1 //===-- MipsConstantIslandPass.cpp - Emit Pc Relative loads----------------===// 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 // 11 // This pass is used to make Pc relative loads of constants. 12 // For now, only Mips16 will use this. 13 // 14 // Loading constants inline is expensive on Mips16 and it's in general better 15 // to place the constant nearby in code space and then it can be loaded with a 16 // simple 16 bit load instruction. 17 // 18 // The constants can be not just numbers but addresses of functions and labels. 19 // This can be particularly helpful in static relocation mode for embedded 20 // non-linux targets. 21 // 22 // 23 24 #define DEBUG_TYPE "mips-constant-islands" 25 26 #include "Mips.h" 27 #include "MCTargetDesc/MipsBaseInfo.h" 28 #include "Mips16InstrInfo.h" 29 #include "MipsMachineFunction.h" 30 #include "MipsTargetMachine.h" 31 #include "llvm/ADT/Statistic.h" 32 #include "llvm/CodeGen/MachineBasicBlock.h" 33 #include "llvm/CodeGen/MachineFunctionPass.h" 34 #include "llvm/CodeGen/MachineInstrBuilder.h" 35 #include "llvm/CodeGen/MachineRegisterInfo.h" 36 #include "llvm/IR/Function.h" 37 #include "llvm/Support/CommandLine.h" 38 #include "llvm/Support/Debug.h" 39 #include "llvm/Support/Format.h" 40 #include "llvm/Support/InstIterator.h" 41 #include "llvm/Support/MathExtras.h" 42 #include "llvm/Support/raw_ostream.h" 43 #include "llvm/Target/TargetInstrInfo.h" 44 #include "llvm/Target/TargetMachine.h" 45 #include "llvm/Target/TargetRegisterInfo.h" 46 #include <algorithm> 47 48 using namespace llvm; 49 50 STATISTIC(NumCPEs, "Number of constpool entries"); 51 STATISTIC(NumSplit, "Number of uncond branches inserted"); 52 STATISTIC(NumCBrFixed, "Number of cond branches fixed"); 53 STATISTIC(NumUBrFixed, "Number of uncond branches fixed"); 54 55 // FIXME: This option should be removed once it has received sufficient testing. 56 static cl::opt<bool> 57 AlignConstantIslands("mips-align-constant-islands", cl::Hidden, cl::init(true), 58 cl::desc("Align constant islands in code")); 59 60 61 // Rather than do make check tests with huge amounts of code, we force 62 // the test to use this amount. 63 // 64 static cl::opt<int> ConstantIslandsSmallOffset( 65 "mips-constant-islands-small-offset", 66 cl::init(0), 67 cl::desc("Make small offsets be this amount for testing purposes"), 68 cl::Hidden); 69 70 // 71 // For testing purposes we tell it to not use relaxed load forms so that it 72 // will split blocks. 73 // 74 static cl::opt<bool> NoLoadRelaxation( 75 "mips-constant-islands-no-load-relaxation", 76 cl::init(false), 77 cl::desc("Don't relax loads to long loads - for testing purposes"), 78 cl::Hidden); 79 80 static unsigned int branchTargetOperand(MachineInstr *MI) { 81 switch (MI->getOpcode()) { 82 case Mips::Bimm16: 83 case Mips::BimmX16: 84 case Mips::Bteqz16: 85 case Mips::BteqzX16: 86 case Mips::Btnez16: 87 case Mips::BtnezX16: 88 case Mips::JalB16: 89 return 0; 90 case Mips::BeqzRxImm16: 91 case Mips::BeqzRxImmX16: 92 case Mips::BnezRxImm16: 93 case Mips::BnezRxImmX16: 94 return 1; 95 } 96 llvm_unreachable("Unknown branch type"); 97 } 98 99 static bool isUnconditionalBranch(unsigned int Opcode) { 100 switch (Opcode) { 101 default: return false; 102 case Mips::Bimm16: 103 case Mips::BimmX16: 104 case Mips::JalB16: 105 return true; 106 } 107 } 108 109 static unsigned int longformBranchOpcode(unsigned int Opcode) { 110 switch (Opcode) { 111 case Mips::Bimm16: 112 case Mips::BimmX16: 113 return Mips::BimmX16; 114 case Mips::Bteqz16: 115 case Mips::BteqzX16: 116 return Mips::BteqzX16; 117 case Mips::Btnez16: 118 case Mips::BtnezX16: 119 return Mips::BtnezX16; 120 case Mips::JalB16: 121 return Mips::JalB16; 122 case Mips::BeqzRxImm16: 123 case Mips::BeqzRxImmX16: 124 return Mips::BeqzRxImmX16; 125 case Mips::BnezRxImm16: 126 case Mips::BnezRxImmX16: 127 return Mips::BnezRxImmX16; 128 } 129 llvm_unreachable("Unknown branch type"); 130 } 131 132 // 133 // FIXME: need to go through this whole constant islands port and check the math 134 // for branch ranges and clean this up and make some functions to calculate things 135 // that are done many times identically. 136 // Need to refactor some of the code to call this routine. 137 // 138 static unsigned int branchMaxOffsets(unsigned int Opcode) { 139 unsigned Bits, Scale; 140 switch (Opcode) { 141 case Mips::Bimm16: 142 Bits = 11; 143 Scale = 2; 144 break; 145 case Mips::BimmX16: 146 Bits = 16; 147 Scale = 2; 148 break; 149 case Mips::BeqzRxImm16: 150 Bits = 8; 151 Scale = 2; 152 break; 153 case Mips::BeqzRxImmX16: 154 Bits = 16; 155 Scale = 2; 156 break; 157 case Mips::BnezRxImm16: 158 Bits = 8; 159 Scale = 2; 160 break; 161 case Mips::BnezRxImmX16: 162 Bits = 16; 163 Scale = 2; 164 break; 165 case Mips::Bteqz16: 166 Bits = 8; 167 Scale = 2; 168 break; 169 case Mips::BteqzX16: 170 Bits = 16; 171 Scale = 2; 172 break; 173 case Mips::Btnez16: 174 Bits = 8; 175 Scale = 2; 176 break; 177 case Mips::BtnezX16: 178 Bits = 16; 179 Scale = 2; 180 break; 181 default: 182 llvm_unreachable("Unknown branch type"); 183 } 184 unsigned MaxOffs = ((1 << (Bits-1))-1) * Scale; 185 return MaxOffs; 186 } 187 188 namespace { 189 190 191 typedef MachineBasicBlock::iterator Iter; 192 typedef MachineBasicBlock::reverse_iterator ReverseIter; 193 194 /// MipsConstantIslands - Due to limited PC-relative displacements, Mips 195 /// requires constant pool entries to be scattered among the instructions 196 /// inside a function. To do this, it completely ignores the normal LLVM 197 /// constant pool; instead, it places constants wherever it feels like with 198 /// special instructions. 199 /// 200 /// The terminology used in this pass includes: 201 /// Islands - Clumps of constants placed in the function. 202 /// Water - Potential places where an island could be formed. 203 /// CPE - A constant pool entry that has been placed somewhere, which 204 /// tracks a list of users. 205 206 class MipsConstantIslands : public MachineFunctionPass { 207 208 /// BasicBlockInfo - Information about the offset and size of a single 209 /// basic block. 210 struct BasicBlockInfo { 211 /// Offset - Distance from the beginning of the function to the beginning 212 /// of this basic block. 213 /// 214 /// Offsets are computed assuming worst case padding before an aligned 215 /// block. This means that subtracting basic block offsets always gives a 216 /// conservative estimate of the real distance which may be smaller. 217 /// 218 /// Because worst case padding is used, the computed offset of an aligned 219 /// block may not actually be aligned. 220 unsigned Offset; 221 222 /// Size - Size of the basic block in bytes. If the block contains 223 /// inline assembly, this is a worst case estimate. 224 /// 225 /// The size does not include any alignment padding whether from the 226 /// beginning of the block, or from an aligned jump table at the end. 227 unsigned Size; 228 229 // FIXME: ignore LogAlign for this patch 230 // 231 unsigned postOffset(unsigned LogAlign = 0) const { 232 unsigned PO = Offset + Size; 233 return PO; 234 } 235 236 BasicBlockInfo() : Offset(0), Size(0) {} 237 238 }; 239 240 std::vector<BasicBlockInfo> BBInfo; 241 242 /// WaterList - A sorted list of basic blocks where islands could be placed 243 /// (i.e. blocks that don't fall through to the following block, due 244 /// to a return, unreachable, or unconditional branch). 245 std::vector<MachineBasicBlock*> WaterList; 246 247 /// NewWaterList - The subset of WaterList that was created since the 248 /// previous iteration by inserting unconditional branches. 249 SmallSet<MachineBasicBlock*, 4> NewWaterList; 250 251 typedef std::vector<MachineBasicBlock*>::iterator water_iterator; 252 253 /// CPUser - One user of a constant pool, keeping the machine instruction 254 /// pointer, the constant pool being referenced, and the max displacement 255 /// allowed from the instruction to the CP. The HighWaterMark records the 256 /// highest basic block where a new CPEntry can be placed. To ensure this 257 /// pass terminates, the CP entries are initially placed at the end of the 258 /// function and then move monotonically to lower addresses. The 259 /// exception to this rule is when the current CP entry for a particular 260 /// CPUser is out of range, but there is another CP entry for the same 261 /// constant value in range. We want to use the existing in-range CP 262 /// entry, but if it later moves out of range, the search for new water 263 /// should resume where it left off. The HighWaterMark is used to record 264 /// that point. 