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sysinfo.cpp 23 KB

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  1. // Copyright 2009-2021 Intel Corporation
  2. // SPDX-License-Identifier: Apache-2.0
  3. #include "sysinfo.h"
  4. #include "intrinsics.h"
  5. #include "string.h"
  6. #include "ref.h"
  7. #if defined(__FREEBSD__)
  8. #include <sys/cpuset.h>
  9. #include <pthread_np.h>
  10. typedef cpuset_t cpu_set_t;
  11. #endif
  12. ////////////////////////////////////////////////////////////////////////////////
  13. /// All Platforms
  14. ////////////////////////////////////////////////////////////////////////////////
  15. namespace embree
  16. {
  17. NullTy null;
  18. std::string getPlatformName()
  19. {
  20. #if defined(__LINUX__) && !defined(__64BIT__)
  21. return "Linux (32bit)";
  22. #elif defined(__LINUX__) && defined(__64BIT__)
  23. return "Linux (64bit)";
  24. #elif defined(__FREEBSD__) && !defined(__64BIT__)
  25. return "FreeBSD (32bit)";
  26. #elif defined(__FREEBSD__) && defined(__64BIT__)
  27. return "FreeBSD (64bit)";
  28. #elif defined(__CYGWIN__) && !defined(__64BIT__)
  29. return "Cygwin (32bit)";
  30. #elif defined(__CYGWIN__) && defined(__64BIT__)
  31. return "Cygwin (64bit)";
  32. #elif defined(__WIN32__) && !defined(__64BIT__)
  33. return "Windows (32bit)";
  34. #elif defined(__WIN32__) && defined(__64BIT__)
  35. return "Windows (64bit)";
  36. #elif defined(__MACOSX__) && !defined(__64BIT__)
  37. return "Mac OS X (32bit)";
  38. #elif defined(__MACOSX__) && defined(__64BIT__)
  39. return "Mac OS X (64bit)";
  40. #elif defined(__UNIX__) && !defined(__64BIT__)
  41. return "Unix (32bit)";
  42. #elif defined(__UNIX__) && defined(__64BIT__)
  43. return "Unix (64bit)";
  44. #else
  45. return "Unknown";
  46. #endif
  47. }
  48. std::string getCompilerName()
  49. {
  50. #if defined(__INTEL_COMPILER)
  51. int icc_mayor = __INTEL_COMPILER / 100 % 100;
  52. int icc_minor = __INTEL_COMPILER % 100;
  53. std::string version = "Intel Compiler ";
  54. version += toString(icc_mayor);
  55. version += "." + toString(icc_minor);
  56. #if defined(__INTEL_COMPILER_UPDATE)
  57. version += "." + toString(__INTEL_COMPILER_UPDATE);
  58. #endif
  59. return version;
  60. #elif defined(__clang__)
  61. return "CLANG " __clang_version__;
  62. #elif defined (__GNUC__)
  63. return "GCC " __VERSION__;
  64. #elif defined(_MSC_VER)
  65. std::string version = toString(_MSC_FULL_VER);
  66. version.insert(4,".");
  67. version.insert(9,".");
  68. version.insert(2,".");
  69. return "Visual C++ Compiler " + version;
  70. #else
  71. return "Unknown Compiler";
  72. #endif
  73. }
  74. std::string getCPUVendor()
  75. {
  76. #if defined(__X86_ASM__)
  77. int cpuinfo[4];
  78. __cpuid (cpuinfo, 0);
  79. int name[4];
  80. name[0] = cpuinfo[1];
  81. name[1] = cpuinfo[3];
  82. name[2] = cpuinfo[2];
  83. name[3] = 0;
  84. return (char*)name;
  85. #elif defined(__ARM_NEON)
  86. return "ARM";
  87. #else
  88. return "Unknown";
  89. #endif
  90. }
  91. CPU getCPUModel()
  92. {
  93. #if defined(__X86_ASM__)
  94. if (getCPUVendor() != "GenuineIntel")
