1 //===- AMDGPURegisterBankInfo.cpp -------------------------------*- C++ -*-==// 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 /// \file 9 /// This file implements the targeting of the RegisterBankInfo class for 10 /// AMDGPU. 11 /// 12 /// \par 13 /// 14 /// AMDGPU has unique register bank constraints that require special high level 15 /// strategies to deal with. There are two main true physical register banks 16 /// VGPR (vector), and SGPR (scalar). Additionally the VCC register bank is a 17 /// sort of pseudo-register bank needed to represent SGPRs used in a vector 18 /// boolean context. There is also the AGPR bank, which is a special purpose 19 /// physical register bank present on some subtargets. 20 /// 21 /// Copying from VGPR to SGPR is generally illegal, unless the value is known to 22 /// be uniform. It is generally not valid to legalize operands by inserting 23 /// copies as on other targets. Operations which require uniform, SGPR operands 24 /// generally require scalarization by repeatedly executing the instruction, 25 /// activating each set of lanes using a unique set of input values. This is 26 /// referred to as a waterfall loop. 27 /// 28 /// \par Booleans 29 /// 30 /// Booleans (s1 values) requires special consideration. A vector compare result 31 /// is naturally a bitmask with one bit per lane, in a 32 or 64-bit 32 /// register. These are represented with the VCC bank. During selection, we need 33 /// to be able to unambiguously go back from a register class to a register 34 /// bank. To distinguish whether an SGPR should use the SGPR or VCC register 35 /// bank, we need to know the use context type. An SGPR s1 value always means a 36 /// VCC bank value, otherwise it will be the SGPR bank. A scalar compare sets 37 /// SCC, which is a 1-bit unaddressable register. This will need to be copied to 38 /// a 32-bit virtual register. Taken together, this means we need to adjust the 39 /// type of boolean operations to be regbank legal. All SALU booleans need to be 40 /// widened to 32-bits, and all VALU booleans need to be s1 values. 41 /// 42 /// A noteworthy exception to the s1-means-vcc rule is for legalization artifact 43 /// casts. G_TRUNC s1 results, and G_SEXT/G_ZEXT/G_ANYEXT sources are never vcc 44 /// bank. A non-boolean source (such as a truncate from a 1-bit load from 45 /// memory) will require a copy to the VCC bank which will require clearing the 46 /// high bits and inserting a compare. 47 /// 48 /// \par Constant bus restriction 49 /// 50 /// VALU instructions have a limitation known as the constant bus 51 /// restriction. Most VALU instructions can use SGPR operands, but may read at 52 /// most 1 SGPR or constant literal value (this to 2 in gfx10 for most 53 /// instructions). This is one unique SGPR, so the same SGPR may be used for 54 /// multiple operands. From a register bank perspective, any combination of 55 /// operands should be legal as an SGPR, but this is contextually dependent on 56 /// the SGPR operands all being the same register. There is therefore optimal to 57 /// choose the SGPR with the most uses to minimize the number of copies. 58 /// 59 /// We avoid trying to solve this problem in RegBankSelect. Any VALU G_* 60 /// operation should have its source operands all mapped to VGPRs (except for 61 /// VCC), inserting copies from any SGPR operands. This the most trival legal 62 /// mapping. Anything beyond the simplest 1:1 instruction selection would be too 63 /// complicated to solve here. Every optimization pattern or instruction 64 /// selected to multiple outputs would have to enforce this rule, and there 65 /// would be additional complexity in tracking this rule for every G_* 66 /// operation. By forcing all inputs to VGPRs, it also simplifies the task of 67 /// picking the optimal operand combination from a post-isel optimization pass. 68 /// 69 //===----------------------------------------------------------------------===// 70 71 #include "AMDGPURegisterBankInfo.h" 72 73 #include "AMDGPU.h" 74 #include "AMDGPUGlobalISelUtils.h" 75 #include "AMDGPUInstrInfo.h" 76 #include "GCNSubtarget.h" 77 #include "SIMachineFunctionInfo.h" 78 #include "SIRegisterInfo.h" 79 #include "llvm/CodeGen/GlobalISel/LegalizerHelper.h" 80 #include "llvm/CodeGen/GlobalISel/MIPatternMatch.h" 81 #include "llvm/CodeGen/GlobalISel/MachineIRBuilder.h" 82 #include "llvm/CodeGen/GlobalISel/RegisterBank.h" 83 #include "llvm/IR/IntrinsicsAMDGPU.h" 84 85 #define GET_TARGET_REGBANK_IMPL 86 #include "AMDGPUGenRegisterBank.inc" 87 88 // This file will be TableGen'ed at some point. 89 #include "AMDGPUGenRegisterBankInfo.def" 90 91 using namespace llvm; 92 using namespace MIPatternMatch; 93 94 namespace { 95 96 // Observer to apply a register bank to new registers created by LegalizerHelper. 97 class ApplyRegBankMapping final : public GISelChangeObserver { 98 private: 99 const AMDGPURegisterBankInfo &RBI; 100 MachineRegisterInfo &MRI; 101 const RegisterBank *NewBank; 102 SmallVector<MachineInstr *, 4> NewInsts; 103 104 public: 105 ApplyRegBankMapping(const AMDGPURegisterBankInfo &RBI_, 106 MachineRegisterInfo &MRI_, const RegisterBank *RB) 107 : RBI(RBI_), MRI(MRI_), NewBank(RB) {} 108 109 ~ApplyRegBankMapping() { 110 for (MachineInstr *MI : NewInsts) 111 applyBank(*MI); 112 } 113 114 /// Set any registers that don't have a set register class or bank to SALU. 115 void applyBank(MachineInstr &MI) { 116 const unsigned Opc = MI.getOpcode(); 117 if (Opc == AMDGPU::G_ANYEXT || Opc == AMDGPU::G_ZEXT || 118 Opc == AMDGPU::G_SEXT) { 119 // LegalizerHelper wants to use the basic legalization artifacts when 120 // widening etc. We don't handle selection with vcc in artifact sources, 121 // so we need to use a sslect instead to handle these properly. 122 Register DstReg = MI.getOperand(0).getReg(); 123 Register SrcReg = MI.getOperand(1).getReg(); 124 const RegisterBank *SrcBank = RBI.getRegBank(SrcReg, MRI, *RBI.TRI); 125 if (SrcBank == &AMDGPU::VCCRegBank) { 126 const LLT S32 = LLT::scalar(32); 127 assert(MRI.getType(SrcReg) == LLT::scalar(1)); 128 assert(MRI.getType(DstReg) == S32); 129 assert(NewBank == &AMDGPU::VGPRRegBank); 130 131 // Replace the extension with a select, which really uses the boolean 132 // source. 133 MachineIRBuilder B(MI); 134 auto True = B.buildConstant(S32, Opc == AMDGPU::G_SEXT ? -1 : 1); 135 auto False = B.buildConstant(S32, 0); 136 B.buildSelect(DstReg, SrcReg, True, False); 137 MRI.setRegBank(True.getReg(0), *NewBank); 138 MRI.setRegBank(False.getReg(0), *NewBank); 139 MI.eraseFromParent(); 140 } 141 142 assert(!MRI.getRegClassOrRegBank(DstReg)); 143 MRI.setRegBank(DstReg, *NewBank); 144 return; 145 } 146 147 #ifndef NDEBUG 148 if (Opc == AMDGPU::G_TRUNC) { 149 Register DstReg = MI.getOperand(0).getReg(); 150 const RegisterBank *DstBank = RBI.getRegBank(DstReg, MRI, *RBI.TRI); 151 assert(DstBank != &AMDGPU::VCCRegBank); 152 } 153 #endif 154 155 for (MachineOperand &Op : MI.operands()) { 156 if (!Op.isReg()) 157 continue; 158 159 // We may see physical registers if building a real MI 160 Register Reg = Op.getReg(); 161 if (Reg.isPhysical() || MRI.getRegClassOrRegBank(Reg)) 162 continue; 163 164 const RegisterBank *RB = NewBank; 165 if (MRI.getType(Reg) == LLT::scalar(1)) { 166 assert(NewBank == &AMDGPU::VGPRRegBank && 167 "s1 operands should only be used for vector bools"); 168 assert((MI.getOpcode() != AMDGPU::G_TRUNC && 169 MI.getOpcode() != AMDGPU::G_ANYEXT) && 170 "not expecting legalization artifacts here"); 171 RB = &AMDGPU::VCCRegBank; 172 } 173 174 MRI.setRegBank(Reg, *RB); 175 } 176 } 177 178 void erasingInstr(MachineInstr &MI) override {} 179 180 void createdInstr(MachineInstr &MI) override { 181 // At this point, the instruction was just inserted and has no operands. 182 NewInsts.push_back(&MI); 183 } 184 185 void changingInstr(MachineInstr &MI) override {} 186 void changedInstr(MachineInstr &MI) override { 187 // FIXME: In principle we should probably add the instruction to NewInsts, 188 // but the way the LegalizerHelper uses the observer, we will always see the 189 // registers we need to set the regbank on also referenced in a new 190 // instruction. 191 } 192 }; 193 194 } 195 AMDGPURegisterBankInfo::AMDGPURegisterBankInfo(const GCNSubtarget &ST) 196 : AMDGPUGenRegisterBankInfo(), 197 Subtarget(ST), 198 TRI(Subtarget.getRegisterInfo()), 199 TII(Subtarget.getInstrInfo()) { 200 201 // HACK: Until this is fully tablegen'd. 202 static llvm::once_flag InitializeRegisterBankFlag; 203 204 static auto InitializeRegisterBankOnce = [this]() { 205 assert(&getRegBank(AMDGPU::SGPRRegBankID) == &AMDGPU::SGPRRegBank && 206 &getRegBank(AMDGPU::VGPRRegBankID) == &AMDGPU::VGPRRegBank && 207 &getRegBank(AMDGPU::AGPRRegBankID) == &AMDGPU::AGPRRegBank); 208 (void)this; 209 }; 210 211 llvm::call_once(InitializeRegisterBankFlag, InitializeRegisterBankOnce); 212 } 213 214 static bool isVectorRegisterBank(const RegisterBank &Bank) { 215 unsigned BankID = Bank.getID(); 216 return BankID == AMDGPU::VGPRRegBankID || BankID == AMDGPU::AGPRRegBankID; 217 } 218 219 unsigned AMDGPURegisterBankInfo::copyCost(const RegisterBank &Dst, 220 const RegisterBank &Src, 221 unsigned Size) const { 222 // TODO: Should there be a UniformVGPRRegBank which can use readfirstlane? 223 if (Dst.getID() == AMDGPU::SGPRRegBankID && 224 (isVectorRegisterBank(Src) || Src.getID() == AMDGPU::VCCRegBankID)) { 225 return std::numeric_limits<unsigned>::max(); 226 } 227 228 // Bool values are tricky, because the meaning is based on context. The SCC 229 // and VCC banks are for the natural scalar and vector conditions produced by 230 // a compare. 231 // 232 // Legalization doesn't know about the necessary context, so an s1 use may 233 // have been a truncate from an arbitrary value, in which case a copy (lowered 234 // as a compare with 0) needs to be inserted. 235 if (Size == 1 && 236 (Dst.getID() == AMDGPU::SGPRRegBankID) && 237 (isVectorRegisterBank(Src) || 238 Src.getID() == AMDGPU::SGPRRegBankID || 239 Src.getID() == AMDGPU::VCCRegBankID)) 240 return std::numeric_limits<unsigned>::max(); 241 242 // There is no direct copy between AGPRs. 243 if (Dst.getID() == AMDGPU::AGPRRegBankID && 244 Src.getID() == AMDGPU::AGPRRegBankID) 245 return 4; 246 247 return RegisterBankInfo::copyCost(Dst, Src, Size); 248 } 249 250 unsigned AMDGPURegisterBankInfo::getBreakDownCost( 251 const ValueMapping &ValMapping, 252 const RegisterBank *CurBank) const { 253 // Check if this is a breakdown for G_LOAD to move the pointer from SGPR to 254 // VGPR. 255 // FIXME: Is there a better way to do this? 256 if (ValMapping.NumBreakDowns >= 2 || ValMapping.BreakDown[0].Length >= 64) 257 return 10; // This is expensive. 258 259 assert(ValMapping.NumBreakDowns == 2 && 260 ValMapping.BreakDown[0].Length == 32 && 261 ValMapping.BreakDown[0].StartIdx == 0 && 262 ValMapping.BreakDown[1].Length == 32 && 263 ValMapping.BreakDown[1].StartIdx == 32 && 264 ValMapping.BreakDown[0].RegBank == ValMapping.BreakDown[1].RegBank); 265 266 // 32-bit extract of a 64-bit value is just access of a subregister, so free. 267 // TODO: Cost of 0 hits assert, though it's not clear it's what we really 268 // want. 269 270 // TODO: 32-bit insert to a 64-bit SGPR may incur a non-free copy due to SGPR 271 // alignment restrictions, but this probably isn't important. 272 return 1; 273 } 274 275 const RegisterBank & 276 AMDGPURegisterBankInfo::getRegBankFromRegClass(const TargetRegisterClass &RC, 277 LLT Ty) const { 278 if (&RC == &AMDGPU::SReg_1RegClass) 279 return AMDGPU::VCCRegBank; 280 281 // We promote real scalar booleans to SReg_32. Any SGPR using s1 is really a 282 // VCC-like use. 283 if (TRI->isSGPRClass(&RC)) { 284 // FIXME: This probably came from a copy from a physical register, which 285 // should be inferrrable from the copied to-type. We don't have many boolean 286 // physical register constraints so just assume a normal SGPR for now. 287 if (!Ty.isValid()) 288 return AMDGPU::SGPRRegBank; 289 290 return Ty == LLT::scalar(1) ? AMDGPU::VCCRegBank : AMDGPU::SGPRRegBank; 291 } 292 293 return TRI->isAGPRClass(&RC) ? AMDGPU::AGPRRegBank : AMDGPU::VGPRRegBank; 294 } 295 296 template <unsigned NumOps> 297 RegisterBankInfo::InstructionMappings 298 AMDGPURegisterBankInfo::addMappingFromTable( 299 const MachineInstr &MI, const MachineRegisterInfo &MRI, 300 const std::array<unsigned, NumOps> RegSrcOpIdx, 301 ArrayRef<OpRegBankEntry<NumOps>> Table) const { 302 303 InstructionMappings AltMappings; 304 305 SmallVector<const ValueMapping *, 10> Operands(MI.getNumOperands()); 306 307 unsigned Sizes[NumOps]; 308 for (unsigned I = 0; I < NumOps; ++I) { 309 Register Reg = MI.getOperand(RegSrcOpIdx[I]).getReg(); 310 Sizes[I] = getSizeInBits(Reg, MRI, *TRI); 311 } 312 313 for (unsigned I = 0, E = MI.getNumExplicitDefs(); I != E; ++I) { 314 unsigned SizeI = getSizeInBits(MI.getOperand(I).getReg(), MRI, *TRI); 315 Operands[I] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, SizeI); 316 } 317 318 // getInstrMapping's default mapping uses ID 1, so start at 2. 319 unsigned MappingID = 2; 320 for (const auto &Entry : Table) { 321 for (unsigned I = 0; I < NumOps; ++I) { 322 int OpIdx = RegSrcOpIdx[I]; 323 Operands[OpIdx] = AMDGPU::getValueMapping(Entry.RegBanks[I], Sizes[I]); 324 } 325 326 AltMappings.push_back(&getInstructionMapping(MappingID++, Entry.Cost, 327 getOperandsMapping(Operands), 328 Operands.size())); 329 } 330 331 return AltMappings; 332 } 333 334 RegisterBankInfo::InstructionMappings 335 AMDGPURegisterBankInfo::getInstrAlternativeMappingsIntrinsic( 336 const MachineInstr &MI, const MachineRegisterInfo &MRI) const { 337 switch (MI.getIntrinsicID()) { 338 case Intrinsic::amdgcn_readlane: { 339 static const OpRegBankEntry<3> Table[2] = { 340 // Perfectly legal. 341 { { AMDGPU::SGPRRegBankID, AMDGPU::VGPRRegBankID, AMDGPU::SGPRRegBankID }, 1 }, 342 343 // Need a readfirstlane for the index. 344 { { AMDGPU::SGPRRegBankID, AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID }, 2 } 345 }; 346 347 const std::array<unsigned, 3> RegSrcOpIdx = { { 0, 2, 3 } }; 348 return addMappingFromTable<3>(MI, MRI, RegSrcOpIdx, makeArrayRef(Table)); 349 } 350 case Intrinsic::amdgcn_writelane: { 351 static const OpRegBankEntry<4> Table[4] = { 352 // Perfectly legal. 353 { { AMDGPU::VGPRRegBankID, AMDGPU::SGPRRegBankID, AMDGPU::SGPRRegBankID, AMDGPU::VGPRRegBankID }, 1 }, 354 355 // Need readfirstlane of first op 356 { { AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID, AMDGPU::SGPRRegBankID, AMDGPU::VGPRRegBankID }, 2 }, 357 358 // Need readfirstlane of second op 359 { { AMDGPU::VGPRRegBankID, AMDGPU::SGPRRegBankID, AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID }, 2 }, 360 361 // Need readfirstlane of both ops 362 { { AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID }, 3 } 363 }; 364 365 // rsrc, voffset, offset 366 const std::array<unsigned, 4> RegSrcOpIdx = { { 0, 2, 3, 4 } }; 367 return addMappingFromTable<4>(MI, MRI, RegSrcOpIdx, makeArrayRef(Table)); 368 } 369 default: 370 return RegisterBankInfo::getInstrAlternativeMappings(MI); 371 } 372 } 373 374 RegisterBankInfo::InstructionMappings 375 AMDGPURegisterBankInfo::getInstrAlternativeMappingsIntrinsicWSideEffects( 376 const MachineInstr &MI, const MachineRegisterInfo &MRI) const { 377 378 switch (MI.getIntrinsicID()) { 379 case Intrinsic::amdgcn_s_buffer_load: { 380 static const OpRegBankEntry<2> Table[4] = { 381 // Perfectly legal. 382 { { AMDGPU::SGPRRegBankID, AMDGPU::SGPRRegBankID }, 1 }, 383 384 // Only need 1 register in loop 385 { { AMDGPU::SGPRRegBankID, AMDGPU::VGPRRegBankID }, 300 }, 386 387 // Have to waterfall the resource. 388 { { AMDGPU::VGPRRegBankID, AMDGPU::SGPRRegBankID }, 1000 }, 389 390 // Have to waterfall the resource, and the offset. 391 { { AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID }, 1500 } 392 }; 393 394 // rsrc, offset 395 const std::array<unsigned, 2> RegSrcOpIdx = { { 2, 3 } }; 396 return addMappingFromTable<2>(MI, MRI, RegSrcOpIdx, makeArrayRef(Table)); 397 } 398 case Intrinsic::amdgcn_ds_ordered_add: 399 case Intrinsic::amdgcn_ds_ordered_swap: { 400 // VGPR = M0, VGPR 401 static const OpRegBankEntry<3> Table[2] = { 402 // Perfectly legal. 403 { { AMDGPU::VGPRRegBankID, AMDGPU::SGPRRegBankID, AMDGPU::VGPRRegBankID }, 1 }, 404 405 // Need a readfirstlane for m0 406 { { AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID, AMDGPU::VGPRRegBankID }, 2 } 407 }; 408 409 const std::array<unsigned, 3> RegSrcOpIdx = { { 0, 2, 3 } }; 410 return addMappingFromTable<3>(MI, MRI, RegSrcOpIdx, makeArrayRef(Table)); 411 } 412 case Intrinsic::amdgcn_s_sendmsg: 413 case Intrinsic::amdgcn_s_sendmsghalt: { 414 // FIXME: Should have no register for immediate 415 static const OpRegBankEntry<1> Table[2] = { 416 // Perfectly legal. 417 { { AMDGPU::SGPRRegBankID }, 1 }, 418 419 // Need readlane 420 { { AMDGPU::VGPRRegBankID }, 3 } 421 }; 422 423 const std::array<unsigned, 1> RegSrcOpIdx = { { 2 } }; 424 return addMappingFromTable<1>(MI, MRI, RegSrcOpIdx, makeArrayRef(Table)); 425 } 426 default: 427 return RegisterBankInfo::getInstrAlternativeMappings(MI); 428 } 429 } 430 431 static bool memOpHasNoClobbered(const MachineMemOperand *MMO) { 432 const Instruction *I = dyn_cast_or_null<Instruction>(MMO->getValue()); 433 return I && I->getMetadata("amdgpu.noclobber"); 434 } 435 436 // FIXME: Returns uniform if there's no source value information. This is 437 // probably wrong. 438 static bool isScalarLoadLegal(const MachineInstr &MI) { 439 if (!MI.hasOneMemOperand()) 440 return false; 441 442 const MachineMemOperand *MMO = *MI.memoperands_begin(); 443 const unsigned AS = MMO->getAddrSpace(); 444 const bool IsConst = AS == AMDGPUAS::CONSTANT_ADDRESS || 445 AS == AMDGPUAS::CONSTANT_ADDRESS_32BIT; 446 447 // There are no extending SMRD/SMEM loads, and they require 4-byte alignment. 448 return MMO->getSize() >= 4 && MMO->getAlign() >= Align(4) && 449 // Can't do a scalar atomic load. 450 !MMO->isAtomic() && 451 // Don't use scalar loads for volatile accesses to non-constant address 452 // spaces. 453 (IsConst || !MMO->isVolatile()) && 454 // Memory must be known constant, or not written before this load. 455 (IsConst || MMO->isInvariant() || memOpHasNoClobbered(MMO)) && 456 AMDGPUInstrInfo::isUniformMMO(MMO); 457 } 458 459 RegisterBankInfo::InstructionMappings 460 AMDGPURegisterBankInfo::getInstrAlternativeMappings( 461 const MachineInstr &MI) const { 462 463 const MachineFunction &MF = *MI.getParent()->getParent(); 464 const MachineRegisterInfo &MRI = MF.getRegInfo(); 465 466 467 InstructionMappings AltMappings; 468 switch (MI.getOpcode()) { 469 case TargetOpcode::G_CONSTANT: { 470 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 471 if (Size == 1) { 472 static const OpRegBankEntry<1> Table[3] = { 473 { { AMDGPU::VGPRRegBankID }, 1 }, 474 { { AMDGPU::SGPRRegBankID }, 1 }, 475 { { AMDGPU::VCCRegBankID }, 1 } 476 }; 477 478 return addMappingFromTable<1>(MI, MRI, {{ 0 }}, Table); 479 } 480 481 LLVM_FALLTHROUGH; 482 } 483 case TargetOpcode::G_FCONSTANT: 484 case TargetOpcode::G_FRAME_INDEX: 485 case TargetOpcode::G_GLOBAL_VALUE: { 486 static const OpRegBankEntry<1> Table[2] = { 487 { { AMDGPU::VGPRRegBankID }, 1 }, 488 { { AMDGPU::SGPRRegBankID }, 1 } 489 }; 490 491 return addMappingFromTable<1>(MI, MRI, {{ 0 }}, Table); 492 } 493 case TargetOpcode::G_AND: 494 case TargetOpcode::G_OR: 495 case TargetOpcode::G_XOR: { 496 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 497 498 if (Size == 1) { 499 // s_{and|or|xor}_b32 set scc when the result of the 32-bit op is not 0. 