Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1 | //===- LoopAccessAnalysis.cpp - Loop Access Analysis Implementation --------==// |
| 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 | // The implementation for the loop memory dependence that was originally |
| 11 | // developed for the loop vectorizer. |
| 12 | // |
| 13 | //===----------------------------------------------------------------------===// |
| 14 | |
| 15 | #include "llvm/Analysis/LoopAccessAnalysis.h" |
| 16 | #include "llvm/Analysis/LoopInfo.h" |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 17 | #include "llvm/Analysis/ScalarEvolutionExpander.h" |
Benjamin Kramer | 799003b | 2015-03-23 19:32:43 +0000 | [diff] [blame] | 18 | #include "llvm/Analysis/TargetLibraryInfo.h" |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 19 | #include "llvm/Analysis/ValueTracking.h" |
| 20 | #include "llvm/IR/DiagnosticInfo.h" |
| 21 | #include "llvm/IR/Dominators.h" |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 22 | #include "llvm/IR/IRBuilder.h" |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 23 | #include "llvm/Support/Debug.h" |
Benjamin Kramer | 799003b | 2015-03-23 19:32:43 +0000 | [diff] [blame] | 24 | #include "llvm/Support/raw_ostream.h" |
David Blaikie | b447ac6 | 2015-06-26 18:02:52 +0000 | [diff] [blame] | 25 | #include "llvm/Analysis/VectorUtils.h" |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 26 | using namespace llvm; |
| 27 | |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 28 | #define DEBUG_TYPE "loop-accesses" |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 29 | |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 30 | static cl::opt<unsigned, true> |
| 31 | VectorizationFactor("force-vector-width", cl::Hidden, |
| 32 | cl::desc("Sets the SIMD width. Zero is autoselect."), |
| 33 | cl::location(VectorizerParams::VectorizationFactor)); |
Adam Nemet | 1d862af | 2015-02-26 04:39:09 +0000 | [diff] [blame] | 34 | unsigned VectorizerParams::VectorizationFactor; |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 35 | |
| 36 | static cl::opt<unsigned, true> |
| 37 | VectorizationInterleave("force-vector-interleave", cl::Hidden, |
| 38 | cl::desc("Sets the vectorization interleave count. " |
| 39 | "Zero is autoselect."), |
| 40 | cl::location( |
| 41 | VectorizerParams::VectorizationInterleave)); |
Adam Nemet | 1d862af | 2015-02-26 04:39:09 +0000 | [diff] [blame] | 42 | unsigned VectorizerParams::VectorizationInterleave; |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 43 | |
Adam Nemet | 1d862af | 2015-02-26 04:39:09 +0000 | [diff] [blame] | 44 | static cl::opt<unsigned, true> RuntimeMemoryCheckThreshold( |
| 45 | "runtime-memory-check-threshold", cl::Hidden, |
| 46 | cl::desc("When performing memory disambiguation checks at runtime do not " |
| 47 | "generate more than this number of comparisons (default = 8)."), |
| 48 | cl::location(VectorizerParams::RuntimeMemoryCheckThreshold), cl::init(8)); |
| 49 | unsigned VectorizerParams::RuntimeMemoryCheckThreshold; |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 50 | |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 51 | /// \brief The maximum iterations used to merge memory checks |
| 52 | static cl::opt<unsigned> MemoryCheckMergeThreshold( |
| 53 | "memory-check-merge-threshold", cl::Hidden, |
| 54 | cl::desc("Maximum number of comparisons done when trying to merge " |
| 55 | "runtime memory checks. (default = 100)"), |
| 56 | cl::init(100)); |
| 57 | |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 58 | /// Maximum SIMD width. |
| 59 | const unsigned VectorizerParams::MaxVectorWidth = 64; |
| 60 | |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 61 | /// \brief We collect dependences up to this threshold. |
| 62 | static cl::opt<unsigned> |
| 63 | MaxDependences("max-dependences", cl::Hidden, |
| 64 | cl::desc("Maximum number of dependences collected by " |
| 65 | "loop-access analysis (default = 100)"), |
| 66 | cl::init(100)); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 67 | |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 68 | bool VectorizerParams::isInterleaveForced() { |
| 69 | return ::VectorizationInterleave.getNumOccurrences() > 0; |
| 70 | } |
| 71 | |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 72 | void LoopAccessReport::emitAnalysis(const LoopAccessReport &Message, |
| 73 | const Function *TheFunction, |
| 74 | const Loop *TheLoop, |
| 75 | const char *PassName) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 76 | DebugLoc DL = TheLoop->getStartLoc(); |
Adam Nemet | 3e87634 | 2015-02-19 19:15:13 +0000 | [diff] [blame] | 77 | if (const Instruction *I = Message.getInstr()) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 78 | DL = I->getDebugLoc(); |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 79 | emitOptimizationRemarkAnalysis(TheFunction->getContext(), PassName, |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 80 | *TheFunction, DL, Message.str()); |
| 81 | } |
| 82 | |
| 83 | Value *llvm::stripIntegerCast(Value *V) { |
| 84 | if (CastInst *CI = dyn_cast<CastInst>(V)) |
| 85 | if (CI->getOperand(0)->getType()->isIntegerTy()) |
| 86 | return CI->getOperand(0); |
| 87 | return V; |
| 88 | } |
| 89 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 90 | const SCEV *llvm::replaceSymbolicStrideSCEV(PredicatedScalarEvolution &PSE, |
Adam Nemet | 8bc61df | 2015-02-24 00:41:59 +0000 | [diff] [blame] | 91 | const ValueToValueMap &PtrToStride, |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 92 | Value *Ptr, Value *OrigPtr) { |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 93 | const SCEV *OrigSCEV = PSE.getSCEV(Ptr); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 94 | |
| 95 | // If there is an entry in the map return the SCEV of the pointer with the |
| 96 | // symbolic stride replaced by one. |
Adam Nemet | 8bc61df | 2015-02-24 00:41:59 +0000 | [diff] [blame] | 97 | ValueToValueMap::const_iterator SI = |
| 98 | PtrToStride.find(OrigPtr ? OrigPtr : Ptr); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 99 | if (SI != PtrToStride.end()) { |
| 100 | Value *StrideVal = SI->second; |
| 101 | |
| 102 | // Strip casts. |
| 103 | StrideVal = stripIntegerCast(StrideVal); |
| 104 | |
| 105 | // Replace symbolic stride by one. |
| 106 | Value *One = ConstantInt::get(StrideVal->getType(), 1); |
| 107 | ValueToValueMap RewriteMap; |
| 108 | RewriteMap[StrideVal] = One; |
| 109 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 110 | ScalarEvolution *SE = PSE.getSE(); |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 111 | const auto *U = cast<SCEVUnknown>(SE->getSCEV(StrideVal)); |
| 112 | const auto *CT = |
| 113 | static_cast<const SCEVConstant *>(SE->getOne(StrideVal->getType())); |
| 114 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 115 | PSE.addPredicate(*SE->getEqualPredicate(U, CT)); |
| 116 | auto *Expr = PSE.getSCEV(Ptr); |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 117 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 118 | DEBUG(dbgs() << "LAA: Replacing SCEV: " << *OrigSCEV << " by: " << *Expr |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 119 | << "\n"); |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 120 | return Expr; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 121 | } |
| 122 | |
| 123 | // Otherwise, just return the SCEV of the original pointer. |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 124 | return OrigSCEV; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 125 | } |
| 126 | |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 127 | void RuntimePointerChecking::insert(Loop *Lp, Value *Ptr, bool WritePtr, |
| 128 | unsigned DepSetId, unsigned ASId, |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 129 | const ValueToValueMap &Strides, |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 130 | PredicatedScalarEvolution &PSE) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 131 | // Get the stride replaced scev. |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 132 | const SCEV *Sc = replaceSymbolicStrideSCEV(PSE, Strides, Ptr); |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 133 | ScalarEvolution *SE = PSE.getSE(); |
Silviu Baranga | 0e5804a | 2015-07-16 14:02:58 +0000 | [diff] [blame] | 134 | |
Adam Nemet | 279784f | 2016-03-24 04:28:47 +0000 | [diff] [blame] | 135 | const SCEV *ScStart; |
| 136 | const SCEV *ScEnd; |
Silviu Baranga | 0e5804a | 2015-07-16 14:02:58 +0000 | [diff] [blame] | 137 | |
Adam Nemet | 59a6550 | 2016-03-24 05:15:24 +0000 | [diff] [blame] | 138 | if (SE->isLoopInvariant(Sc, Lp)) |
Adam Nemet | 279784f | 2016-03-24 04:28:47 +0000 | [diff] [blame] | 139 | ScStart = ScEnd = Sc; |
Adam Nemet | 279784f | 2016-03-24 04:28:47 +0000 | [diff] [blame] | 140 | else { |
| 141 | const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(Sc); |
| 142 | assert(AR && "Invalid addrec expression"); |
Silviu Baranga | 6f444df | 2016-04-08 14:29:09 +0000 | [diff] [blame^] | 143 | const SCEV *Ex = PSE.getBackedgeTakenCount(); |
Adam Nemet | 279784f | 2016-03-24 04:28:47 +0000 | [diff] [blame] | 144 | |
| 145 | ScStart = AR->getStart(); |
| 146 | ScEnd = AR->evaluateAtIteration(Ex, *SE); |
| 147 | const SCEV *Step = AR->getStepRecurrence(*SE); |
| 148 | |
| 149 | // For expressions with negative step, the upper bound is ScStart and the |
| 150 | // lower bound is ScEnd. |
| 151 | if (const SCEVConstant *CStep = dyn_cast<const SCEVConstant>(Step)) { |
| 152 | if (CStep->getValue()->isNegative()) |
| 153 | std::swap(ScStart, ScEnd); |
| 154 | } else { |
| 155 | // Fallback case: the step is not constant, but the we can still |
| 156 | // get the upper and lower bounds of the interval by using min/max |
| 157 | // expressions. |
| 158 | ScStart = SE->getUMinExpr(ScStart, ScEnd); |
| 159 | ScEnd = SE->getUMaxExpr(AR->getStart(), ScEnd); |
| 160 | } |
Silviu Baranga | 0e5804a | 2015-07-16 14:02:58 +0000 | [diff] [blame] | 161 | } |
| 162 | |
| 163 | Pointers.emplace_back(Ptr, ScStart, ScEnd, WritePtr, DepSetId, ASId, Sc); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 164 | } |
| 165 | |
Adam Nemet | bbe1f1d | 2015-07-27 19:38:48 +0000 | [diff] [blame] | 166 | SmallVector<RuntimePointerChecking::PointerCheck, 4> |
Adam Nemet | 3853088 | 2015-08-09 20:06:06 +0000 | [diff] [blame] | 167 | RuntimePointerChecking::generateChecks() const { |
Adam Nemet | bbe1f1d | 2015-07-27 19:38:48 +0000 | [diff] [blame] | 168 | SmallVector<PointerCheck, 4> Checks; |
| 169 | |
Adam Nemet | 7c52e05 | 2015-07-27 19:38:50 +0000 | [diff] [blame] | 170 | for (unsigned I = 0; I < CheckingGroups.size(); ++I) { |
| 171 | for (unsigned J = I + 1; J < CheckingGroups.size(); ++J) { |
| 172 | const RuntimePointerChecking::CheckingPtrGroup &CGI = CheckingGroups[I]; |
| 173 | const RuntimePointerChecking::CheckingPtrGroup &CGJ = CheckingGroups[J]; |
Adam Nemet | bbe1f1d | 2015-07-27 19:38:48 +0000 | [diff] [blame] | 174 | |
Adam Nemet | 3853088 | 2015-08-09 20:06:06 +0000 | [diff] [blame] | 175 | if (needsChecking(CGI, CGJ)) |
Adam Nemet | bbe1f1d | 2015-07-27 19:38:48 +0000 | [diff] [blame] | 176 | Checks.push_back(std::make_pair(&CGI, &CGJ)); |
| 177 | } |
| 178 | } |
| 179 | return Checks; |
| 180 | } |
| 181 | |
Adam Nemet | 1584039 | 2015-08-07 22:44:15 +0000 | [diff] [blame] | 182 | void RuntimePointerChecking::generateChecks( |
| 183 | MemoryDepChecker::DepCandidates &DepCands, bool UseDependencies) { |
| 184 | assert(Checks.empty() && "Checks is not empty"); |
| 185 | groupChecks(DepCands, UseDependencies); |
| 186 | Checks = generateChecks(); |
| 187 | } |
| 188 | |
Adam Nemet | 651a5a2 | 2015-08-09 20:06:08 +0000 | [diff] [blame] | 189 | bool RuntimePointerChecking::needsChecking(const CheckingPtrGroup &M, |
| 190 | const CheckingPtrGroup &N) const { |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 191 | for (unsigned I = 0, EI = M.Members.size(); EI != I; ++I) |
| 192 | for (unsigned J = 0, EJ = N.Members.size(); EJ != J; ++J) |
Adam Nemet | 651a5a2 | 2015-08-09 20:06:08 +0000 | [diff] [blame] | 193 | if (needsChecking(M.Members[I], N.Members[J])) |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 194 | return true; |
| 195 | return false; |
| 196 | } |
| 197 | |
| 198 | /// Compare \p I and \p J and return the minimum. |
| 199 | /// Return nullptr in case we couldn't find an answer. |
| 200 | static const SCEV *getMinFromExprs(const SCEV *I, const SCEV *J, |
| 201 | ScalarEvolution *SE) { |
| 202 | const SCEV *Diff = SE->getMinusSCEV(J, I); |
| 203 | const SCEVConstant *C = dyn_cast<const SCEVConstant>(Diff); |
| 204 | |
| 205 | if (!C) |
| 206 | return nullptr; |
| 207 | if (C->getValue()->isNegative()) |
| 208 | return J; |
| 209 | return I; |
| 210 | } |
| 211 | |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 212 | bool RuntimePointerChecking::CheckingPtrGroup::addPointer(unsigned Index) { |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 213 | const SCEV *Start = RtCheck.Pointers[Index].Start; |
| 214 | const SCEV *End = RtCheck.Pointers[Index].End; |
| 215 | |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 216 | // Compare the starts and ends with the known minimum and maximum |
| 217 | // of this set. We need to know how we compare against the min/max |
| 218 | // of the set in order to be able to emit memchecks. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 219 | const SCEV *Min0 = getMinFromExprs(Start, Low, RtCheck.SE); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 220 | if (!Min0) |
| 221 | return false; |
| 222 | |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 223 | const SCEV *Min1 = getMinFromExprs(End, High, RtCheck.SE); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 224 | if (!Min1) |
| 225 | return false; |
| 226 | |
| 227 | // Update the low bound expression if we've found a new min value. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 228 | if (Min0 == Start) |
| 229 | Low = Start; |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 230 | |
| 231 | // Update the high bound expression if we've found a new max value. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 232 | if (Min1 != End) |
| 233 | High = End; |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 234 | |
| 235 | Members.push_back(Index); |
| 236 | return true; |
| 237 | } |
| 238 | |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 239 | void RuntimePointerChecking::groupChecks( |
| 240 | MemoryDepChecker::DepCandidates &DepCands, bool UseDependencies) { |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 241 | // We build the groups from dependency candidates equivalence classes |
| 242 | // because: |
| 243 | // - We know that pointers in the same equivalence class share |
