Conversion.cpp 18 KB

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  1. #include "pch.h"
  2. #include <iostream>
  3. #include <thread>
  4. #include "Conversion.hpp"
  5. #include "MT_linear.hpp"
  6. #include "MT_channel.hpp"
  7. /**************************************/
  8. /******** LINEAR_TO_NON_LINEAR ********/
  9. /**************************************/
  10. float Conversion::linear_to_non_linear(float data)
  11. {
  12. if (data <= 0.0031308f)
  13. return data * 12.92f;
  14. return 1.055f * powf(data, 0.4166666667f) - 0.055f;
  15. }
  16. #ifdef _MT_
  17. void* linear_to_non_linear_MT(void* arg)
  18. {
  19. MT_linear* a = (MT_linear*)arg;
  20. const float* data = a->data;
  21. float* result = a->result;
  22. for (unsigned int i = 0; i < a->length; i++)
  23. result[i] = Conversion::linear_to_non_linear(data[i]);
  24. return arg;
  25. }
  26. float* Conversion::linear_to_non_linear(const float* data, unsigned int length)
  27. {
  28. float* non_linear = new float[length];
  29. std::thread tab_t[_MT_];
  30. MT_linear tab_a[_MT_];
  31. unsigned int id;
  32. unsigned int block_size = length / _MT_;
  33. for (id = 0; id < _MT_; id++) {
  34. tab_a[id].data = data + (id * block_size);
  35. tab_a[id].length = block_size;
  36. tab_a[id].result = non_linear + (id * block_size);
  37. if (id == (_MT_ - 1))
  38. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  39. tab_t[id] = std::thread(linear_to_non_linear_MT, (void*)(tab_a + id));
  40. }
  41. for (id = 0; id < _MT_; id++) {
  42. tab_t[id].join();
  43. }
  44. return non_linear;
  45. }
  46. #else
  47. float* Conversion::linear_to_non_linear(const float* data, unsigned int length)
  48. {
  49. float* non_linear = new float[length];
  50. for (unsigned int i = 0; i < length; i++)
  51. non_linear[i] = linear_to_non_linear(data[i]);
  52. return non_linear;
  53. }
  54. #endif
  55. /**************************************/
  56. /******** NON_LINEAR_TO_LINEAR ********/
  57. /**************************************/
  58. float Conversion::non_linear_to_linear(float data)
  59. {
  60. if (data <= 0.040449936f)
  61. return data / 12.92f;
  62. return powf((data + 0.055f) / 1.055f, 2.4f);
  63. }
  64. #ifdef _MT_
  65. void* non_linear_to_linear_MT(void* arg)
  66. {
  67. MT_linear* a = (MT_linear*)arg;
  68. const float* data = a->data;
  69. float* result = a->result;
  70. for (unsigned int i = 0; i < a->length; i++)
  71. result[i] = Conversion::non_linear_to_linear(data[i]);
  72. return arg;
  73. }
  74. float* Conversion::non_linear_to_linear(const float* data, unsigned int length)
  75. {
  76. float* linear = new float[length];
  77. std::thread tab_t[_MT_];
  78. MT_linear tab_a[_MT_];
  79. unsigned int id;
  80. unsigned int block_size = length / _MT_;
  81. for (id = 0; id < _MT_; id++) {
  82. tab_a[id].data = data + (id * block_size);
  83. tab_a[id].length = block_size;
  84. tab_a[id].result = linear + (id * block_size);
  85. if (id == (_MT_ - 1))
  86. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  87. tab_t[id] = std::thread(non_linear_to_linear_MT, (void*)(tab_a + id));
  88. }
  89. for (id = 0; id < _MT_; id++) {
  90. tab_t[id].join();
  91. }
  92. return linear;
  93. }
  94. #else
  95. float* Conversion::non_linear_to_linear(const float* data, unsigned int length)
  96. {
  97. float* linear = new float[length];
  98. for (unsigned int i = 0; i < length; i++)
  99. linear[i] = non_linear_to_linear(data[i]);
  100. return linear;
  101. }
  102. #endif
  103. /*************************************/