  95. return CPU::UNKNOWN;
  96. int out[4];
  97. __cpuid(out, 0);
  98. if (out[0] < 1) return CPU::UNKNOWN;
  99. __cpuid(out, 1);
  100. /* please see CPUID documentation for these formulas */
  101. uint32_t family_ID = (out[0] >> 8) & 0x0F;
  102. uint32_t extended_family_ID = (out[0] >> 20) & 0xFF;
  103. uint32_t model_ID = (out[0] >> 4) & 0x0F;
  104. uint32_t extended_model_ID = (out[0] >> 16) & 0x0F;
  105. uint32_t DisplayFamily = family_ID;
  106. if (family_ID == 0x0F)
  107. DisplayFamily += extended_family_ID;
  108. uint32_t DisplayModel = model_ID;
  109. if (family_ID == 0x06 || family_ID == 0x0F)
  110. DisplayModel += extended_model_ID << 4;
  111. uint32_t DisplayFamily_DisplayModel = (DisplayFamily << 8) + (DisplayModel << 0);
  112. // Data from Intel® 64 and IA-32 Architectures, Volume 4, Chapter 2, Table 2-1 (CPUID Signature Values of DisplayFamily_DisplayModel)
  113. if (DisplayFamily_DisplayModel == 0x067D) return CPU::CORE_ICE_LAKE;
  114. if (DisplayFamily_DisplayModel == 0x067E) return CPU::CORE_ICE_LAKE;
  115. if (DisplayFamily_DisplayModel == 0x068C) return CPU::CORE_TIGER_LAKE;
  116. if (DisplayFamily_DisplayModel == 0x06A5) return CPU::CORE_COMET_LAKE;
  117. if (DisplayFamily_DisplayModel == 0x06A6) return CPU::CORE_COMET_LAKE;
  118. if (DisplayFamily_DisplayModel == 0x0666) return CPU::CORE_CANNON_LAKE;
  119. if (DisplayFamily_DisplayModel == 0x068E) return CPU::CORE_KABY_LAKE;
  120. if (DisplayFamily_DisplayModel == 0x069E) return CPU::CORE_KABY_LAKE;
  121. if (DisplayFamily_DisplayModel == 0x066A) return CPU::XEON_ICE_LAKE;
  122. if (DisplayFamily_DisplayModel == 0x066C) return CPU::XEON_ICE_LAKE;
  123. if (DisplayFamily_DisplayModel == 0x0655) return CPU::XEON_SKY_LAKE;
  124. if (DisplayFamily_DisplayModel == 0x064E) return CPU::CORE_SKY_LAKE;
  125. if (DisplayFamily_DisplayModel == 0x065E) return CPU::CORE_SKY_LAKE;
  126. if (DisplayFamily_DisplayModel == 0x0656) return CPU::XEON_BROADWELL;
  127. if (DisplayFamily_DisplayModel == 0x064F) return CPU::XEON_BROADWELL;
  128. if (DisplayFamily_DisplayModel == 0x0647) return CPU::CORE_BROADWELL;
  129. if (DisplayFamily_DisplayModel == 0x063D) return CPU::CORE_BROADWELL;
  130. if (DisplayFamily_DisplayModel == 0x063F) return CPU::XEON_HASWELL;
  131. if (DisplayFamily_DisplayModel == 0x063C) return CPU::CORE_HASWELL;
  132. if (DisplayFamily_DisplayModel == 0x0645) return CPU::CORE_HASWELL;
  133. if (DisplayFamily_DisplayModel == 0x0646) return CPU::CORE_HASWELL;
  134. if (DisplayFamily_DisplayModel == 0x063E) return CPU::XEON_IVY_BRIDGE;
  135. if (DisplayFamily_DisplayModel == 0x063A) return CPU::CORE_IVY_BRIDGE;
  136. if (DisplayFamily_DisplayModel == 0x062D) return CPU::SANDY_BRIDGE;
  137. if (DisplayFamily_DisplayModel == 0x062F) return CPU::SANDY_BRIDGE;
  138. if (DisplayFamily_DisplayModel == 0x062A) return CPU::SANDY_BRIDGE;
  139. if (DisplayFamily_DisplayModel == 0x062E) return CPU::NEHALEM;
  140. if (DisplayFamily_DisplayModel == 0x0625) return CPU::NEHALEM;
  141. if (DisplayFamily_DisplayModel == 0x062C) return CPU::NEHALEM;
  142. if (DisplayFamily_DisplayModel == 0x061E) return CPU::NEHALEM;