265 struct CPUser { 266 MachineInstr *MI; 267 MachineInstr *CPEMI; 268 MachineBasicBlock *HighWaterMark; 269 private: 270 unsigned MaxDisp; 271 unsigned LongFormMaxDisp; // mips16 has 16/32 bit instructions 272 // with different displacements 273 unsigned LongFormOpcode; 274 public: 275 bool NegOk; 276 CPUser(MachineInstr *mi, MachineInstr *cpemi, unsigned maxdisp, 277 bool neg, 278 unsigned longformmaxdisp, unsigned longformopcode) 279 : MI(mi), CPEMI(cpemi), MaxDisp(maxdisp), 280 LongFormMaxDisp(longformmaxdisp), LongFormOpcode(longformopcode), 281 NegOk(neg){ 282 HighWaterMark = CPEMI->getParent(); 283 } 284 /// getMaxDisp - Returns the maximum displacement supported by MI. 285 unsigned getMaxDisp() const { 286 unsigned xMaxDisp = ConstantIslandsSmallOffset? 287 ConstantIslandsSmallOffset: MaxDisp; 288 return xMaxDisp; 289 } 290 void setMaxDisp(unsigned val) { 291 MaxDisp = val; 292 } 293 unsigned getLongFormMaxDisp() const { 294 return LongFormMaxDisp; 295 } 296 unsigned getLongFormOpcode() const { 297 return LongFormOpcode; 298 } 299 }; 300 301 /// CPUsers - Keep track of all of the machine instructions that use various 302 /// constant pools and their max displacement. 303 std::vector<CPUser> CPUsers; 304 305 /// CPEntry - One per constant pool entry, keeping the machine instruction 306 /// pointer, the constpool index, and the number of CPUser's which 307 /// reference this entry. 308 struct CPEntry { 309 MachineInstr *CPEMI; 310 unsigned CPI; 311 unsigned RefCount; 312 CPEntry(MachineInstr *cpemi, unsigned cpi, unsigned rc = 0) 313 : CPEMI(cpemi), CPI(cpi), RefCount(rc) {} 314 }; 315 316 /// CPEntries - Keep track of all of the constant pool entry machine 317 /// instructions. For each original constpool index (i.e. those that 318 /// existed upon entry to this pass), it keeps a vector of entries. 319 /// Original elements are cloned as we go along; the clones are 320 /// put in the vector of the original element, but have distinct CPIs. 321 std::vector<std::vector<CPEntry> > CPEntries; 322 323 /// ImmBranch - One per immediate branch, keeping the machine instruction 324 /// pointer, conditional or unconditional, the max displacement, 325 /// and (if isCond is true) the corresponding unconditional branch 326 /// opcode. 327 struct ImmBranch { 328 MachineInstr *MI; 329 unsigned MaxDisp : 31; 330 bool isCond : 1; 331 int UncondBr; 332 ImmBranch(MachineInstr *mi, unsigned maxdisp, bool cond, int ubr) 333 : MI(mi), MaxDisp(maxdisp), isCond(cond), UncondBr(ubr) {} 334 }; 335 336 /// ImmBranches - Keep track of all the immediate branch instructions. 337 /// 338 std::vector<ImmBranch> ImmBranches; 339 340 /// HasFarJump - True if any far jump instruction has been emitted during 341 /// the branch fix up pass. 342 bool HasFarJump; 343 344 const TargetMachine &TM; 345 bool IsPIC; 346 unsigned ABI; 347 const MipsSubtarget *STI; 348 const Mips16InstrInfo *TII; 349 MipsFunctionInfo *MFI; 350 MachineFunction *MF; 351 MachineConstantPool *MCP; 352 353 unsigned PICLabelUId; 354 bool PrescannedForConstants; 355 356 void initPICLabelUId(unsigned UId) { 357 PICLabelUId = UId; 358 } 359 360 361 unsigned createPICLabelUId() { 362 return PICLabelUId++; 363 } 364 365 public: 366 static char ID; 367 MipsConstantIslands(TargetMachine &tm) 368 : MachineFunctionPass(ID), TM(tm), 369 IsPIC(TM.getRelocationModel() == Reloc::PIC_), 370 ABI(TM.getSubtarget<MipsSubtarget>().getTargetABI()), 371 STI(&TM.getSubtarget<MipsSubtarget>()), MF(0), MCP(0), 372 PrescannedForConstants(false){} 373 374 virtual const char *getPassName() const { 375 return "Mips Constant Islands"; 376 } 377 378 bool runOnMachineFunction(MachineFunction &F); 379 380 void doInitialPlacement(std::vector<MachineInstr*> &CPEMIs); 381 CPEntry *findConstPoolEntry(unsigned CPI, const MachineInstr *CPEMI); 382 unsigned getCPELogAlign(const MachineInstr *CPEMI); 383 void initializeFunctionInfo(const std::vector<MachineInstr*> &CPEMIs); 384 unsigned getOffsetOf(MachineInstr *MI) const; 385 unsigned getUserOffset(CPUser&) const; 386 void dumpBBs(); 387 void verify(); 388 389 bool isOffsetInRange(unsigned UserOffset, unsigned TrialOffset, 390 unsigned Disp, bool NegativeOK); 391 bool isOffsetInRange(unsigned UserOffset, unsigned TrialOffset, 392 const CPUser &U); 393 394 bool isLongFormOffsetInRange(unsigned UserOffset, unsigned TrialOffset, 395 const CPUser &U); 396 397 void computeBlockSize(MachineBasicBlock *MBB); 398 MachineBasicBlock *splitBlockBeforeInstr(MachineInstr *MI); 399 void updateForInsertedWaterBlock(MachineBasicBlock *NewBB); 400 void adjustBBOffsetsAfter(MachineBasicBlock *BB); 401 bool decrementCPEReferenceCount(unsigned CPI, MachineInstr* CPEMI); 402 int findInRangeCPEntry(CPUser& U, unsigned UserOffset); 403 int findLongFormInRangeCPEntry(CPUser& U, unsigned UserOffset); 404 bool findAvailableWater(CPUser&U, unsigned UserOffset, 405 water_iterator &WaterIter); 406 void createNewWater(unsigned CPUserIndex, unsigned UserOffset, 407 MachineBasicBlock *&NewMBB); 408 bool handleConstantPoolUser(unsigned CPUserIndex); 409 void removeDeadCPEMI(MachineInstr *CPEMI); 410 bool removeUnusedCPEntries(); 411 bool isCPEntryInRange(MachineInstr *MI, unsigned UserOffset, 412 MachineInstr *CPEMI, unsigned Disp, bool NegOk, 413 bool DoDump = false); 414 bool isWaterInRange(unsigned UserOffset, MachineBasicBlock *Water, 415 CPUser &U, unsigned &Growth); 416 bool isBBInRange(MachineInstr *MI, MachineBasicBlock *BB, unsigned Disp); 417 bool fixupImmediateBr(ImmBranch &Br); 418 bool fixupConditionalBr(ImmBranch &Br); 419 bool fixupUnconditionalBr(ImmBranch &Br); 420 421 void prescanForConstants(); 422 423 private: 424 425 }; 426 427 char MipsConstantIslands::ID = 0; 428 } // end of anonymous namespace 429 430 431 bool MipsConstantIslands::isLongFormOffsetInRange 432 (unsigned UserOffset, unsigned TrialOffset, 433 const CPUser &U) { 434 return isOffsetInRange(UserOffset, TrialOffset, 435 U.getLongFormMaxDisp(), U.NegOk); 436 } 437 438 bool MipsConstantIslands::isOffsetInRange 439 (unsigned UserOffset, unsigned TrialOffset, 440 const CPUser &U) { 441 return isOffsetInRange(UserOffset, TrialOffset, 442 U.getMaxDisp(), U.NegOk); 443 } 444 /// print block size and offset information - debugging 445 void MipsConstantIslands::dumpBBs() { 446 DEBUG({ 447 for (unsigned J = 0, E = BBInfo.size(); J !=E; ++J) { 448 const BasicBlockInfo &BBI = BBInfo[J]; 449 dbgs() << format("%08x BB#%u\t", BBI.Offset, J) 450 << format(" size=%#x\n", BBInfo[J].Size); 451 } 452 }); 453 } 454 /// createMipsLongBranchPass - Returns a pass that converts branches to long 455 /// branches. 456 FunctionPass *llvm::createMipsConstantIslandPass(MipsTargetMachine &tm) { 457 return new MipsConstantIslands(tm); 458 } 459 460 bool MipsConstantIslands::runOnMachineFunction(MachineFunction &mf) { 461 // The intention is for this to be a mips16 only pass for now 462 // FIXME: 463 MF = &mf; 464 MCP = mf.getConstantPool(); 465 DEBUG(dbgs() << "constant island machine function " << "\n"); 466 if (!TM.getSubtarget<MipsSubtarget>().inMips16Mode() || 467 !MipsSubtarget::useConstantIslands()) { 468 return false; 469 } 470 TII = (const Mips16InstrInfo*)MF->getTarget().getInstrInfo(); 471 MFI = MF->getInfo<MipsFunctionInfo>(); 472 DEBUG(dbgs() << "constant island processing " << "\n"); 473 // 474 // will need to make predermination if there is any constants we need to 475 // put in constant islands. TBD. 476 // 477 if (!PrescannedForConstants) prescanForConstants(); 478 479 HasFarJump = false; 480 // This pass invalidates liveness information when it splits basic blocks. 