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Chris Lattnered7b41e2003-05-27 15:45:27 +00001//===- ScalarReplAggregates.cpp - Scalar Replacement of Aggregates --------===//
Misha Brukmanfd939082005-04-21 23:48:37 +00002//
John Criswellb576c942003-10-20 19:43:21 +00003// The LLVM Compiler Infrastructure
4//
Chris Lattner4ee451d2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Misha Brukmanfd939082005-04-21 23:48:37 +00007//
John Criswellb576c942003-10-20 19:43:21 +00008//===----------------------------------------------------------------------===//
Chris Lattnered7b41e2003-05-27 15:45:27 +00009//
10// This transformation implements the well known scalar replacement of
11// aggregates transformation. This xform breaks up alloca instructions of
12// aggregate type (structure or array) into individual alloca instructions for
Chris Lattner38aec322003-09-11 16:45:55 +000013// each member (if possible). Then, if possible, it transforms the individual
14// alloca instructions into nice clean scalar SSA form.
15//
16// This combines a simple SRoA algorithm with the Mem2Reg algorithm because
17// often interact, especially for C++ programs. As such, iterating between
18// SRoA, then Mem2Reg until we run out of things to promote works well.
Chris Lattnered7b41e2003-05-27 15:45:27 +000019//
20//===----------------------------------------------------------------------===//
21
Chris Lattner0e5f4992006-12-19 21:40:18 +000022#define DEBUG_TYPE "scalarrepl"
Chris Lattnered7b41e2003-05-27 15:45:27 +000023#include "llvm/Transforms/Scalar.h"
Chris Lattner38aec322003-09-11 16:45:55 +000024#include "llvm/Constants.h"
25#include "llvm/DerivedTypes.h"
Chris Lattnered7b41e2003-05-27 15:45:27 +000026#include "llvm/Function.h"
Chris Lattner79b3bd32007-04-25 06:40:51 +000027#include "llvm/GlobalVariable.h"
Misha Brukmand8e1eea2004-07-29 17:05:13 +000028#include "llvm/Instructions.h"
Chris Lattner372dda82007-03-05 07:52:57 +000029#include "llvm/IntrinsicInst.h"
Owen Andersonfa5cbd62009-07-03 19:42:02 +000030#include "llvm/LLVMContext.h"
Chris Lattner72eaa0e2010-09-01 23:09:27 +000031#include "llvm/Module.h"
Chris Lattner372dda82007-03-05 07:52:57 +000032#include "llvm/Pass.h"
Cameron Zwarichc8279392011-05-24 03:10:43 +000033#include "llvm/Analysis/DIBuilder.h"
Cameron Zwarichb1686c32011-01-18 03:53:26 +000034#include "llvm/Analysis/Dominators.h"
Chris Lattnerc87c50a2011-01-23 22:04:55 +000035#include "llvm/Analysis/Loads.h"
Dan Gohman5034dd32010-12-15 20:02:24 +000036#include "llvm/Analysis/ValueTracking.h"
Chris Lattner38aec322003-09-11 16:45:55 +000037#include "llvm/Target/TargetData.h"
38#include "llvm/Transforms/Utils/PromoteMemToReg.h"
Devang Patel4afc90d2009-02-10 07:00:59 +000039#include "llvm/Transforms/Utils/Local.h"
Chris Lattnere0a1a5b2011-01-14 07:50:47 +000040#include "llvm/Transforms/Utils/SSAUpdater.h"
Chris Lattnera9be1df2010-11-18 06:26:49 +000041#include "llvm/Support/CallSite.h"
Chris Lattner95255282006-06-28 23:17:24 +000042#include "llvm/Support/Debug.h"
Torok Edwin7d696d82009-07-11 13:10:19 +000043#include "llvm/Support/ErrorHandling.h"
Chris Lattnera1888942005-12-12 07:19:13 +000044#include "llvm/Support/GetElementPtrTypeIterator.h"
Chris Lattner65a65022009-02-03 19:41:50 +000045#include "llvm/Support/IRBuilder.h"
Chris Lattnera1888942005-12-12 07:19:13 +000046#include "llvm/Support/MathExtras.h"
Chris Lattnerbdff5482009-08-23 04:37:46 +000047#include "llvm/Support/raw_ostream.h"
Chris Lattnerc87c50a2011-01-23 22:04:55 +000048#include "llvm/ADT/SetVector.h"
Chris Lattner1ccd1852007-02-12 22:56:41 +000049#include "llvm/ADT/SmallVector.h"
Reid Spencer551ccae2004-09-01 22:55:40 +000050#include "llvm/ADT/Statistic.h"
Chris Lattnerd8664732003-12-02 17:43:55 +000051using namespace llvm;
Brian Gaeked0fde302003-11-11 22:41:34 +000052
Chris Lattner0e5f4992006-12-19 21:40:18 +000053STATISTIC(NumReplaced, "Number of allocas broken up");
54STATISTIC(NumPromoted, "Number of allocas promoted");
Chris Lattnerc87c50a2011-01-23 22:04:55 +000055STATISTIC(NumAdjusted, "Number of scalar allocas adjusted to allow promotion");
Chris Lattner0e5f4992006-12-19 21:40:18 +000056STATISTIC(NumConverted, "Number of aggregates converted to scalar");
Chris Lattner79b3bd32007-04-25 06:40:51 +000057STATISTIC(NumGlobals, "Number of allocas copied from constant global");
Chris Lattnered7b41e2003-05-27 15:45:27 +000058
Chris Lattner0e5f4992006-12-19 21:40:18 +000059namespace {
Chris Lattner3e8b6632009-09-02 06:11:42 +000060 struct SROA : public FunctionPass {
Cameron Zwarichb1686c32011-01-18 03:53:26 +000061 SROA(int T, bool hasDT, char &ID)
62 : FunctionPass(ID), HasDomTree(hasDT) {
Devang Patelff366852007-07-09 21:19:23 +000063 if (T == -1)
Chris Lattnerb0e71ed2007-08-02 21:33:36 +000064 SRThreshold = 128;
Devang Patelff366852007-07-09 21:19:23 +000065 else
66 SRThreshold = T;
67 }
Devang Patel794fd752007-05-01 21:15:47 +000068
Chris Lattnered7b41e2003-05-27 15:45:27 +000069 bool runOnFunction(Function &F);
70
Chris Lattner38aec322003-09-11 16:45:55 +000071 bool performScalarRepl(Function &F);
72 bool performPromotion(Function &F);
73
Chris Lattnered7b41e2003-05-27 15:45:27 +000074 private:
Cameron Zwarichb1686c32011-01-18 03:53:26 +000075 bool HasDomTree;
Chris Lattner56c38522009-01-07 06:34:28 +000076 TargetData *TD;
Bob Wilson69743022011-01-13 20:59:44 +000077
Bob Wilsonb742def2009-12-18 20:14:40 +000078 /// DeadInsts - Keep track of instructions we have made dead, so that
79 /// we can remove them after we are done working.
80 SmallVector<Value*, 32> DeadInsts;
81
Chris Lattner39a1c042007-05-30 06:11:23 +000082 /// AllocaInfo - When analyzing uses of an alloca instruction, this captures
83 /// information about the uses. All these fields are initialized to false
84 /// and set to true when something is learned.
85 struct AllocaInfo {
Chris Lattner6c95d242011-01-23 07:29:29 +000086 /// The alloca to promote.
87 AllocaInst *AI;
88
Chris Lattner145c5322011-01-23 08:27:54 +000089 /// CheckedPHIs - This is a set of verified PHI nodes, to prevent infinite
90 /// looping and avoid redundant work.
91 SmallPtrSet<PHINode*, 8> CheckedPHIs;
92
Chris Lattner39a1c042007-05-30 06:11:23 +000093 /// isUnsafe - This is set to true if the alloca cannot be SROA'd.
94 bool isUnsafe : 1;
Bob Wilson69743022011-01-13 20:59:44 +000095
Chris Lattner39a1c042007-05-30 06:11:23 +000096 /// isMemCpySrc - This is true if this aggregate is memcpy'd from.
97 bool isMemCpySrc : 1;
98
Zhou Sheng33b0b8d2007-07-06 06:01:16 +000099 /// isMemCpyDst - This is true if this aggregate is memcpy'd into.
Chris Lattner39a1c042007-05-30 06:11:23 +0000100 bool isMemCpyDst : 1;
101
Chris Lattner7e9b4272011-01-16 06:18:28 +0000102 /// hasSubelementAccess - This is true if a subelement of the alloca is
103 /// ever accessed, or false if the alloca is only accessed with mem
104 /// intrinsics or load/store that only access the entire alloca at once.
105 bool hasSubelementAccess : 1;
106
107 /// hasALoadOrStore - This is true if there are any loads or stores to it.
108 /// The alloca may just be accessed with memcpy, for example, which would
109 /// not set this.
110 bool hasALoadOrStore : 1;
111
Chris Lattner6c95d242011-01-23 07:29:29 +0000112 explicit AllocaInfo(AllocaInst *ai)
113 : AI(ai), isUnsafe(false), isMemCpySrc(false), isMemCpyDst(false),
Chris Lattner7e9b4272011-01-16 06:18:28 +0000114 hasSubelementAccess(false), hasALoadOrStore(false) {}
Chris Lattner39a1c042007-05-30 06:11:23 +0000115 };
Bob Wilson69743022011-01-13 20:59:44 +0000116
Devang Patelff366852007-07-09 21:19:23 +0000117 unsigned SRThreshold;
118
Chris Lattnerd01a0da2011-01-23 07:05:44 +0000119 void MarkUnsafe(AllocaInfo &I, Instruction *User) {
120 I.isUnsafe = true;
121 DEBUG(dbgs() << " Transformation preventing inst: " << *User << '\n');
122 }
Chris Lattner39a1c042007-05-30 06:11:23 +0000123
Victor Hernandez6c146ee2010-01-21 23:05:53 +0000124 bool isSafeAllocaToScalarRepl(AllocaInst *AI);
Chris Lattner39a1c042007-05-30 06:11:23 +0000125
Chris Lattner6c95d242011-01-23 07:29:29 +0000126 void isSafeForScalarRepl(Instruction *I, uint64_t Offset, AllocaInfo &Info);
Chris Lattner145c5322011-01-23 08:27:54 +0000127 void isSafePHISelectUseForScalarRepl(Instruction *User, uint64_t Offset,
128 AllocaInfo &Info);
Chris Lattner6c95d242011-01-23 07:29:29 +0000129 void isSafeGEP(GetElementPtrInst *GEPI, uint64_t &Offset, AllocaInfo &Info);
130 void isSafeMemAccess(uint64_t Offset, uint64_t MemSize,
Chris Lattnerd01a0da2011-01-23 07:05:44 +0000131 const Type *MemOpType, bool isStore, AllocaInfo &Info,
Chris Lattner145c5322011-01-23 08:27:54 +0000132 Instruction *TheAccess, bool AllowWholeAccess);
Bob Wilsonb742def2009-12-18 20:14:40 +0000133 bool TypeHasComponent(const Type *T, uint64_t Offset, uint64_t Size);
Bob Wilsone88728d2009-12-19 06:53:17 +0000134 uint64_t FindElementAndOffset(const Type *&T, uint64_t &Offset,
135 const Type *&IdxTy);
Bob Wilson69743022011-01-13 20:59:44 +0000136
137 void DoScalarReplacement(AllocaInst *AI,
Victor Hernandez7b929da2009-10-23 21:09:37 +0000138 std::vector<AllocaInst*> &WorkList);
Bob Wilsonb742def2009-12-18 20:14:40 +0000139 void DeleteDeadInstructions();
Bob Wilson69743022011-01-13 20:59:44 +0000140
Bob Wilsonb742def2009-12-18 20:14:40 +0000141 void RewriteForScalarRepl(Instruction *I, AllocaInst *AI, uint64_t Offset,
142 SmallVector<AllocaInst*, 32> &NewElts);
143 void RewriteBitCast(BitCastInst *BC, AllocaInst *AI, uint64_t Offset,
144 SmallVector<AllocaInst*, 32> &NewElts);
145 void RewriteGEP(GetElementPtrInst *GEPI, AllocaInst *AI, uint64_t Offset,
146 SmallVector<AllocaInst*, 32> &NewElts);
147 void RewriteMemIntrinUserOfAlloca(MemIntrinsic *MI, Instruction *Inst,
Victor Hernandez7b929da2009-10-23 21:09:37 +0000148 AllocaInst *AI,
Chris Lattnerd93afec2009-01-07 07:18:45 +0000149 SmallVector<AllocaInst*, 32> &NewElts);
Victor Hernandez7b929da2009-10-23 21:09:37 +0000150 void RewriteStoreUserOfWholeAlloca(StoreInst *SI, AllocaInst *AI,
Chris Lattnerd2fa7812009-01-07 08:11:13 +0000151 SmallVector<AllocaInst*, 32> &NewElts);
Victor Hernandez7b929da2009-10-23 21:09:37 +0000152 void RewriteLoadUserOfWholeAlloca(LoadInst *LI, AllocaInst *AI,
Chris Lattner6e733d32009-01-28 20:16:43 +0000153 SmallVector<AllocaInst*, 32> &NewElts);
Bob Wilson69743022011-01-13 20:59:44 +0000154
Chris Lattner31d80102010-04-15 21:59:20 +0000155 static MemTransferInst *isOnlyCopiedFromConstantGlobal(AllocaInst *AI);
Chris Lattnered7b41e2003-05-27 15:45:27 +0000156 };
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000157
Cameron Zwarichb1686c32011-01-18 03:53:26 +0000158 // SROA_DT - SROA that uses DominatorTree.
159 struct SROA_DT : public SROA {
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000160 static char ID;
161 public:
Cameron Zwarichb1686c32011-01-18 03:53:26 +0000162 SROA_DT(int T = -1) : SROA(T, true, ID) {
163 initializeSROA_DTPass(*PassRegistry::getPassRegistry());
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000164 }
165
166 // getAnalysisUsage - This pass does not require any passes, but we know it
167 // will not alter the CFG, so say so.
168 virtual void getAnalysisUsage(AnalysisUsage &AU) const {
169 AU.addRequired<DominatorTree>();
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000170 AU.setPreservesCFG();
171 }
172 };
173
174 // SROA_SSAUp - SROA that uses SSAUpdater.
175 struct SROA_SSAUp : public SROA {
176 static char ID;
177 public:
178 SROA_SSAUp(int T = -1) : SROA(T, false, ID) {
179 initializeSROA_SSAUpPass(*PassRegistry::getPassRegistry());
180 }
181
182 // getAnalysisUsage - This pass does not require any passes, but we know it
183 // will not alter the CFG, so say so.
184 virtual void getAnalysisUsage(AnalysisUsage &AU) const {
185 AU.setPreservesCFG();
186 }
187 };
188
Chris Lattnered7b41e2003-05-27 15:45:27 +0000189}
190
Cameron Zwarichb1686c32011-01-18 03:53:26 +0000191char SROA_DT::ID = 0;
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000192char SROA_SSAUp::ID = 0;
193
Cameron Zwarichb1686c32011-01-18 03:53:26 +0000194INITIALIZE_PASS_BEGIN(SROA_DT, "scalarrepl",
195 "Scalar Replacement of Aggregates (DT)", false, false)
Owen Anderson2ab36d32010-10-12 19:48:12 +0000196INITIALIZE_PASS_DEPENDENCY(DominatorTree)
Cameron Zwarichb1686c32011-01-18 03:53:26 +0000197INITIALIZE_PASS_END(SROA_DT, "scalarrepl",
198 "Scalar Replacement of Aggregates (DT)", false, false)
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000199
200INITIALIZE_PASS_BEGIN(SROA_SSAUp, "scalarrepl-ssa",
201 "Scalar Replacement of Aggregates (SSAUp)", false, false)
202INITIALIZE_PASS_END(SROA_SSAUp, "scalarrepl-ssa",
203 "Scalar Replacement of Aggregates (SSAUp)", false, false)
Dan Gohman844731a2008-05-13 00:00:25 +0000204
Brian Gaeked0fde302003-11-11 22:41:34 +0000205// Public interface to the ScalarReplAggregates pass
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000206FunctionPass *llvm::createScalarReplAggregatesPass(int Threshold,
Cameron Zwarichb1686c32011-01-18 03:53:26 +0000207 bool UseDomTree) {
208 if (UseDomTree)
209 return new SROA_DT(Threshold);
Chris Lattnerb352d6e2011-01-14 08:13:00 +0000210 return new SROA_SSAUp(Threshold);
Devang Patelff366852007-07-09 21:19:23 +0000211}
Chris Lattnered7b41e2003-05-27 15:45:27 +0000212
213
Chris Lattner4cc576b2010-04-16 00:24:57 +0000214//===----------------------------------------------------------------------===//
215// Convert To Scalar Optimization.
216//===----------------------------------------------------------------------===//
217
218namespace {
Chris Lattnera001b662010-04-16 00:38:19 +0000219/// ConvertToScalarInfo - This class implements the "Convert To Scalar"
220/// optimization, which scans the uses of an alloca and determines if it can
221/// rewrite it in terms of a single new alloca that can be mem2reg'd.
Chris Lattner4cc576b2010-04-16 00:24:57 +0000222class ConvertToScalarInfo {
Cameron Zwarichd4c9c3e2011-03-16 00:13:35 +0000223 /// AllocaSize - The size of the alloca being considered in bytes.
Chris Lattner4cc576b2010-04-16 00:24:57 +0000224 unsigned AllocaSize;
225 const TargetData &TD;
Bob Wilson69743022011-01-13 20:59:44 +0000226
Chris Lattnera0bada72010-04-16 02:32:17 +0000227 /// IsNotTrivial - This is set to true if there is some access to the object
Chris Lattnera001b662010-04-16 00:38:19 +0000228 /// which means that mem2reg can't promote it.
Chris Lattner4cc576b2010-04-16 00:24:57 +0000229 bool IsNotTrivial;
Bob Wilson69743022011-01-13 20:59:44 +0000230
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000231 /// ScalarKind - Tracks the kind of alloca being considered for promotion,
232 /// computed based on the uses of the alloca rather than the LLVM type system.
233 enum {
234 Unknown,
Cameron Zwarich51797822011-06-13 21:44:40 +0000235
236 // An access via GEPs that is consistent with element access of a vector
237 // type. This will not be converted into a vector unless there is a later
238 // access using an actual vector type.
239 ImplicitVector,
240
241 // An access via vector operations and possibly GEPs that are consistent
242 // with the layout of the vector type.
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000243 Vector,
Cameron Zwarich51797822011-06-13 21:44:40 +0000244
245 // An integer bag-of-bits with bitwise operations for insertion and
246 // extraction. Any combination of types can be converted into this kind
247 // of scalar.
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000248 Integer
249 } ScalarKind;
250
Chris Lattnera001b662010-04-16 00:38:19 +0000251 /// VectorTy - This tracks the type that we should promote the vector to if
252 /// it is possible to turn it into a vector. This starts out null, and if it
253 /// isn't possible to turn into a vector type, it gets set to VoidTy.
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000254 const VectorType *VectorTy;
Bob Wilson69743022011-01-13 20:59:44 +0000255
Cameron Zwarich1bcdb6f2011-03-16 08:13:42 +0000256 /// HadNonMemTransferAccess - True if there is at least one access to the
257 /// alloca that is not a MemTransferInst. We don't want to turn structs into
258 /// large integers unless there is some potential for optimization.
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000259 bool HadNonMemTransferAccess;
260
Chris Lattner4cc576b2010-04-16 00:24:57 +0000261public:
262 explicit ConvertToScalarInfo(unsigned Size, const TargetData &td)
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000263 : AllocaSize(Size), TD(td), IsNotTrivial(false), ScalarKind(Unknown),
Cameron Zwarich51797822011-06-13 21:44:40 +0000264 VectorTy(0), HadNonMemTransferAccess(false) { }
Bob Wilson69743022011-01-13 20:59:44 +0000265
Chris Lattnera001b662010-04-16 00:38:19 +0000266 AllocaInst *TryConvert(AllocaInst *AI);
Bob Wilson69743022011-01-13 20:59:44 +0000267
Chris Lattner4cc576b2010-04-16 00:24:57 +0000268private:
269 bool CanConvertToScalar(Value *V, uint64_t Offset);
Cameron Zwarichdd689122011-06-13 21:44:31 +0000270 void MergeInType(const Type *In, uint64_t Offset);
Cameron Zwarichc9ecd142011-03-09 05:43:01 +0000271 bool MergeInVectorType(const VectorType *VInTy, uint64_t Offset);
Chris Lattner4cc576b2010-04-16 00:24:57 +0000272 void ConvertUsesToScalar(Value *Ptr, AllocaInst *NewAI, uint64_t Offset);
Bob Wilson69743022011-01-13 20:59:44 +0000273
Chris Lattner4cc576b2010-04-16 00:24:57 +0000274 Value *ConvertScalar_ExtractValue(Value *NV, const Type *ToType,
275 uint64_t Offset, IRBuilder<> &Builder);
276 Value *ConvertScalar_InsertValue(Value *StoredVal, Value *ExistingVal,
277 uint64_t Offset, IRBuilder<> &Builder);
278};
279} // end anonymous namespace.
280
Chris Lattner91abace2010-09-01 05:14:33 +0000281
Chris Lattnera001b662010-04-16 00:38:19 +0000282/// TryConvert - Analyze the specified alloca, and if it is safe to do so,
283/// rewrite it to be a new alloca which is mem2reg'able. This returns the new
284/// alloca if possible or null if not.