  143. if (DisplayFamily_DisplayModel == 0x061F) return CPU::NEHALEM;
  144. if (DisplayFamily_DisplayModel == 0x061A) return CPU::NEHALEM;
  145. if (DisplayFamily_DisplayModel == 0x061D) return CPU::NEHALEM;
  146. if (DisplayFamily_DisplayModel == 0x0617) return CPU::CORE2;
  147. if (DisplayFamily_DisplayModel == 0x060F) return CPU::CORE2;
  148. if (DisplayFamily_DisplayModel == 0x060E) return CPU::CORE1;
  149. if (DisplayFamily_DisplayModel == 0x0685) return CPU::XEON_PHI_KNIGHTS_MILL;
  150. if (DisplayFamily_DisplayModel == 0x0657) return CPU::XEON_PHI_KNIGHTS_LANDING;
  151. #elif defined(__ARM_NEON)
  152. return CPU::ARM;
  153. #endif
  154. return CPU::UNKNOWN;
  155. }
  156. std::string stringOfCPUModel(CPU model)
  157. {
  158. switch (model) {
  159. case CPU::XEON_ICE_LAKE : return "Xeon Ice Lake";
  160. case CPU::CORE_ICE_LAKE : return "Core Ice Lake";
  161. case CPU::CORE_TIGER_LAKE : return "Core Tiger Lake";
  162. case CPU::CORE_COMET_LAKE : return "Core Comet Lake";
  163. case CPU::CORE_CANNON_LAKE : return "Core Cannon Lake";
  164. case CPU::CORE_KABY_LAKE : return "Core Kaby Lake";
  165. case CPU::XEON_SKY_LAKE : return "Xeon Sky Lake";
  166. case CPU::CORE_SKY_LAKE : return "Core Sky Lake";
  167. case CPU::XEON_PHI_KNIGHTS_MILL : return "Xeon Phi Knights Mill";
  168. case CPU::XEON_PHI_KNIGHTS_LANDING: return "Xeon Phi Knights Landing";
  169. case CPU::XEON_BROADWELL : return "Xeon Broadwell";
  170. case CPU::CORE_BROADWELL : return "Core Broadwell";
  171. case CPU::XEON_HASWELL : return "Xeon Haswell";
  172. case CPU::CORE_HASWELL : return "Core Haswell";
  173. case CPU::XEON_IVY_BRIDGE : return "Xeon Ivy Bridge";
  174. case CPU::CORE_IVY_BRIDGE : return "Core Ivy Bridge";
  175. case CPU::SANDY_BRIDGE : return "Sandy Bridge";
  176. case CPU::NEHALEM : return "Nehalem";
  177. case CPU::CORE2 : return "Core2";
  178. case CPU::CORE1 : return "Core";
  179. case CPU::ARM : return "ARM";
  180. case CPU::UNKNOWN : return "Unknown CPU";
  181. }
  182. return "Unknown CPU (error)";
  183. }
  184. #if defined(__X86_ASM__)
  185. /* constants to access destination registers of CPUID instruction */
  186. static const int EAX = 0;
  187. static const int EBX = 1;
  188. static const int ECX = 2;
  189. static const int EDX = 3;
  190. /* cpuid[eax=1].ecx */
  191. static const int CPU_FEATURE_BIT_SSE3 = 1 << 0;
  192. static const int CPU_FEATURE_BIT_SSSE3 = 1 << 9;
  193. static const int CPU_FEATURE_BIT_FMA3 = 1 << 12;
  194. static const int CPU_FEATURE_BIT_SSE4_1 = 1 << 19;
  195. static const int CPU_FEATURE_BIT_SSE4_2 = 1 << 20;
  196. //static const int CPU_FEATURE_BIT_MOVBE = 1 << 22;
  197. static const int CPU_FEATURE_BIT_POPCNT = 1 << 23;
  198. //static const int CPU_FEATURE_BIT_XSAVE = 1 << 26;
  199. static const int CPU_FEATURE_BIT_OXSAVE = 1 << 27;
  200. static const int CPU_FEATURE_BIT_AVX = 1 << 28;
  201. static const int CPU_FEATURE_BIT_F16C = 1 << 29;
  202. static const int CPU_FEATURE_BIT_RDRAND = 1 << 30;
  203. /* cpuid[eax=1].edx */
  204. static const int CPU_FEATURE_BIT_SSE = 1 << 25;
  205. static const int CPU_FEATURE_BIT_SSE2 = 1 << 26;
  206. /* cpuid[eax=0x80000001].ecx */
