1 //===- llvm/unittest/IR/InstructionsTest.cpp - Instructions unit tests ----===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "llvm/IR/Instructions.h" 10 #include "llvm/ADT/CombinationGenerator.h" 11 #include "llvm/ADT/STLExtras.h" 12 #include "llvm/Analysis/ValueTracking.h" 13 #include "llvm/Analysis/VectorUtils.h" 14 #include "llvm/AsmParser/Parser.h" 15 #include "llvm/IR/BasicBlock.h" 16 #include "llvm/IR/Constants.h" 17 #include "llvm/IR/DataLayout.h" 18 #include "llvm/IR/DebugInfoMetadata.h" 19 #include "llvm/IR/DerivedTypes.h" 20 #include "llvm/IR/FPEnv.h" 21 #include "llvm/IR/Function.h" 22 #include "llvm/IR/IRBuilder.h" 23 #include "llvm/IR/LLVMContext.h" 24 #include "llvm/IR/MDBuilder.h" 25 #include "llvm/IR/Module.h" 26 #include "llvm/IR/NoFolder.h" 27 #include "llvm/IR/Operator.h" 28 #include "llvm/Support/SourceMgr.h" 29 #include "llvm-c/Core.h" 30 #include "gmock/gmock-matchers.h" 31 #include "gtest/gtest.h" 32 #include <memory> 33 34 namespace llvm { 35 namespace { 36 37 static std::unique_ptr<Module> parseIR(LLVMContext &C, const char *IR) { 38 SMDiagnostic Err; 39 std::unique_ptr<Module> Mod = parseAssemblyString(IR, Err, C); 40 if (!Mod) 41 Err.print("InstructionsTests", errs()); 42 return Mod; 43 } 44 45 TEST(InstructionsTest, ReturnInst) { 46 LLVMContext C; 47 48 // test for PR6589 49 const ReturnInst* r0 = ReturnInst::Create(C); 50 EXPECT_EQ(r0->getNumOperands(), 0U); 51 EXPECT_EQ(r0->op_begin(), r0->op_end()); 52 53 IntegerType* Int1 = IntegerType::get(C, 1); 54 Constant* One = ConstantInt::get(Int1, 1, true); 55 const ReturnInst* r1 = ReturnInst::Create(C, One); 56 EXPECT_EQ(1U, r1->getNumOperands()); 57 User::const_op_iterator b(r1->op_begin()); 58 EXPECT_NE(r1->op_end(), b); 59 EXPECT_EQ(One, *b); 60 EXPECT_EQ(One, r1->getOperand(0)); 61 ++b; 62 EXPECT_EQ(r1->op_end(), b); 63 64 // clean up 65 delete r0; 66 delete r1; 67 } 68 69 // Test fixture that provides a module and a single function within it. Useful 70 // for tests that need to refer to the function in some way. 71 class ModuleWithFunctionTest : public testing::Test { 72 protected: 73 ModuleWithFunctionTest() : M(new Module("MyModule", Ctx)) { 74 FArgTypes.push_back(Type::getInt8Ty(Ctx)); 75 FArgTypes.push_back(Type::getInt32Ty(Ctx)); 76 FArgTypes.push_back(Type::getInt64Ty(Ctx)); 77 FunctionType *FTy = 78 FunctionType::get(Type::getVoidTy(Ctx), FArgTypes, false); 79 F = Function::Create(FTy, Function::ExternalLinkage, "", M.get()); 80 } 81 82 LLVMContext Ctx; 83 std::unique_ptr<Module> M; 84 SmallVector<Type *, 3> FArgTypes; 85 Function *F; 86 }; 87 88 TEST_F(ModuleWithFunctionTest, CallInst) { 89 Value *Args[] = {ConstantInt::get(Type::getInt8Ty(Ctx), 20), 90 ConstantInt::get(Type::getInt32Ty(Ctx), 9999), 91 ConstantInt::get(Type::getInt64Ty(Ctx), 42)}; 92 std::unique_ptr<CallInst> Call(CallInst::Create(F, Args)); 93 94 // Make sure iteration over a call's arguments works as expected. 95 unsigned Idx = 0; 96 for (Value *Arg : Call->args()) { 97 EXPECT_EQ(FArgTypes[Idx], Arg->getType()); 98 EXPECT_EQ(Call->getArgOperand(Idx)->getType(), Arg->getType()); 99 Idx++; 100 } 101 102 Call->addRetAttr(Attribute::get(Call->getContext(), "test-str-attr")); 103 EXPECT_TRUE(Call->hasRetAttr("test-str-attr")); 104 EXPECT_FALSE(Call->hasRetAttr("not-on-call")); 105 } 106 107 TEST_F(ModuleWithFunctionTest, InvokeInst) { 108 BasicBlock *BB1 = BasicBlock::Create(Ctx, "", F); 109 BasicBlock *BB2 = BasicBlock::Create(Ctx, "", F); 110 111 Value *Args[] = {ConstantInt::get(Type::getInt8Ty(Ctx), 20), 112 ConstantInt::get(Type::getInt32Ty(Ctx), 9999), 113 ConstantInt::get(Type::getInt64Ty(Ctx), 42)}; 114 std::unique_ptr<InvokeInst> Invoke(InvokeInst::Create(F, BB1, BB2, Args)); 115 116 // Make sure iteration over invoke's arguments works as expected. 117 unsigned Idx = 0; 118 for (Value *Arg : Invoke->args()) { 119 EXPECT_EQ(FArgTypes[Idx], Arg->getType()); 120 EXPECT_EQ(Invoke->getArgOperand(Idx)->getType(), Arg->getType()); 121 Idx++; 122 } 123 } 124 125 TEST(InstructionsTest, BranchInst) { 126 LLVMContext C; 127 128 // Make a BasicBlocks 129 BasicBlock* bb0 = BasicBlock::Create(C); 130 BasicBlock* bb1 = BasicBlock::Create(C); 131 132 // Mandatory BranchInst 133 const BranchInst* b0 = BranchInst::Create(bb0); 134 135 EXPECT_TRUE(b0->isUnconditional()); 136 EXPECT_FALSE(b0->isConditional()); 137 EXPECT_EQ(1U, b0->getNumSuccessors()); 138 139 // check num operands 140 EXPECT_EQ(1U, b0->getNumOperands()); 141 142 EXPECT_NE(b0->op_begin(), b0->op_end()); 143 EXPECT_EQ(b0->op_end(), std::next(b0->op_begin())); 144 145 EXPECT_EQ(b0->op_end(), std::next(b0->op_begin())); 146 147 IntegerType* Int1 = IntegerType::get(C, 1); 148 Constant* One = ConstantInt::get(Int1, 1, true); 149 150 // Conditional BranchInst 151 BranchInst* b1 = BranchInst::Create(bb0, bb1, One); 152 153 EXPECT_FALSE(b1->isUnconditional()); 154 EXPECT_TRUE(b1->isConditional()); 155 EXPECT_EQ(2U, b1->getNumSuccessors()); 156 157 // check num operands 158 EXPECT_EQ(3U, b1->getNumOperands()); 159 160 User::const_op_iterator b(b1->op_begin()); 161 162 // check COND 163 EXPECT_NE(b, b1->op_end()); 164 EXPECT_EQ(One, *b); 165 EXPECT_EQ(One, b1->getOperand(0)); 166 EXPECT_EQ(One, b1->getCondition()); 167 ++b; 168 169 // check ELSE 170 EXPECT_EQ(bb1, *b); 171 EXPECT_EQ(bb1, b1->getOperand(1)); 172 EXPECT_EQ(bb1, b1->getSuccessor(1)); 173 ++b; 174 175 // check THEN 176 EXPECT_EQ(bb0, *b); 177 EXPECT_EQ(bb0, b1->getOperand(2)); 178 EXPECT_EQ(bb0, b1->getSuccessor(0)); 179 ++b; 180 181 EXPECT_EQ(b1->op_end(), b); 182 183 // clean up 184 delete b0; 185 delete b1; 186 187 delete bb0; 188 delete bb1; 189 } 190 191 TEST(InstructionsTest, CastInst) { 192 LLVMContext C; 193 194 Type *Int8Ty = Type::getInt8Ty(C); 195 Type *Int16Ty = Type::getInt16Ty(C); 196 Type *Int32Ty = Type::getInt32Ty(C); 197 Type *Int64Ty = Type::getInt64Ty(C); 198 Type *V8x8Ty = FixedVectorType::get(Int8Ty, 8); 199 Type *V8x64Ty = FixedVectorType::get(Int64Ty, 8); 200 Type *X86MMXTy = Type::getX86_MMXTy(C); 201 202 Type *HalfTy = Type::getHalfTy(C); 203 Type *FloatTy = Type::getFloatTy(C); 204 Type *DoubleTy = Type::getDoubleTy(C); 205 206 Type *V2Int32Ty = FixedVectorType::get(Int32Ty, 2); 207 Type *V2Int64Ty = FixedVectorType::get(Int64Ty, 2); 208 Type *V4Int16Ty = FixedVectorType::get(Int16Ty, 4); 209 Type *V1Int16Ty = FixedVectorType::get(Int16Ty, 1); 210 211 Type *VScaleV2Int32Ty = ScalableVectorType::get(Int32Ty, 2); 212 Type *VScaleV2Int64Ty = ScalableVectorType::get(Int64Ty, 2); 213 Type *VScaleV4Int16Ty = ScalableVectorType::get(Int16Ty, 4); 214 Type *VScaleV1Int16Ty = ScalableVectorType::get(Int16Ty, 1); 215 216 Type *Int32PtrTy = PointerType::get(Int32Ty, 0); 217 Type *Int64PtrTy = PointerType::get(Int64Ty, 0); 218 219 Type *Int32PtrAS1Ty = PointerType::get(Int32Ty, 1); 220 Type *Int64PtrAS1Ty = PointerType::get(Int64Ty, 1); 221 222 Type *V2Int32PtrAS1Ty = FixedVectorType::get(Int32PtrAS1Ty, 2); 223 Type *V2Int64PtrAS1Ty = FixedVectorType::get(Int64PtrAS1Ty, 2); 224 Type *V4Int32PtrAS1Ty = FixedVectorType::get(Int32PtrAS1Ty, 4); 225 Type *VScaleV4Int32PtrAS1Ty = ScalableVectorType::get(Int32PtrAS1Ty, 4); 226 Type *V4Int64PtrAS1Ty = FixedVectorType::get(Int64PtrAS1Ty, 4); 227 228 Type *V2Int64PtrTy = FixedVectorType::get(Int64PtrTy, 2); 229 Type *V2Int32PtrTy = FixedVectorType::get(Int32PtrTy, 2); 230 Type *VScaleV2Int32PtrTy = ScalableVectorType::get(Int32PtrTy, 2); 231 Type *V4Int32PtrTy = FixedVectorType::get(Int32PtrTy, 4); 232 Type *VScaleV4Int32PtrTy = ScalableVectorType::get(Int32PtrTy, 4); 233 Type *VScaleV4Int64PtrTy = ScalableVectorType::get(Int64PtrTy, 4); 234 235 const Constant* c8 = Constant::getNullValue(V8x8Ty); 236 const Constant* c64 = Constant::getNullValue(V8x64Ty); 237 238 const Constant *v2ptr32 = Constant::getNullValue(V2Int32PtrTy); 239 240 EXPECT_EQ(CastInst::Trunc, CastInst::getCastOpcode(c64, true, V8x8Ty, true)); 241 EXPECT_EQ(CastInst::SExt, CastInst::getCastOpcode(c8, true, V8x64Ty, true)); 242 243 EXPECT_FALSE(CastInst::isBitCastable(V8x8Ty, X86MMXTy)); 244 EXPECT_FALSE(CastInst::isBitCastable(X86MMXTy, V8x8Ty)); 245 EXPECT_FALSE(CastInst::isBitCastable(Int64Ty, X86MMXTy)); 246 EXPECT_FALSE(CastInst::isBitCastable(V8x64Ty, V8x8Ty)); 247 EXPECT_FALSE(CastInst::isBitCastable(V8x8Ty, V8x64Ty)); 