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 #pragma once
9
10 // skcms.h contains the entire public API for skcms.
11
12 #ifndef SKCMS_API
13 #define SKCMS_API
14 #endif
15
16 #include <stdbool.h>
17 #include <stddef.h>
18 #include <stdint.h>
19 #include <string.h>
20
21 #ifdef __cplusplus
22 extern "C" {
23 #endif
24
25 // A row-major 3x3 matrix (ie vals[row][col])
26 typedef struct skcms_Matrix3x3 {
27 float vals[3][3];
28 } skcms_Matrix3x3;
29
30 // It is _not_ safe to alias the pointers to invert in-place.
31 SKCMS_API bool skcms_Matrix3x3_invert(const skcms_Matrix3x3*, skcms_Matrix3x3*);
32 SKCMS_API skcms_Matrix3x3 skcms_Matrix3x3_concat(const skcms_Matrix3x3*, const skcms_Matrix3x3*);
33
34 // A row-major 3x4 matrix (ie vals[row][col])
35 typedef struct skcms_Matrix3x4 {
36 float vals[3][4];
37 } skcms_Matrix3x4;
38
39 // A transfer function mapping encoded values to linear values,
40 // represented by this 7-parameter piecewise function:
41 //
42 // linear = sign(encoded) * (c*|encoded| + f) , 0 <= |encoded| < d
43 // = sign(encoded) * ((a*|encoded| + b)^g + e), d <= |encoded|
44 //
45 // (A simple gamma transfer function sets g to gamma and a to 1.)
46 typedef struct skcms_TransferFunction {
47 float g, a,b,c,d,e,f;
48 } skcms_TransferFunction;
49
50 SKCMS_API float skcms_TransferFunction_eval (const skcms_TransferFunction*, float);
51 SKCMS_API bool skcms_TransferFunction_invert(const skcms_TransferFunction*,
52 skcms_TransferFunction*);
53
54 // We can jam a couple alternate transfer function forms into skcms_TransferFunction,
55 // including those matching the general forms of the SMPTE ST 2084 PQ function or HLG.
56 //
57 // PQish:
58 // max(A + B|encoded|^C, 0)
59 // linear = sign(encoded) * (------------------------) ^ F
60 // D + E|encoded|^C
61 SKCMS_API bool skcms_TransferFunction_makePQish(skcms_TransferFunction*,
62 float A, float B, float C,
63 float D, float E, float F);
64 // HLGish:
65 // { K * sign(encoded) * ( (R|encoded|)^G ) when 0 <= |encoded| <= 1/R
66 // linear = { K * sign(encoded) * ( e^(a(|encoded|-c)) + b ) when 1/R < |encoded|
67 SKCMS_API bool skcms_TransferFunction_makeScaledHLGish(skcms_TransferFunction*,
68 float K, float R, float G,
69 float a, float b, float c);
70
71 // Compatibility shim with K=1 for old callers.
skcms_TransferFunction_makeHLGish(skcms_TransferFunction * fn,float R,float G,float a,float b,float c)72 static inline bool skcms_TransferFunction_makeHLGish(skcms_TransferFunction* fn,
73 float R, float G,
74 float a, float b, float c) {
75 return skcms_TransferFunction_makeScaledHLGish(fn, 1.0f, R,G, a,b,c);
76 }
77
78 // PQ mapping encoded [0,1] to linear [0,1].
skcms_TransferFunction_makePQ(skcms_TransferFunction * tf)79 static inline bool skcms_TransferFunction_makePQ(skcms_TransferFunction* tf) {
80 return skcms_TransferFunction_makePQish(tf, -107/128.0f, 1.0f, 32/2523.0f
81 , 2413/128.0f, -2392/128.0f, 8192/1305.0f);
82 }
83 // HLG mapping encoded [0,1] to linear [0,12].
skcms_TransferFunction_makeHLG(skcms_TransferFunction * tf)84 static inline bool skcms_TransferFunction_makeHLG(skcms_TransferFunction* tf) {
85 return skcms_TransferFunction_makeHLGish(tf, 2.0f, 2.0f
86 , 1/0.17883277f, 0.28466892f, 0.55991073f);
87 }
88
89 // Is this an ordinary sRGB-ish transfer function, or one of the HDR forms we support?