  104. /************ sRGB_TO_XYZ ************/
  105. /*************************************/
  106. std::tuple<float, float, float> Conversion::sRGB_to_XYZ(float r, float g, float b)
  107. {
  108. float x = r * Conversion::sRGB_to_XYZ_m[0][0] + g * Conversion::sRGB_to_XYZ_m[0][1] + b * Conversion::sRGB_to_XYZ_m[0][2];
  109. float y = r * Conversion::sRGB_to_XYZ_m[1][0] + g * Conversion::sRGB_to_XYZ_m[1][1] + b * Conversion::sRGB_to_XYZ_m[1][2];
  110. float z = r * Conversion::sRGB_to_XYZ_m[2][0] + g * Conversion::sRGB_to_XYZ_m[2][1] + b * Conversion::sRGB_to_XYZ_m[2][2];
  111. return std::make_tuple(x, y, z);
  112. }
  113. #ifdef _MT_
  114. void* sRGB_to_XYZ_MT(void* arg)
  115. {
  116. MT_channel* a = (MT_channel*)arg;
  117. const float* data = a->data;
  118. float* result = a->channel;
  119. for (unsigned int i = 0; i < a->length; i++)
  120. {
  121. std::tuple<float, float, float> v = Conversion::sRGB_to_XYZ(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  122. result[i * 3] = std::get<0>(v);
  123. result[i * 3 + 1] = std::get<1>(v);
  124. result[i * 3 + 2] = std::get<2>(v);
  125. }
  126. return arg;
  127. }
  128. float* Conversion::sRGB_to_XYZ(const float* data, const unsigned int length)
  129. {
  130. float* xyz = new float[length * 3];
  131. std::thread tab_t[_MT_];
  132. MT_channel tab_a[_MT_];
  133. unsigned int id;
  134. unsigned int block_size = length / _MT_;
  135. for (id = 0; id < _MT_; id++) {
  136. tab_a[id].data = data + (id * block_size * 3);
  137. tab_a[id].length = block_size;
  138. tab_a[id].channel = xyz + (id * block_size * 3);
  139. if (id == (_MT_ - 1))
  140. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  141. tab_t[id] = std::thread(sRGB_to_XYZ_MT, (void*)(tab_a + id));
  142. }
  143. for (id = 0; id < _MT_; id++) {
  144. tab_t[id].join();
  145. }
  146. return xyz;
  147. }
  148. #else
  149. float* Conversion::sRGB_to_XYZ(const float* data, const unsigned int length)
  150. {
  151. float* xyz = new float[length * 3];
  152. for (unsigned int i = 0; i < length; i++)
  153. {
  154. std::tuple<float, float, float> conv = sRGB_to_XYZ(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  155. xyz[i * 3] = std::get<0>(conv);
  156. xyz[i * 3 + 1] = std::get<1>(conv);
  157. xyz[i * 3 + 2] = std::get<2>(conv);
  158. }
  159. return xyz;
  160. }
  161. #endif
  162. float Conversion::sRGB_to_Y_of_XYZ(float r, float g, float b)
  163. {
  164. return (r * Conversion::sRGB_to_XYZ_m[1][0] + g * Conversion::sRGB_to_XYZ_m[1][1] + b * Conversion::sRGB_to_XYZ_m[1][2]);
  165. }
  166. #ifdef _MT_
  167. void* sRGB_to_Y_of_XYZ_MT(void* arg)
  168. {
  169. MT_channel* a = (MT_channel*)arg;
  170. const float* data = a->data;
  171. float* channel = a->channel;
  172. for (unsigned int i = 0; i < a->length; i++)
  173. channel[i] = Conversion::sRGB_to_Y_of_XYZ(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  174. return arg;
  175. }
  176. float* Conversion::sRGB_to_Y_of_XYZ(const float* data, const unsigned int length)
  177. {
  178. float* channelY = new float[length];
  179. std::thread tab_t[_MT_];
  180. MT_channel tab_a[_MT_];
  181. unsigned int id;
  182. unsigned int block_size = length / _MT_;
  183. for (id = 0; id < _MT_; id++) {
  184. tab_a[id].data = data + (id * block_size * 3);
  185. tab_a[id].length = block_size;
  186. tab_a[id].channel = channelY + (id * block_size);
  187. if (id == (_MT_ - 1))
  188. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  189. tab_t[id] = std::thread(sRGB_to_Y_of_XYZ_MT, (void*)(tab_a + id));
