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Dan Gohmane4aeec02009-10-13 18:30:07 +00001//===- InlineCost.cpp - Cost analysis for inliner -------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file implements inline cost analysis.
11//
12//===----------------------------------------------------------------------===//
13
Chandler Carruthf2286b02012-03-31 12:42:41 +000014#define DEBUG_TYPE "inline-cost"
Dan Gohmane4aeec02009-10-13 18:30:07 +000015#include "llvm/Analysis/InlineCost.h"
Chandler Carruthd04a8d42012-12-03 16:50:05 +000016#include "llvm/ADT/STLExtras.h"
17#include "llvm/ADT/SetVector.h"
18#include "llvm/ADT/SmallPtrSet.h"
19#include "llvm/ADT/SmallVector.h"
20#include "llvm/ADT/Statistic.h"
Chandler Carruthf2286b02012-03-31 12:42:41 +000021#include "llvm/Analysis/ConstantFolding.h"
22#include "llvm/Analysis/InstructionSimplify.h"
Chandler Carruthd04a8d42012-12-03 16:50:05 +000023#include "llvm/CallingConv.h"
24#include "llvm/DataLayout.h"
25#include "llvm/GlobalAlias.h"
26#include "llvm/InstVisitor.h"
27#include "llvm/IntrinsicInst.h"
28#include "llvm/Operator.h"
Dan Gohmane4aeec02009-10-13 18:30:07 +000029#include "llvm/Support/CallSite.h"
Chandler Carruthf2286b02012-03-31 12:42:41 +000030#include "llvm/Support/Debug.h"
Chandler Carruthf2286b02012-03-31 12:42:41 +000031#include "llvm/Support/GetElementPtrTypeIterator.h"
32#include "llvm/Support/raw_ostream.h"
Eric Christopher4e8af6d2011-02-05 00:49:15 +000033
Dan Gohmane4aeec02009-10-13 18:30:07 +000034using namespace llvm;
35
Chandler Carruthd6fc2622012-04-11 10:15:10 +000036STATISTIC(NumCallsAnalyzed, "Number of call sites analyzed");
37
Chandler Carruthf2286b02012-03-31 12:42:41 +000038namespace {
Chandler Carruth3d1d8952012-03-14 07:32:53 +000039
Chandler Carruthf2286b02012-03-31 12:42:41 +000040class CallAnalyzer : public InstVisitor<CallAnalyzer, bool> {
41 typedef InstVisitor<CallAnalyzer, bool> Base;
42 friend class InstVisitor<CallAnalyzer, bool>;
Owen Anderson082bf2a2010-09-09 16:56:42 +000043
Micah Villmow3574eca2012-10-08 16:38:25 +000044 // DataLayout if available, or null.
45 const DataLayout *const TD;
Owen Anderson082bf2a2010-09-09 16:56:42 +000046
Chandler Carruthf2286b02012-03-31 12:42:41 +000047 // The called function.
48 Function &F;
Owen Anderson082bf2a2010-09-09 16:56:42 +000049
Chandler Carruthf2286b02012-03-31 12:42:41 +000050 int Threshold;
51 int Cost;
Owen Anderson082bf2a2010-09-09 16:56:42 +000052
Nadav Rotem92df0262012-09-19 08:08:04 +000053 bool IsCallerRecursive;
54 bool IsRecursiveCall;
Chandler Carruthf2286b02012-03-31 12:42:41 +000055 bool ExposesReturnsTwice;
56 bool HasDynamicAlloca;
Nadav Rotem92df0262012-09-19 08:08:04 +000057 /// Number of bytes allocated statically by the callee.
58 uint64_t AllocatedSize;
Chandler Carruthf2286b02012-03-31 12:42:41 +000059 unsigned NumInstructions, NumVectorInstructions;
60 int FiftyPercentVectorBonus, TenPercentVectorBonus;
61 int VectorBonus;
62
63 // While we walk the potentially-inlined instructions, we build up and
64 // maintain a mapping of simplified values specific to this callsite. The
65 // idea is to propagate any special information we have about arguments to
66 // this call through the inlinable section of the function, and account for
67 // likely simplifications post-inlining. The most important aspect we track
68 // is CFG altering simplifications -- when we prove a basic block dead, that
69 // can cause dramatic shifts in the cost of inlining a function.
70 DenseMap<Value *, Constant *> SimplifiedValues;
71
72 // Keep track of the values which map back (through function arguments) to
73 // allocas on the caller stack which could be simplified through SROA.
74 DenseMap<Value *, Value *> SROAArgValues;
75
76 // The mapping of caller Alloca values to their accumulated cost savings. If
77 // we have to disable SROA for one of the allocas, this tells us how much
78 // cost must be added.
79 DenseMap<Value *, int> SROAArgCosts;
80
81 // Keep track of values which map to a pointer base and constant offset.
82 DenseMap<Value *, std::pair<Value *, APInt> > ConstantOffsetPtrs;
83
84 // Custom simplification helper routines.
85 bool isAllocaDerivedArg(Value *V);
86 bool lookupSROAArgAndCost(Value *V, Value *&Arg,
87 DenseMap<Value *, int>::iterator &CostIt);
88 void disableSROA(DenseMap<Value *, int>::iterator CostIt);
89 void disableSROA(Value *V);
90 void accumulateSROACost(DenseMap<Value *, int>::iterator CostIt,
91 int InstructionCost);
92 bool handleSROACandidate(bool IsSROAValid,
93 DenseMap<Value *, int>::iterator CostIt,
94 int InstructionCost);
95 bool isGEPOffsetConstant(GetElementPtrInst &GEP);
96 bool accumulateGEPOffset(GEPOperator &GEP, APInt &Offset);
97 ConstantInt *stripAndComputeInBoundsConstantOffsets(Value *&V);
98
99 // Custom analysis routines.
100 bool analyzeBlock(BasicBlock *BB);
101
102 // Disable several entry points to the visitor so we don't accidentally use
103 // them by declaring but not defining them here.
104 void visit(Module *); void visit(Module &);
105 void visit(Function *); void visit(Function &);
106 void visit(BasicBlock *); void visit(BasicBlock &);
107
108 // Provide base case for our instruction visit.
109 bool visitInstruction(Instruction &I);
110
111 // Our visit overrides.
112 bool visitAlloca(AllocaInst &I);
113 bool visitPHI(PHINode &I);
114 bool visitGetElementPtr(GetElementPtrInst &I);
115 bool visitBitCast(BitCastInst &I);
116 bool visitPtrToInt(PtrToIntInst &I);
117 bool visitIntToPtr(IntToPtrInst &I);
118 bool visitCastInst(CastInst &I);
119 bool visitUnaryInstruction(UnaryInstruction &I);
120 bool visitICmp(ICmpInst &I);
121 bool visitSub(BinaryOperator &I);
122 bool visitBinaryOperator(BinaryOperator &I);
123 bool visitLoad(LoadInst &I);
124 bool visitStore(StoreInst &I);
125 bool visitCallSite(CallSite CS);
126
127public:
Micah Villmow3574eca2012-10-08 16:38:25 +0000128 CallAnalyzer(const DataLayout *TD, Function &Callee, int Threshold)
Chandler Carruthf2286b02012-03-31 12:42:41 +0000129 : TD(TD), F(Callee), Threshold(Threshold), Cost(0),
Nadav Rotem92df0262012-09-19 08:08:04 +0000130 IsCallerRecursive(false), IsRecursiveCall(false),
131 ExposesReturnsTwice(false), HasDynamicAlloca(false), AllocatedSize(0),
Chandler Carruthf2286b02012-03-31 12:42:41 +0000132 NumInstructions(0), NumVectorInstructions(0),
133 FiftyPercentVectorBonus(0), TenPercentVectorBonus(0), VectorBonus(0),
134 NumConstantArgs(0), NumConstantOffsetPtrArgs(0), NumAllocaArgs(0),
135 NumConstantPtrCmps(0), NumConstantPtrDiffs(0),
136 NumInstructionsSimplified(0), SROACostSavings(0), SROACostSavingsLost(0) {
137 }
138
139 bool analyzeCall(CallSite CS);
140
141 int getThreshold() { return Threshold; }
142 int getCost() { return Cost; }
143
144 // Keep a bunch of stats about the cost savings found so we can print them
145 // out when debugging.
