1 //===----------- PPCVSXSwapRemoval.cpp - Remove VSX LE Swaps -------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===---------------------------------------------------------------------===// 9 // 10 // This pass analyzes vector computations and removes unnecessary 11 // doubleword swaps (xxswapd instructions). This pass is performed 12 // only for little-endian VSX code generation. 13 // 14 // For this specific case, loads and stores of v4i32, v4f32, v2i64, 15 // and v2f64 vectors are inefficient. These are implemented using 16 // the lxvd2x and stxvd2x instructions, which invert the order of 17 // doublewords in a vector register. Thus code generation inserts 18 // an xxswapd after each such load, and prior to each such store. 19 // 20 // The extra xxswapd instructions reduce performance. The purpose 21 // of this pass is to reduce the number of xxswapd instructions 22 // required for correctness. 23 // 24 // The primary insight is that much code that operates on vectors 25 // does not care about the relative order of elements in a register, 26 // so long as the correct memory order is preserved. If we have a 27 // computation where all input values are provided by lxvd2x/xxswapd, 28 // all outputs are stored using xxswapd/lxvd2x, and all intermediate 29 // computations are lane-insensitive (independent of element order), 30 // then all the xxswapd instructions associated with the loads and 31 // stores may be removed without changing observable semantics. 32 // 33 // This pass uses standard equivalence class infrastructure to create 34 // maximal webs of computations fitting the above description. Each 35 // such web is then optimized by removing its unnecessary xxswapd 36 // instructions. 37 // 38 // There are some lane-sensitive operations for which we can still 39 // permit the optimization, provided we modify those operations 40 // accordingly. Such operations are identified as using "special 41 // handling" within this module. 42 // 43 //===---------------------------------------------------------------------===// 44 45 #include "PPCInstrInfo.h" 46 #include "PPC.h" 47 #include "PPCInstrBuilder.h" 48 #include "PPCTargetMachine.h" 49 #include "llvm/ADT/DenseMap.h" 50 #include "llvm/ADT/EquivalenceClasses.h" 51 #include "llvm/CodeGen/MachineFunctionPass.h" 52 #include "llvm/CodeGen/MachineInstrBuilder.h" 53 #include "llvm/CodeGen/MachineRegisterInfo.h" 54 #include "llvm/Support/Debug.h" 55 #include "llvm/Support/Format.h" 56 #include "llvm/Support/raw_ostream.h" 57 58 using namespace llvm; 59 60 #define DEBUG_TYPE "ppc-vsx-swaps" 61 62 namespace llvm { 63 void initializePPCVSXSwapRemovalPass(PassRegistry&); 64 } 65 66 namespace { 67 68 // A PPCVSXSwapEntry is created for each machine instruction that 69 // is relevant to a vector computation. 70 struct PPCVSXSwapEntry { 71 // Pointer to the instruction. 72 MachineInstr *VSEMI; 73 74 // Unique ID (position in the swap vector). 75 int VSEId; 76 77 // Attributes of this node. 78 unsigned int IsLoad : 1; 79 unsigned int IsStore : 1; 80 unsigned int IsSwap : 1; 81 unsigned int MentionsPhysVR : 1; 82 unsigned int IsSwappable : 1; 83 unsigned int SpecialHandling : 3; 84 unsigned int WebRejected : 1; 85 unsigned int WillRemove : 1; 86 }; 87 88 enum SHValues { 89 SH_NONE = 0, 90 SH_EXTRACT, 91 SH_INSERT, 92 SH_NOSWAP_LD, 93 SH_NOSWAP_ST, 94 SH_SPLAT 95 }; 96 97 struct PPCVSXSwapRemoval : public MachineFunctionPass { 98 99 static char ID; 100 const PPCInstrInfo *TII; 101 MachineFunction *MF; 102 MachineRegisterInfo *MRI; 103 104 // Swap entries are allocated in a vector for better performance. 