  207. static const int CPU_FEATURE_BIT_LZCNT = 1 << 5;
  208. /* cpuid[eax=7,ecx=0].ebx */
  209. static const int CPU_FEATURE_BIT_BMI1 = 1 << 3;
  210. static const int CPU_FEATURE_BIT_AVX2 = 1 << 5;
  211. static const int CPU_FEATURE_BIT_BMI2 = 1 << 8;
  212. static const int CPU_FEATURE_BIT_AVX512F = 1 << 16; // AVX512F (foundation)
  213. static const int CPU_FEATURE_BIT_AVX512DQ = 1 << 17; // AVX512DQ (doubleword and quadword instructions)
  214. static const int CPU_FEATURE_BIT_AVX512PF = 1 << 26; // AVX512PF (prefetch gather/scatter instructions)
  215. static const int CPU_FEATURE_BIT_AVX512ER = 1 << 27; // AVX512ER (exponential and reciprocal instructions)
  216. static const int CPU_FEATURE_BIT_AVX512CD = 1 << 28; // AVX512CD (conflict detection instructions)
  217. static const int CPU_FEATURE_BIT_AVX512BW = 1 << 30; // AVX512BW (byte and word instructions)
  218. static const int CPU_FEATURE_BIT_AVX512VL = 1 << 31; // AVX512VL (vector length extensions)
  219. static const int CPU_FEATURE_BIT_AVX512IFMA = 1 << 21; // AVX512IFMA (integer fused multiple-add instructions)
  220. /* cpuid[eax=7,ecx=0].ecx */
  221. static const int CPU_FEATURE_BIT_AVX512VBMI = 1 << 1; // AVX512VBMI (vector bit manipulation instructions)
  222. #endif
  223. #if defined(__X86_ASM__)
  224. __noinline int64_t get_xcr0()
  225. {
  226. // -- GODOT start --
  227. #if defined (__WIN32__) && !defined (__MINGW32__)
  228. // -- GODOT end --
  229. int64_t xcr0 = 0; // int64_t is workaround for compiler bug under VS2013, Win32
  230. xcr0 = _xgetbv(0);
  231. return xcr0;
  232. #else
  233. int xcr0 = 0;
  234. __asm__ ("xgetbv" : "=a" (xcr0) : "c" (0) : "%edx" );
  235. return xcr0;
  236. #endif
  237. }
  238. #endif
  239. int getCPUFeatures()
  240. {
  241. #if defined(__X86_ASM__)
  242. /* cache CPU features access */
  243. static int cpu_features = 0;
  244. if (cpu_features)
  245. return cpu_features;
  246. /* get number of CPUID leaves */
  247. int cpuid_leaf0[4];
  248. __cpuid(cpuid_leaf0, 0x00000000);
  249. unsigned nIds = cpuid_leaf0[EAX];
  250. /* get number of extended CPUID leaves */
  251. int cpuid_leafe[4];
  252. __cpuid(cpuid_leafe, 0x80000000);
  253. unsigned nExIds = cpuid_leafe[EAX];
  254. /* get CPUID leaves for EAX = 1,7, and 0x80000001 */
  255. int cpuid_leaf_1[4] = { 0,0,0,0 };
  256. int cpuid_leaf_7[4] = { 0,0,0,0 };
  257. int cpuid_leaf_e1[4] = { 0,0,0,0 };
  258. if (nIds >= 1) __cpuid (cpuid_leaf_1,0x00000001);
  259. #if _WIN32
  260. #if _MSC_VER && (_MSC_FULL_VER < 160040219)
  261. #else
  262. if (nIds >= 7) __cpuidex(cpuid_leaf_7,0x00000007,0);
  263. #endif
  264. #else
  265. if (nIds >= 7) __cpuid_count(cpuid_leaf_7,0x00000007,0);
  266. #endif
  267. if (nExIds >= 0x80000001) __cpuid(cpuid_leaf_e1,0x80000001);
  268. /* detect if OS saves XMM, YMM, and ZMM states */
  269. bool xmm_enabled = true;
  270. bool ymm_enabled = false;
  271. bool zmm_enabled = false;
  272. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_OXSAVE) {
  273. int64_t xcr0 = get_xcr0();
  274. xmm_enabled = ((xcr0 & 0x02) == 0x02); /* checks if xmm are enabled in XCR0 */
