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Chris Lattner2240d2b2003-09-20 05:03:31 +00001//===- TailRecursionElimination.cpp - Eliminate Tail Calls ----------------===//
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 Lattner2240d2b2003-09-20 05:03:31 +00009//
Chris Lattner7152da32003-12-08 05:34:54 +000010// This file transforms calls of the current function (self recursion) followed
11// by a return instruction with a branch to the entry of the function, creating
12// a loop. This pass also implements the following extensions to the basic
13// algorithm:
Chris Lattner2240d2b2003-09-20 05:03:31 +000014//
Chris Lattner7152da32003-12-08 05:34:54 +000015// 1. Trivial instructions between the call and return do not prevent the
16// transformation from taking place, though currently the analysis cannot
17// support moving any really useful instructions (only dead ones).
Chris Lattner543d6222003-12-08 23:19:26 +000018// 2. This pass transforms functions that are prevented from being tail
Duncan Sands24080a92010-07-10 20:31:42 +000019// recursive by an associative and commutative expression to use an
20// accumulator variable, thus compiling the typical naive factorial or
21// 'fib' implementation into efficient code.
Chris Lattnerd64152a2003-12-14 23:57:39 +000022// 3. TRE is performed if the function returns void, if the return
23// returns the result returned by the call, or if the function returns a
24// run-time constant on all exits from the function. It is possible, though
25// unlikely, that the return returns something else (like constant 0), and
26// can still be TRE'd. It can be TRE'd if ALL OTHER return instructions in
27// the function return the exact same value.
Nick Lewycky0cade262009-11-07 07:10:01 +000028// 4. If it can prove that callees do not access their caller stack frame,
Chris Lattner7f78f212005-05-09 23:51:13 +000029// they are marked as eligible for tail call elimination (by the code
30// generator).
Chris Lattner2240d2b2003-09-20 05:03:31 +000031//
Chris Lattner7152da32003-12-08 05:34:54 +000032// There are several improvements that could be made:
33//
34// 1. If the function has any alloca instructions, these instructions will be
35// moved out of the entry block of the function, causing them to be
36// evaluated each time through the tail recursion. Safely keeping allocas
37// in the entry block requires analysis to proves that the tail-called
38// function does not read or write the stack object.
Chris Lattner2240d2b2003-09-20 05:03:31 +000039// 2. Tail recursion is only performed if the call immediately preceeds the
Chris Lattner7152da32003-12-08 05:34:54 +000040// return instruction. It's possible that there could be a jump between
41// the call and the return.
Chris Lattnerd64152a2003-12-14 23:57:39 +000042// 3. There can be intervening operations between the call and the return that
Chris Lattner7152da32003-12-08 05:34:54 +000043// prevent the TRE from occurring. For example, there could be GEP's and
44// stores to memory that will not be read or written by the call. This
45// requires some substantial analysis (such as with DSA) to prove safe to
46// move ahead of the call, but doing so could allow many more TREs to be
47// performed, for example in TreeAdd/TreeAlloc from the treeadd benchmark.
Chris Lattner7f78f212005-05-09 23:51:13 +000048// 4. The algorithm we use to detect if callees access their caller stack
49// frames is very primitive.
Chris Lattner2240d2b2003-09-20 05:03:31 +000050//
51//===----------------------------------------------------------------------===//
52
Chris Lattner0e5f4992006-12-19 21:40:18 +000053#define DEBUG_TYPE "tailcallelim"
Chris Lattner3fc6ef12003-09-20 05:14:13 +000054#include "llvm/Transforms/Scalar.h"
Chris Lattner6a35b402009-06-19 04:22:16 +000055#include "llvm/Transforms/Utils/Local.h"
Chris Lattnerce869ee2005-08-07 04:27:41 +000056#include "llvm/Constants.h"
Chris Lattner2240d2b2003-09-20 05:03:31 +000057#include "llvm/DerivedTypes.h"
