LLVM 24.0.0git
SimplifyCFG.cpp
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1//===- SimplifyCFG.cpp - Code to perform CFG simplification ---------------===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8//
9// Peephole optimize the CFG.
10//
11//===----------------------------------------------------------------------===//
12
13#include "llvm/ADT/APInt.h"
14#include "llvm/ADT/ArrayRef.h"
15#include "llvm/ADT/DenseMap.h"
16#include "llvm/ADT/MapVector.h"
17#include "llvm/ADT/STLExtras.h"
18#include "llvm/ADT/Sequence.h"
20#include "llvm/ADT/SetVector.h"
23#include "llvm/ADT/Statistic.h"
24#include "llvm/ADT/StringRef.h"
31#include "llvm/Analysis/Loads.h"
36#include "llvm/IR/Attributes.h"
37#include "llvm/IR/BasicBlock.h"
38#include "llvm/IR/CFG.h"
39#include "llvm/IR/Constant.h"
41#include "llvm/IR/Constants.h"
42#include "llvm/IR/DataLayout.h"
43#include "llvm/IR/DebugInfo.h"
45#include "llvm/IR/Function.h"
46#include "llvm/IR/GlobalValue.h"
48#include "llvm/IR/IRBuilder.h"
49#include "llvm/IR/InstrTypes.h"
50#include "llvm/IR/Instruction.h"
53#include "llvm/IR/LLVMContext.h"
54#include "llvm/IR/MDBuilder.h"
56#include "llvm/IR/Metadata.h"
57#include "llvm/IR/Module.h"
58#include "llvm/IR/NoFolder.h"
59#include "llvm/IR/Operator.h"
62#include "llvm/IR/Type.h"
63#include "llvm/IR/Use.h"
64#include "llvm/IR/User.h"
65#include "llvm/IR/Value.h"
66#include "llvm/IR/ValueHandle.h"
70#include "llvm/Support/Debug.h"
80#include <algorithm>
81#include <cassert>
82#include <climits>
83#include <cstddef>
84#include <cstdint>
85#include <iterator>
86#include <map>
87#include <optional>
88#include <set>
89#include <tuple>
90#include <utility>
91#include <vector>
92
93using namespace llvm;
94using namespace PatternMatch;
95
96#define DEBUG_TYPE "simplifycfg"
97
98namespace llvm {
99
101 "simplifycfg-require-and-preserve-domtree", cl::Hidden,
102
103 cl::desc(
104 "Temporary development switch used to gradually uplift SimplifyCFG "
105 "into preserving DomTree,"));
106
107// Chosen as 2 so as to be cheap, but still to have enough power to fold
108// a select, so the "clamp" idiom (of a min followed by a max) will be caught.
109// To catch this, we need to fold a compare and a select, hence '2' being the
110// minimum reasonable default.
112 "phi-node-folding-threshold", cl::Hidden, cl::init(2),
113 cl::desc(
114 "Control the amount of phi node folding to perform (default = 2)"));
115
117 "two-entry-phi-node-folding-threshold", cl::Hidden, cl::init(4),
118 cl::desc("Control the maximal total instruction cost that we are willing "
119 "to speculatively execute to fold a 2-entry PHI node into a "
120 "select (default = 4)"));
121
122static cl::opt<bool>
123 HoistCommon("simplifycfg-hoist-common", cl::Hidden, cl::init(true),
124 cl::desc("Hoist common instructions up to the parent block"));
125
127 "simplifycfg-hoist-loads-with-cond-faulting", cl::Hidden, cl::init(true),
128 cl::desc("Hoist loads if the target supports conditional faulting"));
129
131 "simplifycfg-hoist-stores-with-cond-faulting", cl::Hidden, cl::init(true),
132 cl::desc("Hoist stores if the target supports conditional faulting"));
133
135 "hoist-loads-stores-with-cond-faulting-threshold", cl::Hidden, cl::init(6),
136 cl::desc("Control the maximal conditional load/store that we are willing "
137 "to speculatively execute to eliminate conditional branch "
138 "(default = 6)"));
139
141 HoistCommonSkipLimit("simplifycfg-hoist-common-skip-limit", cl::Hidden,
142 cl::init(20),
143 cl::desc("Allow reordering across at most this many "
144 "instructions when hoisting"));
145
146static cl::opt<bool>
147 SinkCommon("simplifycfg-sink-common", cl::Hidden, cl::init(true),
148 cl::desc("Sink common instructions down to the end block"));
149
151 "simplifycfg-hoist-cond-stores", cl::Hidden, cl::init(true),
152 cl::desc("Hoist conditional stores if an unconditional store precedes"));
153
155 "simplifycfg-merge-cond-stores", cl::Hidden, cl::init(true),
156 cl::desc("Hoist conditional stores even if an unconditional store does not "
157 "precede - hoist multiple conditional stores into a single "
158 "predicated store"));
159
161 "simplifycfg-merge-cond-stores-aggressively", cl::Hidden, cl::init(false),
162 cl::desc("When merging conditional stores, do so even if the resultant "
163 "basic blocks are unlikely to be if-converted as a result"));
164
166 "speculate-one-expensive-inst", cl::Hidden, cl::init(true),
167 cl::desc("Allow exactly one expensive instruction to be speculatively "
168 "executed"));
169
171 "max-speculation-depth", cl::Hidden, cl::init(10),
172 cl::desc("Limit maximum recursion depth when calculating costs of "
173 "speculatively executed instructions"));
174
175static cl::opt<int>
176 MaxSmallBlockSize("simplifycfg-max-small-block-size", cl::Hidden,
177 cl::init(10),
178 cl::desc("Max size of a block which is still considered "
179 "small enough to thread through"));
180
181// Two is chosen to allow one negation and a logical combine.
183 BranchFoldThreshold("simplifycfg-branch-fold-threshold", cl::Hidden,
184 cl::init(2),
185 cl::desc("Maximum cost of combining conditions when "
186 "folding branches"));
187
189 "simplifycfg-branch-fold-common-dest-vector-multiplier", cl::Hidden,
190 cl::init(2),
191 cl::desc("Multiplier to apply to threshold when determining whether or not "
192 "to fold branch to common destination when vector operations are "
193 "present"));
194
196 "simplifycfg-merge-compatible-invokes", cl::Hidden, cl::init(true),
197 cl::desc("Allow SimplifyCFG to merge invokes together when appropriate"));
198
200 "max-switch-cases-per-result", cl::Hidden, cl::init(16),
201 cl::desc("Limit cases to analyze when converting a switch to select"));
202
204 "max-jump-threading-live-blocks", cl::Hidden, cl::init(24),
205 cl::desc("Limit number of blocks a define in a threaded block is allowed "
206 "to be live in"));
207
209
210} // end namespace llvm
211
212STATISTIC(NumBitMaps, "Number of switch instructions turned into bitmaps");
213STATISTIC(NumLinearMaps,
214 "Number of switch instructions turned into linear mapping");
215STATISTIC(NumLookupTables,
216 "Number of switch instructions turned into lookup tables");
218 NumLookupTablesHoles,
219 "Number of switch instructions turned into lookup tables (holes checked)");
220STATISTIC(NumTableCmpReuses, "Number of reused switch table lookup compares");
221STATISTIC(NumFoldValueComparisonIntoPredecessors,
222 "Number of value comparisons folded into predecessor basic blocks");
223STATISTIC(NumFoldBranchToCommonDest,
224 "Number of branches folded into predecessor basic block");
226 NumHoistCommonCode,
227 "Number of common instruction 'blocks' hoisted up to the begin block");
228STATISTIC(NumHoistCommonInstrs,
229 "Number of common instructions hoisted up to the begin block");
230STATISTIC(NumSinkCommonCode,
231 "Number of common instruction 'blocks' sunk down to the end block");
232STATISTIC(NumSinkCommonInstrs,
233 "Number of common instructions sunk down to the end block");
234STATISTIC(NumSpeculations, "Number of speculative executed instructions");
235STATISTIC(NumInvokes,
236 "Number of invokes with empty resume blocks simplified into calls");
237STATISTIC(NumInvokesMerged, "Number of invokes that were merged together");
238STATISTIC(NumInvokeSetsFormed, "Number of invoke sets that were formed");
239
240namespace {
241
242// The first field contains the value that the switch produces when a certain
243// case group is selected, and the second field is a vector containing the
244// cases composing the case group.