481 MF->getRegInfo().invalidateLiveness(); 482 483 // Renumber all of the machine basic blocks in the function, guaranteeing that 484 // the numbers agree with the position of the block in the function. 485 MF->RenumberBlocks(); 486 487 bool MadeChange = false; 488 489 // Perform the initial placement of the constant pool entries. To start with, 490 // we put them all at the end of the function. 491 std::vector<MachineInstr*> CPEMIs; 492 if (!MCP->isEmpty()) 493 doInitialPlacement(CPEMIs); 494 495 /// The next UID to take is the first unused one. 496 initPICLabelUId(CPEMIs.size()); 497 498 // Do the initial scan of the function, building up information about the 499 // sizes of each block, the location of all the water, and finding all of the 500 // constant pool users. 501 initializeFunctionInfo(CPEMIs); 502 CPEMIs.clear(); 503 DEBUG(dumpBBs()); 504 505 /// Remove dead constant pool entries. 506 MadeChange |= removeUnusedCPEntries(); 507 508 // Iteratively place constant pool entries and fix up branches until there 509 // is no change. 510 unsigned NoCPIters = 0, NoBRIters = 0; 511 (void)NoBRIters; 512 while (true) { 513 DEBUG(dbgs() << "Beginning CP iteration #" << NoCPIters << '\n'); 514 bool CPChange = false; 515 for (unsigned i = 0, e = CPUsers.size(); i != e; ++i) 516 CPChange |= handleConstantPoolUser(i); 517 if (CPChange && ++NoCPIters > 30) 518 report_fatal_error("Constant Island pass failed to converge!"); 519 DEBUG(dumpBBs()); 520 521 // Clear NewWaterList now. If we split a block for branches, it should 522 // appear as "new water" for the next iteration of constant pool placement. 523 NewWaterList.clear(); 524 525 DEBUG(dbgs() << "Beginning BR iteration #" << NoBRIters << '\n'); 526 bool BRChange = false; 527 for (unsigned i = 0, e = ImmBranches.size(); i != e; ++i) 528 BRChange |= fixupImmediateBr(ImmBranches[i]); 529 if (BRChange && ++NoBRIters > 30) 530 report_fatal_error("Branch Fix Up pass failed to converge!"); 531 DEBUG(dumpBBs()); 532 if (!CPChange && !BRChange) 533 break; 534 MadeChange = true; 535 } 536 537 DEBUG(dbgs() << '\n'; dumpBBs()); 538 539 BBInfo.clear(); 540 WaterList.clear(); 541 CPUsers.clear(); 542 CPEntries.clear(); 543 ImmBranches.clear(); 544 return MadeChange; 545 } 546 547 /// doInitialPlacement - Perform the initial placement of the constant pool 548 /// entries. To start with, we put them all at the end of the function. 549 void 550 MipsConstantIslands::doInitialPlacement(std::vector<MachineInstr*> &CPEMIs) { 551 // Create the basic block to hold the CPE's. 552 MachineBasicBlock *BB = MF->CreateMachineBasicBlock(); 553 MF->push_back(BB); 554 555 556 // MachineConstantPool measures alignment in bytes. We measure in log2(bytes). 557 unsigned MaxAlign = Log2_32(MCP->getConstantPoolAlignment()); 558 559 // Mark the basic block as required by the const-pool. 560 // If AlignConstantIslands isn't set, use 4-byte alignment for everything. 561 BB->setAlignment(AlignConstantIslands ? MaxAlign : 2); 562 563 // The function needs to be as aligned as the basic blocks. The linker may 564 // move functions around based on their alignment. 565 MF->ensureAlignment(BB->getAlignment()); 566 567 // Order the entries in BB by descending alignment. That ensures correct 568 // alignment of all entries as long as BB is sufficiently aligned. Keep 569 // track of the insertion point for each alignment. We are going to bucket 570 // sort the entries as they are created. 571 SmallVector<MachineBasicBlock::iterator, 8> InsPoint(MaxAlign + 1, BB->end()); 572 573 // Add all of the constants from the constant pool to the end block, use an 574 // identity mapping of CPI's to CPE's. 575 const std::vector<MachineConstantPoolEntry> &CPs = MCP->getConstants(); 576 577 const DataLayout &TD = *MF->getTarget().getDataLayout(); 578 for (unsigned i = 0, e = CPs.size(); i != e; ++i) { 579 unsigned Size = TD.getTypeAllocSize(CPs[i].getType()); 580 assert(Size >= 4 && "Too small constant pool entry"); 581 unsigned Align = CPs[i].getAlignment(); 582 assert(isPowerOf2_32(Align) && "Invalid alignment"); 583 // Verify that all constant pool entries are a multiple of their alignment. 584 // If not, we would have to pad them out so that instructions stay aligned. 585 assert((Size % Align) == 0 && "CP Entry not multiple of 4 bytes!"); 586 587 // Insert CONSTPOOL_ENTRY before entries with a smaller alignment. 588 unsigned LogAlign = Log2_32(Align); 589 MachineBasicBlock::iterator InsAt = InsPoint[LogAlign]; 590 591 MachineInstr *CPEMI = 592 BuildMI(*BB, InsAt, DebugLoc(), TII->get(Mips::CONSTPOOL_ENTRY)) 593 .addImm(i).addConstantPoolIndex(i).addImm(Size); 594 595 CPEMIs.push_back(CPEMI); 596 597 // Ensure that future entries with higher alignment get inserted before 598 // CPEMI. This is bucket sort with iterators. 599 for (unsigned a = LogAlign + 1; a <= MaxAlign; ++a) 600 if (InsPoint[a] == InsAt) 601 InsPoint[a] = CPEMI; 602 // Add a new CPEntry, but no corresponding CPUser yet. 603 std::vector<CPEntry> CPEs; 604 CPEs.push_back(CPEntry(CPEMI, i)); 605 CPEntries.push_back(CPEs); 606 ++NumCPEs; 607 DEBUG(dbgs() << "Moved CPI#" << i << " to end of function, size = " 608 << Size << ", align = " << Align <<'\n'); 609 } 610 DEBUG(BB->dump()); 611 } 612 613 /// BBHasFallthrough - Return true if the specified basic block can fallthrough 614 /// into the block immediately after it. 615 static bool BBHasFallthrough(MachineBasicBlock *MBB) { 616 // Get the next machine basic block in the function. 617 MachineFunction::iterator MBBI = MBB; 618 // Can't fall off end of function. 619 if (llvm::next(MBBI) == MBB->getParent()->end()) 620 return false; 621 622 MachineBasicBlock *NextBB = llvm::next(MBBI); 623 for (MachineBasicBlock::succ_iterator I = MBB->succ_begin(), 624 E = MBB->succ_end(); I != E; ++I) 625 if (*I == NextBB) 626 return true; 627 628 return false; 629 } 630 631 /// findConstPoolEntry - Given the constpool index and CONSTPOOL_ENTRY MI, 632 /// look up the corresponding CPEntry. 633 MipsConstantIslands::CPEntry 634 *MipsConstantIslands::findConstPoolEntry(unsigned CPI, 635 const MachineInstr *CPEMI) { 636 std::vector<CPEntry> &CPEs = CPEntries[CPI]; 637 // Number of entries per constpool index should be small, just do a 638 // linear search. 639 for (unsigned i = 0, e = CPEs.size(); i != e; ++i) { 640 if (CPEs[i].CPEMI == CPEMI) 641 return &CPEs[i]; 642 } 643 return NULL; 644 } 645 646 /// getCPELogAlign - Returns the required alignment of the constant pool entry 647 /// represented by CPEMI. Alignment is measured in log2(bytes) units. 648 unsigned MipsConstantIslands::getCPELogAlign(const MachineInstr *CPEMI) { 649 assert(CPEMI && CPEMI->getOpcode() == Mips::CONSTPOOL_ENTRY); 650 651 // Everything is 4-byte aligned unless AlignConstantIslands is set. 652 if (!AlignConstantIslands) 653 return 2; 654 655 unsigned CPI = CPEMI->getOperand(1).getIndex(); 656 assert(CPI < MCP->getConstants().size() && "Invalid constant pool index."); 657 unsigned Align = MCP->getConstants()[CPI].getAlignment(); 658 assert(isPowerOf2_32(Align) && "Invalid CPE alignment"); 659 return Log2_32(Align); 660 } 661 662 /// initializeFunctionInfo - Do the initial scan of the function, building up 663 /// information about the sizes of each block, the location of all the water, 664 /// and finding all of the constant pool users. 665 void MipsConstantIslands:: 666 initializeFunctionInfo(const std::vector<MachineInstr*> &CPEMIs) { 667 BBInfo.clear(); 668 BBInfo.resize(MF->getNumBlockIDs()); 669 670 // First thing, compute the size of all basic blocks, and see if the function 671 // has any inline assembly in it. If so, we have to be conservative about 672 // alignment assumptions, as we don't know for sure the size of any 673 // instructions in the inline assembly. 674 for (MachineFunction::iterator I = MF->begin(), E = MF->end(); I != E; ++I) 675 computeBlockSize(I); 676 677 678 // Compute block offsets. 679 adjustBBOffsetsAfter(MF->begin()); 680 681 // Now go back through the instructions and build up our data structures. 