blob: 2eba5fe31e0901573aa9def1e5db3e1eeee77bab [file] [log] [blame]
Meador Ingedf796f82012-10-13 16:45:24 +00001//===------ SimplifyLibCalls.cpp - Library calls simplifier ---------------===//
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 is a utility pass used for testing the InstructionSimplify analysis.
11// The analysis is applied to every instruction, and if it simplifies then the
12// instruction is replaced by the simplification. If you are looking for a pass
13// that performs serious instruction folding, use the instcombine pass instead.
14//
15//===----------------------------------------------------------------------===//
16
17#include "llvm/Transforms/Utils/SimplifyLibCalls.h"
Meador Inge20255ef2013-03-12 00:08:29 +000018#include "llvm/ADT/SmallString.h"
Meador Ingedf796f82012-10-13 16:45:24 +000019#include "llvm/ADT/StringMap.h"
Bob Wilsond8d92d92013-11-03 06:48:38 +000020#include "llvm/ADT/Triple.h"
Weiming Zhao45d4cb92015-11-24 18:57:06 +000021#include "llvm/Analysis/TargetLibraryInfo.h"
Meador Ingedf796f82012-10-13 16:45:24 +000022#include "llvm/Analysis/ValueTracking.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000023#include "llvm/IR/DataLayout.h"
Diego Novillo7f8af8b2014-05-22 14:19:46 +000024#include "llvm/IR/DiagnosticInfo.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000025#include "llvm/IR/Function.h"
26#include "llvm/IR/IRBuilder.h"
Meador Inge20255ef2013-03-12 00:08:29 +000027#include "llvm/IR/IntrinsicInst.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000028#include "llvm/IR/Intrinsics.h"
29#include "llvm/IR/LLVMContext.h"
30#include "llvm/IR/Module.h"
Sanjay Patelc699a612014-10-16 18:48:17 +000031#include "llvm/IR/PatternMatch.h"
Nadav Rotem464e8072013-02-27 05:53:43 +000032#include "llvm/Support/Allocator.h"
Hal Finkel66cd3f12013-11-17 02:06:35 +000033#include "llvm/Support/CommandLine.h"
Meador Ingedf796f82012-10-13 16:45:24 +000034#include "llvm/Transforms/Utils/BuildLibCalls.h"
Chad Rosierdc655322015-08-28 18:30:18 +000035#include "llvm/Transforms/Utils/Local.h"
Meador Ingedf796f82012-10-13 16:45:24 +000036
37using namespace llvm;
Sanjay Patelc699a612014-10-16 18:48:17 +000038using namespace PatternMatch;
Meador Ingedf796f82012-10-13 16:45:24 +000039
Hal Finkel66cd3f12013-11-17 02:06:35 +000040static cl::opt<bool>
Chris Bienemanad070d02014-09-17 20:55:46 +000041 ColdErrorCalls("error-reporting-is-cold", cl::init(true), cl::Hidden,
42 cl::desc("Treat error-reporting calls as cold"));
Meador Ingedf796f82012-10-13 16:45:24 +000043
Sanjay Patela92fa442014-10-22 15:29:23 +000044static cl::opt<bool>
45 EnableUnsafeFPShrink("enable-double-float-shrink", cl::Hidden,
46 cl::init(false),
47 cl::desc("Enable unsafe double to float "
48 "shrinking for math lib calls"));
49
50
Meador Ingedf796f82012-10-13 16:45:24 +000051//===----------------------------------------------------------------------===//
Meador Inged589ac62012-10-31 03:33:06 +000052// Helper Functions
53//===----------------------------------------------------------------------===//
54
Chris Bienemanad070d02014-09-17 20:55:46 +000055static bool ignoreCallingConv(LibFunc::Func Func) {
Davide Italianob883b012015-11-12 23:39:00 +000056 return Func == LibFunc::abs || Func == LibFunc::labs ||
57 Func == LibFunc::llabs || Func == LibFunc::strlen;
Chris Bienemanad070d02014-09-17 20:55:46 +000058}
59
Sanjay Pateld707db92015-12-31 16:10:49 +000060/// Return true if it only matters that the value is equal or not-equal to zero.
Meador Inged589ac62012-10-31 03:33:06 +000061static bool isOnlyUsedInZeroEqualityComparison(Value *V) {
Chandler Carruthcdf47882014-03-09 03:16:01 +000062 for (User *U : V->users()) {
63 if (ICmpInst *IC = dyn_cast<ICmpInst>(U))
Meador Inged589ac62012-10-31 03:33:06 +000064 if (IC->isEquality())
65 if (Constant *C = dyn_cast<Constant>(IC->getOperand(1)))
66 if (C->isNullValue())
67 continue;
68 // Unknown instruction.
69 return false;
70 }
71 return true;
72}
73
Sanjay Pateld707db92015-12-31 16:10:49 +000074/// Return true if it is only used in equality comparisons with With.
Meador Inge56edbc92012-11-11 03:51:48 +000075static bool isOnlyUsedInEqualityComparison(Value *V, Value *With) {
Chandler Carruthcdf47882014-03-09 03:16:01 +000076 for (User *U : V->users()) {
77 if (ICmpInst *IC = dyn_cast<ICmpInst>(U))
Meador Inge56edbc92012-11-11 03:51:48 +000078 if (IC->isEquality() && IC->getOperand(1) == With)
79 continue;
80 // Unknown instruction.
81 return false;
82 }
83 return true;
84}
85
Meador Inge08ca1152012-11-26 20:37:20 +000086static bool callHasFloatingPointArgument(const CallInst *CI) {
Davide Italianoda3beeb2015-11-28 22:27:48 +000087 return std::any_of(CI->op_begin(), CI->op_end(), [](const Use &OI) {
88 return OI->getType()->isFloatingPointTy();
89 });
Meador Inge08ca1152012-11-26 20:37:20 +000090}
91
Benjamin Kramer2702caa2013-08-31 18:19:35 +000092/// \brief Check whether the overloaded unary floating point function
Sanjay Patele24c60e2015-08-12 20:36:18 +000093/// corresponding to \a Ty is available.
Benjamin Kramer2702caa2013-08-31 18:19:35 +000094static bool hasUnaryFloatFn(const TargetLibraryInfo *TLI, Type *Ty,
95 LibFunc::Func DoubleFn, LibFunc::Func FloatFn,
96 LibFunc::Func LongDoubleFn) {
97 switch (Ty->getTypeID()) {
98 case Type::FloatTyID:
99 return TLI->has(FloatFn);
100 case Type::DoubleTyID:
101 return TLI->has(DoubleFn);
102 default:
103 return TLI->has(LongDoubleFn);
104 }
105}
106
Davide Italianoa904e522015-10-29 02:58:44 +0000107/// \brief Check whether we can use unsafe floating point math for
108/// the function passed as input.
109static bool canUseUnsafeFPMath(Function *F) {
110
111 // FIXME: For finer-grain optimization, we need intrinsics to have the same
112 // fast-math flag decorations that are applied to FP instructions. For now,
113 // we have to rely on the function-level unsafe-fp-math attribute to do this
Davide Italianoed5cc952015-11-16 16:54:28 +0000114 // optimization because there's no other way to express that the call can be
115 // relaxed.
Davide Italianoa904e522015-10-29 02:58:44 +0000116 if (F->hasFnAttribute("unsafe-fp-math")) {
117 Attribute Attr = F->getFnAttribute("unsafe-fp-math");
118 if (Attr.getValueAsString() == "true")
119 return true;
120 }
121 return false;
122}
123
Ahmed Bougachab7d8afb2015-01-12 17:18:19 +0000124/// \brief Returns whether \p F matches the signature expected for the
125/// string/memory copying library function \p Func.
126/// Acceptable functions are st[rp][n]?cpy, memove, memcpy, and memset.
127/// Their fortified (_chk) counterparts are also accepted.
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000128static bool checkStringCopyLibFuncSignature(Function *F, LibFunc::Func Func) {
129 const DataLayout &DL = F->getParent()->getDataLayout();
Ahmed Bougachab7d8afb2015-01-12 17:18:19 +0000130 FunctionType *FT = F->getFunctionType();
131 LLVMContext &Context = F->getContext();
132 Type *PCharTy = Type::getInt8PtrTy(Context);
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000133 Type *SizeTTy = DL.getIntPtrType(Context);
Ahmed Bougachab7d8afb2015-01-12 17:18:19 +0000134 unsigned NumParams = FT->getNumParams();
135
136 // All string libfuncs return the same type as the first parameter.
137 if (FT->getReturnType() != FT->getParamType(0))
138 return false;
139
140 switch (Func) {
141 default:
142 llvm_unreachable("Can't check signature for non-string-copy libfunc.");
143 case LibFunc::stpncpy_chk:
144 case LibFunc::strncpy_chk:
145 --NumParams; // fallthrough
146 case LibFunc::stpncpy:
147 case LibFunc::strncpy: {
148 if (NumParams != 3 || FT->getParamType(0) != FT->getParamType(1) ||
149 FT->getParamType(0) != PCharTy || !FT->getParamType(2)->isIntegerTy())
150 return false;
151 break;
152 }
153 case LibFunc::strcpy_chk:
154 case LibFunc::stpcpy_chk:
155 --NumParams; // fallthrough
156 case LibFunc::stpcpy:
157 case LibFunc::strcpy: {
158 if (NumParams != 2 || FT->getParamType(0) != FT->getParamType(1) ||
159 FT->getParamType(0) != PCharTy)
160 return false;
161 break;
162 }
163 case LibFunc::memmove_chk:
164 case LibFunc::memcpy_chk:
165 --NumParams; // fallthrough
166 case LibFunc::memmove:
167 case LibFunc::memcpy: {
168 if (NumParams != 3 || !FT->getParamType(0)->isPointerTy() ||
169 !FT->getParamType(1)->isPointerTy() || FT->getParamType(2) != SizeTTy)
170 return false;
171 break;
172 }
173 case LibFunc::memset_chk:
174 --NumParams; // fallthrough
175 case LibFunc::memset: {
176 if (NumParams != 3 || !FT->getParamType(0)->isPointerTy() ||
177 !FT->getParamType(1)->isIntegerTy() || FT->getParamType(2) != SizeTTy)
178 return false;
179 break;
180 }
181 }
182 // If this is a fortified libcall, the last parameter is a size_t.
183 if (NumParams == FT->getNumParams() - 1)
184 return FT->getParamType(FT->getNumParams() - 1) == SizeTTy;
185 return true;
186}
187
Meador Inged589ac62012-10-31 03:33:06 +0000188//===----------------------------------------------------------------------===//
Meador Inge7fb2f732012-10-13 16:45:32 +0000189// String and Memory Library Call Optimizations
190//===----------------------------------------------------------------------===//
191
Chris Bienemanad070d02014-09-17 20:55:46 +0000192Value *LibCallSimplifier::optimizeStrCat(CallInst *CI, IRBuilder<> &B) {
193 Function *Callee = CI->getCalledFunction();
194 // Verify the "strcat" function prototype.
195 FunctionType *FT = Callee->getFunctionType();
196 if (FT->getNumParams() != 2||
197 FT->getReturnType() != B.getInt8PtrTy() ||
198 FT->getParamType(0) != FT->getReturnType() ||
199 FT->getParamType(1) != FT->getReturnType())
200 return nullptr;
201
202 // Extract some information from the instruction
203 Value *Dst = CI->getArgOperand(0);
204 Value *Src = CI->getArgOperand(1);
205
206 // See if we can get the length of the input string.
207 uint64_t Len = GetStringLength(Src);
208 if (Len == 0)
209 return nullptr;
210 --Len; // Unbias length.
211
212 // Handle the simple, do-nothing case: strcat(x, "") -> x
213 if (Len == 0)
214 return Dst;
215
Chris Bienemanad070d02014-09-17 20:55:46 +0000216 return emitStrLenMemCpy(Src, Dst, Len, B);
217}
218
219Value *LibCallSimplifier::emitStrLenMemCpy(Value *Src, Value *Dst, uint64_t Len,
220 IRBuilder<> &B) {
221 // We need to find the end of the destination string. That's where the
222 // memory is to be moved to. We just generate a call to strlen.
223 Value *DstLen = EmitStrLen(Dst, B, DL, TLI);
224 if (!DstLen)
225 return nullptr;
226
227 // Now that we have the destination's length, we must index into the
228 // destination's pointer to get the actual memcpy destination (end of
229 // the string .. we're concatenating).
David Blaikie3909da72015-03-30 20:42:56 +0000230 Value *CpyDst = B.CreateGEP(B.getInt8Ty(), Dst, DstLen, "endptr");
Chris Bienemanad070d02014-09-17 20:55:46 +0000231
232 // We have enough information to now generate the memcpy call to do the
233 // concatenation for us. Make a memcpy to copy the nul byte with align = 1.
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000234 B.CreateMemCpy(CpyDst, Src,
235 ConstantInt::get(DL.getIntPtrType(Src->getContext()), Len + 1),
Pete Cooper67cf9a72015-11-19 05:56:52 +0000236 1);
Chris Bienemanad070d02014-09-17 20:55:46 +0000237 return Dst;
238}
239
240Value *LibCallSimplifier::optimizeStrNCat(CallInst *CI, IRBuilder<> &B) {
241 Function *Callee = CI->getCalledFunction();
242 // Verify the "strncat" function prototype.
243 FunctionType *FT = Callee->getFunctionType();
244 if (FT->getNumParams() != 3 || FT->getReturnType() != B.getInt8PtrTy() ||
245 FT->getParamType(0) != FT->getReturnType() ||
246 FT->getParamType(1) != FT->getReturnType() ||
247 !FT->getParamType(2)->isIntegerTy())
248 return nullptr;
249
Sanjay Pateld707db92015-12-31 16:10:49 +0000250 // Extract some information from the instruction.
Chris Bienemanad070d02014-09-17 20:55:46 +0000251 Value *Dst = CI->getArgOperand(0);
252 Value *Src = CI->getArgOperand(1);
253 uint64_t Len;
254
Sanjay Pateld707db92015-12-31 16:10:49 +0000255 // We don't do anything if length is not constant.
Chris Bienemanad070d02014-09-17 20:55:46 +0000256 if (ConstantInt *LengthArg = dyn_cast<ConstantInt>(CI->getArgOperand(2)))
257 Len = LengthArg->getZExtValue();
258 else
259 return nullptr;
260
261 // See if we can get the length of the input string.
262 uint64_t SrcLen = GetStringLength(Src);
263 if (SrcLen == 0)
264 return nullptr;
265 --SrcLen; // Unbias length.
266
267 // Handle the simple, do-nothing cases:
268 // strncat(x, "", c) -> x
269 // strncat(x, c, 0) -> x
270 if (SrcLen == 0 || Len == 0)
271 return Dst;
272
Sanjay Pateld707db92015-12-31 16:10:49 +0000273 // We don't optimize this case.
Chris Bienemanad070d02014-09-17 20:55:46 +0000274 if (Len < SrcLen)
275 return nullptr;
276
277 // strncat(x, s, c) -> strcat(x, s)
Sanjay Pateld707db92015-12-31 16:10:49 +0000278 // s is constant so the strcat can be optimized further.
Chris Bienemanad070d02014-09-17 20:55:46 +0000279 return emitStrLenMemCpy(Src, Dst, SrcLen, B);
280}
281
282Value *LibCallSimplifier::optimizeStrChr(CallInst *CI, IRBuilder<> &B) {
283 Function *Callee = CI->getCalledFunction();
284 // Verify the "strchr" function prototype.
285 FunctionType *FT = Callee->getFunctionType();
286 if (FT->getNumParams() != 2 || FT->getReturnType() != B.getInt8PtrTy() ||
287 FT->getParamType(0) != FT->getReturnType() ||
288 !FT->getParamType(1)->isIntegerTy(32))
289 return nullptr;
290
291 Value *SrcStr = CI->getArgOperand(0);
292
293 // If the second operand is non-constant, see if we can compute the length
294 // of the input string and turn this into memchr.
295 ConstantInt *CharC = dyn_cast<ConstantInt>(CI->getArgOperand(1));
296 if (!CharC) {
Chris Bienemanad070d02014-09-17 20:55:46 +0000297 uint64_t Len = GetStringLength(SrcStr);
298 if (Len == 0 || !FT->getParamType(1)->isIntegerTy(32)) // memchr needs i32.
299 return nullptr;
Meador Inge7fb2f732012-10-13 16:45:32 +0000300
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000301 return EmitMemChr(SrcStr, CI->getArgOperand(1), // include nul.
302 ConstantInt::get(DL.getIntPtrType(CI->getContext()), Len),
303 B, DL, TLI);
Meador Inge7fb2f732012-10-13 16:45:32 +0000304 }
305
Chris Bienemanad070d02014-09-17 20:55:46 +0000306 // Otherwise, the character is a constant, see if the first argument is
307 // a string literal. If so, we can constant fold.
308 StringRef Str;
309 if (!getConstantStringInfo(SrcStr, Str)) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000310 if (CharC->isZero()) // strchr(p, 0) -> p + strlen(p)
Sanjay Pateld707db92015-12-31 16:10:49 +0000311 return B.CreateGEP(B.getInt8Ty(), SrcStr, EmitStrLen(SrcStr, B, DL, TLI),
312 "strchr");
Chris Bienemanad070d02014-09-17 20:55:46 +0000313 return nullptr;
314 }
315
316 // Compute the offset, make sure to handle the case when we're searching for
317 // zero (a weird way to spell strlen).
318 size_t I = (0xFF & CharC->getSExtValue()) == 0
319 ? Str.size()
320 : Str.find(CharC->getSExtValue());
321 if (I == StringRef::npos) // Didn't find the char. strchr returns null.
322 return Constant::getNullValue(CI->getType());
323
324 // strchr(s+n,c) -> gep(s+n+i,c)
David Blaikie3909da72015-03-30 20:42:56 +0000325 return B.CreateGEP(B.getInt8Ty(), SrcStr, B.getInt64(I), "strchr");
Chris Bienemanad070d02014-09-17 20:55:46 +0000326}
327
328Value *LibCallSimplifier::optimizeStrRChr(CallInst *CI, IRBuilder<> &B) {
329 Function *Callee = CI->getCalledFunction();
330 // Verify the "strrchr" function prototype.
331 FunctionType *FT = Callee->getFunctionType();
332 if (FT->getNumParams() != 2 || FT->getReturnType() != B.getInt8PtrTy() ||
333 FT->getParamType(0) != FT->getReturnType() ||
334 !FT->getParamType(1)->isIntegerTy(32))
335 return nullptr;
336
337 Value *SrcStr = CI->getArgOperand(0);
338 ConstantInt *CharC = dyn_cast<ConstantInt>(CI->getArgOperand(1));
339
340 // Cannot fold anything if we're not looking for a constant.
341 if (!CharC)
342 return nullptr;
343
344 StringRef Str;
345 if (!getConstantStringInfo(SrcStr, Str)) {
346 // strrchr(s, 0) -> strchr(s, 0)
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000347 if (CharC->isZero())
348 return EmitStrChr(SrcStr, '\0', B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +0000349 return nullptr;
350 }
351
352 // Compute the offset.
