1f2ec16ccSHideki Saito //===- LoopVectorizationLegality.cpp --------------------------------------===//
2f2ec16ccSHideki Saito //
3*2946cd70SChandler Carruth // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4*2946cd70SChandler Carruth // See https://llvm.org/LICENSE.txt for license information.
5*2946cd70SChandler 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 //
16f2ec16ccSHideki Saito #include "llvm/Transforms/Vectorize/LoopVectorizationLegality.h"
17f2ec16ccSHideki Saito #include "llvm/Analysis/VectorUtils.h"
18f2ec16ccSHideki Saito #include "llvm/IR/IntrinsicInst.h"
19f2ec16ccSHideki Saito 
20f2ec16ccSHideki Saito using namespace llvm;
21f2ec16ccSHideki Saito 
22f2ec16ccSHideki Saito #define LV_NAME "loop-vectorize"
23f2ec16ccSHideki Saito #define DEBUG_TYPE LV_NAME
24f2ec16ccSHideki Saito 
25f2ec16ccSHideki Saito static cl::opt<bool>
26f2ec16ccSHideki Saito     EnableIfConversion("enable-if-conversion", cl::init(true), cl::Hidden,
27f2ec16ccSHideki Saito                        cl::desc("Enable if-conversion during vectorization."));
28f2ec16ccSHideki Saito 
29f2ec16ccSHideki Saito static cl::opt<unsigned> PragmaVectorizeMemoryCheckThreshold(
30f2ec16ccSHideki Saito     "pragma-vectorize-memory-check-threshold", cl::init(128), cl::Hidden,
31f2ec16ccSHideki Saito     cl::desc("The maximum allowed number of runtime memory checks with a "
32f2ec16ccSHideki Saito              "vectorize(enable) pragma."));
33f2ec16ccSHideki Saito 
34f2ec16ccSHideki Saito static cl::opt<unsigned> VectorizeSCEVCheckThreshold(
35f2ec16ccSHideki Saito     "vectorize-scev-check-threshold", cl::init(16), cl::Hidden,
36f2ec16ccSHideki Saito     cl::desc("The maximum number of SCEV checks allowed."));
37f2ec16ccSHideki Saito 
38f2ec16ccSHideki Saito static cl::opt<unsigned> PragmaVectorizeSCEVCheckThreshold(
39f2ec16ccSHideki Saito     "pragma-vectorize-scev-check-threshold", cl::init(128), cl::Hidden,
40f2ec16ccSHideki Saito     cl::desc("The maximum number of SCEV checks allowed with a "
41f2ec16ccSHideki Saito              "vectorize(enable) pragma"));
42f2ec16ccSHideki Saito 
43f2ec16ccSHideki Saito /// Maximum vectorization interleave count.
44f2ec16ccSHideki Saito static const unsigned MaxInterleaveFactor = 16;
45f2ec16ccSHideki Saito 
46f2ec16ccSHideki Saito namespace llvm {
47f2ec16ccSHideki Saito 
48f2ec16ccSHideki Saito OptimizationRemarkAnalysis createLVMissedAnalysis(const char *PassName,
49f2ec16ccSHideki Saito                                                   StringRef RemarkName,
50f2ec16ccSHideki Saito                                                   Loop *TheLoop,
51f2ec16ccSHideki Saito                                                   Instruction *I) {
52f2ec16ccSHideki Saito   Value *CodeRegion = TheLoop->getHeader();
53f2ec16ccSHideki Saito   DebugLoc DL = TheLoop->getStartLoc();
54f2ec16ccSHideki Saito 
55f2ec16ccSHideki Saito   if (I) {
56f2ec16ccSHideki Saito     CodeRegion = I->getParent();
57f2ec16ccSHideki Saito     // If there is no debug location attached to the instruction, revert back to
58f2ec16ccSHideki Saito     // using the loop's.
59f2ec16ccSHideki Saito     if (I->getDebugLoc())
60f2ec16ccSHideki Saito       DL = I->getDebugLoc();
61f2ec16ccSHideki Saito   }
62f2ec16ccSHideki Saito 
63f2ec16ccSHideki Saito   OptimizationRemarkAnalysis R(PassName, RemarkName, DL, CodeRegion);
64f2ec16ccSHideki Saito   R << "loop not vectorized: ";
65f2ec16ccSHideki Saito   return R;
66f2ec16ccSHideki Saito }
67f2ec16ccSHideki Saito 
68f2ec16ccSHideki Saito bool LoopVectorizeHints::Hint::validate(unsigned Val) {
69f2ec16ccSHideki Saito   switch (Kind) {
70f2ec16ccSHideki Saito   case HK_WIDTH:
71f2ec16ccSHideki Saito     return isPowerOf2_32(Val) && Val <= VectorizerParams::MaxVectorWidth;
72f2ec16ccSHideki Saito   case HK_UNROLL:
73f2ec16ccSHideki Saito     return isPowerOf2_32(Val) && Val <= MaxInterleaveFactor;
74f2ec16ccSHideki Saito   case HK_FORCE:
75f2ec16ccSHideki Saito     return (Val <= 1);
76f2ec16ccSHideki Saito   case HK_ISVECTORIZED:
77f2ec16ccSHideki Saito     return (Val == 0 || Val == 1);
78f2ec16ccSHideki Saito   }
79f2ec16ccSHideki Saito   return false;
80f2ec16ccSHideki Saito }
81f2ec16ccSHideki Saito 
82d4eb13c8SMichael Kruse LoopVectorizeHints::LoopVectorizeHints(const Loop *L,
83d4eb13c8SMichael Kruse                                        bool InterleaveOnlyWhenForced,
84f2ec16ccSHideki Saito                                        OptimizationRemarkEmitter &ORE)
85f2ec16ccSHideki Saito     : Width("vectorize.width", VectorizerParams::VectorizationFactor, HK_WIDTH),
86d4eb13c8SMichael Kruse       Interleave("interleave.count", InterleaveOnlyWhenForced, HK_UNROLL),
87f2ec16ccSHideki Saito       Force("vectorize.enable", FK_Undefined, HK_FORCE),
88f2ec16ccSHideki Saito       IsVectorized("isvectorized", 0, HK_ISVECTORIZED), TheLoop(L), ORE(ORE) {
89f2ec16ccSHideki Saito   // Populate values with existing loop metadata.
90f2ec16ccSHideki Saito   getHintsFromMetadata();
91f2ec16ccSHideki Saito 
92f2ec16ccSHideki Saito   // force-vector-interleave overrides DisableInterleaving.
93f2ec16ccSHideki Saito   if (VectorizerParams::isInterleaveForced())
94f2ec16ccSHideki Saito     Interleave.Value = VectorizerParams::VectorizationInterleave;
95f2ec16ccSHideki Saito 
96f2ec16ccSHideki Saito   if (IsVectorized.Value != 1)
97f2ec16ccSHideki Saito     // If the vectorization width and interleaving count are both 1 then
98f2ec16ccSHideki Saito     // consider the loop to have been already vectorized because there's
99f2ec16ccSHideki Saito     // nothing more that we can do.
100f2ec16ccSHideki Saito     IsVectorized.Value = Width.Value == 1 && Interleave.Value == 1;
101d4eb13c8SMichael Kruse   LLVM_DEBUG(if (InterleaveOnlyWhenForced && Interleave.Value == 1) dbgs()
102f2ec16ccSHideki Saito              << "LV: Interleaving disabled by the pass manager\n");
103f2ec16ccSHideki Saito }
104f2ec16ccSHideki Saito 
105d4eb13c8SMichael Kruse bool LoopVectorizeHints::allowVectorization(
106d4eb13c8SMichael Kruse     Function *F, Loop *L, bool VectorizeOnlyWhenForced) const {
107f2ec16ccSHideki Saito   if (getForce() == LoopVectorizeHints::FK_Disabled) {
108d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Not vectorizing: #pragma vectorize disable.\n");
109f2ec16ccSHideki Saito     emitRemarkWithHints();
110f2ec16ccSHideki Saito     return false;
111f2ec16ccSHideki Saito   }
112f2ec16ccSHideki Saito 
113d4eb13c8SMichael Kruse   if (VectorizeOnlyWhenForced && getForce() != LoopVectorizeHints::FK_Enabled) {
114d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Not vectorizing: No #pragma vectorize enable.\n");
115f2ec16ccSHideki Saito     emitRemarkWithHints();
116f2ec16ccSHideki Saito     return false;
117f2ec16ccSHideki Saito   }
118f2ec16ccSHideki Saito 
119f2ec16ccSHideki Saito   if (getIsVectorized() == 1) {
120d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Not vectorizing: Disabled/already vectorized.\n");
121f2ec16ccSHideki Saito     // FIXME: Add interleave.disable metadata. This will allow
122f2ec16ccSHideki Saito     // vectorize.disable to be used without disabling the pass and errors
123f2ec16ccSHideki Saito     // to differentiate between disabled vectorization and a width of 1.
124f2ec16ccSHideki Saito     ORE.emit([&]() {
125f2ec16ccSHideki Saito       return OptimizationRemarkAnalysis(vectorizeAnalysisPassName(),
126f2ec16ccSHideki Saito                                         "AllDisabled", L->getStartLoc(),
127f2ec16ccSHideki Saito                                         L->getHeader())
128f2ec16ccSHideki Saito              << "loop not vectorized: vectorization and interleaving are "
129f2ec16ccSHideki Saito                 "explicitly disabled, or the loop has already been "
130f2ec16ccSHideki Saito                 "vectorized";
131f2ec16ccSHideki Saito     });
132f2ec16ccSHideki Saito     return false;
133f2ec16ccSHideki Saito   }
134f2ec16ccSHideki Saito 
135f2ec16ccSHideki Saito   return true;
136f2ec16ccSHideki Saito }
137f2ec16ccSHideki Saito 
138f2ec16ccSHideki Saito void LoopVectorizeHints::emitRemarkWithHints() const {
139f2ec16ccSHideki Saito   using namespace ore;
140f2ec16ccSHideki Saito 
141f2ec16ccSHideki Saito   ORE.emit([&]() {
142f2ec16ccSHideki Saito     if (Force.Value == LoopVectorizeHints::FK_Disabled)
143f2ec16ccSHideki Saito       return OptimizationRemarkMissed(LV_NAME, "MissedExplicitlyDisabled",
144f2ec16ccSHideki Saito                                       TheLoop->getStartLoc(),
145f2ec16ccSHideki Saito                                       TheLoop->getHeader())
146f2ec16ccSHideki Saito              << "loop not vectorized: vectorization is explicitly disabled";
147f2ec16ccSHideki Saito     else {
148f2ec16ccSHideki Saito       OptimizationRemarkMissed R(LV_NAME, "MissedDetails",
149f2ec16ccSHideki Saito                                  TheLoop->getStartLoc(), TheLoop->getHeader());
150f2ec16ccSHideki Saito       R << "loop not vectorized";
151f2ec16ccSHideki Saito       if (Force.Value == LoopVectorizeHints::FK_Enabled) {
152f2ec16ccSHideki Saito         R << " (Force=" << NV("Force", true);
153f2ec16ccSHideki Saito         if (Width.Value != 0)
154f2ec16ccSHideki Saito           R << ", Vector Width=" << NV("VectorWidth", Width.Value);
155f2ec16ccSHideki Saito         if (Interleave.Value != 0)
156f2ec16ccSHideki Saito           R << ", Interleave Count=" << NV("InterleaveCount", Interleave.Value);
157f2ec16ccSHideki Saito         R << ")";
158f2ec16ccSHideki Saito       }
159f2ec16ccSHideki Saito       return R;
160f2ec16ccSHideki Saito     }
161f2ec16ccSHideki Saito   });
162f2ec16ccSHideki Saito }
163f2ec16ccSHideki Saito 
164f2ec16ccSHideki Saito const char *LoopVectorizeHints::vectorizeAnalysisPassName() const {
165f2ec16ccSHideki Saito   if (getWidth() == 1)
166f2ec16ccSHideki Saito     return LV_NAME;
167f2ec16ccSHideki Saito   if (getForce() == LoopVectorizeHints::FK_Disabled)
168f2ec16ccSHideki Saito     return LV_NAME;
169f2ec16ccSHideki Saito   if (getForce() == LoopVectorizeHints::FK_Undefined && getWidth() == 0)
170f2ec16ccSHideki Saito     return LV_NAME;
171f2ec16ccSHideki Saito   return OptimizationRemarkAnalysis::AlwaysPrint;
172f2ec16ccSHideki Saito }
173f2ec16ccSHideki Saito 
174f2ec16ccSHideki Saito void LoopVectorizeHints::getHintsFromMetadata() {
175f2ec16ccSHideki Saito   MDNode *LoopID = TheLoop->getLoopID();
176f2ec16ccSHideki Saito   if (!LoopID)
177f2ec16ccSHideki Saito     return;
178f2ec16ccSHideki Saito 
179f2ec16ccSHideki Saito   // First operand should refer to the loop id itself.
