blob: 1ab3c7c7932e7258c76feccf32d8e0401c8d8727 [file] [log] [blame]
Dichen Zhange46f9bb2023-02-23 19:34:53 +00001/*
2 * Copyright 2022 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
Nick Deakin0db53ee2023-05-19 17:14:45 -040017#ifndef USE_BIG_ENDIAN
18#define USE_BIG_ENDIAN true
19#endif
20
Dichen Zhangdbceb0e2023-04-14 19:03:18 +000021#include <ultrahdr/icc.h>
22#include <ultrahdr/gainmapmath.h>
Dichen Zhange46f9bb2023-02-23 19:34:53 +000023#include <vector>
24#include <utils/Log.h>
25
26#ifndef FLT_MAX
27#define FLT_MAX 0x1.fffffep127f
28#endif
29
Dichen Zhangdbceb0e2023-04-14 19:03:18 +000030namespace android::ultrahdr {
Dichen Zhange46f9bb2023-02-23 19:34:53 +000031static void Matrix3x3_apply(const Matrix3x3* m, float* x) {
32 float y0 = x[0] * m->vals[0][0] + x[1] * m->vals[0][1] + x[2] * m->vals[0][2];
33 float y1 = x[0] * m->vals[1][0] + x[1] * m->vals[1][1] + x[2] * m->vals[1][2];
34 float y2 = x[0] * m->vals[2][0] + x[1] * m->vals[2][1] + x[2] * m->vals[2][2];
35 x[0] = y0;
36 x[1] = y1;
37 x[2] = y2;
38}
39
40bool Matrix3x3_invert(const Matrix3x3* src, Matrix3x3* dst) {
41 double a00 = src->vals[0][0],
42 a01 = src->vals[1][0],
43 a02 = src->vals[2][0],
44 a10 = src->vals[0][1],
45 a11 = src->vals[1][1],
46 a12 = src->vals[2][1],
47 a20 = src->vals[0][2],
48 a21 = src->vals[1][2],
49 a22 = src->vals[2][2];
50
51 double b0 = a00*a11 - a01*a10,
52 b1 = a00*a12 - a02*a10,
53 b2 = a01*a12 - a02*a11,
54 b3 = a20,
55 b4 = a21,
56 b5 = a22;
57
58 double determinant = b0*b5
59 - b1*b4
60 + b2*b3;
61
62 if (determinant == 0) {
63 return false;
64 }
65
66 double invdet = 1.0 / determinant;
67 if (invdet > +FLT_MAX || invdet < -FLT_MAX || !isfinitef_((float)invdet)) {
68 return false;
69 }
70
71 b0 *= invdet;
72 b1 *= invdet;
73 b2 *= invdet;
74 b3 *= invdet;
75 b4 *= invdet;
76 b5 *= invdet;
77
78 dst->vals[0][0] = (float)( a11*b5 - a12*b4 );
79 dst->vals[1][0] = (float)( a02*b4 - a01*b5 );
80 dst->vals[2][0] = (float)( + b2 );
81 dst->vals[0][1] = (float)( a12*b3 - a10*b5 );
82 dst->vals[1][1] = (float)( a00*b5 - a02*b3 );
83 dst->vals[2][1] = (float)( - b1 );
84 dst->vals[0][2] = (float)( a10*b4 - a11*b3 );
85 dst->vals[1][2] = (float)( a01*b3 - a00*b4 );
86 dst->vals[2][2] = (float)( + b0 );
87
88 for (int r = 0; r < 3; ++r)
89 for (int c = 0; c < 3; ++c) {
90 if (!isfinitef_(dst->vals[r][c])) {
91 return false;
92 }
93 }
94 return true;
95}
96
97static Matrix3x3 Matrix3x3_concat(const Matrix3x3* A, const Matrix3x3* B) {
98 Matrix3x3 m = { { { 0,0,0 },{ 0,0,0 },{ 0,0,0 } } };
99 for (int r = 0; r < 3; r++)
100 for (int c = 0; c < 3; c++) {
101 m.vals[r][c] = A->vals[r][0] * B->vals[0][c]
102 + A->vals[r][1] * B->vals[1][c]
103 + A->vals[r][2] * B->vals[2][c];
104 }
105 return m;
106}
107
108static void float_XYZD50_to_grid16_lab(const float* xyz_float, uint8_t* grid16_lab) {
109 float v[3] = {
110 xyz_float[0] / kD50_x,
111 xyz_float[1] / kD50_y,
112 xyz_float[2] / kD50_z,
113 };
114 for (size_t i = 0; i < 3; ++i) {
115 v[i] = v[i] > 0.008856f ? cbrtf(v[i]) : v[i] * 7.787f + (16 / 116.0f);
116 }
117 const float L = v[1] * 116.0f - 16.0f;
118 const float a = (v[0] - v[1]) * 500.0f;
119 const float b = (v[1] - v[2]) * 200.0f;
120 const float Lab_unorm[3] = {
121 L * (1 / 100.f),
122 (a + 128.0f) * (1 / 255.0f),
123 (b + 128.0f) * (1 / 255.0f),
124 };
125 // This will encode L=1 as 0xFFFF. This matches how skcms will interpret the
126 // table, but the spec appears to indicate that the value should be 0xFF00.
