1 //===-- SeparateConstOffsetFromGEP.cpp - ------------------------*- C++ -*-===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // Loop unrolling may create many similar GEPs for array accesses. 11 // e.g., a 2-level loop 12 // 13 // float a[32][32]; // global variable 14 // 15 // for (int i = 0; i < 2; ++i) { 16 // for (int j = 0; j < 2; ++j) { 17 // ... 18 // ... = a[x + i][y + j]; 19 // ... 20 // } 21 // } 22 // 23 // will probably be unrolled to: 24 // 25 // gep %a, 0, %x, %y; load 26 // gep %a, 0, %x, %y + 1; load 27 // gep %a, 0, %x + 1, %y; load 28 // gep %a, 0, %x + 1, %y + 1; load 29 // 30 // LLVM's GVN does not use partial redundancy elimination yet, and is thus 31 // unable to reuse (gep %a, 0, %x, %y). As a result, this misoptimization incurs 32 // significant slowdown in targets with limited addressing modes. For instance, 33 // because the PTX target does not support the reg+reg addressing mode, the 34 // NVPTX backend emits PTX code that literally computes the pointer address of 35 // each GEP, wasting tons of registers. It emits the following PTX for the 36 // first load and similar PTX for other loads. 37 // 38 // mov.u32 %r1, %x; 39 // mov.u32 %r2, %y; 40 // mul.wide.u32 %rl2, %r1, 128; 41 // mov.u64 %rl3, a; 42 // add.s64 %rl4, %rl3, %rl2; 43 // mul.wide.u32 %rl5, %r2, 4; 44 // add.s64 %rl6, %rl4, %rl5; 45 // ld.global.f32 %f1, [%rl6]; 46 // 47 // To reduce the register pressure, the optimization implemented in this file 48 // merges the common part of a group of GEPs, so we can compute each pointer 49 // address by adding a simple offset to the common part, saving many registers. 50 // 51 // It works by splitting each GEP into a variadic base and a constant offset. 52 // The variadic base can be computed once and reused by multiple GEPs, and the 53 // constant offsets can be nicely folded into the reg+immediate addressing mode 54 // (supported by most targets) without using any extra register. 55 // 56 // For instance, we transform the four GEPs and four loads in the above example 57 // into: 58 // 59 // base = gep a, 0, x, y 60 // load base 61 // laod base + 1 * sizeof(float) 62 // load base + 32 * sizeof(float) 63 // load base + 33 * sizeof(float) 64 // 65 // Given the transformed IR, a backend that supports the reg+immediate 66 // addressing mode can easily fold the pointer arithmetics into the loads. For 67 // example, the NVPTX backend can easily fold the pointer arithmetics into the 68 // ld.global.f32 instructions, and the resultant PTX uses much fewer registers. 69 // 70 // mov.u32 %r1, %tid.x; 71 // mov.u32 %r2, %tid.y; 72 // mul.wide.u32 %rl2, %r1, 128; 73 // mov.u64 %rl3, a; 74 // add.s64 %rl4, %rl3, %rl2; 75 // mul.wide.u32 %rl5, %r2, 4; 76 // add.s64 %rl6, %rl4, %rl5; 77 // ld.global.f32 %f1, [%rl6]; // so far the same as unoptimized PTX 78 // ld.global.f32 %f2, [%rl6+4]; // much better 79 // ld.global.f32 %f3, [%rl6+128]; // much better 80 // ld.global.f32 %f4, [%rl6+132]; // much better 81 // 82 // Another improvement enabled by the LowerGEP flag is to lower a GEP with 83 // multiple indices to either multiple GEPs with a single index or arithmetic 84 // operations (depending on whether the target uses alias analysis in codegen). 85 // Such transformation can have following benefits: 86 // (1) It can always extract constants in the indices of structure type. 87 // (2) After such Lowering, there are more optimization opportunities such as 88 // CSE, LICM and CGP. 89 // 90 // E.g. The following GEPs have multiple indices: 91 // BB1: 92 // %p = getelementptr [10 x %struct]* %ptr, i64 %i, i64 %j1, i32 3 93 // load %p 94 // ... 95 // BB2: 96 // %p2 = getelementptr [10 x %struct]* %ptr, i64 %i, i64 %j1, i32 2 97 // load %p2 98 // ... 99 // 100 // We can not do CSE for to the common part related to index "i64 %i". Lowering 101 // GEPs can achieve such goals. 102 // If the target does not use alias analysis in codegen, this pass will 103 // lower a GEP with multiple indices into arithmetic operations: 104 // BB1: 105 // %1 = ptrtoint [10 x %struct]* %ptr to i64 ; CSE opportunity 106 // %2 = mul i64 %i, length_of_10xstruct ; CSE opportunity 107 // %3 = add i64 %1, %2 ; CSE opportunity 108 // %4 = mul i64 %j1, length_of_struct 109 // %5 = add i64 %3, %4 110 // %6 = add i64 %3, struct_field_3 ; Constant offset 111 // %p = inttoptr i64 %6 to i32* 112 // load %p 113 // ... 114 // BB2: 115 // %7 = ptrtoint [10 x %struct]* %ptr to i64 ; CSE opportunity 116 // %8 = mul i64 %i, length_of_10xstruct ; CSE opportunity 117 // %9 = add i64 %7, %8 ; CSE opportunity 118 // %10 = mul i64 %j2, length_of_struct 119 // %11 = add i64 %9, %10 120 // %12 = add i64 %11, struct_field_2 ; Constant offset 121 // %p = inttoptr i64 %12 to i32* 122 // load %p2 123 // ... 124 // 125 // If the target uses alias analysis in codegen, this pass will lower a GEP 126 // with multiple indices into multiple GEPs with a single index: 127 // BB1: 128 // %1 = bitcast [10 x %struct]* %ptr to i8* ; CSE opportunity 129 // %2 = mul i64 %i, length_of_10xstruct ; CSE opportunity 130 // %3 = getelementptr i8* %1, i64 %2 ; CSE opportunity 131 // %4 = mul i64 %j1, length_of_struct 132 // %5 = getelementptr i8* %3, i64 %4 133 // %6 = getelementptr i8* %5, struct_field_3 ; Constant offset 134 // %p = bitcast i8* %6 to i32* 135 // load %p 136 // ... 