58#include "llvm/Function.h"
59#include "llvm/Instructions.h"
60#include "llvm/Pass.h"
Nick Lewycky0cade262009-11-07 07:10:01 +000061#include "llvm/Analysis/CaptureTracking.h"
Dan Gohmanea25b482010-04-16 15:57:50 +000062#include "llvm/Analysis/InlineCost.h"
Dan Gohmandd9344f2010-05-28 16:19:17 +000063#include "llvm/Analysis/Loads.h"
Dan Gohmanea25b482010-04-16 15:57:50 +000064#include "llvm/Support/CallSite.h"
Chris Lattner543d6222003-12-08 23:19:26 +000065#include "llvm/Support/CFG.h"
Reid Spencer551ccae2004-09-01 22:55:40 +000066#include "llvm/ADT/Statistic.h"
Chris Lattnerf8485c62003-11-20 18:25:24 +000067using namespace llvm;
Brian Gaeked0fde302003-11-11 22:41:34 +000068
Chris Lattner0e5f4992006-12-19 21:40:18 +000069STATISTIC(NumEliminated, "Number of tail calls removed");
70STATISTIC(NumAccumAdded, "Number of accumulators introduced");
Chris Lattner2240d2b2003-09-20 05:03:31 +000071
Chris Lattner0e5f4992006-12-19 21:40:18 +000072namespace {
Chris Lattner3e8b6632009-09-02 06:11:42 +000073 struct TailCallElim : public FunctionPass {
Nick Lewyckyecd94c82007-05-06 13:37:16 +000074 static char ID; // Pass identification, replacement for typeid
Owen Anderson90c579d2010-08-06 18:33:48 +000075 TailCallElim() : FunctionPass(ID) {}
Devang Patel794fd752007-05-01 21:15:47 +000076
Chris Lattner2240d2b2003-09-20 05:03:31 +000077 virtual bool runOnFunction(Function &F);
Chris Lattner7152da32003-12-08 05:34:54 +000078
79 private:
80 bool ProcessReturningBlock(ReturnInst *RI, BasicBlock *&OldEntry,
Chris Lattnerce869ee2005-08-07 04:27:41 +000081 bool &TailCallsAreMarkedTail,
Nick Lewycky0cade262009-11-07 07:10:01 +000082 SmallVector<PHINode*, 8> &ArgumentPHIs,
Chris Lattnerce869ee2005-08-07 04:27:41 +000083 bool CannotTailCallElimCallsMarkedTail);
Chris Lattner7152da32003-12-08 05:34:54 +000084 bool CanMoveAboveCall(Instruction *I, CallInst *CI);
Chris Lattner543d6222003-12-08 23:19:26 +000085 Value *CanTransformAccumulatorRecursion(Instruction *I, CallInst *CI);
Chris Lattner2240d2b2003-09-20 05:03:31 +000086 };
Chris Lattner2240d2b2003-09-20 05:03:31 +000087}
88
Dan Gohman844731a2008-05-13 00:00:25 +000089char TailCallElim::ID = 0;
Owen Andersond13db2c2010-07-21 22:09:45 +000090INITIALIZE_PASS(TailCallElim, "tailcallelim",
91 "Tail Call Elimination", false, false);
Dan Gohman844731a2008-05-13 00:00:25 +000092
Brian Gaeked0fde302003-11-11 22:41:34 +000093// Public interface to the TailCallElimination pass
Chris Lattnerf8485c62003-11-20 18:25:24 +000094FunctionPass *llvm::createTailCallEliminationPass() {
95 return new TailCallElim();
96}
Chris Lattner3fc6ef12003-09-20 05:14:13 +000097
Nick Lewyckycb194382009-11-07 07:42:38 +000098/// AllocaMightEscapeToCalls - Return true if this alloca may be accessed by
99/// callees of this function. We only do very simple analysis right now, this
100/// could be expanded in the future to use mod/ref information for particular
101/// call sites if desired.
102static bool AllocaMightEscapeToCalls(AllocaInst *AI) {
103 // FIXME: do simple 'address taken' analysis.
104 return true;
105}
106
Nick Lewycky0cade262009-11-07 07:10:01 +0000107/// CheckForEscapingAllocas - Scan the specified basic block for alloca
Chris Lattner7f78f212005-05-09 23:51:13 +0000108/// instructions. If it contains any that might be accessed by calls, return
109/// true.
Chris Lattnerce869ee2005-08-07 04:27:41 +0000110static bool CheckForEscapingAllocas(BasicBlock *BB,
111 bool &CannotTCETailMarkedCall) {
112 bool RetVal = false;
Chris Lattner7f78f212005-05-09 23:51:13 +0000113 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ++I)
Chris Lattnerce869ee2005-08-07 04:27:41 +0000114 if (AllocaInst *AI = dyn_cast<AllocaInst>(I)) {
Nick Lewyckycb194382009-11-07 07:42:38 +0000115 RetVal |= AllocaMightEscapeToCalls(AI);
Chris Lattnerce869ee2005-08-07 04:27:41 +0000116
117 // If this alloca is in the body of the function, or if it is a variable
118 // sized allocation, we cannot tail call eliminate calls marked 'tail'
119 // with this mechanism.