180f2ec16ccSHideki Saito   assert(LoopID->getNumOperands() > 0 && "requires at least one operand");
181f2ec16ccSHideki Saito   assert(LoopID->getOperand(0) == LoopID && "invalid loop id");
182f2ec16ccSHideki Saito 
183f2ec16ccSHideki Saito   for (unsigned i = 1, ie = LoopID->getNumOperands(); i < ie; ++i) {
184f2ec16ccSHideki Saito     const MDString *S = nullptr;
185f2ec16ccSHideki Saito     SmallVector<Metadata *, 4> Args;
186f2ec16ccSHideki Saito 
187f2ec16ccSHideki Saito     // The expected hint is either a MDString or a MDNode with the first
188f2ec16ccSHideki Saito     // operand a MDString.
189f2ec16ccSHideki Saito     if (const MDNode *MD = dyn_cast<MDNode>(LoopID->getOperand(i))) {
190f2ec16ccSHideki Saito       if (!MD || MD->getNumOperands() == 0)
191f2ec16ccSHideki Saito         continue;
192f2ec16ccSHideki Saito       S = dyn_cast<MDString>(MD->getOperand(0));
193f2ec16ccSHideki Saito       for (unsigned i = 1, ie = MD->getNumOperands(); i < ie; ++i)
194f2ec16ccSHideki Saito         Args.push_back(MD->getOperand(i));
195f2ec16ccSHideki Saito     } else {
196f2ec16ccSHideki Saito       S = dyn_cast<MDString>(LoopID->getOperand(i));
197f2ec16ccSHideki Saito       assert(Args.size() == 0 && "too many arguments for MDString");
198f2ec16ccSHideki Saito     }
199f2ec16ccSHideki Saito 
200f2ec16ccSHideki Saito     if (!S)
201f2ec16ccSHideki Saito       continue;
202f2ec16ccSHideki Saito 
203f2ec16ccSHideki Saito     // Check if the hint starts with the loop metadata prefix.
204f2ec16ccSHideki Saito     StringRef Name = S->getString();
205f2ec16ccSHideki Saito     if (Args.size() == 1)
206f2ec16ccSHideki Saito       setHint(Name, Args[0]);
207f2ec16ccSHideki Saito   }
208f2ec16ccSHideki Saito }
209f2ec16ccSHideki Saito 
210f2ec16ccSHideki Saito void LoopVectorizeHints::setHint(StringRef Name, Metadata *Arg) {
211f2ec16ccSHideki Saito   if (!Name.startswith(Prefix()))
212f2ec16ccSHideki Saito     return;
213f2ec16ccSHideki Saito   Name = Name.substr(Prefix().size(), StringRef::npos);
214f2ec16ccSHideki Saito 
215f2ec16ccSHideki Saito   const ConstantInt *C = mdconst::dyn_extract<ConstantInt>(Arg);
216f2ec16ccSHideki Saito   if (!C)
217f2ec16ccSHideki Saito     return;
218f2ec16ccSHideki Saito   unsigned Val = C->getZExtValue();
219f2ec16ccSHideki Saito 
220f2ec16ccSHideki Saito   Hint *Hints[] = {&Width, &Interleave, &Force, &IsVectorized};
221f2ec16ccSHideki Saito   for (auto H : Hints) {
222f2ec16ccSHideki Saito     if (Name == H->Name) {
223f2ec16ccSHideki Saito       if (H->validate(Val))
224f2ec16ccSHideki Saito         H->Value = Val;
225f2ec16ccSHideki Saito       else
226d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: ignoring invalid hint '" << Name << "'\n");
227f2ec16ccSHideki Saito       break;
228f2ec16ccSHideki Saito     }
229f2ec16ccSHideki Saito   }
230f2ec16ccSHideki Saito }
231f2ec16ccSHideki Saito 
232f2ec16ccSHideki Saito MDNode *LoopVectorizeHints::createHintMetadata(StringRef Name,
233f2ec16ccSHideki Saito                                                unsigned V) const {
234f2ec16ccSHideki Saito   LLVMContext &Context = TheLoop->getHeader()->getContext();
235f2ec16ccSHideki Saito   Metadata *MDs[] = {
236f2ec16ccSHideki Saito       MDString::get(Context, Name),
237f2ec16ccSHideki Saito       ConstantAsMetadata::get(ConstantInt::get(Type::getInt32Ty(Context), V))};
238f2ec16ccSHideki Saito   return MDNode::get(Context, MDs);
239f2ec16ccSHideki Saito }
240f2ec16ccSHideki Saito 
241f2ec16ccSHideki Saito bool LoopVectorizeHints::matchesHintMetadataName(MDNode *Node,
242f2ec16ccSHideki Saito                                                  ArrayRef<Hint> HintTypes) {
243f2ec16ccSHideki Saito   MDString *Name = dyn_cast<MDString>(Node->getOperand(0));
244f2ec16ccSHideki Saito   if (!Name)
245f2ec16ccSHideki Saito     return false;
246f2ec16ccSHideki Saito 
247f2ec16ccSHideki Saito   for (auto H : HintTypes)
248f2ec16ccSHideki Saito     if (Name->getString().endswith(H.Name))
249f2ec16ccSHideki Saito       return true;
250f2ec16ccSHideki Saito   return false;
251f2ec16ccSHideki Saito }
252f2ec16ccSHideki Saito 
253f2ec16ccSHideki Saito void LoopVectorizeHints::writeHintsToMetadata(ArrayRef<Hint> HintTypes) {
254f2ec16ccSHideki Saito   if (HintTypes.empty())
255f2ec16ccSHideki Saito     return;
256f2ec16ccSHideki Saito 
257f2ec16ccSHideki Saito   // Reserve the first element to LoopID (see below).
258f2ec16ccSHideki Saito   SmallVector<Metadata *, 4> MDs(1);
259f2ec16ccSHideki Saito   // If the loop already has metadata, then ignore the existing operands.
260f2ec16ccSHideki Saito   MDNode *LoopID = TheLoop->getLoopID();
261f2ec16ccSHideki Saito   if (LoopID) {
262f2ec16ccSHideki Saito     for (unsigned i = 1, ie = LoopID->getNumOperands(); i < ie; ++i) {
263f2ec16ccSHideki Saito       MDNode *Node = cast<MDNode>(LoopID->getOperand(i));
264f2ec16ccSHideki Saito       // If node in update list, ignore old value.
265f2ec16ccSHideki Saito       if (!matchesHintMetadataName(Node, HintTypes))
266f2ec16ccSHideki Saito         MDs.push_back(Node);
267f2ec16ccSHideki Saito     }
268f2ec16ccSHideki Saito   }
269f2ec16ccSHideki Saito 
270f2ec16ccSHideki Saito   // Now, add the missing hints.
271f2ec16ccSHideki Saito   for (auto H : HintTypes)
272f2ec16ccSHideki Saito     MDs.push_back(createHintMetadata(Twine(Prefix(), H.Name).str(), H.Value));
273f2ec16ccSHideki Saito 
274f2ec16ccSHideki Saito   // Replace current metadata node with new one.
275f2ec16ccSHideki Saito   LLVMContext &Context = TheLoop->getHeader()->getContext();
276f2ec16ccSHideki Saito   MDNode *NewLoopID = MDNode::get(Context, MDs);
277f2ec16ccSHideki Saito   // Set operand 0 to refer to the loop id itself.
278f2ec16ccSHideki Saito   NewLoopID->replaceOperandWith(0, NewLoopID);
279f2ec16ccSHideki Saito 
280f2ec16ccSHideki Saito   TheLoop->setLoopID(NewLoopID);
281f2ec16ccSHideki Saito }
282f2ec16ccSHideki Saito 
283f2ec16ccSHideki Saito bool LoopVectorizationRequirements::doesNotMeet(
284f2ec16ccSHideki Saito     Function *F, Loop *L, const LoopVectorizeHints &Hints) {
285f2ec16ccSHideki Saito   const char *PassName = Hints.vectorizeAnalysisPassName();
286f2ec16ccSHideki Saito   bool Failed = false;
287f2ec16ccSHideki Saito   if (UnsafeAlgebraInst && !Hints.allowReordering()) {
288f2ec16ccSHideki Saito     ORE.emit([&]() {
289f2ec16ccSHideki Saito       return OptimizationRemarkAnalysisFPCommute(
290f2ec16ccSHideki Saito                  PassName, "CantReorderFPOps", UnsafeAlgebraInst->getDebugLoc(),
291f2ec16ccSHideki Saito                  UnsafeAlgebraInst->getParent())
292f2ec16ccSHideki Saito              << "loop not vectorized: cannot prove it is safe to reorder "
293f2ec16ccSHideki Saito                 "floating-point operations";
294f2ec16ccSHideki Saito     });
295f2ec16ccSHideki Saito     Failed = true;
296f2ec16ccSHideki Saito   }
297f2ec16ccSHideki Saito 
298f2ec16ccSHideki Saito   // Test if runtime memcheck thresholds are exceeded.