146 unsigned NumConstantArgs;
147 unsigned NumConstantOffsetPtrArgs;
148 unsigned NumAllocaArgs;
149 unsigned NumConstantPtrCmps;
150 unsigned NumConstantPtrDiffs;
151 unsigned NumInstructionsSimplified;
152 unsigned SROACostSavings;
153 unsigned SROACostSavingsLost;
154
155 void dump();
156};
157
158} // namespace
159
160/// \brief Test whether the given value is an Alloca-derived function argument.
161bool CallAnalyzer::isAllocaDerivedArg(Value *V) {
162 return SROAArgValues.count(V);
Owen Anderson082bf2a2010-09-09 16:56:42 +0000163}
164
Chandler Carruthf2286b02012-03-31 12:42:41 +0000165/// \brief Lookup the SROA-candidate argument and cost iterator which V maps to.
166/// Returns false if V does not map to a SROA-candidate.
167bool CallAnalyzer::lookupSROAArgAndCost(
168 Value *V, Value *&Arg, DenseMap<Value *, int>::iterator &CostIt) {
169 if (SROAArgValues.empty() || SROAArgCosts.empty())
170 return false;
Chandler Carruthe8187e02012-03-09 02:49:36 +0000171
Chandler Carruthf2286b02012-03-31 12:42:41 +0000172 DenseMap<Value *, Value *>::iterator ArgIt = SROAArgValues.find(V);
173 if (ArgIt == SROAArgValues.end())
174 return false;
Chandler Carruthe8187e02012-03-09 02:49:36 +0000175
Chandler Carruthf2286b02012-03-31 12:42:41 +0000176 Arg = ArgIt->second;
177 CostIt = SROAArgCosts.find(Arg);
178 return CostIt != SROAArgCosts.end();
Chandler Carruthe8187e02012-03-09 02:49:36 +0000179}
180
Chandler Carruthf2286b02012-03-31 12:42:41 +0000181/// \brief Disable SROA for the candidate marked by this cost iterator.
Chandler Carruthe8187e02012-03-09 02:49:36 +0000182///
Benjamin Kramerd9b0b022012-06-02 10:20:22 +0000183/// This marks the candidate as no longer viable for SROA, and adds the cost
Chandler Carruthf2286b02012-03-31 12:42:41 +0000184/// savings associated with it back into the inline cost measurement.
185void CallAnalyzer::disableSROA(DenseMap<Value *, int>::iterator CostIt) {
186 // If we're no longer able to perform SROA we need to undo its cost savings
187 // and prevent subsequent analysis.
188 Cost += CostIt->second;
189 SROACostSavings -= CostIt->second;
190 SROACostSavingsLost += CostIt->second;
191 SROAArgCosts.erase(CostIt);
192}
193
194/// \brief If 'V' maps to a SROA candidate, disable SROA for it.
195void CallAnalyzer::disableSROA(Value *V) {
196 Value *SROAArg;
197 DenseMap<Value *, int>::iterator CostIt;
198 if (lookupSROAArgAndCost(V, SROAArg, CostIt))
199 disableSROA(CostIt);
200}
201
202/// \brief Accumulate the given cost for a particular SROA candidate.
203void CallAnalyzer::accumulateSROACost(DenseMap<Value *, int>::iterator CostIt,
204 int InstructionCost) {
205 CostIt->second += InstructionCost;
206 SROACostSavings += InstructionCost;
207}
208
209/// \brief Helper for the common pattern of handling a SROA candidate.
210/// Either accumulates the cost savings if the SROA remains valid, or disables
211/// SROA for the candidate.
212bool CallAnalyzer::handleSROACandidate(bool IsSROAValid,
213 DenseMap<Value *, int>::iterator CostIt,
214 int InstructionCost) {
215 if (IsSROAValid) {
216 accumulateSROACost(CostIt, InstructionCost);
217 return true;
218 }
219
220 disableSROA(CostIt);
221 return false;
222}
223
224/// \brief Check whether a GEP's indices are all constant.
225///
226/// Respects any simplified values known during the analysis of this callsite.
227bool CallAnalyzer::isGEPOffsetConstant(GetElementPtrInst &GEP) {
228 for (User::op_iterator I = GEP.idx_begin(), E = GEP.idx_end(); I != E; ++I)
229 if (!isa<Constant>(*I) && !SimplifiedValues.lookup(*I))
Chandler Carruthe8187e02012-03-09 02:49:36 +0000230 return false;
Chandler Carruthe8187e02012-03-09 02:49:36 +0000231
Chandler Carruthf2286b02012-03-31 12:42:41 +0000232 return true;
233}
234
235/// \brief Accumulate a constant GEP offset into an APInt if possible.
236///
237/// Returns false if unable to compute the offset for any reason. Respects any
238/// simplified values known during the analysis of this callsite.
239bool CallAnalyzer::accumulateGEPOffset(GEPOperator &GEP, APInt &Offset) {
240 if (!TD)
241 return false;
242
Chandler Carruth426c2bf2012-11-01 09:14:31 +0000243 unsigned IntPtrWidth = TD->getPointerSizeInBits();
Chandler Carruthf2286b02012-03-31 12:42:41 +0000244 assert(IntPtrWidth == Offset.getBitWidth());
245
246 for (gep_type_iterator GTI = gep_type_begin(GEP), GTE = gep_type_end(GEP);
247 GTI != GTE; ++GTI) {
248 ConstantInt *OpC = dyn_cast<ConstantInt>(GTI.getOperand());
249 if (!OpC)
250 if (Constant *SimpleOp = SimplifiedValues.lookup(GTI.getOperand()))
251 OpC = dyn_cast<ConstantInt>(SimpleOp);
252 if (!OpC)
Chandler Carruthe8187e02012-03-09 02:49:36 +0000253 return false;
Chandler Carruthf2286b02012-03-31 12:42:41 +0000254 if (OpC->isZero()) continue;
Chandler Carruthe8187e02012-03-09 02:49:36 +0000255
Chandler Carruthf2286b02012-03-31 12:42:41 +0000256 // Handle a struct index, which adds its field offset to the pointer.