248 249 // Check address space casts are rejected since we don't know the sizes here 250 EXPECT_FALSE(CastInst::isBitCastable(Int32PtrTy, Int32PtrAS1Ty)); 251 EXPECT_FALSE(CastInst::isBitCastable(Int32PtrAS1Ty, Int32PtrTy)); 252 EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrTy, V2Int32PtrAS1Ty)); 253 EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V2Int32PtrTy)); 254 EXPECT_TRUE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V2Int64PtrAS1Ty)); 255 EXPECT_EQ(CastInst::AddrSpaceCast, CastInst::getCastOpcode(v2ptr32, true, 256 V2Int32PtrAS1Ty, 257 true)); 258 259 // Test mismatched number of elements for pointers 260 EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V4Int64PtrAS1Ty)); 261 EXPECT_FALSE(CastInst::isBitCastable(V4Int64PtrAS1Ty, V2Int32PtrAS1Ty)); 262 EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrAS1Ty, V4Int32PtrAS1Ty)); 263 EXPECT_FALSE(CastInst::isBitCastable(Int32PtrTy, V2Int32PtrTy)); 264 EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrTy, Int32PtrTy)); 265 266 EXPECT_TRUE(CastInst::isBitCastable(Int32PtrTy, Int64PtrTy)); 267 EXPECT_FALSE(CastInst::isBitCastable(DoubleTy, FloatTy)); 268 EXPECT_FALSE(CastInst::isBitCastable(FloatTy, DoubleTy)); 269 EXPECT_TRUE(CastInst::isBitCastable(FloatTy, FloatTy)); 270 EXPECT_TRUE(CastInst::isBitCastable(FloatTy, FloatTy)); 271 EXPECT_TRUE(CastInst::isBitCastable(FloatTy, Int32Ty)); 272 EXPECT_TRUE(CastInst::isBitCastable(Int16Ty, HalfTy)); 273 EXPECT_TRUE(CastInst::isBitCastable(Int32Ty, FloatTy)); 274 EXPECT_TRUE(CastInst::isBitCastable(V2Int32Ty, Int64Ty)); 275 276 EXPECT_TRUE(CastInst::isBitCastable(V2Int32Ty, V4Int16Ty)); 277 EXPECT_FALSE(CastInst::isBitCastable(Int32Ty, Int64Ty)); 278 EXPECT_FALSE(CastInst::isBitCastable(Int64Ty, Int32Ty)); 279 280 EXPECT_FALSE(CastInst::isBitCastable(V2Int32PtrTy, Int64Ty)); 281 EXPECT_FALSE(CastInst::isBitCastable(Int64Ty, V2Int32PtrTy)); 282 EXPECT_TRUE(CastInst::isBitCastable(V2Int64PtrTy, V2Int32PtrTy)); 283 EXPECT_TRUE(CastInst::isBitCastable(V2Int32PtrTy, V2Int64PtrTy)); 284 EXPECT_FALSE(CastInst::isBitCastable(V2Int32Ty, V2Int64Ty)); 285 EXPECT_FALSE(CastInst::isBitCastable(V2Int64Ty, V2Int32Ty)); 286 287 288 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 289 Constant::getNullValue(V4Int32PtrTy), 290 V2Int32PtrTy)); 291 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 292 Constant::getNullValue(V2Int32PtrTy), 293 V4Int32PtrTy)); 294 295 EXPECT_FALSE(CastInst::castIsValid(Instruction::AddrSpaceCast, 296 Constant::getNullValue(V4Int32PtrAS1Ty), 297 V2Int32PtrTy)); 298 EXPECT_FALSE(CastInst::castIsValid(Instruction::AddrSpaceCast, 299 Constant::getNullValue(V2Int32PtrTy), 300 V4Int32PtrAS1Ty)); 301 302 // Address space cast of fixed/scalable vectors of pointers to scalable/fixed 303 // vector of pointers. 304 EXPECT_FALSE(CastInst::castIsValid( 305 Instruction::AddrSpaceCast, Constant::getNullValue(VScaleV4Int32PtrAS1Ty), 306 V4Int32PtrTy)); 307 EXPECT_FALSE(CastInst::castIsValid(Instruction::AddrSpaceCast, 308 Constant::getNullValue(V4Int32PtrTy), 309 VScaleV4Int32PtrAS1Ty)); 310 // Address space cast of scalable vectors of pointers to scalable vector of 311 // pointers. 312 EXPECT_FALSE(CastInst::castIsValid( 313 Instruction::AddrSpaceCast, Constant::getNullValue(VScaleV4Int32PtrAS1Ty), 314 VScaleV2Int32PtrTy)); 315 EXPECT_FALSE(CastInst::castIsValid(Instruction::AddrSpaceCast, 316 Constant::getNullValue(VScaleV2Int32PtrTy), 317 VScaleV4Int32PtrAS1Ty)); 318 EXPECT_TRUE(CastInst::castIsValid(Instruction::AddrSpaceCast, 319 Constant::getNullValue(VScaleV4Int64PtrTy), 320 VScaleV4Int32PtrAS1Ty)); 321 // Same number of lanes, different address space. 322 EXPECT_TRUE(CastInst::castIsValid( 323 Instruction::AddrSpaceCast, Constant::getNullValue(VScaleV4Int32PtrAS1Ty), 324 VScaleV4Int32PtrTy)); 325 // Same number of lanes, same address space. 326 EXPECT_FALSE(CastInst::castIsValid(Instruction::AddrSpaceCast, 327 Constant::getNullValue(VScaleV4Int64PtrTy), 328 VScaleV4Int32PtrTy)); 329 330 // Bit casting fixed/scalable vector to scalable/fixed vectors. 331 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 332 Constant::getNullValue(V2Int32Ty), 333 VScaleV2Int32Ty)); 334 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 335 Constant::getNullValue(V2Int64Ty), 336 VScaleV2Int64Ty)); 337 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 338 Constant::getNullValue(V4Int16Ty), 339 VScaleV4Int16Ty)); 340 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 341 Constant::getNullValue(VScaleV2Int32Ty), 342 V2Int32Ty)); 343 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 344 Constant::getNullValue(VScaleV2Int64Ty), 345 V2Int64Ty)); 346 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 347 Constant::getNullValue(VScaleV4Int16Ty), 348 V4Int16Ty)); 349 350 // Bit casting scalable vectors to scalable vectors. 351 EXPECT_TRUE(CastInst::castIsValid(Instruction::BitCast, 352 Constant::getNullValue(VScaleV4Int16Ty), 353 VScaleV2Int32Ty)); 354 EXPECT_TRUE(CastInst::castIsValid(Instruction::BitCast, 355 Constant::getNullValue(VScaleV2Int32Ty), 356 VScaleV4Int16Ty)); 357 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 358 Constant::getNullValue(VScaleV2Int64Ty), 359 VScaleV2Int32Ty)); 360 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 361 Constant::getNullValue(VScaleV2Int32Ty), 362 VScaleV2Int64Ty)); 363 364 // Bitcasting to/from <vscale x 1 x Ty> 365 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 366 Constant::getNullValue(VScaleV1Int16Ty), 367 V1Int16Ty)); 368 EXPECT_FALSE(CastInst::castIsValid(Instruction::BitCast, 369 Constant::getNullValue(V1Int16Ty), 370 VScaleV1Int16Ty)); 371 372 // Check that assertion is not hit when creating a cast with a vector of 373 // pointers 374 // First form 375 BasicBlock *BB = BasicBlock::Create(C); 376 Constant *NullV2I32Ptr = Constant::getNullValue(V2Int32PtrTy); 377 auto Inst1 = CastInst::CreatePointerCast(NullV2I32Ptr, V2Int32Ty, "foo", BB); 378 379 Constant *NullVScaleV2I32Ptr = Constant::getNullValue(VScaleV2Int32PtrTy); 380 auto Inst1VScale = CastInst::CreatePointerCast( 381 NullVScaleV2I32Ptr, VScaleV2Int32Ty, "foo.vscale", BB); 382 383 // Second form 384 auto Inst2 = CastInst::CreatePointerCast(NullV2I32Ptr, V2Int32Ty); 385 auto Inst2VScale = 386 CastInst::CreatePointerCast(NullVScaleV2I32Ptr, VScaleV2Int32Ty); 387 388 delete Inst2; 389 delete Inst2VScale; 390 Inst1->eraseFromParent(); 391 Inst1VScale->eraseFromParent(); 392 delete BB; 393 } 394 395 TEST(InstructionsTest, CastCAPI) { 396 LLVMContext C; 397 398 Type *Int8Ty = Type::getInt8Ty(C); 399 Type *Int32Ty = Type::getInt32Ty(C); 400 Type *Int64Ty = Type::getInt64Ty(C); 401 402 Type *FloatTy = Type::getFloatTy(C); 403 Type *DoubleTy = Type::getDoubleTy(C); 404 405 Type *Int8PtrTy = PointerType::get(Int8Ty, 0); 406 Type *Int32PtrTy = PointerType::get(Int32Ty, 0); 407 408 const Constant *C8 = Constant::getNullValue(Int8Ty); 409 const Constant *C64 = Constant::getNullValue(Int64Ty); 410 411 EXPECT_EQ(LLVMBitCast, 412 LLVMGetCastOpcode(wrap(C64), true, wrap(Int64Ty), true)); 413 EXPECT_EQ(LLVMTrunc, LLVMGetCastOpcode(wrap(C64), true, wrap(Int8Ty), true)); 414 EXPECT_EQ(LLVMSExt, LLVMGetCastOpcode(wrap(C8), true, wrap(Int64Ty), true)); 415 EXPECT_EQ(LLVMZExt, LLVMGetCastOpcode(wrap(C8), false, wrap(Int64Ty), true)); 416 417 const Constant *CF32 = Constant::getNullValue(FloatTy); 418 const Constant *CF64 = Constant::getNullValue(DoubleTy); 419 420 EXPECT_EQ(LLVMFPToUI, 421 LLVMGetCastOpcode(wrap(CF32), true, wrap(Int8Ty), false)); 422 EXPECT_EQ(LLVMFPToSI, 423 LLVMGetCastOpcode(wrap(CF32), true, wrap(Int8Ty), true)); 424 EXPECT_EQ(LLVMUIToFP, 425 LLVMGetCastOpcode(wrap(C8), false, wrap(FloatTy), true)); 426 EXPECT_EQ(LLVMSIToFP, LLVMGetCastOpcode(wrap(C8), true, wrap(FloatTy), true)); 427 EXPECT_EQ(LLVMFPTrunc, 428 LLVMGetCastOpcode(wrap(CF64), true, wrap(FloatTy), true)); 429 EXPECT_EQ(LLVMFPExt, 430 LLVMGetCastOpcode(wrap(CF32), true, wrap(DoubleTy), true)); 431 432 const Constant *CPtr8 = Constant::getNullValue(Int8PtrTy); 433 434 EXPECT_EQ(LLVMPtrToInt, 435 LLVMGetCastOpcode(wrap(CPtr8), true, wrap(Int8Ty), true)); 436 EXPECT_EQ(LLVMIntToPtr, 437 LLVMGetCastOpcode(wrap(C8), true, wrap(Int8PtrTy), true)); 438 439 Type *V8x8Ty = FixedVectorType::get(Int8Ty, 8); 440 Type *V8x64Ty = FixedVectorType::get(Int64Ty, 8); 441 const Constant *CV8 = Constant::getNullValue(V8x8Ty); 442 const Constant *CV64 = Constant::getNullValue(V8x64Ty); 443 444 EXPECT_EQ(LLVMTrunc, LLVMGetCastOpcode(wrap(CV64), true, wrap(V8x8Ty), true)); 445 EXPECT_EQ(LLVMSExt, LLVMGetCastOpcode(wrap(CV8), true, wrap(V8x64Ty), true)); 446 447 Type *Int32PtrAS1Ty = PointerType::get(Int32Ty, 1); 448 Type *V2Int32PtrAS1Ty = FixedVectorType::get(Int32PtrAS1Ty, 2); 449 Type *V2Int32PtrTy = FixedVectorType::get(Int32PtrTy, 2); 450 const Constant *CV2ptr32 = Constant::getNullValue(V2Int32PtrTy); 451 452 EXPECT_EQ(LLVMAddrSpaceCast, LLVMGetCastOpcode(wrap(CV2ptr32), true, 453 wrap(V2Int32PtrAS1Ty), true)); 454 } 455 456 TEST(InstructionsTest, VectorGep) { 457 LLVMContext C; 458 459 // Type Definitions 460 Type *I8Ty = IntegerType::get(C, 8); 461 Type *I32Ty = IntegerType::get(C, 32); 462 PointerType *Ptri8Ty = PointerType::get(I8Ty, 0); 463 PointerType *Ptri32Ty = PointerType::get(I32Ty, 0); 464 465 VectorType *V2xi8PTy = FixedVectorType::get(Ptri8Ty, 2); 466 VectorType *V2xi32PTy = FixedVectorType::get(Ptri32Ty, 2); 467 468 // Test different aspects of the vector-of-pointers type 469 // and GEPs which use this type. 470 ConstantInt *Ci32a = ConstantInt::get(C, APInt(32, 1492)); 471 ConstantInt *Ci32b = ConstantInt::get(C, APInt(32, 1948)); 472 std::vector<Constant*> ConstVa(2, Ci32a); 473 std::vector<Constant*> ConstVb(2, Ci32b); 474 Constant *C2xi32a = ConstantVector::get(ConstVa); 475 Constant *C2xi32b = ConstantVector::get(ConstVb); 476 477 CastInst *PtrVecA = new IntToPtrInst(C2xi32a, V2xi32PTy); 478 CastInst *PtrVecB = new IntToPtrInst(C2xi32b, V2xi32PTy); 479 480 ICmpInst *ICmp0 = new ICmpInst(ICmpInst::ICMP_SGT, PtrVecA, PtrVecB); 481 ICmpInst *ICmp1 = new ICmpInst(ICmpInst::ICMP_ULT, PtrVecA, PtrVecB); 482 EXPECT_NE(ICmp0, ICmp1); // suppress warning. 483 484 BasicBlock* BB0 = BasicBlock::Create(C); 485 // Test InsertAtEnd ICmpInst constructor. 486 ICmpInst *ICmp2 = new ICmpInst(*BB0, ICmpInst::ICMP_SGE, PtrVecA, PtrVecB); 487 EXPECT_NE(ICmp0, ICmp2); // suppress warning. 488 489 GetElementPtrInst *Gep0 = GetElementPtrInst::Create(I32Ty, PtrVecA, C2xi32a); 490 GetElementPtrInst *Gep1 = GetElementPtrInst::Create(I32Ty, PtrVecA, C2xi32b); 491 GetElementPtrInst *Gep2 = GetElementPtrInst::Create(I32Ty, PtrVecB, C2xi32a); 492 GetElementPtrInst *Gep3 = GetElementPtrInst::Create(I32Ty, PtrVecB, C2xi32b); 493 494 CastInst *BTC0 = new BitCastInst(Gep0, V2xi8PTy); 495 CastInst *BTC1 = new BitCastInst(Gep1, V2xi8PTy); 496 CastInst *BTC2 = new BitCastInst(Gep2, V2xi8PTy); 497 CastInst *BTC3 = new BitCastInst(Gep3, V2xi8PTy); 498 499 Value *S0 = BTC0->stripPointerCasts(); 500 Value *S1 = BTC1->stripPointerCasts(); 501 Value *S2 = BTC2->stripPointerCasts(); 502 Value *S3 = BTC3->stripPointerCasts(); 503 504 EXPECT_NE(S0, Gep0); 505 EXPECT_NE(S1, Gep1); 506 EXPECT_NE(S2, Gep2); 507 EXPECT_NE(S3, Gep3); 508 509 int64_t Offset; 510 DataLayout TD("e-p:64:64:64-i1:8:8-i8:8:8-i16:16:16-i32:32:32-i64:64:64-f3" 511 "2:32:32-f64:64:64-v64:64:64-v128:128:128-a:0:64-s:64:64-f80" 512 ":128:128-n8:16:32:64-S128"); 513 // Make sure we don't crash 514 GetPointerBaseWithConstantOffset(Gep0, Offset, TD); 515 GetPointerBaseWithConstantOffset(Gep1, Offset, TD); 516 GetPointerBaseWithConstantOffset(Gep2, Offset, TD); 517 GetPointerBaseWithConstantOffset(Gep3, Offset, TD); 518 519 // Gep of Geps 520 GetElementPtrInst *GepII0 = GetElementPtrInst::Create(I32Ty, Gep0, C2xi32b); 521 GetElementPtrInst *GepII1 = GetElementPtrInst::Create(I32Ty, Gep1, C2xi32a); 522 GetElementPtrInst *GepII2 = GetElementPtrInst::Create(I32Ty, Gep2, C2xi32b); 523 GetElementPtrInst *GepII3 = GetElementPtrInst::Create(I32Ty, Gep3, C2xi32a); 524 525 EXPECT_EQ(GepII0->getNumIndices(), 1u); 526 EXPECT_EQ(GepII1->getNumIndices(), 1u); 527 EXPECT_EQ(GepII2->getNumIndices(), 1u); 528 EXPECT_EQ(GepII3->getNumIndices(), 1u); 529 530 EXPECT_FALSE(GepII0->hasAllZeroIndices()); 531 EXPECT_FALSE(GepII1->hasAllZeroIndices()); 532 EXPECT_FALSE(GepII2->hasAllZeroIndices()); 533 EXPECT_FALSE(GepII3->hasAllZeroIndices()); 534 535 delete GepII0; 536 delete GepII1; 537 delete GepII2; 538 delete GepII3; 539 540 delete BTC0; 541 delete BTC1; 542 delete BTC2; 543 delete BTC3; 544 545 delete Gep0; 546 delete Gep1; 547 delete Gep2; 548 delete Gep3; 549 550 ICmp2->eraseFromParent(); 551 delete BB0; 552 553 delete ICmp0; 554 delete ICmp1; 555 delete PtrVecA; 556 delete PtrVecB; 557 } 558 559 TEST(InstructionsTest, FPMathOperator) { 560 LLVMContext Context; 561 IRBuilder<> Builder(Context); 562 MDBuilder MDHelper(Context); 563 Instruction *I = Builder.CreatePHI(Builder.getDoubleTy(), 0); 564 MDNode *MD1 = MDHelper.createFPMath(1.0); 565 Value *V1 = Builder.CreateFAdd(I, I, "", MD1); 566 EXPECT_TRUE(isa<FPMathOperator>(V1)); 567 FPMathOperator *O1 = cast<FPMathOperator>(V1); 568 EXPECT_EQ(O1->getFPAccuracy(), 1.0); 569 V1->deleteValue(); 570 I->deleteValue(); 571 } 572 573 TEST(InstructionTest, ConstrainedTrans) { 574 LLVMContext Context; 575 std::unique_ptr<Module> M(new Module("MyModule", Context)); 576 FunctionType *FTy = 577 FunctionType::get(Type::getVoidTy(Context), 578 {Type::getFloatTy(Context), Type::getFloatTy(Context), 579 Type::getInt32Ty(Context)}, 580 false); 581 auto *F = Function::Create(FTy, Function::ExternalLinkage, "", M.get()); 582 auto *BB = BasicBlock::Create(Context, "bb", F); 583 IRBuilder<> Builder(Context); 584 Builder.SetInsertPoint(BB); 585 auto *Arg0 = F->arg_begin(); 586 auto *Arg1 = F->arg_begin() + 1; 587 588 { 589 auto *I = cast<Instruction>(Builder.CreateFAdd(Arg0, Arg1)); 590 EXPECT_EQ(Intrinsic::experimental_constrained_fadd, 591 getConstrainedIntrinsicID(*I)); 592 } 593 594 { 595 auto *I = cast<Instruction>( 596 Builder.CreateFPToSI(Arg0, Type::getInt32Ty(Context))); 597 EXPECT_EQ(Intrinsic::experimental_constrained_fptosi, 598 getConstrainedIntrinsicID(*I)); 599 } 600 601 { 602 auto *I = cast<Instruction>(Builder.CreateIntrinsic( 603 Intrinsic::ceil, {Type::getFloatTy(Context)}, {Arg0})); 604 EXPECT_EQ(Intrinsic::experimental_constrained_ceil, 605 getConstrainedIntrinsicID(*I)); 606 } 607 608 { 609 auto *I = cast<Instruction>(Builder.CreateFCmpOEQ(Arg0, Arg1)); 610 EXPECT_EQ(Intrinsic::experimental_constrained_fcmp, 611 getConstrainedIntrinsicID(*I)); 612 } 613 614 { 615 auto *Arg2 = F->arg_begin() + 2; 616 auto *I = cast<Instruction>(Builder.CreateAdd(Arg2, Arg2)); 617 EXPECT_EQ(Intrinsic::not_intrinsic, getConstrainedIntrinsicID(*I)); 618 } 619 620 { 621 auto *I = cast<Instruction>(Builder.CreateConstrainedFPBinOp( 622 Intrinsic::experimental_constrained_fadd, Arg0, Arg0)); 623 EXPECT_EQ(Intrinsic::not_intrinsic, getConstrainedIntrinsicID(*I)); 624 } 625 } 626 627 TEST(InstructionsTest, isEliminableCastPair) { 628 LLVMContext C; 629 630 Type* Int16Ty = Type::getInt16Ty(C); 631 Type* Int32Ty = Type::getInt32Ty(C); 632 Type* Int64Ty = Type::getInt64Ty(C); 633 Type* Int64PtrTy = Type::getInt64PtrTy(C); 634 635 // Source and destination pointers have same size -> bitcast. 636 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::PtrToInt, 637 CastInst::IntToPtr, 638 Int64PtrTy, Int64Ty, Int64PtrTy, 639 Int32Ty, nullptr, Int32Ty), 640 CastInst::BitCast); 641 642 // Source and destination have unknown sizes, but the same address space and 643 // the intermediate int is the maximum pointer size -> bitcast 644 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::PtrToInt, 645 CastInst::IntToPtr, 646 Int64PtrTy, Int64Ty, Int64PtrTy, 647 nullptr, nullptr, nullptr), 648 CastInst::BitCast); 649 650 // Source and destination have unknown sizes, but the same address space and 651 // the intermediate int is not the maximum pointer size -> nothing 652 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::PtrToInt, 653 CastInst::IntToPtr, 654 Int64PtrTy, Int32Ty, Int64PtrTy, 655 nullptr, nullptr, nullptr), 656 0U); 657 658 // Middle pointer big enough -> bitcast. 659 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::IntToPtr, 660 CastInst::PtrToInt, 661 Int64Ty, Int64PtrTy, Int64Ty, 662 nullptr, Int64Ty, nullptr), 663 CastInst::BitCast); 664 665 // Middle pointer too small -> fail. 666 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::IntToPtr, 667 CastInst::PtrToInt, 668 Int64Ty, Int64PtrTy, Int64Ty, 669 nullptr, Int32Ty, nullptr), 670 0U); 671 672 // Test that we don't eliminate bitcasts between different address spaces, 673 // or if we don't have available pointer size information. 