353 size_t I = (0xFF & CharC->getSExtValue()) == 0
354 ? Str.size()
355 : Str.rfind(CharC->getSExtValue());
356 if (I == StringRef::npos) // Didn't find the char. Return null.
357 return Constant::getNullValue(CI->getType());
358
359 // strrchr(s+n,c) -> gep(s+n+i,c)
David Blaikie3909da72015-03-30 20:42:56 +0000360 return B.CreateGEP(B.getInt8Ty(), SrcStr, B.getInt64(I), "strrchr");
Chris Bienemanad070d02014-09-17 20:55:46 +0000361}
362
363Value *LibCallSimplifier::optimizeStrCmp(CallInst *CI, IRBuilder<> &B) {
364 Function *Callee = CI->getCalledFunction();
365 // Verify the "strcmp" function prototype.
366 FunctionType *FT = Callee->getFunctionType();
367 if (FT->getNumParams() != 2 || !FT->getReturnType()->isIntegerTy(32) ||
368 FT->getParamType(0) != FT->getParamType(1) ||
369 FT->getParamType(0) != B.getInt8PtrTy())
370 return nullptr;
371
372 Value *Str1P = CI->getArgOperand(0), *Str2P = CI->getArgOperand(1);
373 if (Str1P == Str2P) // strcmp(x,x) -> 0
374 return ConstantInt::get(CI->getType(), 0);
375
376 StringRef Str1, Str2;
377 bool HasStr1 = getConstantStringInfo(Str1P, Str1);
378 bool HasStr2 = getConstantStringInfo(Str2P, Str2);
379
380 // strcmp(x, y) -> cnst (if both x and y are constant strings)
381 if (HasStr1 && HasStr2)
382 return ConstantInt::get(CI->getType(), Str1.compare(Str2));
383
384 if (HasStr1 && Str1.empty()) // strcmp("", x) -> -*x
385 return B.CreateNeg(
386 B.CreateZExt(B.CreateLoad(Str2P, "strcmpload"), CI->getType()));
387
388 if (HasStr2 && Str2.empty()) // strcmp(x,"") -> *x
389 return B.CreateZExt(B.CreateLoad(Str1P, "strcmpload"), CI->getType());
390
391 // strcmp(P, "x") -> memcmp(P, "x", 2)
392 uint64_t Len1 = GetStringLength(Str1P);
393 uint64_t Len2 = GetStringLength(Str2P);
394 if (Len1 && Len2) {
Chris Bienemanad070d02014-09-17 20:55:46 +0000395 return EmitMemCmp(Str1P, Str2P,
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000396 ConstantInt::get(DL.getIntPtrType(CI->getContext()),
Chris Bienemanad070d02014-09-17 20:55:46 +0000397 std::min(Len1, Len2)),
398 B, DL, TLI);
399 }
Meador Inge7fb2f732012-10-13 16:45:32 +0000400
Chris Bienemanad070d02014-09-17 20:55:46 +0000401 return nullptr;
402}
403
404Value *LibCallSimplifier::optimizeStrNCmp(CallInst *CI, IRBuilder<> &B) {
405 Function *Callee = CI->getCalledFunction();
406 // Verify the "strncmp" function prototype.
407 FunctionType *FT = Callee->getFunctionType();
408 if (FT->getNumParams() != 3 || !FT->getReturnType()->isIntegerTy(32) ||
409 FT->getParamType(0) != FT->getParamType(1) ||
410 FT->getParamType(0) != B.getInt8PtrTy() ||
411 !FT->getParamType(2)->isIntegerTy())
412 return nullptr;
413
414 Value *Str1P = CI->getArgOperand(0), *Str2P = CI->getArgOperand(1);
415 if (Str1P == Str2P) // strncmp(x,x,n) -> 0
416 return ConstantInt::get(CI->getType(), 0);
417
418 // Get the length argument if it is constant.
419 uint64_t Length;
420 if (ConstantInt *LengthArg = dyn_cast<ConstantInt>(CI->getArgOperand(2)))
421 Length = LengthArg->getZExtValue();
422 else
423 return nullptr;
424
425 if (Length == 0) // strncmp(x,y,0) -> 0
426 return ConstantInt::get(CI->getType(), 0);
427
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000428 if (Length == 1) // strncmp(x,y,1) -> memcmp(x,y,1)
Chris Bienemanad070d02014-09-17 20:55:46 +0000429 return EmitMemCmp(Str1P, Str2P, CI->getArgOperand(2), B, DL, TLI);
430
431 StringRef Str1, Str2;
432 bool HasStr1 = getConstantStringInfo(Str1P, Str1);
433 bool HasStr2 = getConstantStringInfo(Str2P, Str2);
434
435 // strncmp(x, y) -> cnst (if both x and y are constant strings)
436 if (HasStr1 && HasStr2) {
437 StringRef SubStr1 = Str1.substr(0, Length);
438 StringRef SubStr2 = Str2.substr(0, Length);
439 return ConstantInt::get(CI->getType(), SubStr1.compare(SubStr2));
440 }
441
442 if (HasStr1 && Str1.empty()) // strncmp("", x, n) -> -*x
443 return B.CreateNeg(
444 B.CreateZExt(B.CreateLoad(Str2P, "strcmpload"), CI->getType()));
445
446 if (HasStr2 && Str2.empty()) // strncmp(x, "", n) -> *x
447 return B.CreateZExt(B.CreateLoad(Str1P, "strcmpload"), CI->getType());
448
449 return nullptr;
450}
451
452Value *LibCallSimplifier::optimizeStrCpy(CallInst *CI, IRBuilder<> &B) {
453 Function *Callee = CI->getCalledFunction();
Ahmed Bougachab7d8afb2015-01-12 17:18:19 +0000454
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000455 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::strcpy))
Chris Bienemanad070d02014-09-17 20:55:46 +0000456 return nullptr;
457
458 Value *Dst = CI->getArgOperand(0), *Src = CI->getArgOperand(1);
459 if (Dst == Src) // strcpy(x,x) -> x
460 return Src;
461
Chris Bienemanad070d02014-09-17 20:55:46 +0000462 // See if we can get the length of the input string.
463 uint64_t Len = GetStringLength(Src);
464 if (Len == 0)
465 return nullptr;
466
467 // We have enough information to now generate the memcpy call to do the
468 // copy for us. Make a memcpy to copy the nul byte with align = 1.
469 B.CreateMemCpy(Dst, Src,
Pete Cooper67cf9a72015-11-19 05:56:52 +0000470 ConstantInt::get(DL.getIntPtrType(CI->getContext()), Len), 1);
Chris Bienemanad070d02014-09-17 20:55:46 +0000471 return Dst;
472}
473
474Value *LibCallSimplifier::optimizeStpCpy(CallInst *CI, IRBuilder<> &B) {
475 Function *Callee = CI->getCalledFunction();
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000476 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::stpcpy))
Chris Bienemanad070d02014-09-17 20:55:46 +0000477 return nullptr;
478
479 Value *Dst = CI->getArgOperand(0), *Src = CI->getArgOperand(1);
480 if (Dst == Src) { // stpcpy(x,x) -> x+strlen(x)
481 Value *StrLen = EmitStrLen(Src, B, DL, TLI);
David Blaikieaa41cd52015-04-03 21:33:42 +0000482 return StrLen ? B.CreateInBoundsGEP(B.getInt8Ty(), Dst, StrLen) : nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +0000483 }
484
485 // See if we can get the length of the input string.
486 uint64_t Len = GetStringLength(Src);
487 if (Len == 0)
488 return nullptr;
489
Davide Italianob7487e62015-11-02 23:07:14 +0000490 Type *PT = Callee->getFunctionType()->getParamType(0);
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000491 Value *LenV = ConstantInt::get(DL.getIntPtrType(PT), Len);
Sanjay Pateld707db92015-12-31 16:10:49 +0000492 Value *DstEnd = B.CreateGEP(B.getInt8Ty(), Dst,
493 ConstantInt::get(DL.getIntPtrType(PT), Len - 1));
Chris Bienemanad070d02014-09-17 20:55:46 +0000494
495 // We have enough information to now generate the memcpy call to do the
496 // copy for us. Make a memcpy to copy the nul byte with align = 1.
Pete Cooper67cf9a72015-11-19 05:56:52 +0000497 B.CreateMemCpy(Dst, Src, LenV, 1);
Chris Bienemanad070d02014-09-17 20:55:46 +0000498 return DstEnd;
499}
500
501Value *LibCallSimplifier::optimizeStrNCpy(CallInst *CI, IRBuilder<> &B) {
502 Function *Callee = CI->getCalledFunction();
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000503 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::strncpy))
Chris Bienemanad070d02014-09-17 20:55:46 +0000504 return nullptr;
505
506 Value *Dst = CI->getArgOperand(0);
507 Value *Src = CI->getArgOperand(1);
508 Value *LenOp = CI->getArgOperand(2);
509
510 // See if we can get the length of the input string.
511 uint64_t SrcLen = GetStringLength(Src);
512 if (SrcLen == 0)
513 return nullptr;
514 --SrcLen;
515
516 if (SrcLen == 0) {
517 // strncpy(x, "", y) -> memset(x, '\0', y, 1)
518 B.CreateMemSet(Dst, B.getInt8('\0'), LenOp, 1);
Meador Inge7fb2f732012-10-13 16:45:32 +0000519 return Dst;
520 }
Meador Inge7fb2f732012-10-13 16:45:32 +0000521
Chris Bienemanad070d02014-09-17 20:55:46 +0000522 uint64_t Len;
523 if (ConstantInt *LengthArg = dyn_cast<ConstantInt>(LenOp))
524 Len = LengthArg->getZExtValue();
525 else
526 return nullptr;
Meador Inge7fb2f732012-10-13 16:45:32 +0000527
Chris Bienemanad070d02014-09-17 20:55:46 +0000528 if (Len == 0)
529 return Dst; // strncpy(x, y, 0) -> x
Meador Inge7fb2f732012-10-13 16:45:32 +0000530
Chris Bienemanad070d02014-09-17 20:55:46 +0000531 // Let strncpy handle the zero padding
532 if (Len > SrcLen + 1)
533 return nullptr;
Meador Inge7fb2f732012-10-13 16:45:32 +0000534
Davide Italianob7487e62015-11-02 23:07:14 +0000535 Type *PT = Callee->getFunctionType()->getParamType(0);
Chris Bienemanad070d02014-09-17 20:55:46 +0000536 // strncpy(x, s, c) -> memcpy(x, s, c, 1) [s and c are constant]
Pete Cooper67cf9a72015-11-19 05:56:52 +0000537 B.CreateMemCpy(Dst, Src, ConstantInt::get(DL.getIntPtrType(PT), Len), 1);
Meador Inge7fb2f732012-10-13 16:45:32 +0000538
Chris Bienemanad070d02014-09-17 20:55:46 +0000539 return Dst;
540}
Meador Inge7fb2f732012-10-13 16:45:32 +0000541
Chris Bienemanad070d02014-09-17 20:55:46 +0000542Value *LibCallSimplifier::optimizeStrLen(CallInst *CI, IRBuilder<> &B) {
543 Function *Callee = CI->getCalledFunction();
544 FunctionType *FT = Callee->getFunctionType();
545 if (FT->getNumParams() != 1 || FT->getParamType(0) != B.getInt8PtrTy() ||
546 !FT->getReturnType()->isIntegerTy())
547 return nullptr;
Meador Inge7fb2f732012-10-13 16:45:32 +0000548
Chris Bienemanad070d02014-09-17 20:55:46 +0000549 Value *Src = CI->getArgOperand(0);
550
551 // Constant folding: strlen("xyz") -> 3
552 if (uint64_t Len = GetStringLength(Src))
553 return ConstantInt::get(CI->getType(), Len - 1);
554
555 // strlen(x?"foo":"bars") --> x ? 3 : 4
556 if (SelectInst *SI = dyn_cast<SelectInst>(Src)) {
557 uint64_t LenTrue = GetStringLength(SI->getTrueValue());
558 uint64_t LenFalse = GetStringLength(SI->getFalseValue());
559 if (LenTrue && LenFalse) {
560 Function *Caller = CI->getParent()->getParent();
561 emitOptimizationRemark(CI->getContext(), "simplify-libcalls", *Caller,
562 SI->getDebugLoc(),
563 "folded strlen(select) to select of constants");
564 return B.CreateSelect(SI->getCondition(),
565 ConstantInt::get(CI->getType(), LenTrue - 1),
566 ConstantInt::get(CI->getType(), LenFalse - 1));
567 }
Meador Inge7fb2f732012-10-13 16:45:32 +0000568 }
Meador Inge7fb2f732012-10-13 16:45:32 +0000569
Chris Bienemanad070d02014-09-17 20:55:46 +0000570 // strlen(x) != 0 --> *x != 0
571 // strlen(x) == 0 --> *x == 0
572 if (isOnlyUsedInZeroEqualityComparison(CI))
573 return B.CreateZExt(B.CreateLoad(Src, "strlenfirst"), CI->getType());
Meador Inge17418502012-10-13 16:45:37 +0000574
Chris Bienemanad070d02014-09-17 20:55:46 +0000575 return nullptr;
576}
Meador Inge17418502012-10-13 16:45:37 +0000577
Chris Bienemanad070d02014-09-17 20:55:46 +0000578Value *LibCallSimplifier::optimizeStrPBrk(CallInst *CI, IRBuilder<> &B) {
579 Function *Callee = CI->getCalledFunction();
580 FunctionType *FT = Callee->getFunctionType();
581 if (FT->getNumParams() != 2 || FT->getParamType(0) != B.getInt8PtrTy() ||
582 FT->getParamType(1) != FT->getParamType(0) ||
583 FT->getReturnType() != FT->getParamType(0))
584 return nullptr;
Meador Inge17418502012-10-13 16:45:37 +0000585
Chris Bienemanad070d02014-09-17 20:55:46 +0000586 StringRef S1, S2;
587 bool HasS1 = getConstantStringInfo(CI->getArgOperand(0), S1);
588 bool HasS2 = getConstantStringInfo(CI->getArgOperand(1), S2);
Meador Inge17418502012-10-13 16:45:37 +0000589
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000590 // strpbrk(s, "") -> nullptr
591 // strpbrk("", s) -> nullptr
Chris Bienemanad070d02014-09-17 20:55:46 +0000592 if ((HasS1 && S1.empty()) || (HasS2 && S2.empty()))
593 return Constant::getNullValue(CI->getType());
Meador Inge17418502012-10-13 16:45:37 +0000594
Chris Bienemanad070d02014-09-17 20:55:46 +0000595 // Constant folding.
596 if (HasS1 && HasS2) {
597 size_t I = S1.find_first_of(S2);
598 if (I == StringRef::npos) // No match.
Meador Inge17418502012-10-13 16:45:37 +0000599 return Constant::getNullValue(CI->getType());
600
Sanjay Pateld707db92015-12-31 16:10:49 +0000601 return B.CreateGEP(B.getInt8Ty(), CI->getArgOperand(0), B.getInt64(I),
602 "strpbrk");
Meador Inge17418502012-10-13 16:45:37 +0000603 }
Meador Inge17418502012-10-13 16:45:37 +0000604
Chris Bienemanad070d02014-09-17 20:55:46 +0000605 // strpbrk(s, "a") -> strchr(s, 'a')
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000606 if (HasS2 && S2.size() == 1)
607 return EmitStrChr(CI->getArgOperand(0), S2[0], B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +0000608
609 return nullptr;
610}
611
612Value *LibCallSimplifier::optimizeStrTo(CallInst *CI, IRBuilder<> &B) {
613 Function *Callee = CI->getCalledFunction();
614 FunctionType *FT = Callee->getFunctionType();
615 if ((FT->getNumParams() != 2 && FT->getNumParams() != 3) ||
616 !FT->getParamType(0)->isPointerTy() ||
617 !FT->getParamType(1)->isPointerTy())
618 return nullptr;
619
620 Value *EndPtr = CI->getArgOperand(1);
621 if (isa<ConstantPointerNull>(EndPtr)) {
622 // With a null EndPtr, this function won't capture the main argument.
623 // It would be readonly too, except that it still may write to errno.
624 CI->addAttribute(1, Attribute::NoCapture);
625 }
626
627 return nullptr;
628}
629
630Value *LibCallSimplifier::optimizeStrSpn(CallInst *CI, IRBuilder<> &B) {
631 Function *Callee = CI->getCalledFunction();
632 FunctionType *FT = Callee->getFunctionType();
633 if (FT->getNumParams() != 2 || FT->getParamType(0) != B.getInt8PtrTy() ||
634 FT->getParamType(1) != FT->getParamType(0) ||
635 !FT->getReturnType()->isIntegerTy())
636 return nullptr;
637
638 StringRef S1, S2;
639 bool HasS1 = getConstantStringInfo(CI->getArgOperand(0), S1);
640 bool HasS2 = getConstantStringInfo(CI->getArgOperand(1), S2);
641
642 // strspn(s, "") -> 0
643 // strspn("", s) -> 0
644 if ((HasS1 && S1.empty()) || (HasS2 && S2.empty()))
645 return Constant::getNullValue(CI->getType());
646
647 // Constant folding.
648 if (HasS1 && HasS2) {
649 size_t Pos = S1.find_first_not_of(S2);
650 if (Pos == StringRef::npos)
651 Pos = S1.size();
652 return ConstantInt::get(CI->getType(), Pos);
653 }
654
655 return nullptr;
656}
657
658Value *LibCallSimplifier::optimizeStrCSpn(CallInst *CI, IRBuilder<> &B) {
659 Function *Callee = CI->getCalledFunction();
660 FunctionType *FT = Callee->getFunctionType();
661 if (FT->getNumParams() != 2 || FT->getParamType(0) != B.getInt8PtrTy() ||
662 FT->getParamType(1) != FT->getParamType(0) ||
663 !FT->getReturnType()->isIntegerTy())
664 return nullptr;
665
666 StringRef S1, S2;
667 bool HasS1 = getConstantStringInfo(CI->getArgOperand(0), S1);
668 bool HasS2 = getConstantStringInfo(CI->getArgOperand(1), S2);
669
670 // strcspn("", s) -> 0
671 if (HasS1 && S1.empty())
672 return Constant::getNullValue(CI->getType());
673
674 // Constant folding.
675 if (HasS1 && HasS2) {
676 size_t Pos = S1.find_first_of(S2);
677 if (Pos == StringRef::npos)
678 Pos = S1.size();
679 return ConstantInt::get(CI->getType(), Pos);
680 }
681
682 // strcspn(s, "") -> strlen(s)
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000683 if (HasS2 && S2.empty())
Chris Bienemanad070d02014-09-17 20:55:46 +0000684 return EmitStrLen(CI->getArgOperand(0), B, DL, TLI);
685
686 return nullptr;
687}
688
689Value *LibCallSimplifier::optimizeStrStr(CallInst *CI, IRBuilder<> &B) {
690 Function *Callee = CI->getCalledFunction();
691 FunctionType *FT = Callee->getFunctionType();
692 if (FT->getNumParams() != 2 || !FT->getParamType(0)->isPointerTy() ||
693 !FT->getParamType(1)->isPointerTy() ||
694 !FT->getReturnType()->isPointerTy())
695 return nullptr;
696
697 // fold strstr(x, x) -> x.