90 SKCMS_API bool skcms_TransferFunction_isSRGBish(const skcms_TransferFunction*);
91 SKCMS_API bool skcms_TransferFunction_isPQish (const skcms_TransferFunction*);
92 SKCMS_API bool skcms_TransferFunction_isHLGish (const skcms_TransferFunction*);
93
94 // Unified representation of 'curv' or 'para' tag data, or a 1D table from 'mft1' or 'mft2'
95 typedef union skcms_Curve {
96 struct {
97 uint32_t alias_of_table_entries;
98 skcms_TransferFunction parametric;
99 };
100 struct {
101 uint32_t table_entries;
102 const uint8_t* table_8;
103 const uint8_t* table_16;
104 };
105 } skcms_Curve;
106
107 // Complex transforms between device space (A) and profile connection space (B):
108 // A2B: device -> [ "A" curves -> CLUT ] -> [ "M" curves -> matrix ] -> "B" curves -> PCS
109 // B2A: device <- [ "A" curves <- CLUT ] <- [ "M" curves <- matrix ] <- "B" curves <- PCS
110
111 typedef struct skcms_A2B {
112 // Optional: N 1D "A" curves, followed by an N-dimensional CLUT.
113 // If input_channels == 0, these curves and CLUT are skipped,
114 // Otherwise, input_channels must be in [1, 4].
115 uint32_t input_channels;
116 skcms_Curve input_curves[4];
117 uint8_t grid_points[4];
118 const uint8_t* grid_8;
119 const uint8_t* grid_16;
120
121 // Optional: 3 1D "M" curves, followed by a color matrix.
122 // If matrix_channels == 0, these curves and matrix are skipped,
123 // Otherwise, matrix_channels must be 3.
124 uint32_t matrix_channels;
125 skcms_Curve matrix_curves[3];
126 skcms_Matrix3x4 matrix;
127
128 // Required: 3 1D "B" curves. Always present, and output_channels must be 3.
129 uint32_t output_channels;
130 skcms_Curve output_curves[3];
131 } skcms_A2B;
132
133 typedef struct skcms_B2A {
134 // Required: 3 1D "B" curves. Always present, and input_channels must be 3.
135 uint32_t input_channels;
136 skcms_Curve input_curves[3];
137
138 // Optional: a color matrix, followed by 3 1D "M" curves.
139 // If matrix_channels == 0, this matrix and these curves are skipped,
140 // Otherwise, matrix_channels must be 3.
141 uint32_t matrix_channels;
142 skcms_Matrix3x4 matrix;
143 skcms_Curve matrix_curves[3];
144
145 // Optional: an N-dimensional CLUT, followed by N 1D "A" curves.
146 // If output_channels == 0, this CLUT and these curves are skipped,
147 // Otherwise, output_channels must be in [1, 4].
148 uint32_t output_channels;
149 uint8_t grid_points[4];
150 const uint8_t* grid_8;
151 const uint8_t* grid_16;
152 skcms_Curve output_curves[4];
153 } skcms_B2A;
154
155
156 typedef struct skcms_ICCProfile {
157 const uint8_t* buffer;
158
159 uint32_t size;
160 uint32_t data_color_space;
161 uint32_t pcs;
162 uint32_t tag_count;
163
164 // skcms_Parse() will set commonly-used fields for you when possible:
165
166 // If we can parse red, green and blue transfer curves from the profile,
167 // trc will be set to those three curves, and has_trc will be true.
168 bool has_trc;
169 skcms_Curve trc[3];
170
171 // If this profile's gamut can be represented by a 3x3 transform to XYZD50,
172 // skcms_Parse() sets toXYZD50 to that transform and has_toXYZD50 to true.