| 244 | // the same underlying object and therefore there is a chance |
| 245 | // that we can compare pointers |
| 246 | // - We wouldn't be able to merge two pointers for which we need |
| 247 | // to emit a memcheck. The classes in DepCands are already |
| 248 | // conveniently built such that no two pointers in the same |
| 249 | // class need checking against each other. |
| 250 | |
| 251 | // We use the following (greedy) algorithm to construct the groups |
| 252 | // For every pointer in the equivalence class: |
| 253 | // For each existing group: |
| 254 | // - if the difference between this pointer and the min/max bounds |
| 255 | // of the group is a constant, then make the pointer part of the |
| 256 | // group and update the min/max bounds of that group as required. |
| 257 | |
| 258 | CheckingGroups.clear(); |
| 259 | |
Silviu Baranga | 4825060 | 2015-07-28 13:44:08 +0000 | [diff] [blame] | 260 | // If we need to check two pointers to the same underlying object |
| 261 | // with a non-constant difference, we shouldn't perform any pointer |
| 262 | // grouping with those pointers. This is because we can easily get |
| 263 | // into cases where the resulting check would return false, even when |
| 264 | // the accesses are safe. |
| 265 | // |
| 266 | // The following example shows this: |
| 267 | // for (i = 0; i < 1000; ++i) |
| 268 | // a[5000 + i * m] = a[i] + a[i + 9000] |
| 269 | // |
| 270 | // Here grouping gives a check of (5000, 5000 + 1000 * m) against |
| 271 | // (0, 10000) which is always false. However, if m is 1, there is no |
| 272 | // dependence. Not grouping the checks for a[i] and a[i + 9000] allows |
| 273 | // us to perform an accurate check in this case. |
| 274 | // |
| 275 | // The above case requires that we have an UnknownDependence between |
| 276 | // accesses to the same underlying object. This cannot happen unless |
| 277 | // ShouldRetryWithRuntimeCheck is set, and therefore UseDependencies |
| 278 | // is also false. In this case we will use the fallback path and create |
| 279 | // separate checking groups for all pointers. |
Mehdi Amini | afd1351 | 2015-11-05 05:49:43 +0000 | [diff] [blame] | 280 | |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 281 | // If we don't have the dependency partitions, construct a new |
Silviu Baranga | 4825060 | 2015-07-28 13:44:08 +0000 | [diff] [blame] | 282 | // checking pointer group for each pointer. This is also required |
| 283 | // for correctness, because in this case we can have checking between |
| 284 | // pointers to the same underlying object. |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 285 | if (!UseDependencies) { |
| 286 | for (unsigned I = 0; I < Pointers.size(); ++I) |
| 287 | CheckingGroups.push_back(CheckingPtrGroup(I, *this)); |
| 288 | return; |
| 289 | } |
| 290 | |
| 291 | unsigned TotalComparisons = 0; |
| 292 | |
| 293 | DenseMap<Value *, unsigned> PositionMap; |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 294 | for (unsigned Index = 0; Index < Pointers.size(); ++Index) |
| 295 | PositionMap[Pointers[Index].PointerValue] = Index; |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 296 | |
Silviu Baranga | ce3877f | 2015-07-09 15:18:25 +0000 | [diff] [blame] | 297 | // We need to keep track of what pointers we've already seen so we |
| 298 | // don't process them twice. |
| 299 | SmallSet<unsigned, 2> Seen; |
| 300 | |
Sanjay Patel | e4b9f50 | 2015-12-07 19:21:39 +0000 | [diff] [blame] | 301 | // Go through all equivalence classes, get the "pointer check groups" |
Silviu Baranga | ce3877f | 2015-07-09 15:18:25 +0000 | [diff] [blame] | 302 | // and add them to the overall solution. We use the order in which accesses |
| 303 | // appear in 'Pointers' to enforce determinism. |
| 304 | for (unsigned I = 0; I < Pointers.size(); ++I) { |
| 305 | // We've seen this pointer before, and therefore already processed |
| 306 | // its equivalence class. |
| 307 | if (Seen.count(I)) |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 308 | continue; |
| 309 | |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 310 | MemoryDepChecker::MemAccessInfo Access(Pointers[I].PointerValue, |
| 311 | Pointers[I].IsWritePtr); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 312 | |
Silviu Baranga | ce3877f | 2015-07-09 15:18:25 +0000 | [diff] [blame] | 313 | SmallVector<CheckingPtrGroup, 2> Groups; |
| 314 | auto LeaderI = DepCands.findValue(DepCands.getLeaderValue(Access)); |
| 315 | |
Silviu Baranga | a647c30 | 2015-07-13 14:48:24 +0000 | [diff] [blame] | 316 | // Because DepCands is constructed by visiting accesses in the order in |
| 317 | // which they appear in alias sets (which is deterministic) and the |
| 318 | // iteration order within an equivalence class member is only dependent on |
| 319 | // the order in which unions and insertions are performed on the |
| 320 | // equivalence class, the iteration order is deterministic. |
Silviu Baranga | ce3877f | 2015-07-09 15:18:25 +0000 | [diff] [blame] | 321 | for (auto MI = DepCands.member_begin(LeaderI), ME = DepCands.member_end(); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 322 | MI != ME; ++MI) { |
| 323 | unsigned Pointer = PositionMap[MI->getPointer()]; |
| 324 | bool Merged = false; |
Silviu Baranga | ce3877f | 2015-07-09 15:18:25 +0000 | [diff] [blame] | 325 | // Mark this pointer as seen. |
| 326 | Seen.insert(Pointer); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 327 | |
| 328 | // Go through all the existing sets and see if we can find one |
| 329 | // which can include this pointer. |
| 330 | for (CheckingPtrGroup &Group : Groups) { |
| 331 | // Don't perform more than a certain amount of comparisons. |
| 332 | // This should limit the cost of grouping the pointers to something |
| 333 | // reasonable. If we do end up hitting this threshold, the algorithm |
| 334 | // will create separate groups for all remaining pointers. |
| 335 | if (TotalComparisons > MemoryCheckMergeThreshold) |
| 336 | break; |
| 337 | |
| 338 | TotalComparisons++; |
| 339 | |
| 340 | if (Group.addPointer(Pointer)) { |
| 341 | Merged = true; |
| 342 | break; |
| 343 | } |
| 344 | } |
| 345 | |
| 346 | if (!Merged) |
| 347 | // We couldn't add this pointer to any existing set or the threshold |
| 348 | // for the number of comparisons has been reached. Create a new group |
| 349 | // to hold the current pointer. |
| 350 | Groups.push_back(CheckingPtrGroup(Pointer, *this)); |
| 351 | } |
| 352 | |
| 353 | // We've computed the grouped checks for this partition. |
| 354 | // Save the results and continue with the next one. |
| 355 | std::copy(Groups.begin(), Groups.end(), std::back_inserter(CheckingGroups)); |
| 356 | } |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 357 | } |
| 358 | |
Adam Nemet | 041e6de | 2015-07-16 02:48:05 +0000 | [diff] [blame] | 359 | bool RuntimePointerChecking::arePointersInSamePartition( |
| 360 | const SmallVectorImpl<int> &PtrToPartition, unsigned PtrIdx1, |
| 361 | unsigned PtrIdx2) { |
| 362 | return (PtrToPartition[PtrIdx1] != -1 && |
| 363 | PtrToPartition[PtrIdx1] == PtrToPartition[PtrIdx2]); |
| 364 | } |
| 365 | |
Adam Nemet | 651a5a2 | 2015-08-09 20:06:08 +0000 | [diff] [blame] | 366 | bool RuntimePointerChecking::needsChecking(unsigned I, unsigned J) const { |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 367 | const PointerInfo &PointerI = Pointers[I]; |
| 368 | const PointerInfo &PointerJ = Pointers[J]; |
| 369 | |
Adam Nemet | a8945b7 | 2015-02-18 03:43:58 +0000 | [diff] [blame] | 370 | // No need to check if two readonly pointers intersect. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 371 | if (!PointerI.IsWritePtr && !PointerJ.IsWritePtr) |
Adam Nemet | a8945b7 | 2015-02-18 03:43:58 +0000 | [diff] [blame] | 372 | return false; |
| 373 | |
| 374 | // Only need to check pointers between two different dependency sets. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 375 | if (PointerI.DependencySetId == PointerJ.DependencySetId) |
Adam Nemet | a8945b7 | 2015-02-18 03:43:58 +0000 | [diff] [blame] | 376 | return false; |
| 377 | |
| 378 | // Only need to check pointers in the same alias set. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 379 | if (PointerI.AliasSetId != PointerJ.AliasSetId) |
Adam Nemet | a8945b7 | 2015-02-18 03:43:58 +0000 | [diff] [blame] | 380 | return false; |
| 381 | |
| 382 | return true; |
| 383 | } |
| 384 | |
Adam Nemet | 54f0b83 | 2015-07-27 23:54:41 +0000 | [diff] [blame] | 385 | void RuntimePointerChecking::printChecks( |
| 386 | raw_ostream &OS, const SmallVectorImpl<PointerCheck> &Checks, |
| 387 | unsigned Depth) const { |
| 388 | unsigned N = 0; |
| 389 | for (const auto &Check : Checks) { |
| 390 | const auto &First = Check.first->Members, &Second = Check.second->Members; |
| 391 | |
| 392 | OS.indent(Depth) << "Check " << N++ << ":\n"; |
| 393 | |
| 394 | OS.indent(Depth + 2) << "Comparing group (" << Check.first << "):\n"; |
| 395 | for (unsigned K = 0; K < First.size(); ++K) |
| 396 | OS.indent(Depth + 2) << *Pointers[First[K]].PointerValue << "\n"; |
| 397 | |
| 398 | OS.indent(Depth + 2) << "Against group (" << Check.second << "):\n"; |
| 399 | for (unsigned K = 0; K < Second.size(); ++K) |
| 400 | OS.indent(Depth + 2) << *Pointers[Second[K]].PointerValue << "\n"; |
| 401 | } |
| 402 | } |
| 403 | |
Adam Nemet | 3a91e94 | 2015-08-07 19:44:48 +0000 | [diff] [blame] | 404 | void RuntimePointerChecking::print(raw_ostream &OS, unsigned Depth) const { |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 405 | |
| 406 | OS.indent(Depth) << "Run-time memory checks:\n"; |
Adam Nemet | 1584039 | 2015-08-07 22:44:15 +0000 | [diff] [blame] | 407 | printChecks(OS, Checks, Depth); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 408 | |
| 409 | OS.indent(Depth) << "Grouped accesses:\n"; |
| 410 | for (unsigned I = 0; I < CheckingGroups.size(); ++I) { |
Adam Nemet | 54f0b83 | 2015-07-27 23:54:41 +0000 | [diff] [blame] | 411 | const auto &CG = CheckingGroups[I]; |
| 412 | |
| 413 | OS.indent(Depth + 2) << "Group " << &CG << ":\n"; |
| 414 | OS.indent(Depth + 4) << "(Low: " << *CG.Low << " High: " << *CG.High |
| 415 | << ")\n"; |
| 416 | for (unsigned J = 0; J < CG.Members.size(); ++J) { |
| 417 | OS.indent(Depth + 6) << "Member: " << *Pointers[CG.Members[J]].Expr |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 418 | << "\n"; |
| 419 | } |
| 420 | } |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 421 | } |
| 422 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 423 | namespace { |
| 424 | /// \brief Analyses memory accesses in a loop. |
| 425 | /// |
| 426 | /// Checks whether run time pointer checks are needed and builds sets for data |
| 427 | /// dependence checking. |
| 428 | class AccessAnalysis { |
| 429 | public: |
| 430 | /// \brief Read or write access location. |
| 431 | typedef PointerIntPair<Value *, 1, bool> MemAccessInfo; |
| 432 | typedef SmallPtrSet<MemAccessInfo, 8> MemAccessInfoSet; |
| 433 | |
Adam Nemet | e2b885c | 2015-04-23 20:09:20 +0000 | [diff] [blame] | 434 | AccessAnalysis(const DataLayout &Dl, AliasAnalysis *AA, LoopInfo *LI, |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 435 | MemoryDepChecker::DepCandidates &DA, |
| 436 | PredicatedScalarEvolution &PSE) |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 437 | : DL(Dl), AST(*AA), LI(LI), DepCands(DA), IsRTCheckAnalysisNeeded(false), |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 438 | PSE(PSE) {} |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 439 | |
| 440 | /// \brief Register a load and whether it is only read from. |
Chandler Carruth | ac80dc7 | 2015-06-17 07:18:54 +0000 | [diff] [blame] | 441 | void addLoad(MemoryLocation &Loc, bool IsReadOnly) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 442 | Value *Ptr = const_cast<Value*>(Loc.Ptr); |
Chandler Carruth | ecbd168 | 2015-06-17 07:21:38 +0000 | [diff] [blame] | 443 | AST.add(Ptr, MemoryLocation::UnknownSize, Loc.AATags); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 444 | Accesses.insert(MemAccessInfo(Ptr, false)); |
| 445 | if (IsReadOnly) |
| 446 | ReadOnlyPtr.insert(Ptr); |
| 447 | } |
| 448 | |
| 449 | /// \brief Register a store. |
Chandler Carruth | ac80dc7 | 2015-06-17 07:18:54 +0000 | [diff] [blame] | 450 | void addStore(MemoryLocation &Loc) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 451 | Value *Ptr = const_cast<Value*>(Loc.Ptr); |
Chandler Carruth | ecbd168 | 2015-06-17 07:21:38 +0000 | [diff] [blame] | 452 | AST.add(Ptr, MemoryLocation::UnknownSize, Loc.AATags); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 453 | Accesses.insert(MemAccessInfo(Ptr, true)); |
| 454 | } |
| 455 | |
| 456 | /// \brief Check whether we can check the pointers at runtime for |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 457 | /// non-intersection. |
| 458 | /// |
| 459 | /// Returns true if we need no check or if we do and we can generate them |
| 460 | /// (i.e. the pointers have computable bounds). |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 461 | bool canCheckPtrAtRT(RuntimePointerChecking &RtCheck, ScalarEvolution *SE, |
| 462 | Loop *TheLoop, const ValueToValueMap &Strides, |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 463 | bool ShouldCheckStride = false); |
| 464 | |
| 465 | /// \brief Goes over all memory accesses, checks whether a RT check is needed |
| 466 | /// and builds sets of dependent accesses. |
| 467 | void buildDependenceSets() { |
| 468 | processMemAccesses(); |
| 469 | } |
| 470 | |
Adam Nemet | 5dc3b2c | 2015-07-09 06:47:18 +0000 | [diff] [blame] | 471 | /// \brief Initial processing of memory accesses determined that we need to |
| 472 | /// perform dependency checking. |
| 473 | /// |
| 474 | /// Note that this can later be cleared if we retry memcheck analysis without |
| 475 | /// dependency checking (i.e. ShouldRetryWithRuntimeCheck). |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 476 | bool isDependencyCheckNeeded() { return !CheckDeps.empty(); } |
Adam Nemet | df3dc5b | 2015-05-18 15:37:03 +0000 | [diff] [blame] | 477 | |
| 478 | /// We decided that no dependence analysis would be used. Reset the state. |
| 479 | void resetDepChecks(MemoryDepChecker &DepChecker) { |
| 480 | CheckDeps.clear(); |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 481 | DepChecker.clearDependences(); |
Adam Nemet | df3dc5b | 2015-05-18 15:37:03 +0000 | [diff] [blame] | 482 | } |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 483 | |
| 484 | MemAccessInfoSet &getDependenciesToCheck() { return CheckDeps; } |
| 485 | |
| 486 | private: |
| 487 | typedef SetVector<MemAccessInfo> PtrAccessSet; |
| 488 | |
| 489 | /// \brief Go over all memory access and check whether runtime pointer checks |