682 for (MachineFunction::iterator MBBI = MF->begin(), E = MF->end(); 683 MBBI != E; ++MBBI) { 684 MachineBasicBlock &MBB = *MBBI; 685 686 // If this block doesn't fall through into the next MBB, then this is 687 // 'water' that a constant pool island could be placed. 688 if (!BBHasFallthrough(&MBB)) 689 WaterList.push_back(&MBB); 690 for (MachineBasicBlock::iterator I = MBB.begin(), E = MBB.end(); 691 I != E; ++I) { 692 if (I->isDebugValue()) 693 continue; 694 695 int Opc = I->getOpcode(); 696 if (I->isBranch()) { 697 bool isCond = false; 698 unsigned Bits = 0; 699 unsigned Scale = 1; 700 int UOpc = Opc; 701 switch (Opc) { 702 default: 703 continue; // Ignore other branches for now 704 case Mips::Bimm16: 705 Bits = 11; 706 Scale = 2; 707 isCond = false; 708 break; 709 case Mips::BimmX16: 710 Bits = 16; 711 Scale = 2; 712 isCond = false; 713 break; 714 case Mips::BeqzRxImm16: 715 UOpc=Mips::Bimm16; 716 Bits = 8; 717 Scale = 2; 718 isCond = true; 719 break; 720 case Mips::BeqzRxImmX16: 721 UOpc=Mips::Bimm16; 722 Bits = 16; 723 Scale = 2; 724 isCond = true; 725 break; 726 case Mips::BnezRxImm16: 727 UOpc=Mips::Bimm16; 728 Bits = 8; 729 Scale = 2; 730 isCond = true; 731 break; 732 case Mips::BnezRxImmX16: 733 UOpc=Mips::Bimm16; 734 Bits = 16; 735 Scale = 2; 736 isCond = true; 737 break; 738 case Mips::Bteqz16: 739 UOpc=Mips::Bimm16; 740 Bits = 8; 741 Scale = 2; 742 isCond = true; 743 break; 744 case Mips::BteqzX16: 745 UOpc=Mips::Bimm16; 746 Bits = 16; 747 Scale = 2; 748 isCond = true; 749 break; 750 case Mips::Btnez16: 751 UOpc=Mips::Bimm16; 752 Bits = 8; 753 Scale = 2; 754 isCond = true; 755 break; 756 case Mips::BtnezX16: 757 UOpc=Mips::Bimm16; 758 Bits = 16; 759 Scale = 2; 760 isCond = true; 761 break; 762 } 763 // Record this immediate branch. 764 unsigned MaxOffs = ((1 << (Bits-1))-1) * Scale; 765 ImmBranches.push_back(ImmBranch(I, MaxOffs, isCond, UOpc)); 766 } 767 768 if (Opc == Mips::CONSTPOOL_ENTRY) 769 continue; 770 771 772 // Scan the instructions for constant pool operands. 773 for (unsigned op = 0, e = I->getNumOperands(); op != e; ++op) 774 if (I->getOperand(op).isCPI()) { 775 776 // We found one. The addressing mode tells us the max displacement 777 // from the PC that this instruction permits. 778 779 // Basic size info comes from the TSFlags field. 780 unsigned Bits = 0; 781 unsigned Scale = 1; 782 bool NegOk = false; 783 unsigned LongFormBits = 0; 784 unsigned LongFormScale = 0; 785 unsigned LongFormOpcode = 0; 786 switch (Opc) { 787 default: 788 llvm_unreachable("Unknown addressing mode for CP reference!"); 789 case Mips::LwRxPcTcp16: 790 Bits = 8; 791 Scale = 4; 792 LongFormOpcode = Mips::LwRxPcTcpX16; 793 LongFormBits = 14; 794 LongFormScale = 1; 795 break; 796 case Mips::LwRxPcTcpX16: 797 Bits = 14; 798 Scale = 1; 799 NegOk = true; 800 break; 801 } 802 // Remember that this is a user of a CP entry. 803 unsigned CPI = I->getOperand(op).getIndex(); 804 MachineInstr *CPEMI = CPEMIs[CPI]; 805 unsigned MaxOffs = ((1 << Bits)-1) * Scale; 806 unsigned LongFormMaxOffs = ((1 << LongFormBits)-1) * LongFormScale; 807 CPUsers.push_back(CPUser(I, CPEMI, MaxOffs, NegOk, 808 LongFormMaxOffs, LongFormOpcode)); 809 810 // Increment corresponding CPEntry reference count. 811 CPEntry *CPE = findConstPoolEntry(CPI, CPEMI); 812 assert(CPE && "Cannot find a corresponding CPEntry!"); 813 CPE->RefCount++; 814 815 // Instructions can only use one CP entry, don't bother scanning the 816 // rest of the operands. 817 break; 818 819 } 820 821 } 822 } 823 824 } 825 826 /// computeBlockSize - Compute the size and some alignment information for MBB. 827 /// This function updates BBInfo directly. 828 void MipsConstantIslands::computeBlockSize(MachineBasicBlock *MBB) { 829 BasicBlockInfo &BBI = BBInfo[MBB->getNumber()]; 830 BBI.Size = 0; 831 832 for (MachineBasicBlock::iterator I = MBB->begin(), E = MBB->end(); I != E; 833 ++I) 834 BBI.Size += TII->GetInstSizeInBytes(I); 835 836 } 837 838 /// getOffsetOf - Return the current offset of the specified machine instruction 839 /// from the start of the function. This offset changes as stuff is moved 840 /// around inside the function. 841 unsigned MipsConstantIslands::getOffsetOf(MachineInstr *MI) const { 842 MachineBasicBlock *MBB = MI->getParent(); 843 844 // The offset is composed of two things: the sum of the sizes of all MBB's 845 // before this instruction's block, and the offset from the start of the block 846 // it is in. 847 unsigned Offset = BBInfo[MBB->getNumber()].Offset; 848 849 // Sum instructions before MI in MBB. 850 for (MachineBasicBlock::iterator I = MBB->begin(); &*I != MI; ++I) { 851 assert(I != MBB->end() && "Didn't find MI in its own basic block?"); 852 Offset += TII->GetInstSizeInBytes(I); 853 } 854 return Offset; 855 } 856 857 /// CompareMBBNumbers - Little predicate function to sort the WaterList by MBB 858 /// ID. 859 static bool CompareMBBNumbers(const MachineBasicBlock *LHS, 860 const MachineBasicBlock *RHS) { 861 return LHS->getNumber() < RHS->getNumber(); 862 } 863 864 /// updateForInsertedWaterBlock - When a block is newly inserted into the 865 /// machine function, it upsets all of the block numbers. Renumber the blocks 866 /// and update the arrays that parallel this numbering. 867 void MipsConstantIslands::updateForInsertedWaterBlock 868 (MachineBasicBlock *NewBB) { 869 // Renumber the MBB's to keep them consecutive. 870 NewBB->getParent()->RenumberBlocks(NewBB); 871 872 // Insert an entry into BBInfo to align it properly with the (newly 873 // renumbered) block numbers. 874 BBInfo.insert(BBInfo.begin() + NewBB->getNumber(), BasicBlockInfo()); 875 876 // Next, update WaterList. Specifically, we need to add NewMBB as having 877 // available water after it. 878 water_iterator IP = 879 std::lower_bound(WaterList.begin(), WaterList.end(), NewBB, 880 CompareMBBNumbers); 881 WaterList.insert(IP, NewBB); 882 } 883 884 unsigned MipsConstantIslands::getUserOffset(CPUser &U) const { 885 return getOffsetOf(U.MI); 886 } 887 888 /// Split the basic block containing MI into two blocks, which are joined by 889 /// an unconditional branch. Update data structures and renumber blocks to 890 /// account for this change and returns the newly created block. 891 MachineBasicBlock *MipsConstantIslands::splitBlockBeforeInstr 892 (MachineInstr *MI) { 893 MachineBasicBlock *OrigBB = MI->getParent(); 894 895 // Create a new MBB for the code after the OrigBB. 896 MachineBasicBlock *NewBB = 897 MF->CreateMachineBasicBlock(OrigBB->getBasicBlock()); 898 MachineFunction::iterator MBBI = OrigBB; ++MBBI; 899 MF->insert(MBBI, NewBB); 900 901 // Splice the instructions starting with MI over to NewBB. 902 NewBB->splice(NewBB->end(), OrigBB, MI, OrigBB->end()); 903 904 // Add an unconditional branch from OrigBB to NewBB. 905 // Note the new unconditional branch is not being recorded. 906 // There doesn't seem to be meaningful DebugInfo available; this doesn't 907 // correspond to anything in the source. 908 BuildMI(OrigBB, DebugLoc(), TII->get(Mips::Bimm16)).addMBB(NewBB); 909 ++NumSplit; 910 911 // Update the CFG. All succs of OrigBB are now succs of NewBB. 912 NewBB->transferSuccessors(OrigBB); 913 914 // OrigBB branches to NewBB. 915 OrigBB->addSuccessor(NewBB); 916 917 // Update internal data structures to account for the newly inserted MBB. 918 // This is almost the same as updateForInsertedWaterBlock, except that 919 // the Water goes after OrigBB, not NewBB. 920 MF->RenumberBlocks(NewBB); 921 922 // Insert an entry into BBInfo to align it properly with the (newly 923 // renumbered) block numbers. 924 BBInfo.insert(BBInfo.begin() + NewBB->getNumber(), BasicBlockInfo()); 925 926 // Next, update WaterList. Specifically, we need to add OrigMBB as having 927 // available water after it (but not if it's already there, which happens 928 // when splitting before a conditional branch that is followed by an 929 // unconditional branch - in that case we want to insert NewBB). 