1f2ec16ccSHideki Saito //===- LoopVectorizationLegality.cpp --------------------------------------===//
2f2ec16ccSHideki Saito //
32946cd70SChandler Carruth // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
42946cd70SChandler Carruth // See https://llvm.org/LICENSE.txt for license information.
52946cd70SChandler Carruth // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6f2ec16ccSHideki Saito //
7f2ec16ccSHideki Saito //===----------------------------------------------------------------------===//
8f2ec16ccSHideki Saito //
9f2ec16ccSHideki Saito // This file provides loop vectorization legality analysis. Original code
10f2ec16ccSHideki Saito // resided in LoopVectorize.cpp for a long time.
11f2ec16ccSHideki Saito //
12f2ec16ccSHideki Saito // At this point, it is implemented as a utility class, not as an analysis
13f2ec16ccSHideki Saito // pass. It should be easy to create an analysis pass around it if there
14f2ec16ccSHideki Saito // is a need (but D45420 needs to happen first).
15f2ec16ccSHideki Saito //
16ec818d7fSHideki Saito #include "llvm/Transforms/Vectorize/LoopVectorize.h"
17f2ec16ccSHideki Saito #include "llvm/Transforms/Vectorize/LoopVectorizationLegality.h"
18f2ec16ccSHideki Saito #include "llvm/Analysis/VectorUtils.h"
19f2ec16ccSHideki Saito #include "llvm/IR/IntrinsicInst.h"
20f2ec16ccSHideki Saito 
21f2ec16ccSHideki Saito using namespace llvm;
22f2ec16ccSHideki Saito 
23f2ec16ccSHideki Saito #define LV_NAME "loop-vectorize"
24f2ec16ccSHideki Saito #define DEBUG_TYPE LV_NAME
25f2ec16ccSHideki Saito 
264e4ecae0SHideki Saito extern cl::opt<bool> EnableVPlanPredication;
274e4ecae0SHideki Saito 
28f2ec16ccSHideki Saito static cl::opt<bool>
29f2ec16ccSHideki Saito     EnableIfConversion("enable-if-conversion", cl::init(true), cl::Hidden,
30f2ec16ccSHideki Saito                        cl::desc("Enable if-conversion during vectorization."));
31f2ec16ccSHideki Saito 
32f2ec16ccSHideki Saito static cl::opt<unsigned> PragmaVectorizeMemoryCheckThreshold(
33f2ec16ccSHideki Saito     "pragma-vectorize-memory-check-threshold", cl::init(128), cl::Hidden,
34f2ec16ccSHideki Saito     cl::desc("The maximum allowed number of runtime memory checks with a "
35f2ec16ccSHideki Saito              "vectorize(enable) pragma."));
36f2ec16ccSHideki Saito 
37f2ec16ccSHideki Saito static cl::opt<unsigned> VectorizeSCEVCheckThreshold(
38f2ec16ccSHideki Saito     "vectorize-scev-check-threshold", cl::init(16), cl::Hidden,
39f2ec16ccSHideki Saito     cl::desc("The maximum number of SCEV checks allowed."));
40f2ec16ccSHideki Saito 
41f2ec16ccSHideki Saito static cl::opt<unsigned> PragmaVectorizeSCEVCheckThreshold(
42f2ec16ccSHideki Saito     "pragma-vectorize-scev-check-threshold", cl::init(128), cl::Hidden,
43f2ec16ccSHideki Saito     cl::desc("The maximum number of SCEV checks allowed with a "
44f2ec16ccSHideki Saito              "vectorize(enable) pragma"));
45f2ec16ccSHideki Saito 
46f2ec16ccSHideki Saito /// Maximum vectorization interleave count.
47f2ec16ccSHideki Saito static const unsigned MaxInterleaveFactor = 16;
48f2ec16ccSHideki Saito 
49f2ec16ccSHideki Saito namespace llvm {
50f2ec16ccSHideki Saito 
51f2ec16ccSHideki Saito bool LoopVectorizeHints::Hint::validate(unsigned Val) {
52f2ec16ccSHideki Saito   switch (Kind) {
53f2ec16ccSHideki Saito   case HK_WIDTH:
54f2ec16ccSHideki Saito     return isPowerOf2_32(Val) && Val <= VectorizerParams::MaxVectorWidth;
55f2ec16ccSHideki Saito   case HK_UNROLL:
56f2ec16ccSHideki Saito     return isPowerOf2_32(Val) && Val <= MaxInterleaveFactor;
57f2ec16ccSHideki Saito   case HK_FORCE:
58f2ec16ccSHideki Saito     return (Val <= 1);
59f2ec16ccSHideki Saito   case HK_ISVECTORIZED:
6020b198ecSSjoerd Meijer   case HK_PREDICATE:
61f2ec16ccSHideki Saito     return (Val == 0 || Val == 1);
62f2ec16ccSHideki Saito   }
63f2ec16ccSHideki Saito   return false;
64f2ec16ccSHideki Saito }
65f2ec16ccSHideki Saito 
66d4eb13c8SMichael Kruse LoopVectorizeHints::LoopVectorizeHints(const Loop *L,
67d4eb13c8SMichael Kruse                                        bool InterleaveOnlyWhenForced,
68f2ec16ccSHideki Saito                                        OptimizationRemarkEmitter &ORE)
69f2ec16ccSHideki Saito     : Width("vectorize.width", VectorizerParams::VectorizationFactor, HK_WIDTH),
70d4eb13c8SMichael Kruse       Interleave("interleave.count", InterleaveOnlyWhenForced, HK_UNROLL),
71f2ec16ccSHideki Saito       Force("vectorize.enable", FK_Undefined, HK_FORCE),
7220b198ecSSjoerd Meijer       IsVectorized("isvectorized", 0, HK_ISVECTORIZED),
7320b198ecSSjoerd Meijer       Predicate("vectorize.predicate.enable", 0, HK_PREDICATE), TheLoop(L),
7420b198ecSSjoerd Meijer       ORE(ORE) {
75f2ec16ccSHideki Saito   // Populate values with existing loop metadata.
76f2ec16ccSHideki Saito   getHintsFromMetadata();
77f2ec16ccSHideki Saito 
78f2ec16ccSHideki Saito   // force-vector-interleave overrides DisableInterleaving.
79f2ec16ccSHideki Saito   if (VectorizerParams::isInterleaveForced())
80f2ec16ccSHideki Saito     Interleave.Value = VectorizerParams::VectorizationInterleave;
81f2ec16ccSHideki Saito 
82f2ec16ccSHideki Saito   if (IsVectorized.Value != 1)
83f2ec16ccSHideki Saito     // If the vectorization width and interleaving count are both 1 then
84f2ec16ccSHideki Saito     // consider the loop to have been already vectorized because there's
85f2ec16ccSHideki Saito     // nothing more that we can do.
86f2ec16ccSHideki Saito     IsVectorized.Value = Width.Value == 1 && Interleave.Value == 1;
87d4eb13c8SMichael Kruse   LLVM_DEBUG(if (InterleaveOnlyWhenForced && Interleave.Value == 1) dbgs()
88f2ec16ccSHideki Saito              << "LV: Interleaving disabled by the pass manager\n");
89f2ec16ccSHideki Saito }
90f2ec16ccSHideki Saito 
9177a614a6SMichael Kruse void LoopVectorizeHints::setAlreadyVectorized() {
9277a614a6SMichael Kruse   LLVMContext &Context = TheLoop->getHeader()->getContext();
9377a614a6SMichael Kruse 
9477a614a6SMichael Kruse   MDNode *IsVectorizedMD = MDNode::get(
9577a614a6SMichael Kruse       Context,
9677a614a6SMichael Kruse       {MDString::get(Context, "llvm.loop.isvectorized"),
9777a614a6SMichael Kruse        ConstantAsMetadata::get(ConstantInt::get(Context, APInt(32, 1)))});
9877a614a6SMichael Kruse   MDNode *LoopID = TheLoop->getLoopID();
9977a614a6SMichael Kruse   MDNode *NewLoopID =
10077a614a6SMichael Kruse       makePostTransformationMetadata(Context, LoopID,
10177a614a6SMichael Kruse                                      {Twine(Prefix(), "vectorize.").str(),
10277a614a6SMichael Kruse                                       Twine(Prefix(), "interleave.").str()},
10377a614a6SMichael Kruse                                      {IsVectorizedMD});
10477a614a6SMichael Kruse   TheLoop->setLoopID(NewLoopID);
10577a614a6SMichael Kruse 
10677a614a6SMichael Kruse   // Update internal cache.
10777a614a6SMichael Kruse   IsVectorized.Value = 1;
10877a614a6SMichael Kruse }
10977a614a6SMichael Kruse 
110d4eb13c8SMichael Kruse bool LoopVectorizeHints::allowVectorization(
111d4eb13c8SMichael Kruse     Function *F, Loop *L, bool VectorizeOnlyWhenForced) const {
112f2ec16ccSHideki Saito   if (getForce() == LoopVectorizeHints::FK_Disabled) {
113d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Not vectorizing: #pragma vectorize disable.\n");
114f2ec16ccSHideki Saito     emitRemarkWithHints();
115f2ec16ccSHideki Saito     return false;
116f2ec16ccSHideki Saito   }
117f2ec16ccSHideki Saito 
118d4eb13c8SMichael Kruse   if (VectorizeOnlyWhenForced && getForce() != LoopVectorizeHints::FK_Enabled) {
119d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Not vectorizing: No #pragma vectorize enable.\n");
120f2ec16ccSHideki Saito     emitRemarkWithHints();
121f2ec16ccSHideki Saito     return false;
122f2ec16ccSHideki Saito   }
123f2ec16ccSHideki Saito 
124f2ec16ccSHideki Saito   if (getIsVectorized() == 1) {
125d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Not vectorizing: Disabled/already vectorized.\n");
126f2ec16ccSHideki Saito     // FIXME: Add interleave.disable metadata. This will allow
127f2ec16ccSHideki Saito     // vectorize.disable to be used without disabling the pass and errors
128f2ec16ccSHideki Saito     // to differentiate between disabled vectorization and a width of 1.