Dan Gohmanecb7a772007-03-22 16:38:57 +0000120 if (BB != &BB->getParent()->getEntryBlock() ||
Chris Lattnerce869ee2005-08-07 04:27:41 +0000121 !isa<ConstantInt>(AI->getArraySize()))
122 CannotTCETailMarkedCall = true;
123 }
124 return RetVal;
Chris Lattner7f78f212005-05-09 23:51:13 +0000125}
126
Chris Lattner2240d2b2003-09-20 05:03:31 +0000127bool TailCallElim::runOnFunction(Function &F) {
128 // If this function is a varargs function, we won't be able to PHI the args
129 // right, so don't even try to convert it...
130 if (F.getFunctionType()->isVarArg()) return false;
131
132 BasicBlock *OldEntry = 0;
Chris Lattnerce869ee2005-08-07 04:27:41 +0000133 bool TailCallsAreMarkedTail = false;
Nick Lewycky0cade262009-11-07 07:10:01 +0000134 SmallVector<PHINode*, 8> ArgumentPHIs;
Chris Lattner2240d2b2003-09-20 05:03:31 +0000135 bool MadeChange = false;
136
Chris Lattner7f78f212005-05-09 23:51:13 +0000137 bool FunctionContainsEscapingAllocas = false;
138
Chris Lattnerce869ee2005-08-07 04:27:41 +0000139 // CannotTCETailMarkedCall - If true, we cannot perform TCE on tail calls
140 // marked with the 'tail' attribute, because doing so would cause the stack
141 // size to increase (real TCE would deallocate variable sized allocas, TCE
142 // doesn't).
143 bool CannotTCETailMarkedCall = false;
144
Chris Lattner7f78f212005-05-09 23:51:13 +0000145 // Loop over the function, looking for any returning blocks, and keeping track
146 // of whether this function has any non-trivially used allocas.
147 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB) {
Chris Lattnerce869ee2005-08-07 04:27:41 +0000148 if (FunctionContainsEscapingAllocas && CannotTCETailMarkedCall)
149 break;
Jeff Cohen00b168892005-07-27 06:12:32 +0000150
Chris Lattner4c0e4cd2005-08-07 07:00:52 +0000151 FunctionContainsEscapingAllocas |=
Chris Lattnerce869ee2005-08-07 04:27:41 +0000152 CheckForEscapingAllocas(BB, CannotTCETailMarkedCall);
Chris Lattner7f78f212005-05-09 23:51:13 +0000153 }
Chris Lattner32b1e872006-10-22 18:42:26 +0000154
155 /// FIXME: The code generator produces really bad code when an 'escaping
156 /// alloca' is changed from being a static alloca to being a dynamic alloca.
157 /// Until this is resolved, disable this transformation if that would ever
158 /// happen. This bug is PR962.
159 if (FunctionContainsEscapingAllocas)
160 return false;
Misha Brukmanfd939082005-04-21 23:48:37 +0000161
Chris Lattnerce869ee2005-08-07 04:27:41 +0000162 // Second pass, change any tail calls to loops.
163 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB)
164 if (ReturnInst *Ret = dyn_cast<ReturnInst>(BB->getTerminator()))
165 MadeChange |= ProcessReturningBlock(Ret, OldEntry, TailCallsAreMarkedTail,
166 ArgumentPHIs,CannotTCETailMarkedCall);
167
Chris Lattnercf2f8922003-12-08 23:37:35 +0000168 // If we eliminated any tail recursions, it's possible that we inserted some
169 // silly PHI nodes which just merge an initial value (the incoming operand)
170 // with themselves. Check to see if we did and clean up our mess if so. This
171 // occurs when a function passes an argument straight through to its tail
172 // call.
173 if (!ArgumentPHIs.empty()) {
Chris Lattnercf2f8922003-12-08 23:37:35 +0000174 for (unsigned i = 0, e = ArgumentPHIs.size(); i != e; ++i) {
175 PHINode *PN = ArgumentPHIs[i];
Chris Lattnercf2f8922003-12-08 23:37:35 +0000176
177 // If the PHI Node is a dynamic constant, replace it with the value it is.
Chris Lattnerce869ee2005-08-07 04:27:41 +0000178 if (Value *PNV = PN->hasConstantValue()) {
179 PN->replaceAllUsesWith(PNV);
180 PN->eraseFromParent();
Chris Lattnercf2f8922003-12-08 23:37:35 +0000181 }
182 }
183 }
184
Chris Lattner7f78f212005-05-09 23:51:13 +0000185 // Finally, if this function contains no non-escaping allocas, mark all calls
186 // in the function as eligible for tail calls (there is no stack memory for
187 // them to access).
