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Chris Lattnerd075cc22003-08-31 19:10:30 +00001//===- InlineSimple.cpp - Code to perform simple function inlining --------===//
John Criswell482202a2003-10-20 19:43:21 +00002//
3// The LLVM Compiler Infrastructure
4//
5// This file was developed by the LLVM research group and is distributed under
6// the University of Illinois Open Source License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
Chris Lattner2f7c9632001-06-06 20:29:01 +00009//
Chris Lattner530d4bf2003-05-29 15:11:31 +000010// This file implements bottom-up inlining of functions into callees.
Chris Lattner1c8d3f82002-04-18 18:52:03 +000011//
Chris Lattner2f7c9632001-06-06 20:29:01 +000012//===----------------------------------------------------------------------===//
13
Chris Lattnerd075cc22003-08-31 19:10:30 +000014#include "Inliner.h"
Chris Lattner51c28a52003-11-21 21:46:09 +000015#include "llvm/Instructions.h"
Chris Lattnerd075cc22003-08-31 19:10:30 +000016#include "llvm/Function.h"
Chris Lattner2dc85b22004-03-13 23:15:45 +000017#include "llvm/Type.h"
Chris Lattnerd367d052003-08-24 06:59:28 +000018#include "llvm/Support/CallSite.h"
Chris Lattnerd075cc22003-08-31 19:10:30 +000019#include "llvm/Transforms/IPO.h"
Chris Lattner51c28a52003-11-21 21:46:09 +000020using namespace llvm;
Brian Gaeke960707c2003-11-11 22:41:34 +000021
Chris Lattner04805fa2002-02-26 21:46:54 +000022namespace {
Chris Lattner2dc85b22004-03-13 23:15:45 +000023 struct ArgInfo {
24 unsigned ConstantWeight;
25 unsigned AllocaWeight;
26
27 ArgInfo(unsigned CWeight, unsigned AWeight)
28 : ConstantWeight(CWeight), AllocaWeight(AWeight) {}
29 };
30
Chris Lattner6dc0ae22003-10-06 15:52:43 +000031 // FunctionInfo - For each function, calculate the size of it in blocks and
32 // instructions.
33 struct FunctionInfo {
Chris Lattner51c28a52003-11-21 21:46:09 +000034 // NumInsts, NumBlocks - Keep track of how large each function is, which is
35 // used to estimate the code size cost of inlining it.
Chris Lattner6dc0ae22003-10-06 15:52:43 +000036 unsigned NumInsts, NumBlocks;
37
Chris Lattner2dc85b22004-03-13 23:15:45 +000038 // ArgumentWeights - Each formal argument of the function is inspected to
39 // see if it is used in any contexts where making it a constant or alloca
Chris Lattner51c28a52003-11-21 21:46:09 +000040 // would reduce the code size. If so, we add some value to the argument
41 // entry here.
Chris Lattner2dc85b22004-03-13 23:15:45 +000042 std::vector<ArgInfo> ArgumentWeights;
Chris Lattner51c28a52003-11-21 21:46:09 +000043
Chris Lattner6dc0ae22003-10-06 15:52:43 +000044 FunctionInfo() : NumInsts(0), NumBlocks(0) {}
45 };
46
47 class SimpleInliner : public Inliner {
48 std::map<const Function*, FunctionInfo> CachedFunctionInfo;
49 public:
Chris Lattnerd075cc22003-08-31 19:10:30 +000050 int getInlineCost(CallSite CS);
Chris Lattner04805fa2002-02-26 21:46:54 +000051 };
Chris Lattnerd075cc22003-08-31 19:10:30 +000052 RegisterOpt<SimpleInliner> X("inline", "Function Integration/Inlining");
Chris Lattner04805fa2002-02-26 21:46:54 +000053}
54
Chris Lattner51c28a52003-11-21 21:46:09 +000055Pass *llvm::createFunctionInliningPass() { return new SimpleInliner(); }
56
57// CountCodeReductionForConstant - Figure out an approximation for how many
58// instructions will be constant folded if the specified value is constant.
59//
60static unsigned CountCodeReductionForConstant(Value *V) {
61 unsigned Reduction = 0;
62 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E; ++UI)
63 if (isa<BranchInst>(*UI))
64 Reduction += 40; // Eliminating a conditional branch is a big win
65 else if (SwitchInst *SI = dyn_cast<SwitchInst>(*UI))
66 // Eliminating a switch is a big win, proportional to the number of edges
67 // deleted.
