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Chris Lattnerf2836d12007-03-31 04:06:36 +00001//===- CodeGenPrepare.cpp - Prepare a function for code generation --------===//
2//
3// The LLVM Compiler Infrastructure
4//
Chris Lattnerf3ebc3f2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Chris Lattnerf2836d12007-03-31 04:06:36 +00007//
8//===----------------------------------------------------------------------===//
9//
10// This pass munges the code in the input function to better prepare it for
Gordon Henriksen829046b2008-05-08 17:46:35 +000011// SelectionDAG-based code generation. This works around limitations in it's
12// basic-block-at-a-time approach. It should eventually be removed.
Chris Lattnerf2836d12007-03-31 04:06:36 +000013//
14//===----------------------------------------------------------------------===//
15
16#define DEBUG_TYPE "codegenprepare"
Quentin Colombeta3490842014-02-22 00:07:45 +000017#include "llvm/CodeGen/Passes.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000018#include "llvm/ADT/DenseMap.h"
19#include "llvm/ADT/SmallSet.h"
20#include "llvm/ADT/Statistic.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000021#include "llvm/Analysis/InstructionSimplify.h"
Chandler Carruth219b89b2014-03-04 11:01:28 +000022#include "llvm/IR/CallSite.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000023#include "llvm/IR/Constants.h"
24#include "llvm/IR/DataLayout.h"
25#include "llvm/IR/DerivedTypes.h"
Chandler Carruth5ad5f152014-01-13 09:26:24 +000026#include "llvm/IR/Dominators.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000027#include "llvm/IR/Function.h"
Chandler Carruth03eb0de2014-03-04 10:40:04 +000028#include "llvm/IR/GetElementPtrTypeIterator.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000029#include "llvm/IR/IRBuilder.h"
30#include "llvm/IR/InlineAsm.h"
31#include "llvm/IR/Instructions.h"
32#include "llvm/IR/IntrinsicInst.h"
Chandler Carruth820a9082014-03-04 11:08:18 +000033#include "llvm/IR/PatternMatch.h"
Chandler Carruth4220e9c2014-03-04 11:17:44 +000034#include "llvm/IR/ValueHandle.h"
Chandler Carrutha4ea2692014-03-04 11:26:31 +000035#include "llvm/IR/ValueMap.h"
Chris Lattnerf2836d12007-03-31 04:06:36 +000036#include "llvm/Pass.h"
Evan Cheng8b637b12010-08-17 01:34:49 +000037#include "llvm/Support/CommandLine.h"
Evan Chengd3d80172007-12-05 23:58:20 +000038#include "llvm/Support/Debug.h"
Chandler Carruthaafe0912012-06-29 12:38:19 +000039#include "llvm/Support/raw_ostream.h"
Chandler Carruthaafe0912012-06-29 12:38:19 +000040#include "llvm/Target/TargetLibraryInfo.h"
41#include "llvm/Target/TargetLowering.h"
Chandler Carruthaafe0912012-06-29 12:38:19 +000042#include "llvm/Transforms/Utils/BasicBlockUtils.h"
43#include "llvm/Transforms/Utils/BuildLibCalls.h"
Preston Gurdcdf540d2012-09-04 18:22:17 +000044#include "llvm/Transforms/Utils/BypassSlowDivision.h"
Chandler Carruthaafe0912012-06-29 12:38:19 +000045#include "llvm/Transforms/Utils/Local.h"
Chris Lattnerf2836d12007-03-31 04:06:36 +000046using namespace llvm;
Chris Lattnerd616ef52008-11-25 04:42:10 +000047using namespace llvm::PatternMatch;
Chris Lattnerf2836d12007-03-31 04:06:36 +000048
Cameron Zwarichced753f2011-01-05 17:27:27 +000049STATISTIC(NumBlocksElim, "Number of blocks eliminated");
Evan Cheng0663f232011-03-21 01:19:09 +000050STATISTIC(NumPHIsElim, "Number of trivial PHIs eliminated");
51STATISTIC(NumGEPsElim, "Number of GEPs converted to casts");
Cameron Zwarichced753f2011-01-05 17:27:27 +000052STATISTIC(NumCmpUses, "Number of uses of Cmp expressions replaced with uses of "
53 "sunken Cmps");
54STATISTIC(NumCastUses, "Number of uses of Cast expressions replaced with uses "
55 "of sunken Casts");
56STATISTIC(NumMemoryInsts, "Number of memory instructions whose address "
57 "computations were sunk");
Evan Cheng0663f232011-03-21 01:19:09 +000058STATISTIC(NumExtsMoved, "Number of [s|z]ext instructions combined with loads");
59STATISTIC(NumExtUses, "Number of uses of [s|z]ext instructions optimized");
60STATISTIC(NumRetsDup, "Number of return instructions duplicated");
Devang Patel53771ba2011-08-18 00:50:51 +000061STATISTIC(NumDbgValueMoved, "Number of debug value instructions moved");
Benjamin Kramer047d7ca2012-05-05 12:49:22 +000062STATISTIC(NumSelectsExpanded, "Number of selects turned into branches");
Jakob Stoklund Oleseneb12f492010-09-30 20:51:52 +000063
Cameron Zwarich338d3622011-03-11 21:52:04 +000064static cl::opt<bool> DisableBranchOpts(
65 "disable-cgp-branch-opts", cl::Hidden, cl::init(false),
66 cl::desc("Disable branch optimizations in CodeGenPrepare"));
67
Benjamin Kramer3d38c172012-05-06 14:25:16 +000068static cl::opt<bool> DisableSelectToBranch(
69 "disable-cgp-select2branch", cl::Hidden, cl::init(false),
70 cl::desc("Disable select to branch conversion."));
Benjamin Kramer047d7ca2012-05-05 12:49:22 +000071
Eric Christopherc1ea1492008-09-24 05:32:41 +000072namespace {
Quentin Colombet3a4bf042014-02-06 21:44:56 +000073typedef SmallPtrSet<Instruction *, 16> SetOfInstrs;
74typedef DenseMap<Instruction *, Type *> InstrToOrigTy;
75
Chris Lattner2dd09db2009-09-02 06:11:42 +000076 class CodeGenPrepare : public FunctionPass {
Chris Lattnerf2836d12007-03-31 04:06:36 +000077 /// TLI - Keep a pointer of a TargetLowering to consult for determining
78 /// transformation profitability.
Bill Wendling7a639ea2013-06-19 21:07:11 +000079 const TargetMachine *TM;
Chris Lattnerf2836d12007-03-31 04:06:36 +000080 const TargetLowering *TLI;
Chad Rosierc24b86f2011-12-01 03:08:23 +000081 const TargetLibraryInfo *TLInfo;
Cameron Zwarich84986b22011-01-08 17:01:52 +000082 DominatorTree *DT;
Nadav Rotem465834c2012-07-24 10:51:42 +000083
Chris Lattner7a277142011-01-15 07:14:54 +000084 /// CurInstIterator - As we scan instructions optimizing them, this is the
85 /// next instruction to optimize. Xforms that can invalidate this should
86 /// update it.
87 BasicBlock::iterator CurInstIterator;
Evan Cheng3b3de7c2008-12-19 18:03:11 +000088
Evan Cheng0663f232011-03-21 01:19:09 +000089 /// Keeps track of non-local addresses that have been sunk into a block.
90 /// This allows us to avoid inserting duplicate code for blocks with
91 /// multiple load/stores of the same address.
Nick Lewycky5fb19632013-05-08 09:00:10 +000092 ValueMap<Value*, Value*> SunkAddrs;
Cameron Zwarichce3b9302011-01-06 00:42:50 +000093
Quentin Colombet3a4bf042014-02-06 21:44:56 +000094 /// Keeps track of all truncates inserted for the current function.
95 SetOfInstrs InsertedTruncsSet;
96 /// Keeps track of the type of the related instruction before their
97 /// promotion for the current function.
98 InstrToOrigTy PromotedInsts;
99
Devang Patel8f606d72011-03-24 15:35:25 +0000100 /// ModifiedDT - If CFG is modified in anyway, dominator tree may need to
Evan Cheng0663f232011-03-21 01:19:09 +0000101 /// be updated.
Devang Patel8f606d72011-03-24 15:35:25 +0000102 bool ModifiedDT;
Evan Cheng0663f232011-03-21 01:19:09 +0000103
Benjamin Kramer047d7ca2012-05-05 12:49:22 +0000104 /// OptSize - True if optimizing for size.
105 bool OptSize;
106
Chris Lattnerf2836d12007-03-31 04:06:36 +0000107 public:
Nick Lewyckye7da2d62007-05-06 13:37:16 +0000108 static char ID; // Pass identification, replacement for typeid
Bill Wendling7a639ea2013-06-19 21:07:11 +0000109 explicit CodeGenPrepare(const TargetMachine *TM = 0)
110 : FunctionPass(ID), TM(TM), TLI(0) {
Owen Anderson6c18d1a2010-10-19 17:21:58 +0000111 initializeCodeGenPreparePass(*PassRegistry::getPassRegistry());
112 }
Craig Topper4584cd52014-03-07 09:26:03 +0000113 bool runOnFunction(Function &F) override;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000114
Craig Topper4584cd52014-03-07 09:26:03 +0000115 const char *getPassName() const override { return "CodeGen Prepare"; }
Evan Cheng99cafb12012-12-21 01:48:14 +0000116
Craig Topper4584cd52014-03-07 09:26:03 +0000117 void getAnalysisUsage(AnalysisUsage &AU) const override {
Chandler Carruth73523022014-01-13 13:07:17 +0000118 AU.addPreserved<DominatorTreeWrapperPass>();
Chad Rosierc24b86f2011-12-01 03:08:23 +0000119 AU.addRequired<TargetLibraryInfo>();
Andreas Neustifterf8cb7582009-09-16 09:26:52 +0000120 }
121
Chris Lattnerf2836d12007-03-31 04:06:36 +0000122 private:
Nadav Rotem70409992012-08-14 05:19:07 +0000123 bool EliminateFallThrough(Function &F);
Chris Lattnerc3748562007-04-02 01:35:34 +0000124 bool EliminateMostlyEmptyBlocks(Function &F);
125 bool CanMergeBlocks(const BasicBlock *BB, const BasicBlock *DestBB) const;
126 void EliminateMostlyEmptyBlock(BasicBlock *BB);
Chris Lattnerf2836d12007-03-31 04:06:36 +0000127 bool OptimizeBlock(BasicBlock &BB);
Cameron Zwarich14ac8652011-01-06 02:37:26 +0000128 bool OptimizeInst(Instruction *I);
Chris Lattner229907c2011-07-18 04:54:35 +0000129 bool OptimizeMemoryInst(Instruction *I, Value *Addr, Type *AccessTy);
Chris Lattner7a277142011-01-15 07:14:54 +0000130 bool OptimizeInlineAsmInst(CallInst *CS);
Eric Christopher4b7948e2010-03-11 02:41:03 +0000131 bool OptimizeCallInst(CallInst *CI);
Dan Gohman99429a02009-10-16 20:59:35 +0000132 bool MoveExtToFormExtLoad(Instruction *I);
Evan Chengd3d80172007-12-05 23:58:20 +0000133 bool OptimizeExtUses(Instruction *I);
Benjamin Kramer047d7ca2012-05-05 12:49:22 +0000134 bool OptimizeSelectInst(SelectInst *SI);
Tim Northoveraeb8e062014-02-19 10:02:43 +0000135 bool OptimizeShuffleVectorInst(ShuffleVectorInst *SI);
Benjamin Kramer455fa352012-11-23 19:17:06 +0000136 bool DupRetToEnableTailCallOpts(BasicBlock *BB);
Devang Patel53771ba2011-08-18 00:50:51 +0000137 bool PlaceDbgValues(Function &F);
Chris Lattnerf2836d12007-03-31 04:06:36 +0000138 };
139}
Devang Patel09f162c2007-05-01 21:15:47 +0000140
Devang Patel8c78a0b2007-05-03 01:11:54 +0000141char CodeGenPrepare::ID = 0;
Quentin Colombetdc0b2ea2014-01-16 21:44:34 +0000142static void *initializeCodeGenPreparePassOnce(PassRegistry &Registry) {
143 initializeTargetLibraryInfoPass(Registry);
144 PassInfo *PI = new PassInfo(
145 "Optimize for code generation", "codegenprepare", &CodeGenPrepare::ID,
146 PassInfo::NormalCtor_t(callDefaultCtor<CodeGenPrepare>), false, false,
147 PassInfo::TargetMachineCtor_t(callTargetMachineCtor<CodeGenPrepare>));
148 Registry.registerPass(*PI, true);
149 return PI;
150}
151
152void llvm::initializeCodeGenPreparePass(PassRegistry &Registry) {
153 CALL_ONCE_INITIALIZATION(initializeCodeGenPreparePassOnce)
154}
Chris Lattnerf2836d12007-03-31 04:06:36 +0000155
Bill Wendling7a639ea2013-06-19 21:07:11 +0000156FunctionPass *llvm::createCodeGenPreparePass(const TargetMachine *TM) {
157 return new CodeGenPrepare(TM);
Chris Lattnerf2836d12007-03-31 04:06:36 +0000158}
159
Chris Lattnerf2836d12007-03-31 04:06:36 +0000160bool CodeGenPrepare::runOnFunction(Function &F) {
Chris Lattnerf2836d12007-03-31 04:06:36 +0000161 bool EverMadeChange = false;
Quentin Colombet3a4bf042014-02-06 21:44:56 +0000162 // Clear per function information.
163 InsertedTruncsSet.clear();
164 PromotedInsts.clear();
Eric Christopherc1ea1492008-09-24 05:32:41 +0000165
Devang Patel8f606d72011-03-24 15:35:25 +0000166 ModifiedDT = false;
Bill Wendling7a639ea2013-06-19 21:07:11 +0000167 if (TM) TLI = TM->getTargetLowering();
Chad Rosierc24b86f2011-12-01 03:08:23 +0000168 TLInfo = &getAnalysis<TargetLibraryInfo>();
Chandler Carruth73523022014-01-13 13:07:17 +0000169 DominatorTreeWrapperPass *DTWP =
170 getAnalysisIfAvailable<DominatorTreeWrapperPass>();
171 DT = DTWP ? &DTWP->getDomTree() : 0;
Bill Wendling698e84f2012-12-30 10:32:01 +0000172 OptSize = F.getAttributes().hasAttribute(AttributeSet::FunctionIndex,
173 Attribute::OptimizeForSize);
Evan Cheng0663f232011-03-21 01:19:09 +0000174
Preston Gurdcdf540d2012-09-04 18:22:17 +0000175 /// This optimization identifies DIV instructions that can be
176 /// profitably bypassed and carried out with a shorter, faster divide.
Preston Gurd485296d2013-03-04 18:13:57 +0000177 if (!OptSize && TLI && TLI->isSlowDivBypassed()) {
Preston Gurd0d67f512012-10-04 21:33:40 +0000178 const DenseMap<unsigned int, unsigned int> &BypassWidths =
179 TLI->getBypassSlowDivWidths();
Evan Cheng71be12b2012-09-14 21:25:34 +0000180 for (Function::iterator I = F.begin(); I != F.end(); I++)
Preston Gurd0d67f512012-10-04 21:33:40 +0000181 EverMadeChange |= bypassSlowDivision(F, I, BypassWidths);
Preston Gurdcdf540d2012-09-04 18:22:17 +0000182 }
183
184 // Eliminate blocks that contain only PHI nodes and an
Chris Lattnerc3748562007-04-02 01:35:34 +0000185 // unconditional branch.
186 EverMadeChange |= EliminateMostlyEmptyBlocks(F);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000187
Devang Patel53771ba2011-08-18 00:50:51 +0000188 // llvm.dbg.value is far away from the value then iSel may not be able
Nadav Rotem465834c2012-07-24 10:51:42 +0000189 // handle it properly. iSel will drop llvm.dbg.value if it can not
Devang Patel53771ba2011-08-18 00:50:51 +0000190 // find a node corresponding to the value.
191 EverMadeChange |= PlaceDbgValues(F);
192
Chris Lattnerc3748562007-04-02 01:35:34 +0000193 bool MadeChange = true;
Chris Lattnerf2836d12007-03-31 04:06:36 +0000194 while (MadeChange) {
195 MadeChange = false;
Hans Wennborg02fbc712012-09-19 07:48:16 +0000196 for (Function::iterator I = F.begin(); I != F.end(); ) {
Evan Cheng0663f232011-03-21 01:19:09 +0000197 BasicBlock *BB = I++;
Chris Lattnerf2836d12007-03-31 04:06:36 +0000198 MadeChange |= OptimizeBlock(*BB);
Evan Cheng0663f232011-03-21 01:19:09 +0000199 }
Chris Lattnerf2836d12007-03-31 04:06:36 +0000200 EverMadeChange |= MadeChange;
201 }
Cameron Zwarichce3b9302011-01-06 00:42:50 +0000202
203 SunkAddrs.clear();
204
Cameron Zwarich338d3622011-03-11 21:52:04 +0000205 if (!DisableBranchOpts) {
206 MadeChange = false;
Bill Wendling97b93592012-03-04 10:46:01 +0000207 SmallPtrSet<BasicBlock*, 8> WorkList;
208 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB) {
209 SmallVector<BasicBlock*, 2> Successors(succ_begin(BB), succ_end(BB));
Frits van Bommelad964552011-05-22 16:24:18 +0000210 MadeChange |= ConstantFoldTerminator(BB, true);
Bill Wendling97b93592012-03-04 10:46:01 +0000211 if (!MadeChange) continue;
212
213 for (SmallVectorImpl<BasicBlock*>::iterator
214 II = Successors.begin(), IE = Successors.end(); II != IE; ++II)
215 if (pred_begin(*II) == pred_end(*II))
216 WorkList.insert(*II);
217 }
218
Bill Wendlingf3614fd2012-11-28 23:23:48 +0000219 // Delete the dead blocks and any of their dead successors.
Bill Wendlingab417b62012-12-06 00:30:20 +0000220 MadeChange |= !WorkList.empty();
Bill Wendlingf3614fd2012-11-28 23:23:48 +0000221 while (!WorkList.empty()) {
222 BasicBlock *BB = *WorkList.begin();
223 WorkList.erase(BB);
224 SmallVector<BasicBlock*, 2> Successors(succ_begin(BB), succ_end(BB));
225
226 DeleteDeadBlock(BB);
Stephen Lin837bba12013-07-15 17:55:02 +0000227
Bill Wendlingf3614fd2012-11-28 23:23:48 +0000228 for (SmallVectorImpl<BasicBlock*>::iterator
229 II = Successors.begin(), IE = Successors.end(); II != IE; ++II)
230 if (pred_begin(*II) == pred_end(*II))
231 WorkList.insert(*II);
232 }
Cameron Zwarich338d3622011-03-11 21:52:04 +0000233
Nadav Rotem70409992012-08-14 05:19:07 +0000234 // Merge pairs of basic blocks with unconditional branches, connected by
235 // a single edge.
236 if (EverMadeChange || MadeChange)
237 MadeChange |= EliminateFallThrough(F);
238
Evan Cheng0663f232011-03-21 01:19:09 +0000239 if (MadeChange)
Devang Patel8f606d72011-03-24 15:35:25 +0000240 ModifiedDT = true;
Cameron Zwarich338d3622011-03-11 21:52:04 +0000241 EverMadeChange |= MadeChange;
242 }
243
Devang Patel8f606d72011-03-24 15:35:25 +0000244 if (ModifiedDT && DT)
Chandler Carruth73523022014-01-13 13:07:17 +0000245 DT->recalculate(F);
Evan Cheng0663f232011-03-21 01:19:09 +0000246
Chris Lattnerf2836d12007-03-31 04:06:36 +0000247 return EverMadeChange;
248}
249
Nadav Rotem70409992012-08-14 05:19:07 +0000250/// EliminateFallThrough - Merge basic blocks which are connected
251/// by a single edge, where one of the basic blocks has a single successor
252/// pointing to the other basic block, which has a single predecessor.
253bool CodeGenPrepare::EliminateFallThrough(Function &F) {
254 bool Changed = false;
255 // Scan all of the blocks in the function, except for the entry block.
Benjamin Kramerb6d0bd42014-03-02 12:27:27 +0000256 for (Function::iterator I = std::next(F.begin()), E = F.end(); I != E;) {
Nadav Rotem70409992012-08-14 05:19:07 +0000257 BasicBlock *BB = I++;
258 // If the destination block has a single pred, then this is a trivial
259 // edge, just collapse it.
260 BasicBlock *SinglePred = BB->getSinglePredecessor();
261
Evan Cheng64a223a2012-09-28 23:58:57 +0000262 // Don't merge if BB's address is taken.
263 if (!SinglePred || SinglePred == BB || BB->hasAddressTaken()) continue;
Nadav Rotem70409992012-08-14 05:19:07 +0000264
265 BranchInst *Term = dyn_cast<BranchInst>(SinglePred->getTerminator());
266 if (Term && !Term->isConditional()) {
267 Changed = true;
Michael Liao6e12d122012-08-21 05:55:22 +0000268 DEBUG(dbgs() << "To merge:\n"<< *SinglePred << "\n\n\n");
Nadav Rotem70409992012-08-14 05:19:07 +0000269 // Remember if SinglePred was the entry block of the function.