674 DataLayout DL("e-p:32:32:32-p1:16:16:16-p2:64:64:64-i1:8:8-i8:8:8-i16:16:16" 675 "-i32:32:32-i64:64:64-f32:32:32-f64:64:64-v64:64:64" 676 "-v128:128:128-a:0:64-s:64:64-f80:128:128-n8:16:32:64-S128"); 677 678 Type* Int64PtrTyAS1 = Type::getInt64PtrTy(C, 1); 679 Type* Int64PtrTyAS2 = Type::getInt64PtrTy(C, 2); 680 681 IntegerType *Int16SizePtr = DL.getIntPtrType(C, 1); 682 IntegerType *Int64SizePtr = DL.getIntPtrType(C, 2); 683 684 // Cannot simplify inttoptr, addrspacecast 685 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::IntToPtr, 686 CastInst::AddrSpaceCast, 687 Int16Ty, Int64PtrTyAS1, Int64PtrTyAS2, 688 nullptr, Int16SizePtr, Int64SizePtr), 689 0U); 690 691 // Cannot simplify addrspacecast, ptrtoint 692 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::AddrSpaceCast, 693 CastInst::PtrToInt, 694 Int64PtrTyAS1, Int64PtrTyAS2, Int16Ty, 695 Int64SizePtr, Int16SizePtr, nullptr), 696 0U); 697 698 // Pass since the bitcast address spaces are the same 699 EXPECT_EQ(CastInst::isEliminableCastPair(CastInst::IntToPtr, 700 CastInst::BitCast, 701 Int16Ty, Int64PtrTyAS1, Int64PtrTyAS1, 702 nullptr, nullptr, nullptr), 703 CastInst::IntToPtr); 704 705 } 706 707 TEST(InstructionsTest, CloneCall) { 708 LLVMContext C; 709 Type *Int32Ty = Type::getInt32Ty(C); 710 Type *ArgTys[] = {Int32Ty, Int32Ty, Int32Ty}; 711 FunctionType *FnTy = FunctionType::get(Int32Ty, ArgTys, /*isVarArg=*/false); 712 Value *Callee = Constant::getNullValue(FnTy->getPointerTo()); 713 Value *Args[] = { 714 ConstantInt::get(Int32Ty, 1), 715 ConstantInt::get(Int32Ty, 2), 716 ConstantInt::get(Int32Ty, 3) 717 }; 718 std::unique_ptr<CallInst> Call( 719 CallInst::Create(FnTy, Callee, Args, "result")); 720 721 // Test cloning the tail call kind. 722 CallInst::TailCallKind Kinds[] = {CallInst::TCK_None, CallInst::TCK_Tail, 723 CallInst::TCK_MustTail}; 724 for (CallInst::TailCallKind TCK : Kinds) { 725 Call->setTailCallKind(TCK); 726 std::unique_ptr<CallInst> Clone(cast<CallInst>(Call->clone())); 727 EXPECT_EQ(Call->getTailCallKind(), Clone->getTailCallKind()); 728 } 729 Call->setTailCallKind(CallInst::TCK_None); 730 731 // Test cloning an attribute. 732 { 733 AttrBuilder AB(C); 734 AB.addAttribute(Attribute::ReadOnly); 735 Call->setAttributes( 736 AttributeList::get(C, AttributeList::FunctionIndex, AB)); 737 std::unique_ptr<CallInst> Clone(cast<CallInst>(Call->clone())); 738 EXPECT_TRUE(Clone->onlyReadsMemory()); 739 } 740 } 741 742 TEST(InstructionsTest, AlterCallBundles) { 743 LLVMContext C; 744 Type *Int32Ty = Type::getInt32Ty(C); 745 FunctionType *FnTy = FunctionType::get(Int32Ty, Int32Ty, /*isVarArg=*/false); 746 Value *Callee = Constant::getNullValue(FnTy->getPointerTo()); 747 Value *Args[] = {ConstantInt::get(Int32Ty, 42)}; 748 OperandBundleDef OldBundle("before", UndefValue::get(Int32Ty)); 749 std::unique_ptr<CallInst> Call( 750 CallInst::Create(FnTy, Callee, Args, OldBundle, "result")); 751 Call->setTailCallKind(CallInst::TailCallKind::TCK_NoTail); 752 AttrBuilder AB(C); 753 AB.addAttribute(Attribute::Cold); 754 Call->setAttributes(AttributeList::get(C, AttributeList::FunctionIndex, AB)); 755 Call->setDebugLoc(DebugLoc(MDNode::get(C, None))); 756 757 OperandBundleDef NewBundle("after", ConstantInt::get(Int32Ty, 7)); 758 std::unique_ptr<CallInst> Clone(CallInst::Create(Call.get(), NewBundle)); 759 EXPECT_EQ(Call->arg_size(), Clone->arg_size()); 760 EXPECT_EQ(Call->getArgOperand(0), Clone->getArgOperand(0)); 761 EXPECT_EQ(Call->getCallingConv(), Clone->getCallingConv()); 762 EXPECT_EQ(Call->getTailCallKind(), Clone->getTailCallKind()); 763 EXPECT_TRUE(Clone->hasFnAttr(Attribute::AttrKind::Cold)); 764 EXPECT_EQ(Call->getDebugLoc(), Clone->getDebugLoc()); 765 EXPECT_EQ(Clone->getNumOperandBundles(), 1U); 766 EXPECT_TRUE(Clone->getOperandBundle("after")); 767 } 768 769 TEST(InstructionsTest, AlterInvokeBundles) { 770 LLVMContext C; 771 Type *Int32Ty = Type::getInt32Ty(C); 772 FunctionType *FnTy = FunctionType::get(Int32Ty, Int32Ty, /*isVarArg=*/false); 773 Value *Callee = Constant::getNullValue(FnTy->getPointerTo()); 774 Value *Args[] = {ConstantInt::get(Int32Ty, 42)}; 775 std::unique_ptr<BasicBlock> NormalDest(BasicBlock::Create(C)); 776 std::unique_ptr<BasicBlock> UnwindDest(BasicBlock::Create(C)); 777 OperandBundleDef OldBundle("before", UndefValue::get(Int32Ty)); 778 std::unique_ptr<InvokeInst> Invoke( 779 InvokeInst::Create(FnTy, Callee, NormalDest.get(), UnwindDest.get(), Args, 780 OldBundle, "result")); 781 AttrBuilder AB(C); 782 AB.addAttribute(Attribute::Cold); 783 Invoke->setAttributes( 784 AttributeList::get(C, AttributeList::FunctionIndex, AB)); 785 Invoke->setDebugLoc(DebugLoc(MDNode::get(C, None))); 786 787 OperandBundleDef NewBundle("after", ConstantInt::get(Int32Ty, 7)); 788 std::unique_ptr<InvokeInst> Clone( 789 InvokeInst::Create(Invoke.get(), NewBundle)); 790 EXPECT_EQ(Invoke->getNormalDest(), Clone->getNormalDest()); 791 EXPECT_EQ(Invoke->getUnwindDest(), Clone->getUnwindDest()); 792 EXPECT_EQ(Invoke->arg_size(), Clone->arg_size()); 793 EXPECT_EQ(Invoke->getArgOperand(0), Clone->getArgOperand(0)); 794 EXPECT_EQ(Invoke->getCallingConv(), Clone->getCallingConv()); 795 EXPECT_TRUE(Clone->hasFnAttr(Attribute::AttrKind::Cold)); 796 EXPECT_EQ(Invoke->getDebugLoc(), Clone->getDebugLoc()); 797 EXPECT_EQ(Clone->getNumOperandBundles(), 1U); 798 EXPECT_TRUE(Clone->getOperandBundle("after")); 799 } 800 801 TEST_F(ModuleWithFunctionTest, DropPoisonGeneratingFlags) { 802 auto *OnlyBB = BasicBlock::Create(Ctx, "bb", F); 803 auto *Arg0 = &*F->arg_begin(); 804 805 IRBuilder<NoFolder> B(Ctx); 806 B.SetInsertPoint(OnlyBB); 807 808 { 809 auto *UI = 810 cast<Instruction>(B.CreateUDiv(Arg0, Arg0, "", /*isExact*/ true)); 811 ASSERT_TRUE(UI->isExact()); 812 UI->dropPoisonGeneratingFlags(); 813 ASSERT_FALSE(UI->isExact()); 814 } 815 816 { 817 auto *ShrI = 818 cast<Instruction>(B.CreateLShr(Arg0, Arg0, "", /*isExact*/ true)); 819 ASSERT_TRUE(ShrI->isExact()); 820 ShrI->dropPoisonGeneratingFlags(); 821 ASSERT_FALSE(ShrI->isExact()); 822 } 823 824 { 825 auto *AI = cast<Instruction>( 826 B.CreateAdd(Arg0, Arg0, "", /*HasNUW*/ true, /*HasNSW*/ false)); 827 ASSERT_TRUE(AI->hasNoUnsignedWrap()); 828 AI->dropPoisonGeneratingFlags(); 829 ASSERT_FALSE(AI->hasNoUnsignedWrap()); 830 ASSERT_FALSE(AI->hasNoSignedWrap()); 831 } 832 833 { 834 auto *SI = cast<Instruction>( 835 B.CreateAdd(Arg0, Arg0, "", /*HasNUW*/ false, /*HasNSW*/ true)); 836 ASSERT_TRUE(SI->hasNoSignedWrap()); 837 SI->dropPoisonGeneratingFlags(); 838 ASSERT_FALSE(SI->hasNoUnsignedWrap()); 839 ASSERT_FALSE(SI->hasNoSignedWrap()); 840 } 841 842 { 843 auto *ShlI = cast<Instruction>( 844 B.CreateShl(Arg0, Arg0, "", /*HasNUW*/ true, /*HasNSW*/ true)); 845 ASSERT_TRUE(ShlI->hasNoSignedWrap()); 846 ASSERT_TRUE(ShlI->hasNoUnsignedWrap()); 847 ShlI->dropPoisonGeneratingFlags(); 848 ASSERT_FALSE(ShlI->hasNoUnsignedWrap()); 849 ASSERT_FALSE(ShlI->hasNoSignedWrap()); 850 } 851 852 { 853 Value *GEPBase = Constant::getNullValue(B.getInt8PtrTy()); 854 auto *GI = cast<GetElementPtrInst>( 855 B.CreateInBoundsGEP(B.getInt8Ty(), GEPBase, Arg0)); 856 ASSERT_TRUE(GI->isInBounds()); 857 GI->dropPoisonGeneratingFlags(); 858 ASSERT_FALSE(GI->isInBounds()); 859 } 860 } 861 862 TEST(InstructionsTest, GEPIndices) { 863 LLVMContext Context; 864 IRBuilder<NoFolder> Builder(Context); 865 Type *ElementTy = Builder.getInt8Ty(); 866 Type *ArrTy = ArrayType::get(ArrayType::get(ElementTy, 64), 64); 867 Value *Indices[] = { 868 Builder.getInt32(0), 869 Builder.getInt32(13), 870 Builder.getInt32(42) }; 871 872 Value *V = Builder.CreateGEP(ArrTy, UndefValue::get(PointerType::getUnqual(ArrTy)), 873 Indices); 874 ASSERT_TRUE(isa<GetElementPtrInst>(V)); 875 876 auto *GEPI = cast<GetElementPtrInst>(V); 877 ASSERT_NE(GEPI->idx_begin(), GEPI->idx_end()); 878 ASSERT_EQ(GEPI->idx_end(), std::next(GEPI->idx_begin(), 3)); 879 EXPECT_EQ(Indices[0], GEPI->idx_begin()[0]); 880 EXPECT_EQ(Indices[1], GEPI->idx_begin()[1]); 881 EXPECT_EQ(Indices[2], GEPI->idx_begin()[2]); 882 EXPECT_EQ(GEPI->idx_begin(), GEPI->indices().begin()); 883 EXPECT_EQ(GEPI->idx_end(), GEPI->indices().end()); 884 885 const auto *CGEPI = GEPI; 886 ASSERT_NE(CGEPI->idx_begin(), CGEPI->idx_end()); 887 ASSERT_EQ(CGEPI->idx_end(), std::next(CGEPI->idx_begin(), 3)); 888 EXPECT_EQ(Indices[0], CGEPI->idx_begin()[0]); 889 EXPECT_EQ(Indices[1], CGEPI->idx_begin()[1]); 890 EXPECT_EQ(Indices[2], CGEPI->idx_begin()[2]); 891 EXPECT_EQ(CGEPI->idx_begin(), CGEPI->indices().begin()); 892 EXPECT_EQ(CGEPI->idx_end(), CGEPI->indices().end()); 893 894 delete GEPI; 895 } 896 897 TEST(InstructionsTest, SwitchInst) { 898 LLVMContext C; 899 900 std::unique_ptr<BasicBlock> BB1, BB2, BB3; 901 BB1.reset(BasicBlock::Create(C)); 902 BB2.reset(BasicBlock::Create(C)); 903 BB3.reset(BasicBlock::Create(C)); 904 905 // We create block 0 after the others so that it gets destroyed first and 906 // clears the uses of the other basic blocks. 