188 if (!FunctionContainsEscapingAllocas)
189 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB)
190 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ++I)
Evan Chengfebc8162010-02-03 03:55:59 +0000191 if (CallInst *CI = dyn_cast<CallInst>(I)) {
192 CI->setTailCall();
193 MadeChange = true;
194 }
Chris Lattner7f78f212005-05-09 23:51:13 +0000195
Chris Lattner2240d2b2003-09-20 05:03:31 +0000196 return MadeChange;
197}
Chris Lattner7152da32003-12-08 05:34:54 +0000198
199
Chris Lattner543d6222003-12-08 23:19:26 +0000200/// CanMoveAboveCall - Return true if it is safe to move the specified
201/// instruction from after the call to before the call, assuming that all
202/// instructions between the call and this instruction are movable.
203///
Chris Lattner7152da32003-12-08 05:34:54 +0000204bool TailCallElim::CanMoveAboveCall(Instruction *I, CallInst *CI) {
205 // FIXME: We can move load/store/call/free instructions above the call if the
206 // call does not mod/ref the memory location being processed.
Chris Lattner6a35b402009-06-19 04:22:16 +0000207 if (I->mayHaveSideEffects()) // This also handles volatile loads.
Chris Lattner7152da32003-12-08 05:34:54 +0000208 return false;
Chris Lattner6a35b402009-06-19 04:22:16 +0000209
Nick Lewycky0cade262009-11-07 07:10:01 +0000210 if (LoadInst *L = dyn_cast<LoadInst>(I)) {
Chris Lattner6a35b402009-06-19 04:22:16 +0000211 // Loads may always be moved above calls without side effects.
212 if (CI->mayHaveSideEffects()) {
213 // Non-volatile loads may be moved above a call with side effects if it
214 // does not write to memory and the load provably won't trap.
215 // FIXME: Writes to memory only matter if they may alias the pointer
216 // being loaded from.
217 if (CI->mayWriteToMemory() ||
Bob Wilson49db68f2010-01-30 04:42:39 +0000218 !isSafeToLoadUnconditionally(L->getPointerOperand(), L,
219 L->getAlignment()))
Chris Lattner6a35b402009-06-19 04:22:16 +0000220 return false;
221 }
222 }
Chris Lattner7152da32003-12-08 05:34:54 +0000223
224 // Otherwise, if this is a side-effect free instruction, check to make sure
225 // that it does not use the return value of the call. If it doesn't use the
226 // return value of the call, it must only use things that are defined before
227 // the call, or movable instructions between the call and the instruction
228 // itself.
229 for (unsigned i = 0, e = I->getNumOperands(); i != e; ++i)
230 if (I->getOperand(i) == CI)
231 return false;
232 return true;
233}
234
Chris Lattnerd64152a2003-12-14 23:57:39 +0000235// isDynamicConstant - Return true if the specified value is the same when the
236// return would exit as it was when the initial iteration of the recursive
237// function was executed.
238//
239// We currently handle static constants and arguments that are not modified as
240// part of the recursion.
241//
Nick Lewyckyf80fcd02009-11-07 21:10:15 +0000242static bool isDynamicConstant(Value *V, CallInst *CI, ReturnInst *RI) {
Chris Lattnerd64152a2003-12-14 23:57:39 +0000243 if (isa<Constant>(V)) return true; // Static constants are always dyn consts
244
245 // Check to see if this is an immutable argument, if so, the value
246 // will be available to initialize the accumulator.
247 if (Argument *Arg = dyn_cast<Argument>(V)) {
248 // Figure out which argument number this is...
249 unsigned ArgNo = 0;
250 Function *F = CI->getParent()->getParent();
Chris Lattnere4d5c442005-03-15 04:54:21 +0000251 for (Function::arg_iterator AI = F->arg_begin(); &*AI != Arg; ++AI)
Chris Lattnerd64152a2003-12-14 23:57:39 +0000252 ++ArgNo;
Misha Brukmanfd939082005-04-21 23:48:37 +0000253
Chris Lattnerd64152a2003-12-14 23:57:39 +0000254 // If we are passing this argument into call as the corresponding
255 // argument operand, then the argument is dynamically constant.
256 // Otherwise, we cannot transform this function safely.
Gabor Greifde9f5452010-06-24 00:44:01 +0000257 if (CI->getArgOperand(ArgNo) == Arg)
Chris Lattnerd64152a2003-12-14 23:57:39 +0000258 return true;
259 }
Nick Lewyckyf80fcd02009-11-07 21:10:15 +0000260
261 // Switch cases are always constant integers. If the value is being switched
262 // on and the return is only reachable from one of its cases, it's
263 // effectively constant.
