entries <= (uint32_t)INT_MAX) {
1242
2.81k
        int N = (int)curve->table_entries;
1243
1244
2.81k
        float c = 0.0f, d = 0.0f, f = 0.0f;
1245
2.81k
        if (N == fit_linear(curve, N, 1.0f/static_cast<float>(2*N), &c,&d,&f)
1246
819
            && c == 1.0f
1247
160
            && f == 0.0f) {
1248
160
            curve->table_entries = 0;
1249
160
            curve->table_8       = nullptr;
1250
160
            curve->table_16      = nullptr;
1251
160
            curve->parametric    = skcms_TransferFunction{1,1,0,0,0,0,0};
1252
160
        }
1253
2.81k
    }
1254
5.14k
}
1255
1256
1.17k
static bool read_a2b(const skcms_ICCTag* tag, skcms_A2B* a2b, bool pcs_is_xyz) {
1257
1.17k
    bool ok = false;
1258
1.17k
    if (tag->type == skcms_Signature_mft1) { ok = read_tag_mft1(tag, a2b); }
1259
1.17k
    if (tag->type == skcms_Signature_mft2) { ok = read_tag_mft2(tag, a2b); }
1260
1.17k
    if (tag->type == skcms_Signature_mAB ) { ok = read_tag_mab(tag, a2b, pcs_is_xyz); }
1261
1.17k
    if (!ok) {
1262
827
        return false;
1263
827
    }
1264
1265
348
    if (a2b->input_channels > 0) { canonicalize_identity(a2b->input_curves + 0); }
1266
348
    if (a2b->input_channels > 1) { canonicalize_identity(a2b->input_curves + 1); }
1267
348
    if (a2b->input_channels > 2) { canonicalize_identity(a2b->input_curves + 2); }
1268
348
    if (a2b->input_channels > 3) { canonicalize_identity(a2b->input_curves + 3); }
1269
1270
348
    if (a2b->matrix_channels > 0) { canonicalize_identity(a2b->matrix_curves + 0); }
1271
348
    if (a2b->matrix_channels > 1) { canonicalize_identity(a2b->matrix_curves + 1); }
1272
348
    if (a2b->matrix_channels > 2) { canonicalize_identity(a2b->matrix_curves + 2); }
1273
1274
348
    if (a2b->output_channels > 0) { canonicalize_identity(a2b->output_curves + 0); }
1275
348
    if (a2b->output_channels > 1) { canonicalize_identity(a2b->output_curves + 1); }
1276
348
    if (a2b->output_channels > 2) { canonicalize_identity(a2b->output_curves + 2); }
1277
1278
348
    return true;
1279
1.17k
}
1280
1281
1.19k
static bool read_b2a(const skcms_ICCTag* tag, skcms_B2A* b2a, bool pcs_is_xyz) {
1282
1.19k
    bool ok = false;
1283
1.19k
    if (tag->type == skcms_Signature_mft1) { ok = read_tag_mft1(tag, b2a); }
1284
1.19k
    if (tag->type == skcms_Signature_mft2) { ok = read_tag_mft2(tag, b2a); }
1285
1.19k
    if (tag->type == skcms_Signature_mBA ) { ok = read_tag_mba(tag, b2a, pcs_is_xyz); }
1286
1.19k
    if (!ok) {
1287
858
        return false;
1288
858
    }
1289
1290
338
    if (b2a->input_channels > 0) { canonicalize_identity(b2a->input_curves + 0); }
1291
338
    if (b2a->input_channels > 1) { canonicalize_identity(b2a->input_curves + 1); }
1292
338
    if (b2a->input_channels > 2) { canonicalize_identity(b2a->input_curves + 2); }
1293
1294
338
    if (b2a->matrix_channels > 0) { canonicalize_identity(b2a->matrix_curves + 0); }
1295
338
    if (b2a->matrix_channels > 1) { canonicalize_identity(b2a->matrix_curves + 1); }
1296
338
    if (b2a->matrix_channels > 2) { canonicalize_identity(b2a->matrix_curves + 2); }
1297
1298
338
    if (b2a->output_channels > 0) { canonicalize_identity(b2a->output_curves + 0); }
1299
338
    if (b2a->output_channels > 1) { canonicalize_identity(b2a->output_curves + 1); }
1300
338
    if (b2a->output_channels > 2) { canonicalize_identity(b2a->output_curves + 2); }
1301
338
    if (b2a->output_channels > 3) { canonicalize_identity(b2a->output_curves + 3); }
1302
1303
338
    return true;
1304
1.19k
}
1305
1306
typedef struct {
1307
    uint8_t type                     [4];
1308
    uint8_t reserved                 [4];
1309
    uint8_t color_primaries          [1];
1310
    uint8_t transfer_characteristics [1];
1311
    uint8_t matrix_coefficients      [1];
1312
    uint8_t video_full_range_flag    [1];
1313
} CICP_Layout;
1314
1315
137
static bool read_cicp(const skcms_ICCTag* tag, skcms_CICP* cicp) {
1316
137
    if (tag->type != skcms_Signature_CICP || tag->size < SAFE_SIZEOF(CICP_Layout)) {
1317
87
        return false;
1318
87
    }
1319
1320
50
    const CICP_Layout* cicpTag = (const CICP_Layout*)tag->buf;
1321
1322
50
    cicp->color_primaries          = cicpTag->color_primaries[0];
1323
50
    cicp->transfer_characteristics = cicpTag->transfer_characteristics[0];
1324
50
    cicp->matrix_coefficients      = cicpTag->matrix_coefficients[0];
1325
50
    cicp->video_full_range_flag    = cicpTag->video_full_range_flag[0];
1326
50
    return true;
1327
137
}
1328
1329
0
void skcms_GetTagByIndex(const skcms_ICCProfile* profile, uint32_t idx, skcms_ICCTag* tag) {
1330
0
    if (!profile || !profile->buffer || !tag) { return; }
1331
0
    if (idx > profile->tag_count) { return; }
1332
0
    const tag_Layout* tags = get_tag_table(profile);
1333
0
    tag->signature = read_big_u32(tags[idx].signature);
1334
0
    tag->size      = read_big_u32(tags[idx].size);
1335
0
    tag->buf       = read_big_u32(tags[idx].offset) + profile->buffer;
1336
0
    tag->type      = read_big_u32(tag->buf);
1337
0
}
1338
1339
25.1k
bool skcms_GetTagBySignature(const skcms_ICCProfile* profile, uint32_t sig, skcms_ICCTag* tag) {
1340
25.1k
    if (!profile || !profile->buffer || !tag) { return false; }
1341
25.1k
    const tag_Layout* tags = get_tag_table(profile);
1342
131k
    for (uint32_t i = 0; i < profile->tag_count; ++i) {
1343
115k
        if (read_big_u32(tags[i].signature) == sig) {
1344
9.15k
            tag->signature = sig;
1345
9.15k
            tag->size      = read_big_u32(tags[i].size);
1346
9.15k
            tag->buf       = read_big_u32(tags[i].offset) + profile->buffer;
1347
9.15k
            tag->type      = read_big_u32(tag->buf);
1348
9.15k
            return true;
1349
9.15k
        }
1350
115k
    }
1351
16.0k
    return false;
1352
25.1k
}
1353
1354
1.88k
static bool usable_as_src(const skcms_ICCProfile* profile) {
1355
1.88k
    return profile->has_A2B
1356
1.57k
       || (profile->has_trc && profile->has_toXYZD50);
1357
1.88k
}
1358
1359
bool skcms_ParseWithA2BPriority(const void* buf, size_t len,
1360
                                const int priority[], const int priorities,
1361
4.16k
                                skcms_ICCProfile* profile) {
1362
4.16k
    static_assert(SAFE_SIZEOF(header_Layout) == 132, "need to update header code");
1363
1364
4.16k
    if (!profile) {
1365
0
        return false;
1366
0
    }
1367
4.16k
    memset(profile, 0, SAFE_SIZEOF(*profile));
1368
1369
4.16k
    if (len < SAFE_SIZEOF(header_Layout)) {
1370
14
        return false;
1371
14
    }
1372
1373
    // Byte-swap all header fields
1374
4.15k
    const header_Layout* header  = (const header_Layout*)buf;
1375
4.15k
    profile->buffer              = (const uint8_t*)buf;
1376
4.15k
    profile->size                = read_big_u32(header->size);
1377
4.15k
    uint32_t version             = read_big_u32(header->version);
1378
4.15k
    profile->data_color_space    = read_big_u32(header->data_color_space);
1379
4.15k
    profile->pcs                 = read_big_u32(header->pcs);
1380
4.15k
    uint32_t signature           = read_big_u32(header->signature);
1381
4.15k
    float illuminant_X           = read_big_fixed(header->illuminant_X);
1382
4.15k
    float illuminant_Y           = read_big_fixed(header->illuminant_Y);
1383
4.15k
    float illuminant_Z           = read_big_fixed(header->illuminant_Z);
1384
4.15k
    profile->tag_count           = read_big_u32(header->tag_count);
1385
1386
    // Validate signature, size (smaller than buffer, large enough to hold tag table),
1387
    // and major version
1388
4.15k
    uint64_t tag_table_size = profile->tag_count * SAFE_SIZEOF(tag_Layout);
1389
4.15k
    if (signature != skcms_Signature_acsp ||
1390
4.09k
        profile->size > len ||
1391
4.06k
        profile->size < SAFE_SIZEOF(header_Layout) + tag_table_size ||
1392
3.99k
        (version >> 24) > 4) {
1393
160
        return false;
1394
160
    }
1395
1396
    // Validate that illuminant is D50 white
1397
3.99k
    if (fabsf_(illuminant_X - 0.9642f) > 0.0100f ||
1398
3.99k
        fabsf_(illuminant_Y - 1.0000f) > 0.0100f ||
1399
3.99k
        fabsf_(illuminant_Z - 0.8249f) > 0.0100f) {
1400
3
        return false;
1401
3
    }
1402
1403
    // Validate that all tag entries have sane offset + size
1404
3.99k
    const tag_Layout* tags = get_tag_table(profile);
1405
18.5k
    for (uint32_t i = 0; i < profile->tag_count; ++i) {
1406
14.6k
        uint32_t tag_offset = read_big_u32(tags[i].offset);
1407
14.6k
        uint32_t tag_size   = read_big_u32(tags[i].size);
1408
14.6k
        uint64_t tag_end    = (uint64_t)tag_offset + (uint64_t)tag_size;
1409
14.6k
        if (tag_size < 4 || tag_end > profile->size) {
1410
94
            return false;
1411
94
        }
1412
14.6k
    }
1413
1414
3.89k
    if (profile->pcs != skcms_Signature_XYZ && profile->pcs != skcms_Signature_Lab) {
1415
72
        return false;
1416
72
    }
1417
1418
3.82k
    bool pcs_is_xyz = profile->pcs == skcms_Signature_XYZ;
1419
1420
    // Pre-parse commonly used tags.