105 std::vector<PPCVSXSwapEntry> SwapVector; 106 107 // A mapping is maintained between machine instructions and 108 // their swap entries. The key is the address of the MI. 109 DenseMap<MachineInstr*, int> SwapMap; 110 111 // Equivalence classes are used to gather webs of related computation. 112 // Swap entries are represented by their VSEId fields. 113 EquivalenceClasses<int> *EC; 114 115 PPCVSXSwapRemoval() : MachineFunctionPass(ID) { 116 initializePPCVSXSwapRemovalPass(*PassRegistry::getPassRegistry()); 117 } 118 119 private: 120 // Initialize data structures. 121 void initialize(MachineFunction &MFParm); 122 123 // Walk the machine instructions to gather vector usage information. 124 // Return true iff vector mentions are present. 125 bool gatherVectorInstructions(); 126 127 // Add an entry to the swap vector and swap map. 128 int addSwapEntry(MachineInstr *MI, PPCVSXSwapEntry &SwapEntry); 129 130 // Hunt backwards through COPY and SUBREG_TO_REG chains for a 131 // source register. VecIdx indicates the swap vector entry to 132 // mark as mentioning a physical register if the search leads 133 // to one. 134 unsigned lookThruCopyLike(unsigned SrcReg, unsigned VecIdx); 135 136 // Generate equivalence classes for related computations (webs). 137 void formWebs(); 138 139 // Analyze webs and determine those that cannot be optimized. 140 void recordUnoptimizableWebs(); 141 142 // Record which swap instructions can be safely removed. 143 void markSwapsForRemoval(); 144 145 // Remove swaps and update other instructions requiring special 146 // handling. Return true iff any changes are made. 147 bool removeSwaps(); 148 149 // Update instructions requiring special handling. 150 void handleSpecialSwappables(int EntryIdx); 151 152 // Dump a description of the entries in the swap vector. 153 void dumpSwapVector(); 154 155 // Return true iff the given register is in the given class. 156 bool isRegInClass(unsigned Reg, const TargetRegisterClass *RC) { 157 if (TargetRegisterInfo::isVirtualRegister(Reg)) 158 return RC->hasSubClassEq(MRI->getRegClass(Reg)); 159 if (RC->contains(Reg)) 160 return true; 161 return false; 162 } 163 164 // Return true iff the given register is a full vector register. 165 bool isVecReg(unsigned Reg) { 166 return (isRegInClass(Reg, &PPC::VSRCRegClass) || 167 isRegInClass(Reg, &PPC::VRRCRegClass)); 168 } 169 170 public: 171 // Main entry point for this pass. 172 bool runOnMachineFunction(MachineFunction &MF) override { 173 // If we don't have VSX on the subtarget, don't do anything. 174 const PPCSubtarget &STI = MF.getSubtarget<PPCSubtarget>(); 175 if (!STI.hasVSX()) 176 return false; 177 178 bool Changed = false; 179 initialize(MF); 180 181 if (gatherVectorInstructions()) { 182 formWebs(); 183 recordUnoptimizableWebs(); 184 markSwapsForRemoval(); 185 Changed = removeSwaps(); 186 } 187 188 // FIXME: See the allocation of EC in initialize(). 189 delete EC; 190 return Changed; 191 } 192 }; 193 194 // Initialize data structures for this pass. In particular, clear the 195 // swap vector and allocate the equivalence class mapping before 196 // processing each function. 