270 // If so, we will need to move BB back to the entry position.
271 bool isEntry = SinglePred == &SinglePred->getParent()->getEntryBlock();
272 MergeBasicBlockIntoOnlyPred(BB, this);
273
274 if (isEntry && BB != &BB->getParent()->getEntryBlock())
275 BB->moveBefore(&BB->getParent()->getEntryBlock());
276
277 // We have erased a block. Update the iterator.
278 I = BB;
Nadav Rotem70409992012-08-14 05:19:07 +0000279 }
280 }
281 return Changed;
282}
283
Dale Johannesen4026b042009-03-27 01:13:37 +0000284/// EliminateMostlyEmptyBlocks - eliminate blocks that contain only PHI nodes,
285/// debug info directives, and an unconditional branch. Passes before isel
286/// (e.g. LSR/loopsimplify) often split edges in ways that are non-optimal for
287/// isel. Start by eliminating these blocks so we can split them the way we
288/// want them.
Chris Lattnerc3748562007-04-02 01:35:34 +0000289bool CodeGenPrepare::EliminateMostlyEmptyBlocks(Function &F) {
290 bool MadeChange = false;
291 // Note that this intentionally skips the entry block.
Benjamin Kramerb6d0bd42014-03-02 12:27:27 +0000292 for (Function::iterator I = std::next(F.begin()), E = F.end(); I != E;) {
Chris Lattnerc3748562007-04-02 01:35:34 +0000293 BasicBlock *BB = I++;
294
295 // If this block doesn't end with an uncond branch, ignore it.
296 BranchInst *BI = dyn_cast<BranchInst>(BB->getTerminator());
297 if (!BI || !BI->isUnconditional())
298 continue;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000299
Dale Johannesen4026b042009-03-27 01:13:37 +0000300 // If the instruction before the branch (skipping debug info) isn't a phi
301 // node, then other stuff is happening here.
Chris Lattnerc3748562007-04-02 01:35:34 +0000302 BasicBlock::iterator BBI = BI;
303 if (BBI != BB->begin()) {
304 --BBI;
Dale Johannesen4026b042009-03-27 01:13:37 +0000305 while (isa<DbgInfoIntrinsic>(BBI)) {
306 if (BBI == BB->begin())
307 break;
308 --BBI;
309 }
310 if (!isa<DbgInfoIntrinsic>(BBI) && !isa<PHINode>(BBI))
311 continue;
Chris Lattnerc3748562007-04-02 01:35:34 +0000312 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000313
Chris Lattnerc3748562007-04-02 01:35:34 +0000314 // Do not break infinite loops.
315 BasicBlock *DestBB = BI->getSuccessor(0);
316 if (DestBB == BB)
317 continue;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000318
Chris Lattnerc3748562007-04-02 01:35:34 +0000319 if (!CanMergeBlocks(BB, DestBB))
320 continue;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000321
Chris Lattnerc3748562007-04-02 01:35:34 +0000322 EliminateMostlyEmptyBlock(BB);
323 MadeChange = true;
324 }
325 return MadeChange;
326}
327
328/// CanMergeBlocks - Return true if we can merge BB into DestBB if there is a
329/// single uncond branch between them, and BB contains no other non-phi
330/// instructions.
331bool CodeGenPrepare::CanMergeBlocks(const BasicBlock *BB,
332 const BasicBlock *DestBB) const {
333 // We only want to eliminate blocks whose phi nodes are used by phi nodes in
334 // the successor. If there are more complex condition (e.g. preheaders),
335 // don't mess around with them.
336 BasicBlock::const_iterator BBI = BB->begin();
337 while (const PHINode *PN = dyn_cast<PHINode>(BBI++)) {
Chandler Carruthcdf47882014-03-09 03:16:01 +0000338 for (const User *U : PN->users()) {
339 const Instruction *UI = cast<Instruction>(U);
340 if (UI->getParent() != DestBB || !isa<PHINode>(UI))
Chris Lattnerc3748562007-04-02 01:35:34 +0000341 return false;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000342 // If User is inside DestBB block and it is a PHINode then check
343 // incoming value. If incoming value is not from BB then this is
Devang Pateld3208522007-04-25 00:37:04 +0000344 // a complex condition (e.g. preheaders) we want to avoid here.
Chandler Carruthcdf47882014-03-09 03:16:01 +0000345 if (UI->getParent() == DestBB) {
346 if (const PHINode *UPN = dyn_cast<PHINode>(UI))
Devang Pateld3208522007-04-25 00:37:04 +0000347 for (unsigned I = 0, E = UPN->getNumIncomingValues(); I != E; ++I) {
348 Instruction *Insn = dyn_cast<Instruction>(UPN->getIncomingValue(I));
349 if (Insn && Insn->getParent() == BB &&
350 Insn->getParent() != UPN->getIncomingBlock(I))
351 return false;
352 }
353 }
Chris Lattnerc3748562007-04-02 01:35:34 +0000354 }
355 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000356
Chris Lattnerc3748562007-04-02 01:35:34 +0000357 // If BB and DestBB contain any common predecessors, then the phi nodes in BB
358 // and DestBB may have conflicting incoming values for the block. If so, we
359 // can't merge the block.
360 const PHINode *DestBBPN = dyn_cast<PHINode>(DestBB->begin());
361 if (!DestBBPN) return true; // no conflict.
Eric Christopherc1ea1492008-09-24 05:32:41 +0000362
Chris Lattnerc3748562007-04-02 01:35:34 +0000363 // Collect the preds of BB.
Chris Lattner8201a9b2007-11-06 22:07:40 +0000364 SmallPtrSet<const BasicBlock*, 16> BBPreds;
Chris Lattnerc3748562007-04-02 01:35:34 +0000365 if (const PHINode *BBPN = dyn_cast<PHINode>(BB->begin())) {
366 // It is faster to get preds from a PHI than with pred_iterator.
367 for (unsigned i = 0, e = BBPN->getNumIncomingValues(); i != e; ++i)
368 BBPreds.insert(BBPN->getIncomingBlock(i));
369 } else {
370 BBPreds.insert(pred_begin(BB), pred_end(BB));
371 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000372
Chris Lattnerc3748562007-04-02 01:35:34 +0000373 // Walk the preds of DestBB.
374 for (unsigned i = 0, e = DestBBPN->getNumIncomingValues(); i != e; ++i) {
375 BasicBlock *Pred = DestBBPN->getIncomingBlock(i);
376 if (BBPreds.count(Pred)) { // Common predecessor?
377 BBI = DestBB->begin();
378 while (const PHINode *PN = dyn_cast<PHINode>(BBI++)) {
379 const Value *V1 = PN->getIncomingValueForBlock(Pred);
380 const Value *V2 = PN->getIncomingValueForBlock(BB);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000381
Chris Lattnerc3748562007-04-02 01:35:34 +0000382 // If V2 is a phi node in BB, look up what the mapped value will be.
383 if (const PHINode *V2PN = dyn_cast<PHINode>(V2))
384 if (V2PN->getParent() == BB)
385 V2 = V2PN->getIncomingValueForBlock(Pred);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000386
Chris Lattnerc3748562007-04-02 01:35:34 +0000387 // If there is a conflict, bail out.
388 if (V1 != V2) return false;
389 }
390 }
391 }
392
393 return true;
394}
395
396
397/// EliminateMostlyEmptyBlock - Eliminate a basic block that have only phi's and
398/// an unconditional branch in it.
399void CodeGenPrepare::EliminateMostlyEmptyBlock(BasicBlock *BB) {
400 BranchInst *BI = cast<BranchInst>(BB->getTerminator());
401 BasicBlock *DestBB = BI->getSuccessor(0);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000402
David Greene74e2d492010-01-05 01:27:11 +0000403 DEBUG(dbgs() << "MERGING MOSTLY EMPTY BLOCKS - BEFORE:\n" << *BB << *DestBB);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000404
Chris Lattnerc3748562007-04-02 01:35:34 +0000405 // If the destination block has a single pred, then this is a trivial edge,
406 // just collapse it.
Chris Lattner4059f432008-11-27 19:29:14 +0000407 if (BasicBlock *SinglePred = DestBB->getSinglePredecessor()) {
Chris Lattner8a172da2008-11-28 19:54:49 +0000408 if (SinglePred != DestBB) {
409 // Remember if SinglePred was the entry block of the function. If so, we
410 // will need to move BB back to the entry position.
411 bool isEntry = SinglePred == &SinglePred->getParent()->getEntryBlock();
Andreas Neustifterf8cb7582009-09-16 09:26:52 +0000412 MergeBasicBlockIntoOnlyPred(DestBB, this);
Chris Lattner4059f432008-11-27 19:29:14 +0000413
Chris Lattner8a172da2008-11-28 19:54:49 +0000414 if (isEntry && BB != &BB->getParent()->getEntryBlock())
415 BB->moveBefore(&BB->getParent()->getEntryBlock());
Nadav Rotem465834c2012-07-24 10:51:42 +0000416
David Greene74e2d492010-01-05 01:27:11 +0000417 DEBUG(dbgs() << "AFTER:\n" << *DestBB << "\n\n\n");
Chris Lattner8a172da2008-11-28 19:54:49 +0000418 return;
419 }
Chris Lattnerc3748562007-04-02 01:35:34 +0000420 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000421
Chris Lattnerc3748562007-04-02 01:35:34 +0000422 // Otherwise, we have multiple predecessors of BB. Update the PHIs in DestBB
423 // to handle the new incoming edges it is about to have.
424 PHINode *PN;
425 for (BasicBlock::iterator BBI = DestBB->begin();
426 (PN = dyn_cast<PHINode>(BBI)); ++BBI) {
427 // Remove the incoming value for BB, and remember it.
428 Value *InVal = PN->removeIncomingValue(BB, false);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000429
Chris Lattnerc3748562007-04-02 01:35:34 +0000430 // Two options: either the InVal is a phi node defined in BB or it is some
431 // value that dominates BB.
432 PHINode *InValPhi = dyn_cast<PHINode>(InVal);
433 if (InValPhi && InValPhi->getParent() == BB) {
434 // Add all of the input values of the input PHI as inputs of this phi.
435 for (unsigned i = 0, e = InValPhi->getNumIncomingValues(); i != e; ++i)
436 PN->addIncoming(InValPhi->getIncomingValue(i),
437 InValPhi->getIncomingBlock(i));
438 } else {
439 // Otherwise, add one instance of the dominating value for each edge that
440 // we will be adding.
441 if (PHINode *BBPN = dyn_cast<PHINode>(BB->begin())) {
442 for (unsigned i = 0, e = BBPN->getNumIncomingValues(); i != e; ++i)
443 PN->addIncoming(InVal, BBPN->getIncomingBlock(i));
444 } else {
445 for (pred_iterator PI = pred_begin(BB), E = pred_end(BB); PI != E; ++PI)
446 PN->addIncoming(InVal, *PI);
447 }
448 }
449 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000450
Chris Lattnerc3748562007-04-02 01:35:34 +0000451 // The PHIs are now updated, change everything that refers to BB to use
452 // DestBB and remove BB.
453 BB->replaceAllUsesWith(DestBB);
Devang Patel8f606d72011-03-24 15:35:25 +0000454 if (DT && !ModifiedDT) {
Cameron Zwarich84986b22011-01-08 17:01:52 +0000455 BasicBlock *BBIDom = DT->getNode(BB)->getIDom()->getBlock();
456 BasicBlock *DestBBIDom = DT->getNode(DestBB)->getIDom()->getBlock();
457 BasicBlock *NewIDom = DT->findNearestCommonDominator(BBIDom, DestBBIDom);
458 DT->changeImmediateDominator(DestBB, NewIDom);
459 DT->eraseNode(BB);
460 }
Chris Lattnerc3748562007-04-02 01:35:34 +0000461 BB->eraseFromParent();
Cameron Zwarichced753f2011-01-05 17:27:27 +0000462 ++NumBlocksElim;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000463
David Greene74e2d492010-01-05 01:27:11 +0000464 DEBUG(dbgs() << "AFTER:\n" << *DestBB << "\n\n\n");
Chris Lattnerc3748562007-04-02 01:35:34 +0000465}
466
Manuel Jacoba7c48f92014-03-13 13:36:25 +0000467/// SinkCast - Sink the specified cast instruction into its user blocks
468static bool SinkCast(CastInst *CI) {
Chris Lattnerf2836d12007-03-31 04:06:36 +0000469 BasicBlock *DefBB = CI->getParent();
Eric Christopherc1ea1492008-09-24 05:32:41 +0000470
Chris Lattnerf2836d12007-03-31 04:06:36 +0000471 /// InsertedCasts - Only insert a cast in each block once.
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000472 DenseMap<BasicBlock*, CastInst*> InsertedCasts;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000473
Chris Lattnerf2836d12007-03-31 04:06:36 +0000474 bool MadeChange = false;
Chandler Carruthcdf47882014-03-09 03:16:01 +0000475 for (Value::user_iterator UI = CI->user_begin(), E = CI->user_end();
Chris Lattnerf2836d12007-03-31 04:06:36 +0000476 UI != E; ) {
477 Use &TheUse = UI.getUse();
478 Instruction *User = cast<Instruction>(*UI);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000479
Chris Lattnerf2836d12007-03-31 04:06:36 +0000480 // Figure out which BB this cast is used in. For PHI's this is the
481 // appropriate predecessor block.
482 BasicBlock *UserBB = User->getParent();
483 if (PHINode *PN = dyn_cast<PHINode>(User)) {
Chandler Carruthcdf47882014-03-09 03:16:01 +0000484 UserBB = PN->getIncomingBlock(TheUse);
Chris Lattnerf2836d12007-03-31 04:06:36 +0000485 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000486
Chris Lattnerf2836d12007-03-31 04:06:36 +0000487 // Preincrement use iterator so we don't invalidate it.
488 ++UI;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000489
Chris Lattnerf2836d12007-03-31 04:06:36 +0000490 // If this user is in the same block as the cast, don't change the cast.
491 if (UserBB == DefBB) continue;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000492
Chris Lattnerf2836d12007-03-31 04:06:36 +0000493 // If we have already inserted a cast into this block, use it.
494 CastInst *&InsertedCast = InsertedCasts[UserBB];
495
496 if (!InsertedCast) {
Bill Wendling8ddfc092011-08-16 20:45:24 +0000497 BasicBlock::iterator InsertPt = UserBB->getFirstInsertionPt();
Eric Christopherc1ea1492008-09-24 05:32:41 +0000498 InsertedCast =
499 CastInst::Create(CI->getOpcode(), CI->getOperand(0), CI->getType(), "",
Chris Lattnerf2836d12007-03-31 04:06:36 +0000500 InsertPt);
501 MadeChange = true;
502 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000503
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000504 // Replace a use of the cast with a use of the new cast.
Chris Lattnerf2836d12007-03-31 04:06:36 +0000505 TheUse = InsertedCast;
Cameron Zwarichced753f2011-01-05 17:27:27 +0000506 ++NumCastUses;
Chris Lattnerf2836d12007-03-31 04:06:36 +0000507 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000508
Chris Lattnerf2836d12007-03-31 04:06:36 +0000509 // If we removed all uses, nuke the cast.
Duncan Sandsafa84da42008-01-20 16:51:46 +0000510 if (CI->use_empty()) {
Chris Lattnerf2836d12007-03-31 04:06:36 +0000511 CI->eraseFromParent();
Duncan Sandsafa84da42008-01-20 16:51:46 +0000512 MadeChange = true;
513 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000514
Chris Lattnerf2836d12007-03-31 04:06:36 +0000515 return MadeChange;
516}
517
Manuel Jacoba7c48f92014-03-13 13:36:25 +0000518/// OptimizeNoopCopyExpression - If the specified cast instruction is a noop
519/// copy (e.g. it's casting from one pointer type to another, i32->i8 on PPC),
520/// sink it into user blocks to reduce the number of virtual
521/// registers that must be created and coalesced.
522///
523/// Return true if any changes are made.
524///
525static bool OptimizeNoopCopyExpression(CastInst *CI, const TargetLowering &TLI){
526 // If this is a noop copy,
527 EVT SrcVT = TLI.getValueType(CI->getOperand(0)->getType());
528 EVT DstVT = TLI.getValueType(CI->getType());
529
530 // This is an fp<->int conversion?
531 if (SrcVT.isInteger() != DstVT.isInteger())
532 return false;
533
534 // If this is an extension, it will be a zero or sign extension, which
535 // isn't a noop.
536 if (SrcVT.bitsLT(DstVT)) return false;
537
538 // If these values will be promoted, find out what they will be promoted
539 // to. This helps us consider truncates on PPC as noop copies when they
540 // are.
541 if (TLI.getTypeAction(CI->getContext(), SrcVT) ==
542 TargetLowering::TypePromoteInteger)
543 SrcVT = TLI.getTypeToTransformTo(CI->getContext(), SrcVT);
544 if (TLI.getTypeAction(CI->getContext(), DstVT) ==
545 TargetLowering::TypePromoteInteger)
546 DstVT = TLI.getTypeToTransformTo(CI->getContext(), DstVT);
547
548 // If, after promotion, these are the same types, this is a noop copy.
549 if (SrcVT != DstVT)
550 return false;
551
552 return SinkCast(CI);
553}
554
Eric Christopherc1ea1492008-09-24 05:32:41 +0000555/// OptimizeCmpExpression - sink the given CmpInst into user blocks to reduce
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000556/// the number of virtual registers that must be created and coalesced. This is
Chris Lattner27406942007-08-02 16:53:43 +0000557/// a clear win except on targets with multiple condition code registers
558/// (PowerPC), where it might lose; some adjustment may be wanted there.
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000559///
560/// Return true if any changes are made.
Chris Lattner6416a6b2008-11-24 22:44:16 +0000561static bool OptimizeCmpExpression(CmpInst *CI) {
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000562 BasicBlock *DefBB = CI->getParent();
Eric Christopherc1ea1492008-09-24 05:32:41 +0000563
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000564 /// InsertedCmp - Only insert a cmp in each block once.
565 DenseMap<BasicBlock*, CmpInst*> InsertedCmps;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000566
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000567 bool MadeChange = false;
Chandler Carruthcdf47882014-03-09 03:16:01 +0000568 for (Value::user_iterator UI = CI->user_begin(), E = CI->user_end();
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000569 UI != E; ) {
570 Use &TheUse = UI.getUse();
571 Instruction *User = cast<Instruction>(*UI);
Eric Christopherc1ea1492008-09-24 05:32:41 +0000572
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000573 // Preincrement use iterator so we don't invalidate it.
574 ++UI;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000575
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000576 // Don't bother for PHI nodes.
577 if (isa<PHINode>(User))
578 continue;
579
580 // Figure out which BB this cmp is used in.
581 BasicBlock *UserBB = User->getParent();
Eric Christopherc1ea1492008-09-24 05:32:41 +0000582
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000583 // If this user is in the same block as the cmp, don't change the cmp.
584 if (UserBB == DefBB) continue;
Eric Christopherc1ea1492008-09-24 05:32:41 +0000585
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000586 // If we have already inserted a cmp into this block, use it.
587 CmpInst *&InsertedCmp = InsertedCmps[UserBB];
588
589 if (!InsertedCmp) {
Bill Wendling8ddfc092011-08-16 20:45:24 +0000590 BasicBlock::iterator InsertPt = UserBB->getFirstInsertionPt();
Eric Christopherc1ea1492008-09-24 05:32:41 +0000591 InsertedCmp =
Dan Gohmanad1f0a12009-08-25 23:17:54 +0000592 CmpInst::Create(CI->getOpcode(),
Owen Anderson1e5f00e2009-07-09 23:48:35 +0000593 CI->getPredicate(), CI->getOperand(0),
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000594 CI->getOperand(1), "", InsertPt);
595 MadeChange = true;
596 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000597
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000598 // Replace a use of the cmp with a use of the new cmp.
599 TheUse = InsertedCmp;
Cameron Zwarichced753f2011-01-05 17:27:27 +0000600 ++NumCmpUses;
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000601 }
Eric Christopherc1ea1492008-09-24 05:32:41 +0000602
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000603 // If we removed all uses, nuke the cmp.
604 if (CI->use_empty())
605 CI->eraseFromParent();
Eric Christopherc1ea1492008-09-24 05:32:41 +0000606
Dale Johannesenedfec0b2007-06-12 16:50:17 +0000607 return MadeChange;
608}
609
Benjamin Kramer7b88a492010-03-12 09:27:41 +0000610namespace {
611class CodeGenPrepareFortifiedLibCalls : public SimplifyFortifiedLibCalls {
612protected:
Craig Topper4584cd52014-03-07 09:26:03 +0000613 void replaceCall(Value *With) override {
Benjamin Kramer7b88a492010-03-12 09:27:41 +0000614 CI->replaceAllUsesWith(With);
615 CI->eraseFromParent();
616 }
Craig Topper4584cd52014-03-07 09:26:03 +0000617 bool isFoldable(unsigned SizeCIOp, unsigned, bool) const override {
Gabor Greif6d673952010-07-16 09:38:02 +0000618 if (ConstantInt *SizeCI =
619 dyn_cast<ConstantInt>(CI->getArgOperand(SizeCIOp)))
620 return SizeCI->isAllOnesValue();
Benjamin Kramer7b88a492010-03-12 09:27:41 +0000621 return false;
622 }
623};
624} // end anonymous namespace
625
Eric Christopher4b7948e2010-03-11 02:41:03 +0000626bool CodeGenPrepare::OptimizeCallInst(CallInst *CI) {
Chris Lattner7a277142011-01-15 07:14:54 +0000627 BasicBlock *BB = CI->getParent();
Nadav Rotem465834c2012-07-24 10:51:42 +0000628
Chris Lattner7a277142011-01-15 07:14:54 +0000629 // Lower inline assembly if we can.