129f2ec16ccSHideki Saito     ORE.emit([&]() {
130f2ec16ccSHideki Saito       return OptimizationRemarkAnalysis(vectorizeAnalysisPassName(),
131f2ec16ccSHideki Saito                                         "AllDisabled", L->getStartLoc(),
132f2ec16ccSHideki Saito                                         L->getHeader())
133f2ec16ccSHideki Saito              << "loop not vectorized: vectorization and interleaving are "
134f2ec16ccSHideki Saito                 "explicitly disabled, or the loop has already been "
135f2ec16ccSHideki Saito                 "vectorized";
136f2ec16ccSHideki Saito     });
137f2ec16ccSHideki Saito     return false;
138f2ec16ccSHideki Saito   }
139f2ec16ccSHideki Saito 
140f2ec16ccSHideki Saito   return true;
141f2ec16ccSHideki Saito }
142f2ec16ccSHideki Saito 
143f2ec16ccSHideki Saito void LoopVectorizeHints::emitRemarkWithHints() const {
144f2ec16ccSHideki Saito   using namespace ore;
145f2ec16ccSHideki Saito 
146f2ec16ccSHideki Saito   ORE.emit([&]() {
147f2ec16ccSHideki Saito     if (Force.Value == LoopVectorizeHints::FK_Disabled)
148f2ec16ccSHideki Saito       return OptimizationRemarkMissed(LV_NAME, "MissedExplicitlyDisabled",
149f2ec16ccSHideki Saito                                       TheLoop->getStartLoc(),
150f2ec16ccSHideki Saito                                       TheLoop->getHeader())
151f2ec16ccSHideki Saito              << "loop not vectorized: vectorization is explicitly disabled";
152f2ec16ccSHideki Saito     else {
153f2ec16ccSHideki Saito       OptimizationRemarkMissed R(LV_NAME, "MissedDetails",
154f2ec16ccSHideki Saito                                  TheLoop->getStartLoc(), TheLoop->getHeader());
155f2ec16ccSHideki Saito       R << "loop not vectorized";
156f2ec16ccSHideki Saito       if (Force.Value == LoopVectorizeHints::FK_Enabled) {
157f2ec16ccSHideki Saito         R << " (Force=" << NV("Force", true);
158f2ec16ccSHideki Saito         if (Width.Value != 0)
159f2ec16ccSHideki Saito           R << ", Vector Width=" << NV("VectorWidth", Width.Value);
160f2ec16ccSHideki Saito         if (Interleave.Value != 0)
161f2ec16ccSHideki Saito           R << ", Interleave Count=" << NV("InterleaveCount", Interleave.Value);
162f2ec16ccSHideki Saito         R << ")";
163f2ec16ccSHideki Saito       }
164f2ec16ccSHideki Saito       return R;
165f2ec16ccSHideki Saito     }
166f2ec16ccSHideki Saito   });
167f2ec16ccSHideki Saito }
168f2ec16ccSHideki Saito 
169f2ec16ccSHideki Saito const char *LoopVectorizeHints::vectorizeAnalysisPassName() const {
170f2ec16ccSHideki Saito   if (getWidth() == 1)
171f2ec16ccSHideki Saito     return LV_NAME;
172f2ec16ccSHideki Saito   if (getForce() == LoopVectorizeHints::FK_Disabled)
173f2ec16ccSHideki Saito     return LV_NAME;
174f2ec16ccSHideki Saito   if (getForce() == LoopVectorizeHints::FK_Undefined && getWidth() == 0)
175f2ec16ccSHideki Saito     return LV_NAME;
176f2ec16ccSHideki Saito   return OptimizationRemarkAnalysis::AlwaysPrint;
177f2ec16ccSHideki Saito }
178f2ec16ccSHideki Saito 
179f2ec16ccSHideki Saito void LoopVectorizeHints::getHintsFromMetadata() {
180f2ec16ccSHideki Saito   MDNode *LoopID = TheLoop->getLoopID();
181f2ec16ccSHideki Saito   if (!LoopID)
182f2ec16ccSHideki Saito     return;
183f2ec16ccSHideki Saito 
184f2ec16ccSHideki Saito   // First operand should refer to the loop id itself.
185f2ec16ccSHideki Saito   assert(LoopID->getNumOperands() > 0 && "requires at least one operand");
186f2ec16ccSHideki Saito   assert(LoopID->getOperand(0) == LoopID && "invalid loop id");
187f2ec16ccSHideki Saito 
188f2ec16ccSHideki Saito   for (unsigned i = 1, ie = LoopID->getNumOperands(); i < ie; ++i) {
189f2ec16ccSHideki Saito     const MDString *S = nullptr;
190f2ec16ccSHideki Saito     SmallVector<Metadata *, 4> Args;
191f2ec16ccSHideki Saito 
192f2ec16ccSHideki Saito     // The expected hint is either a MDString or a MDNode with the first
193f2ec16ccSHideki Saito     // operand a MDString.
194f2ec16ccSHideki Saito     if (const MDNode *MD = dyn_cast<MDNode>(LoopID->getOperand(i))) {
195f2ec16ccSHideki Saito       if (!MD || MD->getNumOperands() == 0)
196f2ec16ccSHideki Saito         continue;
197f2ec16ccSHideki Saito       S = dyn_cast<MDString>(MD->getOperand(0));
198f2ec16ccSHideki Saito       for (unsigned i = 1, ie = MD->getNumOperands(); i < ie; ++i)
199f2ec16ccSHideki Saito         Args.push_back(MD->getOperand(i));
200f2ec16ccSHideki Saito     } else {
201f2ec16ccSHideki Saito       S = dyn_cast<MDString>(LoopID->getOperand(i));
202f2ec16ccSHideki Saito       assert(Args.size() == 0 && "too many arguments for MDString");
203f2ec16ccSHideki Saito     }
204f2ec16ccSHideki Saito 
205f2ec16ccSHideki Saito     if (!S)
206f2ec16ccSHideki Saito       continue;
207f2ec16ccSHideki Saito 
208f2ec16ccSHideki Saito     // Check if the hint starts with the loop metadata prefix.
209f2ec16ccSHideki Saito     StringRef Name = S->getString();
210f2ec16ccSHideki Saito     if (Args.size() == 1)
211f2ec16ccSHideki Saito       setHint(Name, Args[0]);
212f2ec16ccSHideki Saito   }
213f2ec16ccSHideki Saito }
214f2ec16ccSHideki Saito 
215f2ec16ccSHideki Saito void LoopVectorizeHints::setHint(StringRef Name, Metadata *Arg) {
216f2ec16ccSHideki Saito   if (!Name.startswith(Prefix()))
217f2ec16ccSHideki Saito     return;
218f2ec16ccSHideki Saito   Name = Name.substr(Prefix().size(), StringRef::npos);
219f2ec16ccSHideki Saito 
220f2ec16ccSHideki Saito   const ConstantInt *C = mdconst::dyn_extract<ConstantInt>(Arg);
221f2ec16ccSHideki Saito   if (!C)
222f2ec16ccSHideki Saito     return;
223f2ec16ccSHideki Saito   unsigned Val = C->getZExtValue();
224f2ec16ccSHideki Saito 
22520b198ecSSjoerd Meijer   Hint *Hints[] = {&Width, &Interleave, &Force, &IsVectorized, &Predicate};
226f2ec16ccSHideki Saito   for (auto H : Hints) {
227f2ec16ccSHideki Saito     if (Name == H->Name) {
228f2ec16ccSHideki Saito       if (H->validate(Val))
229f2ec16ccSHideki Saito         H->Value = Val;
230f2ec16ccSHideki Saito       else
231d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: ignoring invalid hint '" << Name << "'\n");
232f2ec16ccSHideki Saito       break;
233f2ec16ccSHideki Saito     }
234f2ec16ccSHideki Saito   }
235f2ec16ccSHideki Saito }
236f2ec16ccSHideki Saito 
237f2ec16ccSHideki Saito bool LoopVectorizationRequirements::doesNotMeet(
238f2ec16ccSHideki Saito     Function *F, Loop *L, const LoopVectorizeHints &Hints) {
239f2ec16ccSHideki Saito   const char *PassName = Hints.vectorizeAnalysisPassName();
240f2ec16ccSHideki Saito   bool Failed = false;
241f2ec16ccSHideki Saito   if (UnsafeAlgebraInst && !Hints.allowReordering()) {
242f2ec16ccSHideki Saito     ORE.emit([&]() {
243f2ec16ccSHideki Saito       return OptimizationRemarkAnalysisFPCommute(
244f2ec16ccSHideki Saito                  PassName, "CantReorderFPOps", UnsafeAlgebraInst->getDebugLoc(),
245f2ec16ccSHideki Saito                  UnsafeAlgebraInst->getParent())
246f2ec16ccSHideki Saito              << "loop not vectorized: cannot prove it is safe to reorder "
247f2ec16ccSHideki Saito                 "floating-point operations";
248f2ec16ccSHideki Saito     });
249f2ec16ccSHideki Saito     Failed = true;
250f2ec16ccSHideki Saito   }
251f2ec16ccSHideki Saito 
252f2ec16ccSHideki Saito   // Test if runtime memcheck thresholds are exceeded.
253f2ec16ccSHideki Saito   bool PragmaThresholdReached =
254f2ec16ccSHideki Saito       NumRuntimePointerChecks > PragmaVectorizeMemoryCheckThreshold;
255f2ec16ccSHideki Saito   bool ThresholdReached =
256f2ec16ccSHideki Saito       NumRuntimePointerChecks > VectorizerParams::RuntimeMemoryCheckThreshold;
257f2ec16ccSHideki Saito   if ((ThresholdReached && !Hints.allowReordering()) ||
258f2ec16ccSHideki Saito       PragmaThresholdReached) {
259f2ec16ccSHideki Saito     ORE.emit([&]() {
260f2ec16ccSHideki Saito       return OptimizationRemarkAnalysisAliasing(PassName, "CantReorderMemOps",
261f2ec16ccSHideki Saito                                                 L->getStartLoc(),
262f2ec16ccSHideki Saito                                                 L->getHeader())
263f2ec16ccSHideki Saito              << "loop not vectorized: cannot prove it is safe to reorder "
264f2ec16ccSHideki Saito                 "memory operations";
265f2ec16ccSHideki Saito     });
266d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Too many memory checks needed.\n");
267f2ec16ccSHideki Saito     Failed = true;
268f2ec16ccSHideki Saito   }
269f2ec16ccSHideki Saito 
270f2ec16ccSHideki Saito   return Failed;
271f2ec16ccSHideki Saito }
272f2ec16ccSHideki Saito 
273f2ec16ccSHideki Saito // Return true if the inner loop \p Lp is uniform with regard to the outer loop
274f2ec16ccSHideki Saito // \p OuterLp (i.e., if the outer loop is vectorized, all the vector lanes
275f2ec16ccSHideki Saito // executing the inner loop will execute the same iterations). This check is
276f2ec16ccSHideki Saito // very constrained for now but it will be relaxed in the future. \p Lp is
277f2ec16ccSHideki Saito // considered uniform if it meets all the following conditions:
278f2ec16ccSHideki Saito //   1) it has a canonical IV (starting from 0 and with stride 1),
279f2ec16ccSHideki Saito //   2) its latch terminator is a conditional branch and,
280f2ec16ccSHideki Saito //   3) its latch condition is a compare instruction whose operands are the
281f2ec16ccSHideki Saito //      canonical IV and an OuterLp invariant.
282f2ec16ccSHideki Saito // This check doesn't take into account the uniformity of other conditions not
283f2ec16ccSHideki Saito // related to the loop latch because they don't affect the loop uniformity.
284f2ec16ccSHideki Saito //
285f2ec16ccSHideki Saito // NOTE: We decided to keep all these checks and its associated documentation
286f2ec16ccSHideki Saito // together so that we can easily have a picture of the current supported loop
287f2ec16ccSHideki Saito // nests. However, some of the current checks don't depend on \p OuterLp and
288f2ec16ccSHideki Saito // would be redundantly executed for each \p Lp if we invoked this function for
289f2ec16ccSHideki Saito // different candidate outer loops. This is not the case for now because we
290f2ec16ccSHideki Saito // don't currently have the infrastructure to evaluate multiple candidate outer
291f2ec16ccSHideki Saito // loops and \p OuterLp will be a fixed parameter while we only support explicit
292f2ec16ccSHideki Saito // outer loop vectorization. It's also very likely that these checks go away
293f2ec16ccSHideki Saito // before introducing the aforementioned infrastructure. However, if this is not
294f2ec16ccSHideki Saito // the case, we should move the \p OuterLp independent checks to a separate
295f2ec16ccSHideki Saito // function that is only executed once for each \p Lp.