285AllocaInst *ConvertToScalarInfo::TryConvert(AllocaInst *AI) {
286 // If we can't convert this scalar, or if mem2reg can trivially do it, bail
287 // out.
288 if (!CanConvertToScalar(AI, 0) || !IsNotTrivial)
289 return 0;
Bob Wilson69743022011-01-13 20:59:44 +0000290
Cameron Zwarich51797822011-06-13 21:44:40 +0000291 // If an alloca has only memset / memcpy uses, it may still have an Unknown
292 // ScalarKind. Treat it as an Integer below.
293 if (ScalarKind == Unknown)
294 ScalarKind = Integer;
295
Chris Lattnera001b662010-04-16 00:38:19 +0000296 // If we were able to find a vector type that can handle this with
297 // insert/extract elements, and if there was at least one use that had
298 // a vector type, promote this to a vector. We don't want to promote
299 // random stuff that doesn't use vectors (e.g. <9 x double>) because then
300 // we just get a lot of insert/extracts. If at least one vector is
301 // involved, then we probably really do have a union of vector/array.
302 const Type *NewTy;
Cameron Zwarich51797822011-06-13 21:44:40 +0000303 if (VectorTy && ScalarKind != ImplicitVector) {
Chris Lattnera001b662010-04-16 00:38:19 +0000304 DEBUG(dbgs() << "CONVERT TO VECTOR: " << *AI << "\n TYPE = "
305 << *VectorTy << '\n');
306 NewTy = VectorTy; // Use the vector type.
307 } else {
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000308 unsigned BitWidth = AllocaSize * 8;
Cameron Zwarich51797822011-06-13 21:44:40 +0000309 if ((ScalarKind == ImplicitVector || ScalarKind == Integer) &&
310 !HadNonMemTransferAccess && !TD.fitsInLegalInteger(BitWidth))
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000311 return 0;
312
Chris Lattnera001b662010-04-16 00:38:19 +0000313 DEBUG(dbgs() << "CONVERT TO SCALAR INTEGER: " << *AI << "\n");
314 // Create and insert the integer alloca.
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000315 NewTy = IntegerType::get(AI->getContext(), BitWidth);
Chris Lattnera001b662010-04-16 00:38:19 +0000316 }
317 AllocaInst *NewAI = new AllocaInst(NewTy, 0, "", AI->getParent()->begin());
318 ConvertUsesToScalar(AI, NewAI, 0);
319 return NewAI;
320}
321
322/// MergeInType - Add the 'In' type to the accumulated vector type (VectorTy)
323/// so far at the offset specified by Offset (which is specified in bytes).
Chris Lattner4cc576b2010-04-16 00:24:57 +0000324///
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000325/// There are three cases we handle here:
Chris Lattner4cc576b2010-04-16 00:24:57 +0000326/// 1) A union of vector types of the same size and potentially its elements.
327/// Here we turn element accesses into insert/extract element operations.
328/// This promotes a <4 x float> with a store of float to the third element
329/// into a <4 x float> that uses insert element.
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000330/// 2) A union of vector types with power-of-2 size differences, e.g. a float,
331/// <2 x float> and <4 x float>. Here we turn element accesses into insert
332/// and extract element operations, and <2 x float> accesses into a cast to
333/// <2 x double>, an extract, and a cast back to <2 x float>.
334/// 3) A fully general blob of memory, which we turn into some (potentially
Chris Lattner4cc576b2010-04-16 00:24:57 +0000335/// large) integer type with extract and insert operations where the loads
Chris Lattnera001b662010-04-16 00:38:19 +0000336/// and stores would mutate the memory. We mark this by setting VectorTy
337/// to VoidTy.
Cameron Zwarichdd689122011-06-13 21:44:31 +0000338void ConvertToScalarInfo::MergeInType(const Type *In, uint64_t Offset) {
Chris Lattnera001b662010-04-16 00:38:19 +0000339 // If we already decided to turn this into a blob of integer memory, there is
340 // nothing to be done.
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000341 if (ScalarKind == Integer)
Chris Lattner4cc576b2010-04-16 00:24:57 +0000342 return;
Bob Wilson69743022011-01-13 20:59:44 +0000343
Chris Lattner4cc576b2010-04-16 00:24:57 +0000344 // If this could be contributing to a vector, analyze it.
345
346 // If the In type is a vector that is the same size as the alloca, see if it
347 // matches the existing VecTy.
348 if (const VectorType *VInTy = dyn_cast<VectorType>(In)) {
Cameron Zwarichc9ecd142011-03-09 05:43:01 +0000349 if (MergeInVectorType(VInTy, Offset))
Chris Lattner4cc576b2010-04-16 00:24:57 +0000350 return;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000351 } else if (In->isFloatTy() || In->isDoubleTy() ||
352 (In->isIntegerTy() && In->getPrimitiveSizeInBits() >= 8 &&
353 isPowerOf2_32(In->getPrimitiveSizeInBits()))) {
Cameron Zwarich9827b782011-03-29 05:19:52 +0000354 // Full width accesses can be ignored, because they can always be turned
355 // into bitcasts.
356 unsigned EltSize = In->getPrimitiveSizeInBits()/8;
Cameron Zwarichdd689122011-06-13 21:44:31 +0000357 if (EltSize == AllocaSize)
Cameron Zwarich9827b782011-03-29 05:19:52 +0000358 return;
Cameron Zwarich5fc12822011-04-20 21:48:16 +0000359
Chris Lattner4cc576b2010-04-16 00:24:57 +0000360 // If we're accessing something that could be an element of a vector, see
361 // if the implied vector agrees with what we already have and if Offset is
362 // compatible with it.
Cameron Zwarich96cc1d02011-06-09 01:45:33 +0000363 if (Offset % EltSize == 0 && AllocaSize % EltSize == 0 &&
Cameron Zwarichc4f78202011-06-09 01:52:44 +0000364 (!VectorTy || Offset * 8 < VectorTy->getPrimitiveSizeInBits())) {
Cameron Zwarich5fc12822011-04-20 21:48:16 +0000365 if (!VectorTy) {
Cameron Zwarich51797822011-06-13 21:44:40 +0000366 ScalarKind = ImplicitVector;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000367 VectorTy = VectorType::get(In, AllocaSize/EltSize);
Cameron Zwarich5fc12822011-04-20 21:48:16 +0000368 return;
369 }
370
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000371 unsigned CurrentEltSize = VectorTy->getElementType()
Cameron Zwarich5fc12822011-04-20 21:48:16 +0000372 ->getPrimitiveSizeInBits()/8;
373 if (EltSize == CurrentEltSize)
374 return;
Cameron Zwarich344731c2011-04-20 21:48:38 +0000375
376 if (In->isIntegerTy() && isPowerOf2_32(AllocaSize / EltSize))
377 return;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000378 }
379 }
Bob Wilson69743022011-01-13 20:59:44 +0000380
Chris Lattner4cc576b2010-04-16 00:24:57 +0000381 // Otherwise, we have a case that we can't handle with an optimized vector
382 // form. We can still turn this into a large integer.
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000383 ScalarKind = Integer;
384 VectorTy = 0;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000385}
386
Cameron Zwarichc9ecd142011-03-09 05:43:01 +0000387/// MergeInVectorType - Handles the vector case of MergeInType, returning true
388/// if the type was successfully merged and false otherwise.
389bool ConvertToScalarInfo::MergeInVectorType(const VectorType *VInTy,
390 uint64_t Offset) {
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000391 // TODO: Support nonzero offsets?
392 if (Offset != 0)
393 return false;
394
395 // Only allow vectors that are a power-of-2 away from the size of the alloca.
396 if (!isPowerOf2_64(AllocaSize / (VInTy->getBitWidth() / 8)))
397 return false;
398
399 // If this the first vector we see, remember the type so that we know the
400 // element size.
401 if (!VectorTy) {
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000402 ScalarKind = Vector;
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000403 VectorTy = VInTy;
Cameron Zwarichc9ecd142011-03-09 05:43:01 +0000404 return true;
405 }
406
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000407 unsigned BitWidth = VectorTy->getBitWidth();
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000408 unsigned InBitWidth = VInTy->getBitWidth();
409
410 // Vectors of the same size can be converted using a simple bitcast.
Cameron Zwarich51797822011-06-13 21:44:40 +0000411 if (InBitWidth == BitWidth && AllocaSize == (InBitWidth / 8)) {
412 ScalarKind = Vector;
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000413 return true;
Cameron Zwarich51797822011-06-13 21:44:40 +0000414 }
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000415
Cameron Zwarichdeb74f22011-06-13 21:44:35 +0000416 const Type *ElementTy = VectorTy->getElementType();
417 const Type *InElementTy = VInTy->getElementType();
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000418
419 // Do not allow mixed integer and floating-point accesses from vectors of
420 // different sizes.
421 if (ElementTy->isFloatingPointTy() != InElementTy->isFloatingPointTy())
422 return false;
423
424 if (ElementTy->isFloatingPointTy()) {
425 // Only allow floating-point vectors of different sizes if they have the
426 // same element type.
427 // TODO: This could be loosened a bit, but would anything benefit?
428 if (ElementTy != InElementTy)
429 return false;
430
431 // There are no arbitrary-precision floating-point types, which limits the
432 // number of legal vector types with larger element types that we can form
433 // to bitcast and extract a subvector.
434 // TODO: We could support some more cases with mixed fp128 and double here.
435 if (!(BitWidth == 64 || BitWidth == 128) ||
436 !(InBitWidth == 64 || InBitWidth == 128))
437 return false;
438 } else {
439 assert(ElementTy->isIntegerTy() && "Vector elements must be either integer "
440 "or floating-point.");
441 unsigned BitWidth = ElementTy->getPrimitiveSizeInBits();
442 unsigned InBitWidth = InElementTy->getPrimitiveSizeInBits();
443
444 // Do not allow integer types smaller than a byte or types whose widths are
445 // not a multiple of a byte.
446 if (BitWidth < 8 || InBitWidth < 8 ||
447 BitWidth % 8 != 0 || InBitWidth % 8 != 0)
448 return false;
449 }
450
451 // Pick the largest of the two vector types.
Cameron Zwarich51797822011-06-13 21:44:40 +0000452 ScalarKind = Vector;
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000453 if (InBitWidth > BitWidth)
454 VectorTy = VInTy;
455
456 return true;
Cameron Zwarichc9ecd142011-03-09 05:43:01 +0000457}
458
Chris Lattner4cc576b2010-04-16 00:24:57 +0000459/// CanConvertToScalar - V is a pointer. If we can convert the pointee and all
460/// its accesses to a single vector type, return true and set VecTy to
461/// the new type. If we could convert the alloca into a single promotable
462/// integer, return true but set VecTy to VoidTy. Further, if the use is not a
463/// completely trivial use that mem2reg could promote, set IsNotTrivial. Offset
464/// is the current offset from the base of the alloca being analyzed.
465///
466/// If we see at least one access to the value that is as a vector type, set the
467/// SawVec flag.
468bool ConvertToScalarInfo::CanConvertToScalar(Value *V, uint64_t Offset) {
469 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI!=E; ++UI) {
470 Instruction *User = cast<Instruction>(*UI);
Bob Wilson69743022011-01-13 20:59:44 +0000471
Chris Lattner4cc576b2010-04-16 00:24:57 +0000472 if (LoadInst *LI = dyn_cast<LoadInst>(User)) {
473 // Don't break volatile loads.
474 if (LI->isVolatile())
475 return false;
Dale Johannesen0488fb62010-09-30 23:57:10 +0000476 // Don't touch MMX operations.
477 if (LI->getType()->isX86_MMXTy())
478 return false;
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000479 HadNonMemTransferAccess = true;
Cameron Zwarichdd689122011-06-13 21:44:31 +0000480 MergeInType(LI->getType(), Offset);
Chris Lattner4cc576b2010-04-16 00:24:57 +0000481 continue;
482 }
Bob Wilson69743022011-01-13 20:59:44 +0000483
Chris Lattner4cc576b2010-04-16 00:24:57 +0000484 if (StoreInst *SI = dyn_cast<StoreInst>(User)) {
485 // Storing the pointer, not into the value?
486 if (SI->getOperand(0) == V || SI->isVolatile()) return false;
Dale Johannesen0488fb62010-09-30 23:57:10 +0000487 // Don't touch MMX operations.
488 if (SI->getOperand(0)->getType()->isX86_MMXTy())
489 return false;
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000490 HadNonMemTransferAccess = true;
Cameron Zwarichdd689122011-06-13 21:44:31 +0000491 MergeInType(SI->getOperand(0)->getType(), Offset);
Chris Lattner4cc576b2010-04-16 00:24:57 +0000492 continue;
493 }
Bob Wilson69743022011-01-13 20:59:44 +0000494
Chris Lattner4cc576b2010-04-16 00:24:57 +0000495 if (BitCastInst *BCI = dyn_cast<BitCastInst>(User)) {
Chris Lattnera001b662010-04-16 00:38:19 +0000496 IsNotTrivial = true; // Can't be mem2reg'd.
Chris Lattner4cc576b2010-04-16 00:24:57 +0000497 if (!CanConvertToScalar(BCI, Offset))
498 return false;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000499 continue;
500 }
501
502 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(User)) {
503 // If this is a GEP with a variable indices, we can't handle it.
504 if (!GEP->hasAllConstantIndices())
505 return false;
Bob Wilson69743022011-01-13 20:59:44 +0000506
Chris Lattner4cc576b2010-04-16 00:24:57 +0000507 // Compute the offset that this GEP adds to the pointer.
508 SmallVector<Value*, 8> Indices(GEP->op_begin()+1, GEP->op_end());
509 uint64_t GEPOffset = TD.getIndexedOffset(GEP->getPointerOperandType(),
510 &Indices[0], Indices.size());
511 // See if all uses can be converted.
512 if (!CanConvertToScalar(GEP, Offset+GEPOffset))
513 return false;
Chris Lattnera001b662010-04-16 00:38:19 +0000514 IsNotTrivial = true; // Can't be mem2reg'd.
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000515 HadNonMemTransferAccess = true;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000516 continue;
517 }
518
519 // If this is a constant sized memset of a constant value (e.g. 0) we can
520 // handle it.
521 if (MemSetInst *MSI = dyn_cast<MemSetInst>(User)) {
522 // Store of constant value and constant size.
Chris Lattnera001b662010-04-16 00:38:19 +0000523 if (!isa<ConstantInt>(MSI->getValue()) ||
524 !isa<ConstantInt>(MSI->getLength()))
525 return false;
526 IsNotTrivial = true; // Can't be mem2reg'd.
Cameron Zwarich85b0f462011-03-16 00:13:44 +0000527 HadNonMemTransferAccess = true;
Chris Lattnera001b662010-04-16 00:38:19 +0000528 continue;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000529 }
530
531 // If this is a memcpy or memmove into or out of the whole allocation, we
532 // can handle it like a load or store of the scalar type.
533 if (MemTransferInst *MTI = dyn_cast<MemTransferInst>(User)) {
Chris Lattnera001b662010-04-16 00:38:19 +0000534 ConstantInt *Len = dyn_cast<ConstantInt>(MTI->getLength());
535 if (Len == 0 || Len->getZExtValue() != AllocaSize || Offset != 0)
536 return false;
Bob Wilson69743022011-01-13 20:59:44 +0000537
Chris Lattnera001b662010-04-16 00:38:19 +0000538 IsNotTrivial = true; // Can't be mem2reg'd.
539 continue;
Chris Lattner4cc576b2010-04-16 00:24:57 +0000540 }
Bob Wilson69743022011-01-13 20:59:44 +0000541
Chris Lattner4cc576b2010-04-16 00:24:57 +0000542 // Otherwise, we cannot handle this!
543 return false;
544 }
Bob Wilson69743022011-01-13 20:59:44 +0000545
Chris Lattner4cc576b2010-04-16 00:24:57 +0000546 return true;
547}
548
549/// ConvertUsesToScalar - Convert all of the users of Ptr to use the new alloca
550/// directly. This happens when we are converting an "integer union" to a
551/// single integer scalar, or when we are converting a "vector union" to a
552/// vector with insert/extractelement instructions.
553///
554/// Offset is an offset from the original alloca, in bits that need to be
555/// shifted to the right. By the end of this, there should be no uses of Ptr.
556void ConvertToScalarInfo::ConvertUsesToScalar(Value *Ptr, AllocaInst *NewAI,
557 uint64_t Offset) {
558 while (!Ptr->use_empty()) {
559 Instruction *User = cast<Instruction>(Ptr->use_back());
560
561 if (BitCastInst *CI = dyn_cast<BitCastInst>(User)) {
562 ConvertUsesToScalar(CI, NewAI, Offset);
563 CI->eraseFromParent();
564 continue;
565 }
566
567 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(User)) {
568 // Compute the offset that this GEP adds to the pointer.
569 SmallVector<Value*, 8> Indices(GEP->op_begin()+1, GEP->op_end());
570 uint64_t GEPOffset = TD.getIndexedOffset(GEP->getPointerOperandType(),
571 &Indices[0], Indices.size());
572 ConvertUsesToScalar(GEP, NewAI, Offset+GEPOffset*8);
573 GEP->eraseFromParent();
574 continue;
575 }
Bob Wilson69743022011-01-13 20:59:44 +0000576
Chris Lattner61db1f52010-12-26 22:57:41 +0000577 IRBuilder<> Builder(User);
Bob Wilson69743022011-01-13 20:59:44 +0000578
Chris Lattner4cc576b2010-04-16 00:24:57 +0000579 if (LoadInst *LI = dyn_cast<LoadInst>(User)) {
580 // The load is a bit extract from NewAI shifted right by Offset bits.
581 Value *LoadedVal = Builder.CreateLoad(NewAI, "tmp");
582 Value *NewLoadVal
583 = ConvertScalar_ExtractValue(LoadedVal, LI->getType(), Offset, Builder);
584 LI->replaceAllUsesWith(NewLoadVal);
585 LI->eraseFromParent();
586 continue;
587 }
Bob Wilson69743022011-01-13 20:59:44 +0000588
Chris Lattner4cc576b2010-04-16 00:24:57 +0000589 if (StoreInst *SI = dyn_cast<StoreInst>(User)) {
590 assert(SI->getOperand(0) != Ptr && "Consistency error!");
591 Instruction *Old = Builder.CreateLoad(NewAI, NewAI->getName()+".in");
592 Value *New = ConvertScalar_InsertValue(SI->getOperand(0), Old, Offset,
593 Builder);
594 Builder.CreateStore(New, NewAI);
595 SI->eraseFromParent();
Bob Wilson69743022011-01-13 20:59:44 +0000596
Chris Lattner4cc576b2010-04-16 00:24:57 +0000597 // If the load we just inserted is now dead, then the inserted store
598 // overwrote the entire thing.
599 if (Old->use_empty())
600 Old->eraseFromParent();
601 continue;
602 }
Bob Wilson69743022011-01-13 20:59:44 +0000603
Chris Lattner4cc576b2010-04-16 00:24:57 +0000604 // If this is a constant sized memset of a constant value (e.g. 0) we can
605 // transform it into a store of the expanded constant value.
606 if (MemSetInst *MSI = dyn_cast<MemSetInst>(User)) {
607 assert(MSI->getRawDest() == Ptr && "Consistency error!");
608 unsigned NumBytes = cast<ConstantInt>(MSI->getLength())->getZExtValue();
609 if (NumBytes != 0) {
610 unsigned Val = cast<ConstantInt>(MSI->getValue())->getZExtValue();
Bob Wilson69743022011-01-13 20:59:44 +0000611
Chris Lattner4cc576b2010-04-16 00:24:57 +0000612 // Compute the value replicated the right number of times.
613 APInt APVal(NumBytes*8, Val);
614
615 // Splat the value if non-zero.
616 if (Val)
617 for (unsigned i = 1; i != NumBytes; ++i)
618 APVal |= APVal << 8;
Bob Wilson69743022011-01-13 20:59:44 +0000619
Chris Lattner4cc576b2010-04-16 00:24:57 +0000620 Instruction *Old = Builder.CreateLoad(NewAI, NewAI->getName()+".in");
621 Value *New = ConvertScalar_InsertValue(
622 ConstantInt::get(User->getContext(), APVal),
623 Old, Offset, Builder);
624 Builder.CreateStore(New, NewAI);
Bob Wilson69743022011-01-13 20:59:44 +0000625
Chris Lattner4cc576b2010-04-16 00:24:57 +0000626 // If the load we just inserted is now dead, then the memset overwrote
627 // the entire thing.
628 if (Old->use_empty())
Bob Wilson69743022011-01-13 20:59:44 +0000629 Old->eraseFromParent();
Chris Lattner4cc576b2010-04-16 00:24:57 +0000630 }
631 MSI->eraseFromParent();
632 continue;
633 }
634
635 // If this is a memcpy or memmove into or out of the whole allocation, we
636 // can handle it like a load or store of the scalar type.
637 if (MemTransferInst *MTI = dyn_cast<MemTransferInst>(User)) {
638 assert(Offset == 0 && "must be store to start of alloca");
Bob Wilson69743022011-01-13 20:59:44 +0000639
Chris Lattner4cc576b2010-04-16 00:24:57 +0000640 // If the source and destination are both to the same alloca, then this is
641 // a noop copy-to-self, just delete it. Otherwise, emit a load and store
642 // as appropriate.