137 // BB2: 138 // %7 = bitcast [10 x %struct]* %ptr to i8* ; CSE opportunity 139 // %8 = mul i64 %i, length_of_10xstruct ; CSE opportunity 140 // %9 = getelementptr i8* %7, i64 %8 ; CSE opportunity 141 // %10 = mul i64 %j2, length_of_struct 142 // %11 = getelementptr i8* %9, i64 %10 143 // %12 = getelementptr i8* %11, struct_field_2 ; Constant offset 144 // %p2 = bitcast i8* %12 to i32* 145 // load %p2 146 // ... 147 // 148 // Lowering GEPs can also benefit other passes such as LICM and CGP. 149 // LICM (Loop Invariant Code Motion) can not hoist/sink a GEP of multiple 150 // indices if one of the index is variant. If we lower such GEP into invariant 151 // parts and variant parts, LICM can hoist/sink those invariant parts. 152 // CGP (CodeGen Prepare) tries to sink address calculations that match the 153 // target's addressing modes. A GEP with multiple indices may not match and will 154 // not be sunk. If we lower such GEP into smaller parts, CGP may sink some of 155 // them. So we end up with a better addressing mode. 156 // 157 //===----------------------------------------------------------------------===// 158 159 #include "llvm/Analysis/TargetTransformInfo.h" 160 #include "llvm/Analysis/ValueTracking.h" 161 #include "llvm/IR/Constants.h" 162 #include "llvm/IR/DataLayout.h" 163 #include "llvm/IR/Instructions.h" 164 #include "llvm/IR/LLVMContext.h" 165 #include "llvm/IR/Module.h" 166 #include "llvm/IR/Operator.h" 167 #include "llvm/Support/CommandLine.h" 168 #include "llvm/Support/raw_ostream.h" 169 #include "llvm/Transforms/Scalar.h" 170 #include "llvm/Target/TargetMachine.h" 171 #include "llvm/Target/TargetSubtargetInfo.h" 172 #include "llvm/IR/IRBuilder.h" 173 174 using namespace llvm; 175 176 static cl::opt<bool> DisableSeparateConstOffsetFromGEP( 177 "disable-separate-const-offset-from-gep", cl::init(false), 178 cl::desc("Do not separate the constant offset from a GEP instruction"), 179 cl::Hidden); 180 181 namespace { 182 183 /// \brief A helper class for separating a constant offset from a GEP index. 184 /// 185 /// In real programs, a GEP index may be more complicated than a simple addition 186 /// of something and a constant integer which can be trivially splitted. For 187 /// example, to split ((a << 3) | 5) + b, we need to search deeper for the 188 /// constant offset, so that we can separate the index to (a << 3) + b and 5. 189 /// 190 /// Therefore, this class looks into the expression that computes a given GEP 191 /// index, and tries to find a constant integer that can be hoisted to the 192 /// outermost level of the expression as an addition. Not every constant in an 193 /// expression can jump out. e.g., we cannot transform (b * (a + 5)) to (b * a + 194 /// 5); nor can we transform (3 * (a + 5)) to (3 * a + 5), however in this case, 195 /// -instcombine probably already optimized (3 * (a + 5)) to (3 * a + 15). 196 class ConstantOffsetExtractor { 197 public: 198 /// Extracts a constant offset from the given GEP index. It returns the 199 /// new index representing the remainder (equal to the original index minus 200 /// the constant offset), or nullptr if we cannot extract a constant offset. 201 /// \p Idx The given GEP index 202 /// \p DL The datalayout of the module 203 /// \p GEP The given GEP 204 static Value *Extract(Value *Idx, const DataLayout *DL, 205 GetElementPtrInst *GEP); 206 /// Looks for a constant offset from the given GEP index without extracting 207 /// it. It returns the numeric value of the extracted constant offset (0 if 208 /// failed). The meaning of the arguments are the same as Extract. 209 static int64_t Find(Value *Idx, const DataLayout *DL, GetElementPtrInst *GEP); 210 211 private: 212 ConstantOffsetExtractor(const DataLayout *Layout, Instruction *InsertionPt) 213 : DL(Layout), IP(InsertionPt) {} 214 /// Searches the expression that computes V for a non-zero constant C s.t. 215 /// V can be reassociated into the form V' + C. If the searching is 216 /// successful, returns C and update UserChain as a def-use chain from C to V; 217 /// otherwise, UserChain is empty. 218 /// 219 /// \p V The given expression 220 /// \p SignExtended Whether V will be sign-extended in the computation of the 221 /// GEP index 222 /// \p ZeroExtended Whether V will be zero-extended in the computation of the 223 /// GEP index 224 /// \p NonNegative Whether V is guaranteed to be non-negative. For example, 225 /// an index of an inbounds GEP is guaranteed to be 226 /// non-negative. Levaraging this, we can better split 227 /// inbounds GEPs. 228 APInt find(Value *V, bool SignExtended, bool ZeroExtended, bool NonNegative); 229 /// A helper function to look into both operands of a binary operator. 230 APInt findInEitherOperand(BinaryOperator *BO, bool SignExtended, 231 bool ZeroExtended); 232 /// After finding the constant offset C from the GEP index I, we build a new 233 /// index I' s.t. I' + C = I. This function builds and returns the new 234 /// index I' according to UserChain produced by function "find". 235 /// 236 /// The building conceptually takes two steps: 237 /// 1) iteratively distribute s/zext towards the leaves of the expression tree 238 /// that computes I 239 /// 2) reassociate the expression tree to the form I' + C. 240 /// 241 /// For example, to extract the 5 from sext(a + (b + 5)), we first distribute 242 /// sext to a, b and 5 so that we have 243 /// sext(a) + (sext(b) + 5). 