698 if (CI->getArgOperand(0) == CI->getArgOperand(1))
699 return B.CreateBitCast(CI->getArgOperand(0), CI->getType());
700
701 // fold strstr(a, b) == a -> strncmp(a, b, strlen(b)) == 0
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000702 if (isOnlyUsedInEqualityComparison(CI, CI->getArgOperand(0))) {
Chris Bienemanad070d02014-09-17 20:55:46 +0000703 Value *StrLen = EmitStrLen(CI->getArgOperand(1), B, DL, TLI);
704 if (!StrLen)
Craig Topperf40110f2014-04-25 05:29:35 +0000705 return nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +0000706 Value *StrNCmp = EmitStrNCmp(CI->getArgOperand(0), CI->getArgOperand(1),
707 StrLen, B, DL, TLI);
708 if (!StrNCmp)
Craig Topperf40110f2014-04-25 05:29:35 +0000709 return nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +0000710 for (auto UI = CI->user_begin(), UE = CI->user_end(); UI != UE;) {
711 ICmpInst *Old = cast<ICmpInst>(*UI++);
712 Value *Cmp =
713 B.CreateICmp(Old->getPredicate(), StrNCmp,
714 ConstantInt::getNullValue(StrNCmp->getType()), "cmp");
715 replaceAllUsesWith(Old, Cmp);
Meador Inge17418502012-10-13 16:45:37 +0000716 }
Chris Bienemanad070d02014-09-17 20:55:46 +0000717 return CI;
718 }
Meador Inge17418502012-10-13 16:45:37 +0000719
Chris Bienemanad070d02014-09-17 20:55:46 +0000720 // See if either input string is a constant string.
721 StringRef SearchStr, ToFindStr;
722 bool HasStr1 = getConstantStringInfo(CI->getArgOperand(0), SearchStr);
723 bool HasStr2 = getConstantStringInfo(CI->getArgOperand(1), ToFindStr);
724
725 // fold strstr(x, "") -> x.
726 if (HasStr2 && ToFindStr.empty())
727 return B.CreateBitCast(CI->getArgOperand(0), CI->getType());
728
729 // If both strings are known, constant fold it.
730 if (HasStr1 && HasStr2) {
731 size_t Offset = SearchStr.find(ToFindStr);
732
733 if (Offset == StringRef::npos) // strstr("foo", "bar") -> null
Meador Inge17418502012-10-13 16:45:37 +0000734 return Constant::getNullValue(CI->getType());
735
Chris Bienemanad070d02014-09-17 20:55:46 +0000736 // strstr("abcd", "bc") -> gep((char*)"abcd", 1)
737 Value *Result = CastToCStr(CI->getArgOperand(0), B);
738 Result = B.CreateConstInBoundsGEP1_64(Result, Offset, "strstr");
739 return B.CreateBitCast(Result, CI->getType());
Meador Inge17418502012-10-13 16:45:37 +0000740 }
Meador Inge17418502012-10-13 16:45:37 +0000741
Chris Bienemanad070d02014-09-17 20:55:46 +0000742 // fold strstr(x, "y") -> strchr(x, 'y').
743 if (HasStr2 && ToFindStr.size() == 1) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000744 Value *StrChr = EmitStrChr(CI->getArgOperand(0), ToFindStr[0], B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +0000745 return StrChr ? B.CreateBitCast(StrChr, CI->getType()) : nullptr;
746 }
747 return nullptr;
748}
Meador Inge40b6fac2012-10-15 03:47:37 +0000749
Benjamin Kramer691363e2015-03-21 15:36:21 +0000750Value *LibCallSimplifier::optimizeMemChr(CallInst *CI, IRBuilder<> &B) {
751 Function *Callee = CI->getCalledFunction();
752 FunctionType *FT = Callee->getFunctionType();
753 if (FT->getNumParams() != 3 || !FT->getParamType(0)->isPointerTy() ||
754 !FT->getParamType(1)->isIntegerTy(32) ||
755 !FT->getParamType(2)->isIntegerTy() ||
756 !FT->getReturnType()->isPointerTy())
757 return nullptr;
758
759 Value *SrcStr = CI->getArgOperand(0);
760 ConstantInt *CharC = dyn_cast<ConstantInt>(CI->getArgOperand(1));
761 ConstantInt *LenC = dyn_cast<ConstantInt>(CI->getArgOperand(2));
762
763 // memchr(x, y, 0) -> null
764 if (LenC && LenC->isNullValue())
765 return Constant::getNullValue(CI->getType());
766
Benjamin Kramer7857d722015-03-21 21:09:33 +0000767 // From now on we need at least constant length and string.
Benjamin Kramer691363e2015-03-21 15:36:21 +0000768 StringRef Str;
Benjamin Kramer7857d722015-03-21 21:09:33 +0000769 if (!LenC || !getConstantStringInfo(SrcStr, Str, 0, /*TrimAtNul=*/false))
Benjamin Kramer691363e2015-03-21 15:36:21 +0000770 return nullptr;
771
772 // Truncate the string to LenC. If Str is smaller than LenC we will still only
773 // scan the string, as reading past the end of it is undefined and we can just
774 // return null if we don't find the char.
775 Str = Str.substr(0, LenC->getZExtValue());
776
Benjamin Kramer7857d722015-03-21 21:09:33 +0000777 // If the char is variable but the input str and length are not we can turn
778 // this memchr call into a simple bit field test. Of course this only works
779 // when the return value is only checked against null.
780 //
781 // It would be really nice to reuse switch lowering here but we can't change
782 // the CFG at this point.
783 //
784 // memchr("\r\n", C, 2) != nullptr -> (C & ((1 << '\r') | (1 << '\n'))) != 0
785 // after bounds check.
786 if (!CharC && !Str.empty() && isOnlyUsedInZeroEqualityComparison(CI)) {
Benjamin Kramerd6aa0ec2015-03-21 22:04:26 +0000787 unsigned char Max =
788 *std::max_element(reinterpret_cast<const unsigned char *>(Str.begin()),
789 reinterpret_cast<const unsigned char *>(Str.end()));
Benjamin Kramer7857d722015-03-21 21:09:33 +0000790
791 // Make sure the bit field we're about to create fits in a register on the
792 // target.
793 // FIXME: On a 64 bit architecture this prevents us from using the
794 // interesting range of alpha ascii chars. We could do better by emitting
795 // two bitfields or shifting the range by 64 if no lower chars are used.
796 if (!DL.fitsInLegalInteger(Max + 1))
797 return nullptr;
798
799 // For the bit field use a power-of-2 type with at least 8 bits to avoid
800 // creating unnecessary illegal types.
801 unsigned char Width = NextPowerOf2(std::max((unsigned char)7, Max));
802
803 // Now build the bit field.
804 APInt Bitfield(Width, 0);
805 for (char C : Str)
806 Bitfield.setBit((unsigned char)C);
807 Value *BitfieldC = B.getInt(Bitfield);
808
809 // First check that the bit field access is within bounds.
810 Value *C = B.CreateZExtOrTrunc(CI->getArgOperand(1), BitfieldC->getType());
811 Value *Bounds = B.CreateICmp(ICmpInst::ICMP_ULT, C, B.getIntN(Width, Width),
812 "memchr.bounds");
813
814 // Create code that checks if the given bit is set in the field.
815 Value *Shl = B.CreateShl(B.getIntN(Width, 1ULL), C);
816 Value *Bits = B.CreateIsNotNull(B.CreateAnd(Shl, BitfieldC), "memchr.bits");
817
818 // Finally merge both checks and cast to pointer type. The inttoptr
819 // implicitly zexts the i1 to intptr type.
820 return B.CreateIntToPtr(B.CreateAnd(Bounds, Bits, "memchr"), CI->getType());
821 }
822
823 // Check if all arguments are constants. If so, we can constant fold.
824 if (!CharC)
825 return nullptr;
826
Benjamin Kramer691363e2015-03-21 15:36:21 +0000827 // Compute the offset.
828 size_t I = Str.find(CharC->getSExtValue() & 0xFF);
829 if (I == StringRef::npos) // Didn't find the char. memchr returns null.
830 return Constant::getNullValue(CI->getType());
831
832 // memchr(s+n,c,l) -> gep(s+n+i,c)
David Blaikie3909da72015-03-30 20:42:56 +0000833 return B.CreateGEP(B.getInt8Ty(), SrcStr, B.getInt64(I), "memchr");
Benjamin Kramer691363e2015-03-21 15:36:21 +0000834}
835
Chris Bienemanad070d02014-09-17 20:55:46 +0000836Value *LibCallSimplifier::optimizeMemCmp(CallInst *CI, IRBuilder<> &B) {
837 Function *Callee = CI->getCalledFunction();
838 FunctionType *FT = Callee->getFunctionType();
839 if (FT->getNumParams() != 3 || !FT->getParamType(0)->isPointerTy() ||
840 !FT->getParamType(1)->isPointerTy() ||
841 !FT->getReturnType()->isIntegerTy(32))
Craig Topperf40110f2014-04-25 05:29:35 +0000842 return nullptr;
Meador Inge40b6fac2012-10-15 03:47:37 +0000843
Chris Bienemanad070d02014-09-17 20:55:46 +0000844 Value *LHS = CI->getArgOperand(0), *RHS = CI->getArgOperand(1);
Meador Inge40b6fac2012-10-15 03:47:37 +0000845
Chris Bienemanad070d02014-09-17 20:55:46 +0000846 if (LHS == RHS) // memcmp(s,s,x) -> 0
847 return Constant::getNullValue(CI->getType());
Meador Inge40b6fac2012-10-15 03:47:37 +0000848
Chris Bienemanad070d02014-09-17 20:55:46 +0000849 // Make sure we have a constant length.
850 ConstantInt *LenC = dyn_cast<ConstantInt>(CI->getArgOperand(2));
851 if (!LenC)
Craig Topperf40110f2014-04-25 05:29:35 +0000852 return nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +0000853 uint64_t Len = LenC->getZExtValue();
854
855 if (Len == 0) // memcmp(s1,s2,0) -> 0
856 return Constant::getNullValue(CI->getType());
857
858 // memcmp(S1,S2,1) -> *(unsigned char*)LHS - *(unsigned char*)RHS
859 if (Len == 1) {
860 Value *LHSV = B.CreateZExt(B.CreateLoad(CastToCStr(LHS, B), "lhsc"),
861 CI->getType(), "lhsv");
862 Value *RHSV = B.CreateZExt(B.CreateLoad(CastToCStr(RHS, B), "rhsc"),
863 CI->getType(), "rhsv");
864 return B.CreateSub(LHSV, RHSV, "chardiff");
Meador Inge40b6fac2012-10-15 03:47:37 +0000865 }
Meador Inge40b6fac2012-10-15 03:47:37 +0000866
Chad Rosierdc655322015-08-28 18:30:18 +0000867 // memcmp(S1,S2,N/8)==0 -> (*(intN_t*)S1 != *(intN_t*)S2)==0
868 if (DL.isLegalInteger(Len * 8) && isOnlyUsedInZeroEqualityComparison(CI)) {
869
870 IntegerType *IntType = IntegerType::get(CI->getContext(), Len * 8);
871 unsigned PrefAlignment = DL.getPrefTypeAlignment(IntType);
872
873 if (getKnownAlignment(LHS, DL, CI) >= PrefAlignment &&
874 getKnownAlignment(RHS, DL, CI) >= PrefAlignment) {
875
876 Type *LHSPtrTy =
877 IntType->getPointerTo(LHS->getType()->getPointerAddressSpace());
878 Type *RHSPtrTy =
879 IntType->getPointerTo(RHS->getType()->getPointerAddressSpace());
880
Sanjay Pateld707db92015-12-31 16:10:49 +0000881 Value *LHSV =
882 B.CreateLoad(B.CreateBitCast(LHS, LHSPtrTy, "lhsc"), "lhsv");
883 Value *RHSV =
884 B.CreateLoad(B.CreateBitCast(RHS, RHSPtrTy, "rhsc"), "rhsv");
Chad Rosierdc655322015-08-28 18:30:18 +0000885
886 return B.CreateZExt(B.CreateICmpNE(LHSV, RHSV), CI->getType(), "memcmp");
887 }
888 }
889
Chris Bienemanad070d02014-09-17 20:55:46 +0000890 // Constant folding: memcmp(x, y, l) -> cnst (all arguments are constant)
891 StringRef LHSStr, RHSStr;
892 if (getConstantStringInfo(LHS, LHSStr) &&
893 getConstantStringInfo(RHS, RHSStr)) {
894 // Make sure we're not reading out-of-bounds memory.
895 if (Len > LHSStr.size() || Len > RHSStr.size())
Craig Topperf40110f2014-04-25 05:29:35 +0000896 return nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +0000897 // Fold the memcmp and normalize the result. This way we get consistent
898 // results across multiple platforms.
899 uint64_t Ret = 0;
900 int Cmp = memcmp(LHSStr.data(), RHSStr.data(), Len);
901 if (Cmp < 0)
902 Ret = -1;
903 else if (Cmp > 0)
904 Ret = 1;
905 return ConstantInt::get(CI->getType(), Ret);
Meador Inge000dbcc2012-10-18 18:12:40 +0000906 }
Meador Inge000dbcc2012-10-18 18:12:40 +0000907
Chris Bienemanad070d02014-09-17 20:55:46 +0000908 return nullptr;
909}
Meador Inge9a6a1902012-10-31 00:20:56 +0000910
Chris Bienemanad070d02014-09-17 20:55:46 +0000911Value *LibCallSimplifier::optimizeMemCpy(CallInst *CI, IRBuilder<> &B) {
912 Function *Callee = CI->getCalledFunction();
Meador Inged589ac62012-10-31 03:33:06 +0000913
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000914 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::memcpy))
Craig Topperf40110f2014-04-25 05:29:35 +0000915 return nullptr;
Meador Inge6f8e0112012-10-31 04:29:58 +0000916
Chris Bienemanad070d02014-09-17 20:55:46 +0000917 // memcpy(x, y, n) -> llvm.memcpy(x, y, n, 1)
918 B.CreateMemCpy(CI->getArgOperand(0), CI->getArgOperand(1),
Pete Cooper67cf9a72015-11-19 05:56:52 +0000919 CI->getArgOperand(2), 1);
Chris Bienemanad070d02014-09-17 20:55:46 +0000920 return CI->getArgOperand(0);
921}
Meador Inge05a625a2012-10-31 14:58:26 +0000922
Chris Bienemanad070d02014-09-17 20:55:46 +0000923Value *LibCallSimplifier::optimizeMemMove(CallInst *CI, IRBuilder<> &B) {
924 Function *Callee = CI->getCalledFunction();
Meador Inge05a625a2012-10-31 14:58:26 +0000925
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000926 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::memmove))
Craig Topperf40110f2014-04-25 05:29:35 +0000927 return nullptr;
Meador Inge489b5d62012-11-08 01:33:50 +0000928
Chris Bienemanad070d02014-09-17 20:55:46 +0000929 // memmove(x, y, n) -> llvm.memmove(x, y, n, 1)
930 B.CreateMemMove(CI->getArgOperand(0), CI->getArgOperand(1),
Pete Cooper67cf9a72015-11-19 05:56:52 +0000931 CI->getArgOperand(2), 1);
Chris Bienemanad070d02014-09-17 20:55:46 +0000932 return CI->getArgOperand(0);
933}
Meador Ingebcd88ef72012-11-10 15:16:48 +0000934
Chris Bienemanad070d02014-09-17 20:55:46 +0000935Value *LibCallSimplifier::optimizeMemSet(CallInst *CI, IRBuilder<> &B) {
936 Function *Callee = CI->getCalledFunction();
Meador Ingebcd88ef72012-11-10 15:16:48 +0000937
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000938 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::memset))
Craig Topperf40110f2014-04-25 05:29:35 +0000939 return nullptr;
Meador Inge56edbc92012-11-11 03:51:48 +0000940
Chris Bienemanad070d02014-09-17 20:55:46 +0000941 // memset(p, v, n) -> llvm.memset(p, v, n, 1)
942 Value *Val = B.CreateIntCast(CI->getArgOperand(1), B.getInt8Ty(), false);
943 B.CreateMemSet(CI->getArgOperand(0), Val, CI->getArgOperand(2), 1);
944 return CI->getArgOperand(0);
945}
Meador Inged4825782012-11-11 06:49:03 +0000946
Meador Inge193e0352012-11-13 04:16:17 +0000947//===----------------------------------------------------------------------===//
948// Math Library Optimizations
949//===----------------------------------------------------------------------===//
950
Matthias Braund34e4d22014-12-03 21:46:33 +0000951/// Return a variant of Val with float type.
952/// Currently this works in two cases: If Val is an FPExtension of a float
953/// value to something bigger, simply return the operand.
954/// If Val is a ConstantFP but can be converted to a float ConstantFP without
955/// loss of precision do so.
956static Value *valueHasFloatPrecision(Value *Val) {
957 if (FPExtInst *Cast = dyn_cast<FPExtInst>(Val)) {
958 Value *Op = Cast->getOperand(0);
959 if (Op->getType()->isFloatTy())
960 return Op;
961 }
962 if (ConstantFP *Const = dyn_cast<ConstantFP>(Val)) {
963 APFloat F = Const->getValueAPF();
Matthias Braun395a82f2014-12-03 22:10:39 +0000964 bool losesInfo;
Matthias Braund34e4d22014-12-03 21:46:33 +0000965 (void)F.convert(APFloat::IEEEsingle, APFloat::rmNearestTiesToEven,
Matthias Braun395a82f2014-12-03 22:10:39 +0000966 &losesInfo);
967 if (!losesInfo)
Matthias Braund34e4d22014-12-03 21:46:33 +0000968 return ConstantFP::get(Const->getContext(), F);
969 }
970 return nullptr;
971}
972
Meador Inge193e0352012-11-13 04:16:17 +0000973//===----------------------------------------------------------------------===//
974// Double -> Float Shrinking Optimizations for Unary Functions like 'floor'
975
Chris Bienemanad070d02014-09-17 20:55:46 +0000976Value *LibCallSimplifier::optimizeUnaryDoubleFP(CallInst *CI, IRBuilder<> &B,
977 bool CheckRetType) {
978 Function *Callee = CI->getCalledFunction();
979 FunctionType *FT = Callee->getFunctionType();
980 if (FT->getNumParams() != 1 || !FT->getReturnType()->isDoubleTy() ||
981 !FT->getParamType(0)->isDoubleTy())
982 return nullptr;
Meador Inge193e0352012-11-13 04:16:17 +0000983
Chris Bienemanad070d02014-09-17 20:55:46 +0000984 if (CheckRetType) {
985 // Check if all the uses for function like 'sin' are converted to float.