500 const InstructionMapping &SCCMapping = getInstructionMapping( 501 1, 1, getOperandsMapping( 502 {AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 32), 503 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 32), 504 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 32)}), 505 3); // Num Operands 506 AltMappings.push_back(&SCCMapping); 507 508 const InstructionMapping &VCCMapping0 = getInstructionMapping( 509 2, 1, getOperandsMapping( 510 {AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, Size), 511 AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, Size), 512 AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, Size)}), 513 3); // Num Operands 514 AltMappings.push_back(&VCCMapping0); 515 return AltMappings; 516 } 517 518 if (Size != 64) 519 break; 520 521 const InstructionMapping &SSMapping = getInstructionMapping( 522 1, 1, getOperandsMapping( 523 {AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 524 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 525 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size)}), 526 3); // Num Operands 527 AltMappings.push_back(&SSMapping); 528 529 const InstructionMapping &VVMapping = getInstructionMapping( 530 2, 2, getOperandsMapping( 531 {AMDGPU::getValueMappingSGPR64Only(AMDGPU::VGPRRegBankID, Size), 532 AMDGPU::getValueMappingSGPR64Only(AMDGPU::VGPRRegBankID, Size), 533 AMDGPU::getValueMappingSGPR64Only(AMDGPU::VGPRRegBankID, Size)}), 534 3); // Num Operands 535 AltMappings.push_back(&VVMapping); 536 break; 537 } 538 case TargetOpcode::G_LOAD: 539 case TargetOpcode::G_ZEXTLOAD: 540 case TargetOpcode::G_SEXTLOAD: { 541 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 542 LLT PtrTy = MRI.getType(MI.getOperand(1).getReg()); 543 unsigned PtrSize = PtrTy.getSizeInBits(); 544 unsigned AS = PtrTy.getAddressSpace(); 545 546 if ((AS != AMDGPUAS::LOCAL_ADDRESS && AS != AMDGPUAS::REGION_ADDRESS && 547 AS != AMDGPUAS::PRIVATE_ADDRESS) && 548 isScalarLoadLegal(MI)) { 549 const InstructionMapping &SSMapping = getInstructionMapping( 550 1, 1, getOperandsMapping( 551 {AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 552 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, PtrSize)}), 553 2); // Num Operands 554 AltMappings.push_back(&SSMapping); 555 } 556 557 const InstructionMapping &VVMapping = getInstructionMapping( 558 2, 1, 559 getOperandsMapping( 560 {AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size), 561 AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, PtrSize)}), 562 2); // Num Operands 563 AltMappings.push_back(&VVMapping); 564 565 // It may be possible to have a vgpr = load sgpr mapping here, because 566 // the mubuf instructions support this kind of load, but probably for only 567 // gfx7 and older. However, the addressing mode matching in the instruction 568 // selector should be able to do a better job of detecting and selecting 569 // these kinds of loads from the vgpr = load vgpr mapping. 570 571 return AltMappings; 572 573 } 574 case TargetOpcode::G_SELECT: { 575 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 576 const InstructionMapping &SSMapping = getInstructionMapping(1, 1, 577 getOperandsMapping({AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 578 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 1), 579 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 580 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size)}), 581 4); // Num Operands 582 AltMappings.push_back(&SSMapping); 583 584 const InstructionMapping &VVMapping = getInstructionMapping(2, 1, 585 getOperandsMapping({AMDGPU::getValueMappingSGPR64Only(AMDGPU::VGPRRegBankID, Size), 586 AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1), 587 AMDGPU::getValueMappingSGPR64Only(AMDGPU::VGPRRegBankID, Size), 588 AMDGPU::getValueMappingSGPR64Only(AMDGPU::VGPRRegBankID, Size)}), 589 4); // Num Operands 590 AltMappings.push_back(&VVMapping); 591 592 return AltMappings; 593 } 594 case TargetOpcode::G_UADDE: 595 case TargetOpcode::G_USUBE: 596 case TargetOpcode::G_SADDE: 597 case TargetOpcode::G_SSUBE: { 598 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 599 const InstructionMapping &SSMapping = getInstructionMapping(1, 1, 600 getOperandsMapping( 601 {AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 602 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 1), 603 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 604 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size), 605 AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 1)}), 606 5); // Num Operands 607 AltMappings.push_back(&SSMapping); 608 609 const InstructionMapping &VVMapping = getInstructionMapping(2, 1, 610 getOperandsMapping({AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size), 611 AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1), 612 AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size), 613 AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size), 614 AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1)}), 615 5); // Num Operands 616 AltMappings.push_back(&VVMapping); 617 return AltMappings; 618 } 619 case AMDGPU::G_BRCOND: { 620 assert(MRI.getType(MI.getOperand(0).getReg()).getSizeInBits() == 1); 621 622 // TODO: Change type to 32 for scalar 623 const InstructionMapping &SMapping = getInstructionMapping( 624 1, 1, getOperandsMapping( 625 {AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 1), nullptr}), 626 2); // Num Operands 627 AltMappings.push_back(&SMapping); 628 629 const InstructionMapping &VMapping = getInstructionMapping( 630 1, 1, getOperandsMapping( 631 {AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1), nullptr }), 632 2); // Num Operands 633 AltMappings.push_back(&VMapping); 634 return AltMappings; 635 } 636 case AMDGPU::G_INTRINSIC: 637 return getInstrAlternativeMappingsIntrinsic(MI, MRI); 638 case AMDGPU::G_INTRINSIC_W_SIDE_EFFECTS: 639 return getInstrAlternativeMappingsIntrinsicWSideEffects(MI, MRI); 640 default: 641 break; 642 } 643 return RegisterBankInfo::getInstrAlternativeMappings(MI); 644 } 645 646 void AMDGPURegisterBankInfo::split64BitValueForMapping( 647 MachineIRBuilder &B, 648 SmallVector<Register, 2> &Regs, 649 LLT HalfTy, 650 Register Reg) const { 651 assert(HalfTy.getSizeInBits() == 32); 652 MachineRegisterInfo *MRI = B.getMRI(); 653 Register LoLHS = MRI->createGenericVirtualRegister(HalfTy); 654 Register HiLHS = MRI->createGenericVirtualRegister(HalfTy); 655 const RegisterBank *Bank = getRegBank(Reg, *MRI, *TRI); 656 MRI->setRegBank(LoLHS, *Bank); 657 MRI->setRegBank(HiLHS, *Bank); 658 659 Regs.push_back(LoLHS); 660 Regs.push_back(HiLHS); 661 662 B.buildInstr(AMDGPU::G_UNMERGE_VALUES) 663 .addDef(LoLHS) 664 .addDef(HiLHS) 665 .addUse(Reg); 666 } 667 668 /// Replace the current type each register in \p Regs has with \p NewTy 669 static void setRegsToType(MachineRegisterInfo &MRI, ArrayRef<Register> Regs, 670 LLT NewTy) { 671 for (Register Reg : Regs) { 672 assert(MRI.getType(Reg).getSizeInBits() == NewTy.getSizeInBits()); 673 MRI.setType(Reg, NewTy); 674 } 675 } 676 677 static LLT getHalfSizedType(LLT Ty) { 678 if (Ty.isVector()) { 679 assert(Ty.getNumElements() % 2 == 0); 680 return LLT::scalarOrVector(Ty.getNumElements() / 2, Ty.getElementType()); 681 } 682 683 assert(Ty.getSizeInBits() % 2 == 0); 684 return LLT::scalar(Ty.getSizeInBits() / 2); 685 } 686 687 /// Legalize instruction \p MI where operands in \p OpIndices must be SGPRs. If 688 /// any of the required SGPR operands are VGPRs, perform a waterfall loop to 689 /// execute the instruction for each unique combination of values in all lanes 690 /// in the wave. The block will be split such that rest of the instructions are 691 /// moved to a new block. 692 /// 693 /// Essentially performs this loop: 694 // 695 /// Save Execution Mask 696 /// For (Lane : Wavefront) { 697 /// Enable Lane, Disable all other lanes 698 /// SGPR = read SGPR value for current lane from VGPR 699 /// VGPRResult[Lane] = use_op SGPR 700 /// } 701 /// Restore Execution Mask 702 /// 703 /// There is additional complexity to try for compare values to identify the 704 /// unique values used. 705 bool AMDGPURegisterBankInfo::executeInWaterfallLoop( 706 MachineIRBuilder &B, 707 iterator_range<MachineBasicBlock::iterator> Range, 708 SmallSet<Register, 4> &SGPROperandRegs, 709 MachineRegisterInfo &MRI) const { 710 SmallVector<Register, 4> ResultRegs; 711 SmallVector<Register, 4> InitResultRegs; 712 SmallVector<Register, 4> PhiRegs; 713 714 // Track use registers which have already been expanded with a readfirstlane 715 // sequence. This may have multiple uses if moving a sequence. 716 DenseMap<Register, Register> WaterfalledRegMap; 717 718 MachineBasicBlock &MBB = B.getMBB(); 719 MachineFunction *MF = &B.getMF(); 720 721 const TargetRegisterClass *WaveRC = TRI->getWaveMaskRegClass(); 722 const unsigned WaveAndOpc = Subtarget.isWave32() ? 723 AMDGPU::S_AND_B32 : AMDGPU::S_AND_B64; 724 const unsigned MovTermOpc = Subtarget.isWave32() ? 725 AMDGPU::S_MOV_B32_term : AMDGPU::S_MOV_B64_term; 726 const unsigned XorTermOpc = Subtarget.isWave32() ? 727 AMDGPU::S_XOR_B32_term : AMDGPU::S_XOR_B64_term; 728 const unsigned AndSaveExecOpc = Subtarget.isWave32() ? 729 AMDGPU::S_AND_SAVEEXEC_B32 : AMDGPU::S_AND_SAVEEXEC_B64; 730 const unsigned ExecReg = Subtarget.isWave32() ? 731 AMDGPU::EXEC_LO : AMDGPU::EXEC; 732 733 #ifndef NDEBUG 734 const int OrigRangeSize = std::distance(Range.begin(), Range.end()); 735 #endif 736 737 for (MachineInstr &MI : Range) { 738 for (MachineOperand &Def : MI.defs()) { 739 if (MRI.use_nodbg_empty(Def.getReg())) 740 continue; 741 742 LLT ResTy = MRI.getType(Def.getReg()); 743 const RegisterBank *DefBank = getRegBank(Def.getReg(), MRI, *TRI); 744 ResultRegs.push_back(Def.getReg()); 745 Register InitReg = B.buildUndef(ResTy).getReg(0); 746 Register PhiReg = MRI.createGenericVirtualRegister(ResTy); 747 InitResultRegs.push_back(InitReg); 748 PhiRegs.push_back(PhiReg); 749 MRI.setRegBank(PhiReg, *DefBank); 750 MRI.setRegBank(InitReg, *DefBank); 751 } 752 } 753 754 Register SaveExecReg = MRI.createVirtualRegister(WaveRC); 755 Register InitSaveExecReg = MRI.createVirtualRegister(WaveRC); 756 757 // Don't bother using generic instructions/registers for the exec mask. 758 B.buildInstr(TargetOpcode::IMPLICIT_DEF) 759 .addDef(InitSaveExecReg); 760 761 Register PhiExec = MRI.createVirtualRegister(WaveRC); 762 Register NewExec = MRI.createVirtualRegister(WaveRC); 763 764 // To insert the loop we need to split the block. Move everything before this 765 // point to a new block, and insert a new empty block before this instruction. 766 MachineBasicBlock *LoopBB = MF->CreateMachineBasicBlock(); 767 MachineBasicBlock *RemainderBB = MF->CreateMachineBasicBlock(); 768 MachineBasicBlock *RestoreExecBB = MF->CreateMachineBasicBlock(); 769 MachineFunction::iterator MBBI(MBB); 770 ++MBBI; 771 MF->insert(MBBI, LoopBB); 772 MF->insert(MBBI, RestoreExecBB); 773 MF->insert(MBBI, RemainderBB); 774 775 LoopBB->addSuccessor(RestoreExecBB); 776 LoopBB->addSuccessor(LoopBB); 777 778 // Move the rest of the block into a new block. 779 RemainderBB->transferSuccessorsAndUpdatePHIs(&MBB); 780 RemainderBB->splice(RemainderBB->begin(), &MBB, Range.end(), MBB.end()); 781 782 MBB.addSuccessor(LoopBB); 783 RestoreExecBB->addSuccessor(RemainderBB); 784 785 B.setInsertPt(*LoopBB, LoopBB->end()); 786 787 B.buildInstr(TargetOpcode::PHI) 788 .addDef(PhiExec) 789 .addReg(InitSaveExecReg) 790 .addMBB(&MBB) 791 .addReg(NewExec) 792 .addMBB(LoopBB); 793 794 for (auto Result : zip(InitResultRegs, ResultRegs, PhiRegs)) { 795 B.buildInstr(TargetOpcode::G_PHI) 796 .addDef(std::get<2>(Result)) 797 .addReg(std::get<0>(Result)) // Initial value / implicit_def 798 .addMBB(&MBB) 799 .addReg(std::get<1>(Result)) // Mid-loop value. 800 .addMBB(LoopBB); 801 } 802 803 const DebugLoc &DL = B.getDL(); 804 805 MachineInstr &FirstInst = *Range.begin(); 806 807 // Move the instruction into the loop. Note we moved everything after 808 // Range.end() already into a new block, so Range.end() is no longer valid. 809 LoopBB->splice(LoopBB->end(), &MBB, Range.begin(), MBB.end()); 810 811 // Figure out the iterator range after splicing the instructions. 812 MachineBasicBlock::iterator NewBegin = FirstInst.getIterator(); 813 auto NewEnd = LoopBB->end(); 814 815 MachineBasicBlock::iterator I = Range.begin(); 816 B.setInsertPt(*LoopBB, I); 817 818 Register CondReg; 819 820 assert(std::distance(NewBegin, NewEnd) == OrigRangeSize); 821 822 for (MachineInstr &MI : make_range(NewBegin, NewEnd)) { 823 for (MachineOperand &Op : MI.uses()) { 824 if (!Op.isReg() || Op.isDef()) 825 continue; 826 827 Register OldReg = Op.getReg(); 828 if (!SGPROperandRegs.count(OldReg)) 829 continue; 830 831 // See if we already processed this register in another instruction in the 832 // sequence. 833 auto OldVal = WaterfalledRegMap.find(OldReg); 834 if (OldVal != WaterfalledRegMap.end()) { 835 Op.setReg(OldVal->second); 836 continue; 837 } 838 839 Register OpReg = Op.getReg(); 840 LLT OpTy = MRI.getType(OpReg); 841 842 const RegisterBank *OpBank = getRegBank(OpReg, MRI, *TRI); 843 if (OpBank != &AMDGPU::VGPRRegBank) { 844 // Insert copy from AGPR to VGPR before the loop. 845 B.setMBB(MBB); 846 OpReg = B.buildCopy(OpTy, OpReg).getReg(0); 847 MRI.setRegBank(OpReg, AMDGPU::VGPRRegBank); 848 B.setInstr(*I); 849 } 850 851 unsigned OpSize = OpTy.getSizeInBits(); 852 853 // Can only do a readlane of 32-bit pieces. 854 if (OpSize == 32) { 855 // Avoid extra copies in the simple case of one 32-bit register. 856 Register CurrentLaneOpReg 857 = MRI.createVirtualRegister(&AMDGPU::SReg_32_XM0RegClass); 858 MRI.setType(CurrentLaneOpReg, OpTy); 859 860 constrainGenericRegister(OpReg, AMDGPU::VGPR_32RegClass, MRI); 861 // Read the next variant <- also loop target. 862 BuildMI(*LoopBB, I, DL, TII->get(AMDGPU::V_READFIRSTLANE_B32), 863 CurrentLaneOpReg) 864 .addReg(OpReg); 865 866 Register NewCondReg = MRI.createVirtualRegister(WaveRC); 867 bool First = CondReg == AMDGPU::NoRegister; 868 if (First) 869 CondReg = NewCondReg; 870 871 // Compare the just read M0 value to all possible Idx values. 872 B.buildInstr(AMDGPU::V_CMP_EQ_U32_e64) 873 .addDef(NewCondReg) 874 .addReg(CurrentLaneOpReg) 875 .addReg(OpReg); 876 Op.setReg(CurrentLaneOpReg); 877 878 if (!First) { 879 Register AndReg = MRI.createVirtualRegister(WaveRC); 880 881 // If there are multiple operands to consider, and the conditions. 882 B.buildInstr(WaveAndOpc) 883 .addDef(AndReg) 884 .addReg(NewCondReg) 885 .addReg(CondReg); 886 CondReg = AndReg; 887 } 888 } else { 889 LLT S32 = LLT::scalar(32); 890 SmallVector<Register, 8> ReadlanePieces; 891 892 // The compares can be done as 64-bit, but the extract needs to be done 893 // in 32-bit pieces. 894 895 bool Is64 = OpSize % 64 == 0; 896 897 LLT UnmergeTy = OpSize % 64 == 0 ? LLT::scalar(64) : LLT::scalar(32); 898 unsigned CmpOp = OpSize % 64 == 0 ? AMDGPU::V_CMP_EQ_U64_e64 899 : AMDGPU::V_CMP_EQ_U32_e64; 900 901 // The compares can be done as 64-bit, but the extract needs to be done 902 // in 32-bit pieces. 903 904 // Insert the unmerge before the loop. 905 906 B.setMBB(MBB); 907 auto Unmerge = B.buildUnmerge(UnmergeTy, OpReg); 908 B.setInstr(*I); 909 910 unsigned NumPieces = Unmerge->getNumOperands() - 1; 911 for (unsigned PieceIdx = 0; PieceIdx != NumPieces; ++PieceIdx) { 912 Register UnmergePiece = Unmerge.getReg(PieceIdx); 913 914 Register CurrentLaneOpReg; 915 if (Is64) { 916 Register CurrentLaneOpRegLo = MRI.createGenericVirtualRegister(S32); 917 Register CurrentLaneOpRegHi = MRI.createGenericVirtualRegister(S32); 918 919 MRI.setRegClass(UnmergePiece, &AMDGPU::VReg_64RegClass); 920 MRI.setRegClass(CurrentLaneOpRegLo, &AMDGPU::SReg_32_XM0RegClass); 921 MRI.setRegClass(CurrentLaneOpRegHi, &AMDGPU::SReg_32_XM0RegClass); 922 923 // Read the next variant <- also loop target. 924 BuildMI(*LoopBB, I, DL, TII->get(AMDGPU::V_READFIRSTLANE_B32), 925 CurrentLaneOpRegLo) 926 .addReg(UnmergePiece, 0, AMDGPU::sub0); 927 928 // Read the next variant <- also loop target. 929 BuildMI(*LoopBB, I, DL, TII->get(AMDGPU::V_READFIRSTLANE_B32), 930 CurrentLaneOpRegHi) 931 .addReg(UnmergePiece, 0, AMDGPU::sub1); 932 933 CurrentLaneOpReg = 934 B.buildMerge(LLT::scalar(64), 935 {CurrentLaneOpRegLo, CurrentLaneOpRegHi}) 936 .getReg(0); 937 938 MRI.setRegClass(CurrentLaneOpReg, &AMDGPU::SReg_64_XEXECRegClass); 939 940 if (OpTy.getScalarSizeInBits() == 64) { 941 // If we need to produce a 64-bit element vector, so use the 942 // merged pieces 943 ReadlanePieces.push_back(CurrentLaneOpReg); 944 } else { 945 // 32-bit element type. 946 ReadlanePieces.push_back(CurrentLaneOpRegLo); 947 ReadlanePieces.push_back(CurrentLaneOpRegHi); 948 } 949 } else { 950 CurrentLaneOpReg = MRI.createGenericVirtualRegister(S32); 951 MRI.setRegClass(UnmergePiece, &AMDGPU::VGPR_32RegClass); 952 MRI.setRegClass(CurrentLaneOpReg, &AMDGPU::SReg_32_XM0RegClass); 953 954 // Read the next variant <- also loop target. 955 BuildMI(*LoopBB, I, DL, TII->get(AMDGPU::V_READFIRSTLANE_B32), 956 CurrentLaneOpReg) 957 .addReg(UnmergePiece); 958 ReadlanePieces.push_back(CurrentLaneOpReg); 959 } 960 961 Register NewCondReg = MRI.createVirtualRegister(WaveRC); 962 bool First = CondReg == AMDGPU::NoRegister; 963 if (First) 964 CondReg = NewCondReg; 965 966 B.buildInstr(CmpOp) 967 .addDef(NewCondReg) 968 .addReg(CurrentLaneOpReg) 969 .addReg(UnmergePiece); 970 971 if (!First) { 972 Register AndReg = MRI.createVirtualRegister(WaveRC); 973 974 // If there are multiple operands to consider, and the conditions. 975 B.buildInstr(WaveAndOpc) 976 .addDef(AndReg) 977 .addReg(NewCondReg) 978 .addReg(CondReg); 979 CondReg = AndReg; 980 } 981 } 982 983 // FIXME: Build merge seems to switch to CONCAT_VECTORS but not 984 // BUILD_VECTOR 985 if (OpTy.isVector()) { 986 auto Merge = B.buildBuildVector(OpTy, ReadlanePieces); 987 Op.setReg(Merge.getReg(0)); 988 } else { 989 auto Merge = B.buildMerge(OpTy, ReadlanePieces); 990 Op.setReg(Merge.getReg(0)); 991 } 992 993 MRI.setRegBank(Op.getReg(), AMDGPU::SGPRRegBank); 994 } 995 996 // Make sure we don't re-process this register again. 997 WaterfalledRegMap.insert(std::make_pair(OldReg, Op.getReg())); 998 } 999 } 1000 1001 B.setInsertPt(*LoopBB, LoopBB->end()); 1002 1003 // Update EXEC, save the original EXEC value to VCC. 1004 B.buildInstr(AndSaveExecOpc) 1005 .addDef(NewExec) 1006 .addReg(CondReg, RegState::Kill); 1007 1008 MRI.setSimpleHint(NewExec, CondReg); 1009 1010 // Update EXEC, switch all done bits to 0 and all todo bits to 1. 1011 B.buildInstr(XorTermOpc) 1012 .addDef(ExecReg) 1013 .addReg(ExecReg) 1014 .addReg(NewExec); 1015 1016 // XXX - s_xor_b64 sets scc to 1 if the result is nonzero, so can we use 1017 // s_cbranch_scc0? 1018 1019 // Loop back to V_READFIRSTLANE_B32 if there are still variants to cover. 1020 B.buildInstr(AMDGPU::S_CBRANCH_EXECNZ) 1021 .addMBB(LoopBB); 1022 1023 // Save the EXEC mask before the loop. 1024 BuildMI(MBB, MBB.end(), DL, TII->get(MovTermOpc), SaveExecReg) 1025 .addReg(ExecReg); 1026 1027 // Restore the EXEC mask after the loop. 1028 B.setMBB(*RestoreExecBB); 1029 B.buildInstr(MovTermOpc) 1030 .addDef(ExecReg) 1031 .addReg(SaveExecReg); 1032 1033 // Set the insert point after the original instruction, so any new 1034 // instructions will be in the remainder. 1035 B.setInsertPt(*RemainderBB, RemainderBB->begin()); 1036 1037 return true; 1038 } 1039 1040 // Return any unique registers used by \p MI at \p OpIndices that need to be 1041 // handled in a waterfall loop. Returns these registers in \p 1042 // SGPROperandRegs. Returns true if there are any operands to handle and a 1043 // waterfall loop is necessary. 1044 bool AMDGPURegisterBankInfo::collectWaterfallOperands( 1045 SmallSet<Register, 4> &SGPROperandRegs, MachineInstr &MI, 1046 MachineRegisterInfo &MRI, ArrayRef<unsigned> OpIndices) const { 1047 for (unsigned Op : OpIndices) { 1048 assert(MI.getOperand(Op).isUse()); 1049 Register Reg = MI.getOperand(Op).getReg(); 1050 const RegisterBank *OpBank = getRegBank(Reg, MRI, *TRI); 1051 if (OpBank->getID() != AMDGPU::SGPRRegBankID) 1052 SGPROperandRegs.insert(Reg); 1053 } 1054 1055 // No operands need to be replaced, so no need to loop. 1056 return !SGPROperandRegs.empty(); 1057 } 1058 1059 bool AMDGPURegisterBankInfo::executeInWaterfallLoop( 1060 MachineIRBuilder &B, MachineInstr &MI, MachineRegisterInfo &MRI, 1061 ArrayRef<unsigned> OpIndices) const { 1062 // Use a set to avoid extra readfirstlanes in the case where multiple operands 1063 // are the same register. 1064 SmallSet<Register, 4> SGPROperandRegs; 1065 1066 if (!collectWaterfallOperands(SGPROperandRegs, MI, MRI, OpIndices)) 1067 return false; 1068 1069 MachineBasicBlock::iterator I = MI.getIterator(); 1070 return executeInWaterfallLoop(B, make_range(I, std::next(I)), 1071 SGPROperandRegs, MRI); 1072 } 1073 1074 bool AMDGPURegisterBankInfo::executeInWaterfallLoop( 1075 MachineInstr &MI, MachineRegisterInfo &MRI, 1076 ArrayRef<unsigned> OpIndices) const { 1077 MachineIRBuilder B(MI); 1078 return executeInWaterfallLoop(B, MI, MRI, OpIndices); 1079 } 1080 1081 // Legalize an operand that must be an SGPR by inserting a readfirstlane. 