244 /// Then, we reassociate it to 245 /// (sext(a) + sext(b)) + 5. 246 /// Given this form, we know I' is sext(a) + sext(b). 247 Value *rebuildWithoutConstOffset(); 248 /// After the first step of rebuilding the GEP index without the constant 249 /// offset, distribute s/zext to the operands of all operators in UserChain. 250 /// e.g., zext(sext(a + (b + 5)) (assuming no overflow) => 251 /// zext(sext(a)) + (zext(sext(b)) + zext(sext(5))). 252 /// 253 /// The function also updates UserChain to point to new subexpressions after 254 /// distributing s/zext. e.g., the old UserChain of the above example is 255 /// 5 -> b + 5 -> a + (b + 5) -> sext(...) -> zext(sext(...)), 256 /// and the new UserChain is 257 /// zext(sext(5)) -> zext(sext(b)) + zext(sext(5)) -> 258 /// zext(sext(a)) + (zext(sext(b)) + zext(sext(5)) 259 /// 260 /// \p ChainIndex The index to UserChain. ChainIndex is initially 261 /// UserChain.size() - 1, and is decremented during 262 /// the recursion. 263 Value *distributeExtsAndCloneChain(unsigned ChainIndex); 264 /// Reassociates the GEP index to the form I' + C and returns I'. 265 Value *removeConstOffset(unsigned ChainIndex); 266 /// A helper function to apply ExtInsts, a list of s/zext, to value V. 267 /// e.g., if ExtInsts = [sext i32 to i64, zext i16 to i32], this function 268 /// returns "sext i32 (zext i16 V to i32) to i64". 269 Value *applyExts(Value *V); 270 271 /// Returns true if LHS and RHS have no bits in common, i.e., LHS | RHS == 0. 272 bool NoCommonBits(Value *LHS, Value *RHS) const; 273 /// Computes which bits are known to be one or zero. 274 /// \p KnownOne Mask of all bits that are known to be one. 275 /// \p KnownZero Mask of all bits that are known to be zero. 276 void ComputeKnownBits(Value *V, APInt &KnownOne, APInt &KnownZero) const; 277 /// A helper function that returns whether we can trace into the operands 278 /// of binary operator BO for a constant offset. 279 /// 280 /// \p SignExtended Whether BO is surrounded by sext 281 /// \p ZeroExtended Whether BO is surrounded by zext 282 /// \p NonNegative Whether BO is known to be non-negative, e.g., an in-bound 283 /// array index. 284 bool CanTraceInto(bool SignExtended, bool ZeroExtended, BinaryOperator *BO, 285 bool NonNegative); 286 287 /// The path from the constant offset to the old GEP index. e.g., if the GEP 288 /// index is "a * b + (c + 5)". After running function find, UserChain[0] will 289 /// be the constant 5, UserChain[1] will be the subexpression "c + 5", and 290 /// UserChain[2] will be the entire expression "a * b + (c + 5)". 291 /// 292 /// This path helps to rebuild the new GEP index. 293 SmallVector<User *, 8> UserChain; 294 /// A data structure used in rebuildWithoutConstOffset. Contains all 295 /// sext/zext instructions along UserChain. 296 SmallVector<CastInst *, 16> ExtInsts; 297 /// The data layout of the module. Used in ComputeKnownBits. 298 const DataLayout *DL; 299 Instruction *IP; /// Insertion position of cloned instructions. 300 }; 301 302 /// \brief A pass that tries to split every GEP in the function into a variadic 303 /// base and a constant offset. It is a FunctionPass because searching for the 304 /// constant offset may inspect other basic blocks. 305 class SeparateConstOffsetFromGEP : public FunctionPass { 306 public: 307 static char ID; 308 SeparateConstOffsetFromGEP(const TargetMachine *TM = nullptr, 309 bool LowerGEP = false) 310 : FunctionPass(ID), TM(TM), LowerGEP(LowerGEP) { 311 initializeSeparateConstOffsetFromGEPPass(*PassRegistry::getPassRegistry()); 312 } 313 314 void getAnalysisUsage(AnalysisUsage &AU) const override { 315 AU.addRequired<DataLayoutPass>(); 316 AU.addRequired<TargetTransformInfo>(); 317 } 318 319 bool doInitialization(Module &M) override { 320 DataLayoutPass *DLP = getAnalysisIfAvailable<DataLayoutPass>(); 321 if (DLP == nullptr) 322 report_fatal_error("data layout missing"); 323 DL = &DLP->getDataLayout(); 324 return false; 325 } 326 327 bool runOnFunction(Function &F) override; 328 329 private: 330 /// Tries to split the given GEP into a variadic base and a constant offset, 331 /// and returns true if the splitting succeeds. 332 bool splitGEP(GetElementPtrInst *GEP); 333 /// Lower a GEP with multiple indices into multiple GEPs with a single index. 334 /// Function splitGEP already split the original GEP into a variadic part and 335 /// a constant offset (i.e., AccumulativeByteOffset). This function lowers the 336 /// variadic part into a set of GEPs with a single index and applies 337 /// AccumulativeByteOffset to it. 338 /// \p Variadic The variadic part of the original GEP. 339 /// \p AccumulativeByteOffset The constant offset. 340 void lowerToSingleIndexGEPs(GetElementPtrInst *Variadic, 341 int64_t AccumulativeByteOffset); 342 /// Lower a GEP with multiple indices into ptrtoint+arithmetics+inttoptr form. 343 /// Function splitGEP already split the original GEP into a variadic part and 344 /// a constant offset (i.e., AccumulativeByteOffset). This function lowers the 345 /// variadic part into a set of arithmetic operations and applies 346 /// AccumulativeByteOffset to it. 347 /// \p Variadic The variadic part of the original GEP. 348 /// \p AccumulativeByteOffset The constant offset. 