173 bool has_toXYZD50;
174 skcms_Matrix3x3 toXYZD50;
175
176 // If the profile has a valid A2B0 or A2B1 tag, skcms_Parse() sets A2B to
177 // that data, and has_A2B to true. skcms_ParseWithA2BPriority() does the
178 // same following any user-provided prioritization of A2B0, A2B1, or A2B2.
179 bool has_A2B;
180 skcms_A2B A2B;
181
182 // If the profile has a valid B2A0 or B2A1 tag, skcms_Parse() sets B2A to
183 // that data, and has_B2A to true. skcms_ParseWithA2BPriority() does the
184 // same following any user-provided prioritization of B2A0, B2A1, or B2A2.
185 bool has_B2A;
186 skcms_B2A B2A;
187
188 } skcms_ICCProfile;
189
190 // The sRGB color profile is so commonly used that we offer a canonical skcms_ICCProfile for it.
191 SKCMS_API const skcms_ICCProfile* skcms_sRGB_profile(void);
192 // Ditto for XYZD50, the most common profile connection space.
193 SKCMS_API const skcms_ICCProfile* skcms_XYZD50_profile(void);
194
195 SKCMS_API const skcms_TransferFunction* skcms_sRGB_TransferFunction(void);
196 SKCMS_API const skcms_TransferFunction* skcms_sRGB_Inverse_TransferFunction(void);
197 SKCMS_API const skcms_TransferFunction* skcms_Identity_TransferFunction(void);
198
199 // Practical equality test for two skcms_ICCProfiles.
200 // The implementation is subject to change, but it will always try to answer
201 // "can I substitute A for B?" and "can I skip transforming from A to B?".
202 SKCMS_API bool skcms_ApproximatelyEqualProfiles(const skcms_ICCProfile* A,
203 const skcms_ICCProfile* B);
204
205 // Practical test that answers: Is curve roughly the inverse of inv_tf? Typically used by passing
206 // the inverse of a known parametric transfer function (like sRGB), to determine if a particular
207 // curve is very close to sRGB.
208 SKCMS_API bool skcms_AreApproximateInverses(const skcms_Curve* curve,
209 const skcms_TransferFunction* inv_tf);
210
211 // Similar to above, answering the question for all three TRC curves of the given profile. Again,
212 // passing skcms_sRGB_InverseTransferFunction as inv_tf will answer the question:
213 // "Does this profile have a transfer function that is very close to sRGB?"
214 SKCMS_API bool skcms_TRCs_AreApproximateInverse(const skcms_ICCProfile* profile,
215 const skcms_TransferFunction* inv_tf);
216
217 // Parse an ICC profile and return true if possible, otherwise return false.
218 // Selects an A2B profile (if present) according to priority list (each entry 0-2).
219 // The buffer is not copied; it must remain valid as long as the skcms_ICCProfile will be used.
220 SKCMS_API bool skcms_ParseWithA2BPriority(const void*, size_t,
221 const int priority[], int priorities,
222 skcms_ICCProfile*);
223
skcms_Parse(const void * buf,size_t len,skcms_ICCProfile * profile)224 static inline bool skcms_Parse(const void* buf, size_t len, skcms_ICCProfile* profile) {
225 // For continuity of existing user expectations,
226 // prefer A2B0 (perceptual) over A2B1 (relative colormetric), and ignore A2B2 (saturation).