1082 void AMDGPURegisterBankInfo::constrainOpWithReadfirstlane( 1083 MachineInstr &MI, MachineRegisterInfo &MRI, unsigned OpIdx) const { 1084 Register Reg = MI.getOperand(OpIdx).getReg(); 1085 const RegisterBank *Bank = getRegBank(Reg, MRI, *TRI); 1086 if (Bank == &AMDGPU::SGPRRegBank) 1087 return; 1088 1089 LLT Ty = MRI.getType(Reg); 1090 MachineIRBuilder B(MI); 1091 1092 if (Bank != &AMDGPU::VGPRRegBank) { 1093 // We need to copy from AGPR to VGPR 1094 Reg = B.buildCopy(Ty, Reg).getReg(0); 1095 MRI.setRegBank(Reg, AMDGPU::VGPRRegBank); 1096 } 1097 1098 Register SGPR = MRI.createVirtualRegister(&AMDGPU::SReg_32RegClass); 1099 B.buildInstr(AMDGPU::V_READFIRSTLANE_B32) 1100 .addDef(SGPR) 1101 .addReg(Reg); 1102 1103 MRI.setType(SGPR, Ty); 1104 1105 const TargetRegisterClass *Constrained = 1106 constrainGenericRegister(Reg, AMDGPU::VGPR_32RegClass, MRI); 1107 (void)Constrained; 1108 assert(Constrained && "Failed to constrain readfirstlane src reg"); 1109 1110 MI.getOperand(OpIdx).setReg(SGPR); 1111 } 1112 1113 /// Split \p Ty into 2 pieces. The first will have \p FirstSize bits, and the 1114 /// rest will be in the remainder. 1115 static std::pair<LLT, LLT> splitUnequalType(LLT Ty, unsigned FirstSize) { 1116 unsigned TotalSize = Ty.getSizeInBits(); 1117 if (!Ty.isVector()) 1118 return {LLT::scalar(FirstSize), LLT::scalar(TotalSize - FirstSize)}; 1119 1120 LLT EltTy = Ty.getElementType(); 1121 unsigned EltSize = EltTy.getSizeInBits(); 1122 assert(FirstSize % EltSize == 0); 1123 1124 unsigned FirstPartNumElts = FirstSize / EltSize; 1125 unsigned RemainderElts = (TotalSize - FirstSize) / EltSize; 1126 1127 return {LLT::scalarOrVector(FirstPartNumElts, EltTy), 1128 LLT::scalarOrVector(RemainderElts, EltTy)}; 1129 } 1130 1131 static LLT widen96To128(LLT Ty) { 1132 if (!Ty.isVector()) 1133 return LLT::scalar(128); 1134 1135 LLT EltTy = Ty.getElementType(); 1136 assert(128 % EltTy.getSizeInBits() == 0); 1137 return LLT::vector(128 / EltTy.getSizeInBits(), EltTy); 1138 } 1139 1140 bool AMDGPURegisterBankInfo::applyMappingLoad(MachineInstr &MI, 1141 const AMDGPURegisterBankInfo::OperandsMapper &OpdMapper, 1142 MachineRegisterInfo &MRI) const { 1143 Register DstReg = MI.getOperand(0).getReg(); 1144 const LLT LoadTy = MRI.getType(DstReg); 1145 unsigned LoadSize = LoadTy.getSizeInBits(); 1146 const unsigned MaxNonSmrdLoadSize = 128; 1147 1148 const RegisterBank *PtrBank = 1149 OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 1150 if (PtrBank == &AMDGPU::SGPRRegBank) { 1151 // If the pointer is an SGPR, we ordinarily have nothing to do. 1152 if (LoadSize != 96) 1153 return false; 1154 1155 MachineMemOperand *MMO = *MI.memoperands_begin(); 1156 Register PtrReg = MI.getOperand(1).getReg(); 1157 // 96-bit loads are only available for vector loads. We need to split this 1158 // into a 64-bit part, and 32 (unless we can widen to a 128-bit load). 1159 1160 ApplyRegBankMapping O(*this, MRI, &AMDGPU::SGPRRegBank); 1161 MachineIRBuilder B(MI, O); 1162 1163 if (MMO->getAlign() < Align(16)) { 1164 LLT Part64, Part32; 1165 std::tie(Part64, Part32) = splitUnequalType(LoadTy, 64); 1166 auto Load0 = B.buildLoadFromOffset(Part64, PtrReg, *MMO, 0); 1167 auto Load1 = B.buildLoadFromOffset(Part32, PtrReg, *MMO, 8); 1168 1169 auto Undef = B.buildUndef(LoadTy); 1170 auto Ins0 = B.buildInsert(LoadTy, Undef, Load0, 0); 1171 B.buildInsert(MI.getOperand(0), Ins0, Load1, 64); 1172 } else { 1173 LLT WiderTy = widen96To128(LoadTy); 1174 auto WideLoad = B.buildLoadFromOffset(WiderTy, PtrReg, *MMO, 0); 1175 B.buildExtract(MI.getOperand(0), WideLoad, 0); 1176 } 1177 1178 MI.eraseFromParent(); 1179 return true; 1180 } 1181 1182 // 128-bit loads are supported for all instruction types. 1183 if (LoadSize <= MaxNonSmrdLoadSize) 1184 return false; 1185 1186 SmallVector<Register, 16> DefRegs(OpdMapper.getVRegs(0)); 1187 SmallVector<Register, 1> SrcRegs(OpdMapper.getVRegs(1)); 1188 1189 if (SrcRegs.empty()) 1190 SrcRegs.push_back(MI.getOperand(1).getReg()); 1191 1192 assert(LoadSize % MaxNonSmrdLoadSize == 0); 1193 1194 // RegBankSelect only emits scalar types, so we need to reset the pointer 1195 // operand to a pointer type. 1196 Register BasePtrReg = SrcRegs[0]; 1197 LLT PtrTy = MRI.getType(MI.getOperand(1).getReg()); 1198 MRI.setType(BasePtrReg, PtrTy); 1199 1200 unsigned NumSplitParts = LoadTy.getSizeInBits() / MaxNonSmrdLoadSize; 1201 const LLT LoadSplitTy = LoadTy.divide(NumSplitParts); 1202 ApplyRegBankMapping Observer(*this, MRI, &AMDGPU::VGPRRegBank); 1203 MachineIRBuilder B(MI, Observer); 1204 LegalizerHelper Helper(B.getMF(), Observer, B); 1205 1206 if (LoadTy.isVector()) { 1207 if (Helper.fewerElementsVector(MI, 0, LoadSplitTy) != LegalizerHelper::Legalized) 1208 return false; 1209 } else { 1210 if (Helper.narrowScalar(MI, 0, LoadSplitTy) != LegalizerHelper::Legalized) 1211 return false; 1212 } 1213 1214 MRI.setRegBank(DstReg, AMDGPU::VGPRRegBank); 1215 return true; 1216 } 1217 1218 bool AMDGPURegisterBankInfo::applyMappingDynStackAlloc( 1219 MachineInstr &MI, 1220 const AMDGPURegisterBankInfo::OperandsMapper &OpdMapper, 1221 MachineRegisterInfo &MRI) const { 1222 const MachineFunction &MF = *MI.getMF(); 1223 const GCNSubtarget &ST = MF.getSubtarget<GCNSubtarget>(); 1224 const auto &TFI = *ST.getFrameLowering(); 1225 1226 // Guard in case the stack growth direction ever changes with scratch 1227 // instructions. 1228 if (TFI.getStackGrowthDirection() == TargetFrameLowering::StackGrowsDown) 1229 return false; 1230 1231 Register Dst = MI.getOperand(0).getReg(); 1232 Register AllocSize = MI.getOperand(1).getReg(); 1233 Align Alignment = assumeAligned(MI.getOperand(2).getImm()); 1234 1235 const RegisterBank *SizeBank = getRegBank(AllocSize, MRI, *TRI); 1236 1237 // TODO: Need to emit a wave reduction to get the maximum size. 1238 if (SizeBank != &AMDGPU::SGPRRegBank) 1239 return false; 1240 1241 LLT PtrTy = MRI.getType(Dst); 1242 LLT IntPtrTy = LLT::scalar(PtrTy.getSizeInBits()); 1243 1244 const SIMachineFunctionInfo *Info = MF.getInfo<SIMachineFunctionInfo>(); 1245 Register SPReg = Info->getStackPtrOffsetReg(); 1246 ApplyRegBankMapping ApplyBank(*this, MRI, &AMDGPU::SGPRRegBank); 1247 MachineIRBuilder B(MI, ApplyBank); 1248 1249 auto WaveSize = B.buildConstant(LLT::scalar(32), ST.getWavefrontSizeLog2()); 1250 auto ScaledSize = B.buildShl(IntPtrTy, AllocSize, WaveSize); 1251 1252 auto SPCopy = B.buildCopy(PtrTy, SPReg); 1253 if (Alignment > TFI.getStackAlign()) { 1254 auto PtrAdd = B.buildPtrAdd(PtrTy, SPCopy, ScaledSize); 1255 B.buildMaskLowPtrBits(Dst, PtrAdd, 1256 Log2(Alignment) + ST.getWavefrontSizeLog2()); 1257 } else { 1258 B.buildPtrAdd(Dst, SPCopy, ScaledSize); 1259 } 1260 1261 MI.eraseFromParent(); 1262 return true; 1263 } 1264 1265 bool AMDGPURegisterBankInfo::applyMappingImage( 1266 MachineInstr &MI, const AMDGPURegisterBankInfo::OperandsMapper &OpdMapper, 1267 MachineRegisterInfo &MRI, int RsrcIdx) const { 1268 const int NumDefs = MI.getNumExplicitDefs(); 1269 1270 // The reported argument index is relative to the IR intrinsic call arguments, 1271 // so we need to shift by the number of defs and the intrinsic ID. 1272 RsrcIdx += NumDefs + 1; 1273 1274 // Insert copies to VGPR arguments. 1275 applyDefaultMapping(OpdMapper); 1276 1277 // Fixup any SGPR arguments. 1278 SmallVector<unsigned, 4> SGPRIndexes; 1279 for (int I = NumDefs, NumOps = MI.getNumOperands(); I != NumOps; ++I) { 1280 if (!MI.getOperand(I).isReg()) 1281 continue; 1282 1283 // If this intrinsic has a sampler, it immediately follows rsrc. 1284 if (I == RsrcIdx || I == RsrcIdx + 1) 1285 SGPRIndexes.push_back(I); 1286 } 1287 1288 executeInWaterfallLoop(MI, MRI, SGPRIndexes); 1289 return true; 1290 } 1291 1292 static Register getSrcRegIgnoringCopies(const MachineRegisterInfo &MRI, 1293 Register Reg) { 1294 MachineInstr *Def = getDefIgnoringCopies(Reg, MRI); 1295 if (!Def) 1296 return Reg; 1297 1298 // TODO: Guard against this being an implicit def 1299 return Def->getOperand(0).getReg(); 1300 } 1301 1302 // Analyze a combined offset from an llvm.amdgcn.s.buffer intrinsic and store 1303 // the three offsets (voffset, soffset and instoffset) 1304 static unsigned setBufferOffsets(MachineIRBuilder &B, 1305 const AMDGPURegisterBankInfo &RBI, 1306 Register CombinedOffset, Register &VOffsetReg, 1307 Register &SOffsetReg, int64_t &InstOffsetVal, 1308 Align Alignment) { 1309 const LLT S32 = LLT::scalar(32); 1310 MachineRegisterInfo *MRI = B.getMRI(); 1311 1312 if (Optional<int64_t> Imm = getConstantVRegSExtVal(CombinedOffset, *MRI)) { 1313 uint32_t SOffset, ImmOffset; 1314 if (AMDGPU::splitMUBUFOffset(*Imm, SOffset, ImmOffset, &RBI.Subtarget, 1315 Alignment)) { 1316 VOffsetReg = B.buildConstant(S32, 0).getReg(0); 1317 SOffsetReg = B.buildConstant(S32, SOffset).getReg(0); 1318 InstOffsetVal = ImmOffset; 1319 1320 B.getMRI()->setRegBank(VOffsetReg, AMDGPU::VGPRRegBank); 1321 B.getMRI()->setRegBank(SOffsetReg, AMDGPU::SGPRRegBank); 1322 return SOffset + ImmOffset; 1323 } 1324 } 1325 1326 Register Base; 1327 unsigned Offset; 1328 1329 std::tie(Base, Offset) = 1330 AMDGPU::getBaseWithConstantOffset(*MRI, CombinedOffset); 1331 1332 uint32_t SOffset, ImmOffset; 1333 if (Offset > 0 && AMDGPU::splitMUBUFOffset(Offset, SOffset, ImmOffset, 1334 &RBI.Subtarget, Alignment)) { 1335 if (RBI.getRegBank(Base, *MRI, *RBI.TRI) == &AMDGPU::VGPRRegBank) { 1336 VOffsetReg = Base; 1337 SOffsetReg = B.buildConstant(S32, SOffset).getReg(0); 1338 B.getMRI()->setRegBank(SOffsetReg, AMDGPU::SGPRRegBank); 1339 InstOffsetVal = ImmOffset; 1340 return 0; // XXX - Why is this 0? 1341 } 1342 1343 // If we have SGPR base, we can use it for soffset. 1344 if (SOffset == 0) { 1345 VOffsetReg = B.buildConstant(S32, 0).getReg(0); 1346 B.getMRI()->setRegBank(VOffsetReg, AMDGPU::VGPRRegBank); 1347 SOffsetReg = Base; 1348 InstOffsetVal = ImmOffset; 1349 return 0; // XXX - Why is this 0? 1350 } 1351 } 1352 1353 // Handle the variable sgpr + vgpr case. 1354 if (MachineInstr *Add = getOpcodeDef(AMDGPU::G_ADD, CombinedOffset, *MRI)) { 1355 Register Src0 = getSrcRegIgnoringCopies(*MRI, Add->getOperand(1).getReg()); 1356 Register Src1 = getSrcRegIgnoringCopies(*MRI, Add->getOperand(2).getReg()); 1357 1358 const RegisterBank *Src0Bank = RBI.getRegBank(Src0, *MRI, *RBI.TRI); 1359 const RegisterBank *Src1Bank = RBI.getRegBank(Src1, *MRI, *RBI.TRI); 1360 1361 if (Src0Bank == &AMDGPU::VGPRRegBank && Src1Bank == &AMDGPU::SGPRRegBank) { 1362 VOffsetReg = Src0; 1363 SOffsetReg = Src1; 1364 return 0; 1365 } 1366 1367 if (Src0Bank == &AMDGPU::SGPRRegBank && Src1Bank == &AMDGPU::VGPRRegBank) { 1368 VOffsetReg = Src1; 1369 SOffsetReg = Src0; 1370 return 0; 1371 } 1372 } 1373 1374 // Ensure we have a VGPR for the combined offset. This could be an issue if we 1375 // have an SGPR offset and a VGPR resource. 1376 if (RBI.getRegBank(CombinedOffset, *MRI, *RBI.TRI) == &AMDGPU::VGPRRegBank) { 1377 VOffsetReg = CombinedOffset; 1378 } else { 1379 VOffsetReg = B.buildCopy(S32, CombinedOffset).getReg(0); 1380 B.getMRI()->setRegBank(VOffsetReg, AMDGPU::VGPRRegBank); 1381 } 1382 1383 SOffsetReg = B.buildConstant(S32, 0).getReg(0); 1384 B.getMRI()->setRegBank(SOffsetReg, AMDGPU::SGPRRegBank); 1385 return 0; 1386 } 1387 1388 bool AMDGPURegisterBankInfo::applyMappingSBufferLoad( 1389 const OperandsMapper &OpdMapper) const { 1390 MachineInstr &MI = OpdMapper.getMI(); 1391 MachineRegisterInfo &MRI = OpdMapper.getMRI(); 1392 1393 const LLT S32 = LLT::scalar(32); 1394 Register Dst = MI.getOperand(0).getReg(); 1395 LLT Ty = MRI.getType(Dst); 1396 1397 const RegisterBank *RSrcBank = 1398 OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 1399 const RegisterBank *OffsetBank = 1400 OpdMapper.getInstrMapping().getOperandMapping(2).BreakDown[0].RegBank; 1401 if (RSrcBank == &AMDGPU::SGPRRegBank && 1402 OffsetBank == &AMDGPU::SGPRRegBank) 1403 return true; // Legal mapping 1404 1405 // FIXME: 96-bit case was widened during legalize. We neeed to narrow it back 1406 // here but don't have an MMO. 1407 1408 unsigned LoadSize = Ty.getSizeInBits(); 1409 int NumLoads = 1; 1410 if (LoadSize == 256 || LoadSize == 512) { 1411 NumLoads = LoadSize / 128; 1412 Ty = Ty.divide(NumLoads); 1413 } 1414 1415 // Use the alignment to ensure that the required offsets will fit into the 1416 // immediate offsets. 1417 const Align Alignment = NumLoads > 1 ? Align(16 * NumLoads) : Align(1); 1418 1419 MachineIRBuilder B(MI); 1420 MachineFunction &MF = B.getMF(); 1421 1422 Register SOffset; 1423 Register VOffset; 1424 int64_t ImmOffset = 0; 1425 1426 unsigned MMOOffset = setBufferOffsets(B, *this, MI.getOperand(2).getReg(), 1427 VOffset, SOffset, ImmOffset, Alignment); 1428 1429 // TODO: 96-bit loads were widened to 128-bit results. Shrink the result if we 1430 // can, but we neeed to track an MMO for that. 1431 const unsigned MemSize = (Ty.getSizeInBits() + 7) / 8; 1432 const Align MemAlign(4); // FIXME: ABI type alignment? 1433 MachineMemOperand *BaseMMO = MF.getMachineMemOperand( 1434 MachinePointerInfo(), 1435 MachineMemOperand::MOLoad | MachineMemOperand::MODereferenceable | 1436 MachineMemOperand::MOInvariant, 1437 MemSize, MemAlign); 1438 if (MMOOffset != 0) 1439 BaseMMO = MF.getMachineMemOperand(BaseMMO, MMOOffset, MemSize); 1440 1441 // If only the offset is divergent, emit a MUBUF buffer load instead. We can 1442 // assume that the buffer is unswizzled. 1443 1444 Register RSrc = MI.getOperand(1).getReg(); 1445 Register VIndex = B.buildConstant(S32, 0).getReg(0); 1446 B.getMRI()->setRegBank(VIndex, AMDGPU::VGPRRegBank); 1447 1448 SmallVector<Register, 4> LoadParts(NumLoads); 1449 1450 MachineBasicBlock::iterator MII = MI.getIterator(); 1451 MachineInstrSpan Span(MII, &B.getMBB()); 1452 1453 for (int i = 0; i < NumLoads; ++i) { 1454 if (NumLoads == 1) { 1455 LoadParts[i] = Dst; 1456 } else { 1457 LoadParts[i] = MRI.createGenericVirtualRegister(Ty); 1458 MRI.setRegBank(LoadParts[i], AMDGPU::VGPRRegBank); 1459 } 1460 1461 MachineMemOperand *MMO = BaseMMO; 1462 if (i != 0) 1463 BaseMMO = MF.getMachineMemOperand(BaseMMO, MMOOffset + 16 * i, MemSize); 1464 1465 B.buildInstr(AMDGPU::G_AMDGPU_BUFFER_LOAD) 1466 .addDef(LoadParts[i]) // vdata 1467 .addUse(RSrc) // rsrc 1468 .addUse(VIndex) // vindex 1469 .addUse(VOffset) // voffset 1470 .addUse(SOffset) // soffset 1471 .addImm(ImmOffset + 16 * i) // offset(imm) 1472 .addImm(0) // cachepolicy, swizzled buffer(imm) 1473 .addImm(0) // idxen(imm) 1474 .addMemOperand(MMO); 1475 } 1476 1477 // TODO: If only the resource is a VGPR, it may be better to execute the 1478 // scalar load in the waterfall loop if the resource is expected to frequently 1479 // be dynamically uniform. 1480 if (RSrcBank != &AMDGPU::SGPRRegBank) { 1481 // Remove the original instruction to avoid potentially confusing the 1482 // waterfall loop logic. 1483 B.setInstr(*Span.begin()); 1484 MI.eraseFromParent(); 1485 1486 SmallSet<Register, 4> OpsToWaterfall; 1487 1488 OpsToWaterfall.insert(RSrc); 1489 executeInWaterfallLoop(B, make_range(Span.begin(), Span.end()), 1490 OpsToWaterfall, MRI); 1491 } 1492 1493 if (NumLoads != 1) { 1494 if (Ty.isVector()) 1495 B.buildConcatVectors(Dst, LoadParts); 1496 else 1497 B.buildMerge(Dst, LoadParts); 1498 } 1499 1500 // We removed the instruction earlier with a waterfall loop. 1501 if (RSrcBank == &AMDGPU::SGPRRegBank) 1502 MI.eraseFromParent(); 1503 1504 return true; 1505 } 1506 1507 bool AMDGPURegisterBankInfo::applyMappingBFEIntrinsic( 1508 const OperandsMapper &OpdMapper, bool Signed) const { 1509 MachineInstr &MI = OpdMapper.getMI(); 1510 MachineRegisterInfo &MRI = OpdMapper.getMRI(); 1511 1512 // Insert basic copies 1513 applyDefaultMapping(OpdMapper); 1514 1515 Register DstReg = MI.getOperand(0).getReg(); 1516 LLT Ty = MRI.getType(DstReg); 1517 1518 const LLT S32 = LLT::scalar(32); 1519 1520 const RegisterBank *DstBank = 1521 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 1522 if (DstBank == &AMDGPU::VGPRRegBank) { 1523 if (Ty == S32) 1524 return true; 1525 1526 // TODO: 64-bit version is scalar only, so we need to expand this. 1527 return false; 1528 } 1529 1530 Register SrcReg = MI.getOperand(2).getReg(); 1531 Register OffsetReg = MI.getOperand(3).getReg(); 1532 Register WidthReg = MI.getOperand(4).getReg(); 1533 1534 // The scalar form packs the offset and width in a single operand. 1535 1536 ApplyRegBankMapping ApplyBank(*this, MRI, &AMDGPU::SGPRRegBank); 1537 MachineIRBuilder B(MI, ApplyBank); 1538 1539 // Ensure the high bits are clear to insert the offset. 1540 auto OffsetMask = B.buildConstant(S32, maskTrailingOnes<unsigned>(6)); 1541 auto ClampOffset = B.buildAnd(S32, OffsetReg, OffsetMask); 1542 1543 // Zeros out the low bits, so don't bother clamping the input value. 1544 auto ShiftWidth = B.buildShl(S32, WidthReg, B.buildConstant(S32, 16)); 1545 1546 // Transformation function, pack the offset and width of a BFE into 1547 // the format expected by the S_BFE_I32 / S_BFE_U32. In the second 1548 // source, bits [5:0] contain the offset and bits [22:16] the width. 1549 auto MergedInputs = B.buildOr(S32, ClampOffset, ShiftWidth); 1550 1551 // TODO: It might be worth using a pseudo here to avoid scc clobber and 1552 // register class constraints. 1553 unsigned Opc = Ty == S32 ? (Signed ? AMDGPU::S_BFE_I32 : AMDGPU::S_BFE_U32) : 1554 (Signed ? AMDGPU::S_BFE_I64 : AMDGPU::S_BFE_U64); 1555 1556 auto MIB = B.buildInstr(Opc, {DstReg}, {SrcReg, MergedInputs}); 1557 if (!constrainSelectedInstRegOperands(*MIB, *TII, *TRI, *this)) 1558 llvm_unreachable("failed to constrain BFE"); 1559 1560 MI.eraseFromParent(); 1561 return true; 1562 } 1563 1564 // Return a suitable opcode for extending the operands of Opc when widening. 1565 static unsigned getExtendOp(unsigned Opc) { 1566 switch (Opc) { 1567 case TargetOpcode::G_ASHR: 1568 case TargetOpcode::G_SMIN: 1569 case TargetOpcode::G_SMAX: 1570 return TargetOpcode::G_SEXT; 1571 case TargetOpcode::G_LSHR: 1572 case TargetOpcode::G_UMIN: 1573 case TargetOpcode::G_UMAX: 1574 return TargetOpcode::G_ZEXT; 1575 default: 1576 return TargetOpcode::G_ANYEXT; 1577 } 1578 } 1579 1580 // Emit a legalized extension from <2 x s16> to 2 32-bit components, avoiding 1581 // any illegal vector extend or unmerge operations. 1582 static std::pair<Register, Register> 1583 unpackV2S16ToS32(MachineIRBuilder &B, Register Src, unsigned ExtOpcode) { 1584 const LLT S32 = LLT::scalar(32); 1585 auto Bitcast = B.buildBitcast(S32, Src); 1586 1587 if (ExtOpcode == TargetOpcode::G_SEXT) { 1588 auto ExtLo = B.buildSExtInReg(S32, Bitcast, 16); 1589 auto ShiftHi = B.buildAShr(S32, Bitcast, B.buildConstant(S32, 16)); 1590 return std::make_pair(ExtLo.getReg(0), ShiftHi.getReg(0)); 1591 } 1592 1593 auto ShiftHi = B.buildLShr(S32, Bitcast, B.buildConstant(S32, 16)); 1594 if (ExtOpcode == TargetOpcode::G_ZEXT) { 1595 auto ExtLo = B.buildAnd(S32, Bitcast, B.buildConstant(S32, 0xffff)); 1596 return std::make_pair(ExtLo.getReg(0), ShiftHi.getReg(0)); 1597 } 1598 1599 assert(ExtOpcode == TargetOpcode::G_ANYEXT); 1600 return std::make_pair(Bitcast.getReg(0), ShiftHi.getReg(0)); 1601 } 1602 1603 // For cases where only a single copy is inserted for matching register banks. 1604 // Replace the register in the instruction operand 1605 static bool substituteSimpleCopyRegs( 1606 const AMDGPURegisterBankInfo::OperandsMapper &OpdMapper, unsigned OpIdx) { 1607 SmallVector<unsigned, 1> SrcReg(OpdMapper.getVRegs(OpIdx)); 1608 if (!SrcReg.empty()) { 1609 assert(SrcReg.size() == 1); 1610 OpdMapper.getMI().getOperand(OpIdx).setReg(SrcReg[0]); 1611 return true; 1612 } 1613 1614 return false; 1615 } 1616 1617 /// Handle register layout difference for f16 images for some subtargets. 1618 Register AMDGPURegisterBankInfo::handleD16VData(MachineIRBuilder &B, 1619 MachineRegisterInfo &MRI, 1620 Register Reg) const { 1621 if (!Subtarget.hasUnpackedD16VMem()) 1622 return Reg; 1623 1624 const LLT S16 = LLT::scalar(16); 1625 LLT StoreVT = MRI.getType(Reg); 1626 if (!StoreVT.isVector() || StoreVT.getElementType() != S16) 1627 return Reg; 1628 1629 auto Unmerge = B.buildUnmerge(S16, Reg); 1630 1631 1632 SmallVector<Register, 4> WideRegs; 1633 for (int I = 0, E = Unmerge->getNumOperands() - 1; I != E; ++I) 1634 WideRegs.push_back(Unmerge.getReg(I)); 1635 1636 const LLT S32 = LLT::scalar(32); 1637 int NumElts = StoreVT.getNumElements(); 1638 1639 return B.buildMerge(LLT::vector(NumElts, S32), WideRegs).getReg(0); 1640 } 1641 1642 static std::pair<Register, unsigned> 1643 getBaseWithConstantOffset(MachineRegisterInfo &MRI, Register Reg) { 1644 int64_t Const; 1645 if (mi_match(Reg, MRI, m_ICst(Const))) 1646 return std::make_pair(Register(), Const); 1647 1648 Register Base; 1649 if (mi_match(Reg, MRI, m_GAdd(m_Reg(Base), m_ICst(Const)))) 1650 return std::make_pair(Base, Const); 1651 1652 // TODO: Handle G_OR used for add case 1653 return std::make_pair(Reg, 0); 1654 } 1655 1656 std::pair<Register, unsigned> 1657 AMDGPURegisterBankInfo::splitBufferOffsets(MachineIRBuilder &B, 1658 Register OrigOffset) const { 1659 const unsigned MaxImm = 4095; 1660 Register BaseReg; 1661 unsigned ImmOffset; 1662 const LLT S32 = LLT::scalar(32); 1663 1664 std::tie(BaseReg, ImmOffset) = getBaseWithConstantOffset(*B.getMRI(), 1665 OrigOffset); 1666 1667 unsigned C1 = 0; 1668 if (ImmOffset != 0) { 1669 // If the immediate value is too big for the immoffset field, put the value 1670 // and -4096 into the immoffset field so that the value that is copied/added 1671 // for the voffset field is a multiple of 4096, and it stands more chance 1672 // of being CSEd with the copy/add for another similar load/store. 