127 // https://crbug.com/skia/13807
128 for (size_t i = 0; i < 3; ++i) {
129 reinterpret_cast<uint16_t*>(grid16_lab)[i] =
130 Endian_SwapBE16(float_round_to_unorm16(Lab_unorm[i]));
131 }
132}
133
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000134std::string IccHelper::get_desc_string(const ultrahdr_transfer_function tf,
135 const ultrahdr_color_gamut gamut) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000136 std::string result;
137 switch (gamut) {
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000138 case ULTRAHDR_COLORGAMUT_BT709:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000139 result += "sRGB";
140 break;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000141 case ULTRAHDR_COLORGAMUT_P3:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000142 result += "Display P3";
143 break;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000144 case ULTRAHDR_COLORGAMUT_BT2100:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000145 result += "Rec2020";
146 break;
147 default:
148 result += "Unknown";
149 break;
150 }
151 result += " Gamut with ";
152 switch (tf) {
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000153 case ULTRAHDR_TF_SRGB:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000154 result += "sRGB";
155 break;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000156 case ULTRAHDR_TF_LINEAR:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000157 result += "Linear";
158 break;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000159 case ULTRAHDR_TF_PQ:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000160 result += "PQ";
161 break;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000162 case ULTRAHDR_TF_HLG:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000163 result += "HLG";
164 break;
165 default:
166 result += "Unknown";
167 break;
168 }
169 result += " Transfer";
170 return result;
171}
172
173sp<DataStruct> IccHelper::write_text_tag(const char* text) {
174 uint32_t text_length = strlen(text);
175 uint32_t header[] = {
176 Endian_SwapBE32(kTAG_TextType), // Type signature
177 0, // Reserved
178 Endian_SwapBE32(1), // Number of records
179 Endian_SwapBE32(12), // Record size (must be 12)
180 Endian_SwapBE32(SetFourByteTag('e', 'n', 'U', 'S')), // English USA
181 Endian_SwapBE32(2 * text_length), // Length of string in bytes
182 Endian_SwapBE32(28), // Offset of string
183 };
184
185 uint32_t total_length = text_length * 2 + sizeof(header);
186 total_length = (((total_length + 2) >> 2) << 2); // 4 aligned
Ram Mohane69d9d22023-06-02 17:44:45 +0530187 sp<DataStruct> dataStruct = sp<DataStruct>::make(total_length);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000188
189 if (!dataStruct->write(header, sizeof(header))) {
190 ALOGE("write_text_tag(): error in writing data");
191 return dataStruct;
192 }
193
194 for (size_t i = 0; i < text_length; i++) {
195 // Convert ASCII to big-endian UTF-16.