349 void lowerToArithmetics(GetElementPtrInst *Variadic, 350 int64_t AccumulativeByteOffset); 351 /// Finds the constant offset within each index and accumulates them. If 352 /// LowerGEP is true, it finds in indices of both sequential and structure 353 /// types, otherwise it only finds in sequential indices. The output 354 /// NeedsExtraction indicates whether we successfully find a non-zero constant 355 /// offset. 356 int64_t accumulateByteOffset(GetElementPtrInst *GEP, bool &NeedsExtraction); 357 /// Canonicalize array indices to pointer-size integers. This helps to 358 /// simplify the logic of splitting a GEP. For example, if a + b is a 359 /// pointer-size integer, we have 360 /// gep base, a + b = gep (gep base, a), b 361 /// However, this equality may not hold if the size of a + b is smaller than 362 /// the pointer size, because LLVM conceptually sign-extends GEP indices to 363 /// pointer size before computing the address 364 /// (http://llvm.org/docs/LangRef.html#id181). 365 /// 366 /// This canonicalization is very likely already done in clang and 367 /// instcombine. Therefore, the program will probably remain the same. 368 /// 369 /// Returns true if the module changes. 370 /// 371 /// Verified in @i32_add in split-gep.ll 372 bool canonicalizeArrayIndicesToPointerSize(GetElementPtrInst *GEP); 373 374 const DataLayout *DL; 375 const TargetMachine *TM; 376 /// Whether to lower a GEP with multiple indices into arithmetic operations or 377 /// multiple GEPs with a single index. 378 bool LowerGEP; 379 }; 380 } // anonymous namespace 381 382 char SeparateConstOffsetFromGEP::ID = 0; 383 INITIALIZE_PASS_BEGIN( 384 SeparateConstOffsetFromGEP, "separate-const-offset-from-gep", 385 "Split GEPs to a variadic base and a constant offset for better CSE", false, 386 false) 387 INITIALIZE_AG_DEPENDENCY(TargetTransformInfo) 388 INITIALIZE_PASS_DEPENDENCY(DataLayoutPass) 389 INITIALIZE_PASS_END( 390 SeparateConstOffsetFromGEP, "separate-const-offset-from-gep", 391 "Split GEPs to a variadic base and a constant offset for better CSE", false, 392 false) 393 394 FunctionPass * 395 llvm::createSeparateConstOffsetFromGEPPass(const TargetMachine *TM, 396 bool LowerGEP) { 397 return new SeparateConstOffsetFromGEP(TM, LowerGEP); 398 } 399 400 bool ConstantOffsetExtractor::CanTraceInto(bool SignExtended, 401 bool ZeroExtended, 402 BinaryOperator *BO, 403 bool NonNegative) { 404 // We only consider ADD, SUB and OR, because a non-zero constant found in 405 // expressions composed of these operations can be easily hoisted as a 406 // constant offset by reassociation. 407 if (BO->getOpcode() != Instruction::Add && 408 BO->getOpcode() != Instruction::Sub && 409 BO->getOpcode() != Instruction::Or) { 410 return false; 411 } 412 413 Value *LHS = BO->getOperand(0), *RHS = BO->getOperand(1); 414 // Do not trace into "or" unless it is equivalent to "add". If LHS and RHS 415 // don't have common bits, (LHS | RHS) is equivalent to (LHS + RHS). 416 if (BO->getOpcode() == Instruction::Or && !NoCommonBits(LHS, RHS)) 417 return false; 418 419 // In addition, tracing into BO requires that its surrounding s/zext (if 420 // any) is distributable to both operands. 421 // 422 // Suppose BO = A op B. 423 // SignExtended | ZeroExtended | Distributable? 424 // --------------+--------------+---------------------------------- 425 // 0 | 0 | true because no s/zext exists 426 // 0 | 1 | zext(BO) == zext(A) op zext(B) 427 // 1 | 0 | sext(BO) == sext(A) op sext(B) 428 // 1 | 1 | zext(sext(BO)) == 429 // | | zext(sext(A)) op zext(sext(B)) 430 if (BO->getOpcode() == Instruction::Add && !ZeroExtended && NonNegative) { 431 // If a + b >= 0 and (a >= 0 or b >= 0), then 432 // sext(a + b) = sext(a) + sext(b) 433 // even if the addition is not marked nsw. 434 // 435 // Leveraging this invarient, we can trace into an sext'ed inbound GEP 436 // index if the constant offset is non-negative. 437 // 438 // Verified in @sext_add in split-gep.ll. 439 if (ConstantInt *ConstLHS = dyn_cast<ConstantInt>(LHS)) { 440 if (!ConstLHS->isNegative()) 441 return true; 442 } 443 if (ConstantInt *ConstRHS = dyn_cast<ConstantInt>(RHS)) { 444 if (!ConstRHS->isNegative()) 445 return true; 446 } 447 } 448 449 // sext (add/sub nsw A, B) == add/sub nsw (sext A), (sext B) 450 // zext (add/sub nuw A, B) == add/sub nuw (zext A), (zext B) 451 if (BO->getOpcode() == Instruction::Add || 452 BO->getOpcode() == Instruction::Sub) { 453 if (SignExtended && !BO->hasNoSignedWrap()) 454 return false; 455 if (ZeroExtended && !BO->hasNoUnsignedWrap()) 456 return false; 457 } 458 459 return true; 460 } 461 462 APInt ConstantOffsetExtractor::findInEitherOperand(BinaryOperator *BO, 463 bool SignExtended, 464 bool ZeroExtended) { 465 // BO being non-negative does not shed light on whether its operands are 466 // non-negative. Clear the NonNegative flag here. 467 APInt ConstantOffset = find(BO->getOperand(0), SignExtended, ZeroExtended, 468 /* NonNegative */ false); 469 // If we found a constant offset in the left operand, stop and return that. 470 // This shortcut might cause us to miss opportunities of combining the 471 // constant offsets in both operands, e.g., (a + 4) + (b + 5) => (a + b) + 9. 