1 //===-- AMDGPUAsmPrinter.cpp - AMDGPU assembly printer -------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 /// \file 10 /// 11 /// The AMDGPUAsmPrinter is used to print both assembly string and also binary 12 /// code. When passed an MCAsmStreamer it prints assembly and when passed 13 /// an MCObjectStreamer it outputs binary code. 14 // 15 //===----------------------------------------------------------------------===// 16 // 17 18 #include "AMDGPUAsmPrinter.h" 19 #include "AMDGPU.h" 20 #include "AMDGPUSubtarget.h" 21 #include "AMDGPUTargetMachine.h" 22 #include "InstPrinter/AMDGPUInstPrinter.h" 23 #include "MCTargetDesc/AMDGPUMCTargetDesc.h" 24 #include "MCTargetDesc/AMDGPUTargetStreamer.h" 25 #include "R600AsmPrinter.h" 26 #include "R600Defines.h" 27 #include "R600MachineFunctionInfo.h" 28 #include "R600RegisterInfo.h" 29 #include "SIDefines.h" 30 #include "SIInstrInfo.h" 31 #include "SIMachineFunctionInfo.h" 32 #include "SIRegisterInfo.h" 33 #include "Utils/AMDGPUBaseInfo.h" 34 #include "llvm/BinaryFormat/ELF.h" 35 #include "llvm/CodeGen/MachineFrameInfo.h" 36 #include "llvm/IR/DiagnosticInfo.h" 37 #include "llvm/MC/MCContext.h" 38 #include "llvm/MC/MCSectionELF.h" 39 #include "llvm/MC/MCStreamer.h" 40 #include "llvm/Support/AMDGPUMetadata.h" 41 #include "llvm/Support/MathExtras.h" 42 #include "llvm/Support/TargetParser.h" 43 #include "llvm/Support/TargetRegistry.h" 44 #include "llvm/Target/TargetLoweringObjectFile.h" 45 46 using namespace llvm; 47 using namespace llvm::AMDGPU; 48 using namespace llvm::AMDGPU::HSAMD; 49 50 // TODO: This should get the default rounding mode from the kernel. We just set 51 // the default here, but this could change if the OpenCL rounding mode pragmas 52 // are used. 53 // 54 // The denormal mode here should match what is reported by the OpenCL runtime 55 // for the CL_FP_DENORM bit from CL_DEVICE_{HALF|SINGLE|DOUBLE}_FP_CONFIG, but 56 // can also be override to flush with the -cl-denorms-are-zero compiler flag. 57 // 58 // AMD OpenCL only sets flush none and reports CL_FP_DENORM for double 59 // precision, and leaves single precision to flush all and does not report 60 // CL_FP_DENORM for CL_DEVICE_SINGLE_FP_CONFIG. Mesa's OpenCL currently reports 61 // CL_FP_DENORM for both. 62 // 63 // FIXME: It seems some instructions do not support single precision denormals 64 // regardless of the mode (exp_*_f32, rcp_*_f32, rsq_*_f32, rsq_*f32, sqrt_f32, 65 // and sin_f32, cos_f32 on most parts). 66 67 // We want to use these instructions, and using fp32 denormals also causes 68 // instructions to run at the double precision rate for the device so it's 69 // probably best to just report no single precision denormals. 70 static uint32_t getFPMode(const MachineFunction &F) { 71 const GCNSubtarget& ST = F.getSubtarget<GCNSubtarget>(); 72 // TODO: Is there any real use for the flush in only / flush out only modes? 73 74 uint32_t FP32Denormals = 75 ST.hasFP32Denormals() ? FP_DENORM_FLUSH_NONE : FP_DENORM_FLUSH_IN_FLUSH_OUT; 76 77 uint32_t FP64Denormals = 78 ST.hasFP64Denormals() ? FP_DENORM_FLUSH_NONE : FP_DENORM_FLUSH_IN_FLUSH_OUT; 79 80 return FP_ROUND_MODE_SP(FP_ROUND_ROUND_TO_NEAREST) | 81 FP_ROUND_MODE_DP(FP_ROUND_ROUND_TO_NEAREST) | 82 FP_DENORM_MODE_SP(FP32Denormals) | 83 FP_DENORM_MODE_DP(FP64Denormals); 84 } 85 86 static AsmPrinter * 87 createAMDGPUAsmPrinterPass(TargetMachine &tm, 88 std::unique_ptr<MCStreamer> &&Streamer) { 89 return new AMDGPUAsmPrinter(tm, std::move(Streamer)); 90 } 91 92 extern "C" void LLVMInitializeAMDGPUAsmPrinter() { 93 TargetRegistry::RegisterAsmPrinter(getTheAMDGPUTarget(), 94 llvm::createR600AsmPrinterPass); 95 TargetRegistry::RegisterAsmPrinter(getTheGCNTarget(), 96 createAMDGPUAsmPrinterPass); 97 } 98 99 AMDGPUAsmPrinter::AMDGPUAsmPrinter(TargetMachine &TM, 100 std::unique_ptr<MCStreamer> Streamer) 101 : AsmPrinter(TM, std::move(Streamer)) { 102 if (IsaInfo::hasCodeObjectV3(getGlobalSTI())) 103 HSAMetadataStream.reset(new MetadataStreamerV3()); 104 else 105 HSAMetadataStream.reset(new MetadataStreamerV2()); 106 } 107 108 StringRef AMDGPUAsmPrinter::getPassName() const { 109 return "AMDGPU Assembly Printer"; 110 } 111 112 const MCSubtargetInfo *AMDGPUAsmPrinter::getGlobalSTI() const { 113 return TM.getMCSubtargetInfo(); 114 } 115 116 AMDGPUTargetStreamer* AMDGPUAsmPrinter::getTargetStreamer() const { 117 if (!OutStreamer) 118 return nullptr; 119 return static_cast<AMDGPUTargetStreamer*>(OutStreamer->getTargetStreamer()); 120 } 121 122 void AMDGPUAsmPrinter::EmitStartOfAsmFile(Module &M) { 123 if (IsaInfo::hasCodeObjectV3(getGlobalSTI())) { 124 std::string ExpectedTarget; 125 raw_string_ostream ExpectedTargetOS(ExpectedTarget); 126 IsaInfo::streamIsaVersion(getGlobalSTI(), ExpectedTargetOS); 127 128 getTargetStreamer()->EmitDirectiveAMDGCNTarget(ExpectedTarget); 129 } 130 131 if (TM.getTargetTriple().getOS() != Triple::AMDHSA && 132 TM.getTargetTriple().getOS() != Triple::AMDPAL) 133 return; 134 135 if (TM.getTargetTriple().getOS() == Triple::AMDHSA) 136 HSAMetadataStream->begin(M); 137 138 if (TM.getTargetTriple().getOS() == Triple::AMDPAL) 139 getTargetStreamer()->getPALMetadata()->readFromIR(M); 140 141 if (IsaInfo::hasCodeObjectV3(getGlobalSTI())) 142 return; 143 144 // HSA emits NT_AMDGPU_HSA_CODE_OBJECT_VERSION for code objects v2. 