196 dataStruct->write8(0);
197 dataStruct->write8(text[i]);
198 }
199
200 return dataStruct;
201}
202
203sp<DataStruct> IccHelper::write_xyz_tag(float x, float y, float z) {
204 uint32_t data[] = {
205 Endian_SwapBE32(kXYZ_PCSSpace),
206 0,
207 static_cast<uint32_t>(Endian_SwapBE32(float_round_to_fixed(x))),
208 static_cast<uint32_t>(Endian_SwapBE32(float_round_to_fixed(y))),
209 static_cast<uint32_t>(Endian_SwapBE32(float_round_to_fixed(z))),
210 };
Ram Mohane69d9d22023-06-02 17:44:45 +0530211 sp<DataStruct> dataStruct = sp<DataStruct>::make(sizeof(data));
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000212 dataStruct->write(&data, sizeof(data));
213 return dataStruct;
214}
215
216sp<DataStruct> IccHelper::write_trc_tag(const int table_entries, const void* table_16) {
217 int total_length = 4 + 4 + 4 + table_entries * 2;
218 total_length = (((total_length + 2) >> 2) << 2); // 4 aligned
Ram Mohane69d9d22023-06-02 17:44:45 +0530219 sp<DataStruct> dataStruct = sp<DataStruct>::make(total_length);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000220 dataStruct->write32(Endian_SwapBE32(kTAG_CurveType)); // Type
221 dataStruct->write32(0); // Reserved
222 dataStruct->write32(Endian_SwapBE32(table_entries)); // Value count
223 for (size_t i = 0; i < table_entries; ++i) {
224 uint16_t value = reinterpret_cast<const uint16_t*>(table_16)[i];
225 dataStruct->write16(value);
226 }
227 return dataStruct;
228}
229
230sp<DataStruct> IccHelper::write_trc_tag_for_linear() {
231 int total_length = 16;
Ram Mohane69d9d22023-06-02 17:44:45 +0530232 sp<DataStruct> dataStruct = sp<DataStruct>::make(total_length);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000233 dataStruct->write32(Endian_SwapBE32(kTAG_ParaCurveType)); // Type
234 dataStruct->write32(0); // Reserved
235 dataStruct->write32(Endian_SwapBE16(kExponential_ParaCurveType));
236 dataStruct->write32(Endian_SwapBE32(float_round_to_fixed(1.0)));
237
238 return dataStruct;
239}
240
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000241float IccHelper::compute_tone_map_gain(const ultrahdr_transfer_function tf, float L) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000242 if (L <= 0.f) {
243 return 1.f;
244 }
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000245 if (tf == ULTRAHDR_TF_PQ) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000246 // The PQ transfer function will map to the range [0, 1]. Linearly scale
247 // it up to the range [0, 10,000/203]. We will then tone map that back
248 // down to [0, 1].
249 constexpr float kInputMaxLuminance = 10000 / 203.f;
250 constexpr float kOutputMaxLuminance = 1.0;
251 L *= kInputMaxLuminance;
252
253 // Compute the tone map gain which will tone map from 10,000/203 to 1.0.
254 constexpr float kToneMapA = kOutputMaxLuminance / (kInputMaxLuminance * kInputMaxLuminance);
255 constexpr float kToneMapB = 1.f / kOutputMaxLuminance;
256 return kInputMaxLuminance * (1.f + kToneMapA * L) / (1.f + kToneMapB * L);
257 }
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000258 if (tf == ULTRAHDR_TF_HLG) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000259 // Let Lw be the brightness of the display in nits.
260 constexpr float Lw = 203.f;
261 const float gamma = 1.2f + 0.42f * std::log(Lw / 1000.f) / std::log(10.f);
262 return std::pow(L, gamma - 1.f);
263 }
264 return 1.f;
265}
266
267sp<DataStruct> IccHelper::write_cicp_tag(uint32_t color_primaries,
268 uint32_t transfer_characteristics) {
269 int total_length = 12; // 4 + 4 + 1 + 1 + 1 + 1
Ram Mohane69d9d22023-06-02 17:44:45 +0530270 sp<DataStruct> dataStruct = sp<DataStruct>::make(total_length);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000271 dataStruct->write32(Endian_SwapBE32(kTAG_cicp)); // Type signature
272 dataStruct->write32(0); // Reserved
273 dataStruct->write8(color_primaries); // Color primaries
274 dataStruct->write8(transfer_characteristics); // Transfer characteristics
275 dataStruct->write8(0); // RGB matrix
276 dataStruct->write8(1); // Full range
277 return dataStruct;
278}
279
280void IccHelper::compute_lut_entry(const Matrix3x3& src_to_XYZD50, float rgb[3]) {
281 // Compute the matrices to convert from source to Rec2020, and from Rec2020 to XYZD50.