227 const int priority[] = {0,1};
228 return skcms_ParseWithA2BPriority(buf, len,
229 priority, sizeof(priority)/sizeof(*priority),
230 profile);
231 }
232
233 SKCMS_API bool skcms_ApproximateCurve(const skcms_Curve* curve,
234 skcms_TransferFunction* approx,
235 float* max_error);
236
237 SKCMS_API bool skcms_GetCHAD(const skcms_ICCProfile*, skcms_Matrix3x3*);
238 SKCMS_API bool skcms_GetWTPT(const skcms_ICCProfile*, float xyz[3]);
239
240 // These are common ICC signature values
241 enum {
242 // data_color_space
243 skcms_Signature_CMYK = 0x434D594B,
244 skcms_Signature_Gray = 0x47524159,
245 skcms_Signature_RGB = 0x52474220,
246
247 // pcs
248 skcms_Signature_Lab = 0x4C616220,
249 skcms_Signature_XYZ = 0x58595A20,
250 };
251
252 typedef enum skcms_PixelFormat {
253 skcms_PixelFormat_A_8,
254 skcms_PixelFormat_A_8_,
255 skcms_PixelFormat_G_8,
256 skcms_PixelFormat_G_8_,
257 skcms_PixelFormat_RGBA_8888_Palette8,
258 skcms_PixelFormat_BGRA_8888_Palette8,
259
260 skcms_PixelFormat_RGB_565,
261 skcms_PixelFormat_BGR_565,
262
263 skcms_PixelFormat_ABGR_4444,
264 skcms_PixelFormat_ARGB_4444,
265
266 skcms_PixelFormat_RGB_888,
267 skcms_PixelFormat_BGR_888,
268 skcms_PixelFormat_RGBA_8888,
269 skcms_PixelFormat_BGRA_8888,
270 skcms_PixelFormat_RGBA_8888_sRGB, // Automatic sRGB encoding / decoding.
271 skcms_PixelFormat_BGRA_8888_sRGB, // (Generally used with linear transfer functions.)
272
273 skcms_PixelFormat_RGBA_1010102,
274 skcms_PixelFormat_BGRA_1010102,
275
276 skcms_PixelFormat_RGB_161616LE, // Little-endian. Pointers must be 16-bit aligned.
277 skcms_PixelFormat_BGR_161616LE,
278 skcms_PixelFormat_RGBA_16161616LE,
279 skcms_PixelFormat_BGRA_16161616LE,
280
281 skcms_PixelFormat_RGB_161616BE, // Big-endian. Pointers must be 16-bit aligned.
282 skcms_PixelFormat_BGR_161616BE,
283 skcms_PixelFormat_RGBA_16161616BE,
284 skcms_PixelFormat_BGRA_16161616BE,
285
286 skcms_PixelFormat_RGB_hhh_Norm, // 1-5-10 half-precision float in [0,1]
287 skcms_PixelFormat_BGR_hhh_Norm, // Pointers must be 16-bit aligned.
288 skcms_PixelFormat_RGBA_hhhh_Norm,
289 skcms_PixelFormat_BGRA_hhhh_Norm,
290
291 skcms_PixelFormat_RGB_hhh, // 1-5-10 half-precision float.
292 skcms_PixelFormat_BGR_hhh, // Pointers must be 16-bit aligned.
293 skcms_PixelFormat_RGBA_hhhh,
294 skcms_PixelFormat_BGRA_hhhh,
295
296 skcms_PixelFormat_RGB_fff, // 1-8-23 single-precision float (the normal kind).
297 skcms_PixelFormat_BGR_fff, // Pointers must be 32-bit aligned.
298 skcms_PixelFormat_RGBA_ffff,
299 skcms_PixelFormat_BGRA_ffff,
300 } skcms_PixelFormat;
301
302 // We always store any alpha channel linearly. In the chart below, tf-1() is the inverse
303 // transfer function for the given color profile (applying the transfer function linearizes).
304
305 // We treat opaque as a strong requirement, not just a performance hint: we will ignore
306 // any source alpha and treat it as 1.0, and will make sure that any destination alpha
307 // channel is filled with the equivalent of 1.0.
308
309 // We used to offer multiple types of premultiplication, but now just one, PremulAsEncoded.
310 // This is the premul you're probably used to working with.