472 // However, such cases are probably already handled by -instcombine, 473 // given this pass runs after the standard optimizations. 474 if (ConstantOffset != 0) return ConstantOffset; 475 ConstantOffset = find(BO->getOperand(1), SignExtended, ZeroExtended, 476 /* NonNegative */ false); 477 // If U is a sub operator, negate the constant offset found in the right 478 // operand. 479 if (BO->getOpcode() == Instruction::Sub) 480 ConstantOffset = -ConstantOffset; 481 return ConstantOffset; 482 } 483 484 APInt ConstantOffsetExtractor::find(Value *V, bool SignExtended, 485 bool ZeroExtended, bool NonNegative) { 486 // TODO(jingyue): We could trace into integer/pointer casts, such as 487 // inttoptr, ptrtoint, bitcast, and addrspacecast. We choose to handle only 488 // integers because it gives good enough results for our benchmarks. 489 unsigned BitWidth = cast<IntegerType>(V->getType())->getBitWidth(); 490 491 // We cannot do much with Values that are not a User, such as an Argument. 492 User *U = dyn_cast<User>(V); 493 if (U == nullptr) return APInt(BitWidth, 0); 494 495 APInt ConstantOffset(BitWidth, 0); 496 if (ConstantInt *CI = dyn_cast<ConstantInt>(V)) { 497 // Hooray, we found it! 498 ConstantOffset = CI->getValue(); 499 } else if (BinaryOperator *BO = dyn_cast<BinaryOperator>(V)) { 500 // Trace into subexpressions for more hoisting opportunities. 501 if (CanTraceInto(SignExtended, ZeroExtended, BO, NonNegative)) { 502 ConstantOffset = findInEitherOperand(BO, SignExtended, ZeroExtended); 503 } 504 } else if (isa<SExtInst>(V)) { 505 ConstantOffset = find(U->getOperand(0), /* SignExtended */ true, 506 ZeroExtended, NonNegative).sext(BitWidth); 507 } else if (isa<ZExtInst>(V)) { 508 // As an optimization, we can clear the SignExtended flag because 509 // sext(zext(a)) = zext(a). Verified in @sext_zext in split-gep.ll. 510 // 511 // Clear the NonNegative flag, because zext(a) >= 0 does not imply a >= 0. 512 ConstantOffset = 513 find(U->getOperand(0), /* SignExtended */ false, 514 /* ZeroExtended */ true, /* NonNegative */ false).zext(BitWidth); 515 } 516 517 // If we found a non-zero constant offset, add it to the path for 518 // rebuildWithoutConstOffset. Zero is a valid constant offset, but doesn't 519 // help this optimization. 520 if (ConstantOffset != 0) 521 UserChain.push_back(U); 522 return ConstantOffset; 523 } 524 525 Value *ConstantOffsetExtractor::applyExts(Value *V) { 526 Value *Current = V; 527 // ExtInsts is built in the use-def order. Therefore, we apply them to V 528 // in the reversed order. 529 for (auto I = ExtInsts.rbegin(), E = ExtInsts.rend(); I != E; ++I) { 530 if (Constant *C = dyn_cast<Constant>(Current)) { 531 // If Current is a constant, apply s/zext using ConstantExpr::getCast. 532 // ConstantExpr::getCast emits a ConstantInt if C is a ConstantInt. 533 Current = ConstantExpr::getCast((*I)->getOpcode(), C, (*I)->getType()); 534 } else { 535 Instruction *Ext = (*I)->clone(); 536 Ext->setOperand(0, Current); 537 Ext->insertBefore(IP); 538 Current = Ext; 539 } 540 } 541 return Current; 542 } 543 544 Value *ConstantOffsetExtractor::rebuildWithoutConstOffset() { 545 distributeExtsAndCloneChain(UserChain.size() - 1); 546 // Remove all nullptrs (used to be s/zext) from UserChain. 547 unsigned NewSize = 0; 548 for (auto I = UserChain.begin(), E = UserChain.end(); I != E; ++I) { 549 if (*I != nullptr) { 550 UserChain[NewSize] = *I; 551 NewSize++; 552 } 553 } 554 UserChain.resize(NewSize); 555 return removeConstOffset(UserChain.size() - 1); 556 } 557 558 Value * 559 ConstantOffsetExtractor::distributeExtsAndCloneChain(unsigned ChainIndex) { 560 User *U = UserChain[ChainIndex]; 561 if (ChainIndex == 0) { 562 assert(isa<ConstantInt>(U)); 563 // If U is a ConstantInt, applyExts will return a ConstantInt as well. 564 return UserChain[ChainIndex] = cast<ConstantInt>(applyExts(U)); 565 } 566 567 if (CastInst *Cast = dyn_cast<CastInst>(U)) { 568 assert((isa<SExtInst>(Cast) || isa<ZExtInst>(Cast)) && 569 "We only traced into two types of CastInst: sext and zext"); 570 ExtInsts.push_back(Cast); 571 UserChain[ChainIndex] = nullptr; 572 return distributeExtsAndCloneChain(ChainIndex - 1); 573 } 574 575 // Function find only trace into BinaryOperator and CastInst. 576 BinaryOperator *BO = cast<BinaryOperator>(U); 577 // OpNo = which operand of BO is UserChain[ChainIndex - 1] 578 unsigned OpNo = (BO->getOperand(0) == UserChain[ChainIndex - 1] ? 0 : 1); 579 Value *TheOther = applyExts(BO->getOperand(1 - OpNo)); 580 Value *NextInChain = distributeExtsAndCloneChain(ChainIndex - 1); 581 582 BinaryOperator *NewBO = nullptr; 583 if (OpNo == 0) { 584 NewBO = BinaryOperator::Create(BO->getOpcode(), NextInChain, TheOther, 585 BO->getName(), IP); 586 } else { 587 NewBO = BinaryOperator::Create(BO->getOpcode(), TheOther, NextInChain, 588 BO->getName(), IP); 589 } 590 return UserChain[ChainIndex] = NewBO; 591 } 592 593 Value *ConstantOffsetExtractor::removeConstOffset(unsigned ChainIndex) { 594 if (ChainIndex == 0) { 595 assert(isa<ConstantInt>(UserChain[ChainIndex])); 596 return ConstantInt::getNullValue(UserChain[ChainIndex]->getType()); 597 } 598 599 BinaryOperator *BO = cast<BinaryOperator>(UserChain[ChainIndex]); 600 unsigned OpNo = (BO->getOperand(0) == UserChain[ChainIndex - 1] ? 