930 water_iterator IP = 931 std::lower_bound(WaterList.begin(), WaterList.end(), OrigBB, 932 CompareMBBNumbers); 933 MachineBasicBlock* WaterBB = *IP; 934 if (WaterBB == OrigBB) 935 WaterList.insert(llvm::next(IP), NewBB); 936 else 937 WaterList.insert(IP, OrigBB); 938 NewWaterList.insert(OrigBB); 939 940 // Figure out how large the OrigBB is. As the first half of the original 941 // block, it cannot contain a tablejump. The size includes 942 // the new jump we added. (It should be possible to do this without 943 // recounting everything, but it's very confusing, and this is rarely 944 // executed.) 945 computeBlockSize(OrigBB); 946 947 // Figure out how large the NewMBB is. As the second half of the original 948 // block, it may contain a tablejump. 949 computeBlockSize(NewBB); 950 951 // All BBOffsets following these blocks must be modified. 952 adjustBBOffsetsAfter(OrigBB); 953 954 return NewBB; 955 } 956 957 958 959 /// isOffsetInRange - Checks whether UserOffset (the location of a constant pool 960 /// reference) is within MaxDisp of TrialOffset (a proposed location of a 961 /// constant pool entry). 962 bool MipsConstantIslands::isOffsetInRange(unsigned UserOffset, 963 unsigned TrialOffset, unsigned MaxDisp, 964 bool NegativeOK) { 965 if (UserOffset <= TrialOffset) { 966 // User before the Trial. 967 if (TrialOffset - UserOffset <= MaxDisp) 968 return true; 969 } else if (NegativeOK) { 970 if (UserOffset - TrialOffset <= MaxDisp) 971 return true; 972 } 973 return false; 974 } 975 976 /// isWaterInRange - Returns true if a CPE placed after the specified 977 /// Water (a basic block) will be in range for the specific MI. 978 /// 979 /// Compute how much the function will grow by inserting a CPE after Water. 980 bool MipsConstantIslands::isWaterInRange(unsigned UserOffset, 981 MachineBasicBlock* Water, CPUser &U, 982 unsigned &Growth) { 983 unsigned CPELogAlign = getCPELogAlign(U.CPEMI); 984 unsigned CPEOffset = BBInfo[Water->getNumber()].postOffset(CPELogAlign); 985 unsigned NextBlockOffset, NextBlockAlignment; 986 MachineFunction::const_iterator NextBlock = Water; 987 if (++NextBlock == MF->end()) { 988 NextBlockOffset = BBInfo[Water->getNumber()].postOffset(); 989 NextBlockAlignment = 0; 990 } else { 991 NextBlockOffset = BBInfo[NextBlock->getNumber()].Offset; 992 NextBlockAlignment = NextBlock->getAlignment(); 993 } 994 unsigned Size = U.CPEMI->getOperand(2).getImm(); 995 unsigned CPEEnd = CPEOffset + Size; 996 997 // The CPE may be able to hide in the alignment padding before the next 998 // block. It may also cause more padding to be required if it is more aligned 999 // that the next block. 1000 if (CPEEnd > NextBlockOffset) { 1001 Growth = CPEEnd - NextBlockOffset; 1002 // Compute the padding that would go at the end of the CPE to align the next 1003 // block. 1004 Growth += OffsetToAlignment(CPEEnd, 1u << NextBlockAlignment); 1005 1006 // If the CPE is to be inserted before the instruction, that will raise 1007 // the offset of the instruction. Also account for unknown alignment padding 1008 // in blocks between CPE and the user. 1009 if (CPEOffset < UserOffset) 1010 UserOffset += Growth; 1011 } else 1012 // CPE fits in existing padding. 1013 Growth = 0; 1014 1015 return isOffsetInRange(UserOffset, CPEOffset, U); 1016 } 1017 1018 /// isCPEntryInRange - Returns true if the distance between specific MI and 1019 /// specific ConstPool entry instruction can fit in MI's displacement field. 1020 bool MipsConstantIslands::isCPEntryInRange 1021 (MachineInstr *MI, unsigned UserOffset, 1022 MachineInstr *CPEMI, unsigned MaxDisp, 1023 bool NegOk, bool DoDump) { 1024 unsigned CPEOffset = getOffsetOf(CPEMI); 1025 1026 if (DoDump) { 1027 DEBUG({ 1028 unsigned Block = MI->getParent()->getNumber(); 1029 const BasicBlockInfo &BBI = BBInfo[Block]; 1030 dbgs() << "User of CPE#" << CPEMI->getOperand(0).getImm() 1031 << " max delta=" << MaxDisp 1032 << format(" insn address=%#x", UserOffset) 1033 << " in BB#" << Block << ": " 1034 << format("%#x-%x\t", BBI.Offset, BBI.postOffset()) << *MI 1035 << format("CPE address=%#x offset=%+d: ", CPEOffset, 1036 int(CPEOffset-UserOffset)); 1037 }); 1038 } 1039 1040 return isOffsetInRange(UserOffset, CPEOffset, MaxDisp, NegOk); 1041 } 1042 1043 #ifndef NDEBUG 1044 /// BBIsJumpedOver - Return true of the specified basic block's only predecessor 1045 /// unconditionally branches to its only successor. 1046 static bool BBIsJumpedOver(MachineBasicBlock *MBB) { 1047 if (MBB->pred_size() != 1 || MBB->succ_size() != 1) 1048 return false; 1049 MachineBasicBlock *Succ = *MBB->succ_begin(); 1050 MachineBasicBlock *Pred = *MBB->pred_begin(); 1051 MachineInstr *PredMI = &Pred->back(); 1052 if (PredMI->getOpcode() == Mips::Bimm16) 1053 return PredMI->getOperand(0).getMBB() == Succ; 1054 return false; 1055 } 1056 #endif 1057 1058 void MipsConstantIslands::adjustBBOffsetsAfter(MachineBasicBlock *BB) { 1059 unsigned BBNum = BB->getNumber(); 1060 for(unsigned i = BBNum + 1, e = MF->getNumBlockIDs(); i < e; ++i) { 1061 // Get the offset and known bits at the end of the layout predecessor. 1062 // Include the alignment of the current block. 1063 unsigned Offset = BBInfo[i - 1].Offset + BBInfo[i - 1].Size; 1064 BBInfo[i].Offset = Offset; 1065 } 1066 } 1067 1068 /// decrementCPEReferenceCount - find the constant pool entry with index CPI 1069 /// and instruction CPEMI, and decrement its refcount. If the refcount 1070 /// becomes 0 remove the entry and instruction. Returns true if we removed 1071 /// the entry, false if we didn't. 1072 1073 bool MipsConstantIslands::decrementCPEReferenceCount(unsigned CPI, 1074 MachineInstr *CPEMI) { 1075 // Find the old entry. Eliminate it if it is no longer used. 1076 CPEntry *CPE = findConstPoolEntry(CPI, CPEMI); 1077 assert(CPE && "Unexpected!"); 1078 if (--CPE->RefCount == 0) { 1079 removeDeadCPEMI(CPEMI); 1080 CPE->CPEMI = NULL; 1081 --NumCPEs; 1082 return true; 1083 } 1084 return false; 1085 } 1086 1087 /// LookForCPEntryInRange - see if the currently referenced CPE is in range; 1088 /// if not, see if an in-range clone of the CPE is in range, and if so, 1089 /// change the data structures so the user references the clone. Returns: 1090 /// 0 = no existing entry found 1091 /// 1 = entry found, and there were no code insertions or deletions 1092 /// 2 = entry found, and there were code insertions or deletions 1093 int MipsConstantIslands::findInRangeCPEntry(CPUser& U, unsigned UserOffset) 1094 { 1095 MachineInstr *UserMI = U.MI; 1096 MachineInstr *CPEMI = U.CPEMI; 1097 1098 // Check to see if the CPE is already in-range. 1099 if (isCPEntryInRange(UserMI, UserOffset, CPEMI, U.getMaxDisp(), U.NegOk, 1100 true)) { 1101 DEBUG(dbgs() << "In range\n"); 1102 return 1; 1103 } 1104 1105 // No. Look for previously created clones of the CPE that are in range. 1106 unsigned CPI = CPEMI->getOperand(1).getIndex(); 1107 std::vector<CPEntry> &CPEs = CPEntries[CPI]; 1108 for (unsigned i = 0, e = CPEs.size(); i != e; ++i) { 1109 // We already tried this one 1110 if (CPEs[i].CPEMI == CPEMI) 1111 continue; 1112 // Removing CPEs can leave empty entries, skip 1113 if (CPEs[i].CPEMI == NULL) 1114 continue; 1115 if (isCPEntryInRange(UserMI, UserOffset, CPEs[i].CPEMI, U.getMaxDisp(), 1116 U.NegOk)) { 1117 DEBUG(dbgs() << "Replacing CPE#" << CPI << " with CPE#" 1118 << CPEs[i].CPI << "\n"); 1119 // Point the CPUser node to the replacement 1120 U.CPEMI = CPEs[i].CPEMI; 1121 // Change the CPI in the instruction operand to refer to the clone. 1122 for (unsigned j = 0, e = UserMI->getNumOperands(); j != e; ++j) 1123 if (UserMI->getOperand(j).isCPI()) { 1124 UserMI->getOperand(j).setIndex(CPEs[i].CPI); 1125 break; 1126 } 1127 // Adjust the refcount of the clone... 1128 CPEs[i].RefCount++; 1129 // ...and the original. If we didn't remove the old entry, none of the 1130 // addresses changed, so we don't need another pass. 1131 return decrementCPEReferenceCount(CPI, CPEMI) ? 2 : 1; 1132 } 1133 } 1134 return 0; 1135 } 1136 1137 /// LookForCPEntryInRange - see if the currently referenced CPE is in range; 1138 /// This version checks if the longer form of the instruction can be used to 1139 /// to satisfy things. 