  275. ymm_enabled = xmm_enabled && ((xcr0 & 0x04) == 0x04); /* checks if ymm state are enabled in XCR0 */
  276. zmm_enabled = ymm_enabled && ((xcr0 & 0xE0) == 0xE0); /* checks if OPMASK state, upper 256-bit of ZMM0-ZMM15 and ZMM16-ZMM31 state are enabled in XCR0 */
  277. }
  278. if (xmm_enabled) cpu_features |= CPU_FEATURE_XMM_ENABLED;
  279. if (ymm_enabled) cpu_features |= CPU_FEATURE_YMM_ENABLED;
  280. if (zmm_enabled) cpu_features |= CPU_FEATURE_ZMM_ENABLED;
  281. if (cpuid_leaf_1[EDX] & CPU_FEATURE_BIT_SSE ) cpu_features |= CPU_FEATURE_SSE;
  282. if (cpuid_leaf_1[EDX] & CPU_FEATURE_BIT_SSE2 ) cpu_features |= CPU_FEATURE_SSE2;
  283. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_SSE3 ) cpu_features |= CPU_FEATURE_SSE3;
  284. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_SSSE3 ) cpu_features |= CPU_FEATURE_SSSE3;
  285. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_SSE4_1) cpu_features |= CPU_FEATURE_SSE41;
  286. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_SSE4_2) cpu_features |= CPU_FEATURE_SSE42;
  287. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_POPCNT) cpu_features |= CPU_FEATURE_POPCNT;
  288. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_AVX ) cpu_features |= CPU_FEATURE_AVX;
  289. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_F16C ) cpu_features |= CPU_FEATURE_F16C;
  290. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_RDRAND) cpu_features |= CPU_FEATURE_RDRAND;
  291. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX2 ) cpu_features |= CPU_FEATURE_AVX2;
  292. if (cpuid_leaf_1[ECX] & CPU_FEATURE_BIT_FMA3 ) cpu_features |= CPU_FEATURE_FMA3;
  293. if (cpuid_leaf_e1[ECX] & CPU_FEATURE_BIT_LZCNT) cpu_features |= CPU_FEATURE_LZCNT;
  294. if (cpuid_leaf_7 [EBX] & CPU_FEATURE_BIT_BMI1 ) cpu_features |= CPU_FEATURE_BMI1;
  295. if (cpuid_leaf_7 [EBX] & CPU_FEATURE_BIT_BMI2 ) cpu_features |= CPU_FEATURE_BMI2;
  296. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512F ) cpu_features |= CPU_FEATURE_AVX512F;
  297. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512DQ ) cpu_features |= CPU_FEATURE_AVX512DQ;
  298. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512PF ) cpu_features |= CPU_FEATURE_AVX512PF;
  299. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512ER ) cpu_features |= CPU_FEATURE_AVX512ER;
  300. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512CD ) cpu_features |= CPU_FEATURE_AVX512CD;
  301. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512BW ) cpu_features |= CPU_FEATURE_AVX512BW;
  302. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512IFMA) cpu_features |= CPU_FEATURE_AVX512IFMA;
  303. if (cpuid_leaf_7[EBX] & CPU_FEATURE_BIT_AVX512VL ) cpu_features |= CPU_FEATURE_AVX512VL;
  304. if (cpuid_leaf_7[ECX] & CPU_FEATURE_BIT_AVX512VBMI) cpu_features |= CPU_FEATURE_AVX512VBMI;
  305. return cpu_features;
  306. #elif defined(__ARM_NEON)
  307. /* emulated features with sse2neon */
  308. return CPU_FEATURE_SSE|CPU_FEATURE_SSE2|CPU_FEATURE_XMM_ENABLED;
  309. #else
  310. /* Unknown CPU. */
  311. return 0;
  312. #endif
  313. }
  314. std::string stringOfCPUFeatures(int features)
  315. {
  316. std::string str;