  190. }
  191. for (id = 0; id < _MT_; id++) {
  192. tab_t[id].join();
  193. }
  194. return channelY;
  195. }
  196. #else
  197. float* Conversion::sRGB_to_Y_of_XYZ(const float* data, const unsigned int length)
  198. {
  199. float* y = new float[length];
  200. for (unsigned int i = 0; i < length; i++)
  201. y[i] = sRGB_to_Y_of_XYZ(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  202. return y;
  203. }
  204. #endif
  205. /*************************************/
  206. /************* XYZ_TO_LAB ************/
  207. /*************************************/
  208. std::tuple<float, float, float> Conversion::XYZ_to_Lab(float x, float y, float z)
  209. {
  210. float xNorm = x / 0.950455927f;
  211. float yNorm = y;
  212. float zNorm = z / 1.08905775f;
  213. float coeff = 16.0f / 116.0f;
  214. float fx = 7.787f * xNorm + coeff;
  215. float fy = 7.787f * yNorm + coeff;
  216. float fz = 7.787f * zNorm + coeff;
  217. if (xNorm > 0.008856f)
  218. fx = powf(xNorm, 0.3333333333f);
  219. if (yNorm > 0.008856f)
  220. fy = powf(yNorm, 0.3333333333f);
  221. if (zNorm > 0.008856f)
  222. fz = powf(zNorm, 0.3333333333f);
  223. return std::make_tuple(116.0f * fy - 16.0f, 500.0f * (fx - fy), 200.0f * (fy - fz));
  224. }
  225. #ifdef _MT_
  226. void* XYZ_to_Lab_MT(void* arg)
  227. {
  228. MT_channel* a = (MT_channel*)arg;
  229. const float* data = a->data;
  230. float* result = a->channel;
  231. for (unsigned int i = 0; i < a->length; i++)
  232. {
  233. std::tuple<float, float, float> v = Conversion::XYZ_to_Lab(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  234. result[i * 3] = std::get<0>(v);
  235. result[i * 3 + 1] = std::get<1>(v);
  236. result[i * 3 + 2] = std::get<2>(v);
  237. }
  238. return arg;
  239. }
  240. float* Conversion::XYZ_to_Lab(const float* data, const unsigned int length)
  241. {
  242. float* channelLab = new float[length * 3];
  243. std::thread tab_t[_MT_];
  244. MT_channel tab_a[_MT_];
  245. unsigned int id;
  246. unsigned int block_size = length / _MT_;
  247. for (id = 0; id < _MT_; id++) {
  248. tab_a[id].data = data + (id * block_size * 3);
  249. tab_a[id].length = block_size;
  250. tab_a[id].channel = channelLab + (id * block_size * 3);
  251. if (id == (_MT_ - 1))
  252. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  253. tab_t[id] = std::thread(XYZ_to_Lab_MT, (void*)(tab_a + id));
  254. }
  255. for (id = 0; id < _MT_; id++) {
  256. tab_t[id].join();
  257. }
  258. return channelLab;
  259. }
  260. #else
  261. float* Conversion::XYZ_to_Lab(const float* data, const unsigned int length)
  262. {
  263. float* channelLab = new float[length*3];
  264. for (unsigned int i = 0; i < length; i++)
  265. {
  266. std::tuple<float, float, float> lab = XYZ_to_Lab(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  267. channelLab[i*3] = std::get<0>(lab);
  268. channelLab[i*3+1] = std::get<1>(lab);
  269. channelLab[i*3+2] = std::get<2>(lab);
  270. }
  271. return channelLab;
  272. }
  273. #endif
  274. /*************************************/
  275. /************ SRGB_TO_LAB ************/
  276. /*************************************/
  277. std::tuple<float, float, float> Conversion::sRGB_to_Lab(float r, float g, float b)
  278. {
  279. std::tuple<float, float, float> xyz = sRGB_to_XYZ(r, g, b);
  280. return XYZ_to_Lab(std::get<0>(xyz),std::get<1>(xyz),std::get<2>(xyz));
  281. }
  282. float* Conversion::sRGB_to_Lab(const float* data, const unsigned int length)
  283. {
  284. float* rgb_to_xyz = sRGB_to_XYZ(data, length);