197 void PPCVSXSwapRemoval::initialize(MachineFunction &MFParm) { 198 MF = &MFParm; 199 MRI = &MF->getRegInfo(); 200 TII = static_cast<const PPCInstrInfo*>(MF->getSubtarget().getInstrInfo()); 201 202 // An initial vector size of 256 appears to work well in practice. 203 // Small/medium functions with vector content tend not to incur a 204 // reallocation at this size. Three of the vector tests in 205 // projects/test-suite reallocate, which seems like a reasonable rate. 206 const int InitialVectorSize(256); 207 SwapVector.clear(); 208 SwapVector.reserve(InitialVectorSize); 209 210 // FIXME: Currently we allocate EC each time because we don't have 211 // access to the set representation on which to call clear(). Should 212 // consider adding a clear() method to the EquivalenceClasses class. 213 EC = new EquivalenceClasses<int>; 214 } 215 216 // Create an entry in the swap vector for each instruction that mentions 217 // a full vector register, recording various characteristics of the 218 // instructions there. 219 bool PPCVSXSwapRemoval::gatherVectorInstructions() { 220 bool RelevantFunction = false; 221 222 for (MachineBasicBlock &MBB : *MF) { 223 for (MachineInstr &MI : MBB) { 224 225 bool RelevantInstr = false; 226 227 for (const MachineOperand &MO : MI.operands()) { 228 if (!MO.isReg()) 229 continue; 230 unsigned Reg = MO.getReg(); 231 if (isVecReg(Reg)) { 232 RelevantInstr = true; 233 break; 234 } 235 } 236 237 if (!RelevantInstr) 238 continue; 239 240 RelevantFunction = true; 241 242 // Create a SwapEntry initialized to zeros, then fill in the 243 // instruction and ID fields before pushing it to the back 244 // of the swap vector. 245 PPCVSXSwapEntry SwapEntry{}; 246 int VecIdx = addSwapEntry(&MI, SwapEntry); 247 248 switch(MI.getOpcode()) { 249 default: 250 // Unless noted otherwise, an instruction is considered 251 // safe for the optimization. There are a large number of 252 // such true-SIMD instructions (all vector math, logical, 253 // select, compare, etc.). 254 SwapVector[VecIdx].IsSwappable = 1; 255 break; 256 case PPC::XXPERMDI: { 257 // This is a swap if it is of the form XXPERMDI t, s, s, 2. 258 // Unfortunately, MachineCSE ignores COPY and SUBREG_TO_REG, so we 259 // can also see XXPERMDI t, SUBREG_TO_REG(s), SUBREG_TO_REG(s), 2, 260 // for example. We have to look through chains of COPY and 261 // SUBREG_TO_REG to find the real source value for comparison. 262 // If the real source value is a physical register, then mark the 263 // XXPERMDI as mentioning a physical register. 264 int immed = MI.getOperand(3).getImm(); 265 if (immed == 2) { 266 unsigned trueReg1 = lookThruCopyLike(MI.getOperand(1).getReg(), 267 VecIdx); 268 unsigned trueReg2 = lookThruCopyLike(MI.getOperand(2).getReg(), 269 VecIdx); 270 if (trueReg1 == trueReg2) 271 SwapVector[VecIdx].IsSwap = 1; 272 } 273 // This is a doubleword splat if it is of the form 274 // XXPERMDI t, s, s, 0 or XXPERMDI t, s, s, 3. As above we 275 // must look through chains of copy-likes to find the source 276 // register. We turn off the marking for mention of a physical 277 // register, because splatting it is safe; the optimization 278 // will not swap the value in the physical register. 