145 if (TM.getTargetTriple().getOS() == Triple::AMDHSA) 146 getTargetStreamer()->EmitDirectiveHSACodeObjectVersion(2, 1); 147 148 // HSA and PAL emit NT_AMDGPU_HSA_ISA for code objects v2. 149 IsaVersion Version = getIsaVersion(getGlobalSTI()->getCPU()); 150 getTargetStreamer()->EmitDirectiveHSACodeObjectISA( 151 Version.Major, Version.Minor, Version.Stepping, "AMD", "AMDGPU"); 152 } 153 154 void AMDGPUAsmPrinter::EmitEndOfAsmFile(Module &M) { 155 // Following code requires TargetStreamer to be present. 156 if (!getTargetStreamer()) 157 return; 158 159 if (!IsaInfo::hasCodeObjectV3(getGlobalSTI())) { 160 // Emit ISA Version (NT_AMD_AMDGPU_ISA). 161 std::string ISAVersionString; 162 raw_string_ostream ISAVersionStream(ISAVersionString); 163 IsaInfo::streamIsaVersion(getGlobalSTI(), ISAVersionStream); 164 getTargetStreamer()->EmitISAVersion(ISAVersionStream.str()); 165 } 166 167 // Emit HSA Metadata (NT_AMD_AMDGPU_HSA_METADATA). 168 if (TM.getTargetTriple().getOS() == Triple::AMDHSA) { 169 HSAMetadataStream->end(); 170 bool Success = HSAMetadataStream->emitTo(*getTargetStreamer()); 171 (void)Success; 172 assert(Success && "Malformed HSA Metadata"); 173 } 174 } 175 176 bool AMDGPUAsmPrinter::isBlockOnlyReachableByFallthrough( 177 const MachineBasicBlock *MBB) const { 178 if (!AsmPrinter::isBlockOnlyReachableByFallthrough(MBB)) 179 return false; 180 181 if (MBB->empty()) 182 return true; 183 184 // If this is a block implementing a long branch, an expression relative to 185 // the start of the block is needed. to the start of the block. 186 // XXX - Is there a smarter way to check this? 187 return (MBB->back().getOpcode() != AMDGPU::S_SETPC_B64); 188 } 189 190 void AMDGPUAsmPrinter::EmitFunctionBodyStart() { 191 const SIMachineFunctionInfo &MFI = *MF->getInfo<SIMachineFunctionInfo>(); 192 if (!MFI.isEntryFunction()) 193 return; 194 195 const GCNSubtarget &STM = MF->getSubtarget<GCNSubtarget>(); 196 const Function &F = MF->getFunction(); 197 if (!STM.hasCodeObjectV3() && STM.isAmdHsaOrMesa(F) && 198 (F.getCallingConv() == CallingConv::AMDGPU_KERNEL || 199 F.getCallingConv() == CallingConv::SPIR_KERNEL)) { 200 amd_kernel_code_t KernelCode; 201 getAmdKernelCode(KernelCode, CurrentProgramInfo, *MF); 202 getTargetStreamer()->EmitAMDKernelCodeT(KernelCode); 203 } 204 205 if (STM.isAmdHsaOS()) 206 HSAMetadataStream->emitKernel(*MF, CurrentProgramInfo); 207 } 208 209 void AMDGPUAsmPrinter::EmitFunctionBodyEnd() { 210 const SIMachineFunctionInfo &MFI = *MF->getInfo<SIMachineFunctionInfo>(); 211 if (!MFI.isEntryFunction()) 212 return; 213 214 if (!IsaInfo::hasCodeObjectV3(getGlobalSTI()) || 215 TM.getTargetTriple().getOS() != Triple::AMDHSA) 216 return; 217 218 auto &Streamer = getTargetStreamer()->getStreamer(); 219 auto &Context = Streamer.getContext(); 220 auto &ObjectFileInfo = *Context.getObjectFileInfo(); 221 auto &ReadOnlySection = *ObjectFileInfo.getReadOnlySection(); 222 223 Streamer.PushSection(); 224 Streamer.SwitchSection(&ReadOnlySection); 225 226 // CP microcode requires the kernel descriptor to be allocated on 64 byte 227 // alignment. 228 Streamer.EmitValueToAlignment(64, 0, 1, 0); 229 if (ReadOnlySection.getAlignment() < 64) 230 ReadOnlySection.setAlignment(64); 231 232 const MCSubtargetInfo &STI = MF->getSubtarget(); 233 234 SmallString<128> KernelName; 235 getNameWithPrefix(KernelName, &MF->getFunction()); 236 getTargetStreamer()->EmitAmdhsaKernelDescriptor( 237 STI, KernelName, getAmdhsaKernelDescriptor(*MF, CurrentProgramInfo), 238 CurrentProgramInfo.NumVGPRsForWavesPerEU, 239 CurrentProgramInfo.NumSGPRsForWavesPerEU - 240 IsaInfo::getNumExtraSGPRs(&STI, 241 CurrentProgramInfo.VCCUsed, 242 CurrentProgramInfo.FlatUsed), 243 CurrentProgramInfo.VCCUsed, CurrentProgramInfo.FlatUsed, 244 hasXNACK(STI)); 245 246 Streamer.PopSection(); 247 } 248 249 void AMDGPUAsmPrinter::EmitFunctionEntryLabel() { 250 if (IsaInfo::hasCodeObjectV3(getGlobalSTI()) && 251 TM.getTargetTriple().getOS() == Triple::AMDHSA) { 252 AsmPrinter::EmitFunctionEntryLabel(); 253 return; 254 } 255 256 const SIMachineFunctionInfo *MFI = MF->getInfo<SIMachineFunctionInfo>(); 257 const GCNSubtarget &STM = MF->getSubtarget<GCNSubtarget>(); 258 if (MFI->isEntryFunction() && STM.isAmdHsaOrMesa(MF->getFunction())) { 259 SmallString<128> SymbolName; 260 getNameWithPrefix(SymbolName, &MF->getFunction()), 261 getTargetStreamer()->EmitAMDGPUSymbolType( 262 SymbolName, ELF::STT_AMDGPU_HSA_KERNEL); 263 } 264 if (STM.dumpCode()) { 265 // Disassemble function name label to text. 266 DisasmLines.push_back(MF->getName().str() + ":"); 267 DisasmLineMaxLen = std::max(DisasmLineMaxLen, DisasmLines.back().size()); 268 HexLines.push_back(""); 269 } 270 271 AsmPrinter::EmitFunctionEntryLabel(); 272 } 273 274 void AMDGPUAsmPrinter::EmitBasicBlockStart(const MachineBasicBlock &MBB) const { 275 const GCNSubtarget &STI = MBB.getParent()->getSubtarget<GCNSubtarget>(); 276 if (STI.dumpCode() && !isBlockOnlyReachableByFallthrough(&MBB)) { 277 // Write a line for the basic block label if it is not only fallthrough. 