Dan Gohmanbd1801b2011-01-24 18:53:32 +0000643 AllocaInst *OrigAI = cast<AllocaInst>(GetUnderlyingObject(Ptr, &TD, 0));
Bob Wilson69743022011-01-13 20:59:44 +0000644
Dan Gohmanbd1801b2011-01-24 18:53:32 +0000645 if (GetUnderlyingObject(MTI->getSource(), &TD, 0) != OrigAI) {
Chris Lattner4cc576b2010-04-16 00:24:57 +0000646 // Dest must be OrigAI, change this to be a load from the original
647 // pointer (bitcasted), then a store to our new alloca.
648 assert(MTI->getRawDest() == Ptr && "Neither use is of pointer?");
649 Value *SrcPtr = MTI->getSource();
Mon P Wange90a6332010-12-23 01:41:32 +0000650 const PointerType* SPTy = cast<PointerType>(SrcPtr->getType());
651 const PointerType* AIPTy = cast<PointerType>(NewAI->getType());
652 if (SPTy->getAddressSpace() != AIPTy->getAddressSpace()) {
653 AIPTy = PointerType::get(AIPTy->getElementType(),
654 SPTy->getAddressSpace());
655 }
656 SrcPtr = Builder.CreateBitCast(SrcPtr, AIPTy);
657
Chris Lattner4cc576b2010-04-16 00:24:57 +0000658 LoadInst *SrcVal = Builder.CreateLoad(SrcPtr, "srcval");
659 SrcVal->setAlignment(MTI->getAlignment());
660 Builder.CreateStore(SrcVal, NewAI);
Dan Gohmanbd1801b2011-01-24 18:53:32 +0000661 } else if (GetUnderlyingObject(MTI->getDest(), &TD, 0) != OrigAI) {
Chris Lattner4cc576b2010-04-16 00:24:57 +0000662 // Src must be OrigAI, change this to be a load from NewAI then a store
663 // through the original dest pointer (bitcasted).
664 assert(MTI->getRawSource() == Ptr && "Neither use is of pointer?");
665 LoadInst *SrcVal = Builder.CreateLoad(NewAI, "srcval");
666
Mon P Wange90a6332010-12-23 01:41:32 +0000667 const PointerType* DPTy = cast<PointerType>(MTI->getDest()->getType());
668 const PointerType* AIPTy = cast<PointerType>(NewAI->getType());
669 if (DPTy->getAddressSpace() != AIPTy->getAddressSpace()) {
670 AIPTy = PointerType::get(AIPTy->getElementType(),
671 DPTy->getAddressSpace());
672 }
673 Value *DstPtr = Builder.CreateBitCast(MTI->getDest(), AIPTy);
674
Chris Lattner4cc576b2010-04-16 00:24:57 +0000675 StoreInst *NewStore = Builder.CreateStore(SrcVal, DstPtr);
676 NewStore->setAlignment(MTI->getAlignment());
677 } else {
678 // Noop transfer. Src == Dst
679 }
680
681 MTI->eraseFromParent();
682 continue;
683 }
Bob Wilson69743022011-01-13 20:59:44 +0000684
Chris Lattner4cc576b2010-04-16 00:24:57 +0000685 llvm_unreachable("Unsupported operation!");
686 }
687}
688
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000689/// getScaledElementType - Gets a scaled element type for a partial vector
Cameron Zwarich344731c2011-04-20 21:48:38 +0000690/// access of an alloca. The input types must be integer or floating-point
691/// scalar or vector types, and the resulting type is an integer, float or
692/// double.
693static const Type *getScaledElementType(const Type *Ty1, const Type *Ty2,
Cameron Zwarich1537ce72011-03-23 05:25:55 +0000694 unsigned NewBitWidth) {
Cameron Zwarich344731c2011-04-20 21:48:38 +0000695 bool IsFP1 = Ty1->isFloatingPointTy() ||
696 (Ty1->isVectorTy() &&
697 cast<VectorType>(Ty1)->getElementType()->isFloatingPointTy());
698 bool IsFP2 = Ty2->isFloatingPointTy() ||
699 (Ty2->isVectorTy() &&
700 cast<VectorType>(Ty2)->getElementType()->isFloatingPointTy());
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000701
Cameron Zwarich344731c2011-04-20 21:48:38 +0000702 LLVMContext &Context = Ty1->getContext();
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000703
Cameron Zwarich344731c2011-04-20 21:48:38 +0000704 // Prefer floating-point types over integer types, as integer types may have
705 // been created by earlier scalar replacement.
706 if (IsFP1 || IsFP2) {
707 if (NewBitWidth == 32)
708 return Type::getFloatTy(Context);
709 if (NewBitWidth == 64)
710 return Type::getDoubleTy(Context);
711 }
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000712
Cameron Zwarich344731c2011-04-20 21:48:38 +0000713 return Type::getIntNTy(Context, NewBitWidth);
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000714}
715
Mon P Wangddf9abf2011-04-14 08:04:01 +0000716/// CreateShuffleVectorCast - Creates a shuffle vector to convert one vector
717/// to another vector of the same element type which has the same allocation
718/// size but different primitive sizes (e.g. <3 x i32> and <4 x i32>).
719static Value *CreateShuffleVectorCast(Value *FromVal, const Type *ToType,
720 IRBuilder<> &Builder) {
721 const Type *FromType = FromVal->getType();
Mon P Wang481823a2011-04-14 19:20:42 +0000722 const VectorType *FromVTy = cast<VectorType>(FromType);
723 const VectorType *ToVTy = cast<VectorType>(ToType);
724 assert((ToVTy->getElementType() == FromVTy->getElementType()) &&
Mon P Wangddf9abf2011-04-14 08:04:01 +0000725 "Vectors must have the same element type");
Mon P Wangddf9abf2011-04-14 08:04:01 +0000726 Value *UnV = UndefValue::get(FromType);
727 unsigned numEltsFrom = FromVTy->getNumElements();
728 unsigned numEltsTo = ToVTy->getNumElements();
729
730 SmallVector<Constant*, 3> Args;
Mon P Wang481823a2011-04-14 19:20:42 +0000731 const Type* Int32Ty = Builder.getInt32Ty();
Mon P Wangddf9abf2011-04-14 08:04:01 +0000732 unsigned minNumElts = std::min(numEltsFrom, numEltsTo);
733 unsigned i;
734 for (i=0; i != minNumElts; ++i)
Mon P Wang481823a2011-04-14 19:20:42 +0000735 Args.push_back(ConstantInt::get(Int32Ty, i));
Mon P Wangddf9abf2011-04-14 08:04:01 +0000736
737 if (i < numEltsTo) {
Mon P Wang481823a2011-04-14 19:20:42 +0000738 Constant* UnC = UndefValue::get(Int32Ty);
Mon P Wangddf9abf2011-04-14 08:04:01 +0000739 for (; i != numEltsTo; ++i)
740 Args.push_back(UnC);
741 }
742 Constant *Mask = ConstantVector::get(Args);
743 return Builder.CreateShuffleVector(FromVal, UnV, Mask, "tmpV");
744}
745
Chris Lattner4cc576b2010-04-16 00:24:57 +0000746/// ConvertScalar_ExtractValue - Extract a value of type ToType from an integer
747/// or vector value FromVal, extracting the bits from the offset specified by
748/// Offset. This returns the value, which is of type ToType.
749///
750/// This happens when we are converting an "integer union" to a single
751/// integer scalar, or when we are converting a "vector union" to a vector with
752/// insert/extractelement instructions.
753///
754/// Offset is an offset from the original alloca, in bits that need to be
755/// shifted to the right.
756Value *ConvertToScalarInfo::
757ConvertScalar_ExtractValue(Value *FromVal, const Type *ToType,
758 uint64_t Offset, IRBuilder<> &Builder) {
759 // If the load is of the whole new alloca, no conversion is needed.
Mon P Wangbe0761c2011-04-13 21:40:02 +0000760 const Type *FromType = FromVal->getType();
761 if (FromType == ToType && Offset == 0)
Chris Lattner4cc576b2010-04-16 00:24:57 +0000762 return FromVal;
763
764 // If the result alloca is a vector type, this is either an element
765 // access or a bitcast to another vector type of the same size.
Mon P Wangbe0761c2011-04-13 21:40:02 +0000766 if (const VectorType *VTy = dyn_cast<VectorType>(FromType)) {
Cameron Zwarich0398d612011-06-08 22:08:31 +0000767 unsigned FromTypeSize = TD.getTypeAllocSize(FromType);
Cameron Zwarich9827b782011-03-29 05:19:52 +0000768 unsigned ToTypeSize = TD.getTypeAllocSize(ToType);
Cameron Zwarich0398d612011-06-08 22:08:31 +0000769 if (FromTypeSize == ToTypeSize) {
Mon P Wangddf9abf2011-04-14 08:04:01 +0000770 // If the two types have the same primitive size, use a bit cast.
771 // Otherwise, it is two vectors with the same element type that has
772 // the same allocation size but different number of elements so use
773 // a shuffle vector.
Mon P Wangbe0761c2011-04-13 21:40:02 +0000774 if (FromType->getPrimitiveSizeInBits() ==
775 ToType->getPrimitiveSizeInBits())
776 return Builder.CreateBitCast(FromVal, ToType, "tmp");
Mon P Wangddf9abf2011-04-14 08:04:01 +0000777 else
778 return CreateShuffleVectorCast(FromVal, ToType, Builder);
Mon P Wangbe0761c2011-04-13 21:40:02 +0000779 }
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000780
Cameron Zwarich0398d612011-06-08 22:08:31 +0000781 if (isPowerOf2_64(FromTypeSize / ToTypeSize)) {
Cameron Zwarich344731c2011-04-20 21:48:38 +0000782 assert(!(ToType->isVectorTy() && Offset != 0) && "Can't extract a value "
783 "of a smaller vector type at a nonzero offset.");
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000784
Cameron Zwarich344731c2011-04-20 21:48:38 +0000785 const Type *CastElementTy = getScaledElementType(FromType, ToType,
Cameron Zwarich1537ce72011-03-23 05:25:55 +0000786 ToTypeSize * 8);
Cameron Zwarich0398d612011-06-08 22:08:31 +0000787 unsigned NumCastVectorElements = FromTypeSize / ToTypeSize;
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000788
Cameron Zwarich032c10f2011-03-09 07:34:11 +0000789 LLVMContext &Context = FromVal->getContext();
790 const Type *CastTy = VectorType::get(CastElementTy,
791 NumCastVectorElements);
792 Value *Cast = Builder.CreateBitCast(FromVal, CastTy, "tmp");
Cameron Zwarich344731c2011-04-20 21:48:38 +0000793
794 unsigned EltSize = TD.getTypeAllocSizeInBits(CastElementTy);
795 unsigned Elt = Offset/EltSize;
796 assert(EltSize*Elt == Offset && "Invalid modulus in validity checking");
Cameron Zwarich032c10f2011-03-09 07:34:11 +0000797 Value *Extract = Builder.CreateExtractElement(Cast, ConstantInt::get(
Cameron Zwarich344731c2011-04-20 21:48:38 +0000798 Type::getInt32Ty(Context), Elt), "tmp");
Cameron Zwarich032c10f2011-03-09 07:34:11 +0000799 return Builder.CreateBitCast(Extract, ToType, "tmp");
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000800 }
Chris Lattner4cc576b2010-04-16 00:24:57 +0000801
802 // Otherwise it must be an element access.
803 unsigned Elt = 0;
804 if (Offset) {
805 unsigned EltSize = TD.getTypeAllocSizeInBits(VTy->getElementType());
806 Elt = Offset/EltSize;
807 assert(EltSize*Elt == Offset && "Invalid modulus in validity checking");
808 }
809 // Return the element extracted out of it.
810 Value *V = Builder.CreateExtractElement(FromVal, ConstantInt::get(
811 Type::getInt32Ty(FromVal->getContext()), Elt), "tmp");
812 if (V->getType() != ToType)
813 V = Builder.CreateBitCast(V, ToType, "tmp");
814 return V;
815 }
Bob Wilson69743022011-01-13 20:59:44 +0000816
Chris Lattner4cc576b2010-04-16 00:24:57 +0000817 // If ToType is a first class aggregate, extract out each of the pieces and
818 // use insertvalue's to form the FCA.
819 if (const StructType *ST = dyn_cast<StructType>(ToType)) {
820 const StructLayout &Layout = *TD.getStructLayout(ST);
821 Value *Res = UndefValue::get(ST);
822 for (unsigned i = 0, e = ST->getNumElements(); i != e; ++i) {
823 Value *Elt = ConvertScalar_ExtractValue(FromVal, ST->getElementType(i),
824 Offset+Layout.getElementOffsetInBits(i),
825 Builder);
826 Res = Builder.CreateInsertValue(Res, Elt, i, "tmp");
827 }
828 return Res;
829 }
Bob Wilson69743022011-01-13 20:59:44 +0000830
Chris Lattner4cc576b2010-04-16 00:24:57 +0000831 if (const ArrayType *AT = dyn_cast<ArrayType>(ToType)) {
832 uint64_t EltSize = TD.getTypeAllocSizeInBits(AT->getElementType());
833 Value *Res = UndefValue::get(AT);
834 for (unsigned i = 0, e = AT->getNumElements(); i != e; ++i) {
835 Value *Elt = ConvertScalar_ExtractValue(FromVal, AT->getElementType(),
836 Offset+i*EltSize, Builder);
837 Res = Builder.CreateInsertValue(Res, Elt, i, "tmp");
838 }
839 return Res;
840 }
841
842 // Otherwise, this must be a union that was converted to an integer value.
843 const IntegerType *NTy = cast<IntegerType>(FromVal->getType());
844
845 // If this is a big-endian system and the load is narrower than the
846 // full alloca type, we need to do a shift to get the right bits.
847 int ShAmt = 0;
848 if (TD.isBigEndian()) {
849 // On big-endian machines, the lowest bit is stored at the bit offset
850 // from the pointer given by getTypeStoreSizeInBits. This matters for
851 // integers with a bitwidth that is not a multiple of 8.
852 ShAmt = TD.getTypeStoreSizeInBits(NTy) -
853 TD.getTypeStoreSizeInBits(ToType) - Offset;
854 } else {
855 ShAmt = Offset;
856 }
857
858 // Note: we support negative bitwidths (with shl) which are not defined.
859 // We do this to support (f.e.) loads off the end of a structure where
860 // only some bits are used.
861 if (ShAmt > 0 && (unsigned)ShAmt < NTy->getBitWidth())
862 FromVal = Builder.CreateLShr(FromVal,
863 ConstantInt::get(FromVal->getType(),
864 ShAmt), "tmp");
865 else if (ShAmt < 0 && (unsigned)-ShAmt < NTy->getBitWidth())
Bob Wilson69743022011-01-13 20:59:44 +0000866 FromVal = Builder.CreateShl(FromVal,
Chris Lattner4cc576b2010-04-16 00:24:57 +0000867 ConstantInt::get(FromVal->getType(),
868 -ShAmt), "tmp");
869
870 // Finally, unconditionally truncate the integer to the right width.
871 unsigned LIBitWidth = TD.getTypeSizeInBits(ToType);
872 if (LIBitWidth < NTy->getBitWidth())
873 FromVal =
Bob Wilson69743022011-01-13 20:59:44 +0000874 Builder.CreateTrunc(FromVal, IntegerType::get(FromVal->getContext(),
Chris Lattner4cc576b2010-04-16 00:24:57 +0000875 LIBitWidth), "tmp");
876 else if (LIBitWidth > NTy->getBitWidth())
877 FromVal =
Bob Wilson69743022011-01-13 20:59:44 +0000878 Builder.CreateZExt(FromVal, IntegerType::get(FromVal->getContext(),
Chris Lattner4cc576b2010-04-16 00:24:57 +0000879 LIBitWidth), "tmp");
880
881 // If the result is an integer, this is a trunc or bitcast.
882 if (ToType->isIntegerTy()) {
883 // Should be done.
884 } else if (ToType->isFloatingPointTy() || ToType->isVectorTy()) {
885 // Just do a bitcast, we know the sizes match up.
886 FromVal = Builder.CreateBitCast(FromVal, ToType, "tmp");
887 } else {
888 // Otherwise must be a pointer.
889 FromVal = Builder.CreateIntToPtr(FromVal, ToType, "tmp");
890 }
891 assert(FromVal->getType() == ToType && "Didn't convert right?");
892 return FromVal;
893}
894
895/// ConvertScalar_InsertValue - Insert the value "SV" into the existing integer
896/// or vector value "Old" at the offset specified by Offset.
897///
898/// This happens when we are converting an "integer union" to a
899/// single integer scalar, or when we are converting a "vector union" to a
900/// vector with insert/extractelement instructions.
901///
902/// Offset is an offset from the original alloca, in bits that need to be
903/// shifted to the right.
904Value *ConvertToScalarInfo::
905ConvertScalar_InsertValue(Value *SV, Value *Old,
906 uint64_t Offset, IRBuilder<> &Builder) {
907 // Convert the stored type to the actual type, shift it left to insert
908 // then 'or' into place.
909 const Type *AllocaType = Old->getType();
910 LLVMContext &Context = Old->getContext();
911
912 if (const VectorType *VTy = dyn_cast<VectorType>(AllocaType)) {
913 uint64_t VecSize = TD.getTypeAllocSizeInBits(VTy);
914 uint64_t ValSize = TD.getTypeAllocSizeInBits(SV->getType());
Bob Wilson69743022011-01-13 20:59:44 +0000915
Chris Lattner4cc576b2010-04-16 00:24:57 +0000916 // Changing the whole vector with memset or with an access of a different
917 // vector type?
Mon P Wangbe0761c2011-04-13 21:40:02 +0000918 if (ValSize == VecSize) {
Mon P Wangddf9abf2011-04-14 08:04:01 +0000919 // If the two types have the same primitive size, use a bit cast.
920 // Otherwise, it is two vectors with the same element type that has
921 // the same allocation size but different number of elements so use
922 // a shuffle vector.
Mon P Wangbe0761c2011-04-13 21:40:02 +0000923 if (VTy->getPrimitiveSizeInBits() ==
924 SV->getType()->getPrimitiveSizeInBits())
925 return Builder.CreateBitCast(SV, AllocaType, "tmp");
Mon P Wangddf9abf2011-04-14 08:04:01 +0000926 else
927 return CreateShuffleVectorCast(SV, VTy, Builder);
Mon P Wangbe0761c2011-04-13 21:40:02 +0000928 }
Chris Lattner4cc576b2010-04-16 00:24:57 +0000929
Cameron Zwarich344731c2011-04-20 21:48:38 +0000930 if (isPowerOf2_64(VecSize / ValSize)) {
931 assert(!(SV->getType()->isVectorTy() && Offset != 0) && "Can't insert a "
932 "value of a smaller vector type at a nonzero offset.");
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000933
Cameron Zwarich344731c2011-04-20 21:48:38 +0000934 const Type *CastElementTy = getScaledElementType(VTy, SV->getType(),
935 ValSize);
Cameron Zwarich1537ce72011-03-23 05:25:55 +0000936 unsigned NumCastVectorElements = VecSize / ValSize;
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000937
938 LLVMContext &Context = SV->getContext();
939 const Type *OldCastTy = VectorType::get(CastElementTy,
940 NumCastVectorElements);
941 Value *OldCast = Builder.CreateBitCast(Old, OldCastTy, "tmp");
942
943 Value *SVCast = Builder.CreateBitCast(SV, CastElementTy, "tmp");
Cameron Zwarich344731c2011-04-20 21:48:38 +0000944
945 unsigned EltSize = TD.getTypeAllocSizeInBits(CastElementTy);
946 unsigned Elt = Offset/EltSize;
947 assert(EltSize*Elt == Offset && "Invalid modulus in validity checking");
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000948 Value *Insert =
949 Builder.CreateInsertElement(OldCast, SVCast, ConstantInt::get(
Cameron Zwarich344731c2011-04-20 21:48:38 +0000950 Type::getInt32Ty(Context), Elt), "tmp");
Cameron Zwarichb2fd7702011-03-09 05:43:05 +0000951 return Builder.CreateBitCast(Insert, AllocaType, "tmp");
952 }
953
Chris Lattner4cc576b2010-04-16 00:24:57 +0000954 // Must be an element insertion.
Cameron Zwarichc5c43b92011-04-20 21:48:34 +0000955 assert(SV->getType() == VTy->getElementType());
956 uint64_t EltSize = TD.getTypeAllocSizeInBits(VTy->getElementType());
Chris Lattner4cc576b2010-04-16 00:24:57 +0000957 unsigned Elt = Offset/EltSize;
Cameron Zwarichc5c43b92011-04-20 21:48:34 +0000958 return Builder.CreateInsertElement(Old, SV,
Chris Lattner4cc576b2010-04-16 00:24:57 +0000959 ConstantInt::get(Type::getInt32Ty(SV->getContext()), Elt),
960 "tmp");
Chris Lattner4cc576b2010-04-16 00:24:57 +0000961 }
Bob Wilson69743022011-01-13 20:59:44 +0000962
Chris Lattner4cc576b2010-04-16 00:24:57 +0000963 // If SV is a first-class aggregate value, insert each value recursively.