Adam Nemet | b41d2d3 | 2015-07-09 06:47:21 +0000 | [diff] [blame] | 490 | /// are needed and build sets of dependency check candidates. |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 491 | void processMemAccesses(); |
| 492 | |
| 493 | /// Set of all accesses. |
| 494 | PtrAccessSet Accesses; |
| 495 | |
Mehdi Amini | a28d91d | 2015-03-10 02:37:25 +0000 | [diff] [blame] | 496 | const DataLayout &DL; |
| 497 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 498 | /// Set of accesses that need a further dependence check. |
| 499 | MemAccessInfoSet CheckDeps; |
| 500 | |
| 501 | /// Set of pointers that are read only. |
| 502 | SmallPtrSet<Value*, 16> ReadOnlyPtr; |
| 503 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 504 | /// An alias set tracker to partition the access set by underlying object and |
| 505 | //intrinsic property (such as TBAA metadata). |
| 506 | AliasSetTracker AST; |
| 507 | |
Adam Nemet | e2b885c | 2015-04-23 20:09:20 +0000 | [diff] [blame] | 508 | LoopInfo *LI; |
| 509 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 510 | /// Sets of potentially dependent accesses - members of one set share an |
| 511 | /// underlying pointer. The set "CheckDeps" identfies which sets really need a |
| 512 | /// dependence check. |
Adam Nemet | dee666b | 2015-03-10 17:40:34 +0000 | [diff] [blame] | 513 | MemoryDepChecker::DepCandidates &DepCands; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 514 | |
Adam Nemet | 5dc3b2c | 2015-07-09 06:47:18 +0000 | [diff] [blame] | 515 | /// \brief Initial processing of memory accesses determined that we may need |
| 516 | /// to add memchecks. Perform the analysis to determine the necessary checks. |
| 517 | /// |
| 518 | /// Note that, this is different from isDependencyCheckNeeded. When we retry |
| 519 | /// memcheck analysis without dependency checking |
| 520 | /// (i.e. ShouldRetryWithRuntimeCheck), isDependencyCheckNeeded is cleared |
| 521 | /// while this remains set if we have potentially dependent accesses. |
| 522 | bool IsRTCheckAnalysisNeeded; |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 523 | |
| 524 | /// The SCEV predicate containing all the SCEV-related assumptions. |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 525 | PredicatedScalarEvolution &PSE; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 526 | }; |
| 527 | |
| 528 | } // end anonymous namespace |
| 529 | |
| 530 | /// \brief Check whether a pointer can participate in a runtime bounds check. |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 531 | static bool hasComputableBounds(PredicatedScalarEvolution &PSE, |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 532 | const ValueToValueMap &Strides, Value *Ptr, |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 533 | Loop *L) { |
| 534 | const SCEV *PtrScev = replaceSymbolicStrideSCEV(PSE, Strides, Ptr); |
Adam Nemet | 279784f | 2016-03-24 04:28:47 +0000 | [diff] [blame] | 535 | |
| 536 | // The bounds for loop-invariant pointer is trivial. |
| 537 | if (PSE.getSE()->isLoopInvariant(PtrScev, L)) |
| 538 | return true; |
| 539 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 540 | const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(PtrScev); |
| 541 | if (!AR) |
| 542 | return false; |
| 543 | |
| 544 | return AR->isAffine(); |
| 545 | } |
| 546 | |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 547 | bool AccessAnalysis::canCheckPtrAtRT(RuntimePointerChecking &RtCheck, |
| 548 | ScalarEvolution *SE, Loop *TheLoop, |
| 549 | const ValueToValueMap &StridesMap, |
| 550 | bool ShouldCheckStride) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 551 | // Find pointers with computable bounds. We are going to use this information |
| 552 | // to place a runtime bound check. |
| 553 | bool CanDoRT = true; |
| 554 | |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 555 | bool NeedRTCheck = false; |
Adam Nemet | 5dc3b2c | 2015-07-09 06:47:18 +0000 | [diff] [blame] | 556 | if (!IsRTCheckAnalysisNeeded) return true; |
Silviu Baranga | 98a1371 | 2015-06-08 10:27:06 +0000 | [diff] [blame] | 557 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 558 | bool IsDepCheckNeeded = isDependencyCheckNeeded(); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 559 | |
| 560 | // We assign a consecutive id to access from different alias sets. |
| 561 | // Accesses between different groups doesn't need to be checked. |
| 562 | unsigned ASId = 1; |
| 563 | for (auto &AS : AST) { |
Adam Nemet | 424edc6 | 2015-07-08 22:58:48 +0000 | [diff] [blame] | 564 | int NumReadPtrChecks = 0; |
| 565 | int NumWritePtrChecks = 0; |
| 566 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 567 | // We assign consecutive id to access from different dependence sets. |
| 568 | // Accesses within the same set don't need a runtime check. |
| 569 | unsigned RunningDepId = 1; |
| 570 | DenseMap<Value *, unsigned> DepSetId; |
| 571 | |
| 572 | for (auto A : AS) { |
| 573 | Value *Ptr = A.getValue(); |
| 574 | bool IsWrite = Accesses.count(MemAccessInfo(Ptr, true)); |
| 575 | MemAccessInfo Access(Ptr, IsWrite); |
| 576 | |
Adam Nemet | 424edc6 | 2015-07-08 22:58:48 +0000 | [diff] [blame] | 577 | if (IsWrite) |
| 578 | ++NumWritePtrChecks; |
| 579 | else |
| 580 | ++NumReadPtrChecks; |
| 581 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 582 | if (hasComputableBounds(PSE, StridesMap, Ptr, TheLoop) && |
Mehdi Amini | a28d91d | 2015-03-10 02:37:25 +0000 | [diff] [blame] | 583 | // When we run after a failing dependency check we have to make sure |
| 584 | // we don't have wrapping pointers. |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 585 | (!ShouldCheckStride || |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 586 | isStridedPtr(PSE, Ptr, TheLoop, StridesMap) == 1)) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 587 | // The id of the dependence set. |
| 588 | unsigned DepId; |
| 589 | |
| 590 | if (IsDepCheckNeeded) { |
| 591 | Value *Leader = DepCands.getLeaderValue(Access).getPointer(); |
| 592 | unsigned &LeaderId = DepSetId[Leader]; |
| 593 | if (!LeaderId) |
| 594 | LeaderId = RunningDepId++; |
| 595 | DepId = LeaderId; |
| 596 | } else |
| 597 | // Each access has its own dependence set. |
| 598 | DepId = RunningDepId++; |
| 599 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 600 | RtCheck.insert(TheLoop, Ptr, IsWrite, DepId, ASId, StridesMap, PSE); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 601 | |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 602 | DEBUG(dbgs() << "LAA: Found a runtime check ptr:" << *Ptr << '\n'); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 603 | } else { |
Adam Nemet | f10ca27 | 2015-05-18 15:36:52 +0000 | [diff] [blame] | 604 | DEBUG(dbgs() << "LAA: Can't find bounds for ptr:" << *Ptr << '\n'); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 605 | CanDoRT = false; |
| 606 | } |
| 607 | } |
| 608 | |
Adam Nemet | 424edc6 | 2015-07-08 22:58:48 +0000 | [diff] [blame] | 609 | // If we have at least two writes or one write and a read then we need to |
| 610 | // check them. But there is no need to checks if there is only one |
| 611 | // dependence set for this alias set. |
| 612 | // |
| 613 | // Note that this function computes CanDoRT and NeedRTCheck independently. |
| 614 | // For example CanDoRT=false, NeedRTCheck=false means that we have a pointer |
| 615 | // for which we couldn't find the bounds but we don't actually need to emit |
| 616 | // any checks so it does not matter. |
| 617 | if (!(IsDepCheckNeeded && CanDoRT && RunningDepId == 2)) |
| 618 | NeedRTCheck |= (NumWritePtrChecks >= 2 || (NumReadPtrChecks >= 1 && |
| 619 | NumWritePtrChecks >= 1)); |
| 620 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 621 | ++ASId; |
| 622 | } |
| 623 | |
| 624 | // If the pointers that we would use for the bounds comparison have different |
| 625 | // address spaces, assume the values aren't directly comparable, so we can't |
| 626 | // use them for the runtime check. We also have to assume they could |
| 627 | // overlap. In the future there should be metadata for whether address spaces |
| 628 | // are disjoint. |
| 629 | unsigned NumPointers = RtCheck.Pointers.size(); |
| 630 | for (unsigned i = 0; i < NumPointers; ++i) { |
| 631 | for (unsigned j = i + 1; j < NumPointers; ++j) { |
| 632 | // Only need to check pointers between two different dependency sets. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 633 | if (RtCheck.Pointers[i].DependencySetId == |
| 634 | RtCheck.Pointers[j].DependencySetId) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 635 | continue; |
| 636 | // Only need to check pointers in the same alias set. |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 637 | if (RtCheck.Pointers[i].AliasSetId != RtCheck.Pointers[j].AliasSetId) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 638 | continue; |
| 639 | |
Adam Nemet | 9f7dedc | 2015-07-14 22:32:50 +0000 | [diff] [blame] | 640 | Value *PtrI = RtCheck.Pointers[i].PointerValue; |
| 641 | Value *PtrJ = RtCheck.Pointers[j].PointerValue; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 642 | |
| 643 | unsigned ASi = PtrI->getType()->getPointerAddressSpace(); |
| 644 | unsigned ASj = PtrJ->getType()->getPointerAddressSpace(); |
| 645 | if (ASi != ASj) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 646 | DEBUG(dbgs() << "LAA: Runtime check would require comparison between" |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 647 | " different address spaces\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 648 | return false; |
| 649 | } |
| 650 | } |
| 651 | } |
| 652 | |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 653 | if (NeedRTCheck && CanDoRT) |
Adam Nemet | 1584039 | 2015-08-07 22:44:15 +0000 | [diff] [blame] | 654 | RtCheck.generateChecks(DepCands, IsDepCheckNeeded); |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 655 | |
Adam Nemet | 155e874 | 2015-08-07 22:44:21 +0000 | [diff] [blame] | 656 | DEBUG(dbgs() << "LAA: We need to do " << RtCheck.getNumberOfChecks() |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 657 | << " pointer comparisons.\n"); |
| 658 | |
| 659 | RtCheck.Need = NeedRTCheck; |
| 660 | |
| 661 | bool CanDoRTIfNeeded = !NeedRTCheck || CanDoRT; |
| 662 | if (!CanDoRTIfNeeded) |
| 663 | RtCheck.reset(); |
| 664 | return CanDoRTIfNeeded; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 665 | } |
| 666 | |
| 667 | void AccessAnalysis::processMemAccesses() { |
| 668 | // We process the set twice: first we process read-write pointers, last we |
| 669 | // process read-only pointers. This allows us to skip dependence tests for |
| 670 | // read-only pointers. |
| 671 | |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 672 | DEBUG(dbgs() << "LAA: Processing memory accesses...\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 673 | DEBUG(dbgs() << " AST: "; AST.dump()); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 674 | DEBUG(dbgs() << "LAA: Accesses(" << Accesses.size() << "):\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 675 | DEBUG({ |
| 676 | for (auto A : Accesses) |
| 677 | dbgs() << "\t" << *A.getPointer() << " (" << |
| 678 | (A.getInt() ? "write" : (ReadOnlyPtr.count(A.getPointer()) ? |
| 679 | "read-only" : "read")) << ")\n"; |
| 680 | }); |
| 681 | |
| 682 | // The AliasSetTracker has nicely partitioned our pointers by metadata |
| 683 | // compatibility and potential for underlying-object overlap. As a result, we |
| 684 | // only need to check for potential pointer dependencies within each alias |
| 685 | // set. |
| 686 | for (auto &AS : AST) { |
| 687 | // Note that both the alias-set tracker and the alias sets themselves used |
| 688 | // linked lists internally and so the iteration order here is deterministic |
| 689 | // (matching the original instruction order within each set). |
| 690 | |
| 691 | bool SetHasWrite = false; |
| 692 | |
| 693 | // Map of pointers to last access encountered. |
| 694 | typedef DenseMap<Value*, MemAccessInfo> UnderlyingObjToAccessMap; |
| 695 | UnderlyingObjToAccessMap ObjToLastAccess; |
| 696 | |
| 697 | // Set of access to check after all writes have been processed. |
| 698 | PtrAccessSet DeferredAccesses; |
| 699 | |
| 700 | // Iterate over each alias set twice, once to process read/write pointers, |
| 701 | // and then to process read-only pointers. |
| 702 | for (int SetIteration = 0; SetIteration < 2; ++SetIteration) { |
| 703 | bool UseDeferred = SetIteration > 0; |
| 704 | PtrAccessSet &S = UseDeferred ? DeferredAccesses : Accesses; |
| 705 | |
| 706 | for (auto AV : AS) { |
| 707 | Value *Ptr = AV.getValue(); |
| 708 | |
| 709 | // For a single memory access in AliasSetTracker, Accesses may contain |
| 710 | // both read and write, and they both need to be handled for CheckDeps. |
| 711 | for (auto AC : S) { |
| 712 | if (AC.getPointer() != Ptr) |
| 713 | continue; |
| 714 | |
| 715 | bool IsWrite = AC.getInt(); |
| 716 | |
| 717 | // If we're using the deferred access set, then it contains only |
| 718 | // reads. |
| 719 | bool IsReadOnlyPtr = ReadOnlyPtr.count(Ptr) && !IsWrite; |
| 720 | if (UseDeferred && !IsReadOnlyPtr) |
| 721 | continue; |
| 722 | // Otherwise, the pointer must be in the PtrAccessSet, either as a |
| 723 | // read or a write. |
| 724 | assert(((IsReadOnlyPtr && UseDeferred) || IsWrite || |
| 725 | S.count(MemAccessInfo(Ptr, false))) && |
| 726 | "Alias-set pointer not in the access set?"); |
| 727 | |
| 728 | MemAccessInfo Access(Ptr, IsWrite); |
| 729 | DepCands.insert(Access); |
| 730 | |
| 731 | // Memorize read-only pointers for later processing and skip them in |
| 732 | // the first round (they need to be checked after we have seen all |
| 733 | // write pointers). Note: we also mark pointer that are not |
| 734 | // consecutive as "read-only" pointers (so that we check |
| 735 | // "a[b[i]] +="). Hence, we need the second check for "!IsWrite". |
| 736 | if (!UseDeferred && IsReadOnlyPtr) { |
| 737 | DeferredAccesses.insert(Access); |
| 738 | continue; |
| 739 | } |
| 740 | |
| 741 | // If this is a write - check other reads and writes for conflicts. If |
| 742 | // this is a read only check other writes for conflicts (but only if |
| 743 | // there is no other write to the ptr - this is an optimization to |
| 744 | // catch "a[i] = a[i] + " without having to do a dependence check). |
| 745 | if ((IsWrite || IsReadOnlyPtr) && SetHasWrite) { |
| 746 | CheckDeps.insert(Access); |
Adam Nemet | 5dc3b2c | 2015-07-09 06:47:18 +0000 | [diff] [blame] | 747 | IsRTCheckAnalysisNeeded = true; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 748 | } |
| 749 | |
| 750 | if (IsWrite) |
| 751 | SetHasWrite = true; |
| 752 | |