245using SwitchCaseResultVectorTy =
247
248// The first field contains the phi node that generates a result of the switch
249// and the second field contains the value generated for a certain case in the
250// switch for that PHI.
251using SwitchCaseResultsTy = SmallVector<std::pair<PHINode *, Constant *>, 4>;
252
253/// ValueEqualityComparisonCase - Represents a case of a switch.
254struct ValueEqualityComparisonCase {
256 BasicBlock *Dest;
257
258 ValueEqualityComparisonCase(ConstantInt *Value, BasicBlock *Dest)
259 : Value(Value), Dest(Dest) {}
260
261 bool operator<(ValueEqualityComparisonCase RHS) const {
262 // Comparing pointers is ok as we only rely on the order for uniquing.
263 return Value < RHS.Value;
264 }
265
266 bool operator==(BasicBlock *RHSDest) const { return Dest == RHSDest; }
267};
268
269class SimplifyCFGOpt {
270 const TargetTransformInfo &TTI;
271 DomTreeUpdater *DTU;
272 const DataLayout &DL;
273 ArrayRef<WeakVH> LoopHeaders;
274 const SimplifyCFGOptions &Options;
275 bool Resimplify;
276
277 Value *isValueEqualityComparison(Instruction *TI);
278 BasicBlock *getValueEqualityComparisonCases(
279 Instruction *TI, std::vector<ValueEqualityComparisonCase> &Cases);
280 bool simplifyEqualityComparisonWithOnlyPredecessor(Instruction *TI,
281 BasicBlock *Pred,
282 IRBuilder<> &Builder);
283 bool performValueComparisonIntoPredecessorFolding(Instruction *TI, Value *&CV,
284 Instruction *PTI,
285 IRBuilder<> &Builder);
286 bool foldValueComparisonIntoPredecessors(Instruction *TI,
287 IRBuilder<> &Builder);
288
289 bool simplifyResume(ResumeInst *RI, IRBuilder<> &Builder);
290 bool simplifySingleResume(ResumeInst *RI);
291 bool simplifyCommonResume(ResumeInst *RI);
292 bool simplifyCleanupReturn(CleanupReturnInst *RI);
293 bool simplifyUnreachable(UnreachableInst *UI);
294 bool simplifySwitch(SwitchInst *SI, IRBuilder<> &Builder);
295 bool simplifyDuplicateSwitchArms(SwitchInst *SI, DomTreeUpdater *DTU);
296 bool simplifyIndirectBr(IndirectBrInst *IBI);
297 bool simplifyUncondBranch(UncondBrInst *BI, IRBuilder<> &Builder);
298 bool simplifyCondBranch(CondBrInst *BI, IRBuilder<> &Builder);
299 bool foldCondBranchOnValueKnownInPredecessor(CondBrInst *BI);
300
301 bool tryToSimplifyUncondBranchWithICmpInIt(ICmpInst *ICI,
302 IRBuilder<> &Builder);
303 bool tryToSimplifyUncondBranchWithICmpSelectInIt(ICmpInst *ICI,
304 SelectInst *Select,
305 IRBuilder<> &Builder);
306 bool hoistCommonCodeFromSuccessors(Instruction *TI, bool AllInstsEqOnly);
307 bool hoistSuccIdenticalTerminatorToSwitchOrIf(
308 Instruction *TI, Instruction *I1,
309 SmallVectorImpl<Instruction *> &OtherSuccTIs,
310 ArrayRef<BasicBlock *> UniqueSuccessors);
311 bool speculativelyExecuteBB(CondBrInst *BI, BasicBlock *ThenBB);
312 bool simplifyTerminatorOnSelect(Instruction *OldTerm, Value *Cond,
313 BasicBlock *TrueBB, BasicBlock *FalseBB,
314 uint32_t TrueWeight, uint32_t FalseWeight);
315 bool simplifyBranchOnICmpChain(CondBrInst *BI, IRBuilder<> &Builder,
316 const DataLayout &DL);
317 bool simplifySwitchOnSelect(SwitchInst *SI, SelectInst *Select);
318 bool simplifySwitchOnSelectRemap(SwitchInst *SI, SelectInst *Select, Value *X,
319 ConstantInt *C, bool Negate);
320 bool simplifyIndirectBrOnSelect(IndirectBrInst *IBI, SelectInst *SI);
321 bool turnSwitchRangeIntoICmp(SwitchInst *SI, IRBuilder<> &Builder);
322 bool simplifyDuplicatePredecessors(BasicBlock *Succ, DomTreeUpdater *DTU);
323
324public:
325 SimplifyCFGOpt(const TargetTransformInfo &TTI, DomTreeUpdater *DTU,
326 const DataLayout &DL, ArrayRef<WeakVH> LoopHeaders,
327 const SimplifyCFGOptions &Opts)
328 : TTI(TTI), DTU(DTU), DL(DL), LoopHeaders(LoopHeaders), Options(Opts) {
329 assert((!DTU || !DTU->hasPostDomTree()) &&
330 "SimplifyCFG is not yet capable of maintaining validity of a "
331 "PostDomTree, so don't ask for it.");
332 }
333
334 bool simplifyOnce(BasicBlock *BB);
335 bool run(BasicBlock *BB);
336
337 // Helper to set Resimplify and return change indication.
338 bool requestResimplify() {
339 Resimplify = true;
340 return true;
341 }
342};
343
344// we synthesize a || b as select a, true, b
345// we synthesize a && b as select a, b, false
346// this function determines if SI is playing one of those roles.
347[[maybe_unused]] bool
348isSelectInRoleOfConjunctionOrDisjunction(const SelectInst *SI) {
349 return ((isa<ConstantInt>(SI->getTrueValue()) &&
350 (dyn_cast<ConstantInt>(SI->getTrueValue())->isOne())) ||
351 (isa<ConstantInt>(SI->getFalseValue()) &&
352 (dyn_cast<ConstantInt>(SI->getFalseValue())->isNullValue())));
353}
354
355} // end anonymous namespace
356
357/// Return true if all the PHI nodes in the basic block \p BB
358/// receive compatible (identical) incoming values when coming from
359/// all of the predecessor blocks that are specified in \p IncomingBlocks.
360///
361/// Note that if the values aren't exactly identical, but \p EquivalenceSet
362/// is provided, and *both* of the values are present in the set,
363/// then they are considered equal.
365 BasicBlock *BB, ArrayRef<BasicBlock *> IncomingBlocks,
366 SmallPtrSetImpl<Value *> *EquivalenceSet = nullptr) {
367 assert(IncomingBlocks.size() == 2 &&
368 "Only for a pair of incoming blocks at the time!");
369
370 // FIXME: it is okay if one of the incoming values is an `undef` value,
371 // iff the other incoming value is guaranteed to be a non-poison value.
372 // FIXME: it is okay if one of the incoming values is a `poison` value.
373 return all_of(BB->phis(), [IncomingBlocks, EquivalenceSet](PHINode &PN) {
374 Value *IV0 = PN.getIncomingValueForBlock(IncomingBlocks[0]);
375 Value *IV1 = PN.getIncomingValueForBlock(IncomingBlocks[1]);
376 if (IV0 == IV1)
377 return true;
378 if (EquivalenceSet && EquivalenceSet->contains(IV0) &&
379 EquivalenceSet->contains(IV1))
380 return true;
381 return false;
382 });
383}
384
385/// Return true if it is safe to merge these two
386/// terminator instructions together.
387static bool
389 SmallSetVector<BasicBlock *, 4> *FailBlocks = nullptr) {
390 if (SI1 == SI2)
391 return false; // Can't merge with self!
392
393 // It is not safe to merge these two switch instructions if they have a common
394 // successor, and if that successor has a PHI node, and if *that* PHI node has
395 // conflicting incoming values from the two switch blocks.
396 BasicBlock *SI1BB = SI1->getParent();
397 BasicBlock *SI2BB = SI2->getParent();
398
400 bool Fail = false;
401 for (BasicBlock *Succ : successors(SI2BB)) {
402 if (!SI1Succs.count(Succ))
403 continue;
404 if (incomingValuesAreCompatible(Succ, {SI1BB, SI2BB}))
405 continue;
406 Fail = true;
407 if (FailBlocks)
408 FailBlocks->insert(Succ);
409 else
410 break;
411 }
412
413 return !Fail;
414}
415
416/// Update PHI nodes in Succ to indicate that there will now be entries in it
417/// from the 'NewPred' block. The values that will be flowing into the PHI nodes
418/// will be the same as those coming in from ExistPred, an existing predecessor
419/// of Succ.
