51 cl::desc(
"Enable unsafe double to float "
52 "shrinking for math lib calls"));
59 cl::desc(
"Enable hot/cold operator new library calls"));
63 "Enable optimization of existing hot/cold operator new library calls"));
66 cl::desc(
"Enable transformation of nobuiltin operator new library calls"));
73struct HotColdHintParser :
public cl::parser<unsigned> {
76 bool parse(cl::Option &O, StringRef ArgName, StringRef Arg,
unsigned &
Value) {
78 return O.error(
"'" + Arg +
"' value invalid for uint argument!");
81 return O.error(
"'" + Arg +
"' value must be in the range [0, 255]!");
95 cl::desc(
"Value to pass to hot/cold operator new for cold allocation"));
98 cl::desc(
"Value to pass to hot/cold operator new for "
99 "notcold (warm) allocation"));
102 cl::desc(
"Value to pass to hot/cold operator new for hot allocation"));
106 "Value to pass to hot/cold operator new for ambiguous allocation"));
113 return Func == LibFunc_abs || Func == LibFunc_labs ||
114 Func == LibFunc_llabs || Func == LibFunc_strlen;
121 if (IC->isEquality() && IC->getOperand(1) == With)
131 return OI->getType()->isFloatingPointTy();
137 return OI->getType()->isFP128Ty();
170 bool Negate = Str[0] ==
'-';
171 if (Str[0] ==
'-' || Str[0] ==
'+') {
172 Str = Str.drop_front();
183 uint64_t Max = AsSigned && Negate ? 1 : 0;
187 if (Str.size() > 1) {
189 if (
toUpper((
unsigned char)Str[1]) ==
'X') {
190 if (Str.size() == 2 || (
Base &&
Base != 16))
195 Str = Str.drop_front(2);
201 }
else if (
Base == 0)
211 for (
unsigned i = 0; i != Str.size(); ++i) {
212 unsigned char DigVal = Str[i];
214 DigVal = DigVal -
'0';
218 DigVal = DigVal -
'A' + 10;
231 if (VFlow || Result > Max)
239 Value *StrEnd =
B.CreateInBoundsGEP(
B.getInt8Ty(), StrBeg, Off,
"endptr");
240 B.CreateStore(StrEnd, EndPtr);
247 return ConstantInt::get(RetTy, Result);
254 if (
C->isNullValue())
282 for (
unsigned ArgNo : ArgNos) {
283 uint64_t DerefBytes = DereferenceableBytes;
288 DereferenceableBytes);
307 for (
unsigned ArgNo : ArgNos) {
333 DerefMin = std::min(
X,
Y);
354 NewCI->
getContext(), {NewCI->getAttributes(), Old.getAttributes()}));
367 return Len >= Str.size() ? Str : Str.substr(0, Len);
392 return copyFlags(*CI, emitStrLenMemCpy(Src, Dst, Len,
B));
395Value *LibCallSimplifier::emitStrLenMemCpy(
Value *Src,
Value *Dst, uint64_t Len,
406 Value *CpyDst =
B.CreateInBoundsGEP(
B.getInt8Ty(), Dst, DstLen,
"endptr");
411 TLI->getAsSizeT(Len + 1, *
B.GetInsertBlock()->getModule()));
455 return copyFlags(*CI, emitStrLenMemCpy(Src, Dst, SrcLen,
B));
468 Type *CharTy =
B.getInt8Ty();
469 Value *Char0 =
B.CreateLoad(CharTy, Src);
470 CharVal =
B.CreateTrunc(CharVal, CharTy);
471 Value *Cmp =
B.CreateICmpEQ(Char0, CharVal,
"char0cmp");
475 Value *
And =
B.CreateICmpNE(NBytes, Zero);
476 Cmp =
B.CreateLogicalAnd(
And, Cmp);
480 return B.CreateSelect(Cmp, Src, NullPtr);
502 FunctionType *FT =
Callee->getFunctionType();
503 unsigned IntBits = TLI->getIntSize();
504 if (!FT->getParamType(1)->isIntegerTy(IntBits))
507 unsigned SizeTBits = TLI->getSizeTSize(*CI->
getModule());
511 ConstantInt::get(SizeTTy, Len),
B,
520 return B.CreateIntToPtr(
B.getTrue(), CI->
getType());
529 return B.CreateInBoundsGEP(
B.getInt8Ty(), SrcStr, StrLen,
"strchr");
542 return B.CreateInBoundsGEP(
B.getInt8Ty(), SrcStr,
B.getInt64(
I),
"strchr");
554 if (CharC && CharC->
isZero())
559 unsigned SizeTBits = TLI->getSizeTSize(*CI->
getModule());
564 uint64_t NBytes = Str.size() + 1;
565 Value *
Size = ConstantInt::get(SizeTTy, NBytes);
572 return ConstantInt::get(CI->
getType(), 0);
574 StringRef Str1, Str2;
579 if (HasStr1 && HasStr2)
580 return ConstantInt::get(CI->
getType(),
581 std::clamp(Str1.
compare(Str2), -1, 1));
583 if (HasStr1 && Str1.
empty())
584 return B.CreateNeg(
B.CreateZExt(
585 B.CreateLoad(
B.getInt8Ty(), Str2P,
"strcmpload"), CI->
getType()));
587 if (HasStr2 && Str2.
empty())
588 return B.CreateZExt(
B.CreateLoad(
B.getInt8Ty(), Str1P,
"strcmpload"),
602 TLI->getAsSizeT(std::min(Len1, Len2), *CI->
getModule()),
607 if (!HasStr1 && HasStr2) {
612 }
else if (HasStr1 && !HasStr2) {
634 return ConstantInt::get(CI->
getType(), 0);
646 return ConstantInt::get(CI->
getType(), 0);
651 StringRef Str1, Str2;
656 if (HasStr1 && HasStr2) {
660 return ConstantInt::get(CI->
getType(),
661 std::clamp(SubStr1.
compare(SubStr2), -1, 1));
664 if (HasStr1 && Str1.
empty())
665 return B.CreateNeg(
B.CreateZExt(
666 B.CreateLoad(
B.getInt8Ty(), Str2P,
"strcmpload"), CI->
getType()));
668 if (HasStr2 && Str2.
empty())
669 return B.CreateZExt(
B.CreateLoad(
B.getInt8Ty(), Str1P,
"strcmpload"),
680 if (!HasStr1 && HasStr2) {
681 Len2 = std::min(Len2,
Length);
686 }
else if (HasStr1 && !HasStr2) {
687 Len1 = std::min(Len1,
Length);
701 if (SrcLen &&
Size) {
703 if (SrcLen <= Size->getZExtValue() + 1)
725 CallInst *NewCI =
B.CreateMemCpy(Dst,
Align(1), Src,
Align(1),
740 return StrLen ?
B.CreateInBoundsGEP(
B.getInt8Ty(), Dst, StrLen) :
nullptr;
751 Value *DstEnd =
B.CreateInBoundsGEP(
752 B.getInt8Ty(), Dst, TLI->getAsSizeT(Len - 1, *CI->
getModule()));
756 CallInst *NewCI =
B.CreateMemCpy(Dst,
Align(1), Src,
Align(1), LenV);
775 NBytes = SizeC->getZExtValue();
784 B.CreateStore(
B.getInt8(0), Dst);
797 uint64_t SrcLen = Str.find(
'\0');
800 bool NulTerm = SrcLen < NBytes;
809 SrcLen = std::min(SrcLen, uint64_t(Str.size()));
810 NBytes = std::min(NBytes - 1, SrcLen);
815 B.CreateStore(
B.getInt8(0), Dst);
816 return ConstantInt::get(CI->
getType(), 0);
822 CallInst *NewCI =
B.CreateMemCpy(Dst,
Align(1), Src,
Align(1),
823 TLI->getAsSizeT(NBytes, *CI->
getModule()));
827 Value *EndOff = ConstantInt::get(CI->
getType(), NBytes);
828 Value *EndPtr =
B.CreateInBoundsGEP(
B.getInt8Ty(), Dst, EndOff);
829 B.CreateStore(
B.getInt8(0), EndPtr);
835 return ConstantInt::get(CI->
getType(), SrcLen);
840Value *LibCallSimplifier::optimizeStringNCpy(
CallInst *CI,
bool RetEnd,
857 N = SizeC->getZExtValue();
864 Type *CharTy =
B.getInt8Ty();
865 Value *CharVal =
B.CreateLoad(CharTy, Src,
"stxncpy.char0");
866 B.CreateStore(CharVal, Dst);
872 Value *ZeroChar = ConstantInt::get(CharTy, 0);
873 Value *
Cmp =
B.CreateICmpEQ(CharVal, ZeroChar,
"stpncpy.char0cmp");
875 Value *Off1 =
B.getInt32(1);
876 Value *EndPtr =
B.CreateInBoundsGEP(CharTy, Dst, Off1,
"stpncpy.end");
877 return B.CreateSelect(Cmp, Dst, EndPtr,
"stpncpy.sel");
892 CI->
getAttributes().getParamAttrs(0).getAlignment().valueOrOne();
893 CallInst *NewCI =
B.CreateMemSet(Dst,
B.getInt8(
'\0'),
Size, MemSetAlign);
901 if (
N > SrcLen + 1) {
910 std::string SrcStr = Str.str();
913 SrcStr.resize(
N,
'\0');
914 Src =
B.CreateGlobalString(SrcStr,
"str", 0,
920 CallInst *NewCI =
B.CreateMemCpy(Dst,
Align(1), Src,
Align(1),
929 return B.CreateInBoundsGEP(
B.getInt8Ty(), Dst, Off,
"endptr");
946 return B.CreateZExt(
B.CreateLoad(CharTy, Src,
"char0"),
952 if (BoundCst->isZero())
954 return ConstantInt::get(CI->
getType(), 0);
956 if (BoundCst->isOne()) {
958 Value *CharVal =
B.CreateLoad(CharTy, Src,
"strnlen.char0");
959 Value *ZeroChar = ConstantInt::get(CharTy, 0);
960 Value *
Cmp =
B.CreateICmpNE(CharVal, ZeroChar,
"strnlen.char0cmp");
961 return B.CreateZExt(Cmp, CI->
getType());
971 return B.CreateBinaryIntrinsic(Intrinsic::umin, LenC, Bound);
988 unsigned BW = DL.getIndexTypeSizeInBits(
GEP->getType());
989 SmallMapVector<Value *, APInt, 4> VarOffsets;
990 APInt ConstOffset(BW, 0);
991 assert(CharSize % 8 == 0 &&
"Expected a multiple of 8 sized CharSize");
993 if (!
GEP->collectOffset(DL, BW, VarOffsets, ConstOffset) ||
994 VarOffsets.
size() != 1 || ConstOffset != 0 ||
995 VarOffsets.
begin()->second != CharSize / 8)
998 ConstantDataArraySlice Slice;
1000 uint64_t NullTermIdx;
1001 if (Slice.
Array ==
nullptr) {
1004 NullTermIdx = ~((uint64_t)0);
1005 for (uint64_t
I = 0,
E = Slice.