  285. float* lab = XYZ_to_Lab(rgb_to_xyz,length);
  286. delete[](rgb_to_xyz);
  287. return lab;
  288. }
  289. float Conversion::sRGB_to_L_of_Lab(float r, float g, float b)
  290. {
  291. std::tuple<float, float, float> xyz = sRGB_to_XYZ(r, g, b);
  292. float fy = 7.787f * std::get<1>(xyz) + (16.0f / 116.0f);
  293. if (std::get<1>(xyz) > 0.008856f)
  294. fy = powf(std::get<1>(xyz), 1.0f / 3.0f);
  295. return (116.0f * fy - 16.0f);
  296. }
  297. /************************************/
  298. /************ LAB_TO_LCH ************/
  299. /************************************/
  300. std::tuple<float, float, float> Conversion::Lab_to_LCH(float L, float a, float b)
  301. {
  302. float C = sqrtf(a * a + b * b);
  303. float theta = atan2(b, a);
  304. while (theta < 0)
  305. theta += (float)(2.0f * M_PI);
  306. while (theta > (float)(2.0f * M_PI))
  307. theta -= (float)(2.0f * M_PI);
  308. float H = theta / ((float)M_PI) * 180.0f;
  309. return std::make_tuple(L, C, H);
  310. }
  311. #ifdef _MT_
  312. void* Lab_to_LCH_MT(void* arg)
  313. {
  314. MT_channel* a = (MT_channel*)arg;
  315. const float* data = a->data;
  316. float* result = a->channel;
  317. for (unsigned int i = 0; i < a->length; i++)
  318. {
  319. std::tuple<float, float, float> v = Conversion::Lab_to_LCH(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  320. result[i * 3] = std::get<0>(v);
  321. result[i * 3 + 1] = std::get<1>(v);
  322. result[i * 3 + 2] = std::get<2>(v);
  323. }
  324. return arg;
  325. }
  326. float* Conversion::Lab_to_LCH(const float* data, const unsigned int length)
  327. {
  328. float* channelLCH = new float[length * 3];
  329. std::thread tab_t[_MT_];
  330. MT_channel tab_a[_MT_];
  331. unsigned int id;
  332. unsigned int block_size = length / _MT_;
  333. for (id = 0; id < _MT_; id++) {
  334. tab_a[id].data = data + (id * block_size * 3);
  335. tab_a[id].length = block_size;
  336. tab_a[id].channel = channelLCH + (id * block_size * 3);
  337. if (id == (_MT_ - 1))
  338. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  339. tab_t[id] = std::thread(Lab_to_LCH_MT, (void*)(tab_a + id));
  340. }
  341. for (id = 0; id < _MT_; id++) {
  342. tab_t[id].join();
  343. }
  344. return channelLCH;
  345. }
  346. #else
  347. float* Conversion::Lab_to_LCH(const float* data, const unsigned int length)
  348. {
  349. float* LCH = new float[length * 3];
  350. for (unsigned int i = 0; i < length; i++)
  351. {
  352. std::tuple<float, float, float> conv = Lab_to_LCH(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  353. LCH[i * 3] = std::get<0>(conv);
  354. LCH[i * 3 + 1] = std::get<1>(conv);
  355. LCH[i * 3 + 2] = std::get<2>(conv);
  356. }
  357. return LCH;
  358. }
  359. #endif
  360. float Conversion::Lab_to_C_of_LCH(float a, float b)
  361. {
  362. return sqrtf(a * a + b * b);
  363. }
  364. float Conversion::Lab_to_H_of_LCH(float a, float b)
  365. {
  366. float theta = atan2(b, a);
  367. while (theta < 0)
  368. theta += (float)(2.0f * M_PI);
  369. while (theta > (float)(2.0f * M_PI))
  370. theta -= (float)(2.0f * M_PI);
  371. return theta / ((float)M_PI) * 180.0f;
  372. }
  373. /************************************/
  374. /************ LCH_TO_LAB ************/
  375. /************************************/
  376. std::tuple<float, float, float> Conversion::LCH_to_Lab(float L, float C, float H)
  377. {
  378. float rho = C;
  379. float phi = (H/180.0f)*((float)M_PI);
  380. float a = rho*cos(phi);
  381. float b = rho*sin(phi);
  382. return std::make_tuple(L,a,b);