420static void addPredecessorToBlock(BasicBlock *Succ, BasicBlock *NewPred,
421 BasicBlock *ExistPred,
422 MemorySSAUpdater *MSSAU = nullptr) {
423 for (PHINode &PN : Succ->phis())
424 PN.addIncoming(PN.getIncomingValueForBlock(ExistPred), NewPred);
425 if (MSSAU)
426 if (auto *MPhi = MSSAU->getMemorySSA()->getMemoryAccess(Succ))
427 MPhi->addIncoming(MPhi->getIncomingValueForBlock(ExistPred), NewPred);
428}
429
430/// Compute an abstract "cost" of speculating the given instruction,
431/// which is assumed to be safe to speculate. TCC_Free means cheap,
432/// TCC_Basic means less cheap, and TCC_Expensive means prohibitively
433/// expensive.
435 const TargetTransformInfo &TTI) {
436 return TTI.getInstructionCost(I, TargetTransformInfo::TCK_SizeAndLatency);
437}
438
439/// If we have a merge point of an "if condition" as accepted above,
440/// return true if the specified value dominates the block. We don't handle
441/// the true generality of domination here, just a special case which works
442/// well enough for us.
443///
444/// If AggressiveInsts is non-null, and if V does not dominate BB, we check to
445/// see if V (which must be an instruction) and its recursive operands
446/// that do not dominate BB have a combined cost lower than Budget and
447/// are non-trapping. If both are true, the instruction is inserted into the
448/// set and true is returned.
449///
450/// The cost for most non-trapping instructions is defined as 1 except for
451/// Select whose cost is 2.
452///
453/// After this function returns, Cost is increased by the cost of
454/// V plus its non-dominating operands. If that cost is greater than
455/// Budget, false is returned and Cost is undefined.
457 Value *V, BasicBlock *BB, Instruction *InsertPt,
458 SmallPtrSetImpl<Instruction *> &AggressiveInsts, InstructionCost &Cost,
460 SmallPtrSetImpl<Instruction *> &ZeroCostInstructions, unsigned Depth = 0) {
461 // It is possible to hit a zero-cost cycle (phi/gep instructions for example),
462 // so limit the recursion depth.
463 // TODO: While this recursion limit does prevent pathological behavior, it
464 // would be better to track visited instructions to avoid cycles.
466 return false;
467
469 if (!I) {
470 // Non-instructions dominate all instructions and can be executed
471 // unconditionally.
472 return true;
473 }
474 BasicBlock *PBB = I->getParent();
475
476 // We don't want to allow weird loops that might have the "if condition" in
477 // the bottom of this block.
478 if (PBB == BB)
479 return false;
480
481 // If this instruction is defined in a block that contains an unconditional
482 // branch to BB, then it must be in the 'conditional' part of the "if
483 // statement". If not, it definitely dominates the region.
485 if (!BI || BI->getSuccessor() != BB)
486 return true;
487
488 // If we have seen this instruction before, don't count it again.
489 if (AggressiveInsts.count(I))
490 return true;
491
492 // Okay, it looks like the instruction IS in the "condition". Check to
493 // see if it's a cheap instruction to unconditionally compute, and if it
494 // only uses stuff defined outside of the condition. If so, hoist it out.
495 if (!isSafeToSpeculativelyExecute(I, InsertPt, AC))
496 return false;
497
498 // Overflow arithmetic instruction plus extract value are usually generated
499 // when a division is being replaced. But, in this case, the zero check may
500 // still be kept in the code. In that case it would be worth to hoist these
501 // two instruction out of the basic block. Let's treat this pattern as one
502 // single cheap instruction here!
503 WithOverflowInst *OverflowInst;
504 if (match(I, m_ExtractValue<1>(m_OneUse(m_WithOverflowInst(OverflowInst))))) {
505 ZeroCostInstructions.insert(OverflowInst);
506 Cost += 1;
507 } else if (!ZeroCostInstructions.contains(I))
508 Cost += computeSpeculationCost(I, TTI);
509
510 // Allow exactly one instruction to be speculated regardless of its cost
511 // (as long as it is safe to do so).
512 // This is intended to flatten the CFG even if the instruction is a division
513 // or other expensive operation. The speculation of an expensive instruction
514 // is expected to be undone in CodeGenPrepare if the speculation has not
515 // enabled further IR optimizations.
516 if (Cost > Budget &&
517 (!SpeculateOneExpensiveInst || !AggressiveInsts.empty() || Depth > 0 ||
518 !Cost.isValid()))
519 return false;
520
521 // Okay, we can only really hoist these out if their operands do
522 // not take us over the cost threshold.
523 for (Use &Op : I->operands())
524 if (!dominatesMergePoint(Op, BB, InsertPt, AggressiveInsts, Cost, Budget,
525 TTI, AC, ZeroCostInstructions, Depth + 1))
526 return false;
527 // Okay, it's safe to do this! Remember this instruction.
528 AggressiveInsts.insert(I);
529 return true;
530}
531
532/// Extract ConstantInt from value, looking through IntToPtr
533/// and PointerNullValue. Return NULL if value is not a constant int.
535 // Normal constant int.
537 if (CI || !isa<Constant>(V) || !V->getType()->isPointerTy())
538 return CI;
539
540 // It is not safe to look through inttoptr or ptrtoint when using unstable
541 // pointer types.
542 if (DL.hasUnstableRepresentation(V->getType()))
543 return nullptr;
544
545 // This is some kind of pointer constant. Turn it into a pointer-sized
546 // ConstantInt if possible.
547 IntegerType *IntPtrTy = cast<IntegerType>(DL.getIntPtrType(V->getType()));
548
549 // Null pointer means 0, see SelectionDAGBuilder::getValue(const Value*).
551 return ConstantInt::get(IntPtrTy, 0);
552
553 // IntToPtr const int, we can look through this if the semantics of
554 // inttoptr for this address space are a simple (truncating) bitcast.
556 if (CE->getOpcode() == Instruction::IntToPtr)
557 if (ConstantInt *CI = dyn_cast<ConstantInt>(CE->getOperand(0))) {
558 // The constant is very likely to have the right type already.
559 if (CI->getType() == IntPtrTy)
560 return CI;
561 else
562 return cast<ConstantInt>(
563 ConstantFoldIntegerCast(CI, IntPtrTy, /*isSigned=*/false, DL));
564 }
565 return nullptr;
566}
567
568namespace {
569
570/// Given a chain of or (||) or and (&&) comparison of a value against a
571/// constant, this will try to recover the information required for a switch
572/// structure.
573/// It will depth-first traverse the chain of comparison, seeking for patterns
574/// like %a == 12 or %a < 4 and combine them to produce a set of integer
575/// representing the different cases for the switch.
576/// Note that if the chain is composed of '||' it will build the set of elements
577/// that matches the comparisons (i.e. any of this value validate the chain)
578/// while for a chain of '&&' it will build the set elements that make the test
579/// fail.
580struct ConstantComparesGatherer {
581 const DataLayout &DL;
582
583 /// Value found for the switch comparison
584 Value *CompValue = nullptr;
585
586 /// Extra clause to be checked before the switch
587 Value *Extra = nullptr;
588
589 /// Set of integers to match in switch
591
592 /// Number of comparisons matched in the and/or chain
593 unsigned UsedICmps = 0;
594
595 /// If the elements in Vals matches the comparisons
596 bool IsEq = false;
597
598 // Used to check if the first matched CompValue shall be the Extra check.
599 bool IgnoreFirstMatch = false;
600 bool MultipleMatches = false;
601
602 /// Construct and compute the result for the comparison instruction Cond
603 ConstantComparesGatherer(Instruction *Cond, const DataLayout &DL) : DL(DL) {
604 gather(Cond);
605 if (CompValue || !MultipleMatches)
606 return;
607 Extra = nullptr;
608 Vals.clear();
609 UsedICmps = 0;
610 IgnoreFirstMatch = true;
611 gather(Cond);
612 }
613
614 ConstantComparesGatherer(const ConstantComparesGatherer &) = delete;
615 ConstantComparesGatherer &
616 operator=(const ConstantComparesGatherer &) = delete;
617
618private:
619 /// Try to set the current value used for the comparison, it succeeds only if
620 /// it wasn't set before or if the new value is the same as the old one
621 bool setValueOnce(Value *NewVal) {
622 if (IgnoreFirstMatch) {
623 IgnoreFirstMatch = false;
624 return false;
625 }
626 if (CompValue && CompValue != NewVal) {
627 MultipleMatches = true;
628 return false;
629 }
630 CompValue = NewVal;
631 return true;
632 }
633
634 /// Try to match Instruction "I" as a comparison against a constant and
635 /// populates the array Vals with the set of values that match (or do not
636 /// match depending on isEQ).