907 std::unique_ptr<BasicBlock> BB0(BasicBlock::Create(C)); 908 909 auto *Int32Ty = Type::getInt32Ty(C); 910 911 SwitchInst *SI = 912 SwitchInst::Create(UndefValue::get(Int32Ty), BB0.get(), 3, BB0.get()); 913 SI->addCase(ConstantInt::get(Int32Ty, 1), BB1.get()); 914 SI->addCase(ConstantInt::get(Int32Ty, 2), BB2.get()); 915 SI->addCase(ConstantInt::get(Int32Ty, 3), BB3.get()); 916 917 auto CI = SI->case_begin(); 918 ASSERT_NE(CI, SI->case_end()); 919 EXPECT_EQ(1, CI->getCaseValue()->getSExtValue()); 920 EXPECT_EQ(BB1.get(), CI->getCaseSuccessor()); 921 EXPECT_EQ(2, (CI + 1)->getCaseValue()->getSExtValue()); 922 EXPECT_EQ(BB2.get(), (CI + 1)->getCaseSuccessor()); 923 EXPECT_EQ(3, (CI + 2)->getCaseValue()->getSExtValue()); 924 EXPECT_EQ(BB3.get(), (CI + 2)->getCaseSuccessor()); 925 EXPECT_EQ(CI + 1, std::next(CI)); 926 EXPECT_EQ(CI + 2, std::next(CI, 2)); 927 EXPECT_EQ(CI + 3, std::next(CI, 3)); 928 EXPECT_EQ(SI->case_end(), CI + 3); 929 EXPECT_EQ(0, CI - CI); 930 EXPECT_EQ(1, (CI + 1) - CI); 931 EXPECT_EQ(2, (CI + 2) - CI); 932 EXPECT_EQ(3, SI->case_end() - CI); 933 EXPECT_EQ(3, std::distance(CI, SI->case_end())); 934 935 auto CCI = const_cast<const SwitchInst *>(SI)->case_begin(); 936 SwitchInst::ConstCaseIt CCE = SI->case_end(); 937 ASSERT_NE(CCI, SI->case_end()); 938 EXPECT_EQ(1, CCI->getCaseValue()->getSExtValue()); 939 EXPECT_EQ(BB1.get(), CCI->getCaseSuccessor()); 940 EXPECT_EQ(2, (CCI + 1)->getCaseValue()->getSExtValue()); 941 EXPECT_EQ(BB2.get(), (CCI + 1)->getCaseSuccessor()); 942 EXPECT_EQ(3, (CCI + 2)->getCaseValue()->getSExtValue()); 943 EXPECT_EQ(BB3.get(), (CCI + 2)->getCaseSuccessor()); 944 EXPECT_EQ(CCI + 1, std::next(CCI)); 945 EXPECT_EQ(CCI + 2, std::next(CCI, 2)); 946 EXPECT_EQ(CCI + 3, std::next(CCI, 3)); 947 EXPECT_EQ(CCE, CCI + 3); 948 EXPECT_EQ(0, CCI - CCI); 949 EXPECT_EQ(1, (CCI + 1) - CCI); 950 EXPECT_EQ(2, (CCI + 2) - CCI); 951 EXPECT_EQ(3, CCE - CCI); 952 EXPECT_EQ(3, std::distance(CCI, CCE)); 953 954 // Make sure that the const iterator is compatible with a const auto ref. 955 const auto &Handle = *CCI; 956 EXPECT_EQ(1, Handle.getCaseValue()->getSExtValue()); 957 EXPECT_EQ(BB1.get(), Handle.getCaseSuccessor()); 958 } 959 960 TEST(InstructionsTest, SwitchInstProfUpdateWrapper) { 961 LLVMContext C; 962 963 std::unique_ptr<BasicBlock> BB1, BB2, BB3; 964 BB1.reset(BasicBlock::Create(C)); 965 BB2.reset(BasicBlock::Create(C)); 966 BB3.reset(BasicBlock::Create(C)); 967 968 // We create block 0 after the others so that it gets destroyed first and 969 // clears the uses of the other basic blocks. 970 std::unique_ptr<BasicBlock> BB0(BasicBlock::Create(C)); 971 972 auto *Int32Ty = Type::getInt32Ty(C); 973 974 SwitchInst *SI = 975 SwitchInst::Create(UndefValue::get(Int32Ty), BB0.get(), 4, BB0.get()); 976 SI->addCase(ConstantInt::get(Int32Ty, 1), BB1.get()); 977 SI->addCase(ConstantInt::get(Int32Ty, 2), BB2.get()); 978 SI->setMetadata(LLVMContext::MD_prof, 979 MDBuilder(C).createBranchWeights({ 9, 1, 22 })); 980 981 { 982 SwitchInstProfUpdateWrapper SIW(*SI); 983 EXPECT_EQ(*SIW.getSuccessorWeight(0), 9u); 984 EXPECT_EQ(*SIW.getSuccessorWeight(1), 1u); 985 EXPECT_EQ(*SIW.getSuccessorWeight(2), 22u); 986 SIW.setSuccessorWeight(0, 99u); 987 SIW.setSuccessorWeight(1, 11u); 988 EXPECT_EQ(*SIW.getSuccessorWeight(0), 99u); 989 EXPECT_EQ(*SIW.getSuccessorWeight(1), 11u); 990 EXPECT_EQ(*SIW.getSuccessorWeight(2), 22u); 991 } 992 993 { // Create another wrapper and check that the data persist. 994 SwitchInstProfUpdateWrapper SIW(*SI); 995 EXPECT_EQ(*SIW.getSuccessorWeight(0), 99u); 996 EXPECT_EQ(*SIW.getSuccessorWeight(1), 11u); 997 EXPECT_EQ(*SIW.getSuccessorWeight(2), 22u); 998 } 999 } 1000 1001 TEST(InstructionsTest, CommuteShuffleMask) { 1002 SmallVector<int, 16> Indices({-1, 0, 7}); 1003 ShuffleVectorInst::commuteShuffleMask(Indices, 4); 1004 EXPECT_THAT(Indices, testing::ContainerEq(ArrayRef<int>({-1, 4, 3}))); 1005 } 1006 1007 TEST(InstructionsTest, ShuffleMaskQueries) { 1008 // Create the elements for various constant vectors. 1009 LLVMContext Ctx; 1010 Type *Int32Ty = Type::getInt32Ty(Ctx); 1011 Constant *CU = UndefValue::get(Int32Ty); 1012 Constant *C0 = ConstantInt::get(Int32Ty, 0); 1013 Constant *C1 = ConstantInt::get(Int32Ty, 1); 1014 Constant *C2 = ConstantInt::get(Int32Ty, 2); 1015 Constant *C3 = ConstantInt::get(Int32Ty, 3); 1016 Constant *C4 = ConstantInt::get(Int32Ty, 4); 1017 Constant *C5 = ConstantInt::get(Int32Ty, 5); 1018 Constant *C6 = ConstantInt::get(Int32Ty, 6); 1019 Constant *C7 = ConstantInt::get(Int32Ty, 7); 1020 1021 Constant *Identity = ConstantVector::get({C0, CU, C2, C3, C4}); 1022 EXPECT_TRUE(ShuffleVectorInst::isIdentityMask(Identity)); 1023 EXPECT_FALSE(ShuffleVectorInst::isSelectMask(Identity)); // identity is distinguished from select 1024 EXPECT_FALSE(ShuffleVectorInst::isReverseMask(Identity)); 1025 EXPECT_TRUE(ShuffleVectorInst::isSingleSourceMask(Identity)); // identity is always single source 1026 EXPECT_FALSE(ShuffleVectorInst::isZeroEltSplatMask(Identity)); 1027 EXPECT_FALSE(ShuffleVectorInst::isTransposeMask(Identity)); 1028 1029 Constant *Select = ConstantVector::get({CU, C1, C5}); 1030 EXPECT_FALSE(ShuffleVectorInst::isIdentityMask(Select)); 1031 EXPECT_TRUE(ShuffleVectorInst::isSelectMask(Select)); 1032 EXPECT_FALSE(ShuffleVectorInst::isReverseMask(Select)); 1033 EXPECT_FALSE(ShuffleVectorInst::isSingleSourceMask(Select)); 1034 EXPECT_FALSE(ShuffleVectorInst::isZeroEltSplatMask(Select)); 1035 EXPECT_FALSE(ShuffleVectorInst::isTransposeMask(Select)); 1036 1037 Constant *Reverse = ConstantVector::get({C3, C2, C1, CU}); 1038 EXPECT_FALSE(ShuffleVectorInst::isIdentityMask(Reverse)); 1039 EXPECT_FALSE(ShuffleVectorInst::isSelectMask(Reverse)); 1040 EXPECT_TRUE(ShuffleVectorInst::isReverseMask(Reverse)); 1041 EXPECT_TRUE(ShuffleVectorInst::isSingleSourceMask(Reverse)); // reverse is always single source 1042 EXPECT_FALSE(ShuffleVectorInst::isZeroEltSplatMask(Reverse)); 1043 EXPECT_FALSE(ShuffleVectorInst::isTransposeMask(Reverse)); 1044 1045 Constant *SingleSource = ConstantVector::get({C2, C2, C0, CU}); 1046 EXPECT_FALSE(ShuffleVectorInst::isIdentityMask(SingleSource)); 1047 EXPECT_FALSE(ShuffleVectorInst::isSelectMask(SingleSource)); 1048 EXPECT_FALSE(ShuffleVectorInst::isReverseMask(SingleSource)); 1049 EXPECT_TRUE(ShuffleVectorInst::isSingleSourceMask(SingleSource)); 1050 EXPECT_FALSE(ShuffleVectorInst::isZeroEltSplatMask(SingleSource)); 1051 EXPECT_FALSE(ShuffleVectorInst::isTransposeMask(SingleSource)); 1052 1053 Constant *ZeroEltSplat = ConstantVector::get({C0, C0, CU, C0}); 1054 EXPECT_FALSE(ShuffleVectorInst::isIdentityMask(ZeroEltSplat)); 1055 EXPECT_FALSE(ShuffleVectorInst::isSelectMask(ZeroEltSplat)); 1056 EXPECT_FALSE(ShuffleVectorInst::isReverseMask(ZeroEltSplat)); 1057 EXPECT_TRUE(ShuffleVectorInst::isSingleSourceMask(ZeroEltSplat)); // 0-splat is always single source 1058 EXPECT_TRUE(ShuffleVectorInst::isZeroEltSplatMask(ZeroEltSplat)); 1059 EXPECT_FALSE(ShuffleVectorInst::isTransposeMask(ZeroEltSplat)); 1060 1061 Constant *Transpose = ConstantVector::get({C0, C4, C2, C6}); 1062 EXPECT_FALSE(ShuffleVectorInst::isIdentityMask(Transpose)); 1063 EXPECT_FALSE(ShuffleVectorInst::isSelectMask(Transpose)); 1064 EXPECT_FALSE(ShuffleVectorInst::isReverseMask(Transpose)); 1065 EXPECT_FALSE(ShuffleVectorInst::isSingleSourceMask(Transpose)); 1066 EXPECT_FALSE(ShuffleVectorInst::isZeroEltSplatMask(Transpose)); 1067 EXPECT_TRUE(ShuffleVectorInst::isTransposeMask(Transpose)); 1068 1069 // More tests to make sure the logic is/stays correct... 