1673 // However, do not do that rounding down to a multiple of 4096 if that is a 1674 // negative number, as it appears to be illegal to have a negative offset 1675 // in the vgpr, even if adding the immediate offset makes it positive. 1676 unsigned Overflow = ImmOffset & ~MaxImm; 1677 ImmOffset -= Overflow; 1678 if ((int32_t)Overflow < 0) { 1679 Overflow += ImmOffset; 1680 ImmOffset = 0; 1681 } 1682 1683 C1 = ImmOffset; 1684 if (Overflow != 0) { 1685 if (!BaseReg) 1686 BaseReg = B.buildConstant(S32, Overflow).getReg(0); 1687 else { 1688 auto OverflowVal = B.buildConstant(S32, Overflow); 1689 BaseReg = B.buildAdd(S32, BaseReg, OverflowVal).getReg(0); 1690 } 1691 } 1692 } 1693 1694 if (!BaseReg) 1695 BaseReg = B.buildConstant(S32, 0).getReg(0); 1696 1697 return {BaseReg, C1}; 1698 } 1699 1700 static bool isZero(Register Reg, MachineRegisterInfo &MRI) { 1701 int64_t C; 1702 return mi_match(Reg, MRI, m_ICst(C)) && C == 0; 1703 } 1704 1705 static unsigned extractGLC(unsigned CachePolicy) { 1706 return CachePolicy & 1; 1707 } 1708 1709 static unsigned extractSLC(unsigned CachePolicy) { 1710 return (CachePolicy >> 1) & 1; 1711 } 1712 1713 static unsigned extractDLC(unsigned CachePolicy) { 1714 return (CachePolicy >> 2) & 1; 1715 } 1716 1717 MachineInstr * 1718 AMDGPURegisterBankInfo::selectStoreIntrinsic(MachineIRBuilder &B, 1719 MachineInstr &MI) const { 1720 MachineRegisterInfo &MRI = *B.getMRI(); 1721 executeInWaterfallLoop(B, MI, MRI, {2, 4}); 1722 1723 // FIXME: DAG lowering brokenly changes opcode based on FP vs. integer. 1724 1725 Register VData = MI.getOperand(1).getReg(); 1726 LLT Ty = MRI.getType(VData); 1727 1728 int EltSize = Ty.getScalarSizeInBits(); 1729 int Size = Ty.getSizeInBits(); 1730 1731 // FIXME: Broken integer truncstore. 1732 if (EltSize != 32) 1733 report_fatal_error("unhandled intrinsic store"); 1734 1735 // FIXME: Verifier should enforce 1 MMO for these intrinsics. 1736 const int MemSize = (*MI.memoperands_begin())->getSize(); 1737 1738 1739 Register RSrc = MI.getOperand(2).getReg(); 1740 Register VOffset = MI.getOperand(3).getReg(); 1741 Register SOffset = MI.getOperand(4).getReg(); 1742 unsigned CachePolicy = MI.getOperand(5).getImm(); 1743 1744 unsigned ImmOffset; 1745 std::tie(VOffset, ImmOffset) = splitBufferOffsets(B, VOffset); 1746 1747 const bool Offen = !isZero(VOffset, MRI); 1748 1749 unsigned Opc = AMDGPU::BUFFER_STORE_DWORD_OFFEN_exact; 1750 switch (8 * MemSize) { 1751 case 8: 1752 Opc = Offen ? AMDGPU::BUFFER_STORE_BYTE_OFFEN_exact : 1753 AMDGPU::BUFFER_STORE_BYTE_OFFSET_exact; 1754 break; 1755 case 16: 1756 Opc = Offen ? AMDGPU::BUFFER_STORE_SHORT_OFFEN_exact : 1757 AMDGPU::BUFFER_STORE_SHORT_OFFSET_exact; 1758 break; 1759 default: 1760 Opc = Offen ? AMDGPU::BUFFER_STORE_DWORD_OFFEN_exact : 1761 AMDGPU::BUFFER_STORE_DWORD_OFFSET_exact; 1762 if (Size > 32) 1763 Opc = AMDGPU::getMUBUFOpcode(Opc, Size / 32); 1764 break; 1765 } 1766 1767 1768 // Set the insertion point back to the instruction in case it was moved into a 1769 // loop. 1770 B.setInstr(MI); 1771 1772 MachineInstrBuilder MIB = B.buildInstr(Opc) 1773 .addUse(VData); 1774 1775 if (Offen) 1776 MIB.addUse(VOffset); 1777 1778 MIB.addUse(RSrc) 1779 .addUse(SOffset) 1780 .addImm(ImmOffset) 1781 .addImm(extractGLC(CachePolicy)) 1782 .addImm(extractSLC(CachePolicy)) 1783 .addImm(0) // tfe: FIXME: Remove from inst 1784 .addImm(extractDLC(CachePolicy)) 1785 .cloneMemRefs(MI); 1786 1787 // FIXME: We need a way to report failure from applyMappingImpl. 1788 // Insert constrain copies before inserting the loop. 1789 if (!constrainSelectedInstRegOperands(*MIB, *TII, *TRI, *this)) 1790 report_fatal_error("failed to constrain selected store intrinsic"); 1791 1792 return MIB; 1793 } 1794 1795 bool AMDGPURegisterBankInfo::buildVCopy(MachineIRBuilder &B, Register DstReg, 1796 Register SrcReg) const { 1797 MachineRegisterInfo &MRI = *B.getMRI(); 1798 LLT SrcTy = MRI.getType(SrcReg); 1799 if (SrcTy.getSizeInBits() == 32) { 1800 // Use a v_mov_b32 here to make the exec dependency explicit. 1801 B.buildInstr(AMDGPU::V_MOV_B32_e32) 1802 .addDef(DstReg) 1803 .addUse(SrcReg); 1804 return constrainGenericRegister(DstReg, AMDGPU::VGPR_32RegClass, MRI) && 1805 constrainGenericRegister(SrcReg, AMDGPU::SReg_32RegClass, MRI); 1806 } 1807 1808 Register TmpReg0 = MRI.createVirtualRegister(&AMDGPU::VGPR_32RegClass); 1809 Register TmpReg1 = MRI.createVirtualRegister(&AMDGPU::VGPR_32RegClass); 1810 1811 B.buildInstr(AMDGPU::V_MOV_B32_e32) 1812 .addDef(TmpReg0) 1813 .addUse(SrcReg, 0, AMDGPU::sub0); 1814 B.buildInstr(AMDGPU::V_MOV_B32_e32) 1815 .addDef(TmpReg1) 1816 .addUse(SrcReg, 0, AMDGPU::sub1); 1817 B.buildInstr(AMDGPU::REG_SEQUENCE) 1818 .addDef(DstReg) 1819 .addUse(TmpReg0) 1820 .addImm(AMDGPU::sub0) 1821 .addUse(TmpReg1) 1822 .addImm(AMDGPU::sub1); 1823 1824 return constrainGenericRegister(SrcReg, AMDGPU::SReg_64RegClass, MRI) && 1825 constrainGenericRegister(DstReg, AMDGPU::VReg_64RegClass, MRI); 1826 } 1827 1828 /// Utility function for pushing dynamic vector indexes with a constant offset 1829 /// into waterwall loops. 1830 static void reinsertVectorIndexAdd(MachineIRBuilder &B, 1831 MachineInstr &IdxUseInstr, 1832 unsigned OpIdx, 1833 unsigned ConstOffset) { 1834 MachineRegisterInfo &MRI = *B.getMRI(); 1835 const LLT S32 = LLT::scalar(32); 1836 Register WaterfallIdx = IdxUseInstr.getOperand(OpIdx).getReg(); 1837 B.setInsertPt(*IdxUseInstr.getParent(), IdxUseInstr.getIterator()); 1838 1839 auto MaterializedOffset = B.buildConstant(S32, ConstOffset); 1840 1841 auto Add = B.buildAdd(S32, WaterfallIdx, MaterializedOffset); 1842 MRI.setRegBank(MaterializedOffset.getReg(0), AMDGPU::SGPRRegBank); 1843 MRI.setRegBank(Add.getReg(0), AMDGPU::SGPRRegBank); 1844 IdxUseInstr.getOperand(OpIdx).setReg(Add.getReg(0)); 1845 } 1846 1847 /// Implement extending a 32-bit value to a 64-bit value. \p Lo32Reg is the 1848 /// original 32-bit source value (to be inserted in the low part of the combined 1849 /// 64-bit result), and \p Hi32Reg is the high half of the combined 64-bit 1850 /// value. 1851 static void extendLow32IntoHigh32(MachineIRBuilder &B, 1852 Register Hi32Reg, Register Lo32Reg, 1853 unsigned ExtOpc, 1854 const RegisterBank &RegBank, 1855 bool IsBooleanSrc = false) { 1856 if (ExtOpc == AMDGPU::G_ZEXT) { 1857 B.buildConstant(Hi32Reg, 0); 1858 } else if (ExtOpc == AMDGPU::G_SEXT) { 1859 if (IsBooleanSrc) { 1860 // If we know the original source was an s1, the high half is the same as 1861 // the low. 1862 B.buildCopy(Hi32Reg, Lo32Reg); 1863 } else { 1864 // Replicate sign bit from 32-bit extended part. 1865 auto ShiftAmt = B.buildConstant(LLT::scalar(32), 31); 1866 B.getMRI()->setRegBank(ShiftAmt.getReg(0), RegBank); 1867 B.buildAShr(Hi32Reg, Lo32Reg, ShiftAmt); 1868 } 1869 } else { 1870 assert(ExtOpc == AMDGPU::G_ANYEXT && "not an integer extension"); 1871 B.buildUndef(Hi32Reg); 1872 } 1873 } 1874 1875 bool AMDGPURegisterBankInfo::foldExtractEltToCmpSelect( 1876 MachineInstr &MI, MachineRegisterInfo &MRI, 1877 const OperandsMapper &OpdMapper) const { 1878 1879 Register VecReg = MI.getOperand(1).getReg(); 1880 Register Idx = MI.getOperand(2).getReg(); 1881 1882 const RegisterBank &IdxBank = 1883 *OpdMapper.getInstrMapping().getOperandMapping(2).BreakDown[0].RegBank; 1884 1885 bool IsDivergentIdx = IdxBank != AMDGPU::SGPRRegBank; 1886 1887 LLT VecTy = MRI.getType(VecReg); 1888 unsigned EltSize = VecTy.getScalarSizeInBits(); 1889 unsigned NumElem = VecTy.getNumElements(); 1890 1891 if (!SITargetLowering::shouldExpandVectorDynExt(EltSize, NumElem, 1892 IsDivergentIdx)) 1893 return false; 1894 1895 MachineIRBuilder B(MI); 1896 LLT S32 = LLT::scalar(32); 1897 1898 const RegisterBank &DstBank = 1899 *OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 1900 const RegisterBank &SrcBank = 1901 *OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 1902 1903 const RegisterBank &CCBank = 1904 (DstBank == AMDGPU::SGPRRegBank && 1905 SrcBank == AMDGPU::SGPRRegBank && 1906 IdxBank == AMDGPU::SGPRRegBank) ? AMDGPU::SGPRRegBank 1907 : AMDGPU::VCCRegBank; 1908 LLT CCTy = (CCBank == AMDGPU::SGPRRegBank) ? S32 : LLT::scalar(1); 1909 1910 if (CCBank == AMDGPU::VCCRegBank && IdxBank == AMDGPU::SGPRRegBank) { 1911 Idx = B.buildCopy(S32, Idx)->getOperand(0).getReg(); 1912 MRI.setRegBank(Idx, AMDGPU::VGPRRegBank); 1913 } 1914 1915 LLT EltTy = VecTy.getScalarType(); 1916 SmallVector<Register, 2> DstRegs(OpdMapper.getVRegs(0)); 1917 unsigned NumLanes = DstRegs.size(); 1918 if (!NumLanes) 1919 NumLanes = 1; 1920 else 1921 EltTy = MRI.getType(DstRegs[0]); 1922 1923 auto UnmergeToEltTy = B.buildUnmerge(EltTy, VecReg); 1924 SmallVector<Register, 2> Res(NumLanes); 1925 for (unsigned L = 0; L < NumLanes; ++L) 1926 Res[L] = UnmergeToEltTy.getReg(L); 1927 1928 for (unsigned I = 1; I < NumElem; ++I) { 1929 auto IC = B.buildConstant(S32, I); 1930 MRI.setRegBank(IC->getOperand(0).getReg(), AMDGPU::SGPRRegBank); 1931 auto Cmp = B.buildICmp(CmpInst::ICMP_EQ, CCTy, Idx, IC); 1932 MRI.setRegBank(Cmp->getOperand(0).getReg(), CCBank); 1933 1934 for (unsigned L = 0; L < NumLanes; ++L) { 1935 auto S = B.buildSelect(EltTy, Cmp, 1936 UnmergeToEltTy.getReg(I * NumLanes + L), Res[L]); 1937 1938 for (unsigned N : { 0, 2, 3 }) 1939 MRI.setRegBank(S->getOperand(N).getReg(), DstBank); 1940 1941 Res[L] = S->getOperand(0).getReg(); 1942 } 1943 } 1944 1945 for (unsigned L = 0; L < NumLanes; ++L) { 1946 Register DstReg = (NumLanes == 1) ? MI.getOperand(0).getReg() : DstRegs[L]; 1947 B.buildCopy(DstReg, Res[L]); 1948 MRI.setRegBank(DstReg, DstBank); 1949 } 1950 1951 MRI.setRegBank(MI.getOperand(0).getReg(), DstBank); 1952 MI.eraseFromParent(); 1953 1954 return true; 1955 } 1956 1957 bool AMDGPURegisterBankInfo::foldInsertEltToCmpSelect( 1958 MachineInstr &MI, MachineRegisterInfo &MRI, 1959 const OperandsMapper &OpdMapper) const { 1960 1961 Register VecReg = MI.getOperand(1).getReg(); 1962 Register Idx = MI.getOperand(3).getReg(); 1963 1964 const RegisterBank &IdxBank = 1965 *OpdMapper.getInstrMapping().getOperandMapping(3).BreakDown[0].RegBank; 1966 1967 bool IsDivergentIdx = IdxBank != AMDGPU::SGPRRegBank; 1968 1969 LLT VecTy = MRI.getType(VecReg); 1970 unsigned EltSize = VecTy.getScalarSizeInBits(); 1971 unsigned NumElem = VecTy.getNumElements(); 1972 1973 if (!SITargetLowering::shouldExpandVectorDynExt(EltSize, NumElem, 1974 IsDivergentIdx)) 1975 return false; 1976 1977 MachineIRBuilder B(MI); 1978 LLT S32 = LLT::scalar(32); 1979 1980 const RegisterBank &DstBank = 1981 *OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 1982 const RegisterBank &SrcBank = 1983 *OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 1984 const RegisterBank &InsBank = 1985 *OpdMapper.getInstrMapping().getOperandMapping(2).BreakDown[0].RegBank; 1986 1987 const RegisterBank &CCBank = 1988 (DstBank == AMDGPU::SGPRRegBank && 1989 SrcBank == AMDGPU::SGPRRegBank && 1990 InsBank == AMDGPU::SGPRRegBank && 1991 IdxBank == AMDGPU::SGPRRegBank) ? AMDGPU::SGPRRegBank 1992 : AMDGPU::VCCRegBank; 1993 LLT CCTy = (CCBank == AMDGPU::SGPRRegBank) ? S32 : LLT::scalar(1); 1994 1995 if (CCBank == AMDGPU::VCCRegBank && IdxBank == AMDGPU::SGPRRegBank) { 1996 Idx = B.buildCopy(S32, Idx)->getOperand(0).getReg(); 1997 MRI.setRegBank(Idx, AMDGPU::VGPRRegBank); 1998 } 1999 2000 LLT EltTy = VecTy.getScalarType(); 2001 SmallVector<Register, 2> InsRegs(OpdMapper.getVRegs(2)); 2002 unsigned NumLanes = InsRegs.size(); 2003 if (!NumLanes) { 2004 NumLanes = 1; 2005 InsRegs.push_back(MI.getOperand(2).getReg()); 2006 } else { 2007 EltTy = MRI.getType(InsRegs[0]); 2008 } 2009 2010 auto UnmergeToEltTy = B.buildUnmerge(EltTy, VecReg); 2011 SmallVector<Register, 16> Ops(NumElem * NumLanes); 2012 2013 for (unsigned I = 0; I < NumElem; ++I) { 2014 auto IC = B.buildConstant(S32, I); 2015 MRI.setRegBank(IC->getOperand(0).getReg(), AMDGPU::SGPRRegBank); 2016 auto Cmp = B.buildICmp(CmpInst::ICMP_EQ, CCTy, Idx, IC); 2017 MRI.setRegBank(Cmp->getOperand(0).getReg(), CCBank); 2018 2019 for (unsigned L = 0; L < NumLanes; ++L) { 2020 auto S = B.buildSelect(EltTy, Cmp, InsRegs[L], 2021 UnmergeToEltTy.getReg(I * NumLanes + L)); 2022 2023 for (unsigned N : { 0, 2, 3 }) 2024 MRI.setRegBank(S->getOperand(N).getReg(), DstBank); 2025 2026 Ops[I * NumLanes + L] = S->getOperand(0).getReg(); 2027 } 2028 } 2029 2030 LLT MergeTy = LLT::vector(Ops.size(), EltTy); 2031 if (MergeTy == MRI.getType(MI.getOperand(0).getReg())) { 2032 B.buildBuildVector(MI.getOperand(0), Ops); 2033 } else { 2034 auto Vec = B.buildBuildVector(MergeTy, Ops); 2035 MRI.setRegBank(Vec->getOperand(0).getReg(), DstBank); 2036 B.buildBitcast(MI.getOperand(0).getReg(), Vec); 2037 } 2038 2039 MRI.setRegBank(MI.getOperand(0).getReg(), DstBank); 2040 MI.eraseFromParent(); 2041 2042 return true; 2043 } 2044 2045 void AMDGPURegisterBankInfo::applyMappingImpl( 2046 const OperandsMapper &OpdMapper) const { 2047 MachineInstr &MI = OpdMapper.getMI(); 2048 unsigned Opc = MI.getOpcode(); 2049 MachineRegisterInfo &MRI = OpdMapper.getMRI(); 2050 switch (Opc) { 2051 case AMDGPU::G_PHI: { 2052 Register DstReg = MI.getOperand(0).getReg(); 2053 LLT DstTy = MRI.getType(DstReg); 2054 if (DstTy != LLT::scalar(1)) 2055 break; 2056 2057 const LLT S32 = LLT::scalar(32); 2058 const RegisterBank *DstBank = 2059 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2060 if (DstBank == &AMDGPU::VCCRegBank) { 2061 applyDefaultMapping(OpdMapper); 2062 // The standard handling only considers the result register bank for 2063 // phis. For VCC, blindly inserting a copy when the phi is lowered will 2064 // produce an invalid copy. We can only copy with some kind of compare to 2065 // get a vector boolean result. Insert a regitser bank copy that will be 2066 // correctly lowered to a compare. 2067 MachineIRBuilder B(*MI.getParent()->getParent()); 2068 2069 for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) { 2070 Register SrcReg = MI.getOperand(I).getReg(); 2071 const RegisterBank *SrcBank = getRegBank(SrcReg, MRI, *TRI); 2072 2073 if (SrcBank != &AMDGPU::VCCRegBank) { 2074 MachineBasicBlock *SrcMBB = MI.getOperand(I + 1).getMBB(); 2075 B.setInsertPt(*SrcMBB, SrcMBB->getFirstTerminator()); 2076 2077 auto Copy = B.buildCopy(LLT::scalar(1), SrcReg); 2078 MRI.setRegBank(Copy.getReg(0), AMDGPU::VCCRegBank); 2079 MI.getOperand(I).setReg(Copy.getReg(0)); 2080 } 2081 } 2082 2083 return; 2084 } 2085 2086 // Phi handling is strange and only considers the bank of the destination. 2087 substituteSimpleCopyRegs(OpdMapper, 0); 2088 2089 // Promote SGPR/VGPR booleans to s32 2090 MachineFunction *MF = MI.getParent()->getParent(); 2091 ApplyRegBankMapping ApplyBank(*this, MRI, DstBank); 2092 MachineIRBuilder B(MI, ApplyBank); 2093 LegalizerHelper Helper(*MF, ApplyBank, B); 2094 2095 if (Helper.widenScalar(MI, 0, S32) != LegalizerHelper::Legalized) 2096 llvm_unreachable("widen scalar should have succeeded"); 2097 2098 return; 2099 } 2100 case AMDGPU::G_ICMP: 2101 case AMDGPU::G_UADDO: 2102 case AMDGPU::G_USUBO: 2103 case AMDGPU::G_UADDE: 2104 case AMDGPU::G_SADDE: 2105 case AMDGPU::G_USUBE: 2106 case AMDGPU::G_SSUBE: { 2107 unsigned BoolDstOp = Opc == AMDGPU::G_ICMP ? 0 : 1; 2108 Register DstReg = MI.getOperand(BoolDstOp).getReg(); 2109 2110 const RegisterBank *DstBank = 2111 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2112 if (DstBank != &AMDGPU::SGPRRegBank) 2113 break; 2114 2115 const bool HasCarryIn = MI.getNumOperands() == 5; 2116 2117 // If this is a scalar compare, promote the result to s32, as the selection 2118 // will end up using a copy to a 32-bit vreg. 2119 const LLT S32 = LLT::scalar(32); 2120 Register NewDstReg = MRI.createGenericVirtualRegister(S32); 2121 MRI.setRegBank(NewDstReg, AMDGPU::SGPRRegBank); 2122 MI.getOperand(BoolDstOp).setReg(NewDstReg); 2123 MachineIRBuilder B(MI); 2124 2125 if (HasCarryIn) { 2126 Register NewSrcReg = MRI.createGenericVirtualRegister(S32); 2127 MRI.setRegBank(NewSrcReg, AMDGPU::SGPRRegBank); 2128 B.buildZExt(NewSrcReg, MI.getOperand(4).getReg()); 2129 MI.getOperand(4).setReg(NewSrcReg); 2130 } 2131 2132 MachineBasicBlock *MBB = MI.getParent(); 2133 B.setInsertPt(*MBB, std::next(MI.getIterator())); 2134 2135 // If we had a constrained VCC result register, a copy was inserted to VCC 2136 // from SGPR. 2137 SmallVector<Register, 1> DefRegs(OpdMapper.getVRegs(0)); 2138 if (DefRegs.empty()) 2139 DefRegs.push_back(DstReg); 2140 B.buildTrunc(DefRegs[0], NewDstReg); 2141 return; 2142 } 2143 case AMDGPU::G_SELECT: { 2144 Register DstReg = MI.getOperand(0).getReg(); 2145 LLT DstTy = MRI.getType(DstReg); 2146 2147 SmallVector<Register, 1> CondRegs(OpdMapper.getVRegs(1)); 2148 if (CondRegs.empty()) 2149 CondRegs.push_back(MI.getOperand(1).getReg()); 2150 else { 2151 assert(CondRegs.size() == 1); 2152 } 2153 2154 const RegisterBank *CondBank = getRegBank(CondRegs[0], MRI, *TRI); 2155 if (CondBank == &AMDGPU::SGPRRegBank) { 2156 MachineIRBuilder B(MI); 2157 const LLT S32 = LLT::scalar(32); 2158 Register NewCondReg = MRI.createGenericVirtualRegister(S32); 2159 MRI.setRegBank(NewCondReg, AMDGPU::SGPRRegBank); 2160 2161 MI.getOperand(1).setReg(NewCondReg); 2162 B.buildZExt(NewCondReg, CondRegs[0]); 2163 } 2164 2165 if (DstTy.getSizeInBits() != 64) 2166 break; 2167 2168 MachineIRBuilder B(MI); 2169 LLT HalfTy = getHalfSizedType(DstTy); 2170 2171 SmallVector<Register, 2> DefRegs(OpdMapper.getVRegs(0)); 2172 SmallVector<Register, 2> Src1Regs(OpdMapper.getVRegs(2)); 2173 SmallVector<Register, 2> Src2Regs(OpdMapper.getVRegs(3)); 2174 2175 // All inputs are SGPRs, nothing special to do. 2176 if (DefRegs.empty()) { 2177 assert(Src1Regs.empty() && Src2Regs.empty()); 2178 break; 2179 } 2180 2181 if (Src1Regs.empty()) 2182 split64BitValueForMapping(B, Src1Regs, HalfTy, MI.getOperand(2).getReg()); 2183 else { 2184 setRegsToType(MRI, Src1Regs, HalfTy); 2185 } 2186 2187 if (Src2Regs.empty()) 2188 split64BitValueForMapping(B, Src2Regs, HalfTy, MI.getOperand(3).getReg()); 2189 else 2190 setRegsToType(MRI, Src2Regs, HalfTy); 2191 2192 setRegsToType(MRI, DefRegs, HalfTy); 2193 2194 B.buildSelect(DefRegs[0], CondRegs[0], Src1Regs[0], Src2Regs[0]); 2195 B.buildSelect(DefRegs[1], CondRegs[0], Src1Regs[1], Src2Regs[1]); 2196 2197 MRI.setRegBank(DstReg, AMDGPU::VGPRRegBank); 2198 MI.eraseFromParent(); 2199 return; 2200 } 2201 case AMDGPU::G_BRCOND: { 2202 Register CondReg = MI.getOperand(0).getReg(); 2203 // FIXME: Should use legalizer helper, but should change bool ext type. 2204 const RegisterBank *CondBank = 2205 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2206 2207 if (CondBank == &AMDGPU::SGPRRegBank) { 2208 MachineIRBuilder B(MI); 2209 const LLT S32 = LLT::scalar(32); 2210 Register NewCondReg = MRI.createGenericVirtualRegister(S32); 2211 MRI.setRegBank(NewCondReg, AMDGPU::SGPRRegBank); 2212 2213 MI.getOperand(0).setReg(NewCondReg); 2214 B.buildZExt(NewCondReg, CondReg); 2215 return; 2216 } 2217 2218 break; 2219 } 2220 case AMDGPU::G_AND: 2221 case AMDGPU::G_OR: 2222 case AMDGPU::G_XOR: { 2223 // 64-bit and is only available on the SALU, so split into 2 32-bit ops if 2224 // there is a VGPR input. 2225 Register DstReg = MI.getOperand(0).getReg(); 2226 LLT DstTy = MRI.getType(DstReg); 2227 2228 if (DstTy.getSizeInBits() == 1) { 2229 const RegisterBank *DstBank = 2230 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2231 if (DstBank == &AMDGPU::VCCRegBank) 2232 break; 2233 2234 MachineFunction *MF = MI.getParent()->getParent(); 2235 ApplyRegBankMapping ApplyBank(*this, MRI, DstBank); 2236 MachineIRBuilder B(MI, ApplyBank); 2237 LegalizerHelper Helper(*MF, ApplyBank, B); 2238 2239 if (Helper.widenScalar(MI, 0, LLT::scalar(32)) != 2240 LegalizerHelper::Legalized) 2241 llvm_unreachable("widen scalar should have succeeded"); 2242 return; 2243 } 2244 2245 if (DstTy.getSizeInBits() != 64) 2246 break; 2247 2248 LLT HalfTy = getHalfSizedType(DstTy); 2249 SmallVector<Register, 2> DefRegs(OpdMapper.getVRegs(0)); 2250 SmallVector<Register, 2> Src0Regs(OpdMapper.getVRegs(1)); 2251 SmallVector<Register, 2> Src1Regs(OpdMapper.getVRegs(2)); 2252 2253 // All inputs are SGPRs, nothing special to do. 2254 if (DefRegs.empty()) { 2255 assert(Src0Regs.empty() && Src1Regs.empty()); 2256 break; 2257 } 2258 2259 assert(DefRegs.size() == 2); 2260 assert(Src0Regs.size() == Src1Regs.size() && 2261 (Src0Regs.empty() || Src0Regs.size() == 2)); 2262 2263 // Depending on where the source registers came from, the generic code may 2264 // have decided to split the inputs already or not. If not, we still need to 2265 // extract the values. 