637 /// Return false on failure. On success, the Value the comparison matched
638 /// against is placed in CompValue.
639 /// If CompValue is already set, the function is expected to fail if a match
640 /// is found but the value compared to is different.
641 bool matchInstruction(Instruction *I, bool isEQ) {
642 if (match(I, m_Not(m_Instruction(I))))
643 isEQ = !isEQ;
644
645 Value *Val;
646 if (match(I, m_NUWTrunc(m_Value(Val)))) {
647 // If we already have a value for the switch, it has to match!
648 if (!setValueOnce(Val))
649 return false;
650 UsedICmps++;
651 Vals.push_back(ConstantInt::get(cast<IntegerType>(Val->getType()), isEQ));
652 return true;
653 }
654 // If this is an icmp against a constant, handle this as one of the cases.
655 ICmpInst *ICI;
656 ConstantInt *C;
657 if (!((ICI = dyn_cast<ICmpInst>(I)) &&
658 (C = getConstantInt(I->getOperand(1), DL)))) {
659 return false;
660 }
661
662 Value *RHSVal;
663 const APInt *RHSC;
664
665 // Pattern match a special case
666 // (x & ~2^z) == y --> x == y || x == y|2^z
667 // This undoes a transformation done by instcombine to fuse 2 compares.
668 if (ICI->getPredicate() == (isEQ ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE)) {
669 // It's a little bit hard to see why the following transformations are
670 // correct. Here is a CVC3 program to verify them for 64-bit values:
671
672 /*
673 ONE : BITVECTOR(64) = BVZEROEXTEND(0bin1, 63);
674 x : BITVECTOR(64);
675 y : BITVECTOR(64);
676 z : BITVECTOR(64);
677 mask : BITVECTOR(64) = BVSHL(ONE, z);
678 QUERY( (y & ~mask = y) =>
679 ((x & ~mask = y) <=> (x = y OR x = (y | mask)))
680 );
681 QUERY( (y | mask = y) =>
682 ((x | mask = y) <=> (x = y OR x = (y & ~mask)))
683 );
684 */
685
686 // Please note that each pattern must be a dual implication (<--> or
687 // iff). One directional implication can create spurious matches. If the
688 // implication is only one-way, an unsatisfiable condition on the left
689 // side can imply a satisfiable condition on the right side. Dual
690 // implication ensures that satisfiable conditions are transformed to
691 // other satisfiable conditions and unsatisfiable conditions are
692 // transformed to other unsatisfiable conditions.
693
694 // Here is a concrete example of a unsatisfiable condition on the left
695 // implying a satisfiable condition on the right:
696 //
697 // mask = (1 << z)
698 // (x & ~mask) == y --> (x == y || x == (y | mask))
699 //
700 // Substituting y = 3, z = 0 yields:
701 // (x & -2) == 3 --> (x == 3 || x == 2)
702
703 // Pattern match a special case:
704 /*
705 QUERY( (y & ~mask = y) =>
706 ((x & ~mask = y) <=> (x = y OR x = (y | mask)))
707 );
708 */
709 if (match(ICI->getOperand(0),
710 m_And(m_Value(RHSVal), m_APInt(RHSC)))) {
711 APInt Mask = ~*RHSC;
712 if (Mask.isPowerOf2() && (C->getValue() & ~Mask) == C->getValue()) {
713 // If we already have a value for the switch, it has to match!
714 if (!setValueOnce(RHSVal))
715 return false;
716
717 Vals.push_back(C);
718 Vals.push_back(
719 ConstantInt::get(C->getContext(),
720 C->getValue() | Mask));
721 UsedICmps++;
722 return true;
723 }
724 }
725
726 // Pattern match a special case:
727 /*
728 QUERY( (y | mask = y) =>
729 ((x | mask = y) <=> (x = y OR x = (y & ~mask)))
730 );
731 */
732 if (match(ICI->getOperand(0),
733 m_Or(m_Value(RHSVal), m_APInt(RHSC)))) {
734 APInt Mask = *RHSC;
735 if (Mask.isPowerOf2() && (C->getValue() | Mask) == C->getValue()) {
736 // If we already have a value for the switch, it has to match!
737 if (!setValueOnce(RHSVal))
738 return false;
739
740 Vals.push_back(C);
741 Vals.push_back(ConstantInt::get(C->getContext(),
742 C->getValue() & ~Mask));
743 UsedICmps++;
744 return true;
745 }
746 }
747
748 // If we already have a value for the switch, it has to match!
749 if (!setValueOnce(ICI->getOperand(0)))
750 return false;
751
752 UsedICmps++;
753 Vals.push_back(C);
754 return true;
755 }
756
757 // If we have "x ult 3", for example, then we can add 0,1,2 to the set.
758 ConstantRange Span =
760
761 // Shift the range if the compare is fed by an add. This is the range
762 // compare idiom as emitted by instcombine.
763 Value *CandidateVal = I->getOperand(0);
764 if (match(I->getOperand(0), m_Add(m_Value(RHSVal), m_APInt(RHSC)))) {
765 Span = Span.subtract(*RHSC);
766 CandidateVal = RHSVal;
767 }
768
769 // If this is an and/!= check, then we are looking to build the set of
770 // value that *don't* pass the and chain. I.e. to turn "x ugt 2" into
771 // x != 0 && x != 1.
772 if (!isEQ)
773 Span = Span.inverse();
774
775 // If there are a ton of values, we don't want to make a ginormous switch.
776 if (Span.isSizeLargerThan(8) || Span.isEmptySet()) {
777 return false;
778 }
779
780 // If we already have a value for the switch, it has to match!
781 if (!setValueOnce(CandidateVal))
782 return false;
783
784 // Add all values from the range to the set
785 APInt Tmp = Span.getLower();
786 do
787 Vals.push_back(ConstantInt::get(I->getContext(), Tmp));
788 while (++Tmp != Span.getUpper());
789
790 UsedICmps++;
791 return true;
792 }
793
794 /// Given a potentially 'or'd or 'and'd together collection of icmp
795 /// eq/ne/lt/gt instructions that compare a value against a constant, extract
796 /// the value being compared, and stick the list constants into the Vals
797 /// vector.
798 /// One "Extra" case is allowed to differ from the other.
799 void gather(Value *V) {
800 Value *Op0, *Op1;
801 if (match(V, m_LogicalOr(m_Value(Op0), m_Value(Op1))))
802 IsEq = true;
803 else if (match(V, m_LogicalAnd(m_Value(Op0), m_Value(Op1))))
804 IsEq = false;
805 else
806 return;
807 // Keep a stack (SmallVector for efficiency) for depth-first traversal
808 SmallVector<Value *, 8> DFT{Op0, Op1};
809 SmallPtrSet<Value *, 8> Visited{V, Op0, Op1};
810
811 while (!DFT.empty()) {
812 V = DFT.pop_back_val();
813
814 if (Instruction *I = dyn_cast<Instruction>(V)) {
815 // If it is a || (or && depending on isEQ), process the operands.
816 if (IsEq ? match(I, m_LogicalOr(m_Value(Op0), m_Value(Op1)))
817 : match(I, m_LogicalAnd(m_Value(Op0), m_Value(Op1)))) {
818 if (Visited.insert(Op1).second)
819 DFT.push_back(Op1);
820 if (Visited.insert(Op0).second)
821 DFT.push_back(Op0);
822
823 continue;
824 }
825
826 // Try to match the current instruction
827 if (matchInstruction(I, IsEq))
828 // Match succeed, continue the loop
829 continue;
830 }
831
832 // One element of the sequence of || (or &&) could not be match as a
833 // comparison against the same value as the others.