  317. if (features & CPU_FEATURE_XMM_ENABLED) str += "XMM ";
  318. if (features & CPU_FEATURE_YMM_ENABLED) str += "YMM ";
  319. if (features & CPU_FEATURE_ZMM_ENABLED) str += "ZMM ";
  320. if (features & CPU_FEATURE_SSE ) str += "SSE ";
  321. if (features & CPU_FEATURE_SSE2 ) str += "SSE2 ";
  322. if (features & CPU_FEATURE_SSE3 ) str += "SSE3 ";
  323. if (features & CPU_FEATURE_SSSE3 ) str += "SSSE3 ";
  324. if (features & CPU_FEATURE_SSE41 ) str += "SSE4.1 ";
  325. if (features & CPU_FEATURE_SSE42 ) str += "SSE4.2 ";
  326. if (features & CPU_FEATURE_POPCNT) str += "POPCNT ";
  327. if (features & CPU_FEATURE_AVX ) str += "AVX ";
  328. if (features & CPU_FEATURE_F16C ) str += "F16C ";
  329. if (features & CPU_FEATURE_RDRAND) str += "RDRAND ";
  330. if (features & CPU_FEATURE_AVX2 ) str += "AVX2 ";
  331. if (features & CPU_FEATURE_FMA3 ) str += "FMA3 ";
  332. if (features & CPU_FEATURE_LZCNT ) str += "LZCNT ";
  333. if (features & CPU_FEATURE_BMI1 ) str += "BMI1 ";
  334. if (features & CPU_FEATURE_BMI2 ) str += "BMI2 ";
  335. if (features & CPU_FEATURE_AVX512F) str += "AVX512F ";
  336. if (features & CPU_FEATURE_AVX512DQ) str += "AVX512DQ ";
  337. if (features & CPU_FEATURE_AVX512PF) str += "AVX512PF ";
  338. if (features & CPU_FEATURE_AVX512ER) str += "AVX512ER ";
  339. if (features & CPU_FEATURE_AVX512CD) str += "AVX512CD ";
  340. if (features & CPU_FEATURE_AVX512BW) str += "AVX512BW ";
  341. if (features & CPU_FEATURE_AVX512VL) str += "AVX512VL ";
  342. if (features & CPU_FEATURE_AVX512IFMA) str += "AVX512IFMA ";
  343. if (features & CPU_FEATURE_AVX512VBMI) str += "AVX512VBMI ";
  344. return str;
  345. }
  346. std::string stringOfISA (int isa)
  347. {
  348. if (isa == SSE) return "SSE";
  349. if (isa == SSE2) return "SSE2";
  350. if (isa == SSE3) return "SSE3";
  351. if (isa == SSSE3) return "SSSE3";
  352. if (isa == SSE41) return "SSE4.1";
  353. if (isa == SSE42) return "SSE4.2";
  354. if (isa == AVX) return "AVX";
  355. if (isa == AVX2) return "AVX2";
  356. if (isa == AVX512) return "AVX512";
  357. return "UNKNOWN";
  358. }
  359. bool hasISA(int features, int isa) {
  360. return (features & isa) == isa;
  361. }
  362. std::string supportedTargetList (int features)
  363. {
  364. std::string v;
  365. if (hasISA(features,SSE)) v += "SSE ";
  366. if (hasISA(features,SSE2)) v += "SSE2 ";
  367. if (hasISA(features,SSE3)) v += "SSE3 ";
  368. if (hasISA(features,SSSE3)) v += "SSSE3 ";
  369. if (hasISA(features,SSE41)) v += "SSE4.1 ";
  370. if (hasISA(features,SSE42)) v += "SSE4.2 ";
  371. if (hasISA(features,AVX)) v += "AVX ";
  372. if (hasISA(features,AVXI)) v += "AVXI ";
  373. if (hasISA(features,AVX2)) v += "AVX2 ";
  374. if (hasISA(features,AVX512)) v += "AVX512 ";
  375. return v;
  376. }
  377. }
  378. ////////////////////////////////////////////////////////////////////////////////
  379. /// Windows Platform
  380. ////////////////////////////////////////////////////////////////////////////////
  381. #if defined(__WIN32__)
  382. #define WIN32_LEAN_AND_MEAN
  383. #include <windows.h>
  384. #include <psapi.h>
  385. namespace embree
  386. {
  387. std::string getExecutableFileName() {