257 if (StructType *STy = dyn_cast<StructType>(*GTI)) {
258 unsigned ElementIdx = OpC->getZExtValue();
259 const StructLayout *SL = TD->getStructLayout(STy);
260 Offset += APInt(IntPtrWidth, SL->getElementOffset(ElementIdx));
261 continue;
Chandler Carruthe8187e02012-03-09 02:49:36 +0000262 }
Chandler Carruthe8187e02012-03-09 02:49:36 +0000263
Chandler Carruthf2286b02012-03-31 12:42:41 +0000264 APInt TypeSize(IntPtrWidth, TD->getTypeAllocSize(GTI.getIndexedType()));
265 Offset += OpC->getValue().sextOrTrunc(IntPtrWidth) * TypeSize;
266 }
267 return true;
268}
269
270bool CallAnalyzer::visitAlloca(AllocaInst &I) {
271 // FIXME: Check whether inlining will turn a dynamic alloca into a static
272 // alloca, and handle that case.
273
Nadav Rotem92df0262012-09-19 08:08:04 +0000274 // Accumulate the allocated size.
275 if (I.isStaticAlloca()) {
276 Type *Ty = I.getAllocatedType();
277 AllocatedSize += (TD ? TD->getTypeAllocSize(Ty) :
278 Ty->getPrimitiveSizeInBits());
279 }
280
Bob Wilson28f872f2012-11-19 07:04:35 +0000281 // We will happily inline static alloca instructions.
282 if (I.isStaticAlloca())
Chandler Carruthf2286b02012-03-31 12:42:41 +0000283 return Base::visitAlloca(I);
284
285 // FIXME: This is overly conservative. Dynamic allocas are inefficient for
286 // a variety of reasons, and so we would like to not inline them into
287 // functions which don't currently have a dynamic alloca. This simply
288 // disables inlining altogether in the presence of a dynamic alloca.
289 HasDynamicAlloca = true;
290 return false;
291}
292
293bool CallAnalyzer::visitPHI(PHINode &I) {
294 // FIXME: We should potentially be tracking values through phi nodes,
295 // especially when they collapse to a single value due to deleted CFG edges
296 // during inlining.
297
298 // FIXME: We need to propagate SROA *disabling* through phi nodes, even
299 // though we don't want to propagate it's bonuses. The idea is to disable
300 // SROA if it *might* be used in an inappropriate manner.
301
302 // Phi nodes are always zero-cost.
303 return true;
304}
305
306bool CallAnalyzer::visitGetElementPtr(GetElementPtrInst &I) {
307 Value *SROAArg;
308 DenseMap<Value *, int>::iterator CostIt;
309 bool SROACandidate = lookupSROAArgAndCost(I.getPointerOperand(),
310 SROAArg, CostIt);
311
312 // Try to fold GEPs of constant-offset call site argument pointers. This
313 // requires target data and inbounds GEPs.
314 if (TD && I.isInBounds()) {
315 // Check if we have a base + offset for the pointer.
316 Value *Ptr = I.getPointerOperand();
317 std::pair<Value *, APInt> BaseAndOffset = ConstantOffsetPtrs.lookup(Ptr);
318 if (BaseAndOffset.first) {
319 // Check if the offset of this GEP is constant, and if so accumulate it
320 // into Offset.
321 if (!accumulateGEPOffset(cast<GEPOperator>(I), BaseAndOffset.second)) {
322 // Non-constant GEPs aren't folded, and disable SROA.
323 if (SROACandidate)
324 disableSROA(CostIt);
325 return false;
326 }
327
328 // Add the result as a new mapping to Base + Offset.
329 ConstantOffsetPtrs[&I] = BaseAndOffset;
330
331 // Also handle SROA candidates here, we already know that the GEP is
332 // all-constant indexed.
333 if (SROACandidate)
334 SROAArgValues[&I] = SROAArg;
335
Chandler Carruthe8187e02012-03-09 02:49:36 +0000336 return true;
337 }
338 }
339
Chandler Carruthf2286b02012-03-31 12:42:41 +0000340 if (isGEPOffsetConstant(I)) {
341 if (SROACandidate)
342 SROAArgValues[&I] = SROAArg;
343
344 // Constant GEPs are modeled as free.
345 return true;
346 }
347
348 // Variable GEPs will require math and will disable SROA.
349 if (SROACandidate)
350 disableSROA(CostIt);
Chandler Carruthe8187e02012-03-09 02:49:36 +0000351 return false;
352}
353
Chandler Carruthf2286b02012-03-31 12:42:41 +0000354bool CallAnalyzer::visitBitCast(BitCastInst &I) {
355 // Propagate constants through bitcasts.
356 if (Constant *COp = dyn_cast<Constant>(I.getOperand(0)))
357 if (Constant *C = ConstantExpr::getBitCast(COp, I.getType())) {
358 SimplifiedValues[&I] = C;
359 return true;
Owen Anderson082bf2a2010-09-09 16:56:42 +0000360 }
Owen Anderson082bf2a2010-09-09 16:56:42 +0000361
Chandler Carruthf2286b02012-03-31 12:42:41 +0000362 // Track base/offsets through casts
363 std::pair<Value *, APInt> BaseAndOffset
364 = ConstantOffsetPtrs.lookup(I.getOperand(0));
365 // Casts don't change the offset, just wrap it up.
366 if (BaseAndOffset.first)
367 ConstantOffsetPtrs[&I] = BaseAndOffset;
368
369 // Also look for SROA candidates here.
370 Value *SROAArg;
371 DenseMap<Value *, int>::iterator CostIt;
372 if (lookupSROAArgAndCost(I.getOperand(0), SROAArg, CostIt))
373 SROAArgValues[&I] = SROAArg;
374
375 // Bitcasts are always zero cost.
376 return true;
Owen Anderson082bf2a2010-09-09 16:56:42 +0000377}
378
Chandler Carruthf2286b02012-03-31 12:42:41 +0000379bool CallAnalyzer::visitPtrToInt(PtrToIntInst &I) {
380 // Propagate constants through ptrtoint.
381 if (Constant *COp = dyn_cast<Constant>(I.getOperand(0)))
382 if (Constant *C = ConstantExpr::getPtrToInt(COp, I.getType())) {
383 SimplifiedValues[&I] = C;
384 return true;
Chandler Carruth274d3772012-03-14 23:19:53 +0000385 }
Chandler Carruthf2286b02012-03-31 12:42:41 +0000386
387 // Track base/offset pairs when converted to a plain integer provided the
388 // integer is large enough to represent the pointer.
389 unsigned IntegerSize = I.getType()->getScalarSizeInBits();
Chandler Carruth426c2bf2012-11-01 09:14:31 +0000390 if (TD && IntegerSize >= TD->getPointerSizeInBits()) {
Chandler Carruthf2286b02012-03-31 12:42:41 +0000391 std::pair<Value *, APInt> BaseAndOffset
392 = ConstantOffsetPtrs.lookup(I.getOperand(0));
393 if (BaseAndOffset.first)
394 ConstantOffsetPtrs[&I] = BaseAndOffset;
395 }
396
397 // This is really weird. Technically, ptrtoint will disable SROA. However,
398 // unless that ptrtoint is *used* somewhere in the live basic blocks after
399 // inlining, it will be nuked, and SROA should proceed. All of the uses which
400 // would block SROA would also block SROA if applied directly to a pointer,
401 // and so we can just add the integer in here. The only places where SROA is
402 // preserved either cannot fire on an integer, or won't in-and-of themselves
403 // disable SROA (ext) w/o some later use that we would see and disable.