1421
3.82k
    skcms_ICCTag kTRC;
1422
3.82k
    if (profile->data_color_space == skcms_Signature_Gray &&
1423
565
        skcms_GetTagBySignature(profile, skcms_Signature_kTRC, &kTRC)) {
1424
509
        if (!read_curve(kTRC.buf, kTRC.size, &profile->trc[0], nullptr)) {
1425
            // Malformed tag
1426
39
            return false;
1427
39
        }
1428
470
        profile->trc[1] = profile->trc[0];
1429
470
        profile->trc[2] = profile->trc[0];
1430
470
        profile->has_trc = true;
1431
1432
470
        if (pcs_is_xyz) {
1433
467
            profile->toXYZD50.vals[0][0] = illuminant_X;
1434
467
            profile->toXYZD50.vals[1][1] = illuminant_Y;
1435
467
            profile->toXYZD50.vals[2][2] = illuminant_Z;
1436
467
            profile->has_toXYZD50 = true;
1437
467
        }
1438
3.31k
    } else {
1439
3.31k
        skcms_ICCTag rTRC, gTRC, bTRC;
1440
3.31k
        if (skcms_GetTagBySignature(profile, skcms_Signature_rTRC, &rTRC) &&
1441
978
            skcms_GetTagBySignature(profile, skcms_Signature_gTRC, &gTRC) &&
1442
953
            skcms_GetTagBySignature(profile, skcms_Signature_bTRC, &bTRC)) {
1443
943
            if (!read_curve(rTRC.buf, rTRC.size, &profile->trc[0], nullptr) ||
1444
941
                !read_curve(gTRC.buf, gTRC.size, &profile->trc[1], nullptr) ||
1445
940
                !read_curve(bTRC.buf, bTRC.size, &profile->trc[2], nullptr)) {
1446
                // Malformed TRC tags
1447
5
                return false;
1448
5
            }
1449
938
            profile->has_trc = true;
1450
938
        }
1451
1452
3.31k
        skcms_ICCTag rXYZ, gXYZ, bXYZ;
1453
3.31k
        if (skcms_GetTagBySignature(profile, skcms_Signature_rXYZ, &rXYZ) &&
1454
1.11k
            skcms_GetTagBySignature(profile, skcms_Signature_gXYZ, &gXYZ) &&
1455
1.08k
            skcms_GetTagBySignature(profile, skcms_Signature_bXYZ, &bXYZ)) {
1456
1.07k
            if (!read_to_XYZD50(&rXYZ, &gXYZ, &bXYZ, &profile->toXYZD50)) {
1457
                // Malformed XYZ tags
1458
129
                return false;
1459
129
            }
1460
942
            profile->has_toXYZD50 = true;
1461
942
        }
1462
3.31k
    }
1463
1464
9.33k
    for (int i = 0; i < priorities; i++) {
1465
        // enum { perceptual, relative_colormetric, saturation }
1466
6.86k
        if (priority[i] < 0 || priority[i] > 2) {
1467
0
            return false;
1468
0
        }
1469
6.86k
        uint32_t sig = skcms_Signature_A2B0 + static_cast<uint32_t>(priority[i]);
1470
6.86k
        skcms_ICCTag tag;
1471
6.86k
        if (skcms_GetTagBySignature(profile, sig, &tag)) {
1472
1.17k
            if (!read_a2b(&tag, &profile->A2B, pcs_is_xyz)) {
1473
                // Malformed A2B tag
1474
827
                return false;
1475
827
            }
1476
348
            profile->has_A2B = true;
1477
348
            break;
1478
1.17k
        }
1479
6.86k
    }
1480
1481
6.67k
    for (int i = 0; i < priorities; i++) {
1482
        // enum { perceptual, relative_colormetric, saturation }
1483
5.04k
        if (priority[i] < 0 || priority[i] > 2) {
1484
0
            return false;
1485
0
        }
1486
5.04k
        uint32_t sig = skcms_Signature_B2A0 + static_cast<uint32_t>(priority[i]);
1487
5.04k
        skcms_ICCTag tag;
1488
5.04k
        if (skcms_GetTagBySignature(profile, sig, &tag)) {
1489
1.19k
            if (!read_b2a(&tag, &profile->B2A, pcs_is_xyz)) {
1490
                // Malformed B2A tag
1491
858
                return false;
1492
858
            }
1493
338
            profile->has_B2A = true;
1494
338
            break;
1495
1.19k
        }
1496
5.04k
    }
1497
1498
1.96k
    skcms_ICCTag cicp_tag;
1499
1.96k
    if (skcms_GetTagBySignature(profile, skcms_Signature_CICP, &cicp_tag)) {
1500
137
        if (!read_cicp(&cicp_tag, &profile->CICP)) {
1501
            // Malformed CICP tag
1502
87
            return false;
1503
87
        }
1504
50
        profile->has_CICP = true;
1505
50
    }
1506
1507
1.88k
    return usable_as_src(profile);
1508
1.96k
}
1509
1510
1511
0
const skcms_ICCProfile* skcms_sRGB_profile() {
1512
0
    static const skcms_ICCProfile sRGB_profile = {
1513
0
        nullptr,               // buffer, moot here
1514
1515
0
        0,                     // size, moot here
1516
0
        skcms_Signature_RGB,   // data_color_space
1517
0
        skcms_Signature_XYZ,   // pcs
1518
0
        0,                     // tag count, moot here
1519
1520
        // We choose to represent sRGB with its canonical transfer function,
1521
        // and with its canonical XYZD50 gamut matrix.
1522
0
        {   // the 3 trc curves
1523
0
            {{0, {2.4f, (float)(1/1.055), (float)(0.055/1.055), (float)(1/12.92), 0.04045f, 0, 0}}},
1524
0
            {{0, {2.4f, (float)(1/1.055), (float)(0.055/1.055), (float)(1/12.92), 0.04045f, 0, 0}}},
1525
0
            {{0, {2.4f, (float)(1/1.055), (float)(0.055/1.055), (float)(1/12.92), 0.04045f, 0, 0}}},
1526
0
        },
1527
1528
0
        {{  // 3x3 toXYZD50 matrix
1529
0
            { 0.436065674f, 0.385147095f, 0.143066406f },
1530
0
            { 0.222488403f, 0.716873169f, 0.060607910f },
1531
0
            { 0.013916016f, 0.097076416f, 0.714096069f },
1532
0
        }},
1533
1534
0
        {   // an empty A2B
1535
0
            {   // input_curves
1536
0
                {{0, {0,0, 0,0,0,0,0}}},
1537
0
                {{0, {0,0, 0,0,0,0,0}}},
1538
0
                {{0, {0,0, 0,0,0,0,0}}},
1539
0
                {{0, {0,0, 0,0,0,0,0}}},
1540
0
            },
1541
0
            nullptr,   // grid_8
1542
0
            nullptr,   // grid_16
1543
0
            0,         // input_channels
1544
0
            {0,0,0,0}, // grid_points
1545
1546
0
            {   // matrix_curves
1547
0
                {{0, {0,0, 0,0,0,0,0}}},
1548
0
                {{0, {0,0, 0,0,0,0,0}}},
1549
0
                {{0, {0,0, 0,0,0,0,0}}},
1550
0
            },
1551
0
            {{  // matrix (3x4)
1552
0
                { 0,0,0,0 },
1553
0
                { 0,0,0,0 },
1554
0
                { 0,0,0,0 },
1555
0
            }},
1556
0
            0,  // matrix_channels
1557
1558
0
            0,  // output_channels
1559
0
            {   // output_curves
1560
0
                {{0, {0,0, 0,0,0,0,0}}},
1561
0
                {{0, {0,0, 0,0,0,0,0}}},
1562
0
                {{0, {0,0, 0,0,0,0,0}}},
1563
0
            },
1564
0
        },
1565
1566
0
        {   // an empty B2A
1567
0
            {   // input_curves
1568
0
                {{0, {0,0, 0,0,0,0,0}}},
1569
0
                {{0, {0,0, 0,0,0,0,0}}},
1570
0
                {{0, {0,0, 0,0,0,0,0}}},
1571
0
            },
1572
0
            0,  // input_channels
1573
1574
0
            0,  // matrix_channels
1575
0
            {   // matrix_curves
1576
0
                {{0, {0,0, 0,0,0,0,0}}},
1577
0
                {{0, {0,0, 0,0,0,0,0}}},
1578
0
                {{0, {0,0, 0,0,0,0,0}}},
1579
0
            },
1580
0
            {{  // matrix (3x4)
1581
0
                { 0,0,0,0 },
1582
0
                { 0,0,0,0 },
1583
0
                { 0,0,0,0 },
1584
0
            }},
1585
1586
0
            {   // output_curves
1587
0
                {{0, {0,0, 0,0,0,0,0}}},
1588
0
                {{0, {0,0, 0,0,0,0,0}}},
1589
0
                {{0, {0,0, 0,0,0,0,0}}},
1590
0
                {{0, {0,0, 0,0,0,0,0}}},
1591
0
            },
1592
0
            nullptr,    // grid_8
1593
0
            nullptr,    // grid_16
1594
0
            {0,0,0,0},  // grid_points
1595
0
            0,          // output_channels
1596
0
        },
1597
1598
0
        { 0, 0, 0, 0 },  // an empty CICP
1599
1600
0
        true,  // has_trc
1601
0
        true,  // has_toXYZD50
1602
0
        false, // has_A2B
1603
0
        false, // has B2A
1604
0
        false, // has_CICP
1605
0
    };
1606
0
    return &sRGB_profile;
1607
0
}
1608
1609
0
const skcms_ICCProfile* skcms_XYZD50_profile() {
1610
    // Just like sRGB above, but with identity transfer functions and toXYZD50 matrix.
1611
0
    static const skcms_ICCProfile XYZD50_profile = {
1612
0
        nullptr,               // buffer, moot here
1613
1614
0
        0,                     // size, moot here
1615
0
        skcms_Signature_RGB,   // data_color_space
1616
0
        skcms_Signature_XYZ,   // pcs
1617
0
        0,                     // tag count, moot here
1618
1619
0
        {   // the 3 trc curves
1620
0
            {{0, {1,1, 0,0,0,0,0}}},
1621
0
            {{0, {1,1, 0,0,0,0,0}}},
1622
0
            {{0, {1,1, 0,0,0,0,0}}},
1623
0
        },
1624
1625
0
        {{  // 3x3 toXYZD50 matrix
1626
0
            { 1,0,0 },
1627
0
            { 0,1,0 },
1628
0
            { 0,0,1 },
1629
0
        }},
1630
1631
0
        {   // an empty A2B
1632
0
            {   // input_curves
1633
0
                {{0, {0,0, 0,0,0,0,0}}},
1634
0
                {{0, {0,0, 0,0,0,0,0}}},
1635
0
                {{0, {0,0, 0,0,0,0,0}}},
1636
0
                {{0, {0,0, 0,0,0,0,0}}},
1637
0
            },
1638
0
            nullptr,   // grid_8
1639
0
            nullptr,   // grid_16
1640
0
            0,         // input_channels
1641
0
            {0,0,0,0}, // grid_points
1642
1643
0
            {   // matrix_curves
1644
0
                {{0, {0,0, 0,0,0,0,0}}},
1645
0
                {{0, {0,0, 0,0,0,0,0}}},
1646
0
                {{0, {0,0, 0,0,0,0,0}}},
1647
0
            },
1648
0
            {{  // matrix (3x4)
1649
0
                { 0,0,0,0 },
1650
0
                { 0,0,0,0 },
1651
0
                { 0,0,0,0 },
1652
0
            }},
1653
0
            0,  // matrix_channels
1654
1655
0
            0,  // output_channels
1656
0
            {   // output_curves
1657
0
                {{0, {0,0, 0,0,0,0,0}}},
1658
0
                {{0, {0,0, 0,0,0,0,0}}},
1659
0
                {{0, {0,0, 0,0,0,0,0}}},
1660
0
            },
1661
0
        },
1662
1663
0
        {   // an empty B2A
1664
0
            {   // input_curves
1665
0
                {{0, {0,0, 0,0,0,0,0}}},
1666
0
                {{0, {0,0, 0,0,0,0,0}}},
1667
0
                {{0, {0,0, 0,0,0,0,0}}},
1668
0
            },
1669
0
            0,  // input_channels
1670
1671
0
            0,  // matrix_channels
1672
0
            {   // matrix_curves
1673
0
                {{0, {0,0, 0,0,0,0,0}}},
1674
0
                {{0, {0,0, 0,0,0,0,0}}},
1675
0
                {{0, {0,0, 0,0,0,0,0}}},
1676
0
            },
1677
0
            {{  // matrix (3x4)
1678
0
                { 0,0,0,0 },
1679
0
                { 0,0,0,0 },
1680
0
                { 0,0,0,0 },
1681
0
            }},
1682
1683
0
            {   // output_curves
1684
0
                {{0, {0,0, 0,0,0,0,0}}},
1685
0
                {{0, {0,0, 0,0,0,0,0}}},
1686
0
                {{0, {0,0, 0,0,0,0,0}}},
1687
0
                {{0, {0,0, 0,0,0,0,0}}},
1688
0
            },
1689
0
            nullptr,    // grid_8
1690
0
            nullptr,    // grid_16
1691
0
            {0,0,0,0},  // grid_points
1692
0
            0,          // output_channels
1693
0
        },
1694
1695
0
        { 0, 0, 0, 0 },  // an empty CICP
1696
1697
0
        true,  // has_trc
1698
0
        true,  // has_toXYZD50
1699
0
        false, // has_A2B
1700
0
        false, // has B2A
1701
0
        false, // has_CICP
1702
0
    };
1703
1704
0
    return &XYZD50_profile;
1705
0
}
1706
1707
0
const skcms_TransferFunction* skcms_sRGB_TransferFunction() {
1708
0
    return &skcms_sRGB_profile()->trc[0].parametric;
1709
0
}
1710
1711
0
const skcms_TransferFunction* skcms_sRGB_Inverse_TransferFunction() {
1712
0
    static const skcms_TransferFunction sRGB_inv =
1713
0
        {0.416666657f, 1.137283325f, -0.0f, 12.920000076f, 0.003130805f, -0.054969788f, -0.0f};
1714
0
    return &sRGB_inv;
1715
0
}
1716
1717
0
const skcms_TransferFunction* skcms_Identity_TransferFunction() {
1718
0
    static const skcms_TransferFunction identity = {1,1,0,0,0,0,0};
1719
0
    return &identity;
1720
0
}
1721
1722
const uint8_t skcms_252_random_bytes[] = {
1723
    8, 179, 128, 204, 253, 38, 134, 184, 68, 102, 32, 138, 99, 39, 169, 215,
1724
    119, 26, 3, 223, 95, 239, 52, 132, 114, 74, 81, 234, 97, 116, 244, 205, 30,
1725
    154, 173, 12, 51, 159, 122, 153, 61, 226, 236, 178, 229, 55, 181, 220, 191,
1726
    194, 160, 126, 168, 82, 131, 18, 180, 245, 163, 22, 246, 69, 235, 252, 57,
1727
    108, 14, 6, 152, 240, 255, 171, 242, 20, 227, 177, 238, 96, 85, 16, 211,
1728
    70, 200, 149, 155, 146, 127, 145, 100, 151, 109, 19, 165, 208, 195, 164,
1729
    137, 254, 182, 248, 64, 201, 45, 209, 5, 147, 207, 210, 113, 162, 83, 225,
1730
    9, 31, 15, 231, 115, 37, 58, 53, 24, 49, 197, 56, 120, 172, 48, 21, 214,
1731
    129, 111, 11, 50, 187, 196, 34, 60, 103, 71, 144, 47, 203, 77, 80, 232,
1732
    140, 222, 250, 206, 166, 247, 139, 249, 221, 72, 106, 27, 199, 117, 54,
1733
    219, 135, 118, 40, 79, 41, 251, 46, 93, 212, 92, 233, 148, 28, 121, 63,
1734
    123, 158, 105, 59, 29, 42, 143, 23, 0, 107, 176, 87, 104, 183, 156, 193,
1735
    189, 90, 188, 65, 190, 17, 198, 7, 186, 161, 1, 124, 78, 125, 170, 133,
1736
    174, 218, 67, 157, 75, 101, 89, 217, 62, 33, 141, 228, 25, 35, 91, 230, 4,
1737
    2, 13, 73, 86, 167, 237, 84, 243, 44, 185, 66, 130, 110, 150, 142, 216, 88,
1738
    112, 36, 224, 136, 202, 76, 94, 98, 175, 213
1739
};
1740
1741
0
bool skcms_ApproximatelyEqualProfiles(const skcms_ICCProfile* A, const skcms_ICCProfile* B) {
1742
    // Test for exactly equal profiles first.