278 DisasmLines.push_back( 279 (Twine("BB") + Twine(getFunctionNumber()) 280 + "_" + Twine(MBB.getNumber()) + ":").str()); 281 DisasmLineMaxLen = std::max(DisasmLineMaxLen, DisasmLines.back().size()); 282 HexLines.push_back(""); 283 } 284 AsmPrinter::EmitBasicBlockStart(MBB); 285 } 286 287 void AMDGPUAsmPrinter::EmitGlobalVariable(const GlobalVariable *GV) { 288 289 // Group segment variables aren't emitted in HSA. 290 if (AMDGPU::isGroupSegment(GV)) 291 return; 292 293 AsmPrinter::EmitGlobalVariable(GV); 294 } 295 296 bool AMDGPUAsmPrinter::doFinalization(Module &M) { 297 CallGraphResourceInfo.clear(); 298 return AsmPrinter::doFinalization(M); 299 } 300 301 // Print comments that apply to both callable functions and entry points. 302 void AMDGPUAsmPrinter::emitCommonFunctionComments( 303 uint32_t NumVGPR, 304 uint32_t NumSGPR, 305 uint64_t ScratchSize, 306 uint64_t CodeSize, 307 const AMDGPUMachineFunction *MFI) { 308 OutStreamer->emitRawComment(" codeLenInByte = " + Twine(CodeSize), false); 309 OutStreamer->emitRawComment(" NumSgprs: " + Twine(NumSGPR), false); 310 OutStreamer->emitRawComment(" NumVgprs: " + Twine(NumVGPR), false); 311 OutStreamer->emitRawComment(" ScratchSize: " + Twine(ScratchSize), false); 312 OutStreamer->emitRawComment(" MemoryBound: " + Twine(MFI->isMemoryBound()), 313 false); 314 } 315 316 uint16_t AMDGPUAsmPrinter::getAmdhsaKernelCodeProperties( 317 const MachineFunction &MF) const { 318 const SIMachineFunctionInfo &MFI = *MF.getInfo<SIMachineFunctionInfo>(); 319 uint16_t KernelCodeProperties = 0; 320 321 if (MFI.hasPrivateSegmentBuffer()) { 322 KernelCodeProperties |= 323 amdhsa::KERNEL_CODE_PROPERTY_ENABLE_SGPR_PRIVATE_SEGMENT_BUFFER; 324 } 325 if (MFI.hasDispatchPtr()) { 326 KernelCodeProperties |= 327 amdhsa::KERNEL_CODE_PROPERTY_ENABLE_SGPR_DISPATCH_PTR; 328 } 329 if (MFI.hasQueuePtr()) { 330 KernelCodeProperties |= 331 amdhsa::KERNEL_CODE_PROPERTY_ENABLE_SGPR_QUEUE_PTR; 332 } 333 if (MFI.hasKernargSegmentPtr()) { 334 KernelCodeProperties |= 335 amdhsa::KERNEL_CODE_PROPERTY_ENABLE_SGPR_KERNARG_SEGMENT_PTR; 336 } 337 if (MFI.hasDispatchID()) { 338 KernelCodeProperties |= 339 amdhsa::KERNEL_CODE_PROPERTY_ENABLE_SGPR_DISPATCH_ID; 340 } 341 if (MFI.hasFlatScratchInit()) { 342 KernelCodeProperties |= 343 amdhsa::KERNEL_CODE_PROPERTY_ENABLE_SGPR_FLAT_SCRATCH_INIT; 344 } 345 346 return KernelCodeProperties; 347 } 348 349 amdhsa::kernel_descriptor_t AMDGPUAsmPrinter::getAmdhsaKernelDescriptor( 350 const MachineFunction &MF, 351 const SIProgramInfo &PI) const { 352 amdhsa::kernel_descriptor_t KernelDescriptor; 353 memset(&KernelDescriptor, 0x0, sizeof(KernelDescriptor)); 354 355 assert(isUInt<32>(PI.ScratchSize)); 356 assert(isUInt<32>(PI.ComputePGMRSrc1)); 357 assert(isUInt<32>(PI.ComputePGMRSrc2)); 358 359 KernelDescriptor.group_segment_fixed_size = PI.LDSSize; 360 KernelDescriptor.private_segment_fixed_size = PI.ScratchSize; 361 KernelDescriptor.compute_pgm_rsrc1 = PI.ComputePGMRSrc1; 362 KernelDescriptor.compute_pgm_rsrc2 = PI.ComputePGMRSrc2; 363 KernelDescriptor.kernel_code_properties = getAmdhsaKernelCodeProperties(MF); 364 365 return KernelDescriptor; 366 } 367 368 bool AMDGPUAsmPrinter::runOnMachineFunction(MachineFunction &MF) { 369 CurrentProgramInfo = SIProgramInfo(); 370 371 const AMDGPUMachineFunction *MFI = MF.getInfo<AMDGPUMachineFunction>(); 372 373 // The starting address of all shader programs must be 256 bytes aligned. 374 // Regular functions just need the basic required instruction alignment. 375 MF.setAlignment(MFI->isEntryFunction() ? 8 : 2); 376 377 SetupMachineFunction(MF); 378 379 const GCNSubtarget &STM = MF.getSubtarget<GCNSubtarget>(); 380 MCContext &Context = getObjFileLowering().getContext(); 381 // FIXME: This should be an explicit check for Mesa. 382 if (!STM.isAmdHsaOS() && !STM.isAmdPalOS()) { 383 MCSectionELF *ConfigSection = 384 Context.getELFSection(".AMDGPU.config", ELF::SHT_PROGBITS, 0); 385 OutStreamer->SwitchSection(ConfigSection); 386 } 387 388 if (MFI->isEntryFunction()) { 389 getSIProgramInfo(CurrentProgramInfo, MF); 390 } else { 391 auto I = CallGraphResourceInfo.insert( 392 std::make_pair(&MF.getFunction(), SIFunctionResourceInfo())); 393 SIFunctionResourceInfo &Info = I.first->second; 394 assert(I.second && "should only be called once per function"); 395 Info = analyzeResourceUsage(MF); 396 } 397 398 if (STM.isAmdPalOS()) 399 EmitPALMetadata(MF, CurrentProgramInfo); 400 else if (!STM.isAmdHsaOS()) { 401 EmitProgramInfoSI(MF, CurrentProgramInfo); 402 } 403 404 DisasmLines.clear(); 405 HexLines.clear(); 406 DisasmLineMaxLen = 0; 407 408 EmitFunctionBody(); 409 410 if (isVerbose()) { 411 MCSectionELF *CommentSection = 412 Context.getELFSection(".AMDGPU.csdata", ELF::SHT_PROGBITS, 0); 413 OutStreamer->SwitchSection(CommentSection); 414 415 if (!MFI->isEntryFunction()) { 416 OutStreamer->emitRawComment(" Function info:", false); 417 SIFunctionResourceInfo &Info = CallGraphResourceInfo[&MF.getFunction()]; 418 emitCommonFunctionComments( 419 Info.NumVGPR, 420 Info.getTotalNumSGPRs(MF.getSubtarget<GCNSubtarget>()), 421 Info.PrivateSegmentSize, 422 getFunctionCodeSize(MF), MFI); 423 return false; 424 } 425 426 OutStreamer->emitRawComment(" Kernel info:", false); 427 emitCommonFunctionComments(CurrentProgramInfo.NumVGPR, 428 CurrentProgramInfo.NumSGPR, 429 CurrentProgramInfo.ScratchSize, 430 getFunctionCodeSize(MF), MFI); 431 432 OutStreamer->emitRawComment( 433 " FloatMode: " + Twine(CurrentProgramInfo.FloatMode), false); 434 OutStreamer->emitRawComment( 435 " IeeeMode: " + Twine(CurrentProgramInfo.IEEEMode), false); 436 OutStreamer->emitRawComment( 437 " LDSByteSize: " + Twine(CurrentProgramInfo.LDSSize) + 438 " bytes/workgroup (compile time only)", false); 439 440 OutStreamer->emitRawComment( 441 " SGPRBlocks: " + Twine(CurrentProgramInfo.SGPRBlocks), false); 442 OutStreamer->emitRawComment( 443 " VGPRBlocks: " + Twine(CurrentProgramInfo.VGPRBlocks), false); 444 445 OutStreamer->emitRawComment( 446 " NumSGPRsForWavesPerEU: " + 447 Twine(CurrentProgramInfo.NumSGPRsForWavesPerEU), false); 448 OutStreamer->emitRawComment( 449 " NumVGPRsForWavesPerEU: " + 450 Twine(CurrentProgramInfo.NumVGPRsForWavesPerEU), false); 451 452 OutStreamer->emitRawComment( 453 " WaveLimiterHint : " + Twine(MFI->needsWaveLimiter()), false); 454 455 OutStreamer->emitRawComment( 456 " COMPUTE_PGM_RSRC2:USER_SGPR: " + 457 Twine(G_00B84C_USER_SGPR(CurrentProgramInfo.ComputePGMRSrc2)), false); 458 OutStreamer->emitRawComment( 459 " COMPUTE_PGM_RSRC2:TRAP_HANDLER: " + 460 Twine(G_00B84C_TRAP_HANDLER(CurrentProgramInfo.ComputePGMRSrc2)), false); 461 OutStreamer->emitRawComment( 462 " COMPUTE_PGM_RSRC2:TGID_X_EN: " + 463 Twine(G_00B84C_TGID_X_EN(CurrentProgramInfo.ComputePGMRSrc2)), false); 464 OutStreamer->emitRawComment( 465 " COMPUTE_PGM_RSRC2:TGID_Y_EN: " + 466 Twine(G_00B84C_TGID_Y_EN(CurrentProgramInfo.ComputePGMRSrc2)), false); 467 OutStreamer->emitRawComment( 468 " COMPUTE_PGM_RSRC2:TGID_Z_EN: " + 469 Twine(G_00B84C_TGID_Z_EN(CurrentProgramInfo.ComputePGMRSrc2)), false); 470 OutStreamer->emitRawComment( 471 " COMPUTE_PGM_RSRC2:TIDIG_COMP_CNT: " + 472 Twine(G_00B84C_TIDIG_COMP_CNT(CurrentProgramInfo.ComputePGMRSrc2)), 473 false); 474 } 475 476 if (STM.dumpCode()) { 477 478 OutStreamer->SwitchSection( 479 Context.getELFSection(".AMDGPU.disasm", ELF::SHT_NOTE, 0)); 480 481 for (size_t i = 0; i < DisasmLines.size(); ++i) { 482 std::string Comment = "\n"; 483 if (!HexLines[i].empty()) { 484 Comment = std::string(DisasmLineMaxLen - DisasmLines[i].size(), ' '); 485 Comment += " ; " + HexLines[i] + "\n"; 486 } 487 488 OutStreamer->EmitBytes(StringRef(DisasmLines[i])); 489 OutStreamer->EmitBytes(StringRef(Comment)); 490 } 491 } 492 493 return false; 494 } 495 496 uint64_t AMDGPUAsmPrinter::getFunctionCodeSize(const MachineFunction &MF) const { 497 const GCNSubtarget &STM = MF.getSubtarget<GCNSubtarget>(); 498 const SIInstrInfo *TII = STM.getInstrInfo(); 499 500 uint64_t CodeSize = 0; 501 502 for (const MachineBasicBlock &MBB : MF) { 503 for (const MachineInstr &MI : MBB) { 504 // TODO: CodeSize should account for multiple functions. 505 506 // TODO: Should we count size of debug info? 507 if (MI.isDebugInstr()) 508 continue; 509 510 CodeSize += TII->getInstSizeInBytes(MI); 511 } 512 } 513 514 return CodeSize; 515 } 516 517 static bool hasAnyNonFlatUseOfReg(const MachineRegisterInfo &MRI, 518 const SIInstrInfo &TII, 519 unsigned Reg) { 520 for (const MachineOperand &UseOp : MRI.reg_operands(Reg)) { 521 if (!UseOp.isImplicit() || !TII.isFLAT(*UseOp.getParent())) 522 return true; 523 } 524 525 return false; 526 } 527 528 int32_t AMDGPUAsmPrinter::SIFunctionResourceInfo::getTotalNumSGPRs( 529 const GCNSubtarget &ST) const { 530 return NumExplicitSGPR + IsaInfo::getNumExtraSGPRs(&ST, 531 UsesVCC, UsesFlatScratch); 532 } 533 534 AMDGPUAsmPrinter::SIFunctionResourceInfo AMDGPUAsmPrinter::analyzeResourceUsage( 535 const MachineFunction &MF) const { 536 SIFunctionResourceInfo Info; 537 538 const SIMachineFunctionInfo *MFI = MF.getInfo<SIMachineFunctionInfo>(); 539 const GCNSubtarget &ST = MF.getSubtarget<GCNSubtarget>(); 540 const MachineFrameInfo &FrameInfo = MF.getFrameInfo(); 541 const MachineRegisterInfo &MRI = MF.getRegInfo(); 542 const SIInstrInfo *TII = ST.getInstrInfo(); 543 const SIRegisterInfo &TRI = TII->getRegisterInfo(); 544 545 Info.UsesFlatScratch = MRI.isPhysRegUsed(AMDGPU::FLAT_SCR_LO) || 546 MRI.isPhysRegUsed(AMDGPU::FLAT_SCR_HI); 547 548 // Even if FLAT_SCRATCH is implicitly used, it has no effect if flat 549 // instructions aren't used to access the scratch buffer. Inline assembly may 550 // need it though. 551 // 552 // If we only have implicit uses of flat_scr on flat instructions, it is not 553 // really needed. 554 if (Info.UsesFlatScratch && !MFI->hasFlatScratchInit() && 555 (!hasAnyNonFlatUseOfReg(MRI, *TII, AMDGPU::FLAT_SCR) && 556 !hasAnyNonFlatUseOfReg(MRI, *TII, AMDGPU::FLAT_SCR_LO) && 557 !hasAnyNonFlatUseOfReg(MRI, *TII, AMDGPU::FLAT_SCR_HI))) { 558 Info.UsesFlatScratch = false; 559 } 560 561 Info.HasDynamicallySizedStack = FrameInfo.hasVarSizedObjects(); 562 Info.PrivateSegmentSize = FrameInfo.getStackSize(); 563 if (MFI->isStackRealigned()) 564 Info.PrivateSegmentSize += FrameInfo.getMaxAlignment(); 565 566 567 Info.UsesVCC = MRI.isPhysRegUsed(AMDGPU::VCC_LO) || 568 MRI.isPhysRegUsed(AMDGPU::VCC_HI); 569 570 // If there are no calls, MachineRegisterInfo can tell us the used register 571 // count easily. 572 // A tail call isn't considered a call for MachineFrameInfo's purposes. 573 if (!FrameInfo.hasCalls() && !FrameInfo.hasTailCall()) { 574 MCPhysReg HighestVGPRReg = AMDGPU::NoRegister; 575 for (MCPhysReg Reg : reverse(AMDGPU::VGPR_32RegClass.getRegisters())) { 576 if (MRI.isPhysRegUsed(Reg)) { 577 HighestVGPRReg = Reg; 578 break; 579 } 580 } 581 582 MCPhysReg HighestSGPRReg = AMDGPU::NoRegister; 583 for (MCPhysReg Reg : reverse(AMDGPU::SGPR_32RegClass.getRegisters())) { 584 if (MRI.isPhysRegUsed(Reg)) { 585 HighestSGPRReg = Reg; 586 break; 587 } 588 } 589 590 // We found the maximum register index. They start at 0, so add one to get the 591 // number of registers. 