404 Value *SROAArg;
405 DenseMap<Value *, int>::iterator CostIt;
406 if (lookupSROAArgAndCost(I.getOperand(0), SROAArg, CostIt))
407 SROAArgValues[&I] = SROAArg;
408
Chandler Carruthd5003ca2012-05-04 00:58:03 +0000409 return isInstructionFree(&I, TD);
Chandler Carruth274d3772012-03-14 23:19:53 +0000410}
411
Chandler Carruthf2286b02012-03-31 12:42:41 +0000412bool CallAnalyzer::visitIntToPtr(IntToPtrInst &I) {
413 // Propagate constants through ptrtoint.
414 if (Constant *COp = dyn_cast<Constant>(I.getOperand(0)))
415 if (Constant *C = ConstantExpr::getIntToPtr(COp, I.getType())) {
416 SimplifiedValues[&I] = C;
417 return true;
418 }
Dan Gohmane4aeec02009-10-13 18:30:07 +0000419
Chandler Carruthf2286b02012-03-31 12:42:41 +0000420 // Track base/offset pairs when round-tripped through a pointer without
421 // modifications provided the integer is not too large.
422 Value *Op = I.getOperand(0);
423 unsigned IntegerSize = Op->getType()->getScalarSizeInBits();
Chandler Carruth426c2bf2012-11-01 09:14:31 +0000424 if (TD && IntegerSize <= TD->getPointerSizeInBits()) {
Chandler Carruthf2286b02012-03-31 12:42:41 +0000425 std::pair<Value *, APInt> BaseAndOffset = ConstantOffsetPtrs.lookup(Op);
426 if (BaseAndOffset.first)
427 ConstantOffsetPtrs[&I] = BaseAndOffset;
428 }
Dan Gohmane4aeec02009-10-13 18:30:07 +0000429
Chandler Carruthf2286b02012-03-31 12:42:41 +0000430 // "Propagate" SROA here in the same manner as we do for ptrtoint above.
431 Value *SROAArg;
432 DenseMap<Value *, int>::iterator CostIt;
433 if (lookupSROAArgAndCost(Op, SROAArg, CostIt))
434 SROAArgValues[&I] = SROAArg;
Chandler Carruth274d3772012-03-14 23:19:53 +0000435
Chandler Carruthd5003ca2012-05-04 00:58:03 +0000436 return isInstructionFree(&I, TD);
Chandler Carruthf2286b02012-03-31 12:42:41 +0000437}
438
439bool CallAnalyzer::visitCastInst(CastInst &I) {
440 // Propagate constants through ptrtoint.
441 if (Constant *COp = dyn_cast<Constant>(I.getOperand(0)))
442 if (Constant *C = ConstantExpr::getCast(I.getOpcode(), COp, I.getType())) {
443 SimplifiedValues[&I] = C;
444 return true;
445 }
446
447 // Disable SROA in the face of arbitrary casts we don't whitelist elsewhere.
448 disableSROA(I.getOperand(0));
449
Chandler Carruthd5003ca2012-05-04 00:58:03 +0000450 return isInstructionFree(&I, TD);
Chandler Carruthf2286b02012-03-31 12:42:41 +0000451}
452
453bool CallAnalyzer::visitUnaryInstruction(UnaryInstruction &I) {
454 Value *Operand = I.getOperand(0);
455 Constant *Ops[1] = { dyn_cast<Constant>(Operand) };
456 if (Ops[0] || (Ops[0] = SimplifiedValues.lookup(Operand)))
457 if (Constant *C = ConstantFoldInstOperands(I.getOpcode(), I.getType(),
458 Ops, TD)) {
459 SimplifiedValues[&I] = C;
460 return true;
461 }
462
463 // Disable any SROA on the argument to arbitrary unary operators.
464 disableSROA(Operand);
465
466 return false;
467}
468
469bool CallAnalyzer::visitICmp(ICmpInst &I) {
470 Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
471 // First try to handle simplified comparisons.
472 if (!isa<Constant>(LHS))
473 if (Constant *SimpleLHS = SimplifiedValues.lookup(LHS))
474 LHS = SimpleLHS;
475 if (!isa<Constant>(RHS))
476 if (Constant *SimpleRHS = SimplifiedValues.lookup(RHS))
477 RHS = SimpleRHS;
478 if (Constant *CLHS = dyn_cast<Constant>(LHS))
479 if (Constant *CRHS = dyn_cast<Constant>(RHS))
480 if (Constant *C = ConstantExpr::getICmp(I.getPredicate(), CLHS, CRHS)) {
481 SimplifiedValues[&I] = C;
482 return true;
483 }
484
485 // Otherwise look for a comparison between constant offset pointers with
486 // a common base.
487 Value *LHSBase, *RHSBase;
488 APInt LHSOffset, RHSOffset;
489 llvm::tie(LHSBase, LHSOffset) = ConstantOffsetPtrs.lookup(LHS);
490 if (LHSBase) {
491 llvm::tie(RHSBase, RHSOffset) = ConstantOffsetPtrs.lookup(RHS);
492 if (RHSBase && LHSBase == RHSBase) {
493 // We have common bases, fold the icmp to a constant based on the
494 // offsets.
495 Constant *CLHS = ConstantInt::get(LHS->getContext(), LHSOffset);
496 Constant *CRHS = ConstantInt::get(RHS->getContext(), RHSOffset);
497 if (Constant *C = ConstantExpr::getICmp(I.getPredicate(), CLHS, CRHS)) {
498 SimplifiedValues[&I] = C;
499 ++NumConstantPtrCmps;
500 return true;
501 }
502 }
503 }
504
505 // If the comparison is an equality comparison with null, we can simplify it
506 // for any alloca-derived argument.
507 if (I.isEquality() && isa<ConstantPointerNull>(I.getOperand(1)))
508 if (isAllocaDerivedArg(I.getOperand(0))) {
509 // We can actually predict the result of comparisons between an
510 // alloca-derived value and null. Note that this fires regardless of
511 // SROA firing.
512 bool IsNotEqual = I.getPredicate() == CmpInst::ICMP_NE;
513 SimplifiedValues[&I] = IsNotEqual ? ConstantInt::getTrue(I.getType())
514 : ConstantInt::getFalse(I.getType());
515 return true;
516 }
517
518 // Finally check for SROA candidates in comparisons.
519 Value *SROAArg;
520 DenseMap<Value *, int>::iterator CostIt;
521 if (lookupSROAArgAndCost(I.getOperand(0), SROAArg, CostIt)) {
522 if (isa<ConstantPointerNull>(I.getOperand(1))) {
523 accumulateSROACost(CostIt, InlineConstants::InstrCost);
524 return true;
525 }
526
527 disableSROA(CostIt);
528 }
529
530 return false;
531}
532
533bool CallAnalyzer::visitSub(BinaryOperator &I) {
534 // Try to handle a special case: we can fold computing the difference of two
535 // constant-related pointers.
536 Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
537 Value *LHSBase, *RHSBase;
538 APInt LHSOffset, RHSOffset;
539 llvm::tie(LHSBase, LHSOffset) = ConstantOffsetPtrs.lookup(LHS);
540 if (LHSBase) {
541 llvm::tie(RHSBase, RHSOffset) = ConstantOffsetPtrs.lookup(RHS);
542 if (RHSBase && LHSBase == RHSBase) {
543 // We have common bases, fold the subtract to a constant based on the
544 // offsets.
545 Constant *CLHS = ConstantInt::get(LHS->getContext(), LHSOffset);
546 Constant *CRHS = ConstantInt::get(RHS->getContext(), RHSOffset);
547 if (Constant *C = ConstantExpr::getSub(CLHS, CRHS)) {
548 SimplifiedValues[&I] = C;
549 ++NumConstantPtrDiffs;
550 return true;
551 }
552 }
553 }
554
555 // Otherwise, fall back to the generic logic for simplifying and handling
556 // instructions.