68 Reduction += (SI->getNumSuccessors()-1) * 40;
69 else if (CallInst *CI = dyn_cast<CallInst>(*UI)) {
70 // Turning an indirect call into a direct call is a BIG win
71 Reduction += CI->getCalledValue() == V ? 500 : 0;
72 } else if (InvokeInst *II = dyn_cast<InvokeInst>(*UI)) {
73 // Turning an indirect call into a direct call is a BIG win
Chris Lattner61b3f202003-11-21 21:57:29 +000074 Reduction += II->getCalledValue() == V ? 500 : 0;
Chris Lattner51c28a52003-11-21 21:46:09 +000075 } else {
76 // Figure out if this instruction will be removed due to simple constant
77 // propagation.
78 Instruction &Inst = cast<Instruction>(**UI);
79 bool AllOperandsConstant = true;
80 for (unsigned i = 0, e = Inst.getNumOperands(); i != e; ++i)
Reid Spenceref784f02004-07-18 00:32:14 +000081 if (!isa<Constant>(Inst.getOperand(i)) && Inst.getOperand(i) != V) {
Chris Lattner51c28a52003-11-21 21:46:09 +000082 AllOperandsConstant = false;
83 break;
84 }
85
86 if (AllOperandsConstant) {
87 // We will get to remove this instruction...
88 Reduction += 7;
89
90 // And any other instructions that use it which become constants
91 // themselves.
92 Reduction += CountCodeReductionForConstant(&Inst);
93 }
94 }
95
96 return Reduction;
97}
Chris Lattner530d4bf2003-05-29 15:11:31 +000098
Chris Lattner2dc85b22004-03-13 23:15:45 +000099// CountCodeReductionForAlloca - Figure out an approximation of how much smaller
100// the function will be if it is inlined into a context where an argument
101// becomes an alloca.
102//
103static unsigned CountCodeReductionForAlloca(Value *V) {
104 if (!isa<PointerType>(V->getType())) return 0; // Not a pointer
105 unsigned Reduction = 0;
106 for (Value::use_iterator UI = V->use_begin(), E = V->use_end(); UI != E;++UI){
107 Instruction *I = cast<Instruction>(*UI);
108 if (isa<LoadInst>(I) || isa<StoreInst>(I))
109 Reduction += 10;
110 else if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(I)) {
111 // If the GEP has variable indices, we won't be able to do much with it.
112 for (Instruction::op_iterator I = GEP->op_begin()+1, E = GEP->op_end();
113 I != E; ++I)
114 if (!isa<Constant>(*I)) return 0;
115 Reduction += CountCodeReductionForAlloca(GEP)+15;
116 } else {
117 // If there is some other strange instruction, we're not going to be able
118 // to do much if we inline this.
119 return 0;
120 }
121 }
122
123 return Reduction;
124}
125
Chris Lattnerd075cc22003-08-31 19:10:30 +0000126// getInlineCost - The heuristic used to determine if we should inline the
127// function call or not.
Chris Lattner530d4bf2003-05-29 15:11:31 +0000128//
Chris Lattnerd075cc22003-08-31 19:10:30 +0000129int SimpleInliner::getInlineCost(CallSite CS) {
Chris Lattnerd367d052003-08-24 06:59:28 +0000130 Instruction *TheCall = CS.getInstruction();
Chris Lattner51c28a52003-11-21 21:46:09 +0000131 Function *Callee = CS.getCalledFunction();
Chris Lattnerd367d052003-08-24 06:59:28 +0000132 const Function *Caller = TheCall->getParent()->getParent();
Chris Lattner530d4bf2003-05-29 15:11:31 +0000133
Chris Lattnerd075cc22003-08-31 19:10:30 +0000134 // Don't inline a directly recursive call.
135 if (Caller == Callee) return 2000000000;
136
137 // InlineCost - This value measures how good of an inline candidate this call
138 // site is to inline. A lower inline cost make is more likely for the call to
139 // be inlined. This value may go negative.
Chris Lattner530d4bf2003-05-29 15:11:31 +0000140 //
Chris Lattnerd075cc22003-08-31 19:10:30 +0000141 int InlineCost = 0;
Chris Lattner530d4bf2003-05-29 15:11:31 +0000142
143 // If there is only one call of the function, and it has internal linkage,
144 // make it almost guaranteed to be inlined.
145 //
Chris Lattner2d9c1172003-10-20 05:54:26 +0000146 if (Callee->hasInternalLinkage() && Callee->hasOneUse())
Chris Lattnerd075cc22003-08-31 19:10:30 +0000147 InlineCost -= 30000;
Chris Lattner530d4bf2003-05-29 15:11:31 +0000148
Chris Lattner51c28a52003-11-21 21:46:09 +0000149 // Get information about the callee...
Chris Lattner6dc0ae22003-10-06 15:52:43 +0000150 FunctionInfo &CalleeFI = CachedFunctionInfo[Callee];
Chris Lattner530d4bf2003-05-29 15:11:31 +0000151
Chris Lattner6dc0ae22003-10-06 15:52:43 +0000152 // If we haven't calculated this information yet...