Length;
I <
E; ++
I) {
1013 if (NullTermIdx == ~((uint64_t)0))
1026 NullTermIdx == Slice.
Length - 1)) {
1028 return B.CreateSub(ConstantInt::get(CI->
getType(), NullTermIdx),
1038 if (LenTrue && LenFalse) {
1040 return OptimizationRemark(
"instcombine",
"simplify-libcalls", CI)
1041 <<
"folded strlen(select) to select of constants";
1043 return B.CreateSelect(
SI->getCondition(),
1044 ConstantInt::get(CI->
getType(), LenTrue - 1),
1045 ConstantInt::get(CI->
getType(), LenFalse - 1));
1053 if (
Value *V = optimizeStringLength(CI,
B, 8))
1061 if (
Value *V = optimizeStringLength(CI,
B, 8, Bound))
1071 unsigned WCharSize = TLI->getWCharSize(M) * 8;
1076 return optimizeStringLength(CI,
B, WCharSize);
1086 if ((HasS1 &&
S1.empty()) || (HasS2 && S2.
empty()))
1090 if (HasS1 && HasS2) {
1091 size_t I =
S1.find_first_of(S2);
1096 B.getInt64(
I),
"strpbrk");
1100 if (HasS2 && S2.
size() == 1)
1125 if ((HasS1 &&
S1.empty()) || (HasS2 && S2.
empty()))
1129 if (HasS1 && HasS2) {
1130 size_t Pos =
S1.find_first_not_of(S2);
1133 return ConstantInt::get(CI->
getType(), Pos);
1145 if (HasS1 &&
S1.empty())
1149 if (HasS1 && HasS2) {
1150 size_t Pos =
S1.find_first_of(S2);
1153 return ConstantInt::get(CI->
getType(), Pos);
1157 if (HasS2 && S2.
empty())
1174 StrLen,
B, DL, TLI);
1182 replaceAllUsesWith(Old, Cmp);
1188 StringRef SearchStr, ToFindStr;
1193 if (HasStr2 && ToFindStr.
empty())
1197 if (HasStr1 && HasStr2) {
1204 return B.CreateConstInBoundsGEP1_64(
B.getInt8Ty(), CI->
getArgOperand(0),
1209 if (HasStr2 && ToFindStr.
size() == 1) {
1230 if (LenC->
isOne()) {
1233 Value *Val =
B.CreateLoad(
B.getInt8Ty(), SrcStr,
"memrchr.char0");
1235 CharVal =
B.CreateTrunc(CharVal,
B.getInt8Ty());
1236 Value *
Cmp =
B.CreateICmpEQ(Val, CharVal,
"memrchr.char0cmp");
1237 return B.CreateSelect(Cmp, SrcStr, NullPtr,
"memrchr.sel");
1245 if (Str.size() == 0)
1254 if (Str.size() < EndOff)
1269 return B.CreateInBoundsGEP(
B.getInt8Ty(), SrcStr,
B.getInt64(Pos));
1271 if (Str.find(Str[Pos]) == Pos) {
1278 Value *SrcPlus =
B.CreateInBoundsGEP(
B.getInt8Ty(), SrcStr,
1279 B.getInt64(Pos),
"memrchr.ptr_plus");
1280 return B.CreateSelect(Cmp, NullPtr, SrcPlus,
"memrchr.sel");
1285 Str = Str.substr(0, EndOff);
1293 Type *Int8Ty =
B.getInt8Ty();
1294 Value *NNeZ =
B.CreateICmpNE(
Size, ConstantInt::get(SizeTy, 0));
1296 CharVal =
B.CreateTrunc(CharVal, Int8Ty);
1297 Value *CEqS0 =
B.CreateICmpEQ(ConstantInt::get(Int8Ty, Str[0]), CharVal);
1298 Value *
And =
B.CreateLogicalAnd(NNeZ, CEqS0);
1299 Value *SizeM1 =
B.CreateSub(
Size, ConstantInt::get(SizeTy, 1));
1301 B.CreateInBoundsGEP(Int8Ty, SrcStr, SizeM1,
"memrchr.ptr_plus");
1302 return B.CreateSelect(
And, SrcPlus, NullPtr,
"memrchr.sel");
1325 if (LenC->
isOne()) {
1328 Value *Val =
B.CreateLoad(
B.getInt8Ty(), SrcStr,
"memchr.char0");
1330 CharVal =
B.CreateTrunc(CharVal,
B.getInt8Ty());
1331 Value *
Cmp =
B.CreateICmpEQ(Val, CharVal,
"memchr.char0cmp");
1332 return B.CreateSelect(Cmp, SrcStr, NullPtr,
"memchr.sel");
1352 Value *SrcPlus =
B.CreateInBoundsGEP(
B.getInt8Ty(), SrcStr,
B.getInt64(Pos),
1354 return B.CreateSelect(Cmp, NullPtr, SrcPlus);
1357 if (Str.size() == 0)
1366 size_t Pos = Str.find_first_not_of(Str[0]);
1382 CharVal =
B.CreateTrunc(CharVal, Int8Ty);
1384 Value *Sel1 = NullPtr;
1387 Value *PosVal = ConstantInt::get(SizeTy, Pos);
1388 Value *StrPos = ConstantInt::get(Int8Ty, Str[Pos]);
1389 Value *CEqSPos =
B.CreateICmpEQ(CharVal, StrPos);
1391 Value *
And =
B.CreateAnd(CEqSPos, NGtPos);
1392 Value *SrcPlus =
B.CreateInBoundsGEP(
B.getInt8Ty(), SrcStr, PosVal);
1393 Sel1 =
B.CreateSelect(
And, SrcPlus, NullPtr,
"memchr.sel1");
1396 Value *Str0 = ConstantInt::get(Int8Ty, Str[0]);
1397 Value *CEqS0 =
B.CreateICmpEQ(Str0, CharVal);
1398 Value *NNeZ =
B.CreateICmpNE(
Size, ConstantInt::get(SizeTy, 0));
1400 return B.CreateSelect(
And, SrcStr, Sel1,
"memchr.sel2");
1431 *std::max_element(
reinterpret_cast<const unsigned char *
>(Str.begin()),
1432 reinterpret_cast<const unsigned char *
>(Str.end()));
1439 if (!DL.fitsInLegalInteger(Max + 1)) {
1445 std::string SortedStr = Str.str();
1448 unsigned NonContRanges = 1;
1449 for (
size_t i = 1; i < SortedStr.size(); ++i) {
1450 if (SortedStr[i] > SortedStr[i - 1] + 1) {
1457 if (NonContRanges > 2)
1461 CharVal =
B.CreateTrunc(CharVal,
B.getInt8Ty());
1464 for (
unsigned char C : SortedStr)
1465 CharCompares.
push_back(
B.CreateICmpEQ(CharVal,
B.getInt8(
C)));
1467 return B.CreateIntToPtr(
B.CreateOr(CharCompares), CI->
getType());
1472 unsigned char Width =
NextPowerOf2(std::max((
unsigned char)7, Max));
1478 Value *BitfieldC =
B.getInt(Bitfield);
1482 C =
B.CreateAnd(
C,
B.getIntN(Width, 0xFF));
1489 Value *Shl =
B.CreateShl(
B.getIntN(Width, 1ULL),
C);
1490 Value *
Bits =
B.CreateIsNotNull(
B.CreateAnd(Shl, BitfieldC),
"memchr.bits");
1494 return B.CreateIntToPtr(
B.CreateLogicalAnd(Bounds, Bits,
"memchr"),
1519 if (Pos == MinSize ||
1520 (StrNCmp && (LStr[Pos] ==
'\0' && RStr[Pos] ==
'\0'))) {
1528 if (LStr[Pos] != RStr[Pos])
1533 typedef unsigned char UChar;
1534 int IRes = UChar(LStr[Pos]) < UChar(RStr[Pos]) ? -1 : 1;
1535 Value *MaxSize = ConstantInt::get(
Size->getType(), Pos);
1538 return B.CreateSelect(Cmp, Zero, Res);
1550 Value *LHSV =
B.CreateZExt(
B.CreateLoad(
B.getInt8Ty(),
LHS,
"lhsc"),
1552 Value *RHSV =
B.CreateZExt(
B.CreateLoad(
B.getInt8Ty(),
RHS,
"rhsc"),
1554 return B.CreateSub(LHSV, RHSV,
"chardiff");
1562 Align PrefAlignment =
DL.getPrefTypeAlign(IntType);
1565 Value *LHSV =
nullptr;
1569 Value *RHSV =
nullptr;
1578 LHSV =
B.CreateLoad(IntType,
LHS,
"lhsv");
1580 RHSV =
B.CreateLoad(IntType,
RHS,
"rhsv");
1581 return B.CreateZExt(
B.CreateICmpNE(LHSV, RHSV), CI->
getType(),
"memcmp");
1589Value *LibCallSimplifier::optimizeMemCmpBCmpCommon(
CallInst *CI,
1609 if (
Value *V = optimizeMemCmpBCmpCommon(CI,
B))
1627 return optimizeMemCmpBCmpCommon(CI,
B);
1653 if (
N->isNullValue())
1666 if (
N->getZExtValue() <= SrcStr.
size()) {
1675 ConstantInt::get(
N->getType(), std::min(uint64_t(Pos + 1),
N->getZExtValue()));
1678 return Pos + 1 <=
N->getZExtValue()
1679 ?
B.CreateInBoundsGEP(
B.getInt8Ty(), Dst, NewN)
1693 return B.CreateInBoundsGEP(
B.getInt8Ty(), Dst,
N);
1731Value *LibCallSimplifier::maybeOptimizeNoBuiltinOperatorNew(
CallInst *CI,
1739 if (!TLI->getLibFunc(*Callee, Func))
1743 case LibFunc_ZnwmRKSt9nothrow_t:
1744 case LibFunc_ZnwmSt11align_val_t:
1745 case LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t:
1747 case LibFunc_ZnamRKSt9nothrow_t:
1748 case LibFunc_ZnamSt11align_val_t:
1749 case LibFunc_ZnamSt11align_val_tRKSt9nothrow_t:
1750 case LibFunc_size_returning_new:
1751 case LibFunc_size_returning_new_aligned:
1758 case LibFunc_Znwm12__hot_cold_t:
1759 case LibFunc_ZnwmRKSt9nothrow_t12__hot_cold_t:
1760 case LibFunc_ZnwmSt11align_val_t12__hot_cold_t:
1761 case LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t12__hot_cold_t:
1762 case LibFunc_Znam12__hot_cold_t:
1763 case LibFunc_ZnamRKSt9nothrow_t12__hot_cold_t:
1764 case LibFunc_ZnamSt11align_val_t12__hot_cold_t:
1765 case LibFunc_ZnamSt11align_val_tRKSt9nothrow_t12__hot_cold_t:
1766 case LibFunc_size_returning_new_hot_cold:
1767 case LibFunc_size_returning_new_aligned_hot_cold:
1776 return optimizeNew(CI,
B, Func);
1789 if (CI->
getAttributes().getFnAttr(
"memprof").getValueAsString() ==
"cold")
1791 else if (CI->
getAttributes().getFnAttr(
"memprof").getValueAsString() ==
1794 else if (CI->
getAttributes().getFnAttr(
"memprof").getValueAsString() ==
"hot")
1796 else if (CI->
getAttributes().getFnAttr(
"memprof").getValueAsString() ==
1810 case LibFunc_Znwm12__hot_cold_t:
1813 LibFunc_Znwm12__hot_cold_t, HotCold);
1817 LibFunc_Znwm12__hot_cold_t, HotCold);
1819 case LibFunc_Znam12__hot_cold_t:
1822 LibFunc_Znam12__hot_cold_t, HotCold);
1826 LibFunc_Znam12__hot_cold_t, HotCold);
1828 case LibFunc_ZnwmRKSt9nothrow_t12__hot_cold_t:
1832 LibFunc_ZnwmRKSt9nothrow_t12__hot_cold_t, HotCold);
1834 case LibFunc_ZnwmRKSt9nothrow_t:
1836 TLI, LibFunc_ZnwmRKSt9nothrow_t12__hot_cold_t,
1839 case LibFunc_ZnamRKSt9nothrow_t12__hot_cold_t:
1843 LibFunc_ZnamRKSt9nothrow_t12__hot_cold_t, HotCold);
1845 case LibFunc_ZnamRKSt9nothrow_t:
1847 TLI, LibFunc_ZnamRKSt9nothrow_t12__hot_cold_t,
1850 case LibFunc_ZnwmSt11align_val_t12__hot_cold_t:
1854 LibFunc_ZnwmSt11align_val_t12__hot_cold_t, HotCold);
1856 case LibFunc_ZnwmSt11align_val_t:
1858 TLI, LibFunc_ZnwmSt11align_val_t12__hot_cold_t,
1861 case LibFunc_ZnamSt11align_val_t12__hot_cold_t:
1865 LibFunc_ZnamSt11align_val_t12__hot_cold_t, HotCold);
1867 case LibFunc_ZnamSt11align_val_t:
1869 TLI, LibFunc_ZnamSt11align_val_t12__hot_cold_t,
1872 case LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t12__hot_cold_t:
1876 TLI, LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t12__hot_cold_t,
1879 case LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t:
1882 TLI, LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t12__hot_cold_t, HotCold);
1884 case LibFunc_ZnamSt11align_val_tRKSt9nothrow_t12__hot_cold_t:
1888 TLI, LibFunc_ZnamSt11align_val_tRKSt9nothrow_t12__hot_cold_t,
1891 case LibFunc_ZnamSt11align_val_tRKSt9nothrow_t:
1894 TLI, LibFunc_ZnamSt11align_val_tRKSt9nothrow_t12__hot_cold_t, HotCold);
1896 case LibFunc_size_returning_new:
1898 LibFunc_size_returning_new_hot_cold,
1901 case LibFunc_size_returning_new_hot_cold:
1904 LibFunc_size_returning_new_hot_cold,
1907 case LibFunc_size_returning_new_aligned:
1910 LibFunc_size_returning_new_aligned_hot_cold, HotCold);
1912 case LibFunc_size_returning_new_aligned_hot_cold:
1916 LibFunc_size_returning_new_aligned_hot_cold, HotCold);
1943 Value *
Op = Cast->getOperand(0);
1944 if (
Op->getType()->isFloatTy())
1953 return ConstantFP::get(Const->getContext(),
F);
1961 bool isPrecise =
false) {
1993 CallerName.
size() == (CalleeName.
size() + 1) &&
2006 R =
isBinary ?