  388. char filename[1024];
  389. if (!GetModuleFileName(nullptr, filename, sizeof(filename)))
  390. return std::string();
  391. return std::string(filename);
  392. }
  393. unsigned int getNumberOfLogicalThreads()
  394. {
  395. static int nThreads = -1;
  396. if (nThreads != -1) return nThreads;
  397. typedef WORD (WINAPI *GetActiveProcessorGroupCountFunc)();
  398. typedef DWORD (WINAPI *GetActiveProcessorCountFunc)(WORD);
  399. HMODULE hlib = LoadLibrary("Kernel32");
  400. GetActiveProcessorGroupCountFunc pGetActiveProcessorGroupCount = (GetActiveProcessorGroupCountFunc)GetProcAddress(hlib, "GetActiveProcessorGroupCount");
  401. GetActiveProcessorCountFunc pGetActiveProcessorCount = (GetActiveProcessorCountFunc) GetProcAddress(hlib, "GetActiveProcessorCount");
  402. if (pGetActiveProcessorGroupCount && pGetActiveProcessorCount)
  403. {
  404. int groups = pGetActiveProcessorGroupCount();
  405. int totalProcessors = 0;
  406. for (int i = 0; i < groups; i++)
  407. totalProcessors += pGetActiveProcessorCount(i);
  408. nThreads = totalProcessors;
  409. }
  410. else
  411. {
  412. SYSTEM_INFO sysinfo;
  413. GetSystemInfo(&sysinfo);
  414. nThreads = sysinfo.dwNumberOfProcessors;
  415. }
  416. assert(nThreads);
  417. return nThreads;
  418. }
  419. int getTerminalWidth()
  420. {
  421. HANDLE handle = GetStdHandle(STD_OUTPUT_HANDLE);
  422. if (handle == INVALID_HANDLE_VALUE) return 80;
  423. CONSOLE_SCREEN_BUFFER_INFO info;
  424. memset(&info,0,sizeof(info));
  425. GetConsoleScreenBufferInfo(handle, &info);
  426. return info.dwSize.X;
  427. }
  428. double getSeconds()
  429. {
  430. LARGE_INTEGER freq, val;
  431. QueryPerformanceFrequency(&freq);
  432. QueryPerformanceCounter(&val);
  433. return (double)val.QuadPart / (double)freq.QuadPart;
  434. }
  435. void sleepSeconds(double t) {
  436. Sleep(DWORD(1000.0*t));
  437. }
  438. size_t getVirtualMemoryBytes()
  439. {
  440. PROCESS_MEMORY_COUNTERS info;
  441. GetProcessMemoryInfo( GetCurrentProcess( ), &info, sizeof(info) );
  442. return (size_t)info.QuotaPeakPagedPoolUsage;
  443. }
  444. size_t getResidentMemoryBytes()
  445. {
  446. PROCESS_MEMORY_COUNTERS info;
  447. GetProcessMemoryInfo( GetCurrentProcess( ), &info, sizeof(info) );
  448. return (size_t)info.WorkingSetSize;
  449. }
  450. }
  451. #endif
  452. ////////////////////////////////////////////////////////////////////////////////
  453. /// Linux Platform
  454. ////////////////////////////////////////////////////////////////////////////////
  455. #if defined(__LINUX__)
  456. #include <stdio.h>
  457. #include <unistd.h>
  458. namespace embree
  459. {
  460. std::string getExecutableFileName()
  461. {
  462. std::string pid = "/proc/" + toString(getpid()) + "/exe";
  463. char buf[4096];
  464. memset(buf,0,sizeof(buf));
  465. if (readlink(pid.c_str(), buf, sizeof(buf)-1) == -1)
  466. return std::string();
  467. return std::string(buf);
  468. }
  469. size_t getVirtualMemoryBytes()
  470. {
  471. size_t virt, resident, shared;
  472. std::ifstream buffer("/proc/self/statm");
  473. buffer >> virt >> resident >> shared;