1743
0
    if (A == B || 0 == memcmp(A,B, sizeof(skcms_ICCProfile))) {
1744
0
        return true;
1745
0
    }
1746
1747
    // For now this is the essentially the same strategy we use in test_only.c
1748
    // for our skcms_Transform() smoke tests:
1749
    //    1) transform A to XYZD50
1750
    //    2) transform B to XYZD50
1751
    //    3) return true if they're similar enough
1752
    // Our current criterion in 3) is maximum 1 bit error per XYZD50 byte.
1753
1754
    // skcms_252_random_bytes are 252 of a random shuffle of all possible bytes.
1755
    // 252 is evenly divisible by 3 and 4.  Only 192, 10, 241, and 43 are missing.
1756
1757
    // We want to allow otherwise equivalent profiles tagged as grayscale and RGB
1758
    // to be treated as equal.  But CMYK profiles are a totally different ballgame.
1759
0
    const auto CMYK = skcms_Signature_CMYK;
1760
0
    if ((A->data_color_space == CMYK) != (B->data_color_space == CMYK)) {
1761
0
        return false;
1762
0
    }
1763
1764
    // Interpret as RGB_888 if data color space is RGB or GRAY, RGBA_8888 if CMYK.
1765
    // TODO: working with RGBA_8888 either way is probably fastest.
1766
0
    skcms_PixelFormat fmt = skcms_PixelFormat_RGB_888;
1767
0
    size_t npixels = 84;
1768
0
    if (A->data_color_space == skcms_Signature_CMYK) {
1769
0
        fmt = skcms_PixelFormat_RGBA_8888;
1770
0
        npixels = 63;
1771
0
    }
1772
1773
    // TODO: if A or B is a known profile (skcms_sRGB_profile, skcms_XYZD50_profile),
1774
    // use pre-canned results and skip that skcms_Transform() call?
1775
0
    uint8_t dstA[252],
1776
0
            dstB[252];
1777
0
    if (!skcms_Transform(
1778
0
                skcms_252_random_bytes,     fmt, skcms_AlphaFormat_Unpremul, A,
1779
0
                dstA, skcms_PixelFormat_RGB_888, skcms_AlphaFormat_Unpremul, skcms_XYZD50_profile(),
1780
0
                npixels)) {
1781
0
        return false;
1782
0
    }
1783
0
    if (!skcms_Transform(
1784
0
                skcms_252_random_bytes,     fmt, skcms_AlphaFormat_Unpremul, B,
1785
0
                dstB, skcms_PixelFormat_RGB_888, skcms_AlphaFormat_Unpremul, skcms_XYZD50_profile(),
1786
0
                npixels)) {
1787
0
        return false;
1788
0
    }
1789
1790
    // TODO: make sure this final check has reasonable codegen.
1791
0
    for (size_t i = 0; i < 252; i++) {
1792
0
        if (abs((int)dstA[i] - (int)dstB[i]) > 1) {
1793
0
            return false;
1794
0
        }
1795
0
    }
1796
0
    return true;
1797
0
}
1798
1799
bool skcms_TRCs_AreApproximateInverse(const skcms_ICCProfile* profile,
1800
0
                                      const skcms_TransferFunction* inv_tf) {
1801
0
    if (!profile || !profile->has_trc) {
1802
0
        return false;
1803
0
    }
1804
1805
0
    return skcms_AreApproximateInverses(&profile->trc[0], inv_tf) &&
1806
0
           skcms_AreApproximateInverses(&profile->trc[1], inv_tf) &&
1807
0
           skcms_AreApproximateInverses(&profile->trc[2], inv_tf);
1808
0
}
1809
1810
0
static bool is_zero_to_one(float x) {
1811
0
    return 0 <= x && x <= 1;
1812
0
}
1813
1814
typedef struct { float vals[3]; } skcms_Vector3;
1815
1816
8.01k
static skcms_Vector3 mv_mul(const skcms_Matrix3x3* m, const skcms_Vector3* v) {
1817
8.01k
    skcms_Vector3 dst = {{0,0,0}};
1818
32.0k
    for (int row = 0; row < 3; ++row) {
1819
24.0k
        dst.vals[row] = m->vals[row][0] * v->vals[0]
1820
24.0k
                      + m->vals[row][1] * v->vals[1]
1821
24.0k
                      + m->vals[row][2] * v->vals[2];
1822
24.0k
    }
1823
8.01k
    return dst;
1824
8.01k
}
1825
1826
bool skcms_AdaptToXYZD50(float wx, float wy,
1827
0
                         skcms_Matrix3x3* toXYZD50) {
1828
0
    if (!is_zero_to_one(wx) || !is_zero_to_one(wy) ||
1829
0
        !toXYZD50) {
1830
0
        return false;
1831
0
    }
1832
1833
    // Assumes that Y is 1.0f.
1834
0
    skcms_Vector3 wXYZ = { { wx / wy, 1, (1 - wx - wy) / wy } };
1835
1836
    // Now convert toXYZ matrix to toXYZD50.
1837
0
    skcms_Vector3 wXYZD50 = { { 0.96422f, 1.0f, 0.82521f } };
1838
1839
    // Calculate the chromatic adaptation matrix.  We will use the Bradford method, thus
1840
    // the matrices below.  The Bradford method is used by Adobe and is widely considered
1841
    // to be the best.
1842
0
    skcms_Matrix3x3 xyz_to_lms = {{
1843
0
        {  0.8951f,  0.2664f, -0.1614f },
1844
0
        { -0.7502f,  1.7135f,  0.0367f },
1845
0
        {  0.0389f, -0.0685f,  1.0296f },
1846
0
    }};
1847
0
    skcms_Matrix3x3 lms_to_xyz = {{
1848
0
        {  0.9869929f, -0.1470543f, 0.1599627f },
1849
0
        {  0.4323053f,  0.5183603f, 0.0492912f },
1850
0
        { -0.0085287f,  0.0400428f, 0.9684867f },
1851
0
    }};
1852
1853
0
    skcms_Vector3 srcCone = mv_mul(&xyz_to_lms, &wXYZ);
1854
0
    skcms_Vector3 dstCone = mv_mul(&xyz_to_lms, &wXYZD50);
1855
1856
0
    *toXYZD50 = {{
1857
0
        { dstCone.vals[0] / srcCone.vals[0], 0, 0 },
1858
0
        { 0, dstCone.vals[1] / srcCone.vals[1], 0 },
1859
0
        { 0, 0, dstCone.vals[2] / srcCone.vals[2] },
1860
0
    }};
1861
0
    *toXYZD50 = skcms_Matrix3x3_concat(toXYZD50, &xyz_to_lms);
1862
0
    *toXYZD50 = skcms_Matrix3x3_concat(&lms_to_xyz, toXYZD50);
1863
1864
0
    return true;
1865
0
}
1866
1867
bool skcms_PrimariesToXYZD50(float rx, float ry,
1868
                             float gx, float gy,
1869
                             float bx, float by,
1870
                             float wx, float wy,
1871
0
                             skcms_Matrix3x3* toXYZD50) {
1872
0
    if (!is_zero_to_one(rx) || !is_zero_to_one(ry) ||
1873
0
        !is_zero_to_one(gx) || !is_zero_to_one(gy) ||
1874
0
        !is_zero_to_one(bx) || !is_zero_to_one(by) ||
1875
0
        !is_zero_to_one(wx) || !is_zero_to_one(wy) ||
1876
0
        !toXYZD50) {
1877
0
        return false;
1878
0
    }
1879
1880
    // First, we need to convert xy values (primaries) to XYZ.
1881
0
    skcms_Matrix3x3 primaries = {{
1882
0
        { rx, gx, bx },
1883
0
        { ry, gy, by },
1884
0
        { 1 - rx - ry, 1 - gx - gy, 1 - bx - by },
1885
0
    }};
1886
0
    skcms_Matrix3x3 primaries_inv;
1887
0
    if (!skcms_Matrix3x3_invert(&primaries, &primaries_inv)) {
1888
0
        return false;
1889
0
    }
1890
1891
    // Assumes that Y is 1.0f.
1892
0
    skcms_Vector3 wXYZ = { { wx / wy, 1, (1 - wx - wy) / wy } };
1893
0
    skcms_Vector3 XYZ = mv_mul(&primaries_inv, &wXYZ);
1894
1895
0
    skcms_Matrix3x3 toXYZ = {{
1896
0
        { XYZ.vals[0],           0,           0 },
1897
0
        {           0, XYZ.vals[1],           0 },
1898
0
        {           0,           0, XYZ.vals[2] },
1899
0
    }};
1900
0
    toXYZ = skcms_Matrix3x3_concat(&primaries, &toXYZ);
1901
1902
0
    skcms_Matrix3x3 DXtoD50;
1903
0
    if (!skcms_AdaptToXYZD50(wx, wy, &DXtoD50)) {
1904
0
        return false;
1905
0
    }
1906
1907
0
    *toXYZD50 = skcms_Matrix3x3_concat(&DXtoD50, &toXYZ);
1908
0
    return true;
1909
0
}
1910
1911
1912
34.3k
bool skcms_Matrix3x3_invert(const skcms_Matrix3x3* src, skcms_Matrix3x3* dst) {
1913
34.3k
    double a00 = src->vals[0][0],
1914
34.3k
           a01 = src->vals[1][0],
1915
34.3k
           a02 = src->vals[2][0],
1916
34.3k
           a10 = src->vals[0][1],
1917
34.3k
           a11 = src->vals[1][1],
1918
34.3k
           a12 = src->vals[2][1],
1919
34.3k
           a20 = src->vals[0][2],
1920
34.3k
           a21 = src->vals[1][2],
1921
34.3k
           a22 = src->vals[2][2];
1922
1923
34.3k
    double b0 = a00*a11 - a01*a10,
1924
34.3k
           b1 = a00*a12 - a02*a10,
1925
34.3k
           b2 = a01*a12 - a02*a11,
1926
34.3k
           b3 = a20,
1927
34.3k
           b4 = a21,
1928
34.3k
           b5 = a22;
1929
1930
34.3k
    double determinant = b0*b5
1931
34.3k
                       - b1*b4
1932
34.3k
                       + b2*b3;
1933
1934
34.3k
    if (determinant == 0) {
1935
77
        return false;
1936
77
    }
1937
1938
34.2k
    double invdet = 1.0 / determinant;
1939
34.2k
    if (invdet > +FLT_MAX || invdet < -FLT_MAX || !isfinitef_((float)invdet)) {
1940
400
        return false;
1941
400
    }
1942
1943
33.8k
    b0 *= invdet;
1944
33.8k
    b1 *= invdet;
1945
33.8k
    b2 *= invdet;
1946
33.8k
    b3 *= invdet;
1947
33.8k
    b4 *= invdet;
1948
33.8k
    b5 *= invdet;
1949
1950
33.8k
    dst->vals[0][0] = (float)( a11*b5 - a12*b4 );
1951
33.8k
    dst->vals[1][0] = (float)( a02*b4 - a01*b5 );
1952
33.8k
    dst->vals[2][0] = (float)(        +     b2 );
1953
33.8k
    dst->vals[0][1] = (float)( a12*b3 - a10*b5 );
1954
33.8k
    dst->vals[1][1] = (float)( a00*b5 - a02*b3 );
1955
33.8k
    dst->vals[2][1] = (float)(        -     b1 );
1956
33.8k
    dst->vals[0][2] = (float)( a10*b4 - a11*b3 );
1957
33.8k
    dst->vals[1][2] = (float)( a01*b3 - a00*b4 );
1958
33.8k
    dst->vals[2][2] = (float)(        +     b0 );
1959
1960
135k
    for (int r = 0; r < 3; ++r)
1961
406k
    for (int c = 0; c < 3; ++c) {
1962
304k
        if (!isfinitef_(dst->vals[r][c])) {
1963
20
            return false;
1964
20
        }
1965
304k
    }
1966
33.8k
    return true;
1967
33.8k
}
1968
1969
3.16k
skcms_Matrix3x3 skcms_Matrix3x3_concat(const skcms_Matrix3x3* A, const skcms_Matrix3x3* B) {
1970
3.16k
    skcms_Matrix3x3 m = { { { 0,0,0 },{ 0,0,0 },{ 0,0,0 } } };
1971
12.6k
    for (int r = 0; r < 3; r++)
1972
38.0k
        for (int c = 0; c < 3; c++) {
1973
28.5k
            m.vals[r][c] = A->vals[r][0] * B->vals[0][c]
1974
28.5k
                         + A->vals[r][1] * B->vals[1][c]
1975
28.5k
                         + A->vals[r][2] * B->vals[2][c];
1976
28.5k
        }
1977
3.16k
    return m;
1978
3.16k
}
1979
1980
#if defined(__clang__)
1981
    [[clang::no_sanitize("float-divide-by-zero")]]  // Checked for by classify() on the way out.