296f2ec16ccSHideki Saito static bool isUniformLoop(Loop *Lp, Loop *OuterLp) {
297f2ec16ccSHideki Saito   assert(Lp->getLoopLatch() && "Expected loop with a single latch.");
298f2ec16ccSHideki Saito 
299f2ec16ccSHideki Saito   // If Lp is the outer loop, it's uniform by definition.
300f2ec16ccSHideki Saito   if (Lp == OuterLp)
301f2ec16ccSHideki Saito     return true;
302f2ec16ccSHideki Saito   assert(OuterLp->contains(Lp) && "OuterLp must contain Lp.");
303f2ec16ccSHideki Saito 
304f2ec16ccSHideki Saito   // 1.
305f2ec16ccSHideki Saito   PHINode *IV = Lp->getCanonicalInductionVariable();
306f2ec16ccSHideki Saito   if (!IV) {
307d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Canonical IV not found.\n");
308f2ec16ccSHideki Saito     return false;
309f2ec16ccSHideki Saito   }
310f2ec16ccSHideki Saito 
311f2ec16ccSHideki Saito   // 2.
312f2ec16ccSHideki Saito   BasicBlock *Latch = Lp->getLoopLatch();
313f2ec16ccSHideki Saito   auto *LatchBr = dyn_cast<BranchInst>(Latch->getTerminator());
314f2ec16ccSHideki Saito   if (!LatchBr || LatchBr->isUnconditional()) {
315d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Unsupported loop latch branch.\n");
316f2ec16ccSHideki Saito     return false;
317f2ec16ccSHideki Saito   }
318f2ec16ccSHideki Saito 
319f2ec16ccSHideki Saito   // 3.
320f2ec16ccSHideki Saito   auto *LatchCmp = dyn_cast<CmpInst>(LatchBr->getCondition());
321f2ec16ccSHideki Saito   if (!LatchCmp) {
322d34e60caSNicola Zaghen     LLVM_DEBUG(
323d34e60caSNicola Zaghen         dbgs() << "LV: Loop latch condition is not a compare instruction.\n");
324f2ec16ccSHideki Saito     return false;
325f2ec16ccSHideki Saito   }
326f2ec16ccSHideki Saito 
327f2ec16ccSHideki Saito   Value *CondOp0 = LatchCmp->getOperand(0);
328f2ec16ccSHideki Saito   Value *CondOp1 = LatchCmp->getOperand(1);
329f2ec16ccSHideki Saito   Value *IVUpdate = IV->getIncomingValueForBlock(Latch);
330f2ec16ccSHideki Saito   if (!(CondOp0 == IVUpdate && OuterLp->isLoopInvariant(CondOp1)) &&
331f2ec16ccSHideki Saito       !(CondOp1 == IVUpdate && OuterLp->isLoopInvariant(CondOp0))) {
332d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Loop latch condition is not uniform.\n");
333f2ec16ccSHideki Saito     return false;
334f2ec16ccSHideki Saito   }
335f2ec16ccSHideki Saito 
336f2ec16ccSHideki Saito   return true;
337f2ec16ccSHideki Saito }
338f2ec16ccSHideki Saito 
339f2ec16ccSHideki Saito // Return true if \p Lp and all its nested loops are uniform with regard to \p
340f2ec16ccSHideki Saito // OuterLp.
341f2ec16ccSHideki Saito static bool isUniformLoopNest(Loop *Lp, Loop *OuterLp) {
342f2ec16ccSHideki Saito   if (!isUniformLoop(Lp, OuterLp))
343f2ec16ccSHideki Saito     return false;
344f2ec16ccSHideki Saito 
345f2ec16ccSHideki Saito   // Check if nested loops are uniform.
346f2ec16ccSHideki Saito   for (Loop *SubLp : *Lp)
347f2ec16ccSHideki Saito     if (!isUniformLoopNest(SubLp, OuterLp))
348f2ec16ccSHideki Saito       return false;
349f2ec16ccSHideki Saito 
350f2ec16ccSHideki Saito   return true;
351f2ec16ccSHideki Saito }
352f2ec16ccSHideki Saito 
3535f8f34e4SAdrian Prantl /// Check whether it is safe to if-convert this phi node.
354f2ec16ccSHideki Saito ///
355f2ec16ccSHideki Saito /// Phi nodes with constant expressions that can trap are not safe to if
356f2ec16ccSHideki Saito /// convert.
357f2ec16ccSHideki Saito static bool canIfConvertPHINodes(BasicBlock *BB) {
358f2ec16ccSHideki Saito   for (PHINode &Phi : BB->phis()) {
359f2ec16ccSHideki Saito     for (Value *V : Phi.incoming_values())
360f2ec16ccSHideki Saito       if (auto *C = dyn_cast<Constant>(V))
361f2ec16ccSHideki Saito         if (C->canTrap())
362f2ec16ccSHideki Saito           return false;
363f2ec16ccSHideki Saito   }
364f2ec16ccSHideki Saito   return true;
365f2ec16ccSHideki Saito }
366f2ec16ccSHideki Saito 
367f2ec16ccSHideki Saito static Type *convertPointerToIntegerType(const DataLayout &DL, Type *Ty) {
368f2ec16ccSHideki Saito   if (Ty->isPointerTy())
369f2ec16ccSHideki Saito     return DL.getIntPtrType(Ty);
370f2ec16ccSHideki Saito 
371f2ec16ccSHideki Saito   // It is possible that char's or short's overflow when we ask for the loop's
372f2ec16ccSHideki Saito   // trip count, work around this by changing the type size.
373f2ec16ccSHideki Saito   if (Ty->getScalarSizeInBits() < 32)
374f2ec16ccSHideki Saito     return Type::getInt32Ty(Ty->getContext());
375f2ec16ccSHideki Saito 
376f2ec16ccSHideki Saito   return Ty;
377f2ec16ccSHideki Saito }
378f2ec16ccSHideki Saito 
379f2ec16ccSHideki Saito static Type *getWiderType(const DataLayout &DL, Type *Ty0, Type *Ty1) {
380f2ec16ccSHideki Saito   Ty0 = convertPointerToIntegerType(DL, Ty0);
381f2ec16ccSHideki Saito   Ty1 = convertPointerToIntegerType(DL, Ty1);
382f2ec16ccSHideki Saito   if (Ty0->getScalarSizeInBits() > Ty1->getScalarSizeInBits())
383f2ec16ccSHideki Saito     return Ty0;
384f2ec16ccSHideki Saito   return Ty1;
385f2ec16ccSHideki Saito }
386f2ec16ccSHideki Saito 
3875f8f34e4SAdrian Prantl /// Check that the instruction has outside loop users and is not an
388f2ec16ccSHideki Saito /// identified reduction variable.
389f2ec16ccSHideki Saito static bool hasOutsideLoopUser(const Loop *TheLoop, Instruction *Inst,
390f2ec16ccSHideki Saito                                SmallPtrSetImpl<Value *> &AllowedExit) {
39160a1e4ddSAnna Thomas   // Reductions, Inductions and non-header phis are allowed to have exit users. All
392f2ec16ccSHideki Saito   // other instructions must not have external users.
393f2ec16ccSHideki Saito   if (!AllowedExit.count(Inst))
394f2ec16ccSHideki Saito     // Check that all of the users of the loop are inside the BB.
395f2ec16ccSHideki Saito     for (User *U : Inst->users()) {
396f2ec16ccSHideki Saito       Instruction *UI = cast<Instruction>(U);
397f2ec16ccSHideki Saito       // This user may be a reduction exit value.
398f2ec16ccSHideki Saito       if (!TheLoop->contains(UI)) {
399d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: Found an outside user for : " << *UI << '\n');
400f2ec16ccSHideki Saito         return true;
401f2ec16ccSHideki Saito       }
402f2ec16ccSHideki Saito     }
403f2ec16ccSHideki Saito   return false;
404f2ec16ccSHideki Saito }
405f2ec16ccSHideki Saito 
406f2ec16ccSHideki Saito int LoopVectorizationLegality::isConsecutivePtr(Value *Ptr) {
407f2ec16ccSHideki Saito   const ValueToValueMap &Strides =
408f2ec16ccSHideki Saito       getSymbolicStrides() ? *getSymbolicStrides() : ValueToValueMap();
409f2ec16ccSHideki Saito 
410f2ec16ccSHideki Saito   int Stride = getPtrStride(PSE, Ptr, TheLoop, Strides, true, false);
411f2ec16ccSHideki Saito   if (Stride == 1 || Stride == -1)
412f2ec16ccSHideki Saito     return Stride;
413f2ec16ccSHideki Saito   return 0;
414f2ec16ccSHideki Saito }
415f2ec16ccSHideki Saito 
416f2ec16ccSHideki Saito bool LoopVectorizationLegality::isUniform(Value *V) {
417f2ec16ccSHideki Saito   return LAI->isUniform(V);
418f2ec16ccSHideki Saito }
419f2ec16ccSHideki Saito 
420f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeOuterLoop() {
421f2ec16ccSHideki Saito   assert(!TheLoop->empty() && "We are not vectorizing an outer loop.");
422f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
423f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
424f2ec16ccSHideki Saito   bool Result = true;
425f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
426f2ec16ccSHideki Saito 
427f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
428f2ec16ccSHideki Saito     // Check whether the BB terminator is a BranchInst. Any other terminator is
429f2ec16ccSHideki Saito     // not supported yet.
430f2ec16ccSHideki Saito     auto *Br = dyn_cast<BranchInst>(BB->getTerminator());
431f2ec16ccSHideki Saito     if (!Br) {
4329e97caf5SRenato Golin       reportVectorizationFailure("Unsupported basic block terminator",
4339e97caf5SRenato Golin           "loop control flow is not understood by vectorizer",
434ec818d7fSHideki Saito           "CFGNotUnderstood", ORE, TheLoop);
435f2ec16ccSHideki Saito       if (DoExtraAnalysis)
436f2ec16ccSHideki Saito         Result = false;
437f2ec16ccSHideki Saito       else
438f2ec16ccSHideki Saito         return false;
439f2ec16ccSHideki Saito     }
440f2ec16ccSHideki Saito 
441f2ec16ccSHideki Saito     // Check whether the BranchInst is a supported one. Only unconditional
442f2ec16ccSHideki Saito     // branches, conditional branches with an outer loop invariant condition or
443f2ec16ccSHideki Saito     // backedges are supported.
4444e4ecae0SHideki Saito     // FIXME: We skip these checks when VPlan predication is enabled as we
4454e4ecae0SHideki Saito     // want to allow divergent branches. This whole check will be removed
4464e4ecae0SHideki Saito     // once VPlan predication is on by default.