834 // We allow only one "Extra" case to be checked before the switch
835 if (!Extra) {
836 Extra = V;
837 continue;
838 }
839 // Failed to parse a proper sequence, abort now
840 CompValue = nullptr;
841 break;
842 }
843 }
844};
845
846} // end anonymous namespace
847
849 MemorySSAUpdater *MSSAU = nullptr) {
850 Instruction *Cond = nullptr;
852 Cond = dyn_cast<Instruction>(SI->getCondition());
853 } else if (CondBrInst *BI = dyn_cast<CondBrInst>(TI)) {
854 Cond = dyn_cast<Instruction>(BI->getCondition());
855 } else if (IndirectBrInst *IBI = dyn_cast<IndirectBrInst>(TI)) {
856 Cond = dyn_cast<Instruction>(IBI->getAddress());
857 }
858
859 TI->eraseFromParent();
860 if (Cond)
862}
863
864/// Return true if the specified terminator checks
865/// to see if a value is equal to constant integer value.
866Value *SimplifyCFGOpt::isValueEqualityComparison(Instruction *TI) {
867 Value *CV = nullptr;
868 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) {
869 // Do not permit merging of large switch instructions into their
870 // predecessors unless there is only one predecessor.
871 if (!SI->getParent()->hasNPredecessorsOrMore(128 / SI->getNumSuccessors()))
872 CV = SI->getCondition();
873 } else if (CondBrInst *BI = dyn_cast<CondBrInst>(TI))
874 if (BI->getCondition()->hasOneUse()) {
875 if (ICmpInst *ICI = dyn_cast<ICmpInst>(BI->getCondition())) {
876 if (ICI->isEquality() && getConstantInt(ICI->getOperand(1), DL))
877 CV = ICI->getOperand(0);
878 } else if (auto *Trunc = dyn_cast<TruncInst>(BI->getCondition())) {
879 if (Trunc->hasNoUnsignedWrap())
880 CV = Trunc->getOperand(0);
881 }
882 }
883
884 // Unwrap any lossless ptrtoint cast (except for unstable pointers).
885 if (CV) {
886 if (PtrToIntInst *PTII = dyn_cast<PtrToIntInst>(CV)) {
887 Value *Ptr = PTII->getPointerOperand();
888 if (DL.hasUnstableRepresentation(Ptr->getType()))
889 return CV;
890 if (PTII->getType() == DL.getIntPtrType(Ptr->getType()))
891 CV = Ptr;
892 }
893 }
894 return CV;
895}
896
897/// Given a value comparison instruction,
898/// decode all of the 'cases' that it represents and return the 'default' block.
899BasicBlock *SimplifyCFGOpt::getValueEqualityComparisonCases(
900 Instruction *TI, std::vector<ValueEqualityComparisonCase> &Cases) {
901 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) {
902 Cases.reserve(SI->getNumCases());
903 for (auto Case : SI->cases())
904 Cases.push_back(ValueEqualityComparisonCase(Case.getCaseValue(),
905 Case.getCaseSuccessor()));
906 return SI->getDefaultDest();
907 }
908
909 CondBrInst *BI = cast<CondBrInst>(TI);
910 Value *Cond = BI->getCondition();
911 ICmpInst::Predicate Pred;
912 ConstantInt *C;
913 if (auto *ICI = dyn_cast<ICmpInst>(Cond)) {
914 Pred = ICI->getPredicate();
915 C = getConstantInt(ICI->getOperand(1), DL);
916 } else {
917 Pred = ICmpInst::ICMP_NE;
918 auto *Trunc = cast<TruncInst>(Cond);
919 C = ConstantInt::get(cast<IntegerType>(Trunc->getOperand(0)->getType()), 0);
920 }
921 BasicBlock *Succ = BI->getSuccessor(Pred == ICmpInst::ICMP_NE);
922 Cases.push_back(ValueEqualityComparisonCase(C, Succ));
923 return BI->getSuccessor(Pred == ICmpInst::ICMP_EQ);
924}
925
926/// Given a vector of bb/value pairs, remove any entries
927/// in the list that match the specified block.
928static void
930 std::vector<ValueEqualityComparisonCase> &Cases) {
931 llvm::erase(Cases, BB);
932}
933
934/// Return true if there are any keys in C1 that exist in C2 as well.
935static bool valuesOverlap(std::vector<ValueEqualityComparisonCase> &C1,
936 std::vector<ValueEqualityComparisonCase> &C2) {
937 std::vector<ValueEqualityComparisonCase> *V1 = &C1, *V2 = &C2;
938
939 // Make V1 be smaller than V2.
940 if (V1->size() > V2->size())
941 std::swap(V1, V2);
942
943 if (V1->empty())
944 return false;
945 if (V1->size() == 1) {
946 // Just scan V2.
947 ConstantInt *TheVal = (*V1)[0].Value;
948 for (const ValueEqualityComparisonCase &VECC : *V2)
949 if (TheVal == VECC.Value)
950 return true;
951 }
952
953 // Otherwise, just sort both lists and compare element by element.
954 array_pod_sort(V1->begin(), V1->end());
955 array_pod_sort(V2->begin(), V2->end());
956 unsigned i1 = 0, i2 = 0, e1 = V1->size(), e2 = V2->size();
957 while (i1 != e1 && i2 != e2) {
958 if ((*V1)[i1].Value == (*V2)[i2].Value)
959 return true;
960 if ((*V1)[i1].Value < (*V2)[i2].Value)
961 ++i1;
962 else
963 ++i2;
964 }
965 return false;
966}
967
968/// If TI is known to be a terminator instruction and its block is known to
969/// only have a single predecessor block, check to see if that predecessor is
970/// also a value comparison with the same value, and if that comparison
971/// determines the outcome of this comparison. If so, simplify TI. This does a
972/// very limited form of jump threading.
973bool SimplifyCFGOpt::simplifyEqualityComparisonWithOnlyPredecessor(
974 Instruction *TI, BasicBlock *Pred, IRBuilder<> &Builder) {
975 Value *PredVal = isValueEqualityComparison(Pred->getTerminator());
976 if (!PredVal)
977 return false; // Not a value comparison in predecessor.
978
979 Value *ThisVal = isValueEqualityComparison(TI);
980 assert(ThisVal && "This isn't a value comparison!!");
981 if (ThisVal != PredVal)
982 return false; // Different predicates.
983
984 // TODO: Preserve branch weight metadata, similarly to how
985 // foldValueComparisonIntoPredecessors preserves it.
986
987 // Find out information about when control will move from Pred to TI's block.
988 std::vector<ValueEqualityComparisonCase> PredCases;
989 BasicBlock *PredDef =
990 getValueEqualityComparisonCases(Pred->getTerminator(), PredCases);
991 eliminateBlockCases(PredDef, PredCases); // Remove default from cases.
992
993 // Find information about how control leaves this block.
994 std::vector<ValueEqualityComparisonCase> ThisCases;
995 BasicBlock *ThisDef = getValueEqualityComparisonCases(TI, ThisCases);
996 eliminateBlockCases(ThisDef, ThisCases); // Remove default from cases.
997
998 // If TI's block is the default block from Pred's comparison, potentially
999 // simplify TI based on this knowledge.
1000 if (PredDef == TI->getParent()) {
1001 // If we are here, we know that the value is none of those cases listed in
1002 // PredCases. If there are any cases in ThisCases that are in PredCases, we
1003 // can simplify TI.
1004 if (!valuesOverlap(PredCases, ThisCases))
1005 return false;
1006
1007 if (isa<CondBrInst>(TI)) {
1008 // Okay, one of the successors of this condbr is dead. Convert it to a
1009 // uncond br.
1010 assert(ThisCases.size() == 1 && "Branch can only have one case!");
1011 // Insert the new branch.
1012 Instruction *NI = Builder.CreateBr(ThisDef);
1013 (void)NI;
1014
1015 // Remove PHI node entries for the dead edge.
1016 ThisCases[0].Dest->removePredecessor(PredDef);
1017
1018 LLVM_DEBUG(dbgs() << "Threading pred instr: " << *Pred->getTerminator()
1019 << "Through successor TI: " << *TI << "Leaving: " << *NI
1020 << "\n");
1021
1023
1024 if (DTU)
1025 DTU->applyUpdates(
1026 {{DominatorTree::Delete, PredDef, ThisCases[0].Dest}});
1027
1028 return true;
1029 }
1030
1031 SwitchInstProfUpdateWrapper SI = *cast<SwitchInst>(TI);
1032 // Okay, TI has cases that are statically dead, prune them away.