1982
#endif
1983
30.7k
bool skcms_TransferFunction_invert(const skcms_TransferFunction* src, skcms_TransferFunction* dst) {
1984
30.7k
    TF_PQish  pq;
1985
30.7k
    TF_HLGish hlg;
1986
30.7k
    switch (classify(*src, &pq, &hlg)) {
1987
2.16k
        case skcms_TFType_Invalid: return false;
1988
96
        case skcms_TFType_PQ:      return false;
1989
93
        case skcms_TFType_HLG:     return false;
1990
27.8k
        case skcms_TFType_sRGBish: break;  // handled below
1991
1992
141
        case skcms_TFType_PQish:
1993
141
            *dst = { TFKind_marker(skcms_TFType_PQish), -pq.A,  pq.D, 1.0f/pq.F
1994
141
                                                      ,  pq.B, -pq.E, 1.0f/pq.C};
1995
141
            return true;
1996
1997
325
        case skcms_TFType_HLGish:
1998
325
            *dst = { TFKind_marker(skcms_TFType_HLGinvish), 1.0f/hlg.R, 1.0f/hlg.G
1999
325
                                                          , 1.0f/hlg.a, hlg.b, hlg.c
2000
325
                                                          , hlg.K_minus_1 };
2001
325
            return true;
2002
2003
90
        case skcms_TFType_HLGinvish:
2004
90
            *dst = { TFKind_marker(skcms_TFType_HLGish), 1.0f/hlg.R, 1.0f/hlg.G
2005
90
                                                       , 1.0f/hlg.a, hlg.b, hlg.c
2006
90
                                                       , hlg.K_minus_1 };
2007
90
            return true;
2008
30.7k
    }
2009
2010
30.7k
    assert (classify(*src) == skcms_TFType_sRGBish);
2011
2012
    // We're inverting this function, solving for x in terms of y.
2013
    //   y = (cx + f)         x < d
2014
    //       (ax + b)^g + e   x ≥ d
2015
    // The inverse of this function can be expressed in the same piecewise form.
2016
27.8k
    skcms_TransferFunction inv = {0,0,0,0,0,0,0};
2017
2018
    // We'll start by finding the new threshold inv.d.
2019
    // In principle we should be able to find that by solving for y at x=d from either side.
2020
    // (If those two d values aren't the same, it's a discontinuous transfer function.)
2021
27.8k
    float d_l =       src->c * src->d + src->f,
2022
27.8k
          d_r = powf_(src->a * src->d + src->b, src->g) + src->e;
2023
27.8k
    if (fabsf_(d_l - d_r) > 1/512.0f) {
2024
815
        return false;
2025
815
    }
2026
27.0k
    inv.d = d_l;  // TODO(mtklein): better in practice to choose d_r?
2027
2028
    // When d=0, the linear section collapses to a point.  We leave c,d,f all zero in that case.
2029
27.0k
    if (inv.d > 0) {
2030
        // Inverting the linear section is pretty straightfoward:
2031
        //        y       = cx + f
2032
        //        y - f   = cx
2033
        //   (1/c)y - f/c = x
2034
18.6k
        inv.c =    1.0f/src->c;
2035
18.6k
        inv.f = -src->f/src->c;
2036
18.6k
    }
2037
2038
    // The interesting part is inverting the nonlinear section:
2039
    //         y                = (ax + b)^g + e.
2040
    //         y - e            = (ax + b)^g
2041
    //        (y - e)^1/g       =  ax + b
2042
    //        (y - e)^1/g - b   =  ax
2043
    //   (1/a)(y - e)^1/g - b/a =   x
2044
    //
2045
    // To make that fit our form, we need to move the (1/a) term inside the exponentiation:
2046
    //   let k = (1/a)^g
2047
    //   (1/a)( y -  e)^1/g - b/a = x
2048
    //        (ky - ke)^1/g - b/a = x
2049
2050
27.0k
    float k = powf_(src->a, -src->g);  // (1/a)^g == a^-g
2051
27.0k
    inv.g = 1.0f / src->g;
2052
27.0k
    inv.a = k;
2053
27.0k
    inv.b = -k * src->e;
2054
27.0k
    inv.e = -src->b / src->a;
2055
2056
    // We need to enforce the same constraints here that we do when fitting a curve,
2057
    // a >= 0 and ad+b >= 0.  These constraints are checked by classify(), so they're true
2058
    // of the source function if we're here.
2059
2060
    // Just like when fitting the curve, there's really no way to rescue a < 0.
2061
27.0k
    if (inv.a < 0) {
2062
0
        return false;
2063
0
    }
2064
    // On the other hand we can rescue an ad+b that's gone slightly negative here.
2065
27.0k
    if (inv.a * inv.d + inv.b < 0) {
2066
1.97k
        inv.b = -inv.a * inv.d;
2067
1.97k
    }
2068
2069
    // That should usually make classify(inv) == sRGBish true, but there are a couple situations
2070
    // where we might still fail here, like non-finite parameter values.
2071
27.0k
    if (classify(inv) != skcms_TFType_sRGBish) {
2072
413
        return false;
2073
413
    }
2074
2075
27.0k
    assert (inv.a >= 0);
2076
26.5k
    assert (inv.a * inv.d + inv.b >= 0);
2077
2078
    // Now in principle we're done.
2079
    // But to preserve the valuable invariant inv(src(1.0f)) == 1.0f, we'll tweak
2080
    // e or f of the inverse, depending on which segment contains src(1.0f).
2081
26.5k
    float s = skcms_TransferFunction_eval(src, 1.0f);
2082
26.5k
    if (!isfinitef_(s)) {
2083
196
        return false;
2084
196
    }
2085
2086
26.3k
    float sign = s < 0 ? -1.0f : 1.0f;
2087
26.3k
    s *= sign;
2088
26.3k
    if (s < inv.d) {
2089
1.11k
        inv.f = 1.0f - sign * inv.c * s;
2090
25.2k
    } else {
2091
25.2k
        inv.e = 1.0f - sign * powf_(inv.a * s + inv.b, inv.g);
2092
25.2k
    }
2093
2094
26.3k
    *dst = inv;
2095
26.3k
    return classify(*dst) == skcms_TFType_sRGBish;
2096
26.5k
}
2097
2098
// ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ //
2099
2100
// From here below we're approximating an skcms_Curve with an skcms_TransferFunction{g,a,b,c,d,e,f}:
2101
//
2102
//   tf(x) =  cx + f          x < d
2103
//   tf(x) = (ax + b)^g + e   x ≥ d
2104
//
2105
// When fitting, we add the additional constraint that both pieces meet at d:
2106
//
2107
//   cd + f = (ad + b)^g + e
2108
//
2109
// Solving for e and folding it through gives an alternate formulation of the non-linear piece:
2110
//
2111
//   tf(x) =                           cx + f   x < d
2112
//   tf(x) = (ax + b)^g - (ad + b)^g + cd + f   x ≥ d
2113
//
2114
// Our overall strategy is then:
2115
//    For a couple tolerances,
2116
//       - fit_linear():    fit c,d,f iteratively to as many points as our tolerance allows
2117
//       - invert c,d,f
2118
//       - fit_nonlinear(): fit g,a,b using Gauss-Newton given those inverted c,d,f
2119
//                          (and by constraint, inverted e) to the inverse of the table.
2120
//    Return the parameters with least maximum error.
2121
//
2122
// To run Gauss-Newton to find g,a,b, we'll also need the gradient of the residuals
2123
// of round-trip f_inv(x), the inverse of the non-linear piece of f(x).
2124
//
2125
//    let y = Table(x)
2126
//    r(x) = x - f_inv(y)
2127
//
2128
//    ∂r/∂g = ln(ay + b)*(ay + b)^g
2129
//          - ln(ad + b)*(ad + b)^g
2130
//    ∂r/∂a = yg(ay + b)^(g-1)
2131
//          - dg(ad + b)^(g-1)
2132
//    ∂r/∂b =  g(ay + b)^(g-1)
2133
//          -  g(ad + b)^(g-1)
2134
2135
// Return the residual of roundtripping skcms_Curve(x) through f_inv(y) with parameters P,
2136
// and fill out the gradient of the residual into dfdP.
2137
static float rg_nonlinear(float x,
2138
                          const skcms_Curve* curve,
2139
                          const skcms_TransferFunction* tf,
2140
8.27M
                          float dfdP[3]) {
2141
8.27M
    const float y = eval_curve(curve, x);
2142
2143
8.27M
    const float g = tf->g, a = tf->a, b = tf->b,
2144
8.27M
                c = tf->c, d = tf->d, f = tf->f;
2145
2146
8.27M
    const float Y = fmaxf_(a*y + b, 0.0f),
2147
8.27M
                D =        a*d + b;
2148
8.27M
    assert (D >= 0);
2149
2150
    // The gradient.
2151
8.27M
    dfdP[0] = logf_(Y)*powf_(Y, g)
2152
8.27M
            - logf_(D)*powf_(D, g);
2153
8.27M
    dfdP[1] = y*g*powf_(Y, g-1)
2154
8.27M
            - d*g*powf_(D, g-1);
2155
8.27M
    dfdP[2] =   g*powf_(Y, g-1)
2156
8.27M
            -   g*powf_(D, g-1);
2157
2158
    // The residual.
2159
8.27M
    const float f_inv = powf_(Y, g)
2160
8.27M
                      - powf_(D, g)
2161
8.27M
                      + c*d + f;
2162
8.27M
    return x - f_inv;
2163
8.27M
}
2164
2165
static bool gauss_newton_step(const skcms_Curve* curve,
2166
                                    skcms_TransferFunction* tf,
2167
8.49k
                              float x0, float dx, int N) {
2168
    // We'll sample x from the range [x0,x1] (both inclusive) N times with even spacing.
2169
    //
2170
    // Let P = [ tf->g, tf->a, tf->b ] (the three terms that we're adjusting).
2171
    //
2172
    // We want to do P' = P + (Jf^T Jf)^-1 Jf^T r(P),
2173
    //   where r(P) is the residual vector
2174
    //   and Jf is the Jacobian matrix of f(), ∂r/∂P.
2175
    //
2176
    // Let's review the shape of each of these expressions:
2177
    //   r(P)   is [N x 1], a column vector with one entry per value of x tested
2178
    //   Jf     is [N x 3], a matrix with an entry for each (x,P) pair
2179
    //   Jf^T   is [3 x N], the transpose of Jf
2180
    //
2181
    //   Jf^T Jf   is [3 x N] * [N x 3] == [3 x 3], a 3x3 matrix,
2182
    //                                              and so is its inverse (Jf^T Jf)^-1
2183
    //   Jf^T r(P) is [3 x N] * [N x 1] == [3 x 1], a column vector with the same shape as P
2184
    //
2185
    // Our implementation strategy to get to the final ∆P is
2186
    //   1) evaluate Jf^T Jf,   call that lhs
2187
    //   2) evaluate Jf^T r(P), call that rhs
2188
    //   3) invert lhs
2189
    //   4) multiply inverse lhs by rhs
2190
    //
2191
    // This is a friendly implementation strategy because we don't have to have any
2192
    // buffers that scale with N, and equally nice don't have to perform any matrix
2193
    // operations that are variable size.
2194
    //
2195
    // Other implementation strategies could trade this off, e.g. evaluating the
2196
    // pseudoinverse of Jf ( (Jf^T Jf)^-1 Jf^T ) directly, then multiplying that by
2197
    // the residuals.  That would probably require implementing singular value
2198
    // decomposition, and would create a [3 x N] matrix to be multiplied by the
2199
    // [N x 1] residual vector, but on the upside I think that'd eliminate the
2200
    // possibility of this gauss_newton_step() function ever failing.
2201
2202
    // 0) start off with lhs and rhs safely zeroed.
2203
8.49k
    skcms_Matrix3x3 lhs = {{ {0,0,0}, {0,0,0}, {0,0,0} }};
2204
8.49k
    skcms_Vector3   rhs = {  {0,0,0} };
2205
2206
    // 1,2) evaluate lhs and evaluate rhs
2207
    //   We want to evaluate Jf only once, but both lhs and rhs involve Jf^T,
2208
    //   so we'll have to update lhs and rhs at the same time.