2266 MachineIRBuilder B(MI); 2267 2268 if (Src0Regs.empty()) 2269 split64BitValueForMapping(B, Src0Regs, HalfTy, MI.getOperand(1).getReg()); 2270 else 2271 setRegsToType(MRI, Src0Regs, HalfTy); 2272 2273 if (Src1Regs.empty()) 2274 split64BitValueForMapping(B, Src1Regs, HalfTy, MI.getOperand(2).getReg()); 2275 else 2276 setRegsToType(MRI, Src1Regs, HalfTy); 2277 2278 setRegsToType(MRI, DefRegs, HalfTy); 2279 2280 B.buildInstr(Opc, {DefRegs[0]}, {Src0Regs[0], Src1Regs[0]}); 2281 B.buildInstr(Opc, {DefRegs[1]}, {Src0Regs[1], Src1Regs[1]}); 2282 2283 MRI.setRegBank(DstReg, AMDGPU::VGPRRegBank); 2284 MI.eraseFromParent(); 2285 return; 2286 } 2287 case AMDGPU::G_ADD: 2288 case AMDGPU::G_SUB: 2289 case AMDGPU::G_MUL: 2290 case AMDGPU::G_SHL: 2291 case AMDGPU::G_LSHR: 2292 case AMDGPU::G_ASHR: 2293 case AMDGPU::G_SMIN: 2294 case AMDGPU::G_SMAX: 2295 case AMDGPU::G_UMIN: 2296 case AMDGPU::G_UMAX: { 2297 Register DstReg = MI.getOperand(0).getReg(); 2298 LLT DstTy = MRI.getType(DstReg); 2299 2300 // 16-bit operations are VALU only, but can be promoted to 32-bit SALU. 2301 // Packed 16-bit operations need to be scalarized and promoted. 2302 if (DstTy != LLT::scalar(16) && DstTy != LLT::vector(2, 16)) 2303 break; 2304 2305 const RegisterBank *DstBank = 2306 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2307 if (DstBank == &AMDGPU::VGPRRegBank) 2308 break; 2309 2310 const LLT S32 = LLT::scalar(32); 2311 MachineBasicBlock *MBB = MI.getParent(); 2312 MachineFunction *MF = MBB->getParent(); 2313 ApplyRegBankMapping ApplySALU(*this, MRI, &AMDGPU::SGPRRegBank); 2314 MachineIRBuilder B(MI, ApplySALU); 2315 2316 if (DstTy.isVector()) { 2317 Register WideSrc0Lo, WideSrc0Hi; 2318 Register WideSrc1Lo, WideSrc1Hi; 2319 2320 unsigned ExtendOp = getExtendOp(MI.getOpcode()); 2321 std::tie(WideSrc0Lo, WideSrc0Hi) 2322 = unpackV2S16ToS32(B, MI.getOperand(1).getReg(), ExtendOp); 2323 std::tie(WideSrc1Lo, WideSrc1Hi) 2324 = unpackV2S16ToS32(B, MI.getOperand(2).getReg(), ExtendOp); 2325 auto Lo = B.buildInstr(MI.getOpcode(), {S32}, {WideSrc0Lo, WideSrc1Lo}); 2326 auto Hi = B.buildInstr(MI.getOpcode(), {S32}, {WideSrc0Hi, WideSrc1Hi}); 2327 B.buildBuildVectorTrunc(DstReg, {Lo.getReg(0), Hi.getReg(0)}); 2328 MI.eraseFromParent(); 2329 } else { 2330 LegalizerHelper Helper(*MF, ApplySALU, B); 2331 2332 if (Helper.widenScalar(MI, 0, S32) != LegalizerHelper::Legalized) 2333 llvm_unreachable("widen scalar should have succeeded"); 2334 2335 // FIXME: s16 shift amounts should be legal. 2336 if (Opc == AMDGPU::G_SHL || Opc == AMDGPU::G_LSHR || 2337 Opc == AMDGPU::G_ASHR) { 2338 B.setInsertPt(*MBB, MI.getIterator()); 2339 if (Helper.widenScalar(MI, 1, S32) != LegalizerHelper::Legalized) 2340 llvm_unreachable("widen scalar should have succeeded"); 2341 } 2342 } 2343 2344 return; 2345 } 2346 case AMDGPU::G_SEXT_INREG: { 2347 SmallVector<Register, 2> SrcRegs(OpdMapper.getVRegs(1)); 2348 if (SrcRegs.empty()) 2349 break; // Nothing to repair 2350 2351 const LLT S32 = LLT::scalar(32); 2352 MachineIRBuilder B(MI); 2353 ApplyRegBankMapping O(*this, MRI, &AMDGPU::VGPRRegBank); 2354 GISelObserverWrapper Observer(&O); 2355 B.setChangeObserver(Observer); 2356 2357 // Don't use LegalizerHelper's narrowScalar. It produces unwanted G_SEXTs 2358 // we would need to further expand, and doesn't let us directly set the 2359 // result registers. 2360 SmallVector<Register, 2> DstRegs(OpdMapper.getVRegs(0)); 2361 2362 int Amt = MI.getOperand(2).getImm(); 2363 if (Amt <= 32) { 2364 if (Amt == 32) { 2365 // The low bits are unchanged. 2366 B.buildCopy(DstRegs[0], SrcRegs[0]); 2367 } else { 2368 // Extend in the low bits and propagate the sign bit to the high half. 2369 B.buildSExtInReg(DstRegs[0], SrcRegs[0], Amt); 2370 } 2371 2372 B.buildAShr(DstRegs[1], DstRegs[0], B.buildConstant(S32, 31)); 2373 } else { 2374 // The low bits are unchanged, and extend in the high bits. 2375 B.buildCopy(DstRegs[0], SrcRegs[0]); 2376 B.buildSExtInReg(DstRegs[1], DstRegs[0], Amt - 32); 2377 } 2378 2379 Register DstReg = MI.getOperand(0).getReg(); 2380 MRI.setRegBank(DstReg, AMDGPU::VGPRRegBank); 2381 MI.eraseFromParent(); 2382 return; 2383 } 2384 case AMDGPU::G_CTPOP: 2385 case AMDGPU::G_CTLZ_ZERO_UNDEF: 2386 case AMDGPU::G_CTTZ_ZERO_UNDEF: { 2387 const RegisterBank *DstBank = 2388 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2389 if (DstBank == &AMDGPU::SGPRRegBank) 2390 break; 2391 2392 Register SrcReg = MI.getOperand(1).getReg(); 2393 const LLT S32 = LLT::scalar(32); 2394 LLT Ty = MRI.getType(SrcReg); 2395 if (Ty == S32) 2396 break; 2397 2398 ApplyRegBankMapping ApplyVALU(*this, MRI, &AMDGPU::VGPRRegBank); 2399 MachineIRBuilder B(MI, ApplyVALU); 2400 2401 MachineFunction &MF = B.getMF(); 2402 LegalizerHelper Helper(MF, ApplyVALU, B); 2403 2404 if (Helper.narrowScalar(MI, 1, S32) != LegalizerHelper::Legalized) 2405 llvm_unreachable("narrowScalar should have succeeded"); 2406 return; 2407 } 2408 case AMDGPU::G_SEXT: 2409 case AMDGPU::G_ZEXT: 2410 case AMDGPU::G_ANYEXT: { 2411 Register SrcReg = MI.getOperand(1).getReg(); 2412 LLT SrcTy = MRI.getType(SrcReg); 2413 const bool Signed = Opc == AMDGPU::G_SEXT; 2414 2415 assert(empty(OpdMapper.getVRegs(1))); 2416 2417 MachineIRBuilder B(MI); 2418 const RegisterBank *SrcBank = 2419 OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 2420 2421 Register DstReg = MI.getOperand(0).getReg(); 2422 LLT DstTy = MRI.getType(DstReg); 2423 if (DstTy.isScalar() && 2424 SrcBank != &AMDGPU::SGPRRegBank && 2425 SrcBank != &AMDGPU::VCCRegBank && 2426 // FIXME: Should handle any type that round to s64 when irregular 2427 // breakdowns supported. 2428 DstTy.getSizeInBits() == 64 && 2429 SrcTy.getSizeInBits() <= 32) { 2430 SmallVector<Register, 2> DefRegs(OpdMapper.getVRegs(0)); 2431 2432 // Extend to 32-bit, and then extend the low half. 2433 if (Signed) { 2434 // TODO: Should really be buildSExtOrCopy 2435 B.buildSExtOrTrunc(DefRegs[0], SrcReg); 2436 } else if (Opc == AMDGPU::G_ZEXT) { 2437 B.buildZExtOrTrunc(DefRegs[0], SrcReg); 2438 } else { 2439 B.buildAnyExtOrTrunc(DefRegs[0], SrcReg); 2440 } 2441 2442 extendLow32IntoHigh32(B, DefRegs[1], DefRegs[0], Opc, *SrcBank); 2443 MRI.setRegBank(DstReg, *SrcBank); 2444 MI.eraseFromParent(); 2445 return; 2446 } 2447 2448 if (SrcTy != LLT::scalar(1)) 2449 return; 2450 2451 // It is not legal to have a legalization artifact with a VCC source. Rather 2452 // than introducing a copy, insert the select we would have to select the 2453 // copy to. 2454 if (SrcBank == &AMDGPU::VCCRegBank) { 2455 SmallVector<Register, 2> DefRegs(OpdMapper.getVRegs(0)); 2456 2457 const RegisterBank *DstBank = &AMDGPU::VGPRRegBank; 2458 2459 unsigned DstSize = DstTy.getSizeInBits(); 2460 // 64-bit select is SGPR only 2461 const bool UseSel64 = DstSize > 32 && 2462 SrcBank->getID() == AMDGPU::SGPRRegBankID; 2463 2464 // TODO: Should s16 select be legal? 2465 LLT SelType = UseSel64 ? LLT::scalar(64) : LLT::scalar(32); 2466 auto True = B.buildConstant(SelType, Signed ? -1 : 1); 2467 auto False = B.buildConstant(SelType, 0); 2468 2469 MRI.setRegBank(True.getReg(0), *DstBank); 2470 MRI.setRegBank(False.getReg(0), *DstBank); 2471 MRI.setRegBank(DstReg, *DstBank); 2472 2473 if (DstSize > 32) { 2474 B.buildSelect(DefRegs[0], SrcReg, True, False); 2475 extendLow32IntoHigh32(B, DefRegs[1], DefRegs[0], Opc, *SrcBank, true); 2476 } else if (DstSize < 32) { 2477 auto Sel = B.buildSelect(SelType, SrcReg, True, False); 2478 MRI.setRegBank(Sel.getReg(0), *DstBank); 2479 B.buildTrunc(DstReg, Sel); 2480 } else { 2481 B.buildSelect(DstReg, SrcReg, True, False); 2482 } 2483 2484 MI.eraseFromParent(); 2485 return; 2486 } 2487 2488 break; 2489 } 2490 case AMDGPU::G_BUILD_VECTOR: 2491 case AMDGPU::G_BUILD_VECTOR_TRUNC: { 2492 Register DstReg = MI.getOperand(0).getReg(); 2493 LLT DstTy = MRI.getType(DstReg); 2494 if (DstTy != LLT::vector(2, 16)) 2495 break; 2496 2497 assert(MI.getNumOperands() == 3 && OpdMapper.getVRegs(0).empty()); 2498 substituteSimpleCopyRegs(OpdMapper, 1); 2499 substituteSimpleCopyRegs(OpdMapper, 2); 2500 2501 const RegisterBank *DstBank = 2502 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2503 if (DstBank == &AMDGPU::SGPRRegBank) 2504 break; // Can use S_PACK_* instructions. 2505 2506 MachineIRBuilder B(MI); 2507 2508 Register Lo = MI.getOperand(1).getReg(); 2509 Register Hi = MI.getOperand(2).getReg(); 2510 const LLT S32 = LLT::scalar(32); 2511 2512 const RegisterBank *BankLo = 2513 OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 2514 const RegisterBank *BankHi = 2515 OpdMapper.getInstrMapping().getOperandMapping(2).BreakDown[0].RegBank; 2516 2517 Register ZextLo; 2518 Register ShiftHi; 2519 2520 if (Opc == AMDGPU::G_BUILD_VECTOR) { 2521 ZextLo = B.buildZExt(S32, Lo).getReg(0); 2522 MRI.setRegBank(ZextLo, *BankLo); 2523 2524 Register ZextHi = B.buildZExt(S32, Hi).getReg(0); 2525 MRI.setRegBank(ZextHi, *BankHi); 2526 2527 auto ShiftAmt = B.buildConstant(S32, 16); 2528 MRI.setRegBank(ShiftAmt.getReg(0), *BankHi); 2529 2530 ShiftHi = B.buildShl(S32, ZextHi, ShiftAmt).getReg(0); 2531 MRI.setRegBank(ShiftHi, *BankHi); 2532 } else { 2533 Register MaskLo = B.buildConstant(S32, 0xffff).getReg(0); 2534 MRI.setRegBank(MaskLo, *BankLo); 2535 2536 auto ShiftAmt = B.buildConstant(S32, 16); 2537 MRI.setRegBank(ShiftAmt.getReg(0), *BankHi); 2538 2539 ShiftHi = B.buildShl(S32, Hi, ShiftAmt).getReg(0); 2540 MRI.setRegBank(ShiftHi, *BankHi); 2541 2542 ZextLo = B.buildAnd(S32, Lo, MaskLo).getReg(0); 2543 MRI.setRegBank(ZextLo, *BankLo); 2544 } 2545 2546 auto Or = B.buildOr(S32, ZextLo, ShiftHi); 2547 MRI.setRegBank(Or.getReg(0), *DstBank); 2548 2549 B.buildBitcast(DstReg, Or); 2550 MI.eraseFromParent(); 2551 return; 2552 } 2553 case AMDGPU::G_EXTRACT_VECTOR_ELT: { 2554 SmallVector<Register, 2> DstRegs(OpdMapper.getVRegs(0)); 2555 2556 assert(OpdMapper.getVRegs(1).empty() && OpdMapper.getVRegs(2).empty()); 2557 2558 Register DstReg = MI.getOperand(0).getReg(); 2559 Register SrcReg = MI.getOperand(1).getReg(); 2560 2561 const LLT S32 = LLT::scalar(32); 2562 LLT DstTy = MRI.getType(DstReg); 2563 LLT SrcTy = MRI.getType(SrcReg); 2564 2565 if (foldExtractEltToCmpSelect(MI, MRI, OpdMapper)) 2566 return; 2567 2568 MachineIRBuilder B(MI); 2569 2570 const ValueMapping &DstMapping 2571 = OpdMapper.getInstrMapping().getOperandMapping(0); 2572 const RegisterBank *DstBank = DstMapping.BreakDown[0].RegBank; 2573 const RegisterBank *SrcBank = 2574 OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 2575 const RegisterBank *IdxBank = 2576 OpdMapper.getInstrMapping().getOperandMapping(2).BreakDown[0].RegBank; 2577 2578 Register BaseIdxReg; 2579 unsigned ConstOffset; 2580 std::tie(BaseIdxReg, ConstOffset) = 2581 AMDGPU::getBaseWithConstantOffset(MRI, MI.getOperand(2).getReg()); 2582 2583 // See if the index is an add of a constant which will be foldable by moving 2584 // the base register of the index later if this is going to be executed in a 2585 // waterfall loop. This is essentially to reassociate the add of a constant 2586 // with the readfirstlane. 2587 bool ShouldMoveIndexIntoLoop = IdxBank != &AMDGPU::SGPRRegBank && 2588 ConstOffset > 0 && 2589 ConstOffset < SrcTy.getNumElements(); 2590 2591 // Move the base register. We'll re-insert the add later. 2592 if (ShouldMoveIndexIntoLoop) 2593 MI.getOperand(2).setReg(BaseIdxReg); 2594 2595 // If this is a VGPR result only because the index was a VGPR result, the 2596 // actual indexing will be done on the SGPR source vector, which will 2597 // produce a scalar result. We need to copy to the VGPR result inside the 2598 // waterfall loop. 2599 const bool NeedCopyToVGPR = DstBank == &AMDGPU::VGPRRegBank && 2600 SrcBank == &AMDGPU::SGPRRegBank; 2601 if (DstRegs.empty()) { 2602 applyDefaultMapping(OpdMapper); 2603 2604 executeInWaterfallLoop(MI, MRI, { 2 }); 2605 2606 if (NeedCopyToVGPR) { 2607 // We don't want a phi for this temporary reg. 2608 Register TmpReg = MRI.createGenericVirtualRegister(DstTy); 2609 MRI.setRegBank(TmpReg, AMDGPU::SGPRRegBank); 2610 MI.getOperand(0).setReg(TmpReg); 2611 B.setInsertPt(*MI.getParent(), ++MI.getIterator()); 2612 2613 // Use a v_mov_b32 here to make the exec dependency explicit. 2614 buildVCopy(B, DstReg, TmpReg); 2615 } 2616 2617 // Re-insert the constant offset add inside the waterfall loop. 2618 if (ShouldMoveIndexIntoLoop) 2619 reinsertVectorIndexAdd(B, MI, 2, ConstOffset); 2620 2621 return; 2622 } 2623 2624 assert(DstTy.getSizeInBits() == 64); 2625 2626 LLT Vec32 = LLT::vector(2 * SrcTy.getNumElements(), 32); 2627 2628 auto CastSrc = B.buildBitcast(Vec32, SrcReg); 2629 auto One = B.buildConstant(S32, 1); 2630 2631 MachineBasicBlock::iterator MII = MI.getIterator(); 2632 2633 // Split the vector index into 32-bit pieces. Prepare to move all of the 2634 // new instructions into a waterfall loop if necessary. 2635 // 2636 // Don't put the bitcast or constant in the loop. 2637 MachineInstrSpan Span(MII, &B.getMBB()); 2638 2639 // Compute 32-bit element indices, (2 * OrigIdx, 2 * OrigIdx + 1). 2640 auto IdxLo = B.buildShl(S32, BaseIdxReg, One); 2641 auto IdxHi = B.buildAdd(S32, IdxLo, One); 2642 2643 auto Extract0 = B.buildExtractVectorElement(DstRegs[0], CastSrc, IdxLo); 2644 auto Extract1 = B.buildExtractVectorElement(DstRegs[1], CastSrc, IdxHi); 2645 2646 MRI.setRegBank(DstReg, *DstBank); 2647 MRI.setRegBank(CastSrc.getReg(0), *SrcBank); 2648 MRI.setRegBank(One.getReg(0), AMDGPU::SGPRRegBank); 2649 MRI.setRegBank(IdxLo.getReg(0), AMDGPU::SGPRRegBank); 2650 MRI.setRegBank(IdxHi.getReg(0), AMDGPU::SGPRRegBank); 2651 2652 SmallSet<Register, 4> OpsToWaterfall; 2653 if (!collectWaterfallOperands(OpsToWaterfall, MI, MRI, { 2 })) { 2654 MI.eraseFromParent(); 2655 return; 2656 } 2657 2658 // Remove the original instruction to avoid potentially confusing the 2659 // waterfall loop logic. 2660 B.setInstr(*Span.begin()); 2661 MI.eraseFromParent(); 2662 executeInWaterfallLoop(B, make_range(Span.begin(), Span.end()), 2663 OpsToWaterfall, MRI); 2664 2665 if (NeedCopyToVGPR) { 2666 MachineBasicBlock *LoopBB = Extract1->getParent(); 2667 Register TmpReg0 = MRI.createGenericVirtualRegister(S32); 2668 Register TmpReg1 = MRI.createGenericVirtualRegister(S32); 2669 MRI.setRegBank(TmpReg0, AMDGPU::SGPRRegBank); 2670 MRI.setRegBank(TmpReg1, AMDGPU::SGPRRegBank); 2671 2672 Extract0->getOperand(0).setReg(TmpReg0); 2673 Extract1->getOperand(0).setReg(TmpReg1); 2674 2675 B.setInsertPt(*LoopBB, ++Extract1->getIterator()); 2676 2677 buildVCopy(B, DstRegs[0], TmpReg0); 2678 buildVCopy(B, DstRegs[1], TmpReg1); 2679 } 2680 2681 if (ShouldMoveIndexIntoLoop) 2682 reinsertVectorIndexAdd(B, *IdxLo, 1, ConstOffset); 2683 2684 return; 2685 } 2686 case AMDGPU::G_INSERT_VECTOR_ELT: { 2687 SmallVector<Register, 2> InsRegs(OpdMapper.getVRegs(2)); 2688 2689 Register DstReg = MI.getOperand(0).getReg(); 2690 LLT VecTy = MRI.getType(DstReg); 2691 2692 assert(OpdMapper.getVRegs(0).empty()); 2693 assert(OpdMapper.getVRegs(3).empty()); 2694 2695 if (substituteSimpleCopyRegs(OpdMapper, 1)) 2696 MRI.setType(MI.getOperand(1).getReg(), VecTy); 2697 2698 if (foldInsertEltToCmpSelect(MI, MRI, OpdMapper)) 2699 return; 2700 2701 const RegisterBank *IdxBank = 2702 OpdMapper.getInstrMapping().getOperandMapping(3).BreakDown[0].RegBank; 2703 2704 Register SrcReg = MI.getOperand(1).getReg(); 2705 Register InsReg = MI.getOperand(2).getReg(); 2706 LLT InsTy = MRI.getType(InsReg); 2707 (void)InsTy; 2708 2709 Register BaseIdxReg; 2710 unsigned ConstOffset; 2711 std::tie(BaseIdxReg, ConstOffset) = 2712 AMDGPU::getBaseWithConstantOffset(MRI, MI.getOperand(3).getReg()); 2713 2714 // See if the index is an add of a constant which will be foldable by moving 2715 // the base register of the index later if this is going to be executed in a 2716 // waterfall loop. This is essentially to reassociate the add of a constant 2717 // with the readfirstlane. 2718 bool ShouldMoveIndexIntoLoop = IdxBank != &AMDGPU::SGPRRegBank && 2719 ConstOffset > 0 && 2720 ConstOffset < VecTy.getNumElements(); 2721 2722 // Move the base register. We'll re-insert the add later. 2723 if (ShouldMoveIndexIntoLoop) 2724 MI.getOperand(3).setReg(BaseIdxReg); 2725 2726 2727 if (InsRegs.empty()) { 2728 executeInWaterfallLoop(MI, MRI, { 3 }); 2729 2730 // Re-insert the constant offset add inside the waterfall loop. 2731 if (ShouldMoveIndexIntoLoop) { 2732 MachineIRBuilder B(MI); 2733 reinsertVectorIndexAdd(B, MI, 3, ConstOffset); 2734 } 2735 2736 return; 2737 } 2738 2739 2740 assert(InsTy.getSizeInBits() == 64); 2741 2742 const LLT S32 = LLT::scalar(32); 2743 LLT Vec32 = LLT::vector(2 * VecTy.getNumElements(), 32); 2744 2745 MachineIRBuilder B(MI); 2746 auto CastSrc = B.buildBitcast(Vec32, SrcReg); 2747 auto One = B.buildConstant(S32, 1); 2748 2749 // Split the vector index into 32-bit pieces. Prepare to move all of the 2750 // new instructions into a waterfall loop if necessary. 2751 // 2752 // Don't put the bitcast or constant in the loop. 2753 MachineInstrSpan Span(MachineBasicBlock::iterator(&MI), &B.getMBB()); 2754 2755 // Compute 32-bit element indices, (2 * OrigIdx, 2 * OrigIdx + 1). 2756 auto IdxLo = B.buildShl(S32, BaseIdxReg, One); 2757 auto IdxHi = B.buildAdd(S32, IdxLo, One); 2758 2759 auto InsLo = B.buildInsertVectorElement(Vec32, CastSrc, InsRegs[0], IdxLo); 2760 auto InsHi = B.buildInsertVectorElement(Vec32, InsLo, InsRegs[1], IdxHi); 2761 2762 const RegisterBank *DstBank = 2763 OpdMapper.getInstrMapping().getOperandMapping(0).BreakDown[0].RegBank; 2764 const RegisterBank *SrcBank = 2765 OpdMapper.getInstrMapping().getOperandMapping(1).BreakDown[0].RegBank; 2766 const RegisterBank *InsSrcBank = 2767 OpdMapper.getInstrMapping().getOperandMapping(2).BreakDown[0].RegBank; 2768 2769 MRI.setRegBank(InsReg, *InsSrcBank); 2770 MRI.setRegBank(CastSrc.getReg(0), *SrcBank); 2771 MRI.setRegBank(InsLo.getReg(0), *DstBank); 2772 MRI.setRegBank(InsHi.getReg(0), *DstBank); 2773 MRI.setRegBank(One.getReg(0), AMDGPU::SGPRRegBank); 2774 MRI.setRegBank(IdxLo.getReg(0), AMDGPU::SGPRRegBank); 2775 MRI.setRegBank(IdxHi.getReg(0), AMDGPU::SGPRRegBank); 2776 2777 2778 SmallSet<Register, 4> OpsToWaterfall; 2779 if (!collectWaterfallOperands(OpsToWaterfall, MI, MRI, { 3 })) { 2780 B.setInsertPt(B.getMBB(), MI); 2781 B.buildBitcast(DstReg, InsHi); 2782 MI.eraseFromParent(); 2783 return; 2784 } 2785 2786 B.setInstr(*Span.begin()); 2787 MI.eraseFromParent(); 2788 2789 // Figure out the point after the waterfall loop before mangling the control 2790 // flow. 2791 executeInWaterfallLoop(B, make_range(Span.begin(), Span.end()), 2792 OpsToWaterfall, MRI); 2793 2794 // The insertion point is now right after the original instruction. 