282 Matrix3x3 src_to_rec2020;
283 const Matrix3x3 rec2020_to_XYZD50 = kRec2020;
284 {
285 Matrix3x3 XYZD50_to_rec2020;
286 Matrix3x3_invert(&rec2020_to_XYZD50, &XYZD50_to_rec2020);
287 src_to_rec2020 = Matrix3x3_concat(&XYZD50_to_rec2020, &src_to_XYZD50);
288 }
289
290 // Convert the source signal to linear.
291 for (size_t i = 0; i < kNumChannels; ++i) {
292 rgb[i] = pqOetf(rgb[i]);
293 }
294
295 // Convert source gamut to Rec2020.
296 Matrix3x3_apply(&src_to_rec2020, rgb);
297
298 // Compute the luminance of the signal.
299 float L = bt2100Luminance({{{rgb[0], rgb[1], rgb[2]}}});
300
301 // Compute the tone map gain based on the luminance.
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000302 float tone_map_gain = compute_tone_map_gain(ULTRAHDR_TF_PQ, L);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000303
304 // Apply the tone map gain.
305 for (size_t i = 0; i < kNumChannels; ++i) {
306 rgb[i] *= tone_map_gain;
307 }
308
309 // Convert from Rec2020-linear to XYZD50.
310 Matrix3x3_apply(&rec2020_to_XYZD50, rgb);
311}
312
313sp<DataStruct> IccHelper::write_clut(const uint8_t* grid_points, const uint8_t* grid_16) {
314 uint32_t value_count = kNumChannels;
315 for (uint32_t i = 0; i < kNumChannels; ++i) {
316 value_count *= grid_points[i];
317 }
318
319 int total_length = 20 + 2 * value_count;
320 total_length = (((total_length + 2) >> 2) << 2); // 4 aligned
Ram Mohane69d9d22023-06-02 17:44:45 +0530321 sp<DataStruct> dataStruct = sp<DataStruct>::make(total_length);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000322
323 for (size_t i = 0; i < 16; ++i) {
324 dataStruct->write8(i < kNumChannels ? grid_points[i] : 0); // Grid size
325 }
326 dataStruct->write8(2); // Grid byte width (always 16-bit)
327 dataStruct->write8(0); // Reserved
328 dataStruct->write8(0); // Reserved
329 dataStruct->write8(0); // Reserved
330
331 for (uint32_t i = 0; i < value_count; ++i) {
332 uint16_t value = reinterpret_cast<const uint16_t*>(grid_16)[i];
333 dataStruct->write16(value);
334 }
335
336 return dataStruct;
337}
338
339sp<DataStruct> IccHelper::write_mAB_or_mBA_tag(uint32_t type,
340 bool has_a_curves,
341 const uint8_t* grid_points,
342 const uint8_t* grid_16) {
343 const size_t b_curves_offset = 32;
344 sp<DataStruct> b_curves_data[kNumChannels];
345 sp<DataStruct> a_curves_data[kNumChannels];
346 size_t clut_offset = 0;
347 sp<DataStruct> clut;
348 size_t a_curves_offset = 0;
349
350 // The "B" curve is required.
351 for (size_t i = 0; i < kNumChannels; ++i) {
352 b_curves_data[i] = write_trc_tag_for_linear();
353 }
354
355 // The "A" curve and CLUT are optional.