299f2ec16ccSHideki Saito   bool PragmaThresholdReached =
300f2ec16ccSHideki Saito       NumRuntimePointerChecks > PragmaVectorizeMemoryCheckThreshold;
301f2ec16ccSHideki Saito   bool ThresholdReached =
302f2ec16ccSHideki Saito       NumRuntimePointerChecks > VectorizerParams::RuntimeMemoryCheckThreshold;
303f2ec16ccSHideki Saito   if ((ThresholdReached && !Hints.allowReordering()) ||
304f2ec16ccSHideki Saito       PragmaThresholdReached) {
305f2ec16ccSHideki Saito     ORE.emit([&]() {
306f2ec16ccSHideki Saito       return OptimizationRemarkAnalysisAliasing(PassName, "CantReorderMemOps",
307f2ec16ccSHideki Saito                                                 L->getStartLoc(),
308f2ec16ccSHideki Saito                                                 L->getHeader())
309f2ec16ccSHideki Saito              << "loop not vectorized: cannot prove it is safe to reorder "
310f2ec16ccSHideki Saito                 "memory operations";
311f2ec16ccSHideki Saito     });
312d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Too many memory checks needed.\n");
313f2ec16ccSHideki Saito     Failed = true;
314f2ec16ccSHideki Saito   }
315f2ec16ccSHideki Saito 
316f2ec16ccSHideki Saito   return Failed;
317f2ec16ccSHideki Saito }
318f2ec16ccSHideki Saito 
319f2ec16ccSHideki Saito // Return true if the inner loop \p Lp is uniform with regard to the outer loop
320f2ec16ccSHideki Saito // \p OuterLp (i.e., if the outer loop is vectorized, all the vector lanes
321f2ec16ccSHideki Saito // executing the inner loop will execute the same iterations). This check is
322f2ec16ccSHideki Saito // very constrained for now but it will be relaxed in the future. \p Lp is
323f2ec16ccSHideki Saito // considered uniform if it meets all the following conditions:
324f2ec16ccSHideki Saito //   1) it has a canonical IV (starting from 0 and with stride 1),
325f2ec16ccSHideki Saito //   2) its latch terminator is a conditional branch and,
326f2ec16ccSHideki Saito //   3) its latch condition is a compare instruction whose operands are the
327f2ec16ccSHideki Saito //      canonical IV and an OuterLp invariant.
328f2ec16ccSHideki Saito // This check doesn't take into account the uniformity of other conditions not
329f2ec16ccSHideki Saito // related to the loop latch because they don't affect the loop uniformity.
330f2ec16ccSHideki Saito //
331f2ec16ccSHideki Saito // NOTE: We decided to keep all these checks and its associated documentation
332f2ec16ccSHideki Saito // together so that we can easily have a picture of the current supported loop
333f2ec16ccSHideki Saito // nests. However, some of the current checks don't depend on \p OuterLp and
334f2ec16ccSHideki Saito // would be redundantly executed for each \p Lp if we invoked this function for
335f2ec16ccSHideki Saito // different candidate outer loops. This is not the case for now because we
336f2ec16ccSHideki Saito // don't currently have the infrastructure to evaluate multiple candidate outer
337f2ec16ccSHideki Saito // loops and \p OuterLp will be a fixed parameter while we only support explicit
338f2ec16ccSHideki Saito // outer loop vectorization. It's also very likely that these checks go away
339f2ec16ccSHideki Saito // before introducing the aforementioned infrastructure. However, if this is not
340f2ec16ccSHideki Saito // the case, we should move the \p OuterLp independent checks to a separate
341f2ec16ccSHideki Saito // function that is only executed once for each \p Lp.
342f2ec16ccSHideki Saito static bool isUniformLoop(Loop *Lp, Loop *OuterLp) {
343f2ec16ccSHideki Saito   assert(Lp->getLoopLatch() && "Expected loop with a single latch.");
344f2ec16ccSHideki Saito 
345f2ec16ccSHideki Saito   // If Lp is the outer loop, it's uniform by definition.
346f2ec16ccSHideki Saito   if (Lp == OuterLp)
347f2ec16ccSHideki Saito     return true;
348f2ec16ccSHideki Saito   assert(OuterLp->contains(Lp) && "OuterLp must contain Lp.");
349f2ec16ccSHideki Saito 
350f2ec16ccSHideki Saito   // 1.
351f2ec16ccSHideki Saito   PHINode *IV = Lp->getCanonicalInductionVariable();
352f2ec16ccSHideki Saito   if (!IV) {
353d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Canonical IV not found.\n");
354f2ec16ccSHideki Saito     return false;
355f2ec16ccSHideki Saito   }
356f2ec16ccSHideki Saito 
357f2ec16ccSHideki Saito   // 2.
358f2ec16ccSHideki Saito   BasicBlock *Latch = Lp->getLoopLatch();
359f2ec16ccSHideki Saito   auto *LatchBr = dyn_cast<BranchInst>(Latch->getTerminator());
360f2ec16ccSHideki Saito   if (!LatchBr || LatchBr->isUnconditional()) {
361d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Unsupported loop latch branch.\n");
362f2ec16ccSHideki Saito     return false;
363f2ec16ccSHideki Saito   }
364f2ec16ccSHideki Saito 
365f2ec16ccSHideki Saito   // 3.
366f2ec16ccSHideki Saito   auto *LatchCmp = dyn_cast<CmpInst>(LatchBr->getCondition());
367f2ec16ccSHideki Saito   if (!LatchCmp) {
368d34e60caSNicola Zaghen     LLVM_DEBUG(
369d34e60caSNicola Zaghen         dbgs() << "LV: Loop latch condition is not a compare instruction.\n");
370f2ec16ccSHideki Saito     return false;
371f2ec16ccSHideki Saito   }
372f2ec16ccSHideki Saito 
373f2ec16ccSHideki Saito   Value *CondOp0 = LatchCmp->getOperand(0);
374f2ec16ccSHideki Saito   Value *CondOp1 = LatchCmp->getOperand(1);
375f2ec16ccSHideki Saito   Value *IVUpdate = IV->getIncomingValueForBlock(Latch);
376f2ec16ccSHideki Saito   if (!(CondOp0 == IVUpdate && OuterLp->isLoopInvariant(CondOp1)) &&
377f2ec16ccSHideki Saito       !(CondOp1 == IVUpdate && OuterLp->isLoopInvariant(CondOp0))) {
378d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Loop latch condition is not uniform.\n");
379f2ec16ccSHideki Saito     return false;
380f2ec16ccSHideki Saito   }
381f2ec16ccSHideki Saito 
382f2ec16ccSHideki Saito   return true;
383f2ec16ccSHideki Saito }
384f2ec16ccSHideki Saito 
385f2ec16ccSHideki Saito // Return true if \p Lp and all its nested loops are uniform with regard to \p
386f2ec16ccSHideki Saito // OuterLp.
387f2ec16ccSHideki Saito static bool isUniformLoopNest(Loop *Lp, Loop *OuterLp) {
388f2ec16ccSHideki Saito   if (!isUniformLoop(Lp, OuterLp))
389f2ec16ccSHideki Saito     return false;
390f2ec16ccSHideki Saito 
391f2ec16ccSHideki Saito   // Check if nested loops are uniform.
392f2ec16ccSHideki Saito   for (Loop *SubLp : *Lp)
393f2ec16ccSHideki Saito     if (!isUniformLoopNest(SubLp, OuterLp))
394f2ec16ccSHideki Saito       return false;
395f2ec16ccSHideki Saito 
396f2ec16ccSHideki Saito   return true;
397f2ec16ccSHideki Saito }
398f2ec16ccSHideki Saito 
3995f8f34e4SAdrian Prantl /// Check whether it is safe to if-convert this phi node.
400f2ec16ccSHideki Saito ///
401f2ec16ccSHideki Saito /// Phi nodes with constant expressions that can trap are not safe to if
402f2ec16ccSHideki Saito /// convert.
403f2ec16ccSHideki Saito static bool canIfConvertPHINodes(BasicBlock *BB) {
404f2ec16ccSHideki Saito   for (PHINode &Phi : BB->phis()) {
405f2ec16ccSHideki Saito     for (Value *V : Phi.incoming_values())
406f2ec16ccSHideki Saito       if (auto *C = dyn_cast<Constant>(V))
407f2ec16ccSHideki Saito         if (C->canTrap())
408f2ec16ccSHideki Saito           return false;
409f2ec16ccSHideki Saito   }
410f2ec16ccSHideki Saito   return true;
411f2ec16ccSHideki Saito }
412f2ec16ccSHideki Saito 
413f2ec16ccSHideki Saito static Type *convertPointerToIntegerType(const DataLayout &DL, Type *Ty) {
414f2ec16ccSHideki Saito   if (Ty->isPointerTy())
415f2ec16ccSHideki Saito     return DL.getIntPtrType(Ty);
416f2ec16ccSHideki Saito 
417f2ec16ccSHideki Saito   // It is possible that char's or short's overflow when we ask for the loop's
418f2ec16ccSHideki Saito   // trip count, work around this by changing the type size.
419f2ec16ccSHideki Saito   if (Ty->getScalarSizeInBits() < 32)
420f2ec16ccSHideki Saito     return Type::getInt32Ty(Ty->getContext());
421f2ec16ccSHideki Saito 
422f2ec16ccSHideki Saito   return Ty;
423f2ec16ccSHideki Saito }
424f2ec16ccSHideki Saito 
425f2ec16ccSHideki Saito static Type *getWiderType(const DataLayout &DL, Type *Ty0, Type *Ty1) {
426f2ec16ccSHideki Saito   Ty0 = convertPointerToIntegerType(DL, Ty0);
427f2ec16ccSHideki Saito   Ty1 = convertPointerToIntegerType(DL, Ty1);
428f2ec16ccSHideki Saito   if (Ty0->getScalarSizeInBits() > Ty1->getScalarSizeInBits())
429f2ec16ccSHideki Saito     return Ty0;
430f2ec16ccSHideki Saito   return Ty1;
431f2ec16ccSHideki Saito }
432f2ec16ccSHideki Saito 
4335f8f34e4SAdrian Prantl /// Check that the instruction has outside loop users and is not an
434f2ec16ccSHideki Saito /// identified reduction variable.
435f2ec16ccSHideki Saito static bool hasOutsideLoopUser(const Loop *TheLoop, Instruction *Inst,
436f2ec16ccSHideki Saito                                SmallPtrSetImpl<Value *> &AllowedExit) {
43760a1e4ddSAnna Thomas   // Reductions, Inductions and non-header phis are allowed to have exit users. All
438f2ec16ccSHideki Saito   // other instructions must not have external users.
439f2ec16ccSHideki Saito   if (!AllowedExit.count(Inst))
440f2ec16ccSHideki Saito     // Check that all of the users of the loop are inside the BB.
441f2ec16ccSHideki Saito     for (User *U : Inst->users()) {
442f2ec16ccSHideki Saito       Instruction *UI = cast<Instruction>(U);
443f2ec16ccSHideki Saito       // This user may be a reduction exit value.