  383. }
  384. #ifdef _MT_
  385. void* LCH_to_Lab_MT(void* arg)
  386. {
  387. MT_channel* a = (MT_channel*)arg;
  388. const float* data = a->data;
  389. float* result = a->channel;
  390. for (unsigned int i = 0; i < a->length; i++)
  391. {
  392. std::tuple<float, float, float> v = Conversion::LCH_to_Lab(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  393. result[i * 3] = std::get<0>(v);
  394. result[i * 3 + 1] = std::get<1>(v);
  395. result[i * 3 + 2] = std::get<2>(v);
  396. }
  397. return arg;
  398. }
  399. float* Conversion::LCH_to_Lab(const float* data, const unsigned int length)
  400. {
  401. float* channelLab = new float[length * 3];
  402. std::thread tab_t[_MT_];
  403. MT_channel tab_a[_MT_];
  404. unsigned int id;
  405. unsigned int block_size = length / _MT_;
  406. for (id = 0; id < _MT_; id++) {
  407. tab_a[id].data = data + (id * block_size * 3);
  408. tab_a[id].length = block_size;
  409. tab_a[id].channel = channelLab + (id * block_size * 3);
  410. if (id == (_MT_ - 1))
  411. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  412. tab_t[id] = std::thread(LCH_to_Lab_MT, (void*)(tab_a + id));
  413. }
  414. for (id = 0; id < _MT_; id++) {
  415. tab_t[id].join();
  416. }
  417. return channelLab;
  418. }
  419. #else
  420. float* Conversion::LCH_to_Lab(const float* data, const unsigned int length)
  421. {
  422. float* Lab = new float[length * 3];
  423. for (unsigned int i = 0; i < length; i++)
  424. {
  425. std::tuple<float, float, float> conv = LCH_to_Lab(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  426. Lab[i * 3] = std::get<0>(conv);
  427. Lab[i * 3 + 1] = std::get<1>(conv);
  428. Lab[i * 3 + 2] = std::get<2>(conv);
  429. }
  430. return Lab;
  431. }
  432. #endif
  433. /************************************/
  434. /************ LAB_TO_XYZ ************/
  435. /************************************/
  436. std::tuple<float, float, float> Conversion::Lab_to_XYZ(float L, float a, float b)
  437. {
  438. float fy = (L+16.0f)/116.0f;
  439. float fx = a/500.0f+fy;
  440. float fz = fy - b/200.0f;
  441. float xNorm = 0.950455927f*(fx - 0.137931034f)*0.128418549f;
  442. float yNorm = (fy - 0.137931034f)*0.128418549f;
  443. float zNorm = 1.08905775f*(fz - 0.137931034f)*0.128418549f;
  444. if(fx>0.206896552f)
  445. xNorm = 0.950455927f*fx*fx*fx;
  446. if(fy>0.206896552f)
  447. yNorm = fy*fy*fy;
  448. if(fz>0.206896552f)
  449. zNorm = 1.08905775f*fz*fz*fz;
  450. return std::make_tuple(xNorm,yNorm,zNorm);
  451. }
  452. #ifdef _MT_
  453. void* Lab_to_XYZ_MT(void* arg)
  454. {
  455. MT_channel* a = (MT_channel*)arg;
  456. const float* data = a->data;
  457. float* result = a->channel;
  458. for (unsigned int i = 0; i < a->length; i++)
  459. {
  460. std::tuple<float, float, float> v = Conversion::Lab_to_XYZ(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  461. result[i * 3] = std::get<0>(v);
  462. result[i * 3 + 1] = std::get<1>(v);
  463. result[i * 3 + 2] = std::get<2>(v);
  464. }
  465. return arg;
  466. }
  467. float* Conversion::Lab_to_XYZ(const float* data, const unsigned int length)
  468. {
  469. float* channelXYZ = new float[length * 3];
  470. std::thread tab_t[_MT_];
  471. MT_channel tab_a[_MT_];
  472. unsigned int id;
  473. unsigned int block_size = length / _MT_;
  474. for (id = 0; id < _MT_; id++) {
  475. tab_a[id].data = data + (id * block_size * 3);
  476. tab_a[id].length = block_size;
  477. tab_a[id].channel = channelXYZ + (id * block_size * 3);
  478. if (id == (_MT_ - 1))