4474e4ecae0SHideki Saito     if (!EnableVPlanPredication && Br && Br->isConditional() &&
448f2ec16ccSHideki Saito         !TheLoop->isLoopInvariant(Br->getCondition()) &&
449f2ec16ccSHideki Saito         !LI->isLoopHeader(Br->getSuccessor(0)) &&
450f2ec16ccSHideki Saito         !LI->isLoopHeader(Br->getSuccessor(1))) {
4519e97caf5SRenato Golin       reportVectorizationFailure("Unsupported conditional branch",
4529e97caf5SRenato Golin           "loop control flow is not understood by vectorizer",
453ec818d7fSHideki Saito           "CFGNotUnderstood", ORE, TheLoop);
454f2ec16ccSHideki Saito       if (DoExtraAnalysis)
455f2ec16ccSHideki Saito         Result = false;
456f2ec16ccSHideki Saito       else
457f2ec16ccSHideki Saito         return false;
458f2ec16ccSHideki Saito     }
459f2ec16ccSHideki Saito   }
460f2ec16ccSHideki Saito 
461f2ec16ccSHideki Saito   // Check whether inner loops are uniform. At this point, we only support
462f2ec16ccSHideki Saito   // simple outer loops scenarios with uniform nested loops.
463f2ec16ccSHideki Saito   if (!isUniformLoopNest(TheLoop /*loop nest*/,
464f2ec16ccSHideki Saito                          TheLoop /*context outer loop*/)) {
4659e97caf5SRenato Golin     reportVectorizationFailure("Outer loop contains divergent loops",
4669e97caf5SRenato Golin         "loop control flow is not understood by vectorizer",
467ec818d7fSHideki Saito         "CFGNotUnderstood", ORE, TheLoop);
468f2ec16ccSHideki Saito     if (DoExtraAnalysis)
469f2ec16ccSHideki Saito       Result = false;
470f2ec16ccSHideki Saito     else
471f2ec16ccSHideki Saito       return false;
472f2ec16ccSHideki Saito   }
473f2ec16ccSHideki Saito 
474ea7f3035SHideki Saito   // Check whether we are able to set up outer loop induction.
475ea7f3035SHideki Saito   if (!setupOuterLoopInductions()) {
4769e97caf5SRenato Golin     reportVectorizationFailure("Unsupported outer loop Phi(s)",
4779e97caf5SRenato Golin                                "Unsupported outer loop Phi(s)",
478ec818d7fSHideki Saito                                "UnsupportedPhi", ORE, TheLoop);
479ea7f3035SHideki Saito     if (DoExtraAnalysis)
480ea7f3035SHideki Saito       Result = false;
481ea7f3035SHideki Saito     else
482ea7f3035SHideki Saito       return false;
483ea7f3035SHideki Saito   }
484ea7f3035SHideki Saito 
485f2ec16ccSHideki Saito   return Result;
486f2ec16ccSHideki Saito }
487f2ec16ccSHideki Saito 
488f2ec16ccSHideki Saito void LoopVectorizationLegality::addInductionPhi(
489f2ec16ccSHideki Saito     PHINode *Phi, const InductionDescriptor &ID,
490f2ec16ccSHideki Saito     SmallPtrSetImpl<Value *> &AllowedExit) {
491f2ec16ccSHideki Saito   Inductions[Phi] = ID;
492f2ec16ccSHideki Saito 
493f2ec16ccSHideki Saito   // In case this induction also comes with casts that we know we can ignore
494f2ec16ccSHideki Saito   // in the vectorized loop body, record them here. All casts could be recorded
495f2ec16ccSHideki Saito   // here for ignoring, but suffices to record only the first (as it is the
496f2ec16ccSHideki Saito   // only one that may bw used outside the cast sequence).
497f2ec16ccSHideki Saito   const SmallVectorImpl<Instruction *> &Casts = ID.getCastInsts();
498f2ec16ccSHideki Saito   if (!Casts.empty())
499f2ec16ccSHideki Saito     InductionCastsToIgnore.insert(*Casts.begin());
500f2ec16ccSHideki Saito 
501f2ec16ccSHideki Saito   Type *PhiTy = Phi->getType();
502f2ec16ccSHideki Saito   const DataLayout &DL = Phi->getModule()->getDataLayout();
503f2ec16ccSHideki Saito 
504f2ec16ccSHideki Saito   // Get the widest type.
505f2ec16ccSHideki Saito   if (!PhiTy->isFloatingPointTy()) {
506f2ec16ccSHideki Saito     if (!WidestIndTy)
507f2ec16ccSHideki Saito       WidestIndTy = convertPointerToIntegerType(DL, PhiTy);
508f2ec16ccSHideki Saito     else
509f2ec16ccSHideki Saito       WidestIndTy = getWiderType(DL, PhiTy, WidestIndTy);
510f2ec16ccSHideki Saito   }
511f2ec16ccSHideki Saito 
512f2ec16ccSHideki Saito   // Int inductions are special because we only allow one IV.
513f2ec16ccSHideki Saito   if (ID.getKind() == InductionDescriptor::IK_IntInduction &&
514f2ec16ccSHideki Saito       ID.getConstIntStepValue() && ID.getConstIntStepValue()->isOne() &&
515f2ec16ccSHideki Saito       isa<Constant>(ID.getStartValue()) &&
516f2ec16ccSHideki Saito       cast<Constant>(ID.getStartValue())->isNullValue()) {
517f2ec16ccSHideki Saito 
518f2ec16ccSHideki Saito     // Use the phi node with the widest type as induction. Use the last
519f2ec16ccSHideki Saito     // one if there are multiple (no good reason for doing this other
520f2ec16ccSHideki Saito     // than it is expedient). We've checked that it begins at zero and
521f2ec16ccSHideki Saito     // steps by one, so this is a canonical induction variable.
522f2ec16ccSHideki Saito     if (!PrimaryInduction || PhiTy == WidestIndTy)
523f2ec16ccSHideki Saito       PrimaryInduction = Phi;
524f2ec16ccSHideki Saito   }
525f2ec16ccSHideki Saito 
526f2ec16ccSHideki Saito   // Both the PHI node itself, and the "post-increment" value feeding
527f2ec16ccSHideki Saito   // back into the PHI node may have external users.
528f2ec16ccSHideki Saito   // We can allow those uses, except if the SCEVs we have for them rely
529f2ec16ccSHideki Saito   // on predicates that only hold within the loop, since allowing the exit
5306a1dd77fSAnna Thomas   // currently means re-using this SCEV outside the loop (see PR33706 for more
5316a1dd77fSAnna Thomas   // details).
532f2ec16ccSHideki Saito   if (PSE.getUnionPredicate().isAlwaysTrue()) {
533f2ec16ccSHideki Saito     AllowedExit.insert(Phi);
534f2ec16ccSHideki Saito     AllowedExit.insert(Phi->getIncomingValueForBlock(TheLoop->getLoopLatch()));
535f2ec16ccSHideki Saito   }
536f2ec16ccSHideki Saito 
537d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "LV: Found an induction variable.\n");
538f2ec16ccSHideki Saito }
539f2ec16ccSHideki Saito 
540ea7f3035SHideki Saito bool LoopVectorizationLegality::setupOuterLoopInductions() {
541ea7f3035SHideki Saito   BasicBlock *Header = TheLoop->getHeader();
542ea7f3035SHideki Saito 
543ea7f3035SHideki Saito   // Returns true if a given Phi is a supported induction.
544ea7f3035SHideki Saito   auto isSupportedPhi = [&](PHINode &Phi) -> bool {
545ea7f3035SHideki Saito     InductionDescriptor ID;
546ea7f3035SHideki Saito     if (InductionDescriptor::isInductionPHI(&Phi, TheLoop, PSE, ID) &&
547ea7f3035SHideki Saito         ID.getKind() == InductionDescriptor::IK_IntInduction) {
548ea7f3035SHideki Saito       addInductionPhi(&Phi, ID, AllowedExit);
549ea7f3035SHideki Saito       return true;
550ea7f3035SHideki Saito     } else {
551ea7f3035SHideki Saito       // Bail out for any Phi in the outer loop header that is not a supported
552ea7f3035SHideki Saito       // induction.
553ea7f3035SHideki Saito       LLVM_DEBUG(
554ea7f3035SHideki Saito           dbgs()
555ea7f3035SHideki Saito           << "LV: Found unsupported PHI for outer loop vectorization.\n");
556ea7f3035SHideki Saito       return false;
557ea7f3035SHideki Saito     }
558ea7f3035SHideki Saito   };
559ea7f3035SHideki Saito 
560ea7f3035SHideki Saito   if (llvm::all_of(Header->phis(), isSupportedPhi))
561ea7f3035SHideki Saito     return true;
562ea7f3035SHideki Saito   else
563ea7f3035SHideki Saito     return false;
564ea7f3035SHideki Saito }
565ea7f3035SHideki Saito 
566f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeInstrs() {
567f2ec16ccSHideki Saito   BasicBlock *Header = TheLoop->getHeader();
568f2ec16ccSHideki Saito 
569f2ec16ccSHideki Saito   // Look for the attribute signaling the absence of NaNs.
570f2ec16ccSHideki Saito   Function &F = *Header->getParent();
571f2ec16ccSHideki Saito   HasFunNoNaNAttr =
572f2ec16ccSHideki Saito       F.getFnAttribute("no-nans-fp-math").getValueAsString() == "true";
573f2ec16ccSHideki Saito 
574f2ec16ccSHideki Saito   // For each block in the loop.
575f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
576f2ec16ccSHideki Saito     // Scan the instructions in the block and look for hazards.
577f2ec16ccSHideki Saito     for (Instruction &I : *BB) {
578f2ec16ccSHideki Saito       if (auto *Phi = dyn_cast<PHINode>(&I)) {
579f2ec16ccSHideki Saito         Type *PhiTy = Phi->getType();
580f2ec16ccSHideki Saito         // Check that this PHI type is allowed.
581f2ec16ccSHideki Saito         if (!PhiTy->isIntegerTy() && !PhiTy->isFloatingPointTy() &&
582f2ec16ccSHideki Saito             !PhiTy->isPointerTy()) {
5839e97caf5SRenato Golin           reportVectorizationFailure("Found a non-int non-pointer PHI",
5849e97caf5SRenato Golin                                      "loop control flow is not understood by vectorizer",
585ec818d7fSHideki Saito                                      "CFGNotUnderstood", ORE, TheLoop);
586f2ec16ccSHideki Saito           return false;
587f2ec16ccSHideki Saito         }
588f2ec16ccSHideki Saito 
589f2ec16ccSHideki Saito         // If this PHINode is not in the header block, then we know that we
590f2ec16ccSHideki Saito         // can convert it to select during if-conversion. No need to check if
591f2ec16ccSHideki Saito         // the PHIs in this block are induction or reduction variables.
592f2ec16ccSHideki Saito         if (BB != Header) {
59360a1e4ddSAnna Thomas           // Non-header phi nodes that have outside uses can be vectorized. Add
59460a1e4ddSAnna Thomas           // them to the list of allowed exits.
59560a1e4ddSAnna Thomas           // Unsafe cyclic dependencies with header phis are identified during
59660a1e4ddSAnna Thomas           // legalization for reduction, induction and first order
59760a1e4ddSAnna Thomas           // recurrences.