557 return Base::visitSub(I);
558}
559
560bool CallAnalyzer::visitBinaryOperator(BinaryOperator &I) {
561 Value *LHS = I.getOperand(0), *RHS = I.getOperand(1);
562 if (!isa<Constant>(LHS))
563 if (Constant *SimpleLHS = SimplifiedValues.lookup(LHS))
564 LHS = SimpleLHS;
565 if (!isa<Constant>(RHS))
566 if (Constant *SimpleRHS = SimplifiedValues.lookup(RHS))
567 RHS = SimpleRHS;
568 Value *SimpleV = SimplifyBinOp(I.getOpcode(), LHS, RHS, TD);
569 if (Constant *C = dyn_cast_or_null<Constant>(SimpleV)) {
570 SimplifiedValues[&I] = C;
571 return true;
572 }
573
574 // Disable any SROA on arguments to arbitrary, unsimplified binary operators.
575 disableSROA(LHS);
576 disableSROA(RHS);
577
578 return false;
579}
580
581bool CallAnalyzer::visitLoad(LoadInst &I) {
582 Value *SROAArg;
583 DenseMap<Value *, int>::iterator CostIt;
584 if (lookupSROAArgAndCost(I.getOperand(0), SROAArg, CostIt)) {
585 if (I.isSimple()) {
586 accumulateSROACost(CostIt, InlineConstants::InstrCost);
587 return true;
588 }
589
590 disableSROA(CostIt);
591 }
592
593 return false;
594}
595
596bool CallAnalyzer::visitStore(StoreInst &I) {
597 Value *SROAArg;
598 DenseMap<Value *, int>::iterator CostIt;
599 if (lookupSROAArgAndCost(I.getOperand(0), SROAArg, CostIt)) {
600 if (I.isSimple()) {
601 accumulateSROACost(CostIt, InlineConstants::InstrCost);
602 return true;
603 }
604
605 disableSROA(CostIt);
606 }
607
608 return false;
609}
610
611bool CallAnalyzer::visitCallSite(CallSite CS) {
612 if (CS.isCall() && cast<CallInst>(CS.getInstruction())->canReturnTwice() &&
Bill Wendling67658342012-10-09 07:45:08 +0000613 !F.getFnAttributes().hasAttribute(Attributes::ReturnsTwice)) {
Chandler Carruthf2286b02012-03-31 12:42:41 +0000614 // This aborts the entire analysis.
615 ExposesReturnsTwice = true;
616 return false;
617 }
618
619 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(CS.getInstruction())) {
620 switch (II->getIntrinsicID()) {
621 default:
622 return Base::visitCallSite(CS);
623
Chandler Carruthf2286b02012-03-31 12:42:41 +0000624 case Intrinsic::memset:
625 case Intrinsic::memcpy:
626 case Intrinsic::memmove:
Chandler Carruthd5003ca2012-05-04 00:58:03 +0000627 // SROA can usually chew through these intrinsics, but they aren't free.
628 return false;
Chandler Carruthf2286b02012-03-31 12:42:41 +0000629 }
630 }
631
632 if (Function *F = CS.getCalledFunction()) {
633 if (F == CS.getInstruction()->getParent()->getParent()) {
634 // This flag will fully abort the analysis, so don't bother with anything
635 // else.
Nadav Rotem92df0262012-09-19 08:08:04 +0000636 IsRecursiveCall = true;
Chandler Carruthf2286b02012-03-31 12:42:41 +0000637 return false;
638 }
639
Chandler Carruthd5003ca2012-05-04 00:58:03 +0000640 if (!callIsSmall(CS)) {
Chandler Carruthf2286b02012-03-31 12:42:41 +0000641 // We account for the average 1 instruction per call argument setup
642 // here.
643 Cost += CS.arg_size() * InlineConstants::InstrCost;
644
645 // Everything other than inline ASM will also have a significant cost
646 // merely from making the call.
647 if (!isa<InlineAsm>(CS.getCalledValue()))
648 Cost += InlineConstants::CallPenalty;
649 }
650
651 return Base::visitCallSite(CS);
652 }
653
654 // Otherwise we're in a very special case -- an indirect function call. See
655 // if we can be particularly clever about this.
656 Value *Callee = CS.getCalledValue();
657
658 // First, pay the price of the argument setup. We account for the average
659 // 1 instruction per call argument setup here.
660 Cost += CS.arg_size() * InlineConstants::InstrCost;
661
662 // Next, check if this happens to be an indirect function call to a known
663 // function in this inline context. If not, we've done all we can.
664 Function *F = dyn_cast_or_null<Function>(SimplifiedValues.lookup(Callee));
665 if (!F)
666 return Base::visitCallSite(CS);
667
668 // If we have a constant that we are calling as a function, we can peer
669 // through it and see the function target. This happens not infrequently
670 // during devirtualization and so we want to give it a hefty bonus for
671 // inlining, but cap that bonus in the event that inlining wouldn't pan
672 // out. Pretend to inline the function, with a custom threshold.
673 CallAnalyzer CA(TD, *F, InlineConstants::IndirectCallThreshold);
674 if (CA.analyzeCall(CS)) {
675 // We were able to inline the indirect call! Subtract the cost from the
676 // bonus we want to apply, but don't go below zero.
677 Cost -= std::max(0, InlineConstants::IndirectCallThreshold - CA.getCost());
678 }
679
680 return Base::visitCallSite(CS);
681}
682
683bool CallAnalyzer::visitInstruction(Instruction &I) {
Chandler Carruthd5003ca2012-05-04 00:58:03 +0000684 // Some instructions are free. All of the free intrinsics can also be
685 // handled by SROA, etc.
686 if (isInstructionFree(&I, TD))
687 return true;
688
Chandler Carruthf2286b02012-03-31 12:42:41 +0000689 // We found something we don't understand or can't handle. Mark any SROA-able
690 // values in the operand list as no longer viable.
691 for (User::op_iterator OI = I.op_begin(), OE = I.op_end(); OI != OE; ++OI)
692 disableSROA(*OI);
693
694 return false;
695}
696
697
698/// \brief Analyze a basic block for its contribution to the inline cost.
699///
700/// This method walks the analyzer over every instruction in the given basic
701/// block and accounts for their cost during inlining at this callsite. It
702/// aborts early if the threshold has been exceeded or an impossible to inline
703/// construct has been detected. It returns false if inlining is no longer
704/// viable, and true if inlining remains viable.
705bool CallAnalyzer::analyzeBlock(BasicBlock *BB) {
706 for (BasicBlock::iterator I = BB->begin(), E = llvm::prior(BB->end());
707 I != E; ++I) {
708 ++NumInstructions;
709 if (isa<ExtractElementInst>(I) || I->getType()->isVectorTy())
710 ++NumVectorInstructions;
711
712 // If the instruction simplified to a constant, there is no cost to this
713 // instruction. Visit the instructions using our InstVisitor to account for
714 // all of the per-instruction logic. The visit tree returns true if we
715 // consumed the instruction in any way, and false if the instruction's base
716 // cost should count against inlining.
717 if (Base::visit(I))
718 ++NumInstructionsSimplified;
719 else
720 Cost += InlineConstants::InstrCost;
721
722 // If the visit this instruction detected an uninlinable pattern, abort.