630 // If we found an inline asm expession, and if the target knows how to
631 // lower it to normal LLVM code, do so now.
632 if (TLI && isa<InlineAsm>(CI->getCalledValue())) {
633 if (TLI->ExpandInlineAsm(CI)) {
634 // Avoid invalidating the iterator.
635 CurInstIterator = BB->begin();
636 // Avoid processing instructions out of order, which could cause
637 // reuse before a value is defined.
638 SunkAddrs.clear();
639 return true;
640 }
641 // Sink address computing for memory operands into the block.
642 if (OptimizeInlineAsmInst(CI))
643 return true;
644 }
Nadav Rotem465834c2012-07-24 10:51:42 +0000645
Eric Christopher4b7948e2010-03-11 02:41:03 +0000646 // Lower all uses of llvm.objectsize.*
647 IntrinsicInst *II = dyn_cast<IntrinsicInst>(CI);
648 if (II && II->getIntrinsicID() == Intrinsic::objectsize) {
Gabor Greif4a39b842010-06-24 00:44:01 +0000649 bool Min = (cast<ConstantInt>(II->getArgOperand(1))->getZExtValue() == 1);
Chris Lattner229907c2011-07-18 04:54:35 +0000650 Type *ReturnTy = CI->getType();
Nadav Rotem465834c2012-07-24 10:51:42 +0000651 Constant *RetVal = ConstantInt::get(ReturnTy, Min ? 0 : -1ULL);
652
Chris Lattner1b93be52011-01-15 07:25:29 +0000653 // Substituting this can cause recursive simplifications, which can
654 // invalidate our iterator. Use a WeakVH to hold onto it in case this
655 // happens.
656 WeakVH IterHandle(CurInstIterator);
Nadav Rotem465834c2012-07-24 10:51:42 +0000657
Micah Villmowcdfe20b2012-10-08 16:38:25 +0000658 replaceAndRecursivelySimplify(CI, RetVal, TLI ? TLI->getDataLayout() : 0,
Chandler Carruthcf1b5852012-03-24 21:11:24 +0000659 TLInfo, ModifiedDT ? 0 : DT);
Chris Lattner1b93be52011-01-15 07:25:29 +0000660
661 // If the iterator instruction was recursively deleted, start over at the
662 // start of the block.
Chris Lattner86d56c62011-01-18 20:53:04 +0000663 if (IterHandle != CurInstIterator) {
Chris Lattner1b93be52011-01-15 07:25:29 +0000664 CurInstIterator = BB->begin();
Chris Lattner86d56c62011-01-18 20:53:04 +0000665 SunkAddrs.clear();
666 }
Eric Christopher4b7948e2010-03-11 02:41:03 +0000667 return true;
668 }
669
Pete Cooper615fd892012-03-13 20:59:56 +0000670 if (II && TLI) {
671 SmallVector<Value*, 2> PtrOps;
672 Type *AccessTy;
673 if (TLI->GetAddrModeArguments(II, PtrOps, AccessTy))
674 while (!PtrOps.empty())
675 if (OptimizeMemoryInst(II, PtrOps.pop_back_val(), AccessTy))
676 return true;
677 }
678
Eric Christopher4b7948e2010-03-11 02:41:03 +0000679 // From here on out we're working with named functions.
680 if (CI->getCalledFunction() == 0) return false;
Devang Patel0da52502011-05-26 21:51:06 +0000681
Micah Villmowcdfe20b2012-10-08 16:38:25 +0000682 // We'll need DataLayout from here on out.
683 const DataLayout *TD = TLI ? TLI->getDataLayout() : 0;
Eric Christopher4b7948e2010-03-11 02:41:03 +0000684 if (!TD) return false;
Nadav Rotem465834c2012-07-24 10:51:42 +0000685
Benjamin Kramer7b88a492010-03-12 09:27:41 +0000686 // Lower all default uses of _chk calls. This is very similar
687 // to what InstCombineCalls does, but here we are only lowering calls
Eric Christopher4b7948e2010-03-11 02:41:03 +0000688 // that have the default "don't know" as the objectsize. Anything else
689 // should be left alone.
Benjamin Kramer7b88a492010-03-12 09:27:41 +0000690 CodeGenPrepareFortifiedLibCalls Simplifier;
Nuno Lopes89702e92012-07-25 16:46:31 +0000691 return Simplifier.fold(CI, TD, TLInfo);
Eric Christopher4b7948e2010-03-11 02:41:03 +0000692}
Chris Lattner1b93be52011-01-15 07:25:29 +0000693
Evan Cheng0663f232011-03-21 01:19:09 +0000694/// DupRetToEnableTailCallOpts - Look for opportunities to duplicate return
695/// instructions to the predecessor to enable tail call optimizations. The
696/// case it is currently looking for is:
Dmitri Gribenko2bc1d482012-09-13 12:34:29 +0000697/// @code
Evan Cheng0663f232011-03-21 01:19:09 +0000698/// bb0:
699/// %tmp0 = tail call i32 @f0()
700/// br label %return
701/// bb1:
702/// %tmp1 = tail call i32 @f1()
703/// br label %return
704/// bb2:
705/// %tmp2 = tail call i32 @f2()
706/// br label %return
707/// return:
708/// %retval = phi i32 [ %tmp0, %bb0 ], [ %tmp1, %bb1 ], [ %tmp2, %bb2 ]
709/// ret i32 %retval
Dmitri Gribenko2bc1d482012-09-13 12:34:29 +0000710/// @endcode
Evan Cheng0663f232011-03-21 01:19:09 +0000711///
712/// =>
713///
Dmitri Gribenko2bc1d482012-09-13 12:34:29 +0000714/// @code
Evan Cheng0663f232011-03-21 01:19:09 +0000715/// bb0:
716/// %tmp0 = tail call i32 @f0()
717/// ret i32 %tmp0
718/// bb1:
719/// %tmp1 = tail call i32 @f1()
720/// ret i32 %tmp1
721/// bb2:
722/// %tmp2 = tail call i32 @f2()
723/// ret i32 %tmp2
Dmitri Gribenko2bc1d482012-09-13 12:34:29 +0000724/// @endcode
Benjamin Kramer455fa352012-11-23 19:17:06 +0000725bool CodeGenPrepare::DupRetToEnableTailCallOpts(BasicBlock *BB) {
Cameron Zwarich47e71752011-03-24 04:51:51 +0000726 if (!TLI)
727 return false;
728
Benjamin Kramer455fa352012-11-23 19:17:06 +0000729 ReturnInst *RI = dyn_cast<ReturnInst>(BB->getTerminator());
730 if (!RI)
731 return false;
732
Evan Cheng249716e2012-07-27 21:21:26 +0000733 PHINode *PN = 0;
734 BitCastInst *BCI = 0;
Evan Cheng0663f232011-03-21 01:19:09 +0000735 Value *V = RI->getReturnValue();
Evan Cheng249716e2012-07-27 21:21:26 +0000736 if (V) {
737 BCI = dyn_cast<BitCastInst>(V);
738 if (BCI)
739 V = BCI->getOperand(0);
740
741 PN = dyn_cast<PHINode>(V);
742 if (!PN)
743 return false;
744 }
Evan Cheng0663f232011-03-21 01:19:09 +0000745
Cameron Zwarich4649f172011-03-24 04:52:10 +0000746 if (PN && PN->getParent() != BB)
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000747 return false;
Evan Cheng0663f232011-03-21 01:19:09 +0000748
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000749 // It's not safe to eliminate the sign / zero extension of the return value.
750 // See llvm::isInTailCallPosition().
751 const Function *F = BB->getParent();
Bill Wendling658d24d2013-01-18 21:53:16 +0000752 AttributeSet CallerAttrs = F->getAttributes();
753 if (CallerAttrs.hasAttribute(AttributeSet::ReturnIndex, Attribute::ZExt) ||
754 CallerAttrs.hasAttribute(AttributeSet::ReturnIndex, Attribute::SExt))
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000755 return false;
Evan Cheng0663f232011-03-21 01:19:09 +0000756
Cameron Zwarich4649f172011-03-24 04:52:10 +0000757 // Make sure there are no instructions between the PHI and return, or that the
758 // return is the first instruction in the block.
759 if (PN) {
760 BasicBlock::iterator BI = BB->begin();
761 do { ++BI; } while (isa<DbgInfoIntrinsic>(BI));
Evan Cheng249716e2012-07-27 21:21:26 +0000762 if (&*BI == BCI)
763 // Also skip over the bitcast.
764 ++BI;
Cameron Zwarich4649f172011-03-24 04:52:10 +0000765 if (&*BI != RI)
766 return false;
767 } else {
Cameron Zwarich74157ab2011-03-24 16:34:59 +0000768 BasicBlock::iterator BI = BB->begin();
769 while (isa<DbgInfoIntrinsic>(BI)) ++BI;
770 if (&*BI != RI)
Cameron Zwarich4649f172011-03-24 04:52:10 +0000771 return false;
772 }
Evan Cheng0663f232011-03-21 01:19:09 +0000773
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000774 /// Only dup the ReturnInst if the CallInst is likely to be emitted as a tail
775 /// call.
776 SmallVector<CallInst*, 4> TailCalls;
Cameron Zwarich4649f172011-03-24 04:52:10 +0000777 if (PN) {
778 for (unsigned I = 0, E = PN->getNumIncomingValues(); I != E; ++I) {
779 CallInst *CI = dyn_cast<CallInst>(PN->getIncomingValue(I));
780 // Make sure the phi value is indeed produced by the tail call.
781 if (CI && CI->hasOneUse() && CI->getParent() == PN->getIncomingBlock(I) &&
782 TLI->mayBeEmittedAsTailCall(CI))
783 TailCalls.push_back(CI);
784 }
785 } else {
786 SmallPtrSet<BasicBlock*, 4> VisitedBBs;
787 for (pred_iterator PI = pred_begin(BB), PE = pred_end(BB); PI != PE; ++PI) {
788 if (!VisitedBBs.insert(*PI))
789 continue;
790
791 BasicBlock::InstListType &InstList = (*PI)->getInstList();
792 BasicBlock::InstListType::reverse_iterator RI = InstList.rbegin();
793 BasicBlock::InstListType::reverse_iterator RE = InstList.rend();
Cameron Zwarich74157ab2011-03-24 16:34:59 +0000794 do { ++RI; } while (RI != RE && isa<DbgInfoIntrinsic>(&*RI));
795 if (RI == RE)
Cameron Zwarich4649f172011-03-24 04:52:10 +0000796 continue;
Cameron Zwarich74157ab2011-03-24 16:34:59 +0000797
Cameron Zwarich4649f172011-03-24 04:52:10 +0000798 CallInst *CI = dyn_cast<CallInst>(&*RI);
Cameron Zwarich2edfe772011-03-24 15:54:11 +0000799 if (CI && CI->use_empty() && TLI->mayBeEmittedAsTailCall(CI))
Cameron Zwarich4649f172011-03-24 04:52:10 +0000800 TailCalls.push_back(CI);
801 }
Evan Cheng0663f232011-03-21 01:19:09 +0000802 }
803
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000804 bool Changed = false;
805 for (unsigned i = 0, e = TailCalls.size(); i != e; ++i) {
806 CallInst *CI = TailCalls[i];
807 CallSite CS(CI);
808
809 // Conservatively require the attributes of the call to match those of the
810 // return. Ignore noalias because it doesn't affect the call sequence.
Bill Wendling658d24d2013-01-18 21:53:16 +0000811 AttributeSet CalleeAttrs = CS.getAttributes();
812 if (AttrBuilder(CalleeAttrs, AttributeSet::ReturnIndex).
Bill Wendling3d7b0b82012-12-19 07:18:57 +0000813 removeAttribute(Attribute::NoAlias) !=
Bill Wendling658d24d2013-01-18 21:53:16 +0000814 AttrBuilder(CalleeAttrs, AttributeSet::ReturnIndex).
Bill Wendling3d7b0b82012-12-19 07:18:57 +0000815 removeAttribute(Attribute::NoAlias))
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000816 continue;
817
818 // Make sure the call instruction is followed by an unconditional branch to
819 // the return block.
820 BasicBlock *CallBB = CI->getParent();
821 BranchInst *BI = dyn_cast<BranchInst>(CallBB->getTerminator());
822 if (!BI || !BI->isUnconditional() || BI->getSuccessor(0) != BB)
823 continue;
824
825 // Duplicate the return into CallBB.
826 (void)FoldReturnIntoUncondBranch(RI, BB, CallBB);
Devang Patel8f606d72011-03-24 15:35:25 +0000827 ModifiedDT = Changed = true;
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000828 ++NumRetsDup;
829 }
830
831 // If we eliminated all predecessors of the block, delete the block now.
Evan Cheng64a223a2012-09-28 23:58:57 +0000832 if (Changed && !BB->hasAddressTaken() && pred_begin(BB) == pred_end(BB))
Cameron Zwarich0e331c02011-03-24 04:52:07 +0000833 BB->eraseFromParent();
834
835 return Changed;
Evan Cheng0663f232011-03-21 01:19:09 +0000836}
837
Chris Lattner728f9022008-11-25 07:09:13 +0000838//===----------------------------------------------------------------------===//
Chris Lattner728f9022008-11-25 07:09:13 +0000839// Memory Optimization
840//===----------------------------------------------------------------------===//
841
Chandler Carruthc8925912013-01-05 02:09:22 +0000842namespace {
843
844/// ExtAddrMode - This is an extended version of TargetLowering::AddrMode
845/// which holds actual Value*'s for register values.
Chandler Carruth95f83e02013-01-07 15:14:13 +0000846struct ExtAddrMode : public TargetLowering::AddrMode {
Chandler Carruthc8925912013-01-05 02:09:22 +0000847 Value *BaseReg;
848 Value *ScaledReg;
849 ExtAddrMode() : BaseReg(0), ScaledReg(0) {}
850 void print(raw_ostream &OS) const;
851 void dump() const;
Stephen Lin837bba12013-07-15 17:55:02 +0000852
Chandler Carruthc8925912013-01-05 02:09:22 +0000853 bool operator==(const ExtAddrMode& O) const {
854 return (BaseReg == O.BaseReg) && (ScaledReg == O.ScaledReg) &&
855 (BaseGV == O.BaseGV) && (BaseOffs == O.BaseOffs) &&
856 (HasBaseReg == O.HasBaseReg) && (Scale == O.Scale);
857 }
858};
859
Eli Friedmanc1f1f852013-09-10 23:09:24 +0000860#ifndef NDEBUG
861static inline raw_ostream &operator<<(raw_ostream &OS, const ExtAddrMode &AM) {
862 AM.print(OS);
863 return OS;
864}
865#endif
866
Chandler Carruthc8925912013-01-05 02:09:22 +0000867void ExtAddrMode::print(raw_ostream &OS) const {
868 bool NeedPlus = false;
869 OS << "[";
870 if (BaseGV) {
871 OS << (NeedPlus ? " + " : "")
872 << "GV:";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +0000873 BaseGV->printAsOperand(OS, /*PrintType=*/false);
Chandler Carruthc8925912013-01-05 02:09:22 +0000874 NeedPlus = true;
875 }
876
877 if (BaseOffs)
878 OS << (NeedPlus ? " + " : "") << BaseOffs, NeedPlus = true;
879
880 if (BaseReg) {
881 OS << (NeedPlus ? " + " : "")
882 << "Base:";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +0000883 BaseReg->printAsOperand(OS, /*PrintType=*/false);
Chandler Carruthc8925912013-01-05 02:09:22 +0000884 NeedPlus = true;
885 }
886 if (Scale) {
887 OS << (NeedPlus ? " + " : "")
888 << Scale << "*";
Chandler Carruthd48cdbf2014-01-09 02:29:41 +0000889 ScaledReg->printAsOperand(OS, /*PrintType=*/false);
Chandler Carruthc8925912013-01-05 02:09:22 +0000890 }
891
892 OS << ']';
893}
894
895#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
896void ExtAddrMode::dump() const {
897 print(dbgs());
898 dbgs() << '\n';
899}
900#endif
901
Quentin Colombet3a4bf042014-02-06 21:44:56 +0000902/// \brief This class provides transaction based operation on the IR.
903/// Every change made through this class is recorded in the internal state and
904/// can be undone (rollback) until commit is called.
905class TypePromotionTransaction {
906
907 /// \brief This represents the common interface of the individual transaction.
908 /// Each class implements the logic for doing one specific modification on
909 /// the IR via the TypePromotionTransaction.
910 class TypePromotionAction {
911 protected:
912 /// The Instruction modified.
913 Instruction *Inst;
914
915 public:
916 /// \brief Constructor of the action.
917 /// The constructor performs the related action on the IR.
918 TypePromotionAction(Instruction *Inst) : Inst(Inst) {}
919
920 virtual ~TypePromotionAction() {}
921
922 /// \brief Undo the modification done by this action.
923 /// When this method is called, the IR must be in the same state as it was
924 /// before this action was applied.
925 /// \pre Undoing the action works if and only if the IR is in the exact same
926 /// state as it was directly after this action was applied.
927 virtual void undo() = 0;
928
929 /// \brief Advocate every change made by this action.
930 /// When the results on the IR of the action are to be kept, it is important
931 /// to call this function, otherwise hidden information may be kept forever.
932 virtual void commit() {
933 // Nothing to be done, this action is not doing anything.
934 }
935 };
936
937 /// \brief Utility to remember the position of an instruction.
938 class InsertionHandler {
939 /// Position of an instruction.
940 /// Either an instruction:
941 /// - Is the first in a basic block: BB is used.
942 /// - Has a previous instructon: PrevInst is used.
943 union {
944 Instruction *PrevInst;
945 BasicBlock *BB;
946 } Point;
947 /// Remember whether or not the instruction had a previous instruction.
948 bool HasPrevInstruction;
949
950 public:
951 /// \brief Record the position of \p Inst.
952 InsertionHandler(Instruction *Inst) {
953 BasicBlock::iterator It = Inst;
954 HasPrevInstruction = (It != (Inst->getParent()->begin()));
955 if (HasPrevInstruction)
956 Point.PrevInst = --It;
957 else
958 Point.BB = Inst->getParent();
959 }
960
961 /// \brief Insert \p Inst at the recorded position.
962 void insert(Instruction *Inst) {
963 if (HasPrevInstruction) {
964 if (Inst->getParent())
965 Inst->removeFromParent();
966 Inst->insertAfter(Point.PrevInst);
967 } else {
968 Instruction *Position = Point.BB->getFirstInsertionPt();
969 if (Inst->getParent())
970 Inst->moveBefore(Position);
971 else
972 Inst->insertBefore(Position);
973 }
974 }
975 };
976
977 /// \brief Move an instruction before another.
978 class InstructionMoveBefore : public TypePromotionAction {
979 /// Original position of the instruction.
980 InsertionHandler Position;
981
982 public:
983 /// \brief Move \p Inst before \p Before.
984 InstructionMoveBefore(Instruction *Inst, Instruction *Before)
985 : TypePromotionAction(Inst), Position(Inst) {
986 DEBUG(dbgs() << "Do: move: " << *Inst << "\nbefore: " << *Before << "\n");
987 Inst->moveBefore(Before);
988 }
989
990 /// \brief Move the instruction back to its original position.
Craig Topper4584cd52014-03-07 09:26:03 +0000991 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +0000992 DEBUG(dbgs() << "Undo: moveBefore: " << *Inst << "\n");
993 Position.insert(Inst);
994 }
995 };
996
997 /// \brief Set the operand of an instruction with a new value.
998 class OperandSetter : public TypePromotionAction {
999 /// Original operand of the instruction.
1000 Value *Origin;
1001 /// Index of the modified instruction.
1002 unsigned Idx;
1003
1004 public:
1005 /// \brief Set \p Idx operand of \p Inst with \p NewVal.
1006 OperandSetter(Instruction *Inst, unsigned Idx, Value *NewVal)
1007 : TypePromotionAction(Inst), Idx(Idx) {
1008 DEBUG(dbgs() << "Do: setOperand: " << Idx << "\n"
1009 << "for:" << *Inst << "\n"
1010 << "with:" << *NewVal << "\n");
1011 Origin = Inst->getOperand(Idx);
1012 Inst->setOperand(Idx, NewVal);
1013 }
1014
1015 /// \brief Restore the original value of the instruction.