  474. return virt*sysconf(_SC_PAGE_SIZE);
  475. }
  476. size_t getResidentMemoryBytes()
  477. {
  478. size_t virt, resident, shared;
  479. std::ifstream buffer("/proc/self/statm");
  480. buffer >> virt >> resident >> shared;
  481. return resident*sysconf(_SC_PAGE_SIZE);
  482. }
  483. }
  484. #endif
  485. ////////////////////////////////////////////////////////////////////////////////
  486. /// FreeBSD Platform
  487. ////////////////////////////////////////////////////////////////////////////////
  488. #if defined (__FreeBSD__)
  489. #include <sys/sysctl.h>
  490. namespace embree
  491. {
  492. std::string getExecutableFileName()
  493. {
  494. const int mib[4] = { CTL_KERN, KERN_PROC, KERN_PROC_PATHNAME, -1 };
  495. char buf[4096];
  496. memset(buf,0,sizeof(buf));
  497. size_t len = sizeof(buf)-1;
  498. if (sysctl(mib, 4, buf, &len, 0x0, 0) == -1)
  499. return std::string();
  500. return std::string(buf);
  501. }
  502. size_t getVirtualMemoryBytes() {
  503. return 0;
  504. }
  505. size_t getResidentMemoryBytes() {
  506. return 0;
  507. }
  508. }
  509. #endif
  510. ////////////////////////////////////////////////////////////////////////////////
  511. /// Mac OS X Platform
  512. ////////////////////////////////////////////////////////////////////////////////
  513. #if defined(__MACOSX__)
  514. #include <mach-o/dyld.h>
  515. namespace embree
  516. {
  517. std::string getExecutableFileName()
  518. {
  519. char buf[4096];
  520. uint32_t size = sizeof(buf);
  521. if (_NSGetExecutablePath(buf, &size) != 0)
  522. return std::string();
  523. return std::string(buf);
  524. }
  525. size_t getVirtualMemoryBytes() {
  526. return 0;
  527. }
  528. size_t getResidentMemoryBytes() {
  529. return 0;
  530. }
  531. }
  532. #endif
  533. ////////////////////////////////////////////////////////////////////////////////
  534. /// Unix Platform
  535. ////////////////////////////////////////////////////////////////////////////////
  536. #if defined(__UNIX__)
  537. #include <unistd.h>
  538. #include <sys/ioctl.h>
  539. #include <sys/time.h>
  540. #include <pthread.h>
  541. namespace embree
  542. {
  543. unsigned int getNumberOfLogicalThreads()
  544. {
  545. static int nThreads = -1;
  546. if (nThreads != -1) return nThreads;
  547. // -- GODOT start --
  548. // #if defined(__MACOSX__)
  549. #if defined(__MACOSX__) || defined(__ANDROID__)
  550. // -- GODOT end --
  551. nThreads = sysconf(_SC_NPROCESSORS_ONLN); // does not work in Linux LXC container
  552. assert(nThreads);
  553. #else
  554. cpu_set_t set;
  555. if (pthread_getaffinity_np(pthread_self(), sizeof(set), &set) == 0)
  556. nThreads = CPU_COUNT(&set);
  557. #endif
  558. assert(nThreads);
  559. return nThreads;
  560. }
  561. int getTerminalWidth()
  562. {
  563. struct winsize info;
  564. if (ioctl(STDOUT_FILENO, TIOCGWINSZ, &info) < 0) return 80;
  565. return info.ws_col;
  566. }
  567. double getSeconds() {
  568. struct timeval tp; gettimeofday(&tp,nullptr);
  569. return double(tp.tv_sec) + double(tp.tv_usec)/1E6;
  570. }
  571. void sleepSeconds(double t) {
  572. usleep(1000000.0*t);
  573. }
  574. }
  575. #endif