1140 /// if not, see if an in-range clone of the CPE is in range, and if so, 1141 /// change the data structures so the user references the clone. Returns: 1142 /// 0 = no existing entry found 1143 /// 1 = entry found, and there were no code insertions or deletions 1144 /// 2 = entry found, and there were code insertions or deletions 1145 int MipsConstantIslands::findLongFormInRangeCPEntry 1146 (CPUser& U, unsigned UserOffset) 1147 { 1148 MachineInstr *UserMI = U.MI; 1149 MachineInstr *CPEMI = U.CPEMI; 1150 1151 // Check to see if the CPE is already in-range. 1152 if (isCPEntryInRange(UserMI, UserOffset, CPEMI, 1153 U.getLongFormMaxDisp(), U.NegOk, 1154 true)) { 1155 DEBUG(dbgs() << "In range\n"); 1156 UserMI->setDesc(TII->get(U.getLongFormOpcode())); 1157 U.setMaxDisp(U.getLongFormMaxDisp()); 1158 return 2; // instruction is longer length now 1159 } 1160 1161 // No. Look for previously created clones of the CPE that are in range. 1162 unsigned CPI = CPEMI->getOperand(1).getIndex(); 1163 std::vector<CPEntry> &CPEs = CPEntries[CPI]; 1164 for (unsigned i = 0, e = CPEs.size(); i != e; ++i) { 1165 // We already tried this one 1166 if (CPEs[i].CPEMI == CPEMI) 1167 continue; 1168 // Removing CPEs can leave empty entries, skip 1169 if (CPEs[i].CPEMI == NULL) 1170 continue; 1171 if (isCPEntryInRange(UserMI, UserOffset, CPEs[i].CPEMI, 1172 U.getLongFormMaxDisp(), U.NegOk)) { 1173 DEBUG(dbgs() << "Replacing CPE#" << CPI << " with CPE#" 1174 << CPEs[i].CPI << "\n"); 1175 // Point the CPUser node to the replacement 1176 U.CPEMI = CPEs[i].CPEMI; 1177 // Change the CPI in the instruction operand to refer to the clone. 1178 for (unsigned j = 0, e = UserMI->getNumOperands(); j != e; ++j) 1179 if (UserMI->getOperand(j).isCPI()) { 1180 UserMI->getOperand(j).setIndex(CPEs[i].CPI); 1181 break; 1182 } 1183 // Adjust the refcount of the clone... 1184 CPEs[i].RefCount++; 1185 // ...and the original. If we didn't remove the old entry, none of the 1186 // addresses changed, so we don't need another pass. 1187 return decrementCPEReferenceCount(CPI, CPEMI) ? 2 : 1; 1188 } 1189 } 1190 return 0; 1191 } 1192 1193 /// getUnconditionalBrDisp - Returns the maximum displacement that can fit in 1194 /// the specific unconditional branch instruction. 1195 static inline unsigned getUnconditionalBrDisp(int Opc) { 1196 switch (Opc) { 1197 case Mips::Bimm16: 1198 return ((1<<10)-1)*2; 1199 case Mips::BimmX16: 1200 return ((1<<16)-1)*2; 1201 default: 1202 break; 1203 } 1204 return ((1<<16)-1)*2; 1205 } 1206 1207 /// findAvailableWater - Look for an existing entry in the WaterList in which 1208 /// we can place the CPE referenced from U so it's within range of U's MI. 1209 /// Returns true if found, false if not. If it returns true, WaterIter 1210 /// is set to the WaterList entry. 1211 /// To ensure that this pass 1212 /// terminates, the CPE location for a particular CPUser is only allowed to 1213 /// move to a lower address, so search backward from the end of the list and 1214 /// prefer the first water that is in range. 1215 bool MipsConstantIslands::findAvailableWater(CPUser &U, unsigned UserOffset, 1216 water_iterator &WaterIter) { 1217 if (WaterList.empty()) 1218 return false; 1219 1220 unsigned BestGrowth = ~0u; 1221 for (water_iterator IP = prior(WaterList.end()), B = WaterList.begin();; 1222 --IP) { 1223 MachineBasicBlock* WaterBB = *IP; 1224 // Check if water is in range and is either at a lower address than the 1225 // current "high water mark" or a new water block that was created since 1226 // the previous iteration by inserting an unconditional branch. In the 1227 // latter case, we want to allow resetting the high water mark back to 1228 // this new water since we haven't seen it before. Inserting branches 1229 // should be relatively uncommon and when it does happen, we want to be 1230 // sure to take advantage of it for all the CPEs near that block, so that 1231 // we don't insert more branches than necessary. 1232 unsigned Growth; 1233 if (isWaterInRange(UserOffset, WaterBB, U, Growth) && 1234 (WaterBB->getNumber() < U.HighWaterMark->getNumber() || 1235 NewWaterList.count(WaterBB)) && Growth < BestGrowth) { 1236 // This is the least amount of required padding seen so far. 1237 BestGrowth = Growth; 1238 WaterIter = IP; 1239 DEBUG(dbgs() << "Found water after BB#" << WaterBB->getNumber() 1240 << " Growth=" << Growth << '\n'); 1241 1242 // Keep looking unless it is perfect. 1243 if (BestGrowth == 0) 1244 return true; 1245 } 1246 if (IP == B) 1247 break; 1248 } 1249 return BestGrowth != ~0u; 1250 } 1251 1252 /// createNewWater - No existing WaterList entry will work for 1253 /// CPUsers[CPUserIndex], so create a place to put the CPE. The end of the 1254 /// block is used if in range, and the conditional branch munged so control 1255 /// flow is correct. Otherwise the block is split to create a hole with an 1256 /// unconditional branch around it. In either case NewMBB is set to a 1257 /// block following which the new island can be inserted (the WaterList 1258 /// is not adjusted). 1259 void MipsConstantIslands::createNewWater(unsigned CPUserIndex, 1260 unsigned UserOffset, 1261 MachineBasicBlock *&NewMBB) { 1262 CPUser &U = CPUsers[CPUserIndex]; 1263 MachineInstr *UserMI = U.MI; 1264 MachineInstr *CPEMI = U.CPEMI; 1265 unsigned CPELogAlign = getCPELogAlign(CPEMI); 1266 MachineBasicBlock *UserMBB = UserMI->getParent(); 1267 const BasicBlockInfo &UserBBI = BBInfo[UserMBB->getNumber()]; 1268 1269 // If the block does not end in an unconditional branch already, and if the 1270 // end of the block is within range, make new water there. 1271 if (BBHasFallthrough(UserMBB)) { 1272 // Size of branch to insert. 1273 unsigned Delta = 2; 1274 // Compute the offset where the CPE will begin. 1275 unsigned CPEOffset = UserBBI.postOffset(CPELogAlign) + Delta; 1276 1277 if (isOffsetInRange(UserOffset, CPEOffset, U)) { 1278 DEBUG(dbgs() << "Split at end of BB#" << UserMBB->getNumber() 1279 << format(", expected CPE offset %#x\n", CPEOffset)); 1280 NewMBB = llvm::next(MachineFunction::iterator(UserMBB)); 1281 // Add an unconditional branch from UserMBB to fallthrough block. Record 1282 // it for branch lengthening; this new branch will not get out of range, 1283 // but if the preceding conditional branch is out of range, the targets 1284 // will be exchanged, and the altered branch may be out of range, so the 1285 // machinery has to know about it. 1286 int UncondBr = Mips::Bimm16; 1287 BuildMI(UserMBB, DebugLoc(), TII->get(UncondBr)).addMBB(NewMBB); 1288 unsigned MaxDisp = getUnconditionalBrDisp(UncondBr); 1289 ImmBranches.push_back(ImmBranch(&UserMBB->back(), 1290 MaxDisp, false, UncondBr)); 1291 BBInfo[UserMBB->getNumber()].Size += Delta; 1292 adjustBBOffsetsAfter(UserMBB); 1293 return; 1294 } 1295 } 1296 1297 // What a big block. Find a place within the block to split it. 1298 1299 // Try to split the block so it's fully aligned. Compute the latest split 1300 // point where we can add a 4-byte branch instruction, and then align to 1301 // LogAlign which is the largest possible alignment in the function. 1302 unsigned LogAlign = MF->getAlignment(); 1303 assert(LogAlign >= CPELogAlign && "Over-aligned constant pool entry"); 1304 unsigned BaseInsertOffset = UserOffset + U.getMaxDisp(); 1305 DEBUG(dbgs() << format("Split in middle of big block before %#x", 1306 BaseInsertOffset)); 1307 1308 // The 4 in the following is for the unconditional branch we'll be inserting 1309 // Alignment of the island is handled 1310 // inside isOffsetInRange. 1311 BaseInsertOffset -= 4; 1312 1313 DEBUG(dbgs() << format(", adjusted to %#x", BaseInsertOffset) 1314 << " la=" << LogAlign << '\n'); 1315 1316 // This could point off the end of the block if we've already got constant 1317 // pool entries following this block; only the last one is in the water list. 1318 // Back past any possible branches (allow for a conditional and a maximally 1319 // long unconditional). 