1070 EXPECT_TRUE(ShuffleVectorInst::isIdentityMask(ConstantVector::get({CU, C1, CU, C3}))); 1071 EXPECT_TRUE(ShuffleVectorInst::isIdentityMask(ConstantVector::get({C4, CU, C6, CU}))); 1072 1073 EXPECT_TRUE(ShuffleVectorInst::isSelectMask(ConstantVector::get({C4, C1, C6, CU}))); 1074 EXPECT_TRUE(ShuffleVectorInst::isSelectMask(ConstantVector::get({CU, C1, C6, C3}))); 1075 1076 EXPECT_TRUE(ShuffleVectorInst::isReverseMask(ConstantVector::get({C7, C6, CU, C4}))); 1077 EXPECT_TRUE(ShuffleVectorInst::isReverseMask(ConstantVector::get({C3, CU, C1, CU}))); 1078 1079 EXPECT_TRUE(ShuffleVectorInst::isSingleSourceMask(ConstantVector::get({C7, C5, CU, C7}))); 1080 EXPECT_TRUE(ShuffleVectorInst::isSingleSourceMask(ConstantVector::get({C3, C0, CU, C3}))); 1081 1082 EXPECT_TRUE(ShuffleVectorInst::isZeroEltSplatMask(ConstantVector::get({C4, CU, CU, C4}))); 1083 EXPECT_TRUE(ShuffleVectorInst::isZeroEltSplatMask(ConstantVector::get({CU, C0, CU, C0}))); 1084 1085 EXPECT_TRUE(ShuffleVectorInst::isTransposeMask(ConstantVector::get({C1, C5, C3, C7}))); 1086 EXPECT_TRUE(ShuffleVectorInst::isTransposeMask(ConstantVector::get({C1, C3}))); 1087 1088 // Nothing special about the values here - just re-using inputs to reduce code. 1089 Constant *V0 = ConstantVector::get({C0, C1, C2, C3}); 1090 Constant *V1 = ConstantVector::get({C3, C2, C1, C0}); 1091 1092 // Identity with undef elts. 1093 ShuffleVectorInst *Id1 = new ShuffleVectorInst(V0, V1, 1094 ConstantVector::get({C0, C1, CU, CU})); 1095 EXPECT_TRUE(Id1->isIdentity()); 1096 EXPECT_FALSE(Id1->isIdentityWithPadding()); 1097 EXPECT_FALSE(Id1->isIdentityWithExtract()); 1098 EXPECT_FALSE(Id1->isConcat()); 1099 delete Id1; 1100 1101 // Result has less elements than operands. 1102 ShuffleVectorInst *Id2 = new ShuffleVectorInst(V0, V1, 1103 ConstantVector::get({C0, C1, C2})); 1104 EXPECT_FALSE(Id2->isIdentity()); 1105 EXPECT_FALSE(Id2->isIdentityWithPadding()); 1106 EXPECT_TRUE(Id2->isIdentityWithExtract()); 1107 EXPECT_FALSE(Id2->isConcat()); 1108 delete Id2; 1109 1110 // Result has less elements than operands; choose from Op1. 1111 ShuffleVectorInst *Id3 = new ShuffleVectorInst(V0, V1, 1112 ConstantVector::get({C4, CU, C6})); 1113 EXPECT_FALSE(Id3->isIdentity()); 1114 EXPECT_FALSE(Id3->isIdentityWithPadding()); 1115 EXPECT_TRUE(Id3->isIdentityWithExtract()); 1116 EXPECT_FALSE(Id3->isConcat()); 1117 delete Id3; 1118 1119 // Result has less elements than operands; choose from Op0 and Op1 is not identity. 1120 ShuffleVectorInst *Id4 = new ShuffleVectorInst(V0, V1, 1121 ConstantVector::get({C4, C1, C6})); 1122 EXPECT_FALSE(Id4->isIdentity()); 1123 EXPECT_FALSE(Id4->isIdentityWithPadding()); 1124 EXPECT_FALSE(Id4->isIdentityWithExtract()); 1125 EXPECT_FALSE(Id4->isConcat()); 1126 delete Id4; 1127 1128 // Result has more elements than operands, and extra elements are undef. 1129 ShuffleVectorInst *Id5 = new ShuffleVectorInst(V0, V1, 1130 ConstantVector::get({CU, C1, C2, C3, CU, CU})); 1131 EXPECT_FALSE(Id5->isIdentity()); 1132 EXPECT_TRUE(Id5->isIdentityWithPadding()); 1133 EXPECT_FALSE(Id5->isIdentityWithExtract()); 1134 EXPECT_FALSE(Id5->isConcat()); 1135 delete Id5; 1136 1137 // Result has more elements than operands, and extra elements are undef; choose from Op1. 1138 ShuffleVectorInst *Id6 = new ShuffleVectorInst(V0, V1, 1139 ConstantVector::get({C4, C5, C6, CU, CU, CU})); 1140 EXPECT_FALSE(Id6->isIdentity()); 1141 EXPECT_TRUE(Id6->isIdentityWithPadding()); 1142 EXPECT_FALSE(Id6->isIdentityWithExtract()); 1143 EXPECT_FALSE(Id6->isConcat()); 1144 delete Id6; 1145 1146 // Result has more elements than operands, but extra elements are not undef. 1147 ShuffleVectorInst *Id7 = new ShuffleVectorInst(V0, V1, 1148 ConstantVector::get({C0, C1, C2, C3, CU, C1})); 1149 EXPECT_FALSE(Id7->isIdentity()); 1150 EXPECT_FALSE(Id7->isIdentityWithPadding()); 1151 EXPECT_FALSE(Id7->isIdentityWithExtract()); 1152 EXPECT_FALSE(Id7->isConcat()); 1153 delete Id7; 1154 1155 // Result has more elements than operands; choose from Op0 and Op1 is not identity. 1156 ShuffleVectorInst *Id8 = new ShuffleVectorInst(V0, V1, 1157 ConstantVector::get({C4, CU, C2, C3, CU, CU})); 1158 EXPECT_FALSE(Id8->isIdentity()); 1159 EXPECT_FALSE(Id8->isIdentityWithPadding()); 1160 EXPECT_FALSE(Id8->isIdentityWithExtract()); 1161 EXPECT_FALSE(Id8->isConcat()); 1162 delete Id8; 1163 1164 // Result has twice as many elements as operands; choose consecutively from Op0 and Op1 is concat. 1165 ShuffleVectorInst *Id9 = new ShuffleVectorInst(V0, V1, 1166 ConstantVector::get({C0, CU, C2, C3, CU, CU, C6, C7})); 1167 EXPECT_FALSE(Id9->isIdentity()); 1168 EXPECT_FALSE(Id9->isIdentityWithPadding()); 1169 EXPECT_FALSE(Id9->isIdentityWithExtract()); 1170 EXPECT_TRUE(Id9->isConcat()); 1171 delete Id9; 1172 1173 // Result has less than twice as many elements as operands, so not a concat. 1174 ShuffleVectorInst *Id10 = new ShuffleVectorInst(V0, V1, 1175 ConstantVector::get({C0, CU, C2, C3, CU, CU, C6})); 1176 EXPECT_FALSE(Id10->isIdentity()); 1177 EXPECT_FALSE(Id10->isIdentityWithPadding()); 1178 EXPECT_FALSE(Id10->isIdentityWithExtract()); 1179 EXPECT_FALSE(Id10->isConcat()); 1180 delete Id10; 1181 1182 // Result has more than twice as many elements as operands, so not a concat. 1183 ShuffleVectorInst *Id11 = new ShuffleVectorInst(V0, V1, 1184 ConstantVector::get({C0, CU, C2, C3, CU, CU, C6, C7, CU})); 1185 EXPECT_FALSE(Id11->isIdentity()); 1186 EXPECT_FALSE(Id11->isIdentityWithPadding()); 1187 EXPECT_FALSE(Id11->isIdentityWithExtract()); 1188 EXPECT_FALSE(Id11->isConcat()); 1189 delete Id11; 1190 1191 // If an input is undef, it's not a concat. 1192 // TODO: IdentityWithPadding should be true here even though the high mask values are not undef. 1193 ShuffleVectorInst *Id12 = new ShuffleVectorInst(V0, ConstantVector::get({CU, CU, CU, CU}), 1194 ConstantVector::get({C0, CU, C2, C3, CU, CU, C6, C7})); 1195 EXPECT_FALSE(Id12->isIdentity()); 1196 EXPECT_FALSE(Id12->isIdentityWithPadding()); 1197 EXPECT_FALSE(Id12->isIdentityWithExtract()); 1198 EXPECT_FALSE(Id12->isConcat()); 1199 delete Id12; 1200 1201 // Not possible to express shuffle mask for scalable vector for extract 1202 // subvector. 1203 Type *VScaleV4Int32Ty = ScalableVectorType::get(Int32Ty, 4); 1204 ShuffleVectorInst *Id13 = 1205 new ShuffleVectorInst(Constant::getAllOnesValue(VScaleV4Int32Ty), 1206 UndefValue::get(VScaleV4Int32Ty), 1207 Constant::getNullValue(VScaleV4Int32Ty)); 1208 int Index = 0; 1209 EXPECT_FALSE(Id13->isExtractSubvectorMask(Index)); 1210 EXPECT_FALSE(Id13->changesLength()); 1211 EXPECT_FALSE(Id13->increasesLength()); 1212 delete Id13; 1213 1214 // Result has twice as many operands. 1215 Type *VScaleV2Int32Ty = ScalableVectorType::get(Int32Ty, 2); 1216 ShuffleVectorInst *Id14 = 1217 new ShuffleVectorInst(Constant::getAllOnesValue(VScaleV2Int32Ty), 1218 UndefValue::get(VScaleV2Int32Ty), 1219 Constant::getNullValue(VScaleV4Int32Ty)); 1220 EXPECT_TRUE(Id14->changesLength()); 1221 EXPECT_TRUE(Id14->increasesLength()); 1222 delete Id14; 1223 1224 // Not possible to express these masks for scalable vectors, make sure we 1225 // don't crash. 1226 ShuffleVectorInst *Id15 = 1227 new ShuffleVectorInst(Constant::getAllOnesValue(VScaleV2Int32Ty), 1228 Constant::getNullValue(VScaleV2Int32Ty), 1229 Constant::getNullValue(VScaleV2Int32Ty)); 1230 EXPECT_FALSE(Id15->isIdentityWithPadding()); 1231 EXPECT_FALSE(Id15->isIdentityWithExtract()); 1232 EXPECT_FALSE(Id15->isConcat()); 1233 delete Id15; 1234 } 1235 1236 TEST(InstructionsTest, ShuffleMaskIsReplicationMask) { 1237 for (int ReplicationFactor : seq_inclusive(1, 8)) { 1238 for (int VF : seq_inclusive(1, 8)) { 1239 const auto ReplicatedMask = createReplicatedMask(ReplicationFactor, VF); 1240 int GuessedReplicationFactor = -1, GuessedVF = -1; 1241 EXPECT_TRUE(ShuffleVectorInst::isReplicationMask( 1242 ReplicatedMask, GuessedReplicationFactor, GuessedVF)); 1243 EXPECT_EQ(GuessedReplicationFactor, ReplicationFactor); 1244 EXPECT_EQ(GuessedVF, VF); 1245 1246 for (int OpVF : seq_inclusive(VF, 2 * VF + 1)) { 1247 LLVMContext Ctx; 1248 Type *OpVFTy = FixedVectorType::get(IntegerType::getInt1Ty(Ctx), OpVF); 1249 Value *Op = ConstantVector::getNullValue(OpVFTy); 1250 ShuffleVectorInst *SVI = new ShuffleVectorInst(Op, Op, ReplicatedMask); 1251 EXPECT_EQ(SVI->isReplicationMask(GuessedReplicationFactor, GuessedVF), 1252 OpVF == VF); 1253 delete SVI; 1254 } 1255 } 1256 } 1257 } 1258 1259 TEST(InstructionsTest, ShuffleMaskIsReplicationMask_undef) { 1260 for (int ReplicationFactor : seq_inclusive(1, 4)) { 1261 for (int VF : seq_inclusive(1, 4)) { 1262 const auto ReplicatedMask = createReplicatedMask(ReplicationFactor, VF); 1263 int GuessedReplicationFactor = -1, GuessedVF = -1; 1264 1265 // If we change some mask elements to undef, we should still match. 