B.CreateIntrinsic(IID,
B.getFloatTy(), V)
2007 :
B.CreateIntrinsic(IID,
B.getFloatTy(), V[0]);
2014 return B.CreateFPExt(R,
B.getDoubleTy());
2020 bool isPrecise =
false) {
2027 bool isPrecise =
false) {
2041 assert(
Op->getType()->isArrayTy() &&
"Unexpected signature for cabs!");
2043 Real =
B.CreateExtractValue(
Op, 0,
"real");
2044 Imag =
B.CreateExtractValue(
Op, 1,
"imag");
2054 Value *AbsOp =
nullptr;
2056 if (ConstReal->isZero())
2060 if (ConstImag->isZero())
2066 *CI,
B.CreateUnaryIntrinsic(Intrinsic::fabs, AbsOp, CI,
"cabs"));
2073 Value *RealReal =
B.CreateFMulFMF(Real, Real, CI);
2074 Value *ImagImag =
B.CreateFMulFMF(Imag, Imag, CI);
2076 *CI,
B.CreateUnaryIntrinsic(Intrinsic::sqrt,
2077 B.CreateFAddFMF(RealReal, ImagImag, CI), CI,
2088 unsigned BitWidth =
Op->getType()->getScalarSizeInBits();
2090 Type *IntTy =
Op->getType()->getWithNewBitWidth(DstWidth);
2092 :
B.CreateZExt(
Op, IntTy);
2128 if (CalleeFn && TLI->getLibFunc(CalleeFn->
getName(), LibFn) &&
2133 LibFunc LibFnFloat, LibFnDouble, LibFnLongDouble;
2141 ExpName = TLI->getName(LibFunc_exp);
2142 ID = Intrinsic::exp;
2143 LibFnFloat = LibFunc_expf;
2144 LibFnDouble = LibFunc_exp;
2145 LibFnLongDouble = LibFunc_expl;
2150 ExpName = TLI->getName(LibFunc_exp2);
2151 ID = Intrinsic::exp2;
2152 LibFnFloat = LibFunc_exp2f;
2153 LibFnDouble = LibFunc_exp2;
2154 LibFnLongDouble = LibFunc_exp2l;
2161 ?
B.CreateUnaryIntrinsic(
ID,
FMul,
nullptr, ExpName)
2170 substituteInParent(BaseFn, ExpFn);
2181 AttributeList NoAttrs;
2189 hasFloatFn(M, TLI, Ty, LibFunc_ldexp, LibFunc_ldexpf, LibFunc_ldexpl))) {
2194 Constant *One = ConstantFP::get(Ty, 1.0);
2197 return copyFlags(*Pow,
B.CreateIntrinsic(Intrinsic::ldexp,
2198 {Ty, ExpoI->getType()},
2199 {One, ExpoI}, Pow,
"exp2"));
2203 One, ExpoI, TLI, LibFunc_ldexp, LibFunc_ldexpf,
2204 LibFunc_ldexpl,
B, NoAttrs));
2209 if (
hasFloatFn(M, TLI, Ty, LibFunc_exp2, LibFunc_exp2f, LibFunc_exp2l)) {
2212 BaseR = BaseR / *BaseF;
2214 const APFloat *NF = IsReciprocal ? &BaseR : BaseF;
2216 if ((IsInteger || IsReciprocal) &&
2219 NI > 1 && NI.isPowerOf2()) {
2220 double N = NI.logBase2() * (IsReciprocal ? -1.0 : 1.0);
2221 Value *
FMul =
B.CreateFMul(Expo, ConstantFP::get(Ty,
N),
"mul");
2223 return copyFlags(*Pow,
B.CreateUnaryIntrinsic(Intrinsic::exp2,
FMul,
2228 LibFunc_exp2l,
B, NoAttrs));
2234 hasFloatFn(M, TLI, Ty, LibFunc_exp10, LibFunc_exp10f, LibFunc_exp10l)) {
2237 CallInst *NewExp10 =
2238 B.CreateIntrinsic(Intrinsic::exp10, {Ty}, {Expo}, Pow,
"exp10");
2243 LibFunc_exp10f, LibFunc_exp10l,
2253 "pow(1.0, y) should have been simplified earlier!");
2255 Value *Log =
nullptr;
2262 Value *
FMul =
B.CreateFMul(Log, Expo,
"mul");
2264 return copyFlags(*Pow,
B.CreateUnaryIntrinsic(Intrinsic::exp2,
FMul,
2266 else if (
hasFloatFn(M, TLI, Ty, LibFunc_exp2, LibFunc_exp2f,
2270 LibFunc_exp2l,
B, NoAttrs));
2282 return B.CreateUnaryIntrinsic(Intrinsic::sqrt, V,
nullptr,
"sqrt");
2285 if (
hasFloatFn(M, TLI, V->getType(), LibFunc_sqrt, LibFunc_sqrtf,
2291 LibFunc_sqrtl,
B, Attrs);
2318 Base, SimplifyQuery(DL, TLI, DT, AC, Pow,
true,
true, DC)))
2328 Sqrt =
B.CreateUnaryIntrinsic(Intrinsic::fabs, Sqrt,
nullptr,
"abs");
2337 Value *FCmp =
B.CreateFCmpOEQ(
Base, NegInf,
"isinf");
2338 Sqrt =
B.CreateSelect(FCmp, PosInf, Sqrt);
2343 Sqrt =
B.CreateFDiv(ConstantFP::get(Ty, 1.0), Sqrt,
"reciprocal");
2352 return B.CreateIntrinsic(Intrinsic::powi, Types, Args);
2366 IRBuilderBase::FastMathFlagGuard Guard(
B);
2374 if (
Value *Exp = replacePowWithExp(Pow,
B))
2381 return B.CreateFDiv(ConstantFP::get(Ty, 1.0),
Base,
"reciprocal");
2385 return ConstantFP::get(Ty, 1.0);
2393 return B.CreateFMul(
Base,
Base,
"square");
2395 if (
Value *Sqrt = replacePowWithSqrt(Pow,
B))
2406 Value *Sqrt =
nullptr;
2407 if (!ExpoA.isInteger()) {
2421 if (!ExpoI.isInteger())
2433 APSInt IntExpo(TLI->getIntSize(),
false);
2440 Base, ConstantInt::get(
B.getIntNTy(TLI->getIntSize()), IntExpo),
2444 return B.CreateFMul(PowI, Sqrt);
2458 if (UnsafeFPShrink && Name == TLI->getName(LibFunc_pow) &&
2459 hasFloatVersion(M, Name)) {
2472 if (UnsafeFPShrink && Name == TLI->getName(LibFunc_exp2) &&
2473 hasFloatVersion(M, Name))
2482 const bool UseIntrinsic =
Callee->isIntrinsic();
2493 hasFloatFn(M, TLI, Ty, LibFunc_ldexp, LibFunc_ldexpf, LibFunc_ldexpl))) {
2495 Constant *One = ConstantFP::get(Ty, 1.0);
2498 return copyFlags(*CI,
B.CreateIntrinsic(Intrinsic::ldexp,
2499 {Ty, Exp->getType()},
2503 IRBuilderBase::FastMathFlagGuard Guard(
B);
2506 One, Exp, TLI, LibFunc_ldexp, LibFunc_ldexpf,
2507 LibFunc_ldexpl,
B, AttributeList()));
2521 if ((Name ==
"fmin" || Name ==
"fmax") && hasFloatVersion(M, Name))
2536 : Intrinsic::maxnum;
2543 StringRef LogNm = LogFn->
getName();
2548 if (UnsafeFPShrink && hasFloatVersion(
Mod, LogNm))
2552 LibFunc LogLb, ExpLb, Exp2Lb, Exp10Lb, PowLb;
2555 if (TLI->getLibFunc(LogNm, LogLb)) {
2558 LogID = Intrinsic::log;
2559 ExpLb = LibFunc_expf;
2560 Exp2Lb = LibFunc_exp2f;
2561 Exp10Lb = LibFunc_exp10f;
2562 PowLb = LibFunc_powf;
2565 LogID = Intrinsic::log;
2566 ExpLb = LibFunc_exp;
2567 Exp2Lb = LibFunc_exp2;
2568 Exp10Lb = LibFunc_exp10;
2569 PowLb = LibFunc_pow;
2572 LogID = Intrinsic::log;
2573 ExpLb = LibFunc_expl;
2574 Exp2Lb = LibFunc_exp2l;
2575 Exp10Lb = LibFunc_exp10l;
2576 PowLb = LibFunc_powl;
2579 LogID = Intrinsic::log2;
2580 ExpLb = LibFunc_expf;
2581 Exp2Lb = LibFunc_exp2f;
2582 Exp10Lb = LibFunc_exp10f;
2583 PowLb = LibFunc_powf;
2586 LogID = Intrinsic::log2;
2587 ExpLb = LibFunc_exp;
2588 Exp2Lb = LibFunc_exp2;
2589 Exp10Lb = LibFunc_exp10;
2590 PowLb = LibFunc_pow;
2593 LogID = Intrinsic::log2;
2594 ExpLb = LibFunc_expl;
2595 Exp2Lb = LibFunc_exp2l;
2596 Exp10Lb = LibFunc_exp10l;
2597 PowLb = LibFunc_powl;
2599 case LibFunc_log10f:
2600 LogID = Intrinsic::log10;
2601 ExpLb = LibFunc_expf;
2602 Exp2Lb = LibFunc_exp2f;
2603 Exp10Lb = LibFunc_exp10f;
2604 PowLb = LibFunc_powf;
2607 LogID = Intrinsic::log10;
2608 ExpLb = LibFunc_exp;
2609 Exp2Lb = LibFunc_exp2;
2610 Exp10Lb = LibFunc_exp10;
2611 PowLb = LibFunc_pow;
2613 case LibFunc_log10l:
2614 LogID = Intrinsic::log10;
2615 ExpLb = LibFunc_expl;
2616 Exp2Lb = LibFunc_exp2l;
2617 Exp10Lb = LibFunc_exp10l;
2618 PowLb = LibFunc_powl;
2626 if (!IsKnownNoErrno) {
2627 SimplifyQuery SQ(DL, TLI, DT, AC, Log,
true,
true, DC);
2637 if (IsKnownNoErrno) {
2638 auto *NewLog =
B.CreateUnaryIntrinsic(LogID, Log->
getArgOperand(0), Log);
2639 NewLog->copyMetadata(*Log);
2642 }
else if (LogID == Intrinsic::log || LogID == Intrinsic::log2 ||
2643 LogID == Intrinsic::log10) {
2645 ExpLb = LibFunc_expf;
2646 Exp2Lb = LibFunc_exp2f;
2647 Exp10Lb = LibFunc_exp10f;
2648 PowLb = LibFunc_powf;
2650 ExpLb = LibFunc_exp;
2651 Exp2Lb = LibFunc_exp2;
2652 Exp10Lb = LibFunc_exp10;
2653 PowLb = LibFunc_pow;
2664 IRBuilderBase::FastMathFlagGuard Guard(
B);
2669 TLI->getLibFunc(*Arg, ArgLb);
2672 AttributeList NoAttrs;
2673 if (ArgLb == PowLb || ArgID == Intrinsic::pow || ArgID == Intrinsic::powi) {
2676 ?
B.CreateUnaryIntrinsic(LogID, Arg->
getOperand(0),
nullptr,
"log")
2680 if (ArgID == Intrinsic::powi)
2681 Y =
B.CreateSIToFP(
Y, Ty,
"cast");
2682 Value *MulY =
B.CreateFMul(
Y, LogX,
"mul");
2685 substituteInParent(Arg, MulY);
2691 if (ArgLb == ExpLb || ArgLb == Exp2Lb || ArgLb == Exp10Lb ||
2692 ArgID == Intrinsic::exp || ArgID == Intrinsic::exp2) {
2694 if (ArgLb == ExpLb || ArgID == Intrinsic::exp)
2697 else if (ArgLb == Exp2Lb || ArgID == Intrinsic::exp2)
2698 Eul = ConstantFP::get(Log->
getType(), 2.0);
2700 Eul = ConstantFP::get(Log->
getType(), 10.0);
2702 ?