964 if (const StructType *ST = dyn_cast<StructType>(SV->getType())) {
965 const StructLayout &Layout = *TD.getStructLayout(ST);
966 for (unsigned i = 0, e = ST->getNumElements(); i != e; ++i) {
967 Value *Elt = Builder.CreateExtractValue(SV, i, "tmp");
Bob Wilson69743022011-01-13 20:59:44 +0000968 Old = ConvertScalar_InsertValue(Elt, Old,
Chris Lattner4cc576b2010-04-16 00:24:57 +0000969 Offset+Layout.getElementOffsetInBits(i),
970 Builder);
971 }
972 return Old;
973 }
Bob Wilson69743022011-01-13 20:59:44 +0000974
Chris Lattner4cc576b2010-04-16 00:24:57 +0000975 if (const ArrayType *AT = dyn_cast<ArrayType>(SV->getType())) {
976 uint64_t EltSize = TD.getTypeAllocSizeInBits(AT->getElementType());
977 for (unsigned i = 0, e = AT->getNumElements(); i != e; ++i) {
978 Value *Elt = Builder.CreateExtractValue(SV, i, "tmp");
979 Old = ConvertScalar_InsertValue(Elt, Old, Offset+i*EltSize, Builder);
980 }
981 return Old;
982 }
983
984 // If SV is a float, convert it to the appropriate integer type.
985 // If it is a pointer, do the same.
986 unsigned SrcWidth = TD.getTypeSizeInBits(SV->getType());
987 unsigned DestWidth = TD.getTypeSizeInBits(AllocaType);
988 unsigned SrcStoreWidth = TD.getTypeStoreSizeInBits(SV->getType());
989 unsigned DestStoreWidth = TD.getTypeStoreSizeInBits(AllocaType);
990 if (SV->getType()->isFloatingPointTy() || SV->getType()->isVectorTy())
991 SV = Builder.CreateBitCast(SV,
992 IntegerType::get(SV->getContext(),SrcWidth), "tmp");
993 else if (SV->getType()->isPointerTy())
994 SV = Builder.CreatePtrToInt(SV, TD.getIntPtrType(SV->getContext()), "tmp");
995
996 // Zero extend or truncate the value if needed.
997 if (SV->getType() != AllocaType) {
998 if (SV->getType()->getPrimitiveSizeInBits() <
999 AllocaType->getPrimitiveSizeInBits())
1000 SV = Builder.CreateZExt(SV, AllocaType, "tmp");
1001 else {
1002 // Truncation may be needed if storing more than the alloca can hold
1003 // (undefined behavior).
1004 SV = Builder.CreateTrunc(SV, AllocaType, "tmp");
1005 SrcWidth = DestWidth;
1006 SrcStoreWidth = DestStoreWidth;
1007 }
1008 }
1009
1010 // If this is a big-endian system and the store is narrower than the
1011 // full alloca type, we need to do a shift to get the right bits.
1012 int ShAmt = 0;
1013 if (TD.isBigEndian()) {
1014 // On big-endian machines, the lowest bit is stored at the bit offset
1015 // from the pointer given by getTypeStoreSizeInBits. This matters for
1016 // integers with a bitwidth that is not a multiple of 8.
1017 ShAmt = DestStoreWidth - SrcStoreWidth - Offset;
1018 } else {
1019 ShAmt = Offset;
1020 }
1021
1022 // Note: we support negative bitwidths (with shr) which are not defined.
1023 // We do this to support (f.e.) stores off the end of a structure where
1024 // only some bits in the structure are set.
1025 APInt Mask(APInt::getLowBitsSet(DestWidth, SrcWidth));
1026 if (ShAmt > 0 && (unsigned)ShAmt < DestWidth) {
1027 SV = Builder.CreateShl(SV, ConstantInt::get(SV->getType(),
1028 ShAmt), "tmp");
1029 Mask <<= ShAmt;
1030 } else if (ShAmt < 0 && (unsigned)-ShAmt < DestWidth) {
1031 SV = Builder.CreateLShr(SV, ConstantInt::get(SV->getType(),
1032 -ShAmt), "tmp");
1033 Mask = Mask.lshr(-ShAmt);
1034 }
1035
1036 // Mask out the bits we are about to insert from the old value, and or
1037 // in the new bits.
1038 if (SrcWidth != DestWidth) {
1039 assert(DestWidth > SrcWidth);
1040 Old = Builder.CreateAnd(Old, ConstantInt::get(Context, ~Mask), "mask");
1041 SV = Builder.CreateOr(Old, SV, "ins");
1042 }
1043 return SV;
1044}
1045
1046
1047//===----------------------------------------------------------------------===//
1048// SRoA Driver
1049//===----------------------------------------------------------------------===//
1050
1051
Chris Lattnered7b41e2003-05-27 15:45:27 +00001052bool SROA::runOnFunction(Function &F) {
Dan Gohmane4af1cf2009-08-19 18:22:18 +00001053 TD = getAnalysisIfAvailable<TargetData>();
1054
Chris Lattnerfe7ea0d2003-09-12 15:36:03 +00001055 bool Changed = performPromotion(F);
Dan Gohmane4af1cf2009-08-19 18:22:18 +00001056
1057 // FIXME: ScalarRepl currently depends on TargetData more than it
1058 // theoretically needs to. It should be refactored in order to support
1059 // target-independent IR. Until this is done, just skip the actual
1060 // scalar-replacement portion of this pass.
1061 if (!TD) return Changed;
1062
Chris Lattnerfe7ea0d2003-09-12 15:36:03 +00001063 while (1) {
1064 bool LocalChange = performScalarRepl(F);
1065 if (!LocalChange) break; // No need to repromote if no scalarrepl
1066 Changed = true;
1067 LocalChange = performPromotion(F);
1068 if (!LocalChange) break; // No need to re-scalarrepl if no promotion
1069 }
Chris Lattner38aec322003-09-11 16:45:55 +00001070
1071 return Changed;
1072}
1073
Chris Lattnerd0f56132011-01-14 19:50:47 +00001074namespace {
1075class AllocaPromoter : public LoadAndStorePromoter {
1076 AllocaInst *AI;
1077public:
Cameron Zwarichc8279392011-05-24 03:10:43 +00001078 AllocaPromoter(const SmallVectorImpl<Instruction*> &Insts, SSAUpdater &S,
1079 DbgDeclareInst *DD, DIBuilder *&DB)
1080 : LoadAndStorePromoter(Insts, S, DD, DB), AI(0) {}
Chris Lattnerd0f56132011-01-14 19:50:47 +00001081
Chris Lattnerdeaf55f2011-01-15 00:12:35 +00001082 void run(AllocaInst *AI, const SmallVectorImpl<Instruction*> &Insts) {
Chris Lattnerd0f56132011-01-14 19:50:47 +00001083 // Remember which alloca we're promoting (for isInstInList).
1084 this->AI = AI;
Chris Lattnerdeaf55f2011-01-15 00:12:35 +00001085 LoadAndStorePromoter::run(Insts);
Chris Lattnerd0f56132011-01-14 19:50:47 +00001086 AI->eraseFromParent();
Chris Lattnere0a1a5b2011-01-14 07:50:47 +00001087 }
1088
Chris Lattnerd0f56132011-01-14 19:50:47 +00001089 virtual bool isInstInList(Instruction *I,
1090 const SmallVectorImpl<Instruction*> &Insts) const {
1091 if (LoadInst *LI = dyn_cast<LoadInst>(I))
1092 return LI->getOperand(0) == AI;
1093 return cast<StoreInst>(I)->getPointerOperand() == AI;
Chris Lattnere0a1a5b2011-01-14 07:50:47 +00001094 }
Chris Lattnerd0f56132011-01-14 19:50:47 +00001095};
1096} // end anon namespace
Chris Lattner38aec322003-09-11 16:45:55 +00001097
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001098/// isSafeSelectToSpeculate - Select instructions that use an alloca and are
1099/// subsequently loaded can be rewritten to load both input pointers and then
1100/// select between the result, allowing the load of the alloca to be promoted.
1101/// From this:
1102/// %P2 = select i1 %cond, i32* %Alloca, i32* %Other
1103/// %V = load i32* %P2
1104/// to:
1105/// %V1 = load i32* %Alloca -> will be mem2reg'd
1106/// %V2 = load i32* %Other
Chris Lattnere3357862011-01-24 01:07:11 +00001107/// %V = select i1 %cond, i32 %V1, i32 %V2
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001108///
1109/// We can do this to a select if its only uses are loads and if the operand to
1110/// the select can be loaded unconditionally.
1111static bool isSafeSelectToSpeculate(SelectInst *SI, const TargetData *TD) {
1112 bool TDerefable = SI->getTrueValue()->isDereferenceablePointer();
1113 bool FDerefable = SI->getFalseValue()->isDereferenceablePointer();
1114
1115 for (Value::use_iterator UI = SI->use_begin(), UE = SI->use_end();
1116 UI != UE; ++UI) {
1117 LoadInst *LI = dyn_cast<LoadInst>(*UI);
1118 if (LI == 0 || LI->isVolatile()) return false;
1119
Chris Lattnere3357862011-01-24 01:07:11 +00001120 // Both operands to the select need to be dereferencable, either absolutely
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001121 // (e.g. allocas) or at this point because we can see other accesses to it.
1122 if (!TDerefable && !isSafeToLoadUnconditionally(SI->getTrueValue(), LI,
1123 LI->getAlignment(), TD))
1124 return false;
1125 if (!FDerefable && !isSafeToLoadUnconditionally(SI->getFalseValue(), LI,
1126 LI->getAlignment(), TD))
1127 return false;
1128 }
1129
1130 return true;
1131}
1132
Chris Lattnere3357862011-01-24 01:07:11 +00001133/// isSafePHIToSpeculate - PHI instructions that use an alloca and are
1134/// subsequently loaded can be rewritten to load both input pointers in the pred
1135/// blocks and then PHI the results, allowing the load of the alloca to be
1136/// promoted.
1137/// From this:
1138/// %P2 = phi [i32* %Alloca, i32* %Other]
1139/// %V = load i32* %P2
1140/// to:
1141/// %V1 = load i32* %Alloca -> will be mem2reg'd
1142/// ...
1143/// %V2 = load i32* %Other
1144/// ...
1145/// %V = phi [i32 %V1, i32 %V2]
1146///
1147/// We can do this to a select if its only uses are loads and if the operand to
1148/// the select can be loaded unconditionally.
1149static bool isSafePHIToSpeculate(PHINode *PN, const TargetData *TD) {
1150 // For now, we can only do this promotion if the load is in the same block as
1151 // the PHI, and if there are no stores between the phi and load.
1152 // TODO: Allow recursive phi users.
1153 // TODO: Allow stores.
1154 BasicBlock *BB = PN->getParent();
1155 unsigned MaxAlign = 0;
1156 for (Value::use_iterator UI = PN->use_begin(), UE = PN->use_end();
1157 UI != UE; ++UI) {
1158 LoadInst *LI = dyn_cast<LoadInst>(*UI);
1159 if (LI == 0 || LI->isVolatile()) return false;
1160
1161 // For now we only allow loads in the same block as the PHI. This is a
1162 // common case that happens when instcombine merges two loads through a PHI.
1163 if (LI->getParent() != BB) return false;
1164
1165 // Ensure that there are no instructions between the PHI and the load that
1166 // could store.
1167 for (BasicBlock::iterator BBI = PN; &*BBI != LI; ++BBI)
1168 if (BBI->mayWriteToMemory())
1169 return false;
1170
1171 MaxAlign = std::max(MaxAlign, LI->getAlignment());
1172 }
1173
1174 // Okay, we know that we have one or more loads in the same block as the PHI.
1175 // We can transform this if it is safe to push the loads into the predecessor
1176 // blocks. The only thing to watch out for is that we can't put a possibly
1177 // trapping load in the predecessor if it is a critical edge.
1178 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
1179 BasicBlock *Pred = PN->getIncomingBlock(i);
1180
1181 // If the predecessor has a single successor, then the edge isn't critical.
1182 if (Pred->getTerminator()->getNumSuccessors() == 1)
1183 continue;
1184
1185 Value *InVal = PN->getIncomingValue(i);
1186
1187 // If the InVal is an invoke in the pred, we can't put a load on the edge.
1188 if (InvokeInst *II = dyn_cast<InvokeInst>(InVal))
1189 if (II->getParent() == Pred)
1190 return false;
1191
1192 // If this pointer is always safe to load, or if we can prove that there is
1193 // already a load in the block, then we can move the load to the pred block.
1194 if (InVal->isDereferenceablePointer() ||
1195 isSafeToLoadUnconditionally(InVal, Pred->getTerminator(), MaxAlign, TD))
1196 continue;
1197
1198 return false;
1199 }
1200
1201 return true;
1202}
1203
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001204
1205/// tryToMakeAllocaBePromotable - This returns true if the alloca only has
1206/// direct (non-volatile) loads and stores to it. If the alloca is close but
1207/// not quite there, this will transform the code to allow promotion. As such,
1208/// it is a non-pure predicate.
1209static bool tryToMakeAllocaBePromotable(AllocaInst *AI, const TargetData *TD) {
1210 SetVector<Instruction*, SmallVector<Instruction*, 4>,
1211 SmallPtrSet<Instruction*, 4> > InstsToRewrite;
1212
1213 for (Value::use_iterator UI = AI->use_begin(), UE = AI->use_end();
1214 UI != UE; ++UI) {
1215 User *U = *UI;
1216 if (LoadInst *LI = dyn_cast<LoadInst>(U)) {
1217 if (LI->isVolatile())
1218 return false;
1219 continue;
1220 }
1221
1222 if (StoreInst *SI = dyn_cast<StoreInst>(U)) {
1223 if (SI->getOperand(0) == AI || SI->isVolatile())
1224 return false; // Don't allow a store OF the AI, only INTO the AI.
1225 continue;
1226 }
1227
1228 if (SelectInst *SI = dyn_cast<SelectInst>(U)) {
1229 // If the condition being selected on is a constant, fold the select, yes
1230 // this does (rarely) happen early on.
1231 if (ConstantInt *CI = dyn_cast<ConstantInt>(SI->getCondition())) {
1232 Value *Result = SI->getOperand(1+CI->isZero());
1233 SI->replaceAllUsesWith(Result);
1234 SI->eraseFromParent();
1235
1236 // This is very rare and we just scrambled the use list of AI, start
1237 // over completely.
1238 return tryToMakeAllocaBePromotable(AI, TD);
1239 }
1240
1241 // If it is safe to turn "load (select c, AI, ptr)" into a select of two
1242 // loads, then we can transform this by rewriting the select.
1243 if (!isSafeSelectToSpeculate(SI, TD))
1244 return false;
1245
1246 InstsToRewrite.insert(SI);
1247 continue;
1248 }
1249
Chris Lattnere3357862011-01-24 01:07:11 +00001250 if (PHINode *PN = dyn_cast<PHINode>(U)) {
1251 if (PN->use_empty()) { // Dead PHIs can be stripped.
1252 InstsToRewrite.insert(PN);
1253 continue;
1254 }
1255
1256 // If it is safe to turn "load (phi [AI, ptr, ...])" into a PHI of loads
1257 // in the pred blocks, then we can transform this by rewriting the PHI.
1258 if (!isSafePHIToSpeculate(PN, TD))
1259 return false;
1260
1261 InstsToRewrite.insert(PN);
1262 continue;
1263 }
1264
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001265 return false;
1266 }
1267
1268 // If there are no instructions to rewrite, then all uses are load/stores and
1269 // we're done!
1270 if (InstsToRewrite.empty())
1271 return true;
1272
1273 // If we have instructions that need to be rewritten for this to be promotable
1274 // take care of it now.
1275 for (unsigned i = 0, e = InstsToRewrite.size(); i != e; ++i) {
Chris Lattnere3357862011-01-24 01:07:11 +00001276 if (SelectInst *SI = dyn_cast<SelectInst>(InstsToRewrite[i])) {
1277 // Selects in InstsToRewrite only have load uses. Rewrite each as two
1278 // loads with a new select.
1279 while (!SI->use_empty()) {
1280 LoadInst *LI = cast<LoadInst>(SI->use_back());
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001281
Chris Lattnere3357862011-01-24 01:07:11 +00001282 IRBuilder<> Builder(LI);
1283 LoadInst *TrueLoad =
1284 Builder.CreateLoad(SI->getTrueValue(), LI->getName()+".t");
1285 LoadInst *FalseLoad =
1286 Builder.CreateLoad(SI->getFalseValue(), LI->getName()+".t");
1287
1288 // Transfer alignment and TBAA info if present.
1289 TrueLoad->setAlignment(LI->getAlignment());
1290 FalseLoad->setAlignment(LI->getAlignment());
1291 if (MDNode *Tag = LI->getMetadata(LLVMContext::MD_tbaa)) {
1292 TrueLoad->setMetadata(LLVMContext::MD_tbaa, Tag);
1293 FalseLoad->setMetadata(LLVMContext::MD_tbaa, Tag);
1294 }
1295
1296 Value *V = Builder.CreateSelect(SI->getCondition(), TrueLoad, FalseLoad);
1297 V->takeName(LI);
1298 LI->replaceAllUsesWith(V);
1299 LI->eraseFromParent();
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001300 }
Chris Lattnere3357862011-01-24 01:07:11 +00001301
1302 // Now that all the loads are gone, the select is gone too.
1303 SI->eraseFromParent();
1304 continue;
1305 }
1306
1307 // Otherwise, we have a PHI node which allows us to push the loads into the
1308 // predecessors.
1309 PHINode *PN = cast<PHINode>(InstsToRewrite[i]);
1310 if (PN->use_empty()) {
1311 PN->eraseFromParent();
1312 continue;
1313 }
1314
1315 const Type *LoadTy = cast<PointerType>(PN->getType())->getElementType();
Jay Foad3ecfc862011-03-30 11:28:46 +00001316 PHINode *NewPN = PHINode::Create(LoadTy, PN->getNumIncomingValues(),
1317 PN->getName()+".ld", PN);
Chris Lattnere3357862011-01-24 01:07:11 +00001318
1319 // Get the TBAA tag and alignment to use from one of the loads. It doesn't
1320 // matter which one we get and if any differ, it doesn't matter.
1321 LoadInst *SomeLoad = cast<LoadInst>(PN->use_back());
1322 MDNode *TBAATag = SomeLoad->getMetadata(LLVMContext::MD_tbaa);
1323 unsigned Align = SomeLoad->getAlignment();
1324
1325 // Rewrite all loads of the PN to use the new PHI.
1326 while (!PN->use_empty()) {
1327 LoadInst *LI = cast<LoadInst>(PN->use_back());
1328 LI->replaceAllUsesWith(NewPN);
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001329 LI->eraseFromParent();
1330 }
1331
Chris Lattnere3357862011-01-24 01:07:11 +00001332 // Inject loads into all of the pred blocks. Keep track of which blocks we
1333 // insert them into in case we have multiple edges from the same block.
1334 DenseMap<BasicBlock*, LoadInst*> InsertedLoads;
1335
1336 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) {
1337 BasicBlock *Pred = PN->getIncomingBlock(i);
1338 LoadInst *&Load = InsertedLoads[Pred];
1339 if (Load == 0) {
1340 Load = new LoadInst(PN->getIncomingValue(i),
1341 PN->getName() + "." + Pred->getName(),
1342 Pred->getTerminator());
1343 Load->setAlignment(Align);
1344 if (TBAATag) Load->setMetadata(LLVMContext::MD_tbaa, TBAATag);
1345 }
1346
1347 NewPN->addIncoming(Load, Pred);
1348 }
1349
1350 PN->eraseFromParent();
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001351 }
1352
1353 ++NumAdjusted;
1354 return true;
1355}
1356
Chris Lattner38aec322003-09-11 16:45:55 +00001357bool SROA::performPromotion(Function &F) {
1358 std::vector<AllocaInst*> Allocas;
Chris Lattnere0a1a5b2011-01-14 07:50:47 +00001359 DominatorTree *DT = 0;
Cameron Zwarichb1686c32011-01-18 03:53:26 +00001360 if (HasDomTree)
Chris Lattnere0a1a5b2011-01-14 07:50:47 +00001361 DT = &getAnalysis<DominatorTree>();
Chris Lattner38aec322003-09-11 16:45:55 +00001362
Chris Lattner02a3be02003-09-20 14:39:18 +00001363 BasicBlock &BB = F.getEntryBlock(); // Get the entry node for the function
Chris Lattner38aec322003-09-11 16:45:55 +00001364
Chris Lattnerfe7ea0d2003-09-12 15:36:03 +00001365 bool Changed = false;
Chris Lattnerdeaf55f2011-01-15 00:12:35 +00001366 SmallVector<Instruction*, 64> Insts;
Cameron Zwarichc8279392011-05-24 03:10:43 +00001367 DIBuilder *DIB = 0;
Chris Lattner38aec322003-09-11 16:45:55 +00001368 while (1) {
1369 Allocas.clear();
1370
1371 // Find allocas that are safe to promote, by looking at all instructions in
1372 // the entry node
1373 for (BasicBlock::iterator I = BB.begin(), E = --BB.end(); I != E; ++I)
1374 if (AllocaInst *AI = dyn_cast<AllocaInst>(I)) // Is it an alloca?
Chris Lattnerc87c50a2011-01-23 22:04:55 +00001375 if (tryToMakeAllocaBePromotable(AI, TD))
Chris Lattner38aec322003-09-11 16:45:55 +00001376 Allocas.push_back(AI);
1377
1378 if (Allocas.empty()) break;
1379
Cameron Zwarichb1686c32011-01-18 03:53:26 +00001380 if (HasDomTree)
Cameron Zwarich419e8a62011-01-17 17:38:41 +00001381 PromoteMemToReg(Allocas, *DT);
Chris Lattnere0a1a5b2011-01-14 07:50:47 +00001382 else {
1383 SSAUpdater SSA;
Chris Lattnerdeaf55f2011-01-15 00:12:35 +00001384 for (unsigned i = 0, e = Allocas.size(); i != e; ++i) {
1385 AllocaInst *AI = Allocas[i];
1386
1387 // Build list of instructions to promote.