264 if (BasicBlock *UniquePred = RI->getParent()->getUniquePredecessor())
265 if (SwitchInst *SI = dyn_cast<SwitchInst>(UniquePred->getTerminator()))
266 if (SI->getCondition() == V)
267 return SI->getDefaultDest() != RI->getParent();
268
Chris Lattnerd64152a2003-12-14 23:57:39 +0000269 // Not a constant or immutable argument, we can't safely transform.
270 return false;
271}
272
273// getCommonReturnValue - Check to see if the function containing the specified
Duncan Sandsd50e9e22010-06-26 12:53:31 +0000274// tail call consistently returns the same runtime-constant value at all exit
275// points except for IgnoreRI. If so, return the returned value.
Chris Lattnerd64152a2003-12-14 23:57:39 +0000276//
Duncan Sandsd50e9e22010-06-26 12:53:31 +0000277static Value *getCommonReturnValue(ReturnInst *IgnoreRI, CallInst *CI) {
278 Function *F = CI->getParent()->getParent();
Chris Lattnerd64152a2003-12-14 23:57:39 +0000279 Value *ReturnedValue = 0;
280
Chris Lattnerb5d84d12010-08-31 21:21:25 +0000281 for (Function::iterator BBI = F->begin(), E = F->end(); BBI != E; ++BBI) {
282 ReturnInst *RI = dyn_cast<ReturnInst>(BBI->getTerminator());
283 if (RI == 0 || RI == IgnoreRI) continue;
Chris Lattnerd64152a2003-12-14 23:57:39 +0000284
Chris Lattnerb5d84d12010-08-31 21:21:25 +0000285 // We can only perform this transformation if the value returned is
286 // evaluatable at the start of the initial invocation of the function,
287 // instead of at the end of the evaluation.
288 //
289 Value *RetOp = RI->getOperand(0);
290 if (!isDynamicConstant(RetOp, CI, RI))
291 return 0;
Chris Lattnerd64152a2003-12-14 23:57:39 +0000292
Chris Lattnerb5d84d12010-08-31 21:21:25 +0000293 if (ReturnedValue && RetOp != ReturnedValue)
294 return 0; // Cannot transform if differing values are returned.
295 ReturnedValue = RetOp;
296 }
Chris Lattnerd64152a2003-12-14 23:57:39 +0000297 return ReturnedValue;
298}
Chris Lattner7152da32003-12-08 05:34:54 +0000299
Chris Lattner543d6222003-12-08 23:19:26 +0000300/// CanTransformAccumulatorRecursion - If the specified instruction can be
301/// transformed using accumulator recursion elimination, return the constant
302/// which is the start of the accumulator value. Otherwise return null.
303///
304Value *TailCallElim::CanTransformAccumulatorRecursion(Instruction *I,
305 CallInst *CI) {
Duncan Sands24080a92010-07-10 20:31:42 +0000306 if (!I->isAssociative() || !I->isCommutative()) return 0;
Chris Lattner543d6222003-12-08 23:19:26 +0000307 assert(I->getNumOperands() == 2 &&
Duncan Sands24080a92010-07-10 20:31:42 +0000308 "Associative/commutative operations should have 2 args!");
Chris Lattner543d6222003-12-08 23:19:26 +0000309
Chris Lattnerb5d84d12010-08-31 21:21:25 +0000310 // Exactly one operand should be the result of the call instruction.
Anton Korobeynikov07e6e562008-02-20 11:26:25 +0000311 if ((I->getOperand(0) == CI && I->getOperand(1) == CI) ||
312 (I->getOperand(0) != CI && I->getOperand(1) != CI))
Chris Lattner543d6222003-12-08 23:19:26 +0000313 return 0;
314
315 // The only user of this instruction we allow is a single return instruction.
316 if (!I->hasOneUse() || !isa<ReturnInst>(I->use_back()))
317 return 0;
318
319 // Ok, now we have to check all of the other return instructions in this
320 // function. If they return non-constants or differing values, then we cannot
321 // transform the function safely.
Chris Lattnerd64152a2003-12-14 23:57:39 +0000322 return getCommonReturnValue(cast<ReturnInst>(I->use_back()), CI);
Chris Lattner543d6222003-12-08 23:19:26 +0000323}
324
Chris Lattner7152da32003-12-08 05:34:54 +0000325bool TailCallElim::ProcessReturningBlock(ReturnInst *Ret, BasicBlock *&OldEntry,
Chris Lattnerce869ee2005-08-07 04:27:41 +0000326 bool &TailCallsAreMarkedTail,
Nick Lewycky0cade262009-11-07 07:10:01 +0000327 SmallVector<PHINode*, 8> &ArgumentPHIs,
Chris Lattnerce869ee2005-08-07 04:27:41 +0000328 bool CannotTailCallElimCallsMarkedTail) {
Chris Lattner7152da32003-12-08 05:34:54 +0000329 BasicBlock *BB = Ret->getParent();
330 Function *F = BB->getParent();
331
332 if (&BB->front() == Ret) // Make sure there is something before the ret...
