1 //===-- Host.cpp - Implement OS Host Concept --------------------*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the operating system Host concept. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/Support/Host.h" 15 #include "llvm/ADT/SmallVector.h" 16 #include "llvm/ADT/StringRef.h" 17 #include "llvm/ADT/StringSwitch.h" 18 #include "llvm/ADT/Triple.h" 19 #include "llvm/Config/config.h" 20 #include "llvm/Support/Debug.h" 21 #include "llvm/Support/FileSystem.h" 22 #include "llvm/Support/raw_ostream.h" 23 #include <string.h> 24 25 // Include the platform-specific parts of this class. 26 #ifdef LLVM_ON_UNIX 27 #include "Unix/Host.inc" 28 #endif 29 #ifdef LLVM_ON_WIN32 30 #include "Windows/Host.inc" 31 #endif 32 #ifdef _MSC_VER 33 #include <intrin.h> 34 #endif 35 #if defined(__APPLE__) && (defined(__ppc__) || defined(__powerpc__)) 36 #include <mach/mach.h> 37 #include <mach/mach_host.h> 38 #include <mach/host_info.h> 39 #include <mach/machine.h> 40 #endif 41 42 #define DEBUG_TYPE "host-detection" 43 44 //===----------------------------------------------------------------------===// 45 // 46 // Implementations of the CPU detection routines 47 // 48 //===----------------------------------------------------------------------===// 49 50 using namespace llvm; 51 52 #if defined(__linux__) 53 static ssize_t LLVM_ATTRIBUTE_UNUSED readCpuInfo(void *Buf, size_t Size) { 54 // Note: We cannot mmap /proc/cpuinfo here and then process the resulting 55 // memory buffer because the 'file' has 0 size (it can be read from only 56 // as a stream). 57 58 int FD; 59 std::error_code EC = sys::fs::openFileForRead("/proc/cpuinfo", FD); 60 if (EC) { 61 DEBUG(dbgs() << "Unable to open /proc/cpuinfo: " << EC.message() << "\n"); 62 return -1; 63 } 64 int Ret = read(FD, Buf, Size); 65 int CloseStatus = close(FD); 66 if (CloseStatus) 67 return -1; 68 return Ret; 69 } 70 #endif 71 72 #if defined(i386) || defined(__i386__) || defined(__x86__) || defined(_M_IX86)\ 73 || defined(__x86_64__) || defined(_M_AMD64) || defined (_M_X64) 74 75 /// GetX86CpuIDAndInfo - Execute the specified cpuid and return the 4 values in the 76 /// specified arguments. If we can't run cpuid on the host, return true. 77 static bool GetX86CpuIDAndInfo(unsigned value, unsigned *rEAX, unsigned *rEBX, 78 unsigned *rECX, unsigned *rEDX) { 79 #if defined(__GNUC__) || defined(__clang__) 80 #if defined(__x86_64__) || defined(_M_AMD64) || defined (_M_X64) 81 // gcc doesn't know cpuid would clobber ebx/rbx. Preseve it manually. 82 asm ("movq\t%%rbx, %%rsi\n\t" 83 "cpuid\n\t" 84 "xchgq\t%%rbx, %%rsi\n\t" 85 : "=a" (*rEAX), 86 "=S" (*rEBX), 87 "=c" (*rECX), 88 "=d" (*rEDX) 89 : "a" (value)); 90 return false; 91 #elif defined(i386) || defined(__i386__) || defined(__x86__) || defined(_M_IX86) 92 asm ("movl\t%%ebx, %%esi\n\t" 93 "cpuid\n\t" 94 "xchgl\t%%ebx, %%esi\n\t" 95 : "=a" (*rEAX), 96 "=S" (*rEBX), 97 "=c" (*rECX), 98 "=d" (*rEDX) 99 : "a" (value)); 100 return false; 101 // pedantic #else returns to appease -Wunreachable-code (so we don't generate 102 // postprocessed code that looks like "return true; return false;") 103 #else 104 return true; 105 #endif 106 #elif defined(_MSC_VER) 107 // The MSVC intrinsic is portable across x86 and x64. 