356 if (has_a_curves) {
357 clut_offset = b_curves_offset;
358 for (size_t i = 0; i < kNumChannels; ++i) {
359 clut_offset += b_curves_data[i]->getLength();
360 }
361 clut = write_clut(grid_points, grid_16);
362
363 a_curves_offset = clut_offset + clut->getLength();
364 for (size_t i = 0; i < kNumChannels; ++i) {
365 a_curves_data[i] = write_trc_tag_for_linear();
366 }
367 }
368
369 int total_length = b_curves_offset;
370 for (size_t i = 0; i < kNumChannels; ++i) {
371 total_length += b_curves_data[i]->getLength();
372 }
373 if (has_a_curves) {
374 total_length += clut->getLength();
375 for (size_t i = 0; i < kNumChannels; ++i) {
376 total_length += a_curves_data[i]->getLength();
377 }
378 }
Ram Mohane69d9d22023-06-02 17:44:45 +0530379 sp<DataStruct> dataStruct = sp<DataStruct>::make(total_length);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000380 dataStruct->write32(Endian_SwapBE32(type)); // Type signature
381 dataStruct->write32(0); // Reserved
382 dataStruct->write8(kNumChannels); // Input channels
383 dataStruct->write8(kNumChannels); // Output channels
384 dataStruct->write16(0); // Reserved
385 dataStruct->write32(Endian_SwapBE32(b_curves_offset)); // B curve offset
386 dataStruct->write32(Endian_SwapBE32(0)); // Matrix offset (ignored)
387 dataStruct->write32(Endian_SwapBE32(0)); // M curve offset (ignored)
388 dataStruct->write32(Endian_SwapBE32(clut_offset)); // CLUT offset
389 dataStruct->write32(Endian_SwapBE32(a_curves_offset)); // A curve offset
390 for (size_t i = 0; i < kNumChannels; ++i) {
391 if (dataStruct->write(b_curves_data[i]->getData(), b_curves_data[i]->getLength())) {
392 return dataStruct;
393 }
394 }
395 if (has_a_curves) {
396 dataStruct->write(clut->getData(), clut->getLength());
397 for (size_t i = 0; i < kNumChannels; ++i) {
398 dataStruct->write(a_curves_data[i]->getData(), a_curves_data[i]->getLength());
399 }
400 }
401 return dataStruct;
402}
403
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000404sp<DataStruct> IccHelper::writeIccProfile(ultrahdr_transfer_function tf,
405 ultrahdr_color_gamut gamut) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000406 ICCHeader header;
407
408 std::vector<std::pair<uint32_t, sp<DataStruct>>> tags;
409
410 // Compute profile description tag
411 std::string desc = get_desc_string(tf, gamut);
412
413 tags.emplace_back(kTAG_desc, write_text_tag(desc.c_str()));
414
415 Matrix3x3 toXYZD50;
416 switch (gamut) {
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000417 case ULTRAHDR_COLORGAMUT_BT709:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000418 toXYZD50 = kSRGB;
419 break;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000420 case ULTRAHDR_COLORGAMUT_P3:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000421 toXYZD50 = kDisplayP3;
422 break;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000423 case ULTRAHDR_COLORGAMUT_BT2100:
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000424 toXYZD50 = kRec2020;
425 break;
426 default:
427 // Should not fall here.
Ram Mohane69d9d22023-06-02 17:44:45 +0530428 return nullptr;
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000429 }
430
431 // Compute primaries.
432 {
433 tags.emplace_back(kTAG_rXYZ,
434 write_xyz_tag(toXYZD50.vals[0][0], toXYZD50.vals[1][0], toXYZD50.vals[2][0]));
435 tags.emplace_back(kTAG_gXYZ,
436 write_xyz_tag(toXYZD50.vals[0][1], toXYZD50.vals[1][1], toXYZD50.vals[2][1]));
437 tags.emplace_back(kTAG_bXYZ,
438 write_xyz_tag(toXYZD50.vals[0][2], toXYZD50.vals[1][2], toXYZD50.vals[2][2]));
439 }
440
441 // Compute white point tag (must be D50)
442 tags.emplace_back(kTAG_wtpt, write_xyz_tag(kD50_x, kD50_y, kD50_z));
443
444 // Compute transfer curves.