333 return false;
Chris Lattner8d9455d2007-09-10 20:58:55 +0000334
Chris Lattner7152da32003-12-08 05:34:54 +0000335 // Scan backwards from the return, checking to see if there is a tail call in
336 // this block. If so, set CI to it.
337 CallInst *CI;
338 BasicBlock::iterator BBI = Ret;
339 while (1) {
340 CI = dyn_cast<CallInst>(BBI);
341 if (CI && CI->getCalledFunction() == F)
342 break;
343
344 if (BBI == BB->begin())
345 return false; // Didn't find a potential tail call.
346 --BBI;
347 }
348
Chris Lattnerce869ee2005-08-07 04:27:41 +0000349 // If this call is marked as a tail call, and if there are dynamic allocas in
350 // the function, we cannot perform this optimization.
351 if (CI->isTailCall() && CannotTailCallElimCallsMarkedTail)
352 return false;
353
Dan Gohmanea25b482010-04-16 15:57:50 +0000354 // As a special case, detect code like this:
355 // double fabs(double f) { return __builtin_fabs(f); } // a 'fabs' call
356 // and disable this xform in this case, because the code generator will
357 // lower the call to fabs into inline code.
358 if (BB == &F->getEntryBlock() &&
359 &BB->front() == CI && &*++BB->begin() == Ret &&
360 callIsSmall(F)) {
361 // A single-block function with just a call and a return. Check that
362 // the arguments match.
363 CallSite::arg_iterator I = CallSite(CI).arg_begin(),
364 E = CallSite(CI).arg_end();
365 Function::arg_iterator FI = F->arg_begin(),
366 FE = F->arg_end();
367 for (; I != E && FI != FE; ++I, ++FI)
368 if (*I != &*FI) break;
369 if (I == E && FI == FE)
370 return false;
371 }
372
Duncan Sands24080a92010-07-10 20:31:42 +0000373 // If we are introducing accumulator recursion to eliminate operations after
374 // the call instruction that are both associative and commutative, the initial
375 // value for the accumulator is placed in this variable. If this value is set
376 // then we actually perform accumulator recursion elimination instead of
Duncan Sandsd0d3ccc2010-07-13 15:41:41 +0000377 // simple tail recursion elimination. If the operation is an LLVM instruction
378 // (eg: "add") then it is recorded in AccumulatorRecursionInstr. If not, then
379 // we are handling the case when the return instruction returns a constant C
380 // which is different to the constant returned by other return instructions
381 // (which is recorded in AccumulatorRecursionEliminationInitVal). This is a
382 // special case of accumulator recursion, the operation being "return C".
Chris Lattner543d6222003-12-08 23:19:26 +0000383 Value *AccumulatorRecursionEliminationInitVal = 0;
384 Instruction *AccumulatorRecursionInstr = 0;
385
Chris Lattner7152da32003-12-08 05:34:54 +0000386 // Ok, we found a potential tail call. We can currently only transform the
387 // tail call if all of the instructions between the call and the return are
388 // movable to above the call itself, leaving the call next to the return.
389 // Check that this is the case now.
Chris Lattnerb5d84d12010-08-31 21:21:25 +0000390 for (BBI = CI, ++BBI; &*BBI != Ret; ++BBI) {
391 if (CanMoveAboveCall(BBI, CI)) continue;
392
393 // If we can't move the instruction above the call, it might be because it
394 // is an associative and commutative operation that could be tranformed
395 // using accumulator recursion elimination. Check to see if this is the
396 // case, and if so, remember the initial accumulator value for later.
397 if ((AccumulatorRecursionEliminationInitVal =
398 CanTransformAccumulatorRecursion(BBI, CI))) {
399 // Yes, this is accumulator recursion. Remember which instruction
400 // accumulates.
401 AccumulatorRecursionInstr = BBI;
402 } else {
403 return false; // Otherwise, we cannot eliminate the tail recursion!