153 if (CalleeFI.NumBlocks == 0) {
154 unsigned NumInsts = 0, NumBlocks = 0;
155
156 // Look at the size of the callee. Each basic block counts as 20 units, and
157 // each instruction counts as 10.
158 for (Function::const_iterator BB = Callee->begin(), E = Callee->end();
159 BB != E; ++BB) {
160 NumInsts += BB->size();
161 NumBlocks++;
162 }
Chris Lattner51c28a52003-11-21 21:46:09 +0000163
Chris Lattner6dc0ae22003-10-06 15:52:43 +0000164 CalleeFI.NumBlocks = NumBlocks;
165 CalleeFI.NumInsts = NumInsts;
Chris Lattner51c28a52003-11-21 21:46:09 +0000166
167 // Check out all of the arguments to the function, figuring out how much
168 // code can be eliminated if one of the arguments is a constant.
Chris Lattner2dc85b22004-03-13 23:15:45 +0000169 std::vector<ArgInfo> &ArgWeights = CalleeFI.ArgumentWeights;
Chris Lattner51c28a52003-11-21 21:46:09 +0000170
171 for (Function::aiterator I = Callee->abegin(), E = Callee->aend();
172 I != E; ++I)
Chris Lattner2dc85b22004-03-13 23:15:45 +0000173 ArgWeights.push_back(ArgInfo(CountCodeReductionForConstant(I),
174 CountCodeReductionForAlloca(I)));
Chris Lattner6dc0ae22003-10-06 15:52:43 +0000175 }
176
Chris Lattner51c28a52003-11-21 21:46:09 +0000177
178 // Add to the inline quality for properties that make the call valuable to
179 // inline. This includes factors that indicate that the result of inlining
180 // the function will be optimizable. Currently this just looks at arguments
181 // passed into the function.
182 //
183 unsigned ArgNo = 0;
184 for (CallSite::arg_iterator I = CS.arg_begin(), E = CS.arg_end();
185 I != E; ++I, ++ArgNo) {
186 // Each argument passed in has a cost at both the caller and the callee
187 // sides. This favors functions that take many arguments over functions
188 // that take few arguments.
189 InlineCost -= 20;
190
191 // If this is a function being passed in, it is very likely that we will be
192 // able to turn an indirect function call into a direct function call.
193 if (isa<Function>(I))
194 InlineCost -= 100;
195
196 // If an alloca is passed in, inlining this function is likely to allow
197 // significant future optimization possibilities (like scalar promotion, and
198 // scalarization), so encourage the inlining of the function.
199 //
Chris Lattner2dc85b22004-03-13 23:15:45 +0000200 else if (AllocaInst *AI = dyn_cast<AllocaInst>(I)) {
201 if (ArgNo < CalleeFI.ArgumentWeights.size())
202 InlineCost -= CalleeFI.ArgumentWeights[ArgNo].AllocaWeight;
Chris Lattner51c28a52003-11-21 21:46:09 +0000203
204 // If this is a constant being passed into the function, use the argument
205 // weights calculated for the callee to determine how much will be folded
206 // away with this information.
Reid Spenceref784f02004-07-18 00:32:14 +0000207 } else if (isa<Constant>(I)) {
Chris Lattner2dc85b22004-03-13 23:15:45 +0000208 if (ArgNo < CalleeFI.ArgumentWeights.size())
209 InlineCost -= CalleeFI.ArgumentWeights[ArgNo].ConstantWeight;
Chris Lattner51c28a52003-11-21 21:46:09 +0000210 }
211 }
212
213 // Now that we have considered all of the factors that make the call site more
214 // likely to be inlined, look at factors that make us not want to inline it.
215
Chris Lattnerf8492532003-10-07 19:33:31 +0000216 // Don't inline into something too big, which would make it bigger. Here, we
217 // count each basic block as a single unit.
Chris Lattner95ce36d2004-03-15 06:38:14 +0000218 //
Chris Lattner4d25c862004-04-08 06:34:31 +0000219 InlineCost += Caller->size()/20;
Chris Lattnerf8492532003-10-07 19:33:31 +0000220
221
222 // Look at the size of the callee. Each basic block counts as 20 units, and
Chris Lattner51c28a52003-11-21 21:46:09 +0000223 // each instruction counts as 5.
224 InlineCost += CalleeFI.NumInsts*5 + CalleeFI.NumBlocks*20;
Chris Lattnerd075cc22003-08-31 19:10:30 +0000225 return InlineCost;
Chris Lattner530d4bf2003-05-29 15:11:31 +0000226}
Brian Gaeke960707c2003-11-11 22:41:34 +0000227