2795 // 2796 // Keep the bitcast to the original vector type out of the loop. Doing this 2797 // saved an extra phi we don't need inside the loop. 2798 B.buildBitcast(DstReg, InsHi); 2799 2800 // Re-insert the constant offset add inside the waterfall loop. 2801 if (ShouldMoveIndexIntoLoop) 2802 reinsertVectorIndexAdd(B, *IdxLo, 1, ConstOffset); 2803 2804 return; 2805 } 2806 case AMDGPU::G_AMDGPU_BUFFER_LOAD: 2807 case AMDGPU::G_AMDGPU_BUFFER_LOAD_USHORT: 2808 case AMDGPU::G_AMDGPU_BUFFER_LOAD_SSHORT: 2809 case AMDGPU::G_AMDGPU_BUFFER_LOAD_UBYTE: 2810 case AMDGPU::G_AMDGPU_BUFFER_LOAD_SBYTE: 2811 case AMDGPU::G_AMDGPU_BUFFER_LOAD_FORMAT: 2812 case AMDGPU::G_AMDGPU_BUFFER_LOAD_FORMAT_D16: 2813 case AMDGPU::G_AMDGPU_TBUFFER_LOAD_FORMAT: 2814 case AMDGPU::G_AMDGPU_TBUFFER_LOAD_FORMAT_D16: 2815 case AMDGPU::G_AMDGPU_BUFFER_STORE: 2816 case AMDGPU::G_AMDGPU_BUFFER_STORE_BYTE: 2817 case AMDGPU::G_AMDGPU_BUFFER_STORE_SHORT: 2818 case AMDGPU::G_AMDGPU_BUFFER_STORE_FORMAT: 2819 case AMDGPU::G_AMDGPU_BUFFER_STORE_FORMAT_D16: 2820 case AMDGPU::G_AMDGPU_TBUFFER_STORE_FORMAT: 2821 case AMDGPU::G_AMDGPU_TBUFFER_STORE_FORMAT_D16: { 2822 applyDefaultMapping(OpdMapper); 2823 executeInWaterfallLoop(MI, MRI, {1, 4}); 2824 return; 2825 } 2826 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SWAP: 2827 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_ADD: 2828 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SUB: 2829 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SMIN: 2830 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_UMIN: 2831 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SMAX: 2832 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_UMAX: 2833 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_AND: 2834 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_OR: 2835 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_XOR: 2836 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_INC: 2837 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_DEC: { 2838 applyDefaultMapping(OpdMapper); 2839 executeInWaterfallLoop(MI, MRI, {2, 5}); 2840 return; 2841 } 2842 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_FADD: { 2843 applyDefaultMapping(OpdMapper); 2844 executeInWaterfallLoop(MI, MRI, {2, 5}); 2845 return; 2846 } 2847 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_CMPSWAP: { 2848 applyDefaultMapping(OpdMapper); 2849 executeInWaterfallLoop(MI, MRI, {3, 6}); 2850 return; 2851 } 2852 case AMDGPU::G_AMDGPU_S_BUFFER_LOAD: { 2853 applyMappingSBufferLoad(OpdMapper); 2854 return; 2855 } 2856 case AMDGPU::G_INTRINSIC: { 2857 switch (MI.getIntrinsicID()) { 2858 case Intrinsic::amdgcn_readlane: { 2859 substituteSimpleCopyRegs(OpdMapper, 2); 2860 2861 assert(OpdMapper.getVRegs(0).empty()); 2862 assert(OpdMapper.getVRegs(3).empty()); 2863 2864 // Make sure the index is an SGPR. It doesn't make sense to run this in a 2865 // waterfall loop, so assume it's a uniform value. 2866 constrainOpWithReadfirstlane(MI, MRI, 3); // Index 2867 return; 2868 } 2869 case Intrinsic::amdgcn_writelane: { 2870 assert(OpdMapper.getVRegs(0).empty()); 2871 assert(OpdMapper.getVRegs(2).empty()); 2872 assert(OpdMapper.getVRegs(3).empty()); 2873 2874 substituteSimpleCopyRegs(OpdMapper, 4); // VGPR input val 2875 constrainOpWithReadfirstlane(MI, MRI, 2); // Source value 2876 constrainOpWithReadfirstlane(MI, MRI, 3); // Index 2877 return; 2878 } 2879 case Intrinsic::amdgcn_interp_p1: 2880 case Intrinsic::amdgcn_interp_p2: 2881 case Intrinsic::amdgcn_interp_mov: 2882 case Intrinsic::amdgcn_interp_p1_f16: 2883 case Intrinsic::amdgcn_interp_p2_f16: { 2884 applyDefaultMapping(OpdMapper); 2885 2886 // Readlane for m0 value, which is always the last operand. 2887 // FIXME: Should this be a waterfall loop instead? 2888 constrainOpWithReadfirstlane(MI, MRI, MI.getNumOperands() - 1); // Index 2889 return; 2890 } 2891 case Intrinsic::amdgcn_permlane16: 2892 case Intrinsic::amdgcn_permlanex16: { 2893 // Doing a waterfall loop over these wouldn't make any sense. 2894 substituteSimpleCopyRegs(OpdMapper, 2); 2895 substituteSimpleCopyRegs(OpdMapper, 3); 2896 constrainOpWithReadfirstlane(MI, MRI, 4); 2897 constrainOpWithReadfirstlane(MI, MRI, 5); 2898 return; 2899 } 2900 case Intrinsic::amdgcn_sbfe: 2901 applyMappingBFEIntrinsic(OpdMapper, true); 2902 return; 2903 case Intrinsic::amdgcn_ubfe: 2904 applyMappingBFEIntrinsic(OpdMapper, false); 2905 return; 2906 case Intrinsic::amdgcn_ballot: 2907 // Use default handling and insert copy to vcc source. 2908 break; 2909 } 2910 break; 2911 } 2912 case AMDGPU::G_AMDGPU_INTRIN_IMAGE_LOAD: 2913 case AMDGPU::G_AMDGPU_INTRIN_IMAGE_STORE: { 2914 const AMDGPU::RsrcIntrinsic *RSrcIntrin 2915 = AMDGPU::lookupRsrcIntrinsic(MI.getIntrinsicID()); 2916 assert(RSrcIntrin && RSrcIntrin->IsImage); 2917 // Non-images can have complications from operands that allow both SGPR 2918 // and VGPR. For now it's too complicated to figure out the final opcode 2919 // to derive the register bank from the MCInstrDesc. 2920 applyMappingImage(MI, OpdMapper, MRI, RSrcIntrin->RsrcArg); 2921 return; 2922 } 2923 case AMDGPU::G_AMDGPU_INTRIN_BVH_INTERSECT_RAY: { 2924 unsigned N = MI.getNumExplicitOperands() - 2; 2925 executeInWaterfallLoop(MI, MRI, { N }); 2926 return; 2927 } 2928 case AMDGPU::G_INTRINSIC_W_SIDE_EFFECTS: { 2929 auto IntrID = MI.getIntrinsicID(); 2930 switch (IntrID) { 2931 case Intrinsic::amdgcn_ds_ordered_add: 2932 case Intrinsic::amdgcn_ds_ordered_swap: { 2933 // This is only allowed to execute with 1 lane, so readfirstlane is safe. 2934 assert(OpdMapper.getVRegs(0).empty()); 2935 substituteSimpleCopyRegs(OpdMapper, 3); 2936 constrainOpWithReadfirstlane(MI, MRI, 2); // M0 2937 return; 2938 } 2939 case Intrinsic::amdgcn_ds_gws_init: 2940 case Intrinsic::amdgcn_ds_gws_barrier: 2941 case Intrinsic::amdgcn_ds_gws_sema_br: { 2942 // Only the first lane is executes, so readfirstlane is safe. 2943 substituteSimpleCopyRegs(OpdMapper, 1); 2944 constrainOpWithReadfirstlane(MI, MRI, 2); // M0 2945 return; 2946 } 2947 case Intrinsic::amdgcn_ds_gws_sema_v: 2948 case Intrinsic::amdgcn_ds_gws_sema_p: 2949 case Intrinsic::amdgcn_ds_gws_sema_release_all: { 2950 // Only the first lane is executes, so readfirstlane is safe. 2951 constrainOpWithReadfirstlane(MI, MRI, 1); // M0 2952 return; 2953 } 2954 case Intrinsic::amdgcn_ds_append: 2955 case Intrinsic::amdgcn_ds_consume: { 2956 constrainOpWithReadfirstlane(MI, MRI, 2); // M0 2957 return; 2958 } 2959 case Intrinsic::amdgcn_s_sendmsg: 2960 case Intrinsic::amdgcn_s_sendmsghalt: { 2961 // FIXME: Should this use a waterfall loop? 2962 constrainOpWithReadfirstlane(MI, MRI, 2); // M0 2963 return; 2964 } 2965 case Intrinsic::amdgcn_s_setreg: { 2966 constrainOpWithReadfirstlane(MI, MRI, 2); 2967 return; 2968 } 2969 default: { 2970 if (const AMDGPU::RsrcIntrinsic *RSrcIntrin = 2971 AMDGPU::lookupRsrcIntrinsic(IntrID)) { 2972 // Non-images can have complications from operands that allow both SGPR 2973 // and VGPR. For now it's too complicated to figure out the final opcode 2974 // to derive the register bank from the MCInstrDesc. 2975 if (RSrcIntrin->IsImage) { 2976 applyMappingImage(MI, OpdMapper, MRI, RSrcIntrin->RsrcArg); 2977 return; 2978 } 2979 } 2980 2981 break; 2982 } 2983 } 2984 break; 2985 } 2986 case AMDGPU::G_LOAD: 2987 case AMDGPU::G_ZEXTLOAD: 2988 case AMDGPU::G_SEXTLOAD: { 2989 if (applyMappingLoad(MI, OpdMapper, MRI)) 2990 return; 2991 break; 2992 } 2993 case AMDGPU::G_DYN_STACKALLOC: 2994 applyMappingDynStackAlloc(MI, OpdMapper, MRI); 2995 return; 2996 default: 2997 break; 2998 } 2999 3000 return applyDefaultMapping(OpdMapper); 3001 } 3002 3003 // vgpr, sgpr -> vgpr 3004 // vgpr, agpr -> vgpr 3005 // agpr, agpr -> agpr 3006 // agpr, sgpr -> vgpr 3007 static unsigned regBankUnion(unsigned RB0, unsigned RB1) { 3008 if (RB0 == AMDGPU::InvalidRegBankID) 3009 return RB1; 3010 if (RB1 == AMDGPU::InvalidRegBankID) 3011 return RB0; 3012 3013 if (RB0 == AMDGPU::SGPRRegBankID && RB1 == AMDGPU::SGPRRegBankID) 3014 return AMDGPU::SGPRRegBankID; 3015 3016 if (RB0 == AMDGPU::AGPRRegBankID && RB1 == AMDGPU::AGPRRegBankID) 3017 return AMDGPU::AGPRRegBankID; 3018 3019 return AMDGPU::VGPRRegBankID; 3020 } 3021 3022 static unsigned regBankBoolUnion(unsigned RB0, unsigned RB1) { 3023 if (RB0 == AMDGPU::InvalidRegBankID) 3024 return RB1; 3025 if (RB1 == AMDGPU::InvalidRegBankID) 3026 return RB0; 3027 3028 // vcc, vcc -> vcc 3029 // vcc, sgpr -> vcc 3030 // vcc, vgpr -> vcc 3031 if (RB0 == AMDGPU::VCCRegBankID || RB1 == AMDGPU::VCCRegBankID) 3032 return AMDGPU::VCCRegBankID; 3033 3034 // vcc, vgpr -> vgpr 3035 return regBankUnion(RB0, RB1); 3036 } 3037 3038 unsigned AMDGPURegisterBankInfo::getMappingType(const MachineRegisterInfo &MRI, 3039 const MachineInstr &MI) const { 3040 unsigned RegBank = AMDGPU::InvalidRegBankID; 3041 3042 for (unsigned i = 0, e = MI.getNumOperands(); i != e; ++i) { 3043 if (!MI.getOperand(i).isReg()) 3044 continue; 3045 Register Reg = MI.getOperand(i).getReg(); 3046 if (const RegisterBank *Bank = getRegBank(Reg, MRI, *TRI)) { 3047 RegBank = regBankUnion(RegBank, Bank->getID()); 3048 if (RegBank == AMDGPU::VGPRRegBankID) 3049 break; 3050 } 3051 } 3052 3053 return RegBank; 3054 } 3055 3056 bool AMDGPURegisterBankInfo::isSALUMapping(const MachineInstr &MI) const { 3057 const MachineFunction &MF = *MI.getParent()->getParent(); 3058 const MachineRegisterInfo &MRI = MF.getRegInfo(); 3059 for (unsigned i = 0, e = MI.getNumOperands();i != e; ++i) { 3060 if (!MI.getOperand(i).isReg()) 3061 continue; 3062 Register Reg = MI.getOperand(i).getReg(); 3063 if (const RegisterBank *Bank = getRegBank(Reg, MRI, *TRI)) { 3064 if (Bank->getID() != AMDGPU::SGPRRegBankID) 3065 return false; 3066 } 3067 } 3068 return true; 3069 } 3070 3071 const RegisterBankInfo::InstructionMapping & 3072 AMDGPURegisterBankInfo::getDefaultMappingSOP(const MachineInstr &MI) const { 3073 const MachineFunction &MF = *MI.getParent()->getParent(); 3074 const MachineRegisterInfo &MRI = MF.getRegInfo(); 3075 SmallVector<const ValueMapping*, 8> OpdsMapping(MI.getNumOperands()); 3076 3077 for (unsigned i = 0, e = MI.getNumOperands(); i != e; ++i) { 3078 const MachineOperand &SrcOp = MI.getOperand(i); 3079 if (!SrcOp.isReg()) 3080 continue; 3081 3082 unsigned Size = getSizeInBits(SrcOp.getReg(), MRI, *TRI); 3083 OpdsMapping[i] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 3084 } 3085 return getInstructionMapping(1, 1, getOperandsMapping(OpdsMapping), 3086 MI.getNumOperands()); 3087 } 3088 3089 const RegisterBankInfo::InstructionMapping & 3090 AMDGPURegisterBankInfo::getDefaultMappingVOP(const MachineInstr &MI) const { 3091 const MachineFunction &MF = *MI.getParent()->getParent(); 3092 const MachineRegisterInfo &MRI = MF.getRegInfo(); 3093 SmallVector<const ValueMapping*, 8> OpdsMapping(MI.getNumOperands()); 3094 3095 // Even though we technically could use SGPRs, this would require knowledge of 3096 // the constant bus restriction. Force all sources to VGPR (except for VCC). 3097 // 3098 // TODO: Unary ops are trivially OK, so accept SGPRs? 3099 for (unsigned i = 0, e = MI.getNumOperands(); i != e; ++i) { 3100 const MachineOperand &Src = MI.getOperand(i); 3101 if (!Src.isReg()) 3102 continue; 3103 3104 unsigned Size = getSizeInBits(Src.getReg(), MRI, *TRI); 3105 unsigned BankID = Size == 1 ? AMDGPU::VCCRegBankID : AMDGPU::VGPRRegBankID; 3106 OpdsMapping[i] = AMDGPU::getValueMapping(BankID, Size); 3107 } 3108 3109 return getInstructionMapping(1, 1, getOperandsMapping(OpdsMapping), 3110 MI.getNumOperands()); 3111 } 3112 3113 const RegisterBankInfo::InstructionMapping & 3114 AMDGPURegisterBankInfo::getDefaultMappingAllVGPR(const MachineInstr &MI) const { 3115 const MachineFunction &MF = *MI.getParent()->getParent(); 3116 const MachineRegisterInfo &MRI = MF.getRegInfo(); 3117 SmallVector<const ValueMapping*, 8> OpdsMapping(MI.getNumOperands()); 3118 3119 for (unsigned I = 0, E = MI.getNumOperands(); I != E; ++I) { 3120 const MachineOperand &Op = MI.getOperand(I); 3121 if (!Op.isReg()) 3122 continue; 3123 3124 unsigned Size = getSizeInBits(Op.getReg(), MRI, *TRI); 3125 OpdsMapping[I] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3126 } 3127 3128 return getInstructionMapping(1, 1, getOperandsMapping(OpdsMapping), 3129 MI.getNumOperands()); 3130 } 3131 3132 const RegisterBankInfo::InstructionMapping & 3133 AMDGPURegisterBankInfo::getImageMapping(const MachineRegisterInfo &MRI, 3134 const MachineInstr &MI, 3135 int RsrcIdx) const { 3136 // The reported argument index is relative to the IR intrinsic call arguments, 3137 // so we need to shift by the number of defs and the intrinsic ID. 3138 RsrcIdx += MI.getNumExplicitDefs() + 1; 3139 3140 const int NumOps = MI.getNumOperands(); 3141 SmallVector<const ValueMapping *, 8> OpdsMapping(NumOps); 3142 3143 // TODO: Should packed/unpacked D16 difference be reported here as part of 3144 // the value mapping? 3145 for (int I = 0; I != NumOps; ++I) { 3146 if (!MI.getOperand(I).isReg()) 3147 continue; 3148 3149 Register OpReg = MI.getOperand(I).getReg(); 3150 // We replace some dead address operands with $noreg 3151 if (!OpReg) 3152 continue; 3153 3154 unsigned Size = getSizeInBits(OpReg, MRI, *TRI); 3155 3156 // FIXME: Probably need a new intrinsic register bank searchable table to 3157 // handle arbitrary intrinsics easily. 3158 // 3159 // If this has a sampler, it immediately follows rsrc. 3160 const bool MustBeSGPR = I == RsrcIdx || I == RsrcIdx + 1; 3161 3162 if (MustBeSGPR) { 3163 // If this must be an SGPR, so we must report whatever it is as legal. 3164 unsigned NewBank = getRegBankID(OpReg, MRI, AMDGPU::SGPRRegBankID); 3165 OpdsMapping[I] = AMDGPU::getValueMapping(NewBank, Size); 3166 } else { 3167 // Some operands must be VGPR, and these are easy to copy to. 3168 OpdsMapping[I] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3169 } 3170 } 3171 3172 return getInstructionMapping(1, 1, getOperandsMapping(OpdsMapping), NumOps); 3173 } 3174 3175 /// Return the mapping for a pointer arugment. 3176 const RegisterBankInfo::ValueMapping * 3177 AMDGPURegisterBankInfo::getValueMappingForPtr(const MachineRegisterInfo &MRI, 3178 Register PtrReg) const { 3179 LLT PtrTy = MRI.getType(PtrReg); 3180 unsigned Size = PtrTy.getSizeInBits(); 3181 if (Subtarget.useFlatForGlobal() || 3182 !AMDGPU::isFlatGlobalAddrSpace(PtrTy.getAddressSpace())) 3183 return AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3184 3185 // If we're using MUBUF instructions for global memory, an SGPR base register 3186 // is possible. Otherwise this needs to be a VGPR. 3187 const RegisterBank *PtrBank = getRegBank(PtrReg, MRI, *TRI); 3188 return AMDGPU::getValueMapping(PtrBank->getID(), Size); 3189 } 3190 3191 const RegisterBankInfo::InstructionMapping & 3192 AMDGPURegisterBankInfo::getInstrMappingForLoad(const MachineInstr &MI) const { 3193 3194 const MachineFunction &MF = *MI.getParent()->getParent(); 3195 const MachineRegisterInfo &MRI = MF.getRegInfo(); 3196 SmallVector<const ValueMapping*, 2> OpdsMapping(2); 3197 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 3198 Register PtrReg = MI.getOperand(1).getReg(); 3199 LLT PtrTy = MRI.getType(PtrReg); 3200 unsigned AS = PtrTy.getAddressSpace(); 3201 unsigned PtrSize = PtrTy.getSizeInBits(); 3202 3203 const ValueMapping *ValMapping; 3204 const ValueMapping *PtrMapping; 3205 3206 const RegisterBank *PtrBank = getRegBank(PtrReg, MRI, *TRI); 3207 3208 if (PtrBank == &AMDGPU::SGPRRegBank && AMDGPU::isFlatGlobalAddrSpace(AS)) { 3209 if (isScalarLoadLegal(MI)) { 3210 // We have a uniform instruction so we want to use an SMRD load 3211 ValMapping = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 3212 PtrMapping = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, PtrSize); 3213 } else { 3214 ValMapping = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3215 3216 // If we're using MUBUF instructions for global memory, an SGPR base 3217 // register is possible. Otherwise this needs to be a VGPR. 3218 unsigned PtrBankID = Subtarget.useFlatForGlobal() ? 3219 AMDGPU::VGPRRegBankID : AMDGPU::SGPRRegBankID; 3220 3221 PtrMapping = AMDGPU::getValueMapping(PtrBankID, PtrSize); 3222 } 3223 } else { 3224 ValMapping = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3225 PtrMapping = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, PtrSize); 3226 } 3227 3228 OpdsMapping[0] = ValMapping; 3229 OpdsMapping[1] = PtrMapping; 3230 const RegisterBankInfo::InstructionMapping &Mapping = getInstructionMapping( 3231 1, 1, getOperandsMapping(OpdsMapping), MI.getNumOperands()); 3232 return Mapping; 3233 3234 // FIXME: Do we want to add a mapping for FLAT load, or should we just 3235 // handle that during instruction selection? 3236 } 3237 3238 unsigned 3239 AMDGPURegisterBankInfo::getRegBankID(Register Reg, 3240 const MachineRegisterInfo &MRI, 3241 unsigned Default) const { 3242 const RegisterBank *Bank = getRegBank(Reg, MRI, *TRI); 3243 return Bank ? Bank->getID() : Default; 3244 } 3245 3246 const RegisterBankInfo::ValueMapping * 3247 AMDGPURegisterBankInfo::getSGPROpMapping(Register Reg, 3248 const MachineRegisterInfo &MRI, 3249 const TargetRegisterInfo &TRI) const { 3250 // Lie and claim anything is legal, even though this needs to be an SGPR 3251 // applyMapping will have to deal with it as a waterfall loop. 3252 unsigned Bank = getRegBankID(Reg, MRI, AMDGPU::SGPRRegBankID); 3253 unsigned Size = getSizeInBits(Reg, MRI, TRI); 3254 return AMDGPU::getValueMapping(Bank, Size); 3255 } 3256 3257 const RegisterBankInfo::ValueMapping * 3258 AMDGPURegisterBankInfo::getVGPROpMapping(Register Reg, 3259 const MachineRegisterInfo &MRI, 3260 const TargetRegisterInfo &TRI) const { 3261 unsigned Size = getSizeInBits(Reg, MRI, TRI); 3262 return AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3263 } 3264 3265 const RegisterBankInfo::ValueMapping * 3266 AMDGPURegisterBankInfo::getAGPROpMapping(Register Reg, 3267 const MachineRegisterInfo &MRI, 3268 const TargetRegisterInfo &TRI) const { 3269 unsigned Size = getSizeInBits(Reg, MRI, TRI); 3270 return AMDGPU::getValueMapping(AMDGPU::AGPRRegBankID, Size); 3271 } 3272 3273 /// 3274 /// This function must return a legal mapping, because 3275 /// AMDGPURegisterBankInfo::getInstrAlternativeMappings() is not called 3276 /// in RegBankSelect::Mode::Fast. Any mapping that would cause a 3277 /// VGPR to SGPR generated is illegal. 3278 /// 3279 // Operands that must be SGPRs must accept potentially divergent VGPRs as 3280 // legal. These will be dealt with in applyMappingImpl. 3281 // 3282 const RegisterBankInfo::InstructionMapping & 3283 AMDGPURegisterBankInfo::getInstrMapping(const MachineInstr &MI) const { 3284 const MachineFunction &MF = *MI.getParent()->getParent(); 3285 const MachineRegisterInfo &MRI = MF.getRegInfo(); 3286 3287 if (MI.isCopy() || MI.getOpcode() == AMDGPU::G_FREEZE) { 3288 // The default logic bothers to analyze impossible alternative mappings. We 3289 // want the most straightforward mapping, so just directly handle this. 3290 const RegisterBank *DstBank = getRegBank(MI.getOperand(0).getReg(), MRI, 3291 *TRI); 3292 const RegisterBank *SrcBank = getRegBank(MI.getOperand(1).getReg(), MRI, 3293 *TRI); 3294 assert(SrcBank && "src bank should have been assigned already"); 3295 if (!DstBank) 3296 DstBank = SrcBank; 3297 3298 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 3299 if (cannotCopy(*DstBank, *SrcBank, Size)) 3300 return getInvalidInstructionMapping(); 3301 3302 const ValueMapping &ValMap = getValueMapping(0, Size, *DstBank); 3303 unsigned OpdsMappingSize = MI.isCopy() ? 1 : 2; 3304 SmallVector<const ValueMapping *, 1> OpdsMapping(OpdsMappingSize); 3305 OpdsMapping[0] = &ValMap; 3306 if (MI.getOpcode() == AMDGPU::G_FREEZE) 3307 OpdsMapping[1] = &ValMap; 3308 3309 return getInstructionMapping( 3310 1, /*Cost*/ 1, 3311 /*OperandsMapping*/ getOperandsMapping(OpdsMapping), OpdsMappingSize); 3312 } 3313 3314 if (MI.isRegSequence()) { 3315 // If any input is a VGPR, the result must be a VGPR. The default handling 3316 // assumes any copy between banks is legal. 3317 unsigned BankID = AMDGPU::SGPRRegBankID; 3318 3319 for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) { 3320 auto OpBank = getRegBankID(MI.getOperand(I).getReg(), MRI); 3321 // It doesn't make sense to use vcc or scc banks here, so just ignore 3322 // them. 3323 if (OpBank != AMDGPU::SGPRRegBankID) { 3324 BankID = AMDGPU::VGPRRegBankID; 3325 break; 3326 } 3327 } 3328 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 3329 3330 const ValueMapping &ValMap = getValueMapping(0, Size, getRegBank(BankID)); 3331 return getInstructionMapping( 3332 1, /*Cost*/ 1, 3333 /*OperandsMapping*/ getOperandsMapping({&ValMap}), 1); 3334 } 3335 3336 // The default handling is broken and doesn't handle illegal SGPR->VGPR copies 3337 // properly. 3338 // 3339 // TODO: There are additional exec masking dependencies to analyze. 3340 if (MI.getOpcode() == TargetOpcode::G_PHI) { 3341 unsigned ResultBank = AMDGPU::InvalidRegBankID; 3342 Register DstReg = MI.getOperand(0).getReg(); 3343 3344 // Sometimes the result may have already been assigned a bank. 3345 if (const RegisterBank *DstBank = getRegBank(DstReg, MRI, *TRI)) 3346 ResultBank = DstBank->getID(); 3347 3348 for (unsigned I = 1, E = MI.getNumOperands(); I != E; I += 2) { 3349 Register Reg = MI.getOperand(I).getReg(); 3350 const RegisterBank *Bank = getRegBank(Reg, MRI, *TRI); 3351 3352 // FIXME: Assuming VGPR for any undetermined inputs. 