108 int registers[4]; 109 __cpuid(registers, value); 110 *rEAX = registers[0]; 111 *rEBX = registers[1]; 112 *rECX = registers[2]; 113 *rEDX = registers[3]; 114 return false; 115 #else 116 return true; 117 #endif 118 } 119 120 /// GetX86CpuIDAndInfoEx - Execute the specified cpuid with subleaf and return the 121 /// 4 values in the specified arguments. If we can't run cpuid on the host, 122 /// return true. 123 static bool GetX86CpuIDAndInfoEx(unsigned value, unsigned subleaf, 124 unsigned *rEAX, unsigned *rEBX, unsigned *rECX, 125 unsigned *rEDX) { 126 #if defined(__x86_64__) || defined(_M_AMD64) || defined (_M_X64) 127 #if defined(__GNUC__) 128 // gcc doesn't know cpuid would clobber ebx/rbx. Preseve it manually. 129 asm ("movq\t%%rbx, %%rsi\n\t" 130 "cpuid\n\t" 131 "xchgq\t%%rbx, %%rsi\n\t" 132 : "=a" (*rEAX), 133 "=S" (*rEBX), 134 "=c" (*rECX), 135 "=d" (*rEDX) 136 : "a" (value), 137 "c" (subleaf)); 138 return false; 139 #elif defined(_MSC_VER) 140 int registers[4]; 141 __cpuidex(registers, value, subleaf); 142 *rEAX = registers[0]; 143 *rEBX = registers[1]; 144 *rECX = registers[2]; 145 *rEDX = registers[3]; 146 return false; 147 #else 148 return true; 149 #endif 150 #elif defined(i386) || defined(__i386__) || defined(__x86__) || defined(_M_IX86) 151 #if defined(__GNUC__) 152 asm ("movl\t%%ebx, %%esi\n\t" 153 "cpuid\n\t" 154 "xchgl\t%%ebx, %%esi\n\t" 155 : "=a" (*rEAX), 156 "=S" (*rEBX), 157 "=c" (*rECX), 158 "=d" (*rEDX) 159 : "a" (value), 160 "c" (subleaf)); 161 return false; 162 #elif defined(_MSC_VER) 163 __asm { 164 mov eax,value 165 mov ecx,subleaf 166 cpuid 167 mov esi,rEAX 168 mov dword ptr [esi],eax 169 mov esi,rEBX 170 mov dword ptr [esi],ebx 171 mov esi,rECX 172 mov dword ptr [esi],ecx 173 mov esi,rEDX 174 mov dword ptr [esi],edx 175 } 176 return false; 177 #else 178 return true; 179 #endif 180 #else 181 return true; 182 #endif 183 } 184 185 static bool OSHasAVXSupport() { 186 #if defined(__GNUC__) 187 // Check xgetbv; this uses a .byte sequence instead of the instruction 188 // directly because older assemblers do not include support for xgetbv and 189 // there is no easy way to conditionally compile based on the assembler used. 190 int rEAX, rEDX; 191 __asm__ (".byte 0x0f, 0x01, 0xd0" : "=a" (rEAX), "=d" (rEDX) : "c" (0)); 192 #elif defined(_MSC_FULL_VER) && defined(_XCR_XFEATURE_ENABLED_MASK) 193 unsigned long long rEAX = _xgetbv(_XCR_XFEATURE_ENABLED_MASK); 194 #else 195 int rEAX = 0; // Ensures we return false 196 #endif 197 return (rEAX & 6) == 6; 198 } 199 200 static void DetectX86FamilyModel(unsigned EAX, unsigned &Family, 201 unsigned &Model) { 202 Family = (EAX >> 8) & 0xf; // Bits 8 - 11 203 Model = (EAX >> 4) & 0xf; // Bits 4 - 7 204 if (Family == 6 || Family == 0xf) { 205 if (Family == 0xf) 206 // Examine extended family ID if family ID is F. 207 Family += (EAX >> 20) & 0xff; // Bits 20 - 27 208 // Examine extended model ID if family ID is 6 or F. 209 Model += ((EAX >> 16) & 0xf) << 4; // Bits 16 - 19 210 } 211 } 212 213 StringRef