1266 1267 SmallVector<SmallVector<bool>> ElementChoices(ReplicatedMask.size(), 1268 {false, true}); 1269 1270 CombinationGenerator<bool, decltype(ElementChoices)::value_type, 1271 /*variable_smallsize=*/4> 1272 G(ElementChoices); 1273 1274 G.generate([&](ArrayRef<bool> UndefOverrides) -> bool { 1275 SmallVector<int> AdjustedMask; 1276 AdjustedMask.reserve(ReplicatedMask.size()); 1277 for (auto I : zip(ReplicatedMask, UndefOverrides)) 1278 AdjustedMask.emplace_back(std::get<1>(I) ? -1 : std::get<0>(I)); 1279 assert(AdjustedMask.size() == ReplicatedMask.size() && 1280 "Size misprediction"); 1281 1282 EXPECT_TRUE(ShuffleVectorInst::isReplicationMask( 1283 AdjustedMask, GuessedReplicationFactor, GuessedVF)); 1284 // Do not check GuessedReplicationFactor and GuessedVF, 1285 // with enough undef's we may deduce a different tuple. 1286 1287 return /*Abort=*/false; 1288 }); 1289 } 1290 } 1291 } 1292 1293 TEST(InstructionsTest, ShuffleMaskIsReplicationMask_Exhaustive_Correctness) { 1294 for (int ShufMaskNumElts : seq_inclusive(1, 6)) { 1295 SmallVector<int> PossibleShufMaskElts; 1296 PossibleShufMaskElts.reserve(ShufMaskNumElts + 2); 1297 for (int PossibleShufMaskElt : seq_inclusive(-1, ShufMaskNumElts)) 1298 PossibleShufMaskElts.emplace_back(PossibleShufMaskElt); 1299 assert(PossibleShufMaskElts.size() == ShufMaskNumElts + 2U && 1300 "Size misprediction"); 1301 1302 SmallVector<SmallVector<int>> ElementChoices(ShufMaskNumElts, 1303 PossibleShufMaskElts); 1304 1305 CombinationGenerator<int, decltype(ElementChoices)::value_type, 1306 /*variable_smallsize=*/4> 1307 G(ElementChoices); 1308 1309 G.generate([&](ArrayRef<int> Mask) -> bool { 1310 int GuessedReplicationFactor = -1, GuessedVF = -1; 1311 bool Match = ShuffleVectorInst::isReplicationMask( 1312 Mask, GuessedReplicationFactor, GuessedVF); 1313 if (!Match) 1314 return /*Abort=*/false; 1315 1316 const auto ActualMask = 1317 createReplicatedMask(GuessedReplicationFactor, GuessedVF); 1318 EXPECT_EQ(Mask.size(), ActualMask.size()); 1319 for (auto I : zip(Mask, ActualMask)) { 1320 int Elt = std::get<0>(I); 1321 int ActualElt = std::get<0>(I); 1322 1323 if (Elt != -1) { 1324 EXPECT_EQ(Elt, ActualElt); 1325 } 1326 } 1327 1328 return /*Abort=*/false; 1329 }); 1330 } 1331 } 1332 1333 TEST(InstructionsTest, GetSplat) { 1334 // Create the elements for various constant vectors. 1335 LLVMContext Ctx; 1336 Type *Int32Ty = Type::getInt32Ty(Ctx); 1337 Constant *CU = UndefValue::get(Int32Ty); 1338 Constant *C0 = ConstantInt::get(Int32Ty, 0); 1339 Constant *C1 = ConstantInt::get(Int32Ty, 1); 1340 1341 Constant *Splat0 = ConstantVector::get({C0, C0, C0, C0}); 1342 Constant *Splat1 = ConstantVector::get({C1, C1, C1, C1 ,C1}); 1343 Constant *Splat0Undef = ConstantVector::get({C0, CU, C0, CU}); 1344 Constant *Splat1Undef = ConstantVector::get({CU, CU, C1, CU}); 1345 Constant *NotSplat = ConstantVector::get({C1, C1, C0, C1 ,C1}); 1346 Constant *NotSplatUndef = ConstantVector::get({CU, C1, CU, CU ,C0}); 1347 1348 // Default - undefs are not allowed. 1349 EXPECT_EQ(Splat0->getSplatValue(), C0); 1350 EXPECT_EQ(Splat1->getSplatValue(), C1); 1351 EXPECT_EQ(Splat0Undef->getSplatValue(), nullptr); 1352 EXPECT_EQ(Splat1Undef->getSplatValue(), nullptr); 1353 EXPECT_EQ(NotSplat->getSplatValue(), nullptr); 1354 EXPECT_EQ(NotSplatUndef->getSplatValue(), nullptr); 1355 1356 // Disallow undefs explicitly. 1357 EXPECT_EQ(Splat0->getSplatValue(false), C0); 1358 EXPECT_EQ(Splat1->getSplatValue(false), C1); 1359 EXPECT_EQ(Splat0Undef->getSplatValue(false), nullptr); 1360 EXPECT_EQ(Splat1Undef->getSplatValue(false), nullptr); 1361 EXPECT_EQ(NotSplat->getSplatValue(false), nullptr); 1362 EXPECT_EQ(NotSplatUndef->getSplatValue(false), nullptr); 1363 1364 // Allow undefs. 1365 EXPECT_EQ(Splat0->getSplatValue(true), C0); 1366 EXPECT_EQ(Splat1->getSplatValue(true), C1); 1367 EXPECT_EQ(Splat0Undef->getSplatValue(true), C0); 1368 EXPECT_EQ(Splat1Undef->getSplatValue(true), C1); 1369 EXPECT_EQ(NotSplat->getSplatValue(true), nullptr); 1370 EXPECT_EQ(NotSplatUndef->getSplatValue(true), nullptr); 1371 } 1372 1373 TEST(InstructionsTest, SkipDebug) { 1374 LLVMContext C; 1375 std::unique_ptr<Module> M = parseIR(C, 1376 R"( 1377 declare void @llvm.dbg.value(metadata, metadata, metadata) 1378 1379 define void @f() { 1380 entry: 1381 call void @llvm.dbg.value(metadata i32 0, metadata !11, metadata !DIExpression()), !dbg !13 1382 ret void 1383 } 1384 1385 !llvm.dbg.cu = !{!0} 1386 !llvm.module.flags = !{!3, !4} 1387 !0 = distinct !DICompileUnit(language: DW_LANG_C99, file: !1, producer: "clang version 6.0.0", isOptimized: false, runtimeVersion: 0, emissionKind: FullDebug, enums: !2) 1388 !1 = !DIFile(filename: "t2.c", directory: "foo") 1389 !2 = !{} 1390 !3 = !{i32 2, !"Dwarf Version", i32 4} 1391 !4 = !{i32 2, !"Debug Info Version", i32 3} 1392 !8 = distinct !DISubprogram(name: "f", scope: !1, file: !1, line: 1, type: !9, isLocal: false, isDefinition: true, scopeLine: 1, isOptimized: false, unit: !0, retainedNodes: !2) 1393 !9 = !DISubroutineType(types: !10) 1394 !10 = !{null} 1395 !11 = !DILocalVariable(name: "x", scope: !8, file: !1, line: 2, type: !12) 1396 !12 = !DIBasicType(name: "int", size: 32, encoding: DW_ATE_signed) 1397 !13 = !DILocation(line: 2, column: 7, scope: !8) 1398 )"); 1399 ASSERT_TRUE(M); 1400 Function *F = cast<Function>(M->getNamedValue("f")); 1401 BasicBlock &BB = F->front(); 1402 1403 // The first non-debug instruction is the terminator. 1404 auto *Term = BB.getTerminator(); 1405 EXPECT_EQ(Term, BB.begin()->getNextNonDebugInstruction()); 1406 EXPECT_EQ(Term->getIterator(), skipDebugIntrinsics(BB.begin())); 1407 1408 // After the terminator, there are no non-debug instructions. 1409 EXPECT_EQ(nullptr, Term->getNextNonDebugInstruction()); 1410 } 1411 1412 TEST(InstructionsTest, PhiMightNotBeFPMathOperator) { 1413 LLVMContext Context; 1414 IRBuilder<> Builder(Context); 1415 MDBuilder MDHelper(Context); 1416 Instruction *I = Builder.CreatePHI(Builder.getInt32Ty(), 0); 1417 EXPECT_FALSE(isa<FPMathOperator>(I)); 1418 I->deleteValue(); 1419 Instruction *FP = Builder.CreatePHI(Builder.getDoubleTy(), 0); 1420 EXPECT_TRUE(isa<FPMathOperator>(FP)); 1421 FP->deleteValue(); 1422 } 1423 1424 TEST(InstructionsTest, FPCallIsFPMathOperator) { 1425 LLVMContext C; 1426 1427 Type *ITy = Type::getInt32Ty(C); 1428 FunctionType *IFnTy = FunctionType::get(ITy, {}); 1429 Value *ICallee = Constant::getNullValue(IFnTy->getPointerTo()); 1430 std::unique_ptr<CallInst> ICall(CallInst::Create(IFnTy, ICallee, {}, "")); 1431 EXPECT_FALSE(isa<FPMathOperator>(ICall)); 1432 1433 Type *VITy = FixedVectorType::get(ITy, 2); 1434 FunctionType *VIFnTy = FunctionType::get(VITy, {}); 1435 Value *VICallee = Constant::getNullValue(VIFnTy->getPointerTo()); 1436 std::unique_ptr<CallInst> VICall(CallInst::Create(VIFnTy, VICallee, {}, "")); 1437 EXPECT_FALSE(isa<FPMathOperator>(VICall)); 1438 1439 Type *AITy = ArrayType::get(ITy, 2); 1440 FunctionType *AIFnTy = FunctionType::get(AITy, {}); 1441 Value *AICallee = Constant::getNullValue(AIFnTy->getPointerTo()); 1442 std::unique_ptr<CallInst> AICall(CallInst::Create(AIFnTy, AICallee, {}, "")); 1443 EXPECT_FALSE(isa<FPMathOperator>(AICall)); 1444 1445 Type *FTy = Type::getFloatTy(C); 1446 FunctionType *FFnTy = FunctionType::get(FTy, {}); 1447 Value *FCallee = Constant::getNullValue(FFnTy->getPointerTo()); 1448 std::unique_ptr<CallInst> FCall(CallInst::Create(FFnTy, FCallee, {}, "")); 1449 EXPECT_TRUE(isa<FPMathOperator>(FCall)); 1450 1451 Type *VFTy = FixedVectorType::get(FTy, 2); 1452 FunctionType *VFFnTy = FunctionType::get(VFTy, {}); 