592 Info.NumVGPR = HighestVGPRReg == AMDGPU::NoRegister ? 0 : 593 TRI.getHWRegIndex(HighestVGPRReg) + 1; 594 Info.NumExplicitSGPR = HighestSGPRReg == AMDGPU::NoRegister ? 0 : 595 TRI.getHWRegIndex(HighestSGPRReg) + 1; 596 597 return Info; 598 } 599 600 int32_t MaxVGPR = -1; 601 int32_t MaxSGPR = -1; 602 uint64_t CalleeFrameSize = 0; 603 604 for (const MachineBasicBlock &MBB : MF) { 605 for (const MachineInstr &MI : MBB) { 606 // TODO: Check regmasks? Do they occur anywhere except calls? 607 for (const MachineOperand &MO : MI.operands()) { 608 unsigned Width = 0; 609 bool IsSGPR = false; 610 611 if (!MO.isReg()) 612 continue; 613 614 unsigned Reg = MO.getReg(); 615 switch (Reg) { 616 case AMDGPU::EXEC: 617 case AMDGPU::EXEC_LO: 618 case AMDGPU::EXEC_HI: 619 case AMDGPU::SCC: 620 case AMDGPU::M0: 621 case AMDGPU::SRC_SHARED_BASE: 622 case AMDGPU::SRC_SHARED_LIMIT: 623 case AMDGPU::SRC_PRIVATE_BASE: 624 case AMDGPU::SRC_PRIVATE_LIMIT: 625 continue; 626 627 case AMDGPU::SRC_POPS_EXITING_WAVE_ID: 628 llvm_unreachable("src_pops_exiting_wave_id should not be used"); 629 630 case AMDGPU::NoRegister: 631 assert(MI.isDebugInstr()); 632 continue; 633 634 case AMDGPU::VCC: 635 case AMDGPU::VCC_LO: 636 case AMDGPU::VCC_HI: 637 Info.UsesVCC = true; 638 continue; 639 640 case AMDGPU::FLAT_SCR: 641 case AMDGPU::FLAT_SCR_LO: 642 case AMDGPU::FLAT_SCR_HI: 643 continue; 644 645 case AMDGPU::XNACK_MASK: 646 case AMDGPU::XNACK_MASK_LO: 647 case AMDGPU::XNACK_MASK_HI: 648 llvm_unreachable("xnack_mask registers should not be used"); 649 650 case AMDGPU::LDS_DIRECT: 651 llvm_unreachable("lds_direct register should not be used"); 652 653 case AMDGPU::TBA: 654 case AMDGPU::TBA_LO: 655 case AMDGPU::TBA_HI: 656 case AMDGPU::TMA: 657 case AMDGPU::TMA_LO: 658 case AMDGPU::TMA_HI: 659 llvm_unreachable("trap handler registers should not be used"); 660 661 default: 662 break; 663 } 664 665 if (AMDGPU::SReg_32RegClass.contains(Reg)) { 666 assert(!AMDGPU::TTMP_32RegClass.contains(Reg) && 667 "trap handler registers should not be used"); 668 IsSGPR = true; 669 Width = 1; 670 } else if (AMDGPU::VGPR_32RegClass.contains(Reg)) { 671 IsSGPR = false; 672 Width = 1; 673 } else if (AMDGPU::SReg_64RegClass.contains(Reg)) { 674 assert(!AMDGPU::TTMP_64RegClass.contains(Reg) && 675 "trap handler registers should not be used"); 676 IsSGPR = true; 677 Width = 2; 678 } else if (AMDGPU::VReg_64RegClass.contains(Reg)) { 679 IsSGPR = false; 680 Width = 2; 681 } else if (AMDGPU::VReg_96RegClass.contains(Reg)) { 682 IsSGPR = false; 683 Width = 3; 684 } else if (AMDGPU::SReg_128RegClass.contains(Reg)) { 685 assert(!AMDGPU::TTMP_128RegClass.contains(Reg) && 686 "trap handler registers should not be used"); 687 IsSGPR = true; 688 Width = 4; 689 } else if (AMDGPU::VReg_128RegClass.contains(Reg)) { 690 IsSGPR = false; 691 Width = 4; 692 } else if (AMDGPU::SReg_256RegClass.contains(Reg)) { 693 assert(!AMDGPU::TTMP_256RegClass.contains(Reg) && 694 "trap handler registers should not be used"); 695 IsSGPR = true; 696 Width = 8; 697 } else if (AMDGPU::VReg_256RegClass.contains(Reg)) { 698 IsSGPR = false; 699 Width = 8; 700 } else if (AMDGPU::SReg_512RegClass.contains(Reg)) { 701 assert(!AMDGPU::TTMP_512RegClass.contains(Reg) && 702 "trap handler registers should not be used"); 703 IsSGPR = true; 704 Width = 16; 705 } else if (AMDGPU::VReg_512RegClass.contains(Reg)) { 706 IsSGPR = false; 707 Width = 16; 708 } else { 709 llvm_unreachable("Unknown register class"); 710 } 711 unsigned HWReg = TRI.getHWRegIndex(Reg); 712 int MaxUsed = HWReg + Width - 1; 713 if (IsSGPR) { 714 MaxSGPR = MaxUsed > MaxSGPR ? MaxUsed : MaxSGPR; 715 } else { 716 MaxVGPR = MaxUsed > MaxVGPR ? MaxUsed : MaxVGPR; 717 } 718 } 719 720 if (MI.isCall()) { 721 // Pseudo used just to encode the underlying global. Is there a better 722 // way to track this? 723 724 const MachineOperand *CalleeOp 725 = TII->getNamedOperand(MI, AMDGPU::OpName::callee); 726 const Function *Callee = cast<Function>(CalleeOp->getGlobal()); 727 if (Callee->isDeclaration()) { 728 // If this is a call to an external function, we can't do much. Make 729 // conservative guesses. 730 731 // 48 SGPRs - vcc, - flat_scr, -xnack 732 int MaxSGPRGuess = 733 47 - IsaInfo::getNumExtraSGPRs(&ST, true, ST.hasFlatAddressSpace()); 734 MaxSGPR = std::max(MaxSGPR, MaxSGPRGuess); 735 MaxVGPR = std::max(MaxVGPR, 23); 736 737 CalleeFrameSize = std::max(CalleeFrameSize, UINT64_C(16384)); 738 Info.UsesVCC = true; 739 Info.UsesFlatScratch = ST.hasFlatAddressSpace(); 740 Info.HasDynamicallySizedStack = true; 741 } else { 742 // We force CodeGen to run in SCC order, so the callee's register 743 // usage etc. should be the cumulative usage of all callees. 744 745 auto I = CallGraphResourceInfo.find(Callee); 746 if (I == CallGraphResourceInfo.end()) { 747 // Avoid crashing on undefined behavior with an illegal call to a 748 // kernel. If a callsite's calling convention doesn't match the 749 // function's, it's undefined behavior. If the callsite calling 750 // convention does match, that would have errored earlier. 