| 753 | // Create sets of pointers connected by a shared alias set and |
| 754 | // underlying object. |
| 755 | typedef SmallVector<Value *, 16> ValueVector; |
| 756 | ValueVector TempObjects; |
Adam Nemet | e2b885c | 2015-04-23 20:09:20 +0000 | [diff] [blame] | 757 | |
| 758 | GetUnderlyingObjects(Ptr, TempObjects, DL, LI); |
| 759 | DEBUG(dbgs() << "Underlying objects for pointer " << *Ptr << "\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 760 | for (Value *UnderlyingObj : TempObjects) { |
Mehdi Amini | afd1351 | 2015-11-05 05:49:43 +0000 | [diff] [blame] | 761 | // nullptr never alias, don't join sets for pointer that have "null" |
| 762 | // in their UnderlyingObjects list. |
| 763 | if (isa<ConstantPointerNull>(UnderlyingObj)) |
| 764 | continue; |
| 765 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 766 | UnderlyingObjToAccessMap::iterator Prev = |
| 767 | ObjToLastAccess.find(UnderlyingObj); |
| 768 | if (Prev != ObjToLastAccess.end()) |
| 769 | DepCands.unionSets(Access, Prev->second); |
| 770 | |
| 771 | ObjToLastAccess[UnderlyingObj] = Access; |
Adam Nemet | e2b885c | 2015-04-23 20:09:20 +0000 | [diff] [blame] | 772 | DEBUG(dbgs() << " " << *UnderlyingObj << "\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 773 | } |
| 774 | } |
| 775 | } |
| 776 | } |
| 777 | } |
| 778 | } |
| 779 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 780 | static bool isInBoundsGep(Value *Ptr) { |
| 781 | if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Ptr)) |
| 782 | return GEP->isInBounds(); |
| 783 | return false; |
| 784 | } |
| 785 | |
Adam Nemet | c4866d2 | 2015-06-26 17:25:43 +0000 | [diff] [blame] | 786 | /// \brief Return true if an AddRec pointer \p Ptr is unsigned non-wrapping, |
| 787 | /// i.e. monotonically increasing/decreasing. |
| 788 | static bool isNoWrapAddRec(Value *Ptr, const SCEVAddRecExpr *AR, |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 789 | PredicatedScalarEvolution &PSE, const Loop *L) { |
Adam Nemet | c4866d2 | 2015-06-26 17:25:43 +0000 | [diff] [blame] | 790 | // FIXME: This should probably only return true for NUW. |
| 791 | if (AR->getNoWrapFlags(SCEV::NoWrapMask)) |
| 792 | return true; |
| 793 | |
| 794 | // Scalar evolution does not propagate the non-wrapping flags to values that |
| 795 | // are derived from a non-wrapping induction variable because non-wrapping |
| 796 | // could be flow-sensitive. |
| 797 | // |
| 798 | // Look through the potentially overflowing instruction to try to prove |
| 799 | // non-wrapping for the *specific* value of Ptr. |
| 800 | |
| 801 | // The arithmetic implied by an inbounds GEP can't overflow. |
| 802 | auto *GEP = dyn_cast<GetElementPtrInst>(Ptr); |
| 803 | if (!GEP || !GEP->isInBounds()) |
| 804 | return false; |
| 805 | |
| 806 | // Make sure there is only one non-const index and analyze that. |
| 807 | Value *NonConstIndex = nullptr; |
| 808 | for (auto Index = GEP->idx_begin(); Index != GEP->idx_end(); ++Index) |
| 809 | if (!isa<ConstantInt>(*Index)) { |
| 810 | if (NonConstIndex) |
| 811 | return false; |
| 812 | NonConstIndex = *Index; |
| 813 | } |
| 814 | if (!NonConstIndex) |
| 815 | // The recurrence is on the pointer, ignore for now. |
| 816 | return false; |
| 817 | |
| 818 | // The index in GEP is signed. It is non-wrapping if it's derived from a NSW |
| 819 | // AddRec using a NSW operation. |
| 820 | if (auto *OBO = dyn_cast<OverflowingBinaryOperator>(NonConstIndex)) |
| 821 | if (OBO->hasNoSignedWrap() && |
| 822 | // Assume constant for other the operand so that the AddRec can be |
| 823 | // easily found. |
| 824 | isa<ConstantInt>(OBO->getOperand(1))) { |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 825 | auto *OpScev = PSE.getSCEV(OBO->getOperand(0)); |
Adam Nemet | c4866d2 | 2015-06-26 17:25:43 +0000 | [diff] [blame] | 826 | |
| 827 | if (auto *OpAR = dyn_cast<SCEVAddRecExpr>(OpScev)) |
| 828 | return OpAR->getLoop() == L && OpAR->getNoWrapFlags(SCEV::FlagNSW); |
| 829 | } |
| 830 | |
| 831 | return false; |
| 832 | } |
| 833 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 834 | /// \brief Check whether the access through \p Ptr has a constant stride. |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 835 | int llvm::isStridedPtr(PredicatedScalarEvolution &PSE, Value *Ptr, |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 836 | const Loop *Lp, const ValueToValueMap &StridesMap, |
| 837 | bool Assume) { |
Craig Topper | e3dcce9 | 2015-08-01 22:20:21 +0000 | [diff] [blame] | 838 | Type *Ty = Ptr->getType(); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 839 | assert(Ty->isPointerTy() && "Unexpected non-ptr"); |
| 840 | |
| 841 | // Make sure that the pointer does not point to aggregate types. |
Craig Topper | e3dcce9 | 2015-08-01 22:20:21 +0000 | [diff] [blame] | 842 | auto *PtrTy = cast<PointerType>(Ty); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 843 | if (PtrTy->getElementType()->isAggregateType()) { |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 844 | DEBUG(dbgs() << "LAA: Bad stride - Not a pointer to a scalar type" << *Ptr |
| 845 | << "\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 846 | return 0; |
| 847 | } |
| 848 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 849 | const SCEV *PtrScev = replaceSymbolicStrideSCEV(PSE, StridesMap, Ptr); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 850 | |
| 851 | const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(PtrScev); |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 852 | if (Assume && !AR) |
Silviu Baranga | d68ed85 | 2016-03-23 15:29:30 +0000 | [diff] [blame] | 853 | AR = PSE.getAsAddRec(Ptr); |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 854 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 855 | if (!AR) { |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 856 | DEBUG(dbgs() << "LAA: Bad stride - Not an AddRecExpr pointer " << *Ptr |
| 857 | << " SCEV: " << *PtrScev << "\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 858 | return 0; |
| 859 | } |
| 860 | |
| 861 | // The accesss function must stride over the innermost loop. |
| 862 | if (Lp != AR->getLoop()) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 863 | DEBUG(dbgs() << "LAA: Bad stride - Not striding over innermost loop " << |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 864 | *Ptr << " SCEV: " << *AR << "\n"); |
Kyle Butt | a02ce98 | 2016-01-08 01:55:13 +0000 | [diff] [blame] | 865 | return 0; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 866 | } |
| 867 | |
| 868 | // The address calculation must not wrap. Otherwise, a dependence could be |
| 869 | // inverted. |
| 870 | // An inbounds getelementptr that is a AddRec with a unit stride |
| 871 | // cannot wrap per definition. The unit stride requirement is checked later. |
| 872 | // An getelementptr without an inbounds attribute and unit stride would have |
| 873 | // to access the pointer value "0" which is undefined behavior in address |
| 874 | // space 0, therefore we can also vectorize this case. |
| 875 | bool IsInBoundsGEP = isInBoundsGep(Ptr); |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 876 | bool IsNoWrapAddRec = |
| 877 | PSE.hasNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW) || |
| 878 | isNoWrapAddRec(Ptr, AR, PSE, Lp); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 879 | bool IsInAddressSpaceZero = PtrTy->getAddressSpace() == 0; |
| 880 | if (!IsNoWrapAddRec && !IsInBoundsGEP && !IsInAddressSpaceZero) { |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 881 | if (Assume) { |
| 882 | PSE.setNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW); |
| 883 | IsNoWrapAddRec = true; |
| 884 | DEBUG(dbgs() << "LAA: Pointer may wrap in the address space:\n" |
| 885 | << "LAA: Pointer: " << *Ptr << "\n" |
| 886 | << "LAA: SCEV: " << *AR << "\n" |
| 887 | << "LAA: Added an overflow assumption\n"); |
| 888 | } else { |
| 889 | DEBUG(dbgs() << "LAA: Bad stride - Pointer may wrap in the address space " |
| 890 | << *Ptr << " SCEV: " << *AR << "\n"); |
| 891 | return 0; |
| 892 | } |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 893 | } |
| 894 | |
| 895 | // Check the step is constant. |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 896 | const SCEV *Step = AR->getStepRecurrence(*PSE.getSE()); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 897 | |
Adam Nemet | 943befe | 2015-07-09 00:03:22 +0000 | [diff] [blame] | 898 | // Calculate the pointer stride and check if it is constant. |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 899 | const SCEVConstant *C = dyn_cast<SCEVConstant>(Step); |
| 900 | if (!C) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 901 | DEBUG(dbgs() << "LAA: Bad stride - Not a constant strided " << *Ptr << |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 902 | " SCEV: " << *AR << "\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 903 | return 0; |
| 904 | } |
| 905 | |
Mehdi Amini | a28d91d | 2015-03-10 02:37:25 +0000 | [diff] [blame] | 906 | auto &DL = Lp->getHeader()->getModule()->getDataLayout(); |
| 907 | int64_t Size = DL.getTypeAllocSize(PtrTy->getElementType()); |
Sanjoy Das | 0de2fec | 2015-12-17 20:28:46 +0000 | [diff] [blame] | 908 | const APInt &APStepVal = C->getAPInt(); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 909 | |
| 910 | // Huge step value - give up. |
| 911 | if (APStepVal.getBitWidth() > 64) |
| 912 | return 0; |
| 913 | |
| 914 | int64_t StepVal = APStepVal.getSExtValue(); |
| 915 | |
| 916 | // Strided access. |
| 917 | int64_t Stride = StepVal / Size; |
| 918 | int64_t Rem = StepVal % Size; |
| 919 | if (Rem) |
| 920 | return 0; |
| 921 | |
| 922 | // If the SCEV could wrap but we have an inbounds gep with a unit stride we |
| 923 | // know we can't "wrap around the address space". In case of address space |
| 924 | // zero we know that this won't happen without triggering undefined behavior. |
| 925 | if (!IsNoWrapAddRec && (IsInBoundsGEP || IsInAddressSpaceZero) && |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 926 | Stride != 1 && Stride != -1) { |
| 927 | if (Assume) { |
| 928 | // We can avoid this case by adding a run-time check. |
| 929 | DEBUG(dbgs() << "LAA: Non unit strided pointer which is not either " |
| 930 | << "inbouds or in address space 0 may wrap:\n" |
| 931 | << "LAA: Pointer: " << *Ptr << "\n" |
| 932 | << "LAA: SCEV: " << *AR << "\n" |
| 933 | << "LAA: Added an overflow assumption\n"); |
| 934 | PSE.setNoOverflow(Ptr, SCEVWrapPredicate::IncrementNUSW); |
| 935 | } else |
| 936 | return 0; |
| 937 | } |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 938 | |
| 939 | return Stride; |
| 940 | } |
| 941 | |
Haicheng Wu | f1c00a2 | 2016-01-26 02:27:47 +0000 | [diff] [blame] | 942 | /// Take the pointer operand from the Load/Store instruction. |
| 943 | /// Returns NULL if this is not a valid Load/Store instruction. |
| 944 | static Value *getPointerOperand(Value *I) { |
| 945 | if (LoadInst *LI = dyn_cast<LoadInst>(I)) |
| 946 | return LI->getPointerOperand(); |
| 947 | if (StoreInst *SI = dyn_cast<StoreInst>(I)) |
| 948 | return SI->getPointerOperand(); |
| 949 | return nullptr; |
| 950 | } |
| 951 | |
| 952 | /// Take the address space operand from the Load/Store instruction. |
| 953 | /// Returns -1 if this is not a valid Load/Store instruction. |
| 954 | static unsigned getAddressSpaceOperand(Value *I) { |
| 955 | if (LoadInst *L = dyn_cast<LoadInst>(I)) |
| 956 | return L->getPointerAddressSpace(); |
| 957 | if (StoreInst *S = dyn_cast<StoreInst>(I)) |
| 958 | return S->getPointerAddressSpace(); |
| 959 | return -1; |
| 960 | } |
| 961 | |
| 962 | /// Returns true if the memory operations \p A and \p B are consecutive. |
| 963 | bool llvm::isConsecutiveAccess(Value *A, Value *B, const DataLayout &DL, |
| 964 | ScalarEvolution &SE, bool CheckType) { |
| 965 | Value *PtrA = getPointerOperand(A); |
| 966 | Value *PtrB = getPointerOperand(B); |
| 967 | unsigned ASA = getAddressSpaceOperand(A); |
| 968 | unsigned ASB = getAddressSpaceOperand(B); |
| 969 | |
| 970 | // Check that the address spaces match and that the pointers are valid. |
| 971 | if (!PtrA || !PtrB || (ASA != ASB)) |
| 972 | return false; |
| 973 | |
| 974 | // Make sure that A and B are different pointers. |
| 975 | if (PtrA == PtrB) |
| 976 | return false; |
| 977 | |
| 978 | // Make sure that A and B have the same type if required. |
| 979 | if(CheckType && PtrA->getType() != PtrB->getType()) |
| 980 | return false; |
| 981 | |
| 982 | unsigned PtrBitWidth = DL.getPointerSizeInBits(ASA); |
| 983 | Type *Ty = cast<PointerType>(PtrA->getType())->getElementType(); |
| 984 | APInt Size(PtrBitWidth, DL.getTypeStoreSize(Ty)); |
| 985 | |
| 986 | APInt OffsetA(PtrBitWidth, 0), OffsetB(PtrBitWidth, 0); |
| 987 | PtrA = PtrA->stripAndAccumulateInBoundsConstantOffsets(DL, OffsetA); |
| 988 | PtrB = PtrB->stripAndAccumulateInBoundsConstantOffsets(DL, OffsetB); |
| 989 | |
| 990 | // OffsetDelta = OffsetB - OffsetA; |
| 991 | const SCEV *OffsetSCEVA = SE.getConstant(OffsetA); |
| 992 | const SCEV *OffsetSCEVB = SE.getConstant(OffsetB); |
| 993 | const SCEV *OffsetDeltaSCEV = SE.getMinusSCEV(OffsetSCEVB, OffsetSCEVA); |
| 994 | const SCEVConstant *OffsetDeltaC = dyn_cast<SCEVConstant>(OffsetDeltaSCEV); |
| 995 | const APInt &OffsetDelta = OffsetDeltaC->getAPInt(); |
| 996 | // Check if they are based on the same pointer. That makes the offsets |
| 997 | // sufficient. |
| 998 | if (PtrA == PtrB) |
| 999 | return OffsetDelta == Size; |
| 1000 | |
| 1001 | // Compute the necessary base pointer delta to have the necessary final delta |
| 1002 | // equal to the size. |
| 1003 | // BaseDelta = Size - OffsetDelta; |
| 1004 | const SCEV *SizeSCEV = SE.getConstant(Size); |
| 1005 | const SCEV *BaseDelta = SE.getMinusSCEV(SizeSCEV, OffsetDeltaSCEV); |
| 1006 | |
| 1007 | // Otherwise compute the distance with SCEV between the base pointers. |
| 1008 | const SCEV *PtrSCEVA = SE.getSCEV(PtrA); |
| 1009 | const SCEV *PtrSCEVB = SE.getSCEV(PtrB); |
| 1010 | const SCEV *X = SE.getAddExpr(PtrSCEVA, BaseDelta); |
| 1011 | return X == PtrSCEVB; |
| 1012 | } |
| 1013 | |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1014 | bool MemoryDepChecker::Dependence::isSafeForVectorization(DepType Type) { |
| 1015 | switch (Type) { |
| 1016 | case NoDep: |
| 1017 | case Forward: |
| 1018 | case BackwardVectorizable: |
| 1019 | return true; |
| 1020 | |
| 1021 | case Unknown: |
| 1022 | case ForwardButPreventsForwarding: |
| 1023 | case Backward: |
| 1024 | case BackwardVectorizableButPreventsForwarding: |
| 1025 | return false; |
| 1026 | } |
David Majnemer | d388e93 | 2015-03-10 20:23:29 +0000 | [diff] [blame] | 1027 | llvm_unreachable("unexpected DepType!"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1028 | } |