sys::getHostCPUName() { 214 unsigned EAX = 0, EBX = 0, ECX = 0, EDX = 0; 215 if (GetX86CpuIDAndInfo(0x1, &EAX, &EBX, &ECX, &EDX)) 216 return "generic"; 217 unsigned Family = 0; 218 unsigned Model = 0; 219 DetectX86FamilyModel(EAX, Family, Model); 220 221 union { 222 unsigned u[3]; 223 char c[12]; 224 } text; 225 226 GetX86CpuIDAndInfo(0, &EAX, text.u+0, text.u+2, text.u+1); 227 228 unsigned MaxLeaf = EAX; 229 bool HasSSE3 = (ECX & 0x1); 230 bool HasSSE41 = (ECX & 0x80000); 231 // If CPUID indicates support for XSAVE, XRESTORE and AVX, and XGETBV 232 // indicates that the AVX registers will be saved and restored on context 233 // switch, then we have full AVX support. 234 const unsigned AVXBits = (1 << 27) | (1 << 28); 235 bool HasAVX = ((ECX & AVXBits) == AVXBits) && OSHasAVXSupport(); 236 bool HasAVX2 = HasAVX && MaxLeaf >= 0x7 && 237 !GetX86CpuIDAndInfoEx(0x7, 0x0, &EAX, &EBX, &ECX, &EDX) && 238 (EBX & 0x20); 239 GetX86CpuIDAndInfo(0x80000001, &EAX, &EBX, &ECX, &EDX); 240 bool Em64T = (EDX >> 29) & 0x1; 241 bool HasTBM = (ECX >> 21) & 0x1; 242 243 if (memcmp(text.c, "GenuineIntel", 12) == 0) { 244 switch (Family) { 245 case 3: 246 return "i386"; 247 case 4: 248 switch (Model) { 249 case 0: // Intel486 DX processors 250 case 1: // Intel486 DX processors 251 case 2: // Intel486 SX processors 252 case 3: // Intel487 processors, IntelDX2 OverDrive processors, 253 // IntelDX2 processors 254 case 4: // Intel486 SL processor 255 case 5: // IntelSX2 processors 256 case 7: // Write-Back Enhanced IntelDX2 processors 257 case 8: // IntelDX4 OverDrive processors, IntelDX4 processors 258 default: return "i486"; 259 } 260 case 5: 261 switch (Model) { 262 case 1: // Pentium OverDrive processor for Pentium processor (60, 66), 263 // Pentium processors (60, 66) 264 case 2: // Pentium OverDrive processor for Pentium processor (75, 90, 265 // 100, 120, 133), Pentium processors (75, 90, 100, 120, 133, 266 // 150, 166, 200) 267 case 3: // Pentium OverDrive processors for Intel486 processor-based 268 // systems 269 return "pentium"; 270 271 case 4: // Pentium OverDrive processor with MMX technology for Pentium 272 // processor (75, 90, 100, 120, 133), Pentium processor with 273 // MMX technology (166, 200) 274 return "pentium-mmx"; 275 276 default: return "pentium"; 277 } 278 case 6: 279 switch (Model) { 280 case 1: // Pentium Pro processor 281 return "pentiumpro"; 282 283 case 3: // Intel Pentium II OverDrive processor, Pentium II processor, 284 // model 03 285 case 5: // Pentium II processor, model 05, Pentium II Xeon processor, 286 // model 05, and Intel Celeron processor, model 05 287 case 6: // Celeron processor, model 06 288 return "pentium2"; 289 290 case 7: // Pentium III processor, model 07, and Pentium III Xeon 291 // processor, model 07 292 case 8: // Pentium III processor, model 08, Pentium III Xeon processor, 293 // model 08, and Celeron processor, model 08 294 case 10: // Pentium III Xeon processor, model 0Ah 295 case 11: // Pentium III processor, model 0Bh 296 return "pentium3"; 297 298 case 9: // Intel Pentium M processor, Intel Celeron M processor model 09. 