598f2ec16ccSHideki Saito           continue;
599f2ec16ccSHideki Saito         }
600f2ec16ccSHideki Saito 
601f2ec16ccSHideki Saito         // We only allow if-converted PHIs with exactly two incoming values.
602f2ec16ccSHideki Saito         if (Phi->getNumIncomingValues() != 2) {
6039e97caf5SRenato Golin           reportVectorizationFailure("Found an invalid PHI",
6049e97caf5SRenato Golin               "loop control flow is not understood by vectorizer",
605ec818d7fSHideki Saito               "CFGNotUnderstood", ORE, TheLoop, Phi);
606f2ec16ccSHideki Saito           return false;
607f2ec16ccSHideki Saito         }
608f2ec16ccSHideki Saito 
609f2ec16ccSHideki Saito         RecurrenceDescriptor RedDes;
610f2ec16ccSHideki Saito         if (RecurrenceDescriptor::isReductionPHI(Phi, TheLoop, RedDes, DB, AC,
611f2ec16ccSHideki Saito                                                  DT)) {
612f2ec16ccSHideki Saito           if (RedDes.hasUnsafeAlgebra())
613f2ec16ccSHideki Saito             Requirements->addUnsafeAlgebraInst(RedDes.getUnsafeAlgebraInst());
614f2ec16ccSHideki Saito           AllowedExit.insert(RedDes.getLoopExitInstr());
615f2ec16ccSHideki Saito           Reductions[Phi] = RedDes;
616f2ec16ccSHideki Saito           continue;
617f2ec16ccSHideki Saito         }
618f2ec16ccSHideki Saito 
619b02b0ad8SAnna Thomas         // TODO: Instead of recording the AllowedExit, it would be good to record the
620b02b0ad8SAnna Thomas         // complementary set: NotAllowedExit. These include (but may not be
621b02b0ad8SAnna Thomas         // limited to):
622b02b0ad8SAnna Thomas         // 1. Reduction phis as they represent the one-before-last value, which
623b02b0ad8SAnna Thomas         // is not available when vectorized
624b02b0ad8SAnna Thomas         // 2. Induction phis and increment when SCEV predicates cannot be used
625b02b0ad8SAnna Thomas         // outside the loop - see addInductionPhi
626b02b0ad8SAnna Thomas         // 3. Non-Phis with outside uses when SCEV predicates cannot be used
627b02b0ad8SAnna Thomas         // outside the loop - see call to hasOutsideLoopUser in the non-phi
628b02b0ad8SAnna Thomas         // handling below
629b02b0ad8SAnna Thomas         // 4. FirstOrderRecurrence phis that can possibly be handled by
630b02b0ad8SAnna Thomas         // extraction.
631b02b0ad8SAnna Thomas         // By recording these, we can then reason about ways to vectorize each
632b02b0ad8SAnna Thomas         // of these NotAllowedExit.
633f2ec16ccSHideki Saito         InductionDescriptor ID;
634f2ec16ccSHideki Saito         if (InductionDescriptor::isInductionPHI(Phi, TheLoop, PSE, ID)) {
635f2ec16ccSHideki Saito           addInductionPhi(Phi, ID, AllowedExit);
636f2ec16ccSHideki Saito           if (ID.hasUnsafeAlgebra() && !HasFunNoNaNAttr)
637f2ec16ccSHideki Saito             Requirements->addUnsafeAlgebraInst(ID.getUnsafeAlgebraInst());
638f2ec16ccSHideki Saito           continue;
639f2ec16ccSHideki Saito         }
640f2ec16ccSHideki Saito 
641f2ec16ccSHideki Saito         if (RecurrenceDescriptor::isFirstOrderRecurrence(Phi, TheLoop,
642f2ec16ccSHideki Saito                                                          SinkAfter, DT)) {
643f2ec16ccSHideki Saito           FirstOrderRecurrences.insert(Phi);
644f2ec16ccSHideki Saito           continue;
645f2ec16ccSHideki Saito         }
646f2ec16ccSHideki Saito 
647f2ec16ccSHideki Saito         // As a last resort, coerce the PHI to a AddRec expression
648f2ec16ccSHideki Saito         // and re-try classifying it a an induction PHI.
649f2ec16ccSHideki Saito         if (InductionDescriptor::isInductionPHI(Phi, TheLoop, PSE, ID, true)) {
650f2ec16ccSHideki Saito           addInductionPhi(Phi, ID, AllowedExit);
651f2ec16ccSHideki Saito           continue;
652f2ec16ccSHideki Saito         }
653f2ec16ccSHideki Saito 
6549e97caf5SRenato Golin         reportVectorizationFailure("Found an unidentified PHI",
6559e97caf5SRenato Golin             "value that could not be identified as "
6569e97caf5SRenato Golin             "reduction is used outside the loop",
657ec818d7fSHideki Saito             "NonReductionValueUsedOutsideLoop", ORE, TheLoop, Phi);
658f2ec16ccSHideki Saito         return false;
659f2ec16ccSHideki Saito       } // end of PHI handling
660f2ec16ccSHideki Saito 
661f2ec16ccSHideki Saito       // We handle calls that:
662f2ec16ccSHideki Saito       //   * Are debug info intrinsics.
663f2ec16ccSHideki Saito       //   * Have a mapping to an IR intrinsic.
664f2ec16ccSHideki Saito       //   * Have a vector version available.
665f2ec16ccSHideki Saito       auto *CI = dyn_cast<CallInst>(&I);
666f2ec16ccSHideki Saito       if (CI && !getVectorIntrinsicIDForCall(CI, TLI) &&
667f2ec16ccSHideki Saito           !isa<DbgInfoIntrinsic>(CI) &&
668f2ec16ccSHideki Saito           !(CI->getCalledFunction() && TLI &&
669f2ec16ccSHideki Saito             TLI->isFunctionVectorizable(CI->getCalledFunction()->getName()))) {
6707d65fe5cSSanjay Patel         // If the call is a recognized math libary call, it is likely that
6717d65fe5cSSanjay Patel         // we can vectorize it given loosened floating-point constraints.
6727d65fe5cSSanjay Patel         LibFunc Func;
6737d65fe5cSSanjay Patel         bool IsMathLibCall =
6747d65fe5cSSanjay Patel             TLI && CI->getCalledFunction() &&
6757d65fe5cSSanjay Patel             CI->getType()->isFloatingPointTy() &&
6767d65fe5cSSanjay Patel             TLI->getLibFunc(CI->getCalledFunction()->getName(), Func) &&
6777d65fe5cSSanjay Patel             TLI->hasOptimizedCodeGen(Func);
6787d65fe5cSSanjay Patel 
6797d65fe5cSSanjay Patel         if (IsMathLibCall) {
6807d65fe5cSSanjay Patel           // TODO: Ideally, we should not use clang-specific language here,
6817d65fe5cSSanjay Patel           // but it's hard to provide meaningful yet generic advice.
6827d65fe5cSSanjay Patel           // Also, should this be guarded by allowExtraAnalysis() and/or be part
6837d65fe5cSSanjay Patel           // of the returned info from isFunctionVectorizable()?
6849e97caf5SRenato Golin           reportVectorizationFailure("Found a non-intrinsic callsite",
6859e97caf5SRenato Golin               "library call cannot be vectorized. "
6867d65fe5cSSanjay Patel               "Try compiling with -fno-math-errno, -ffast-math, "
6879e97caf5SRenato Golin               "or similar flags",
688ec818d7fSHideki Saito               "CantVectorizeLibcall", ORE, TheLoop, CI);
6897d65fe5cSSanjay Patel         } else {
6909e97caf5SRenato Golin           reportVectorizationFailure("Found a non-intrinsic callsite",
6919e97caf5SRenato Golin                                      "call instruction cannot be vectorized",
692ec818d7fSHideki Saito                                      "CantVectorizeLibcall", ORE, TheLoop, CI);
6937d65fe5cSSanjay Patel         }
694f2ec16ccSHideki Saito         return false;
695f2ec16ccSHideki Saito       }
696f2ec16ccSHideki Saito 
697a066f1f9SSimon Pilgrim       // Some intrinsics have scalar arguments and should be same in order for
698a066f1f9SSimon Pilgrim       // them to be vectorized (i.e. loop invariant).
699a066f1f9SSimon Pilgrim       if (CI) {
700f2ec16ccSHideki Saito         auto *SE = PSE.getSE();
701a066f1f9SSimon Pilgrim         Intrinsic::ID IntrinID = getVectorIntrinsicIDForCall(CI, TLI);
702a066f1f9SSimon Pilgrim         for (unsigned i = 0, e = CI->getNumArgOperands(); i != e; ++i)
703a066f1f9SSimon Pilgrim           if (hasVectorInstrinsicScalarOpd(IntrinID, i)) {
704a066f1f9SSimon Pilgrim             if (!SE->isLoopInvariant(PSE.getSCEV(CI->getOperand(i)), TheLoop)) {
7059e97caf5SRenato Golin               reportVectorizationFailure("Found unvectorizable intrinsic",
7069e97caf5SRenato Golin                   "intrinsic instruction cannot be vectorized",
707ec818d7fSHideki Saito                   "CantVectorizeIntrinsic", ORE, TheLoop, CI);
708f2ec16ccSHideki Saito               return false;
709f2ec16ccSHideki Saito             }
710f2ec16ccSHideki Saito           }
711a066f1f9SSimon Pilgrim       }
712f2ec16ccSHideki Saito 
713f2ec16ccSHideki Saito       // Check that the instruction return type is vectorizable.
714f2ec16ccSHideki Saito       // Also, we can't vectorize extractelement instructions.
715f2ec16ccSHideki Saito       if ((!VectorType::isValidElementType(I.getType()) &&
716f2ec16ccSHideki Saito            !I.getType()->isVoidTy()) ||
717f2ec16ccSHideki Saito           isa<ExtractElementInst>(I)) {
7189e97caf5SRenato Golin         reportVectorizationFailure("Found unvectorizable type",
7199e97caf5SRenato Golin             "instruction return type cannot be vectorized",
720ec818d7fSHideki Saito             "CantVectorizeInstructionReturnType", ORE, TheLoop, &I);
721f2ec16ccSHideki Saito         return false;
722f2ec16ccSHideki Saito       }
723f2ec16ccSHideki Saito 
724f2ec16ccSHideki Saito       // Check that the stored type is vectorizable.
725f2ec16ccSHideki Saito       if (auto *ST = dyn_cast<StoreInst>(&I)) {
726f2ec16ccSHideki Saito         Type *T = ST->getValueOperand()->getType();
727f2ec16ccSHideki Saito         if (!VectorType::isValidElementType(T)) {
7289e97caf5SRenato Golin           reportVectorizationFailure("Store instruction cannot be vectorized",
7299e97caf5SRenato Golin                                      "store instruction cannot be vectorized",
730ec818d7fSHideki Saito                                      "CantVectorizeStore", ORE, TheLoop, ST);
731f2ec16ccSHideki Saito           return false;
732f2ec16ccSHideki Saito         }
733f2ec16ccSHideki Saito 
7346452bdd2SWarren Ristow         // For nontemporal stores, check that a nontemporal vector version is
7356452bdd2SWarren Ristow         // supported on the target.