751 // FIXME: The verifier shouldn't allow this. 752 if (AMDGPU::isEntryFunctionCC(Callee->getCallingConv())) 753 report_fatal_error("invalid call to entry function"); 754 755 llvm_unreachable("callee should have been handled before caller"); 756 } 757 758 MaxSGPR = std::max(I->second.NumExplicitSGPR - 1, MaxSGPR); 759 MaxVGPR = std::max(I->second.NumVGPR - 1, MaxVGPR); 760 CalleeFrameSize 761 = std::max(I->second.PrivateSegmentSize, CalleeFrameSize); 762 Info.UsesVCC |= I->second.UsesVCC; 763 Info.UsesFlatScratch |= I->second.UsesFlatScratch; 764 Info.HasDynamicallySizedStack |= I->second.HasDynamicallySizedStack; 765 Info.HasRecursion |= I->second.HasRecursion; 766 } 767 768 if (!Callee->doesNotRecurse()) 769 Info.HasRecursion = true; 770 } 771 } 772 } 773 774 Info.NumExplicitSGPR = MaxSGPR + 1; 775 Info.NumVGPR = MaxVGPR + 1; 776 Info.PrivateSegmentSize += CalleeFrameSize; 777 778 return Info; 779 } 780 781 void AMDGPUAsmPrinter::getSIProgramInfo(SIProgramInfo &ProgInfo, 782 const MachineFunction &MF) { 783 SIFunctionResourceInfo Info = analyzeResourceUsage(MF); 784 785 ProgInfo.NumVGPR = Info.NumVGPR; 786 ProgInfo.NumSGPR = Info.NumExplicitSGPR; 787 ProgInfo.ScratchSize = Info.PrivateSegmentSize; 788 ProgInfo.VCCUsed = Info.UsesVCC; 789 ProgInfo.FlatUsed = Info.UsesFlatScratch; 790 ProgInfo.DynamicCallStack = Info.HasDynamicallySizedStack || Info.HasRecursion; 791 792 if (!isUInt<32>(ProgInfo.ScratchSize)) { 793 DiagnosticInfoStackSize DiagStackSize(MF.getFunction(), 794 ProgInfo.ScratchSize, DS_Error); 795 MF.getFunction().getContext().diagnose(DiagStackSize); 796 } 797 798 const GCNSubtarget &STM = MF.getSubtarget<GCNSubtarget>(); 799 const SIMachineFunctionInfo *MFI = MF.getInfo<SIMachineFunctionInfo>(); 800 801 // TODO(scott.linder): The calculations related to SGPR/VGPR blocks are 802 // duplicated in part in AMDGPUAsmParser::calculateGPRBlocks, and could be 803 // unified. 804 unsigned ExtraSGPRs = IsaInfo::getNumExtraSGPRs( 805 &STM, ProgInfo.VCCUsed, ProgInfo.FlatUsed); 806 807 // Check the addressable register limit before we add ExtraSGPRs. 808 if (STM.getGeneration() >= AMDGPUSubtarget::VOLCANIC_ISLANDS && 809 !STM.hasSGPRInitBug()) { 810 unsigned MaxAddressableNumSGPRs = STM.getAddressableNumSGPRs(); 811 if (ProgInfo.NumSGPR > MaxAddressableNumSGPRs) { 812 // This can happen due to a compiler bug or when using inline asm. 813 LLVMContext &Ctx = MF.getFunction().getContext(); 814 DiagnosticInfoResourceLimit Diag(MF.getFunction(), 815 "addressable scalar registers", 816 ProgInfo.NumSGPR, DS_Error, 817 DK_ResourceLimit, 818 MaxAddressableNumSGPRs); 819 Ctx.diagnose(Diag); 820 ProgInfo.NumSGPR = MaxAddressableNumSGPRs - 1; 821 } 822 } 823 824 // Account for extra SGPRs and VGPRs reserved for debugger use. 825 ProgInfo.NumSGPR += ExtraSGPRs; 826 827 // Ensure there are enough SGPRs and VGPRs for wave dispatch, where wave 828 // dispatch registers are function args. 829 unsigned WaveDispatchNumSGPR = 0, WaveDispatchNumVGPR = 0; 830 for (auto &Arg : MF.getFunction().args()) { 831 unsigned NumRegs = (Arg.getType()->getPrimitiveSizeInBits() + 31) / 32; 832 if (Arg.hasAttribute(Attribute::InReg)) 833 WaveDispatchNumSGPR += NumRegs; 834 else 835 WaveDispatchNumVGPR += NumRegs; 836 } 837 ProgInfo.NumSGPR = std::max(ProgInfo.NumSGPR, WaveDispatchNumSGPR); 838 ProgInfo.NumVGPR = std::max(ProgInfo.NumVGPR, WaveDispatchNumVGPR); 839 840 // Adjust number of registers used to meet default/requested minimum/maximum 841 // number of waves per execution unit request. 842 ProgInfo.NumSGPRsForWavesPerEU = std::max( 843 std::max(ProgInfo.NumSGPR, 1u), STM.getMinNumSGPRs(MFI->getMaxWavesPerEU())); 844 ProgInfo.NumVGPRsForWavesPerEU = std::max( 845 std::max(ProgInfo.NumVGPR, 1u), STM.getMinNumVGPRs(MFI->getMaxWavesPerEU())); 846 847 if (STM.getGeneration() <= AMDGPUSubtarget::SEA_ISLANDS || 848 STM.hasSGPRInitBug()) { 849 unsigned MaxAddressableNumSGPRs = STM.getAddressableNumSGPRs(); 850 if (ProgInfo.NumSGPR > MaxAddressableNumSGPRs) { 851 // This can happen due to a compiler bug or when using inline asm to use 852 // the registers which are usually reserved for vcc etc. 853 LLVMContext &Ctx = MF.getFunction().getContext(); 854 DiagnosticInfoResourceLimit Diag(MF.getFunction(), 855 "scalar registers", 856 ProgInfo.NumSGPR, DS_Error, 857 DK_ResourceLimit, 858 MaxAddressableNumSGPRs); 859 Ctx.diagnose(Diag); 860 ProgInfo.NumSGPR = MaxAddressableNumSGPRs; 861 ProgInfo.NumSGPRsForWavesPerEU = MaxAddressableNumSGPRs; 862 } 863 } 864 865 if (STM.hasSGPRInitBug()) { 866 ProgInfo.NumSGPR = 867 AMDGPU::IsaInfo::FIXED_NUM_SGPRS_FOR_INIT_BUG; 868 ProgInfo.NumSGPRsForWavesPerEU = 869 AMDGPU::IsaInfo::FIXED_NUM_SGPRS_FOR_INIT_BUG; 870 } 871 872 if (MFI->getNumUserSGPRs() > STM.getMaxNumUserSGPRs()) { 873 LLVMContext &Ctx = MF.getFunction().getContext(); 874 DiagnosticInfoResourceLimit Diag(MF.getFunction(), "user SGPRs", 875 MFI->getNumUserSGPRs(), DS_Error); 876 Ctx.diagnose(Diag); 877 } 878 879 if (MFI->getLDSSize() > static_cast<unsigned>(STM.getLocalMemorySize())) { 880 LLVMContext &Ctx = MF.getFunction().getContext(); 881 DiagnosticInfoResourceLimit Diag(MF.getFunction(), "local memory", 882 MFI->getLDSSize(), DS_Error); 883 Ctx.diagnose(Diag); 884 } 885 886 ProgInfo.SGPRBlocks = IsaInfo::getNumSGPRBlocks( 887 &STM, ProgInfo.NumSGPRsForWavesPerEU); 888 ProgInfo.VGPRBlocks = IsaInfo::getNumVGPRBlocks( 889 &STM, ProgInfo.NumVGPRsForWavesPerEU); 890 891 // Set the value to initialize FP_ROUND and FP_DENORM parts of the mode 892 // register. 