3353 if (!Bank || Bank->getID() == AMDGPU::VGPRRegBankID) { 3354 ResultBank = AMDGPU::VGPRRegBankID; 3355 break; 3356 } 3357 3358 // FIXME: Need to promote SGPR case to s32 3359 unsigned OpBank = Bank->getID(); 3360 ResultBank = regBankBoolUnion(ResultBank, OpBank); 3361 } 3362 3363 assert(ResultBank != AMDGPU::InvalidRegBankID); 3364 3365 unsigned Size = MRI.getType(DstReg).getSizeInBits(); 3366 3367 const ValueMapping &ValMap = 3368 getValueMapping(0, Size, getRegBank(ResultBank)); 3369 return getInstructionMapping( 3370 1, /*Cost*/ 1, 3371 /*OperandsMapping*/ getOperandsMapping({&ValMap}), 1); 3372 } 3373 3374 const RegisterBankInfo::InstructionMapping &Mapping = getInstrMappingImpl(MI); 3375 if (Mapping.isValid()) 3376 return Mapping; 3377 3378 SmallVector<const ValueMapping*, 8> OpdsMapping(MI.getNumOperands()); 3379 3380 switch (MI.getOpcode()) { 3381 default: 3382 return getInvalidInstructionMapping(); 3383 3384 case AMDGPU::G_AND: 3385 case AMDGPU::G_OR: 3386 case AMDGPU::G_XOR: { 3387 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3388 if (Size == 1) { 3389 const RegisterBank *DstBank 3390 = getRegBank(MI.getOperand(0).getReg(), MRI, *TRI); 3391 3392 unsigned TargetBankID = AMDGPU::InvalidRegBankID; 3393 unsigned BankLHS = AMDGPU::InvalidRegBankID; 3394 unsigned BankRHS = AMDGPU::InvalidRegBankID; 3395 if (DstBank) { 3396 TargetBankID = DstBank->getID(); 3397 if (DstBank == &AMDGPU::VCCRegBank) { 3398 TargetBankID = AMDGPU::VCCRegBankID; 3399 BankLHS = AMDGPU::VCCRegBankID; 3400 BankRHS = AMDGPU::VCCRegBankID; 3401 } else { 3402 BankLHS = getRegBankID(MI.getOperand(1).getReg(), MRI, 3403 AMDGPU::SGPRRegBankID); 3404 BankRHS = getRegBankID(MI.getOperand(2).getReg(), MRI, 3405 AMDGPU::SGPRRegBankID); 3406 } 3407 } else { 3408 BankLHS = getRegBankID(MI.getOperand(1).getReg(), MRI, 3409 AMDGPU::VCCRegBankID); 3410 BankRHS = getRegBankID(MI.getOperand(2).getReg(), MRI, 3411 AMDGPU::VCCRegBankID); 3412 3413 // Both inputs should be true booleans to produce a boolean result. 3414 if (BankLHS == AMDGPU::VGPRRegBankID || BankRHS == AMDGPU::VGPRRegBankID) { 3415 TargetBankID = AMDGPU::VGPRRegBankID; 3416 } else if (BankLHS == AMDGPU::VCCRegBankID || BankRHS == AMDGPU::VCCRegBankID) { 3417 TargetBankID = AMDGPU::VCCRegBankID; 3418 BankLHS = AMDGPU::VCCRegBankID; 3419 BankRHS = AMDGPU::VCCRegBankID; 3420 } else if (BankLHS == AMDGPU::SGPRRegBankID && BankRHS == AMDGPU::SGPRRegBankID) { 3421 TargetBankID = AMDGPU::SGPRRegBankID; 3422 } 3423 } 3424 3425 OpdsMapping[0] = AMDGPU::getValueMapping(TargetBankID, Size); 3426 OpdsMapping[1] = AMDGPU::getValueMapping(BankLHS, Size); 3427 OpdsMapping[2] = AMDGPU::getValueMapping(BankRHS, Size); 3428 break; 3429 } 3430 3431 if (Size == 64) { 3432 3433 if (isSALUMapping(MI)) { 3434 OpdsMapping[0] = getValueMappingSGPR64Only(AMDGPU::SGPRRegBankID, Size); 3435 OpdsMapping[1] = OpdsMapping[2] = OpdsMapping[0]; 3436 } else { 3437 OpdsMapping[0] = getValueMappingSGPR64Only(AMDGPU::VGPRRegBankID, Size); 3438 unsigned Bank1 = getRegBankID(MI.getOperand(1).getReg(), MRI /*, DefaultBankID*/); 3439 OpdsMapping[1] = AMDGPU::getValueMapping(Bank1, Size); 3440 3441 unsigned Bank2 = getRegBankID(MI.getOperand(2).getReg(), MRI /*, DefaultBankID*/); 3442 OpdsMapping[2] = AMDGPU::getValueMapping(Bank2, Size); 3443 } 3444 3445 break; 3446 } 3447 3448 LLVM_FALLTHROUGH; 3449 } 3450 case AMDGPU::G_PTR_ADD: 3451 case AMDGPU::G_PTRMASK: 3452 case AMDGPU::G_ADD: 3453 case AMDGPU::G_SUB: 3454 case AMDGPU::G_MUL: 3455 case AMDGPU::G_SHL: 3456 case AMDGPU::G_LSHR: 3457 case AMDGPU::G_ASHR: 3458 case AMDGPU::G_UADDO: 3459 case AMDGPU::G_USUBO: 3460 case AMDGPU::G_UADDE: 3461 case AMDGPU::G_SADDE: 3462 case AMDGPU::G_USUBE: 3463 case AMDGPU::G_SSUBE: 3464 case AMDGPU::G_SMIN: 3465 case AMDGPU::G_SMAX: 3466 case AMDGPU::G_UMIN: 3467 case AMDGPU::G_UMAX: 3468 case AMDGPU::G_SHUFFLE_VECTOR: 3469 if (isSALUMapping(MI)) 3470 return getDefaultMappingSOP(MI); 3471 LLVM_FALLTHROUGH; 3472 3473 case AMDGPU::G_SADDSAT: // FIXME: Could lower sat ops for SALU 3474 case AMDGPU::G_SSUBSAT: 3475 case AMDGPU::G_UADDSAT: 3476 case AMDGPU::G_USUBSAT: 3477 case AMDGPU::G_FADD: 3478 case AMDGPU::G_FSUB: 3479 case AMDGPU::G_FPTOSI: 3480 case AMDGPU::G_FPTOUI: 3481 case AMDGPU::G_FMUL: 3482 case AMDGPU::G_FMA: 3483 case AMDGPU::G_FMAD: 3484 case AMDGPU::G_FSQRT: 3485 case AMDGPU::G_FFLOOR: 3486 case AMDGPU::G_FCEIL: 3487 case AMDGPU::G_FRINT: 3488 case AMDGPU::G_SITOFP: 3489 case AMDGPU::G_UITOFP: 3490 case AMDGPU::G_FPTRUNC: 3491 case AMDGPU::G_FPEXT: 3492 case AMDGPU::G_FEXP2: 3493 case AMDGPU::G_FLOG2: 3494 case AMDGPU::G_FMINNUM: 3495 case AMDGPU::G_FMAXNUM: 3496 case AMDGPU::G_FMINNUM_IEEE: 3497 case AMDGPU::G_FMAXNUM_IEEE: 3498 case AMDGPU::G_FCANONICALIZE: 3499 case AMDGPU::G_INTRINSIC_TRUNC: 3500 case AMDGPU::G_BSWAP: // TODO: Somehow expand for scalar? 3501 case AMDGPU::G_FSHR: // TODO: Expand for scalar 3502 case AMDGPU::G_AMDGPU_FFBH_U32: 3503 case AMDGPU::G_AMDGPU_FMIN_LEGACY: 3504 case AMDGPU::G_AMDGPU_FMAX_LEGACY: 3505 case AMDGPU::G_AMDGPU_RCP_IFLAG: 3506 case AMDGPU::G_AMDGPU_CVT_F32_UBYTE0: 3507 case AMDGPU::G_AMDGPU_CVT_F32_UBYTE1: 3508 case AMDGPU::G_AMDGPU_CVT_F32_UBYTE2: 3509 case AMDGPU::G_AMDGPU_CVT_F32_UBYTE3: 3510 case AMDGPU::G_AMDGPU_CVT_PK_I16_I32: 3511 case AMDGPU::G_AMDGPU_MED3: 3512 return getDefaultMappingVOP(MI); 3513 case AMDGPU::G_UMULH: 3514 case AMDGPU::G_SMULH: { 3515 if (Subtarget.hasScalarMulHiInsts() && isSALUMapping(MI)) 3516 return getDefaultMappingSOP(MI); 3517 return getDefaultMappingVOP(MI); 3518 } 3519 case AMDGPU::G_IMPLICIT_DEF: { 3520 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3521 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 3522 break; 3523 } 3524 case AMDGPU::G_FCONSTANT: 3525 case AMDGPU::G_CONSTANT: 3526 case AMDGPU::G_GLOBAL_VALUE: 3527 case AMDGPU::G_BLOCK_ADDR: 3528 case AMDGPU::G_READCYCLECOUNTER: { 3529 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3530 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 3531 break; 3532 } 3533 case AMDGPU::G_FRAME_INDEX: { 3534 // TODO: This should be the same as other constants, but eliminateFrameIndex 3535 // currently assumes VALU uses. 3536 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3537 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3538 break; 3539 } 3540 case AMDGPU::G_DYN_STACKALLOC: { 3541 // Result is always uniform, and a wave reduction is needed for the source. 3542 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, 32); 3543 unsigned SrcBankID = getRegBankID(MI.getOperand(1).getReg(), MRI); 3544 OpdsMapping[1] = AMDGPU::getValueMapping(SrcBankID, 32); 3545 break; 3546 } 3547 case AMDGPU::G_INSERT: { 3548 unsigned BankID = getMappingType(MRI, MI); 3549 unsigned DstSize = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 3550 unsigned SrcSize = getSizeInBits(MI.getOperand(1).getReg(), MRI, *TRI); 3551 unsigned EltSize = getSizeInBits(MI.getOperand(2).getReg(), MRI, *TRI); 3552 OpdsMapping[0] = AMDGPU::getValueMapping(BankID, DstSize); 3553 OpdsMapping[1] = AMDGPU::getValueMapping(BankID, SrcSize); 3554 OpdsMapping[2] = AMDGPU::getValueMapping(BankID, EltSize); 3555 OpdsMapping[3] = nullptr; 3556 break; 3557 } 3558 case AMDGPU::G_EXTRACT: { 3559 unsigned BankID = getRegBankID(MI.getOperand(1).getReg(), MRI); 3560 unsigned DstSize = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 3561 unsigned SrcSize = getSizeInBits(MI.getOperand(1).getReg(), MRI, *TRI); 3562 OpdsMapping[0] = AMDGPU::getValueMapping(BankID, DstSize); 3563 OpdsMapping[1] = AMDGPU::getValueMapping(BankID, SrcSize); 3564 OpdsMapping[2] = nullptr; 3565 break; 3566 } 3567 case AMDGPU::G_BUILD_VECTOR: 3568 case AMDGPU::G_BUILD_VECTOR_TRUNC: { 3569 LLT DstTy = MRI.getType(MI.getOperand(0).getReg()); 3570 if (DstTy == LLT::vector(2, 16)) { 3571 unsigned DstSize = DstTy.getSizeInBits(); 3572 unsigned SrcSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 3573 unsigned Src0BankID = getRegBankID(MI.getOperand(1).getReg(), MRI); 3574 unsigned Src1BankID = getRegBankID(MI.getOperand(2).getReg(), MRI); 3575 unsigned DstBankID = regBankUnion(Src0BankID, Src1BankID); 3576 3577 OpdsMapping[0] = AMDGPU::getValueMapping(DstBankID, DstSize); 3578 OpdsMapping[1] = AMDGPU::getValueMapping(Src0BankID, SrcSize); 3579 OpdsMapping[2] = AMDGPU::getValueMapping(Src1BankID, SrcSize); 3580 break; 3581 } 3582 3583 LLVM_FALLTHROUGH; 3584 } 3585 case AMDGPU::G_MERGE_VALUES: 3586 case AMDGPU::G_CONCAT_VECTORS: { 3587 unsigned Bank = getMappingType(MRI, MI); 3588 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3589 unsigned SrcSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 3590 3591 OpdsMapping[0] = AMDGPU::getValueMapping(Bank, DstSize); 3592 // Op1 and Dst should use the same register bank. 3593 for (unsigned i = 1, e = MI.getNumOperands(); i != e; ++i) 3594 OpdsMapping[i] = AMDGPU::getValueMapping(Bank, SrcSize); 3595 break; 3596 } 3597 case AMDGPU::G_BITCAST: 3598 case AMDGPU::G_INTTOPTR: 3599 case AMDGPU::G_PTRTOINT: 3600 case AMDGPU::G_BITREVERSE: 3601 case AMDGPU::G_FABS: 3602 case AMDGPU::G_FNEG: { 3603 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3604 unsigned BankID = getRegBankID(MI.getOperand(1).getReg(), MRI); 3605 OpdsMapping[0] = OpdsMapping[1] = AMDGPU::getValueMapping(BankID, Size); 3606 break; 3607 } 3608 case AMDGPU::G_CTLZ_ZERO_UNDEF: 3609 case AMDGPU::G_CTTZ_ZERO_UNDEF: 3610 case AMDGPU::G_CTPOP: { 3611 unsigned Size = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 3612 unsigned BankID = getRegBankID(MI.getOperand(1).getReg(), MRI); 3613 OpdsMapping[0] = AMDGPU::getValueMapping(BankID, 32); 3614 3615 // This should really be getValueMappingSGPR64Only, but allowing the generic 3616 // code to handle the register split just makes using LegalizerHelper more 3617 // difficult. 3618 OpdsMapping[1] = AMDGPU::getValueMapping(BankID, Size); 3619 break; 3620 } 3621 case AMDGPU::G_TRUNC: { 3622 Register Dst = MI.getOperand(0).getReg(); 3623 Register Src = MI.getOperand(1).getReg(); 3624 unsigned Bank = getRegBankID(Src, MRI); 3625 unsigned DstSize = getSizeInBits(Dst, MRI, *TRI); 3626 unsigned SrcSize = getSizeInBits(Src, MRI, *TRI); 3627 OpdsMapping[0] = AMDGPU::getValueMapping(Bank, DstSize); 3628 OpdsMapping[1] = AMDGPU::getValueMapping(Bank, SrcSize); 3629 break; 3630 } 3631 case AMDGPU::G_ZEXT: 3632 case AMDGPU::G_SEXT: 3633 case AMDGPU::G_ANYEXT: 3634 case AMDGPU::G_SEXT_INREG: { 3635 Register Dst = MI.getOperand(0).getReg(); 3636 Register Src = MI.getOperand(1).getReg(); 3637 unsigned DstSize = getSizeInBits(Dst, MRI, *TRI); 3638 unsigned SrcSize = getSizeInBits(Src, MRI, *TRI); 3639 3640 unsigned DstBank; 3641 const RegisterBank *SrcBank = getRegBank(Src, MRI, *TRI); 3642 assert(SrcBank); 3643 switch (SrcBank->getID()) { 3644 case AMDGPU::SGPRRegBankID: 3645 DstBank = AMDGPU::SGPRRegBankID; 3646 break; 3647 default: 3648 DstBank = AMDGPU::VGPRRegBankID; 3649 break; 3650 } 3651 3652 // Scalar extend can use 64-bit BFE, but VGPRs require extending to 3653 // 32-bits, and then to 64. 3654 OpdsMapping[0] = AMDGPU::getValueMappingSGPR64Only(DstBank, DstSize); 3655 OpdsMapping[1] = AMDGPU::getValueMappingSGPR64Only(SrcBank->getID(), 3656 SrcSize); 3657 break; 3658 } 3659 case AMDGPU::G_FCMP: { 3660 unsigned Size = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 3661 unsigned Op2Bank = getRegBankID(MI.getOperand(2).getReg(), MRI); 3662 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1); 3663 OpdsMapping[1] = nullptr; // Predicate Operand. 3664 OpdsMapping[2] = AMDGPU::getValueMapping(Op2Bank, Size); 3665 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3666 break; 3667 } 3668 case AMDGPU::G_STORE: { 3669 assert(MI.getOperand(0).isReg()); 3670 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3671 3672 // FIXME: We need to specify a different reg bank once scalar stores are 3673 // supported. 3674 const ValueMapping *ValMapping = 3675 AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 3676 OpdsMapping[0] = ValMapping; 3677 OpdsMapping[1] = getValueMappingForPtr(MRI, MI.getOperand(1).getReg()); 3678 break; 3679 } 3680 case AMDGPU::G_ICMP: { 3681 auto Pred = static_cast<CmpInst::Predicate>(MI.getOperand(1).getPredicate()); 3682 unsigned Size = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 3683 3684 // See if the result register has already been constrained to vcc, which may 3685 // happen due to control flow intrinsic lowering. 3686 unsigned DstBank = getRegBankID(MI.getOperand(0).getReg(), MRI, 3687 AMDGPU::SGPRRegBankID); 3688 unsigned Op2Bank = getRegBankID(MI.getOperand(2).getReg(), MRI); 3689 unsigned Op3Bank = getRegBankID(MI.getOperand(3).getReg(), MRI); 3690 3691 bool CanUseSCC = DstBank == AMDGPU::SGPRRegBankID && 3692 Op2Bank == AMDGPU::SGPRRegBankID && 3693 Op3Bank == AMDGPU::SGPRRegBankID && 3694 (Size == 32 || (Size == 64 && 3695 (Pred == CmpInst::ICMP_EQ || Pred == CmpInst::ICMP_NE) && 3696 Subtarget.hasScalarCompareEq64())); 3697 3698 DstBank = CanUseSCC ? AMDGPU::SGPRRegBankID : AMDGPU::VCCRegBankID; 3699 unsigned SrcBank = CanUseSCC ? AMDGPU::SGPRRegBankID : AMDGPU::VGPRRegBankID; 3700 3701 // TODO: Use 32-bit for scalar output size. 3702 // SCC results will need to be copied to a 32-bit SGPR virtual register. 3703 const unsigned ResultSize = 1; 3704 3705 OpdsMapping[0] = AMDGPU::getValueMapping(DstBank, ResultSize); 3706 OpdsMapping[2] = AMDGPU::getValueMapping(SrcBank, Size); 3707 OpdsMapping[3] = AMDGPU::getValueMapping(SrcBank, Size); 3708 break; 3709 } 3710 case AMDGPU::G_EXTRACT_VECTOR_ELT: { 3711 // VGPR index can be used for waterfall when indexing a SGPR vector. 3712 unsigned SrcBankID = getRegBankID(MI.getOperand(1).getReg(), MRI); 3713 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3714 unsigned SrcSize = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 3715 unsigned IdxSize = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 3716 unsigned IdxBank = getRegBankID(MI.getOperand(2).getReg(), MRI); 3717 unsigned OutputBankID = regBankUnion(SrcBankID, IdxBank); 3718 3719 OpdsMapping[0] = AMDGPU::getValueMappingSGPR64Only(OutputBankID, DstSize); 3720 OpdsMapping[1] = AMDGPU::getValueMapping(SrcBankID, SrcSize); 3721 3722 // The index can be either if the source vector is VGPR. 3723 OpdsMapping[2] = AMDGPU::getValueMapping(IdxBank, IdxSize); 3724 break; 3725 } 3726 case AMDGPU::G_INSERT_VECTOR_ELT: { 3727 unsigned OutputBankID = isSALUMapping(MI) ? 3728 AMDGPU::SGPRRegBankID : AMDGPU::VGPRRegBankID; 3729 3730 unsigned VecSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3731 unsigned InsertSize = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 3732 unsigned IdxSize = MRI.getType(MI.getOperand(3).getReg()).getSizeInBits(); 3733 unsigned InsertEltBankID = getRegBankID(MI.getOperand(2).getReg(), MRI); 3734 unsigned IdxBankID = getRegBankID(MI.getOperand(3).getReg(), MRI); 3735 3736 OpdsMapping[0] = AMDGPU::getValueMapping(OutputBankID, VecSize); 3737 OpdsMapping[1] = AMDGPU::getValueMapping(OutputBankID, VecSize); 3738 3739 // This is a weird case, because we need to break down the mapping based on 3740 // the register bank of a different operand. 3741 if (InsertSize == 64 && OutputBankID == AMDGPU::VGPRRegBankID) { 3742 OpdsMapping[2] = AMDGPU::getValueMappingSplit64(InsertEltBankID, 3743 InsertSize); 3744 } else { 3745 assert(InsertSize == 32 || InsertSize == 64); 3746 OpdsMapping[2] = AMDGPU::getValueMapping(InsertEltBankID, InsertSize); 3747 } 3748 3749 // The index can be either if the source vector is VGPR. 3750 OpdsMapping[3] = AMDGPU::getValueMapping(IdxBankID, IdxSize); 3751 break; 3752 } 3753 case AMDGPU::G_UNMERGE_VALUES: { 3754 unsigned Bank = getMappingType(MRI, MI); 3755 3756 // Op1 and Dst should use the same register bank. 3757 // FIXME: Shouldn't this be the default? Why do we need to handle this? 3758 for (unsigned i = 0, e = MI.getNumOperands(); i != e; ++i) { 3759 unsigned Size = getSizeInBits(MI.getOperand(i).getReg(), MRI, *TRI); 3760 OpdsMapping[i] = AMDGPU::getValueMapping(Bank, Size); 3761 } 3762 break; 3763 } 3764 case AMDGPU::G_AMDGPU_BUFFER_LOAD: 3765 case AMDGPU::G_AMDGPU_BUFFER_LOAD_UBYTE: 3766 case AMDGPU::G_AMDGPU_BUFFER_LOAD_SBYTE: 3767 case AMDGPU::G_AMDGPU_BUFFER_LOAD_USHORT: 3768 case AMDGPU::G_AMDGPU_BUFFER_LOAD_SSHORT: 3769 case AMDGPU::G_AMDGPU_BUFFER_LOAD_FORMAT: 3770 case AMDGPU::G_AMDGPU_BUFFER_LOAD_FORMAT_D16: 3771 case AMDGPU::G_AMDGPU_TBUFFER_LOAD_FORMAT: 3772 case AMDGPU::G_AMDGPU_TBUFFER_LOAD_FORMAT_D16: 3773 case AMDGPU::G_AMDGPU_TBUFFER_STORE_FORMAT: 3774 case AMDGPU::G_AMDGPU_TBUFFER_STORE_FORMAT_D16: 3775 case AMDGPU::G_AMDGPU_BUFFER_STORE: 3776 case AMDGPU::G_AMDGPU_BUFFER_STORE_BYTE: 3777 case AMDGPU::G_AMDGPU_BUFFER_STORE_SHORT: 3778 case AMDGPU::G_AMDGPU_BUFFER_STORE_FORMAT: 3779 case AMDGPU::G_AMDGPU_BUFFER_STORE_FORMAT_D16: { 3780 OpdsMapping[0] = getVGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 3781 3782 // rsrc 3783 OpdsMapping[1] = getSGPROpMapping(MI.getOperand(1).getReg(), MRI, *TRI); 3784 3785 // vindex 3786 OpdsMapping[2] = getVGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 3787 3788 // voffset 3789 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 3790 3791 // soffset 3792 OpdsMapping[4] = getSGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 3793 3794 // Any remaining operands are immediates and were correctly null 3795 // initialized. 3796 break; 3797 } 3798 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SWAP: 3799 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_ADD: 3800 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SUB: 3801 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SMIN: 3802 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_UMIN: 3803 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_SMAX: 3804 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_UMAX: 3805 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_AND: 3806 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_OR: 3807 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_XOR: 3808 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_INC: 3809 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_DEC: 3810 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_FADD: { 3811 // vdata_out 3812 OpdsMapping[0] = getVGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 3813 3814 // vdata_in 3815 OpdsMapping[1] = getVGPROpMapping(MI.getOperand(1).getReg(), MRI, *TRI); 3816 3817 // rsrc 3818 OpdsMapping[2] = getSGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 3819 3820 // vindex 3821 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 3822 3823 // voffset 3824 OpdsMapping[4] = getVGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 3825 3826 // soffset 3827 OpdsMapping[5] = getSGPROpMapping(MI.getOperand(5).getReg(), MRI, *TRI); 3828 3829 // Any remaining operands are immediates and were correctly null 3830 // initialized. 3831 break; 3832 } 3833 case AMDGPU::G_AMDGPU_BUFFER_ATOMIC_CMPSWAP: { 3834 // vdata_out 3835 OpdsMapping[0] = getVGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 3836 3837 // vdata_in 3838 OpdsMapping[1] = getVGPROpMapping(MI.getOperand(1).getReg(), MRI, *TRI); 3839 3840 // cmp 3841 OpdsMapping[2] = getVGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 3842 3843 // rsrc 3844 OpdsMapping[3] = getSGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 3845 3846 // vindex 3847 OpdsMapping[4] = getVGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 3848 3849 // voffset 3850 OpdsMapping[5] = getVGPROpMapping(MI.getOperand(5).getReg(), MRI, *TRI); 3851 3852 // soffset 3853 OpdsMapping[6] = getSGPROpMapping(MI.getOperand(6).getReg(), MRI, *TRI); 3854 3855 // Any remaining operands are immediates and were correctly null 3856 // initialized. 