Nadav Rotem92df0262012-09-19 08:08:04 +0000723 if (IsRecursiveCall || ExposesReturnsTwice || HasDynamicAlloca)
724 return false;
725
726 // If the caller is a recursive function then we don't want to inline
727 // functions which allocate a lot of stack space because it would increase
728 // the caller stack usage dramatically.
729 if (IsCallerRecursive &&
730 AllocatedSize > InlineConstants::TotalAllocaSizeRecursiveCaller)
Chandler Carruthf2286b02012-03-31 12:42:41 +0000731 return false;
732
733 if (NumVectorInstructions > NumInstructions/2)
734 VectorBonus = FiftyPercentVectorBonus;
735 else if (NumVectorInstructions > NumInstructions/10)
736 VectorBonus = TenPercentVectorBonus;
737 else
738 VectorBonus = 0;
739
740 // Check if we've past the threshold so we don't spin in huge basic
741 // blocks that will never inline.
Bob Wilson28f872f2012-11-19 07:04:35 +0000742 if (Cost > (Threshold + VectorBonus))
Chandler Carruthf2286b02012-03-31 12:42:41 +0000743 return false;
744 }
745
746 return true;
747}
748
749/// \brief Compute the base pointer and cumulative constant offsets for V.
750///
751/// This strips all constant offsets off of V, leaving it the base pointer, and
752/// accumulates the total constant offset applied in the returned constant. It
753/// returns 0 if V is not a pointer, and returns the constant '0' if there are
754/// no constant offsets applied.
755ConstantInt *CallAnalyzer::stripAndComputeInBoundsConstantOffsets(Value *&V) {
756 if (!TD || !V->getType()->isPointerTy())
757 return 0;
758
Chandler Carruth426c2bf2012-11-01 09:14:31 +0000759 unsigned IntPtrWidth = TD->getPointerSizeInBits();
Chandler Carruthf2286b02012-03-31 12:42:41 +0000760 APInt Offset = APInt::getNullValue(IntPtrWidth);
761
762 // Even though we don't look through PHI nodes, we could be called on an
763 // instruction in an unreachable block, which may be on a cycle.
764 SmallPtrSet<Value *, 4> Visited;
765 Visited.insert(V);
766 do {
767 if (GEPOperator *GEP = dyn_cast<GEPOperator>(V)) {
768 if (!GEP->isInBounds() || !accumulateGEPOffset(*GEP, Offset))
769 return 0;
770 V = GEP->getPointerOperand();
771 } else if (Operator::getOpcode(V) == Instruction::BitCast) {
772 V = cast<Operator>(V)->getOperand(0);
773 } else if (GlobalAlias *GA = dyn_cast<GlobalAlias>(V)) {
774 if (GA->mayBeOverridden())
775 break;
776 V = GA->getAliasee();
777 } else {
778 break;
779 }
780 assert(V->getType()->isPointerTy() && "Unexpected operand type!");
781 } while (Visited.insert(V));
782
Chandler Carruthece6c6b2012-11-01 08:07:29 +0000783 Type *IntPtrTy = TD->getIntPtrType(V->getContext());
Chandler Carruthf2286b02012-03-31 12:42:41 +0000784 return cast<ConstantInt>(ConstantInt::get(IntPtrTy, Offset));
785}
786
787/// \brief Analyze a call site for potential inlining.
788///
789/// Returns true if inlining this call is viable, and false if it is not
790/// viable. It computes the cost and adjusts the threshold based on numerous
791/// factors and heuristics. If this method returns false but the computed cost
792/// is below the computed threshold, then inlining was forcibly disabled by
Bob Wilson593423f2012-11-19 07:04:30 +0000793/// some artifact of the routine.
Chandler Carruthf2286b02012-03-31 12:42:41 +0000794bool CallAnalyzer::analyzeCall(CallSite CS) {
Chandler Carruthd6fc2622012-04-11 10:15:10 +0000795 ++NumCallsAnalyzed;
796
Chandler Carruthf2286b02012-03-31 12:42:41 +0000797 // Track whether the post-inlining function would have more than one basic
798 // block. A single basic block is often intended for inlining. Balloon the
799 // threshold by 50% until we pass the single-BB phase.
800 bool SingleBB = true;
801 int SingleBBBonus = Threshold / 2;
802 Threshold += SingleBBBonus;
803
Bob Wilson28f872f2012-11-19 07:04:35 +0000804 // Perform some tweaks to the cost and threshold based on the direct
805 // callsite information.
Chandler Carruthf2286b02012-03-31 12:42:41 +0000806
Bob Wilson28f872f2012-11-19 07:04:35 +0000807 // We want to more aggressively inline vector-dense kernels, so up the
808 // threshold, and we'll lower it if the % of vector instructions gets too
809 // low.
810 assert(NumInstructions == 0);
811 assert(NumVectorInstructions == 0);
812 FiftyPercentVectorBonus = Threshold;
813 TenPercentVectorBonus = Threshold / 2;
Benjamin Kramerb6fdd022012-08-07 11:13:19 +0000814
Bob Wilson28f872f2012-11-19 07:04:35 +0000815 // Give out bonuses per argument, as the instructions setting them up will
816 // be gone after inlining.
817 for (unsigned I = 0, E = CS.arg_size(); I != E; ++I) {
818 if (TD && CS.isByValArgument(I)) {
819 // We approximate the number of loads and stores needed by dividing the
820 // size of the byval type by the target's pointer size.
821 PointerType *PTy = cast<PointerType>(CS.getArgument(I)->getType());
822 unsigned TypeSize = TD->getTypeSizeInBits(PTy->getElementType());
823 unsigned PointerSize = TD->getPointerSizeInBits();
824 // Ceiling division.
825 unsigned NumStores = (TypeSize + PointerSize - 1) / PointerSize;
Benjamin Kramerb6fdd022012-08-07 11:13:19 +0000826
Bob Wilson28f872f2012-11-19 07:04:35 +0000827 // If it generates more than 8 stores it is likely to be expanded as an
828 // inline memcpy so we take that as an upper bound. Otherwise we assume
829 // one load and one store per word copied.
830 // FIXME: The maxStoresPerMemcpy setting from the target should be used
831 // here instead of a magic number of 8, but it's not available via
832 // DataLayout.
833 NumStores = std::min(NumStores, 8U);
834
835 Cost -= 2 * NumStores * InlineConstants::InstrCost;
836 } else {
837 // For non-byval arguments subtract off one instruction per call
838 // argument.
839 Cost -= InlineConstants::InstrCost;
Benjamin Kramerb6fdd022012-08-07 11:13:19 +0000840 }
Chandler Carruthf2286b02012-03-31 12:42:41 +0000841 }
842
Bob Wilson28f872f2012-11-19 07:04:35 +0000843 // If there is only one call of the function, and it has internal linkage,
844 // the cost of inlining it drops dramatically.
845 if (F.hasLocalLinkage() && F.hasOneUse() && &F == CS.getCalledFunction())
846 Cost += InlineConstants::LastCallToStaticBonus;
847
848 // If the instruction after the call, or if the normal destination of the
849 // invoke is an unreachable instruction, the function is noreturn. As such,
850 // there is little point in inlining this unless there is literally zero
851 // cost.