Craig Topper4584cd52014-03-07 09:26:03 +00001016 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001017 DEBUG(dbgs() << "Undo: setOperand:" << Idx << "\n"
1018 << "for: " << *Inst << "\n"
1019 << "with: " << *Origin << "\n");
1020 Inst->setOperand(Idx, Origin);
1021 }
1022 };
1023
1024 /// \brief Hide the operands of an instruction.
1025 /// Do as if this instruction was not using any of its operands.
1026 class OperandsHider : public TypePromotionAction {
1027 /// The list of original operands.
1028 SmallVector<Value *, 4> OriginalValues;
1029
1030 public:
1031 /// \brief Remove \p Inst from the uses of the operands of \p Inst.
1032 OperandsHider(Instruction *Inst) : TypePromotionAction(Inst) {
1033 DEBUG(dbgs() << "Do: OperandsHider: " << *Inst << "\n");
1034 unsigned NumOpnds = Inst->getNumOperands();
1035 OriginalValues.reserve(NumOpnds);
1036 for (unsigned It = 0; It < NumOpnds; ++It) {
1037 // Save the current operand.
1038 Value *Val = Inst->getOperand(It);
1039 OriginalValues.push_back(Val);
1040 // Set a dummy one.
1041 // We could use OperandSetter here, but that would implied an overhead
1042 // that we are not willing to pay.
1043 Inst->setOperand(It, UndefValue::get(Val->getType()));
1044 }
1045 }
1046
1047 /// \brief Restore the original list of uses.
Craig Topper4584cd52014-03-07 09:26:03 +00001048 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001049 DEBUG(dbgs() << "Undo: OperandsHider: " << *Inst << "\n");
1050 for (unsigned It = 0, EndIt = OriginalValues.size(); It != EndIt; ++It)
1051 Inst->setOperand(It, OriginalValues[It]);
1052 }
1053 };
1054
1055 /// \brief Build a truncate instruction.
1056 class TruncBuilder : public TypePromotionAction {
1057 public:
1058 /// \brief Build a truncate instruction of \p Opnd producing a \p Ty
1059 /// result.
1060 /// trunc Opnd to Ty.
1061 TruncBuilder(Instruction *Opnd, Type *Ty) : TypePromotionAction(Opnd) {
1062 IRBuilder<> Builder(Opnd);
1063 Inst = cast<Instruction>(Builder.CreateTrunc(Opnd, Ty, "promoted"));
1064 DEBUG(dbgs() << "Do: TruncBuilder: " << *Inst << "\n");
1065 }
1066
1067 /// \brief Get the built instruction.
1068 Instruction *getBuiltInstruction() { return Inst; }
1069
1070 /// \brief Remove the built instruction.
Craig Topper4584cd52014-03-07 09:26:03 +00001071 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001072 DEBUG(dbgs() << "Undo: TruncBuilder: " << *Inst << "\n");
1073 Inst->eraseFromParent();
1074 }
1075 };
1076
1077 /// \brief Build a sign extension instruction.
1078 class SExtBuilder : public TypePromotionAction {
1079 public:
1080 /// \brief Build a sign extension instruction of \p Opnd producing a \p Ty
1081 /// result.
1082 /// sext Opnd to Ty.
1083 SExtBuilder(Instruction *InsertPt, Value *Opnd, Type *Ty)
1084 : TypePromotionAction(Inst) {
1085 IRBuilder<> Builder(InsertPt);
1086 Inst = cast<Instruction>(Builder.CreateSExt(Opnd, Ty, "promoted"));
1087 DEBUG(dbgs() << "Do: SExtBuilder: " << *Inst << "\n");
1088 }
1089
1090 /// \brief Get the built instruction.
1091 Instruction *getBuiltInstruction() { return Inst; }
1092
1093 /// \brief Remove the built instruction.
Craig Topper4584cd52014-03-07 09:26:03 +00001094 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001095 DEBUG(dbgs() << "Undo: SExtBuilder: " << *Inst << "\n");
1096 Inst->eraseFromParent();
1097 }
1098 };
1099
1100 /// \brief Mutate an instruction to another type.
1101 class TypeMutator : public TypePromotionAction {
1102 /// Record the original type.
1103 Type *OrigTy;
1104
1105 public:
1106 /// \brief Mutate the type of \p Inst into \p NewTy.
1107 TypeMutator(Instruction *Inst, Type *NewTy)
1108 : TypePromotionAction(Inst), OrigTy(Inst->getType()) {
1109 DEBUG(dbgs() << "Do: MutateType: " << *Inst << " with " << *NewTy
1110 << "\n");
1111 Inst->mutateType(NewTy);
1112 }
1113
1114 /// \brief Mutate the instruction back to its original type.
Craig Topper4584cd52014-03-07 09:26:03 +00001115 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001116 DEBUG(dbgs() << "Undo: MutateType: " << *Inst << " with " << *OrigTy
1117 << "\n");
1118 Inst->mutateType(OrigTy);
1119 }
1120 };
1121
1122 /// \brief Replace the uses of an instruction by another instruction.
1123 class UsesReplacer : public TypePromotionAction {
1124 /// Helper structure to keep track of the replaced uses.
1125 struct InstructionAndIdx {
1126 /// The instruction using the instruction.
1127 Instruction *Inst;
1128 /// The index where this instruction is used for Inst.
1129 unsigned Idx;
1130 InstructionAndIdx(Instruction *Inst, unsigned Idx)
1131 : Inst(Inst), Idx(Idx) {}
1132 };
1133
1134 /// Keep track of the original uses (pair Instruction, Index).
1135 SmallVector<InstructionAndIdx, 4> OriginalUses;
1136 typedef SmallVectorImpl<InstructionAndIdx>::iterator use_iterator;
1137
1138 public:
1139 /// \brief Replace all the use of \p Inst by \p New.
1140 UsesReplacer(Instruction *Inst, Value *New) : TypePromotionAction(Inst) {
1141 DEBUG(dbgs() << "Do: UsersReplacer: " << *Inst << " with " << *New
1142 << "\n");
1143 // Record the original uses.
Chandler Carruthcdf47882014-03-09 03:16:01 +00001144 for (Use &U : Inst->uses()) {
1145 Instruction *UserI = cast<Instruction>(U.getUser());
1146 OriginalUses.push_back(InstructionAndIdx(UserI, U.getOperandNo()));
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001147 }
1148 // Now, we can replace the uses.
1149 Inst->replaceAllUsesWith(New);
1150 }
1151
1152 /// \brief Reassign the original uses of Inst to Inst.
Craig Topper4584cd52014-03-07 09:26:03 +00001153 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001154 DEBUG(dbgs() << "Undo: UsersReplacer: " << *Inst << "\n");
1155 for (use_iterator UseIt = OriginalUses.begin(),
1156 EndIt = OriginalUses.end();
1157 UseIt != EndIt; ++UseIt) {
1158 UseIt->Inst->setOperand(UseIt->Idx, Inst);
1159 }
1160 }
1161 };
1162
1163 /// \brief Remove an instruction from the IR.
1164 class InstructionRemover : public TypePromotionAction {
1165 /// Original position of the instruction.
1166 InsertionHandler Inserter;
1167 /// Helper structure to hide all the link to the instruction. In other
1168 /// words, this helps to do as if the instruction was removed.
1169 OperandsHider Hider;
1170 /// Keep track of the uses replaced, if any.
1171 UsesReplacer *Replacer;
1172
1173 public:
1174 /// \brief Remove all reference of \p Inst and optinally replace all its
1175 /// uses with New.
1176 /// \pre If !Inst->use_empty(), then New != NULL
1177 InstructionRemover(Instruction *Inst, Value *New = NULL)
1178 : TypePromotionAction(Inst), Inserter(Inst), Hider(Inst),
1179 Replacer(NULL) {
1180 if (New)
1181 Replacer = new UsesReplacer(Inst, New);
1182 DEBUG(dbgs() << "Do: InstructionRemover: " << *Inst << "\n");
1183 Inst->removeFromParent();
1184 }
1185
1186 ~InstructionRemover() { delete Replacer; }
1187
1188 /// \brief Really remove the instruction.
Craig Topper4584cd52014-03-07 09:26:03 +00001189 void commit() override { delete Inst; }
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001190
1191 /// \brief Resurrect the instruction and reassign it to the proper uses if
1192 /// new value was provided when build this action.
Craig Topper4584cd52014-03-07 09:26:03 +00001193 void undo() override {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001194 DEBUG(dbgs() << "Undo: InstructionRemover: " << *Inst << "\n");
1195 Inserter.insert(Inst);
1196 if (Replacer)
1197 Replacer->undo();
1198 Hider.undo();
1199 }
1200 };
1201
1202public:
1203 /// Restoration point.
1204 /// The restoration point is a pointer to an action instead of an iterator
1205 /// because the iterator may be invalidated but not the pointer.
1206 typedef const TypePromotionAction *ConstRestorationPt;
1207 /// Advocate every changes made in that transaction.
1208 void commit();
1209 /// Undo all the changes made after the given point.
1210 void rollback(ConstRestorationPt Point);
1211 /// Get the current restoration point.
1212 ConstRestorationPt getRestorationPoint() const;
1213
1214 /// \name API for IR modification with state keeping to support rollback.
1215 /// @{
1216 /// Same as Instruction::setOperand.
1217 void setOperand(Instruction *Inst, unsigned Idx, Value *NewVal);
1218 /// Same as Instruction::eraseFromParent.
1219 void eraseInstruction(Instruction *Inst, Value *NewVal = NULL);
1220 /// Same as Value::replaceAllUsesWith.
1221 void replaceAllUsesWith(Instruction *Inst, Value *New);
1222 /// Same as Value::mutateType.
1223 void mutateType(Instruction *Inst, Type *NewTy);
1224 /// Same as IRBuilder::createTrunc.
1225 Instruction *createTrunc(Instruction *Opnd, Type *Ty);
1226 /// Same as IRBuilder::createSExt.
1227 Instruction *createSExt(Instruction *Inst, Value *Opnd, Type *Ty);
1228 /// Same as Instruction::moveBefore.
1229 void moveBefore(Instruction *Inst, Instruction *Before);
1230 /// @}
1231
1232 ~TypePromotionTransaction();
1233
1234private:
1235 /// The ordered list of actions made so far.
1236 SmallVector<TypePromotionAction *, 16> Actions;
1237 typedef SmallVectorImpl<TypePromotionAction *>::iterator CommitPt;
1238};
1239
1240void TypePromotionTransaction::setOperand(Instruction *Inst, unsigned Idx,
1241 Value *NewVal) {
1242 Actions.push_back(
1243 new TypePromotionTransaction::OperandSetter(Inst, Idx, NewVal));
1244}
1245
1246void TypePromotionTransaction::eraseInstruction(Instruction *Inst,
1247 Value *NewVal) {
1248 Actions.push_back(
1249 new TypePromotionTransaction::InstructionRemover(Inst, NewVal));
1250}
1251
1252void TypePromotionTransaction::replaceAllUsesWith(Instruction *Inst,
1253 Value *New) {
1254 Actions.push_back(new TypePromotionTransaction::UsesReplacer(Inst, New));
1255}
1256
1257void TypePromotionTransaction::mutateType(Instruction *Inst, Type *NewTy) {
1258 Actions.push_back(new TypePromotionTransaction::TypeMutator(Inst, NewTy));
1259}
1260
1261Instruction *TypePromotionTransaction::createTrunc(Instruction *Opnd,
1262 Type *Ty) {
1263 TruncBuilder *TB = new TruncBuilder(Opnd, Ty);
1264 Actions.push_back(TB);
1265 return TB->getBuiltInstruction();
1266}
1267
1268Instruction *TypePromotionTransaction::createSExt(Instruction *Inst,
1269 Value *Opnd, Type *Ty) {
1270 SExtBuilder *SB = new SExtBuilder(Inst, Opnd, Ty);
1271 Actions.push_back(SB);
1272 return SB->getBuiltInstruction();
1273}
1274
1275void TypePromotionTransaction::moveBefore(Instruction *Inst,
1276 Instruction *Before) {
1277 Actions.push_back(
1278 new TypePromotionTransaction::InstructionMoveBefore(Inst, Before));
1279}
1280
1281TypePromotionTransaction::ConstRestorationPt
1282TypePromotionTransaction::getRestorationPoint() const {
1283 return Actions.rbegin() != Actions.rend() ? *Actions.rbegin() : NULL;
1284}
1285
1286void TypePromotionTransaction::commit() {
1287 for (CommitPt It = Actions.begin(), EndIt = Actions.end(); It != EndIt;
1288 ++It) {
1289 (*It)->commit();
1290 delete *It;
1291 }
1292 Actions.clear();
1293}
1294
1295void TypePromotionTransaction::rollback(
1296 TypePromotionTransaction::ConstRestorationPt Point) {
1297 while (!Actions.empty() && Point != (*Actions.rbegin())) {
1298 TypePromotionAction *Curr = Actions.pop_back_val();
1299 Curr->undo();
1300 delete Curr;
1301 }
1302}
1303
1304TypePromotionTransaction::~TypePromotionTransaction() {
1305 for (CommitPt It = Actions.begin(), EndIt = Actions.end(); It != EndIt; ++It)
1306 delete *It;
1307 Actions.clear();
1308}
Chandler Carruthc8925912013-01-05 02:09:22 +00001309
1310/// \brief A helper class for matching addressing modes.
1311///
1312/// This encapsulates the logic for matching the target-legal addressing modes.
1313class AddressingModeMatcher {
1314 SmallVectorImpl<Instruction*> &AddrModeInsts;
1315 const TargetLowering &TLI;
1316
1317 /// AccessTy/MemoryInst - This is the type for the access (e.g. double) and
1318 /// the memory instruction that we're computing this address for.
1319 Type *AccessTy;
1320 Instruction *MemoryInst;
Stephen Lin837bba12013-07-15 17:55:02 +00001321
Chandler Carruthc8925912013-01-05 02:09:22 +00001322 /// AddrMode - This is the addressing mode that we're building up. This is
1323 /// part of the return value of this addressing mode matching stuff.
1324 ExtAddrMode &AddrMode;
Stephen Lin837bba12013-07-15 17:55:02 +00001325
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001326 /// The truncate instruction inserted by other CodeGenPrepare optimizations.
1327 const SetOfInstrs &InsertedTruncs;
1328 /// A map from the instructions to their type before promotion.
1329 InstrToOrigTy &PromotedInsts;
1330 /// The ongoing transaction where every action should be registered.
1331 TypePromotionTransaction &TPT;
1332
Chandler Carruthc8925912013-01-05 02:09:22 +00001333 /// IgnoreProfitability - This is set to true when we should not do
1334 /// profitability checks. When true, IsProfitableToFoldIntoAddressingMode
1335 /// always returns true.
1336 bool IgnoreProfitability;
Stephen Lin837bba12013-07-15 17:55:02 +00001337
Chandler Carruthc8925912013-01-05 02:09:22 +00001338 AddressingModeMatcher(SmallVectorImpl<Instruction*> &AMI,
1339 const TargetLowering &T, Type *AT,
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001340 Instruction *MI, ExtAddrMode &AM,
1341 const SetOfInstrs &InsertedTruncs,
1342 InstrToOrigTy &PromotedInsts,
1343 TypePromotionTransaction &TPT)
1344 : AddrModeInsts(AMI), TLI(T), AccessTy(AT), MemoryInst(MI), AddrMode(AM),
1345 InsertedTruncs(InsertedTruncs), PromotedInsts(PromotedInsts), TPT(TPT) {
Chandler Carruthc8925912013-01-05 02:09:22 +00001346 IgnoreProfitability = false;
1347 }
1348public:
Stephen Lin837bba12013-07-15 17:55:02 +00001349
Chandler Carruthc8925912013-01-05 02:09:22 +00001350 /// Match - Find the maximal addressing mode that a load/store of V can fold,
1351 /// give an access type of AccessTy. This returns a list of involved
1352 /// instructions in AddrModeInsts.
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001353 /// \p InsertedTruncs The truncate instruction inserted by other
1354 /// CodeGenPrepare
1355 /// optimizations.
1356 /// \p PromotedInsts maps the instructions to their type before promotion.
1357 /// \p The ongoing transaction where every action should be registered.
Chandler Carruthc8925912013-01-05 02:09:22 +00001358 static ExtAddrMode Match(Value *V, Type *AccessTy,
1359 Instruction *MemoryInst,
1360 SmallVectorImpl<Instruction*> &AddrModeInsts,
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001361 const TargetLowering &TLI,
1362 const SetOfInstrs &InsertedTruncs,
1363 InstrToOrigTy &PromotedInsts,
1364 TypePromotionTransaction &TPT) {
Chandler Carruthc8925912013-01-05 02:09:22 +00001365 ExtAddrMode Result;
1366
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001367 bool Success = AddressingModeMatcher(AddrModeInsts, TLI, AccessTy,
1368 MemoryInst, Result, InsertedTruncs,
1369 PromotedInsts, TPT).MatchAddr(V, 0);
Chandler Carruthc8925912013-01-05 02:09:22 +00001370 (void)Success; assert(Success && "Couldn't select *anything*?");
1371 return Result;
1372 }
1373private:
1374 bool MatchScaledValue(Value *ScaleReg, int64_t Scale, unsigned Depth);
1375 bool MatchAddr(Value *V, unsigned Depth);
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001376 bool MatchOperationAddr(User *Operation, unsigned Opcode, unsigned Depth,
1377 bool *MovedAway = NULL);
Chandler Carruthc8925912013-01-05 02:09:22 +00001378 bool IsProfitableToFoldIntoAddressingMode(Instruction *I,
1379 ExtAddrMode &AMBefore,
1380 ExtAddrMode &AMAfter);
1381 bool ValueAlreadyLiveAtInst(Value *Val, Value *KnownLive1, Value *KnownLive2);
Quentin Colombet867c5502014-02-14 22:23:22 +00001382 bool IsPromotionProfitable(unsigned MatchedSize, unsigned SizeWithPromotion,
1383 Value *PromotedOperand) const;
Chandler Carruthc8925912013-01-05 02:09:22 +00001384};
1385
1386/// MatchScaledValue - Try adding ScaleReg*Scale to the current addressing mode.
1387/// Return true and update AddrMode if this addr mode is legal for the target,
1388/// false if not.
1389bool AddressingModeMatcher::MatchScaledValue(Value *ScaleReg, int64_t Scale,
1390 unsigned Depth) {
1391 // If Scale is 1, then this is the same as adding ScaleReg to the addressing
1392 // mode. Just process that directly.
1393 if (Scale == 1)
1394 return MatchAddr(ScaleReg, Depth);
Stephen Lin837bba12013-07-15 17:55:02 +00001395
Chandler Carruthc8925912013-01-05 02:09:22 +00001396 // If the scale is 0, it takes nothing to add this.
1397 if (Scale == 0)
1398 return true;
Stephen Lin837bba12013-07-15 17:55:02 +00001399
Chandler Carruthc8925912013-01-05 02:09:22 +00001400 // If we already have a scale of this value, we can add to it, otherwise, we
1401 // need an available scale field.
1402 if (AddrMode.Scale != 0 && AddrMode.ScaledReg != ScaleReg)
1403 return false;
1404
1405 ExtAddrMode TestAddrMode = AddrMode;
1406
1407 // Add scale to turn X*4+X*3 -> X*7. This could also do things like
1408 // [A+B + A*7] -> [B+A*8].
1409 TestAddrMode.Scale += Scale;
1410 TestAddrMode.ScaledReg = ScaleReg;
1411
1412 // If the new address isn't legal, bail out.
1413 if (!TLI.isLegalAddressingMode(TestAddrMode, AccessTy))
1414 return false;
1415
1416 // It was legal, so commit it.
1417 AddrMode = TestAddrMode;
Stephen Lin837bba12013-07-15 17:55:02 +00001418
Chandler Carruthc8925912013-01-05 02:09:22 +00001419 // Okay, we decided that we can add ScaleReg+Scale to AddrMode. Check now
1420 // to see if ScaleReg is actually X+C. If so, we can turn this into adding
1421 // X*Scale + C*Scale to addr mode.
1422 ConstantInt *CI = 0; Value *AddLHS = 0;
1423 if (isa<Instruction>(ScaleReg) && // not a constant expr.
1424 match(ScaleReg, m_Add(m_Value(AddLHS), m_ConstantInt(CI)))) {
1425 TestAddrMode.ScaledReg = AddLHS;
1426 TestAddrMode.BaseOffs += CI->getSExtValue()*TestAddrMode.Scale;
Stephen Lin837bba12013-07-15 17:55:02 +00001427
Chandler Carruthc8925912013-01-05 02:09:22 +00001428 // If this addressing mode is legal, commit it and remember that we folded
1429 // this instruction.
1430 if (TLI.isLegalAddressingMode(TestAddrMode, AccessTy)) {
1431 AddrModeInsts.push_back(cast<Instruction>(ScaleReg));
1432 AddrMode = TestAddrMode;
1433 return true;
1434 }
1435 }
1436
1437 // Otherwise, not (x+c)*scale, just return what we have.
1438 return true;
1439}
1440
1441/// MightBeFoldableInst - This is a little filter, which returns true if an
1442/// addressing computation involving I might be folded into a load/store
1443/// accessing it. This doesn't need to be perfect, but needs to accept at least
1444/// the set of instructions that MatchOperationAddr can.