1453 Value *VFCallee = Constant::getNullValue(VFFnTy->getPointerTo()); 1454 std::unique_ptr<CallInst> VFCall(CallInst::Create(VFFnTy, VFCallee, {}, "")); 1455 EXPECT_TRUE(isa<FPMathOperator>(VFCall)); 1456 1457 Type *AFTy = ArrayType::get(FTy, 2); 1458 FunctionType *AFFnTy = FunctionType::get(AFTy, {}); 1459 Value *AFCallee = Constant::getNullValue(AFFnTy->getPointerTo()); 1460 std::unique_ptr<CallInst> AFCall(CallInst::Create(AFFnTy, AFCallee, {}, "")); 1461 EXPECT_TRUE(isa<FPMathOperator>(AFCall)); 1462 1463 Type *AVFTy = ArrayType::get(VFTy, 2); 1464 FunctionType *AVFFnTy = FunctionType::get(AVFTy, {}); 1465 Value *AVFCallee = Constant::getNullValue(AVFFnTy->getPointerTo()); 1466 std::unique_ptr<CallInst> AVFCall( 1467 CallInst::Create(AVFFnTy, AVFCallee, {}, "")); 1468 EXPECT_TRUE(isa<FPMathOperator>(AVFCall)); 1469 1470 Type *AAVFTy = ArrayType::get(AVFTy, 2); 1471 FunctionType *AAVFFnTy = FunctionType::get(AAVFTy, {}); 1472 Value *AAVFCallee = Constant::getNullValue(AAVFFnTy->getPointerTo()); 1473 std::unique_ptr<CallInst> AAVFCall( 1474 CallInst::Create(AAVFFnTy, AAVFCallee, {}, "")); 1475 EXPECT_TRUE(isa<FPMathOperator>(AAVFCall)); 1476 } 1477 1478 TEST(InstructionsTest, FNegInstruction) { 1479 LLVMContext Context; 1480 Type *FltTy = Type::getFloatTy(Context); 1481 Constant *One = ConstantFP::get(FltTy, 1.0); 1482 BinaryOperator *FAdd = BinaryOperator::CreateFAdd(One, One); 1483 FAdd->setHasNoNaNs(true); 1484 UnaryOperator *FNeg = UnaryOperator::CreateFNegFMF(One, FAdd); 1485 EXPECT_TRUE(FNeg->hasNoNaNs()); 1486 EXPECT_FALSE(FNeg->hasNoInfs()); 1487 EXPECT_FALSE(FNeg->hasNoSignedZeros()); 1488 EXPECT_FALSE(FNeg->hasAllowReciprocal()); 1489 EXPECT_FALSE(FNeg->hasAllowContract()); 1490 EXPECT_FALSE(FNeg->hasAllowReassoc()); 1491 EXPECT_FALSE(FNeg->hasApproxFunc()); 1492 FAdd->deleteValue(); 1493 FNeg->deleteValue(); 1494 } 1495 1496 TEST(InstructionsTest, CallBrInstruction) { 1497 LLVMContext Context; 1498 std::unique_ptr<Module> M = parseIR(Context, R"( 1499 define void @foo() { 1500 entry: 1501 callbr void asm sideeffect "// XXX: ${0:l}", "!i"() 1502 to label %land.rhs.i [label %branch_test.exit] 1503 1504 land.rhs.i: 1505 br label %branch_test.exit 1506 1507 branch_test.exit: 1508 %0 = phi i1 [ true, %entry ], [ false, %land.rhs.i ] 1509 br i1 %0, label %if.end, label %if.then 1510 1511 if.then: 1512 ret void 1513 1514 if.end: 1515 ret void 1516 } 1517 )"); 1518 Function *Foo = M->getFunction("foo"); 1519 auto BBs = Foo->getBasicBlockList().begin(); 1520 CallBrInst &CBI = cast<CallBrInst>(BBs->front()); 1521 ++BBs; 1522 ++BBs; 1523 BasicBlock &BranchTestExit = *BBs; 1524 ++BBs; 1525 BasicBlock &IfThen = *BBs; 1526 1527 // Test that setting the first indirect destination of callbr updates the dest 1528 EXPECT_EQ(&BranchTestExit, CBI.getIndirectDest(0)); 1529 CBI.setIndirectDest(0, &IfThen); 1530 EXPECT_EQ(&IfThen, CBI.getIndirectDest(0)); 1531 } 1532 1533 TEST(InstructionsTest, UnaryOperator) { 1534 LLVMContext Context; 1535 IRBuilder<> Builder(Context); 1536 Instruction *I = Builder.CreatePHI(Builder.getDoubleTy(), 0); 1537 Value *F = Builder.CreateFNeg(I); 1538 1539 EXPECT_TRUE(isa<Value>(F)); 1540 EXPECT_TRUE(isa<Instruction>(F)); 1541 EXPECT_TRUE(isa<UnaryInstruction>(F)); 1542 EXPECT_TRUE(isa<UnaryOperator>(F)); 1543 EXPECT_FALSE(isa<BinaryOperator>(F)); 1544 1545 F->deleteValue(); 1546 I->deleteValue(); 1547 } 1548 1549 TEST(InstructionsTest, DropLocation) { 1550 LLVMContext C; 1551 std::unique_ptr<Module> M = parseIR(C, 1552 R"( 1553 declare void @callee() 1554 1555 define void @no_parent_scope() { 1556 call void @callee() ; I1: Call with no location. 1557 call void @callee(), !dbg !11 ; I2: Call with location. 1558 ret void, !dbg !11 ; I3: Non-call with location. 1559 } 1560 1561 define void @with_parent_scope() !dbg !8 { 1562 call void @callee() ; I1: Call with no location. 1563 call void @callee(), !dbg !11 ; I2: Call with location. 1564 ret void, !dbg !11 ; I3: Non-call with location. 1565 } 1566 1567 !llvm.dbg.cu = !{!0} 1568 !llvm.module.flags = !{!3, !4} 1569 !0 = distinct !DICompileUnit(language: DW_LANG_C99, file: !1, producer: "", isOptimized: false, runtimeVersion: 0, emissionKind: FullDebug, enums: !2) 1570 !1 = !DIFile(filename: "t2.c", directory: "foo") 1571 !2 = !{} 1572 !3 = !{i32 2, !"Dwarf Version", i32 4} 1573 !4 = !{i32 2, !"Debug Info Version", i32 3} 1574 !8 = distinct !DISubprogram(name: "f", scope: !1, file: !1, line: 1, type: !9, isLocal: false, isDefinition: true, scopeLine: 1, isOptimized: false, unit: !0, retainedNodes: !2) 1575 !9 = !DISubroutineType(types: !10) 1576 !10 = !{null} 1577 !11 = !DILocation(line: 2, column: 7, scope: !8, inlinedAt: !12) 1578 !12 = !DILocation(line: 3, column: 8, scope: !8) 1579 )"); 1580 ASSERT_TRUE(M); 1581 1582 { 1583 Function *NoParentScopeF = 1584 cast<Function>(M->getNamedValue("no_parent_scope")); 1585 BasicBlock &BB = NoParentScopeF->front(); 1586 1587 auto *I1 = BB.getFirstNonPHI(); 1588 auto *I2 = I1->getNextNode(); 1589 auto *I3 = BB.getTerminator(); 1590 1591 EXPECT_EQ(I1->getDebugLoc(), DebugLoc()); 1592 I1->dropLocation(); 1593 EXPECT_EQ(I1->getDebugLoc(), DebugLoc()); 1594 1595 EXPECT_EQ(I2->getDebugLoc().getLine(), 2U); 1596 I2->dropLocation(); 1597 EXPECT_EQ(I1->getDebugLoc(), DebugLoc()); 1598 1599 EXPECT_EQ(I3->getDebugLoc().getLine(), 2U); 1600 I3->dropLocation(); 1601 EXPECT_EQ(I3->getDebugLoc(), DebugLoc()); 1602 } 1603 1604 { 1605 Function *WithParentScopeF = 1606 cast<Function>(M->getNamedValue("with_parent_scope")); 1607 BasicBlock &BB = WithParentScopeF->front(); 1608 1609 auto *I2 = BB.getFirstNonPHI()->getNextNode(); 1610 1611 MDNode *Scope = cast<MDNode>(WithParentScopeF->getSubprogram()); 1612 EXPECT_EQ(I2->getDebugLoc().getLine(), 2U); 1613 I2->dropLocation(); 1614 EXPECT_EQ(I2->getDebugLoc().getLine(), 0U); 1615 EXPECT_EQ(I2->getDebugLoc().getScope(), Scope); 1616 EXPECT_EQ(I2->getDebugLoc().getInlinedAt(), nullptr); 1617 } 1618 } 1619 1620 TEST(InstructionsTest, BranchWeightOverflow) { 1621 LLVMContext C; 1622 std::unique_ptr<Module> M = parseIR(C, 1623 R"( 1624 declare void @callee() 1625 1626 define void @caller() { 1627 call void @callee(), !prof !1 1628 ret void 1629 } 1630 1631 !1 = !{!"branch_weights", i32 20000} 1632 )"); 1633 ASSERT_TRUE(M); 1634 CallInst *CI = 1635 cast<CallInst>(&M->getFunction("caller")->getEntryBlock().front()); 1636 uint64_t ProfWeight; 1637 CI->extractProfTotalWeight(ProfWeight); 1638 ASSERT_EQ(ProfWeight, 20000U); 1639 CI->updateProfWeight(10000000, 1); 1640 CI->extractProfTotalWeight(ProfWeight); 1641 ASSERT_EQ(ProfWeight, UINT32_MAX); 1642 } 1643 1644 TEST(InstructionsTest, AllocaInst) { 1645 LLVMContext Ctx; 1646 std::unique_ptr<Module> M = parseIR(Ctx, R"( 1647 %T = type { i64, [3 x i32]} 1648 define void @f(i32 %n) { 1649 entry: 1650 %A = alloca i32, i32 1 1651 %B = alloca i32, i32 4 1652 %C = alloca i32, i32 %n 1653 %D = alloca <8 x double> 1654 %E = alloca <vscale x 8 x double> 1655 %F = alloca [2 x half] 1656 %G = alloca [2 x [3 x i128]] 1657 %H = alloca %T 1658 ret void 1659 } 1660 )"); 1661 const DataLayout &DL = M->getDataLayout(); 1662 ASSERT_TRUE(M); 1663 Function *Fun = cast<Function>(M->getNamedValue("f")); 1664 BasicBlock &BB = Fun->front(); 1665 auto It = BB.begin(); 1666 AllocaInst &A = cast<AllocaInst>(*It++); 1667 AllocaInst &B = cast<AllocaInst>(*It++); 1668 AllocaInst &C = cast<AllocaInst>(*It++); 1669 AllocaInst &D = cast<AllocaInst>(*It++); 1670 AllocaInst &E = cast<AllocaInst>(*It++); 1671 AllocaInst &F = cast<AllocaInst>(*It++); 1672 AllocaInst &G = cast<AllocaInst>(*It++); 1673 AllocaInst &H = cast<AllocaInst>(*It++); 1674 EXPECT_EQ(A.getAllocationSizeInBits(DL), TypeSize::getFixed(32)); 1675 EXPECT_EQ(B.getAllocationSizeInBits(DL), TypeSize::getFixed(128)); 1676 EXPECT_FALSE(C.getAllocationSizeInBits(DL)); 1677 EXPECT_EQ(D.getAllocationSizeInBits(DL), TypeSize::getFixed(512)); 1678 EXPECT_EQ(E.getAllocationSizeInBits(DL), TypeSize::getScalable(512)); 1679 EXPECT_EQ(F.getAllocationSizeInBits(DL), TypeSize::getFixed(32)); 1680 EXPECT_EQ(G.getAllocationSizeInBits(DL), TypeSize::getFixed(768)); 1681 EXPECT_EQ(H.getAllocationSizeInBits(DL), TypeSize::getFixed(160)); 1682 } 1683 1684 } // end anonymous namespace 1685 } // end namespace llvm 1686