Chris Lattner543d6222003-12-08 23:19:26 +0000404 }
Chris Lattnerb5d84d12010-08-31 21:21:25 +0000405 }
Chris Lattner7152da32003-12-08 05:34:54 +0000406
407 // We can only transform call/return pairs that either ignore the return value
Chris Lattnerd64152a2003-12-14 23:57:39 +0000408 // of the call and return void, ignore the value of the call and return a
409 // constant, return the value returned by the tail call, or that are being
410 // accumulator recursion variable eliminated.
Devang Patel826c4912008-03-11 17:33:32 +0000411 if (Ret->getNumOperands() == 1 && Ret->getReturnValue() != CI &&
Chris Lattner3b5f4502005-11-05 08:21:11 +0000412 !isa<UndefValue>(Ret->getReturnValue()) &&
Chris Lattnerd64152a2003-12-14 23:57:39 +0000413 AccumulatorRecursionEliminationInitVal == 0 &&
Duncan Sandsd0d3ccc2010-07-13 15:41:41 +0000414 !getCommonReturnValue(0, CI)) {
415 // One case remains that we are able to handle: the current return
416 // instruction returns a constant, and all other return instructions
417 // return a different constant.
418 if (!isDynamicConstant(Ret->getReturnValue(), CI, Ret))
419 return false; // Current return instruction does not return a constant.
420 // Check that all other return instructions return a common constant. If
421 // so, record it in AccumulatorRecursionEliminationInitVal.
422 AccumulatorRecursionEliminationInitVal = getCommonReturnValue(Ret, CI);
423 if (!AccumulatorRecursionEliminationInitVal)
424 return false;
425 }
Chris Lattner7152da32003-12-08 05:34:54 +0000426
427 // OK! We can transform this tail call. If this is the first one found,
428 // create the new entry block, allowing us to branch back to the old entry.
429 if (OldEntry == 0) {
430 OldEntry = &F->getEntryBlock();
Owen Anderson1d0be152009-08-13 21:58:54 +0000431 BasicBlock *NewEntry = BasicBlock::Create(F->getContext(), "", F, OldEntry);
Chris Lattner6934a042007-02-11 01:23:03 +0000432 NewEntry->takeName(OldEntry);
433 OldEntry->setName("tailrecurse");
Gabor Greif051a9502008-04-06 20:25:17 +0000434 BranchInst::Create(OldEntry, NewEntry);
Misha Brukmanfd939082005-04-21 23:48:37 +0000435
Chris Lattnerce869ee2005-08-07 04:27:41 +0000436 // If this tail call is marked 'tail' and if there are any allocas in the
437 // entry block, move them up to the new entry block.
438 TailCallsAreMarkedTail = CI->isTailCall();
439 if (TailCallsAreMarkedTail)
440 // Move all fixed sized allocas from OldEntry to NewEntry.
441 for (BasicBlock::iterator OEBI = OldEntry->begin(), E = OldEntry->end(),
442 NEBI = NewEntry->begin(); OEBI != E; )
443 if (AllocaInst *AI = dyn_cast<AllocaInst>(OEBI++))
444 if (isa<ConstantInt>(AI->getArraySize()))
Chris Lattner4bc5f802005-08-08 19:11:57 +0000445 AI->moveBefore(NEBI);
Chris Lattnerce869ee2005-08-07 04:27:41 +0000446
Chris Lattner7152da32003-12-08 05:34:54 +0000447 // Now that we have created a new block, which jumps to the entry
448 // block, insert a PHI node for each argument of the function.
449 // For now, we initialize each PHI to only have the real arguments
450 // which are passed in.
451 Instruction *InsertPos = OldEntry->begin();
Chris Lattner7f78f212005-05-09 23:51:13 +0000452 for (Function::arg_iterator I = F->arg_begin(), E = F->arg_end();
453 I != E; ++I) {
Gabor Greifb1dbcd82008-05-15 10:04:30 +0000454 PHINode *PN = PHINode::Create(I->getType(),
455 I->getName() + ".tr", InsertPos);
Chris Lattner7152da32003-12-08 05:34:54 +0000456 I->replaceAllUsesWith(PN); // Everyone use the PHI node now!
457 PN->addIncoming(I, NewEntry);
458 ArgumentPHIs.push_back(PN);
459 }
460 }
Misha Brukmanfd939082005-04-21 23:48:37 +0000461
Chris Lattnerce869ee2005-08-07 04:27:41 +0000462 // If this function has self recursive calls in the tail position where some
463 // are marked tail and some are not, only transform one flavor or another. We
464 // have to choose whether we move allocas in the entry block to the new entry
465 // block or not, so we can't make a good choice for both. NOTE: We could do
466 // slightly better here in the case that the function has no entry block
467 // allocas.