279 else if (immed == 0 || immed == 3) { 280 unsigned trueReg1 = lookThruCopyLike(MI.getOperand(1).getReg(), 281 VecIdx); 282 unsigned trueReg2 = lookThruCopyLike(MI.getOperand(2).getReg(), 283 VecIdx); 284 if (trueReg1 == trueReg2) { 285 SwapVector[VecIdx].IsSwappable = 1; 286 SwapVector[VecIdx].MentionsPhysVR = 0; 287 } 288 } 289 // Any other form of XXPERMDI is lane-sensitive and unsafe 290 // for the optimization. 291 break; 292 } 293 case PPC::LVX: 294 // Non-permuting loads are currently unsafe. We can use special 295 // handling for this in the future. By not marking these as 296 // IsSwap, we ensure computations containing them will be rejected 297 // for now. 298 SwapVector[VecIdx].IsLoad = 1; 299 break; 300 case PPC::LXVD2X: 301 case PPC::LXVW4X: 302 // Permuting loads are marked as both load and swap, and are 303 // safe for optimization. 304 SwapVector[VecIdx].IsLoad = 1; 305 SwapVector[VecIdx].IsSwap = 1; 306 break; 307 case PPC::STVX: 308 // Non-permuting stores are currently unsafe. We can use special 309 // handling for this in the future. By not marking these as 310 // IsSwap, we ensure computations containing them will be rejected 311 // for now. 312 SwapVector[VecIdx].IsStore = 1; 313 break; 314 case PPC::STXVD2X: 315 case PPC::STXVW4X: 316 // Permuting stores are marked as both store and swap, and are 317 // safe for optimization. 318 SwapVector[VecIdx].IsStore = 1; 319 SwapVector[VecIdx].IsSwap = 1; 320 break; 321 case PPC::COPY: 322 // These are fine provided they are moving between full vector 323 // register classes. 324 if (isVecReg(MI.getOperand(0).getReg()) && 325 isVecReg(MI.getOperand(1).getReg())) 326 SwapVector[VecIdx].IsSwappable = 1; 327 break; 328 case PPC::VSPLTB: 329 case PPC::VSPLTH: 330 case PPC::VSPLTW: 331 // Splats are lane-sensitive, but we can use special handling 332 // to adjust the source lane for the splat. This is not yet 333 // implemented. When it is, we need to uncomment the following: 334 SwapVector[VecIdx].IsSwappable = 1; 335 SwapVector[VecIdx].SpecialHandling = SHValues::SH_SPLAT; 336 break; 337 // The presence of the following lane-sensitive operations in a 338 // web will kill the optimization, at least for now. For these 339 // we do nothing, causing the optimization to fail. 340 // FIXME: Some of these could be permitted with special handling, 341 // and will be phased in as time permits. 342 // FIXME: There is no simple and maintainable way to express a set 343 // of opcodes having a common attribute in TableGen. Should this 344 // change, this is a prime candidate to use such a mechanism. 345 case PPC::INLINEASM: 346 case PPC::EXTRACT_SUBREG: 347 case PPC::INSERT_SUBREG: 348 case PPC::COPY_TO_REGCLASS: 349 case PPC::LVEBX: 350 case PPC::LVEHX: 351 case PPC::LVEWX: 352 case PPC::LVSL: 353 case PPC::LVSR: 354 case PPC::LVXL: 355 case PPC::STVEBX: 356 case PPC::STVEHX: 357 case PPC::STVEWX: 358 case PPC::STVXL: 359 case PPC::STXSDX: 360 case PPC::VCIPHER: 361 case PPC::VCIPHERLAST: 362 case PPC::VMRGHB: 363 case PPC::VMRGHH: 364 case PPC::VMRGHW: 365 case PPC::VMRGLB: 366 case PPC::VMRGLH: 367 case PPC::VMRGLW: 368 case PPC::VMULESB: 369 case PPC::VMULESH: 370 case PPC::VMULESW: 371 case PPC::VMULEUB: 372 case PPC::VMULEUH: 373 case PPC::VMULEUW: 374 case PPC::VMULOSB: 375 case PPC::VMULOSH: 376 case PPC::VMULOSW: 377 case PPC::VMULOUB: 378 case PPC::VMULOUH: 379 case PPC::VMULOUW: 380 case PPC::VNCIPHER: 381 case PPC::VNCIPHERLAST: 382 case PPC::VPERM: 383 case PPC::VPERMXOR: 384 case PPC::VPKPX: 385 case PPC::VPKSHSS: 386 case PPC::VPKSHUS: 387 