444f2ec16ccSHideki Saito       if (!TheLoop->contains(UI)) {
445d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: Found an outside user for : " << *UI << '\n');
446f2ec16ccSHideki Saito         return true;
447f2ec16ccSHideki Saito       }
448f2ec16ccSHideki Saito     }
449f2ec16ccSHideki Saito   return false;
450f2ec16ccSHideki Saito }
451f2ec16ccSHideki Saito 
452f2ec16ccSHideki Saito int LoopVectorizationLegality::isConsecutivePtr(Value *Ptr) {
453f2ec16ccSHideki Saito   const ValueToValueMap &Strides =
454f2ec16ccSHideki Saito       getSymbolicStrides() ? *getSymbolicStrides() : ValueToValueMap();
455f2ec16ccSHideki Saito 
456f2ec16ccSHideki Saito   int Stride = getPtrStride(PSE, Ptr, TheLoop, Strides, true, false);
457f2ec16ccSHideki Saito   if (Stride == 1 || Stride == -1)
458f2ec16ccSHideki Saito     return Stride;
459f2ec16ccSHideki Saito   return 0;
460f2ec16ccSHideki Saito }
461f2ec16ccSHideki Saito 
462f2ec16ccSHideki Saito bool LoopVectorizationLegality::isUniform(Value *V) {
463f2ec16ccSHideki Saito   return LAI->isUniform(V);
464f2ec16ccSHideki Saito }
465f2ec16ccSHideki Saito 
466f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeOuterLoop() {
467f2ec16ccSHideki Saito   assert(!TheLoop->empty() && "We are not vectorizing an outer loop.");
468f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
469f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
470f2ec16ccSHideki Saito   bool Result = true;
471f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
472f2ec16ccSHideki Saito 
473f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
474f2ec16ccSHideki Saito     // Check whether the BB terminator is a BranchInst. Any other terminator is
475f2ec16ccSHideki Saito     // not supported yet.
476f2ec16ccSHideki Saito     auto *Br = dyn_cast<BranchInst>(BB->getTerminator());
477f2ec16ccSHideki Saito     if (!Br) {
478d34e60caSNicola Zaghen       LLVM_DEBUG(dbgs() << "LV: Unsupported basic block terminator.\n");
479f2ec16ccSHideki Saito       ORE->emit(createMissedAnalysis("CFGNotUnderstood")
480f2ec16ccSHideki Saito                 << "loop control flow is not understood by vectorizer");
481f2ec16ccSHideki Saito       if (DoExtraAnalysis)
482f2ec16ccSHideki Saito         Result = false;
483f2ec16ccSHideki Saito       else
484f2ec16ccSHideki Saito         return false;
485f2ec16ccSHideki Saito     }
486f2ec16ccSHideki Saito 
487f2ec16ccSHideki Saito     // Check whether the BranchInst is a supported one. Only unconditional
488f2ec16ccSHideki Saito     // branches, conditional branches with an outer loop invariant condition or
489f2ec16ccSHideki Saito     // backedges are supported.
490f2ec16ccSHideki Saito     if (Br && Br->isConditional() &&
491f2ec16ccSHideki Saito         !TheLoop->isLoopInvariant(Br->getCondition()) &&
492f2ec16ccSHideki Saito         !LI->isLoopHeader(Br->getSuccessor(0)) &&
493f2ec16ccSHideki Saito         !LI->isLoopHeader(Br->getSuccessor(1))) {
494d34e60caSNicola Zaghen       LLVM_DEBUG(dbgs() << "LV: Unsupported conditional branch.\n");
495f2ec16ccSHideki Saito       ORE->emit(createMissedAnalysis("CFGNotUnderstood")
496f2ec16ccSHideki Saito                 << "loop control flow is not understood by vectorizer");
497f2ec16ccSHideki Saito       if (DoExtraAnalysis)
498f2ec16ccSHideki Saito         Result = false;
499f2ec16ccSHideki Saito       else
500f2ec16ccSHideki Saito         return false;
501f2ec16ccSHideki Saito     }
502f2ec16ccSHideki Saito   }
503f2ec16ccSHideki Saito 
504f2ec16ccSHideki Saito   // Check whether inner loops are uniform. At this point, we only support
505f2ec16ccSHideki Saito   // simple outer loops scenarios with uniform nested loops.
506f2ec16ccSHideki Saito   if (!isUniformLoopNest(TheLoop /*loop nest*/,
507f2ec16ccSHideki Saito                          TheLoop /*context outer loop*/)) {
508d34e60caSNicola Zaghen     LLVM_DEBUG(
509d34e60caSNicola Zaghen         dbgs()
510f2ec16ccSHideki Saito         << "LV: Not vectorizing: Outer loop contains divergent loops.\n");
511f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("CFGNotUnderstood")
512f2ec16ccSHideki Saito               << "loop control flow is not understood by vectorizer");
513f2ec16ccSHideki Saito     if (DoExtraAnalysis)
514f2ec16ccSHideki Saito       Result = false;
515f2ec16ccSHideki Saito     else
516f2ec16ccSHideki Saito       return false;
517f2ec16ccSHideki Saito   }
518f2ec16ccSHideki Saito 
519ea7f3035SHideki Saito   // Check whether we are able to set up outer loop induction.
520ea7f3035SHideki Saito   if (!setupOuterLoopInductions()) {
521ea7f3035SHideki Saito     LLVM_DEBUG(
522ea7f3035SHideki Saito         dbgs() << "LV: Not vectorizing: Unsupported outer loop Phi(s).\n");
523ea7f3035SHideki Saito     ORE->emit(createMissedAnalysis("UnsupportedPhi")
524ea7f3035SHideki Saito               << "Unsupported outer loop Phi(s)");
525ea7f3035SHideki Saito     if (DoExtraAnalysis)
526ea7f3035SHideki Saito       Result = false;
527ea7f3035SHideki Saito     else
528ea7f3035SHideki Saito       return false;
529ea7f3035SHideki Saito   }
530ea7f3035SHideki Saito 
531f2ec16ccSHideki Saito   return Result;
532f2ec16ccSHideki Saito }
533f2ec16ccSHideki Saito 
534f2ec16ccSHideki Saito void LoopVectorizationLegality::addInductionPhi(
535f2ec16ccSHideki Saito     PHINode *Phi, const InductionDescriptor &ID,
536f2ec16ccSHideki Saito     SmallPtrSetImpl<Value *> &AllowedExit) {
537f2ec16ccSHideki Saito   Inductions[Phi] = ID;
538f2ec16ccSHideki Saito 
539f2ec16ccSHideki Saito   // In case this induction also comes with casts that we know we can ignore
540f2ec16ccSHideki Saito   // in the vectorized loop body, record them here. All casts could be recorded
541f2ec16ccSHideki Saito   // here for ignoring, but suffices to record only the first (as it is the
542f2ec16ccSHideki Saito   // only one that may bw used outside the cast sequence).
543f2ec16ccSHideki Saito   const SmallVectorImpl<Instruction *> &Casts = ID.getCastInsts();
544f2ec16ccSHideki Saito   if (!Casts.empty())
545f2ec16ccSHideki Saito     InductionCastsToIgnore.insert(*Casts.begin());
546f2ec16ccSHideki Saito 
547f2ec16ccSHideki Saito   Type *PhiTy = Phi->getType();
548f2ec16ccSHideki Saito   const DataLayout &DL = Phi->getModule()->getDataLayout();
549f2ec16ccSHideki Saito 
550f2ec16ccSHideki Saito   // Get the widest type.
551f2ec16ccSHideki Saito   if (!PhiTy->isFloatingPointTy()) {
552f2ec16ccSHideki Saito     if (!WidestIndTy)
553f2ec16ccSHideki Saito       WidestIndTy = convertPointerToIntegerType(DL, PhiTy);
554f2ec16ccSHideki Saito     else
555f2ec16ccSHideki Saito       WidestIndTy = getWiderType(DL, PhiTy, WidestIndTy);
556f2ec16ccSHideki Saito   }
557f2ec16ccSHideki Saito 
558f2ec16ccSHideki Saito   // Int inductions are special because we only allow one IV.
559f2ec16ccSHideki Saito   if (ID.getKind() == InductionDescriptor::IK_IntInduction &&
560f2ec16ccSHideki Saito       ID.getConstIntStepValue() && ID.getConstIntStepValue()->isOne() &&
561f2ec16ccSHideki Saito       isa<Constant>(ID.getStartValue()) &&
562f2ec16ccSHideki Saito       cast<Constant>(ID.getStartValue())->isNullValue()) {
563f2ec16ccSHideki Saito 
564f2ec16ccSHideki Saito     // Use the phi node with the widest type as induction. Use the last
565f2ec16ccSHideki Saito     // one if there are multiple (no good reason for doing this other
566f2ec16ccSHideki Saito     // than it is expedient). We've checked that it begins at zero and
567f2ec16ccSHideki Saito     // steps by one, so this is a canonical induction variable.
568f2ec16ccSHideki Saito     if (!PrimaryInduction || PhiTy == WidestIndTy)
569f2ec16ccSHideki Saito       PrimaryInduction = Phi;
570f2ec16ccSHideki Saito   }
571f2ec16ccSHideki Saito 
572f2ec16ccSHideki Saito   // Both the PHI node itself, and the "post-increment" value feeding
573f2ec16ccSHideki Saito   // back into the PHI node may have external users.
574f2ec16ccSHideki Saito   // We can allow those uses, except if the SCEVs we have for them rely
575f2ec16ccSHideki Saito   // on predicates that only hold within the loop, since allowing the exit
5766a1dd77fSAnna Thomas   // currently means re-using this SCEV outside the loop (see PR33706 for more
5776a1dd77fSAnna Thomas   // details).
578f2ec16ccSHideki Saito   if (PSE.getUnionPredicate().isAlwaysTrue()) {
579f2ec16ccSHideki Saito     AllowedExit.insert(Phi);
580f2ec16ccSHideki Saito     AllowedExit.insert(Phi->getIncomingValueForBlock(TheLoop->getLoopLatch()));
581f2ec16ccSHideki Saito   }
582f2ec16ccSHideki Saito 
583d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "LV: Found an induction variable.\n");
584f2ec16ccSHideki Saito }
585f2ec16ccSHideki Saito 
586ea7f3035SHideki Saito bool LoopVectorizationLegality::setupOuterLoopInductions() {
587ea7f3035SHideki Saito   BasicBlock *Header = TheLoop->getHeader();
588ea7f3035SHideki Saito 
589ea7f3035SHideki Saito   // Returns true if a given Phi is a supported induction.
590ea7f3035SHideki Saito   auto isSupportedPhi = [&](PHINode &Phi) -> bool {
591ea7f3035SHideki Saito     InductionDescriptor ID;
592ea7f3035SHideki Saito     if (InductionDescriptor::isInductionPHI(&Phi, TheLoop, PSE, ID) &&
593ea7f3035SHideki Saito         ID.getKind() == InductionDescriptor::IK_IntInduction) {
594ea7f3035SHideki Saito       addInductionPhi(&Phi, ID, AllowedExit);
595ea7f3035SHideki Saito       return true;
596ea7f3035SHideki Saito     } else {
597ea7f3035SHideki Saito       // Bail out for any Phi in the outer loop header that is not a supported
598ea7f3035SHideki Saito       // induction.