468 if (TailCallsAreMarkedTail && !CI->isTailCall())
469 return false;
470
Chris Lattner7152da32003-12-08 05:34:54 +0000471 // Ok, now that we know we have a pseudo-entry block WITH all of the
472 // required PHI nodes, add entries into the PHI node for the actual
473 // parameters passed into the tail-recursive call.
Gabor Greif407014f2010-06-24 00:48:48 +0000474 for (unsigned i = 0, e = CI->getNumArgOperands(); i != e; ++i)
Gabor Greifde9f5452010-06-24 00:44:01 +0000475 ArgumentPHIs[i]->addIncoming(CI->getArgOperand(i), BB);
Misha Brukmanfd939082005-04-21 23:48:37 +0000476
Chris Lattner543d6222003-12-08 23:19:26 +0000477 // If we are introducing an accumulator variable to eliminate the recursion,
478 // do so now. Note that we _know_ that no subsequent tail recursion
479 // eliminations will happen on this function because of the way the
480 // accumulator recursion predicate is set up.
481 //
482 if (AccumulatorRecursionEliminationInitVal) {
483 Instruction *AccRecInstr = AccumulatorRecursionInstr;
484 // Start by inserting a new PHI node for the accumulator.
Duncan Sandsd0d3ccc2010-07-13 15:41:41 +0000485 PHINode *AccPN =
486 PHINode::Create(AccumulatorRecursionEliminationInitVal->getType(),
487 "accumulator.tr", OldEntry->begin());
Chris Lattner543d6222003-12-08 23:19:26 +0000488
489 // Loop over all of the predecessors of the tail recursion block. For the
490 // real entry into the function we seed the PHI with the initial value,
491 // computed earlier. For any other existing branches to this block (due to
492 // other tail recursions eliminated) the accumulator is not modified.
493 // Because we haven't added the branch in the current block to OldEntry yet,
494 // it will not show up as a predecessor.
495 for (pred_iterator PI = pred_begin(OldEntry), PE = pred_end(OldEntry);
496 PI != PE; ++PI) {
Gabor Greifa8b9df72010-07-12 10:36:48 +0000497 BasicBlock *P = *PI;
498 if (P == &F->getEntryBlock())
499 AccPN->addIncoming(AccumulatorRecursionEliminationInitVal, P);
Chris Lattner543d6222003-12-08 23:19:26 +0000500 else
Gabor Greifa8b9df72010-07-12 10:36:48 +0000501 AccPN->addIncoming(AccPN, P);
Chris Lattner543d6222003-12-08 23:19:26 +0000502 }
503
Duncan Sandsd0d3ccc2010-07-13 15:41:41 +0000504 if (AccRecInstr) {
505 // Add an incoming argument for the current block, which is computed by
506 // our associative and commutative accumulator instruction.
507 AccPN->addIncoming(AccRecInstr, BB);
Chris Lattner543d6222003-12-08 23:19:26 +0000508
Duncan Sandsd0d3ccc2010-07-13 15:41:41 +0000509 // Next, rewrite the accumulator recursion instruction so that it does not
510 // use the result of the call anymore, instead, use the PHI node we just
511 // inserted.
512 AccRecInstr->setOperand(AccRecInstr->getOperand(0) != CI, AccPN);
513 } else {
514 // Add an incoming argument for the current block, which is just the
515 // constant returned by the current return instruction.
516 AccPN->addIncoming(Ret->getReturnValue(), BB);
517 }
Chris Lattner543d6222003-12-08 23:19:26 +0000518
519 // Finally, rewrite any return instructions in the program to return the PHI
520 // node instead of the "initval" that they do currently. This loop will
521 // actually rewrite the return value we are destroying, but that's ok.
522 for (Function::iterator BBI = F->begin(), E = F->end(); BBI != E; ++BBI)
523 if (ReturnInst *RI = dyn_cast<ReturnInst>(BBI->getTerminator()))
524 RI->setOperand(0, AccPN);
525 ++NumAccumAdded;
526 }
527
Chris Lattner7152da32003-12-08 05:34:54 +0000528 // Now that all of the PHI nodes are in place, remove the call and
529 // ret instructions, replacing them with an unconditional branch.
Gabor Greif051a9502008-04-06 20:25:17 +0000530 BranchInst::Create(OldEntry, Ret);
Chris Lattner7152da32003-12-08 05:34:54 +0000531 BB->getInstList().erase(Ret); // Remove return.
532 BB->getInstList().erase(CI); // Remove call.
Chris Lattner543d6222003-12-08 23:19:26 +0000533 ++NumEliminated;
Chris Lattner7152da32003-12-08 05:34:54 +0000534 return true;
535}