986 for (User *U : CI->users()) {
987 FPTruncInst *Cast = dyn_cast<FPTruncInst>(U);
988 if (!Cast || !Cast->getType()->isFloatTy())
989 return nullptr;
Meador Inge193e0352012-11-13 04:16:17 +0000990 }
Meador Inge193e0352012-11-13 04:16:17 +0000991 }
Chris Bienemanad070d02014-09-17 20:55:46 +0000992
993 // If this is something like 'floor((double)floatval)', convert to floorf.
Matthias Braund34e4d22014-12-03 21:46:33 +0000994 Value *V = valueHasFloatPrecision(CI->getArgOperand(0));
995 if (V == nullptr)
Chris Bienemanad070d02014-09-17 20:55:46 +0000996 return nullptr;
Sanjay Patelaa231142015-12-31 21:52:31 +0000997
998 // Propagate fast-math flags from the existing call to the new call.
999 IRBuilder<>::FastMathFlagGuard Guard(B);
1000 B.SetFastMathFlags(CI->getFastMathFlags());
Chris Bienemanad070d02014-09-17 20:55:46 +00001001
1002 // floor((double)floatval) -> (double)floorf(floatval)
Sanjay Patel848309d2014-10-23 21:52:45 +00001003 if (Callee->isIntrinsic()) {
Sanjay Patelaf674fb2015-12-14 17:24:23 +00001004 Module *M = CI->getModule();
Pete Cooper9e1d3352015-05-20 17:16:39 +00001005 Intrinsic::ID IID = Callee->getIntrinsicID();
Sanjay Patel848309d2014-10-23 21:52:45 +00001006 Function *F = Intrinsic::getDeclaration(M, IID, B.getFloatTy());
1007 V = B.CreateCall(F, V);
1008 } else {
1009 // The call is a library call rather than an intrinsic.
1010 V = EmitUnaryFloatFnCall(V, Callee->getName(), B, Callee->getAttributes());
1011 }
1012
Chris Bienemanad070d02014-09-17 20:55:46 +00001013 return B.CreateFPExt(V, B.getDoubleTy());
1014}
Meador Inge193e0352012-11-13 04:16:17 +00001015
Yi Jiang6ab044e2013-12-16 22:42:40 +00001016// Double -> Float Shrinking Optimizations for Binary Functions like 'fmin/fmax'
Chris Bienemanad070d02014-09-17 20:55:46 +00001017Value *LibCallSimplifier::optimizeBinaryDoubleFP(CallInst *CI, IRBuilder<> &B) {
1018 Function *Callee = CI->getCalledFunction();
1019 FunctionType *FT = Callee->getFunctionType();
1020 // Just make sure this has 2 arguments of the same FP type, which match the
1021 // result type.
1022 if (FT->getNumParams() != 2 || FT->getReturnType() != FT->getParamType(0) ||
1023 FT->getParamType(0) != FT->getParamType(1) ||
1024 !FT->getParamType(0)->isFloatingPointTy())
Craig Topperf40110f2014-04-25 05:29:35 +00001025 return nullptr;
Meador Inge193e0352012-11-13 04:16:17 +00001026
Chris Bienemanad070d02014-09-17 20:55:46 +00001027 // If this is something like 'fmin((double)floatval1, (double)floatval2)',
Matthias Braund34e4d22014-12-03 21:46:33 +00001028 // or fmin(1.0, (double)floatval), then we convert it to fminf.
1029 Value *V1 = valueHasFloatPrecision(CI->getArgOperand(0));
1030 if (V1 == nullptr)
1031 return nullptr;
1032 Value *V2 = valueHasFloatPrecision(CI->getArgOperand(1));
1033 if (V2 == nullptr)
Craig Topperf40110f2014-04-25 05:29:35 +00001034 return nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +00001035
1036 // fmin((double)floatval1, (double)floatval2)
Matthias Braund34e4d22014-12-03 21:46:33 +00001037 // -> (double)fminf(floatval1, floatval2)
Sanjay Patel848309d2014-10-23 21:52:45 +00001038 // TODO: Handle intrinsics in the same way as in optimizeUnaryDoubleFP().
Matthias Braund34e4d22014-12-03 21:46:33 +00001039 Value *V = EmitBinaryFloatFnCall(V1, V2, Callee->getName(), B,
1040 Callee->getAttributes());
Chris Bienemanad070d02014-09-17 20:55:46 +00001041 return B.CreateFPExt(V, B.getDoubleTy());
1042}
1043
1044Value *LibCallSimplifier::optimizeCos(CallInst *CI, IRBuilder<> &B) {
1045 Function *Callee = CI->getCalledFunction();
1046 Value *Ret = nullptr;
Davide Italianoa3458772015-11-05 19:18:23 +00001047 StringRef Name = Callee->getName();
1048 if (UnsafeFPShrink && Name == "cos" && hasFloatVersion(Name))
Chris Bienemanad070d02014-09-17 20:55:46 +00001049 Ret = optimizeUnaryDoubleFP(CI, B, true);
Bob Wilsond8d92d92013-11-03 06:48:38 +00001050
Chris Bienemanad070d02014-09-17 20:55:46 +00001051 FunctionType *FT = Callee->getFunctionType();
1052 // Just make sure this has 1 argument of FP type, which matches the
1053 // result type.
1054 if (FT->getNumParams() != 1 || FT->getReturnType() != FT->getParamType(0) ||
1055 !FT->getParamType(0)->isFloatingPointTy())
1056 return Ret;
Bob Wilsond8d92d92013-11-03 06:48:38 +00001057
Chris Bienemanad070d02014-09-17 20:55:46 +00001058 // cos(-x) -> cos(x)
1059 Value *Op1 = CI->getArgOperand(0);
1060 if (BinaryOperator::isFNeg(Op1)) {
1061 BinaryOperator *BinExpr = cast<BinaryOperator>(Op1);
1062 return B.CreateCall(Callee, BinExpr->getOperand(1), "cos");
1063 }
1064 return Ret;
1065}
Bob Wilsond8d92d92013-11-03 06:48:38 +00001066
Weiming Zhao82130722015-12-04 22:00:47 +00001067static Value *getPow(Value *InnerChain[33], unsigned Exp, IRBuilder<> &B) {
1068 // Multiplications calculated using Addition Chains.
1069 // Refer: http://wwwhomes.uni-bielefeld.de/achim/addition_chain.html
1070
1071 assert(Exp != 0 && "Incorrect exponent 0 not handled");
1072
1073 if (InnerChain[Exp])
1074 return InnerChain[Exp];
1075
1076 static const unsigned AddChain[33][2] = {
1077 {0, 0}, // Unused.
1078 {0, 0}, // Unused (base case = pow1).
1079 {1, 1}, // Unused (pre-computed).
1080 {1, 2}, {2, 2}, {2, 3}, {3, 3}, {2, 5}, {4, 4},
1081 {1, 8}, {5, 5}, {1, 10}, {6, 6}, {4, 9}, {7, 7},
1082 {3, 12}, {8, 8}, {8, 9}, {2, 16}, {1, 18}, {10, 10},
1083 {6, 15}, {11, 11}, {3, 20}, {12, 12}, {8, 17}, {13, 13},
1084 {3, 24}, {14, 14}, {4, 25}, {15, 15}, {3, 28}, {16, 16},
1085 };
1086
1087 InnerChain[Exp] = B.CreateFMul(getPow(InnerChain, AddChain[Exp][0], B),
1088 getPow(InnerChain, AddChain[Exp][1], B));
1089 return InnerChain[Exp];
1090}
1091
Chris Bienemanad070d02014-09-17 20:55:46 +00001092Value *LibCallSimplifier::optimizePow(CallInst *CI, IRBuilder<> &B) {
1093 Function *Callee = CI->getCalledFunction();
Chris Bienemanad070d02014-09-17 20:55:46 +00001094 Value *Ret = nullptr;
Davide Italianoa3458772015-11-05 19:18:23 +00001095 StringRef Name = Callee->getName();
1096 if (UnsafeFPShrink && Name == "pow" && hasFloatVersion(Name))
Chris Bienemanad070d02014-09-17 20:55:46 +00001097 Ret = optimizeUnaryDoubleFP(CI, B, true);
Bob Wilsond8d92d92013-11-03 06:48:38 +00001098
Chris Bienemanad070d02014-09-17 20:55:46 +00001099 FunctionType *FT = Callee->getFunctionType();
1100 // Just make sure this has 2 arguments of the same FP type, which match the
1101 // result type.
1102 if (FT->getNumParams() != 2 || FT->getReturnType() != FT->getParamType(0) ||
1103 FT->getParamType(0) != FT->getParamType(1) ||
1104 !FT->getParamType(0)->isFloatingPointTy())
1105 return Ret;
Bob Wilsond8d92d92013-11-03 06:48:38 +00001106
Chris Bienemanad070d02014-09-17 20:55:46 +00001107 Value *Op1 = CI->getArgOperand(0), *Op2 = CI->getArgOperand(1);
1108 if (ConstantFP *Op1C = dyn_cast<ConstantFP>(Op1)) {
1109 // pow(1.0, x) -> 1.0
1110 if (Op1C->isExactlyValue(1.0))
1111 return Op1C;
1112 // pow(2.0, x) -> exp2(x)
1113 if (Op1C->isExactlyValue(2.0) &&
1114 hasUnaryFloatFn(TLI, Op1->getType(), LibFunc::exp2, LibFunc::exp2f,
1115 LibFunc::exp2l))
Davide Italianod9f87b42015-11-06 21:05:07 +00001116 return EmitUnaryFloatFnCall(Op2, TLI->getName(LibFunc::exp2), B,
1117 Callee->getAttributes());
Chris Bienemanad070d02014-09-17 20:55:46 +00001118 // pow(10.0, x) -> exp10(x)
1119 if (Op1C->isExactlyValue(10.0) &&
1120 hasUnaryFloatFn(TLI, Op1->getType(), LibFunc::exp10, LibFunc::exp10f,
1121 LibFunc::exp10l))
1122 return EmitUnaryFloatFnCall(Op2, TLI->getName(LibFunc::exp10), B,
1123 Callee->getAttributes());
Bob Wilsond8d92d92013-11-03 06:48:38 +00001124 }
1125
Sanjay Patel96475cb2015-12-31 16:16:58 +00001126 bool UnsafeFPMath = canUseUnsafeFPMath(CI->getParent()->getParent());
Davide Italianoc5cedd12015-11-18 23:21:32 +00001127
Davide Italianoc8a79132015-11-03 20:32:23 +00001128 // pow(exp(x), y) -> exp(x*y)
1129 // pow(exp2(x), y) -> exp2(x * y)
1130 // We enable these only under fast-math. Besides rounding
1131 // differences the transformation changes overflow and
1132 // underflow behavior quite dramatically.
1133 // Example: x = 1000, y = 0.001.
1134 // pow(exp(x), y) = pow(inf, 0.001) = inf, whereas exp(x*y) = exp(1).
Sanjay Patel96475cb2015-12-31 16:16:58 +00001135 if (UnsafeFPMath) {
Davide Italianoc8a79132015-11-03 20:32:23 +00001136 if (auto *OpC = dyn_cast<CallInst>(Op1)) {
1137 IRBuilder<>::FastMathFlagGuard Guard(B);
1138 FastMathFlags FMF;
1139 FMF.setUnsafeAlgebra();
1140 B.SetFastMathFlags(FMF);
1141
1142 LibFunc::Func Func;
Benjamin Kramerfb419e72015-11-26 09:51:17 +00001143 Function *OpCCallee = OpC->getCalledFunction();
1144 if (OpCCallee && TLI->getLibFunc(OpCCallee->getName(), Func) &&
1145 TLI->has(Func) && (Func == LibFunc::exp || Func == LibFunc::exp2))
Davide Italianoc8a79132015-11-03 20:32:23 +00001146 return EmitUnaryFloatFnCall(
Benjamin Kramerfb419e72015-11-26 09:51:17 +00001147 B.CreateFMul(OpC->getArgOperand(0), Op2, "mul"),
1148 OpCCallee->getName(), B, OpCCallee->getAttributes());
Davide Italianoc8a79132015-11-03 20:32:23 +00001149 }
1150 }
1151
Chris Bienemanad070d02014-09-17 20:55:46 +00001152 ConstantFP *Op2C = dyn_cast<ConstantFP>(Op2);
1153 if (!Op2C)
1154 return Ret;
1155
1156 if (Op2C->getValueAPF().isZero()) // pow(x, 0.0) -> 1.0
1157 return ConstantFP::get(CI->getType(), 1.0);
1158
1159 if (Op2C->isExactlyValue(0.5) &&
1160 hasUnaryFloatFn(TLI, Op2->getType(), LibFunc::sqrt, LibFunc::sqrtf,
1161 LibFunc::sqrtl) &&
1162 hasUnaryFloatFn(TLI, Op2->getType(), LibFunc::fabs, LibFunc::fabsf,
1163 LibFunc::fabsl)) {
Davide Italianoc5cedd12015-11-18 23:21:32 +00001164
1165 // In -ffast-math, pow(x, 0.5) -> sqrt(x).
Sanjay Patel96475cb2015-12-31 16:16:58 +00001166 if (UnsafeFPMath)
Davide Italianoc5cedd12015-11-18 23:21:32 +00001167 return EmitUnaryFloatFnCall(Op1, TLI->getName(LibFunc::sqrt), B,
1168 Callee->getAttributes());
1169
Chris Bienemanad070d02014-09-17 20:55:46 +00001170 // Expand pow(x, 0.5) to (x == -infinity ? +infinity : fabs(sqrt(x))).
1171 // This is faster than calling pow, and still handles negative zero
1172 // and negative infinity correctly.
Chris Bienemanad070d02014-09-17 20:55:46 +00001173 // TODO: In finite-only mode, this could be just fabs(sqrt(x)).
1174 Value *Inf = ConstantFP::getInfinity(CI->getType());
1175 Value *NegInf = ConstantFP::getInfinity(CI->getType(), true);
1176 Value *Sqrt = EmitUnaryFloatFnCall(Op1, "sqrt", B, Callee->getAttributes());
1177 Value *FAbs =
1178 EmitUnaryFloatFnCall(Sqrt, "fabs", B, Callee->getAttributes());
1179 Value *FCmp = B.CreateFCmpOEQ(Op1, NegInf);
1180 Value *Sel = B.CreateSelect(FCmp, Inf, FAbs);
1181 return Sel;
Bob Wilsond8d92d92013-11-03 06:48:38 +00001182 }
1183
Chris Bienemanad070d02014-09-17 20:55:46 +00001184 if (Op2C->isExactlyValue(1.0)) // pow(x, 1.0) -> x
1185 return Op1;
1186 if (Op2C->isExactlyValue(2.0)) // pow(x, 2.0) -> x*x
1187 return B.CreateFMul(Op1, Op1, "pow2");
1188 if (Op2C->isExactlyValue(-1.0)) // pow(x, -1.0) -> 1.0/x
1189 return B.CreateFDiv(ConstantFP::get(CI->getType(), 1.0), Op1, "powrecip");
Weiming Zhao82130722015-12-04 22:00:47 +00001190
1191 // In -ffast-math, generate repeated fmul instead of generating pow(x, n).
Sanjay Patel96475cb2015-12-31 16:16:58 +00001192 if (UnsafeFPMath) {
Weiming Zhao82130722015-12-04 22:00:47 +00001193 APFloat V = abs(Op2C->getValueAPF());
1194 // We limit to a max of 7 fmul(s). Thus max exponent is 32.
1195 // This transformation applies to integer exponents only.
1196 if (V.compare(APFloat(V.getSemantics(), 32.0)) == APFloat::cmpGreaterThan ||
1197 !V.isInteger())
1198 return nullptr;
1199
1200 // We will memoize intermediate products of the Addition Chain.
1201 Value *InnerChain[33] = {nullptr};
1202 InnerChain[1] = Op1;
1203 InnerChain[2] = B.CreateFMul(Op1, Op1);
1204
1205 // We cannot readily convert a non-double type (like float) to a double.
1206 // So we first convert V to something which could be converted to double.
1207 bool ignored;
1208 V.convert(APFloat::IEEEdouble, APFloat::rmTowardZero, &ignored);
1209 Value *FMul = getPow(InnerChain, V.convertToDouble(), B);
1210 // For negative exponents simply compute the reciprocal.
1211 if (Op2C->isNegative())
1212 FMul = B.CreateFDiv(ConstantFP::get(CI->getType(), 1.0), FMul);
1213 return FMul;
1214 }
1215
Chris Bienemanad070d02014-09-17 20:55:46 +00001216 return nullptr;
1217}
Bob Wilsond8d92d92013-11-03 06:48:38 +00001218
Chris Bienemanad070d02014-09-17 20:55:46 +00001219Value *LibCallSimplifier::optimizeExp2(CallInst *CI, IRBuilder<> &B) {
1220 Function *Callee = CI->getCalledFunction();
1221 Function *Caller = CI->getParent()->getParent();
Chris Bienemanad070d02014-09-17 20:55:46 +00001222 Value *Ret = nullptr;
Davide Italianoa3458772015-11-05 19:18:23 +00001223 StringRef Name = Callee->getName();
1224 if (UnsafeFPShrink && Name == "exp2" && hasFloatVersion(Name))
Chris Bienemanad070d02014-09-17 20:55:46 +00001225 Ret = optimizeUnaryDoubleFP(CI, B, true);
Bob Wilsond8d92d92013-11-03 06:48:38 +00001226
Chris Bienemanad070d02014-09-17 20:55:46 +00001227 FunctionType *FT = Callee->getFunctionType();
1228 // Just make sure this has 1 argument of FP type, which matches the
1229 // result type.