| 1029 | |
Adam Nemet | 397f582 | 2015-11-03 23:50:03 +0000 | [diff] [blame] | 1030 | bool MemoryDepChecker::Dependence::isBackward() const { |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1031 | switch (Type) { |
| 1032 | case NoDep: |
| 1033 | case Forward: |
| 1034 | case ForwardButPreventsForwarding: |
Adam Nemet | 397f582 | 2015-11-03 23:50:03 +0000 | [diff] [blame] | 1035 | case Unknown: |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1036 | return false; |
| 1037 | |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1038 | case BackwardVectorizable: |
| 1039 | case Backward: |
| 1040 | case BackwardVectorizableButPreventsForwarding: |
| 1041 | return true; |
| 1042 | } |
David Majnemer | d388e93 | 2015-03-10 20:23:29 +0000 | [diff] [blame] | 1043 | llvm_unreachable("unexpected DepType!"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1044 | } |
| 1045 | |
Adam Nemet | 397f582 | 2015-11-03 23:50:03 +0000 | [diff] [blame] | 1046 | bool MemoryDepChecker::Dependence::isPossiblyBackward() const { |
| 1047 | return isBackward() || Type == Unknown; |
| 1048 | } |
| 1049 | |
| 1050 | bool MemoryDepChecker::Dependence::isForward() const { |
| 1051 | switch (Type) { |
| 1052 | case Forward: |
| 1053 | case ForwardButPreventsForwarding: |
| 1054 | return true; |
| 1055 | |
| 1056 | case NoDep: |
| 1057 | case Unknown: |
| 1058 | case BackwardVectorizable: |
| 1059 | case Backward: |
| 1060 | case BackwardVectorizableButPreventsForwarding: |
| 1061 | return false; |
| 1062 | } |
| 1063 | llvm_unreachable("unexpected DepType!"); |
| 1064 | } |
| 1065 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1066 | bool MemoryDepChecker::couldPreventStoreLoadForward(unsigned Distance, |
| 1067 | unsigned TypeByteSize) { |
| 1068 | // If loads occur at a distance that is not a multiple of a feasible vector |
| 1069 | // factor store-load forwarding does not take place. |
| 1070 | // Positive dependences might cause troubles because vectorizing them might |
| 1071 | // prevent store-load forwarding making vectorized code run a lot slower. |
| 1072 | // a[i] = a[i-3] ^ a[i-8]; |
| 1073 | // The stores to a[i:i+1] don't align with the stores to a[i-3:i-2] and |
| 1074 | // hence on your typical architecture store-load forwarding does not take |
| 1075 | // place. Vectorizing in such cases does not make sense. |
| 1076 | // Store-load forwarding distance. |
| 1077 | const unsigned NumCyclesForStoreLoadThroughMemory = 8*TypeByteSize; |
| 1078 | // Maximum vector factor. |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 1079 | unsigned MaxVFWithoutSLForwardIssues = |
| 1080 | VectorizerParams::MaxVectorWidth * TypeByteSize; |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1081 | if(MaxSafeDepDistBytes < MaxVFWithoutSLForwardIssues) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1082 | MaxVFWithoutSLForwardIssues = MaxSafeDepDistBytes; |
| 1083 | |
| 1084 | for (unsigned vf = 2*TypeByteSize; vf <= MaxVFWithoutSLForwardIssues; |
| 1085 | vf *= 2) { |
| 1086 | if (Distance % vf && Distance / vf < NumCyclesForStoreLoadThroughMemory) { |
| 1087 | MaxVFWithoutSLForwardIssues = (vf >>=1); |
| 1088 | break; |
| 1089 | } |
| 1090 | } |
| 1091 | |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1092 | if (MaxVFWithoutSLForwardIssues< 2*TypeByteSize) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1093 | DEBUG(dbgs() << "LAA: Distance " << Distance << |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1094 | " that could cause a store-load forwarding conflict\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1095 | return true; |
| 1096 | } |
| 1097 | |
| 1098 | if (MaxVFWithoutSLForwardIssues < MaxSafeDepDistBytes && |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 1099 | MaxVFWithoutSLForwardIssues != |
| 1100 | VectorizerParams::MaxVectorWidth * TypeByteSize) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1101 | MaxSafeDepDistBytes = MaxVFWithoutSLForwardIssues; |
| 1102 | return false; |
| 1103 | } |
| 1104 | |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1105 | /// \brief Check the dependence for two accesses with the same stride \p Stride. |
| 1106 | /// \p Distance is the positive distance and \p TypeByteSize is type size in |
| 1107 | /// bytes. |
| 1108 | /// |
| 1109 | /// \returns true if they are independent. |
| 1110 | static bool areStridedAccessesIndependent(unsigned Distance, unsigned Stride, |
| 1111 | unsigned TypeByteSize) { |
| 1112 | assert(Stride > 1 && "The stride must be greater than 1"); |
| 1113 | assert(TypeByteSize > 0 && "The type size in byte must be non-zero"); |
| 1114 | assert(Distance > 0 && "The distance must be non-zero"); |
| 1115 | |
| 1116 | // Skip if the distance is not multiple of type byte size. |
| 1117 | if (Distance % TypeByteSize) |
| 1118 | return false; |
| 1119 | |
| 1120 | unsigned ScaledDist = Distance / TypeByteSize; |
| 1121 | |
| 1122 | // No dependence if the scaled distance is not multiple of the stride. |
| 1123 | // E.g. |
| 1124 | // for (i = 0; i < 1024 ; i += 4) |
| 1125 | // A[i+2] = A[i] + 1; |
| 1126 | // |
| 1127 | // Two accesses in memory (scaled distance is 2, stride is 4): |
| 1128 | // | A[0] | | | | A[4] | | | | |
| 1129 | // | | | A[2] | | | | A[6] | | |
| 1130 | // |
| 1131 | // E.g. |
| 1132 | // for (i = 0; i < 1024 ; i += 3) |
| 1133 | // A[i+4] = A[i] + 1; |
| 1134 | // |
| 1135 | // Two accesses in memory (scaled distance is 4, stride is 3): |
| 1136 | // | A[0] | | | A[3] | | | A[6] | | | |
| 1137 | // | | | | | A[4] | | | A[7] | | |
| 1138 | return ScaledDist % Stride; |
| 1139 | } |
| 1140 | |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1141 | MemoryDepChecker::Dependence::DepType |
| 1142 | MemoryDepChecker::isDependent(const MemAccessInfo &A, unsigned AIdx, |
| 1143 | const MemAccessInfo &B, unsigned BIdx, |
| 1144 | const ValueToValueMap &Strides) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1145 | assert (AIdx < BIdx && "Must pass arguments in program order"); |
| 1146 | |
| 1147 | Value *APtr = A.getPointer(); |
| 1148 | Value *BPtr = B.getPointer(); |
| 1149 | bool AIsWrite = A.getInt(); |
| 1150 | bool BIsWrite = B.getInt(); |
| 1151 | |
| 1152 | // Two reads are independent. |
| 1153 | if (!AIsWrite && !BIsWrite) |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1154 | return Dependence::NoDep; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1155 | |
| 1156 | // We cannot check pointers in different address spaces. |
| 1157 | if (APtr->getType()->getPointerAddressSpace() != |
| 1158 | BPtr->getType()->getPointerAddressSpace()) |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1159 | return Dependence::Unknown; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1160 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1161 | const SCEV *AScev = replaceSymbolicStrideSCEV(PSE, Strides, APtr); |
| 1162 | const SCEV *BScev = replaceSymbolicStrideSCEV(PSE, Strides, BPtr); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1163 | |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 1164 | int StrideAPtr = isStridedPtr(PSE, APtr, InnermostLoop, Strides, true); |
| 1165 | int StrideBPtr = isStridedPtr(PSE, BPtr, InnermostLoop, Strides, true); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1166 | |
| 1167 | const SCEV *Src = AScev; |
| 1168 | const SCEV *Sink = BScev; |
| 1169 | |
| 1170 | // If the induction step is negative we have to invert source and sink of the |
| 1171 | // dependence. |
| 1172 | if (StrideAPtr < 0) { |
| 1173 | //Src = BScev; |
| 1174 | //Sink = AScev; |
| 1175 | std::swap(APtr, BPtr); |
| 1176 | std::swap(Src, Sink); |
| 1177 | std::swap(AIsWrite, BIsWrite); |
| 1178 | std::swap(AIdx, BIdx); |
| 1179 | std::swap(StrideAPtr, StrideBPtr); |
| 1180 | } |
| 1181 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1182 | const SCEV *Dist = PSE.getSE()->getMinusSCEV(Sink, Src); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1183 | |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1184 | DEBUG(dbgs() << "LAA: Src Scev: " << *Src << "Sink Scev: " << *Sink |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1185 | << "(Induction step: " << StrideAPtr << ")\n"); |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1186 | DEBUG(dbgs() << "LAA: Distance for " << *InstMap[AIdx] << " to " |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1187 | << *InstMap[BIdx] << ": " << *Dist << "\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1188 | |
Adam Nemet | 943befe | 2015-07-09 00:03:22 +0000 | [diff] [blame] | 1189 | // Need accesses with constant stride. We don't want to vectorize |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1190 | // "A[B[i]] += ..." and similar code or pointer arithmetic that could wrap in |
| 1191 | // the address space. |
| 1192 | if (!StrideAPtr || !StrideBPtr || StrideAPtr != StrideBPtr){ |
Adam Nemet | 943befe | 2015-07-09 00:03:22 +0000 | [diff] [blame] | 1193 | DEBUG(dbgs() << "Pointer access with non-constant stride\n"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1194 | return Dependence::Unknown; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1195 | } |
| 1196 | |
| 1197 | const SCEVConstant *C = dyn_cast<SCEVConstant>(Dist); |
| 1198 | if (!C) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1199 | DEBUG(dbgs() << "LAA: Dependence because of non-constant distance\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1200 | ShouldRetryWithRuntimeCheck = true; |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1201 | return Dependence::Unknown; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1202 | } |
| 1203 | |
| 1204 | Type *ATy = APtr->getType()->getPointerElementType(); |
| 1205 | Type *BTy = BPtr->getType()->getPointerElementType(); |
Mehdi Amini | a28d91d | 2015-03-10 02:37:25 +0000 | [diff] [blame] | 1206 | auto &DL = InnermostLoop->getHeader()->getModule()->getDataLayout(); |
| 1207 | unsigned TypeByteSize = DL.getTypeAllocSize(ATy); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1208 | |
| 1209 | // Negative distances are not plausible dependencies. |
Sanjoy Das | 0de2fec | 2015-12-17 20:28:46 +0000 | [diff] [blame] | 1210 | const APInt &Val = C->getAPInt(); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1211 | if (Val.isNegative()) { |
| 1212 | bool IsTrueDataDependence = (AIsWrite && !BIsWrite); |
| 1213 | if (IsTrueDataDependence && |
| 1214 | (couldPreventStoreLoadForward(Val.abs().getZExtValue(), TypeByteSize) || |
Adam Nemet | b8486e5 | 2016-03-01 00:50:08 +0000 | [diff] [blame] | 1215 | ATy != BTy)) { |
| 1216 | DEBUG(dbgs() << "LAA: Forward but may prevent st->ld forwarding\n"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1217 | return Dependence::ForwardButPreventsForwarding; |
Adam Nemet | b8486e5 | 2016-03-01 00:50:08 +0000 | [diff] [blame] | 1218 | } |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1219 | |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1220 | DEBUG(dbgs() << "LAA: Dependence is negative: NoDep\n"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1221 | return Dependence::Forward; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1222 | } |
| 1223 | |
| 1224 | // Write to the same location with the same size. |
| 1225 | // Could be improved to assert type sizes are the same (i32 == float, etc). |
| 1226 | if (Val == 0) { |
| 1227 | if (ATy == BTy) |
Adam Nemet | d7037c5 | 2015-11-03 20:13:43 +0000 | [diff] [blame] | 1228 | return Dependence::Forward; |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1229 | DEBUG(dbgs() << "LAA: Zero dependence difference but different types\n"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1230 | return Dependence::Unknown; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1231 | } |
| 1232 | |
| 1233 | assert(Val.isStrictlyPositive() && "Expect a positive value"); |
| 1234 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1235 | if (ATy != BTy) { |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1236 | DEBUG(dbgs() << |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1237 | "LAA: ReadWrite-Write positive dependency with different types\n"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1238 | return Dependence::Unknown; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1239 | } |
| 1240 | |
| 1241 | unsigned Distance = (unsigned) Val.getZExtValue(); |
| 1242 | |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1243 | unsigned Stride = std::abs(StrideAPtr); |
| 1244 | if (Stride > 1 && |
Adam Nemet | 0131a56 | 2015-07-08 18:47:38 +0000 | [diff] [blame] | 1245 | areStridedAccessesIndependent(Distance, Stride, TypeByteSize)) { |
| 1246 | DEBUG(dbgs() << "LAA: Strided accesses are independent\n"); |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1247 | return Dependence::NoDep; |
Adam Nemet | 0131a56 | 2015-07-08 18:47:38 +0000 | [diff] [blame] | 1248 | } |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1249 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1250 | // Bail out early if passed-in parameters make vectorization not feasible. |
Adam Nemet | f219c64 | 2015-02-19 19:14:52 +0000 | [diff] [blame] | 1251 | unsigned ForcedFactor = (VectorizerParams::VectorizationFactor ? |
| 1252 | VectorizerParams::VectorizationFactor : 1); |
| 1253 | unsigned ForcedUnroll = (VectorizerParams::VectorizationInterleave ? |
| 1254 | VectorizerParams::VectorizationInterleave : 1); |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1255 | // The minimum number of iterations for a vectorized/unrolled version. |
| 1256 | unsigned MinNumIter = std::max(ForcedFactor * ForcedUnroll, 2U); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1257 | |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1258 | // It's not vectorizable if the distance is smaller than the minimum distance |
| 1259 | // needed for a vectroized/unrolled version. Vectorizing one iteration in |
| 1260 | // front needs TypeByteSize * Stride. Vectorizing the last iteration needs |
| 1261 | // TypeByteSize (No need to plus the last gap distance). |
| 1262 | // |
| 1263 | // E.g. Assume one char is 1 byte in memory and one int is 4 bytes. |
| 1264 | // foo(int *A) { |
| 1265 | // int *B = (int *)((char *)A + 14); |
| 1266 | // for (i = 0 ; i < 1024 ; i += 2) |
| 1267 | // B[i] = A[i] + 1; |
| 1268 | // } |
| 1269 | // |
| 1270 | // Two accesses in memory (stride is 2): |
| 1271 | // | A[0] | | A[2] | | A[4] | | A[6] | | |
| 1272 | // | B[0] | | B[2] | | B[4] | |
| 1273 | // |
| 1274 | // Distance needs for vectorizing iterations except the last iteration: |
| 1275 | // 4 * 2 * (MinNumIter - 1). Distance needs for the last iteration: 4. |
| 1276 | // So the minimum distance needed is: 4 * 2 * (MinNumIter - 1) + 4. |
| 1277 | // |