599ea7f3035SHideki Saito       LLVM_DEBUG(
600ea7f3035SHideki Saito           dbgs()
601ea7f3035SHideki Saito           << "LV: Found unsupported PHI for outer loop vectorization.\n");
602ea7f3035SHideki Saito       return false;
603ea7f3035SHideki Saito     }
604ea7f3035SHideki Saito   };
605ea7f3035SHideki Saito 
606ea7f3035SHideki Saito   if (llvm::all_of(Header->phis(), isSupportedPhi))
607ea7f3035SHideki Saito     return true;
608ea7f3035SHideki Saito   else
609ea7f3035SHideki Saito     return false;
610ea7f3035SHideki Saito }
611ea7f3035SHideki Saito 
612f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeInstrs() {
613f2ec16ccSHideki Saito   BasicBlock *Header = TheLoop->getHeader();
614f2ec16ccSHideki Saito 
615f2ec16ccSHideki Saito   // Look for the attribute signaling the absence of NaNs.
616f2ec16ccSHideki Saito   Function &F = *Header->getParent();
617f2ec16ccSHideki Saito   HasFunNoNaNAttr =
618f2ec16ccSHideki Saito       F.getFnAttribute("no-nans-fp-math").getValueAsString() == "true";
619f2ec16ccSHideki Saito 
620f2ec16ccSHideki Saito   // For each block in the loop.
621f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
622f2ec16ccSHideki Saito     // Scan the instructions in the block and look for hazards.
623f2ec16ccSHideki Saito     for (Instruction &I : *BB) {
624f2ec16ccSHideki Saito       if (auto *Phi = dyn_cast<PHINode>(&I)) {
625f2ec16ccSHideki Saito         Type *PhiTy = Phi->getType();
626f2ec16ccSHideki Saito         // Check that this PHI type is allowed.
627f2ec16ccSHideki Saito         if (!PhiTy->isIntegerTy() && !PhiTy->isFloatingPointTy() &&
628f2ec16ccSHideki Saito             !PhiTy->isPointerTy()) {
629f2ec16ccSHideki Saito           ORE->emit(createMissedAnalysis("CFGNotUnderstood", Phi)
630f2ec16ccSHideki Saito                     << "loop control flow is not understood by vectorizer");
631d34e60caSNicola Zaghen           LLVM_DEBUG(dbgs() << "LV: Found an non-int non-pointer PHI.\n");
632f2ec16ccSHideki Saito           return false;
633f2ec16ccSHideki Saito         }
634f2ec16ccSHideki Saito 
635f2ec16ccSHideki Saito         // If this PHINode is not in the header block, then we know that we
636f2ec16ccSHideki Saito         // can convert it to select during if-conversion. No need to check if
637f2ec16ccSHideki Saito         // the PHIs in this block are induction or reduction variables.
638f2ec16ccSHideki Saito         if (BB != Header) {
63960a1e4ddSAnna Thomas           // Non-header phi nodes that have outside uses can be vectorized. Add
64060a1e4ddSAnna Thomas           // them to the list of allowed exits.
64160a1e4ddSAnna Thomas           // Unsafe cyclic dependencies with header phis are identified during
64260a1e4ddSAnna Thomas           // legalization for reduction, induction and first order
64360a1e4ddSAnna Thomas           // recurrences.
644f2ec16ccSHideki Saito           continue;
645f2ec16ccSHideki Saito         }
646f2ec16ccSHideki Saito 
647f2ec16ccSHideki Saito         // We only allow if-converted PHIs with exactly two incoming values.
648f2ec16ccSHideki Saito         if (Phi->getNumIncomingValues() != 2) {
649f2ec16ccSHideki Saito           ORE->emit(createMissedAnalysis("CFGNotUnderstood", Phi)
650f2ec16ccSHideki Saito                     << "control flow not understood by vectorizer");
651d34e60caSNicola Zaghen           LLVM_DEBUG(dbgs() << "LV: Found an invalid PHI.\n");
652f2ec16ccSHideki Saito           return false;
653f2ec16ccSHideki Saito         }
654f2ec16ccSHideki Saito 
655f2ec16ccSHideki Saito         RecurrenceDescriptor RedDes;
656f2ec16ccSHideki Saito         if (RecurrenceDescriptor::isReductionPHI(Phi, TheLoop, RedDes, DB, AC,
657f2ec16ccSHideki Saito                                                  DT)) {
658f2ec16ccSHideki Saito           if (RedDes.hasUnsafeAlgebra())
659f2ec16ccSHideki Saito             Requirements->addUnsafeAlgebraInst(RedDes.getUnsafeAlgebraInst());
660f2ec16ccSHideki Saito           AllowedExit.insert(RedDes.getLoopExitInstr());
661f2ec16ccSHideki Saito           Reductions[Phi] = RedDes;
662f2ec16ccSHideki Saito           continue;
663f2ec16ccSHideki Saito         }
664f2ec16ccSHideki Saito 
665b02b0ad8SAnna Thomas         // TODO: Instead of recording the AllowedExit, it would be good to record the
666b02b0ad8SAnna Thomas         // complementary set: NotAllowedExit. These include (but may not be
667b02b0ad8SAnna Thomas         // limited to):
668b02b0ad8SAnna Thomas         // 1. Reduction phis as they represent the one-before-last value, which
669b02b0ad8SAnna Thomas         // is not available when vectorized
670b02b0ad8SAnna Thomas         // 2. Induction phis and increment when SCEV predicates cannot be used
671b02b0ad8SAnna Thomas         // outside the loop - see addInductionPhi
672b02b0ad8SAnna Thomas         // 3. Non-Phis with outside uses when SCEV predicates cannot be used
673b02b0ad8SAnna Thomas         // outside the loop - see call to hasOutsideLoopUser in the non-phi
674b02b0ad8SAnna Thomas         // handling below
675b02b0ad8SAnna Thomas         // 4. FirstOrderRecurrence phis that can possibly be handled by
676b02b0ad8SAnna Thomas         // extraction.
677b02b0ad8SAnna Thomas         // By recording these, we can then reason about ways to vectorize each
678b02b0ad8SAnna Thomas         // of these NotAllowedExit.
679f2ec16ccSHideki Saito         InductionDescriptor ID;
680f2ec16ccSHideki Saito         if (InductionDescriptor::isInductionPHI(Phi, TheLoop, PSE, ID)) {
681f2ec16ccSHideki Saito           addInductionPhi(Phi, ID, AllowedExit);
682f2ec16ccSHideki Saito           if (ID.hasUnsafeAlgebra() && !HasFunNoNaNAttr)
683f2ec16ccSHideki Saito             Requirements->addUnsafeAlgebraInst(ID.getUnsafeAlgebraInst());
684f2ec16ccSHideki Saito           continue;
685f2ec16ccSHideki Saito         }
686f2ec16ccSHideki Saito 
687f2ec16ccSHideki Saito         if (RecurrenceDescriptor::isFirstOrderRecurrence(Phi, TheLoop,
688f2ec16ccSHideki Saito                                                          SinkAfter, DT)) {
689f2ec16ccSHideki Saito           FirstOrderRecurrences.insert(Phi);
690f2ec16ccSHideki Saito           continue;
691f2ec16ccSHideki Saito         }
692f2ec16ccSHideki Saito 
693f2ec16ccSHideki Saito         // As a last resort, coerce the PHI to a AddRec expression
694f2ec16ccSHideki Saito         // and re-try classifying it a an induction PHI.
695f2ec16ccSHideki Saito         if (InductionDescriptor::isInductionPHI(Phi, TheLoop, PSE, ID, true)) {
696f2ec16ccSHideki Saito           addInductionPhi(Phi, ID, AllowedExit);
697f2ec16ccSHideki Saito           continue;
698f2ec16ccSHideki Saito         }
699f2ec16ccSHideki Saito 
700f2ec16ccSHideki Saito         ORE->emit(createMissedAnalysis("NonReductionValueUsedOutsideLoop", Phi)
701f2ec16ccSHideki Saito                   << "value that could not be identified as "
702f2ec16ccSHideki Saito                      "reduction is used outside the loop");
703d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: Found an unidentified PHI." << *Phi << "\n");
704f2ec16ccSHideki Saito         return false;
705f2ec16ccSHideki Saito       } // end of PHI handling
706f2ec16ccSHideki Saito 
707f2ec16ccSHideki Saito       // We handle calls that:
708f2ec16ccSHideki Saito       //   * Are debug info intrinsics.
709f2ec16ccSHideki Saito       //   * Have a mapping to an IR intrinsic.
710f2ec16ccSHideki Saito       //   * Have a vector version available.
711f2ec16ccSHideki Saito       auto *CI = dyn_cast<CallInst>(&I);
712f2ec16ccSHideki Saito       if (CI && !getVectorIntrinsicIDForCall(CI, TLI) &&
713f2ec16ccSHideki Saito           !isa<DbgInfoIntrinsic>(CI) &&
714f2ec16ccSHideki Saito           !(CI->getCalledFunction() && TLI &&
715f2ec16ccSHideki Saito             TLI->isFunctionVectorizable(CI->getCalledFunction()->getName()))) {
7167d65fe5cSSanjay Patel         // If the call is a recognized math libary call, it is likely that
7177d65fe5cSSanjay Patel         // we can vectorize it given loosened floating-point constraints.
7187d65fe5cSSanjay Patel         LibFunc Func;
7197d65fe5cSSanjay Patel         bool IsMathLibCall =
7207d65fe5cSSanjay Patel             TLI && CI->getCalledFunction() &&
7217d65fe5cSSanjay Patel             CI->getType()->isFloatingPointTy() &&
7227d65fe5cSSanjay Patel             TLI->getLibFunc(CI->getCalledFunction()->getName(), Func) &&
7237d65fe5cSSanjay Patel             TLI->hasOptimizedCodeGen(Func);
7247d65fe5cSSanjay Patel 
7257d65fe5cSSanjay Patel         if (IsMathLibCall) {
7267d65fe5cSSanjay Patel           // TODO: Ideally, we should not use clang-specific language here,
7277d65fe5cSSanjay Patel           // but it's hard to provide meaningful yet generic advice.
7287d65fe5cSSanjay Patel           // Also, should this be guarded by allowExtraAnalysis() and/or be part
7297d65fe5cSSanjay Patel           // of the returned info from isFunctionVectorizable()?