7366452bdd2SWarren Ristow         if (ST->getMetadata(LLVMContext::MD_nontemporal)) {
7376452bdd2SWarren Ristow           // Arbitrarily try a vector of 2 elements.
7386452bdd2SWarren Ristow           Type *VecTy = VectorType::get(T, /*NumElements=*/2);
7396452bdd2SWarren Ristow           assert(VecTy && "did not find vectorized version of stored type");
7406452bdd2SWarren Ristow           unsigned Alignment = getLoadStoreAlignment(ST);
7416452bdd2SWarren Ristow           if (!TTI->isLegalNTStore(VecTy, Alignment)) {
7426452bdd2SWarren Ristow             reportVectorizationFailure(
7436452bdd2SWarren Ristow                 "nontemporal store instruction cannot be vectorized",
7446452bdd2SWarren Ristow                 "nontemporal store instruction cannot be vectorized",
745ec818d7fSHideki Saito                 "CantVectorizeNontemporalStore", ORE, TheLoop, ST);
7466452bdd2SWarren Ristow             return false;
7476452bdd2SWarren Ristow           }
7486452bdd2SWarren Ristow         }
7496452bdd2SWarren Ristow 
7506452bdd2SWarren Ristow       } else if (auto *LD = dyn_cast<LoadInst>(&I)) {
7516452bdd2SWarren Ristow         if (LD->getMetadata(LLVMContext::MD_nontemporal)) {
7526452bdd2SWarren Ristow           // For nontemporal loads, check that a nontemporal vector version is
7536452bdd2SWarren Ristow           // supported on the target (arbitrarily try a vector of 2 elements).
7546452bdd2SWarren Ristow           Type *VecTy = VectorType::get(I.getType(), /*NumElements=*/2);
7556452bdd2SWarren Ristow           assert(VecTy && "did not find vectorized version of load type");
7566452bdd2SWarren Ristow           unsigned Alignment = getLoadStoreAlignment(LD);
7576452bdd2SWarren Ristow           if (!TTI->isLegalNTLoad(VecTy, Alignment)) {
7586452bdd2SWarren Ristow             reportVectorizationFailure(
7596452bdd2SWarren Ristow                 "nontemporal load instruction cannot be vectorized",
7606452bdd2SWarren Ristow                 "nontemporal load instruction cannot be vectorized",
761ec818d7fSHideki Saito                 "CantVectorizeNontemporalLoad", ORE, TheLoop, LD);
7626452bdd2SWarren Ristow             return false;
7636452bdd2SWarren Ristow           }
7646452bdd2SWarren Ristow         }
7656452bdd2SWarren Ristow 
766f2ec16ccSHideki Saito         // FP instructions can allow unsafe algebra, thus vectorizable by
767f2ec16ccSHideki Saito         // non-IEEE-754 compliant SIMD units.
768f2ec16ccSHideki Saito         // This applies to floating-point math operations and calls, not memory
769f2ec16ccSHideki Saito         // operations, shuffles, or casts, as they don't change precision or
770f2ec16ccSHideki Saito         // semantics.
771f2ec16ccSHideki Saito       } else if (I.getType()->isFloatingPointTy() && (CI || I.isBinaryOp()) &&
772f2ec16ccSHideki Saito                  !I.isFast()) {
773d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: Found FP op with unsafe algebra.\n");
774f2ec16ccSHideki Saito         Hints->setPotentiallyUnsafe();
775f2ec16ccSHideki Saito       }
776f2ec16ccSHideki Saito 
777f2ec16ccSHideki Saito       // Reduction instructions are allowed to have exit users.
778f2ec16ccSHideki Saito       // All other instructions must not have external users.
779f2ec16ccSHideki Saito       if (hasOutsideLoopUser(TheLoop, &I, AllowedExit)) {
780b02b0ad8SAnna Thomas         // We can safely vectorize loops where instructions within the loop are
781b02b0ad8SAnna Thomas         // used outside the loop only if the SCEV predicates within the loop is
782b02b0ad8SAnna Thomas         // same as outside the loop. Allowing the exit means reusing the SCEV
783b02b0ad8SAnna Thomas         // outside the loop.
784b02b0ad8SAnna Thomas         if (PSE.getUnionPredicate().isAlwaysTrue()) {
785b02b0ad8SAnna Thomas           AllowedExit.insert(&I);
786b02b0ad8SAnna Thomas           continue;
787b02b0ad8SAnna Thomas         }
7889e97caf5SRenato Golin         reportVectorizationFailure("Value cannot be used outside the loop",
7899e97caf5SRenato Golin                                    "value cannot be used outside the loop",
790ec818d7fSHideki Saito                                    "ValueUsedOutsideLoop", ORE, TheLoop, &I);
791f2ec16ccSHideki Saito         return false;
792f2ec16ccSHideki Saito       }
793f2ec16ccSHideki Saito     } // next instr.
794f2ec16ccSHideki Saito   }
795f2ec16ccSHideki Saito 
796f2ec16ccSHideki Saito   if (!PrimaryInduction) {
797f2ec16ccSHideki Saito     if (Inductions.empty()) {
7989e97caf5SRenato Golin       reportVectorizationFailure("Did not find one integer induction var",
7999e97caf5SRenato Golin           "loop induction variable could not be identified",
800ec818d7fSHideki Saito           "NoInductionVariable", ORE, TheLoop);
801f2ec16ccSHideki Saito       return false;
8024f27730eSWarren Ristow     } else if (!WidestIndTy) {
8039e97caf5SRenato Golin       reportVectorizationFailure("Did not find one integer induction var",
8049e97caf5SRenato Golin           "integer loop induction variable could not be identified",
805ec818d7fSHideki Saito           "NoIntegerInductionVariable", ORE, TheLoop);
8064f27730eSWarren Ristow       return false;
8079e97caf5SRenato Golin     } else {
8089e97caf5SRenato Golin       LLVM_DEBUG(dbgs() << "LV: Did not find one integer induction var.\n");
809f2ec16ccSHideki Saito     }
810f2ec16ccSHideki Saito   }
811f2ec16ccSHideki Saito 
812f2ec16ccSHideki Saito   // Now we know the widest induction type, check if our found induction
813f2ec16ccSHideki Saito   // is the same size. If it's not, unset it here and InnerLoopVectorizer
814f2ec16ccSHideki Saito   // will create another.
815f2ec16ccSHideki Saito   if (PrimaryInduction && WidestIndTy != PrimaryInduction->getType())
816f2ec16ccSHideki Saito     PrimaryInduction = nullptr;
817f2ec16ccSHideki Saito 
818f2ec16ccSHideki Saito   return true;
819f2ec16ccSHideki Saito }
820f2ec16ccSHideki Saito 
821f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeMemory() {
822f2ec16ccSHideki Saito   LAI = &(*GetLAA)(*TheLoop);
823f2ec16ccSHideki Saito   const OptimizationRemarkAnalysis *LAR = LAI->getReport();
824f2ec16ccSHideki Saito   if (LAR) {
825f2ec16ccSHideki Saito     ORE->emit([&]() {
826f2ec16ccSHideki Saito       return OptimizationRemarkAnalysis(Hints->vectorizeAnalysisPassName(),
827f2ec16ccSHideki Saito                                         "loop not vectorized: ", *LAR);
828f2ec16ccSHideki Saito     });
829f2ec16ccSHideki Saito   }
830f2ec16ccSHideki Saito   if (!LAI->canVectorizeMemory())
831f2ec16ccSHideki Saito     return false;
832f2ec16ccSHideki Saito 
8335e9215f0SAnna Thomas   if (LAI->hasDependenceInvolvingLoopInvariantAddress()) {
8349e97caf5SRenato Golin     reportVectorizationFailure("Stores to a uniform address",
8359e97caf5SRenato Golin         "write to a loop invariant address could not be vectorized",
836ec818d7fSHideki Saito         "CantVectorizeStoreToLoopInvariantAddress", ORE, TheLoop);
837f2ec16ccSHideki Saito     return false;
838f2ec16ccSHideki Saito   }
839f2ec16ccSHideki Saito   Requirements->addRuntimePointerChecks(LAI->getNumRuntimePointerChecks());
840f2ec16ccSHideki Saito   PSE.addPredicate(LAI->getPSE().getUnionPredicate());
841f2ec16ccSHideki Saito 
842f2ec16ccSHideki Saito   return true;
843f2ec16ccSHideki Saito }
844f2ec16ccSHideki Saito 
845f2ec16ccSHideki Saito bool LoopVectorizationLegality::isInductionPhi(const Value *V) {
846f2ec16ccSHideki Saito   Value *In0 = const_cast<Value *>(V);
847f2ec16ccSHideki Saito   PHINode *PN = dyn_cast_or_null<PHINode>(In0);
848f2ec16ccSHideki Saito   if (!PN)
849f2ec16ccSHideki Saito     return false;
850f2ec16ccSHideki Saito 
851f2ec16ccSHideki Saito   return Inductions.count(PN);
852f2ec16ccSHideki Saito }
853f2ec16ccSHideki Saito 
854f2ec16ccSHideki Saito bool LoopVectorizationLegality::isCastedInductionVariable(const Value *V) {
855f2ec16ccSHideki Saito   auto *Inst = dyn_cast<Instruction>(V);
856f2ec16ccSHideki Saito   return (Inst && InductionCastsToIgnore.count(Inst));
857f2ec16ccSHideki Saito }
858f2ec16ccSHideki Saito 
859f2ec16ccSHideki Saito bool LoopVectorizationLegality::isInductionVariable(const Value *V) {
860f2ec16ccSHideki Saito   return isInductionPhi(V) || isCastedInductionVariable(V);
861f2ec16ccSHideki Saito }
862f2ec16ccSHideki Saito 
863f2ec16ccSHideki Saito bool LoopVectorizationLegality::isFirstOrderRecurrence(const PHINode *Phi) {
864f2ec16ccSHideki Saito   return FirstOrderRecurrences.count(Phi);
865f2ec16ccSHideki Saito }
866f2ec16ccSHideki Saito 
867f2ec16ccSHideki Saito bool LoopVectorizationLegality::blockNeedsPredication(BasicBlock *BB) {
868f2ec16ccSHideki Saito   return LoopAccessInfo::blockNeedsPredication(BB, TheLoop, DT);
869f2ec16ccSHideki Saito }
870f2ec16ccSHideki Saito 
871f2ec16ccSHideki Saito bool LoopVectorizationLegality::blockCanBePredicated(
872*d57d73daSDorit Nuzman     BasicBlock *BB, SmallPtrSetImpl<Value *> &SafePtrs, bool PreserveGuards) {
873f2ec16ccSHideki Saito   const bool IsAnnotatedParallel = TheLoop->isAnnotatedParallel();
874f2ec16ccSHideki Saito 
875f2ec16ccSHideki Saito   for (Instruction &I : *BB) {
876f2ec16ccSHideki Saito     // Check that we don't have a constant expression that can trap as operand.
877f2ec16ccSHideki Saito     for (Value *Operand : I.operands()) {
878f2ec16ccSHideki Saito       if (auto *C = dyn_cast<Constant>(Operand))
879f2ec16ccSHideki Saito         if (C->canTrap())
880f2ec16ccSHideki Saito           return false;
881f2ec16ccSHideki Saito     }
882f2ec16ccSHideki Saito     // We might be able to hoist the load.