2209
8.28M
    for (int i = 0; i < N; i++) {
2210
8.27M
        float x = x0 + static_cast<float>(i)*dx;
2211
2212
8.27M
        float dfdP[3] = {0,0,0};
2213
8.27M
        float resid = rg_nonlinear(x,curve,tf, dfdP);
2214
2215
33.1M
        for (int r = 0; r < 3; r++) {
2216
99.3M
            for (int c = 0; c < 3; c++) {
2217
74.4M
                lhs.vals[r][c] += dfdP[r] * dfdP[c];
2218
74.4M
            }
2219
24.8M
            rhs.vals[r] += dfdP[r] * resid;
2220
24.8M
        }
2221
8.27M
    }
2222
2223
    // If any of the 3 P parameters are unused, this matrix will be singular.
2224
    // Detect those cases and fix them up to indentity instead, so we can invert.
2225
33.9k
    for (int k = 0; k < 3; k++) {
2226
25.4k
        if (lhs.vals[0][k]==0 && lhs.vals[1][k]==0 && lhs.vals[2][k]==0 &&
2227
5.00k
            lhs.vals[k][0]==0 && lhs.vals[k][1]==0 && lhs.vals[k][2]==0) {
2228
5.00k
            lhs.vals[k][k] = 1;
2229
5.00k
        }
2230
25.4k
    }
2231
2232
    // 3) invert lhs
2233
8.49k
    skcms_Matrix3x3 lhs_inv;
2234
8.49k
    if (!skcms_Matrix3x3_invert(&lhs, &lhs_inv)) {
2235
478
        return false;
2236
478
    }
2237
2238
    // 4) multiply inverse lhs by rhs
2239
8.01k
    skcms_Vector3 dP = mv_mul(&lhs_inv, &rhs);
2240
8.01k
    tf->g += dP.vals[0];
2241
8.01k
    tf->a += dP.vals[1];
2242
8.01k
    tf->b += dP.vals[2];
2243
8.01k
    return isfinitef_(tf->g) && isfinitef_(tf->a) && isfinitef_(tf->b);
2244
8.49k
}
2245
2246
static float max_roundtrip_error_checked(const skcms_Curve* curve,
2247
9.19k
                                         const skcms_TransferFunction* tf_inv) {
2248
9.19k
    skcms_TransferFunction tf;
2249
9.19k
    if (!skcms_TransferFunction_invert(tf_inv, &tf) || skcms_TFType_sRGBish != classify(tf)) {
2250
3.40k
        return INFINITY_;
2251
3.40k
    }
2252
2253
5.78k
    skcms_TransferFunction tf_inv_again;
2254
5.78k
    if (!skcms_TransferFunction_invert(&tf, &tf_inv_again)) {
2255
759
        return INFINITY_;
2256
759
    }
2257
2258
5.02k
    return skcms_MaxRoundtripError(curve, &tf_inv_again);
2259
5.78k
}
2260
2261
// Fit the points in [L,N) to the non-linear piece of tf, or return false if we can't.
2262
1.71k
static bool fit_nonlinear(const skcms_Curve* curve, int L, int N, skcms_TransferFunction* tf) {
2263
    // This enforces a few constraints that are not modeled in gauss_newton_step()'s optimization.
2264
9.70k
    auto fixup_tf = [tf]() {
2265
        // a must be non-negative. That ensures the function is monotonically increasing.
2266
        // We don't really know how to fix up a if it goes negative.
2267
9.70k
        if (tf->a < 0) {
2268
488
            return false;
2269
488
        }
2270
        // ad+b must be non-negative. That ensures we don't end up with complex numbers in powf.
2271
        // We feel just barely not uneasy enough to tweak b so ad+b is zero in this case.
2272
9.21k
        if (tf->a * tf->d + tf->b < 0) {
2273
1.03k
            tf->b = -tf->a * tf->d;
2274
1.03k
        }
2275
9.21k
        assert (tf->a >= 0 &&
2276
9.21k
                tf->a * tf->d + tf->b >= 0);
2277
2278
        // cd+f must be ~= (ad+b)^g+e. That ensures the function is continuous. We keep e as a free
2279
        // parameter so we can guarantee this.
2280
9.21k
        tf->e =   tf->c*tf->d + tf->f
2281
9.21k
          - powf_(tf->a*tf->d + tf->b, tf->g);
2282
2283
9.21k
        return isfinitef_(tf->e);
2284
9.21k
    };
2285
2286
1.71k
    if (!fixup_tf()) {
2287
0
        return false;
2288
0
    }
2289
2290
    // No matter where we start, dx should always represent N even steps from 0 to 1.
2291
1.71k
    const float dx = 1.0f / static_cast<float>(N-1);
2292
2293
1.71k
    skcms_TransferFunction best_tf = *tf;
2294
1.71k
    float best_max_error = INFINITY_;
2295
2296
    // Need this or several curves get worse... *sigh*
2297
1.71k
    float init_error = max_roundtrip_error_checked(curve, tf);
2298
1.71k
    if (init_error < best_max_error) {
2299
1.42k
        best_max_error = init_error;
2300
1.42k
        best_tf = *tf;
2301
1.42k
    }
2302
2303
    // As far as we can tell, 1 Gauss-Newton step won't converge, and 3 steps is no better than 2.
2304
9.19k
    for (int j = 0; j < 8; j++) {
2305
8.49k
        if (!gauss_newton_step(curve, tf, static_cast<float>(L)*dx, dx, N-L) || !fixup_tf()) {
2306
1.00k
            *tf = best_tf;
2307
1.00k
            return isfinitef_(best_max_error);
2308
1.00k
        }
2309
2310
7.48k
        float max_error = max_roundtrip_error_checked(curve, tf);
2311
7.48k
        if (max_error < best_max_error) {
2312
1.46k
            best_max_error = max_error;
2313
1.46k
            best_tf = *tf;
2314
1.46k
        }
2315
7.48k
    }
2316
2317
702
    *tf = best_tf;
2318
702
    return isfinitef_(best_max_error);
2319
1.71k
}
2320
2321
bool skcms_ApproximateCurve(const skcms_Curve* curve,
2322
                            skcms_TransferFunction* approx,
2323
930
                            float* max_error) {
2324
930
    if (!curve || !approx || !max_error) {
2325
0
        return false;
2326
0
    }
2327
2328
930
    if (curve->table_entries == 0) {
2329
        // No point approximating an skcms_TransferFunction with an skcms_TransferFunction!
2330
8
        return false;
2331
8
    }
2332
2333
922
    if (curve->table_entries == 1 || curve->table_entries > (uint32_t)INT_MAX) {
2334
        // We need at least two points, and must put some reasonable cap on the maximum number.
2335
0
        return false;
2336
0
    }
2337
2338
922
    int N = (int)curve->table_entries;
2339
922
    const float dx = 1.0f / static_cast<float>(N - 1);
2340
2341
922
    *max_error = INFINITY_;
2342
922
    const float kTolerances[] = { 1.5f / 65535.0f, 1.0f / 512.0f };
2343
2.76k
    for (int t = 0; t < ARRAY_COUNT(kTolerances); t++) {
2344
1.84k
        skcms_TransferFunction tf,
2345
1.84k
                               tf_inv;
2346
2347
        // It's problematic to fit curves with non-zero f, so always force it to zero explicitly.
2348
1.84k
        tf.f = 0.0f;
2349
1.84k
        int L = fit_linear(curve, N, kTolerances[t], &tf.c, &tf.d);
2350
2351
1.84k
        if (L == N) {
2352
            // If the entire data set was linear, move the coefficients to the nonlinear portion
2353
            // with G == 1.  This lets use a canonical representation with d == 0.
2354
59
            tf.g = 1;
2355
59
            tf.a = tf.c;
2356
59
            tf.b = tf.f;
2357
59
            tf.c = tf.d = tf.e = tf.f = 0;
2358
1.78k
        } else if (L == N - 1) {
2359
            // Degenerate case with only two points in the nonlinear segment. Solve directly.
2360
75
            tf.g = 1;
2361
75
            tf.a = (eval_curve(curve, static_cast<float>(N-1)*dx) -
2362
75
                    eval_curve(curve, static_cast<float>(N-2)*dx))
2363
75
                 / dx;
2364
75
            tf.b = eval_curve(curve, static_cast<float>(N-2)*dx)
2365
75
                 - tf.a * static_cast<float>(N-2)*dx;
2366
75
            tf.e = 0;
2367
1.71k
        } else {
2368
            // Start by guessing a gamma-only curve through the midpoint.
2369
1.71k
            int mid = (L + N) / 2;
2370
1.71k
            float mid_x = static_cast<float>(mid) / static_cast<float>(N - 1);
2371
1.71k
            float mid_y = eval_curve(curve, mid_x);
2372
1.71k
            tf.g = log2f_(mid_y) / log2f_(mid_x);
2373
1.71k
            tf.a = 1;
2374
1.71k
            tf.b = 0;
2375
1.71k
            tf.e =    tf.c*tf.d + tf.f
2376
1.71k
              - powf_(tf.a*tf.d + tf.b, tf.g);
2377
2378
2379
1.71k
            if (!skcms_TransferFunction_invert(&tf, &tf_inv) ||
2380
1.71k
                !fit_nonlinear(curve, L,N, &tf_inv)) {
2381
221
                continue;
2382
221
            }
2383
2384
            // We fit tf_inv, so calculate tf to keep in sync.
2385
            // fit_nonlinear() should guarantee invertibility.
2386
1.48k
            if (!skcms_TransferFunction_invert(&tf_inv, &tf)) {
2387
0
                assert(false);
2388
0
                continue;
2389
0
            }
2390
1.48k
        }
2391
2392
        // We'd better have a sane, sRGB-ish TF by now.
2393
        // Other non-Bad TFs would be fine, but we know we've only ever tried to fit sRGBish;
2394
        // anything else is just some accident of math and the way we pun tf.g as a type flag.
2395
        // fit_nonlinear() should guarantee this, but the special cases may fail this test.
2396
1.62k
        if (skcms_TFType_sRGBish != classify(tf)) {
2397
28
            continue;
2398
28
        }
2399
2400
        // We find our error by roundtripping the table through tf_inv.
2401
        //
2402
        // (The most likely use case for this approximation is to be inverted and
2403
        // used as the transfer function for a destination color space.)
2404
        //
2405
        // We've kept tf and tf_inv in sync above, but we can't guarantee that tf is
2406
        // invertible, so re-verify that here (and use the new inverse for testing).
2407
        // fit_nonlinear() should guarantee this, but the special cases that don't use
2408
        // it may fail this test.
2409
1.59k
        if (!skcms_TransferFunction_invert(&tf, &tf_inv)) {
2410
18
            continue;
2411
18
        }
2412
2413
1.57k
        float err = skcms_MaxRoundtripError(curve, &tf_inv);
2414
1.57k
        if (*max_error > err) {
2415
963
            *max_error = err;
2416
963
            *approx    = tf;
2417
963
        }
2418
1.57k
    }
2419
922
    return isfinitef_(*max_error);
2420
922
}
2421
2422
enum class CpuType { Baseline, HSW, SKX };
2423
2424
7.28k
static CpuType cpu_type() {
2425
    #if defined(SKCMS_PORTABLE) || !defined(__x86_64__) || defined(SKCMS_FORCE_BASELINE)
2426
        return CpuType::Baseline;
2427
    #elif defined(SKCMS_FORCE_HSW)
2428
        return CpuType::HSW;
2429
    #elif defined(SKCMS_FORCE_SKX)
2430
        return CpuType::SKX;
2431
    #else
2432
7.28k
        static const CpuType type = []{
2433
1
            if (!sAllowRuntimeCPUDetection) {
2434
0
                return CpuType::Baseline;
2435
0
            }
2436
            // See http://www.sandpile.org/x86/cpuid.htm
2437
2438
            // First, a basic cpuid(1) lets us check prerequisites for HSW, SKX.
2439
1
            uint32_t eax, ebx, ecx, edx;
2440
1
            __asm__ __volatile__("cpuid" : "=a"(eax), "=b"(ebx), "=c"(ecx), "=d"(edx)
2441
1
                                         : "0"(1), "2"(0));
2442
1
            if ((edx & (1u<<25)) &&  // SSE
2443
1
                (edx & (1u<<26)) &&  // SSE2
2444
1
                (ecx & (1u<< 0)) &&  // SSE3
2445
1
                (ecx & (1u<< 9)) &&  // SSSE3
2446
1
                (ecx & (1u<<12)) &&  // FMA (N.B. not used, avoided even)
2447
1
                (ecx & (1u<<19)) &&  // SSE4.1
2448
1
                (ecx & (1u<<20)) &&  // SSE4.2
2449
1
                (ecx & (1u<<26)) &&  // XSAVE
2450
1
                (ecx & (1u<<27)) &&  // OSXSAVE
2451
1
                (ecx & (1u<<28)) &&  // AVX
2452
1
                (ecx & (1u<<29))) {  // F16C
2453
2454
                // Call cpuid(7) to check for AVX2 and AVX-512 bits.
2455
1
                __asm__ __volatile__("cpuid" : "=a"(eax), "=b"(ebx), "=c"(ecx), "=d"(edx)
2456
1
                                             : "0"(7), "2"(0));
2457
                // eax from xgetbv(0) will tell us whether XMM, YMM, and ZMM state is saved.
2458
1
                uint32_t xcr0, dont_need_edx;
2459
1
                __asm__ __volatile__("xgetbv" : "=a"(xcr0), "=d"(dont_need_edx) : "c"(0));
2460
2461
1
                if ((xcr0 & (1u<<1)) &&  // XMM register state saved?