B.CreateUnaryIntrinsic(LogID, Eul,
nullptr,
"log")
2707 substituteInParent(Arg, MulY);
2725 TLI->getLibFunc(*Arg, ArgLb);
2727 LibFunc SqrtLb, ExpLb, Exp2Lb, Exp10Lb;
2729 if (TLI->getLibFunc(SqrtFn->
getName(), SqrtLb))
2732 ExpLb = LibFunc_expf;
2733 Exp2Lb = LibFunc_exp2f;
2734 Exp10Lb = LibFunc_exp10f;
2737 ExpLb = LibFunc_exp;
2738 Exp2Lb = LibFunc_exp2;
2739 Exp10Lb = LibFunc_exp10;
2742 ExpLb = LibFunc_expl;
2743 Exp2Lb = LibFunc_exp2l;
2744 Exp10Lb = LibFunc_exp10l;
2751 ExpLb = LibFunc_expf;
2752 Exp2Lb = LibFunc_exp2f;
2753 Exp10Lb = LibFunc_exp10f;
2755 ExpLb = LibFunc_exp;
2756 Exp2Lb = LibFunc_exp2;
2757 Exp10Lb = LibFunc_exp10;
2763 if (ArgLb != ExpLb && ArgLb != Exp2Lb && ArgLb != Exp10Lb &&
2764 ArgID != Intrinsic::exp && ArgID != Intrinsic::exp2)
2767 IRBuilderBase::InsertPointGuard Guard(
B);
2768 B.SetInsertPoint(Arg);
2771 B.CreateFMulFMF(ExpOperand, ConstantFP::get(ExpOperand->getType(), 0.5),
2786 (
Callee->getName() ==
"sqrt" ||
2787 Callee->getIntrinsicID() == Intrinsic::sqrt))
2790 if (
Value *Opt = mergeSqrtToExp(CI,
B))
2797 if (!
I ||
I->getOpcode() != Instruction::FMul || !
I->isFast())
2803 Value *Op0 =
I->getOperand(0);
2804 Value *Op1 =
I->getOperand(1);
2805 Value *RepeatOp =
nullptr;
2806 Value *OtherOp =
nullptr;
2838 B.CreateUnaryIntrinsic(Intrinsic::fabs, RepeatOp,
I,
"fabs");
2844 B.CreateUnaryIntrinsic(Intrinsic::sqrt, OtherOp,
I,
"sqrt");
2845 return copyFlags(*CI,
B.CreateFMulFMF(FabsCall, SqrtCall,
I));
2857 SimplifyQuery SQ(DL, TLI, DT, AC, CI,
true,
true, DC);
2860 KnownFPClass Known1 =
2863 const fltSemantics &FltSem =
2872 FRemI->setHasNoNaNs(
true);
2878Value *LibCallSimplifier::optimizeTrigInversionPairs(
CallInst *CI,
2884 if (UnsafeFPShrink &&
2885 (Name ==
"tan" || Name ==
"atanh" || Name ==
"sinh" || Name ==
"cosh" ||
2887 hasFloatVersion(M, Name))
2896 if (!CI->
isFast() || !OpC->isFast())
2906 if (
F && TLI->getLibFunc(
F->getName(), Func) &&
2908 LibFunc inverseFunc = llvm::StringSwitch<LibFunc>(
Callee->getName())
2909 .Case(
"tan", LibFunc_atan)
2910 .Case(
"atanh", LibFunc_tanh)
2911 .Case(
"sinh", LibFunc_asinh)
2912 .Case(
"cosh", LibFunc_acosh)
2913 .Case(
"tanf", LibFunc_atanf)
2914 .Case(
"atanhf", LibFunc_tanhf)
2915 .Case(
"sinhf", LibFunc_asinhf)
2916 .Case(
"coshf", LibFunc_acoshf)
2917 .Case(
"tanl", LibFunc_atanl)
2918 .Case(
"atanhl", LibFunc_tanhl)
2919 .Case(
"sinhl", LibFunc_asinhl)
2920 .Case(
"coshl", LibFunc_acoshl)
2921 .Case(
"asinh", LibFunc_sinh)
2922 .Case(
"asinhf", LibFunc_sinhf)
2923 .Case(
"asinhl", LibFunc_sinhl)
2925 if (Func == inverseFunc)
2926 Ret = OpC->getArgOperand(0);
2948 Name =
"__sincospif_stret";
2957 Name =
"__sincospi_stret";
2966 M, *TLI, TheLibFunc, OrigCallee->
getAttributes(), ResTy, ArgTy);
2971 B.SetInsertPoint(ArgInst->getParent(), ++ArgInst->getIterator());
2975 BasicBlock &EntryBB =
B.GetInsertBlock()->getParent()->getEntryBlock();
2976 B.SetInsertPoint(&EntryBB, EntryBB.
begin());
2979 SinCos =
B.CreateCall(Callee, Arg,
"sincospi");
2982 Sin =
B.CreateExtractValue(SinCos, 0,
"sinpi");
2983 Cos =
B.CreateExtractValue(SinCos, 1,
"cospi");
2985 Sin =
B.CreateExtractElement(SinCos, ConstantInt::get(
B.getInt32Ty(), 0),
2987 Cos =
B.CreateExtractElement(SinCos, ConstantInt::get(
B.getInt32Ty(), 1),
3001 Call->copyFastMathFlags(CI);
3015 Call->copyFastMathFlags(CI);
3068 for (User *U : Arg->
users())
3069 classifyArgUse(U,
F, IsFloat, SinCalls, CosCalls, SinCosCalls);
3075 Value *Sin, *Cos, *SinCos;
3080 auto replaceTrigInsts = [
this](SmallVectorImpl<CallInst *> &Calls,
3082 for (CallInst *
C : Calls)
3083 replaceAllUsesWith(
C, Res);
3086 replaceTrigInsts(SinCalls, Sin);
3087 replaceTrigInsts(CosCalls, Cos);
3088 replaceTrigInsts(SinCosCalls, SinCos);
3090 return IsSin ? Sin : Cos;
3093void LibCallSimplifier::classifyArgUse(
3109 if (!Callee || !TLI->getLibFunc(*Callee, Func) ||
3115 if (Func == LibFunc_sinpif)
3117 else if (Func == LibFunc_cospif)
3119 else if (Func == LibFunc_sincospif_stret)
3122 if (Func == LibFunc_sinpi)
3124 else if (Func == LibFunc_cospi)
3126 else if (Func == LibFunc_sincospi_stret)
3148 unsigned IntBW = TLI->getIntSize();
3149 APSInt QuotInt(IntBW,
false);
3156 B.CreateAlignedStore(
3157 ConstantInt::get(
B.getIntNTy(IntBW), QuotInt.getExtValue()),
3159 return ConstantFP::get(CI->
getType(), Rem);
3186 return ConstantFP::get(CI->
getType(), MaxVal);
3198 Type *ArgType =
Op->getType();
3199 Value *
V =
B.CreateIntrinsic(Intrinsic::cttz, {ArgType}, {
Op,
B.getTrue()},
3201 V =
B.CreateAdd(V, ConstantInt::get(
V->getType(), 1));
3202 V =
B.CreateIntCast(V, RetType,
false);
3205 return B.CreateSelect(
Cond, V, ConstantInt::get(RetType, 0));
3212 Type *ArgType =
Op->getType();
3213 Value *
V =
B.CreateIntrinsic(Intrinsic::ctlz, {ArgType}, {
Op,
B.getFalse()},
3217 return B.CreateIntCast(V, CI->
getType(),
false);
3224 Value *IsNeg =
B.CreateIsNeg(
X);
3225 Value *NegX =
B.CreateNSWNeg(
X,
"neg");
3226 return B.CreateSelect(IsNeg, NegX,
X);
3232 Type *ArgType =
Op->getType();
3233 Op =
B.CreateSub(
Op, ConstantInt::get(ArgType,
'0'),
"isdigittmp");
3234 Op =
B.CreateICmpULT(
Op, ConstantInt::get(ArgType, 10),
"isdigit");
3241 Type *ArgType =
Op->getType();
3242 Op =
B.CreateICmpULT(
Op, ConstantInt::get(ArgType, 128),
"isascii");
3249 ConstantInt::get(CI->
getType(), 0x7F));
3279 return convertStrToInt(CI, Str, EndPtr, CInt->getSExtValue(), AsSigned,
B);
3311 if (!Callee || !Callee->isDeclaration())
3320 if (StreamArg >= (
int)CI->
arg_size())
3328 return GV->
getName() ==
"stderr";
3333 StringRef FormatStr;
3338 if (FormatStr.
empty())
3349 if (FormatStr.
size() == 1 || FormatStr ==
"%%") {
3353 Value *IntChar = ConstantInt::get(IntTy, (unsigned char)FormatStr[0]);
3354 return copyFlags(*CI, emitPutChar(IntChar, B, TLI));
3358 if (FormatStr ==
"%s" && CI->
arg_size() > 1) {
3359 StringRef OperandStr;
3360 if (!getConstantStringInfo(CI->getOperand(1), OperandStr))
3363 if (OperandStr.empty())
3366 if (OperandStr.size() == 1) {
3370 Value *IntChar = ConstantInt::get(IntTy, (unsigned char)OperandStr[0]);
3371 return copyFlags(*CI, emitPutChar(IntChar, B, TLI));
3374 if (OperandStr.back() ==
'\n') {
3375 OperandStr = OperandStr.drop_back();
3376 Value *GV = B.CreateGlobalString(OperandStr,
"str");
3377 return copyFlags(*CI, emitPutS(GV, B, TLI));
3383 if (FormatStr.
back() ==
'\n' &&
3387 FormatStr = FormatStr.drop_back();
3388 Value *GV = B.CreateGlobalString(FormatStr,
"str");
3389 return copyFlags(*CI, emitPutS(GV, B, TLI));
3394 if (FormatStr ==
"%c" && CI->
arg_size() > 1 &&
3398 Value *IntChar = B.CreateIntCast(CI->getArgOperand(1), IntTy, false);
3399 return copyFlags(*CI, emitPutChar(IntChar, B, TLI));
3403 if (FormatStr ==
"%s\n" && CI->
arg_size() > 1 &&
3413 FunctionType *FT =
Callee->getFunctionType();
3414 if (
Value *V = optimizePrintFString(CI,
B)) {
3425 Callee->getAttributes());
3427 New->setCalledFunction(IPrintFFn);
3437 Callee->getAttributes());
3439 New->setCalledFunction(SmallPrintFFn);
3447Value *LibCallSimplifier::optimizeSPrintFString(
CallInst *CI,
3450 StringRef FormatStr;
3466 return ConstantInt::get(CI->
getType(), FormatStr.
size());
3471 if (FormatStr.
size() != 2 || FormatStr[0] !=
'%' || CI->
arg_size() < 3)
3475 if (FormatStr[1] ==
'c') {
3481 B.CreateStore(V,
Ptr);
3482 Ptr =
B.CreateInBoundsGEP(
B.getInt8Ty(),
Ptr,
B.getInt32(1),
"nul");
3483 B.CreateStore(
B.getInt8(0),
Ptr);
3485 return ConstantInt::get(CI->
getType(), 1);
3488 if (FormatStr[1] ==
's') {
3501 TLI->getAsSizeT(SrcLen, *CI->
getModule()));
3503 return ConstantInt::get(CI->
getType(), SrcLen - 1);
3506 Value *PtrDiff =
B.CreatePtrDiff(
B.getInt8Ty(), V, Dest);
3507 return B.CreateIntCast(PtrDiff, CI->
getType(),
false);
3518 B.CreateAdd(Len, ConstantInt::get(
Len->getType(), 1),
"leninc");
3522 return B.CreateIntCast(Len, CI->
getType(),
false);
3530 FunctionType *FT =
Callee->getFunctionType();
3531 if (
Value *V = optimizeSPrintFString(CI,
B)) {
3542 FT,
Callee->getAttributes());
3544 New->setCalledFunction(SIPrintFFn);
3554 Callee->getAttributes());
3556 New->setCalledFunction(SmallSPrintFFn);
3572 assert(StrArg || (
N < 2 && Str.size() == 1));
3574 unsigned IntBits = TLI->getIntSize();
3575 uint64_t IntMax =
maxIntN(IntBits);
3576 if (Str.size() > IntMax)
3582 Value *StrLen = ConstantInt::get(CI->
getType(), Str.size());
3592 NCopy = Str.size() + 1;
3597 if (NCopy && StrArg)
3600 TLI->getAsSizeT(NCopy, *CI->
getModule())));
3609 Value *NulOff =
B.getIntN(IntBits, NCopy);
3610 Value *DstEnd =
B.CreateInBoundsGEP(Int8Ty, DstArg, NulOff,
"endptr");
3611 B.CreateStore(ConstantInt::get(Int8Ty, 0), DstEnd);
3615Value *LibCallSimplifier::optimizeSnPrintFString(
CallInst *CI,
3622 uint64_t
N =
Size->getZExtValue();
3623 uint64_t IntMax =
maxIntN(TLI->getIntSize());
3633 StringRef FormatStr;
3644 return emitSnPrintfMemCpy(CI, FmtArg, FormatStr,
N,
B);
3649 if (FormatStr.