case PPC::VPKSDSS: 388 case PPC::VPKSDUS: 389 case PPC::VPKSWSS: 390 case PPC::VPKSWUS: 391 case PPC::VPKUDUM: 392 case PPC::VPKUDUS: 393 case PPC::VPKUHUM: 394 case PPC::VPKUHUS: 395 case PPC::VPKUWUM: 396 case PPC::VPKUWUS: 397 case PPC::VPMSUMB: 398 case PPC::VPMSUMD: 399 case PPC::VPMSUMH: 400 case PPC::VPMSUMW: 401 case PPC::VRLB: 402 case PPC::VRLD: 403 case PPC::VRLH: 404 case PPC::VRLW: 405 case PPC::VSBOX: 406 case PPC::VSHASIGMAD: 407 case PPC::VSHASIGMAW: 408 case PPC::VSL: 409 case PPC::VSLDOI: 410 case PPC::VSLO: 411 case PPC::VSR: 412 case PPC::VSRO: 413 case PPC::VSUM2SWS: 414 case PPC::VSUM4SBS: 415 case PPC::VSUM4SHS: 416 case PPC::VSUM4UBS: 417 case PPC::VSUMSWS: 418 case PPC::VUPKHPX: 419 case PPC::VUPKHSB: 420 case PPC::VUPKHSH: 421 case PPC::VUPKHSW: 422 case PPC::VUPKLPX: 423 case PPC::VUPKLSB: 424 case PPC::VUPKLSH: 425 case PPC::VUPKLSW: 426 case PPC::XXMRGHW: 427 case PPC::XXMRGLW: 428 case PPC::XXSPLTW: 429 break; 430 } 431 } 432 } 433 434 if (RelevantFunction) { 435 DEBUG(dbgs() << "Swap vector when first built\n\n"); 436 dumpSwapVector(); 437 } 438 439 return RelevantFunction; 440 } 441 442 // Add an entry to the swap vector and swap map, and make a 443 // singleton equivalence class for the entry. 444 int PPCVSXSwapRemoval::addSwapEntry(MachineInstr *MI, 445 PPCVSXSwapEntry& SwapEntry) { 446 SwapEntry.VSEMI = MI; 447 SwapEntry.VSEId = SwapVector.size(); 448 SwapVector.push_back(SwapEntry); 449 EC->insert(SwapEntry.VSEId); 450 SwapMap[MI] = SwapEntry.VSEId; 451 return SwapEntry.VSEId; 452 } 453 454 // This is used to find the "true" source register for an 455 // XXPERMDI instruction, since MachineCSE does not handle the 456 // "copy-like" operations (Copy and SubregToReg). Returns 457 // the original SrcReg unless it is the target of a copy-like 458 // operation, in which case we chain backwards through all 459 // such operations to the ultimate source register. If a 460 // physical register is encountered, we stop the search and 461 // flag the swap entry indicated by VecIdx (the original 462 // XXPERMDI) as mentioning a physical register. 463 unsigned PPCVSXSwapRemoval::lookThruCopyLike(unsigned SrcReg, 464 unsigned VecIdx) { 465 MachineInstr *MI = MRI->getVRegDef(SrcReg); 466 if (!MI->isCopyLike()) 467 return SrcReg; 468 469 unsigned CopySrcReg; 470 if (MI->isCopy()) 471 CopySrcReg = MI->getOperand(1).getReg(); 472 else { 473 assert(MI->isSubregToReg() && "bad opcode for lookThruCopyLike"); 474 CopySrcReg = MI->getOperand(2).getReg(); 475 } 476 477 if (!TargetRegisterInfo::isVirtualRegister(CopySrcReg)) { 478 SwapVector[VecIdx].MentionsPhysVR = 1; 479 return CopySrcReg; 480 } 481 482 return lookThruCopyLike(CopySrcReg, VecIdx); 483 } 484 485 // Generate equivalence classes for related computations (webs) by 486 // def-use relationships of virtual registers. Mention of a physical 487 // register terminates the generation of equivalence classes as this 488 // indicates a use of a parameter, definition of a return value, use 489 // of a value returned from a call, or definition of a parameter to a 490 // call. Computations with physical register mentions are flagged 491 // as such so their containing webs will not be optimized. 