1445static bool MightBeFoldableInst(Instruction *I) {
1446 switch (I->getOpcode()) {
1447 case Instruction::BitCast:
1448 // Don't touch identity bitcasts.
1449 if (I->getType() == I->getOperand(0)->getType())
1450 return false;
1451 return I->getType()->isPointerTy() || I->getType()->isIntegerTy();
1452 case Instruction::PtrToInt:
1453 // PtrToInt is always a noop, as we know that the int type is pointer sized.
1454 return true;
1455 case Instruction::IntToPtr:
1456 // We know the input is intptr_t, so this is foldable.
1457 return true;
1458 case Instruction::Add:
1459 return true;
1460 case Instruction::Mul:
1461 case Instruction::Shl:
1462 // Can only handle X*C and X << C.
1463 return isa<ConstantInt>(I->getOperand(1));
1464 case Instruction::GetElementPtr:
1465 return true;
1466 default:
1467 return false;
1468 }
1469}
1470
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001471/// \brief Hepler class to perform type promotion.
1472class TypePromotionHelper {
1473 /// \brief Utility function to check whether or not a sign extension of
1474 /// \p Inst with \p ConsideredSExtType can be moved through \p Inst by either
1475 /// using the operands of \p Inst or promoting \p Inst.
1476 /// In other words, check if:
1477 /// sext (Ty Inst opnd1 opnd2 ... opndN) to ConsideredSExtType.
1478 /// #1 Promotion applies:
1479 /// ConsideredSExtType Inst (sext opnd1 to ConsideredSExtType, ...).
1480 /// #2 Operand reuses:
1481 /// sext opnd1 to ConsideredSExtType.
1482 /// \p PromotedInsts maps the instructions to their type before promotion.
1483 static bool canGetThrough(const Instruction *Inst, Type *ConsideredSExtType,
1484 const InstrToOrigTy &PromotedInsts);
1485
1486 /// \brief Utility function to determine if \p OpIdx should be promoted when
1487 /// promoting \p Inst.
1488 static bool shouldSExtOperand(const Instruction *Inst, int OpIdx) {
1489 if (isa<SelectInst>(Inst) && OpIdx == 0)
1490 return false;
1491 return true;
1492 }
1493
1494 /// \brief Utility function to promote the operand of \p SExt when this
1495 /// operand is a promotable trunc or sext.
1496 /// \p PromotedInsts maps the instructions to their type before promotion.
1497 /// \p CreatedInsts[out] contains how many non-free instructions have been
1498 /// created to promote the operand of SExt.
1499 /// Should never be called directly.
1500 /// \return The promoted value which is used instead of SExt.
1501 static Value *promoteOperandForTruncAndSExt(Instruction *SExt,
1502 TypePromotionTransaction &TPT,
1503 InstrToOrigTy &PromotedInsts,
1504 unsigned &CreatedInsts);
1505
1506 /// \brief Utility function to promote the operand of \p SExt when this
1507 /// operand is promotable and is not a supported trunc or sext.
1508 /// \p PromotedInsts maps the instructions to their type before promotion.
1509 /// \p CreatedInsts[out] contains how many non-free instructions have been
1510 /// created to promote the operand of SExt.
1511 /// Should never be called directly.
1512 /// \return The promoted value which is used instead of SExt.
1513 static Value *promoteOperandForOther(Instruction *SExt,
1514 TypePromotionTransaction &TPT,
1515 InstrToOrigTy &PromotedInsts,
1516 unsigned &CreatedInsts);
1517
1518public:
1519 /// Type for the utility function that promotes the operand of SExt.
1520 typedef Value *(*Action)(Instruction *SExt, TypePromotionTransaction &TPT,
1521 InstrToOrigTy &PromotedInsts,
1522 unsigned &CreatedInsts);
1523 /// \brief Given a sign extend instruction \p SExt, return the approriate
1524 /// action to promote the operand of \p SExt instead of using SExt.
1525 /// \return NULL if no promotable action is possible with the current
1526 /// sign extension.
1527 /// \p InsertedTruncs keeps track of all the truncate instructions inserted by
1528 /// the others CodeGenPrepare optimizations. This information is important
1529 /// because we do not want to promote these instructions as CodeGenPrepare
1530 /// will reinsert them later. Thus creating an infinite loop: create/remove.
1531 /// \p PromotedInsts maps the instructions to their type before promotion.
1532 static Action getAction(Instruction *SExt, const SetOfInstrs &InsertedTruncs,
1533 const TargetLowering &TLI,
1534 const InstrToOrigTy &PromotedInsts);
1535};
1536
1537bool TypePromotionHelper::canGetThrough(const Instruction *Inst,
1538 Type *ConsideredSExtType,
1539 const InstrToOrigTy &PromotedInsts) {
1540 // We can always get through sext.
1541 if (isa<SExtInst>(Inst))
1542 return true;
1543
1544 // We can get through binary operator, if it is legal. In other words, the
1545 // binary operator must have a nuw or nsw flag.
1546 const BinaryOperator *BinOp = dyn_cast<BinaryOperator>(Inst);
1547 if (BinOp && isa<OverflowingBinaryOperator>(BinOp) &&
1548 (BinOp->hasNoUnsignedWrap() || BinOp->hasNoSignedWrap()))
1549 return true;
1550
1551 // Check if we can do the following simplification.
1552 // sext(trunc(sext)) --> sext
1553 if (!isa<TruncInst>(Inst))
1554 return false;
1555
1556 Value *OpndVal = Inst->getOperand(0);
1557 // Check if we can use this operand in the sext.
1558 // If the type is larger than the result type of the sign extension,
1559 // we cannot.
1560 if (OpndVal->getType()->getIntegerBitWidth() >
1561 ConsideredSExtType->getIntegerBitWidth())
1562 return false;
1563
1564 // If the operand of the truncate is not an instruction, we will not have
1565 // any information on the dropped bits.
1566 // (Actually we could for constant but it is not worth the extra logic).
1567 Instruction *Opnd = dyn_cast<Instruction>(OpndVal);
1568 if (!Opnd)
1569 return false;
1570
1571 // Check if the source of the type is narrow enough.
1572 // I.e., check that trunc just drops sign extended bits.
1573 // #1 get the type of the operand.
1574 const Type *OpndType;
1575 InstrToOrigTy::const_iterator It = PromotedInsts.find(Opnd);
1576 if (It != PromotedInsts.end())
1577 OpndType = It->second;
1578 else if (isa<SExtInst>(Opnd))
1579 OpndType = cast<Instruction>(Opnd)->getOperand(0)->getType();
1580 else
1581 return false;
1582
1583 // #2 check that the truncate just drop sign extended bits.
1584 if (Inst->getType()->getIntegerBitWidth() >= OpndType->getIntegerBitWidth())
1585 return true;
1586
1587 return false;
1588}
1589
1590TypePromotionHelper::Action TypePromotionHelper::getAction(
1591 Instruction *SExt, const SetOfInstrs &InsertedTruncs,
1592 const TargetLowering &TLI, const InstrToOrigTy &PromotedInsts) {
1593 Instruction *SExtOpnd = dyn_cast<Instruction>(SExt->getOperand(0));
1594 Type *SExtTy = SExt->getType();
1595 // If the operand of the sign extension is not an instruction, we cannot
1596 // get through.
1597 // If it, check we can get through.
1598 if (!SExtOpnd || !canGetThrough(SExtOpnd, SExtTy, PromotedInsts))
1599 return NULL;
1600
1601 // Do not promote if the operand has been added by codegenprepare.
1602 // Otherwise, it means we are undoing an optimization that is likely to be
1603 // redone, thus causing potential infinite loop.
1604 if (isa<TruncInst>(SExtOpnd) && InsertedTruncs.count(SExtOpnd))
1605 return NULL;
1606
1607 // SExt or Trunc instructions.
1608 // Return the related handler.
1609 if (isa<SExtInst>(SExtOpnd) || isa<TruncInst>(SExtOpnd))
1610 return promoteOperandForTruncAndSExt;
1611
1612 // Regular instruction.
1613 // Abort early if we will have to insert non-free instructions.
1614 if (!SExtOpnd->hasOneUse() &&
1615 !TLI.isTruncateFree(SExtTy, SExtOpnd->getType()))
1616 return NULL;
1617 return promoteOperandForOther;
1618}
1619
1620Value *TypePromotionHelper::promoteOperandForTruncAndSExt(
1621 llvm::Instruction *SExt, TypePromotionTransaction &TPT,
1622 InstrToOrigTy &PromotedInsts, unsigned &CreatedInsts) {
1623 // By construction, the operand of SExt is an instruction. Otherwise we cannot
1624 // get through it and this method should not be called.
1625 Instruction *SExtOpnd = cast<Instruction>(SExt->getOperand(0));
1626 // Replace sext(trunc(opnd)) or sext(sext(opnd))
1627 // => sext(opnd).
1628 TPT.setOperand(SExt, 0, SExtOpnd->getOperand(0));
1629 CreatedInsts = 0;
1630
1631 // Remove dead code.
1632 if (SExtOpnd->use_empty())
1633 TPT.eraseInstruction(SExtOpnd);
1634
1635 // Check if the sext is still needed.
1636 if (SExt->getType() != SExt->getOperand(0)->getType())
1637 return SExt;
1638
1639 // At this point we have: sext ty opnd to ty.
1640 // Reassign the uses of SExt to the opnd and remove SExt.
1641 Value *NextVal = SExt->getOperand(0);
1642 TPT.eraseInstruction(SExt, NextVal);
1643 return NextVal;
1644}
1645
1646Value *
1647TypePromotionHelper::promoteOperandForOther(Instruction *SExt,
1648 TypePromotionTransaction &TPT,
1649 InstrToOrigTy &PromotedInsts,
1650 unsigned &CreatedInsts) {
1651 // By construction, the operand of SExt is an instruction. Otherwise we cannot
1652 // get through it and this method should not be called.
1653 Instruction *SExtOpnd = cast<Instruction>(SExt->getOperand(0));
1654 CreatedInsts = 0;
1655 if (!SExtOpnd->hasOneUse()) {
1656 // SExtOpnd will be promoted.
1657 // All its uses, but SExt, will need to use a truncated value of the
1658 // promoted version.
1659 // Create the truncate now.
1660 Instruction *Trunc = TPT.createTrunc(SExt, SExtOpnd->getType());
1661 Trunc->removeFromParent();
1662 // Insert it just after the definition.
1663 Trunc->insertAfter(SExtOpnd);
1664
1665 TPT.replaceAllUsesWith(SExtOpnd, Trunc);
1666 // Restore the operand of SExt (which has been replace by the previous call
1667 // to replaceAllUsesWith) to avoid creating a cycle trunc <-> sext.
1668 TPT.setOperand(SExt, 0, SExtOpnd);
1669 }
1670
1671 // Get through the Instruction:
1672 // 1. Update its type.
1673 // 2. Replace the uses of SExt by Inst.
1674 // 3. Sign extend each operand that needs to be sign extended.
1675
1676 // Remember the original type of the instruction before promotion.
1677 // This is useful to know that the high bits are sign extended bits.
1678 PromotedInsts.insert(
1679 std::pair<Instruction *, Type *>(SExtOpnd, SExtOpnd->getType()));
1680 // Step #1.
1681 TPT.mutateType(SExtOpnd, SExt->getType());
1682 // Step #2.
1683 TPT.replaceAllUsesWith(SExt, SExtOpnd);
1684 // Step #3.
1685 Instruction *SExtForOpnd = SExt;
1686
1687 DEBUG(dbgs() << "Propagate SExt to operands\n");
1688 for (int OpIdx = 0, EndOpIdx = SExtOpnd->getNumOperands(); OpIdx != EndOpIdx;
1689 ++OpIdx) {
1690 DEBUG(dbgs() << "Operand:\n" << *(SExtOpnd->getOperand(OpIdx)) << '\n');
1691 if (SExtOpnd->getOperand(OpIdx)->getType() == SExt->getType() ||
1692 !shouldSExtOperand(SExtOpnd, OpIdx)) {
1693 DEBUG(dbgs() << "No need to propagate\n");
1694 continue;
1695 }
1696 // Check if we can statically sign extend the operand.
1697 Value *Opnd = SExtOpnd->getOperand(OpIdx);
1698 if (const ConstantInt *Cst = dyn_cast<ConstantInt>(Opnd)) {
1699 DEBUG(dbgs() << "Statically sign extend\n");
1700 TPT.setOperand(
1701 SExtOpnd, OpIdx,
1702 ConstantInt::getSigned(SExt->getType(), Cst->getSExtValue()));
1703 continue;
1704 }
1705 // UndefValue are typed, so we have to statically sign extend them.
1706 if (isa<UndefValue>(Opnd)) {
1707 DEBUG(dbgs() << "Statically sign extend\n");
1708 TPT.setOperand(SExtOpnd, OpIdx, UndefValue::get(SExt->getType()));
1709 continue;
1710 }
1711
1712 // Otherwise we have to explicity sign extend the operand.
1713 // Check if SExt was reused to sign extend an operand.
1714 if (!SExtForOpnd) {
1715 // If yes, create a new one.
1716 DEBUG(dbgs() << "More operands to sext\n");
1717 SExtForOpnd = TPT.createSExt(SExt, Opnd, SExt->getType());
1718 ++CreatedInsts;
1719 }
1720
1721 TPT.setOperand(SExtForOpnd, 0, Opnd);
1722
1723 // Move the sign extension before the insertion point.
1724 TPT.moveBefore(SExtForOpnd, SExtOpnd);
1725 TPT.setOperand(SExtOpnd, OpIdx, SExtForOpnd);
1726 // If more sext are required, new instructions will have to be created.
1727 SExtForOpnd = NULL;
1728 }
1729 if (SExtForOpnd == SExt) {
1730 DEBUG(dbgs() << "Sign extension is useless now\n");
1731 TPT.eraseInstruction(SExt);
1732 }
1733 return SExtOpnd;
1734}
1735
Quentin Colombet867c5502014-02-14 22:23:22 +00001736/// IsPromotionProfitable - Check whether or not promoting an instruction
1737/// to a wider type was profitable.
1738/// \p MatchedSize gives the number of instructions that have been matched
1739/// in the addressing mode after the promotion was applied.
1740/// \p SizeWithPromotion gives the number of created instructions for
1741/// the promotion plus the number of instructions that have been
1742/// matched in the addressing mode before the promotion.
1743/// \p PromotedOperand is the value that has been promoted.
1744/// \return True if the promotion is profitable, false otherwise.
1745bool
1746AddressingModeMatcher::IsPromotionProfitable(unsigned MatchedSize,
1747 unsigned SizeWithPromotion,
1748 Value *PromotedOperand) const {
1749 // We folded less instructions than what we created to promote the operand.
1750 // This is not profitable.
1751 if (MatchedSize < SizeWithPromotion)
1752 return false;
1753 if (MatchedSize > SizeWithPromotion)
1754 return true;
1755 // The promotion is neutral but it may help folding the sign extension in
1756 // loads for instance.
1757 // Check that we did not create an illegal instruction.
1758 Instruction *PromotedInst = dyn_cast<Instruction>(PromotedOperand);
1759 if (!PromotedInst)
1760 return false;
Quentin Colombet1627a412014-02-22 01:06:41 +00001761 int ISDOpcode = TLI.InstructionOpcodeToISD(PromotedInst->getOpcode());
1762 // If the ISDOpcode is undefined, it was undefined before the promotion.
1763 if (!ISDOpcode)
1764 return true;
1765 // Otherwise, check if the promoted instruction is legal or not.
1766 return TLI.isOperationLegalOrCustom(ISDOpcode,
Quentin Colombet867c5502014-02-14 22:23:22 +00001767 EVT::getEVT(PromotedInst->getType()));
1768}
1769
Chandler Carruthc8925912013-01-05 02:09:22 +00001770/// MatchOperationAddr - Given an instruction or constant expr, see if we can
1771/// fold the operation into the addressing mode. If so, update the addressing
1772/// mode and return true, otherwise return false without modifying AddrMode.
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001773/// If \p MovedAway is not NULL, it contains the information of whether or
1774/// not AddrInst has to be folded into the addressing mode on success.
1775/// If \p MovedAway == true, \p AddrInst will not be part of the addressing
1776/// because it has been moved away.
1777/// Thus AddrInst must not be added in the matched instructions.
1778/// This state can happen when AddrInst is a sext, since it may be moved away.
1779/// Therefore, AddrInst may not be valid when MovedAway is true and it must
1780/// not be referenced anymore.
Chandler Carruthc8925912013-01-05 02:09:22 +00001781bool AddressingModeMatcher::MatchOperationAddr(User *AddrInst, unsigned Opcode,
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001782 unsigned Depth,
1783 bool *MovedAway) {
Chandler Carruthc8925912013-01-05 02:09:22 +00001784 // Avoid exponential behavior on extremely deep expression trees.
1785 if (Depth >= 5) return false;
Stephen Lin837bba12013-07-15 17:55:02 +00001786
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001787 // By default, all matched instructions stay in place.
1788 if (MovedAway)
1789 *MovedAway = false;
1790
Chandler Carruthc8925912013-01-05 02:09:22 +00001791 switch (Opcode) {
1792 case Instruction::PtrToInt:
1793 // PtrToInt is always a noop, as we know that the int type is pointer sized.
1794 return MatchAddr(AddrInst->getOperand(0), Depth);
1795 case Instruction::IntToPtr:
1796 // This inttoptr is a no-op if the integer type is pointer sized.
1797 if (TLI.getValueType(AddrInst->getOperand(0)->getType()) ==
Matt Arsenault37d42ec2013-09-06 00:18:43 +00001798 TLI.getPointerTy(AddrInst->getType()->getPointerAddressSpace()))
Chandler Carruthc8925912013-01-05 02:09:22 +00001799 return MatchAddr(AddrInst->getOperand(0), Depth);
1800 return false;
1801 case Instruction::BitCast:
1802 // BitCast is always a noop, and we can handle it as long as it is
1803 // int->int or pointer->pointer (we don't want int<->fp or something).
1804 if ((AddrInst->getOperand(0)->getType()->isPointerTy() ||
1805 AddrInst->getOperand(0)->getType()->isIntegerTy()) &&
1806 // Don't touch identity bitcasts. These were probably put here by LSR,
1807 // and we don't want to mess around with them. Assume it knows what it
1808 // is doing.
1809 AddrInst->getOperand(0)->getType() != AddrInst->getType())
1810 return MatchAddr(AddrInst->getOperand(0), Depth);
1811 return false;
1812 case Instruction::Add: {
1813 // Check to see if we can merge in the RHS then the LHS. If so, we win.
1814 ExtAddrMode BackupAddrMode = AddrMode;
1815 unsigned OldSize = AddrModeInsts.size();
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001816 // Start a transaction at this point.
1817 // The LHS may match but not the RHS.
1818 // Therefore, we need a higher level restoration point to undo partially
1819 // matched operation.
1820 TypePromotionTransaction::ConstRestorationPt LastKnownGood =
1821 TPT.getRestorationPoint();
1822
Chandler Carruthc8925912013-01-05 02:09:22 +00001823 if (MatchAddr(AddrInst->getOperand(1), Depth+1) &&
1824 MatchAddr(AddrInst->getOperand(0), Depth+1))
1825 return true;
Stephen Lin837bba12013-07-15 17:55:02 +00001826
Chandler Carruthc8925912013-01-05 02:09:22 +00001827 // Restore the old addr mode info.
1828 AddrMode = BackupAddrMode;
1829 AddrModeInsts.resize(OldSize);
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001830 TPT.rollback(LastKnownGood);
Stephen Lin837bba12013-07-15 17:55:02 +00001831
Chandler Carruthc8925912013-01-05 02:09:22 +00001832 // Otherwise this was over-aggressive. Try merging in the LHS then the RHS.
1833 if (MatchAddr(AddrInst->getOperand(0), Depth+1) &&
1834 MatchAddr(AddrInst->getOperand(1), Depth+1))
1835 return true;
Stephen Lin837bba12013-07-15 17:55:02 +00001836
Chandler Carruthc8925912013-01-05 02:09:22 +00001837 // Otherwise we definitely can't merge the ADD in.
1838 AddrMode = BackupAddrMode;
1839 AddrModeInsts.resize(OldSize);
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001840 TPT.rollback(LastKnownGood);
Chandler Carruthc8925912013-01-05 02:09:22 +00001841 break;
1842 }
1843 //case Instruction::Or:
1844 // TODO: We can handle "Or Val, Imm" iff this OR is equivalent to an ADD.
1845 //break;
1846 case Instruction::Mul:
1847 case Instruction::Shl: {
1848 // Can only handle X*C and X << C.
1849 ConstantInt *RHS = dyn_cast<ConstantInt>(AddrInst->getOperand(1));
1850 if (!RHS) return false;
1851 int64_t Scale = RHS->getSExtValue();
1852 if (Opcode == Instruction::Shl)
1853 Scale = 1LL << Scale;
Stephen Lin837bba12013-07-15 17:55:02 +00001854
Chandler Carruthc8925912013-01-05 02:09:22 +00001855 return MatchScaledValue(AddrInst->getOperand(0), Scale, Depth);
1856 }
1857 case Instruction::GetElementPtr: {
1858 // Scan the GEP. We check it if it contains constant offsets and at most
1859 // one variable offset.