1230 if (FT->getNumParams() != 1 || FT->getReturnType() != FT->getParamType(0) ||
1231 !FT->getParamType(0)->isFloatingPointTy())
1232 return Ret;
1233
1234 Value *Op = CI->getArgOperand(0);
1235 // Turn exp2(sitofp(x)) -> ldexp(1.0, sext(x)) if sizeof(x) <= 32
1236 // Turn exp2(uitofp(x)) -> ldexp(1.0, zext(x)) if sizeof(x) < 32
1237 LibFunc::Func LdExp = LibFunc::ldexpl;
1238 if (Op->getType()->isFloatTy())
1239 LdExp = LibFunc::ldexpf;
1240 else if (Op->getType()->isDoubleTy())
1241 LdExp = LibFunc::ldexp;
1242
1243 if (TLI->has(LdExp)) {
1244 Value *LdExpArg = nullptr;
1245 if (SIToFPInst *OpC = dyn_cast<SIToFPInst>(Op)) {
1246 if (OpC->getOperand(0)->getType()->getPrimitiveSizeInBits() <= 32)
1247 LdExpArg = B.CreateSExt(OpC->getOperand(0), B.getInt32Ty());
1248 } else if (UIToFPInst *OpC = dyn_cast<UIToFPInst>(Op)) {
1249 if (OpC->getOperand(0)->getType()->getPrimitiveSizeInBits() < 32)
1250 LdExpArg = B.CreateZExt(OpC->getOperand(0), B.getInt32Ty());
1251 }
1252
1253 if (LdExpArg) {
1254 Constant *One = ConstantFP::get(CI->getContext(), APFloat(1.0f));
1255 if (!Op->getType()->isFloatTy())
1256 One = ConstantExpr::getFPExtend(One, Op->getType());
1257
1258 Module *M = Caller->getParent();
1259 Value *Callee =
1260 M->getOrInsertFunction(TLI->getName(LdExp), Op->getType(),
Reid Kleckner971c3ea2014-11-13 22:55:19 +00001261 Op->getType(), B.getInt32Ty(), nullptr);
David Blaikieff6409d2015-05-18 22:13:54 +00001262 CallInst *CI = B.CreateCall(Callee, {One, LdExpArg});
Chris Bienemanad070d02014-09-17 20:55:46 +00001263 if (const Function *F = dyn_cast<Function>(Callee->stripPointerCasts()))
1264 CI->setCallingConv(F->getCallingConv());
1265
1266 return CI;
1267 }
1268 }
1269 return Ret;
1270}
1271
Sanjay Patel0ca42bb2014-10-14 20:43:11 +00001272Value *LibCallSimplifier::optimizeFabs(CallInst *CI, IRBuilder<> &B) {
1273 Function *Callee = CI->getCalledFunction();
Sanjay Patel0ca42bb2014-10-14 20:43:11 +00001274 Value *Ret = nullptr;
Davide Italianoa3458772015-11-05 19:18:23 +00001275 StringRef Name = Callee->getName();
1276 if (Name == "fabs" && hasFloatVersion(Name))
Sanjay Patel0ca42bb2014-10-14 20:43:11 +00001277 Ret = optimizeUnaryDoubleFP(CI, B, false);
Sanjay Patel0ca42bb2014-10-14 20:43:11 +00001278
1279 FunctionType *FT = Callee->getFunctionType();
1280 // Make sure this has 1 argument of FP type which matches the result type.
1281 if (FT->getNumParams() != 1 || FT->getReturnType() != FT->getParamType(0) ||
1282 !FT->getParamType(0)->isFloatingPointTy())
1283 return Ret;
1284
1285 Value *Op = CI->getArgOperand(0);
1286 if (Instruction *I = dyn_cast<Instruction>(Op)) {
1287 // Fold fabs(x * x) -> x * x; any squared FP value must already be positive.
1288 if (I->getOpcode() == Instruction::FMul)
1289 if (I->getOperand(0) == I->getOperand(1))
1290 return Op;
1291 }
1292 return Ret;
1293}
1294
Sanjay Patel57fd1dc2015-08-16 20:18:19 +00001295Value *LibCallSimplifier::optimizeFMinFMax(CallInst *CI, IRBuilder<> &B) {
1296 // If we can shrink the call to a float function rather than a double
1297 // function, do that first.
1298 Function *Callee = CI->getCalledFunction();
Davide Italianoa3458772015-11-05 19:18:23 +00001299 StringRef Name = Callee->getName();
1300 if ((Name == "fmin" && hasFloatVersion(Name)) ||
1301 (Name == "fmax" && hasFloatVersion(Name))) {
Sanjay Patel57fd1dc2015-08-16 20:18:19 +00001302 Value *Ret = optimizeBinaryDoubleFP(CI, B);
1303 if (Ret)
1304 return Ret;
1305 }
1306
1307 // Make sure this has 2 arguments of FP type which match the result type.
1308 FunctionType *FT = Callee->getFunctionType();
1309 if (FT->getNumParams() != 2 || FT->getReturnType() != FT->getParamType(0) ||
1310 FT->getParamType(0) != FT->getParamType(1) ||
1311 !FT->getParamType(0)->isFloatingPointTy())
1312 return nullptr;
1313
Benjamin Kramerbb70d752015-08-16 21:16:37 +00001314 IRBuilder<>::FastMathFlagGuard Guard(B);
Sanjay Patel57fd1dc2015-08-16 20:18:19 +00001315 FastMathFlags FMF;
1316 Function *F = CI->getParent()->getParent();
Davide Italianoa904e522015-10-29 02:58:44 +00001317 if (canUseUnsafeFPMath(F)) {
Sanjay Patel57fd1dc2015-08-16 20:18:19 +00001318 // Unsafe algebra sets all fast-math-flags to true.
1319 FMF.setUnsafeAlgebra();
1320 } else {
1321 // At a minimum, no-nans-fp-math must be true.
Davide Italianoa904e522015-10-29 02:58:44 +00001322 Attribute Attr = F->getFnAttribute("no-nans-fp-math");
Sanjay Patel57fd1dc2015-08-16 20:18:19 +00001323 if (Attr.getValueAsString() != "true")
1324 return nullptr;
1325 // No-signed-zeros is implied by the definitions of fmax/fmin themselves:
1326 // "Ideally, fmax would be sensitive to the sign of zero, for example
NAKAMURA Takumi0d725392015-09-07 00:26:54 +00001327 // fmax(-0. 0, +0. 0) would return +0; however, implementation in software
Sanjay Patel57fd1dc2015-08-16 20:18:19 +00001328 // might be impractical."
1329 FMF.setNoSignedZeros();
1330 FMF.setNoNaNs();
1331 }
1332 B.SetFastMathFlags(FMF);
1333
1334 // We have a relaxed floating-point environment. We can ignore NaN-handling
1335 // and transform to a compare and select. We do not have to consider errno or
1336 // exceptions, because fmin/fmax do not have those.
1337 Value *Op0 = CI->getArgOperand(0);
1338 Value *Op1 = CI->getArgOperand(1);
1339 Value *Cmp = Callee->getName().startswith("fmin") ?
1340 B.CreateFCmpOLT(Op0, Op1) : B.CreateFCmpOGT(Op0, Op1);
1341 return B.CreateSelect(Cmp, Op0, Op1);
1342}
1343
Davide Italianob8b71332015-11-29 20:58:04 +00001344Value *LibCallSimplifier::optimizeLog(CallInst *CI, IRBuilder<> &B) {
1345 Function *Callee = CI->getCalledFunction();
1346 Value *Ret = nullptr;
1347 StringRef Name = Callee->getName();
1348 if (UnsafeFPShrink && hasFloatVersion(Name))
1349 Ret = optimizeUnaryDoubleFP(CI, B, true);
1350 FunctionType *FT = Callee->getFunctionType();
1351
1352 // Just make sure this has 1 argument of FP type, which matches the
1353 // result type.
1354 if (FT->getNumParams() != 1 || FT->getReturnType() != FT->getParamType(0) ||
1355 !FT->getParamType(0)->isFloatingPointTy())
1356 return Ret;
1357
1358 if (!canUseUnsafeFPMath(CI->getParent()->getParent()))
1359 return Ret;
1360 Value *Op1 = CI->getArgOperand(0);
1361 auto *OpC = dyn_cast<CallInst>(Op1);
1362 if (!OpC)
1363 return Ret;
1364
1365 // log(pow(x,y)) -> y*log(x)
1366 // This is only applicable to log, log2, log10.
1367 if (Name != "log" && Name != "log2" && Name != "log10")
1368 return Ret;
1369
1370 IRBuilder<>::FastMathFlagGuard Guard(B);
1371 FastMathFlags FMF;
1372 FMF.setUnsafeAlgebra();
1373 B.SetFastMathFlags(FMF);
1374
1375 LibFunc::Func Func;
1376 Function *F = OpC->getCalledFunction();
Davide Italiano0b14f292015-11-29 21:58:56 +00001377 if (F && ((TLI->getLibFunc(F->getName(), Func) && TLI->has(Func) &&
1378 Func == LibFunc::pow) || F->getIntrinsicID() == Intrinsic::pow))
Davide Italianob8b71332015-11-29 20:58:04 +00001379 return B.CreateFMul(OpC->getArgOperand(1),
1380 EmitUnaryFloatFnCall(OpC->getOperand(0), Callee->getName(), B,
1381 Callee->getAttributes()), "mul");
Davide Italiano1aeed6a2015-11-30 19:36:35 +00001382
1383 // log(exp2(y)) -> y*log(2)
1384 if (F && Name == "log" && TLI->getLibFunc(F->getName(), Func) &&
1385 TLI->has(Func) && Func == LibFunc::exp2)
1386 return B.CreateFMul(
1387 OpC->getArgOperand(0),
1388 EmitUnaryFloatFnCall(ConstantFP::get(CI->getType(), 2.0),
1389 Callee->getName(), B, Callee->getAttributes()),
1390 "logmul");
Davide Italianob8b71332015-11-29 20:58:04 +00001391 return Ret;
1392}
1393
Sanjay Patelc699a612014-10-16 18:48:17 +00001394Value *LibCallSimplifier::optimizeSqrt(CallInst *CI, IRBuilder<> &B) {
1395 Function *Callee = CI->getCalledFunction();
1396
1397 Value *Ret = nullptr;
Sanjay Patel848309d2014-10-23 21:52:45 +00001398 if (TLI->has(LibFunc::sqrtf) && (Callee->getName() == "sqrt" ||
1399 Callee->getIntrinsicID() == Intrinsic::sqrt))
Sanjay Patelc699a612014-10-16 18:48:17 +00001400 Ret = optimizeUnaryDoubleFP(CI, B, true);
Davide Italianoa904e522015-10-29 02:58:44 +00001401 if (!canUseUnsafeFPMath(CI->getParent()->getParent()))
1402 return Ret;
Sanjay Patelc699a612014-10-16 18:48:17 +00001403
Sanjay Patelc699a612014-10-16 18:48:17 +00001404 Value *Op = CI->getArgOperand(0);
1405 if (Instruction *I = dyn_cast<Instruction>(Op)) {
1406 if (I->getOpcode() == Instruction::FMul && I->hasUnsafeAlgebra()) {
1407 // We're looking for a repeated factor in a multiplication tree,
1408 // so we can do this fold: sqrt(x * x) -> fabs(x);
1409 // or this fold: sqrt(x * x * y) -> fabs(x) * sqrt(y).
1410 Value *Op0 = I->getOperand(0);
1411 Value *Op1 = I->getOperand(1);
1412 Value *RepeatOp = nullptr;
1413 Value *OtherOp = nullptr;
1414 if (Op0 == Op1) {
1415 // Simple match: the operands of the multiply are identical.
1416 RepeatOp = Op0;
1417 } else {
1418 // Look for a more complicated pattern: one of the operands is itself
1419 // a multiply, so search for a common factor in that multiply.
1420 // Note: We don't bother looking any deeper than this first level or for
1421 // variations of this pattern because instcombine's visitFMUL and/or the
1422 // reassociation pass should give us this form.
1423 Value *OtherMul0, *OtherMul1;
1424 if (match(Op0, m_FMul(m_Value(OtherMul0), m_Value(OtherMul1)))) {
1425 // Pattern: sqrt((x * y) * z)
1426 if (OtherMul0 == OtherMul1) {
1427 // Matched: sqrt((x * x) * z)
1428 RepeatOp = OtherMul0;
1429 OtherOp = Op1;
1430 }
1431 }
1432 }
1433 if (RepeatOp) {
1434 // Fast math flags for any created instructions should match the sqrt
1435 // and multiply.
1436 // FIXME: We're not checking the sqrt because it doesn't have
1437 // fast-math-flags (see earlier comment).
Benjamin Kramerbb70d752015-08-16 21:16:37 +00001438 IRBuilder<>::FastMathFlagGuard Guard(B);
Sanjay Patelc699a612014-10-16 18:48:17 +00001439 B.SetFastMathFlags(I->getFastMathFlags());
1440 // If we found a repeated factor, hoist it out of the square root and
1441 // replace it with the fabs of that factor.
1442 Module *M = Callee->getParent();
1443 Type *ArgType = Op->getType();
1444 Value *Fabs = Intrinsic::getDeclaration(M, Intrinsic::fabs, ArgType);
1445 Value *FabsCall = B.CreateCall(Fabs, RepeatOp, "fabs");
1446 if (OtherOp) {
1447 // If we found a non-repeated factor, we still need to get its square
1448 // root. We then multiply that by the value that was simplified out
1449 // of the square root calculation.
1450 Value *Sqrt = Intrinsic::getDeclaration(M, Intrinsic::sqrt, ArgType);
1451 Value *SqrtCall = B.CreateCall(Sqrt, OtherOp, "sqrt");
1452 return B.CreateFMul(FabsCall, SqrtCall);
1453 }
1454 return FabsCall;
1455 }
1456 }
1457 }
1458 return Ret;
1459}
1460
Davide Italiano51507d22015-11-04 23:36:56 +00001461Value *LibCallSimplifier::optimizeTan(CallInst *CI, IRBuilder<> &B) {
1462 Function *Callee = CI->getCalledFunction();
1463 Value *Ret = nullptr;
Davide Italianoa3458772015-11-05 19:18:23 +00001464 StringRef Name = Callee->getName();
1465 if (UnsafeFPShrink && Name == "tan" && hasFloatVersion(Name))
Davide Italiano51507d22015-11-04 23:36:56 +00001466 Ret = optimizeUnaryDoubleFP(CI, B, true);
1467 FunctionType *FT = Callee->getFunctionType();
1468
1469 // Just make sure this has 1 argument of FP type, which matches the
1470 // result type.
1471 if (FT->getNumParams() != 1 || FT->getReturnType() != FT->getParamType(0) ||
1472 !FT->getParamType(0)->isFloatingPointTy())
1473 return Ret;
1474
1475 if (!canUseUnsafeFPMath(CI->getParent()->getParent()))
1476 return Ret;
1477 Value *Op1 = CI->getArgOperand(0);
1478 auto *OpC = dyn_cast<CallInst>(Op1);
1479 if (!OpC)
1480 return Ret;
1481
1482 // tan(atan(x)) -> x
1483 // tanf(atanf(x)) -> x
1484 // tanl(atanl(x)) -> x
1485 LibFunc::Func Func;
1486 Function *F = OpC->getCalledFunction();
Benjamin Kramerfb419e72015-11-26 09:51:17 +00001487 if (F && TLI->getLibFunc(F->getName(), Func) && TLI->has(Func) &&
Davide Italiano51507d22015-11-04 23:36:56 +00001488 ((Func == LibFunc::atan && Callee->getName() == "tan") ||
1489 (Func == LibFunc::atanf && Callee->getName() == "tanf") ||
1490 (Func == LibFunc::atanl && Callee->getName() == "tanl")))
1491 Ret = OpC->getArgOperand(0);
1492 return Ret;
1493}
1494
Chris Bienemanad070d02014-09-17 20:55:46 +00001495static bool isTrigLibCall(CallInst *CI);
1496static void insertSinCosCall(IRBuilder<> &B, Function *OrigCallee, Value *Arg,
1497 bool UseFloat, Value *&Sin, Value *&Cos,
1498 Value *&SinCos);
1499
1500Value *LibCallSimplifier::optimizeSinCosPi(CallInst *CI, IRBuilder<> &B) {
1501
1502 // Make sure the prototype is as expected, otherwise the rest of the
1503 // function is probably invalid and likely to abort.
1504 if (!isTrigLibCall(CI))
1505 return nullptr;
1506
1507 Value *Arg = CI->getArgOperand(0);
1508 SmallVector<CallInst *, 1> SinCalls;
1509 SmallVector<CallInst *, 1> CosCalls;
1510 SmallVector<CallInst *, 1> SinCosCalls;
1511
1512 bool IsFloat = Arg->getType()->isFloatTy();
1513
1514 // Look for all compatible sinpi, cospi and sincospi calls with the same
1515 // argument. If there are enough (in some sense) we can make the
1516 // substitution.
1517 for (User *U : Arg->users())
1518 classifyArgUse(U, CI->getParent(), IsFloat, SinCalls, CosCalls,
1519 SinCosCalls);
1520
1521 // It's only worthwhile if both sinpi and cospi are actually used.
1522 if (SinCosCalls.empty() && (SinCalls.empty() || CosCalls.empty()))
1523 return nullptr;
1524
1525 Value *Sin, *Cos, *SinCos;
1526 insertSinCosCall(B, CI->getCalledFunction(), Arg, IsFloat, Sin, Cos, SinCos);
1527
1528 replaceTrigInsts(SinCalls, Sin);
1529 replaceTrigInsts(CosCalls, Cos);
1530 replaceTrigInsts(SinCosCalls, SinCos);
1531
1532 return nullptr;
1533}
1534
1535static bool isTrigLibCall(CallInst *CI) {
1536 Function *Callee = CI->getCalledFunction();
1537 FunctionType *FT = Callee->getFunctionType();
1538
1539 // We can only hope to do anything useful if we can ignore things like errno
1540 // and floating-point exceptions.
1541 bool AttributesSafe =
1542 CI->hasFnAttr(Attribute::NoUnwind) && CI->hasFnAttr(Attribute::ReadNone);
1543
1544 // Other than that we need float(float) or double(double)
1545 return AttributesSafe && FT->getNumParams() == 1 &&
1546 FT->getReturnType() == FT->getParamType(0) &&
1547 (FT->getParamType(0)->isFloatTy() ||
1548 FT->getParamType(0)->isDoubleTy());
1549}
1550
1551void
1552LibCallSimplifier::classifyArgUse(Value *Val, BasicBlock *BB, bool IsFloat,
1553 SmallVectorImpl<CallInst *> &SinCalls,
1554 SmallVectorImpl<CallInst *> &CosCalls,
1555 SmallVectorImpl<CallInst *> &SinCosCalls) {
1556 CallInst *CI = dyn_cast<CallInst>(Val);
1557
1558 if (!CI)
1559 return;
1560
1561 Function *Callee = CI->getCalledFunction();
Chris Bienemanad070d02014-09-17 20:55:46 +00001562 LibFunc::Func Func;
Benjamin Kramer89766e52015-11-28 21:43:12 +00001563 if (!Callee || !TLI->getLibFunc(Callee->getName(), Func) || !TLI->has(Func) ||
1564 !isTrigLibCall(CI))
Chris Bienemanad070d02014-09-17 20:55:46 +00001565 return;
1566
1567 if (IsFloat) {
1568 if (Func == LibFunc::sinpif)
1569 SinCalls.push_back(CI);
1570 else if (Func == LibFunc::cospif)
1571 CosCalls.push_back(CI);
1572 else if (Func == LibFunc::sincospif_stret)
1573 SinCosCalls.push_back(CI);
1574 } else {
1575 if (Func == LibFunc::sinpi)
1576 SinCalls.push_back(CI);
1577 else if (Func == LibFunc::cospi)
1578 CosCalls.push_back(CI);
1579 else if (Func == LibFunc::sincospi_stret)
1580 SinCosCalls.push_back(CI);
1581 }
1582}
1583
1584void LibCallSimplifier::replaceTrigInsts(SmallVectorImpl<CallInst *> &Calls,
1585 Value *Res) {
Davide Italianoc6926882015-10-27 04:17:51 +00001586 for (CallInst *C : Calls)
1587 replaceAllUsesWith(C, Res);
Chris Bienemanad070d02014-09-17 20:55:46 +00001588}
1589
1590void insertSinCosCall(IRBuilder<> &B, Function *OrigCallee, Value *Arg,
1591 bool UseFloat, Value *&Sin, Value *&Cos, Value *&SinCos) {
1592 Type *ArgTy = Arg->getType();
1593 Type *ResTy;
1594 StringRef Name;
1595
1596 Triple T(OrigCallee->getParent()->getTargetTriple());
1597 if (UseFloat) {
1598 Name = "__sincospif_stret";
1599
1600 assert(T.getArch() != Triple::x86 && "x86 messy and unsupported for now");
1601 // x86_64 can't use {float, float} since that would be returned in both
1602 // xmm0 and xmm1, which isn't what a real struct would do.