299 case 13: // Intel Pentium M processor, Intel Celeron M processor, model 300 // 0Dh. All processors are manufactured using the 90 nm process. 301 return "pentium-m"; 302 303 case 14: // Intel Core Duo processor, Intel Core Solo processor, model 304 // 0Eh. All processors are manufactured using the 65 nm process. 305 return "yonah"; 306 307 case 15: // Intel Core 2 Duo processor, Intel Core 2 Duo mobile 308 // processor, Intel Core 2 Quad processor, Intel Core 2 Quad 309 // mobile processor, Intel Core 2 Extreme processor, Intel 310 // Pentium Dual-Core processor, Intel Xeon processor, model 311 // 0Fh. All processors are manufactured using the 65 nm process. 312 case 22: // Intel Celeron processor model 16h. All processors are 313 // manufactured using the 65 nm process 314 return "core2"; 315 316 case 21: // Intel EP80579 Integrated Processor and Intel EP80579 317 // Integrated Processor with Intel QuickAssist Technology 318 return "i686"; // FIXME: ??? 319 320 case 23: // Intel Core 2 Extreme processor, Intel Xeon processor, model 321 // 17h. All processors are manufactured using the 45 nm process. 322 // 323 // 45nm: Penryn , Wolfdale, Yorkfield (XE) 324 // Not all Penryn processors support SSE 4.1 (such as the Pentium brand) 325 return HasSSE41 ? "penryn" : "core2"; 326 327 case 26: // Intel Core i7 processor and Intel Xeon processor. All 328 // processors are manufactured using the 45 nm process. 329 case 29: // Intel Xeon processor MP. All processors are manufactured using 330 // the 45 nm process. 331 case 30: // Intel(R) Core(TM) i7 CPU 870 @ 2.93GHz. 332 // As found in a Summer 2010 model iMac. 333 case 37: // Intel Core i7, laptop version. 334 case 44: // Intel Core i7 processor and Intel Xeon processor. All 335 // processors are manufactured using the 32 nm process. 336 case 46: // Nehalem EX 337 case 47: // Westmere EX 338 return "corei7"; 339 340 // SandyBridge: 341 case 42: // Intel Core i7 processor. All processors are manufactured 342 // using the 32 nm process. 343 case 45: 344 // Not all Sandy Bridge processors support AVX (such as the Pentium 345 // versions instead of the i7 versions). 346 return HasAVX ? "corei7-avx" : "corei7"; 347 348 // Ivy Bridge: 349 case 58: 350 case 62: // Ivy Bridge EP 351 // Not all Ivy Bridge processors support AVX (such as the Pentium 352 // versions instead of the i7 versions). 353 return HasAVX ? "core-avx-i" : "corei7"; 354 355 // Haswell: 356 case 60: 357 case 63: 358 case 69: 359 case 70: 360 // Not all Haswell processors support AVX too (such as the Pentium 361 // versions instead of the i7 versions). 362 return HasAVX2 ? "core-avx2" : "corei7"; 363 364 // Broadwell: 365 case 61: 366 // Not all Broadwell processors support AVX too (such as the Pentium 367 // versions instead of the i7 versions). 368 return HasAVX2 ? "broadwell" : "corei7"; 369 370 case 28: // Most 45 nm Intel Atom processors 371 case 38: // 45 nm Atom Lincroft 372 case 39: // 32 nm Atom Medfield 373 case 53: // 32 nm Atom Midview 374 case 54: // 32 nm Atom Midview 375 return "atom"; 376 377 // Atom Silvermont codes from the Intel software optimization guide. 