7307d65fe5cSSanjay Patel           ORE->emit(createMissedAnalysis("CantVectorizeLibcall", CI)
7317d65fe5cSSanjay Patel               << "library call cannot be vectorized. "
7327d65fe5cSSanjay Patel                  "Try compiling with -fno-math-errno, -ffast-math, "
7337d65fe5cSSanjay Patel                  "or similar flags");
7347d65fe5cSSanjay Patel         } else {
735f2ec16ccSHideki Saito           ORE->emit(createMissedAnalysis("CantVectorizeCall", CI)
736f2ec16ccSHideki Saito                     << "call instruction cannot be vectorized");
7377d65fe5cSSanjay Patel         }
738d34e60caSNicola Zaghen         LLVM_DEBUG(
7397d65fe5cSSanjay Patel             dbgs() << "LV: Found a non-intrinsic callsite.\n");
740f2ec16ccSHideki Saito         return false;
741f2ec16ccSHideki Saito       }
742f2ec16ccSHideki Saito 
743f2ec16ccSHideki Saito       // Intrinsics such as powi,cttz and ctlz are legal to vectorize if the
744f2ec16ccSHideki Saito       // second argument is the same (i.e. loop invariant)
745f2ec16ccSHideki Saito       if (CI && hasVectorInstrinsicScalarOpd(
746f2ec16ccSHideki Saito                     getVectorIntrinsicIDForCall(CI, TLI), 1)) {
747f2ec16ccSHideki Saito         auto *SE = PSE.getSE();
748f2ec16ccSHideki Saito         if (!SE->isLoopInvariant(PSE.getSCEV(CI->getOperand(1)), TheLoop)) {
749f2ec16ccSHideki Saito           ORE->emit(createMissedAnalysis("CantVectorizeIntrinsic", CI)
750f2ec16ccSHideki Saito                     << "intrinsic instruction cannot be vectorized");
751d34e60caSNicola Zaghen           LLVM_DEBUG(dbgs()
752d34e60caSNicola Zaghen                      << "LV: Found unvectorizable intrinsic " << *CI << "\n");
753f2ec16ccSHideki Saito           return false;
754f2ec16ccSHideki Saito         }
755f2ec16ccSHideki Saito       }
756f2ec16ccSHideki Saito 
757f2ec16ccSHideki Saito       // Check that the instruction return type is vectorizable.
758f2ec16ccSHideki Saito       // Also, we can't vectorize extractelement instructions.
759f2ec16ccSHideki Saito       if ((!VectorType::isValidElementType(I.getType()) &&
760f2ec16ccSHideki Saito            !I.getType()->isVoidTy()) ||
761f2ec16ccSHideki Saito           isa<ExtractElementInst>(I)) {
762f2ec16ccSHideki Saito         ORE->emit(createMissedAnalysis("CantVectorizeInstructionReturnType", &I)
763f2ec16ccSHideki Saito                   << "instruction return type cannot be vectorized");
764d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: Found unvectorizable type.\n");
765f2ec16ccSHideki Saito         return false;
766f2ec16ccSHideki Saito       }
767f2ec16ccSHideki Saito 
768f2ec16ccSHideki Saito       // Check that the stored type is vectorizable.
769f2ec16ccSHideki Saito       if (auto *ST = dyn_cast<StoreInst>(&I)) {
770f2ec16ccSHideki Saito         Type *T = ST->getValueOperand()->getType();
771f2ec16ccSHideki Saito         if (!VectorType::isValidElementType(T)) {
772f2ec16ccSHideki Saito           ORE->emit(createMissedAnalysis("CantVectorizeStore", ST)
773f2ec16ccSHideki Saito                     << "store instruction cannot be vectorized");
774f2ec16ccSHideki Saito           return false;
775f2ec16ccSHideki Saito         }
776f2ec16ccSHideki Saito 
777f2ec16ccSHideki Saito         // FP instructions can allow unsafe algebra, thus vectorizable by
778f2ec16ccSHideki Saito         // non-IEEE-754 compliant SIMD units.
779f2ec16ccSHideki Saito         // This applies to floating-point math operations and calls, not memory
780f2ec16ccSHideki Saito         // operations, shuffles, or casts, as they don't change precision or
781f2ec16ccSHideki Saito         // semantics.
782f2ec16ccSHideki Saito       } else if (I.getType()->isFloatingPointTy() && (CI || I.isBinaryOp()) &&
783f2ec16ccSHideki Saito                  !I.isFast()) {
784d34e60caSNicola Zaghen         LLVM_DEBUG(dbgs() << "LV: Found FP op with unsafe algebra.\n");
785f2ec16ccSHideki Saito         Hints->setPotentiallyUnsafe();
786f2ec16ccSHideki Saito       }
787f2ec16ccSHideki Saito 
788f2ec16ccSHideki Saito       // Reduction instructions are allowed to have exit users.
789f2ec16ccSHideki Saito       // All other instructions must not have external users.
790f2ec16ccSHideki Saito       if (hasOutsideLoopUser(TheLoop, &I, AllowedExit)) {
791b02b0ad8SAnna Thomas         // We can safely vectorize loops where instructions within the loop are
792b02b0ad8SAnna Thomas         // used outside the loop only if the SCEV predicates within the loop is
793b02b0ad8SAnna Thomas         // same as outside the loop. Allowing the exit means reusing the SCEV
794b02b0ad8SAnna Thomas         // outside the loop.
795b02b0ad8SAnna Thomas         if (PSE.getUnionPredicate().isAlwaysTrue()) {
796b02b0ad8SAnna Thomas           AllowedExit.insert(&I);
797b02b0ad8SAnna Thomas           continue;
798b02b0ad8SAnna Thomas         }
799f2ec16ccSHideki Saito         ORE->emit(createMissedAnalysis("ValueUsedOutsideLoop", &I)
800f2ec16ccSHideki Saito                   << "value cannot be used outside the loop");
801f2ec16ccSHideki Saito         return false;
802f2ec16ccSHideki Saito       }
803f2ec16ccSHideki Saito     } // next instr.
804f2ec16ccSHideki Saito   }
805f2ec16ccSHideki Saito 
806f2ec16ccSHideki Saito   if (!PrimaryInduction) {
807d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Did not find one integer induction var.\n");
808f2ec16ccSHideki Saito     if (Inductions.empty()) {
809f2ec16ccSHideki Saito       ORE->emit(createMissedAnalysis("NoInductionVariable")
810f2ec16ccSHideki Saito                 << "loop induction variable could not be identified");
811f2ec16ccSHideki Saito       return false;
8124f27730eSWarren Ristow     } else if (!WidestIndTy) {
8134f27730eSWarren Ristow       ORE->emit(createMissedAnalysis("NoIntegerInductionVariable")
8144f27730eSWarren Ristow                 << "integer loop induction variable could not be identified");
8154f27730eSWarren Ristow       return false;
816f2ec16ccSHideki Saito     }
817f2ec16ccSHideki Saito   }
818f2ec16ccSHideki Saito 
819f2ec16ccSHideki Saito   // Now we know the widest induction type, check if our found induction
820f2ec16ccSHideki Saito   // is the same size. If it's not, unset it here and InnerLoopVectorizer
821f2ec16ccSHideki Saito   // will create another.
822f2ec16ccSHideki Saito   if (PrimaryInduction && WidestIndTy != PrimaryInduction->getType())
823f2ec16ccSHideki Saito     PrimaryInduction = nullptr;
824f2ec16ccSHideki Saito 
825f2ec16ccSHideki Saito   return true;
826f2ec16ccSHideki Saito }
827f2ec16ccSHideki Saito 
828f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeMemory() {
829f2ec16ccSHideki Saito   LAI = &(*GetLAA)(*TheLoop);
830f2ec16ccSHideki Saito   const OptimizationRemarkAnalysis *LAR = LAI->getReport();
831f2ec16ccSHideki Saito   if (LAR) {
832f2ec16ccSHideki Saito     ORE->emit([&]() {
833f2ec16ccSHideki Saito       return OptimizationRemarkAnalysis(Hints->vectorizeAnalysisPassName(),
834f2ec16ccSHideki Saito                                         "loop not vectorized: ", *LAR);
835f2ec16ccSHideki Saito     });
836f2ec16ccSHideki Saito   }
837f2ec16ccSHideki Saito   if (!LAI->canVectorizeMemory())
838f2ec16ccSHideki Saito     return false;
839f2ec16ccSHideki Saito 
8405e9215f0SAnna Thomas   if (LAI->hasDependenceInvolvingLoopInvariantAddress()) {
841f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("CantVectorizeStoreToLoopInvariantAddress")
8425e9215f0SAnna Thomas               << "write to a loop invariant address could not "
843b1e3d453SAnna Thomas                  "be vectorized");
8446f732bfbSAnna Thomas     LLVM_DEBUG(
8455e9215f0SAnna Thomas         dbgs() << "LV: Non vectorizable stores to a uniform address\n");
846f2ec16ccSHideki Saito     return false;
847f2ec16ccSHideki Saito   }
848f2ec16ccSHideki Saito   Requirements->addRuntimePointerChecks(LAI->getNumRuntimePointerChecks());
849f2ec16ccSHideki Saito   PSE.addPredicate(LAI->getPSE().getUnionPredicate());
850f2ec16ccSHideki Saito 
851f2ec16ccSHideki Saito   return true;
852f2ec16ccSHideki Saito }
853f2ec16ccSHideki Saito 
854f2ec16ccSHideki Saito bool LoopVectorizationLegality::isInductionPhi(const Value *V) {
855f2ec16ccSHideki Saito   Value *In0 = const_cast<Value *>(V);
856f2ec16ccSHideki Saito   PHINode *PN = dyn_cast_or_null<PHINode>(In0);
857f2ec16ccSHideki Saito   if (!PN)
858f2ec16ccSHideki Saito     return false;
859f2ec16ccSHideki Saito 
860f2ec16ccSHideki Saito   return Inductions.count(PN);
861f2ec16ccSHideki Saito }
862f2ec16ccSHideki Saito 
863f2ec16ccSHideki Saito bool LoopVectorizationLegality::isCastedInductionVariable(const Value *V) {
864f2ec16ccSHideki Saito   auto *Inst = dyn_cast<Instruction>(V);
865f2ec16ccSHideki Saito   return (Inst && InductionCastsToIgnore.count(Inst));
866f2ec16ccSHideki Saito }
867f2ec16ccSHideki Saito 
868f2ec16ccSHideki Saito bool LoopVectorizationLegality::isInductionVariable(const Value *V) {
869f2ec16ccSHideki Saito   return isInductionPhi(V) || isCastedInductionVariable(V);
870f2ec16ccSHideki Saito }
871f2ec16ccSHideki Saito 
872f2ec16ccSHideki Saito bool LoopVectorizationLegality::isFirstOrderRecurrence(const PHINode *Phi) {
873f2ec16ccSHideki Saito   return FirstOrderRecurrences.count(Phi);
874f2ec16ccSHideki Saito }
875f2ec16ccSHideki Saito 
876f2ec16ccSHideki Saito bool LoopVectorizationLegality::blockNeedsPredication(BasicBlock *BB) {
877f2ec16ccSHideki Saito   return LoopAccessInfo::blockNeedsPredication(BB, TheLoop, DT);
878f2ec16ccSHideki Saito }
879f2ec16ccSHideki Saito 
880f2ec16ccSHideki Saito bool LoopVectorizationLegality::blockCanBePredicated(
881f2ec16ccSHideki Saito     BasicBlock *BB, SmallPtrSetImpl<Value *> &SafePtrs) {
882f2ec16ccSHideki Saito   const bool IsAnnotatedParallel = TheLoop->isAnnotatedParallel();
883f2ec16ccSHideki Saito 
884f2ec16ccSHideki Saito   for (Instruction &I : *BB) {
885f2ec16ccSHideki Saito     // Check that we don't have a constant expression that can trap as operand.