1603 ResTy = T.getArch() == Triple::x86_64
1604 ? static_cast<Type *>(VectorType::get(ArgTy, 2))
Reid Kleckner971c3ea2014-11-13 22:55:19 +00001605 : static_cast<Type *>(StructType::get(ArgTy, ArgTy, nullptr));
Chris Bienemanad070d02014-09-17 20:55:46 +00001606 } else {
1607 Name = "__sincospi_stret";
Reid Kleckner971c3ea2014-11-13 22:55:19 +00001608 ResTy = StructType::get(ArgTy, ArgTy, nullptr);
Chris Bienemanad070d02014-09-17 20:55:46 +00001609 }
1610
1611 Module *M = OrigCallee->getParent();
1612 Value *Callee = M->getOrInsertFunction(Name, OrigCallee->getAttributes(),
Reid Kleckner971c3ea2014-11-13 22:55:19 +00001613 ResTy, ArgTy, nullptr);
Chris Bienemanad070d02014-09-17 20:55:46 +00001614
1615 if (Instruction *ArgInst = dyn_cast<Instruction>(Arg)) {
1616 // If the argument is an instruction, it must dominate all uses so put our
1617 // sincos call there.
Duncan P. N. Exon Smith5b4c8372015-10-13 02:39:05 +00001618 B.SetInsertPoint(ArgInst->getParent(), ++ArgInst->getIterator());
Chris Bienemanad070d02014-09-17 20:55:46 +00001619 } else {
1620 // Otherwise (e.g. for a constant) the beginning of the function is as
1621 // good a place as any.
1622 BasicBlock &EntryBB = B.GetInsertBlock()->getParent()->getEntryBlock();
1623 B.SetInsertPoint(&EntryBB, EntryBB.begin());
1624 }
1625
1626 SinCos = B.CreateCall(Callee, Arg, "sincospi");
1627
1628 if (SinCos->getType()->isStructTy()) {
1629 Sin = B.CreateExtractValue(SinCos, 0, "sinpi");
1630 Cos = B.CreateExtractValue(SinCos, 1, "cospi");
1631 } else {
1632 Sin = B.CreateExtractElement(SinCos, ConstantInt::get(B.getInt32Ty(), 0),
1633 "sinpi");
1634 Cos = B.CreateExtractElement(SinCos, ConstantInt::get(B.getInt32Ty(), 1),
1635 "cospi");
1636 }
1637}
Bob Wilsond8d92d92013-11-03 06:48:38 +00001638
Meador Inge7415f842012-11-25 20:45:27 +00001639//===----------------------------------------------------------------------===//
1640// Integer Library Call Optimizations
1641//===----------------------------------------------------------------------===//
1642
Davide Italiano396f3ee2015-10-31 23:17:45 +00001643static bool checkIntUnaryReturnAndParam(Function *Callee) {
1644 FunctionType *FT = Callee->getFunctionType();
Davide Italiano5cdf9152015-11-01 00:09:16 +00001645 return FT->getNumParams() == 1 && FT->getReturnType()->isIntegerTy(32) &&
1646 FT->getParamType(0)->isIntegerTy();
Davide Italiano396f3ee2015-10-31 23:17:45 +00001647}
1648
Chris Bienemanad070d02014-09-17 20:55:46 +00001649Value *LibCallSimplifier::optimizeFFS(CallInst *CI, IRBuilder<> &B) {
1650 Function *Callee = CI->getCalledFunction();
Davide Italiano396f3ee2015-10-31 23:17:45 +00001651 if (!checkIntUnaryReturnAndParam(Callee))
Chris Bienemanad070d02014-09-17 20:55:46 +00001652 return nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +00001653 Value *Op = CI->getArgOperand(0);
Meador Inge7415f842012-11-25 20:45:27 +00001654
Chris Bienemanad070d02014-09-17 20:55:46 +00001655 // Constant fold.
1656 if (ConstantInt *CI = dyn_cast<ConstantInt>(Op)) {
1657 if (CI->isZero()) // ffs(0) -> 0.
1658 return B.getInt32(0);
1659 // ffs(c) -> cttz(c)+1
1660 return B.getInt32(CI->getValue().countTrailingZeros() + 1);
Meador Inge7415f842012-11-25 20:45:27 +00001661 }
Meador Inge7415f842012-11-25 20:45:27 +00001662
Chris Bienemanad070d02014-09-17 20:55:46 +00001663 // ffs(x) -> x != 0 ? (i32)llvm.cttz(x)+1 : 0
1664 Type *ArgType = Op->getType();
1665 Value *F =
1666 Intrinsic::getDeclaration(Callee->getParent(), Intrinsic::cttz, ArgType);
Davide Italianoa1953862015-08-13 20:34:26 +00001667 Value *V = B.CreateCall(F, {Op, B.getTrue()}, "cttz");
Chris Bienemanad070d02014-09-17 20:55:46 +00001668 V = B.CreateAdd(V, ConstantInt::get(V->getType(), 1));
1669 V = B.CreateIntCast(V, B.getInt32Ty(), false);
Meador Ingea0b6d872012-11-26 00:24:07 +00001670
Chris Bienemanad070d02014-09-17 20:55:46 +00001671 Value *Cond = B.CreateICmpNE(Op, Constant::getNullValue(ArgType));
1672 return B.CreateSelect(Cond, V, B.getInt32(0));
1673}
Meador Ingea0b6d872012-11-26 00:24:07 +00001674
Chris Bienemanad070d02014-09-17 20:55:46 +00001675Value *LibCallSimplifier::optimizeAbs(CallInst *CI, IRBuilder<> &B) {
1676 Function *Callee = CI->getCalledFunction();
1677 FunctionType *FT = Callee->getFunctionType();
1678 // We require integer(integer) where the types agree.
1679 if (FT->getNumParams() != 1 || !FT->getReturnType()->isIntegerTy() ||
1680 FT->getParamType(0) != FT->getReturnType())
1681 return nullptr;
Meador Inge9a59ab62012-11-26 02:31:59 +00001682
Chris Bienemanad070d02014-09-17 20:55:46 +00001683 // abs(x) -> x >s -1 ? x : -x
1684 Value *Op = CI->getArgOperand(0);
1685 Value *Pos =
1686 B.CreateICmpSGT(Op, Constant::getAllOnesValue(Op->getType()), "ispos");
1687 Value *Neg = B.CreateNeg(Op, "neg");
1688 return B.CreateSelect(Pos, Op, Neg);
1689}
Meador Inge9a59ab62012-11-26 02:31:59 +00001690
Chris Bienemanad070d02014-09-17 20:55:46 +00001691Value *LibCallSimplifier::optimizeIsDigit(CallInst *CI, IRBuilder<> &B) {
Davide Italiano396f3ee2015-10-31 23:17:45 +00001692 if (!checkIntUnaryReturnAndParam(CI->getCalledFunction()))
Chris Bienemanad070d02014-09-17 20:55:46 +00001693 return nullptr;
Meador Ingea62a39e2012-11-26 03:10:07 +00001694
Chris Bienemanad070d02014-09-17 20:55:46 +00001695 // isdigit(c) -> (c-'0') <u 10
1696 Value *Op = CI->getArgOperand(0);
1697 Op = B.CreateSub(Op, B.getInt32('0'), "isdigittmp");
1698 Op = B.CreateICmpULT(Op, B.getInt32(10), "isdigit");
1699 return B.CreateZExt(Op, CI->getType());
1700}
Meador Ingea62a39e2012-11-26 03:10:07 +00001701
Chris Bienemanad070d02014-09-17 20:55:46 +00001702Value *LibCallSimplifier::optimizeIsAscii(CallInst *CI, IRBuilder<> &B) {
Davide Italiano396f3ee2015-10-31 23:17:45 +00001703 if (!checkIntUnaryReturnAndParam(CI->getCalledFunction()))
Chris Bienemanad070d02014-09-17 20:55:46 +00001704 return nullptr;
Meador Inge604937d2012-11-26 03:38:52 +00001705
Chris Bienemanad070d02014-09-17 20:55:46 +00001706 // isascii(c) -> c <u 128
1707 Value *Op = CI->getArgOperand(0);
1708 Op = B.CreateICmpULT(Op, B.getInt32(128), "isascii");
1709 return B.CreateZExt(Op, CI->getType());
1710}
1711
1712Value *LibCallSimplifier::optimizeToAscii(CallInst *CI, IRBuilder<> &B) {
Davide Italiano396f3ee2015-10-31 23:17:45 +00001713 if (!checkIntUnaryReturnAndParam(CI->getCalledFunction()))
Chris Bienemanad070d02014-09-17 20:55:46 +00001714 return nullptr;
1715
1716 // toascii(c) -> c & 0x7f
1717 return B.CreateAnd(CI->getArgOperand(0),
1718 ConstantInt::get(CI->getType(), 0x7F));
1719}
Meador Inge604937d2012-11-26 03:38:52 +00001720
Meador Inge08ca1152012-11-26 20:37:20 +00001721//===----------------------------------------------------------------------===//
1722// Formatting and IO Library Call Optimizations
1723//===----------------------------------------------------------------------===//
1724
Chris Bienemanad070d02014-09-17 20:55:46 +00001725static bool isReportingError(Function *Callee, CallInst *CI, int StreamArg);
Hal Finkel66cd3f12013-11-17 02:06:35 +00001726
Chris Bienemanad070d02014-09-17 20:55:46 +00001727Value *LibCallSimplifier::optimizeErrorReporting(CallInst *CI, IRBuilder<> &B,
1728 int StreamArg) {
1729 // Error reporting calls should be cold, mark them as such.
1730 // This applies even to non-builtin calls: it is only a hint and applies to
1731 // functions that the frontend might not understand as builtins.
Hal Finkel66cd3f12013-11-17 02:06:35 +00001732
Chris Bienemanad070d02014-09-17 20:55:46 +00001733 // This heuristic was suggested in:
1734 // Improving Static Branch Prediction in a Compiler
1735 // Brian L. Deitrich, Ben-Chung Cheng, Wen-mei W. Hwu
1736 // Proceedings of PACT'98, Oct. 1998, IEEE
1737 Function *Callee = CI->getCalledFunction();
Hal Finkel66cd3f12013-11-17 02:06:35 +00001738
Chris Bienemanad070d02014-09-17 20:55:46 +00001739 if (!CI->hasFnAttr(Attribute::Cold) &&
1740 isReportingError(Callee, CI, StreamArg)) {
1741 CI->addAttribute(AttributeSet::FunctionIndex, Attribute::Cold);
1742 }
Hal Finkel66cd3f12013-11-17 02:06:35 +00001743
Chris Bienemanad070d02014-09-17 20:55:46 +00001744 return nullptr;
1745}
1746
1747static bool isReportingError(Function *Callee, CallInst *CI, int StreamArg) {
Davide Italianoe84d4da2015-11-02 22:33:26 +00001748 if (!ColdErrorCalls || !Callee || !Callee->isDeclaration())
Chris Bienemanad070d02014-09-17 20:55:46 +00001749 return false;
1750
1751 if (StreamArg < 0)
1752 return true;
1753
1754 // These functions might be considered cold, but only if their stream
1755 // argument is stderr.
1756
1757 if (StreamArg >= (int)CI->getNumArgOperands())
1758 return false;
1759 LoadInst *LI = dyn_cast<LoadInst>(CI->getArgOperand(StreamArg));
1760 if (!LI)
1761 return false;
1762 GlobalVariable *GV = dyn_cast<GlobalVariable>(LI->getPointerOperand());
1763 if (!GV || !GV->isDeclaration())
1764 return false;
1765 return GV->getName() == "stderr";
1766}
1767
1768Value *LibCallSimplifier::optimizePrintFString(CallInst *CI, IRBuilder<> &B) {
1769 // Check for a fixed format string.
1770 StringRef FormatStr;
1771 if (!getConstantStringInfo(CI->getArgOperand(0), FormatStr))
Craig Topperf40110f2014-04-25 05:29:35 +00001772 return nullptr;
Hal Finkel66cd3f12013-11-17 02:06:35 +00001773
Chris Bienemanad070d02014-09-17 20:55:46 +00001774 // Empty format string -> noop.
1775 if (FormatStr.empty()) // Tolerate printf's declared void.
1776 return CI->use_empty() ? (Value *)CI : ConstantInt::get(CI->getType(), 0);
Hal Finkel66cd3f12013-11-17 02:06:35 +00001777
Chris Bienemanad070d02014-09-17 20:55:46 +00001778 // Do not do any of the following transformations if the printf return value
1779 // is used, in general the printf return value is not compatible with either
1780 // putchar() or puts().
1781 if (!CI->use_empty())
Craig Topperf40110f2014-04-25 05:29:35 +00001782 return nullptr;
Chris Bienemanad070d02014-09-17 20:55:46 +00001783
1784 // printf("x") -> putchar('x'), even for '%'.
1785 if (FormatStr.size() == 1) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001786 Value *Res = EmitPutChar(B.getInt32(FormatStr[0]), B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +00001787 if (CI->use_empty() || !Res)
1788 return Res;
1789 return B.CreateIntCast(Res, CI->getType(), true);
Meador Inge08ca1152012-11-26 20:37:20 +00001790 }
1791
Chris Bienemanad070d02014-09-17 20:55:46 +00001792 // printf("foo\n") --> puts("foo")
1793 if (FormatStr[FormatStr.size() - 1] == '\n' &&
1794 FormatStr.find('%') == StringRef::npos) { // No format characters.
1795 // Create a string literal with no \n on it. We expect the constant merge
1796 // pass to be run after this pass, to merge duplicate strings.
1797 FormatStr = FormatStr.drop_back();
1798 Value *GV = B.CreateGlobalString(FormatStr, "str");
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001799 Value *NewCI = EmitPutS(GV, B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +00001800 return (CI->use_empty() || !NewCI)
1801 ? NewCI
1802 : ConstantInt::get(CI->getType(), FormatStr.size() + 1);
1803 }
Meador Inge08ca1152012-11-26 20:37:20 +00001804
Chris Bienemanad070d02014-09-17 20:55:46 +00001805 // Optimize specific format strings.
1806 // printf("%c", chr) --> putchar(chr)
1807 if (FormatStr == "%c" && CI->getNumArgOperands() > 1 &&
1808 CI->getArgOperand(1)->getType()->isIntegerTy()) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001809 Value *Res = EmitPutChar(CI->getArgOperand(1), B, TLI);
Meador Inge08ca1152012-11-26 20:37:20 +00001810
Chris Bienemanad070d02014-09-17 20:55:46 +00001811 if (CI->use_empty() || !Res)
1812 return Res;
1813 return B.CreateIntCast(Res, CI->getType(), true);
1814 }
1815
1816 // printf("%s\n", str) --> puts(str)
1817 if (FormatStr == "%s\n" && CI->getNumArgOperands() > 1 &&
1818 CI->getArgOperand(1)->getType()->isPointerTy()) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001819 return EmitPutS(CI->getArgOperand(1), B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +00001820 }
1821 return nullptr;
1822}
1823
1824Value *LibCallSimplifier::optimizePrintF(CallInst *CI, IRBuilder<> &B) {
1825
1826 Function *Callee = CI->getCalledFunction();
1827 // Require one fixed pointer argument and an integer/void result.
1828 FunctionType *FT = Callee->getFunctionType();
1829 if (FT->getNumParams() < 1 || !FT->getParamType(0)->isPointerTy() ||
1830 !(FT->getReturnType()->isIntegerTy() || FT->getReturnType()->isVoidTy()))
1831 return nullptr;
1832
1833 if (Value *V = optimizePrintFString(CI, B)) {
1834 return V;
1835 }
1836
1837 // printf(format, ...) -> iprintf(format, ...) if no floating point
1838 // arguments.
1839 if (TLI->has(LibFunc::iprintf) && !callHasFloatingPointArgument(CI)) {
1840 Module *M = B.GetInsertBlock()->getParent()->getParent();
1841 Constant *IPrintFFn =
Meador Inge08ca1152012-11-26 20:37:20 +00001842 M->getOrInsertFunction("iprintf", FT, Callee->getAttributes());
Chris Bienemanad070d02014-09-17 20:55:46 +00001843 CallInst *New = cast<CallInst>(CI->clone());
1844 New->setCalledFunction(IPrintFFn);
1845 B.Insert(New);
1846 return New;
Meador Inge08ca1152012-11-26 20:37:20 +00001847 }
Chris Bienemanad070d02014-09-17 20:55:46 +00001848 return nullptr;
1849}
Meador Inge08ca1152012-11-26 20:37:20 +00001850
Chris Bienemanad070d02014-09-17 20:55:46 +00001851Value *LibCallSimplifier::optimizeSPrintFString(CallInst *CI, IRBuilder<> &B) {
1852 // Check for a fixed format string.
1853 StringRef FormatStr;
1854 if (!getConstantStringInfo(CI->getArgOperand(1), FormatStr))
Craig Topperf40110f2014-04-25 05:29:35 +00001855 return nullptr;
Meador Inge25c9b3b2012-11-27 05:57:54 +00001856
Chris Bienemanad070d02014-09-17 20:55:46 +00001857 // If we just have a format string (nothing else crazy) transform it.
1858 if (CI->getNumArgOperands() == 2) {
1859 // Make sure there's no % in the constant array. We could try to handle
1860 // %% -> % in the future if we cared.
1861 for (unsigned i = 0, e = FormatStr.size(); i != e; ++i)
1862 if (FormatStr[i] == '%')
1863 return nullptr; // we found a format specifier, bail out.
Hal Finkel66cd3f12013-11-17 02:06:35 +00001864
Chris Bienemanad070d02014-09-17 20:55:46 +00001865 // sprintf(str, fmt) -> llvm.memcpy(str, fmt, strlen(fmt)+1, 1)
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001866 B.CreateMemCpy(CI->getArgOperand(0), CI->getArgOperand(1),
1867 ConstantInt::get(DL.getIntPtrType(CI->getContext()),
1868 FormatStr.size() + 1),
Pete Cooper67cf9a72015-11-19 05:56:52 +00001869 1); // Copy the null byte.
Chris Bienemanad070d02014-09-17 20:55:46 +00001870 return ConstantInt::get(CI->getType(), FormatStr.size());
Meador Ingef8e72502012-11-29 15:45:43 +00001871 }
Meador Ingef8e72502012-11-29 15:45:43 +00001872
Chris Bienemanad070d02014-09-17 20:55:46 +00001873 // The remaining optimizations require the format string to be "%s" or "%c"
1874 // and have an extra operand.