883f2ec16ccSHideki Saito     if (I.mayReadFromMemory()) {
884f2ec16ccSHideki Saito       auto *LI = dyn_cast<LoadInst>(&I);
885f2ec16ccSHideki Saito       if (!LI)
886f2ec16ccSHideki Saito         return false;
887f2ec16ccSHideki Saito       if (!SafePtrs.count(LI->getPointerOperand())) {
888f2ec16ccSHideki Saito         // !llvm.mem.parallel_loop_access implies if-conversion safety.
889f2ec16ccSHideki Saito         // Otherwise, record that the load needs (real or emulated) masking
890f2ec16ccSHideki Saito         // and let the cost model decide.
891*d57d73daSDorit Nuzman         if (!IsAnnotatedParallel || PreserveGuards)
892f2ec16ccSHideki Saito           MaskedOp.insert(LI);
893f2ec16ccSHideki Saito         continue;
894f2ec16ccSHideki Saito       }
895f2ec16ccSHideki Saito     }
896f2ec16ccSHideki Saito 
897f2ec16ccSHideki Saito     if (I.mayWriteToMemory()) {
898f2ec16ccSHideki Saito       auto *SI = dyn_cast<StoreInst>(&I);
899f2ec16ccSHideki Saito       if (!SI)
900f2ec16ccSHideki Saito         return false;
901f2ec16ccSHideki Saito       // Predicated store requires some form of masking:
902f2ec16ccSHideki Saito       // 1) masked store HW instruction,
903f2ec16ccSHideki Saito       // 2) emulation via load-blend-store (only if safe and legal to do so,
904f2ec16ccSHideki Saito       //    be aware on the race conditions), or
905f2ec16ccSHideki Saito       // 3) element-by-element predicate check and scalar store.
906f2ec16ccSHideki Saito       MaskedOp.insert(SI);
907f2ec16ccSHideki Saito       continue;
908f2ec16ccSHideki Saito     }
909f2ec16ccSHideki Saito     if (I.mayThrow())
910f2ec16ccSHideki Saito       return false;
911f2ec16ccSHideki Saito   }
912f2ec16ccSHideki Saito 
913f2ec16ccSHideki Saito   return true;
914f2ec16ccSHideki Saito }
915f2ec16ccSHideki Saito 
916f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeWithIfConvert() {
917f2ec16ccSHideki Saito   if (!EnableIfConversion) {
9189e97caf5SRenato Golin     reportVectorizationFailure("If-conversion is disabled",
9199e97caf5SRenato Golin                                "if-conversion is disabled",
920ec818d7fSHideki Saito                                "IfConversionDisabled",
921ec818d7fSHideki Saito                                ORE, TheLoop);
922f2ec16ccSHideki Saito     return false;
923f2ec16ccSHideki Saito   }
924f2ec16ccSHideki Saito 
925f2ec16ccSHideki Saito   assert(TheLoop->getNumBlocks() > 1 && "Single block loops are vectorizable");
926f2ec16ccSHideki Saito 
927f2ec16ccSHideki Saito   // A list of pointers that we can safely read and write to.
928f2ec16ccSHideki Saito   SmallPtrSet<Value *, 8> SafePointes;
929f2ec16ccSHideki Saito 
930f2ec16ccSHideki Saito   // Collect safe addresses.
931f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
932f2ec16ccSHideki Saito     if (blockNeedsPredication(BB))
933f2ec16ccSHideki Saito       continue;
934f2ec16ccSHideki Saito 
935f2ec16ccSHideki Saito     for (Instruction &I : *BB)
936f2ec16ccSHideki Saito       if (auto *Ptr = getLoadStorePointerOperand(&I))
937f2ec16ccSHideki Saito         SafePointes.insert(Ptr);
938f2ec16ccSHideki Saito   }
939f2ec16ccSHideki Saito 
940f2ec16ccSHideki Saito   // Collect the blocks that need predication.
941f2ec16ccSHideki Saito   BasicBlock *Header = TheLoop->getHeader();
942f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
943f2ec16ccSHideki Saito     // We don't support switch statements inside loops.
944f2ec16ccSHideki Saito     if (!isa<BranchInst>(BB->getTerminator())) {
9459e97caf5SRenato Golin       reportVectorizationFailure("Loop contains a switch statement",
9469e97caf5SRenato Golin                                  "loop contains a switch statement",
947ec818d7fSHideki Saito                                  "LoopContainsSwitch", ORE, TheLoop,
948ec818d7fSHideki Saito                                  BB->getTerminator());
949f2ec16ccSHideki Saito       return false;
950f2ec16ccSHideki Saito     }
951f2ec16ccSHideki Saito 
952f2ec16ccSHideki Saito     // We must be able to predicate all blocks that need to be predicated.
953f2ec16ccSHideki Saito     if (blockNeedsPredication(BB)) {
954f2ec16ccSHideki Saito       if (!blockCanBePredicated(BB, SafePointes)) {
9559e97caf5SRenato Golin         reportVectorizationFailure(
9569e97caf5SRenato Golin             "Control flow cannot be substituted for a select",
9579e97caf5SRenato Golin             "control flow cannot be substituted for a select",
958ec818d7fSHideki Saito             "NoCFGForSelect", ORE, TheLoop,
959ec818d7fSHideki Saito             BB->getTerminator());
960f2ec16ccSHideki Saito         return false;
961f2ec16ccSHideki Saito       }
962f2ec16ccSHideki Saito     } else if (BB != Header && !canIfConvertPHINodes(BB)) {
9639e97caf5SRenato Golin       reportVectorizationFailure(
9649e97caf5SRenato Golin           "Control flow cannot be substituted for a select",
9659e97caf5SRenato Golin           "control flow cannot be substituted for a select",
966ec818d7fSHideki Saito           "NoCFGForSelect", ORE, TheLoop,
967ec818d7fSHideki Saito           BB->getTerminator());
968f2ec16ccSHideki Saito       return false;
969f2ec16ccSHideki Saito     }
970f2ec16ccSHideki Saito   }
971f2ec16ccSHideki Saito 
972f2ec16ccSHideki Saito   // We can if-convert this loop.
973f2ec16ccSHideki Saito   return true;
974f2ec16ccSHideki Saito }
975f2ec16ccSHideki Saito 
976f2ec16ccSHideki Saito // Helper function to canVectorizeLoopNestCFG.
977f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeLoopCFG(Loop *Lp,
978f2ec16ccSHideki Saito                                                     bool UseVPlanNativePath) {
979f2ec16ccSHideki Saito   assert((UseVPlanNativePath || Lp->empty()) &&
980f2ec16ccSHideki Saito          "VPlan-native path is not enabled.");
981f2ec16ccSHideki Saito 
982f2ec16ccSHideki Saito   // TODO: ORE should be improved to show more accurate information when an
983f2ec16ccSHideki Saito   // outer loop can't be vectorized because a nested loop is not understood or
984f2ec16ccSHideki Saito   // legal. Something like: "outer_loop_location: loop not vectorized:
985f2ec16ccSHideki Saito   // (inner_loop_location) loop control flow is not understood by vectorizer".
986f2ec16ccSHideki Saito 
987f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
988f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
989f2ec16ccSHideki Saito   bool Result = true;
990f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
991f2ec16ccSHideki Saito 
992f2ec16ccSHideki Saito   // We must have a loop in canonical form. Loops with indirectbr in them cannot
993f2ec16ccSHideki Saito   // be canonicalized.
994f2ec16ccSHideki Saito   if (!Lp->getLoopPreheader()) {
9959e97caf5SRenato Golin     reportVectorizationFailure("Loop doesn't have a legal pre-header",
9969e97caf5SRenato Golin         "loop control flow is not understood by vectorizer",
997ec818d7fSHideki Saito         "CFGNotUnderstood", ORE, TheLoop);
998f2ec16ccSHideki Saito     if (DoExtraAnalysis)
999f2ec16ccSHideki Saito       Result = false;
1000f2ec16ccSHideki Saito     else
1001f2ec16ccSHideki Saito       return false;
1002f2ec16ccSHideki Saito   }
1003f2ec16ccSHideki Saito 
1004f2ec16ccSHideki Saito   // We must have a single backedge.
1005f2ec16ccSHideki Saito   if (Lp->getNumBackEdges() != 1) {
10069e97caf5SRenato Golin     reportVectorizationFailure("The loop must have a single backedge",
10079e97caf5SRenato Golin         "loop control flow is not understood by vectorizer",
1008ec818d7fSHideki Saito         "CFGNotUnderstood", ORE, TheLoop);
1009f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1010f2ec16ccSHideki Saito       Result = false;
1011f2ec16ccSHideki Saito     else
1012f2ec16ccSHideki Saito       return false;
1013f2ec16ccSHideki Saito   }
1014f2ec16ccSHideki Saito 
1015f2ec16ccSHideki Saito   // We must have a single exiting block.
1016f2ec16ccSHideki Saito   if (!Lp->getExitingBlock()) {
10179e97caf5SRenato Golin     reportVectorizationFailure("The loop must have an exiting block",
10189e97caf5SRenato Golin         "loop control flow is not understood by vectorizer",
1019ec818d7fSHideki Saito         "CFGNotUnderstood", ORE, TheLoop);
1020f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1021f2ec16ccSHideki Saito       Result = false;
1022f2ec16ccSHideki Saito     else
1023f2ec16ccSHideki Saito       return false;
1024f2ec16ccSHideki Saito   }
1025f2ec16ccSHideki Saito 
1026f2ec16ccSHideki Saito   // We only handle bottom-tested loops, i.e. loop in which the condition is
1027f2ec16ccSHideki Saito   // checked at the end of each iteration. With that we can assume that all
1028f2ec16ccSHideki Saito   // instructions in the loop are executed the same number of times.
1029f2ec16ccSHideki Saito   if (Lp->getExitingBlock() != Lp->getLoopLatch()) {
10309e97caf5SRenato Golin     reportVectorizationFailure("The exiting block is not the loop latch",
10319e97caf5SRenato Golin         "loop control flow is not understood by vectorizer",
1032ec818d7fSHideki Saito         "CFGNotUnderstood", ORE, TheLoop);
1033f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1034f2ec16ccSHideki Saito       Result = false;
1035f2ec16ccSHideki Saito     else
1036f2ec16ccSHideki Saito       return false;
1037f2ec16ccSHideki Saito   }
1038f2ec16ccSHideki Saito 
1039f2ec16ccSHideki Saito   return Result;
1040f2ec16ccSHideki Saito }
1041f2ec16ccSHideki Saito 
1042f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeLoopNestCFG(
1043f2ec16ccSHideki Saito     Loop *Lp, bool UseVPlanNativePath) {
1044f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
1045f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
1046f2ec16ccSHideki Saito   bool Result = true;
1047f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
1048f2ec16ccSHideki Saito   if (!canVectorizeLoopCFG(Lp, UseVPlanNativePath)) {
1049f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1050f2ec16ccSHideki Saito       Result = false;
1051f2ec16ccSHideki Saito     else
1052f2ec16ccSHideki Saito       return false;
1053f2ec16ccSHideki Saito   }
1054f2ec16ccSHideki Saito 
1055f2ec16ccSHideki Saito   // Recursively check whether the loop control flow of nested loops is
1056f2ec16ccSHideki Saito   // understood.