492 void PPCVSXSwapRemoval::formWebs() { 493 494 DEBUG(dbgs() << "\n*** Forming webs for swap removal ***\n\n"); 495 496 for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) { 497 498 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 499 500 DEBUG(dbgs() << "\n" << SwapVector[EntryIdx].VSEId << " "); 501 DEBUG(MI->dump()); 502 503 // It's sufficient to walk vector uses and join them to their unique 504 // definitions. In addition, check *all* vector register operands 505 // for physical regs. 506 for (const MachineOperand &MO : MI->operands()) { 507 if (!MO.isReg()) 508 continue; 509 510 unsigned Reg = MO.getReg(); 511 if (!isVecReg(Reg)) 512 continue; 513 514 if (!TargetRegisterInfo::isVirtualRegister(Reg)) { 515 SwapVector[EntryIdx].MentionsPhysVR = 1; 516 continue; 517 } 518 519 if (!MO.isUse()) 520 continue; 521 522 MachineInstr* DefMI = MRI->getVRegDef(Reg); 523 assert(SwapMap.find(DefMI) != SwapMap.end() && 524 "Inconsistency: def of vector reg not found in swap map!"); 525 int DefIdx = SwapMap[DefMI]; 526 (void)EC->unionSets(SwapVector[DefIdx].VSEId, 527 SwapVector[EntryIdx].VSEId); 528 529 DEBUG(dbgs() << format("Unioning %d with %d\n", SwapVector[DefIdx].VSEId, 530 SwapVector[EntryIdx].VSEId)); 531 DEBUG(dbgs() << " Def: "); 532 DEBUG(DefMI->dump()); 533 } 534 } 535 } 536 537 // Walk the swap vector entries looking for conditions that prevent their 538 // containing computations from being optimized. When such conditions are 539 // found, mark the representative of the computation's equivalence class 540 // as rejected. 541 void PPCVSXSwapRemoval::recordUnoptimizableWebs() { 542 543 DEBUG(dbgs() << "\n*** Rejecting webs for swap removal ***\n\n"); 544 545 for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) { 546 int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId); 547 548 // Reject webs containing mentions of physical registers, or containing 549 // operations that we don't know how to handle in a lane-permuted region. 550 if (SwapVector[EntryIdx].MentionsPhysVR || 551 !(SwapVector[EntryIdx].IsSwappable || SwapVector[EntryIdx].IsSwap)) { 552 553 SwapVector[Repr].WebRejected = 1; 554 555 DEBUG(dbgs() << 556 format("Web %d rejected for physreg, subreg, or not swap[pable]\n", 557 Repr)); 558 DEBUG(dbgs() << " in " << EntryIdx << ": "); 559 DEBUG(SwapVector[EntryIdx].VSEMI->dump()); 560 DEBUG(dbgs() << "\n"); 561 } 562 563 // Reject webs than contain swapping loads that feed something other 564 // than a swap instruction. 565 else if (SwapVector[EntryIdx].IsLoad && SwapVector[EntryIdx].IsSwap) { 566 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 567 unsigned DefReg = MI->getOperand(0).getReg(); 568 569 // We skip debug instructions in the analysis. (Note that debug 570 // location information is still maintained by this optimization 571 // because it remains on the LXVD2X and STXVD2X instructions after 572 // the XXPERMDIs are removed.) 573 for (MachineInstr &UseMI : MRI->use_nodbg_instructions(DefReg)) { 574 int UseIdx = SwapMap[&UseMI]; 575 576 if (!SwapVector[UseIdx].IsSwap || SwapVector[UseIdx].IsLoad || 577 SwapVector[UseIdx].IsStore) { 578 579 SwapVector[Repr].WebRejected = 1; 580 581 DEBUG(dbgs() << 582 format("Web %d rejected for load not feeding swap\n", Repr)); 583 DEBUG(dbgs() << " def " << EntryIdx << ": "); 584 DEBUG(MI->dump()); 585 DEBUG(dbgs() << " use " << UseIdx << ": "); 586 DEBUG(UseMI.dump()); 587 DEBUG(dbgs() << "\n"); 588 } 589 } 590 591 // Reject webs than contain swapping stores that are fed by something 592 // other than a swap instruction. 