1875 if (FormatStr.size() != 2 || FormatStr[0] != '%' ||
1876 CI->getNumArgOperands() < 3)
Craig Topperf40110f2014-04-25 05:29:35 +00001877 return nullptr;
Meador Inge75798bb2012-11-29 19:15:17 +00001878
Chris Bienemanad070d02014-09-17 20:55:46 +00001879 // Decode the second character of the format string.
1880 if (FormatStr[1] == 'c') {
1881 // sprintf(dst, "%c", chr) --> *(i8*)dst = chr; *((i8*)dst+1) = 0
1882 if (!CI->getArgOperand(2)->getType()->isIntegerTy())
1883 return nullptr;
1884 Value *V = B.CreateTrunc(CI->getArgOperand(2), B.getInt8Ty(), "char");
1885 Value *Ptr = CastToCStr(CI->getArgOperand(0), B);
1886 B.CreateStore(V, Ptr);
David Blaikie3909da72015-03-30 20:42:56 +00001887 Ptr = B.CreateGEP(B.getInt8Ty(), Ptr, B.getInt32(1), "nul");
Chris Bienemanad070d02014-09-17 20:55:46 +00001888 B.CreateStore(B.getInt8(0), Ptr);
Meador Ingedf796f82012-10-13 16:45:24 +00001889
Chris Bienemanad070d02014-09-17 20:55:46 +00001890 return ConstantInt::get(CI->getType(), 1);
Meador Ingedf796f82012-10-13 16:45:24 +00001891 }
1892
Chris Bienemanad070d02014-09-17 20:55:46 +00001893 if (FormatStr[1] == 's') {
Chris Bienemanad070d02014-09-17 20:55:46 +00001894 // sprintf(dest, "%s", str) -> llvm.memcpy(dest, str, strlen(str)+1, 1)
1895 if (!CI->getArgOperand(2)->getType()->isPointerTy())
1896 return nullptr;
1897
1898 Value *Len = EmitStrLen(CI->getArgOperand(2), B, DL, TLI);
1899 if (!Len)
1900 return nullptr;
1901 Value *IncLen =
1902 B.CreateAdd(Len, ConstantInt::get(Len->getType(), 1), "leninc");
Pete Cooper67cf9a72015-11-19 05:56:52 +00001903 B.CreateMemCpy(CI->getArgOperand(0), CI->getArgOperand(2), IncLen, 1);
Chris Bienemanad070d02014-09-17 20:55:46 +00001904
1905 // The sprintf result is the unincremented number of bytes in the string.
1906 return B.CreateIntCast(Len, CI->getType(), false);
1907 }
1908 return nullptr;
1909}
1910
1911Value *LibCallSimplifier::optimizeSPrintF(CallInst *CI, IRBuilder<> &B) {
1912 Function *Callee = CI->getCalledFunction();
1913 // Require two fixed pointer arguments and an integer result.
1914 FunctionType *FT = Callee->getFunctionType();
1915 if (FT->getNumParams() != 2 || !FT->getParamType(0)->isPointerTy() ||
1916 !FT->getParamType(1)->isPointerTy() ||
1917 !FT->getReturnType()->isIntegerTy())
1918 return nullptr;
1919
1920 if (Value *V = optimizeSPrintFString(CI, B)) {
1921 return V;
1922 }
1923
1924 // sprintf(str, format, ...) -> siprintf(str, format, ...) if no floating
1925 // point arguments.
1926 if (TLI->has(LibFunc::siprintf) && !callHasFloatingPointArgument(CI)) {
1927 Module *M = B.GetInsertBlock()->getParent()->getParent();
1928 Constant *SIPrintFFn =
1929 M->getOrInsertFunction("siprintf", FT, Callee->getAttributes());
1930 CallInst *New = cast<CallInst>(CI->clone());
1931 New->setCalledFunction(SIPrintFFn);
1932 B.Insert(New);
1933 return New;
1934 }
1935 return nullptr;
1936}
1937
1938Value *LibCallSimplifier::optimizeFPrintFString(CallInst *CI, IRBuilder<> &B) {
1939 optimizeErrorReporting(CI, B, 0);
1940
1941 // All the optimizations depend on the format string.
1942 StringRef FormatStr;
1943 if (!getConstantStringInfo(CI->getArgOperand(1), FormatStr))
1944 return nullptr;
1945
1946 // Do not do any of the following transformations if the fprintf return
1947 // value is used, in general the fprintf return value is not compatible
1948 // with fwrite(), fputc() or fputs().
1949 if (!CI->use_empty())
1950 return nullptr;
1951
1952 // fprintf(F, "foo") --> fwrite("foo", 3, 1, F)
1953 if (CI->getNumArgOperands() == 2) {
1954 for (unsigned i = 0, e = FormatStr.size(); i != e; ++i)
1955 if (FormatStr[i] == '%') // Could handle %% -> % if we cared.
1956 return nullptr; // We found a format specifier.
1957
Chris Bienemanad070d02014-09-17 20:55:46 +00001958 return EmitFWrite(
1959 CI->getArgOperand(1),
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001960 ConstantInt::get(DL.getIntPtrType(CI->getContext()), FormatStr.size()),
Chris Bienemanad070d02014-09-17 20:55:46 +00001961 CI->getArgOperand(0), B, DL, TLI);
1962 }
1963
1964 // The remaining optimizations require the format string to be "%s" or "%c"
1965 // and have an extra operand.
1966 if (FormatStr.size() != 2 || FormatStr[0] != '%' ||
1967 CI->getNumArgOperands() < 3)
1968 return nullptr;
1969
1970 // Decode the second character of the format string.
1971 if (FormatStr[1] == 'c') {
1972 // fprintf(F, "%c", chr) --> fputc(chr, F)
1973 if (!CI->getArgOperand(2)->getType()->isIntegerTy())
1974 return nullptr;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001975 return EmitFPutC(CI->getArgOperand(2), CI->getArgOperand(0), B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +00001976 }
1977
1978 if (FormatStr[1] == 's') {
1979 // fprintf(F, "%s", str) --> fputs(str, F)
1980 if (!CI->getArgOperand(2)->getType()->isPointerTy())
1981 return nullptr;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001982 return EmitFPutS(CI->getArgOperand(2), CI->getArgOperand(0), B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +00001983 }
1984 return nullptr;
1985}
1986
1987Value *LibCallSimplifier::optimizeFPrintF(CallInst *CI, IRBuilder<> &B) {
1988 Function *Callee = CI->getCalledFunction();
1989 // Require two fixed paramters as pointers and integer result.
1990 FunctionType *FT = Callee->getFunctionType();
1991 if (FT->getNumParams() != 2 || !FT->getParamType(0)->isPointerTy() ||
1992 !FT->getParamType(1)->isPointerTy() ||
1993 !FT->getReturnType()->isIntegerTy())
1994 return nullptr;
1995
1996 if (Value *V = optimizeFPrintFString(CI, B)) {
1997 return V;
1998 }
1999
2000 // fprintf(stream, format, ...) -> fiprintf(stream, format, ...) if no
2001 // floating point arguments.
2002 if (TLI->has(LibFunc::fiprintf) && !callHasFloatingPointArgument(CI)) {
2003 Module *M = B.GetInsertBlock()->getParent()->getParent();
2004 Constant *FIPrintFFn =
2005 M->getOrInsertFunction("fiprintf", FT, Callee->getAttributes());
2006 CallInst *New = cast<CallInst>(CI->clone());
2007 New->setCalledFunction(FIPrintFFn);
2008 B.Insert(New);
2009 return New;
2010 }
2011 return nullptr;
2012}
2013
2014Value *LibCallSimplifier::optimizeFWrite(CallInst *CI, IRBuilder<> &B) {
2015 optimizeErrorReporting(CI, B, 3);
2016
2017 Function *Callee = CI->getCalledFunction();
2018 // Require a pointer, an integer, an integer, a pointer, returning integer.
2019 FunctionType *FT = Callee->getFunctionType();
2020 if (FT->getNumParams() != 4 || !FT->getParamType(0)->isPointerTy() ||
2021 !FT->getParamType(1)->isIntegerTy() ||
2022 !FT->getParamType(2)->isIntegerTy() ||
2023 !FT->getParamType(3)->isPointerTy() ||
2024 !FT->getReturnType()->isIntegerTy())
2025 return nullptr;
2026
2027 // Get the element size and count.
2028 ConstantInt *SizeC = dyn_cast<ConstantInt>(CI->getArgOperand(1));
2029 ConstantInt *CountC = dyn_cast<ConstantInt>(CI->getArgOperand(2));
2030 if (!SizeC || !CountC)
2031 return nullptr;
2032 uint64_t Bytes = SizeC->getZExtValue() * CountC->getZExtValue();
2033
2034 // If this is writing zero records, remove the call (it's a noop).
2035 if (Bytes == 0)
2036 return ConstantInt::get(CI->getType(), 0);
2037
2038 // If this is writing one byte, turn it into fputc.
2039 // This optimisation is only valid, if the return value is unused.
2040 if (Bytes == 1 && CI->use_empty()) { // fwrite(S,1,1,F) -> fputc(S[0],F)
2041 Value *Char = B.CreateLoad(CastToCStr(CI->getArgOperand(0), B), "char");
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002042 Value *NewCI = EmitFPutC(Char, CI->getArgOperand(3), B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +00002043 return NewCI ? ConstantInt::get(CI->getType(), 1) : nullptr;
2044 }
2045
2046 return nullptr;
2047}
2048
2049Value *LibCallSimplifier::optimizeFPuts(CallInst *CI, IRBuilder<> &B) {
2050 optimizeErrorReporting(CI, B, 1);
2051
2052 Function *Callee = CI->getCalledFunction();
2053
Chris Bienemanad070d02014-09-17 20:55:46 +00002054 // Require two pointers. Also, we can't optimize if return value is used.
2055 FunctionType *FT = Callee->getFunctionType();
2056 if (FT->getNumParams() != 2 || !FT->getParamType(0)->isPointerTy() ||
2057 !FT->getParamType(1)->isPointerTy() || !CI->use_empty())
2058 return nullptr;
2059
2060 // fputs(s,F) --> fwrite(s,1,strlen(s),F)
2061 uint64_t Len = GetStringLength(CI->getArgOperand(0));
2062 if (!Len)
2063 return nullptr;
2064
2065 // Known to have no uses (see above).
2066 return EmitFWrite(
2067 CI->getArgOperand(0),
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002068 ConstantInt::get(DL.getIntPtrType(CI->getContext()), Len - 1),
Chris Bienemanad070d02014-09-17 20:55:46 +00002069 CI->getArgOperand(1), B, DL, TLI);
2070}
2071
2072Value *LibCallSimplifier::optimizePuts(CallInst *CI, IRBuilder<> &B) {
2073 Function *Callee = CI->getCalledFunction();
2074 // Require one fixed pointer argument and an integer/void result.
2075 FunctionType *FT = Callee->getFunctionType();
2076 if (FT->getNumParams() < 1 || !FT->getParamType(0)->isPointerTy() ||
2077 !(FT->getReturnType()->isIntegerTy() || FT->getReturnType()->isVoidTy()))
2078 return nullptr;
2079
2080 // Check for a constant string.
2081 StringRef Str;
2082 if (!getConstantStringInfo(CI->getArgOperand(0), Str))
2083 return nullptr;
2084
2085 if (Str.empty() && CI->use_empty()) {
2086 // puts("") -> putchar('\n')
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002087 Value *Res = EmitPutChar(B.getInt32('\n'), B, TLI);
Chris Bienemanad070d02014-09-17 20:55:46 +00002088 if (CI->use_empty() || !Res)
2089 return Res;
2090 return B.CreateIntCast(Res, CI->getType(), true);
2091 }
2092
2093 return nullptr;
2094}
2095
2096bool LibCallSimplifier::hasFloatVersion(StringRef FuncName) {
Meador Inge20255ef2013-03-12 00:08:29 +00002097 LibFunc::Func Func;
2098 SmallString<20> FloatFuncName = FuncName;
2099 FloatFuncName += 'f';
2100 if (TLI->getLibFunc(FloatFuncName, Func))
2101 return TLI->has(Func);
2102 return false;
2103}
Meador Inge7fb2f732012-10-13 16:45:32 +00002104
Ahmed Bougacha6722f5e2015-01-12 17:20:06 +00002105Value *LibCallSimplifier::optimizeStringMemoryLibCall(CallInst *CI,
2106 IRBuilder<> &Builder) {
2107 LibFunc::Func Func;
2108 Function *Callee = CI->getCalledFunction();
2109 StringRef FuncName = Callee->getName();
2110
2111 // Check for string/memory library functions.
2112 if (TLI->getLibFunc(FuncName, Func) && TLI->has(Func)) {
2113 // Make sure we never change the calling convention.
2114 assert((ignoreCallingConv(Func) ||
2115 CI->getCallingConv() == llvm::CallingConv::C) &&
2116 "Optimizing string/memory libcall would change the calling convention");
2117 switch (Func) {
2118 case LibFunc::strcat:
2119 return optimizeStrCat(CI, Builder);
2120 case LibFunc::strncat:
2121 return optimizeStrNCat(CI, Builder);
2122 case LibFunc::strchr:
2123 return optimizeStrChr(CI, Builder);
2124 case LibFunc::strrchr:
2125 return optimizeStrRChr(CI, Builder);
2126 case LibFunc::strcmp:
2127 return optimizeStrCmp(CI, Builder);
2128 case LibFunc::strncmp:
2129 return optimizeStrNCmp(CI, Builder);
2130 case LibFunc::strcpy:
2131 return optimizeStrCpy(CI, Builder);
2132 case LibFunc::stpcpy:
2133 return optimizeStpCpy(CI, Builder);
2134 case LibFunc::strncpy:
2135 return optimizeStrNCpy(CI, Builder);
2136 case LibFunc::strlen:
2137 return optimizeStrLen(CI, Builder);
2138 case LibFunc::strpbrk:
2139 return optimizeStrPBrk(CI, Builder);
2140 case LibFunc::strtol:
2141 case LibFunc::strtod:
2142 case LibFunc::strtof:
2143 case LibFunc::strtoul:
2144 case LibFunc::strtoll:
2145 case LibFunc::strtold:
2146 case LibFunc::strtoull:
2147 return optimizeStrTo(CI, Builder);
2148 case LibFunc::strspn:
2149 return optimizeStrSpn(CI, Builder);
2150 case LibFunc::strcspn:
2151 return optimizeStrCSpn(CI, Builder);
2152 case LibFunc::strstr:
2153 return optimizeStrStr(CI, Builder);
Benjamin Kramer691363e2015-03-21 15:36:21 +00002154 case LibFunc::memchr:
2155 return optimizeMemChr(CI, Builder);
Ahmed Bougacha6722f5e2015-01-12 17:20:06 +00002156 case LibFunc::memcmp:
2157 return optimizeMemCmp(CI, Builder);
2158 case LibFunc::memcpy:
2159 return optimizeMemCpy(CI, Builder);
2160 case LibFunc::memmove:
2161 return optimizeMemMove(CI, Builder);
2162 case LibFunc::memset:
2163 return optimizeMemSet(CI, Builder);
2164 default:
2165 break;
2166 }
2167 }
2168 return nullptr;
2169}
2170
Chris Bienemanad070d02014-09-17 20:55:46 +00002171Value *LibCallSimplifier::optimizeCall(CallInst *CI) {
2172 if (CI->isNoBuiltin())
2173 return nullptr;
Meador Inge4d2827c2012-11-11 05:11:20 +00002174
Meador Inge20255ef2013-03-12 00:08:29 +00002175 LibFunc::Func Func;
2176 Function *Callee = CI->getCalledFunction();
2177 StringRef FuncName = Callee->getName();
Chris Bienemanad070d02014-09-17 20:55:46 +00002178 IRBuilder<> Builder(CI);
2179 bool isCallingConvC = CI->getCallingConv() == llvm::CallingConv::C;
Meador Inge20255ef2013-03-12 00:08:29 +00002180
Sanjay Patela92fa442014-10-22 15:29:23 +00002181 // Command-line parameter overrides function attribute.
2182 if (EnableUnsafeFPShrink.getNumOccurrences() > 0)
2183 UnsafeFPShrink = EnableUnsafeFPShrink;
Davide Italianoa904e522015-10-29 02:58:44 +00002184 else if (canUseUnsafeFPMath(Callee))
2185 UnsafeFPShrink = true;
Sanjay Patela92fa442014-10-22 15:29:23 +00002186
Sanjay Patel848309d2014-10-23 21:52:45 +00002187 // First, check for intrinsics.
Meador Inge20255ef2013-03-12 00:08:29 +00002188 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(CI)) {
Chris Bienemanad070d02014-09-17 20:55:46 +00002189 if (!isCallingConvC)
2190 return nullptr;
Meador Inge20255ef2013-03-12 00:08:29 +00002191 switch (II->getIntrinsicID()) {
2192 case Intrinsic::pow:
Chris Bienemanad070d02014-09-17 20:55:46 +00002193 return optimizePow(CI, Builder);
Meador Inge20255ef2013-03-12 00:08:29 +00002194 case Intrinsic::exp2:
Chris Bienemanad070d02014-09-17 20:55:46 +00002195 return optimizeExp2(CI, Builder);
Sanjay Patel0ca42bb2014-10-14 20:43:11 +00002196 case Intrinsic::fabs:
2197 return optimizeFabs(CI, Builder);
Davide Italianob8b71332015-11-29 20:58:04 +00002198 case Intrinsic::log:
2199 return optimizeLog(CI, Builder);
Sanjay Patelc699a612014-10-16 18:48:17 +00002200 case Intrinsic::sqrt:
2201 return optimizeSqrt(CI, Builder);
Meador Inge20255ef2013-03-12 00:08:29 +00002202 default:
Chris Bienemanad070d02014-09-17 20:55:46 +00002203 return nullptr;
Meador Inge20255ef2013-03-12 00:08:29 +00002204 }
2205 }
2206
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002207 // Also try to simplify calls to fortified library functions.
2208 if (Value *SimplifiedFortifiedCI = FortifiedSimplifier.optimizeCall(CI)) {
2209 // Try to further simplify the result.
Ahmed Bougacha71d7b182015-01-14 00:55:05 +00002210 CallInst *SimplifiedCI = dyn_cast<CallInst>(SimplifiedFortifiedCI);
Bruno Cardoso Lopesb491a2d2015-10-01 22:43:53 +00002211 if (SimplifiedCI && SimplifiedCI->getCalledFunction()) {
2212 // Use an IR Builder from SimplifiedCI if available instead of CI
2213 // to guarantee we reach all uses we might replace later on.
2214 IRBuilder<> TmpBuilder(SimplifiedCI);
2215 if (Value *V = optimizeStringMemoryLibCall(SimplifiedCI, TmpBuilder)) {
Ahmed Bougacha1ac93562015-01-27 21:52:16 +00002216 // If we were able to further simplify, remove the now redundant call.
2217 SimplifiedCI->replaceAllUsesWith(V);
2218 SimplifiedCI->eraseFromParent();
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002219 return V;
Ahmed Bougacha1ac93562015-01-27 21:52:16 +00002220 }
Bruno Cardoso Lopesb491a2d2015-10-01 22:43:53 +00002221 }
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002222 return SimplifiedFortifiedCI;
2223 }
2224
Meador Inge20255ef2013-03-12 00:08:29 +00002225 // Then check for known library functions.