1057f2ec16ccSHideki Saito   for (Loop *SubLp : *Lp)
1058f2ec16ccSHideki Saito     if (!canVectorizeLoopNestCFG(SubLp, UseVPlanNativePath)) {
1059f2ec16ccSHideki Saito       if (DoExtraAnalysis)
1060f2ec16ccSHideki Saito         Result = false;
1061f2ec16ccSHideki Saito       else
1062f2ec16ccSHideki Saito         return false;
1063f2ec16ccSHideki Saito     }
1064f2ec16ccSHideki Saito 
1065f2ec16ccSHideki Saito   return Result;
1066f2ec16ccSHideki Saito }
1067f2ec16ccSHideki Saito 
1068f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorize(bool UseVPlanNativePath) {
1069f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
1070f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
1071f2ec16ccSHideki Saito   bool Result = true;
1072f2ec16ccSHideki Saito 
1073f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
1074f2ec16ccSHideki Saito   // Check whether the loop-related control flow in the loop nest is expected by
1075f2ec16ccSHideki Saito   // vectorizer.
1076f2ec16ccSHideki Saito   if (!canVectorizeLoopNestCFG(TheLoop, UseVPlanNativePath)) {
1077f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1078f2ec16ccSHideki Saito       Result = false;
1079f2ec16ccSHideki Saito     else
1080f2ec16ccSHideki Saito       return false;
1081f2ec16ccSHideki Saito   }
1082f2ec16ccSHideki Saito 
1083f2ec16ccSHideki Saito   // We need to have a loop header.
1084d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "LV: Found a loop: " << TheLoop->getHeader()->getName()
1085f2ec16ccSHideki Saito                     << '\n');
1086f2ec16ccSHideki Saito 
1087f2ec16ccSHideki Saito   // Specific checks for outer loops. We skip the remaining legal checks at this
1088f2ec16ccSHideki Saito   // point because they don't support outer loops.
1089f2ec16ccSHideki Saito   if (!TheLoop->empty()) {
1090f2ec16ccSHideki Saito     assert(UseVPlanNativePath && "VPlan-native path is not enabled.");
1091f2ec16ccSHideki Saito 
1092f2ec16ccSHideki Saito     if (!canVectorizeOuterLoop()) {
10939e97caf5SRenato Golin       reportVectorizationFailure("Unsupported outer loop",
10949e97caf5SRenato Golin                                  "unsupported outer loop",
1095ec818d7fSHideki Saito                                  "UnsupportedOuterLoop",
1096ec818d7fSHideki Saito                                  ORE, TheLoop);
1097f2ec16ccSHideki Saito       // TODO: Implement DoExtraAnalysis when subsequent legal checks support
1098f2ec16ccSHideki Saito       // outer loops.
1099f2ec16ccSHideki Saito       return false;
1100f2ec16ccSHideki Saito     }
1101f2ec16ccSHideki Saito 
1102d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: We can vectorize this outer loop!\n");
1103f2ec16ccSHideki Saito     return Result;
1104f2ec16ccSHideki Saito   }
1105f2ec16ccSHideki Saito 
1106f2ec16ccSHideki Saito   assert(TheLoop->empty() && "Inner loop expected.");
1107f2ec16ccSHideki Saito   // Check if we can if-convert non-single-bb loops.
1108f2ec16ccSHideki Saito   unsigned NumBlocks = TheLoop->getNumBlocks();
1109f2ec16ccSHideki Saito   if (NumBlocks != 1 && !canVectorizeWithIfConvert()) {
1110d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Can't if-convert the loop.\n");
1111f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1112f2ec16ccSHideki Saito       Result = false;
1113f2ec16ccSHideki Saito     else
1114f2ec16ccSHideki Saito       return false;
1115f2ec16ccSHideki Saito   }
1116f2ec16ccSHideki Saito 
1117f2ec16ccSHideki Saito   // Check if we can vectorize the instructions and CFG in this loop.
1118f2ec16ccSHideki Saito   if (!canVectorizeInstrs()) {
1119d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Can't vectorize the instructions or CFG\n");
1120f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1121f2ec16ccSHideki Saito       Result = false;
1122f2ec16ccSHideki Saito     else
1123f2ec16ccSHideki Saito       return false;
1124f2ec16ccSHideki Saito   }
1125f2ec16ccSHideki Saito 
1126f2ec16ccSHideki Saito   // Go over each instruction and look at memory deps.
1127f2ec16ccSHideki Saito   if (!canVectorizeMemory()) {
1128d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Can't vectorize due to memory conflicts\n");
1129f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1130f2ec16ccSHideki Saito       Result = false;
1131f2ec16ccSHideki Saito     else
1132f2ec16ccSHideki Saito       return false;
1133f2ec16ccSHideki Saito   }
1134f2ec16ccSHideki Saito 
1135d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "LV: We can vectorize this loop"
1136f2ec16ccSHideki Saito                     << (LAI->getRuntimePointerChecking()->Need
1137f2ec16ccSHideki Saito                             ? " (with a runtime bound check)"
1138f2ec16ccSHideki Saito                             : "")
1139f2ec16ccSHideki Saito                     << "!\n");
1140f2ec16ccSHideki Saito 
1141f2ec16ccSHideki Saito   unsigned SCEVThreshold = VectorizeSCEVCheckThreshold;
1142f2ec16ccSHideki Saito   if (Hints->getForce() == LoopVectorizeHints::FK_Enabled)
1143f2ec16ccSHideki Saito     SCEVThreshold = PragmaVectorizeSCEVCheckThreshold;
1144f2ec16ccSHideki Saito 
1145f2ec16ccSHideki Saito   if (PSE.getUnionPredicate().getComplexity() > SCEVThreshold) {
11469e97caf5SRenato Golin     reportVectorizationFailure("Too many SCEV checks needed",
11479e97caf5SRenato Golin         "Too many SCEV assumptions need to be made and checked at runtime",
1148ec818d7fSHideki Saito         "TooManySCEVRunTimeChecks", ORE, TheLoop);
1149f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1150f2ec16ccSHideki Saito       Result = false;
1151f2ec16ccSHideki Saito     else
1152f2ec16ccSHideki Saito       return false;
1153f2ec16ccSHideki Saito   }
1154f2ec16ccSHideki Saito 
1155f2ec16ccSHideki Saito   // Okay! We've done all the tests. If any have failed, return false. Otherwise
1156f2ec16ccSHideki Saito   // we can vectorize, and at this point we don't have any other mem analysis
1157f2ec16ccSHideki Saito   // which may limit our maximum vectorization factor, so just return true with
1158f2ec16ccSHideki Saito   // no restrictions.
1159f2ec16ccSHideki Saito   return Result;
1160f2ec16ccSHideki Saito }
1161f2ec16ccSHideki Saito 
1162*d57d73daSDorit Nuzman bool LoopVectorizationLegality::prepareToFoldTailByMasking() {
1163b0b5312eSAyal Zaks 
1164b0b5312eSAyal Zaks   LLVM_DEBUG(dbgs() << "LV: checking if tail can be folded by masking.\n");
1165b0b5312eSAyal Zaks 
1166b0b5312eSAyal Zaks   if (!PrimaryInduction) {
11679e97caf5SRenato Golin     reportVectorizationFailure(
11689e97caf5SRenato Golin         "No primary induction, cannot fold tail by masking",
11699e97caf5SRenato Golin         "Missing a primary induction variable in the loop, which is "
11709e97caf5SRenato Golin         "needed in order to fold tail by masking as required.",
1171ec818d7fSHideki Saito         "NoPrimaryInduction", ORE, TheLoop);
1172b0b5312eSAyal Zaks     return false;
1173b0b5312eSAyal Zaks   }
1174b0b5312eSAyal Zaks 
1175b0b5312eSAyal Zaks   // TODO: handle reductions when tail is folded by masking.
1176b0b5312eSAyal Zaks   if (!Reductions.empty()) {
11779e97caf5SRenato Golin     reportVectorizationFailure(
11789e97caf5SRenato Golin         "Loop has reductions, cannot fold tail by masking",
11799e97caf5SRenato Golin         "Cannot fold tail by masking in the presence of reductions.",
1180ec818d7fSHideki Saito         "ReductionFoldingTailByMasking", ORE, TheLoop);
1181b0b5312eSAyal Zaks     return false;
1182b0b5312eSAyal Zaks   }
1183b0b5312eSAyal Zaks 
1184b0b5312eSAyal Zaks   // TODO: handle outside users when tail is folded by masking.
1185b0b5312eSAyal Zaks   for (auto *AE : AllowedExit) {
1186b0b5312eSAyal Zaks     // Check that all users of allowed exit values are inside the loop.
1187b0b5312eSAyal Zaks     for (User *U : AE->users()) {
1188b0b5312eSAyal Zaks       Instruction *UI = cast<Instruction>(U);
1189b0b5312eSAyal Zaks       if (TheLoop->contains(UI))
1190b0b5312eSAyal Zaks         continue;
11919e97caf5SRenato Golin       reportVectorizationFailure(
11929e97caf5SRenato Golin           "Cannot fold tail by masking, loop has an outside user for",
11939e97caf5SRenato Golin           "Cannot fold tail by masking in the presence of live outs.",
1194ec818d7fSHideki Saito           "LiveOutFoldingTailByMasking", ORE, TheLoop, UI);
1195b0b5312eSAyal Zaks       return false;
1196b0b5312eSAyal Zaks     }
1197b0b5312eSAyal Zaks   }
1198b0b5312eSAyal Zaks 
1199b0b5312eSAyal Zaks   // The list of pointers that we can safely read and write to remains empty.
1200b0b5312eSAyal Zaks   SmallPtrSet<Value *, 8> SafePointers;
1201b0b5312eSAyal Zaks 
1202b0b5312eSAyal Zaks   // Check and mark all blocks for predication, including those that ordinarily
1203b0b5312eSAyal Zaks   // do not need predication such as the header block.
1204b0b5312eSAyal Zaks   for (BasicBlock *BB : TheLoop->blocks()) {
1205*d57d73daSDorit Nuzman     if (!blockCanBePredicated(BB, SafePointers, /* MaskAllLoads= */ true)) {
12069e97caf5SRenato Golin       reportVectorizationFailure(
12079e97caf5SRenato Golin           "Cannot fold tail by masking as required",
12089e97caf5SRenato Golin           "control flow cannot be substituted for a select",
1209ec818d7fSHideki Saito           "NoCFGForSelect", ORE, TheLoop,
1210ec818d7fSHideki Saito           BB->getTerminator());
1211b0b5312eSAyal Zaks       return false;
1212b0b5312eSAyal Zaks     }
1213b0b5312eSAyal Zaks   }
1214b0b5312eSAyal Zaks 
1215b0b5312eSAyal Zaks   LLVM_DEBUG(dbgs() << "LV: can fold tail by masking.\n");
1216b0b5312eSAyal Zaks   return true;
1217b0b5312eSAyal Zaks }
1218b0b5312eSAyal Zaks 
1219f2ec16ccSHideki Saito } // namespace llvm
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