2462
1
                    (xcr0 & (1u<<2)) &&  // YMM register state saved?
2463
1
                    (ebx  & (1u<<5))) {  // AVX2
2464
                    // At this point we're at least HSW.  Continue checking for SKX.
2465
1
                    if ((xcr0 & (1u<< 5)) && // Opmasks state saved?
2466
0
                        (xcr0 & (1u<< 6)) && // First 16 ZMM registers saved?
2467
0
                        (xcr0 & (1u<< 7)) && // High 16 ZMM registers saved?
2468
0
                        (ebx  & (1u<<16)) && // AVX512F
2469
0
                        (ebx  & (1u<<17)) && // AVX512DQ
2470
0
                        (ebx  & (1u<<28)) && // AVX512CD
2471
0
                        (ebx  & (1u<<30)) && // AVX512BW
2472
0
                        (ebx  & (1u<<31))) { // AVX512VL
2473
0
                        return CpuType::SKX;
2474
0
                    }
2475
1
                    return CpuType::HSW;
2476
1
                }
2477
1
            }
2478
0
            return CpuType::Baseline;
2479
1
        }();
2480
7.28k
        return type;
2481
7.28k
    #endif
2482
7.28k
}
2483
2484
31.9k
static bool tf_is_gamma(const skcms_TransferFunction& tf) {
2485
31.9k
    return tf.g > 0 && tf.a == 1 &&
2486
25.9k
           tf.b == 0 && tf.c == 0 && tf.d == 0 && tf.e == 0 && tf.f == 0;
2487
31.9k
}
2488
2489
struct OpAndArg {
2490
    Op          op;
2491
    const void* arg;
2492
};
2493
2494
63.4k
static OpAndArg select_curve_op(const skcms_Curve* curve, int channel) {
2495
63.4k
    struct OpType {
2496
63.4k
        Op sGamma, sRGBish, PQish, HLGish, HLGinvish, table;
2497
63.4k
    };
2498
63.4k
    static constexpr OpType kOps[] = {
2499
63.4k
        { Op::gamma_r, Op::tf_r, Op::pq_r, Op::hlg_r, Op::hlginv_r, Op::table_r },
2500
63.4k
        { Op::gamma_g, Op::tf_g, Op::pq_g, Op::hlg_g, Op::hlginv_g, Op::table_g },
2501
63.4k
        { Op::gamma_b, Op::tf_b, Op::pq_b, Op::hlg_b, Op::hlginv_b, Op::table_b },
2502
63.4k
        { Op::gamma_a, Op::tf_a, Op::pq_a, Op::hlg_a, Op::hlginv_a, Op::table_a },
2503
63.4k
    };
2504
63.4k
    const auto& op = kOps[channel];
2505
2506
63.4k
    if (curve->table_entries == 0) {
2507
31.9k
        const OpAndArg noop = { Op::load_a8/*doesn't matter*/, nullptr };
2508
2509
31.9k
        const skcms_TransferFunction& tf = curve->parametric;
2510
2511
31.9k
        if (tf_is_gamma(tf)) {
2512
18.7k
            return tf.g != 1 ? OpAndArg{op.sGamma, &tf}
2513
18.7k
                             : noop;
2514
18.7k
        }
2515
2516
13.2k
        switch (classify(tf)) {
2517
0
            case skcms_TFType_Invalid:    return noop;
2518
            // TODO(https://issues.skia.org/issues/420956739): Consider adding
2519
            // support for PQ and HLG. Generally any code that goes through this
2520
            // path would also want tone mapping too.
2521
0
            case skcms_TFType_PQ:         return noop;
2522
0
            case skcms_TFType_HLG:        return noop;
2523
13.0k
            case skcms_TFType_sRGBish:    return OpAndArg{op.sRGBish,   &tf};
2524
54
            case skcms_TFType_PQish:      return OpAndArg{op.PQish,     &tf};
2525
0
            case skcms_TFType_HLGish:     return OpAndArg{op.HLGish,    &tf};
2526
108
            case skcms_TFType_HLGinvish:  return OpAndArg{op.HLGinvish, &tf};
2527
13.2k
        }
2528
13.2k
    }
2529
31.4k
    return OpAndArg{op.table, curve};
2530
63.4k
}
2531
2532
20.6k
static int select_curve_ops(const skcms_Curve* curves, int numChannels, OpAndArg* ops) {
2533
    // We process the channels in reverse order, yielding ops in ABGR order.
2534
    // (Working backwards allows us to fuse trailing B+G+R ops into a single RGB op.)
2535
20.6k
    int cursor = 0;
2536
84.0k
    for (int index = numChannels; index-- > 0; ) {
2537
63.4k
        ops[cursor] = select_curve_op(&curves[index], index);
2538
63.4k
        if (ops[cursor].arg) {
2539
59.3k
            ++cursor;
2540
59.3k
        }
2541
63.4k
    }
2542
2543
    // Identify separate B+G+R ops and fuse them into a single RGB op.
2544
20.6k
    if (cursor >= 3) {
2545
17.8k
        struct FusableOps {
2546
17.8k
            Op r, g, b, rgb;
2547
17.8k
        };
2548
17.8k
        static constexpr FusableOps kFusableOps[] = {
2549
17.8k
            {Op::gamma_r,  Op::gamma_g,  Op::gamma_b,  Op::gamma_rgb},
2550
17.8k
            {Op::tf_r,     Op::tf_g,     Op::tf_b,     Op::tf_rgb},
2551
17.8k
            {Op::pq_r,     Op::pq_g,     Op::pq_b,     Op::pq_rgb},
2552
17.8k
            {Op::hlg_r,    Op::hlg_g,    Op::hlg_b,    Op::hlg_rgb},
2553
17.8k
            {Op::hlginv_r, Op::hlginv_g, Op::hlginv_b, Op::hlginv_rgb},
2554
17.8k
        };
2555
2556
17.8k
        int posR = cursor - 1;
2557
17.8k
        int posG = cursor - 2;
2558
17.8k
        int posB = cursor - 3;
2559
80.4k
        for (const FusableOps& fusableOp : kFusableOps) {
2560
80.4k
            if (ops[posR].op == fusableOp.r &&
2561
8.70k
                ops[posG].op == fusableOp.g &&
2562
7.50k
                ops[posB].op == fusableOp.b &&
2563
6.21k
                (0 == memcmp(ops[posR].arg, ops[posG].arg, sizeof(skcms_TransferFunction))) &&
2564
3.81k
                (0 == memcmp(ops[posR].arg, ops[posB].arg, sizeof(skcms_TransferFunction)))) {
2565
                // Fuse the three matching ops into one.
2566
2.82k
                ops[posB].op = fusableOp.rgb;
2567
2.82k
                cursor -= 2;
2568
2.82k
                break;
2569
2.82k
            }
2570
80.4k
        }
2571
17.8k
    }
2572
2573
20.6k
    return cursor;
2574
20.6k
}
2575
2576
60.8k
static size_t bytes_per_pixel(skcms_PixelFormat fmt) {
2577
60.8k
    switch (fmt >> 1) {   // ignore rgb/bgr
2578
0
        case skcms_PixelFormat_A_8              >> 1: return  1;
2579
0
        case skcms_PixelFormat_G_8              >> 1: return  1;
2580
0
        case skcms_PixelFormat_GA_88            >> 1: return  2;
2581
0
        case skcms_PixelFormat_ABGR_4444        >> 1: return  2;
2582
0
        case skcms_PixelFormat_RGB_565          >> 1: return  2;
2583
0
        case skcms_PixelFormat_RGB_888          >> 1: return  3;
2584
60.8k
        case skcms_PixelFormat_RGBA_8888        >> 1: return  4;
2585
0
        case skcms_PixelFormat_RGBA_8888_sRGB   >> 1: return  4;
2586
0
        case skcms_PixelFormat_RGBA_1010102     >> 1: return  4;
2587
0
        case skcms_PixelFormat_RGB_101010x_XR   >> 1: return  4;
2588
0
        case skcms_PixelFormat_RGB_161616LE     >> 1: return  6;
2589
0
        case skcms_PixelFormat_RGBA_10101010_XR >> 1: return  8;
2590
0
        case skcms_PixelFormat_RGBA_16161616LE  >> 1: return  8;
2591
0
        case skcms_PixelFormat_RGB_161616BE     >> 1: return  6;
2592
0
        case skcms_PixelFormat_RGBA_16161616BE  >> 1: return  8;
2593
0
        case skcms_PixelFormat_RGB_hhh_Norm     >> 1: return  6;
2594
0
        case skcms_PixelFormat_RGBA_hhhh_Norm   >> 1: return  8;
2595
0
        case skcms_PixelFormat_RGB_hhh          >> 1: return  6;
2596
0
        case skcms_PixelFormat_RGBA_hhhh        >> 1: return  8;
2597
0
        case skcms_PixelFormat_RGB_fff          >> 1: return 12;
2598
0
        case skcms_PixelFormat_RGBA_ffff        >> 1: return 16;
2599
60.8k
    }
2600
60.8k
    assert(false);
2601
0
    return 0;
2602
0
}
2603
2604
// See ITU-T H.273 Table 3 for the full list of codes.
2605
const uint8_t kTransferCicpIdPQ = 16;
2606
const uint8_t kTransferCicpIdHLG = 18;
2607
2608
38.2k
static bool has_cicp_pq_trc(const skcms_ICCProfile* profile) {
2609
38.2k
    return profile->has_CICP
2610
692
        && profile->CICP.transfer_characteristics == kTransferCicpIdPQ;
2611
38.2k
}
2612
2613
38.2k
static bool has_cicp_hlg_trc(const skcms_ICCProfile* profile) {
2614
38.2k
    return profile->has_CICP
2615
673
        && profile->CICP.transfer_characteristics == kTransferCicpIdHLG;
2616
38.2k
}
2617
2618
// Set tf to be the PQ transfer function, scaled such that 1.0 will map to 10,000 / 203.
2619
19
static void set_reference_pq_ish_trc(skcms_TransferFunction* tf) {
2620
    // Initialize such that 1.0 maps to 1.0.
2621
19
    skcms_TransferFunction_makePQish(tf,
2622
19
        -107/128.0f, 1.0f, 32/2523.0f, 2413/128.0f, -2392/128.0f, 8192/1305.0f);
2623
2624
    // Distribute scaling factor W by scaling A and B with X ^ (1/F):
2625
    // ((A + Bx^C) / (D + Ex^C))^F * W = ((A + Bx^C) / (D + Ex^C) * W^(1/F))^F
2626
    // See https://crbug.com/1058580#c32 for discussion.
2627
19
    const float w = 10000.0f / 203.0f;
2628
19
    const float ws = powf_(w, 1.0f / tf->f);
2629
19
    tf->a = ws * tf->a;
2630
19
    tf->b = ws * tf->b;
2631
19
}
2632
2633
// Set tf to be the HLG inverse OETF, scaled such that 1.0 will map to 1.0.
2634
// While this is one version of HLG, there are many others. A better version
2635
// would be to use the 1,000 nit reference version, but that will require
2636
// adding opt-optical transform support.
2637
37
static void set_sdr_hlg_ish_trc(skcms_TransferFunction* tf) {
2638
37
    skcms_TransferFunction_makeHLGish(tf,
2639
37
        2.0f, 2.0f, 1/0.17883277f, 0.28466892f, 0.55991073f);
2640
37
    tf->f = 1.0f / 12.0f - 1.0f;
2641
37
}
2642
2643
static bool prep_for_destination(const skcms_ICCProfile* profile,
2644
                                 skcms_Matrix3x3* fromXYZD50,
2645
                                 skcms_TransferFunction* invR,
2646
                                 skcms_TransferFunction* invG,
2647
                                 skcms_TransferFunction* invB,
2648
                                 bool* dst_using_B2A,
2649
30.9k
                                 bool* dst_using_hlg_ootf) {
2650
30.9k
    const bool has_xyzd50 =
2651
30.9k
        profile->has_toXYZD50 &&
2652
25.4k
        skcms_Matrix3x3_invert(&profile->toXYZD50, fromXYZD50);
2653
30.9k
    *dst_using_B2A = false;
2654
30.9k
    *dst_using_hlg_ootf = false;
2655
2656
    // CICP-specified PQ or HLG transfer functions take precedence.
2657
    // TODO: Add the ability to parse CICP primaries to not require
2658
    // the XYZD50 matrix.
2659
30.9k
    if (has_cicp_pq_trc(profile) && has_xyzd50) {
2660
19
        skcms_TransferFunction trc_pq;
2661
19
        set_reference_pq_ish_trc(&trc_pq);
2662
19
        skcms_TransferFunction_invert(&trc_pq, invR);
2663
19
        skcms_TransferFunction_invert(&trc_pq, invG);
2664
19
        skcms_TransferFunction_invert(&trc_pq, invB);
2665
19
        return true;
2666
19
    }
2667
30.9k
    if (has_cicp_hlg_trc(profile) && has_xyzd50) {
2668
37
        skcms_TransferFunction trc_hlg;
2669
37
        set_sdr_hlg_ish_trc(&trc_hlg);
2670
37
        skcms_TransferFunction_invert(&trc_hlg, invR);
2671
37
        skcms_TransferFunction_invert(&trc_hlg, invG);
2672
37
        skcms_TransferFunction_invert(&trc_hlg, invB);
2673
37
        *dst_using_hlg_ootf = true;
2674
37
        return true;
2675
37
    }
2676
2677
    // Then prefer the B2A transformation.