| 1278 | // If MinNumIter is 2, it is vectorizable as the minimum distance needed is |
| 1279 | // 12, which is less than distance. |
| 1280 | // |
| 1281 | // If MinNumIter is 4 (Say if a user forces the vectorization factor to be 4), |
| 1282 | // the minimum distance needed is 28, which is greater than distance. It is |
| 1283 | // not safe to do vectorization. |
| 1284 | unsigned MinDistanceNeeded = |
| 1285 | TypeByteSize * Stride * (MinNumIter - 1) + TypeByteSize; |
| 1286 | if (MinDistanceNeeded > Distance) { |
| 1287 | DEBUG(dbgs() << "LAA: Failure because of positive distance " << Distance |
| 1288 | << '\n'); |
| 1289 | return Dependence::Backward; |
| 1290 | } |
| 1291 | |
| 1292 | // Unsafe if the minimum distance needed is greater than max safe distance. |
| 1293 | if (MinDistanceNeeded > MaxSafeDepDistBytes) { |
| 1294 | DEBUG(dbgs() << "LAA: Failure because it needs at least " |
| 1295 | << MinDistanceNeeded << " size in bytes"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1296 | return Dependence::Backward; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1297 | } |
| 1298 | |
Adam Nemet | 9cc0c39 | 2015-02-26 17:58:48 +0000 | [diff] [blame] | 1299 | // Positive distance bigger than max vectorization factor. |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1300 | // FIXME: Should use max factor instead of max distance in bytes, which could |
| 1301 | // not handle different types. |
| 1302 | // E.g. Assume one char is 1 byte in memory and one int is 4 bytes. |
| 1303 | // void foo (int *A, char *B) { |
| 1304 | // for (unsigned i = 0; i < 1024; i++) { |
| 1305 | // A[i+2] = A[i] + 1; |
| 1306 | // B[i+2] = B[i] + 1; |
| 1307 | // } |
| 1308 | // } |
| 1309 | // |
| 1310 | // This case is currently unsafe according to the max safe distance. If we |
| 1311 | // analyze the two accesses on array B, the max safe dependence distance |
| 1312 | // is 2. Then we analyze the accesses on array A, the minimum distance needed |
| 1313 | // is 8, which is less than 2 and forbidden vectorization, But actually |
| 1314 | // both A and B could be vectorized by 2 iterations. |
| 1315 | MaxSafeDepDistBytes = |
| 1316 | Distance < MaxSafeDepDistBytes ? Distance : MaxSafeDepDistBytes; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1317 | |
| 1318 | bool IsTrueDataDependence = (!AIsWrite && BIsWrite); |
| 1319 | if (IsTrueDataDependence && |
| 1320 | couldPreventStoreLoadForward(Distance, TypeByteSize)) |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1321 | return Dependence::BackwardVectorizableButPreventsForwarding; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1322 | |
Hao Liu | 751004a | 2015-06-08 04:48:37 +0000 | [diff] [blame] | 1323 | DEBUG(dbgs() << "LAA: Positive distance " << Val.getSExtValue() |
| 1324 | << " with max VF = " |
| 1325 | << MaxSafeDepDistBytes / (TypeByteSize * Stride) << '\n'); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1326 | |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1327 | return Dependence::BackwardVectorizable; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1328 | } |
| 1329 | |
Adam Nemet | dee666b | 2015-03-10 17:40:34 +0000 | [diff] [blame] | 1330 | bool MemoryDepChecker::areDepsSafe(DepCandidates &AccessSets, |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1331 | MemAccessInfoSet &CheckDeps, |
Adam Nemet | 8bc61df | 2015-02-24 00:41:59 +0000 | [diff] [blame] | 1332 | const ValueToValueMap &Strides) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1333 | |
| 1334 | MaxSafeDepDistBytes = -1U; |
| 1335 | while (!CheckDeps.empty()) { |
| 1336 | MemAccessInfo CurAccess = *CheckDeps.begin(); |
| 1337 | |
| 1338 | // Get the relevant memory access set. |
| 1339 | EquivalenceClasses<MemAccessInfo>::iterator I = |
| 1340 | AccessSets.findValue(AccessSets.getLeaderValue(CurAccess)); |
| 1341 | |
| 1342 | // Check accesses within this set. |
Richard Trieu | 7a08381 | 2016-02-18 22:09:30 +0000 | [diff] [blame] | 1343 | EquivalenceClasses<MemAccessInfo>::member_iterator AI = |
| 1344 | AccessSets.member_begin(I); |
| 1345 | EquivalenceClasses<MemAccessInfo>::member_iterator AE = |
| 1346 | AccessSets.member_end(); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1347 | |
| 1348 | // Check every access pair. |
| 1349 | while (AI != AE) { |
| 1350 | CheckDeps.erase(*AI); |
| 1351 | EquivalenceClasses<MemAccessInfo>::member_iterator OI = std::next(AI); |
| 1352 | while (OI != AE) { |
| 1353 | // Check every accessing instruction pair in program order. |
| 1354 | for (std::vector<unsigned>::iterator I1 = Accesses[*AI].begin(), |
| 1355 | I1E = Accesses[*AI].end(); I1 != I1E; ++I1) |
| 1356 | for (std::vector<unsigned>::iterator I2 = Accesses[*OI].begin(), |
| 1357 | I2E = Accesses[*OI].end(); I2 != I2E; ++I2) { |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1358 | auto A = std::make_pair(&*AI, *I1); |
| 1359 | auto B = std::make_pair(&*OI, *I2); |
| 1360 | |
| 1361 | assert(*I1 != *I2); |
| 1362 | if (*I1 > *I2) |
| 1363 | std::swap(A, B); |
| 1364 | |
| 1365 | Dependence::DepType Type = |
| 1366 | isDependent(*A.first, A.second, *B.first, B.second, Strides); |
| 1367 | SafeForVectorization &= Dependence::isSafeForVectorization(Type); |
| 1368 | |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 1369 | // Gather dependences unless we accumulated MaxDependences |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1370 | // dependences. In that case return as soon as we find the first |
| 1371 | // unsafe dependence. This puts a limit on this quadratic |
| 1372 | // algorithm. |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 1373 | if (RecordDependences) { |
| 1374 | if (Type != Dependence::NoDep) |
| 1375 | Dependences.push_back(Dependence(A.second, B.second, Type)); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1376 | |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 1377 | if (Dependences.size() >= MaxDependences) { |
| 1378 | RecordDependences = false; |
| 1379 | Dependences.clear(); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1380 | DEBUG(dbgs() << "Too many dependences, stopped recording\n"); |
| 1381 | } |
| 1382 | } |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 1383 | if (!RecordDependences && !SafeForVectorization) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1384 | return false; |
| 1385 | } |
| 1386 | ++OI; |
| 1387 | } |
| 1388 | AI++; |
| 1389 | } |
| 1390 | } |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1391 | |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 1392 | DEBUG(dbgs() << "Total Dependences: " << Dependences.size() << "\n"); |
Adam Nemet | 9c92657 | 2015-03-10 17:40:37 +0000 | [diff] [blame] | 1393 | return SafeForVectorization; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1394 | } |
| 1395 | |
Adam Nemet | ec1e2bb | 2015-03-10 18:54:26 +0000 | [diff] [blame] | 1396 | SmallVector<Instruction *, 4> |
| 1397 | MemoryDepChecker::getInstructionsForAccess(Value *Ptr, bool isWrite) const { |
| 1398 | MemAccessInfo Access(Ptr, isWrite); |
| 1399 | auto &IndexVector = Accesses.find(Access)->second; |
| 1400 | |
| 1401 | SmallVector<Instruction *, 4> Insts; |
| 1402 | std::transform(IndexVector.begin(), IndexVector.end(), |
| 1403 | std::back_inserter(Insts), |
| 1404 | [&](unsigned Idx) { return this->InstMap[Idx]; }); |
| 1405 | return Insts; |
| 1406 | } |
| 1407 | |
Adam Nemet | 58913d6 | 2015-03-10 17:40:43 +0000 | [diff] [blame] | 1408 | const char *MemoryDepChecker::Dependence::DepName[] = { |
| 1409 | "NoDep", "Unknown", "Forward", "ForwardButPreventsForwarding", "Backward", |
| 1410 | "BackwardVectorizable", "BackwardVectorizableButPreventsForwarding"}; |
| 1411 | |
| 1412 | void MemoryDepChecker::Dependence::print( |
| 1413 | raw_ostream &OS, unsigned Depth, |
| 1414 | const SmallVectorImpl<Instruction *> &Instrs) const { |
| 1415 | OS.indent(Depth) << DepName[Type] << ":\n"; |
| 1416 | OS.indent(Depth + 2) << *Instrs[Source] << " -> \n"; |
| 1417 | OS.indent(Depth + 2) << *Instrs[Destination] << "\n"; |
| 1418 | } |
| 1419 | |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1420 | bool LoopAccessInfo::canAnalyzeLoop() { |
Adam Nemet | 8dcb3b6 | 2015-04-17 22:43:10 +0000 | [diff] [blame] | 1421 | // We need to have a loop header. |
Adam Nemet | d8968f0 | 2016-01-18 21:16:33 +0000 | [diff] [blame] | 1422 | DEBUG(dbgs() << "LAA: Found a loop in " |
| 1423 | << TheLoop->getHeader()->getParent()->getName() << ": " |
| 1424 | << TheLoop->getHeader()->getName() << '\n'); |
Adam Nemet | 8dcb3b6 | 2015-04-17 22:43:10 +0000 | [diff] [blame] | 1425 | |
Adam Nemet | d8968f0 | 2016-01-18 21:16:33 +0000 | [diff] [blame] | 1426 | // We can only analyze innermost loops. |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1427 | if (!TheLoop->empty()) { |
Adam Nemet | 8dcb3b6 | 2015-04-17 22:43:10 +0000 | [diff] [blame] | 1428 | DEBUG(dbgs() << "LAA: loop is not the innermost loop\n"); |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1429 | emitAnalysis(LoopAccessReport() << "loop is not the innermost loop"); |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1430 | return false; |
| 1431 | } |
| 1432 | |
| 1433 | // We must have a single backedge. |
| 1434 | if (TheLoop->getNumBackEdges() != 1) { |
Adam Nemet | 8dcb3b6 | 2015-04-17 22:43:10 +0000 | [diff] [blame] | 1435 | DEBUG(dbgs() << "LAA: loop control flow is not understood by analyzer\n"); |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1436 | emitAnalysis( |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1437 | LoopAccessReport() << |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1438 | "loop control flow is not understood by analyzer"); |
| 1439 | return false; |
| 1440 | } |
| 1441 | |
| 1442 | // We must have a single exiting block. |
| 1443 | if (!TheLoop->getExitingBlock()) { |
Adam Nemet | 8dcb3b6 | 2015-04-17 22:43:10 +0000 | [diff] [blame] | 1444 | DEBUG(dbgs() << "LAA: loop control flow is not understood by analyzer\n"); |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1445 | emitAnalysis( |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1446 | LoopAccessReport() << |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1447 | "loop control flow is not understood by analyzer"); |
| 1448 | return false; |
| 1449 | } |
| 1450 | |
| 1451 | // We only handle bottom-tested loops, i.e. loop in which the condition is |
| 1452 | // checked at the end of each iteration. With that we can assume that all |
| 1453 | // instructions in the loop are executed the same number of times. |
| 1454 | if (TheLoop->getExitingBlock() != TheLoop->getLoopLatch()) { |
Adam Nemet | 8dcb3b6 | 2015-04-17 22:43:10 +0000 | [diff] [blame] | 1455 | DEBUG(dbgs() << "LAA: loop control flow is not understood by analyzer\n"); |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1456 | emitAnalysis( |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1457 | LoopAccessReport() << |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1458 | "loop control flow is not understood by analyzer"); |
| 1459 | return false; |
| 1460 | } |
| 1461 | |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1462 | // ScalarEvolution needs to be able to find the exit count. |
Silviu Baranga | 6f444df | 2016-04-08 14:29:09 +0000 | [diff] [blame^] | 1463 | const SCEV *ExitCount = PSE.getBackedgeTakenCount(); |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1464 | if (ExitCount == PSE.getSE()->getCouldNotCompute()) { |
| 1465 | emitAnalysis(LoopAccessReport() |
| 1466 | << "could not determine number of loop iterations"); |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1467 | DEBUG(dbgs() << "LAA: SCEV could not compute the loop exit count.\n"); |
| 1468 | return false; |
| 1469 | } |
| 1470 | |
| 1471 | return true; |
| 1472 | } |
| 1473 | |
Adam Nemet | 8bc61df | 2015-02-24 00:41:59 +0000 | [diff] [blame] | 1474 | void LoopAccessInfo::analyzeLoop(const ValueToValueMap &Strides) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1475 | |
| 1476 | typedef SmallVector<Value*, 16> ValueVector; |
| 1477 | typedef SmallPtrSet<Value*, 16> ValueSet; |
| 1478 | |
| 1479 | // Holds the Load and Store *instructions*. |
| 1480 | ValueVector Loads; |
| 1481 | ValueVector Stores; |
| 1482 | |
| 1483 | // Holds all the different accesses in the loop. |
| 1484 | unsigned NumReads = 0; |
| 1485 | unsigned NumReadWrites = 0; |
| 1486 | |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 1487 | PtrRtChecking.Pointers.clear(); |
| 1488 | PtrRtChecking.Need = false; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1489 | |
| 1490 | const bool IsAnnotatedParallel = TheLoop->isAnnotatedParallel(); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1491 | |
| 1492 | // For each block. |
| 1493 | for (Loop::block_iterator bb = TheLoop->block_begin(), |
| 1494 | be = TheLoop->block_end(); bb != be; ++bb) { |
| 1495 | |
| 1496 | // Scan the BB and collect legal loads and stores. |
| 1497 | for (BasicBlock::iterator it = (*bb)->begin(), e = (*bb)->end(); it != e; |
| 1498 | ++it) { |
| 1499 | |
| 1500 | // If this is a load, save it. If this instruction can read from memory |
| 1501 | // but is not a load, then we quit. Notice that we don't handle function |
| 1502 | // calls that read or write. |
| 1503 | if (it->mayReadFromMemory()) { |
| 1504 | // Many math library functions read the rounding mode. We will only |
| 1505 | // vectorize a loop if it contains known function calls that don't set |
| 1506 | // the flag. Therefore, it is safe to ignore this read from memory. |
| 1507 | CallInst *Call = dyn_cast<CallInst>(it); |
| 1508 | if (Call && getIntrinsicIDForCall(Call, TLI)) |
| 1509 | continue; |
| 1510 | |
Michael Zolotukhin | 9b3cf60 | 2015-03-17 19:46:50 +0000 | [diff] [blame] | 1511 | // If the function has an explicit vectorized counterpart, we can safely |
| 1512 | // assume that it can be vectorized. |
| 1513 | if (Call && !Call->isNoBuiltin() && Call->getCalledFunction() && |
| 1514 | TLI->isFunctionVectorizable(Call->getCalledFunction()->getName())) |
| 1515 | continue; |
| 1516 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1517 | LoadInst *Ld = dyn_cast<LoadInst>(it); |
| 1518 | if (!Ld || (!Ld->isSimple() && !IsAnnotatedParallel)) { |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1519 | emitAnalysis(LoopAccessReport(Ld) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1520 | << "read with atomic ordering or volatile read"); |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1521 | DEBUG(dbgs() << "LAA: Found a non-simple load.\n"); |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1522 | CanVecMem = false; |
| 1523 | return; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1524 | } |
| 1525 | NumLoads++; |
| 1526 | Loads.push_back(Ld); |
| 1527 | DepChecker.addAccess(Ld); |