1033 SmallPtrSet<Constant *, 16> DeadCases;
1034 for (const ValueEqualityComparisonCase &Case : PredCases)
1035 DeadCases.insert(Case.Value);
1036
1037 LLVM_DEBUG(dbgs() << "Threading pred instr: " << *Pred->getTerminator()
1038 << "Through successor TI: " << *TI);
1039
1040 SmallDenseMap<BasicBlock *, int, 8> NumPerSuccessorCases;
1041 for (SwitchInst::CaseIt i = SI->case_end(), e = SI->case_begin(); i != e;) {
1042 --i;
1043 auto *Successor = i->getCaseSuccessor();
1044 if (DTU)
1045 ++NumPerSuccessorCases[Successor];
1046 if (DeadCases.count(i->getCaseValue())) {
1047 Successor->removePredecessor(PredDef);
1048 SI.removeCase(i);
1049 if (DTU)
1050 --NumPerSuccessorCases[Successor];
1051 }
1052 }
1053
1054 if (DTU) {
1055 std::vector<DominatorTree::UpdateType> Updates;
1056 for (const auto &I : NumPerSuccessorCases)
1057 if (I.second == 0)
1058 Updates.push_back({DominatorTree::Delete, PredDef, I.first});
1059 DTU->applyUpdates(Updates);
1060 }
1061
1062 LLVM_DEBUG(dbgs() << "Leaving: " << *TI << "\n");
1063 return true;
1064 }
1065
1066 // Otherwise, TI's block must correspond to some matched value. Find out
1067 // which value (or set of values) this is.
1068 ConstantInt *TIV = nullptr;
1069 BasicBlock *TIBB = TI->getParent();
1070 for (const auto &[Value, Dest] : PredCases)
1071 if (Dest == TIBB) {
1072 if (TIV)
1073 return false; // Cannot handle multiple values coming to this block.
1074 TIV = Value;
1075 }
1076 assert(TIV && "No edge from pred to succ?");
1077
1078 // Okay, we found the one constant that our value can be if we get into TI's
1079 // BB. Find out which successor will unconditionally be branched to.
1080 BasicBlock *TheRealDest = nullptr;
1081 for (const auto &[Value, Dest] : ThisCases)
1082 if (Value == TIV) {
1083 TheRealDest = Dest;
1084 break;
1085 }
1086
1087 // If not handled by any explicit cases, it is handled by the default case.
1088 if (!TheRealDest)
1089 TheRealDest = ThisDef;
1090
1091 SmallPtrSet<BasicBlock *, 2> RemovedSuccs;
1092
1093 // Remove PHI node entries for dead edges.
1094 BasicBlock *CheckEdge = TheRealDest;
1095 for (BasicBlock *Succ : successors(TIBB))
1096 if (Succ != CheckEdge) {
1097 if (Succ != TheRealDest)
1098 RemovedSuccs.insert(Succ);
1099 Succ->removePredecessor(TIBB);
1100 } else
1101 CheckEdge = nullptr;
1102
1103 // Insert the new branch.
1104 Instruction *NI = Builder.CreateBr(TheRealDest);
1105 (void)NI;
1106
1107 LLVM_DEBUG(dbgs() << "Threading pred instr: " << *Pred->getTerminator()
1108 << "Through successor TI: " << *TI << "Leaving: " << *NI
1109 << "\n");
1110
1112 if (DTU) {
1113 SmallVector<DominatorTree::UpdateType, 2> Updates;
1114 Updates.reserve(RemovedSuccs.size());
1115 for (auto *RemovedSucc : RemovedSuccs)
1116 Updates.push_back({DominatorTree::Delete, TIBB, RemovedSucc});
1117 DTU->applyUpdates(Updates);
1118 }
1119 return true;
1120}
1121
1122namespace {
1123
1124/// This class implements a stable ordering of constant
1125/// integers that does not depend on their address. This is important for
1126/// applications that sort ConstantInt's to ensure uniqueness.
1127struct ConstantIntOrdering {
1128 bool operator()(const ConstantInt *LHS, const ConstantInt *RHS) const {
1129 return LHS->getValue().ult(RHS->getValue());
1130 }
1131};
1132
1133} // end anonymous namespace
1134
1136 ConstantInt *const *P2) {
1137 const ConstantInt *LHS = *P1;
1138 const ConstantInt *RHS = *P2;
1139 if (LHS == RHS)
1140 return 0;
1141 return LHS->getValue().ult(RHS->getValue()) ? 1 : -1;
1142}
1143
1144/// Get Weights of a given terminator, the default weight is at the front
1145/// of the vector. If TI is a conditional eq, we need to swap the branch-weight
1146/// metadata.
1148 SmallVectorImpl<uint64_t> &Weights) {
1149 MDNode *MD = TI->getMetadata(LLVMContext::MD_prof);
1150 assert(MD && "Invalid branch-weight metadata");
1151 extractFromBranchWeightMD64(MD, Weights);
1152
1153 // If TI is a conditional eq, the default case is the false case,
1154 // and the corresponding branch-weight data is at index 2. We swap the
1155 // default weight to be the first entry.
1156 if (CondBrInst *BI = dyn_cast<CondBrInst>(TI)) {
1157 assert(Weights.size() == 2);
1158 auto *ICI = dyn_cast<ICmpInst>(BI->getCondition());
1159 if (!ICI)
1160 return;
1161
1162 if (ICI->getPredicate() == ICmpInst::ICMP_EQ)
1163 std::swap(Weights.front(), Weights.back());
1164 }
1165}
1166
1168 BasicBlock *BB, BasicBlock *PredBlock, ValueToValueMapTy &VMap) {
1169 Instruction *PTI = PredBlock->getTerminator();
1170
1171 // If we have bonus instructions, clone them into the predecessor block.
1172 // Note that there may be multiple predecessor blocks, so we cannot move
1173 // bonus instructions to a predecessor block.
1174 for (Instruction &BonusInst : *BB) {
1175 if (BonusInst.isTerminator())
1176 continue;
1177
1178 // Skip cloning pseudo probes into the predecessor, as it would overcount
1179 // otherwise.
1180 if (isa<PseudoProbeInst>(BonusInst))
1181 continue;
1182
1183 Instruction *NewBonusInst = BonusInst.clone();
1184
1185 if (!NewBonusInst->getDebugLoc().isSameSourceLocation(PTI->getDebugLoc())) {
1186 // Unless the instruction has the same !dbg location as the original
1187 // branch, drop it. When we fold the bonus instructions we want to make
1188 // sure we reset their debug locations in order to avoid stepping on
1189 // dead code caused by folding dead branches.
1190 NewBonusInst->setDebugLoc(DebugLoc::getDropped());
1191 } else if (const DebugLoc &DL = NewBonusInst->getDebugLoc()) {
1192 mapAtomInstance(DL, VMap);
1193 }
1194
1195 RemapInstruction(NewBonusInst, VMap,
1197
1198 // If we speculated an instruction, we need to drop any metadata that may
1199 // result in undefined behavior, as the metadata might have been valid
1200 // only given the branch precondition.
1201 // Similarly strip attributes on call parameters that may cause UB in
1202 // location the call is moved to.
1203 NewBonusInst->dropUBImplyingAttrsAndMetadata();
1204
1205 NewBonusInst->insertInto(PredBlock, PTI->getIterator());
1206 auto Range = NewBonusInst->cloneDebugInfoFrom(&BonusInst);
1207 RemapDbgRecordRange(NewBonusInst->getModule(), Range, VMap,
1209
1210 NewBonusInst->takeName(&BonusInst);
1211 BonusInst.setName(NewBonusInst->getName() + ".old");
1212 VMap[&BonusInst] = NewBonusInst;
1213
1214 // Update (liveout) uses of bonus instructions,
1215 // now that the bonus instruction has been cloned into predecessor.
1216 // Note that we expect to be in a block-closed SSA form for this to work!
1217 for (Use &U : make_early_inc_range(BonusInst.uses())) {
1218 auto *UI = cast<Instruction>(U.getUser());
1219 auto *PN = dyn_cast<PHINode>(UI);
1220 if (!PN) {
1221 assert(UI->getParent() == BB && BonusInst.comesBefore(UI) &&
1222 "If the user is not a PHI node, then it should be in the same "
1223 "block as, and come after, the original bonus instruction.");
1224 continue; // Keep using the original bonus instruction.
1225 }
1226 // Is this the block-closed SSA form PHI node?
1227 if (PN->getIncomingBlock(U) == BB)
1228 continue; // Great, keep using the original bonus instruction.