852 Instruction *Instr = CS.getInstruction();
853 if (InvokeInst *II = dyn_cast<InvokeInst>(Instr)) {
854 if (isa<UnreachableInst>(II->getNormalDest()->begin()))
855 Threshold = 1;
856 } else if (isa<UnreachableInst>(++BasicBlock::iterator(Instr)))
857 Threshold = 1;
858
859 // If this function uses the coldcc calling convention, prefer not to inline
860 // it.
861 if (F.getCallingConv() == CallingConv::Cold)
862 Cost += InlineConstants::ColdccPenalty;
863
864 // Check if we're done. This can happen due to bonuses and penalties.
865 if (Cost > Threshold)
866 return false;
867
Chandler Carruthf2286b02012-03-31 12:42:41 +0000868 if (F.empty())
869 return true;
870
Nadav Rotem92df0262012-09-19 08:08:04 +0000871 Function *Caller = CS.getInstruction()->getParent()->getParent();
872 // Check if the caller function is recursive itself.
873 for (Value::use_iterator U = Caller->use_begin(), E = Caller->use_end();
874 U != E; ++U) {
875 CallSite Site(cast<Value>(*U));
876 if (!Site)
877 continue;
878 Instruction *I = Site.getInstruction();
879 if (I->getParent()->getParent() == Caller) {
880 IsCallerRecursive = true;
881 break;
882 }
883 }
884
Chandler Carruthf2286b02012-03-31 12:42:41 +0000885 // Track whether we've seen a return instruction. The first return
886 // instruction is free, as at least one will usually disappear in inlining.
887 bool HasReturn = false;
888
889 // Populate our simplified values by mapping from function arguments to call
890 // arguments with known important simplifications.
891 CallSite::arg_iterator CAI = CS.arg_begin();
892 for (Function::arg_iterator FAI = F.arg_begin(), FAE = F.arg_end();
893 FAI != FAE; ++FAI, ++CAI) {
894 assert(CAI != CS.arg_end());
895 if (Constant *C = dyn_cast<Constant>(CAI))
896 SimplifiedValues[FAI] = C;
897
898 Value *PtrArg = *CAI;
899 if (ConstantInt *C = stripAndComputeInBoundsConstantOffsets(PtrArg)) {
900 ConstantOffsetPtrs[FAI] = std::make_pair(PtrArg, C->getValue());
901
902 // We can SROA any pointer arguments derived from alloca instructions.
903 if (isa<AllocaInst>(PtrArg)) {
904 SROAArgValues[FAI] = PtrArg;
905 SROAArgCosts[PtrArg] = 0;
906 }
907 }
908 }
909 NumConstantArgs = SimplifiedValues.size();
910 NumConstantOffsetPtrArgs = ConstantOffsetPtrs.size();
911 NumAllocaArgs = SROAArgValues.size();
912
913 // The worklist of live basic blocks in the callee *after* inlining. We avoid
914 // adding basic blocks of the callee which can be proven to be dead for this
915 // particular call site in order to get more accurate cost estimates. This
916 // requires a somewhat heavyweight iteration pattern: we need to walk the
917 // basic blocks in a breadth-first order as we insert live successors. To
918 // accomplish this, prioritizing for small iterations because we exit after
919 // crossing our threshold, we use a small-size optimized SetVector.
920 typedef SetVector<BasicBlock *, SmallVector<BasicBlock *, 16>,
921 SmallPtrSet<BasicBlock *, 16> > BBSetVector;
922 BBSetVector BBWorklist;
923 BBWorklist.insert(&F.getEntryBlock());
924 // Note that we *must not* cache the size, this loop grows the worklist.
925 for (unsigned Idx = 0; Idx != BBWorklist.size(); ++Idx) {
926 // Bail out the moment we cross the threshold. This means we'll under-count
927 // the cost, but only when undercounting doesn't matter.
Bob Wilson28f872f2012-11-19 07:04:35 +0000928 if (Cost > (Threshold + VectorBonus))
Chandler Carruthf2286b02012-03-31 12:42:41 +0000929 break;
930
931 BasicBlock *BB = BBWorklist[Idx];
932 if (BB->empty())
Chandler Carruth274d3772012-03-14 23:19:53 +0000933 continue;
Dan Gohmane4aeec02009-10-13 18:30:07 +0000934
Chandler Carruthf2286b02012-03-31 12:42:41 +0000935 // Handle the terminator cost here where we can track returns and other
936 // function-wide constructs.
937 TerminatorInst *TI = BB->getTerminator();
Kenneth Uildriks74fa7322010-10-09 22:06:36 +0000938
Chandler Carruthf2286b02012-03-31 12:42:41 +0000939 // We never want to inline functions that contain an indirectbr. This is
940 // incorrect because all the blockaddress's (in static global initializers
Nadav Rotem92df0262012-09-19 08:08:04 +0000941 // for example) would be referring to the original function, and this
942 // indirect jump would jump from the inlined copy of the function into the
943 // original function which is extremely undefined behavior.
Chandler Carruthf2286b02012-03-31 12:42:41 +0000944 // FIXME: This logic isn't really right; we can safely inline functions
945 // with indirectbr's as long as no other function or global references the
946 // blockaddress of a block within the current function. And as a QOI issue,
947 // if someone is using a blockaddress without an indirectbr, and that
948 // reference somehow ends up in another function or global, we probably
949 // don't want to inline this function.
950 if (isa<IndirectBrInst>(TI))
951 return false;
Andrew Trick5c655412011-10-01 01:27:56 +0000952
Chandler Carruthf2286b02012-03-31 12:42:41 +0000953 if (!HasReturn && isa<ReturnInst>(TI))
954 HasReturn = true;
955 else
956 Cost += InlineConstants::InstrCost;
Andrew Trick5c655412011-10-01 01:27:56 +0000957
Chandler Carruthf2286b02012-03-31 12:42:41 +0000958 // Analyze the cost of this block. If we blow through the threshold, this
959 // returns false, and we can bail on out.
960 if (!analyzeBlock(BB)) {
Nadav Rotem92df0262012-09-19 08:08:04 +0000961 if (IsRecursiveCall || ExposesReturnsTwice || HasDynamicAlloca)
Chandler Carruthf2286b02012-03-31 12:42:41 +0000962 return false;
Nadav Rotem92df0262012-09-19 08:08:04 +0000963
964 // If the caller is a recursive function then we don't want to inline
965 // functions which allocate a lot of stack space because it would increase
966 // the caller stack usage dramatically.
967 if (IsCallerRecursive &&
968 AllocatedSize > InlineConstants::TotalAllocaSizeRecursiveCaller)
969 return false;
970
Chandler Carruthf2286b02012-03-31 12:42:41 +0000971 break;
Eric Christopher8e2da0c2011-02-01 01:16:32 +0000972 }
Eric Christopher8e2da0c2011-02-01 01:16:32 +0000973
Chandler Carruthf2286b02012-03-31 12:42:41 +0000974 // Add in the live successors by first checking whether we have terminator
975 // that may be simplified based on the values simplified by this call.
976 if (BranchInst *BI = dyn_cast<BranchInst>(TI)) {
977 if (BI->isConditional()) {
978 Value *Cond = BI->getCondition();
979 if (ConstantInt *SimpleCond
980 = dyn_cast_or_null<ConstantInt>(SimplifiedValues.lookup(Cond))) {
981 BBWorklist.insert(BI->getSuccessor(SimpleCond->isZero() ? 1 : 0));
982 continue;
Eric Christopher8e2da0c2011-02-01 01:16:32 +0000983 }
Chandler Carruthf2286b02012-03-31 12:42:41 +0000984 }
985 } else if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) {
986 Value *Cond = SI->getCondition();
987 if (ConstantInt *SimpleCond
988 = dyn_cast_or_null<ConstantInt>(SimplifiedValues.lookup(Cond))) {
989 BBWorklist.insert(SI->findCaseValue(SimpleCond).getCaseSuccessor());
990 continue;
991 }
992 }
Eric Christopher8e2da0c2011-02-01 01:16:32 +0000993
Chandler Carruthf2286b02012-03-31 12:42:41 +0000994 // If we're unable to select a particular successor, just count all of
995 // them.