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000445 if (tf != ULTRAHDR_TF_PQ) {
446 if (tf == ULTRAHDR_TF_HLG) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000447 std::vector<uint8_t> trc_table;
448 trc_table.resize(kTrcTableSize * 2);
449 for (uint32_t i = 0; i < kTrcTableSize; ++i) {
450 float x = i / (kTrcTableSize - 1.f);
451 float y = hlgOetf(x);
452 y *= compute_tone_map_gain(tf, y);
453 float_to_table16(y, &trc_table[2 * i]);
454 }
455
456 tags.emplace_back(kTAG_rTRC,
457 write_trc_tag(kTrcTableSize, reinterpret_cast<uint8_t*>(trc_table.data())));
458 tags.emplace_back(kTAG_gTRC,
459 write_trc_tag(kTrcTableSize, reinterpret_cast<uint8_t*>(trc_table.data())));
460 tags.emplace_back(kTAG_bTRC,
461 write_trc_tag(kTrcTableSize, reinterpret_cast<uint8_t*>(trc_table.data())));
462 } else {
463 tags.emplace_back(kTAG_rTRC, write_trc_tag_for_linear());
464 tags.emplace_back(kTAG_gTRC, write_trc_tag_for_linear());
465 tags.emplace_back(kTAG_bTRC, write_trc_tag_for_linear());
466 }
467 }
468
469 // Compute CICP.
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000470 if (tf == ULTRAHDR_TF_HLG || tf == ULTRAHDR_TF_PQ) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000471 // The CICP tag is present in ICC 4.4, so update the header's version.
472 header.version = Endian_SwapBE32(0x04400000);
473
474 uint32_t color_primaries = 0;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000475 if (gamut == ULTRAHDR_COLORGAMUT_BT709) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000476 color_primaries = kCICPPrimariesSRGB;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000477 } else if (gamut == ULTRAHDR_COLORGAMUT_P3) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000478 color_primaries = kCICPPrimariesP3;
479 }
480
481 uint32_t transfer_characteristics = 0;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000482 if (tf == ULTRAHDR_TF_SRGB) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000483 transfer_characteristics = kCICPTrfnSRGB;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000484 } else if (tf == ULTRAHDR_TF_LINEAR) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000485 transfer_characteristics = kCICPTrfnLinear;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000486 } else if (tf == ULTRAHDR_TF_PQ) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000487 transfer_characteristics = kCICPTrfnPQ;
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000488 } else if (tf == ULTRAHDR_TF_HLG) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000489 transfer_characteristics = kCICPTrfnHLG;
490 }
491 tags.emplace_back(kTAG_cicp, write_cicp_tag(color_primaries, transfer_characteristics));
492 }
493
494 // Compute A2B0.
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000495 if (tf == ULTRAHDR_TF_PQ) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000496 std::vector<uint8_t> a2b_grid;
497 a2b_grid.resize(kGridSize * kGridSize * kGridSize * kNumChannels * 2);
498 size_t a2b_grid_index = 0;
499 for (uint32_t r_index = 0; r_index < kGridSize; ++r_index) {
500 for (uint32_t g_index = 0; g_index < kGridSize; ++g_index) {
501 for (uint32_t b_index = 0; b_index < kGridSize; ++b_index) {
502 float rgb[3] = {
503 r_index / (kGridSize - 1.f),
504 g_index / (kGridSize - 1.f),
505 b_index / (kGridSize - 1.f),
506 };
507 compute_lut_entry(toXYZD50, rgb);
508 float_XYZD50_to_grid16_lab(rgb, &a2b_grid[a2b_grid_index]);
509 a2b_grid_index += 6;
510 }
511 }
512 }
513 const uint8_t* grid_16 = reinterpret_cast<const uint8_t*>(a2b_grid.data());
514
515 uint8_t grid_points[kNumChannels];
516 for (size_t i = 0; i < kNumChannels; ++i) {
517 grid_points[i] = kGridSize;
518 }
519
520 auto a2b_data = write_mAB_or_mBA_tag(kTAG_mABType,
521 /* has_a_curves */ true,
522 grid_points,
523 grid_16);
524 tags.emplace_back(kTAG_A2B0, std::move(a2b_data));
525 }
526
527 // Compute B2A0.
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000528 if (tf == ULTRAHDR_TF_PQ) {
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000529 auto b2a_data = write_mAB_or_mBA_tag(kTAG_mBAType,
530 /* has_a_curves */ false,
531 /* grid_points */ nullptr,
532 /* grid_16 */ nullptr);
533 tags.emplace_back(kTAG_B2A0, std::move(b2a_data));
534 }
535
536 // Compute copyright tag
537 tags.emplace_back(kTAG_cprt, write_text_tag("Google Inc. 2022"));
538
539 // Compute the size of the profile.