378 case 55: 379 case 74: 380 case 77: 381 return "slm"; 382 383 default: return (Em64T) ? "x86-64" : "i686"; 384 } 385 case 15: { 386 switch (Model) { 387 case 0: // Pentium 4 processor, Intel Xeon processor. All processors are 388 // model 00h and manufactured using the 0.18 micron process. 389 case 1: // Pentium 4 processor, Intel Xeon processor, Intel Xeon 390 // processor MP, and Intel Celeron processor. All processors are 391 // model 01h and manufactured using the 0.18 micron process. 392 case 2: // Pentium 4 processor, Mobile Intel Pentium 4 processor - M, 393 // Intel Xeon processor, Intel Xeon processor MP, Intel Celeron 394 // processor, and Mobile Intel Celeron processor. All processors 395 // are model 02h and manufactured using the 0.13 micron process. 396 return (Em64T) ? "x86-64" : "pentium4"; 397 398 case 3: // Pentium 4 processor, Intel Xeon processor, Intel Celeron D 399 // processor. All processors are model 03h and manufactured using 400 // the 90 nm process. 401 case 4: // Pentium 4 processor, Pentium 4 processor Extreme Edition, 402 // Pentium D processor, Intel Xeon processor, Intel Xeon 403 // processor MP, Intel Celeron D processor. All processors are 404 // model 04h and manufactured using the 90 nm process. 405 case 6: // Pentium 4 processor, Pentium D processor, Pentium processor 406 // Extreme Edition, Intel Xeon processor, Intel Xeon processor 407 // MP, Intel Celeron D processor. All processors are model 06h 408 // and manufactured using the 65 nm process. 409 return (Em64T) ? "nocona" : "prescott"; 410 411 default: 412 return (Em64T) ? "x86-64" : "pentium4"; 413 } 414 } 415 416 default: 417 return "generic"; 418 } 419 } else if (memcmp(text.c, "AuthenticAMD", 12) == 0) { 420 // FIXME: this poorly matches the generated SubtargetFeatureKV table. There 421 // appears to be no way to generate the wide variety of AMD-specific targets 422 // from the information returned from CPUID. 423 switch (Family) { 424 case 4: 425 return "i486"; 426 case 5: 427 switch (Model) { 428 case 6: 429 case 7: return "k6"; 430 case 8: return "k6-2"; 431 case 9: 432 case 13: return "k6-3"; 433 case 10: return "geode"; 434 default: return "pentium"; 435 } 436 case 6: 437 switch (Model) { 438 case 4: return "athlon-tbird"; 439 case 6: 440 case 7: 441 case 8: return "athlon-mp"; 442 case 10: return "athlon-xp"; 443 default: return "athlon"; 444 } 445 case 15: 446 if (HasSSE3) 447 return "k8-sse3"; 448 switch (Model) { 449 case 1: return "opteron"; 450 case 5: return "athlon-fx"; // also opteron 451 default: return "athlon64"; 452 } 453 case 16: 454 return "amdfam10"; 455 case 20: 456 return "btver1"; 457 case 21: 458 if (!HasAVX) // If the OS doesn't support AVX provide a sane fallback. 459 return "btver1"; 460 if (Model >= 0x50) 461 return "bdver4"; // 50h-6Fh: Excavator 462 if (Model >= 0x30) 463 return "bdver3"; // 30h-3Fh: Steamroller 464 if (Model >= 0x10 || HasTBM) 465 return "bdver2"; // 10h-1Fh: Piledriver 466 return "bdver1"; // 00h-0Fh: Bulldozer 467 case 22: 468 if (!HasAVX) // If the OS doesn't support AVX provide a sane fallback. 