2678
    // skcms_Transform() supports B2A destinations.
2679
30.9k
    if (profile->has_B2A) {
2680
4.27k
        *dst_using_B2A = true;
2681
4.27k
        return true;
2682
4.27k
    }
2683
2684
    // Finally use parametric transfer functions.
2685
    // TODO: Reject non sRGB-ish transfer functions here.
2686
26.6k
    return has_xyzd50
2687
22.9k
        && profile->has_trc
2688
22.8k
        && profile->trc[0].table_entries == 0
2689
4.12k
        && profile->trc[1].table_entries == 0
2690
3.93k
        && profile->trc[2].table_entries == 0
2691
3.59k
        && skcms_TransferFunction_invert(&profile->trc[0].parametric, invR)
2692
3.52k
        && skcms_TransferFunction_invert(&profile->trc[1].parametric, invG)
2693
3.50k
        && skcms_TransferFunction_invert(&profile->trc[2].parametric, invB);
2694
30.9k
}
2695
2696
bool skcms_Transform(const void*             src,
2697
                     skcms_PixelFormat       srcFmt,
2698
                     skcms_AlphaFormat       srcAlpha,
2699
                     const skcms_ICCProfile* srcProfile,
2700
                     void*                   dst,
2701
                     skcms_PixelFormat       dstFmt,
2702
                     skcms_AlphaFormat       dstAlpha,
2703
                     const skcms_ICCProfile* dstProfile,
2704
30.4k
                     size_t                  nz) {
2705
30.4k
    const size_t dst_bpp = bytes_per_pixel(dstFmt),
2706
30.4k
                 src_bpp = bytes_per_pixel(srcFmt);
2707
    // Let's just refuse if the request is absurdly big.
2708
30.4k
    if (nz * dst_bpp > INT_MAX || nz * src_bpp > INT_MAX) {
2709
0
        return false;
2710
0
    }
2711
30.4k
    int n = (int)nz;
2712
2713
    // Null profiles default to sRGB. Passing null for both is handy when doing format conversion.
2714
30.4k
    if (!srcProfile) {
2715
0
        srcProfile = skcms_sRGB_profile();
2716
0
    }
2717
30.4k
    if (!dstProfile) {
2718
0
        dstProfile = skcms_sRGB_profile();
2719
0
    }
2720
2721
    // We can't transform in place unless the PixelFormats are the same size.
2722
30.4k
    if (dst == src && dst_bpp != src_bpp) {
2723
0
        return false;
2724
0
    }
2725
    // TODO: more careful alias rejection (like, dst == src + 1)?
2726
2727
30.4k
    Op          program[32];
2728
30.4k
    const void* context[32];
2729
2730
30.4k
    Op*          ops      = program;
2731
30.4k
    const void** contexts = context;
2732
2733
74.3k
    auto add_op = [&](Op o) {
2734
74.3k
        *ops++ = o;
2735
74.3k
        *contexts++ = nullptr;
2736
74.3k
    };
2737
2738
67.0k
    auto add_op_ctx = [&](Op o, const void* c) {
2739
67.0k
        *ops++ = o;
2740
67.0k
        *contexts++ = c;
2741
67.0k
    };
2742
2743
30.4k
    auto add_curve_ops = [&](const skcms_Curve* curves, int numChannels) {
2744
17.4k
        OpAndArg oa[4];
2745
17.4k
        assert(numChannels <= ARRAY_COUNT(oa));
2746
2747
17.4k
        int numOps = select_curve_ops(curves, numChannels, oa);
2748
2749
66.8k
        for (int i = 0; i < numOps; ++i) {
2750
49.4k
            add_op_ctx(oa[i].op, oa[i].arg);
2751
49.4k
        }
2752
17.4k
    };
2753
2754
    // If the source has a TRC that is specified by CICP and not the TRC
2755
    // entries, then store it here for future use.
2756
30.4k
    skcms_TransferFunction src_cicp_trc;
2757
2758
    // These are always parametric curves of some sort.
2759
30.4k
    skcms_Curve dst_curves[3];
2760
30.4k
    dst_curves[0].table_entries =
2761
30.4k
    dst_curves[1].table_entries =
2762
30.4k
    dst_curves[2].table_entries = 0;
2763
2764
    // This will store the XYZD50 to destination gamut conversion matrix, if it is needed.
2765
30.4k
    skcms_Matrix3x3        dst_from_xyz;
2766
2767
    // This will store the full source to destination gamut conversion matrix, if it is needed.
2768
30.4k
    skcms_Matrix3x3        dst_from_src;
2769
2770
30.4k
    switch (srcFmt >> 1) {
2771
0
        default: return false;
2772
0
        case skcms_PixelFormat_A_8              >> 1: add_op(Op::load_a8);          break;
2773
0
        case skcms_PixelFormat_G_8              >> 1: add_op(Op::load_g8);          break;
2774
0
        case skcms_PixelFormat_GA_88            >> 1: add_op(Op::load_ga88);        break;
2775
0
        case skcms_PixelFormat_ABGR_4444        >> 1: add_op(Op::load_4444);        break;
2776
0
        case skcms_PixelFormat_RGB_565          >> 1: add_op(Op::load_565);         break;
2777
0
        case skcms_PixelFormat_RGB_888          >> 1: add_op(Op::load_888);         break;
2778
30.4k
        case skcms_PixelFormat_RGBA_8888        >> 1: add_op(Op::load_8888);        break;
2779
0
        case skcms_PixelFormat_RGBA_1010102     >> 1: add_op(Op::load_1010102);     break;
2780
0
        case skcms_PixelFormat_RGB_101010x_XR   >> 1: add_op(Op::load_101010x_XR);  break;
2781
0
        case skcms_PixelFormat_RGBA_10101010_XR >> 1: add_op(Op::load_10101010_XR); break;
2782
0
        case skcms_PixelFormat_RGB_161616LE     >> 1: add_op(Op::load_161616LE);    break;
2783
0
        case skcms_PixelFormat_RGBA_16161616LE  >> 1: add_op(Op::load_16161616LE);  break;
2784
0
        case skcms_PixelFormat_RGB_161616BE     >> 1: add_op(Op::load_161616BE);    break;
2785
0
        case skcms_PixelFormat_RGBA_16161616BE  >> 1: add_op(Op::load_16161616BE);  break;
2786
0
        case skcms_PixelFormat_RGB_hhh_Norm     >> 1: add_op(Op::load_hhh);         break;
2787
0
        case skcms_PixelFormat_RGBA_hhhh_Norm   >> 1: add_op(Op::load_hhhh);        break;
2788
0
        case skcms_PixelFormat_RGB_hhh          >> 1: add_op(Op::load_hhh);         break;
2789
0
        case skcms_PixelFormat_RGBA_hhhh        >> 1: add_op(Op::load_hhhh);        break;
2790
0
        case skcms_PixelFormat_RGB_fff          >> 1: add_op(Op::load_fff);         break;
2791
0
        case skcms_PixelFormat_RGBA_ffff        >> 1: add_op(Op::load_ffff);        break;
2792
2793
0
        case skcms_PixelFormat_RGBA_8888_sRGB >> 1:
2794
0
            add_op(Op::load_8888);
2795
0
            add_op_ctx(Op::tf_rgb, skcms_sRGB_TransferFunction());
2796
0
            break;
2797
30.4k
    }
2798
30.4k
    if (srcFmt == skcms_PixelFormat_RGB_hhh_Norm ||
2799
30.4k
        srcFmt == skcms_PixelFormat_RGBA_hhhh_Norm) {
2800
0
        add_op(Op::clamp);
2801
0
    }
2802
30.4k
    if (srcFmt & 1) {
2803
0
        add_op(Op::swap_rb);
2804
0
    }
2805
30.4k
    skcms_ICCProfile gray_dst_profile;
2806
30.4k
    switch (dstFmt >> 1) {
2807
0
        case skcms_PixelFormat_G_8:
2808
0
        case skcms_PixelFormat_GA_88:
2809
            // When transforming to gray, stop at XYZ (by setting toXYZ to identity), then transform
2810
            // luminance (Y) by the destination transfer function.
2811
0
            gray_dst_profile = *dstProfile;
2812
0
            skcms_SetXYZD50(&gray_dst_profile, &skcms_XYZD50_profile()->toXYZD50);
2813
0
            dstProfile = &gray_dst_profile;
2814
0
            break;
2815
30.4k
        default:
2816
30.4k
            break;
2817
30.4k
    }
2818
2819
30.4k
    if (srcProfile->data_color_space == skcms_Signature_CMYK) {
2820
        // Photoshop creates CMYK images as inverse CMYK.
2821
        // These happen to be the only ones we've _ever_ seen.
2822
612
        add_op(Op::invert);
2823
        // With CMYK, ignore the alpha type, to avoid changing K or conflating CMY with K.
2824
612
        srcAlpha = skcms_AlphaFormat_Unpremul;
2825
612
    }
2826
2827
30.4k
    if (srcAlpha == skcms_AlphaFormat_Opaque) {
2828
9.93k
        add_op(Op::force_opaque);
2829
20.4k
    } else if (srcAlpha == skcms_AlphaFormat_PremulAsEncoded) {
2830
9.93k
        add_op(Op::unpremul);
2831
9.93k
    }
2832
2833
30.4k
    if (dstProfile != srcProfile) {
2834
2835
        // Track whether or not the A2B or B2A transforms are used. the CICP
2836
        // values take precedence over A2B and B2A.
2837
30.4k
        bool src_using_A2B = false;
2838
30.4k
        bool src_using_hlg_ootf = false;
2839
30.4k
        bool dst_using_B2A = false;
2840
30.4k
        bool dst_using_hlg_ootf = false;
2841
2842
30.4k
        if (!prep_for_destination(dstProfile,
2843
30.4k
                                  &dst_from_xyz,
2844
30.4k
                                  &dst_curves[0].parametric,
2845
30.4k
                                  &dst_curves[1].parametric,
2846
30.4k
                                  &dst_curves[2].parametric,
2847
30.4k
                                  &dst_using_B2A,
2848
30.4k
                                  &dst_using_hlg_ootf)) {
2849
23.1k
            return false;
2850
23.1k
        }
2851
2852
7.28k
        if (has_cicp_pq_trc(srcProfile) && srcProfile->has_toXYZD50) {
2853
0
            set_reference_pq_ish_trc(&src_cicp_trc);
2854
0
            add_op_ctx(Op::pq_rgb, &src_cicp_trc);
2855
7.28k
        } else if (has_cicp_hlg_trc(srcProfile) && srcProfile->has_toXYZD50) {
2856
0
            src_using_hlg_ootf = true;
2857
0
            set_sdr_hlg_ish_trc(&src_cicp_trc);
2858
0
            add_op_ctx(Op::hlg_rgb, &src_cicp_trc);
2859
7.28k
        } else if (srcProfile->has_A2B) {
2860
0
            src_using_A2B = true;
2861
0
            if (srcProfile->A2B.input_channels) {
2862
0
                add_curve_ops(srcProfile->A2B.input_curves,
2863
0
                              (int)srcProfile->A2B.input_channels);
2864
0
                add_op(Op::clamp);
2865
0
                add_op_ctx(Op::clut_A2B, &srcProfile->A2B);
2866
0
            }
2867
2868
0
            if (srcProfile->A2B.matrix_channels == 3) {
2869
0
                add_curve_ops(srcProfile->A2B.matrix_curves, /*numChannels=*/3);
2870
2871
0
                static const skcms_Matrix3x4 I = {{
2872
0
                    {1,0,0,0},
2873
0
                    {0,1,0,0},
2874
0
                    {0,0,1,0},
2875
0
                }};
2876
0
                if (0 != memcmp(&I, &srcProfile->A2B.matrix, sizeof(I))) {
2877
0
                    add_op_ctx(Op::matrix_3x4, &srcProfile->A2B.matrix);
2878
0
                }
2879
0
            }
2880
2881
0
            if (srcProfile->A2B.output_channels == 3) {
2882
0
                add_curve_ops(srcProfile->A2B.output_curves, /*numChannels=*/3);
2883
0
            }
2884
2885
0
            if (srcProfile->pcs == skcms_Signature_Lab) {
2886
0
                add_op(Op::lab_to_xyz);
2887
0
            }
2888
2889
7.28k
        } else if (srcProfile->has_trc && srcProfile->has_toXYZD50) {
2890
7.28k
            add_curve_ops(srcProfile->trc, /*numChannels=*/3);
2891
7.28k
        } else {
2892
0
            return false;
2893
0
        }
2894
2895
        // A2B sources are in XYZD50 by now, but TRC sources are still in their original gamut.
2896
7.28k
        assert (srcProfile->has_A2B || srcProfile->has_toXYZD50);
2897
2898
7.28k
        if (dst_using_B2A) {
2899
            // B2A needs its input in XYZD50, so transform TRC sources now.
2900
4.05k
            if (!src_using_A2B) {
2901
4.05k
                add_op_ctx(Op::matrix_3x3, &srcProfile->toXYZD50);
2902
                // Apply the HLG OOTF in XYZD50 space, if needed.