  479. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  480. tab_t[id] = std::thread(Lab_to_XYZ_MT, (void*)(tab_a + id));
  481. }
  482. for (id = 0; id < _MT_; id++) {
  483. tab_t[id].join();
  484. }
  485. return channelXYZ;
  486. }
  487. #else
  488. float* Conversion::Lab_to_XYZ(const float* data, const unsigned int length)
  489. {
  490. float* Lab = new float[length * 3];
  491. for (unsigned int i = 0; i < length; i++)
  492. {
  493. std::tuple<float, float, float> conv = Lab_to_XYZ(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  494. Lab[i * 3] = std::get<0>(conv);
  495. Lab[i * 3 + 1] = std::get<1>(conv);
  496. Lab[i * 3 + 2] = std::get<2>(conv);
  497. }
  498. return Lab;
  499. }
  500. #endif
  501. /*************************************/
  502. /************ XYZ_TO_sRGB ************/
  503. /*************************************/
  504. std::tuple<float, float, float> Conversion::XYZ_to_sRGB(float x, float y, float z)
  505. {
  506. float r = x * Conversion::XYZ_to_sRGB_m[0][0] + y * Conversion::XYZ_to_sRGB_m[0][1] + z * Conversion::XYZ_to_sRGB_m[0][2];
  507. float g = x * Conversion::XYZ_to_sRGB_m[1][0] + y * Conversion::XYZ_to_sRGB_m[1][1] + z * Conversion::XYZ_to_sRGB_m[1][2];
  508. float b = x * Conversion::XYZ_to_sRGB_m[2][0] + y * Conversion::XYZ_to_sRGB_m[2][1] + z * Conversion::XYZ_to_sRGB_m[2][2];
  509. return std::make_tuple(r, g, b);
  510. }
  511. #ifdef _MT_
  512. void* XYZ_to_sRGB_MT(void* arg)
  513. {
  514. MT_channel* a = (MT_channel*)arg;
  515. const float* data = a->data;
  516. float* result = a->channel;
  517. for (unsigned int i = 0; i < a->length; i++)
  518. {
  519. std::tuple<float, float, float> v = Conversion::XYZ_to_sRGB(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  520. result[i * 3] = std::get<0>(v);
  521. result[i * 3 + 1] = std::get<1>(v);
  522. result[i * 3 + 2] = std::get<2>(v);
  523. }
  524. return arg;
  525. }
  526. float* Conversion::XYZ_to_sRGB(const float* data, const unsigned int length)
  527. {
  528. float* channelRGB = new float[length * 3];
  529. std::thread tab_t[_MT_];
  530. MT_channel tab_a[_MT_];
  531. unsigned int id;
  532. unsigned int block_size = length / _MT_;
  533. for (id = 0; id < _MT_; id++) {
  534. tab_a[id].data = data + (id * block_size * 3);
  535. tab_a[id].length = block_size;
  536. tab_a[id].channel = channelRGB + (id * block_size * 3);
  537. if (id == (_MT_ - 1))
  538. tab_a[id].length = length - ((_MT_ - 1) * block_size);
  539. tab_t[id] = std::thread(XYZ_to_sRGB_MT, (void*)(tab_a + id));
  540. }
  541. for (id = 0; id < _MT_; id++) {
  542. tab_t[id].join();
  543. }
  544. return channelRGB;
  545. }
  546. #else
  547. float* Conversion::XYZ_to_sRGB(const float* data, const unsigned int length)
  548. {
  549. float* rgb = new float[length * 3];
  550. for (unsigned int i = 0; i < length; i++)
  551. {
  552. std::tuple<float, float, float> conv = XYZ_to_sRGB(data[i * 3], data[i * 3 + 1], data[i * 3 + 2]);
  553. rgb[i * 3] = std::get<0>(conv);
  554. rgb[i * 3 + 1] = std::get<1>(conv);
  555. rgb[i * 3 + 2] = std::get<2>(conv);
  556. }
  557. return rgb;
  558. }
  559. #endif
  560. /*************************************/
  561. /************ LCH_TO_sRGB ************/
  562. /*************************************/
  563. float* Conversion::LCH_to_sRGB(const float* data, const unsigned int length)
  564. {
  565. float* Lab = LCH_to_Lab(data,length);
  566. float* xyz = Lab_to_XYZ(Lab,length);
  567. float* rgb= XYZ_to_sRGB(xyz,length);
  568. delete[](Lab);
  569. delete[](xyz);
  570. return rgb;
  571. }