2226 if (TLI->getLibFunc(FuncName, Func) && TLI->has(Func)) {
Chris Bienemanad070d02014-09-17 20:55:46 +00002227 // We never change the calling convention.
2228 if (!ignoreCallingConv(Func) && !isCallingConvC)
2229 return nullptr;
Ahmed Bougacha6722f5e2015-01-12 17:20:06 +00002230 if (Value *V = optimizeStringMemoryLibCall(CI, Builder))
2231 return V;
Meador Inge20255ef2013-03-12 00:08:29 +00002232 switch (Func) {
Chris Bienemanad070d02014-09-17 20:55:46 +00002233 case LibFunc::cosf:
2234 case LibFunc::cos:
2235 case LibFunc::cosl:
2236 return optimizeCos(CI, Builder);
2237 case LibFunc::sinpif:
2238 case LibFunc::sinpi:
2239 case LibFunc::cospif:
2240 case LibFunc::cospi:
2241 return optimizeSinCosPi(CI, Builder);
2242 case LibFunc::powf:
2243 case LibFunc::pow:
2244 case LibFunc::powl:
2245 return optimizePow(CI, Builder);
2246 case LibFunc::exp2l:
2247 case LibFunc::exp2:
2248 case LibFunc::exp2f:
2249 return optimizeExp2(CI, Builder);
Sanjay Patel0ca42bb2014-10-14 20:43:11 +00002250 case LibFunc::fabsf:
2251 case LibFunc::fabs:
2252 case LibFunc::fabsl:
2253 return optimizeFabs(CI, Builder);
Sanjay Patelc699a612014-10-16 18:48:17 +00002254 case LibFunc::sqrtf:
2255 case LibFunc::sqrt:
2256 case LibFunc::sqrtl:
2257 return optimizeSqrt(CI, Builder);
Chris Bienemanad070d02014-09-17 20:55:46 +00002258 case LibFunc::ffs:
2259 case LibFunc::ffsl:
2260 case LibFunc::ffsll:
2261 return optimizeFFS(CI, Builder);
2262 case LibFunc::abs:
2263 case LibFunc::labs:
2264 case LibFunc::llabs:
2265 return optimizeAbs(CI, Builder);
2266 case LibFunc::isdigit:
2267 return optimizeIsDigit(CI, Builder);
2268 case LibFunc::isascii:
2269 return optimizeIsAscii(CI, Builder);
2270 case LibFunc::toascii:
2271 return optimizeToAscii(CI, Builder);
2272 case LibFunc::printf:
2273 return optimizePrintF(CI, Builder);
2274 case LibFunc::sprintf:
2275 return optimizeSPrintF(CI, Builder);
2276 case LibFunc::fprintf:
2277 return optimizeFPrintF(CI, Builder);
2278 case LibFunc::fwrite:
2279 return optimizeFWrite(CI, Builder);
2280 case LibFunc::fputs:
2281 return optimizeFPuts(CI, Builder);
Davide Italianob8b71332015-11-29 20:58:04 +00002282 case LibFunc::log:
2283 case LibFunc::log10:
2284 case LibFunc::log1p:
2285 case LibFunc::log2:
2286 case LibFunc::logb:
2287 return optimizeLog(CI, Builder);
Chris Bienemanad070d02014-09-17 20:55:46 +00002288 case LibFunc::puts:
2289 return optimizePuts(CI, Builder);
Davide Italiano51507d22015-11-04 23:36:56 +00002290 case LibFunc::tan:
2291 case LibFunc::tanf:
2292 case LibFunc::tanl:
2293 return optimizeTan(CI, Builder);
Chris Bienemanad070d02014-09-17 20:55:46 +00002294 case LibFunc::perror:
2295 return optimizeErrorReporting(CI, Builder);
2296 case LibFunc::vfprintf:
2297 case LibFunc::fiprintf:
2298 return optimizeErrorReporting(CI, Builder, 0);
2299 case LibFunc::fputc:
2300 return optimizeErrorReporting(CI, Builder, 1);
2301 case LibFunc::ceil:
Chris Bienemanad070d02014-09-17 20:55:46 +00002302 case LibFunc::floor:
2303 case LibFunc::rint:
2304 case LibFunc::round:
2305 case LibFunc::nearbyint:
2306 case LibFunc::trunc:
2307 if (hasFloatVersion(FuncName))
2308 return optimizeUnaryDoubleFP(CI, Builder, false);
2309 return nullptr;
2310 case LibFunc::acos:
2311 case LibFunc::acosh:
2312 case LibFunc::asin:
2313 case LibFunc::asinh:
2314 case LibFunc::atan:
2315 case LibFunc::atanh:
2316 case LibFunc::cbrt:
2317 case LibFunc::cosh:
2318 case LibFunc::exp:
2319 case LibFunc::exp10:
2320 case LibFunc::expm1:
Chris Bienemanad070d02014-09-17 20:55:46 +00002321 case LibFunc::sin:
2322 case LibFunc::sinh:
Chris Bienemanad070d02014-09-17 20:55:46 +00002323 case LibFunc::tanh:
2324 if (UnsafeFPShrink && hasFloatVersion(FuncName))
2325 return optimizeUnaryDoubleFP(CI, Builder, true);
2326 return nullptr;
Matthias Braun892c9232014-12-03 21:46:29 +00002327 case LibFunc::copysign:
Chris Bienemanad070d02014-09-17 20:55:46 +00002328 if (hasFloatVersion(FuncName))
2329 return optimizeBinaryDoubleFP(CI, Builder);
2330 return nullptr;
Sanjay Patel57fd1dc2015-08-16 20:18:19 +00002331 case LibFunc::fminf:
2332 case LibFunc::fmin:
2333 case LibFunc::fminl:
2334 case LibFunc::fmaxf:
2335 case LibFunc::fmax:
2336 case LibFunc::fmaxl:
2337 return optimizeFMinFMax(CI, Builder);
Chris Bienemanad070d02014-09-17 20:55:46 +00002338 default:
2339 return nullptr;
2340 }
Meador Inge20255ef2013-03-12 00:08:29 +00002341 }
Craig Topperf40110f2014-04-25 05:29:35 +00002342 return nullptr;
Meador Ingedf796f82012-10-13 16:45:24 +00002343}
2344
Chandler Carruth92803822015-01-21 02:11:59 +00002345LibCallSimplifier::LibCallSimplifier(
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002346 const DataLayout &DL, const TargetLibraryInfo *TLI,
Chandler Carruth92803822015-01-21 02:11:59 +00002347 function_ref<void(Instruction *, Value *)> Replacer)
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002348 : FortifiedSimplifier(TLI), DL(DL), TLI(TLI), UnsafeFPShrink(false),
Chandler Carruth92803822015-01-21 02:11:59 +00002349 Replacer(Replacer) {}
2350
2351void LibCallSimplifier::replaceAllUsesWith(Instruction *I, Value *With) {
2352 // Indirect through the replacer used in this instance.
2353 Replacer(I, With);
Meador Ingedf796f82012-10-13 16:45:24 +00002354}
2355
Meador Ingedfb08a22013-06-20 19:48:07 +00002356// TODO:
2357// Additional cases that we need to add to this file:
2358//
2359// cbrt:
2360// * cbrt(expN(X)) -> expN(x/3)
2361// * cbrt(sqrt(x)) -> pow(x,1/6)
David Majnemer3354fe42015-08-26 18:30:16 +00002362// * cbrt(cbrt(x)) -> pow(x,1/9)
Meador Ingedfb08a22013-06-20 19:48:07 +00002363//
2364// exp, expf, expl:
2365// * exp(log(x)) -> x
2366//
2367// log, logf, logl:
2368// * log(exp(x)) -> x
Meador Ingedfb08a22013-06-20 19:48:07 +00002369// * log(exp(y)) -> y*log(e)
Meador Ingedfb08a22013-06-20 19:48:07 +00002370// * log(exp10(y)) -> y*log(10)
2371// * log(sqrt(x)) -> 0.5*log(x)
Meador Ingedfb08a22013-06-20 19:48:07 +00002372//
2373// lround, lroundf, lroundl:
2374// * lround(cnst) -> cnst'
2375//
2376// pow, powf, powl:
Meador Ingedfb08a22013-06-20 19:48:07 +00002377// * pow(sqrt(x),y) -> pow(x,y*0.5)
2378// * pow(pow(x,y),z)-> pow(x,y*z)
2379//
2380// round, roundf, roundl:
2381// * round(cnst) -> cnst'
2382//
2383// signbit:
2384// * signbit(cnst) -> cnst'
2385// * signbit(nncst) -> 0 (if pstv is a non-negative constant)
2386//
2387// sqrt, sqrtf, sqrtl:
2388// * sqrt(expN(x)) -> expN(x*0.5)
2389// * sqrt(Nroot(x)) -> pow(x,1/(2*N))
2390// * sqrt(pow(x,y)) -> pow(|x|,y*0.5)
2391//
Meador Ingedfb08a22013-06-20 19:48:07 +00002392// trunc, truncf, truncl:
2393// * trunc(cnst) -> cnst'
2394//
2395//
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002396
2397//===----------------------------------------------------------------------===//
2398// Fortified Library Call Optimizations
2399//===----------------------------------------------------------------------===//
2400
2401bool FortifiedLibCallSimplifier::isFortifiedCallFoldable(CallInst *CI,
2402 unsigned ObjSizeOp,
2403 unsigned SizeOp,
2404 bool isString) {
2405 if (CI->getArgOperand(ObjSizeOp) == CI->getArgOperand(SizeOp))
2406 return true;
2407 if (ConstantInt *ObjSizeCI =
2408 dyn_cast<ConstantInt>(CI->getArgOperand(ObjSizeOp))) {
2409 if (ObjSizeCI->isAllOnesValue())
2410 return true;
2411 // If the object size wasn't -1 (unknown), bail out if we were asked to.
2412 if (OnlyLowerUnknownSize)
2413 return false;
2414 if (isString) {
2415 uint64_t Len = GetStringLength(CI->getArgOperand(SizeOp));
2416 // If the length is 0 we don't know how long it is and so we can't
2417 // remove the check.
2418 if (Len == 0)
2419 return false;
2420 return ObjSizeCI->getZExtValue() >= Len;
2421 }
2422 if (ConstantInt *SizeCI = dyn_cast<ConstantInt>(CI->getArgOperand(SizeOp)))
2423 return ObjSizeCI->getZExtValue() >= SizeCI->getZExtValue();
2424 }
2425 return false;
2426}
2427
Sanjay Pateld707db92015-12-31 16:10:49 +00002428Value *FortifiedLibCallSimplifier::optimizeMemCpyChk(CallInst *CI,
2429 IRBuilder<> &B) {
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002430 Function *Callee = CI->getCalledFunction();
2431
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002432 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::memcpy_chk))
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002433 return nullptr;
2434
2435 if (isFortifiedCallFoldable(CI, 3, 2, false)) {
2436 B.CreateMemCpy(CI->getArgOperand(0), CI->getArgOperand(1),
Pete Cooper67cf9a72015-11-19 05:56:52 +00002437 CI->getArgOperand(2), 1);
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002438 return CI->getArgOperand(0);
2439 }
2440 return nullptr;
2441}
2442
Sanjay Pateld707db92015-12-31 16:10:49 +00002443Value *FortifiedLibCallSimplifier::optimizeMemMoveChk(CallInst *CI,
2444 IRBuilder<> &B) {
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002445 Function *Callee = CI->getCalledFunction();
2446
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002447 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::memmove_chk))
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002448 return nullptr;
2449
2450 if (isFortifiedCallFoldable(CI, 3, 2, false)) {
2451 B.CreateMemMove(CI->getArgOperand(0), CI->getArgOperand(1),
Pete Cooper67cf9a72015-11-19 05:56:52 +00002452 CI->getArgOperand(2), 1);
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002453 return CI->getArgOperand(0);
2454 }
2455 return nullptr;
2456}
2457
Sanjay Pateld707db92015-12-31 16:10:49 +00002458Value *FortifiedLibCallSimplifier::optimizeMemSetChk(CallInst *CI,
2459 IRBuilder<> &B) {
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002460 Function *Callee = CI->getCalledFunction();
2461
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002462 if (!checkStringCopyLibFuncSignature(Callee, LibFunc::memset_chk))
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002463 return nullptr;
2464
2465 if (isFortifiedCallFoldable(CI, 3, 2, false)) {
2466 Value *Val = B.CreateIntCast(CI->getArgOperand(1), B.getInt8Ty(), false);
2467 B.CreateMemSet(CI->getArgOperand(0), Val, CI->getArgOperand(2), 1);
2468 return CI->getArgOperand(0);
2469 }
2470 return nullptr;
2471}
2472
Ahmed Bougacha1ac93562015-01-27 21:52:16 +00002473Value *FortifiedLibCallSimplifier::optimizeStrpCpyChk(CallInst *CI,
2474 IRBuilder<> &B,
2475 LibFunc::Func Func) {
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002476 Function *Callee = CI->getCalledFunction();
2477 StringRef Name = Callee->getName();
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002478 const DataLayout &DL = CI->getModule()->getDataLayout();
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002479
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002480 if (!checkStringCopyLibFuncSignature(Callee, Func))
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002481 return nullptr;
2482
2483 Value *Dst = CI->getArgOperand(0), *Src = CI->getArgOperand(1),
2484 *ObjSize = CI->getArgOperand(2);
2485
2486 // __stpcpy_chk(x,x,...) -> x+strlen(x)
Ahmed Bougacha1ac93562015-01-27 21:52:16 +00002487 if (Func == LibFunc::stpcpy_chk && !OnlyLowerUnknownSize && Dst == Src) {
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002488 Value *StrLen = EmitStrLen(Src, B, DL, TLI);
David Blaikieaa41cd52015-04-03 21:33:42 +00002489 return StrLen ? B.CreateInBoundsGEP(B.getInt8Ty(), Dst, StrLen) : nullptr;
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002490 }
2491
2492 // If a) we don't have any length information, or b) we know this will
2493 // fit then just lower to a plain st[rp]cpy. Otherwise we'll keep our
2494 // st[rp]cpy_chk call which may fail at runtime if the size is too long.
2495 // TODO: It might be nice to get a maximum length out of the possible
2496 // string lengths for varying.
David Blaikie65fab6d2015-04-03 21:32:06 +00002497 if (isFortifiedCallFoldable(CI, 2, 1, true))
2498 return EmitStrCpy(Dst, Src, B, TLI, Name.substr(2, 6));
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002499
David Blaikie65fab6d2015-04-03 21:32:06 +00002500 if (OnlyLowerUnknownSize)
2501 return nullptr;
2502
2503 // Maybe we can stil fold __st[rp]cpy_chk to __memcpy_chk.
2504 uint64_t Len = GetStringLength(Src);
2505 if (Len == 0)
2506 return nullptr;
2507
2508 Type *SizeTTy = DL.getIntPtrType(CI->getContext());
2509 Value *LenV = ConstantInt::get(SizeTTy, Len);
2510 Value *Ret = EmitMemCpyChk(Dst, Src, LenV, ObjSize, B, DL, TLI);
2511 // If the function was an __stpcpy_chk, and we were able to fold it into
2512 // a __memcpy_chk, we still need to return the correct end pointer.
2513 if (Ret && Func == LibFunc::stpcpy_chk)
2514 return B.CreateGEP(B.getInt8Ty(), Dst, ConstantInt::get(SizeTTy, Len - 1));
2515 return Ret;
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002516}
2517
Ahmed Bougacha1ac93562015-01-27 21:52:16 +00002518Value *FortifiedLibCallSimplifier::optimizeStrpNCpyChk(CallInst *CI,
2519 IRBuilder<> &B,
2520 LibFunc::Func Func) {
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002521 Function *Callee = CI->getCalledFunction();
2522 StringRef Name = Callee->getName();
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002523
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002524 if (!checkStringCopyLibFuncSignature(Callee, Func))
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002525 return nullptr;
2526 if (isFortifiedCallFoldable(CI, 3, 2, false)) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002527 Value *Ret = EmitStrNCpy(CI->getArgOperand(0), CI->getArgOperand(1),
2528 CI->getArgOperand(2), B, TLI, Name.substr(2, 7));
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002529 return Ret;
2530 }
2531 return nullptr;
2532}
2533
2534Value *FortifiedLibCallSimplifier::optimizeCall(CallInst *CI) {
Ahmed Bougacha408d0102015-04-01 00:45:09 +00002535 // FIXME: We shouldn't be changing "nobuiltin" or TLI unavailable calls here.
2536 // Some clang users checked for _chk libcall availability using:
2537 // __has_builtin(__builtin___memcpy_chk)
2538 // When compiling with -fno-builtin, this is always true.
2539 // When passing -ffreestanding/-mkernel, which both imply -fno-builtin, we
2540 // end up with fortified libcalls, which isn't acceptable in a freestanding
2541 // environment which only provides their non-fortified counterparts.
2542 //
2543 // Until we change clang and/or teach external users to check for availability
2544 // differently, disregard the "nobuiltin" attribute and TLI::has.
2545 //
2546 // PR23093.
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002547
2548 LibFunc::Func Func;
2549 Function *Callee = CI->getCalledFunction();
2550 StringRef FuncName = Callee->getName();
2551 IRBuilder<> Builder(CI);
2552 bool isCallingConvC = CI->getCallingConv() == llvm::CallingConv::C;
2553
2554 // First, check that this is a known library functions.
Ahmed Bougacha408d0102015-04-01 00:45:09 +00002555 if (!TLI->getLibFunc(FuncName, Func))
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002556 return nullptr;
2557
2558 // We never change the calling convention.
2559 if (!ignoreCallingConv(Func) && !isCallingConvC)
2560 return nullptr;
2561
2562 switch (Func) {
2563 case LibFunc::memcpy_chk:
2564 return optimizeMemCpyChk(CI, Builder);
2565 case LibFunc::memmove_chk:
2566 return optimizeMemMoveChk(CI, Builder);
2567 case LibFunc::memset_chk:
2568 return optimizeMemSetChk(CI, Builder);
2569 case LibFunc::stpcpy_chk:
2570 case LibFunc::strcpy_chk:
Ahmed Bougacha1ac93562015-01-27 21:52:16 +00002571 return optimizeStrpCpyChk(CI, Builder, Func);
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002572 case LibFunc::stpncpy_chk:
2573 case LibFunc::strncpy_chk:
Ahmed Bougacha1ac93562015-01-27 21:52:16 +00002574 return optimizeStrpNCpyChk(CI, Builder, Func);
Ahmed Bougachae03bef72015-01-12 17:22:43 +00002575 default:
2576 break;
2577 }
2578 return nullptr;
2579}
2580
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002581FortifiedLibCallSimplifier::FortifiedLibCallSimplifier(
2582 const TargetLibraryInfo *TLI, bool OnlyLowerUnknownSize)
2583 : TLI(TLI), OnlyLowerUnknownSize(OnlyLowerUnknownSize) {}