1388 for (Value::use_iterator UI = AI->use_begin(), E = AI->use_end();
1389 UI != E; ++UI)
1390 Insts.push_back(cast<Instruction>(*UI));
Cameron Zwarichc8279392011-05-24 03:10:43 +00001391
1392 DbgDeclareInst *DDI = FindAllocaDbgDeclare(AI);
Cameron Zwarich13a16082011-05-24 06:00:08 +00001393 if (DDI && !DIB)
1394 DIB = new DIBuilder(*AI->getParent()->getParent()->getParent());
Cameron Zwarichc8279392011-05-24 03:10:43 +00001395 AllocaPromoter(Insts, SSA, DDI, DIB).run(AI, Insts);
Chris Lattnerdeaf55f2011-01-15 00:12:35 +00001396 Insts.clear();
1397 }
Chris Lattnere0a1a5b2011-01-14 07:50:47 +00001398 }
Chris Lattner38aec322003-09-11 16:45:55 +00001399 NumPromoted += Allocas.size();
1400 Changed = true;
1401 }
1402
Cameron Zwarichc8279392011-05-24 03:10:43 +00001403 // FIXME: Is there a better way to handle the lazy initialization of DIB
1404 // so that there doesn't need to be an explicit delete?
1405 delete DIB;
1406
Chris Lattner38aec322003-09-11 16:45:55 +00001407 return Changed;
1408}
1409
Chris Lattner4cc576b2010-04-16 00:24:57 +00001410
Bob Wilson3992feb2010-02-03 17:23:56 +00001411/// ShouldAttemptScalarRepl - Decide if an alloca is a good candidate for
1412/// SROA. It must be a struct or array type with a small number of elements.
1413static bool ShouldAttemptScalarRepl(AllocaInst *AI) {
1414 const Type *T = AI->getAllocatedType();
1415 // Do not promote any struct into more than 32 separate vars.
Chris Lattner963a97f2008-06-22 17:46:21 +00001416 if (const StructType *ST = dyn_cast<StructType>(T))
Bob Wilson3992feb2010-02-03 17:23:56 +00001417 return ST->getNumElements() <= 32;
1418 // Arrays are much less likely to be safe for SROA; only consider
1419 // them if they are very small.
1420 if (const ArrayType *AT = dyn_cast<ArrayType>(T))
1421 return AT->getNumElements() <= 8;
1422 return false;
Chris Lattner963a97f2008-06-22 17:46:21 +00001423}
1424
Chris Lattnerc4472072010-04-15 23:50:26 +00001425
Chris Lattner38aec322003-09-11 16:45:55 +00001426// performScalarRepl - This algorithm is a simple worklist driven algorithm,
1427// which runs on all of the malloc/alloca instructions in the function, removing
1428// them if they are only used by getelementptr instructions.
1429//
1430bool SROA::performScalarRepl(Function &F) {
Victor Hernandez7b929da2009-10-23 21:09:37 +00001431 std::vector<AllocaInst*> WorkList;
Chris Lattnered7b41e2003-05-27 15:45:27 +00001432
Chris Lattner31d80102010-04-15 21:59:20 +00001433 // Scan the entry basic block, adding allocas to the worklist.
Chris Lattner02a3be02003-09-20 14:39:18 +00001434 BasicBlock &BB = F.getEntryBlock();
Chris Lattnered7b41e2003-05-27 15:45:27 +00001435 for (BasicBlock::iterator I = BB.begin(), E = BB.end(); I != E; ++I)
Victor Hernandez7b929da2009-10-23 21:09:37 +00001436 if (AllocaInst *A = dyn_cast<AllocaInst>(I))
Chris Lattnered7b41e2003-05-27 15:45:27 +00001437 WorkList.push_back(A);
1438
1439 // Process the worklist
1440 bool Changed = false;
1441 while (!WorkList.empty()) {
Victor Hernandez7b929da2009-10-23 21:09:37 +00001442 AllocaInst *AI = WorkList.back();
Chris Lattnered7b41e2003-05-27 15:45:27 +00001443 WorkList.pop_back();
Bob Wilson69743022011-01-13 20:59:44 +00001444
Chris Lattneradd2bd72006-12-22 23:14:42 +00001445 // Handle dead allocas trivially. These can be formed by SROA'ing arrays
1446 // with unused elements.
1447 if (AI->use_empty()) {
1448 AI->eraseFromParent();
Chris Lattnerc4472072010-04-15 23:50:26 +00001449 Changed = true;
Chris Lattneradd2bd72006-12-22 23:14:42 +00001450 continue;
1451 }
Chris Lattner7809ecd2009-02-03 01:30:09 +00001452
1453 // If this alloca is impossible for us to promote, reject it early.
1454 if (AI->isArrayAllocation() || !AI->getAllocatedType()->isSized())
1455 continue;
Bob Wilson69743022011-01-13 20:59:44 +00001456
Chris Lattner79b3bd32007-04-25 06:40:51 +00001457 // Check to see if this allocation is only modified by a memcpy/memmove from
1458 // a constant global. If this is the case, we can change all users to use
1459 // the constant global instead. This is commonly produced by the CFE by
1460 // constructs like "void foo() { int A[] = {1,2,3,4,5,6,7,8,9...}; }" if 'A'
1461 // is only subsequently read.
Chris Lattner31d80102010-04-15 21:59:20 +00001462 if (MemTransferInst *TheCopy = isOnlyCopiedFromConstantGlobal(AI)) {
David Greene504c7d82010-01-05 01:27:09 +00001463 DEBUG(dbgs() << "Found alloca equal to global: " << *AI << '\n');
1464 DEBUG(dbgs() << " memcpy = " << *TheCopy << '\n');
Chris Lattner31d80102010-04-15 21:59:20 +00001465 Constant *TheSrc = cast<Constant>(TheCopy->getSource());
Owen Andersonbaf3c402009-07-29 18:55:55 +00001466 AI->replaceAllUsesWith(ConstantExpr::getBitCast(TheSrc, AI->getType()));
Chris Lattner79b3bd32007-04-25 06:40:51 +00001467 TheCopy->eraseFromParent(); // Don't mutate the global.
1468 AI->eraseFromParent();
1469 ++NumGlobals;
1470 Changed = true;
1471 continue;
1472 }
Bob Wilson69743022011-01-13 20:59:44 +00001473
Chris Lattner7809ecd2009-02-03 01:30:09 +00001474 // Check to see if we can perform the core SROA transformation. We cannot
1475 // transform the allocation instruction if it is an array allocation
1476 // (allocations OF arrays are ok though), and an allocation of a scalar
1477 // value cannot be decomposed at all.
Duncan Sands777d2302009-05-09 07:06:46 +00001478 uint64_t AllocaSize = TD->getTypeAllocSize(AI->getAllocatedType());
Bill Wendling5a377cb2009-03-03 12:12:58 +00001479
Nick Lewyckyd3aa25e2009-08-17 05:37:31 +00001480 // Do not promote [0 x %struct].
1481 if (AllocaSize == 0) continue;
Bob Wilson69743022011-01-13 20:59:44 +00001482
Chris Lattner31d80102010-04-15 21:59:20 +00001483 // Do not promote any struct whose size is too big.
1484 if (AllocaSize > SRThreshold) continue;
Bob Wilson69743022011-01-13 20:59:44 +00001485
Bob Wilson3992feb2010-02-03 17:23:56 +00001486 // If the alloca looks like a good candidate for scalar replacement, and if
1487 // all its users can be transformed, then split up the aggregate into its
1488 // separate elements.
1489 if (ShouldAttemptScalarRepl(AI) && isSafeAllocaToScalarRepl(AI)) {
1490 DoScalarReplacement(AI, WorkList);
1491 Changed = true;
1492 continue;
1493 }
1494
Chris Lattner6e733d32009-01-28 20:16:43 +00001495 // If we can turn this aggregate value (potentially with casts) into a
1496 // simple scalar value that can be mem2reg'd into a register value.
Chris Lattner2e0d5f82009-01-31 02:28:54 +00001497 // IsNotTrivial tracks whether this is something that mem2reg could have
1498 // promoted itself. If so, we don't want to transform it needlessly. Note
1499 // that we can't just check based on the type: the alloca may be of an i32
1500 // but that has pointer arithmetic to set byte 3 of it or something.
Chris Lattner593375d2010-04-16 00:20:00 +00001501 if (AllocaInst *NewAI =
1502 ConvertToScalarInfo((unsigned)AllocaSize, *TD).TryConvert(AI)) {
Chris Lattner7809ecd2009-02-03 01:30:09 +00001503 NewAI->takeName(AI);
1504 AI->eraseFromParent();
1505 ++NumConverted;
1506 Changed = true;
1507 continue;
Bob Wilson69743022011-01-13 20:59:44 +00001508 }
1509
Chris Lattner7809ecd2009-02-03 01:30:09 +00001510 // Otherwise, couldn't process this alloca.
Chris Lattnered7b41e2003-05-27 15:45:27 +00001511 }
1512
1513 return Changed;
1514}
Chris Lattner5e062a12003-05-30 04:15:41 +00001515
Chris Lattnera10b29b2007-04-25 05:02:56 +00001516/// DoScalarReplacement - This alloca satisfied the isSafeAllocaToScalarRepl
1517/// predicate, do SROA now.
Bob Wilson69743022011-01-13 20:59:44 +00001518void SROA::DoScalarReplacement(AllocaInst *AI,
Victor Hernandez7b929da2009-10-23 21:09:37 +00001519 std::vector<AllocaInst*> &WorkList) {
David Greene504c7d82010-01-05 01:27:09 +00001520 DEBUG(dbgs() << "Found inst to SROA: " << *AI << '\n');
Chris Lattnera10b29b2007-04-25 05:02:56 +00001521 SmallVector<AllocaInst*, 32> ElementAllocas;
1522 if (const StructType *ST = dyn_cast<StructType>(AI->getAllocatedType())) {
1523 ElementAllocas.reserve(ST->getNumContainedTypes());
1524 for (unsigned i = 0, e = ST->getNumContainedTypes(); i != e; ++i) {
Bob Wilson69743022011-01-13 20:59:44 +00001525 AllocaInst *NA = new AllocaInst(ST->getContainedType(i), 0,
Chris Lattnera10b29b2007-04-25 05:02:56 +00001526 AI->getAlignment(),
Daniel Dunbarfe09b202009-07-30 17:37:43 +00001527 AI->getName() + "." + Twine(i), AI);
Chris Lattnera10b29b2007-04-25 05:02:56 +00001528 ElementAllocas.push_back(NA);
1529 WorkList.push_back(NA); // Add to worklist for recursive processing
1530 }
1531 } else {
1532 const ArrayType *AT = cast<ArrayType>(AI->getAllocatedType());
1533 ElementAllocas.reserve(AT->getNumElements());
1534 const Type *ElTy = AT->getElementType();
1535 for (unsigned i = 0, e = AT->getNumElements(); i != e; ++i) {
Owen Anderson50dead02009-07-15 23:53:25 +00001536 AllocaInst *NA = new AllocaInst(ElTy, 0, AI->getAlignment(),
Daniel Dunbarfe09b202009-07-30 17:37:43 +00001537 AI->getName() + "." + Twine(i), AI);
Chris Lattnera10b29b2007-04-25 05:02:56 +00001538 ElementAllocas.push_back(NA);
1539 WorkList.push_back(NA); // Add to worklist for recursive processing
1540 }
1541 }
1542
Bob Wilsonb742def2009-12-18 20:14:40 +00001543 // Now that we have created the new alloca instructions, rewrite all the
1544 // uses of the old alloca.
1545 RewriteForScalarRepl(AI, AI, 0, ElementAllocas);
Chris Lattnera59adc42009-12-14 05:11:02 +00001546
Bob Wilsonb742def2009-12-18 20:14:40 +00001547 // Now erase any instructions that were made dead while rewriting the alloca.
1548 DeleteDeadInstructions();
Bob Wilson39c88a62009-12-17 18:34:24 +00001549 AI->eraseFromParent();
Bob Wilsonb742def2009-12-18 20:14:40 +00001550
Dan Gohmanfe601042010-06-22 15:08:57 +00001551 ++NumReplaced;
Chris Lattnera10b29b2007-04-25 05:02:56 +00001552}
Chris Lattnera59adc42009-12-14 05:11:02 +00001553
Bob Wilsonb742def2009-12-18 20:14:40 +00001554/// DeleteDeadInstructions - Erase instructions on the DeadInstrs list,
1555/// recursively including all their operands that become trivially dead.
1556void SROA::DeleteDeadInstructions() {
1557 while (!DeadInsts.empty()) {
1558 Instruction *I = cast<Instruction>(DeadInsts.pop_back_val());
Chris Lattnera59adc42009-12-14 05:11:02 +00001559
Bob Wilsonb742def2009-12-18 20:14:40 +00001560 for (User::op_iterator OI = I->op_begin(), E = I->op_end(); OI != E; ++OI)
1561 if (Instruction *U = dyn_cast<Instruction>(*OI)) {
1562 // Zero out the operand and see if it becomes trivially dead.
1563 // (But, don't add allocas to the dead instruction list -- they are
1564 // already on the worklist and will be deleted separately.)
1565 *OI = 0;
1566 if (isInstructionTriviallyDead(U) && !isa<AllocaInst>(U))
1567 DeadInsts.push_back(U);
Chris Lattnera59adc42009-12-14 05:11:02 +00001568 }
Bob Wilsonb742def2009-12-18 20:14:40 +00001569
1570 I->eraseFromParent();
Chris Lattnera59adc42009-12-14 05:11:02 +00001571 }
Chris Lattnera59adc42009-12-14 05:11:02 +00001572}
Bob Wilson69743022011-01-13 20:59:44 +00001573
Bob Wilsonb742def2009-12-18 20:14:40 +00001574/// isSafeForScalarRepl - Check if instruction I is a safe use with regard to
1575/// performing scalar replacement of alloca AI. The results are flagged in
Bob Wilson3c3af5d2009-12-21 18:39:47 +00001576/// the Info parameter. Offset indicates the position within AI that is
1577/// referenced by this instruction.
Chris Lattner6c95d242011-01-23 07:29:29 +00001578void SROA::isSafeForScalarRepl(Instruction *I, uint64_t Offset,
Bob Wilson3c3af5d2009-12-21 18:39:47 +00001579 AllocaInfo &Info) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001580 for (Value::use_iterator UI = I->use_begin(), E = I->use_end(); UI!=E; ++UI) {
1581 Instruction *User = cast<Instruction>(*UI);
Chris Lattnerbe883a22003-11-25 21:09:18 +00001582
Bob Wilsonb742def2009-12-18 20:14:40 +00001583 if (BitCastInst *BC = dyn_cast<BitCastInst>(User)) {
Chris Lattner6c95d242011-01-23 07:29:29 +00001584 isSafeForScalarRepl(BC, Offset, Info);
Bob Wilsonb742def2009-12-18 20:14:40 +00001585 } else if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(User)) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001586 uint64_t GEPOffset = Offset;
Chris Lattner6c95d242011-01-23 07:29:29 +00001587 isSafeGEP(GEPI, GEPOffset, Info);
Bob Wilsonb742def2009-12-18 20:14:40 +00001588 if (!Info.isUnsafe)
Chris Lattner6c95d242011-01-23 07:29:29 +00001589 isSafeForScalarRepl(GEPI, GEPOffset, Info);
Gabor Greif19101c72010-06-28 11:20:42 +00001590 } else if (MemIntrinsic *MI = dyn_cast<MemIntrinsic>(User)) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001591 ConstantInt *Length = dyn_cast<ConstantInt>(MI->getLength());
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001592 if (Length == 0)
1593 return MarkUnsafe(Info, User);
Chris Lattner6c95d242011-01-23 07:29:29 +00001594 isSafeMemAccess(Offset, Length->getZExtValue(), 0,
Chris Lattner145c5322011-01-23 08:27:54 +00001595 UI.getOperandNo() == 0, Info, MI,
1596 true /*AllowWholeAccess*/);
Bob Wilsonb742def2009-12-18 20:14:40 +00001597 } else if (LoadInst *LI = dyn_cast<LoadInst>(User)) {
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001598 if (LI->isVolatile())
1599 return MarkUnsafe(Info, User);
1600 const Type *LIType = LI->getType();
Chris Lattner6c95d242011-01-23 07:29:29 +00001601 isSafeMemAccess(Offset, TD->getTypeAllocSize(LIType),
Chris Lattner145c5322011-01-23 08:27:54 +00001602 LIType, false, Info, LI, true /*AllowWholeAccess*/);
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001603 Info.hasALoadOrStore = true;
1604
Bob Wilsonb742def2009-12-18 20:14:40 +00001605 } else if (StoreInst *SI = dyn_cast<StoreInst>(User)) {
1606 // Store is ok if storing INTO the pointer, not storing the pointer
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001607 if (SI->isVolatile() || SI->getOperand(0) == I)
1608 return MarkUnsafe(Info, User);
1609
1610 const Type *SIType = SI->getOperand(0)->getType();
Chris Lattner6c95d242011-01-23 07:29:29 +00001611 isSafeMemAccess(Offset, TD->getTypeAllocSize(SIType),
Chris Lattner145c5322011-01-23 08:27:54 +00001612 SIType, true, Info, SI, true /*AllowWholeAccess*/);
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001613 Info.hasALoadOrStore = true;
Chris Lattner145c5322011-01-23 08:27:54 +00001614 } else if (isa<PHINode>(User) || isa<SelectInst>(User)) {
1615 isSafePHISelectUseForScalarRepl(User, Offset, Info);
1616 } else {
1617 return MarkUnsafe(Info, User);
1618 }
1619 if (Info.isUnsafe) return;
1620 }
1621}
1622
1623
1624/// isSafePHIUseForScalarRepl - If we see a PHI node or select using a pointer
1625/// derived from the alloca, we can often still split the alloca into elements.
1626/// This is useful if we have a large alloca where one element is phi'd
1627/// together somewhere: we can SRoA and promote all the other elements even if
1628/// we end up not being able to promote this one.
1629///
1630/// All we require is that the uses of the PHI do not index into other parts of
1631/// the alloca. The most important use case for this is single load and stores
1632/// that are PHI'd together, which can happen due to code sinking.
1633void SROA::isSafePHISelectUseForScalarRepl(Instruction *I, uint64_t Offset,
1634 AllocaInfo &Info) {
1635 // If we've already checked this PHI, don't do it again.
1636 if (PHINode *PN = dyn_cast<PHINode>(I))
1637 if (!Info.CheckedPHIs.insert(PN))
1638 return;
1639
1640 for (Value::use_iterator UI = I->use_begin(), E = I->use_end(); UI!=E; ++UI) {
1641 Instruction *User = cast<Instruction>(*UI);
1642
1643 if (BitCastInst *BC = dyn_cast<BitCastInst>(User)) {
1644 isSafePHISelectUseForScalarRepl(BC, Offset, Info);
1645 } else if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(User)) {
1646 // Only allow "bitcast" GEPs for simplicity. We could generalize this,
1647 // but would have to prove that we're staying inside of an element being
1648 // promoted.
1649 if (!GEPI->hasAllZeroIndices())
1650 return MarkUnsafe(Info, User);
1651 isSafePHISelectUseForScalarRepl(GEPI, Offset, Info);
1652 } else if (LoadInst *LI = dyn_cast<LoadInst>(User)) {
1653 if (LI->isVolatile())
1654 return MarkUnsafe(Info, User);
1655 const Type *LIType = LI->getType();
1656 isSafeMemAccess(Offset, TD->getTypeAllocSize(LIType),
1657 LIType, false, Info, LI, false /*AllowWholeAccess*/);
1658 Info.hasALoadOrStore = true;
1659
1660 } else if (StoreInst *SI = dyn_cast<StoreInst>(User)) {
1661 // Store is ok if storing INTO the pointer, not storing the pointer
1662 if (SI->isVolatile() || SI->getOperand(0) == I)
1663 return MarkUnsafe(Info, User);
1664
1665 const Type *SIType = SI->getOperand(0)->getType();
1666 isSafeMemAccess(Offset, TD->getTypeAllocSize(SIType),
1667 SIType, true, Info, SI, false /*AllowWholeAccess*/);
1668 Info.hasALoadOrStore = true;
1669 } else if (isa<PHINode>(User) || isa<SelectInst>(User)) {
1670 isSafePHISelectUseForScalarRepl(User, Offset, Info);
Bob Wilsonb742def2009-12-18 20:14:40 +00001671 } else {
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001672 return MarkUnsafe(Info, User);
Bob Wilsonb742def2009-12-18 20:14:40 +00001673 }
1674 if (Info.isUnsafe) return;
Bob Wilson39c88a62009-12-17 18:34:24 +00001675 }
Bob Wilsonb742def2009-12-18 20:14:40 +00001676}
Bob Wilson39c88a62009-12-17 18:34:24 +00001677
Bob Wilsonb742def2009-12-18 20:14:40 +00001678/// isSafeGEP - Check if a GEP instruction can be handled for scalar
1679/// replacement. It is safe when all the indices are constant, in-bounds
1680/// references, and when the resulting offset corresponds to an element within
1681/// the alloca type. The results are flagged in the Info parameter. Upon
Bob Wilson3c3af5d2009-12-21 18:39:47 +00001682/// return, Offset is adjusted as specified by the GEP indices.