540 size_t tag_data_size = 0;
541 for (const auto& tag : tags) {
542 tag_data_size += tag.second->getLength();
543 }
544 size_t tag_table_size = kICCTagTableEntrySize * tags.size();
545 size_t profile_size = kICCHeaderSize + tag_table_size + tag_data_size;
546
Nick Deakin0db53ee2023-05-19 17:14:45 -0400547 sp<DataStruct> dataStruct = sp<DataStruct>::make(profile_size + kICCIdentifierSize);
548
549 // Write identifier, chunk count, and chunk ID
550 if (!dataStruct->write(kICCIdentifier, sizeof(kICCIdentifier)) ||
551 !dataStruct->write8(1) || !dataStruct->write8(1)) {
552 ALOGE("writeIccProfile(): error in identifier");
553 return dataStruct;
554 }
555
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000556 // Write the header.
557 header.data_color_space = Endian_SwapBE32(Signature_RGB);
Dichen Zhangdbceb0e2023-04-14 19:03:18 +0000558 header.pcs = Endian_SwapBE32(tf == ULTRAHDR_TF_PQ ? Signature_Lab : Signature_XYZ);
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000559 header.size = Endian_SwapBE32(profile_size);
560 header.tag_count = Endian_SwapBE32(tags.size());
561
Dichen Zhange46f9bb2023-02-23 19:34:53 +0000562 if (!dataStruct->write(&header, sizeof(header))) {
563 ALOGE("writeIccProfile(): error in header");
564 return dataStruct;
565 }
566
567 // Write the tag table. Track the offset and size of the previous tag to
568 // compute each tag's offset. An empty SkData indicates that the previous
569 // tag is to be reused.
570 uint32_t last_tag_offset = sizeof(header) + tag_table_size;
571 uint32_t last_tag_size = 0;
572 for (const auto& tag : tags) {
573 last_tag_offset = last_tag_offset + last_tag_size;
574 last_tag_size = tag.second->getLength();
575 uint32_t tag_table_entry[3] = {
576 Endian_SwapBE32(tag.first),
577 Endian_SwapBE32(last_tag_offset),
578 Endian_SwapBE32(last_tag_size),
579 };
580 if (!dataStruct->write(tag_table_entry, sizeof(tag_table_entry))) {
581 ALOGE("writeIccProfile(): error in writing tag table");
582 return dataStruct;
583 }
584 }
585
586 // Write the tags.
587 for (const auto& tag : tags) {
588 if (!dataStruct->write(tag.second->getData(), tag.second->getLength())) {
589 ALOGE("writeIccProfile(): error in writing tags");
590 return dataStruct;
591 }
592 }
593
594 return dataStruct;
595}
596
Nick Deakin0db53ee2023-05-19 17:14:45 -0400597bool IccHelper::tagsEqualToMatrix(const Matrix3x3& matrix,
598 const uint8_t* red_tag,
599 const uint8_t* green_tag,
600 const uint8_t* blue_tag) {
601 sp<DataStruct> red_tag_test = write_xyz_tag(matrix.vals[0][0], matrix.vals[1][0],
602 matrix.vals[2][0]);
603 sp<DataStruct> green_tag_test = write_xyz_tag(matrix.vals[0][1], matrix.vals[1][1],
604 matrix.vals[2][1]);
605 sp<DataStruct> blue_tag_test = write_xyz_tag(matrix.vals[0][2], matrix.vals[1][2],
606 matrix.vals[2][2]);
607 return memcmp(red_tag, red_tag_test->getData(), kColorantTagSize) == 0 &&
608 memcmp(green_tag, green_tag_test->getData(), kColorantTagSize) == 0 &&
609 memcmp(blue_tag, blue_tag_test->getData(), kColorantTagSize) == 0;
610}
611
612ultrahdr_color_gamut IccHelper::readIccColorGamut(void* icc_data, size_t icc_size) {
613 // Each tag table entry consists of 3 fields of 4 bytes each.