size() != 2 || FormatStr[0] !=
'%' || CI->
arg_size() != 4)
3653 if (FormatStr[1] ==
'c') {
3658 StringRef CharStr(
"*");
3659 return emitSnPrintfMemCpy(CI,
nullptr, CharStr,
N,
B);
3667 B.CreateStore(V,
Ptr);
3668 Ptr =
B.CreateInBoundsGEP(
B.getInt8Ty(),
Ptr,
B.getInt32(1),
"nul");
3669 B.CreateStore(
B.getInt8(0),
Ptr);
3670 return ConstantInt::get(CI->
getType(), 1);
3673 if (FormatStr[1] !=
's')
3682 return emitSnPrintfMemCpy(CI, StrArg, Str,
N,
B);
3686 if (
Value *V = optimizeSnPrintFString(CI,
B)) {
3695Value *LibCallSimplifier::optimizeFPrintFString(
CallInst *CI,
3697 optimizeErrorReporting(CI,
B, 0);
3700 StringRef FormatStr;
3724 if (FormatStr.
size() != 2 || FormatStr[0] !=
'%' || CI->
arg_size() < 3)
3728 if (FormatStr[1] ==
'c') {
3732 Type *IntTy =
B.getIntNTy(TLI->getIntSize());
3738 if (FormatStr[1] ==
's') {
3751 FunctionType *FT =
Callee->getFunctionType();
3752 if (
Value *V = optimizeFPrintFString(CI,
B)) {
3761 FT,
Callee->getAttributes());
3763 New->setCalledFunction(FIPrintFFn);
3772 auto SmallFPrintFFn =
3774 Callee->getAttributes());
3776 New->setCalledFunction(SmallFPrintFFn);
3785 optimizeErrorReporting(CI,
B, 3);
3790 if (SizeC && CountC) {
3795 return ConstantInt::get(CI->
getType(), 0);
3802 Value *Cast =
B.CreateIntCast(Char, IntTy,
true,
"chari");
3804 return NewCI ? ConstantInt::get(CI->
getType(), 1) : nullptr;
3812 optimizeErrorReporting(CI,
B, 1);
3830 unsigned SizeTBits = TLI->getSizeTSize(*CI->
getModule());
3835 ConstantInt::get(SizeTTy, Len - 1),
3875bool LibCallSimplifier::hasFloatVersion(
const Module *M,
StringRef FuncName) {
3876 SmallString<20> FloatFuncName = FuncName;
3877 FloatFuncName +=
'f';
3881Value *LibCallSimplifier::optimizeStringMemoryLibCall(
CallInst *CI,
3893 "Optimizing string/memory libcall would change the calling convention");
3895 case LibFunc_strcat:
3896 return optimizeStrCat(CI, Builder);
3897 case LibFunc_strncat:
3898 return optimizeStrNCat(CI, Builder);
3899 case LibFunc_strchr:
3900 return optimizeStrChr(CI, Builder);
3901 case LibFunc_strrchr:
3902 return optimizeStrRChr(CI, Builder);
3903 case LibFunc_strcmp:
3904 return optimizeStrCmp(CI, Builder);
3905 case LibFunc_strncmp:
3906 return optimizeStrNCmp(CI, Builder);
3907 case LibFunc_strcpy:
3908 return optimizeStrCpy(CI, Builder);
3909 case LibFunc_stpcpy:
3910 return optimizeStpCpy(CI, Builder);
3911 case LibFunc_strlcpy:
3912 return optimizeStrLCpy(CI, Builder);
3913 case LibFunc_stpncpy:
3914 return optimizeStringNCpy(CI,
true, Builder);
3915 case LibFunc_strncpy:
3916 return optimizeStringNCpy(CI,
false, Builder);
3917 case LibFunc_strlen:
3918 return optimizeStrLen(CI, Builder);
3919 case LibFunc_strnlen:
3920 return optimizeStrNLen(CI, Builder);
3921 case LibFunc_strpbrk:
3922 return optimizeStrPBrk(CI, Builder);
3923 case LibFunc_strndup:
3924 return optimizeStrNDup(CI, Builder);
3925 case LibFunc_strtol:
3926 case LibFunc_strtod:
3927 case LibFunc_strtof:
3928 case LibFunc_strtoul:
3929 case LibFunc_strtoll:
3930 case LibFunc_strtold:
3931 case LibFunc_strtoull:
3932 return optimizeStrTo(CI, Builder);
3933 case LibFunc_strspn:
3934 return optimizeStrSpn(CI, Builder);
3935 case LibFunc_strcspn:
3936 return optimizeStrCSpn(CI, Builder);
3937 case LibFunc_strstr:
3938 return optimizeStrStr(CI, Builder);
3939 case LibFunc_memchr:
3940 return optimizeMemChr(CI, Builder);
3941 case LibFunc_memrchr:
3942 return optimizeMemRChr(CI, Builder);
3944 return optimizeBCmp(CI, Builder);
3945 case LibFunc_memcmp:
3946 return optimizeMemCmp(CI, Builder);
3947 case LibFunc_memcpy:
3948 return optimizeMemCpy(CI, Builder);
3949 case LibFunc_memccpy:
3950 return optimizeMemCCpy(CI, Builder);
3951 case LibFunc_mempcpy:
3952 return optimizeMemPCpy(CI, Builder);
3953 case LibFunc_memmove:
3954 return optimizeMemMove(CI, Builder);
3955 case LibFunc_memset:
3956 return optimizeMemSet(CI, Builder);
3957 case LibFunc_realloc:
3958 return optimizeRealloc(CI, Builder);
3959 case LibFunc_wcslen:
3960 return optimizeWcslen(CI, Builder);
3962 return optimizeBCopy(CI, Builder);
3964 case LibFunc_ZnwmRKSt9nothrow_t:
3965 case LibFunc_ZnwmSt11align_val_t:
3966 case LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t:
3968 case LibFunc_ZnamRKSt9nothrow_t:
3969 case LibFunc_ZnamSt11align_val_t:
3970 case LibFunc_ZnamSt11align_val_tRKSt9nothrow_t:
3971 case LibFunc_Znwm12__hot_cold_t:
3972 case LibFunc_ZnwmRKSt9nothrow_t12__hot_cold_t:
3973 case LibFunc_ZnwmSt11align_val_t12__hot_cold_t:
3974 case LibFunc_ZnwmSt11align_val_tRKSt9nothrow_t12__hot_cold_t:
3975 case LibFunc_Znam12__hot_cold_t:
3976 case LibFunc_ZnamRKSt9nothrow_t12__hot_cold_t:
3977 case LibFunc_ZnamSt11align_val_t12__hot_cold_t:
3978 case LibFunc_ZnamSt11align_val_tRKSt9nothrow_t12__hot_cold_t:
3979 case LibFunc_size_returning_new:
3980 case LibFunc_size_returning_new_hot_cold:
3981 case LibFunc_size_returning_new_aligned:
3982 case LibFunc_size_returning_new_aligned_hot_cold:
3983 return optimizeNew(CI, Builder, Func);
3999 if (CharSeq.
empty())
4000 Fill =
APInt(32, 0);
4007Value *LibCallSimplifier::optimizeFloatingPointLibCall(
CallInst *CI,
4016 if (
Value *V = optimizeSymmetric(CI, Func, Builder))
4020 case LibFunc_sinpif:
4022 return optimizeSinCosPi(CI,
true, Builder);
4023 case LibFunc_cospif:
4025 return optimizeSinCosPi(CI,
false, Builder);
4029 return optimizePow(CI, Builder);
4033 return optimizeExp2(CI, Builder);
4041 return optimizeSqrt(CI, Builder);
4045 return optimizeFMod(CI, Builder);
4049 case LibFunc_log10f:
4051 case LibFunc_log10l:
4052 case LibFunc_log1pf:
4054 case LibFunc_log1pl:
4061 return optimizeLog(CI, Builder);
4069 case LibFunc_asinhf:
4070 case LibFunc_asinhl:
4075 case LibFunc_atanhf:
4076 case LibFunc_atanhl:
4077 return optimizeTrigInversionPairs(CI, Builder);
4084 case LibFunc_roundeven:
4086 case LibFunc_nearbyint:
4106 case LibFunc_copysign:
4113 return optimizeFdim(CI, Builder);
4120 return optimizeFMinFMax(CI, Builder);
4124 return optimizeCAbs(CI, Builder);
4125 case LibFunc_remquo:
4126 case LibFunc_remquof:
4127 case LibFunc_remquol:
4128 return optimizeRemquo(CI, Builder);
4147 return maybeOptimizeNoBuiltinOperatorNew(CI, Builder);
4158 Builder.setDefaultOperandBundles(OpBundles);
4166 UnsafeFPShrink =
true;
4170 if (!IsCallingConvC)
4174 switch (
II->getIntrinsicID()) {
4175 case Intrinsic::pow:
4176 return optimizePow(CI, Builder);
4177 case Intrinsic::exp2:
4178 return optimizeExp2(CI, Builder);
4179 case Intrinsic::log:
4180 case Intrinsic::log2:
4181 case Intrinsic::log10:
4182 return optimizeLog(CI, Builder);
4183 case Intrinsic::sqrt:
4184 return optimizeSqrt(CI, Builder);
4185 case Intrinsic::memset:
4186 return optimizeMemSet(CI, Builder);
4187 case Intrinsic::memcpy:
4188 return optimizeMemCpy(CI, Builder);
4189 case Intrinsic::memmove:
4190 return optimizeMemMove(CI, Builder);
4191 case Intrinsic::sin:
4192 case Intrinsic::cos:
4202 if (
Value *SimplifiedFortifiedCI =
4203 FortifiedSimplifier.optimizeCall(CI, Builder))
4204 return SimplifiedFortifiedCI;
4211 if (
Value *V = optimizeStringMemoryLibCall(CI, Builder))
4213 if (
Value *V = optimizeFloatingPointLibCall(CI, Func, Builder))
4219 return optimizeFFS(CI, Builder);
4223 return optimizeFls(CI, Builder);
4227 return optimizeAbs(CI, Builder);
4228 case LibFunc_isdigit:
4229 return optimizeIsDigit(CI, Builder);
4230 case LibFunc_isascii:
4231 return optimizeIsAscii(CI, Builder);
4232 case LibFunc_toascii:
4233 return optimizeToAscii(CI, Builder);
4237 return optimizeAtoi(CI, Builder);
4238 case LibFunc_strtol:
4239 case LibFunc_strtoll:
4240 return optimizeStrToInt(CI, Builder,
true);
4241 case LibFunc_strtoul:
4242 case LibFunc_strtoull:
4243 return optimizeStrToInt(CI, Builder,
false);
4244 case LibFunc_printf:
4245 return optimizePrintF(CI, Builder);
4246 case LibFunc_sprintf:
4247 return optimizeSPrintF(CI, Builder);
4248 case LibFunc_snprintf:
4249 return optimizeSnPrintF(CI, Builder);
4250 case LibFunc_fprintf:
4251 return optimizeFPrintF(CI, Builder);
4252 case LibFunc_fwrite:
4253 return optimizeFWrite(CI, Builder);
4255 return optimizeFPuts(CI, Builder);
4257 return optimizePuts(CI, Builder);
4258 case LibFunc_perror:
4259 return optimizeErrorReporting(CI, Builder);
4260 case LibFunc_vfprintf:
4261 case LibFunc_fiprintf:
4262 return optimizeErrorReporting(CI, Builder, 0);
4265 return optimizeExit(CI);
4279 : FortifiedSimplifier(TLI), DL(DL), TLI(TLI), DT(DT), DC(DC), AC(AC),
4280 ORE(ORE), BFI(BFI), PSI(PSI), Replacer(Replacer), Eraser(Eraser) {}
4287void LibCallSimplifier::eraseFromParent(
Instruction *
I) {
4326bool FortifiedLibCallSimplifier::isFortifiedCallFoldable(
4327 CallInst *CI,
unsigned ObjSizeOp, std::optional<unsigned> SizeOp,
4328 std::optional<unsigned> StrOp, std::optional<unsigned> FlagOp) {
4333 if (!Flag || !
Flag->isZero())
4340 if (ConstantInt *ObjSizeCI =
4342 if (ObjSizeCI->isMinusOne())
4345 if (OnlyLowerUnknownSize)
4355 return ObjSizeCI->getZExtValue() >=
Len;
4359 if (ConstantInt *SizeCI =
4361 return ObjSizeCI->getZExtValue() >= SizeCI->getZExtValue();
4367Value *FortifiedLibCallSimplifier::optimizeMemCpyChk(
CallInst *CI,
4369 if (isFortifiedCallFoldable(CI, 3, 2)) {
4379Value *FortifiedLibCallSimplifier::optimizeMemMoveChk(
CallInst *CI,
4381 if (isFortifiedCallFoldable(CI, 3, 2)) {
4391Value *FortifiedLibCallSimplifier::optimizeMemSetChk(
CallInst *CI,
4393 if (isFortifiedCallFoldable(CI, 3, 2)) {
4403Value *FortifiedLibCallSimplifier::optimizeMemPCpyChk(
CallInst *CI,
4406 if (isFortifiedCallFoldable(CI, 3, 2))
4414Value *FortifiedLibCallSimplifier::optimizeStrpCpyChk(
CallInst *CI,
4422 if (Func == LibFunc_stpcpy_chk && !OnlyLowerUnknownSize && Dst == Src) {
4424 return StrLen ?