Chris Lattner6c95d242011-01-23 07:29:29 +00001683void SROA::isSafeGEP(GetElementPtrInst *GEPI,
Bob Wilson3c3af5d2009-12-21 18:39:47 +00001684 uint64_t &Offset, AllocaInfo &Info) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001685 gep_type_iterator GEPIt = gep_type_begin(GEPI), E = gep_type_end(GEPI);
1686 if (GEPIt == E)
1687 return;
Bob Wilson39c88a62009-12-17 18:34:24 +00001688
Chris Lattner88e6dc82008-08-23 05:21:06 +00001689 // Walk through the GEP type indices, checking the types that this indexes
1690 // into.
Bob Wilsonb742def2009-12-18 20:14:40 +00001691 for (; GEPIt != E; ++GEPIt) {
Chris Lattner88e6dc82008-08-23 05:21:06 +00001692 // Ignore struct elements, no extra checking needed for these.
Duncan Sands1df98592010-02-16 11:11:14 +00001693 if ((*GEPIt)->isStructTy())
Chris Lattner88e6dc82008-08-23 05:21:06 +00001694 continue;
Matthijs Kooijman5fac55f2008-10-06 16:23:31 +00001695
Bob Wilsonb742def2009-12-18 20:14:40 +00001696 ConstantInt *IdxVal = dyn_cast<ConstantInt>(GEPIt.getOperand());
1697 if (!IdxVal)
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001698 return MarkUnsafe(Info, GEPI);
Chris Lattner88e6dc82008-08-23 05:21:06 +00001699 }
Bob Wilsonb742def2009-12-18 20:14:40 +00001700
Bob Wilsonf27a4cd2009-12-22 06:57:14 +00001701 // Compute the offset due to this GEP and check if the alloca has a
1702 // component element at that offset.
Bob Wilson3c3af5d2009-12-21 18:39:47 +00001703 SmallVector<Value*, 8> Indices(GEPI->op_begin() + 1, GEPI->op_end());
1704 Offset += TD->getIndexedOffset(GEPI->getPointerOperandType(),
1705 &Indices[0], Indices.size());
Chris Lattner6c95d242011-01-23 07:29:29 +00001706 if (!TypeHasComponent(Info.AI->getAllocatedType(), Offset, 0))
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001707 MarkUnsafe(Info, GEPI);
Chris Lattner5e062a12003-05-30 04:15:41 +00001708}
1709
Bob Wilson704d1342011-01-13 17:45:11 +00001710/// isHomogeneousAggregate - Check if type T is a struct or array containing
1711/// elements of the same type (which is always true for arrays). If so,
1712/// return true with NumElts and EltTy set to the number of elements and the
1713/// element type, respectively.
1714static bool isHomogeneousAggregate(const Type *T, unsigned &NumElts,
1715 const Type *&EltTy) {
1716 if (const ArrayType *AT = dyn_cast<ArrayType>(T)) {
1717 NumElts = AT->getNumElements();
Bob Wilsonf0908ae2011-01-13 18:26:59 +00001718 EltTy = (NumElts == 0 ? 0 : AT->getElementType());
Bob Wilson704d1342011-01-13 17:45:11 +00001719 return true;
1720 }
1721 if (const StructType *ST = dyn_cast<StructType>(T)) {
1722 NumElts = ST->getNumContainedTypes();
Bob Wilsonf0908ae2011-01-13 18:26:59 +00001723 EltTy = (NumElts == 0 ? 0 : ST->getContainedType(0));
Bob Wilson704d1342011-01-13 17:45:11 +00001724 for (unsigned n = 1; n < NumElts; ++n) {
1725 if (ST->getContainedType(n) != EltTy)
1726 return false;
1727 }
1728 return true;
1729 }
1730 return false;
1731}
1732
1733/// isCompatibleAggregate - Check if T1 and T2 are either the same type or are
1734/// "homogeneous" aggregates with the same element type and number of elements.
1735static bool isCompatibleAggregate(const Type *T1, const Type *T2) {
1736 if (T1 == T2)
1737 return true;
1738
1739 unsigned NumElts1, NumElts2;
1740 const Type *EltTy1, *EltTy2;
1741 if (isHomogeneousAggregate(T1, NumElts1, EltTy1) &&
1742 isHomogeneousAggregate(T2, NumElts2, EltTy2) &&
1743 NumElts1 == NumElts2 &&
1744 EltTy1 == EltTy2)
1745 return true;
1746
1747 return false;
1748}
1749
Bob Wilsonb742def2009-12-18 20:14:40 +00001750/// isSafeMemAccess - Check if a load/store/memcpy operates on the entire AI
1751/// alloca or has an offset and size that corresponds to a component element
1752/// within it. The offset checked here may have been formed from a GEP with a
1753/// pointer bitcasted to a different type.
Chris Lattner145c5322011-01-23 08:27:54 +00001754///
1755/// If AllowWholeAccess is true, then this allows uses of the entire alloca as a
1756/// unit. If false, it only allows accesses known to be in a single element.
Chris Lattner6c95d242011-01-23 07:29:29 +00001757void SROA::isSafeMemAccess(uint64_t Offset, uint64_t MemSize,
Bob Wilsonb742def2009-12-18 20:14:40 +00001758 const Type *MemOpType, bool isStore,
Chris Lattner145c5322011-01-23 08:27:54 +00001759 AllocaInfo &Info, Instruction *TheAccess,
1760 bool AllowWholeAccess) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001761 // Check if this is a load/store of the entire alloca.
Chris Lattner145c5322011-01-23 08:27:54 +00001762 if (Offset == 0 && AllowWholeAccess &&
Chris Lattner6c95d242011-01-23 07:29:29 +00001763 MemSize == TD->getTypeAllocSize(Info.AI->getAllocatedType())) {
Bob Wilson704d1342011-01-13 17:45:11 +00001764 // This can be safe for MemIntrinsics (where MemOpType is 0) and integer
1765 // loads/stores (which are essentially the same as the MemIntrinsics with
1766 // regard to copying padding between elements). But, if an alloca is
1767 // flagged as both a source and destination of such operations, we'll need
1768 // to check later for padding between elements.
1769 if (!MemOpType || MemOpType->isIntegerTy()) {
1770 if (isStore)
1771 Info.isMemCpyDst = true;
1772 else
1773 Info.isMemCpySrc = true;
Bob Wilsonb742def2009-12-18 20:14:40 +00001774 return;
1775 }
Bob Wilson704d1342011-01-13 17:45:11 +00001776 // This is also safe for references using a type that is compatible with
1777 // the type of the alloca, so that loads/stores can be rewritten using
1778 // insertvalue/extractvalue.
Chris Lattner6c95d242011-01-23 07:29:29 +00001779 if (isCompatibleAggregate(MemOpType, Info.AI->getAllocatedType())) {
Chris Lattner7e9b4272011-01-16 06:18:28 +00001780 Info.hasSubelementAccess = true;
Bob Wilson704d1342011-01-13 17:45:11 +00001781 return;
Chris Lattner7e9b4272011-01-16 06:18:28 +00001782 }
Bob Wilsonb742def2009-12-18 20:14:40 +00001783 }
1784 // Check if the offset/size correspond to a component within the alloca type.
Chris Lattner6c95d242011-01-23 07:29:29 +00001785 const Type *T = Info.AI->getAllocatedType();
Chris Lattner7e9b4272011-01-16 06:18:28 +00001786 if (TypeHasComponent(T, Offset, MemSize)) {
1787 Info.hasSubelementAccess = true;
Bob Wilsonb742def2009-12-18 20:14:40 +00001788 return;
Chris Lattner7e9b4272011-01-16 06:18:28 +00001789 }
Bob Wilsonb742def2009-12-18 20:14:40 +00001790
Chris Lattnerd01a0da2011-01-23 07:05:44 +00001791 return MarkUnsafe(Info, TheAccess);
Bob Wilsonb742def2009-12-18 20:14:40 +00001792}
1793
1794/// TypeHasComponent - Return true if T has a component type with the
1795/// specified offset and size. If Size is zero, do not check the size.
1796bool SROA::TypeHasComponent(const Type *T, uint64_t Offset, uint64_t Size) {
1797 const Type *EltTy;
1798 uint64_t EltSize;
1799 if (const StructType *ST = dyn_cast<StructType>(T)) {
1800 const StructLayout *Layout = TD->getStructLayout(ST);
1801 unsigned EltIdx = Layout->getElementContainingOffset(Offset);
1802 EltTy = ST->getContainedType(EltIdx);
1803 EltSize = TD->getTypeAllocSize(EltTy);
1804 Offset -= Layout->getElementOffset(EltIdx);
1805 } else if (const ArrayType *AT = dyn_cast<ArrayType>(T)) {
1806 EltTy = AT->getElementType();
1807 EltSize = TD->getTypeAllocSize(EltTy);
Bob Wilsonf27a4cd2009-12-22 06:57:14 +00001808 if (Offset >= AT->getNumElements() * EltSize)
1809 return false;
Bob Wilsonb742def2009-12-18 20:14:40 +00001810 Offset %= EltSize;
1811 } else {
1812 return false;
1813 }
1814 if (Offset == 0 && (Size == 0 || EltSize == Size))
1815 return true;
1816 // Check if the component spans multiple elements.
1817 if (Offset + Size > EltSize)
1818 return false;
1819 return TypeHasComponent(EltTy, Offset, Size);
1820}
1821
1822/// RewriteForScalarRepl - Alloca AI is being split into NewElts, so rewrite
1823/// the instruction I, which references it, to use the separate elements.
1824/// Offset indicates the position within AI that is referenced by this
1825/// instruction.
1826void SROA::RewriteForScalarRepl(Instruction *I, AllocaInst *AI, uint64_t Offset,
1827 SmallVector<AllocaInst*, 32> &NewElts) {
Chris Lattner145c5322011-01-23 08:27:54 +00001828 for (Value::use_iterator UI = I->use_begin(), E = I->use_end(); UI!=E;) {
1829 Use &TheUse = UI.getUse();
1830 Instruction *User = cast<Instruction>(*UI++);
Bob Wilsonb742def2009-12-18 20:14:40 +00001831
1832 if (BitCastInst *BC = dyn_cast<BitCastInst>(User)) {
1833 RewriteBitCast(BC, AI, Offset, NewElts);
Chris Lattner145c5322011-01-23 08:27:54 +00001834 continue;
1835 }
1836
1837 if (GetElementPtrInst *GEPI = dyn_cast<GetElementPtrInst>(User)) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001838 RewriteGEP(GEPI, AI, Offset, NewElts);
Chris Lattner145c5322011-01-23 08:27:54 +00001839 continue;
1840 }
1841
1842 if (MemIntrinsic *MI = dyn_cast<MemIntrinsic>(User)) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001843 ConstantInt *Length = dyn_cast<ConstantInt>(MI->getLength());
1844 uint64_t MemSize = Length->getZExtValue();
1845 if (Offset == 0 &&
1846 MemSize == TD->getTypeAllocSize(AI->getAllocatedType()))
1847 RewriteMemIntrinUserOfAlloca(MI, I, AI, NewElts);
Bob Wilsone88728d2009-12-19 06:53:17 +00001848 // Otherwise the intrinsic can only touch a single element and the
1849 // address operand will be updated, so nothing else needs to be done.
Chris Lattner145c5322011-01-23 08:27:54 +00001850 continue;
1851 }
1852
1853 if (LoadInst *LI = dyn_cast<LoadInst>(User)) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001854 const Type *LIType = LI->getType();
Chris Lattner192228e2011-01-16 05:28:59 +00001855
Bob Wilson704d1342011-01-13 17:45:11 +00001856 if (isCompatibleAggregate(LIType, AI->getAllocatedType())) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001857 // Replace:
1858 // %res = load { i32, i32 }* %alloc
1859 // with:
1860 // %load.0 = load i32* %alloc.0
1861 // %insert.0 insertvalue { i32, i32 } zeroinitializer, i32 %load.0, 0
1862 // %load.1 = load i32* %alloc.1
1863 // %insert = insertvalue { i32, i32 } %insert.0, i32 %load.1, 1
1864 // (Also works for arrays instead of structs)
1865 Value *Insert = UndefValue::get(LIType);
Devang Patelabb25122011-06-03 19:46:19 +00001866 IRBuilder<> Builder(LI);
Bob Wilsonb742def2009-12-18 20:14:40 +00001867 for (unsigned i = 0, e = NewElts.size(); i != e; ++i) {
Devang Patelabb25122011-06-03 19:46:19 +00001868 Value *Load = Builder.CreateLoad(NewElts[i], "load");
1869 Insert = Builder.CreateInsertValue(Insert, Load, i, "insert");
Bob Wilsonb742def2009-12-18 20:14:40 +00001870 }
1871 LI->replaceAllUsesWith(Insert);
1872 DeadInsts.push_back(LI);
Duncan Sands1df98592010-02-16 11:11:14 +00001873 } else if (LIType->isIntegerTy() &&
Bob Wilsonb742def2009-12-18 20:14:40 +00001874 TD->getTypeAllocSize(LIType) ==
1875 TD->getTypeAllocSize(AI->getAllocatedType())) {
1876 // If this is a load of the entire alloca to an integer, rewrite it.
1877 RewriteLoadUserOfWholeAlloca(LI, AI, NewElts);
1878 }
Chris Lattner145c5322011-01-23 08:27:54 +00001879 continue;
1880 }
1881
1882 if (StoreInst *SI = dyn_cast<StoreInst>(User)) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001883 Value *Val = SI->getOperand(0);
1884 const Type *SIType = Val->getType();
Bob Wilson704d1342011-01-13 17:45:11 +00001885 if (isCompatibleAggregate(SIType, AI->getAllocatedType())) {
Bob Wilsonb742def2009-12-18 20:14:40 +00001886 // Replace:
1887 // store { i32, i32 } %val, { i32, i32 }* %alloc
1888 // with:
1889 // %val.0 = extractvalue { i32, i32 } %val, 0
1890 // store i32 %val.0, i32* %alloc.0
1891 // %val.1 = extractvalue { i32, i32 } %val, 1
1892 // store i32 %val.1, i32* %alloc.1
1893 // (Also works for arrays instead of structs)
Devang Patelabb25122011-06-03 19:46:19 +00001894 IRBuilder<> Builder(SI);
Bob Wilsonb742def2009-12-18 20:14:40 +00001895 for (unsigned i = 0, e = NewElts.size(); i != e; ++i) {
Devang Patelabb25122011-06-03 19:46:19 +00001896 Value *Extract = Builder.CreateExtractValue(Val, i, Val->getName());
1897 Builder.CreateStore(Extract, NewElts[i]);
Bob Wilsonb742def2009-12-18 20:14:40 +00001898 }
1899 DeadInsts.push_back(SI);
Duncan Sands1df98592010-02-16 11:11:14 +00001900 } else if (SIType->isIntegerTy() &&
Bob Wilsonb742def2009-12-18 20:14:40 +00001901 TD->getTypeAllocSize(SIType) ==
1902 TD->getTypeAllocSize(AI->getAllocatedType())) {
1903 // If this is a store of the entire alloca from an integer, rewrite it.
1904 RewriteStoreUserOfWholeAlloca(SI, AI, NewElts);
1905 }
Chris Lattner145c5322011-01-23 08:27:54 +00001906 continue;
1907 }
1908
1909 if (isa<SelectInst>(User) || isa<PHINode>(User)) {
1910 // If we have a PHI user of the alloca itself (as opposed to a GEP or
1911 // bitcast) we have to rewrite it. GEP and bitcast uses will be RAUW'd to
1912 // the new pointer.
1913 if (!isa<AllocaInst>(I)) continue;
1914
1915 assert(Offset == 0 && NewElts[0] &&
1916 "Direct alloca use should have a zero offset");
1917
1918 // If we have a use of the alloca, we know the derived uses will be
1919 // utilizing just the first element of the scalarized result. Insert a
1920 // bitcast of the first alloca before the user as required.
1921 AllocaInst *NewAI = NewElts[0];
1922 BitCastInst *BCI = new BitCastInst(NewAI, AI->getType(), "", NewAI);
1923 NewAI->moveBefore(BCI);
1924 TheUse = BCI;
1925 continue;
Bob Wilsonb742def2009-12-18 20:14:40 +00001926 }
Bob Wilson39c88a62009-12-17 18:34:24 +00001927 }
1928}
1929
Bob Wilsonb742def2009-12-18 20:14:40 +00001930/// RewriteBitCast - Update a bitcast reference to the alloca being replaced
1931/// and recursively continue updating all of its uses.
1932void SROA::RewriteBitCast(BitCastInst *BC, AllocaInst *AI, uint64_t Offset,
1933 SmallVector<AllocaInst*, 32> &NewElts) {
1934 RewriteForScalarRepl(BC, AI, Offset, NewElts);
1935 if (BC->getOperand(0) != AI)
1936 return;
Bob Wilson39c88a62009-12-17 18:34:24 +00001937
Bob Wilsonb742def2009-12-18 20:14:40 +00001938 // The bitcast references the original alloca. Replace its uses with
1939 // references to the first new element alloca.
1940 Instruction *Val = NewElts[0];
1941 if (Val->getType() != BC->getDestTy()) {
1942 Val = new BitCastInst(Val, BC->getDestTy(), "", BC);
1943 Val->takeName(BC);
Daniel Dunbarfca55c82009-12-16 10:56:17 +00001944 }
Bob Wilsonb742def2009-12-18 20:14:40 +00001945 BC->replaceAllUsesWith(Val);
1946 DeadInsts.push_back(BC);
Daniel Dunbarfca55c82009-12-16 10:56:17 +00001947}
1948
Bob Wilsonb742def2009-12-18 20:14:40 +00001949/// FindElementAndOffset - Return the index of the element containing Offset
1950/// within the specified type, which must be either a struct or an array.
1951/// Sets T to the type of the element and Offset to the offset within that
Bob Wilsone88728d2009-12-19 06:53:17 +00001952/// element. IdxTy is set to the type of the index result to be used in a
1953/// GEP instruction.
1954uint64_t SROA::FindElementAndOffset(const Type *&T, uint64_t &Offset,
1955 const Type *&IdxTy) {
1956 uint64_t Idx = 0;
Bob Wilsonb742def2009-12-18 20:14:40 +00001957 if (const StructType *ST = dyn_cast<StructType>(T)) {
1958 const StructLayout *Layout = TD->getStructLayout(ST);
1959 Idx = Layout->getElementContainingOffset(Offset);
1960 T = ST->getContainedType(Idx);
1961 Offset -= Layout->getElementOffset(Idx);
Bob Wilsone88728d2009-12-19 06:53:17 +00001962 IdxTy = Type::getInt32Ty(T->getContext());
1963 return Idx;
Chris Lattnera59adc42009-12-14 05:11:02 +00001964 }
Bob Wilsone88728d2009-12-19 06:53:17 +00001965 const ArrayType *AT = cast<ArrayType>(T);
1966 T = AT->getElementType();
1967 uint64_t EltSize = TD->getTypeAllocSize(T);
1968 Idx = Offset / EltSize;
1969 Offset -= Idx * EltSize;
1970 IdxTy = Type::getInt64Ty(T->getContext());
Bob Wilsonb742def2009-12-18 20:14:40 +00001971 return Idx;
1972}
1973
1974/// RewriteGEP - Check if this GEP instruction moves the pointer across
1975/// elements of the alloca that are being split apart, and if so, rewrite
1976/// the GEP to be relative to the new element.
1977void SROA::RewriteGEP(GetElementPtrInst *GEPI, AllocaInst *AI, uint64_t Offset,
1978 SmallVector<AllocaInst*, 32> &NewElts) {
1979 uint64_t OldOffset = Offset;
1980 SmallVector<Value*, 8> Indices(GEPI->op_begin() + 1, GEPI->op_end());
1981 Offset += TD->getIndexedOffset(GEPI->getPointerOperandType(),
1982 &Indices[0], Indices.size());
1983
1984 RewriteForScalarRepl(GEPI, AI, Offset, NewElts);
1985
1986 const Type *T = AI->getAllocatedType();
Bob Wilsone88728d2009-12-19 06:53:17 +00001987 const Type *IdxTy;
1988 uint64_t OldIdx = FindElementAndOffset(T, OldOffset, IdxTy);
Bob Wilsonb742def2009-12-18 20:14:40 +00001989 if (GEPI->getOperand(0) == AI)
Bob Wilsone88728d2009-12-19 06:53:17 +00001990 OldIdx = ~0ULL; // Force the GEP to be rewritten.
Bob Wilsonb742def2009-12-18 20:14:40 +00001991
1992 T = AI->getAllocatedType();
1993 uint64_t EltOffset = Offset;
Bob Wilsone88728d2009-12-19 06:53:17 +00001994 uint64_t Idx = FindElementAndOffset(T, EltOffset, IdxTy);
Bob Wilsonb742def2009-12-18 20:14:40 +00001995
1996 // If this GEP does not move the pointer across elements of the alloca
1997 // being split, then it does not needs to be rewritten.