3857 break; 3858 } 3859 case AMDGPU::G_AMDGPU_S_BUFFER_LOAD: { 3860 // Lie and claim everything is legal, even though some need to be 3861 // SGPRs. applyMapping will have to deal with it as a waterfall loop. 3862 OpdsMapping[1] = getSGPROpMapping(MI.getOperand(1).getReg(), MRI, *TRI); 3863 OpdsMapping[2] = getSGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 3864 3865 // We need to convert this to a MUBUF if either the resource of offset is 3866 // VGPR. 3867 unsigned RSrcBank = OpdsMapping[1]->BreakDown[0].RegBank->getID(); 3868 unsigned OffsetBank = OpdsMapping[2]->BreakDown[0].RegBank->getID(); 3869 unsigned ResultBank = regBankUnion(RSrcBank, OffsetBank); 3870 3871 unsigned Size0 = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3872 OpdsMapping[0] = AMDGPU::getValueMapping(ResultBank, Size0); 3873 break; 3874 } 3875 case AMDGPU::G_INTRINSIC: { 3876 switch (MI.getIntrinsicID()) { 3877 default: 3878 return getInvalidInstructionMapping(); 3879 case Intrinsic::amdgcn_div_fmas: 3880 case Intrinsic::amdgcn_div_fixup: 3881 case Intrinsic::amdgcn_trig_preop: 3882 case Intrinsic::amdgcn_sin: 3883 case Intrinsic::amdgcn_cos: 3884 case Intrinsic::amdgcn_log_clamp: 3885 case Intrinsic::amdgcn_rcp: 3886 case Intrinsic::amdgcn_rcp_legacy: 3887 case Intrinsic::amdgcn_sqrt: 3888 case Intrinsic::amdgcn_rsq: 3889 case Intrinsic::amdgcn_rsq_legacy: 3890 case Intrinsic::amdgcn_rsq_clamp: 3891 case Intrinsic::amdgcn_fmul_legacy: 3892 case Intrinsic::amdgcn_fma_legacy: 3893 case Intrinsic::amdgcn_ldexp: 3894 case Intrinsic::amdgcn_frexp_mant: 3895 case Intrinsic::amdgcn_frexp_exp: 3896 case Intrinsic::amdgcn_fract: 3897 case Intrinsic::amdgcn_cvt_pkrtz: 3898 case Intrinsic::amdgcn_cvt_pknorm_i16: 3899 case Intrinsic::amdgcn_cvt_pknorm_u16: 3900 case Intrinsic::amdgcn_cvt_pk_i16: 3901 case Intrinsic::amdgcn_cvt_pk_u16: 3902 case Intrinsic::amdgcn_fmed3: 3903 case Intrinsic::amdgcn_cubeid: 3904 case Intrinsic::amdgcn_cubema: 3905 case Intrinsic::amdgcn_cubesc: 3906 case Intrinsic::amdgcn_cubetc: 3907 case Intrinsic::amdgcn_sffbh: 3908 case Intrinsic::amdgcn_fmad_ftz: 3909 case Intrinsic::amdgcn_mbcnt_lo: 3910 case Intrinsic::amdgcn_mbcnt_hi: 3911 case Intrinsic::amdgcn_mul_u24: 3912 case Intrinsic::amdgcn_mul_i24: 3913 case Intrinsic::amdgcn_lerp: 3914 case Intrinsic::amdgcn_sad_u8: 3915 case Intrinsic::amdgcn_msad_u8: 3916 case Intrinsic::amdgcn_sad_hi_u8: 3917 case Intrinsic::amdgcn_sad_u16: 3918 case Intrinsic::amdgcn_qsad_pk_u16_u8: 3919 case Intrinsic::amdgcn_mqsad_pk_u16_u8: 3920 case Intrinsic::amdgcn_mqsad_u32_u8: 3921 case Intrinsic::amdgcn_cvt_pk_u8_f32: 3922 case Intrinsic::amdgcn_alignbit: 3923 case Intrinsic::amdgcn_alignbyte: 3924 case Intrinsic::amdgcn_fdot2: 3925 case Intrinsic::amdgcn_sdot2: 3926 case Intrinsic::amdgcn_udot2: 3927 case Intrinsic::amdgcn_sdot4: 3928 case Intrinsic::amdgcn_udot4: 3929 case Intrinsic::amdgcn_sdot8: 3930 case Intrinsic::amdgcn_udot8: 3931 return getDefaultMappingVOP(MI); 3932 case Intrinsic::amdgcn_sbfe: 3933 case Intrinsic::amdgcn_ubfe: 3934 if (isSALUMapping(MI)) 3935 return getDefaultMappingSOP(MI); 3936 return getDefaultMappingVOP(MI); 3937 case Intrinsic::amdgcn_ds_swizzle: 3938 case Intrinsic::amdgcn_ds_permute: 3939 case Intrinsic::amdgcn_ds_bpermute: 3940 case Intrinsic::amdgcn_update_dpp: 3941 case Intrinsic::amdgcn_mov_dpp8: 3942 case Intrinsic::amdgcn_mov_dpp: 3943 case Intrinsic::amdgcn_wwm: 3944 case Intrinsic::amdgcn_wqm: 3945 case Intrinsic::amdgcn_softwqm: 3946 case Intrinsic::amdgcn_set_inactive: 3947 return getDefaultMappingAllVGPR(MI); 3948 case Intrinsic::amdgcn_kernarg_segment_ptr: 3949 case Intrinsic::amdgcn_s_getpc: 3950 case Intrinsic::amdgcn_groupstaticsize: 3951 case Intrinsic::amdgcn_reloc_constant: 3952 case Intrinsic::returnaddress: { 3953 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3954 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 3955 break; 3956 } 3957 case Intrinsic::amdgcn_wqm_vote: { 3958 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3959 OpdsMapping[0] = OpdsMapping[2] 3960 = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, Size); 3961 break; 3962 } 3963 case Intrinsic::amdgcn_ps_live: { 3964 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1); 3965 break; 3966 } 3967 case Intrinsic::amdgcn_div_scale: { 3968 unsigned Dst0Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3969 unsigned Dst1Size = MRI.getType(MI.getOperand(1).getReg()).getSizeInBits(); 3970 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Dst0Size); 3971 OpdsMapping[1] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, Dst1Size); 3972 3973 unsigned SrcSize = MRI.getType(MI.getOperand(3).getReg()).getSizeInBits(); 3974 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, SrcSize); 3975 OpdsMapping[4] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, SrcSize); 3976 break; 3977 } 3978 case Intrinsic::amdgcn_class: { 3979 Register Src0Reg = MI.getOperand(2).getReg(); 3980 Register Src1Reg = MI.getOperand(3).getReg(); 3981 unsigned Src0Size = MRI.getType(Src0Reg).getSizeInBits(); 3982 unsigned Src1Size = MRI.getType(Src1Reg).getSizeInBits(); 3983 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3984 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, DstSize); 3985 OpdsMapping[2] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Src0Size); 3986 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Src1Size); 3987 break; 3988 } 3989 case Intrinsic::amdgcn_icmp: 3990 case Intrinsic::amdgcn_fcmp: { 3991 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 3992 // This is not VCCRegBank because this is not used in boolean contexts. 3993 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, DstSize); 3994 unsigned OpSize = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 3995 OpdsMapping[2] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, OpSize); 3996 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, OpSize); 3997 break; 3998 } 3999 case Intrinsic::amdgcn_readlane: { 4000 // This must be an SGPR, but accept a VGPR. 4001 Register IdxReg = MI.getOperand(3).getReg(); 4002 unsigned IdxSize = MRI.getType(IdxReg).getSizeInBits(); 4003 unsigned IdxBank = getRegBankID(IdxReg, MRI, AMDGPU::SGPRRegBankID); 4004 OpdsMapping[3] = AMDGPU::getValueMapping(IdxBank, IdxSize); 4005 LLVM_FALLTHROUGH; 4006 } 4007 case Intrinsic::amdgcn_readfirstlane: { 4008 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4009 unsigned SrcSize = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 4010 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, DstSize); 4011 OpdsMapping[2] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, SrcSize); 4012 break; 4013 } 4014 case Intrinsic::amdgcn_writelane: { 4015 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4016 Register SrcReg = MI.getOperand(2).getReg(); 4017 unsigned SrcSize = MRI.getType(SrcReg).getSizeInBits(); 4018 unsigned SrcBank = getRegBankID(SrcReg, MRI, AMDGPU::SGPRRegBankID); 4019 Register IdxReg = MI.getOperand(3).getReg(); 4020 unsigned IdxSize = MRI.getType(IdxReg).getSizeInBits(); 4021 unsigned IdxBank = getRegBankID(IdxReg, MRI, AMDGPU::SGPRRegBankID); 4022 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, DstSize); 4023 4024 // These 2 must be SGPRs, but accept VGPRs. Readfirstlane will be inserted 4025 // to legalize. 4026 OpdsMapping[2] = AMDGPU::getValueMapping(SrcBank, SrcSize); 4027 OpdsMapping[3] = AMDGPU::getValueMapping(IdxBank, IdxSize); 4028 OpdsMapping[4] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, SrcSize); 4029 break; 4030 } 4031 case Intrinsic::amdgcn_if_break: { 4032 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 4033 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 4034 OpdsMapping[2] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1); 4035 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 4036 break; 4037 } 4038 case Intrinsic::amdgcn_permlane16: 4039 case Intrinsic::amdgcn_permlanex16: { 4040 unsigned Size = getSizeInBits(MI.getOperand(0).getReg(), MRI, *TRI); 4041 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 4042 OpdsMapping[2] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 4043 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, Size); 4044 OpdsMapping[4] = getSGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 4045 OpdsMapping[5] = getSGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 4046 break; 4047 } 4048 case Intrinsic::amdgcn_mfma_f32_4x4x1f32: 4049 case Intrinsic::amdgcn_mfma_f32_4x4x4f16: 4050 case Intrinsic::amdgcn_mfma_i32_4x4x4i8: 4051 case Intrinsic::amdgcn_mfma_f32_4x4x2bf16: 4052 case Intrinsic::amdgcn_mfma_f32_16x16x1f32: 4053 case Intrinsic::amdgcn_mfma_f32_16x16x4f32: 4054 case Intrinsic::amdgcn_mfma_f32_16x16x4f16: 4055 case Intrinsic::amdgcn_mfma_f32_16x16x16f16: 4056 case Intrinsic::amdgcn_mfma_i32_16x16x4i8: 4057 case Intrinsic::amdgcn_mfma_i32_16x16x16i8: 4058 case Intrinsic::amdgcn_mfma_f32_16x16x2bf16: 4059 case Intrinsic::amdgcn_mfma_f32_16x16x8bf16: 4060 case Intrinsic::amdgcn_mfma_f32_32x32x1f32: 4061 case Intrinsic::amdgcn_mfma_f32_32x32x2f32: 4062 case Intrinsic::amdgcn_mfma_f32_32x32x4f16: 4063 case Intrinsic::amdgcn_mfma_f32_32x32x8f16: 4064 case Intrinsic::amdgcn_mfma_i32_32x32x4i8: 4065 case Intrinsic::amdgcn_mfma_i32_32x32x8i8: 4066 case Intrinsic::amdgcn_mfma_f32_32x32x2bf16: 4067 case Intrinsic::amdgcn_mfma_f32_32x32x4bf16: { 4068 // Default for MAI intrinsics. 4069 // srcC can also be an immediate which can be folded later. 4070 // FIXME: Should we eventually add an alternative mapping with AGPR src 4071 // for srcA/srcB? 4072 // 4073 // vdst, srcA, srcB, srcC 4074 OpdsMapping[0] = getAGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 4075 OpdsMapping[2] = getVGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4076 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 4077 OpdsMapping[4] = getAGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 4078 break; 4079 } 4080 case Intrinsic::amdgcn_interp_p1: 4081 case Intrinsic::amdgcn_interp_p2: 4082 case Intrinsic::amdgcn_interp_mov: 4083 case Intrinsic::amdgcn_interp_p1_f16: 4084 case Intrinsic::amdgcn_interp_p2_f16: { 4085 const int M0Idx = MI.getNumOperands() - 1; 4086 Register M0Reg = MI.getOperand(M0Idx).getReg(); 4087 unsigned M0Bank = getRegBankID(M0Reg, MRI, AMDGPU::SGPRRegBankID); 4088 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4089 4090 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, DstSize); 4091 for (int I = 2; I != M0Idx && MI.getOperand(I).isReg(); ++I) 4092 OpdsMapping[I] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4093 4094 // Must be SGPR, but we must take whatever the original bank is and fix it 4095 // later. 4096 OpdsMapping[M0Idx] = AMDGPU::getValueMapping(M0Bank, 32); 4097 break; 4098 } 4099 case Intrinsic::amdgcn_ballot: { 4100 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4101 unsigned SrcSize = MRI.getType(MI.getOperand(2).getReg()).getSizeInBits(); 4102 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, DstSize); 4103 OpdsMapping[2] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, SrcSize); 4104 break; 4105 } 4106 } 4107 break; 4108 } 4109 case AMDGPU::G_AMDGPU_INTRIN_IMAGE_LOAD: 4110 case AMDGPU::G_AMDGPU_INTRIN_IMAGE_STORE: { 4111 auto IntrID = MI.getIntrinsicID(); 4112 const AMDGPU::RsrcIntrinsic *RSrcIntrin = AMDGPU::lookupRsrcIntrinsic(IntrID); 4113 assert(RSrcIntrin && "missing RsrcIntrinsic for image intrinsic"); 4114 // Non-images can have complications from operands that allow both SGPR 4115 // and VGPR. For now it's too complicated to figure out the final opcode 4116 // to derive the register bank from the MCInstrDesc. 4117 assert(RSrcIntrin->IsImage); 4118 return getImageMapping(MRI, MI, RSrcIntrin->RsrcArg); 4119 } 4120 case AMDGPU::G_AMDGPU_INTRIN_BVH_INTERSECT_RAY: { 4121 unsigned N = MI.getNumExplicitOperands() - 2; 4122 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 128); 4123 OpdsMapping[N] = getSGPROpMapping(MI.getOperand(N).getReg(), MRI, *TRI); 4124 for (unsigned I = 2; I < N; ++I) 4125 OpdsMapping[I] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4126 break; 4127 } 4128 case AMDGPU::G_INTRINSIC_W_SIDE_EFFECTS: { 4129 auto IntrID = MI.getIntrinsicID(); 4130 switch (IntrID) { 4131 case Intrinsic::amdgcn_s_getreg: 4132 case Intrinsic::amdgcn_s_memtime: 4133 case Intrinsic::amdgcn_s_memrealtime: 4134 case Intrinsic::amdgcn_s_get_waveid_in_workgroup: { 4135 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4136 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 4137 break; 4138 } 4139 case Intrinsic::amdgcn_global_atomic_fadd: 4140 case Intrinsic::amdgcn_global_atomic_csub: 4141 return getDefaultMappingAllVGPR(MI); 4142 case Intrinsic::amdgcn_ds_ordered_add: 4143 case Intrinsic::amdgcn_ds_ordered_swap: { 4144 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4145 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, DstSize); 4146 unsigned M0Bank = getRegBankID(MI.getOperand(2).getReg(), MRI, 4147 AMDGPU::SGPRRegBankID); 4148 OpdsMapping[2] = AMDGPU::getValueMapping(M0Bank, 32); 4149 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4150 break; 4151 } 4152 case Intrinsic::amdgcn_ds_append: 4153 case Intrinsic::amdgcn_ds_consume: { 4154 unsigned DstSize = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4155 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, DstSize); 4156 OpdsMapping[2] = getSGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4157 break; 4158 } 4159 case Intrinsic::amdgcn_exp_compr: 4160 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4161 OpdsMapping[4] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4162 break; 4163 case Intrinsic::amdgcn_exp: 4164 // FIXME: Could we support packed types here? 4165 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4166 OpdsMapping[4] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4167 OpdsMapping[5] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4168 OpdsMapping[6] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4169 break; 4170 case Intrinsic::amdgcn_s_sendmsg: 4171 case Intrinsic::amdgcn_s_sendmsghalt: { 4172 // This must be an SGPR, but accept a VGPR. 4173 unsigned Bank = getRegBankID(MI.getOperand(2).getReg(), MRI, 4174 AMDGPU::SGPRRegBankID); 4175 OpdsMapping[2] = AMDGPU::getValueMapping(Bank, 32); 4176 break; 4177 } 4178 case Intrinsic::amdgcn_s_setreg: { 4179 // This must be an SGPR, but accept a VGPR. 4180 unsigned Bank = getRegBankID(MI.getOperand(2).getReg(), MRI, 4181 AMDGPU::SGPRRegBankID); 4182 OpdsMapping[2] = AMDGPU::getValueMapping(Bank, 32); 4183 break; 4184 } 4185 case Intrinsic::amdgcn_end_cf: { 4186 unsigned Size = getSizeInBits(MI.getOperand(1).getReg(), MRI, *TRI); 4187 OpdsMapping[1] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 4188 break; 4189 } 4190 case Intrinsic::amdgcn_else: { 4191 unsigned WaveSize = getSizeInBits(MI.getOperand(1).getReg(), MRI, *TRI); 4192 OpdsMapping[0] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1); 4193 OpdsMapping[1] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, WaveSize); 4194 OpdsMapping[3] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, WaveSize); 4195 break; 4196 } 4197 case Intrinsic::amdgcn_kill: { 4198 OpdsMapping[1] = AMDGPU::getValueMapping(AMDGPU::VCCRegBankID, 1); 4199 break; 4200 } 4201 case Intrinsic::amdgcn_raw_buffer_load: 4202 case Intrinsic::amdgcn_raw_tbuffer_load: { 4203 // FIXME: Should make intrinsic ID the last operand of the instruction, 4204 // then this would be the same as store 4205 OpdsMapping[0] = getVGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 4206 OpdsMapping[2] = getSGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4207 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 4208 OpdsMapping[4] = getSGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 4209 break; 4210 } 4211 case Intrinsic::amdgcn_raw_buffer_store: 4212 case Intrinsic::amdgcn_raw_buffer_store_format: 4213 case Intrinsic::amdgcn_raw_tbuffer_store: { 4214 OpdsMapping[1] = getVGPROpMapping(MI.getOperand(1).getReg(), MRI, *TRI); 4215 OpdsMapping[2] = getSGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4216 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 4217 OpdsMapping[4] = getSGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 4218 break; 4219 } 4220 case Intrinsic::amdgcn_struct_buffer_load: 4221 case Intrinsic::amdgcn_struct_tbuffer_load: { 4222 OpdsMapping[0] = getVGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 4223 OpdsMapping[2] = getSGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4224 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 4225 OpdsMapping[4] = getVGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 4226 OpdsMapping[5] = getSGPROpMapping(MI.getOperand(5).getReg(), MRI, *TRI); 4227 break; 4228 } 4229 case Intrinsic::amdgcn_struct_buffer_store: 4230 case Intrinsic::amdgcn_struct_tbuffer_store: { 4231 OpdsMapping[1] = getVGPROpMapping(MI.getOperand(1).getReg(), MRI, *TRI); 4232 OpdsMapping[2] = getSGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4233 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 4234 OpdsMapping[4] = getVGPROpMapping(MI.getOperand(4).getReg(), MRI, *TRI); 4235 OpdsMapping[5] = getSGPROpMapping(MI.getOperand(5).getReg(), MRI, *TRI); 4236 break; 4237 } 4238 case Intrinsic::amdgcn_init_exec_from_input: { 4239 unsigned Size = getSizeInBits(MI.getOperand(1).getReg(), MRI, *TRI); 4240 OpdsMapping[1] = AMDGPU::getValueMapping(AMDGPU::SGPRRegBankID, Size); 4241 break; 4242 } 4243 case Intrinsic::amdgcn_ds_gws_init: 4244 case Intrinsic::amdgcn_ds_gws_barrier: 4245 case Intrinsic::amdgcn_ds_gws_sema_br: { 4246 OpdsMapping[1] = AMDGPU::getValueMapping(AMDGPU::VGPRRegBankID, 32); 4247 4248 // This must be an SGPR, but accept a VGPR. 4249 unsigned Bank = getRegBankID(MI.getOperand(2).getReg(), MRI, 4250 AMDGPU::SGPRRegBankID); 4251 OpdsMapping[2] = AMDGPU::getValueMapping(Bank, 32); 4252 break; 4253 } 4254 case Intrinsic::amdgcn_ds_gws_sema_v: 4255 case Intrinsic::amdgcn_ds_gws_sema_p: 4256 case Intrinsic::amdgcn_ds_gws_sema_release_all: { 4257 // This must be an SGPR, but accept a VGPR. 4258 unsigned Bank = getRegBankID(MI.getOperand(1).getReg(), MRI, 4259 AMDGPU::SGPRRegBankID); 4260 OpdsMapping[1] = AMDGPU::getValueMapping(Bank, 32); 4261 break; 4262 } 4263 default: 4264 return getInvalidInstructionMapping(); 4265 } 4266 break; 4267 } 4268 case AMDGPU::G_SELECT: { 4269 unsigned Size = MRI.getType(MI.getOperand(0).getReg()).getSizeInBits(); 4270 unsigned Op2Bank = getRegBankID(MI.getOperand(2).getReg(), MRI, 4271 AMDGPU::SGPRRegBankID); 4272 unsigned Op3Bank = getRegBankID(MI.getOperand(3).getReg(), MRI, 4273 AMDGPU::SGPRRegBankID); 4274 bool SGPRSrcs = Op2Bank == AMDGPU::SGPRRegBankID && 4275 Op3Bank == AMDGPU::SGPRRegBankID; 4276 4277 unsigned CondBankDefault = SGPRSrcs ? 4278 AMDGPU::SGPRRegBankID : AMDGPU::VCCRegBankID; 4279 unsigned CondBank = getRegBankID(MI.getOperand(1).getReg(), MRI, 4280 CondBankDefault); 4281 if (CondBank == AMDGPU::SGPRRegBankID) 4282 CondBank = SGPRSrcs ? AMDGPU::SGPRRegBankID : AMDGPU::VCCRegBankID; 4283 else if (CondBank == AMDGPU::VGPRRegBankID) 4284 CondBank = AMDGPU::VCCRegBankID; 4285 4286 unsigned Bank = SGPRSrcs && CondBank == AMDGPU::SGPRRegBankID ? 4287 AMDGPU::SGPRRegBankID : AMDGPU::VGPRRegBankID; 4288 4289 assert(CondBank == AMDGPU::VCCRegBankID || CondBank == AMDGPU::SGPRRegBankID); 4290 4291 // TODO: Should report 32-bit for scalar condition type. 4292 if (Size == 64) { 4293 OpdsMapping[0] = AMDGPU::getValueMappingSGPR64Only(Bank, Size); 4294 OpdsMapping[1] = AMDGPU::getValueMapping(CondBank, 1); 4295 OpdsMapping[2] = AMDGPU::getValueMappingSGPR64Only(Bank, Size); 4296 OpdsMapping[3] = AMDGPU::getValueMappingSGPR64Only(Bank, Size); 4297 } else { 4298 OpdsMapping[0] = AMDGPU::getValueMapping(Bank, Size); 4299 OpdsMapping[1] = AMDGPU::getValueMapping(CondBank, 1); 4300 OpdsMapping[2] = AMDGPU::getValueMapping(Bank, Size); 4301 OpdsMapping[3] = AMDGPU::getValueMapping(Bank, Size); 4302 } 4303 4304 break; 4305 } 4306 4307 case AMDGPU::G_LOAD: 4308 case AMDGPU::G_ZEXTLOAD: 4309 case AMDGPU::G_SEXTLOAD: 4310 return getInstrMappingForLoad(MI); 4311 4312 case AMDGPU::G_ATOMICRMW_XCHG: 4313 case AMDGPU::G_ATOMICRMW_ADD: 4314 case AMDGPU::G_ATOMICRMW_SUB: 4315 case AMDGPU::G_ATOMICRMW_AND: 4316 case AMDGPU::G_ATOMICRMW_OR: 4317 case AMDGPU::G_ATOMICRMW_XOR: 4318 case AMDGPU::G_ATOMICRMW_MAX: 4319 case AMDGPU::G_ATOMICRMW_MIN: 4320 case AMDGPU::G_ATOMICRMW_UMAX: 4321 case AMDGPU::G_ATOMICRMW_UMIN: 4322 case AMDGPU::G_ATOMICRMW_FADD: 4323 case AMDGPU::G_AMDGPU_ATOMIC_CMPXCHG: 4324 case AMDGPU::G_AMDGPU_ATOMIC_INC: 4325 case AMDGPU::G_AMDGPU_ATOMIC_DEC: 4326 case AMDGPU::G_AMDGPU_ATOMIC_FMIN: 4327 case AMDGPU::G_AMDGPU_ATOMIC_FMAX: { 4328 OpdsMapping[0] = getVGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 4329 OpdsMapping[1] = getValueMappingForPtr(MRI, MI.getOperand(1).getReg()); 4330 OpdsMapping[2] = getVGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4331 break; 4332 } 4333 case AMDGPU::G_ATOMIC_CMPXCHG: { 4334 OpdsMapping[0] = getVGPROpMapping(MI.getOperand(0).getReg(), MRI, *TRI); 4335 OpdsMapping[1] = getValueMappingForPtr(MRI, MI.getOperand(1).getReg()); 4336 OpdsMapping[2] = getVGPROpMapping(MI.getOperand(2).getReg(), MRI, *TRI); 4337 OpdsMapping[3] = getVGPROpMapping(MI.getOperand(3).getReg(), MRI, *TRI); 4338 break; 4339 } 4340 case AMDGPU::G_BRCOND: { 4341 unsigned Bank = getRegBankID(MI.getOperand(0).getReg(), MRI, 4342 AMDGPU::SGPRRegBankID); 4343 assert(MRI.getType(MI.getOperand(0).getReg()).getSizeInBits() == 1); 4344 if (Bank != AMDGPU::SGPRRegBankID) 4345 Bank = AMDGPU::VCCRegBankID; 4346 4347 OpdsMapping[0] = AMDGPU::getValueMapping(Bank, 1); 4348 break; 4349 } 4350 } 4351 4352 return getInstructionMapping(/*ID*/1, /*Cost*/1, 4353 getOperandsMapping(OpdsMapping), 4354 MI.getNumOperands()); 4355 } 4356