469 return "btver1"; 470 return "btver2"; 471 default: 472 return "generic"; 473 } 474 } 475 return "generic"; 476 } 477 #elif defined(__APPLE__) && (defined(__ppc__) || defined(__powerpc__)) 478 StringRef sys::getHostCPUName() { 479 host_basic_info_data_t hostInfo; 480 mach_msg_type_number_t infoCount; 481 482 infoCount = HOST_BASIC_INFO_COUNT; 483 host_info(mach_host_self(), HOST_BASIC_INFO, (host_info_t)&hostInfo, 484 &infoCount); 485 486 if (hostInfo.cpu_type != CPU_TYPE_POWERPC) return "generic"; 487 488 switch(hostInfo.cpu_subtype) { 489 case CPU_SUBTYPE_POWERPC_601: return "601"; 490 case CPU_SUBTYPE_POWERPC_602: return "602"; 491 case CPU_SUBTYPE_POWERPC_603: return "603"; 492 case CPU_SUBTYPE_POWERPC_603e: return "603e"; 493 case CPU_SUBTYPE_POWERPC_603ev: return "603ev"; 494 case CPU_SUBTYPE_POWERPC_604: return "604"; 495 case CPU_SUBTYPE_POWERPC_604e: return "604e"; 496 case CPU_SUBTYPE_POWERPC_620: return "620"; 497 case CPU_SUBTYPE_POWERPC_750: return "750"; 498 case CPU_SUBTYPE_POWERPC_7400: return "7400"; 499 case CPU_SUBTYPE_POWERPC_7450: return "7450"; 500 case CPU_SUBTYPE_POWERPC_970: return "970"; 501 default: ; 502 } 503 504 return "generic"; 505 } 506 #elif defined(__linux__) && (defined(__ppc__) || defined(__powerpc__)) 507 StringRef sys::getHostCPUName() { 508 // Access to the Processor Version Register (PVR) on PowerPC is privileged, 509 // and so we must use an operating-system interface to determine the current 510 // processor type. On Linux, this is exposed through the /proc/cpuinfo file. 511 const char *generic = "generic"; 512 513 // The cpu line is second (after the 'processor: 0' line), so if this 514 // buffer is too small then something has changed (or is wrong). 515 char buffer[1024]; 516 ssize_t CPUInfoSize = readCpuInfo(buffer, sizeof(buffer)); 517 if (CPUInfoSize == -1) 518 return generic; 519 520 const char *CPUInfoStart = buffer; 521 const char *CPUInfoEnd = buffer + CPUInfoSize; 522 523 const char *CIP = CPUInfoStart; 524 525 const char *CPUStart = 0; 526 size_t CPULen = 0; 527 528 // We need to find the first line which starts with cpu, spaces, and a colon. 529 // After the colon, there may be some additional spaces and then the cpu type. 530 while (CIP < CPUInfoEnd && CPUStart == 0) { 531 if (CIP < CPUInfoEnd && *CIP == '\n') 532 ++CIP; 533 534 if (CIP < CPUInfoEnd && *CIP == 'c') { 535 ++CIP; 536 if (CIP < CPUInfoEnd && *CIP == 'p') { 537 ++CIP; 538 if (CIP < CPUInfoEnd && *CIP == 'u') { 539 ++CIP; 540 while (CIP < CPUInfoEnd && (*CIP == ' ' || *CIP == '\t')) 541 ++CIP; 542 543 if (CIP < CPUInfoEnd && *CIP == ':') { 544 ++CIP; 545 while (CIP < CPUInfoEnd && (*CIP == ' ' || *CIP == '\t')) 546 ++CIP; 547 548 if (CIP < CPUInfoEnd) { 549 CPUStart = CIP; 550 while (CIP < CPUInfoEnd && (*CIP != ' ' && *CIP != '\t' && 551 *CIP != ',' && *CIP != '\n')) 552 ++CIP; 553 CPULen = CIP - CPUStart; 554 } 555 } 556 } 557 } 558 } 559 560 if (CPUStart == 0) 561 while (CIP < CPUInfoEnd && *CIP != '\n') 562 ++CIP; 563 } 564 565 if (CPUStart == 0) 566 return generic; 567 568 return StringSwitch<const char *>(StringRef(CPUStart, CPULen)) 569 .Case("604e", "604e") 570 .Case("604", "604") 571 .Case("7400", "7400") 