B.CreateInBoundsGEP(
B.getInt8Ty(), Dst, StrLen) :
nullptr;
4432 if (isFortifiedCallFoldable(CI, 2, std::nullopt, 1)) {
4433 if (Func == LibFunc_strcpy_chk)
4439 if (OnlyLowerUnknownSize)
4449 unsigned SizeTBits = TLI->getSizeTSize(*CI->
getModule());
4451 Value *LenV = ConstantInt::get(SizeTTy, Len);
4455 if (Ret && Func == LibFunc_stpcpy_chk)
4456 return B.CreateInBoundsGEP(
B.getInt8Ty(), Dst,
4457 ConstantInt::get(SizeTTy, Len - 1));
4461Value *FortifiedLibCallSimplifier::optimizeStrLenChk(
CallInst *CI,
4463 if (isFortifiedCallFoldable(CI, 1, std::nullopt, 0))
4469Value *FortifiedLibCallSimplifier::optimizeStrpNCpyChk(
CallInst *CI,
4472 if (isFortifiedCallFoldable(CI, 3, 2)) {
4473 if (Func == LibFunc_strncpy_chk)
4486Value *FortifiedLibCallSimplifier::optimizeMemCCpyChk(
CallInst *CI,
4488 if (isFortifiedCallFoldable(CI, 4, 3))
4496Value *FortifiedLibCallSimplifier::optimizeSNPrintfChk(
CallInst *CI,
4498 if (isFortifiedCallFoldable(CI, 3, 1, std::nullopt, 2)) {
4508Value *FortifiedLibCallSimplifier::optimizeSPrintfChk(
CallInst *CI,
4510 if (isFortifiedCallFoldable(CI, 2, std::nullopt, std::nullopt, 1)) {
4514 VariadicArgs,
B, TLI));
4520Value *FortifiedLibCallSimplifier::optimizeStrCatChk(
CallInst *CI,
4522 if (isFortifiedCallFoldable(CI, 2))
4529Value *FortifiedLibCallSimplifier::optimizeStrLCat(
CallInst *CI,
4531 if (isFortifiedCallFoldable(CI, 3))
4539Value *FortifiedLibCallSimplifier::optimizeStrNCatChk(
CallInst *CI,
4541 if (isFortifiedCallFoldable(CI, 3))
4549Value *FortifiedLibCallSimplifier::optimizeStrLCpyChk(
CallInst *CI,
4551 if (isFortifiedCallFoldable(CI, 3))
4559Value *FortifiedLibCallSimplifier::optimizeVSNPrintfChk(
CallInst *CI,
4561 if (isFortifiedCallFoldable(CI, 3, 1, std::nullopt, 2))
4569Value *FortifiedLibCallSimplifier::optimizeVSPrintfChk(
CallInst *CI,
4571 if (isFortifiedCallFoldable(CI, 2, std::nullopt, std::nullopt, 1))
4602 Builder.setDefaultOperandBundles(OpBundles);
4606 if (!TLI->getLibFunc(*Callee, Func))
4614 case LibFunc_memcpy_chk:
4615 return optimizeMemCpyChk(CI, Builder);
4616 case LibFunc_mempcpy_chk:
4617 return optimizeMemPCpyChk(CI, Builder);
4618 case LibFunc_memmove_chk:
4619 return optimizeMemMoveChk(CI, Builder);
4620 case LibFunc_memset_chk:
4621 return optimizeMemSetChk(CI, Builder);
4622 case LibFunc_stpcpy_chk:
4623 case LibFunc_strcpy_chk:
4624 return optimizeStrpCpyChk(CI, Builder, Func);
4625 case LibFunc_strlen_chk:
4626 return optimizeStrLenChk(CI, Builder);
4627 case LibFunc_stpncpy_chk:
4628 case LibFunc_strncpy_chk:
4629 return optimizeStrpNCpyChk(CI, Builder, Func);
4630 case LibFunc_memccpy_chk:
4631 return optimizeMemCCpyChk(CI, Builder);
4632 case LibFunc_snprintf_chk:
4633 return optimizeSNPrintfChk(CI, Builder);
4634 case LibFunc_sprintf_chk:
4635 return optimizeSPrintfChk(CI, Builder);
4636 case LibFunc_strcat_chk:
4637 return optimizeStrCatChk(CI, Builder);
4638 case LibFunc_strlcat_chk:
4639 return optimizeStrLCat(CI, Builder);
4640 case LibFunc_strncat_chk:
4641 return optimizeStrNCatChk(CI, Builder);
4642 case LibFunc_strlcpy_chk:
4643 return optimizeStrLCpyChk(CI, Builder);
4644 case LibFunc_vsnprintf_chk:
4645 return optimizeVSNPrintfChk(CI, Builder);
4646 case LibFunc_vsprintf_chk:
4647 return optimizeVSPrintfChk(CI, Builder);
4656 : TLI(TLI), OnlyLowerUnknownSize(OnlyLowerUnknownSize) {}
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
This file declares a class to represent arbitrary precision floating point values and provide a varie...
This file implements the APSInt class, which is a simple class that represents an arbitrary sized int...
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
Module.h This file contains the declarations for the Module class.
static llvm::Error parse(DataExtractor &Data, uint64_t BaseAddr, LineEntryCallback const &Callback)
Machine Check Debug Module
uint64_t IntrinsicInst * II
static bool isBinary(MachineInstr &MI)
const SmallVectorImpl< MachineOperand > & Cond
static bool isOnlyUsedInEqualityComparison(Value *V, Value *With)
Return true if it is only used in equality comparisons with With.
static void annotateNonNullAndDereferenceable(CallInst *CI, ArrayRef< unsigned > ArgNos, Value *Size, const DataLayout &DL)
static cl::opt< unsigned, false, HotColdHintParser > ColdNewHintValue("cold-new-hint-value", cl::Hidden, cl::init(1), cl::desc("Value to pass to hot/cold operator new for cold allocation"))
static bool insertSinCosCall(IRBuilderBase &B, Function *OrigCallee, Value *Arg, bool UseFloat, Value *&Sin, Value *&Cos, Value *&SinCos, const TargetLibraryInfo *TLI)
static bool canTransformToMemCmp(CallInst *CI, Value *Str, uint64_t Len, const DataLayout &DL)
static Value * mergeAttributesAndFlags(CallInst *NewCI, const CallInst &Old)
static cl::opt< bool > OptimizeHotColdNew("optimize-hot-cold-new", cl::Hidden, cl::init(false), cl::desc("Enable hot/cold operator new library calls"))
static Value * optimizeBinaryDoubleFP(CallInst *CI, IRBuilderBase &B, const TargetLibraryInfo *TLI, bool isPrecise=false)
Shrink double -> float for binary functions.
static bool ignoreCallingConv(LibFunc Func)
static cl::opt< bool > OptimizeExistingHotColdNew("optimize-existing-hot-cold-new", cl::Hidden, cl::init(false), cl::desc("Enable optimization of existing hot/cold operator new library calls"))
static void annotateDereferenceableBytes(CallInst *CI, ArrayRef< unsigned > ArgNos, uint64_t DereferenceableBytes)
static bool isReportingError(Function *Callee, CallInst *CI, int StreamArg)
static Value * optimizeDoubleFP(CallInst *CI, IRBuilderBase &B, bool isBinary, const TargetLibraryInfo *TLI, bool isPrecise=false)
Shrink double -> float functions.
static Value * optimizeSymmetricCall(CallInst *CI, bool IsEven, IRBuilderBase &B)
static Value * getSqrtCall(Value *V, AttributeList Attrs, bool NoErrno, Module *M, IRBuilderBase &B, const TargetLibraryInfo *TLI)
static Value * valueHasFloatPrecision(Value *Val)
Return a variant of Val with float type.
static Value * optimizeMemCmpConstantSize(CallInst *CI, Value *LHS, Value *RHS, uint64_t Len, IRBuilderBase &B, const DataLayout &DL)
static Value * createPowWithIntegerExponent(Value *Base, Value *Expo, Module *M, IRBuilderBase &B)
static Value * convertStrToInt(CallInst *CI, StringRef &Str, Value *EndPtr, uint64_t Base, bool AsSigned, IRBuilderBase &B)
static Value * memChrToCharCompare(CallInst *CI, Value *NBytes, IRBuilderBase &B, const DataLayout &DL)
static Value * copyFlags(const CallInst &Old, Value *New)
static StringRef substr(StringRef Str, uint64_t Len)
static cl::opt< unsigned, false, HotColdHintParser > HotNewHintValue("hot-new-hint-value", cl::Hidden, cl::init(254), cl::desc("Value to pass to hot/cold operator new for hot allocation"))
static bool isTrigLibCall(CallInst *CI)
static Value * optimizeNaN(CallInst *CI)
Constant folding nan/nanf/nanl.
static bool isOnlyUsedInComparisonWithZero(Value *V)
static Value * replaceUnaryCall(CallInst *CI, IRBuilderBase &B, Intrinsic::ID IID)
static bool callHasFloatingPointArgument(const CallInst *CI)
static Value * optimizeUnaryDoubleFP(CallInst *CI, IRBuilderBase &B, const TargetLibraryInfo *TLI, bool isPrecise=false)
Shrink double -> float for unary functions.
static bool callHasFP128Argument(const CallInst *CI)
static cl::opt< bool > OptimizeNoBuiltinHotColdNew("optimize-nobuiltin-hot-cold-new-new", cl::Hidden, cl::init(false), cl::desc("Enable transformation of nobuiltin operator new library calls"))
static cl::opt< unsigned, false, HotColdHintParser > AmbiguousNewHintValue("ambiguous-new-hint-value", cl::Hidden, cl::init(222), cl::desc("Value to pass to hot/cold operator new for ambiguous allocation"))
static void annotateNonNullNoUndefBasedOnAccess(CallInst *CI, ArrayRef< unsigned > ArgNos)
static Value * optimizeMemCmpVarSize(CallInst *CI, Value *LHS, Value *RHS, Value *Size, bool StrNCmp, IRBuilderBase &B, const DataLayout &DL)
static Value * getIntToFPVal(Value *I2F, IRBuilderBase &B, unsigned DstWidth)
static cl::opt< bool > EnableUnsafeFPShrink("enable-double-float-shrink", cl::Hidden, cl::init(false), cl::desc("Enable unsafe double to float " "shrinking for math lib calls"))
static cl::opt< unsigned, false, HotColdHintParser > NotColdNewHintValue("notcold-new-hint-value", cl::Hidden, cl::init(128), cl::desc("Value to pass to hot/cold operator new for " "notcold (warm) allocation"))
This file defines the SmallString class.
static TableGen::Emitter::Opt Y("gen-skeleton-entry", EmitSkeleton, "Generate example skeleton entry")
static TableGen::Emitter::OptClass< SkeletonEmitter > X("gen-skeleton-class", "Generate example skeleton class")
static SymbolRef::Type getType(const Symbol *Sym)
opStatus divide(const APFloat &RHS, roundingMode RM)
bool isFiniteNonZero() const
LLVM_ABI opStatus convert(const fltSemantics &ToSemantics, roundingMode RM, bool *losesInfo)
opStatus subtract(const APFloat &RHS, roundingMode RM)
LLVM_ABI double convertToDouble() const
Converts this APFloat to host double value.
bool isExactlyValue(double V) const
We don't rely on operator== working on double values, as it returns true for things that are clearly ...
opStatus add(const APFloat &RHS, roundingMode RM)
const fltSemantics & getSemantics() const
LLVM_ABI float convertToFloat() const
Converts this APFloat to host float value.
opStatus remainder(const APFloat &RHS)
opStatus convertToInteger(MutableArrayRef< integerPart > Input, unsigned int Width, bool IsSigned, roundingMode RM, bool *IsExact) const
static APFloat getZero(const fltSemantics &Sem, bool Negative=false)
Factory for Positive and Negative Zero.
Class for arbitrary precision integers.
bool ule(const APInt &RHS) const
Unsigned less or equal comparison.
ArrayRef - Represent a constant reference to an array (0 or more elements consecutively in memory),...
A cache of @llvm.assume calls within a function.
static LLVM_ABI Attribute getWithDereferenceableBytes(LLVMContext &Context, uint64_t Bytes)
static LLVM_ABI Attribute getWithCaptureInfo(LLVMContext &Context, CaptureInfo CI)
LLVM Basic Block Representation.
iterator begin()
Instruction iterator methods.