0 : 1); 601 assert(BO->getOperand(OpNo) == UserChain[ChainIndex - 1]); 602 Value *NextInChain = removeConstOffset(ChainIndex - 1); 603 Value *TheOther = BO->getOperand(1 - OpNo); 604 605 // If NextInChain is 0 and not the LHS of a sub, we can simplify the 606 // sub-expression to be just TheOther. 607 if (ConstantInt *CI = dyn_cast<ConstantInt>(NextInChain)) { 608 if (CI->isZero() && !(BO->getOpcode() == Instruction::Sub && OpNo == 0)) 609 return TheOther; 610 } 611 612 if (BO->getOpcode() == Instruction::Or) { 613 // Rebuild "or" as "add", because "or" may be invalid for the new 614 // epxression. 615 // 616 // For instance, given 617 // a | (b + 5) where a and b + 5 have no common bits, 618 // we can extract 5 as the constant offset. 619 // 620 // However, reusing the "or" in the new index would give us 621 // (a | b) + 5 622 // which does not equal a | (b + 5). 623 // 624 // Replacing the "or" with "add" is fine, because 625 // a | (b + 5) = a + (b + 5) = (a + b) + 5 626 if (OpNo == 0) { 627 return BinaryOperator::CreateAdd(NextInChain, TheOther, BO->getName(), 628 IP); 629 } else { 630 return BinaryOperator::CreateAdd(TheOther, NextInChain, BO->getName(), 631 IP); 632 } 633 } 634 635 // We can reuse BO in this case, because the new expression shares the same 636 // instruction type and BO is used at most once. 637 assert(BO->getNumUses() <= 1 && 638 "distributeExtsAndCloneChain clones each BinaryOperator in " 639 "UserChain, so no one should be used more than " 640 "once"); 641 BO->setOperand(OpNo, NextInChain); 642 BO->setHasNoSignedWrap(false); 643 BO->setHasNoUnsignedWrap(false); 644 // Make sure it appears after all instructions we've inserted so far. 645 BO->moveBefore(IP); 646 return BO; 647 } 648 649 Value *ConstantOffsetExtractor::Extract(Value *Idx, const DataLayout *DL, 650 GetElementPtrInst *GEP) { 651 ConstantOffsetExtractor Extractor(DL, GEP); 652 // Find a non-zero constant offset first. 653 APInt ConstantOffset = 654 Extractor.find(Idx, /* SignExtended */ false, /* ZeroExtended */ false, 655 GEP->isInBounds()); 656 if (ConstantOffset == 0) 657 return nullptr; 658 // Separates the constant offset from the GEP index. 659 return Extractor.rebuildWithoutConstOffset(); 660 } 661 662 int64_t ConstantOffsetExtractor::Find(Value *Idx, const DataLayout *DL, 663 GetElementPtrInst *GEP) { 664 // If Idx is an index of an inbound GEP, Idx is guaranteed to be non-negative. 665 return ConstantOffsetExtractor(DL, GEP) 666 .find(Idx, /* SignExtended */ false, /* ZeroExtended */ false, 667 GEP->isInBounds()) 668 .getSExtValue(); 669 } 670 671 void ConstantOffsetExtractor::ComputeKnownBits(Value *V, APInt &KnownOne, 672 APInt &KnownZero) const { 673 IntegerType *IT = cast<IntegerType>(V->getType()); 674 KnownOne = APInt(IT->getBitWidth(), 0); 675 KnownZero = APInt(IT->getBitWidth(), 0); 676 llvm::computeKnownBits(V, KnownZero, KnownOne, DL, 0); 677 } 678 679 bool ConstantOffsetExtractor::NoCommonBits(Value *LHS, Value *RHS) const { 680 assert(LHS->getType() == RHS->getType() && 681 "LHS and RHS should have the same type"); 682 APInt LHSKnownOne, LHSKnownZero, RHSKnownOne, RHSKnownZero; 683 ComputeKnownBits(LHS, LHSKnownOne, LHSKnownZero); 684 ComputeKnownBits(RHS, RHSKnownOne, RHSKnownZero); 685 return (LHSKnownZero | RHSKnownZero).isAllOnesValue(); 686 } 687 688 bool SeparateConstOffsetFromGEP::canonicalizeArrayIndicesToPointerSize( 689 GetElementPtrInst *GEP) { 690 bool Changed = false; 691 Type *IntPtrTy = DL->getIntPtrType(GEP->getType()); 692 gep_type_iterator GTI = gep_type_begin(*GEP); 693 for (User::op_iterator I = GEP->op_begin() + 1, E = GEP->op_end(); 694 I != E; ++I, ++GTI) { 695 // Skip struct member indices which must be i32. 696 if (isa<SequentialType>(*GTI)) { 697 if ((*I)->getType() != IntPtrTy) { 698 *I = CastInst::CreateIntegerCast(*I, IntPtrTy, true, "idxprom", GEP); 699 Changed = true; 700 } 701 } 702 } 703 return Changed; 704 } 705 706 int64_t 707 SeparateConstOffsetFromGEP::accumulateByteOffset(GetElementPtrInst *GEP, 708 bool &NeedsExtraction) { 709 NeedsExtraction = false; 710 int64_t AccumulativeByteOffset = 0; 711 gep_type_iterator GTI = gep_type_begin(*GEP); 712 for (unsigned I = 1, E = GEP->getNumOperands(); I != E; ++I, ++GTI) { 713 if (isa<SequentialType>(*GTI)) { 714 // Tries to extract a constant offset from this GEP index. 715 int64_t ConstantOffset = 716 ConstantOffsetExtractor::Find(GEP->getOperand(I), DL, GEP); 717 if (ConstantOffset != 0) { 718 NeedsExtraction = true; 719 // A GEP may have multiple indices. We accumulate the extracted 720 // constant offset to a byte offset, and later offset the remainder of 721 // the original GEP with this byte offset. 722 AccumulativeByteOffset += 723 ConstantOffset * DL->getTypeAllocSize(GTI.getIndexedType()); 724 } 725 } else if (LowerGEP) { 726 StructType *StTy = cast<StructType>(*GTI); 727 uint64_t Field = cast<ConstantInt>(GEP->getOperand(I))->getZExtValue(); 728 // Skip field 0 as the offset is always 0. 