572 .Case("7410", "7400") 573 .Case("7447", "7400") 574 .Case("7455", "7450") 575 .Case("G4", "g4") 576 .Case("POWER4", "970") 577 .Case("PPC970FX", "970") 578 .Case("PPC970MP", "970") 579 .Case("G5", "g5") 580 .Case("POWER5", "g5") 581 .Case("A2", "a2") 582 .Case("POWER6", "pwr6") 583 .Case("POWER7", "pwr7") 584 .Case("POWER8", "pwr8") 585 .Case("POWER8E", "pwr8") 586 .Default(generic); 587 } 588 #elif defined(__linux__) && defined(__arm__) 589 StringRef sys::getHostCPUName() { 590 // The cpuid register on arm is not accessible from user space. On Linux, 591 // it is exposed through the /proc/cpuinfo file. 592 593 // Read 1024 bytes from /proc/cpuinfo, which should contain the CPU part line 594 // in all cases. 595 char buffer[1024]; 596 ssize_t CPUInfoSize = readCpuInfo(buffer, sizeof(buffer)); 597 if (CPUInfoSize == -1) 598 return "generic"; 599 600 StringRef Str(buffer, CPUInfoSize); 601 602 SmallVector<StringRef, 32> Lines; 603 Str.split(Lines, "\n"); 604 605 // Look for the CPU implementer line. 606 StringRef Implementer; 607 for (unsigned I = 0, E = Lines.size(); I != E; ++I) 608 if (Lines[I].startswith("CPU implementer")) 609 Implementer = Lines[I].substr(15).ltrim("\t :"); 610 611 if (Implementer == "0x41") // ARM Ltd. 612 // Look for the CPU part line. 613 for (unsigned I = 0, E = Lines.size(); I != E; ++I) 614 if (Lines[I].startswith("CPU part")) 615 // The CPU part is a 3 digit hexadecimal number with a 0x prefix. The 616 // values correspond to the "Part number" in the CP15/c0 register. The 617 // contents are specified in the various processor manuals. 618 return StringSwitch<const char *>(Lines[I].substr(8).ltrim("\t :")) 619 .Case("0x926", "arm926ej-s") 620 .Case("0xb02", "mpcore") 621 .Case("0xb36", "arm1136j-s") 622 .Case("0xb56", "arm1156t2-s") 623 .Case("0xb76", "arm1176jz-s") 624 .Case("0xc08", "cortex-a8") 625 .Case("0xc09", "cortex-a9") 626 .Case("0xc0f", "cortex-a15") 627 .Case("0xc20", "cortex-m0") 628 .Case("0xc23", "cortex-m3") 629 .Case("0xc24", "cortex-m4") 630 .Default("generic"); 631 632 if (Implementer == "0x51") // Qualcomm Technologies, Inc. 633 // Look for the CPU part line. 634 for (unsigned I = 0, E = Lines.size(); I != E; ++I) 635 if (Lines[I].startswith("CPU part")) 636 // The CPU part is a 3 digit hexadecimal number with a 0x prefix. The 637 // values correspond to the "Part number" in the CP15/c0 register. The 638 // contents are specified in the various processor manuals. 639 return StringSwitch<const char *>(Lines[I].substr(8).ltrim("\t :")) 640 .Case("0x06f", "krait") // APQ8064 641 .Default("generic"); 642 643 return "generic"; 644 } 645 #elif defined(__linux__) && defined(__s390x__) 646 StringRef sys::getHostCPUName() { 647 // STIDP is a privileged operation, so use /proc/cpuinfo instead. 648 649 // The "processor 0:" line comes after a fair amount of other information, 650 // including a cache breakdown, but this should be plenty. 