593 } else if (SwapVector[EntryIdx].IsStore && SwapVector[EntryIdx].IsSwap) { 594 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 595 unsigned UseReg = MI->getOperand(0).getReg(); 596 MachineInstr *DefMI = MRI->getVRegDef(UseReg); 597 int DefIdx = SwapMap[DefMI]; 598 599 if (!SwapVector[DefIdx].IsSwap || SwapVector[DefIdx].IsLoad || 600 SwapVector[DefIdx].IsStore) { 601 602 SwapVector[Repr].WebRejected = 1; 603 604 DEBUG(dbgs() << 605 format("Web %d rejected for store not fed by swap\n", Repr)); 606 DEBUG(dbgs() << " def " << DefIdx << ": "); 607 DEBUG(DefMI->dump()); 608 DEBUG(dbgs() << " use " << EntryIdx << ": "); 609 DEBUG(MI->dump()); 610 DEBUG(dbgs() << "\n"); 611 } 612 } 613 } 614 615 DEBUG(dbgs() << "Swap vector after web analysis:\n\n"); 616 dumpSwapVector(); 617 } 618 619 // Walk the swap vector entries looking for swaps fed by permuting loads 620 // and swaps that feed permuting stores. If the containing computation 621 // has not been marked rejected, mark each such swap for removal. 622 // (Removal is delayed in case optimization has disturbed the pattern, 623 // such that multiple loads feed the same swap, etc.) 624 void PPCVSXSwapRemoval::markSwapsForRemoval() { 625 626 DEBUG(dbgs() << "\n*** Marking swaps for removal ***\n\n"); 627 628 for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) { 629 630 if (SwapVector[EntryIdx].IsLoad && SwapVector[EntryIdx].IsSwap) { 631 int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId); 632 633 if (!SwapVector[Repr].WebRejected) { 634 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 635 unsigned DefReg = MI->getOperand(0).getReg(); 636 637 for (MachineInstr &UseMI : MRI->use_nodbg_instructions(DefReg)) { 638 int UseIdx = SwapMap[&UseMI]; 639 SwapVector[UseIdx].WillRemove = 1; 640 641 DEBUG(dbgs() << "Marking swap fed by load for removal: "); 642 DEBUG(UseMI.dump()); 643 } 644 } 645 646 } else if (SwapVector[EntryIdx].IsStore && SwapVector[EntryIdx].IsSwap) { 647 int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId); 648 649 if (!SwapVector[Repr].WebRejected) { 650 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 651 unsigned UseReg = MI->getOperand(0).getReg(); 652 MachineInstr *DefMI = MRI->getVRegDef(UseReg); 653 int DefIdx = SwapMap[DefMI]; 654 SwapVector[DefIdx].WillRemove = 1; 655 656 DEBUG(dbgs() << "Marking swap feeding store for removal: "); 657 DEBUG(DefMI->dump()); 658 } 659 660 } else if (SwapVector[EntryIdx].IsSwappable && 661 SwapVector[EntryIdx].SpecialHandling != 0) { 662 int Repr = EC->getLeaderValue(SwapVector[EntryIdx].VSEId); 663 664 if (!SwapVector[Repr].WebRejected) 665 handleSpecialSwappables(EntryIdx); 666 } 667 } 668 } 669 670 // The identified swap entry requires special handling to allow its 671 // containing computation to be optimized. Perform that handling 672 // here. 673 // FIXME: This code is to be phased in with subsequent patches. 674 void PPCVSXSwapRemoval::handleSpecialSwappables(int EntryIdx) { 675 switch (SwapVector[EntryIdx].SpecialHandling) { 676 677 default: 678 assert(false && "Unexpected special handling type"); 679 break; 680 681 // For splats based on an index into a vector, add N/2 modulo N 682 // to the index, where N is the number of vector elements. 