| 1528 | continue; |
| 1529 | } |
| 1530 | |
| 1531 | // Save 'store' instructions. Abort if other instructions write to memory. |
| 1532 | if (it->mayWriteToMemory()) { |
| 1533 | StoreInst *St = dyn_cast<StoreInst>(it); |
| 1534 | if (!St) { |
Duncan P. N. Exon Smith | 5a82c91 | 2015-10-10 00:53:03 +0000 | [diff] [blame] | 1535 | emitAnalysis(LoopAccessReport(&*it) << |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1536 | "instruction cannot be vectorized"); |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1537 | CanVecMem = false; |
| 1538 | return; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1539 | } |
| 1540 | if (!St->isSimple() && !IsAnnotatedParallel) { |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1541 | emitAnalysis(LoopAccessReport(St) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1542 | << "write with atomic ordering or volatile write"); |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1543 | DEBUG(dbgs() << "LAA: Found a non-simple store.\n"); |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1544 | CanVecMem = false; |
| 1545 | return; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1546 | } |
| 1547 | NumStores++; |
| 1548 | Stores.push_back(St); |
| 1549 | DepChecker.addAccess(St); |
| 1550 | } |
| 1551 | } // Next instr. |
| 1552 | } // Next block. |
| 1553 | |
| 1554 | // Now we have two lists that hold the loads and the stores. |
| 1555 | // Next, we find the pointers that they use. |
| 1556 | |
| 1557 | // Check if we see any stores. If there are no stores, then we don't |
| 1558 | // care if the pointers are *restrict*. |
| 1559 | if (!Stores.size()) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1560 | DEBUG(dbgs() << "LAA: Found a read-only loop!\n"); |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1561 | CanVecMem = true; |
| 1562 | return; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1563 | } |
| 1564 | |
Adam Nemet | dee666b | 2015-03-10 17:40:34 +0000 | [diff] [blame] | 1565 | MemoryDepChecker::DepCandidates DependentAccesses; |
Mehdi Amini | a28d91d | 2015-03-10 02:37:25 +0000 | [diff] [blame] | 1566 | AccessAnalysis Accesses(TheLoop->getHeader()->getModule()->getDataLayout(), |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1567 | AA, LI, DependentAccesses, PSE); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1568 | |
| 1569 | // Holds the analyzed pointers. We don't want to call GetUnderlyingObjects |
| 1570 | // multiple times on the same object. If the ptr is accessed twice, once |
| 1571 | // for read and once for write, it will only appear once (on the write |
| 1572 | // list). This is okay, since we are going to check for conflicts between |
| 1573 | // writes and between reads and writes, but not between reads and reads. |
| 1574 | ValueSet Seen; |
| 1575 | |
| 1576 | ValueVector::iterator I, IE; |
| 1577 | for (I = Stores.begin(), IE = Stores.end(); I != IE; ++I) { |
| 1578 | StoreInst *ST = cast<StoreInst>(*I); |
| 1579 | Value* Ptr = ST->getPointerOperand(); |
Adam Nemet | ce48250 | 2015-04-08 17:48:40 +0000 | [diff] [blame] | 1580 | // Check for store to loop invariant address. |
| 1581 | StoreToLoopInvariantAddress |= isUniform(Ptr); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1582 | // If we did *not* see this pointer before, insert it to the read-write |
| 1583 | // list. At this phase it is only a 'write' list. |
| 1584 | if (Seen.insert(Ptr).second) { |
| 1585 | ++NumReadWrites; |
| 1586 | |
Chandler Carruth | ac80dc7 | 2015-06-17 07:18:54 +0000 | [diff] [blame] | 1587 | MemoryLocation Loc = MemoryLocation::get(ST); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1588 | // The TBAA metadata could have a control dependency on the predication |
| 1589 | // condition, so we cannot rely on it when determining whether or not we |
| 1590 | // need runtime pointer checks. |
Adam Nemet | 01abb2c | 2015-02-18 03:43:19 +0000 | [diff] [blame] | 1591 | if (blockNeedsPredication(ST->getParent(), TheLoop, DT)) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1592 | Loc.AATags.TBAA = nullptr; |
| 1593 | |
| 1594 | Accesses.addStore(Loc); |
| 1595 | } |
| 1596 | } |
| 1597 | |
| 1598 | if (IsAnnotatedParallel) { |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1599 | DEBUG(dbgs() |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1600 | << "LAA: A loop annotated parallel, ignore memory dependency " |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1601 | << "checks.\n"); |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1602 | CanVecMem = true; |
| 1603 | return; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1604 | } |
| 1605 | |
| 1606 | for (I = Loads.begin(), IE = Loads.end(); I != IE; ++I) { |
| 1607 | LoadInst *LD = cast<LoadInst>(*I); |
| 1608 | Value* Ptr = LD->getPointerOperand(); |
| 1609 | // If we did *not* see this pointer before, insert it to the |
| 1610 | // read list. If we *did* see it before, then it is already in |
| 1611 | // the read-write list. This allows us to vectorize expressions |
| 1612 | // such as A[i] += x; Because the address of A[i] is a read-write |
| 1613 | // pointer. This only works if the index of A[i] is consecutive. |
| 1614 | // If the address of i is unknown (for example A[B[i]]) then we may |
| 1615 | // read a few words, modify, and write a few words, and some of the |
| 1616 | // words may be written to the same address. |
| 1617 | bool IsReadOnlyPtr = false; |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1618 | if (Seen.insert(Ptr).second || !isStridedPtr(PSE, Ptr, TheLoop, Strides)) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1619 | ++NumReads; |
| 1620 | IsReadOnlyPtr = true; |
| 1621 | } |
| 1622 | |
Chandler Carruth | ac80dc7 | 2015-06-17 07:18:54 +0000 | [diff] [blame] | 1623 | MemoryLocation Loc = MemoryLocation::get(LD); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1624 | // The TBAA metadata could have a control dependency on the predication |
| 1625 | // condition, so we cannot rely on it when determining whether or not we |
| 1626 | // need runtime pointer checks. |
Adam Nemet | 01abb2c | 2015-02-18 03:43:19 +0000 | [diff] [blame] | 1627 | if (blockNeedsPredication(LD->getParent(), TheLoop, DT)) |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1628 | Loc.AATags.TBAA = nullptr; |
| 1629 | |
| 1630 | Accesses.addLoad(Loc, IsReadOnlyPtr); |
| 1631 | } |
| 1632 | |
| 1633 | // If we write (or read-write) to a single destination and there are no |
| 1634 | // other reads in this loop then is it safe to vectorize. |
| 1635 | if (NumReadWrites == 1 && NumReads == 0) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1636 | DEBUG(dbgs() << "LAA: Found a write-only loop!\n"); |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1637 | CanVecMem = true; |
| 1638 | return; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1639 | } |
| 1640 | |
| 1641 | // Build dependence sets and check whether we need a runtime pointer bounds |
| 1642 | // check. |
| 1643 | Accesses.buildDependenceSets(); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1644 | |
| 1645 | // Find pointers with computable bounds. We are going to use this information |
| 1646 | // to place a runtime bound check. |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 1647 | bool CanDoRTIfNeeded = |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1648 | Accesses.canCheckPtrAtRT(PtrRtChecking, PSE.getSE(), TheLoop, Strides); |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 1649 | if (!CanDoRTIfNeeded) { |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1650 | emitAnalysis(LoopAccessReport() << "cannot identify array bounds"); |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 1651 | DEBUG(dbgs() << "LAA: We can't vectorize because we can't find " |
| 1652 | << "the array bounds.\n"); |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1653 | CanVecMem = false; |
| 1654 | return; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1655 | } |
| 1656 | |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 1657 | DEBUG(dbgs() << "LAA: We can perform a memory runtime check if needed.\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1658 | |
Adam Nemet | 436018c | 2015-02-19 19:15:00 +0000 | [diff] [blame] | 1659 | CanVecMem = true; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1660 | if (Accesses.isDependencyCheckNeeded()) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1661 | DEBUG(dbgs() << "LAA: Checking memory dependencies\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1662 | CanVecMem = DepChecker.areDepsSafe( |
| 1663 | DependentAccesses, Accesses.getDependenciesToCheck(), Strides); |
| 1664 | MaxSafeDepDistBytes = DepChecker.getMaxSafeDepDistBytes(); |
| 1665 | |
| 1666 | if (!CanVecMem && DepChecker.shouldRetryWithRuntimeCheck()) { |
Adam Nemet | 339f42b | 2015-02-19 19:15:07 +0000 | [diff] [blame] | 1667 | DEBUG(dbgs() << "LAA: Retrying with memory checks\n"); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1668 | |
| 1669 | // Clear the dependency checks. We assume they are not needed. |
Adam Nemet | df3dc5b | 2015-05-18 15:37:03 +0000 | [diff] [blame] | 1670 | Accesses.resetDepChecks(DepChecker); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1671 | |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 1672 | PtrRtChecking.reset(); |
| 1673 | PtrRtChecking.Need = true; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1674 | |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1675 | auto *SE = PSE.getSE(); |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 1676 | CanDoRTIfNeeded = |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 1677 | Accesses.canCheckPtrAtRT(PtrRtChecking, SE, TheLoop, Strides, true); |
Silviu Baranga | 98a1371 | 2015-06-08 10:27:06 +0000 | [diff] [blame] | 1678 | |
Adam Nemet | 949e91a | 2015-03-10 19:12:41 +0000 | [diff] [blame] | 1679 | // Check that we found the bounds for the pointer. |
Adam Nemet | ee61474 | 2015-07-09 22:17:38 +0000 | [diff] [blame] | 1680 | if (!CanDoRTIfNeeded) { |
Adam Nemet | b6dc76f | 2015-03-10 18:54:19 +0000 | [diff] [blame] | 1681 | emitAnalysis(LoopAccessReport() |
| 1682 | << "cannot check memory dependencies at runtime"); |
| 1683 | DEBUG(dbgs() << "LAA: Can't vectorize with memory checks\n"); |
Adam Nemet | b6dc76f | 2015-03-10 18:54:19 +0000 | [diff] [blame] | 1684 | CanVecMem = false; |
| 1685 | return; |
| 1686 | } |
| 1687 | |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1688 | CanVecMem = true; |
| 1689 | } |
| 1690 | } |
| 1691 | |
Adam Nemet | 4bb90a7 | 2015-03-10 21:47:39 +0000 | [diff] [blame] | 1692 | if (CanVecMem) |
| 1693 | DEBUG(dbgs() << "LAA: No unsafe dependent memory operations in loop. We" |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 1694 | << (PtrRtChecking.Need ? "" : " don't") |
Adam Nemet | 0f67c6c | 2015-07-09 22:17:41 +0000 | [diff] [blame] | 1695 | << " need runtime memory checks.\n"); |
Adam Nemet | 4bb90a7 | 2015-03-10 21:47:39 +0000 | [diff] [blame] | 1696 | else { |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1697 | emitAnalysis(LoopAccessReport() << |
Adam Nemet | 04d4163 | 2015-02-19 19:14:34 +0000 | [diff] [blame] | 1698 | "unsafe dependent memory operations in loop"); |
Adam Nemet | 4bb90a7 | 2015-03-10 21:47:39 +0000 | [diff] [blame] | 1699 | DEBUG(dbgs() << "LAA: unsafe dependent memory operations in loop\n"); |
| 1700 | } |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1701 | } |
| 1702 | |
Adam Nemet | 01abb2c | 2015-02-18 03:43:19 +0000 | [diff] [blame] | 1703 | bool LoopAccessInfo::blockNeedsPredication(BasicBlock *BB, Loop *TheLoop, |
| 1704 | DominatorTree *DT) { |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1705 | assert(TheLoop->contains(BB) && "Unknown block used"); |
| 1706 | |
| 1707 | // Blocks that do not dominate the latch need predication. |
| 1708 | BasicBlock* Latch = TheLoop->getLoopLatch(); |
| 1709 | return !DT->dominates(BB, Latch); |
| 1710 | } |
| 1711 | |
Adam Nemet | 2bd6e98 | 2015-02-19 19:15:15 +0000 | [diff] [blame] | 1712 | void LoopAccessInfo::emitAnalysis(LoopAccessReport &Message) { |
Adam Nemet | c922853 | 2015-02-19 19:14:56 +0000 | [diff] [blame] | 1713 | assert(!Report && "Multiple reports generated"); |
| 1714 | Report = Message; |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1715 | } |
| 1716 | |
Adam Nemet | 57ac766 | 2015-02-19 19:15:21 +0000 | [diff] [blame] | 1717 | bool LoopAccessInfo::isUniform(Value *V) const { |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1718 | return (PSE.getSE()->isLoopInvariant(PSE.getSE()->getSCEV(V), TheLoop)); |
Adam Nemet | 0456327 | 2015-02-01 16:56:15 +0000 | [diff] [blame] | 1719 | } |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1720 | |
| 1721 | // FIXME: this function is currently a duplicate of the one in |
| 1722 | // LoopVectorize.cpp. |
| 1723 | static Instruction *getFirstInst(Instruction *FirstInst, Value *V, |
| 1724 | Instruction *Loc) { |
| 1725 | if (FirstInst) |
| 1726 | return FirstInst; |
| 1727 | if (Instruction *I = dyn_cast<Instruction>(V)) |
| 1728 | return I->getParent() == Loc->getParent() ? I : nullptr; |
| 1729 | return nullptr; |
| 1730 | } |
| 1731 | |
Benjamin Kramer | 039b104 | 2015-10-28 13:54:36 +0000 | [diff] [blame] | 1732 | namespace { |
Adam Nemet | 4e533ef | 2015-08-21 23:19:57 +0000 | [diff] [blame] | 1733 | /// \brief IR Values for the lower and upper bounds of a pointer evolution. We |
| 1734 | /// need to use value-handles because SCEV expansion can invalidate previously |
| 1735 | /// expanded values. Thus expansion of a pointer can invalidate the bounds for |
| 1736 | /// a previous one. |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1737 | struct PointerBounds { |
Adam Nemet | 4e533ef | 2015-08-21 23:19:57 +0000 | [diff] [blame] | 1738 | TrackingVH<Value> Start; |
| 1739 | TrackingVH<Value> End; |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1740 | }; |
Benjamin Kramer | 039b104 | 2015-10-28 13:54:36 +0000 | [diff] [blame] | 1741 | } // end anonymous namespace |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1742 | |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1743 | /// \brief Expand code for the lower and upper bound of the pointer group \p CG |
| 1744 | /// in \p TheLoop. \return the values for the bounds. |
| 1745 | static PointerBounds |
| 1746 | expandBounds(const RuntimePointerChecking::CheckingPtrGroup *CG, Loop *TheLoop, |
| 1747 | Instruction *Loc, SCEVExpander &Exp, ScalarEvolution *SE, |
| 1748 | const RuntimePointerChecking &PtrRtChecking) { |
| 1749 | Value *Ptr = PtrRtChecking.Pointers[CG->Members[0]].PointerValue; |
| 1750 | const SCEV *Sc = SE->getSCEV(Ptr); |
| 1751 | |
| 1752 | if (SE->isLoopInvariant(Sc, TheLoop)) { |