311
312 typedef enum skcms_AlphaFormat {
313 skcms_AlphaFormat_Opaque, // alpha is always opaque
314 // tf-1(r), tf-1(g), tf-1(b), 1.0
315 skcms_AlphaFormat_Unpremul, // alpha and color are unassociated
316 // tf-1(r), tf-1(g), tf-1(b), a
317 skcms_AlphaFormat_PremulAsEncoded, // premultiplied while encoded
318 // tf-1(r)*a, tf-1(g)*a, tf-1(b)*a, a
319 } skcms_AlphaFormat;
320
321 // Convert npixels pixels from src format and color profile to dst format and color profile
322 // and return true, otherwise return false. It is safe to alias dst == src if dstFmt == srcFmt.
323 SKCMS_API bool skcms_Transform(const void* src,
324 skcms_PixelFormat srcFmt,
325 skcms_AlphaFormat srcAlpha,
326 const skcms_ICCProfile* srcProfile,
327 void* dst,
328 skcms_PixelFormat dstFmt,
329 skcms_AlphaFormat dstAlpha,
330 const skcms_ICCProfile* dstProfile,
331 size_t npixels);
332
333 // As skcms_Transform(), supporting srcFmts with a palette.
334 SKCMS_API bool skcms_TransformWithPalette(const void* src,
335 skcms_PixelFormat srcFmt,
336 skcms_AlphaFormat srcAlpha,
337 const skcms_ICCProfile* srcProfile,
338 void* dst,
339 skcms_PixelFormat dstFmt,
340 skcms_AlphaFormat dstAlpha,
341 const skcms_ICCProfile* dstProfile,
342 size_t npixels,
343 const void* palette);
344
345 // If profile can be used as a destination in skcms_Transform, return true. Otherwise, attempt to
346 // rewrite it with approximations where reasonable. If successful, return true. If no reasonable
347 // approximation exists, leave the profile unchanged and return false.
348 SKCMS_API bool skcms_MakeUsableAsDestination(skcms_ICCProfile* profile);
349
350 // If profile can be used as a destination with a single parametric transfer function (ie for
351 // rasterization), return true. Otherwise, attempt to rewrite it with approximations where
352 // reasonable. If successful, return true. If no reasonable approximation exists, leave the
353 // profile unchanged and return false.
354 SKCMS_API bool skcms_MakeUsableAsDestinationWithSingleCurve(skcms_ICCProfile* profile);
355
356 // Returns a matrix to adapt XYZ color from given the whitepoint to D50.
357 SKCMS_API bool skcms_AdaptToXYZD50(float wx, float wy,
358 skcms_Matrix3x3* toXYZD50);
359
360 // Returns a matrix to convert RGB color into XYZ adapted to D50, given the
361 // primaries and whitepoint of the RGB model.
362 SKCMS_API bool skcms_PrimariesToXYZD50(float rx, float ry,
363 float gx, float gy,
364 float bx, float by,
365 float wx, float wy,
366 skcms_Matrix3x3* toXYZD50);
367
368 // Call before your first call to skcms_Transform() to skip runtime CPU detection.
369 SKCMS_API void skcms_DisableRuntimeCPUDetection(void);
370
371 // Utilities for programmatically constructing profiles
skcms_Init(skcms_ICCProfile * p)372 static inline void skcms_Init(skcms_ICCProfile* p) {
373 memset(p, 0, sizeof(*p));
374 p->data_color_space = skcms_Signature_RGB;
375 p->pcs = skcms_Signature_XYZ;
376 }
377
skcms_SetTransferFunction(skcms_ICCProfile * p,const skcms_TransferFunction * tf)378 static inline void skcms_SetTransferFunction(skcms_ICCProfile* p,
379 const skcms_TransferFunction* tf) {
380 p->has_trc = true;
381 for (int i = 0; i < 3; ++i) {
382 p->trc[i].table_entries = 0;
383 p->trc[i].parametric = *tf;
384 }
385 }
386
skcms_SetXYZD50(skcms_ICCProfile * p,const skcms_Matrix3x3 * m)387 static inline void skcms_SetXYZD50(skcms_ICCProfile* p, const skcms_Matrix3x3* m) {
388 p->has_toXYZD50 = true;
389 p->toXYZD50 = *m;
390 }
391
392 #ifdef __cplusplus
393 }
394 #endif
395