729 if (Field != 0) { 730 NeedsExtraction = true; 731 AccumulativeByteOffset += 732 DL->getStructLayout(StTy)->getElementOffset(Field); 733 } 734 } 735 } 736 return AccumulativeByteOffset; 737 } 738 739 void SeparateConstOffsetFromGEP::lowerToSingleIndexGEPs( 740 GetElementPtrInst *Variadic, int64_t AccumulativeByteOffset) { 741 IRBuilder<> Builder(Variadic); 742 Type *IntPtrTy = DL->getIntPtrType(Variadic->getType()); 743 744 Type *I8PtrTy = 745 Builder.getInt8PtrTy(Variadic->getType()->getPointerAddressSpace()); 746 Value *ResultPtr = Variadic->getOperand(0); 747 if (ResultPtr->getType() != I8PtrTy) 748 ResultPtr = Builder.CreateBitCast(ResultPtr, I8PtrTy); 749 750 gep_type_iterator GTI = gep_type_begin(*Variadic); 751 // Create an ugly GEP for each sequential index. We don't create GEPs for 752 // structure indices, as they are accumulated in the constant offset index. 753 for (unsigned I = 1, E = Variadic->getNumOperands(); I != E; ++I, ++GTI) { 754 if (isa<SequentialType>(*GTI)) { 755 Value *Idx = Variadic->getOperand(I); 756 // Skip zero indices. 757 if (ConstantInt *CI = dyn_cast<ConstantInt>(Idx)) 758 if (CI->isZero()) 759 continue; 760 761 APInt ElementSize = APInt(IntPtrTy->getIntegerBitWidth(), 762 DL->getTypeAllocSize(GTI.getIndexedType())); 763 // Scale the index by element size. 764 if (ElementSize != 1) { 765 if (ElementSize.isPowerOf2()) { 766 Idx = Builder.CreateShl( 767 Idx, ConstantInt::get(IntPtrTy, ElementSize.logBase2())); 768 } else { 769 Idx = Builder.CreateMul(Idx, ConstantInt::get(IntPtrTy, ElementSize)); 770 } 771 } 772 // Create an ugly GEP with a single index for each index. 773 ResultPtr = Builder.CreateGEP(ResultPtr, Idx, "uglygep"); 774 } 775 } 776 777 // Create a GEP with the constant offset index. 778 if (AccumulativeByteOffset != 0) { 779 Value *Offset = ConstantInt::get(IntPtrTy, AccumulativeByteOffset); 780 ResultPtr = Builder.CreateGEP(ResultPtr, Offset, "uglygep"); 781 } 782 if (ResultPtr->getType() != Variadic->getType()) 783 ResultPtr = Builder.CreateBitCast(ResultPtr, Variadic->getType()); 784 785 Variadic->replaceAllUsesWith(ResultPtr); 786 Variadic->eraseFromParent(); 787 } 788 789 void 790 SeparateConstOffsetFromGEP::lowerToArithmetics(GetElementPtrInst *Variadic, 791 int64_t AccumulativeByteOffset) { 792 IRBuilder<> Builder(Variadic); 793 Type *IntPtrTy = DL->getIntPtrType(Variadic->getType()); 794 795 Value *ResultPtr = Builder.CreatePtrToInt(Variadic->getOperand(0), IntPtrTy); 796 gep_type_iterator GTI = gep_type_begin(*Variadic); 797 // Create ADD/SHL/MUL arithmetic operations for each sequential indices. We 798 // don't create arithmetics for structure indices, as they are accumulated 799 // in the constant offset index. 800 for (unsigned I = 1, E = Variadic->getNumOperands(); I != E; ++I, ++GTI) { 801 if (isa<SequentialType>(*GTI)) { 802 Value *Idx = Variadic->getOperand(I); 803 // Skip zero indices. 804 if (ConstantInt *CI = dyn_cast<ConstantInt>(Idx)) 805 if (CI->isZero()) 806 continue; 807 808 APInt ElementSize = APInt(IntPtrTy->getIntegerBitWidth(), 809 DL->getTypeAllocSize(GTI.getIndexedType())); 810 // Scale the index by element size. 811 if (ElementSize != 1) { 812 if (ElementSize.isPowerOf2()) { 813 Idx = Builder.CreateShl( 814 Idx, ConstantInt::get(IntPtrTy, ElementSize.logBase2())); 815 } else { 816 Idx = Builder.CreateMul(Idx, ConstantInt::get(IntPtrTy, ElementSize)); 817 } 818 } 819 // Create an ADD for each index. 820 ResultPtr = Builder.CreateAdd(ResultPtr, Idx); 821 } 822 } 823 824 // Create an ADD for the constant offset index. 825 if (AccumulativeByteOffset != 0) { 826 ResultPtr = Builder.CreateAdd( 827 ResultPtr, ConstantInt::get(IntPtrTy, AccumulativeByteOffset)); 828 } 829 830 ResultPtr = Builder.CreateIntToPtr(ResultPtr, Variadic->getType()); 831 Variadic->replaceAllUsesWith(ResultPtr); 832 Variadic->eraseFromParent(); 833 } 834 835 bool SeparateConstOffsetFromGEP::splitGEP(GetElementPtrInst *GEP) { 836 // Skip vector GEPs. 837 if (GEP->getType()->isVectorTy()) 838 return false; 839 840 // The backend can already nicely handle the case where all indices are 841 // constant. 842 if (GEP->hasAllConstantIndices()) 843 return false; 844 845 bool Changed = canonicalizeArrayIndicesToPointerSize(GEP); 846 847 bool NeedsExtraction; 848 int64_t AccumulativeByteOffset = accumulateByteOffset(GEP, NeedsExtraction); 849 850 if (!NeedsExtraction) 851 return Changed; 852 // If LowerGEP is disabled, before really splitting the GEP, check whether the 853 // backend supports the addressing mode we are about to produce. If no, this 854 // splitting probably won't be beneficial. 855 // If LowerGEP is enabled, even the extracted constant offset can not match 856 // the addressing mode, we can still do optimizations to other lowered parts 857 // of variable indices. Therefore, we don't check for addressing modes in that 858 // case. 859 if (!LowerGEP) { 860 TargetTransformInfo &TTI = getAnalysis<TargetTransformInfo>(); 861 if (!TTI.isLegalAddressingMode(GEP->getType()->getElementType(), 862 /*BaseGV=*/nullptr, AccumulativeByteOffset, 863 /*HasBaseReg=*/true, /*Scale=*/0)) { 864 return Changed; 865 } 866 } 867 868 // Remove the constant offset in each sequential index. The resultant GEP 869 // computes the variadic base. 870 // Notice that we don't remove struct field indices here. If LowerGEP is 871 // disabled, a structure index is not accumulated and we still use the old 872 // one. If LowerGEP is enabled, a structure index is accumulated in the 873 // constant offset. LowerToSingleIndexGEPs or lowerToArithmetics will later 874 // handle the constant offset and won't need a new structure index. 