651 char buffer[2048]; 652 ssize_t CPUInfoSize = readCpuInfo(buffer, sizeof(buffer)); 653 if (CPUInfoSize == -1) 654 return "generic"; 655 656 StringRef Str(buffer, CPUInfoSize); 657 SmallVector<StringRef, 32> Lines; 658 Str.split(Lines, "\n"); 659 for (unsigned I = 0, E = Lines.size(); I != E; ++I) { 660 if (Lines[I].startswith("processor ")) { 661 size_t Pos = Lines[I].find("machine = "); 662 if (Pos != StringRef::npos) { 663 Pos += sizeof("machine = ") - 1; 664 unsigned int Id; 665 if (!Lines[I].drop_front(Pos).getAsInteger(10, Id)) { 666 if (Id >= 2827) 667 return "zEC12"; 668 if (Id >= 2817) 669 return "z196"; 670 } 671 } 672 break; 673 } 674 } 675 676 return "generic"; 677 } 678 #else 679 StringRef sys::getHostCPUName() { 680 return "generic"; 681 } 682 #endif 683 684 #if defined(__linux__) && (defined(__arm__) || defined(__aarch64__)) 685 bool sys::getHostCPUFeatures(StringMap<bool> &Features) { 686 // Read 1024 bytes from /proc/cpuinfo, which should contain the Features line 687 // in all cases. 688 char buffer[1024]; 689 ssize_t CPUInfoSize = readCpuInfo(buffer, sizeof(buffer)); 690 if (CPUInfoSize == -1) 691 return false; 692 693 StringRef Str(buffer, CPUInfoSize); 694 695 SmallVector<StringRef, 32> Lines; 696 Str.split(Lines, "\n"); 697 698 SmallVector<StringRef, 32> CPUFeatures; 699 700 // Look for the CPU features. 701 for (unsigned I = 0, E = Lines.size(); I != E; ++I) 702 if (Lines[I].startswith("Features")) { 703 Lines[I].split(CPUFeatures, " "); 704 break; 705 } 706 707 #if defined(__aarch64__) 708 // Keep track of which crypto features we have seen 709 enum { 710 CAP_AES = 0x1, 711 CAP_PMULL = 0x2, 712 CAP_SHA1 = 0x4, 713 CAP_SHA2 = 0x8 714 }; 715 uint32_t crypto = 0; 716 #endif 717 718 for (unsigned I = 0, E = CPUFeatures.size(); I != E; ++I) { 719 StringRef LLVMFeatureStr = StringSwitch<StringRef>(CPUFeatures[I]) 720 #if defined(__aarch64__) 721 .Case("asimd", "neon") 722 .Case("fp", "fp-armv8") 723 .Case("crc32", "crc") 724 #else 725 .Case("half", "fp16") 726 .Case("neon", "neon") 727 .Case("vfpv3", "vfp3") 728 .Case("vfpv3d16", "d16") 729 .Case("vfpv4", "vfp4") 730 .Case("idiva", "hwdiv-arm") 731 .Case("idivt", "hwdiv") 732 #endif 733 .Default(""); 734 735 #if defined(__aarch64__) 736 // We need to check crypto separately since we need all of the crypto 737 // extensions to enable the subtarget feature 738 if (CPUFeatures[I] == "aes") 739 crypto |= CAP_AES; 740 else if (CPUFeatures[I] == "pmull") 741 crypto |= CAP_PMULL; 742 else if (CPUFeatures[I] == "sha1") 743 crypto |= CAP_SHA1; 744 else if (CPUFeatures[I] == "sha2") 745 crypto |= CAP_SHA2; 746 #endif 747 748 if (LLVMFeatureStr != "") 749 Features[LLVMFeatureStr] = true; 750 } 751 752 #if defined(__aarch64__) 753 // If we have all crypto bits we can add the feature 754 if (crypto == (CAP_AES | CAP_PMULL | CAP_SHA1 | CAP_SHA2)) 755 Features["crypto"] = true; 756 #endif 757 758 return true; 759 } 760 #else 761 bool sys::getHostCPUFeatures(StringMap<bool> &Features){ 762 return false; 763 } 764 #endif 765 766 std::string sys::getProcessTriple() { 767 Triple PT(Triple::normalize(LLVM_HOST_TRIPLE)); 768 769 if (sizeof(void *) == 8 && PT.isArch32Bit()) 770 PT = PT.get64BitArchVariant(); 771 if (sizeof(void *) == 4 && PT.isArch64Bit()) 772 PT = PT.get32BitArchVariant(); 773 774 return PT.str(); 775 } 776