886f2ec16ccSHideki Saito     for (Value *Operand : I.operands()) {
887f2ec16ccSHideki Saito       if (auto *C = dyn_cast<Constant>(Operand))
888f2ec16ccSHideki Saito         if (C->canTrap())
889f2ec16ccSHideki Saito           return false;
890f2ec16ccSHideki Saito     }
891f2ec16ccSHideki Saito     // We might be able to hoist the load.
892f2ec16ccSHideki Saito     if (I.mayReadFromMemory()) {
893f2ec16ccSHideki Saito       auto *LI = dyn_cast<LoadInst>(&I);
894f2ec16ccSHideki Saito       if (!LI)
895f2ec16ccSHideki Saito         return false;
896f2ec16ccSHideki Saito       if (!SafePtrs.count(LI->getPointerOperand())) {
897f2ec16ccSHideki Saito         // !llvm.mem.parallel_loop_access implies if-conversion safety.
898f2ec16ccSHideki Saito         // Otherwise, record that the load needs (real or emulated) masking
899f2ec16ccSHideki Saito         // and let the cost model decide.
900f2ec16ccSHideki Saito         if (!IsAnnotatedParallel)
901f2ec16ccSHideki Saito           MaskedOp.insert(LI);
902f2ec16ccSHideki Saito         continue;
903f2ec16ccSHideki Saito       }
904f2ec16ccSHideki Saito     }
905f2ec16ccSHideki Saito 
906f2ec16ccSHideki Saito     if (I.mayWriteToMemory()) {
907f2ec16ccSHideki Saito       auto *SI = dyn_cast<StoreInst>(&I);
908f2ec16ccSHideki Saito       if (!SI)
909f2ec16ccSHideki Saito         return false;
910f2ec16ccSHideki Saito       // Predicated store requires some form of masking:
911f2ec16ccSHideki Saito       // 1) masked store HW instruction,
912f2ec16ccSHideki Saito       // 2) emulation via load-blend-store (only if safe and legal to do so,
913f2ec16ccSHideki Saito       //    be aware on the race conditions), or
914f2ec16ccSHideki Saito       // 3) element-by-element predicate check and scalar store.
915f2ec16ccSHideki Saito       MaskedOp.insert(SI);
916f2ec16ccSHideki Saito       continue;
917f2ec16ccSHideki Saito     }
918f2ec16ccSHideki Saito     if (I.mayThrow())
919f2ec16ccSHideki Saito       return false;
920f2ec16ccSHideki Saito   }
921f2ec16ccSHideki Saito 
922f2ec16ccSHideki Saito   return true;
923f2ec16ccSHideki Saito }
924f2ec16ccSHideki Saito 
925f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeWithIfConvert() {
926f2ec16ccSHideki Saito   if (!EnableIfConversion) {
927f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("IfConversionDisabled")
928f2ec16ccSHideki Saito               << "if-conversion is disabled");
929f2ec16ccSHideki Saito     return false;
930f2ec16ccSHideki Saito   }
931f2ec16ccSHideki Saito 
932f2ec16ccSHideki Saito   assert(TheLoop->getNumBlocks() > 1 && "Single block loops are vectorizable");
933f2ec16ccSHideki Saito 
934f2ec16ccSHideki Saito   // A list of pointers that we can safely read and write to.
935f2ec16ccSHideki Saito   SmallPtrSet<Value *, 8> SafePointes;
936f2ec16ccSHideki Saito 
937f2ec16ccSHideki Saito   // Collect safe addresses.
938f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
939f2ec16ccSHideki Saito     if (blockNeedsPredication(BB))
940f2ec16ccSHideki Saito       continue;
941f2ec16ccSHideki Saito 
942f2ec16ccSHideki Saito     for (Instruction &I : *BB)
943f2ec16ccSHideki Saito       if (auto *Ptr = getLoadStorePointerOperand(&I))
944f2ec16ccSHideki Saito         SafePointes.insert(Ptr);
945f2ec16ccSHideki Saito   }
946f2ec16ccSHideki Saito 
947f2ec16ccSHideki Saito   // Collect the blocks that need predication.
948f2ec16ccSHideki Saito   BasicBlock *Header = TheLoop->getHeader();
949f2ec16ccSHideki Saito   for (BasicBlock *BB : TheLoop->blocks()) {
950f2ec16ccSHideki Saito     // We don't support switch statements inside loops.
951f2ec16ccSHideki Saito     if (!isa<BranchInst>(BB->getTerminator())) {
952f2ec16ccSHideki Saito       ORE->emit(createMissedAnalysis("LoopContainsSwitch", BB->getTerminator())
953f2ec16ccSHideki Saito                 << "loop contains a switch statement");
954f2ec16ccSHideki Saito       return false;
955f2ec16ccSHideki Saito     }
956f2ec16ccSHideki Saito 
957f2ec16ccSHideki Saito     // We must be able to predicate all blocks that need to be predicated.
958f2ec16ccSHideki Saito     if (blockNeedsPredication(BB)) {
959f2ec16ccSHideki Saito       if (!blockCanBePredicated(BB, SafePointes)) {
960f2ec16ccSHideki Saito         ORE->emit(createMissedAnalysis("NoCFGForSelect", BB->getTerminator())
961f2ec16ccSHideki Saito                   << "control flow cannot be substituted for a select");
962f2ec16ccSHideki Saito         return false;
963f2ec16ccSHideki Saito       }
964f2ec16ccSHideki Saito     } else if (BB != Header && !canIfConvertPHINodes(BB)) {
965f2ec16ccSHideki Saito       ORE->emit(createMissedAnalysis("NoCFGForSelect", BB->getTerminator())
966f2ec16ccSHideki Saito                 << "control flow cannot be substituted for a select");
967f2ec16ccSHideki Saito       return false;
968f2ec16ccSHideki Saito     }
969f2ec16ccSHideki Saito   }
970f2ec16ccSHideki Saito 
971f2ec16ccSHideki Saito   // We can if-convert this loop.
972f2ec16ccSHideki Saito   return true;
973f2ec16ccSHideki Saito }
974f2ec16ccSHideki Saito 
975f2ec16ccSHideki Saito // Helper function to canVectorizeLoopNestCFG.
976f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeLoopCFG(Loop *Lp,
977f2ec16ccSHideki Saito                                                     bool UseVPlanNativePath) {
978f2ec16ccSHideki Saito   assert((UseVPlanNativePath || Lp->empty()) &&
979f2ec16ccSHideki Saito          "VPlan-native path is not enabled.");
980f2ec16ccSHideki Saito 
981f2ec16ccSHideki Saito   // TODO: ORE should be improved to show more accurate information when an
982f2ec16ccSHideki Saito   // outer loop can't be vectorized because a nested loop is not understood or
983f2ec16ccSHideki Saito   // legal. Something like: "outer_loop_location: loop not vectorized:
984f2ec16ccSHideki Saito   // (inner_loop_location) loop control flow is not understood by vectorizer".
985f2ec16ccSHideki Saito 
986f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
987f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
988f2ec16ccSHideki Saito   bool Result = true;
989f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
990f2ec16ccSHideki Saito 
991f2ec16ccSHideki Saito   // We must have a loop in canonical form. Loops with indirectbr in them cannot
992f2ec16ccSHideki Saito   // be canonicalized.
993f2ec16ccSHideki Saito   if (!Lp->getLoopPreheader()) {
994d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Loop doesn't have a legal pre-header.\n");
995f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("CFGNotUnderstood")
996f2ec16ccSHideki Saito               << "loop control flow is not understood by vectorizer");
997f2ec16ccSHideki Saito     if (DoExtraAnalysis)
998f2ec16ccSHideki Saito       Result = false;
999f2ec16ccSHideki Saito     else
1000f2ec16ccSHideki Saito       return false;
1001f2ec16ccSHideki Saito   }
1002f2ec16ccSHideki Saito 
1003f2ec16ccSHideki Saito   // We must have a single backedge.
1004f2ec16ccSHideki Saito   if (Lp->getNumBackEdges() != 1) {
1005f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("CFGNotUnderstood")
1006f2ec16ccSHideki Saito               << "loop control flow is not understood by vectorizer");
1007f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1008f2ec16ccSHideki Saito       Result = false;
1009f2ec16ccSHideki Saito     else
1010f2ec16ccSHideki Saito       return false;
1011f2ec16ccSHideki Saito   }
1012f2ec16ccSHideki Saito 
1013f2ec16ccSHideki Saito   // We must have a single exiting block.
1014f2ec16ccSHideki Saito   if (!Lp->getExitingBlock()) {
1015f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("CFGNotUnderstood")
1016f2ec16ccSHideki Saito               << "loop control flow is not understood by vectorizer");
1017f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1018f2ec16ccSHideki Saito       Result = false;
1019f2ec16ccSHideki Saito     else
1020f2ec16ccSHideki Saito       return false;
1021f2ec16ccSHideki Saito   }
1022f2ec16ccSHideki Saito 
1023f2ec16ccSHideki Saito   // We only handle bottom-tested loops, i.e. loop in which the condition is
1024f2ec16ccSHideki Saito   // checked at the end of each iteration. With that we can assume that all
1025f2ec16ccSHideki Saito   // instructions in the loop are executed the same number of times.
1026f2ec16ccSHideki Saito   if (Lp->getExitingBlock() != Lp->getLoopLatch()) {
1027f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("CFGNotUnderstood")
1028f2ec16ccSHideki Saito               << "loop control flow is not understood by vectorizer");
1029f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1030f2ec16ccSHideki Saito       Result = false;
1031f2ec16ccSHideki Saito     else
1032f2ec16ccSHideki Saito       return false;
1033f2ec16ccSHideki Saito   }
1034f2ec16ccSHideki Saito 
1035f2ec16ccSHideki Saito   return Result;
1036f2ec16ccSHideki Saito }
1037f2ec16ccSHideki Saito 
1038f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorizeLoopNestCFG(
1039f2ec16ccSHideki Saito     Loop *Lp, bool UseVPlanNativePath) {
1040f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
1041f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
1042f2ec16ccSHideki Saito   bool Result = true;
1043f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
1044f2ec16ccSHideki Saito   if (!canVectorizeLoopCFG(Lp, UseVPlanNativePath)) {
1045f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1046f2ec16ccSHideki Saito       Result = false;
1047f2ec16ccSHideki Saito     else
1048f2ec16ccSHideki Saito       return false;
1049f2ec16ccSHideki Saito   }
1050f2ec16ccSHideki Saito 
1051f2ec16ccSHideki Saito   // Recursively check whether the loop control flow of nested loops is
1052f2ec16ccSHideki Saito   // understood.
1053f2ec16ccSHideki Saito   for (Loop *SubLp : *Lp)
1054f2ec16ccSHideki Saito     if (!canVectorizeLoopNestCFG(SubLp, UseVPlanNativePath)) {
1055f2ec16ccSHideki Saito       if (DoExtraAnalysis)
1056f2ec16ccSHideki Saito         Result = false;
1057f2ec16ccSHideki Saito       else
1058f2ec16ccSHideki Saito         return false;
1059f2ec16ccSHideki Saito     }
1060f2ec16ccSHideki Saito 
1061f2ec16ccSHideki Saito   return Result;
1062f2ec16ccSHideki Saito }
1063f2ec16ccSHideki Saito 
1064f2ec16ccSHideki Saito bool LoopVectorizationLegality::canVectorize(bool UseVPlanNativePath) {
1065f2ec16ccSHideki Saito   // Store the result and return it at the end instead of exiting early, in case
1066f2ec16ccSHideki Saito   // allowExtraAnalysis is used to report multiple reasons for not vectorizing.