1860 int VariableOperand = -1;
1861 unsigned VariableScale = 0;
Stephen Lin837bba12013-07-15 17:55:02 +00001862
Chandler Carruthc8925912013-01-05 02:09:22 +00001863 int64_t ConstantOffset = 0;
1864 const DataLayout *TD = TLI.getDataLayout();
1865 gep_type_iterator GTI = gep_type_begin(AddrInst);
1866 for (unsigned i = 1, e = AddrInst->getNumOperands(); i != e; ++i, ++GTI) {
1867 if (StructType *STy = dyn_cast<StructType>(*GTI)) {
1868 const StructLayout *SL = TD->getStructLayout(STy);
1869 unsigned Idx =
1870 cast<ConstantInt>(AddrInst->getOperand(i))->getZExtValue();
1871 ConstantOffset += SL->getElementOffset(Idx);
1872 } else {
1873 uint64_t TypeSize = TD->getTypeAllocSize(GTI.getIndexedType());
1874 if (ConstantInt *CI = dyn_cast<ConstantInt>(AddrInst->getOperand(i))) {
1875 ConstantOffset += CI->getSExtValue()*TypeSize;
1876 } else if (TypeSize) { // Scales of zero don't do anything.
1877 // We only allow one variable index at the moment.
1878 if (VariableOperand != -1)
1879 return false;
Stephen Lin837bba12013-07-15 17:55:02 +00001880
Chandler Carruthc8925912013-01-05 02:09:22 +00001881 // Remember the variable index.
1882 VariableOperand = i;
1883 VariableScale = TypeSize;
1884 }
1885 }
1886 }
Stephen Lin837bba12013-07-15 17:55:02 +00001887
Chandler Carruthc8925912013-01-05 02:09:22 +00001888 // A common case is for the GEP to only do a constant offset. In this case,
1889 // just add it to the disp field and check validity.
1890 if (VariableOperand == -1) {
1891 AddrMode.BaseOffs += ConstantOffset;
1892 if (ConstantOffset == 0 || TLI.isLegalAddressingMode(AddrMode, AccessTy)){
1893 // Check to see if we can fold the base pointer in too.
1894 if (MatchAddr(AddrInst->getOperand(0), Depth+1))
1895 return true;
1896 }
1897 AddrMode.BaseOffs -= ConstantOffset;
1898 return false;
1899 }
1900
1901 // Save the valid addressing mode in case we can't match.
1902 ExtAddrMode BackupAddrMode = AddrMode;
1903 unsigned OldSize = AddrModeInsts.size();
1904
1905 // See if the scale and offset amount is valid for this target.
1906 AddrMode.BaseOffs += ConstantOffset;
1907
1908 // Match the base operand of the GEP.
1909 if (!MatchAddr(AddrInst->getOperand(0), Depth+1)) {
1910 // If it couldn't be matched, just stuff the value in a register.
1911 if (AddrMode.HasBaseReg) {
1912 AddrMode = BackupAddrMode;
1913 AddrModeInsts.resize(OldSize);
1914 return false;
1915 }
1916 AddrMode.HasBaseReg = true;
1917 AddrMode.BaseReg = AddrInst->getOperand(0);
1918 }
1919
1920 // Match the remaining variable portion of the GEP.
1921 if (!MatchScaledValue(AddrInst->getOperand(VariableOperand), VariableScale,
1922 Depth)) {
1923 // If it couldn't be matched, try stuffing the base into a register
1924 // instead of matching it, and retrying the match of the scale.
1925 AddrMode = BackupAddrMode;
1926 AddrModeInsts.resize(OldSize);
1927 if (AddrMode.HasBaseReg)
1928 return false;
1929 AddrMode.HasBaseReg = true;
1930 AddrMode.BaseReg = AddrInst->getOperand(0);
1931 AddrMode.BaseOffs += ConstantOffset;
1932 if (!MatchScaledValue(AddrInst->getOperand(VariableOperand),
1933 VariableScale, Depth)) {
1934 // If even that didn't work, bail.
1935 AddrMode = BackupAddrMode;
1936 AddrModeInsts.resize(OldSize);
1937 return false;
1938 }
1939 }
1940
1941 return true;
1942 }
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001943 case Instruction::SExt: {
1944 // Try to move this sext out of the way of the addressing mode.
1945 Instruction *SExt = cast<Instruction>(AddrInst);
1946 // Ask for a method for doing so.
1947 TypePromotionHelper::Action TPH = TypePromotionHelper::getAction(
1948 SExt, InsertedTruncs, TLI, PromotedInsts);
1949 if (!TPH)
1950 return false;
1951
1952 TypePromotionTransaction::ConstRestorationPt LastKnownGood =
1953 TPT.getRestorationPoint();
1954 unsigned CreatedInsts = 0;
1955 Value *PromotedOperand = TPH(SExt, TPT, PromotedInsts, CreatedInsts);
1956 // SExt has been moved away.
1957 // Thus either it will be rematched later in the recursive calls or it is
1958 // gone. Anyway, we must not fold it into the addressing mode at this point.
1959 // E.g.,
1960 // op = add opnd, 1
1961 // idx = sext op
1962 // addr = gep base, idx
1963 // is now:
1964 // promotedOpnd = sext opnd <- no match here
1965 // op = promoted_add promotedOpnd, 1 <- match (later in recursive calls)
1966 // addr = gep base, op <- match
1967 if (MovedAway)
1968 *MovedAway = true;
1969
1970 assert(PromotedOperand &&
1971 "TypePromotionHelper should have filtered out those cases");
1972
1973 ExtAddrMode BackupAddrMode = AddrMode;
1974 unsigned OldSize = AddrModeInsts.size();
1975
1976 if (!MatchAddr(PromotedOperand, Depth) ||
Quentin Colombet867c5502014-02-14 22:23:22 +00001977 !IsPromotionProfitable(AddrModeInsts.size(), OldSize + CreatedInsts,
1978 PromotedOperand)) {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001979 AddrMode = BackupAddrMode;
1980 AddrModeInsts.resize(OldSize);
1981 DEBUG(dbgs() << "Sign extension does not pay off: rollback\n");
1982 TPT.rollback(LastKnownGood);
1983 return false;
1984 }
1985 return true;
1986 }
Chandler Carruthc8925912013-01-05 02:09:22 +00001987 }
1988 return false;
1989}
1990
1991/// MatchAddr - If we can, try to add the value of 'Addr' into the current
1992/// addressing mode. If Addr can't be added to AddrMode this returns false and
1993/// leaves AddrMode unmodified. This assumes that Addr is either a pointer type
1994/// or intptr_t for the target.
1995///
1996bool AddressingModeMatcher::MatchAddr(Value *Addr, unsigned Depth) {
Quentin Colombet3a4bf042014-02-06 21:44:56 +00001997 // Start a transaction at this point that we will rollback if the matching
1998 // fails.
1999 TypePromotionTransaction::ConstRestorationPt LastKnownGood =
2000 TPT.getRestorationPoint();
Chandler Carruthc8925912013-01-05 02:09:22 +00002001 if (ConstantInt *CI = dyn_cast<ConstantInt>(Addr)) {
2002 // Fold in immediates if legal for the target.
2003 AddrMode.BaseOffs += CI->getSExtValue();
2004 if (TLI.isLegalAddressingMode(AddrMode, AccessTy))
2005 return true;
2006 AddrMode.BaseOffs -= CI->getSExtValue();
2007 } else if (GlobalValue *GV = dyn_cast<GlobalValue>(Addr)) {
2008 // If this is a global variable, try to fold it into the addressing mode.
2009 if (AddrMode.BaseGV == 0) {
2010 AddrMode.BaseGV = GV;
2011 if (TLI.isLegalAddressingMode(AddrMode, AccessTy))
2012 return true;
2013 AddrMode.BaseGV = 0;
2014 }
2015 } else if (Instruction *I = dyn_cast<Instruction>(Addr)) {
2016 ExtAddrMode BackupAddrMode = AddrMode;
2017 unsigned OldSize = AddrModeInsts.size();
2018
2019 // Check to see if it is possible to fold this operation.
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002020 bool MovedAway = false;
2021 if (MatchOperationAddr(I, I->getOpcode(), Depth, &MovedAway)) {
2022 // This instruction may have been move away. If so, there is nothing
2023 // to check here.
2024 if (MovedAway)
2025 return true;
Chandler Carruthc8925912013-01-05 02:09:22 +00002026 // Okay, it's possible to fold this. Check to see if it is actually
2027 // *profitable* to do so. We use a simple cost model to avoid increasing
2028 // register pressure too much.
2029 if (I->hasOneUse() ||
2030 IsProfitableToFoldIntoAddressingMode(I, BackupAddrMode, AddrMode)) {
2031 AddrModeInsts.push_back(I);
2032 return true;
2033 }
Stephen Lin837bba12013-07-15 17:55:02 +00002034
Chandler Carruthc8925912013-01-05 02:09:22 +00002035 // It isn't profitable to do this, roll back.
2036 //cerr << "NOT FOLDING: " << *I;
2037 AddrMode = BackupAddrMode;
2038 AddrModeInsts.resize(OldSize);
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002039 TPT.rollback(LastKnownGood);
Chandler Carruthc8925912013-01-05 02:09:22 +00002040 }
2041 } else if (ConstantExpr *CE = dyn_cast<ConstantExpr>(Addr)) {
2042 if (MatchOperationAddr(CE, CE->getOpcode(), Depth))
2043 return true;
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002044 TPT.rollback(LastKnownGood);
Chandler Carruthc8925912013-01-05 02:09:22 +00002045 } else if (isa<ConstantPointerNull>(Addr)) {
2046 // Null pointer gets folded without affecting the addressing mode.
2047 return true;
2048 }
2049
2050 // Worse case, the target should support [reg] addressing modes. :)
2051 if (!AddrMode.HasBaseReg) {
2052 AddrMode.HasBaseReg = true;
2053 AddrMode.BaseReg = Addr;
2054 // Still check for legality in case the target supports [imm] but not [i+r].
2055 if (TLI.isLegalAddressingMode(AddrMode, AccessTy))
2056 return true;
2057 AddrMode.HasBaseReg = false;
2058 AddrMode.BaseReg = 0;
2059 }
2060
2061 // If the base register is already taken, see if we can do [r+r].
2062 if (AddrMode.Scale == 0) {
2063 AddrMode.Scale = 1;
2064 AddrMode.ScaledReg = Addr;
2065 if (TLI.isLegalAddressingMode(AddrMode, AccessTy))
2066 return true;
2067 AddrMode.Scale = 0;
2068 AddrMode.ScaledReg = 0;
2069 }
2070 // Couldn't match.
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002071 TPT.rollback(LastKnownGood);
Chandler Carruthc8925912013-01-05 02:09:22 +00002072 return false;
2073}
2074
2075/// IsOperandAMemoryOperand - Check to see if all uses of OpVal by the specified
2076/// inline asm call are due to memory operands. If so, return true, otherwise
2077/// return false.
2078static bool IsOperandAMemoryOperand(CallInst *CI, InlineAsm *IA, Value *OpVal,
2079 const TargetLowering &TLI) {
2080 TargetLowering::AsmOperandInfoVector TargetConstraints = TLI.ParseConstraints(ImmutableCallSite(CI));
2081 for (unsigned i = 0, e = TargetConstraints.size(); i != e; ++i) {
2082 TargetLowering::AsmOperandInfo &OpInfo = TargetConstraints[i];
Stephen Lin837bba12013-07-15 17:55:02 +00002083
Chandler Carruthc8925912013-01-05 02:09:22 +00002084 // Compute the constraint code and ConstraintType to use.
2085 TLI.ComputeConstraintToUse(OpInfo, SDValue());
2086
2087 // If this asm operand is our Value*, and if it isn't an indirect memory
2088 // operand, we can't fold it!
2089 if (OpInfo.CallOperandVal == OpVal &&
2090 (OpInfo.ConstraintType != TargetLowering::C_Memory ||
2091 !OpInfo.isIndirect))
2092 return false;
2093 }
2094
2095 return true;
2096}
2097
2098/// FindAllMemoryUses - Recursively walk all the uses of I until we find a
2099/// memory use. If we find an obviously non-foldable instruction, return true.
2100/// Add the ultimately found memory instructions to MemoryUses.
2101static bool FindAllMemoryUses(Instruction *I,
2102 SmallVectorImpl<std::pair<Instruction*,unsigned> > &MemoryUses,
2103 SmallPtrSet<Instruction*, 16> &ConsideredInsts,
2104 const TargetLowering &TLI) {
2105 // If we already considered this instruction, we're done.
2106 if (!ConsideredInsts.insert(I))
2107 return false;
Stephen Lin837bba12013-07-15 17:55:02 +00002108
Chandler Carruthc8925912013-01-05 02:09:22 +00002109 // If this is an obviously unfoldable instruction, bail out.
2110 if (!MightBeFoldableInst(I))
2111 return true;
2112
2113 // Loop over all the uses, recursively processing them.
Chandler Carruthcdf47882014-03-09 03:16:01 +00002114 for (Use &U : I->uses()) {
2115 Instruction *UserI = cast<Instruction>(U.getUser());
Chandler Carruthc8925912013-01-05 02:09:22 +00002116
Chandler Carruthcdf47882014-03-09 03:16:01 +00002117 if (LoadInst *LI = dyn_cast<LoadInst>(UserI)) {
2118 MemoryUses.push_back(std::make_pair(LI, U.getOperandNo()));
Chandler Carruthc8925912013-01-05 02:09:22 +00002119 continue;
2120 }
Stephen Lin837bba12013-07-15 17:55:02 +00002121
Chandler Carruthcdf47882014-03-09 03:16:01 +00002122 if (StoreInst *SI = dyn_cast<StoreInst>(UserI)) {
2123 unsigned opNo = U.getOperandNo();
Chandler Carruthc8925912013-01-05 02:09:22 +00002124 if (opNo == 0) return true; // Storing addr, not into addr.
2125 MemoryUses.push_back(std::make_pair(SI, opNo));
2126 continue;
2127 }
Stephen Lin837bba12013-07-15 17:55:02 +00002128
Chandler Carruthcdf47882014-03-09 03:16:01 +00002129 if (CallInst *CI = dyn_cast<CallInst>(UserI)) {
Chandler Carruthc8925912013-01-05 02:09:22 +00002130 InlineAsm *IA = dyn_cast<InlineAsm>(CI->getCalledValue());
2131 if (!IA) return true;
Stephen Lin837bba12013-07-15 17:55:02 +00002132
Chandler Carruthc8925912013-01-05 02:09:22 +00002133 // If this is a memory operand, we're cool, otherwise bail out.
2134 if (!IsOperandAMemoryOperand(CI, IA, I, TLI))
2135 return true;
2136 continue;
2137 }
Stephen Lin837bba12013-07-15 17:55:02 +00002138
Chandler Carruthcdf47882014-03-09 03:16:01 +00002139 if (FindAllMemoryUses(UserI, MemoryUses, ConsideredInsts, TLI))
Chandler Carruthc8925912013-01-05 02:09:22 +00002140 return true;
2141 }
2142
2143 return false;
2144}
2145
2146/// ValueAlreadyLiveAtInst - Retrn true if Val is already known to be live at
2147/// the use site that we're folding it into. If so, there is no cost to
2148/// include it in the addressing mode. KnownLive1 and KnownLive2 are two values
2149/// that we know are live at the instruction already.
2150bool AddressingModeMatcher::ValueAlreadyLiveAtInst(Value *Val,Value *KnownLive1,
2151 Value *KnownLive2) {
2152 // If Val is either of the known-live values, we know it is live!
2153 if (Val == 0 || Val == KnownLive1 || Val == KnownLive2)
2154 return true;
Stephen Lin837bba12013-07-15 17:55:02 +00002155
Chandler Carruthc8925912013-01-05 02:09:22 +00002156 // All values other than instructions and arguments (e.g. constants) are live.
2157 if (!isa<Instruction>(Val) && !isa<Argument>(Val)) return true;
Stephen Lin837bba12013-07-15 17:55:02 +00002158
Chandler Carruthc8925912013-01-05 02:09:22 +00002159 // If Val is a constant sized alloca in the entry block, it is live, this is
2160 // true because it is just a reference to the stack/frame pointer, which is
2161 // live for the whole function.
2162 if (AllocaInst *AI = dyn_cast<AllocaInst>(Val))
2163 if (AI->isStaticAlloca())
2164 return true;
Stephen Lin837bba12013-07-15 17:55:02 +00002165
Chandler Carruthc8925912013-01-05 02:09:22 +00002166 // Check to see if this value is already used in the memory instruction's
2167 // block. If so, it's already live into the block at the very least, so we
2168 // can reasonably fold it.
2169 return Val->isUsedInBasicBlock(MemoryInst->getParent());
2170}
2171
2172/// IsProfitableToFoldIntoAddressingMode - It is possible for the addressing
2173/// mode of the machine to fold the specified instruction into a load or store
2174/// that ultimately uses it. However, the specified instruction has multiple
2175/// uses. Given this, it may actually increase register pressure to fold it
2176/// into the load. For example, consider this code:
2177///
2178/// X = ...
2179/// Y = X+1
2180/// use(Y) -> nonload/store
2181/// Z = Y+1
2182/// load Z
2183///
2184/// In this case, Y has multiple uses, and can be folded into the load of Z
2185/// (yielding load [X+2]). However, doing this will cause both "X" and "X+1" to
2186/// be live at the use(Y) line. If we don't fold Y into load Z, we use one
2187/// fewer register. Since Y can't be folded into "use(Y)" we don't increase the
2188/// number of computations either.
2189///
2190/// Note that this (like most of CodeGenPrepare) is just a rough heuristic. If
2191/// X was live across 'load Z' for other reasons, we actually *would* want to
2192/// fold the addressing mode in the Z case. This would make Y die earlier.
2193bool AddressingModeMatcher::
2194IsProfitableToFoldIntoAddressingMode(Instruction *I, ExtAddrMode &AMBefore,
2195 ExtAddrMode &AMAfter) {
2196 if (IgnoreProfitability) return true;
Stephen Lin837bba12013-07-15 17:55:02 +00002197
Chandler Carruthc8925912013-01-05 02:09:22 +00002198 // AMBefore is the addressing mode before this instruction was folded into it,
2199 // and AMAfter is the addressing mode after the instruction was folded. Get
2200 // the set of registers referenced by AMAfter and subtract out those
2201 // referenced by AMBefore: this is the set of values which folding in this
2202 // address extends the lifetime of.
2203 //
2204 // Note that there are only two potential values being referenced here,
2205 // BaseReg and ScaleReg (global addresses are always available, as are any
2206 // folded immediates).
2207 Value *BaseReg = AMAfter.BaseReg, *ScaledReg = AMAfter.ScaledReg;
Stephen Lin837bba12013-07-15 17:55:02 +00002208
Chandler Carruthc8925912013-01-05 02:09:22 +00002209 // If the BaseReg or ScaledReg was referenced by the previous addrmode, their
2210 // lifetime wasn't extended by adding this instruction.
2211 if (ValueAlreadyLiveAtInst(BaseReg, AMBefore.BaseReg, AMBefore.ScaledReg))
2212 BaseReg = 0;
2213 if (ValueAlreadyLiveAtInst(ScaledReg, AMBefore.BaseReg, AMBefore.ScaledReg))
2214 ScaledReg = 0;
2215
2216 // If folding this instruction (and it's subexprs) didn't extend any live
2217 // ranges, we're ok with it.
2218 if (BaseReg == 0 && ScaledReg == 0)
2219 return true;
2220
2221 // If all uses of this instruction are ultimately load/store/inlineasm's,
2222 // check to see if their addressing modes will include this instruction. If
2223 // so, we can fold it into all uses, so it doesn't matter if it has multiple
2224 // uses.
2225 SmallVector<std::pair<Instruction*,unsigned>, 16> MemoryUses;
2226 SmallPtrSet<Instruction*, 16> ConsideredInsts;
2227 if (FindAllMemoryUses(I, MemoryUses, ConsideredInsts, TLI))
2228 return false; // Has a non-memory, non-foldable use!
Stephen Lin837bba12013-07-15 17:55:02 +00002229
Chandler Carruthc8925912013-01-05 02:09:22 +00002230 // Now that we know that all uses of this instruction are part of a chain of
2231 // computation involving only operations that could theoretically be folded
2232 // into a memory use, loop over each of these uses and see if they could
2233 // *actually* fold the instruction.
2234 SmallVector<Instruction*, 32> MatchedAddrModeInsts;
2235 for (unsigned i = 0, e = MemoryUses.size(); i != e; ++i) {
2236 Instruction *User = MemoryUses[i].first;
2237 unsigned OpNo = MemoryUses[i].second;
Stephen Lin837bba12013-07-15 17:55:02 +00002238
Chandler Carruthc8925912013-01-05 02:09:22 +00002239 // Get the access type of this use. If the use isn't a pointer, we don't
2240 // know what it accesses.