1320 if (BaseInsertOffset + 8 >= UserBBI.postOffset()) { 1321 BaseInsertOffset = UserBBI.postOffset() - 8; 1322 DEBUG(dbgs() << format("Move inside block: %#x\n", BaseInsertOffset)); 1323 } 1324 unsigned EndInsertOffset = BaseInsertOffset + 4 + 1325 CPEMI->getOperand(2).getImm(); 1326 MachineBasicBlock::iterator MI = UserMI; 1327 ++MI; 1328 unsigned CPUIndex = CPUserIndex+1; 1329 unsigned NumCPUsers = CPUsers.size(); 1330 //MachineInstr *LastIT = 0; 1331 for (unsigned Offset = UserOffset+TII->GetInstSizeInBytes(UserMI); 1332 Offset < BaseInsertOffset; 1333 Offset += TII->GetInstSizeInBytes(MI), 1334 MI = llvm::next(MI)) { 1335 assert(MI != UserMBB->end() && "Fell off end of block"); 1336 if (CPUIndex < NumCPUsers && CPUsers[CPUIndex].MI == MI) { 1337 CPUser &U = CPUsers[CPUIndex]; 1338 if (!isOffsetInRange(Offset, EndInsertOffset, U)) { 1339 // Shift intertion point by one unit of alignment so it is within reach. 1340 BaseInsertOffset -= 1u << LogAlign; 1341 EndInsertOffset -= 1u << LogAlign; 1342 } 1343 // This is overly conservative, as we don't account for CPEMIs being 1344 // reused within the block, but it doesn't matter much. Also assume CPEs 1345 // are added in order with alignment padding. We may eventually be able 1346 // to pack the aligned CPEs better. 1347 EndInsertOffset += U.CPEMI->getOperand(2).getImm(); 1348 CPUIndex++; 1349 } 1350 } 1351 1352 --MI; 1353 NewMBB = splitBlockBeforeInstr(MI); 1354 } 1355 1356 /// handleConstantPoolUser - Analyze the specified user, checking to see if it 1357 /// is out-of-range. If so, pick up the constant pool value and move it some 1358 /// place in-range. Return true if we changed any addresses (thus must run 1359 /// another pass of branch lengthening), false otherwise. 1360 bool MipsConstantIslands::handleConstantPoolUser(unsigned CPUserIndex) { 1361 CPUser &U = CPUsers[CPUserIndex]; 1362 MachineInstr *UserMI = U.MI; 1363 MachineInstr *CPEMI = U.CPEMI; 1364 unsigned CPI = CPEMI->getOperand(1).getIndex(); 1365 unsigned Size = CPEMI->getOperand(2).getImm(); 1366 // Compute this only once, it's expensive. 1367 unsigned UserOffset = getUserOffset(U); 1368 1369 // See if the current entry is within range, or there is a clone of it 1370 // in range. 1371 int result = findInRangeCPEntry(U, UserOffset); 1372 if (result==1) return false; 1373 else if (result==2) return true; 1374 1375 1376 // Look for water where we can place this CPE. 1377 MachineBasicBlock *NewIsland = MF->CreateMachineBasicBlock(); 1378 MachineBasicBlock *NewMBB; 1379 water_iterator IP; 1380 if (findAvailableWater(U, UserOffset, IP)) { 1381 DEBUG(dbgs() << "Found water in range\n"); 1382 MachineBasicBlock *WaterBB = *IP; 1383 1384 // If the original WaterList entry was "new water" on this iteration, 1385 // propagate that to the new island. This is just keeping NewWaterList 1386 // updated to match the WaterList, which will be updated below. 1387 if (NewWaterList.erase(WaterBB)) 1388 NewWaterList.insert(NewIsland); 1389 1390 // The new CPE goes before the following block (NewMBB). 1391 NewMBB = llvm::next(MachineFunction::iterator(WaterBB)); 1392 1393 } else { 1394 // No water found. 1395 // we first see if a longer form of the instrucion could have reached 1396 // the constant. in that case we won't bother to split 1397 if (!NoLoadRelaxation) { 1398 result = findLongFormInRangeCPEntry(U, UserOffset); 1399 if (result != 0) return true; 1400 } 1401 DEBUG(dbgs() << "No water found\n"); 1402 createNewWater(CPUserIndex, UserOffset, NewMBB); 1403 1404 // splitBlockBeforeInstr adds to WaterList, which is important when it is 1405 // called while handling branches so that the water will be seen on the 1406 // next iteration for constant pools, but in this context, we don't want 1407 // it. Check for this so it will be removed from the WaterList. 1408 // Also remove any entry from NewWaterList. 1409 MachineBasicBlock *WaterBB = prior(MachineFunction::iterator(NewMBB)); 1410 IP = std::find(WaterList.begin(), WaterList.end(), WaterBB); 1411 if (IP != WaterList.end()) 1412 NewWaterList.erase(WaterBB); 1413 1414 // We are adding new water. Update NewWaterList. 1415 NewWaterList.insert(NewIsland); 1416 } 1417 1418 // Remove the original WaterList entry; we want subsequent insertions in 1419 // this vicinity to go after the one we're about to insert. This 1420 // considerably reduces the number of times we have to move the same CPE 1421 // more than once and is also important to ensure the algorithm terminates. 1422 if (IP != WaterList.end()) 1423 WaterList.erase(IP); 1424 1425 // Okay, we know we can put an island before NewMBB now, do it! 1426 MF->insert(NewMBB, NewIsland); 1427 1428 // Update internal data structures to account for the newly inserted MBB. 1429 updateForInsertedWaterBlock(NewIsland); 1430 1431 // Decrement the old entry, and remove it if refcount becomes 0. 1432 decrementCPEReferenceCount(CPI, CPEMI); 1433 1434 // No existing clone of this CPE is within range. 1435 // We will be generating a new clone. Get a UID for it. 1436 unsigned ID = createPICLabelUId(); 1437 1438 // Now that we have an island to add the CPE to, clone the original CPE and 1439 // add it to the island. 1440 U.HighWaterMark = NewIsland; 1441 U.CPEMI = BuildMI(NewIsland, DebugLoc(), TII->get(Mips::CONSTPOOL_ENTRY)) 1442 .addImm(ID).addConstantPoolIndex(CPI).addImm(Size); 1443 CPEntries[CPI].push_back(CPEntry(U.CPEMI, ID, 1)); 1444 ++NumCPEs; 1445 1446 // Mark the basic block as aligned as required by the const-pool entry. 1447 NewIsland->setAlignment(getCPELogAlign(U.CPEMI)); 1448 1449 // Increase the size of the island block to account for the new entry. 1450 BBInfo[NewIsland->getNumber()].Size += Size; 1451 adjustBBOffsetsAfter(llvm::prior(MachineFunction::iterator(NewIsland))); 1452 1453 1454 1455 // Finally, change the CPI in the instruction operand to be ID. 1456 for (unsigned i = 0, e = UserMI->getNumOperands(); i != e; ++i) 1457 if (UserMI->getOperand(i).isCPI()) { 1458 UserMI->getOperand(i).setIndex(ID); 1459 break; 1460 } 1461 1462 DEBUG(dbgs() << " Moved CPE to #" << ID << " CPI=" << CPI 1463 << format(" offset=%#x\n", BBInfo[NewIsland->getNumber()].Offset)); 1464 1465 return true; 1466 } 1467 1468 /// removeDeadCPEMI - Remove a dead constant pool entry instruction. Update 1469 /// sizes and offsets of impacted basic blocks. 1470 void MipsConstantIslands::removeDeadCPEMI(MachineInstr *CPEMI) { 1471 MachineBasicBlock *CPEBB = CPEMI->getParent(); 1472 unsigned Size = CPEMI->getOperand(2).getImm(); 1473 CPEMI->eraseFromParent(); 1474 BBInfo[CPEBB->getNumber()].Size -= Size; 1475 // All succeeding offsets have the current size value added in, fix this. 1476 if (CPEBB->empty()) { 1477 BBInfo[CPEBB->getNumber()].Size = 0; 1478 1479 // This block no longer needs to be aligned. 1480 CPEBB->setAlignment(0); 1481 } else 1482 // Entries are sorted by descending alignment, so realign from the front. 1483 CPEBB->setAlignment(getCPELogAlign(CPEBB->begin())); 1484 1485 adjustBBOffsetsAfter(CPEBB); 1486 // An island has only one predecessor BB and one successor BB. Check if 1487 // this BB's predecessor jumps directly to this BB's successor. This 1488 // shouldn't happen currently. 1489 assert(!BBIsJumpedOver(CPEBB) && "How did this happen?"); 1490 // FIXME: remove the empty blocks after all the work is done? 1491 } 1492 1493 /// removeUnusedCPEntries - Remove constant pool entries whose refcounts 1494 /// are zero. 1495 bool MipsConstantIslands::removeUnusedCPEntries() { 1496 unsigned MadeChange = false; 1497 for (unsigned i = 0, e = CPEntries.size(); i != e; ++i) { 1498 std::vector<CPEntry> &CPEs = CPEntries[i]; 1499 for (unsigned j = 0, ee = CPEs.size(); j != ee; ++j) { 1500 if (CPEs[j].RefCount == 0 && CPEs[j].CPEMI) { 1501 removeDeadCPEMI(CPEs[j].CPEMI); 1502 CPEs[j].CPEMI = NULL; 1503 MadeChange = true; 1504 } 1505 } 1506 } 1507 return MadeChange; 1508 } 1509 1510 /// isBBInRange - Returns true if the distance between specific MI and 1511 /// specific BB can fit in MI's displacement field. 