893 ProgInfo.FloatMode = getFPMode(MF); 894 895 ProgInfo.IEEEMode = STM.enableIEEEBit(MF); 896 897 // Make clamp modifier on NaN input returns 0. 898 ProgInfo.DX10Clamp = STM.enableDX10Clamp(); 899 900 unsigned LDSAlignShift; 901 if (STM.getGeneration() < AMDGPUSubtarget::SEA_ISLANDS) { 902 // LDS is allocated in 64 dword blocks. 903 LDSAlignShift = 8; 904 } else { 905 // LDS is allocated in 128 dword blocks. 906 LDSAlignShift = 9; 907 } 908 909 unsigned LDSSpillSize = 910 MFI->getLDSWaveSpillSize() * MFI->getMaxFlatWorkGroupSize(); 911 912 ProgInfo.LDSSize = MFI->getLDSSize() + LDSSpillSize; 913 ProgInfo.LDSBlocks = 914 alignTo(ProgInfo.LDSSize, 1ULL << LDSAlignShift) >> LDSAlignShift; 915 916 // Scratch is allocated in 256 dword blocks. 917 unsigned ScratchAlignShift = 10; 918 // We need to program the hardware with the amount of scratch memory that 919 // is used by the entire wave. ProgInfo.ScratchSize is the amount of 920 // scratch memory used per thread. 921 ProgInfo.ScratchBlocks = 922 alignTo(ProgInfo.ScratchSize * STM.getWavefrontSize(), 923 1ULL << ScratchAlignShift) >> 924 ScratchAlignShift; 925 926 ProgInfo.ComputePGMRSrc1 = 927 S_00B848_VGPRS(ProgInfo.VGPRBlocks) | 928 S_00B848_SGPRS(ProgInfo.SGPRBlocks) | 929 S_00B848_PRIORITY(ProgInfo.Priority) | 930 S_00B848_FLOAT_MODE(ProgInfo.FloatMode) | 931 S_00B848_PRIV(ProgInfo.Priv) | 932 S_00B848_DX10_CLAMP(ProgInfo.DX10Clamp) | 933 S_00B848_DEBUG_MODE(ProgInfo.DebugMode) | 934 S_00B848_IEEE_MODE(ProgInfo.IEEEMode); 935 936 // 0 = X, 1 = XY, 2 = XYZ 937 unsigned TIDIGCompCnt = 0; 938 if (MFI->hasWorkItemIDZ()) 939 TIDIGCompCnt = 2; 940 else if (MFI->hasWorkItemIDY()) 941 TIDIGCompCnt = 1; 942 943 ProgInfo.ComputePGMRSrc2 = 944 S_00B84C_SCRATCH_EN(ProgInfo.ScratchBlocks > 0) | 945 S_00B84C_USER_SGPR(MFI->getNumUserSGPRs()) | 946 // For AMDHSA, TRAP_HANDLER must be zero, as it is populated by the CP. 947 S_00B84C_TRAP_HANDLER(STM.isAmdHsaOS() ? 0 : STM.isTrapHandlerEnabled()) | 948 S_00B84C_TGID_X_EN(MFI->hasWorkGroupIDX()) | 949 S_00B84C_TGID_Y_EN(MFI->hasWorkGroupIDY()) | 950 S_00B84C_TGID_Z_EN(MFI->hasWorkGroupIDZ()) | 951 S_00B84C_TG_SIZE_EN(MFI->hasWorkGroupInfo()) | 952 S_00B84C_TIDIG_COMP_CNT(TIDIGCompCnt) | 953 S_00B84C_EXCP_EN_MSB(0) | 954 // For AMDHSA, LDS_SIZE must be zero, as it is populated by the CP. 955 S_00B84C_LDS_SIZE(STM.isAmdHsaOS() ? 0 : ProgInfo.LDSBlocks) | 956 S_00B84C_EXCP_EN(0); 957 } 958 959 static unsigned getRsrcReg(CallingConv::ID CallConv) { 960 switch (CallConv) { 961 default: LLVM_FALLTHROUGH; 962 case CallingConv::AMDGPU_CS: return R_00B848_COMPUTE_PGM_RSRC1; 963 case CallingConv::AMDGPU_LS: return R_00B528_SPI_SHADER_PGM_RSRC1_LS; 964 case CallingConv::AMDGPU_HS: return R_00B428_SPI_SHADER_PGM_RSRC1_HS; 965 case CallingConv::AMDGPU_ES: return R_00B328_SPI_SHADER_PGM_RSRC1_ES; 966 case CallingConv::AMDGPU_GS: return R_00B228_SPI_SHADER_PGM_RSRC1_GS; 967 case CallingConv::AMDGPU_VS: return R_00B128_SPI_SHADER_PGM_RSRC1_VS; 968 case CallingConv::AMDGPU_PS: return R_00B028_SPI_SHADER_PGM_RSRC1_PS; 969 } 970 } 971 972 void AMDGPUAsmPrinter::EmitProgramInfoSI(const MachineFunction &MF, 973 const SIProgramInfo &CurrentProgramInfo) { 974 const SIMachineFunctionInfo *MFI = MF.getInfo<SIMachineFunctionInfo>(); 975 unsigned RsrcReg = getRsrcReg(MF.getFunction().getCallingConv()); 976 977 if (AMDGPU::isCompute(MF.getFunction().getCallingConv())) { 978 OutStreamer->EmitIntValue(R_00B848_COMPUTE_PGM_RSRC1, 4); 979 980 OutStreamer->EmitIntValue(CurrentProgramInfo.ComputePGMRSrc1, 4); 981 982 OutStreamer->EmitIntValue(R_00B84C_COMPUTE_PGM_RSRC2, 4); 983 OutStreamer->EmitIntValue(CurrentProgramInfo.ComputePGMRSrc2, 4); 984 985 OutStreamer->EmitIntValue(R_00B860_COMPUTE_TMPRING_SIZE, 4); 986 OutStreamer->EmitIntValue(S_00B860_WAVESIZE(CurrentProgramInfo.ScratchBlocks), 4); 987 988 // TODO: Should probably note flat usage somewhere. SC emits a "FlatPtr32 = 989 // 0" comment but I don't see a corresponding field in the register spec. 990 } else { 991 OutStreamer->EmitIntValue(RsrcReg, 4); 992 OutStreamer->EmitIntValue(S_00B028_VGPRS(CurrentProgramInfo.VGPRBlocks) | 993 S_00B028_SGPRS(CurrentProgramInfo.SGPRBlocks), 4); 994 OutStreamer->EmitIntValue(R_0286E8_SPI_TMPRING_SIZE, 4); 995 OutStreamer->EmitIntValue( 996 S_0286E8_WAVESIZE(CurrentProgramInfo.ScratchBlocks), 4); 997 } 998 999 if (MF.getFunction().getCallingConv() == CallingConv::AMDGPU_PS) { 1000 OutStreamer->EmitIntValue(R_00B02C_SPI_SHADER_PGM_RSRC2_PS, 4); 1001 OutStreamer->EmitIntValue(S_00B02C_EXTRA_LDS_SIZE(CurrentProgramInfo.LDSBlocks), 4); 1002 OutStreamer->EmitIntValue(R_0286CC_SPI_PS_INPUT_ENA, 4); 1003 OutStreamer->EmitIntValue(MFI->getPSInputEnable(), 4); 1004 OutStreamer->EmitIntValue(R_0286D0_SPI_PS_INPUT_ADDR, 4); 1005 OutStreamer->EmitIntValue(MFI->getPSInputAddr(), 4); 1006 } 1007 1008 OutStreamer->EmitIntValue(R_SPILLED_SGPRS, 4); 1009 OutStreamer->EmitIntValue(MFI->getNumSpilledSGPRs(), 4); 1010 OutStreamer->EmitIntValue(R_SPILLED_VGPRS, 4); 1011 OutStreamer->EmitIntValue(MFI->getNumSpilledVGPRs(), 4); 1012 } 1013 1014 // This is the equivalent of EmitProgramInfoSI above, but for when the OS type 1015 // is AMDPAL. It stores each compute/SPI register setting and other PAL 1016 // metadata items into the PALMD::Metadata, combining with any provided by the 1017 // frontend as LLVM metadata. Once all functions are written, the PAL metadata 1018 // is then written as a single block in the .note section. 