1998 if (Idx == OldIdx)
1999 return;
2000
2001 const Type *i32Ty = Type::getInt32Ty(AI->getContext());
2002 SmallVector<Value*, 8> NewArgs;
2003 NewArgs.push_back(Constant::getNullValue(i32Ty));
2004 while (EltOffset != 0) {
Bob Wilsone88728d2009-12-19 06:53:17 +00002005 uint64_t EltIdx = FindElementAndOffset(T, EltOffset, IdxTy);
2006 NewArgs.push_back(ConstantInt::get(IdxTy, EltIdx));
Bob Wilsonb742def2009-12-18 20:14:40 +00002007 }
2008 Instruction *Val = NewElts[Idx];
2009 if (NewArgs.size() > 1) {
2010 Val = GetElementPtrInst::CreateInBounds(Val, NewArgs.begin(),
2011 NewArgs.end(), "", GEPI);
2012 Val->takeName(GEPI);
2013 }
2014 if (Val->getType() != GEPI->getType())
Benjamin Kramer2d64ca02010-01-27 19:46:52 +00002015 Val = new BitCastInst(Val, GEPI->getType(), Val->getName(), GEPI);
Bob Wilsonb742def2009-12-18 20:14:40 +00002016 GEPI->replaceAllUsesWith(Val);
2017 DeadInsts.push_back(GEPI);
Chris Lattnerd93afec2009-01-07 07:18:45 +00002018}
2019
2020/// RewriteMemIntrinUserOfAlloca - MI is a memcpy/memset/memmove from or to AI.
2021/// Rewrite it to copy or set the elements of the scalarized memory.
Bob Wilsonb742def2009-12-18 20:14:40 +00002022void SROA::RewriteMemIntrinUserOfAlloca(MemIntrinsic *MI, Instruction *Inst,
Victor Hernandez7b929da2009-10-23 21:09:37 +00002023 AllocaInst *AI,
Chris Lattnerd93afec2009-01-07 07:18:45 +00002024 SmallVector<AllocaInst*, 32> &NewElts) {
Chris Lattnerd93afec2009-01-07 07:18:45 +00002025 // If this is a memcpy/memmove, construct the other pointer as the
Chris Lattner88fe1ad2009-03-04 19:23:25 +00002026 // appropriate type. The "Other" pointer is the pointer that goes to memory
2027 // that doesn't have anything to do with the alloca that we are promoting. For
2028 // memset, this Value* stays null.
Chris Lattnerd93afec2009-01-07 07:18:45 +00002029 Value *OtherPtr = 0;
Chris Lattnerdfe964c2009-03-08 03:59:00 +00002030 unsigned MemAlignment = MI->getAlignment();
Chris Lattner3ce5e882009-03-08 03:37:16 +00002031 if (MemTransferInst *MTI = dyn_cast<MemTransferInst>(MI)) { // memmove/memcopy
Bob Wilsonb742def2009-12-18 20:14:40 +00002032 if (Inst == MTI->getRawDest())
Chris Lattner3ce5e882009-03-08 03:37:16 +00002033 OtherPtr = MTI->getRawSource();
Chris Lattnerd93afec2009-01-07 07:18:45 +00002034 else {
Bob Wilsonb742def2009-12-18 20:14:40 +00002035 assert(Inst == MTI->getRawSource());
Chris Lattner3ce5e882009-03-08 03:37:16 +00002036 OtherPtr = MTI->getRawDest();
Chris Lattnerd93afec2009-01-07 07:18:45 +00002037 }
2038 }
Bob Wilson78c50b82009-12-08 18:22:03 +00002039
Chris Lattnerd93afec2009-01-07 07:18:45 +00002040 // If there is an other pointer, we want to convert it to the same pointer
2041 // type as AI has, so we can GEP through it safely.
2042 if (OtherPtr) {
Chris Lattner0238f8c2010-07-08 00:27:05 +00002043 unsigned AddrSpace =
2044 cast<PointerType>(OtherPtr->getType())->getAddressSpace();
Bob Wilsonb742def2009-12-18 20:14:40 +00002045
2046 // Remove bitcasts and all-zero GEPs from OtherPtr. This is an
2047 // optimization, but it's also required to detect the corner case where
2048 // both pointer operands are referencing the same memory, and where
2049 // OtherPtr may be a bitcast or GEP that currently being rewritten. (This
2050 // function is only called for mem intrinsics that access the whole
2051 // aggregate, so non-zero GEPs are not an issue here.)
Chris Lattner0238f8c2010-07-08 00:27:05 +00002052 OtherPtr = OtherPtr->stripPointerCasts();
Bob Wilson69743022011-01-13 20:59:44 +00002053
Bob Wilsona756b1d2010-01-19 04:32:48 +00002054 // Copying the alloca to itself is a no-op: just delete it.
2055 if (OtherPtr == AI || OtherPtr == NewElts[0]) {
2056 // This code will run twice for a no-op memcpy -- once for each operand.
2057 // Put only one reference to MI on the DeadInsts list.
2058 for (SmallVector<Value*, 32>::const_iterator I = DeadInsts.begin(),
2059 E = DeadInsts.end(); I != E; ++I)
2060 if (*I == MI) return;
2061 DeadInsts.push_back(MI);
Bob Wilsonb742def2009-12-18 20:14:40 +00002062 return;
Bob Wilsona756b1d2010-01-19 04:32:48 +00002063 }
Bob Wilson69743022011-01-13 20:59:44 +00002064
Chris Lattnerd93afec2009-01-07 07:18:45 +00002065 // If the pointer is not the right type, insert a bitcast to the right
2066 // type.
Chris Lattner0238f8c2010-07-08 00:27:05 +00002067 const Type *NewTy =
2068 PointerType::get(AI->getType()->getElementType(), AddrSpace);
Bob Wilson69743022011-01-13 20:59:44 +00002069
Chris Lattner0238f8c2010-07-08 00:27:05 +00002070 if (OtherPtr->getType() != NewTy)
2071 OtherPtr = new BitCastInst(OtherPtr, NewTy, OtherPtr->getName(), MI);
Chris Lattnerd93afec2009-01-07 07:18:45 +00002072 }
Bob Wilson69743022011-01-13 20:59:44 +00002073
Chris Lattnerd93afec2009-01-07 07:18:45 +00002074 // Process each element of the aggregate.
Bob Wilsonb742def2009-12-18 20:14:40 +00002075 bool SROADest = MI->getRawDest() == Inst;
Bob Wilson69743022011-01-13 20:59:44 +00002076
Owen Anderson1d0be152009-08-13 21:58:54 +00002077 Constant *Zero = Constant::getNullValue(Type::getInt32Ty(MI->getContext()));
Chris Lattnerd93afec2009-01-07 07:18:45 +00002078
2079 for (unsigned i = 0, e = NewElts.size(); i != e; ++i) {
2080 // If this is a memcpy/memmove, emit a GEP of the other element address.
2081 Value *OtherElt = 0;
Chris Lattner1541e0f2009-03-04 19:20:50 +00002082 unsigned OtherEltAlign = MemAlignment;
Bob Wilson69743022011-01-13 20:59:44 +00002083
Bob Wilsona756b1d2010-01-19 04:32:48 +00002084 if (OtherPtr) {
Owen Anderson1d0be152009-08-13 21:58:54 +00002085 Value *Idx[2] = { Zero,
2086 ConstantInt::get(Type::getInt32Ty(MI->getContext()), i) };
Bob Wilsonb742def2009-12-18 20:14:40 +00002087 OtherElt = GetElementPtrInst::CreateInBounds(OtherPtr, Idx, Idx + 2,
Benjamin Kramer2d64ca02010-01-27 19:46:52 +00002088 OtherPtr->getName()+"."+Twine(i),
Bob Wilsonb742def2009-12-18 20:14:40 +00002089 MI);
Chris Lattner1541e0f2009-03-04 19:20:50 +00002090 uint64_t EltOffset;
2091 const PointerType *OtherPtrTy = cast<PointerType>(OtherPtr->getType());
Chris Lattnerd55c1c12010-04-16 01:05:38 +00002092 const Type *OtherTy = OtherPtrTy->getElementType();
2093 if (const StructType *ST = dyn_cast<StructType>(OtherTy)) {
Chris Lattner1541e0f2009-03-04 19:20:50 +00002094 EltOffset = TD->getStructLayout(ST)->getElementOffset(i);
2095 } else {
Chris Lattnerd55c1c12010-04-16 01:05:38 +00002096 const Type *EltTy = cast<SequentialType>(OtherTy)->getElementType();
Duncan Sands777d2302009-05-09 07:06:46 +00002097 EltOffset = TD->getTypeAllocSize(EltTy)*i;
Chris Lattner1541e0f2009-03-04 19:20:50 +00002098 }
Bob Wilson69743022011-01-13 20:59:44 +00002099
Chris Lattner1541e0f2009-03-04 19:20:50 +00002100 // The alignment of the other pointer is the guaranteed alignment of the
2101 // element, which is affected by both the known alignment of the whole
2102 // mem intrinsic and the alignment of the element. If the alignment of
2103 // the memcpy (f.e.) is 32 but the element is at a 4-byte offset, then the
2104 // known alignment is just 4 bytes.
2105 OtherEltAlign = (unsigned)MinAlign(OtherEltAlign, EltOffset);
Chris Lattnerc14d3ca2007-03-08 06:36:54 +00002106 }
Bob Wilson69743022011-01-13 20:59:44 +00002107
Chris Lattnerd93afec2009-01-07 07:18:45 +00002108 Value *EltPtr = NewElts[i];
Chris Lattner1541e0f2009-03-04 19:20:50 +00002109 const Type *EltTy = cast<PointerType>(EltPtr->getType())->getElementType();
Bob Wilson69743022011-01-13 20:59:44 +00002110
Chris Lattnerd93afec2009-01-07 07:18:45 +00002111 // If we got down to a scalar, insert a load or store as appropriate.
2112 if (EltTy->isSingleValueType()) {
Chris Lattner3ce5e882009-03-08 03:37:16 +00002113 if (isa<MemTransferInst>(MI)) {
Chris Lattner1541e0f2009-03-04 19:20:50 +00002114 if (SROADest) {
2115 // From Other to Alloca.
2116 Value *Elt = new LoadInst(OtherElt, "tmp", false, OtherEltAlign, MI);
2117 new StoreInst(Elt, EltPtr, MI);
2118 } else {
2119 // From Alloca to Other.
2120 Value *Elt = new LoadInst(EltPtr, "tmp", MI);
2121 new StoreInst(Elt, OtherElt, false, OtherEltAlign, MI);
2122 }
Chris Lattnerd93afec2009-01-07 07:18:45 +00002123 continue;
2124 }
2125 assert(isa<MemSetInst>(MI));
Bob Wilson69743022011-01-13 20:59:44 +00002126
Chris Lattnerd93afec2009-01-07 07:18:45 +00002127 // If the stored element is zero (common case), just store a null
2128 // constant.
2129 Constant *StoreVal;
Gabor Greif6f14c8c2010-06-30 09:16:16 +00002130 if (ConstantInt *CI = dyn_cast<ConstantInt>(MI->getArgOperand(1))) {
Chris Lattnerd93afec2009-01-07 07:18:45 +00002131 if (CI->isZero()) {
Owen Andersona7235ea2009-07-31 20:28:14 +00002132 StoreVal = Constant::getNullValue(EltTy); // 0.0, null, 0, <0,0>
Chris Lattnerd93afec2009-01-07 07:18:45 +00002133 } else {
2134 // If EltTy is a vector type, get the element type.
Dan Gohman44118f02009-06-16 00:20:26 +00002135 const Type *ValTy = EltTy->getScalarType();
2136
Chris Lattnerd93afec2009-01-07 07:18:45 +00002137 // Construct an integer with the right value.
2138 unsigned EltSize = TD->getTypeSizeInBits(ValTy);
2139 APInt OneVal(EltSize, CI->getZExtValue());
2140 APInt TotalVal(OneVal);
2141 // Set each byte.
2142 for (unsigned i = 0; 8*i < EltSize; ++i) {
2143 TotalVal = TotalVal.shl(8);
2144 TotalVal |= OneVal;
2145 }
Bob Wilson69743022011-01-13 20:59:44 +00002146
Chris Lattnerd93afec2009-01-07 07:18:45 +00002147 // Convert the integer value to the appropriate type.
Chris Lattnerd55c1c12010-04-16 01:05:38 +00002148 StoreVal = ConstantInt::get(CI->getContext(), TotalVal);
Duncan Sands1df98592010-02-16 11:11:14 +00002149 if (ValTy->isPointerTy())
Owen Andersonbaf3c402009-07-29 18:55:55 +00002150 StoreVal = ConstantExpr::getIntToPtr(StoreVal, ValTy);
Duncan Sandsb0bc6c32010-02-15 16:12:20 +00002151 else if (ValTy->isFloatingPointTy())
Owen Andersonbaf3c402009-07-29 18:55:55 +00002152 StoreVal = ConstantExpr::getBitCast(StoreVal, ValTy);
Chris Lattnerd93afec2009-01-07 07:18:45 +00002153 assert(StoreVal->getType() == ValTy && "Type mismatch!");
Bob Wilson69743022011-01-13 20:59:44 +00002154
Chris Lattnerd93afec2009-01-07 07:18:45 +00002155 // If the requested value was a vector constant, create it.
2156 if (EltTy != ValTy) {
2157 unsigned NumElts = cast<VectorType>(ValTy)->getNumElements();
2158 SmallVector<Constant*, 16> Elts(NumElts, StoreVal);
Chris Lattner2ca5c862011-02-15 00:14:00 +00002159 StoreVal = ConstantVector::get(Elts);
Chris Lattnerd93afec2009-01-07 07:18:45 +00002160 }
2161 }
2162 new StoreInst(StoreVal, EltPtr, MI);
2163 continue;
2164 }
2165 // Otherwise, if we're storing a byte variable, use a memset call for
2166 // this element.
2167 }
Bob Wilson69743022011-01-13 20:59:44 +00002168
Duncan Sands777d2302009-05-09 07:06:46 +00002169 unsigned EltSize = TD->getTypeAllocSize(EltTy);
Bob Wilson69743022011-01-13 20:59:44 +00002170
Chris Lattner61db1f52010-12-26 22:57:41 +00002171 IRBuilder<> Builder(MI);
Bob Wilson69743022011-01-13 20:59:44 +00002172
Chris Lattnerd93afec2009-01-07 07:18:45 +00002173 // Finally, insert the meminst for this element.
Chris Lattner61db1f52010-12-26 22:57:41 +00002174 if (isa<MemSetInst>(MI)) {
2175 Builder.CreateMemSet(EltPtr, MI->getArgOperand(1), EltSize,
2176 MI->isVolatile());
Chris Lattnerd93afec2009-01-07 07:18:45 +00002177 } else {
Chris Lattner61db1f52010-12-26 22:57:41 +00002178 assert(isa<MemTransferInst>(MI));
2179 Value *Dst = SROADest ? EltPtr : OtherElt; // Dest ptr
2180 Value *Src = SROADest ? OtherElt : EltPtr; // Src ptr
Bob Wilson69743022011-01-13 20:59:44 +00002181
Chris Lattner61db1f52010-12-26 22:57:41 +00002182 if (isa<MemCpyInst>(MI))
2183 Builder.CreateMemCpy(Dst, Src, EltSize, OtherEltAlign,MI->isVolatile());
2184 else
2185 Builder.CreateMemMove(Dst, Src, EltSize,OtherEltAlign,MI->isVolatile());
Chris Lattnerd93afec2009-01-07 07:18:45 +00002186 }
Chris Lattner372dda82007-03-05 07:52:57 +00002187 }
Bob Wilsonb742def2009-12-18 20:14:40 +00002188 DeadInsts.push_back(MI);
Chris Lattner372dda82007-03-05 07:52:57 +00002189}
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002190
Bob Wilson39fdd692009-12-04 21:57:37 +00002191/// RewriteStoreUserOfWholeAlloca - We found a store of an integer that
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002192/// overwrites the entire allocation. Extract out the pieces of the stored
2193/// integer and store them individually.
Victor Hernandez7b929da2009-10-23 21:09:37 +00002194void SROA::RewriteStoreUserOfWholeAlloca(StoreInst *SI, AllocaInst *AI,
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002195 SmallVector<AllocaInst*, 32> &NewElts){
2196 // Extract each element out of the integer according to its structure offset
2197 // and store the element value to the individual alloca.
2198 Value *SrcVal = SI->getOperand(0);
Bob Wilsonb742def2009-12-18 20:14:40 +00002199 const Type *AllocaEltTy = AI->getAllocatedType();
Duncan Sands777d2302009-05-09 07:06:46 +00002200 uint64_t AllocaSizeBits = TD->getTypeAllocSizeInBits(AllocaEltTy);
Bob Wilson69743022011-01-13 20:59:44 +00002201
Chris Lattner70728532011-01-16 05:58:24 +00002202 IRBuilder<> Builder(SI);
2203
Eli Friedman41b33f42009-06-01 09:14:32 +00002204 // Handle tail padding by extending the operand
2205 if (TD->getTypeSizeInBits(SrcVal->getType()) != AllocaSizeBits)
Chris Lattner70728532011-01-16 05:58:24 +00002206 SrcVal = Builder.CreateZExt(SrcVal,
2207 IntegerType::get(SI->getContext(), AllocaSizeBits));
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002208
David Greene504c7d82010-01-05 01:27:09 +00002209 DEBUG(dbgs() << "PROMOTING STORE TO WHOLE ALLOCA: " << *AI << '\n' << *SI
Nick Lewycky59136252009-09-15 07:08:25 +00002210 << '\n');
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002211
2212 // There are two forms here: AI could be an array or struct. Both cases
2213 // have different ways to compute the element offset.
2214 if (const StructType *EltSTy = dyn_cast<StructType>(AllocaEltTy)) {
2215 const StructLayout *Layout = TD->getStructLayout(EltSTy);
Bob Wilson69743022011-01-13 20:59:44 +00002216
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002217 for (unsigned i = 0, e = NewElts.size(); i != e; ++i) {
2218 // Get the number of bits to shift SrcVal to get the value.
2219 const Type *FieldTy = EltSTy->getElementType(i);
2220 uint64_t Shift = Layout->getElementOffsetInBits(i);
Bob Wilson69743022011-01-13 20:59:44 +00002221
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002222 if (TD->isBigEndian())
Duncan Sands777d2302009-05-09 07:06:46 +00002223 Shift = AllocaSizeBits-Shift-TD->getTypeAllocSizeInBits(FieldTy);
Bob Wilson69743022011-01-13 20:59:44 +00002224
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002225 Value *EltVal = SrcVal;
2226 if (Shift) {
Owen Andersoneed707b2009-07-24 23:12:02 +00002227 Value *ShiftVal = ConstantInt::get(EltVal->getType(), Shift);
Chris Lattner70728532011-01-16 05:58:24 +00002228 EltVal = Builder.CreateLShr(EltVal, ShiftVal, "sroa.store.elt");
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002229 }
Bob Wilson69743022011-01-13 20:59:44 +00002230
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002231 // Truncate down to an integer of the right size.
2232 uint64_t FieldSizeBits = TD->getTypeSizeInBits(FieldTy);
Bob Wilson69743022011-01-13 20:59:44 +00002233
Chris Lattner583dd602009-01-09 18:18:43 +00002234 // Ignore zero sized fields like {}, they obviously contain no data.
2235 if (FieldSizeBits == 0) continue;
Bob Wilson69743022011-01-13 20:59:44 +00002236
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002237 if (FieldSizeBits != AllocaSizeBits)
Chris Lattner70728532011-01-16 05:58:24 +00002238 EltVal = Builder.CreateTrunc(EltVal,
2239 IntegerType::get(SI->getContext(), FieldSizeBits));
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002240 Value *DestField = NewElts[i];
2241 if (EltVal->getType() == FieldTy) {
2242 // Storing to an integer field of this size, just do it.
Duncan Sands1df98592010-02-16 11:11:14 +00002243 } else if (FieldTy->isFloatingPointTy() || FieldTy->isVectorTy()) {
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002244 // Bitcast to the right element type (for fp/vector values).
Chris Lattner70728532011-01-16 05:58:24 +00002245 EltVal = Builder.CreateBitCast(EltVal, FieldTy);
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002246 } else {
2247 // Otherwise, bitcast the dest pointer (for aggregates).
Chris Lattner70728532011-01-16 05:58:24 +00002248 DestField = Builder.CreateBitCast(DestField,
2249 PointerType::getUnqual(EltVal->getType()));
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002250 }
2251 new StoreInst(EltVal, DestField, SI);
2252 }
Bob Wilson69743022011-01-13 20:59:44 +00002253
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002254 } else {
2255 const ArrayType *ATy = cast<ArrayType>(AllocaEltTy);
2256 const Type *ArrayEltTy = ATy->getElementType();
Duncan Sands777d2302009-05-09 07:06:46 +00002257 uint64_t ElementOffset = TD->getTypeAllocSizeInBits(ArrayEltTy);
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002258 uint64_t ElementSizeBits = TD->getTypeSizeInBits(ArrayEltTy);
2259
2260 uint64_t Shift;
Bob Wilson69743022011-01-13 20:59:44 +00002261
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002262 if (TD->isBigEndian())
2263 Shift = AllocaSizeBits-ElementOffset;
Bob Wilson69743022011-01-13 20:59:44 +00002264 else
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002265 Shift = 0;
Bob Wilson69743022011-01-13 20:59:44 +00002266
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002267 for (unsigned i = 0, e = NewElts.size(); i != e; ++i) {
Chris Lattner583dd602009-01-09 18:18:43 +00002268 // Ignore zero sized fields like {}, they obviously contain no data.