1067f2ec16ccSHideki Saito   bool Result = true;
1068f2ec16ccSHideki Saito 
1069f2ec16ccSHideki Saito   bool DoExtraAnalysis = ORE->allowExtraAnalysis(DEBUG_TYPE);
1070f2ec16ccSHideki Saito   // Check whether the loop-related control flow in the loop nest is expected by
1071f2ec16ccSHideki Saito   // vectorizer.
1072f2ec16ccSHideki Saito   if (!canVectorizeLoopNestCFG(TheLoop, UseVPlanNativePath)) {
1073f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1074f2ec16ccSHideki Saito       Result = false;
1075f2ec16ccSHideki Saito     else
1076f2ec16ccSHideki Saito       return false;
1077f2ec16ccSHideki Saito   }
1078f2ec16ccSHideki Saito 
1079f2ec16ccSHideki Saito   // We need to have a loop header.
1080d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "LV: Found a loop: " << TheLoop->getHeader()->getName()
1081f2ec16ccSHideki Saito                     << '\n');
1082f2ec16ccSHideki Saito 
1083f2ec16ccSHideki Saito   // Specific checks for outer loops. We skip the remaining legal checks at this
1084f2ec16ccSHideki Saito   // point because they don't support outer loops.
1085f2ec16ccSHideki Saito   if (!TheLoop->empty()) {
1086f2ec16ccSHideki Saito     assert(UseVPlanNativePath && "VPlan-native path is not enabled.");
1087f2ec16ccSHideki Saito 
1088f2ec16ccSHideki Saito     if (!canVectorizeOuterLoop()) {
1089d34e60caSNicola Zaghen       LLVM_DEBUG(dbgs() << "LV: Not vectorizing: Unsupported outer loop.\n");
1090f2ec16ccSHideki Saito       // TODO: Implement DoExtraAnalysis when subsequent legal checks support
1091f2ec16ccSHideki Saito       // outer loops.
1092f2ec16ccSHideki Saito       return false;
1093f2ec16ccSHideki Saito     }
1094f2ec16ccSHideki Saito 
1095d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: We can vectorize this outer loop!\n");
1096f2ec16ccSHideki Saito     return Result;
1097f2ec16ccSHideki Saito   }
1098f2ec16ccSHideki Saito 
1099f2ec16ccSHideki Saito   assert(TheLoop->empty() && "Inner loop expected.");
1100f2ec16ccSHideki Saito   // Check if we can if-convert non-single-bb loops.
1101f2ec16ccSHideki Saito   unsigned NumBlocks = TheLoop->getNumBlocks();
1102f2ec16ccSHideki Saito   if (NumBlocks != 1 && !canVectorizeWithIfConvert()) {
1103d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Can't if-convert the loop.\n");
1104f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1105f2ec16ccSHideki Saito       Result = false;
1106f2ec16ccSHideki Saito     else
1107f2ec16ccSHideki Saito       return false;
1108f2ec16ccSHideki Saito   }
1109f2ec16ccSHideki Saito 
1110f2ec16ccSHideki Saito   // Check if we can vectorize the instructions and CFG in this loop.
1111f2ec16ccSHideki Saito   if (!canVectorizeInstrs()) {
1112d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Can't vectorize the instructions or CFG\n");
1113f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1114f2ec16ccSHideki Saito       Result = false;
1115f2ec16ccSHideki Saito     else
1116f2ec16ccSHideki Saito       return false;
1117f2ec16ccSHideki Saito   }
1118f2ec16ccSHideki Saito 
1119f2ec16ccSHideki Saito   // Go over each instruction and look at memory deps.
1120f2ec16ccSHideki Saito   if (!canVectorizeMemory()) {
1121d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Can't vectorize due to memory conflicts\n");
1122f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1123f2ec16ccSHideki Saito       Result = false;
1124f2ec16ccSHideki Saito     else
1125f2ec16ccSHideki Saito       return false;
1126f2ec16ccSHideki Saito   }
1127f2ec16ccSHideki Saito 
1128d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "LV: We can vectorize this loop"
1129f2ec16ccSHideki Saito                     << (LAI->getRuntimePointerChecking()->Need
1130f2ec16ccSHideki Saito                             ? " (with a runtime bound check)"
1131f2ec16ccSHideki Saito                             : "")
1132f2ec16ccSHideki Saito                     << "!\n");
1133f2ec16ccSHideki Saito 
1134f2ec16ccSHideki Saito   unsigned SCEVThreshold = VectorizeSCEVCheckThreshold;
1135f2ec16ccSHideki Saito   if (Hints->getForce() == LoopVectorizeHints::FK_Enabled)
1136f2ec16ccSHideki Saito     SCEVThreshold = PragmaVectorizeSCEVCheckThreshold;
1137f2ec16ccSHideki Saito 
1138f2ec16ccSHideki Saito   if (PSE.getUnionPredicate().getComplexity() > SCEVThreshold) {
1139f2ec16ccSHideki Saito     ORE->emit(createMissedAnalysis("TooManySCEVRunTimeChecks")
1140f2ec16ccSHideki Saito               << "Too many SCEV assumptions need to be made and checked "
1141f2ec16ccSHideki Saito               << "at runtime");
1142d34e60caSNicola Zaghen     LLVM_DEBUG(dbgs() << "LV: Too many SCEV checks needed.\n");
1143f2ec16ccSHideki Saito     if (DoExtraAnalysis)
1144f2ec16ccSHideki Saito       Result = false;
1145f2ec16ccSHideki Saito     else
1146f2ec16ccSHideki Saito       return false;
1147f2ec16ccSHideki Saito   }
1148f2ec16ccSHideki Saito 
1149f2ec16ccSHideki Saito   // Okay! We've done all the tests. If any have failed, return false. Otherwise
1150f2ec16ccSHideki Saito   // we can vectorize, and at this point we don't have any other mem analysis
1151f2ec16ccSHideki Saito   // which may limit our maximum vectorization factor, so just return true with
1152f2ec16ccSHideki Saito   // no restrictions.
1153f2ec16ccSHideki Saito   return Result;
1154f2ec16ccSHideki Saito }
1155f2ec16ccSHideki Saito 
1156b0b5312eSAyal Zaks bool LoopVectorizationLegality::canFoldTailByMasking() {
1157b0b5312eSAyal Zaks 
1158b0b5312eSAyal Zaks   LLVM_DEBUG(dbgs() << "LV: checking if tail can be folded by masking.\n");
1159b0b5312eSAyal Zaks 
1160b0b5312eSAyal Zaks   if (!PrimaryInduction) {
1161b0b5312eSAyal Zaks     ORE->emit(createMissedAnalysis("NoPrimaryInduction")
1162b0b5312eSAyal Zaks               << "Missing a primary induction variable in the loop, which is "
1163b0b5312eSAyal Zaks               << "needed in order to fold tail by masking as required.");
1164b0b5312eSAyal Zaks     LLVM_DEBUG(dbgs() << "LV: No primary induction, cannot fold tail by "
1165b0b5312eSAyal Zaks                       << "masking.\n");
1166b0b5312eSAyal Zaks     return false;
1167b0b5312eSAyal Zaks   }
1168b0b5312eSAyal Zaks 
1169b0b5312eSAyal Zaks   // TODO: handle reductions when tail is folded by masking.
1170b0b5312eSAyal Zaks   if (!Reductions.empty()) {
1171b0b5312eSAyal Zaks     ORE->emit(createMissedAnalysis("ReductionFoldingTailByMasking")
1172b0b5312eSAyal Zaks               << "Cannot fold tail by masking in the presence of reductions.");
1173b0b5312eSAyal Zaks     LLVM_DEBUG(dbgs() << "LV: Loop has reductions, cannot fold tail by "
1174b0b5312eSAyal Zaks                       << "masking.\n");
1175b0b5312eSAyal Zaks     return false;
1176b0b5312eSAyal Zaks   }
1177b0b5312eSAyal Zaks 
1178b0b5312eSAyal Zaks   // TODO: handle outside users when tail is folded by masking.
1179b0b5312eSAyal Zaks   for (auto *AE : AllowedExit) {
1180b0b5312eSAyal Zaks     // Check that all users of allowed exit values are inside the loop.
1181b0b5312eSAyal Zaks     for (User *U : AE->users()) {
1182b0b5312eSAyal Zaks       Instruction *UI = cast<Instruction>(U);
1183b0b5312eSAyal Zaks       if (TheLoop->contains(UI))
1184b0b5312eSAyal Zaks         continue;
1185b0b5312eSAyal Zaks       ORE->emit(createMissedAnalysis("LiveOutFoldingTailByMasking")
1186b0b5312eSAyal Zaks                 << "Cannot fold tail by masking in the presence of live outs.");
1187b0b5312eSAyal Zaks       LLVM_DEBUG(dbgs() << "LV: Cannot fold tail by masking, loop has an "
1188b0b5312eSAyal Zaks                         << "outside user for : " << *UI << '\n');
1189b0b5312eSAyal Zaks       return false;
1190b0b5312eSAyal Zaks     }
1191b0b5312eSAyal Zaks   }
1192b0b5312eSAyal Zaks 
1193b0b5312eSAyal Zaks   // The list of pointers that we can safely read and write to remains empty.
1194b0b5312eSAyal Zaks   SmallPtrSet<Value *, 8> SafePointers;
1195b0b5312eSAyal Zaks 
1196b0b5312eSAyal Zaks   // Check and mark all blocks for predication, including those that ordinarily
1197b0b5312eSAyal Zaks   // do not need predication such as the header block.
1198b0b5312eSAyal Zaks   for (BasicBlock *BB : TheLoop->blocks()) {
1199b0b5312eSAyal Zaks     if (!blockCanBePredicated(BB, SafePointers)) {
1200b0b5312eSAyal Zaks       ORE->emit(createMissedAnalysis("NoCFGForSelect", BB->getTerminator())
1201b0b5312eSAyal Zaks                 << "control flow cannot be substituted for a select");
1202b0b5312eSAyal Zaks       LLVM_DEBUG(dbgs() << "LV: Cannot fold tail by masking as required.\n");
1203b0b5312eSAyal Zaks       return false;
1204b0b5312eSAyal Zaks     }
1205b0b5312eSAyal Zaks   }
1206b0b5312eSAyal Zaks 
1207b0b5312eSAyal Zaks   LLVM_DEBUG(dbgs() << "LV: can fold tail by masking.\n");
1208b0b5312eSAyal Zaks   return true;
1209b0b5312eSAyal Zaks }
1210b0b5312eSAyal Zaks 
1211f2ec16ccSHideki Saito } // namespace llvm
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