1229 // The only other alternative is an "use" when coming from
1230 // the predecessor block - here we should refer to the cloned bonus instr.
1231 assert(PN->getIncomingBlock(U) == PredBlock &&
1232 "Not in block-closed SSA form?");
1233 U.set(NewBonusInst);
1234 }
1235 }
1236
1237 // Key Instructions: We may have propagated atom info into the pred. If the
1238 // pred's terminator already has atom info do nothing as merging would drop
1239 // one atom group anyway. If it doesn't, propagte the remapped atom group
1240 // from BB's terminator.
1241 if (auto &PredDL = PTI->getDebugLoc()) {
1242 auto &DL = BB->getTerminator()->getDebugLoc();
1243 if (!PredDL->getAtomGroup() && DL && DL->getAtomGroup() &&
1244 PredDL.isSameSourceLocation(DL)) {
1245 PTI->setDebugLoc(DL);
1246 RemapSourceAtom(PTI, VMap);
1247 }
1248 }
1249}
1250
1251bool SimplifyCFGOpt::performValueComparisonIntoPredecessorFolding(
1252 Instruction *TI, Value *&CV, Instruction *PTI, IRBuilder<> &Builder) {
1253 BasicBlock *BB = TI->getParent();
1254 BasicBlock *Pred = PTI->getParent();
1255
1257
1258 // Figure out which 'cases' to copy from SI to PSI.
1259 std::vector<ValueEqualityComparisonCase> BBCases;
1260 BasicBlock *BBDefault = getValueEqualityComparisonCases(TI, BBCases);
1261
1262 std::vector<ValueEqualityComparisonCase> PredCases;
1263 BasicBlock *PredDefault = getValueEqualityComparisonCases(PTI, PredCases);
1264
1265 // Based on whether the default edge from PTI goes to BB or not, fill in
1266 // PredCases and PredDefault with the new switch cases we would like to
1267 // build.
1268 SmallMapVector<BasicBlock *, int, 8> NewSuccessors;
1269
1270 // Update the branch weight metadata along the way
1271 SmallVector<uint64_t, 8> Weights;
1272 bool PredHasWeights = hasBranchWeightMD(*PTI);
1273 bool SuccHasWeights = hasBranchWeightMD(*TI);
1274
1275 if (PredHasWeights) {
1276 getBranchWeights(PTI, Weights);
1277 // branch-weight metadata is inconsistent here.
1278 if (Weights.size() != 1 + PredCases.size())
1279 PredHasWeights = SuccHasWeights = false;
1280 } else if (SuccHasWeights)
1281 // If there are no predecessor weights but there are successor weights,
1282 // populate Weights with 1, which will later be scaled to the sum of
1283 // successor's weights
1284 Weights.assign(1 + PredCases.size(), 1);
1285
1286 SmallVector<uint64_t, 8> SuccWeights;
1287 if (SuccHasWeights) {
1288 getBranchWeights(TI, SuccWeights);
1289 // branch-weight metadata is inconsistent here.
1290 if (SuccWeights.size() != 1 + BBCases.size())
1291 PredHasWeights = SuccHasWeights = false;
1292 } else if (PredHasWeights)
1293 SuccWeights.assign(1 + BBCases.size(), 1);
1294
1295 if (PredDefault == BB) {
1296 // If this is the default destination from PTI, only the edges in TI
1297 // that don't occur in PTI, or that branch to BB will be activated.
1298 std::set<ConstantInt *, ConstantIntOrdering> PTIHandled;
1299 for (unsigned i = 0, e = PredCases.size(); i != e; ++i)
1300 if (PredCases[i].Dest != BB)
1301 PTIHandled.insert(PredCases[i].Value);
1302 else {
1303 // The default destination is BB, we don't need explicit targets.
1304 std::swap(PredCases[i], PredCases.back());
1305
1306 if (PredHasWeights || SuccHasWeights) {
1307 // Increase weight for the default case.
1308 Weights[0] += Weights[i + 1];
1309 std::swap(Weights[i + 1], Weights.back());
1310 Weights.pop_back();
1311 }
1312
1313 PredCases.pop_back();
1314 --i;
1315 --e;
1316 }
1317
1318 // Reconstruct the new switch statement we will be building.
1319 if (PredDefault != BBDefault) {
1320 PredDefault->removePredecessor(Pred);
1321 if (DTU && PredDefault != BB)
1322 Updates.push_back({DominatorTree::Delete, Pred, PredDefault});
1323 PredDefault = BBDefault;
1324 ++NewSuccessors[BBDefault];
1325 }
1326
1327 unsigned CasesFromPred = Weights.size();
1328 uint64_t ValidTotalSuccWeight = 0;
1329 for (unsigned i = 0, e = BBCases.size(); i != e; ++i)
1330 if (!PTIHandled.count(BBCases[i].Value) && BBCases[i].Dest != BBDefault) {
1331 PredCases.push_back(BBCases[i]);
1332 ++NewSuccessors[BBCases[i].Dest];
1333 if (SuccHasWeights || PredHasWeights) {
1334 // The default weight is at index 0, so weight for the ith case
1335 // should be at index i+1. Scale the cases from successor by
1336 // PredDefaultWeight (Weights[0]).
1337 Weights.push_back(Weights[0] * SuccWeights[i + 1]);
1338 ValidTotalSuccWeight += SuccWeights[i + 1];
1339 }
1340 }
1341
1342 if (SuccHasWeights || PredHasWeights) {
1343 ValidTotalSuccWeight += SuccWeights[0];
1344 // Scale the cases from predecessor by ValidTotalSuccWeight.
1345 for (unsigned i = 1; i < CasesFromPred; ++i)
1346 Weights[i] *= ValidTotalSuccWeight;
1347 // Scale the default weight by SuccDefaultWeight (SuccWeights[0]).
1348 Weights[0] *= SuccWeights[0];
1349 }
1350 } else {
1351 // If this is not the default destination from PSI, only the edges
1352 // in SI that occur in PSI with a destination of BB will be
1353 // activated.
1354 std::set<ConstantInt *, ConstantIntOrdering> PTIHandled;
1355 std::map<ConstantInt *, uint64_t> WeightsForHandled;
1356 for (unsigned i = 0, e = PredCases.size(); i != e; ++i)
1357 if (PredCases[i].Dest == BB) {
1358 PTIHandled.insert(PredCases[i].Value);
1359
1360 if (PredHasWeights || SuccHasWeights) {
1361 WeightsForHandled[PredCases[i].Value] = Weights[i + 1];
1362 std::swap(Weights[i + 1], Weights.back());
1363 Weights.pop_back();
1364 }
1365
1366 std::swap(PredCases[i], PredCases.back());
1367 PredCases.pop_back();
1368 --i;
1369 --e;
1370 }
1371
1372 // Okay, now we know which constants were sent to BB from the
1373 // predecessor. Figure out where they will all go now.
1374 for (const ValueEqualityComparisonCase &Case : BBCases)
1375 if (PTIHandled.count(Case.Value)) {
1376 // If this is one we are capable of getting...
1377 if (PredHasWeights || SuccHasWeights)
1378 Weights.push_back(WeightsForHandled[Case.Value]);
1379 PredCases.push_back(Case);
1380 ++NewSuccessors[Case.Dest];
1381 PTIHandled.erase(Case.Value); // This constant is taken care of
1382 }
1383
1384 // If there are any constants vectored to BB that TI doesn't handle,
1385 // they must go to the default destination of TI.
1386 for (ConstantInt *I : PTIHandled) {
1387 if (PredHasWeights || SuccHasWeights)
1388 Weights.push_back(WeightsForHandled[I]);
1389 PredCases.push_back(ValueEqualityComparisonCase(I, BBDefault));
1390 ++NewSuccessors[BBDefault];
1391 }
1392 }
1393
1394 // Okay, at this point, we know which new successor Pred will get. Make
1395 // sure we update the number of entries in the PHI nodes for these
1396 // successors.
1397 SmallPtrSet<BasicBlock *, 2> SuccsOfPred;
1398 if (DTU) {
1399 SuccsOfPred = {llvm::from_range, successors(Pred)};
1400 Updates.reserve(Updates.size() + NewSuccessors.size());
1401 }
1402 for (const std::pair<BasicBlock *, int /*Num*/> &NewSuccessor :
1403 NewSuccessors) {
1404 for (auto I : seq(NewSuccessor.second)) {
1405 (void)I;
1406 addPredecessorToBlock(NewSuccessor.first, Pred, BB);
1407 }
1408 if (DTU && !SuccsOfPred.contains(NewSuccessor.first))
1409 Updates.push_back({DominatorTree::Insert, Pred, NewSuccessor.first});
1410 }
1411
1412 Builder.SetInsertPoint(PTI);
1413 // Convert pointer to int before we switch.