2269 if (ElementSizeBits == 0) continue;
Bob Wilson69743022011-01-13 20:59:44 +00002270
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002271 Value *EltVal = SrcVal;
2272 if (Shift) {
Owen Andersoneed707b2009-07-24 23:12:02 +00002273 Value *ShiftVal = ConstantInt::get(EltVal->getType(), Shift);
Chris Lattner70728532011-01-16 05:58:24 +00002274 EltVal = Builder.CreateLShr(EltVal, ShiftVal, "sroa.store.elt");
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002275 }
Bob Wilson69743022011-01-13 20:59:44 +00002276
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002277 // Truncate down to an integer of the right size.
2278 if (ElementSizeBits != AllocaSizeBits)
Chris Lattner70728532011-01-16 05:58:24 +00002279 EltVal = Builder.CreateTrunc(EltVal,
2280 IntegerType::get(SI->getContext(),
2281 ElementSizeBits));
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002282 Value *DestField = NewElts[i];
2283 if (EltVal->getType() == ArrayEltTy) {
2284 // Storing to an integer field of this size, just do it.
Duncan Sandsb0bc6c32010-02-15 16:12:20 +00002285 } else if (ArrayEltTy->isFloatingPointTy() ||
Duncan Sands1df98592010-02-16 11:11:14 +00002286 ArrayEltTy->isVectorTy()) {
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002287 // Bitcast to the right element type (for fp/vector values).
Chris Lattner70728532011-01-16 05:58:24 +00002288 EltVal = Builder.CreateBitCast(EltVal, ArrayEltTy);
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002289 } else {
2290 // Otherwise, bitcast the dest pointer (for aggregates).
Chris Lattner70728532011-01-16 05:58:24 +00002291 DestField = Builder.CreateBitCast(DestField,
2292 PointerType::getUnqual(EltVal->getType()));
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002293 }
2294 new StoreInst(EltVal, DestField, SI);
Bob Wilson69743022011-01-13 20:59:44 +00002295
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002296 if (TD->isBigEndian())
2297 Shift -= ElementOffset;
Bob Wilson69743022011-01-13 20:59:44 +00002298 else
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002299 Shift += ElementOffset;
2300 }
2301 }
Bob Wilson69743022011-01-13 20:59:44 +00002302
Bob Wilsonb742def2009-12-18 20:14:40 +00002303 DeadInsts.push_back(SI);
Chris Lattnerd2fa7812009-01-07 08:11:13 +00002304}
2305
Bob Wilson39fdd692009-12-04 21:57:37 +00002306/// RewriteLoadUserOfWholeAlloca - We found a load of the entire allocation to
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002307/// an integer. Load the individual pieces to form the aggregate value.
Victor Hernandez7b929da2009-10-23 21:09:37 +00002308void SROA::RewriteLoadUserOfWholeAlloca(LoadInst *LI, AllocaInst *AI,
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002309 SmallVector<AllocaInst*, 32> &NewElts) {
2310 // Extract each element out of the NewElts according to its structure offset
2311 // and form the result value.
Bob Wilsonb742def2009-12-18 20:14:40 +00002312 const Type *AllocaEltTy = AI->getAllocatedType();
Duncan Sands777d2302009-05-09 07:06:46 +00002313 uint64_t AllocaSizeBits = TD->getTypeAllocSizeInBits(AllocaEltTy);
Bob Wilson69743022011-01-13 20:59:44 +00002314
David Greene504c7d82010-01-05 01:27:09 +00002315 DEBUG(dbgs() << "PROMOTING LOAD OF WHOLE ALLOCA: " << *AI << '\n' << *LI
Nick Lewycky59136252009-09-15 07:08:25 +00002316 << '\n');
Bob Wilson69743022011-01-13 20:59:44 +00002317
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002318 // There are two forms here: AI could be an array or struct. Both cases
2319 // have different ways to compute the element offset.
2320 const StructLayout *Layout = 0;
2321 uint64_t ArrayEltBitOffset = 0;
2322 if (const StructType *EltSTy = dyn_cast<StructType>(AllocaEltTy)) {
2323 Layout = TD->getStructLayout(EltSTy);
2324 } else {
2325 const Type *ArrayEltTy = cast<ArrayType>(AllocaEltTy)->getElementType();
Duncan Sands777d2302009-05-09 07:06:46 +00002326 ArrayEltBitOffset = TD->getTypeAllocSizeInBits(ArrayEltTy);
Bob Wilson69743022011-01-13 20:59:44 +00002327 }
2328
2329 Value *ResultVal =
Owen Anderson1d0be152009-08-13 21:58:54 +00002330 Constant::getNullValue(IntegerType::get(LI->getContext(), AllocaSizeBits));
Bob Wilson69743022011-01-13 20:59:44 +00002331
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002332 for (unsigned i = 0, e = NewElts.size(); i != e; ++i) {
2333 // Load the value from the alloca. If the NewElt is an aggregate, cast
2334 // the pointer to an integer of the same size before doing the load.
2335 Value *SrcField = NewElts[i];
2336 const Type *FieldTy =
2337 cast<PointerType>(SrcField->getType())->getElementType();
Chris Lattner583dd602009-01-09 18:18:43 +00002338 uint64_t FieldSizeBits = TD->getTypeSizeInBits(FieldTy);
Bob Wilson69743022011-01-13 20:59:44 +00002339
Chris Lattner583dd602009-01-09 18:18:43 +00002340 // Ignore zero sized fields like {}, they obviously contain no data.
2341 if (FieldSizeBits == 0) continue;
Bob Wilson69743022011-01-13 20:59:44 +00002342
2343 const IntegerType *FieldIntTy = IntegerType::get(LI->getContext(),
Owen Anderson1d0be152009-08-13 21:58:54 +00002344 FieldSizeBits);
Duncan Sands1df98592010-02-16 11:11:14 +00002345 if (!FieldTy->isIntegerTy() && !FieldTy->isFloatingPointTy() &&
2346 !FieldTy->isVectorTy())
Owen Andersonfa5cbd62009-07-03 19:42:02 +00002347 SrcField = new BitCastInst(SrcField,
Owen Andersondebcb012009-07-29 22:17:13 +00002348 PointerType::getUnqual(FieldIntTy),
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002349 "", LI);
2350 SrcField = new LoadInst(SrcField, "sroa.load.elt", LI);
2351
2352 // If SrcField is a fp or vector of the right size but that isn't an
2353 // integer type, bitcast to an integer so we can shift it.
2354 if (SrcField->getType() != FieldIntTy)
2355 SrcField = new BitCastInst(SrcField, FieldIntTy, "", LI);
2356
2357 // Zero extend the field to be the same size as the final alloca so that
2358 // we can shift and insert it.
2359 if (SrcField->getType() != ResultVal->getType())
2360 SrcField = new ZExtInst(SrcField, ResultVal->getType(), "", LI);
Bob Wilson69743022011-01-13 20:59:44 +00002361
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002362 // Determine the number of bits to shift SrcField.
2363 uint64_t Shift;
2364 if (Layout) // Struct case.
2365 Shift = Layout->getElementOffsetInBits(i);
2366 else // Array case.
2367 Shift = i*ArrayEltBitOffset;
Bob Wilson69743022011-01-13 20:59:44 +00002368
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002369 if (TD->isBigEndian())
2370 Shift = AllocaSizeBits-Shift-FieldIntTy->getBitWidth();
Bob Wilson69743022011-01-13 20:59:44 +00002371
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002372 if (Shift) {
Owen Andersoneed707b2009-07-24 23:12:02 +00002373 Value *ShiftVal = ConstantInt::get(SrcField->getType(), Shift);
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002374 SrcField = BinaryOperator::CreateShl(SrcField, ShiftVal, "", LI);
2375 }
2376
Chris Lattner14952472010-06-27 07:58:26 +00002377 // Don't create an 'or x, 0' on the first iteration.
2378 if (!isa<Constant>(ResultVal) ||
2379 !cast<Constant>(ResultVal)->isNullValue())
2380 ResultVal = BinaryOperator::CreateOr(SrcField, ResultVal, "", LI);
2381 else
2382 ResultVal = SrcField;
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002383 }
Eli Friedman41b33f42009-06-01 09:14:32 +00002384
2385 // Handle tail padding by truncating the result
2386 if (TD->getTypeSizeInBits(LI->getType()) != AllocaSizeBits)
2387 ResultVal = new TruncInst(ResultVal, LI->getType(), "", LI);
2388
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002389 LI->replaceAllUsesWith(ResultVal);
Bob Wilsonb742def2009-12-18 20:14:40 +00002390 DeadInsts.push_back(LI);
Chris Lattner5ffe6ac2009-01-08 05:42:05 +00002391}
2392
Duncan Sands3cb36502007-11-04 14:43:57 +00002393/// HasPadding - Return true if the specified type has any structure or
Bob Wilson694a10e2011-01-13 17:45:08 +00002394/// alignment padding in between the elements that would be split apart
2395/// by SROA; return false otherwise.
Duncan Sandsa0fcc082008-06-04 08:21:45 +00002396static bool HasPadding(const Type *Ty, const TargetData &TD) {
Bob Wilson694a10e2011-01-13 17:45:08 +00002397 if (const ArrayType *ATy = dyn_cast<ArrayType>(Ty)) {
2398 Ty = ATy->getElementType();
2399 return TD.getTypeSizeInBits(Ty) != TD.getTypeAllocSizeInBits(Ty);
Chris Lattner39a1c042007-05-30 06:11:23 +00002400 }
Bob Wilson694a10e2011-01-13 17:45:08 +00002401
2402 // SROA currently handles only Arrays and Structs.
2403 const StructType *STy = cast<StructType>(Ty);
2404 const StructLayout *SL = TD.getStructLayout(STy);
2405 unsigned PrevFieldBitOffset = 0;
2406 for (unsigned i = 0, e = STy->getNumElements(); i != e; ++i) {
2407 unsigned FieldBitOffset = SL->getElementOffsetInBits(i);
2408
2409 // Check to see if there is any padding between this element and the
2410 // previous one.
2411 if (i) {
2412 unsigned PrevFieldEnd =
2413 PrevFieldBitOffset+TD.getTypeSizeInBits(STy->getElementType(i-1));
2414 if (PrevFieldEnd < FieldBitOffset)
2415 return true;
2416 }
2417 PrevFieldBitOffset = FieldBitOffset;
2418 }
2419 // Check for tail padding.
2420 if (unsigned EltCount = STy->getNumElements()) {
2421 unsigned PrevFieldEnd = PrevFieldBitOffset +
2422 TD.getTypeSizeInBits(STy->getElementType(EltCount-1));
2423 if (PrevFieldEnd < SL->getSizeInBits())
2424 return true;
2425 }
2426 return false;
Chris Lattner39a1c042007-05-30 06:11:23 +00002427}
Chris Lattner372dda82007-03-05 07:52:57 +00002428
Chris Lattnerf5990ed2004-11-14 04:24:28 +00002429/// isSafeStructAllocaToScalarRepl - Check to see if the specified allocation of
2430/// an aggregate can be broken down into elements. Return 0 if not, 3 if safe,
2431/// or 1 if safe after canonicalization has been performed.
Victor Hernandez6c146ee2010-01-21 23:05:53 +00002432bool SROA::isSafeAllocaToScalarRepl(AllocaInst *AI) {
Chris Lattner5e062a12003-05-30 04:15:41 +00002433 // Loop over the use list of the alloca. We can only transform it if all of
2434 // the users are safe to transform.
Chris Lattner6c95d242011-01-23 07:29:29 +00002435 AllocaInfo Info(AI);
Bob Wilson69743022011-01-13 20:59:44 +00002436
Chris Lattner6c95d242011-01-23 07:29:29 +00002437 isSafeForScalarRepl(AI, 0, Info);
Bob Wilsonb742def2009-12-18 20:14:40 +00002438 if (Info.isUnsafe) {
David Greene504c7d82010-01-05 01:27:09 +00002439 DEBUG(dbgs() << "Cannot transform: " << *AI << '\n');
Victor Hernandez6c146ee2010-01-21 23:05:53 +00002440 return false;
Chris Lattnerf5990ed2004-11-14 04:24:28 +00002441 }
Bob Wilson69743022011-01-13 20:59:44 +00002442
Chris Lattner39a1c042007-05-30 06:11:23 +00002443 // Okay, we know all the users are promotable. If the aggregate is a memcpy
2444 // source and destination, we have to be careful. In particular, the memcpy
2445 // could be moving around elements that live in structure padding of the LLVM
2446 // types, but may actually be used. In these cases, we refuse to promote the
2447 // struct.
2448 if (Info.isMemCpySrc && Info.isMemCpyDst &&
Bob Wilsonb742def2009-12-18 20:14:40 +00002449 HasPadding(AI->getAllocatedType(), *TD))
Victor Hernandez6c146ee2010-01-21 23:05:53 +00002450 return false;
Duncan Sands3cb36502007-11-04 14:43:57 +00002451
Chris Lattner396a0562011-01-16 17:46:19 +00002452 // If the alloca never has an access to just *part* of it, but is accessed
2453 // via loads and stores, then we should use ConvertToScalarInfo to promote
Chris Lattner7e9b4272011-01-16 06:18:28 +00002454 // the alloca instead of promoting each piece at a time and inserting fission
2455 // and fusion code.
2456 if (!Info.hasSubelementAccess && Info.hasALoadOrStore) {
2457 // If the struct/array just has one element, use basic SRoA.
2458 if (const StructType *ST = dyn_cast<StructType>(AI->getAllocatedType())) {
2459 if (ST->getNumElements() > 1) return false;
2460 } else {
2461 if (cast<ArrayType>(AI->getAllocatedType())->getNumElements() > 1)
2462 return false;
2463 }
2464 }
Chris Lattner145c5322011-01-23 08:27:54 +00002465
Victor Hernandez6c146ee2010-01-21 23:05:53 +00002466 return true;
Chris Lattner5e062a12003-05-30 04:15:41 +00002467}
Chris Lattnera1888942005-12-12 07:19:13 +00002468
Chris Lattner800de312008-02-29 07:03:13 +00002469
Chris Lattner79b3bd32007-04-25 06:40:51 +00002470
2471/// PointsToConstantGlobal - Return true if V (possibly indirectly) points to
2472/// some part of a constant global variable. This intentionally only accepts
2473/// constant expressions because we don't can't rewrite arbitrary instructions.
2474static bool PointsToConstantGlobal(Value *V) {
2475 if (GlobalVariable *GV = dyn_cast<GlobalVariable>(V))
2476 return GV->isConstant();
2477 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(V))
Bob Wilson69743022011-01-13 20:59:44 +00002478 if (CE->getOpcode() == Instruction::BitCast ||
Chris Lattner79b3bd32007-04-25 06:40:51 +00002479 CE->getOpcode() == Instruction::GetElementPtr)
2480 return PointsToConstantGlobal(CE->getOperand(0));
2481 return false;
2482}
2483
2484/// isOnlyCopiedFromConstantGlobal - Recursively walk the uses of a (derived)
2485/// pointer to an alloca. Ignore any reads of the pointer, return false if we
2486/// see any stores or other unknown uses. If we see pointer arithmetic, keep
2487/// track of whether it moves the pointer (with isOffset) but otherwise traverse
2488/// the uses. If we see a memcpy/memmove that targets an unoffseted pointer to
Nick Lewycky081f8002010-11-24 22:04:20 +00002489/// the alloca, and if the source pointer is a pointer to a constant global, we
Chris Lattner79b3bd32007-04-25 06:40:51 +00002490/// can optimize this.
Chris Lattner31d80102010-04-15 21:59:20 +00002491static bool isOnlyCopiedFromConstantGlobal(Value *V, MemTransferInst *&TheCopy,
Chris Lattner79b3bd32007-04-25 06:40:51 +00002492 bool isOffset) {
2493 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI!=E; ++UI) {
Gabor Greif8a8a4352010-04-06 19:32:30 +00002494 User *U = cast<Instruction>(*UI);
2495
Chris Lattner2e618492010-11-18 06:20:47 +00002496 if (LoadInst *LI = dyn_cast<LoadInst>(U)) {
Chris Lattner6e733d32009-01-28 20:16:43 +00002497 // Ignore non-volatile loads, they are always ok.
Chris Lattner2e618492010-11-18 06:20:47 +00002498 if (LI->isVolatile()) return false;
2499 continue;
2500 }
Bob Wilson69743022011-01-13 20:59:44 +00002501
Gabor Greif8a8a4352010-04-06 19:32:30 +00002502 if (BitCastInst *BCI = dyn_cast<BitCastInst>(U)) {
Chris Lattner79b3bd32007-04-25 06:40:51 +00002503 // If uses of the bitcast are ok, we are ok.
2504 if (!isOnlyCopiedFromConstantGlobal(BCI, TheCopy, isOffset))
2505 return false;
2506 continue;
2507 }
Gabor Greif8a8a4352010-04-06 19:32:30 +00002508 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(U)) {
Chris Lattner79b3bd32007-04-25 06:40:51 +00002509 // If the GEP has all zero indices, it doesn't offset the pointer. If it
2510 // doesn't, it does.
2511 if (!isOnlyCopiedFromConstantGlobal(GEP, TheCopy,
2512 isOffset || !GEP->hasAllZeroIndices()))
2513 return false;
2514 continue;
2515 }
Bob Wilson69743022011-01-13 20:59:44 +00002516
Chris Lattner62480652010-11-18 06:41:51 +00002517 if (CallSite CS = U) {
Nick Lewycky081f8002010-11-24 22:04:20 +00002518 // If this is the function being called then we treat it like a load and
2519 // ignore it.
2520 if (CS.isCallee(UI))
2521 continue;
Bob Wilson69743022011-01-13 20:59:44 +00002522
Duncan Sands53892102011-05-06 10:30:37 +00002523 // If this is a readonly/readnone call site, then we know it is just a
2524 // load (but one that potentially returns the value itself), so we can
2525 // ignore it if we know that the value isn't captured.
2526 unsigned ArgNo = CS.getArgumentNo(UI);
2527 if (CS.onlyReadsMemory() &&
2528 (CS.getInstruction()->use_empty() ||
2529 CS.paramHasAttr(ArgNo+1, Attribute::NoCapture)))
2530 continue;
2531
Chris Lattner62480652010-11-18 06:41:51 +00002532 // If this is being passed as a byval argument, the caller is making a
2533 // copy, so it is only a read of the alloca.
Chris Lattner62480652010-11-18 06:41:51 +00002534 if (CS.paramHasAttr(ArgNo+1, Attribute::ByVal))
2535 continue;
2536 }
Bob Wilson69743022011-01-13 20:59:44 +00002537
Chris Lattner79b3bd32007-04-25 06:40:51 +00002538 // If this is isn't our memcpy/memmove, reject it as something we can't
2539 // handle.
Chris Lattner31d80102010-04-15 21:59:20 +00002540 MemTransferInst *MI = dyn_cast<MemTransferInst>(U);
2541 if (MI == 0)
Chris Lattner79b3bd32007-04-25 06:40:51 +00002542 return false;
Bob Wilson69743022011-01-13 20:59:44 +00002543
Chris Lattner2e618492010-11-18 06:20:47 +00002544 // If the transfer is using the alloca as a source of the transfer, then
Chris Lattner2e29ebd2010-11-18 07:32:33 +00002545 // ignore it since it is a load (unless the transfer is volatile).
Chris Lattner2e618492010-11-18 06:20:47 +00002546 if (UI.getOperandNo() == 1) {
2547 if (MI->isVolatile()) return false;
2548 continue;
2549 }
Chris Lattner79b3bd32007-04-25 06:40:51 +00002550
2551 // If we already have seen a copy, reject the second one.
2552 if (TheCopy) return false;
Bob Wilson69743022011-01-13 20:59:44 +00002553
Chris Lattner79b3bd32007-04-25 06:40:51 +00002554 // If the pointer has been offset from the start of the alloca, we can't
2555 // safely handle this.
2556 if (isOffset) return false;
2557
2558 // If the memintrinsic isn't using the alloca as the dest, reject it.
Gabor Greifa6aac4c2010-07-16 09:38:02 +00002559 if (UI.getOperandNo() != 0) return false;
Bob Wilson69743022011-01-13 20:59:44 +00002560
Chris Lattner79b3bd32007-04-25 06:40:51 +00002561 // If the source of the memcpy/move is not a constant global, reject it.
Chris Lattner31d80102010-04-15 21:59:20 +00002562 if (!PointsToConstantGlobal(MI->getSource()))
Chris Lattner79b3bd32007-04-25 06:40:51 +00002563 return false;
Bob Wilson69743022011-01-13 20:59:44 +00002564
Chris Lattner79b3bd32007-04-25 06:40:51 +00002565 // Otherwise, the transform is safe. Remember the copy instruction.
2566 TheCopy = MI;
2567 }
2568 return true;
2569}
2570
2571/// isOnlyCopiedFromConstantGlobal - Return true if the specified alloca is only
2572/// modified by a copy from a constant global. If we can prove this, we can
2573/// replace any uses of the alloca with uses of the global directly.
Chris Lattner31d80102010-04-15 21:59:20 +00002574MemTransferInst *SROA::isOnlyCopiedFromConstantGlobal(AllocaInst *AI) {
2575 MemTransferInst *TheCopy = 0;
Chris Lattner79b3bd32007-04-25 06:40:51 +00002576 if (::isOnlyCopiedFromConstantGlobal(AI, TheCopy, false))
2577 return TheCopy;
2578 return 0;
2579}