1019 void AMDGPUAsmPrinter::EmitPALMetadata(const MachineFunction &MF, 1020 const SIProgramInfo &CurrentProgramInfo) { 1021 const SIMachineFunctionInfo *MFI = MF.getInfo<SIMachineFunctionInfo>(); 1022 auto CC = MF.getFunction().getCallingConv(); 1023 auto MD = getTargetStreamer()->getPALMetadata(); 1024 1025 MD->setEntryPoint(CC, MF.getFunction().getName()); 1026 MD->setNumUsedVgprs(CC, CurrentProgramInfo.NumVGPRsForWavesPerEU); 1027 MD->setNumUsedSgprs(CC, CurrentProgramInfo.NumSGPRsForWavesPerEU); 1028 if (AMDGPU::isCompute(MF.getFunction().getCallingConv())) { 1029 MD->setRsrc1(CC, CurrentProgramInfo.ComputePGMRSrc1); 1030 MD->setRsrc2(CC, CurrentProgramInfo.ComputePGMRSrc2); 1031 } else { 1032 MD->setRsrc1(CC, S_00B028_VGPRS(CurrentProgramInfo.VGPRBlocks) | 1033 S_00B028_SGPRS(CurrentProgramInfo.SGPRBlocks)); 1034 if (CurrentProgramInfo.ScratchBlocks > 0) 1035 MD->setRsrc2(CC, S_00B84C_SCRATCH_EN(1)); 1036 } 1037 // ScratchSize is in bytes, 16 aligned. 1038 MD->setScratchSize(CC, alignTo(CurrentProgramInfo.ScratchSize, 16)); 1039 if (MF.getFunction().getCallingConv() == CallingConv::AMDGPU_PS) { 1040 MD->setRsrc2(CC, S_00B02C_EXTRA_LDS_SIZE(CurrentProgramInfo.LDSBlocks)); 1041 MD->setSpiPsInputEna(MFI->getPSInputEnable()); 1042 MD->setSpiPsInputAddr(MFI->getPSInputAddr()); 1043 } 1044 } 1045 1046 // This is supposed to be log2(Size) 1047 static amd_element_byte_size_t getElementByteSizeValue(unsigned Size) { 1048 switch (Size) { 1049 case 4: 1050 return AMD_ELEMENT_4_BYTES; 1051 case 8: 1052 return AMD_ELEMENT_8_BYTES; 1053 case 16: 1054 return AMD_ELEMENT_16_BYTES; 1055 default: 1056 llvm_unreachable("invalid private_element_size"); 1057 } 1058 } 1059 1060 void AMDGPUAsmPrinter::getAmdKernelCode(amd_kernel_code_t &Out, 1061 const SIProgramInfo &CurrentProgramInfo, 1062 const MachineFunction &MF) const { 1063 const Function &F = MF.getFunction(); 1064 assert(F.getCallingConv() == CallingConv::AMDGPU_KERNEL || 1065 F.getCallingConv() == CallingConv::SPIR_KERNEL); 1066 1067 const SIMachineFunctionInfo *MFI = MF.getInfo<SIMachineFunctionInfo>(); 1068 const GCNSubtarget &STM = MF.getSubtarget<GCNSubtarget>(); 1069 1070 AMDGPU::initDefaultAMDKernelCodeT(Out, &STM); 1071 1072 Out.compute_pgm_resource_registers = 1073 CurrentProgramInfo.ComputePGMRSrc1 | 1074 (CurrentProgramInfo.ComputePGMRSrc2 << 32); 1075 Out.code_properties = AMD_CODE_PROPERTY_IS_PTR64; 1076 1077 if (CurrentProgramInfo.DynamicCallStack) 1078 Out.code_properties |= AMD_CODE_PROPERTY_IS_DYNAMIC_CALLSTACK; 1079 1080 AMD_HSA_BITS_SET(Out.code_properties, 1081 AMD_CODE_PROPERTY_PRIVATE_ELEMENT_SIZE, 1082 getElementByteSizeValue(STM.getMaxPrivateElementSize())); 1083 1084 if (MFI->hasPrivateSegmentBuffer()) { 1085 Out.code_properties |= 1086 AMD_CODE_PROPERTY_ENABLE_SGPR_PRIVATE_SEGMENT_BUFFER; 1087 } 1088 1089 if (MFI->hasDispatchPtr()) 1090 Out.code_properties |= AMD_CODE_PROPERTY_ENABLE_SGPR_DISPATCH_PTR; 1091 1092 if (MFI->hasQueuePtr()) 1093 Out.code_properties |= AMD_CODE_PROPERTY_ENABLE_SGPR_QUEUE_PTR; 1094 1095 if (MFI->hasKernargSegmentPtr()) 1096 Out.code_properties |= AMD_CODE_PROPERTY_ENABLE_SGPR_KERNARG_SEGMENT_PTR; 1097 1098 if (MFI->hasDispatchID()) 1099 Out.code_properties |= AMD_CODE_PROPERTY_ENABLE_SGPR_DISPATCH_ID; 1100 1101 if (MFI->hasFlatScratchInit()) 1102 Out.code_properties |= AMD_CODE_PROPERTY_ENABLE_SGPR_FLAT_SCRATCH_INIT; 1103 1104 if (MFI->hasDispatchPtr()) 1105 Out.code_properties |= AMD_CODE_PROPERTY_ENABLE_SGPR_DISPATCH_PTR; 1106 1107 if (STM.isXNACKEnabled()) 1108 Out.code_properties |= AMD_CODE_PROPERTY_IS_XNACK_SUPPORTED; 1109 1110 unsigned MaxKernArgAlign; 1111 Out.kernarg_segment_byte_size = STM.getKernArgSegmentSize(F, MaxKernArgAlign); 1112 Out.wavefront_sgpr_count = CurrentProgramInfo.NumSGPR; 1113 Out.workitem_vgpr_count = CurrentProgramInfo.NumVGPR; 1114 Out.workitem_private_segment_byte_size = CurrentProgramInfo.ScratchSize; 1115 Out.workgroup_group_segment_byte_size = CurrentProgramInfo.LDSSize; 1116 1117 // These alignment values are specified in powers of two, so alignment = 1118 // 2^n. The minimum alignment is 2^4 = 16. 1119 Out.kernarg_segment_alignment = std::max((size_t)4, 1120 countTrailingZeros(MaxKernArgAlign)); 1121 } 1122 1123 bool AMDGPUAsmPrinter::PrintAsmOperand(const MachineInstr *MI, unsigned OpNo, 1124 unsigned AsmVariant, 1125 const char *ExtraCode, raw_ostream &O) { 1126 // First try the generic code, which knows about modifiers like 'c' and 'n'. 1127 if (!AsmPrinter::PrintAsmOperand(MI, OpNo, AsmVariant, ExtraCode, O)) 1128 return false; 1129 1130 if (ExtraCode && ExtraCode[0]) { 1131 if (ExtraCode[1] != 0) 1132 return true; // Unknown modifier. 1133 1134 switch (ExtraCode[0]) { 1135 case 'r': 1136 break; 1137 default: 1138 return true; 1139 } 1140 } 1141 1142 // TODO: Should be able to support other operand types like globals. 1143 const MachineOperand &MO = MI->getOperand(OpNo); 1144 if (MO.isReg()) { 1145 AMDGPUInstPrinter::printRegOperand(MO.getReg(), O, 1146 *MF->getSubtarget().getRegisterInfo()); 1147 return false; 1148 } 1149 1150 return true; 1151 } 1152