BlockFrequencyInfo pass uses BlockFrequencyInfoImpl implementation to estimate IR basic block frequen...
void addFnAttr(Attribute::AttrKind Kind)
Adds the attribute to the function.
void removeParamAttrs(unsigned ArgNo, const AttributeMask &AttrsToRemove)
Removes the attributes from the given argument.
LLVM_ABI void getOperandBundlesAsDefs(SmallVectorImpl< OperandBundleDef > &Defs) const
Return the list of operand bundles attached to this instruction as a vector of OperandBundleDefs.
bool isNoBuiltin() const
Return true if the call should not be treated as a call to a builtin.
void removeParamAttr(unsigned ArgNo, Attribute::AttrKind Kind)
Removes the attribute from the given argument.
Function * getCalledFunction() const
Returns the function called, or null if this is an indirect function invocation or the function signa...
bool doesNotAccessMemory(unsigned OpNo) const
void removeRetAttrs(const AttributeMask &AttrsToRemove)
Removes the attributes from the return value.
bool hasFnAttr(Attribute::AttrKind Kind) const
Determine whether this call has the given attribute.
bool isStrictFP() const
Determine if the call requires strict floating point semantics.
AttributeSet getParamAttributes(unsigned ArgNo) const
Return the param attributes for this call.
uint64_t getParamDereferenceableBytes(unsigned i) const
Extract the number of dereferenceable bytes for a call or parameter (0=unknown).
LLVM_ABI bool paramHasAttr(unsigned ArgNo, Attribute::AttrKind Kind) const
Determine whether the argument or parameter has the given attribute.
MaybeAlign getParamAlign(unsigned ArgNo) const
Extract the alignment for a call or parameter (0=unknown).
AttributeSet getRetAttributes() const
Return the return attributes for this call.
void setAttributes(AttributeList A)
Set the attributes for this call.
bool doesNotThrow() const
Determine if the call cannot unwind.
Value * getArgOperand(unsigned i) const
uint64_t getParamDereferenceableOrNullBytes(unsigned i) const
Extract the number of dereferenceable_or_null bytes for a parameter (0=unknown).
LLVM_ABI Intrinsic::ID getIntrinsicID() const
Returns the intrinsic ID of the intrinsic called or Intrinsic::not_intrinsic if the called function i...
iterator_range< User::op_iterator > args()
Iteration adapter for range-for loops.
unsigned arg_size() const
AttributeList getAttributes() const
Return the attributes for this call.
void addParamAttr(unsigned ArgNo, Attribute::AttrKind Kind)
Adds the attribute to the indicated argument.
LLVM_ABI Function * getCaller()
Helper to get the caller (the parent function).
This class represents a function call, abstracting a target machine's calling convention.
bool isNoTailCall() const
TailCallKind getTailCallKind() const
bool isMustTailCall() const
static CaptureInfo none()
Create CaptureInfo that does not capture any components of the pointer.
@ ICMP_UGT
unsigned greater than
@ ICMP_ULT
unsigned less than
@ ICMP_ULE
unsigned less or equal
Predicate getPredicate() const
Return the predicate for this instruction.
LLVM_ABI uint64_t getElementAsInteger(uint64_t i) const
If this is a sequential container of integers (of any size), return the specified element in the low ...
ConstantFP - Floating Point Values [float, double].
static LLVM_ABI Constant * getInfinity(Type *Ty, bool Negative=false)
static LLVM_ABI Constant * getQNaN(Type *Ty, bool Negative=false, APInt *Payload=nullptr)
This is the shared class of boolean and integer constants.
bool isOne() const
This is just a convenience method to make client code smaller for a common case.
bool isZero() const
This is just a convenience method to make client code smaller for a common code.
int64_t getSExtValue() const
Return the constant as a 64-bit integer value after it has been sign extended as appropriate for the ...
uint64_t getZExtValue() const
Return the constant as a 64-bit unsigned integer value after it has been zero extended as appropriate...
This is an important base class in LLVM.
static LLVM_ABI Constant * getNullValue(Type *Ty)
Constructor to create a '0' constant of arbitrary type.
A parsed version of the target data layout string in and methods for querying it.
Concrete subclass of DominatorTreeBase that is used to compute a normal dominator tree.
This class represents an extension of floating point types.
This class represents a truncation of floating point types.
void setNoSignedZeros(bool B=true)
static FastMathFlags getFast()
static LLVM_ABI FixedVectorType * get(Type *ElementType, unsigned NumElts)
FortifiedLibCallSimplifier(const TargetLibraryInfo *TLI, bool OnlyLowerUnknownSize=false)
Value * optimizeCall(CallInst *CI, IRBuilderBase &B)
Take the given call instruction and return a more optimal value to replace the instruction with or 0 ...
A handy container for a FunctionType+Callee-pointer pair, which can be passed around as a single enti...
Intrinsic::ID getIntrinsicID() const LLVM_READONLY
getIntrinsicID - This method returns the ID number of the specified function, or Intrinsic::not_intri...
AttributeList getAttributes() const
Return the attribute list for this Function.
bool isIntrinsic() const
isIntrinsic - Returns true if the function's name starts with "llvm.".
bool hasFnAttribute(Attribute::AttrKind Kind) const
Return true if the function has the attribute.
LLVM_ABI bool isDeclaration() const
Return true if the primary definition of this global value is outside of the current translation unit...
Module * getParent()
Get the module that this global value is contained inside of...
This instruction compares its operands according to the predicate given to the constructor.
Common base class shared among various IRBuilders.
LLVM_ABI Instruction * clone() const
Create a copy of 'this' instruction that is identical in all ways except the following:
LLVM_ABI bool hasNoNaNs() const LLVM_READONLY
Determine whether the no-NaNs flag is set.
LLVM_ABI bool hasNoInfs() const LLVM_READONLY
Determine whether the no-infs flag is set.
LLVM_ABI bool hasNoSignedZeros() const LLVM_READONLY
Determine whether the no-signed-zeros flag is set.
LLVM_ABI const Module * getModule() const
Return the module owning the function this instruction belongs to or nullptr it the function does not...
LLVM_ABI bool isFast() const LLVM_READONLY
Determine whether all fast-math-flags are set.
LLVM_ABI const Function * getFunction() const
Return the function this instruction belongs to.
LLVM_ABI FastMathFlags getFastMathFlags() const LLVM_READONLY
Convenience function for getting all the fast-math flags, which must be an operator which supports th...
LLVM_ABI bool hasApproxFunc() const LLVM_READONLY
Determine whether the approximate-math-functions flag is set.
LLVM_ABI bool hasAllowReassoc() const LLVM_READONLY
Determine whether the allow-reassociation flag is set.
LLVM_ABI const DataLayout & getDataLayout() const
Get the data layout of the module this instruction belongs to.
Class to represent integer types.
static LLVM_ABI IntegerType * get(LLVMContext &C, unsigned NumBits)
This static method is the primary way of constructing an IntegerType.
A wrapper class for inspecting calls to intrinsic functions.
LibCallSimplifier(const DataLayout &DL, const TargetLibraryInfo *TLI, DominatorTree *DT, DomConditionCache *DC, AssumptionCache *AC, OptimizationRemarkEmitter &ORE, BlockFrequencyInfo *BFI, ProfileSummaryInfo *PSI, function_ref< void(Instruction *, Value *)> Replacer=&replaceAllUsesWithDefault, function_ref< void(Instruction *)> Eraser=&eraseFromParentDefault)
Value * optimizeCall(CallInst *CI, IRBuilderBase &B)
optimizeCall - Take the given call instruction and return a more optimal value to replace the instruc...
An instruction for reading from memory.
Value * getPointerOperand()
A Module instance is used to store all the information related to an LLVM module.
const Triple & getTargetTriple() const
Get the target triple which is a string describing the target host.
Analysis providing profile information.
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
StringRef - Represent a constant reference to a string, i.e.
bool getAsInteger(unsigned Radix, T &Result) const
Parse the current string as an integer of the specified radix.
bool starts_with(StringRef Prefix) const
Check if this string starts with the given Prefix.
constexpr bool empty() const
empty - Check if the string is empty.
char back() const
back - Get the last character in the string.
constexpr size_t size() const
size - Get the string size.
bool contains(StringRef Other) const
Return true if the given string is a substring of *this, and false otherwise.
size_t find(char C, size_t From=0) const
Search for the first character C in the string.
bool ends_with(StringRef Suffix) const
Check if this string ends with the given Suffix.
static constexpr size_t npos
int compare(StringRef RHS) const
compare - Compare two strings; the result is negative, zero, or positive if this string is lexicograp...
static LLVM_ABI StructType * get(LLVMContext &Context, ArrayRef< Type * > Elements, bool isPacked=false)
This static method is the primary way to create a literal StructType.
static LLVM_ABI bool isCallingConvCCompatible(CallBase *CI)
Returns true if call site / callee has cdecl-compatible calling conventions.
Provides information about what library functions are available for the current target.
bool getLibFunc(StringRef funcName, LibFunc &F) const
Searches for a particular function name.
Triple - Helper class for working with autoconf configuration names.
The instances of the Type class are immutable: once they are created, they are never changed.
LLVM_ABI unsigned getIntegerBitWidth() const
bool isVectorTy() const
True if this is an instance of VectorType.
bool isPointerTy() const
True if this is an instance of PointerType.
bool isFloatTy() const
Return true if this is 'float', a 32-bit IEEE fp type.
LLVM_ABI unsigned getPointerAddressSpace() const
Get the address space of this pointer or pointer vector type.
static LLVM_ABI IntegerType * getInt8Ty(LLVMContext &C)
Type * getScalarType() const
If this is a vector type, return the element type, otherwise return 'this'.
bool isStructTy() const
True if this is an instance of StructType.
LLVM_ABI TypeSize getPrimitiveSizeInBits() const LLVM_READONLY
Return the basic size of this type if it is a primitive type.
bool isDoubleTy() const
Return true if this is 'double', a 64-bit IEEE fp type.
bool isIntegerTy() const
True if this is an instance of IntegerType.
static LLVM_ABI IntegerType * getIntNTy(LLVMContext &C, unsigned N)
LLVM_ABI const fltSemantics & getFltSemantics() const
A Use represents the edge between a Value definition and its users.
void setOperand(unsigned i, Value *Val)
Value * getOperand(unsigned i) const
LLVM Value Representation.
Type * getType() const
All values are typed, get the type of this value.
bool hasOneUse() const
Return true if there is exactly one use of this value.
iterator_range< user_iterator > users()
LLVM_ABI LLVMContext & getContext() const
All values hold a context through their type.
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
LLVM_ABI void takeName(Value *V)
Transfer the name from V to this value.
An efficient, type-erasing, non-owning reference to a callable.
const ParentTy * getParent() const
constexpr char Align[]
Key for Kernel::Arg::Metadata::mAlign.
unsigned ID
LLVM IR allows to use arbitrary numbers as calling convention identifiers.
@ C
The default llvm calling convention, compatible with C.
Flag
These should be considered private to the implementation of the MCInstrDesc class.
OneUse_match< SubPat > m_OneUse(const SubPat &SP)
BinaryOp_match< LHS, RHS, Instruction::FMul > m_FMul(const LHS &L, const RHS &R)
bool match(Val *V, const Pattern &P)
cstfp_pred_ty< is_any_zero_fp > m_AnyZeroFP()
Match a floating-point negative zero or positive zero.
class_match< ConstantInt > m_ConstantInt()
Match an arbitrary ConstantInt and ignore it.
ThreeOps_match< Cond, LHS, RHS, Instruction::Select > m_Select(const Cond &C, const LHS &L, const RHS &R)
Matches SelectInst.
specific_fpval m_SpecificFP(double V)
Match a specific floating point value or vector with all elements equal to the value.
deferredval_ty< Value > m_Deferred(Value *const &V)
Like m_Specific(), but works if the specific value to match is determined as part of the same match()...
specific_fpval m_FPOne()
Match a float 1.0 or vector with all elements equal to 1.0.
apint_match m_APInt(const APInt *&Res)
Match a ConstantInt or splatted ConstantVector, binding the specified pointer to the contained APInt.
class_match< Value > m_Value()
Match an arbitrary value and ignore it.
FNeg_match< OpTy > m_FNeg(const OpTy &X)
Match 'fneg X' as 'fsub -0.0, X'.
apfloat_match m_APFloat(const APFloat *&Res)
Match a ConstantFP or splatted ConstantVector, binding the specified pointer to the contained APFloat...
m_Intrinsic_Ty< Opnd0 >::Ty m_FAbs(const Opnd0 &Op0)
m_Intrinsic_Ty< Opnd0, Opnd1 >::Ty m_CopySign(const Opnd0 &Op0, const Opnd1 &Op1)
This namespace contains all of the command line option processing machinery.
initializer< Ty > init(const Ty &Val)
NodeAddr< FuncNode * > Func
friend class Instruction
Iterator for Instructions in a `BasicBlock.