| 1753 | DEBUG(dbgs() << "LAA: Adding RT check for a loop invariant ptr:" << *Ptr |
| 1754 | << "\n"); |
| 1755 | return {Ptr, Ptr}; |
| 1756 | } else { |
| 1757 | unsigned AS = Ptr->getType()->getPointerAddressSpace(); |
| 1758 | LLVMContext &Ctx = Loc->getContext(); |
| 1759 | |
| 1760 | // Use this type for pointer arithmetic. |
| 1761 | Type *PtrArithTy = Type::getInt8PtrTy(Ctx, AS); |
| 1762 | Value *Start = nullptr, *End = nullptr; |
| 1763 | |
| 1764 | DEBUG(dbgs() << "LAA: Adding RT check for range:\n"); |
| 1765 | Start = Exp.expandCodeFor(CG->Low, PtrArithTy, Loc); |
| 1766 | End = Exp.expandCodeFor(CG->High, PtrArithTy, Loc); |
| 1767 | DEBUG(dbgs() << "Start: " << *CG->Low << " End: " << *CG->High << "\n"); |
| 1768 | return {Start, End}; |
| 1769 | } |
| 1770 | } |
| 1771 | |
| 1772 | /// \brief Turns a collection of checks into a collection of expanded upper and |
| 1773 | /// lower bounds for both pointers in the check. |
| 1774 | static SmallVector<std::pair<PointerBounds, PointerBounds>, 4> expandBounds( |
| 1775 | const SmallVectorImpl<RuntimePointerChecking::PointerCheck> &PointerChecks, |
| 1776 | Loop *L, Instruction *Loc, ScalarEvolution *SE, SCEVExpander &Exp, |
| 1777 | const RuntimePointerChecking &PtrRtChecking) { |
| 1778 | SmallVector<std::pair<PointerBounds, PointerBounds>, 4> ChecksWithBounds; |
| 1779 | |
| 1780 | // Here we're relying on the SCEV Expander's cache to only emit code for the |
| 1781 | // same bounds once. |
| 1782 | std::transform( |
| 1783 | PointerChecks.begin(), PointerChecks.end(), |
| 1784 | std::back_inserter(ChecksWithBounds), |
| 1785 | [&](const RuntimePointerChecking::PointerCheck &Check) { |
NAKAMURA Takumi | 94abbbd | 2015-07-27 01:35:30 +0000 | [diff] [blame] | 1786 | PointerBounds |
| 1787 | First = expandBounds(Check.first, L, Loc, Exp, SE, PtrRtChecking), |
| 1788 | Second = expandBounds(Check.second, L, Loc, Exp, SE, PtrRtChecking); |
| 1789 | return std::make_pair(First, Second); |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1790 | }); |
| 1791 | |
| 1792 | return ChecksWithBounds; |
| 1793 | } |
| 1794 | |
Adam Nemet | 5b0a479 | 2015-08-11 00:09:37 +0000 | [diff] [blame] | 1795 | std::pair<Instruction *, Instruction *> LoopAccessInfo::addRuntimeChecks( |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1796 | Instruction *Loc, |
| 1797 | const SmallVectorImpl<RuntimePointerChecking::PointerCheck> &PointerChecks) |
| 1798 | const { |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1799 | auto *SE = PSE.getSE(); |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1800 | SCEVExpander Exp(*SE, DL, "induction"); |
| 1801 | auto ExpandedChecks = |
| 1802 | expandBounds(PointerChecks, TheLoop, Loc, SE, Exp, PtrRtChecking); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1803 | |
| 1804 | LLVMContext &Ctx = Loc->getContext(); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1805 | Instruction *FirstInst = nullptr; |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1806 | IRBuilder<> ChkBuilder(Loc); |
| 1807 | // Our instructions might fold to a constant. |
| 1808 | Value *MemoryRuntimeCheck = nullptr; |
Silviu Baranga | 1b6b50a | 2015-07-08 09:16:33 +0000 | [diff] [blame] | 1809 | |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1810 | for (const auto &Check : ExpandedChecks) { |
| 1811 | const PointerBounds &A = Check.first, &B = Check.second; |
Adam Nemet | cdb791c | 2015-08-19 17:24:36 +0000 | [diff] [blame] | 1812 | // Check if two pointers (A and B) conflict where conflict is computed as: |
| 1813 | // start(A) <= end(B) && start(B) <= end(A) |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1814 | unsigned AS0 = A.Start->getType()->getPointerAddressSpace(); |
| 1815 | unsigned AS1 = B.Start->getType()->getPointerAddressSpace(); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1816 | |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1817 | assert((AS0 == B.End->getType()->getPointerAddressSpace()) && |
| 1818 | (AS1 == A.End->getType()->getPointerAddressSpace()) && |
| 1819 | "Trying to bounds check pointers with different address spaces"); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1820 | |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1821 | Type *PtrArithTy0 = Type::getInt8PtrTy(Ctx, AS0); |
| 1822 | Type *PtrArithTy1 = Type::getInt8PtrTy(Ctx, AS1); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1823 | |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1824 | Value *Start0 = ChkBuilder.CreateBitCast(A.Start, PtrArithTy0, "bc"); |
| 1825 | Value *Start1 = ChkBuilder.CreateBitCast(B.Start, PtrArithTy1, "bc"); |
| 1826 | Value *End0 = ChkBuilder.CreateBitCast(A.End, PtrArithTy1, "bc"); |
| 1827 | Value *End1 = ChkBuilder.CreateBitCast(B.End, PtrArithTy0, "bc"); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1828 | |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1829 | Value *Cmp0 = ChkBuilder.CreateICmpULE(Start0, End1, "bound0"); |
| 1830 | FirstInst = getFirstInst(FirstInst, Cmp0, Loc); |
| 1831 | Value *Cmp1 = ChkBuilder.CreateICmpULE(Start1, End0, "bound1"); |
| 1832 | FirstInst = getFirstInst(FirstInst, Cmp1, Loc); |
| 1833 | Value *IsConflict = ChkBuilder.CreateAnd(Cmp0, Cmp1, "found.conflict"); |
| 1834 | FirstInst = getFirstInst(FirstInst, IsConflict, Loc); |
| 1835 | if (MemoryRuntimeCheck) { |
| 1836 | IsConflict = |
| 1837 | ChkBuilder.CreateOr(MemoryRuntimeCheck, IsConflict, "conflict.rdx"); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1838 | FirstInst = getFirstInst(FirstInst, IsConflict, Loc); |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1839 | } |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1840 | MemoryRuntimeCheck = IsConflict; |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1841 | } |
| 1842 | |
Adam Nemet | 90fec84 | 2015-04-02 17:51:57 +0000 | [diff] [blame] | 1843 | if (!MemoryRuntimeCheck) |
| 1844 | return std::make_pair(nullptr, nullptr); |
| 1845 | |
Adam Nemet | 7206d7a | 2015-02-06 18:31:04 +0000 | [diff] [blame] | 1846 | // We have to do this trickery because the IRBuilder might fold the check to a |
| 1847 | // constant expression in which case there is no Instruction anchored in a |
| 1848 | // the block. |
| 1849 | Instruction *Check = BinaryOperator::CreateAnd(MemoryRuntimeCheck, |
| 1850 | ConstantInt::getTrue(Ctx)); |
| 1851 | ChkBuilder.Insert(Check, "memcheck.conflict"); |
| 1852 | FirstInst = getFirstInst(FirstInst, Check, Loc); |
| 1853 | return std::make_pair(FirstInst, Check); |
| 1854 | } |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1855 | |
Adam Nemet | 5b0a479 | 2015-08-11 00:09:37 +0000 | [diff] [blame] | 1856 | std::pair<Instruction *, Instruction *> |
| 1857 | LoopAccessInfo::addRuntimeChecks(Instruction *Loc) const { |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1858 | if (!PtrRtChecking.Need) |
| 1859 | return std::make_pair(nullptr, nullptr); |
| 1860 | |
Adam Nemet | 5b0a479 | 2015-08-11 00:09:37 +0000 | [diff] [blame] | 1861 | return addRuntimeChecks(Loc, PtrRtChecking.getChecks()); |
Adam Nemet | 1da7df3 | 2015-07-26 05:32:14 +0000 | [diff] [blame] | 1862 | } |
| 1863 | |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1864 | LoopAccessInfo::LoopAccessInfo(Loop *L, ScalarEvolution *SE, |
Mehdi Amini | a28d91d | 2015-03-10 02:37:25 +0000 | [diff] [blame] | 1865 | const DataLayout &DL, |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1866 | const TargetLibraryInfo *TLI, AliasAnalysis *AA, |
Adam Nemet | e2b885c | 2015-04-23 20:09:20 +0000 | [diff] [blame] | 1867 | DominatorTree *DT, LoopInfo *LI, |
Adam Nemet | 8bc61df | 2015-02-24 00:41:59 +0000 | [diff] [blame] | 1868 | const ValueToValueMap &Strides) |
Silviu Baranga | ea63a7f | 2016-02-08 17:02:45 +0000 | [diff] [blame] | 1869 | : PSE(*SE, *L), PtrRtChecking(SE), DepChecker(PSE, L), TheLoop(L), DL(DL), |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 1870 | TLI(TLI), AA(AA), DT(DT), LI(LI), NumLoads(0), NumStores(0), |
Adam Nemet | ce48250 | 2015-04-08 17:48:40 +0000 | [diff] [blame] | 1871 | MaxSafeDepDistBytes(-1U), CanVecMem(false), |
| 1872 | StoreToLoopInvariantAddress(false) { |
Adam Nemet | 929c38e | 2015-02-19 19:15:10 +0000 | [diff] [blame] | 1873 | if (canAnalyzeLoop()) |
| 1874 | analyzeLoop(Strides); |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1875 | } |
| 1876 | |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1877 | void LoopAccessInfo::print(raw_ostream &OS, unsigned Depth) const { |
| 1878 | if (CanVecMem) { |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 1879 | if (PtrRtChecking.Need) |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1880 | OS.indent(Depth) << "Memory dependences are safe with run-time checks\n"; |
Adam Nemet | 26da8e9 | 2015-04-14 01:12:55 +0000 | [diff] [blame] | 1881 | else |
| 1882 | OS.indent(Depth) << "Memory dependences are safe\n"; |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1883 | } |
| 1884 | |
| 1885 | if (Report) |
| 1886 | OS.indent(Depth) << "Report: " << Report->str() << "\n"; |
| 1887 | |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 1888 | if (auto *Dependences = DepChecker.getDependences()) { |
| 1889 | OS.indent(Depth) << "Dependences:\n"; |
| 1890 | for (auto &Dep : *Dependences) { |
Adam Nemet | 58913d6 | 2015-03-10 17:40:43 +0000 | [diff] [blame] | 1891 | Dep.print(OS, Depth + 2, DepChecker.getMemoryInstructions()); |
| 1892 | OS << "\n"; |
| 1893 | } |
| 1894 | } else |
Adam Nemet | a2df750 | 2015-11-03 21:39:52 +0000 | [diff] [blame] | 1895 | OS.indent(Depth) << "Too many dependences, not recorded\n"; |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1896 | |
| 1897 | // List the pair of accesses need run-time checks to prove independence. |
Adam Nemet | 7cdebac | 2015-07-14 22:32:44 +0000 | [diff] [blame] | 1898 | PtrRtChecking.print(OS, Depth); |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1899 | OS << "\n"; |
Adam Nemet | c338432 | 2015-05-18 15:36:57 +0000 | [diff] [blame] | 1900 | |
| 1901 | OS.indent(Depth) << "Store to invariant address was " |
| 1902 | << (StoreToLoopInvariantAddress ? "" : "not ") |
| 1903 | << "found in loop.\n"; |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 1904 | |
| 1905 | OS.indent(Depth) << "SCEV assumptions:\n"; |
Silviu Baranga | 9cd9a7e | 2015-12-09 16:06:28 +0000 | [diff] [blame] | 1906 | PSE.getUnionPredicate().print(OS, Depth); |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1907 | } |
| 1908 | |
Adam Nemet | 8bc61df | 2015-02-24 00:41:59 +0000 | [diff] [blame] | 1909 | const LoopAccessInfo & |
| 1910 | LoopAccessAnalysis::getInfo(Loop *L, const ValueToValueMap &Strides) { |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1911 | auto &LAI = LoopAccessInfoMap[L]; |
| 1912 | |
| 1913 | #ifndef NDEBUG |
| 1914 | assert((!LAI || LAI->NumSymbolicStrides == Strides.size()) && |
| 1915 | "Symbolic strides changed for loop"); |
| 1916 | #endif |
| 1917 | |
| 1918 | if (!LAI) { |
Mehdi Amini | a28d91d | 2015-03-10 02:37:25 +0000 | [diff] [blame] | 1919 | const DataLayout &DL = L->getHeader()->getModule()->getDataLayout(); |
Silviu Baranga | e3c0534 | 2015-11-02 14:41:02 +0000 | [diff] [blame] | 1920 | LAI = |
| 1921 | llvm::make_unique<LoopAccessInfo>(L, SE, DL, TLI, AA, DT, LI, Strides); |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1922 | #ifndef NDEBUG |
| 1923 | LAI->NumSymbolicStrides = Strides.size(); |
| 1924 | #endif |
| 1925 | } |
| 1926 | return *LAI.get(); |
| 1927 | } |
| 1928 | |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1929 | void LoopAccessAnalysis::print(raw_ostream &OS, const Module *M) const { |
| 1930 | LoopAccessAnalysis &LAA = *const_cast<LoopAccessAnalysis *>(this); |
| 1931 | |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1932 | ValueToValueMap NoSymbolicStrides; |
| 1933 | |
| 1934 | for (Loop *TopLevelLoop : *LI) |
| 1935 | for (Loop *L : depth_first(TopLevelLoop)) { |
| 1936 | OS.indent(2) << L->getHeader()->getName() << ":\n"; |
| 1937 | auto &LAI = LAA.getInfo(L, NoSymbolicStrides); |
| 1938 | LAI.print(OS, 4); |
| 1939 | } |
| 1940 | } |
| 1941 | |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1942 | bool LoopAccessAnalysis::runOnFunction(Function &F) { |
Chandler Carruth | 2f1fd16 | 2015-08-17 02:08:17 +0000 | [diff] [blame] | 1943 | SE = &getAnalysis<ScalarEvolutionWrapperPass>().getSE(); |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1944 | auto *TLIP = getAnalysisIfAvailable<TargetLibraryInfoWrapperPass>(); |
| 1945 | TLI = TLIP ? &TLIP->getTLI() : nullptr; |
Chandler Carruth | 7b560d4 | 2015-09-09 17:55:00 +0000 | [diff] [blame] | 1946 | AA = &getAnalysis<AAResultsWrapperPass>().getAAResults(); |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1947 | DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree(); |
Adam Nemet | e2b885c | 2015-04-23 20:09:20 +0000 | [diff] [blame] | 1948 | LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo(); |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1949 | |
| 1950 | return false; |
| 1951 | } |
| 1952 | |
| 1953 | void LoopAccessAnalysis::getAnalysisUsage(AnalysisUsage &AU) const { |
Chandler Carruth | 2f1fd16 | 2015-08-17 02:08:17 +0000 | [diff] [blame] | 1954 | AU.addRequired<ScalarEvolutionWrapperPass>(); |
Chandler Carruth | 7b560d4 | 2015-09-09 17:55:00 +0000 | [diff] [blame] | 1955 | AU.addRequired<AAResultsWrapperPass>(); |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1956 | AU.addRequired<DominatorTreeWrapperPass>(); |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1957 | AU.addRequired<LoopInfoWrapperPass>(); |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1958 | |
| 1959 | AU.setPreservesAll(); |
| 1960 | } |
| 1961 | |
| 1962 | char LoopAccessAnalysis::ID = 0; |
| 1963 | static const char laa_name[] = "Loop Access Analysis"; |
| 1964 | #define LAA_NAME "loop-accesses" |
| 1965 | |
| 1966 | INITIALIZE_PASS_BEGIN(LoopAccessAnalysis, LAA_NAME, laa_name, false, true) |
Chandler Carruth | 7b560d4 | 2015-09-09 17:55:00 +0000 | [diff] [blame] | 1967 | INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass) |
Chandler Carruth | 2f1fd16 | 2015-08-17 02:08:17 +0000 | [diff] [blame] | 1968 | INITIALIZE_PASS_DEPENDENCY(ScalarEvolutionWrapperPass) |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1969 | INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) |
Adam Nemet | e91cc6e | 2015-02-19 19:15:19 +0000 | [diff] [blame] | 1970 | INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass) |
Adam Nemet | 3bfd93d | 2015-02-19 19:15:04 +0000 | [diff] [blame] | 1971 | INITIALIZE_PASS_END(LoopAccessAnalysis, LAA_NAME, laa_name, false, true) |
| 1972 | |
| 1973 | namespace llvm { |
| 1974 | Pass *createLAAPass() { |
| 1975 | return new LoopAccessAnalysis(); |
| 1976 | } |
| 1977 | } |