1512 bool MipsConstantIslands::isBBInRange 1513 (MachineInstr *MI,MachineBasicBlock *DestBB, unsigned MaxDisp) { 1514 1515 unsigned PCAdj = 4; 1516 1517 unsigned BrOffset = getOffsetOf(MI) + PCAdj; 1518 unsigned DestOffset = BBInfo[DestBB->getNumber()].Offset; 1519 1520 DEBUG(dbgs() << "Branch of destination BB#" << DestBB->getNumber() 1521 << " from BB#" << MI->getParent()->getNumber() 1522 << " max delta=" << MaxDisp 1523 << " from " << getOffsetOf(MI) << " to " << DestOffset 1524 << " offset " << int(DestOffset-BrOffset) << "\t" << *MI); 1525 1526 if (BrOffset <= DestOffset) { 1527 // Branch before the Dest. 1528 if (DestOffset-BrOffset <= MaxDisp) 1529 return true; 1530 } else { 1531 if (BrOffset-DestOffset <= MaxDisp) 1532 return true; 1533 } 1534 return false; 1535 } 1536 1537 /// fixupImmediateBr - Fix up an immediate branch whose destination is too far 1538 /// away to fit in its displacement field. 1539 bool MipsConstantIslands::fixupImmediateBr(ImmBranch &Br) { 1540 MachineInstr *MI = Br.MI; 1541 unsigned TargetOperand = branchTargetOperand(MI); 1542 MachineBasicBlock *DestBB = MI->getOperand(TargetOperand).getMBB(); 1543 1544 // Check to see if the DestBB is already in-range. 1545 if (isBBInRange(MI, DestBB, Br.MaxDisp)) 1546 return false; 1547 1548 if (!Br.isCond) 1549 return fixupUnconditionalBr(Br); 1550 return fixupConditionalBr(Br); 1551 } 1552 1553 /// fixupUnconditionalBr - Fix up an unconditional branch whose destination is 1554 /// too far away to fit in its displacement field. If the LR register has been 1555 /// spilled in the epilogue, then we can use BL to implement a far jump. 1556 /// Otherwise, add an intermediate branch instruction to a branch. 1557 bool 1558 MipsConstantIslands::fixupUnconditionalBr(ImmBranch &Br) { 1559 MachineInstr *MI = Br.MI; 1560 MachineBasicBlock *MBB = MI->getParent(); 1561 MachineBasicBlock *DestBB = MI->getOperand(0).getMBB(); 1562 // Use BL to implement far jump. 1563 unsigned BimmX16MaxDisp = ((1 << 16)-1) * 2; 1564 if (isBBInRange(MI, DestBB, BimmX16MaxDisp)) { 1565 Br.MaxDisp = BimmX16MaxDisp; 1566 MI->setDesc(TII->get(Mips::BimmX16)); 1567 } 1568 else { 1569 // need to give the math a more careful look here 1570 // this is really a segment address and not 1571 // a PC relative address. FIXME. But I think that 1572 // just reducing the bits by 1 as I've done is correct. 1573 // The basic block we are branching too much be longword aligned. 1574 // we know that RA is saved because we always save it right now. 1575 // this requirement will be relaxed later but we also have an alternate 1576 // way to implement this that I will implement that does not need jal. 1577 // We should have a way to back out this alignment restriction if we "can" later. 1578 // but it is not harmful. 1579 // 1580 DestBB->setAlignment(2); 1581 Br.MaxDisp = ((1<<24)-1) * 2; 1582 MI->setDesc(TII->get(Mips::JalB16)); 1583 } 1584 BBInfo[MBB->getNumber()].Size += 2; 1585 adjustBBOffsetsAfter(MBB); 1586 HasFarJump = true; 1587 ++NumUBrFixed; 1588 1589 DEBUG(dbgs() << " Changed B to long jump " << *MI); 1590 1591 return true; 1592 } 1593 1594 1595 /// fixupConditionalBr - Fix up a conditional branch whose destination is too 1596 /// far away to fit in its displacement field. It is converted to an inverse 1597 /// conditional branch + an unconditional branch to the destination. 1598 bool 1599 MipsConstantIslands::fixupConditionalBr(ImmBranch &Br) { 1600 MachineInstr *MI = Br.MI; 1601 unsigned TargetOperand = branchTargetOperand(MI); 1602 MachineBasicBlock *DestBB = MI->getOperand(TargetOperand).getMBB(); 1603 unsigned Opcode = MI->getOpcode(); 1604 unsigned LongFormOpcode = longformBranchOpcode(Opcode); 1605 unsigned LongFormMaxOff = branchMaxOffsets(LongFormOpcode); 1606 1607 // Check to see if the DestBB is already in-range. 1608 if (isBBInRange(MI, DestBB, LongFormMaxOff)) { 1609 Br.MaxDisp = LongFormMaxOff; 1610 MI->setDesc(TII->get(LongFormOpcode)); 1611 return true; 1612 } 1613 1614 // Add an unconditional branch to the destination and invert the branch 1615 // condition to jump over it: 1616 // bteqz L1 1617 // => 1618 // bnez L2 1619 // b L1 1620 // L2: 1621 1622 // If the branch is at the end of its MBB and that has a fall-through block, 1623 // direct the updated conditional branch to the fall-through block. Otherwise, 1624 // split the MBB before the next instruction. 1625 MachineBasicBlock *MBB = MI->getParent(); 1626 MachineInstr *BMI = &MBB->back(); 1627 bool NeedSplit = (BMI != MI) || !BBHasFallthrough(MBB); 1628 unsigned OppositeBranchOpcode = TII->getOppositeBranchOpc(Opcode); 1629 1630 ++NumCBrFixed; 1631 if (BMI != MI) { 1632 if (llvm::next(MachineBasicBlock::iterator(MI)) == prior(MBB->end()) && 1633 isUnconditionalBranch(BMI->getOpcode())) { 1634 // Last MI in the BB is an unconditional branch. Can we simply invert the 1635 // condition and swap destinations: 1636 // beqz L1 1637 // b L2 1638 // => 1639 // bnez L2 1640 // b L1 1641 unsigned BMITargetOperand = branchTargetOperand(BMI); 1642 MachineBasicBlock *NewDest = 1643 BMI->getOperand(BMITargetOperand).getMBB(); 1644 if (isBBInRange(MI, NewDest, Br.MaxDisp)) { 1645 DEBUG(dbgs() << " Invert Bcc condition and swap its destination with " 1646 << *BMI); 1647 MI->setDesc(TII->get(OppositeBranchOpcode)); 1648 BMI->getOperand(BMITargetOperand).setMBB(DestBB); 1649 MI->getOperand(TargetOperand).setMBB(NewDest); 1650 return true; 1651 } 1652 } 1653 } 1654 1655 1656 if (NeedSplit) { 1657 splitBlockBeforeInstr(MI); 1658 // No need for the branch to the next block. We're adding an unconditional 1659 // branch to the destination. 1660 int delta = TII->GetInstSizeInBytes(&MBB->back()); 1661 BBInfo[MBB->getNumber()].Size -= delta; 1662 MBB->back().eraseFromParent(); 1663 // BBInfo[SplitBB].Offset is wrong temporarily, fixed below 1664 } 1665 MachineBasicBlock *NextBB = llvm::next(MachineFunction::iterator(MBB)); 1666 1667 DEBUG(dbgs() << " Insert B to BB#" << DestBB->getNumber() 1668 << " also invert condition and change dest. to BB#" 1669 << NextBB->getNumber() << "\n"); 1670 1671 // Insert a new conditional branch and a new unconditional branch. 1672 // Also update the ImmBranch as well as adding a new entry for the new branch. 1673 if (MI->getNumExplicitOperands() == 2) { 1674 BuildMI(MBB, DebugLoc(), TII->get(OppositeBranchOpcode)) 1675 .addReg(MI->getOperand(0).getReg()) 1676 .addMBB(NextBB); 1677 } else { 1678 BuildMI(MBB, DebugLoc(), TII->get(OppositeBranchOpcode)) 1679 .addMBB(NextBB); 1680 } 1681 Br.MI = &MBB->back(); 1682 BBInfo[MBB->getNumber()].Size += TII->GetInstSizeInBytes(&MBB->back()); 1683 BuildMI(MBB, DebugLoc(), TII->get(Br.UncondBr)).addMBB(DestBB); 1684 BBInfo[MBB->getNumber()].Size += TII->GetInstSizeInBytes(&MBB->back()); 1685 unsigned MaxDisp = getUnconditionalBrDisp(Br.UncondBr); 1686 ImmBranches.push_back(ImmBranch(&MBB->back(), MaxDisp, false, Br.UncondBr)); 1687 1688 // Remove the old conditional branch. It may or may not still be in MBB. 1689 BBInfo[MI->getParent()->getNumber()].Size -= TII->GetInstSizeInBytes(MI); 1690 MI->eraseFromParent(); 1691 adjustBBOffsetsAfter(MBB); 1692 return true; 1693 } 1694 1695 1696 void MipsConstantIslands::prescanForConstants() { 1697 unsigned J = 0; 1698 (void)J; 1699 for (MachineFunction::iterator B = 1700 MF->begin(), E = MF->end(); B != E; ++B) { 1701 for (MachineBasicBlock::instr_iterator I = 1702 B->instr_begin(), EB = B->instr_end(); I != EB; ++I) { 1703 switch(I->getDesc().getOpcode()) { 1704 case Mips::LwConstant32: { 1705 PrescannedForConstants = true; 1706 DEBUG(dbgs() << "constant island constant " << *I << "\n"); 1707 J = I->getNumOperands(); 1708 DEBUG(dbgs() << "num operands " << J << "\n"); 1709 MachineOperand& Literal = I->getOperand(1); 1710 if (Literal.isImm()) { 1711 int64_t V = Literal.getImm(); 1712 DEBUG(dbgs() << "literal " << V << "\n"); 1713 Type *Int32Ty = 1714 Type::getInt32Ty(MF->getFunction()->getContext()); 1715 const Constant *C = ConstantInt::get(Int32Ty, V); 1716 unsigned index = MCP->getConstantPoolIndex(C, 4); 1717 I->getOperand(2).ChangeToImmediate(index); 1718 DEBUG(dbgs() << "constant island constant " << *I << "\n"); 1719 I->setDesc(TII->get(Mips::LwRxPcTcp16)); 1720 I->RemoveOperand(1); 1721 I->RemoveOperand(1); 1722 I->addOperand(MachineOperand::CreateCPI(index, 0)); 1723 I->addOperand(MachineOperand::CreateImm(4)); 1724 } 1725 break; 1726 } 1727 default: 1728 break; 1729 } 1730 } 1731 } 1732 } 1733 1734