2241 Value *Address = User->getOperand(OpNo);
2242 if (!Address->getType()->isPointerTy())
2243 return false;
Matt Arsenault8227b9f2013-09-06 00:37:24 +00002244 Type *AddressAccessTy = Address->getType()->getPointerElementType();
Stephen Lin837bba12013-07-15 17:55:02 +00002245
Chandler Carruthc8925912013-01-05 02:09:22 +00002246 // Do a match against the root of this address, ignoring profitability. This
2247 // will tell us if the addressing mode for the memory operation will
2248 // *actually* cover the shared instruction.
2249 ExtAddrMode Result;
Quentin Colombet5a69dda2014-02-11 01:59:02 +00002250 TypePromotionTransaction::ConstRestorationPt LastKnownGood =
2251 TPT.getRestorationPoint();
Chandler Carruthc8925912013-01-05 02:09:22 +00002252 AddressingModeMatcher Matcher(MatchedAddrModeInsts, TLI, AddressAccessTy,
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002253 MemoryInst, Result, InsertedTruncs,
2254 PromotedInsts, TPT);
Chandler Carruthc8925912013-01-05 02:09:22 +00002255 Matcher.IgnoreProfitability = true;
2256 bool Success = Matcher.MatchAddr(Address, 0);
2257 (void)Success; assert(Success && "Couldn't select *anything*?");
2258
Quentin Colombet5a69dda2014-02-11 01:59:02 +00002259 // The match was to check the profitability, the changes made are not
2260 // part of the original matcher. Therefore, they should be dropped
2261 // otherwise the original matcher will not present the right state.
2262 TPT.rollback(LastKnownGood);
2263
Chandler Carruthc8925912013-01-05 02:09:22 +00002264 // If the match didn't cover I, then it won't be shared by it.
2265 if (std::find(MatchedAddrModeInsts.begin(), MatchedAddrModeInsts.end(),
2266 I) == MatchedAddrModeInsts.end())
2267 return false;
Stephen Lin837bba12013-07-15 17:55:02 +00002268
Chandler Carruthc8925912013-01-05 02:09:22 +00002269 MatchedAddrModeInsts.clear();
2270 }
Stephen Lin837bba12013-07-15 17:55:02 +00002271
Chandler Carruthc8925912013-01-05 02:09:22 +00002272 return true;
2273}
2274
2275} // end anonymous namespace
2276
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002277/// IsNonLocalValue - Return true if the specified values are defined in a
2278/// different basic block than BB.
2279static bool IsNonLocalValue(Value *V, BasicBlock *BB) {
2280 if (Instruction *I = dyn_cast<Instruction>(V))
2281 return I->getParent() != BB;
2282 return false;
2283}
2284
Bob Wilson53bdae32009-12-03 21:47:07 +00002285/// OptimizeMemoryInst - Load and Store Instructions often have
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002286/// addressing modes that can do significant amounts of computation. As such,
2287/// instruction selection will try to get the load or store to do as much
2288/// computation as possible for the program. The problem is that isel can only
2289/// see within a single block. As such, we sink as much legal addressing mode
2290/// stuff into the block as possible.
Chris Lattner728f9022008-11-25 07:09:13 +00002291///
2292/// This method is used to optimize both load/store and inline asms with memory
2293/// operands.
Chris Lattner6d71b7f2008-11-26 03:20:37 +00002294bool CodeGenPrepare::OptimizeMemoryInst(Instruction *MemoryInst, Value *Addr,
Chris Lattner229907c2011-07-18 04:54:35 +00002295 Type *AccessTy) {
Owen Anderson8ba5f392010-11-27 08:15:55 +00002296 Value *Repl = Addr;
Nadav Rotem465834c2012-07-24 10:51:42 +00002297
2298 // Try to collapse single-value PHI nodes. This is necessary to undo
Owen Andersondfb8c3b2010-11-19 22:15:03 +00002299 // unprofitable PRE transformations.
Cameron Zwarich43cecb12011-01-03 06:33:01 +00002300 SmallVector<Value*, 8> worklist;
2301 SmallPtrSet<Value*, 16> Visited;
Owen Anderson8ba5f392010-11-27 08:15:55 +00002302 worklist.push_back(Addr);
Nadav Rotem465834c2012-07-24 10:51:42 +00002303
Owen Anderson8ba5f392010-11-27 08:15:55 +00002304 // Use a worklist to iteratively look through PHI nodes, and ensure that
2305 // the addressing mode obtained from the non-PHI roots of the graph
2306 // are equivalent.
2307 Value *Consensus = 0;
Cameron Zwarichb7f8eaa2011-03-01 21:13:53 +00002308 unsigned NumUsesConsensus = 0;
Cameron Zwarich13c885d2011-03-05 08:12:26 +00002309 bool IsNumUsesConsensusValid = false;
Owen Anderson8ba5f392010-11-27 08:15:55 +00002310 SmallVector<Instruction*, 16> AddrModeInsts;
2311 ExtAddrMode AddrMode;
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002312 TypePromotionTransaction TPT;
2313 TypePromotionTransaction::ConstRestorationPt LastKnownGood =
2314 TPT.getRestorationPoint();
Owen Anderson8ba5f392010-11-27 08:15:55 +00002315 while (!worklist.empty()) {
2316 Value *V = worklist.back();
2317 worklist.pop_back();
Nadav Rotem465834c2012-07-24 10:51:42 +00002318
Owen Anderson8ba5f392010-11-27 08:15:55 +00002319 // Break use-def graph loops.
Nick Lewyckya3e7ffd2011-09-29 23:40:12 +00002320 if (!Visited.insert(V)) {
Owen Anderson8ba5f392010-11-27 08:15:55 +00002321 Consensus = 0;
2322 break;
Owen Andersondfb8c3b2010-11-19 22:15:03 +00002323 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002324
Owen Anderson8ba5f392010-11-27 08:15:55 +00002325 // For a PHI node, push all of its incoming values.
2326 if (PHINode *P = dyn_cast<PHINode>(V)) {
2327 for (unsigned i = 0, e = P->getNumIncomingValues(); i != e; ++i)
2328 worklist.push_back(P->getIncomingValue(i));
2329 continue;
2330 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002331
Owen Anderson8ba5f392010-11-27 08:15:55 +00002332 // For non-PHIs, determine the addressing mode being computed.
2333 SmallVector<Instruction*, 16> NewAddrModeInsts;
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002334 ExtAddrMode NewAddrMode = AddressingModeMatcher::Match(
2335 V, AccessTy, MemoryInst, NewAddrModeInsts, *TLI, InsertedTruncsSet,
2336 PromotedInsts, TPT);
Cameron Zwarich13c885d2011-03-05 08:12:26 +00002337
2338 // This check is broken into two cases with very similar code to avoid using
2339 // getNumUses() as much as possible. Some values have a lot of uses, so
2340 // calling getNumUses() unconditionally caused a significant compile-time
2341 // regression.
2342 if (!Consensus) {
2343 Consensus = V;
2344 AddrMode = NewAddrMode;
2345 AddrModeInsts = NewAddrModeInsts;
2346 continue;
2347 } else if (NewAddrMode == AddrMode) {
2348 if (!IsNumUsesConsensusValid) {
2349 NumUsesConsensus = Consensus->getNumUses();
2350 IsNumUsesConsensusValid = true;
2351 }
2352
2353 // Ensure that the obtained addressing mode is equivalent to that obtained
2354 // for all other roots of the PHI traversal. Also, when choosing one
2355 // such root as representative, select the one with the most uses in order
2356 // to keep the cost modeling heuristics in AddressingModeMatcher
2357 // applicable.
Cameron Zwarichb7f8eaa2011-03-01 21:13:53 +00002358 unsigned NumUses = V->getNumUses();
2359 if (NumUses > NumUsesConsensus) {
Owen Anderson8ba5f392010-11-27 08:15:55 +00002360 Consensus = V;
Cameron Zwarichb7f8eaa2011-03-01 21:13:53 +00002361 NumUsesConsensus = NumUses;
Owen Anderson8ba5f392010-11-27 08:15:55 +00002362 AddrModeInsts = NewAddrModeInsts;
2363 }
2364 continue;
2365 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002366
Owen Anderson8ba5f392010-11-27 08:15:55 +00002367 Consensus = 0;
2368 break;
Owen Andersondfb8c3b2010-11-19 22:15:03 +00002369 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002370
Owen Anderson8ba5f392010-11-27 08:15:55 +00002371 // If the addressing mode couldn't be determined, or if multiple different
2372 // ones were determined, bail out now.
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002373 if (!Consensus) {
2374 TPT.rollback(LastKnownGood);
2375 return false;
2376 }
2377 TPT.commit();
Nadav Rotem465834c2012-07-24 10:51:42 +00002378
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002379 // Check to see if any of the instructions supersumed by this addr mode are
2380 // non-local to I's BB.
2381 bool AnyNonLocal = false;
2382 for (unsigned i = 0, e = AddrModeInsts.size(); i != e; ++i) {
Chris Lattner6d71b7f2008-11-26 03:20:37 +00002383 if (IsNonLocalValue(AddrModeInsts[i], MemoryInst->getParent())) {
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002384 AnyNonLocal = true;
2385 break;
2386 }
2387 }
Eric Christopherc1ea1492008-09-24 05:32:41 +00002388
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002389 // If all the instructions matched are already in this BB, don't do anything.
2390 if (!AnyNonLocal) {
David Greene74e2d492010-01-05 01:27:11 +00002391 DEBUG(dbgs() << "CGP: Found local addrmode: " << AddrMode << "\n");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002392 return false;
2393 }
Eric Christopherc1ea1492008-09-24 05:32:41 +00002394
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002395 // Insert this computation right after this user. Since our caller is
2396 // scanning from the top of the BB to the bottom, reuse of the expr are
2397 // guaranteed to happen later.
Devang Patelc10e52a2011-09-06 18:49:53 +00002398 IRBuilder<> Builder(MemoryInst);
Eric Christopherc1ea1492008-09-24 05:32:41 +00002399
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002400 // Now that we determined the addressing expression we want to use and know
2401 // that we have to sink it into this block. Check to see if we have already
2402 // done this for some other load/store instr in this block. If so, reuse the
2403 // computation.
2404 Value *&SunkAddr = SunkAddrs[Addr];
2405 if (SunkAddr) {
David Greene74e2d492010-01-05 01:27:11 +00002406 DEBUG(dbgs() << "CGP: Reusing nonlocal addrmode: " << AddrMode << " for "
Dan Gohman29f2baf2009-07-25 01:13:51 +00002407 << *MemoryInst);
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002408 if (SunkAddr->getType() != Addr->getType())
Benjamin Kramer547b6c52011-09-27 20:39:19 +00002409 SunkAddr = Builder.CreateBitCast(SunkAddr, Addr->getType());
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002410 } else {
David Greene74e2d492010-01-05 01:27:11 +00002411 DEBUG(dbgs() << "CGP: SINKING nonlocal addrmode: " << AddrMode << " for "
Dan Gohman29f2baf2009-07-25 01:13:51 +00002412 << *MemoryInst);
Matt Arsenault37d42ec2013-09-06 00:18:43 +00002413 Type *IntPtrTy = TLI->getDataLayout()->getIntPtrType(Addr->getType());
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002414 Value *Result = 0;
Dan Gohmanca194452010-01-19 22:45:06 +00002415
2416 // Start with the base register. Do this first so that subsequent address
2417 // matching finds it last, which will prevent it from trying to match it
2418 // as the scaled value in case it happens to be a mul. That would be
2419 // problematic if we've sunk a different mul for the scale, because then
2420 // we'd end up sinking both muls.
2421 if (AddrMode.BaseReg) {
2422 Value *V = AddrMode.BaseReg;
Duncan Sands19d0b472010-02-16 11:11:14 +00002423 if (V->getType()->isPointerTy())
Devang Patelc10e52a2011-09-06 18:49:53 +00002424 V = Builder.CreatePtrToInt(V, IntPtrTy, "sunkaddr");
Dan Gohmanca194452010-01-19 22:45:06 +00002425 if (V->getType() != IntPtrTy)
Devang Patelc10e52a2011-09-06 18:49:53 +00002426 V = Builder.CreateIntCast(V, IntPtrTy, /*isSigned=*/true, "sunkaddr");
Dan Gohmanca194452010-01-19 22:45:06 +00002427 Result = V;
2428 }
2429
2430 // Add the scale value.
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002431 if (AddrMode.Scale) {
2432 Value *V = AddrMode.ScaledReg;
2433 if (V->getType() == IntPtrTy) {
2434 // done.
Duncan Sands19d0b472010-02-16 11:11:14 +00002435 } else if (V->getType()->isPointerTy()) {
Devang Patelc10e52a2011-09-06 18:49:53 +00002436 V = Builder.CreatePtrToInt(V, IntPtrTy, "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002437 } else if (cast<IntegerType>(IntPtrTy)->getBitWidth() <
2438 cast<IntegerType>(V->getType())->getBitWidth()) {
Devang Patelc10e52a2011-09-06 18:49:53 +00002439 V = Builder.CreateTrunc(V, IntPtrTy, "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002440 } else {
Devang Patelc10e52a2011-09-06 18:49:53 +00002441 V = Builder.CreateSExt(V, IntPtrTy, "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002442 }
2443 if (AddrMode.Scale != 1)
Devang Patelc10e52a2011-09-06 18:49:53 +00002444 V = Builder.CreateMul(V, ConstantInt::get(IntPtrTy, AddrMode.Scale),
2445 "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002446 if (Result)
Devang Patelc10e52a2011-09-06 18:49:53 +00002447 Result = Builder.CreateAdd(Result, V, "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002448 else
2449 Result = V;
2450 }
Eric Christopherc1ea1492008-09-24 05:32:41 +00002451
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002452 // Add in the BaseGV if present.
2453 if (AddrMode.BaseGV) {
Devang Patelc10e52a2011-09-06 18:49:53 +00002454 Value *V = Builder.CreatePtrToInt(AddrMode.BaseGV, IntPtrTy, "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002455 if (Result)
Devang Patelc10e52a2011-09-06 18:49:53 +00002456 Result = Builder.CreateAdd(Result, V, "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002457 else
2458 Result = V;
2459 }
Eric Christopherc1ea1492008-09-24 05:32:41 +00002460
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002461 // Add in the Base Offset if present.
2462 if (AddrMode.BaseOffs) {
Owen Andersonedb4a702009-07-24 23:12:02 +00002463 Value *V = ConstantInt::get(IntPtrTy, AddrMode.BaseOffs);
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002464 if (Result)
Devang Patelc10e52a2011-09-06 18:49:53 +00002465 Result = Builder.CreateAdd(Result, V, "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002466 else
2467 Result = V;
2468 }
2469
2470 if (Result == 0)
Owen Anderson5a1acd92009-07-31 20:28:14 +00002471 SunkAddr = Constant::getNullValue(Addr->getType());
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002472 else
Devang Patelc10e52a2011-09-06 18:49:53 +00002473 SunkAddr = Builder.CreateIntToPtr(Result, Addr->getType(), "sunkaddr");
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002474 }
Eric Christopherc1ea1492008-09-24 05:32:41 +00002475
Owen Andersondfb8c3b2010-11-19 22:15:03 +00002476 MemoryInst->replaceUsesOfWith(Repl, SunkAddr);
Eric Christopherc1ea1492008-09-24 05:32:41 +00002477
Chris Lattneraf1bcce2011-04-09 07:05:44 +00002478 // If we have no uses, recursively delete the value and all dead instructions
2479 // using it.
Owen Andersondfb8c3b2010-11-19 22:15:03 +00002480 if (Repl->use_empty()) {
Chris Lattneraf1bcce2011-04-09 07:05:44 +00002481 // This can cause recursive deletion, which can invalidate our iterator.
2482 // Use a WeakVH to hold onto it in case this happens.
2483 WeakVH IterHandle(CurInstIterator);
2484 BasicBlock *BB = CurInstIterator->getParent();
Nadav Rotem465834c2012-07-24 10:51:42 +00002485
Benjamin Kramer8bcc9712012-08-29 15:32:21 +00002486 RecursivelyDeleteTriviallyDeadInstructions(Repl, TLInfo);
Chris Lattneraf1bcce2011-04-09 07:05:44 +00002487
2488 if (IterHandle != CurInstIterator) {
2489 // If the iterator instruction was recursively deleted, start over at the
2490 // start of the block.
2491 CurInstIterator = BB->begin();
2492 SunkAddrs.clear();
Nadav Rotem465834c2012-07-24 10:51:42 +00002493 }
Dale Johannesenb67a6e662010-03-31 20:37:15 +00002494 }
Cameron Zwarichced753f2011-01-05 17:27:27 +00002495 ++NumMemoryInsts;
Chris Lattnerfeee64e2007-04-13 20:30:56 +00002496 return true;
2497}
2498
Evan Cheng1da25002008-02-26 02:42:37 +00002499/// OptimizeInlineAsmInst - If there are any memory operands, use
Chris Lattner728f9022008-11-25 07:09:13 +00002500/// OptimizeMemoryInst to sink their address computing into the block when
Evan Cheng1da25002008-02-26 02:42:37 +00002501/// possible / profitable.
Chris Lattner7a277142011-01-15 07:14:54 +00002502bool CodeGenPrepare::OptimizeInlineAsmInst(CallInst *CS) {
Evan Cheng1da25002008-02-26 02:42:37 +00002503 bool MadeChange = false;
Evan Cheng1da25002008-02-26 02:42:37 +00002504
Nadav Rotem465834c2012-07-24 10:51:42 +00002505 TargetLowering::AsmOperandInfoVector
Chris Lattner7a277142011-01-15 07:14:54 +00002506 TargetConstraints = TLI->ParseConstraints(CS);
Dale Johannesenf95f59a2010-09-16 18:30:55 +00002507 unsigned ArgNo = 0;
John Thompson1094c802010-09-13 18:15:37 +00002508 for (unsigned i = 0, e = TargetConstraints.size(); i != e; ++i) {
2509 TargetLowering::AsmOperandInfo &OpInfo = TargetConstraints[i];
Nadav Rotem465834c2012-07-24 10:51:42 +00002510
Evan Cheng1da25002008-02-26 02:42:37 +00002511 // Compute the constraint code and ConstraintType to use.
Dale Johannesence97d552010-06-25 21:55:36 +00002512 TLI->ComputeConstraintToUse(OpInfo, SDValue());
Evan Cheng1da25002008-02-26 02:42:37 +00002513
Eli Friedman666bbe32008-02-26 18:37:49 +00002514 if (OpInfo.ConstraintType == TargetLowering::C_Memory &&
2515 OpInfo.isIndirect) {
Chris Lattner7a277142011-01-15 07:14:54 +00002516 Value *OpVal = CS->getArgOperand(ArgNo++);
Chris Lattneree588de2011-01-15 07:29:01 +00002517 MadeChange |= OptimizeMemoryInst(CS, OpVal, OpVal->getType());
Dale Johannesenf95f59a2010-09-16 18:30:55 +00002518 } else if (OpInfo.Type == InlineAsm::isInput)
2519 ArgNo++;
Evan Cheng1da25002008-02-26 02:42:37 +00002520 }
2521
2522 return MadeChange;
2523}
2524
Dan Gohman99429a02009-10-16 20:59:35 +00002525/// MoveExtToFormExtLoad - Move a zext or sext fed by a load into the same
2526/// basic block as the load, unless conditions are unfavorable. This allows
2527/// SelectionDAG to fold the extend into the load.
2528///
2529bool CodeGenPrepare::MoveExtToFormExtLoad(Instruction *I) {
2530 // Look for a load being extended.
2531 LoadInst *LI = dyn_cast<LoadInst>(I->getOperand(0));
2532 if (!LI) return false;
2533
2534 // If they're already in the same block, there's nothing to do.
2535 if (LI->getParent() == I->getParent())
2536 return false;
2537
2538 // If the load has other users and the truncate is not free, this probably
2539 // isn't worthwhile.
2540 if (!LI->hasOneUse() &&
Bob Wilsonb6832a42010-09-22 18:44:56 +00002541 TLI && (TLI->isTypeLegal(TLI->getValueType(LI->getType())) ||
2542 !TLI->isTypeLegal(TLI->getValueType(I->getType()))) &&
Bob Wilson4ddcb6a2010-09-21 21:54:27 +00002543 !TLI->isTruncateFree(I->getType(), LI->getType()))
Dan Gohman99429a02009-10-16 20:59:35 +00002544 return false;
2545
2546 // Check whether the target supports casts folded into loads.
2547 unsigned LType;
2548 if (isa<ZExtInst>(I))
2549 LType = ISD::ZEXTLOAD;
2550 else {
2551 assert(isa<SExtInst>(I) && "Unexpected ext type!");
2552 LType = ISD::SEXTLOAD;
2553 }
Patrik Hagglunde98b7a02012-12-11 11:14:33 +00002554 if (TLI && !TLI->isLoadExtLegal(LType, TLI->getValueType(LI->getType())))
Dan Gohman99429a02009-10-16 20:59:35 +00002555 return false;
2556
2557 // Move the extend into the same block as the load, so that SelectionDAG
2558 // can fold it.