This is an optimization pass for GlobalISel generic memory operations.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
FunctionAddr VTableAddr Value
LLVM_ABI Value * emitUnaryFloatFnCall(Value *Op, const TargetLibraryInfo *TLI, StringRef Name, IRBuilderBase &B, const AttributeList &Attrs)
Emit a call to the unary function named 'Name' (e.g.
LLVM_ABI KnownFPClass computeKnownFPClass(const Value *V, const APInt &DemandedElts, FPClassTest InterestedClasses, const SimplifyQuery &SQ, unsigned Depth=0)
Determine which floating-point classes are valid for V, and return them in KnownFPClass bit sets.
LLVM_ABI Value * emitStrChr(Value *Ptr, char C, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strchr function to the builder, for the specified pointer and character.
constexpr uint64_t maxUIntN(uint64_t N)
Gets the maximum value for a N-bit unsigned integer.
LLVM_ABI Value * emitPutChar(Value *Char, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the putchar function. This assumes that Char is an 'int'.
LLVM_ABI Value * emitMemCpyChk(Value *Dst, Value *Src, Value *Len, Value *ObjSize, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the __memcpy_chk function to the builder.
LLVM_ABI Value * emitStrNCpy(Value *Dst, Value *Src, Value *Len, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strncpy function to the builder, for the specified pointer arguments and length.
LLVM_ABI bool isKnownNeverInfinity(const Value *V, const SimplifyQuery &SQ, unsigned Depth=0)
Return true if the floating-point scalar value is not an infinity or if the floating-point vector val...
LLVM_ABI bool isOnlyUsedInZeroEqualityComparison(const Instruction *CxtI)
LLVM_ABI Value * emitHotColdNewAlignedNoThrow(Value *Num, Value *Align, Value *NoThrow, IRBuilderBase &B, const TargetLibraryInfo *TLI, LibFunc NewFunc, uint8_t HotCold)
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
APFloat abs(APFloat X)
Returns the absolute value of the argument.
LLVM_ABI bool getConstantStringInfo(const Value *V, StringRef &Str, bool TrimAtNul=true)
This function computes the length of a null-terminated C string pointed to by V.
LLVM_ABI bool isDereferenceableAndAlignedPointer(const Value *V, Type *Ty, Align Alignment, const DataLayout &DL, const Instruction *CtxI=nullptr, AssumptionCache *AC=nullptr, const DominatorTree *DT=nullptr, const TargetLibraryInfo *TLI=nullptr)
Returns true if V is always a dereferenceable pointer with alignment greater or equal than requested.
LLVM_ABI Value * emitSPrintf(Value *Dest, Value *Fmt, ArrayRef< Value * > VariadicArgs, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the sprintf function.
LLVM_ABI bool getConstantDataArrayInfo(const Value *V, ConstantDataArraySlice &Slice, unsigned ElementSize, uint64_t Offset=0)
Returns true if the value V is a pointer into a ConstantDataArray.
LLVM_ABI Value * emitMemRChr(Value *Ptr, Value *Val, Value *Len, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the memrchr function, analogously to emitMemChr.
LLVM_READONLY APFloat maximum(const APFloat &A, const APFloat &B)
Implements IEEE 754-2019 maximum semantics.
LLVM_ABI Value * emitStrLCat(Value *Dest, Value *Src, Value *Size, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strlcat function.
LLVM_ABI bool shouldOptimizeForSize(const MachineFunction *MF, ProfileSummaryInfo *PSI, const MachineBlockFrequencyInfo *BFI, PGSOQueryType QueryType=PGSOQueryType::Other)
Returns true if machine function MF is suggested to be size-optimized based on the profile.
iterator_range< early_inc_iterator_impl< detail::IterOfRange< RangeT > > > make_early_inc_range(RangeT &&Range)
Make a range that does early increment to allow mutation of the underlying range without disrupting i...
LLVM_ABI bool hasFloatFn(const Module *M, const TargetLibraryInfo *TLI, Type *Ty, LibFunc DoubleFn, LibFunc FloatFn, LibFunc LongDoubleFn)
Check whether the overloaded floating point function corresponding to Ty is available.
LLVM_ABI Value * emitStrNCat(Value *Dest, Value *Src, Value *Size, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strncat function.
LLVM_ABI bool isLibFuncEmittable(const Module *M, const TargetLibraryInfo *TLI, LibFunc TheLibFunc)
Check whether the library function is available on target and also that it in the current Module is a...
LLVM_ABI Value * emitVSNPrintf(Value *Dest, Value *Size, Value *Fmt, Value *VAList, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the vsnprintf function.
auto dyn_cast_or_null(const Y &Val)
Align getKnownAlignment(Value *V, const DataLayout &DL, const Instruction *CxtI=nullptr, AssumptionCache *AC=nullptr, const DominatorTree *DT=nullptr)
Try to infer an alignment for the specified pointer.
bool any_of(R &&range, UnaryPredicate P)
Provide wrappers to std::any_of which take ranges instead of having to pass begin/end explicitly.
LLVM_ABI Value * emitStrNCmp(Value *Ptr1, Value *Ptr2, Value *Len, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the strncmp function to the builder.
LLVM_ABI Value * emitMemCmp(Value *Ptr1, Value *Ptr2, Value *Len, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the memcmp function.
LLVM_ABI Value * emitBinaryFloatFnCall(Value *Op1, Value *Op2, const TargetLibraryInfo *TLI, StringRef Name, IRBuilderBase &B, const AttributeList &Attrs)
Emit a call to the binary function named 'Name' (e.g.
bool isAlpha(char C)
Checks if character C is a valid letter as classified by "C" locale.
LLVM_ABI Value * emitFPutS(Value *Str, Value *File, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the fputs function.
LLVM_ABI Value * emitStrDup(Value *Ptr, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strdup function to the builder, for the specified pointer.
decltype(auto) get(const PointerIntPair< PointerTy, IntBits, IntType, PtrTraits, Info > &Pair)
void sort(IteratorTy Start, IteratorTy End)
LLVM_ABI void computeKnownBits(const Value *V, KnownBits &Known, const DataLayout &DL, AssumptionCache *AC=nullptr, const Instruction *CxtI=nullptr, const DominatorTree *DT=nullptr, bool UseInstrInfo=true, unsigned Depth=0)
Determine which bits of V are known to be either zero or one and return them in the KnownZero/KnownOn...
LLVM_ABI bool NullPointerIsDefined(const Function *F, unsigned AS=0)
Check whether null pointer dereferencing is considered undefined behavior for a given function or an ...
LLVM_ABI Value * emitBCmp(Value *Ptr1, Value *Ptr2, Value *Len, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the bcmp function.
bool isDigit(char C)
Checks if character C is one of the 10 decimal digits.
std::enable_if_t< std::is_unsigned_v< T >, T > SaturatingMultiplyAdd(T X, T Y, T A, bool *ResultOverflowed=nullptr)
Multiply two unsigned integers, X and Y, and add the unsigned integer, A to the product.
LLVM_ABI uint64_t GetStringLength(const Value *V, unsigned CharSize=8)
If we can compute the length of the string pointed to by the specified pointer, return 'len+1'.
LLVM_ABI FunctionCallee getOrInsertLibFunc(Module *M, const TargetLibraryInfo &TLI, LibFunc TheLibFunc, FunctionType *T, AttributeList AttributeList)
Calls getOrInsertFunction() and then makes sure to add mandatory argument attributes.
LLVM_ABI Value * emitStrLen(Value *Ptr, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the strlen function to the builder, for the specified pointer.
LLVM_ABI Value * emitFPutC(Value *Char, Value *File, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the fputc function.
LLVM_ABI Value * emitStpNCpy(Value *Dst, Value *Src, Value *Len, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the stpncpy function to the builder, for the specified pointer arguments and length.
LLVM_ABI Value * emitStrCat(Value *Dest, Value *Src, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strcat function.
class LLVM_GSL_OWNER SmallVector
Forward declaration of SmallVector so that calculateSmallVectorDefaultInlinedElements can reference s...
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
LLVM_ABI Value * emitVSPrintf(Value *Dest, Value *Fmt, Value *VAList, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the vsprintf function.
LLVM_ABI bool isKnownNonZero(const Value *V, const SimplifyQuery &Q, unsigned Depth=0)
Return true if the given value is known to be non-zero when defined.
LLVM_ABI Value * emitFWrite(Value *Ptr, Value *Size, Value *File, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the fwrite function.
LLVM_ABI Value * emitSNPrintf(Value *Dest, Value *Size, Value *Fmt, ArrayRef< Value * > Args, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the snprintf function.
@ Mod
The access may modify the value stored in memory.
LLVM_ABI Value * emitStpCpy(Value *Dst, Value *Src, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the stpcpy function to the builder, for the specified pointer arguments.
@ And
Bitwise or logical AND of integers.
char toUpper(char x)
Returns the corresponding uppercase character if x is lowercase.
DWARFExpression::Operation Op
@ NearestTiesToEven
roundTiesToEven.
constexpr int64_t maxIntN(int64_t N)
Gets the maximum value for a N-bit signed integer.
constexpr unsigned BitWidth
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
LLVM_ABI Value * emitHotColdNewNoThrow(Value *Num, Value *NoThrow, IRBuilderBase &B, const TargetLibraryInfo *TLI, LibFunc NewFunc, uint8_t HotCold)
LLVM_ABI Value * emitMalloc(Value *Num, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the malloc function.
LLVM_ABI Value * emitMemChr(Value *Ptr, Value *Val, Value *Len, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the memchr function.
LLVM_ABI Value * emitHotColdNewAligned(Value *Num, Value *Align, IRBuilderBase &B, const TargetLibraryInfo *TLI, LibFunc NewFunc, uint8_t HotCold)
bool isSpace(char C)
Checks whether character C is whitespace in the "C" locale.
LLVM_ABI Value * emitPutS(Value *Str, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the puts function. This assumes that Str is some pointer.
LLVM_ABI Value * emitMemCCpy(Value *Ptr1, Value *Ptr2, Value *Val, Value *Len, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the memccpy function.
LLVM_ABI Value * emitHotColdSizeReturningNew(Value *Num, IRBuilderBase &B, const TargetLibraryInfo *TLI, LibFunc NewFunc, uint8_t HotCold)
LLVM_ABI Value * emitHotColdNew(Value *Num, IRBuilderBase &B, const TargetLibraryInfo *TLI, LibFunc NewFunc, uint8_t HotCold)
Emit a call to the hot/cold operator new function.
LLVM_ABI Constant * ConstantFoldLoadFromConstPtr(Constant *C, Type *Ty, APInt Offset, const DataLayout &DL)
Return the value that a load from C with offset Offset would produce if it is constant and determinab...
LLVM_ABI Value * emitStrLCpy(Value *Dest, Value *Src, Value *Size, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strlcpy function.
LLVM_ABI Value * emitHotColdSizeReturningNewAligned(Value *Num, Value *Align, IRBuilderBase &B, const TargetLibraryInfo *TLI, LibFunc NewFunc, uint8_t HotCold)
LLVM_ABI Value * emitStrCpy(Value *Dst, Value *Src, IRBuilderBase &B, const TargetLibraryInfo *TLI)
Emit a call to the strcpy function to the builder, for the specified pointer arguments.
LLVM_ABI Value * emitMemPCpy(Value *Dst, Value *Src, Value *Len, IRBuilderBase &B, const DataLayout &DL, const TargetLibraryInfo *TLI)
Emit a call to the mempcpy function.
constexpr uint64_t NextPowerOf2(uint64_t A)
Returns the next power of two (in 64-bits) that is strictly greater than A.
static LLVM_ABI const fltSemantics & IEEEsingle() LLVM_READNONE
static constexpr roundingMode rmTowardNegative
static constexpr roundingMode rmNearestTiesToEven
static constexpr roundingMode rmTowardZero
opStatus
IEEE-754R 7: Default exception handling.
This struct is a compact representation of a valid (non-zero power of two) alignment.
uint64_t Length
Length of the slice.
uint64_t Offset
Slice starts at this Offset.
const ConstantDataArray * Array
ConstantDataArray pointer.
bool isNonNegative() const
Returns true if this value is known to be non-negative.
APInt getMaxValue() const
Return the maximal unsigned value possible given these KnownBits.
bool isKnownNeverInfinity() const
Return true if it's known this can never be an infinity.
static constexpr FPClassTest OrderedLessThanZeroMask
LLVM_ABI bool isKnownNeverLogicalZero(DenormalMode Mode) const
Return true if it's know this can never be interpreted as a zero.
bool cannotBeOrderedLessThanZero() const
Return true if we can prove that the analyzed floating-point value is either NaN or never less than -...