614 static const size_t kTagTableEntrySize = 12;
615
616 if (icc_data == nullptr || icc_size < sizeof(ICCHeader) + kICCIdentifierSize) {
617 return ULTRAHDR_COLORGAMUT_UNSPECIFIED;
618 }
619
620 if (memcmp(icc_data, kICCIdentifier, sizeof(kICCIdentifier)) != 0) {
621 return ULTRAHDR_COLORGAMUT_UNSPECIFIED;
622 }
623
624 uint8_t* icc_bytes = reinterpret_cast<uint8_t*>(icc_data) + kICCIdentifierSize;
625
626 ICCHeader* header = reinterpret_cast<ICCHeader*>(icc_bytes);
627
628 // Use 0 to indicate not found, since offsets are always relative to start
629 // of ICC data and therefore a tag offset of zero would never be valid.
630 size_t red_primary_offset = 0, green_primary_offset = 0, blue_primary_offset = 0;
631 size_t red_primary_size = 0, green_primary_size = 0, blue_primary_size = 0;
632 for (size_t tag_idx = 0; tag_idx < Endian_SwapBE32(header->tag_count); ++tag_idx) {
633 uint32_t* tag_entry_start = reinterpret_cast<uint32_t*>(
634 icc_bytes + sizeof(ICCHeader) + tag_idx * kTagTableEntrySize);
635 // first 4 bytes are the tag signature, next 4 bytes are the tag offset,
636 // last 4 bytes are the tag length in bytes.
637 if (red_primary_offset == 0 && *tag_entry_start == Endian_SwapBE32(kTAG_rXYZ)) {
638 red_primary_offset = Endian_SwapBE32(*(tag_entry_start+1));
639 red_primary_size = Endian_SwapBE32(*(tag_entry_start+2));
640 } else if (green_primary_offset == 0 && *tag_entry_start == Endian_SwapBE32(kTAG_gXYZ)) {
641 green_primary_offset = Endian_SwapBE32(*(tag_entry_start+1));
642 green_primary_size = Endian_SwapBE32(*(tag_entry_start+2));
643 } else if (blue_primary_offset == 0 && *tag_entry_start == Endian_SwapBE32(kTAG_bXYZ)) {
644 blue_primary_offset = Endian_SwapBE32(*(tag_entry_start+1));
645 blue_primary_size = Endian_SwapBE32(*(tag_entry_start+2));
646 }
647 }
648
649 if (red_primary_offset == 0 || red_primary_size != kColorantTagSize ||
650 kICCIdentifierSize + red_primary_offset + red_primary_size > icc_size ||
651 green_primary_offset == 0 || green_primary_size != kColorantTagSize ||
652 kICCIdentifierSize + green_primary_offset + green_primary_size > icc_size ||
653 blue_primary_offset == 0 || blue_primary_size != kColorantTagSize ||
654 kICCIdentifierSize + blue_primary_offset + blue_primary_size > icc_size) {
655 return ULTRAHDR_COLORGAMUT_UNSPECIFIED;
656 }
657
658 uint8_t* red_tag = icc_bytes + red_primary_offset;
659 uint8_t* green_tag = icc_bytes + green_primary_offset;
660 uint8_t* blue_tag = icc_bytes + blue_primary_offset;
661
662 // Serialize tags as we do on encode and compare what we find to that to
663 // determine the gamut (since we don't have a need yet for full deserialize).
664 if (tagsEqualToMatrix(kSRGB, red_tag, green_tag, blue_tag)) {
665 return ULTRAHDR_COLORGAMUT_BT709;
666 } else if (tagsEqualToMatrix(kDisplayP3, red_tag, green_tag, blue_tag)) {
667 return ULTRAHDR_COLORGAMUT_P3;
668 } else if (tagsEqualToMatrix(kRec2020, red_tag, green_tag, blue_tag)) {
669 return ULTRAHDR_COLORGAMUT_BT2100;
670 }
671
672 // Didn't find a match to one of the profiles we write; indicate the gamut
673 // is unspecified since we don't understand it.
674 return ULTRAHDR_COLORGAMUT_UNSPECIFIED;
675}
676
677} // namespace android::ultrahdr