2559 I->removeFromParent();
2560 I->insertAfter(LI);
Cameron Zwarichced753f2011-01-05 17:27:27 +00002561 ++NumExtsMoved;
Dan Gohman99429a02009-10-16 20:59:35 +00002562 return true;
2563}
2564
Evan Chengd3d80172007-12-05 23:58:20 +00002565bool CodeGenPrepare::OptimizeExtUses(Instruction *I) {
2566 BasicBlock *DefBB = I->getParent();
2567
Bob Wilsonff714f92010-09-21 21:44:14 +00002568 // If the result of a {s|z}ext and its source are both live out, rewrite all
Evan Chengd3d80172007-12-05 23:58:20 +00002569 // other uses of the source with result of extension.
2570 Value *Src = I->getOperand(0);
2571 if (Src->hasOneUse())
2572 return false;
2573
Evan Cheng2011df42007-12-13 07:50:36 +00002574 // Only do this xform if truncating is free.
Gabor Greifaa261722008-02-26 19:13:21 +00002575 if (TLI && !TLI->isTruncateFree(I->getType(), Src->getType()))
Evan Cheng37c36ed2007-12-13 03:32:53 +00002576 return false;
2577
Evan Cheng7bc89422007-12-12 00:51:06 +00002578 // Only safe to perform the optimization if the source is also defined in
Evan Cheng63d33cf2007-12-12 02:53:41 +00002579 // this block.
2580 if (!isa<Instruction>(Src) || DefBB != cast<Instruction>(Src)->getParent())
Evan Cheng7bc89422007-12-12 00:51:06 +00002581 return false;
2582
Evan Chengd3d80172007-12-05 23:58:20 +00002583 bool DefIsLiveOut = false;
Chandler Carruthcdf47882014-03-09 03:16:01 +00002584 for (User *U : I->users()) {
2585 Instruction *UI = cast<Instruction>(U);
Evan Chengd3d80172007-12-05 23:58:20 +00002586
2587 // Figure out which BB this ext is used in.
Chandler Carruthcdf47882014-03-09 03:16:01 +00002588 BasicBlock *UserBB = UI->getParent();
Evan Chengd3d80172007-12-05 23:58:20 +00002589 if (UserBB == DefBB) continue;
2590 DefIsLiveOut = true;
2591 break;
2592 }
2593 if (!DefIsLiveOut)
2594 return false;
2595
Jim Grosbach0f38c1e2013-04-15 17:40:48 +00002596 // Make sure none of the uses are PHI nodes.
Chandler Carruthcdf47882014-03-09 03:16:01 +00002597 for (User *U : Src->users()) {
2598 Instruction *UI = cast<Instruction>(U);
2599 BasicBlock *UserBB = UI->getParent();
Evan Cheng37c36ed2007-12-13 03:32:53 +00002600 if (UserBB == DefBB) continue;
2601 // Be conservative. We don't want this xform to end up introducing
2602 // reloads just before load / store instructions.
Chandler Carruthcdf47882014-03-09 03:16:01 +00002603 if (isa<PHINode>(UI) || isa<LoadInst>(UI) || isa<StoreInst>(UI))
Evan Cheng63d33cf2007-12-12 02:53:41 +00002604 return false;
2605 }
2606
Evan Chengd3d80172007-12-05 23:58:20 +00002607 // InsertedTruncs - Only insert one trunc in each block once.
2608 DenseMap<BasicBlock*, Instruction*> InsertedTruncs;
2609
2610 bool MadeChange = false;
Chandler Carruthcdf47882014-03-09 03:16:01 +00002611 for (Use &U : Src->uses()) {
2612 Instruction *User = cast<Instruction>(U.getUser());
Evan Chengd3d80172007-12-05 23:58:20 +00002613
2614 // Figure out which BB this ext is used in.
2615 BasicBlock *UserBB = User->getParent();
2616 if (UserBB == DefBB) continue;
2617
2618 // Both src and def are live in this block. Rewrite the use.
2619 Instruction *&InsertedTrunc = InsertedTruncs[UserBB];
2620
2621 if (!InsertedTrunc) {
Bill Wendling8ddfc092011-08-16 20:45:24 +00002622 BasicBlock::iterator InsertPt = UserBB->getFirstInsertionPt();
Evan Chengd3d80172007-12-05 23:58:20 +00002623 InsertedTrunc = new TruncInst(I, Src->getType(), "", InsertPt);
Quentin Colombet3a4bf042014-02-06 21:44:56 +00002624 InsertedTruncsSet.insert(InsertedTrunc);
Evan Chengd3d80172007-12-05 23:58:20 +00002625 }
2626
2627 // Replace a use of the {s|z}ext source with a use of the result.
Chandler Carruthcdf47882014-03-09 03:16:01 +00002628 U = InsertedTrunc;
Cameron Zwarichced753f2011-01-05 17:27:27 +00002629 ++NumExtUses;
Evan Chengd3d80172007-12-05 23:58:20 +00002630 MadeChange = true;
2631 }
2632
2633 return MadeChange;
2634}
2635
Benjamin Kramer047d7ca2012-05-05 12:49:22 +00002636/// isFormingBranchFromSelectProfitable - Returns true if a SelectInst should be
2637/// turned into an explicit branch.
2638static bool isFormingBranchFromSelectProfitable(SelectInst *SI) {
2639 // FIXME: This should use the same heuristics as IfConversion to determine
2640 // whether a select is better represented as a branch. This requires that
2641 // branch probability metadata is preserved for the select, which is not the
2642 // case currently.
2643
2644 CmpInst *Cmp = dyn_cast<CmpInst>(SI->getCondition());
2645
2646 // If the branch is predicted right, an out of order CPU can avoid blocking on
2647 // the compare. Emit cmovs on compares with a memory operand as branches to
2648 // avoid stalls on the load from memory. If the compare has more than one use
2649 // there's probably another cmov or setcc around so it's not worth emitting a
2650 // branch.
2651 if (!Cmp)
2652 return false;
2653
2654 Value *CmpOp0 = Cmp->getOperand(0);
2655 Value *CmpOp1 = Cmp->getOperand(1);
2656
2657 // We check that the memory operand has one use to avoid uses of the loaded
2658 // value directly after the compare, making branches unprofitable.
2659 return Cmp->hasOneUse() &&
2660 ((isa<LoadInst>(CmpOp0) && CmpOp0->hasOneUse()) ||
2661 (isa<LoadInst>(CmpOp1) && CmpOp1->hasOneUse()));
2662}
2663
2664
Nadav Rotem9d832022012-09-02 12:10:19 +00002665/// If we have a SelectInst that will likely profit from branch prediction,
2666/// turn it into a branch.
Benjamin Kramer047d7ca2012-05-05 12:49:22 +00002667bool CodeGenPrepare::OptimizeSelectInst(SelectInst *SI) {
Nadav Rotem9d832022012-09-02 12:10:19 +00002668 bool VectorCond = !SI->getCondition()->getType()->isIntegerTy(1);
2669
2670 // Can we convert the 'select' to CF ?
2671 if (DisableSelectToBranch || OptSize || !TLI || VectorCond)
Benjamin Kramer047d7ca2012-05-05 12:49:22 +00002672 return false;
2673
Nadav Rotem9d832022012-09-02 12:10:19 +00002674 TargetLowering::SelectSupportKind SelectKind;
2675 if (VectorCond)
2676 SelectKind = TargetLowering::VectorMaskSelect;
2677 else if (SI->getType()->isVectorTy())
2678 SelectKind = TargetLowering::ScalarCondVectorVal;
2679 else
2680 SelectKind = TargetLowering::ScalarValSelect;
2681
2682 // Do we have efficient codegen support for this kind of 'selects' ?
2683 if (TLI->isSelectSupported(SelectKind)) {
2684 // We have efficient codegen support for the select instruction.
2685 // Check if it is profitable to keep this 'select'.
2686 if (!TLI->isPredictableSelectExpensive() ||
2687 !isFormingBranchFromSelectProfitable(SI))
2688 return false;
2689 }
Benjamin Kramer047d7ca2012-05-05 12:49:22 +00002690
2691 ModifiedDT = true;
2692
2693 // First, we split the block containing the select into 2 blocks.
2694 BasicBlock *StartBlock = SI->getParent();
2695 BasicBlock::iterator SplitPt = ++(BasicBlock::iterator(SI));
2696 BasicBlock *NextBlock = StartBlock->splitBasicBlock(SplitPt, "select.end");
2697
2698 // Create a new block serving as the landing pad for the branch.
2699 BasicBlock *SmallBlock = BasicBlock::Create(SI->getContext(), "select.mid",
2700 NextBlock->getParent(), NextBlock);
2701
2702 // Move the unconditional branch from the block with the select in it into our
2703 // landing pad block.
2704 StartBlock->getTerminator()->eraseFromParent();
2705 BranchInst::Create(NextBlock, SmallBlock);
2706
2707 // Insert the real conditional branch based on the original condition.
2708 BranchInst::Create(NextBlock, SmallBlock, SI->getCondition(), SI);
2709
2710 // The select itself is replaced with a PHI Node.
2711 PHINode *PN = PHINode::Create(SI->getType(), 2, "", NextBlock->begin());
2712 PN->takeName(SI);
2713 PN->addIncoming(SI->getTrueValue(), StartBlock);
2714 PN->addIncoming(SI->getFalseValue(), SmallBlock);
2715 SI->replaceAllUsesWith(PN);
2716 SI->eraseFromParent();
2717
2718 // Instruct OptimizeBlock to skip to the next block.
2719 CurInstIterator = StartBlock->end();
2720 ++NumSelectsExpanded;
2721 return true;
2722}
2723
Benjamin Kramer573ff362014-03-01 17:24:40 +00002724static bool isBroadcastShuffle(ShuffleVectorInst *SVI) {
Tim Northoveraeb8e062014-02-19 10:02:43 +00002725 SmallVector<int, 16> Mask(SVI->getShuffleMask());
2726 int SplatElem = -1;
2727 for (unsigned i = 0; i < Mask.size(); ++i) {
2728 if (SplatElem != -1 && Mask[i] != -1 && Mask[i] != SplatElem)
2729 return false;
2730 SplatElem = Mask[i];
2731 }
2732
2733 return true;
2734}
2735
2736/// Some targets have expensive vector shifts if the lanes aren't all the same
2737/// (e.g. x86 only introduced "vpsllvd" and friends with AVX2). In these cases
2738/// it's often worth sinking a shufflevector splat down to its use so that
2739/// codegen can spot all lanes are identical.
2740bool CodeGenPrepare::OptimizeShuffleVectorInst(ShuffleVectorInst *SVI) {
2741 BasicBlock *DefBB = SVI->getParent();
2742
2743 // Only do this xform if variable vector shifts are particularly expensive.
2744 if (!TLI || !TLI->isVectorShiftByScalarCheap(SVI->getType()))
2745 return false;
2746
2747 // We only expect better codegen by sinking a shuffle if we can recognise a
2748 // constant splat.
2749 if (!isBroadcastShuffle(SVI))
2750 return false;
2751
2752 // InsertedShuffles - Only insert a shuffle in each block once.
2753 DenseMap<BasicBlock*, Instruction*> InsertedShuffles;
2754
2755 bool MadeChange = false;
Chandler Carruthcdf47882014-03-09 03:16:01 +00002756 for (User *U : SVI->users()) {
2757 Instruction *UI = cast<Instruction>(U);
Tim Northoveraeb8e062014-02-19 10:02:43 +00002758
2759 // Figure out which BB this ext is used in.
Chandler Carruthcdf47882014-03-09 03:16:01 +00002760 BasicBlock *UserBB = UI->getParent();
Tim Northoveraeb8e062014-02-19 10:02:43 +00002761 if (UserBB == DefBB) continue;
2762
2763 // For now only apply this when the splat is used by a shift instruction.
Chandler Carruthcdf47882014-03-09 03:16:01 +00002764 if (!UI->isShift()) continue;
Tim Northoveraeb8e062014-02-19 10:02:43 +00002765
2766 // Everything checks out, sink the shuffle if the user's block doesn't
2767 // already have a copy.
2768 Instruction *&InsertedShuffle = InsertedShuffles[UserBB];
2769
2770 if (!InsertedShuffle) {
2771 BasicBlock::iterator InsertPt = UserBB->getFirstInsertionPt();
2772 InsertedShuffle = new ShuffleVectorInst(SVI->getOperand(0),
2773 SVI->getOperand(1),
2774 SVI->getOperand(2), "", InsertPt);
2775 }
2776
Chandler Carruthcdf47882014-03-09 03:16:01 +00002777 UI->replaceUsesOfWith(SVI, InsertedShuffle);
Tim Northoveraeb8e062014-02-19 10:02:43 +00002778 MadeChange = true;
2779 }
2780
2781 // If we removed all uses, nuke the shuffle.
2782 if (SVI->use_empty()) {
2783 SVI->eraseFromParent();
2784 MadeChange = true;
2785 }
2786
2787 return MadeChange;
2788}
2789
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002790bool CodeGenPrepare::OptimizeInst(Instruction *I) {
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002791 if (PHINode *P = dyn_cast<PHINode>(I)) {
2792 // It is possible for very late stage optimizations (such as SimplifyCFG)
2793 // to introduce PHI nodes too late to be cleaned up. If we detect such a
2794 // trivial PHI, go ahead and zap it here.
Benjamin Kramer30d249a2013-09-24 16:37:40 +00002795 if (Value *V = SimplifyInstruction(P, TLI ? TLI->getDataLayout() : 0,
2796 TLInfo, DT)) {
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002797 P->replaceAllUsesWith(V);
2798 P->eraseFromParent();
2799 ++NumPHIsElim;
Chris Lattneree588de2011-01-15 07:29:01 +00002800 return true;
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002801 }
Chris Lattneree588de2011-01-15 07:29:01 +00002802 return false;
2803 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002804
Chris Lattneree588de2011-01-15 07:29:01 +00002805 if (CastInst *CI = dyn_cast<CastInst>(I)) {
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002806 // If the source of the cast is a constant, then this should have
2807 // already been constant folded. The only reason NOT to constant fold
2808 // it is if something (e.g. LSR) was careful to place the constant
2809 // evaluation in a block other than then one that uses it (e.g. to hoist
2810 // the address of globals out of a loop). If this is the case, we don't
2811 // want to forward-subst the cast.
2812 if (isa<Constant>(CI->getOperand(0)))
2813 return false;
2814
Chris Lattneree588de2011-01-15 07:29:01 +00002815 if (TLI && OptimizeNoopCopyExpression(CI, *TLI))
2816 return true;
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002817
Chris Lattneree588de2011-01-15 07:29:01 +00002818 if (isa<ZExtInst>(I) || isa<SExtInst>(I)) {
Manuel Jacoba7c48f92014-03-13 13:36:25 +00002819 /// Sink a zext or sext into its user blocks if the target type doesn't
2820 /// fit in one register
2821 if (TLI && TLI->getTypeAction(CI->getContext(),
2822 TLI->getValueType(CI->getType())) ==
2823 TargetLowering::TypeExpandInteger) {
2824 return SinkCast(CI);
2825 } else {
2826 bool MadeChange = MoveExtToFormExtLoad(I);
2827 return MadeChange | OptimizeExtUses(I);
2828 }
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002829 }
Chris Lattneree588de2011-01-15 07:29:01 +00002830 return false;
2831 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002832
Chris Lattneree588de2011-01-15 07:29:01 +00002833 if (CmpInst *CI = dyn_cast<CmpInst>(I))
Hal Finkeldecb0242014-01-02 21:13:43 +00002834 if (!TLI || !TLI->hasMultipleConditionRegisters())
2835 return OptimizeCmpExpression(CI);
Nadav Rotem465834c2012-07-24 10:51:42 +00002836
Chris Lattneree588de2011-01-15 07:29:01 +00002837 if (LoadInst *LI = dyn_cast<LoadInst>(I)) {
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002838 if (TLI)
Hans Wennborgf3254832012-10-30 11:23:25 +00002839 return OptimizeMemoryInst(I, I->getOperand(0), LI->getType());
2840 return false;
Chris Lattneree588de2011-01-15 07:29:01 +00002841 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002842
Chris Lattneree588de2011-01-15 07:29:01 +00002843 if (StoreInst *SI = dyn_cast<StoreInst>(I)) {
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002844 if (TLI)
Chris Lattneree588de2011-01-15 07:29:01 +00002845 return OptimizeMemoryInst(I, SI->getOperand(1),
2846 SI->getOperand(0)->getType());
2847 return false;
2848 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002849
Chris Lattneree588de2011-01-15 07:29:01 +00002850 if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(I)) {
Cameron Zwarichd28c78e2011-01-06 02:44:52 +00002851 if (GEPI->hasAllZeroIndices()) {
2852 /// The GEP operand must be a pointer, so must its result -> BitCast
2853 Instruction *NC = new BitCastInst(GEPI->getOperand(0), GEPI->getType(),
2854 GEPI->getName(), GEPI);
2855 GEPI->replaceAllUsesWith(NC);
2856 GEPI->eraseFromParent();
2857 ++NumGEPsElim;
Cameron Zwarichd28c78e2011-01-06 02:44:52 +00002858 OptimizeInst(NC);
Chris Lattneree588de2011-01-15 07:29:01 +00002859 return true;
Cameron Zwarichd28c78e2011-01-06 02:44:52 +00002860 }
Chris Lattneree588de2011-01-15 07:29:01 +00002861 return false;
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002862 }
Nadav Rotem465834c2012-07-24 10:51:42 +00002863
Chris Lattneree588de2011-01-15 07:29:01 +00002864 if (CallInst *CI = dyn_cast<CallInst>(I))
2865 return OptimizeCallInst(CI);
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002866
Benjamin Kramer047d7ca2012-05-05 12:49:22 +00002867 if (SelectInst *SI = dyn_cast<SelectInst>(I))
2868 return OptimizeSelectInst(SI);
2869
Tim Northoveraeb8e062014-02-19 10:02:43 +00002870 if (ShuffleVectorInst *SVI = dyn_cast<ShuffleVectorInst>(I))
2871 return OptimizeShuffleVectorInst(SVI);
2872
Chris Lattneree588de2011-01-15 07:29:01 +00002873 return false;
Cameron Zwarich14ac8652011-01-06 02:37:26 +00002874}
2875
Chris Lattnerf2836d12007-03-31 04:06:36 +00002876// In this pass we look for GEP and cast instructions that are used
2877// across basic blocks and rewrite them to improve basic-block-at-a-time
2878// selection.
2879bool CodeGenPrepare::OptimizeBlock(BasicBlock &BB) {
Cameron Zwarichce3b9302011-01-06 00:42:50 +00002880 SunkAddrs.clear();
Cameron Zwarich5dd2aa22011-03-02 03:31:46 +00002881 bool MadeChange = false;
Eric Christopherc1ea1492008-09-24 05:32:41 +00002882
Chris Lattner7a277142011-01-15 07:14:54 +00002883 CurInstIterator = BB.begin();
Hans Wennborg02fbc712012-09-19 07:48:16 +00002884 while (CurInstIterator != BB.end())
Chris Lattner1b93be52011-01-15 07:25:29 +00002885 MadeChange |= OptimizeInst(CurInstIterator++);
Eric Christopherc1ea1492008-09-24 05:32:41 +00002886
Benjamin Kramer455fa352012-11-23 19:17:06 +00002887 MadeChange |= DupRetToEnableTailCallOpts(&BB);
2888
Chris Lattnerf2836d12007-03-31 04:06:36 +00002889 return MadeChange;
2890}
Devang Patel53771ba2011-08-18 00:50:51 +00002891
2892// llvm.dbg.value is far away from the value then iSel may not be able
Nadav Rotem465834c2012-07-24 10:51:42 +00002893// handle it properly. iSel will drop llvm.dbg.value if it can not
Devang Patel53771ba2011-08-18 00:50:51 +00002894// find a node corresponding to the value.
2895bool CodeGenPrepare::PlaceDbgValues(Function &F) {
2896 bool MadeChange = false;
2897 for (Function::iterator I = F.begin(), E = F.end(); I != E; ++I) {
2898 Instruction *PrevNonDbgInst = NULL;
2899 for (BasicBlock::iterator BI = I->begin(), BE = I->end(); BI != BE;) {
2900 Instruction *Insn = BI; ++BI;
2901 DbgValueInst *DVI = dyn_cast<DbgValueInst>(Insn);
2902 if (!DVI) {
2903 PrevNonDbgInst = Insn;
2904 continue;
2905 }
2906
2907 Instruction *VI = dyn_cast_or_null<Instruction>(DVI->getValue());
2908 if (VI && VI != PrevNonDbgInst && !VI->isTerminator()) {
2909 DEBUG(dbgs() << "Moving Debug Value before :\n" << *DVI << ' ' << *VI);
2910 DVI->removeFromParent();
2911 if (isa<PHINode>(VI))
2912 DVI->insertBefore(VI->getParent()->getFirstInsertionPt());
2913 else
2914 DVI->insertAfter(VI);
2915 MadeChange = true;
2916 ++NumDbgValueMoved;
2917 }
2918 }
2919 }
2920 return MadeChange;
2921}