875 gep_type_iterator GTI = gep_type_begin(*GEP); 876 for (unsigned I = 1, E = GEP->getNumOperands(); I != E; ++I, ++GTI) { 877 if (isa<SequentialType>(*GTI)) { 878 // Splits this GEP index into a variadic part and a constant offset, and 879 // uses the variadic part as the new index. 880 Value *NewIdx = 881 ConstantOffsetExtractor::Extract(GEP->getOperand(I), DL, GEP); 882 if (NewIdx != nullptr) { 883 GEP->setOperand(I, NewIdx); 884 } 885 } 886 } 887 888 // Clear the inbounds attribute because the new index may be off-bound. 889 // e.g., 890 // 891 // b = add i64 a, 5 892 // addr = gep inbounds float* p, i64 b 893 // 894 // is transformed to: 895 // 896 // addr2 = gep float* p, i64 a 897 // addr = gep float* addr2, i64 5 898 // 899 // If a is -4, although the old index b is in bounds, the new index a is 900 // off-bound. http://llvm.org/docs/LangRef.html#id181 says "if the 901 // inbounds keyword is not present, the offsets are added to the base 902 // address with silently-wrapping two's complement arithmetic". 903 // Therefore, the final code will be a semantically equivalent. 904 // 905 // TODO(jingyue): do some range analysis to keep as many inbounds as 906 // possible. GEPs with inbounds are more friendly to alias analysis. 907 GEP->setIsInBounds(false); 908 909 // Lowers a GEP to either GEPs with a single index or arithmetic operations. 910 if (LowerGEP) { 911 // As currently BasicAA does not analyze ptrtoint/inttoptr, do not lower to 912 // arithmetic operations if the target uses alias analysis in codegen. 913 if (TM && TM->getSubtarget<TargetSubtargetInfo>().useAA()) 914 lowerToSingleIndexGEPs(GEP, AccumulativeByteOffset); 915 else 916 lowerToArithmetics(GEP, AccumulativeByteOffset); 917 return true; 918 } 919 920 // No need to create another GEP if the accumulative byte offset is 0. 921 if (AccumulativeByteOffset == 0) 922 return true; 923 924 // Offsets the base with the accumulative byte offset. 925 // 926 // %gep ; the base 927 // ... %gep ... 928 // 929 // => add the offset 930 // 931 // %gep2 ; clone of %gep 932 // %new.gep = gep %gep2, <offset / sizeof(*%gep)> 933 // %gep ; will be removed 934 // ... %gep ... 935 // 936 // => replace all uses of %gep with %new.gep and remove %gep 937 // 938 // %gep2 ; clone of %gep 939 // %new.gep = gep %gep2, <offset / sizeof(*%gep)> 940 // ... %new.gep ... 941 // 942 // If AccumulativeByteOffset is not a multiple of sizeof(*%gep), we emit an 943 // uglygep (http://llvm.org/docs/GetElementPtr.html#what-s-an-uglygep): 944 // bitcast %gep2 to i8*, add the offset, and bitcast the result back to the 945 // type of %gep. 946 // 947 // %gep2 ; clone of %gep 948 // %0 = bitcast %gep2 to i8* 949 // %uglygep = gep %0, <offset> 950 // %new.gep = bitcast %uglygep to <type of %gep> 951 // ... %new.gep ... 952 Instruction *NewGEP = GEP->clone(); 953 NewGEP->insertBefore(GEP); 954 955 // Per ANSI C standard, signed / unsigned = unsigned and signed % unsigned = 956 // unsigned.. Therefore, we cast ElementTypeSizeOfGEP to signed because it is 957 // used with unsigned integers later. 958 int64_t ElementTypeSizeOfGEP = static_cast<int64_t>( 959 DL->getTypeAllocSize(GEP->getType()->getElementType())); 960 Type *IntPtrTy = DL->getIntPtrType(GEP->getType()); 961 if (AccumulativeByteOffset % ElementTypeSizeOfGEP == 0) { 962 // Very likely. As long as %gep is natually aligned, the byte offset we 963 // extracted should be a multiple of sizeof(*%gep). 964 int64_t Index = AccumulativeByteOffset / ElementTypeSizeOfGEP; 965 NewGEP = GetElementPtrInst::Create( 966 NewGEP, ConstantInt::get(IntPtrTy, Index, true), GEP->getName(), GEP); 967 } else { 968 // Unlikely but possible. For example, 969 // #pragma pack(1) 970 // struct S { 971 // int a[3]; 972 // int64 b[8]; 973 // }; 974 // #pragma pack() 975 // 976 // Suppose the gep before extraction is &s[i + 1].b[j + 3]. After 977 // extraction, it becomes &s[i].b[j] and AccumulativeByteOffset is 978 // sizeof(S) + 3 * sizeof(int64) = 100, which is not a multiple of 979 // sizeof(int64). 980 // 981 // Emit an uglygep in this case. 982 Type *I8PtrTy = Type::getInt8PtrTy(GEP->getContext(), 983 GEP->getPointerAddressSpace()); 984 NewGEP = new BitCastInst(NewGEP, I8PtrTy, "", GEP); 985 NewGEP = GetElementPtrInst::Create( 986 NewGEP, ConstantInt::get(IntPtrTy, AccumulativeByteOffset, true), 987 "uglygep", GEP); 988 if (GEP->getType() != I8PtrTy) 989 NewGEP = new BitCastInst(NewGEP, GEP->getType(), GEP->getName(), GEP); 990 } 991 992 GEP->replaceAllUsesWith(NewGEP); 993 GEP->eraseFromParent(); 994 995 return true; 996 } 997 998 bool SeparateConstOffsetFromGEP::runOnFunction(Function &F) { 999 if (DisableSeparateConstOffsetFromGEP) 1000 return false; 1001 1002 bool Changed = false; 1003 for (Function::iterator B = F.begin(), BE = F.end(); B != BE; ++B) { 1004 for (BasicBlock::iterator I = B->begin(), IE = B->end(); I != IE; ) { 1005 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(I++)) { 1006 Changed |= splitGEP(GEP); 1007 } 1008 // No need to split GEP ConstantExprs because all its indices are constant 1009 // already. 1010 } 1011 } 1012 return Changed; 1013 } 1014