Nadav Rotem92df0262012-09-19 08:08:04 +0000996 for (unsigned TIdx = 0, TSize = TI->getNumSuccessors(); TIdx != TSize;
997 ++TIdx)
Chandler Carruthf2286b02012-03-31 12:42:41 +0000998 BBWorklist.insert(TI->getSuccessor(TIdx));
999
1000 // If we had any successors at this point, than post-inlining is likely to
1001 // have them as well. Note that we assume any basic blocks which existed
1002 // due to branches or switches which folded above will also fold after
1003 // inlining.
1004 if (SingleBB && TI->getNumSuccessors() > 1) {
1005 // Take off the bonus we applied to the threshold.
1006 Threshold -= SingleBBBonus;
1007 SingleBB = false;
Eric Christopher8e2da0c2011-02-01 01:16:32 +00001008 }
1009 }
Andrew Trick5c655412011-10-01 01:27:56 +00001010
Chandler Carruthf2286b02012-03-31 12:42:41 +00001011 Threshold += VectorBonus;
1012
Bob Wilson28f872f2012-11-19 07:04:35 +00001013 return Cost < Threshold;
Eric Christopher4e8af6d2011-02-05 00:49:15 +00001014}
1015
Manman Ren286c4dc2012-09-12 05:06:18 +00001016#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
Chandler Carruthf2286b02012-03-31 12:42:41 +00001017/// \brief Dump stats about this call's analysis.
1018void CallAnalyzer::dump() {
1019#define DEBUG_PRINT_STAT(x) llvm::dbgs() << " " #x ": " << x << "\n"
1020 DEBUG_PRINT_STAT(NumConstantArgs);
1021 DEBUG_PRINT_STAT(NumConstantOffsetPtrArgs);
1022 DEBUG_PRINT_STAT(NumAllocaArgs);
1023 DEBUG_PRINT_STAT(NumConstantPtrCmps);
1024 DEBUG_PRINT_STAT(NumConstantPtrDiffs);
1025 DEBUG_PRINT_STAT(NumInstructionsSimplified);
1026 DEBUG_PRINT_STAT(SROACostSavings);
1027 DEBUG_PRINT_STAT(SROACostSavingsLost);
1028#undef DEBUG_PRINT_STAT
Eric Christopher4e8af6d2011-02-05 00:49:15 +00001029}
Manman Rencc77eec2012-09-06 19:55:56 +00001030#endif
Eric Christopher4e8af6d2011-02-05 00:49:15 +00001031
Chandler Carruthf2286b02012-03-31 12:42:41 +00001032InlineCost InlineCostAnalyzer::getInlineCost(CallSite CS, int Threshold) {
David Chisnallb3815782012-04-06 17:27:41 +00001033 return getInlineCost(CS, CS.getCalledFunction(), Threshold);
1034}
Dan Gohmane4aeec02009-10-13 18:30:07 +00001035
David Chisnallb3815782012-04-06 17:27:41 +00001036InlineCost InlineCostAnalyzer::getInlineCost(CallSite CS, Function *Callee,
1037 int Threshold) {
Bob Wilson28f872f2012-11-19 07:04:35 +00001038 // Cannot inline indirect calls.
1039 if (!Callee)
1040 return llvm::InlineCost::getNever();
1041
1042 // Calls to functions with always-inline attributes should be inlined
1043 // whenever possible.
1044 if (Callee->getFnAttributes().hasAttribute(Attributes::AlwaysInline)) {
1045 if (isInlineViable(*Callee))
1046 return llvm::InlineCost::getAlways();
1047 return llvm::InlineCost::getNever();
1048 }
1049
Dan Gohmane4aeec02009-10-13 18:30:07 +00001050 // Don't inline functions which can be redefined at link-time to mean
Eric Christopherf27e6082010-03-25 04:49:10 +00001051 // something else. Don't inline functions marked noinline or call sites
1052 // marked noinline.
Bob Wilson28f872f2012-11-19 07:04:35 +00001053 if (Callee->mayBeOverridden() ||
Bill Wendling67658342012-10-09 07:45:08 +00001054 Callee->getFnAttributes().hasAttribute(Attributes::NoInline) ||
1055 CS.isNoInline())
Dan Gohmane4aeec02009-10-13 18:30:07 +00001056 return llvm::InlineCost::getNever();
1057
Nadav Rotem92df0262012-09-19 08:08:04 +00001058 DEBUG(llvm::dbgs() << " Analyzing call of " << Callee->getName()
1059 << "...\n");
Andrew Trick5c655412011-10-01 01:27:56 +00001060
Chandler Carruthf2286b02012-03-31 12:42:41 +00001061 CallAnalyzer CA(TD, *Callee, Threshold);
1062 bool ShouldInline = CA.analyzeCall(CS);
Dan Gohmane4aeec02009-10-13 18:30:07 +00001063
Chandler Carruthf2286b02012-03-31 12:42:41 +00001064 DEBUG(CA.dump());
1065
1066 // Check if there was a reason to force inlining or no inlining.
1067 if (!ShouldInline && CA.getCost() < CA.getThreshold())
Dan Gohmane4aeec02009-10-13 18:30:07 +00001068 return InlineCost::getNever();
Bob Wilson28f872f2012-11-19 07:04:35 +00001069 if (ShouldInline && CA.getCost() >= CA.getThreshold())
Dan Gohmane4aeec02009-10-13 18:30:07 +00001070 return InlineCost::getAlways();
Andrew Trick5c655412011-10-01 01:27:56 +00001071
Chandler Carruthf2286b02012-03-31 12:42:41 +00001072 return llvm::InlineCost::get(CA.getCost(), CA.getThreshold());
Dan Gohmane4aeec02009-10-13 18:30:07 +00001073}
Bob Wilson28f872f2012-11-19 07:04:35 +00001074
1075bool InlineCostAnalyzer::isInlineViable(Function &F) {
1076 bool ReturnsTwice =F.getFnAttributes().hasAttribute(Attributes::ReturnsTwice);
1077 for (Function::iterator BI = F.begin(), BE = F.end(); BI != BE; ++BI) {
1078 // Disallow inlining of functions which contain an indirect branch.
1079 if (isa<IndirectBrInst>(BI->getTerminator()))
1080 return false;
1081
1082 for (BasicBlock::iterator II = BI->begin(), IE = BI->end(); II != IE;
1083 ++II) {
1084 CallSite CS(II);
1085 if (!CS)
1086 continue;
1087
1088 // Disallow recursive calls.
1089 if (&F == CS.getCalledFunction())
1090 return false;
1091
1092 // Disallow calls which expose returns-twice to a function not previously
1093 // attributed as such.
1094 if (!ReturnsTwice && CS.isCall() &&
1095 cast<CallInst>(CS.getInstruction())->canReturnTwice())
1096 return false;
1097 }
1098 }
1099
1100 return true;
1101}