2903
4.05k
                if (src_using_hlg_ootf) {
2904
0
                    add_op(Op::hlg_ootf_scale);
2905
0
                }
2906
4.05k
            }
2907
2908
4.05k
            if (dstProfile->pcs == skcms_Signature_Lab) {
2909
1.29k
                add_op(Op::xyz_to_lab);
2910
1.29k
            }
2911
2912
4.05k
            if (dstProfile->B2A.input_channels == 3) {
2913
4.05k
                add_curve_ops(dstProfile->B2A.input_curves, /*numChannels=*/3);
2914
4.05k
            }
2915
2916
4.05k
            if (dstProfile->B2A.matrix_channels == 3) {
2917
3.43k
                static const skcms_Matrix3x4 I = {{
2918
3.43k
                    {1,0,0,0},
2919
3.43k
                    {0,1,0,0},
2920
3.43k
                    {0,0,1,0},
2921
3.43k
                }};
2922
3.43k
                if (0 != memcmp(&I, &dstProfile->B2A.matrix, sizeof(I))) {
2923
3.42k
                    add_op_ctx(Op::matrix_3x4, &dstProfile->B2A.matrix);
2924
3.42k
                }
2925
2926
3.43k
                add_curve_ops(dstProfile->B2A.matrix_curves, /*numChannels=*/3);
2927
3.43k
            }
2928
2929
4.05k
            if (dstProfile->B2A.output_channels) {
2930
2.64k
                add_op(Op::clamp);
2931
2.64k
                add_op_ctx(Op::clut_B2A, &dstProfile->B2A);
2932
2933
2.64k
                add_curve_ops(dstProfile->B2A.output_curves,
2934
2.64k
                              (int)dstProfile->B2A.output_channels);
2935
2.64k
            }
2936
4.05k
        } else {
2937
            // This is a TRC destination.
2938
2939
            // Transform to the destination gamut.
2940
3.23k
            if (src_using_hlg_ootf != dst_using_hlg_ootf) {
2941
                // If just the src or the dst has an HLG OOTF then we will apply the OOTF in XYZD50
2942
                // space. If both the src and dst has an HLG OOTF then they will cancel.
2943
36
                if (!src_using_A2B) {
2944
36
                    add_op_ctx(Op::matrix_3x3, &srcProfile->toXYZD50);
2945
36
                }
2946
36
                if (src_using_hlg_ootf) {
2947
0
                    add_op(Op::hlg_ootf_scale);
2948
0
                }
2949
36
                if (dst_using_hlg_ootf) {
2950
36
                    add_op(Op::hlginv_ootf_scale);
2951
36
                }
2952
36
                add_op_ctx(Op::matrix_3x3, &dst_from_xyz);
2953
3.19k
            } else if (src_using_A2B) {
2954
                // If the source is A2B then we are already in XYZD50. Just apply the xyz->dst
2955
                // matrix.
2956
0
                add_op_ctx(Op::matrix_3x3, &dst_from_xyz);
2957
3.19k
            } else {
2958
3.19k
                const skcms_Matrix3x3* to_xyz = &srcProfile->toXYZD50;
2959
                // There's a chance the source and destination gamuts are identical,
2960
                // in which case we can skip the gamut transform.
2961
3.19k
                if (0 != memcmp(&dstProfile->toXYZD50, to_xyz, sizeof(skcms_Matrix3x3))) {
2962
                    // Concat the entire gamut transform into dst_from_src.
2963
3.16k
                    dst_from_src = skcms_Matrix3x3_concat(&dst_from_xyz, to_xyz);
2964
3.16k
                    add_op_ctx(Op::matrix_3x3, &dst_from_src);
2965
3.16k
                }
2966
3.19k
            }
2967
2968
            // Encode back to dst RGB using its parametric transfer functions.
2969
3.23k
            OpAndArg oa[3];
2970
3.23k
            int numOps = select_curve_ops(dst_curves, /*numChannels=*/3, oa);
2971
7.49k
            for (int index = 0; index < numOps; ++index) {
2972
4.26k
                assert(oa[index].op != Op::table_r &&
2973
4.26k
                       oa[index].op != Op::table_g &&
2974
4.26k
                       oa[index].op != Op::table_b &&
2975
4.26k
                       oa[index].op != Op::table_a);
2976
4.26k
                add_op_ctx(oa[index].op, oa[index].arg);
2977
4.26k
            }
2978
3.23k
        }
2979
7.28k
    }
2980
2981
    // Clamp here before premul to make sure we're clamping to normalized values _and_ gamut,
2982
    // not just to values that fit in [0,1].
2983
    //
2984
    // E.g. r = 1.1, a = 0.5 would fit fine in fixed point after premul (ra=0.55,a=0.5),
2985
    // but would be carrying r > 1, which is really unexpected for downstream consumers.
2986
7.28k
    if (dstFmt < skcms_PixelFormat_RGB_hhh) {
2987
7.28k
        add_op(Op::clamp);
2988
7.28k
    }
2989
2990
7.28k
    if (dstProfile->data_color_space == skcms_Signature_CMYK) {
2991
        // Photoshop creates CMYK images as inverse CMYK.
2992
        // These happen to be the only ones we've _ever_ seen.
2993
216
        add_op(Op::invert);
2994
2995
        // CMYK has no alpha channel, so make sure dstAlpha is a no-op.
2996
216
        dstAlpha = skcms_AlphaFormat_Unpremul;
2997
216
    }
2998
2999
7.28k
    if (dstAlpha == skcms_AlphaFormat_Opaque) {
3000
2.35k
        add_op(Op::force_opaque);
3001
4.92k
    } else if (dstAlpha == skcms_AlphaFormat_PremulAsEncoded) {
3002
2.35k
        add_op(Op::premul);
3003
2.35k
    }
3004
7.28k
    if (dstFmt & 1) {
3005
0
        add_op(Op::swap_rb);
3006
0
    }
3007
7.28k
    switch (dstFmt >> 1) {
3008
0
        default: return false;
3009
0
        case skcms_PixelFormat_A_8              >> 1: add_op(Op::store_a8);          break;
3010
0
        case skcms_PixelFormat_G_8              >> 1: add_op(Op::store_g8);          break;
3011
0
        case skcms_PixelFormat_GA_88            >> 1: add_op(Op::store_ga88);        break;
3012
0
        case skcms_PixelFormat_ABGR_4444        >> 1: add_op(Op::store_4444);        break;
3013
0
        case skcms_PixelFormat_RGB_565          >> 1: add_op(Op::store_565);         break;
3014
0
        case skcms_PixelFormat_RGB_888          >> 1: add_op(Op::store_888);         break;
3015
7.28k
        case skcms_PixelFormat_RGBA_8888        >> 1: add_op(Op::store_8888);        break;
3016
0
        case skcms_PixelFormat_RGBA_1010102     >> 1: add_op(Op::store_1010102);     break;
3017
0
        case skcms_PixelFormat_RGB_161616LE     >> 1: add_op(Op::store_161616LE);    break;
3018
0
        case skcms_PixelFormat_RGBA_16161616LE  >> 1: add_op(Op::store_16161616LE);  break;
3019
0
        case skcms_PixelFormat_RGB_161616BE     >> 1: add_op(Op::store_161616BE);    break;
3020
0
        case skcms_PixelFormat_RGBA_16161616BE  >> 1: add_op(Op::store_16161616BE);  break;
3021
0
        case skcms_PixelFormat_RGB_hhh_Norm     >> 1: add_op(Op::store_hhh);         break;
3022
0
        case skcms_PixelFormat_RGBA_hhhh_Norm   >> 1: add_op(Op::store_hhhh);        break;
3023
0
        case skcms_PixelFormat_RGB_101010x_XR   >> 1: add_op(Op::store_101010x_XR);  break;
3024
0
        case skcms_PixelFormat_RGBA_10101010_XR >> 1: add_op(Op::store_10101010_XR); break;
3025
0
        case skcms_PixelFormat_RGB_hhh          >> 1: add_op(Op::store_hhh);         break;
3026
0
        case skcms_PixelFormat_RGBA_hhhh        >> 1: add_op(Op::store_hhhh);        break;
3027
0
        case skcms_PixelFormat_RGB_fff          >> 1: add_op(Op::store_fff);         break;
3028
0
        case skcms_PixelFormat_RGBA_ffff        >> 1: add_op(Op::store_ffff);        break;
3029
3030
0
        case skcms_PixelFormat_RGBA_8888_sRGB >> 1:
3031
0
            add_op_ctx(Op::tf_rgb, skcms_sRGB_Inverse_TransferFunction());
3032
0
            add_op(Op::store_8888);
3033
0
            break;
3034
7.28k
    }
3035
3036
7.28k
    assert(ops      <= program + ARRAY_COUNT(program));
3037
7.28k
    assert(contexts <= context + ARRAY_COUNT(context));
3038
3039
7.28k
    auto run = baseline::run_program;
3040
7.28k
    switch (cpu_type()) {
3041
0
        case CpuType::SKX:
3042
            #if !defined(SKCMS_DISABLE_SKX)
3043
                run = skx::run_program;
3044
                break;
3045
            #endif
3046
3047
7.28k
        case CpuType::HSW:
3048
            #if !defined(SKCMS_DISABLE_HSW)
3049
                run = hsw::run_program;
3050
                break;
3051
            #endif
3052
3053
7.28k
        case CpuType::Baseline:
3054
7.28k
            break;
3055
7.28k
    }
3056
3057
7.28k
    run(program, context, ops - program, (const char*)src, (char*)dst, n, src_bpp,dst_bpp);
3058
7.28k
    return true;
3059
7.28k
}
3060
3061
557
static void assert_usable_as_destination(const skcms_ICCProfile* profile) {
3062
#if defined(NDEBUG)
3063
    (void)profile;
3064
#else
3065
557
    skcms_Matrix3x3 fromXYZD50;
3066
557
    skcms_TransferFunction invR, invG, invB;
3067
557
    bool useB2A = false;
3068
557
    bool useHlgOotf = false;
3069
557
    assert(prep_for_destination(profile, &fromXYZD50, &invR, &invG, &invB, &useB2A, &useHlgOotf));
3070
557
#endif
3071
557
}
3072
3073
845
bool skcms_MakeUsableAsDestination(skcms_ICCProfile* profile) {
3074
845
    if (!profile->has_B2A) {
3075
620
        skcms_Matrix3x3 fromXYZD50;
3076
620
        if (!profile->has_trc || !profile->has_toXYZD50
3077
411
            || !skcms_Matrix3x3_invert(&profile->toXYZD50, &fromXYZD50)) {
3078
210
            return false;
3079
210
        }
3080
3081
410
        skcms_TransferFunction tf[3];
3082
1.42k
        for (int i = 0; i < 3; i++) {
3083
1.09k
            skcms_TransferFunction inv;
3084
1.09k
            if (profile->trc[i].table_entries == 0
3085
168
                && skcms_TransferFunction_invert(&profile->trc[i].parametric, &inv)) {
3086
160
                tf[i] = profile->trc[i].parametric;
3087
160
                continue;
3088
160
            }
3089
3090
930
            float max_error;
3091
            // Parametric curves from skcms_ApproximateCurve() are guaranteed to be invertible.
3092
930
            if (!skcms_ApproximateCurve(&profile->trc[i], &tf[i], &max_error)) {
3093
78
                return false;
3094
78
            }
3095
930
        }
3096
3097
1.32k
        for (int i = 0; i < 3; ++i) {
3098
996
            profile->trc[i].table_entries = 0;
3099
996
            profile->trc[i].parametric = tf[i];
3100
996
        }
3101
332
    }
3102
557
    assert_usable_as_destination(profile);
3103
557
    return true;
3104
845
}
3105
3106
0
bool skcms_MakeUsableAsDestinationWithSingleCurve(skcms_ICCProfile* profile) {
3107
    // Call skcms_MakeUsableAsDestination() with B2A disabled;
3108
    // on success that'll return a TRC/XYZ profile with three skcms_TransferFunctions.
3109
0
    skcms_ICCProfile result = *profile;
3110
0
    result.has_B2A = false;
3111
0
    if (!skcms_MakeUsableAsDestination(&result)) {
3112
0
        return false;
3113
0
    }
3114
3115
    // Of the three, pick the transfer function that best fits the other two.
3116
0
    int best_tf = 0;
3117
0
    float min_max_error = INFINITY_;
3118
0
    for (int i = 0; i < 3; i++) {
3119
0
        skcms_TransferFunction inv;
3120
0
        if (!skcms_TransferFunction_invert(&result.trc[i].parametric, &inv)) {
3121
0
            return false;
3122
0
        }
3123
3124
0
        float err = 0;
3125
0
        for (int j = 0; j < 3; ++j) {
3126
0
            err = fmaxf_(err, skcms_MaxRoundtripError(&profile->trc[j], &inv));
3127
0
        }
3128
0
        if (min_max_error > err) {
3129
0
            min_max_error = err;
3130
0
            best_tf = i;
3131
0
        }
3132
0
    }
3133
3134
0
    for (int i = 0; i < 3; i++) {
3135
0
        result.trc[i].parametric = result.trc[best_tf].parametric;
3136
0
    }
3137
3138
0
    *profile = result;
3139
0
    assert_usable_as_destination(profile);
3140
0
    return true;
3141
0
}