683 case SHValues::SH_SPLAT: { 684 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 685 unsigned NElts; 686 687 DEBUG(dbgs() << "Changing splat: "); 688 DEBUG(MI->dump()); 689 690 switch (MI->getOpcode()) { 691 default: 692 assert(false && "Unexpected splat opcode"); 693 case PPC::VSPLTB: NElts = 16; break; 694 case PPC::VSPLTH: NElts = 8; break; 695 case PPC::VSPLTW: NElts = 4; break; 696 } 697 698 unsigned EltNo = MI->getOperand(1).getImm(); 699 EltNo = (EltNo + NElts / 2) % NElts; 700 MI->getOperand(1).setImm(EltNo); 701 702 DEBUG(dbgs() << " Into: "); 703 DEBUG(MI->dump()); 704 break; 705 } 706 707 } 708 } 709 710 // Walk the swap vector and replace each entry marked for removal with 711 // a copy operation. 712 bool PPCVSXSwapRemoval::removeSwaps() { 713 714 DEBUG(dbgs() << "\n*** Removing swaps ***\n\n"); 715 716 bool Changed = false; 717 718 for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) { 719 if (SwapVector[EntryIdx].WillRemove) { 720 Changed = true; 721 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 722 MachineBasicBlock *MBB = MI->getParent(); 723 BuildMI(*MBB, MI, MI->getDebugLoc(), 724 TII->get(TargetOpcode::COPY), MI->getOperand(0).getReg()) 725 .addOperand(MI->getOperand(1)); 726 727 DEBUG(dbgs() << format("Replaced %d with copy: ", 728 SwapVector[EntryIdx].VSEId)); 729 DEBUG(MI->dump()); 730 731 MI->eraseFromParent(); 732 } 733 } 734 735 return Changed; 736 } 737 738 // For debug purposes, dump the contents of the swap vector. 739 void PPCVSXSwapRemoval::dumpSwapVector() { 740 741 for (unsigned EntryIdx = 0; EntryIdx < SwapVector.size(); ++EntryIdx) { 742 743 MachineInstr *MI = SwapVector[EntryIdx].VSEMI; 744 int ID = SwapVector[EntryIdx].VSEId; 745 746 DEBUG(dbgs() << format("%6d", ID)); 747 DEBUG(dbgs() << format("%6d", EC->getLeaderValue(ID))); 748 DEBUG(dbgs() << format(" BB#%3d", MI->getParent()->getNumber())); 749 DEBUG(dbgs() << format(" %14s ", TII->getName(MI->getOpcode()))); 750 751 if (SwapVector[EntryIdx].IsLoad) 752 DEBUG(dbgs() << "load "); 753 if (SwapVector[EntryIdx].IsStore) 754 DEBUG(dbgs() << "store "); 755 if (SwapVector[EntryIdx].IsSwap) 756 DEBUG(dbgs() << "swap "); 757 if (SwapVector[EntryIdx].MentionsPhysVR) 758 DEBUG(dbgs() << "physreg "); 759 760 if (SwapVector[EntryIdx].IsSwappable) { 761 DEBUG(dbgs() << "swappable "); 762 switch(SwapVector[EntryIdx].SpecialHandling) { 763 default: 764 DEBUG(dbgs() << "special:**unknown**"); 765 break; 766 case SH_NONE: 767 break; 768 case SH_EXTRACT: 769 DEBUG(dbgs() << "special:extract "); 770 break; 771 case SH_INSERT: 772 DEBUG(dbgs() << "special:insert "); 773 break; 774 case SH_NOSWAP_LD: 775 DEBUG(dbgs() << "special:load "); 776 break; 777 case SH_NOSWAP_ST: 778 DEBUG(dbgs() << "special:store "); 779 break; 780 case SH_SPLAT: 781 DEBUG(dbgs() << "special:splat "); 782 break; 783 } 784 } 785 786 if (SwapVector[EntryIdx].WebRejected) 787 DEBUG(dbgs() << "rejected "); 788 if (SwapVector[EntryIdx].WillRemove) 789 DEBUG(dbgs() << "remove "); 790 791 DEBUG(dbgs() << "\n"); 792 793 // For no-asserts builds. 794 (void)MI; 795 (void)ID; 796 } 797 798 DEBUG(dbgs() << "\n"); 799 } 800 801 } // end default namespace 802 803 INITIALIZE_PASS_BEGIN(PPCVSXSwapRemoval, DEBUG_TYPE, 804 "PowerPC VSX Swap Removal", false, false) 805 INITIALIZE_PASS_END(PPCVSXSwapRemoval, DEBUG_TYPE, 806 "PowerPC VSX Swap Removal", false, false) 807 808 char PPCVSXSwapRemoval::ID = 0; 809 FunctionPass* 810 llvm::createPPCVSXSwapRemovalPass() { return new PPCVSXSwapRemoval(); } 811