1414 if (CV->getType()->isPointerTy()) {
1415 assert(!DL.hasUnstableRepresentation(CV->getType()) &&
1416 "Should not end up here with unstable pointers");
1417 CV =
1418 Builder.CreatePtrToInt(CV, DL.getIntPtrType(CV->getType()), "magicptr");
1419 }
1420
1421 // Now that the successors are updated, create the new Switch instruction.
1422 SwitchInst *NewSI = Builder.CreateSwitch(CV, PredDefault, PredCases.size());
1423 NewSI->setDebugLoc(PTI->getDebugLoc());
1424 for (ValueEqualityComparisonCase &V : PredCases)
1425 NewSI->addCase(V.Value, V.Dest);
1426
1427 if (PredHasWeights || SuccHasWeights)
1428 setFittedBranchWeights(*NewSI, Weights, /*IsExpected=*/false,
1429 /*ElideAllZero=*/true);
1430
1431 // The new switch is only known to be unpredictable if both of the comparisons
1432 // it was built from were unpredictable.
1433 if (MDNode *Unpredictable = PTI->getMetadata(LLVMContext::MD_unpredictable))
1434 if (TI->hasMetadata(LLVMContext::MD_unpredictable))
1435 NewSI->setMetadata(LLVMContext::MD_unpredictable, Unpredictable);
1436
1438
1439 // Okay, last check. If BB is still a successor of PSI, then we must
1440 // have an infinite loop case. If so, add an infinitely looping block
1441 // to handle the case to preserve the behavior of the code.
1442 BasicBlock *InfLoopBlock = nullptr;
1443 for (unsigned i = 0, e = NewSI->getNumSuccessors(); i != e; ++i)
1444 if (NewSI->getSuccessor(i) == BB) {
1445 if (!InfLoopBlock) {
1446 // Insert it at the end of the function, because it's either code,
1447 // or it won't matter if it's hot. :)
1448 InfLoopBlock =
1449 BasicBlock::Create(BB->getContext(), "infloop", BB->getParent());
1450 UncondBrInst::Create(InfLoopBlock, InfLoopBlock);
1451 if (DTU)
1452 Updates.push_back(
1453 {DominatorTree::Insert, InfLoopBlock, InfLoopBlock});
1454 }
1455 NewSI->setSuccessor(i, InfLoopBlock);
1456 }
1457
1458 if (DTU) {
1459 if (InfLoopBlock)
1460 Updates.push_back({DominatorTree::Insert, Pred, InfLoopBlock});
1461
1462 Updates.push_back({DominatorTree::Delete, Pred, BB});
1463
1464 DTU->applyUpdates(Updates);
1465 }
1466
1467 ++NumFoldValueComparisonIntoPredecessors;
1468 return true;
1469}
1470
1471/// The specified terminator is a value equality comparison instruction
1472/// (either a switch or a branch on "X == c").
1473/// See if any of the predecessors of the terminator block are value comparisons
1474/// on the same value. If so, and if safe to do so, fold them together.
1475bool SimplifyCFGOpt::foldValueComparisonIntoPredecessors(Instruction *TI,
1476 IRBuilder<> &Builder) {
1477 BasicBlock *BB = TI->getParent();
1478 Value *CV = isValueEqualityComparison(TI); // CondVal
1479 assert(CV && "Not a comparison?");
1480
1481 bool Changed = false;
1482
1483 SmallSetVector<BasicBlock *, 16> Preds(pred_begin(BB), pred_end(BB));
1484 while (!Preds.empty()) {
1485 BasicBlock *Pred = Preds.pop_back_val();
1486 Instruction *PTI = Pred->getTerminator();
1487
1488 // Don't try to fold into itself.
1489 if (Pred == BB)
1490 continue;
1491
1492 // See if the predecessor is a comparison with the same value.
1493 Value *PCV = isValueEqualityComparison(PTI); // PredCondVal
1494 if (PCV != CV)
1495 continue;
1496
1497 SmallSetVector<BasicBlock *, 4> FailBlocks;
1498 if (!safeToMergeTerminators(TI, PTI, &FailBlocks)) {
1499 for (auto *Succ : FailBlocks) {
1500 if (!SplitBlockPredecessors(Succ, TI->getParent(), ".fold.split", DTU))
1501 return false;
1502 }
1503 }
1504
1505 performValueComparisonIntoPredecessorFolding(TI, CV, PTI, Builder);
1506 Changed = true;
1507 }
1508 return Changed;
1509}
1510
1511// If we would need to insert a select that uses the value of this invoke
1512// (comments in hoistSuccIdenticalTerminatorToSwitchOrIf explain why we would
1513// need to do this), we can't hoist the invoke, as there is nowhere to put the
1514// select in this case.
1516 Instruction *I1, Instruction *I2) {
1517 for (BasicBlock *Succ : successors(BB1)) {
1518 for (const PHINode &PN : Succ->phis()) {
1519 Value *BB1V = PN.getIncomingValueForBlock(BB1);
1520 Value *BB2V = PN.getIncomingValueForBlock(BB2);
1521 if (BB1V != BB2V && (BB1V == I1 || BB2V == I2)) {
1522 return false;
1523 }
1524 }
1525 }
1526 return true;
1527}
1528
1529// Get interesting characteristics of instructions that
1530// `hoistCommonCodeFromSuccessors` didn't hoist. They restrict what kind of
1531// instructions can be reordered across.
1537
1539 // Pseudo probes don't constrain reordering of other instructions.
1541 return 0;
1542 unsigned Flags = 0;
1543 if (I->mayReadFromMemory())
1544 Flags |= SkipReadMem;
1545 // We can't arbitrarily move around allocas, e.g. moving allocas (especially
1546 // inalloca) across stacksave/stackrestore boundaries.
1547 if (I->mayHaveSideEffects() || isa<AllocaInst>(I))
1548 Flags |= SkipSideEffect;
1550 Flags |= SkipImplicitControlFlow;
1551 return Flags;
1552}
1553
1554// Returns true if it is safe to reorder an instruction across preceding
1555// instructions in a basic block.
1556static bool isSafeToHoistInstr(Instruction *I, unsigned Flags) {
1557 // Don't reorder a store over a load.
1558 if ((Flags & SkipReadMem) && I->mayWriteToMemory())
1559 return false;
1560
1561 // If we have seen an instruction with side effects, it's unsafe to reorder an
1562 // instruction which reads memory or itself has side effects.
1563 if ((Flags & SkipSideEffect) &&
1564 (I->mayReadFromMemory() || I->mayHaveSideEffects() || isa<AllocaInst>(I)))
1565 return false;
1566
1567 // Reordering across an instruction which does not necessarily transfer
1568 // control to the next instruction is speculation.
1570 return false;
1571
1572 // Hoisting of llvm.deoptimize is only legal together with the next return
1573 // instruction, which this pass is not always able to do.
1574 if (auto *CB = dyn_cast<CallBase>(I))
1575 if (CB->getIntrinsicID() == Intrinsic::experimental_deoptimize)
1576 return false;
1577
1578 // It's also unsafe/illegal to hoist an instruction above its instruction
1579 // operands
1580 BasicBlock *BB = I->getParent();
1581 for (Value *Op : I->operands()) {
1582 if (auto *J = dyn_cast<Instruction>(Op))
1583 if (J->getParent() == BB)
1584 return false;
1585 }
1586
1587 return true;
1588}
1589
1590static bool passingValueIsAlwaysUndefined(Value *V, Instruction *I, bool PtrValueMayBeModified = false);
1591
1592/// Helper function for hoistCommonCodeFromSuccessors. Return true if identical
1593/// instructions \p I1 and \p I2 can and should be hoisted.
1595 const TargetTransformInfo &TTI) {
1596 // If we're going to hoist a call, make sure that the two instructions
1597 // we're commoning/hoisting are both marked with musttail, or neither of
1598 // them is marked as such. Otherwise, we might end up in a situation where
1599 // we hoist from a block where the terminator is a `ret` to a block where
1600 // the terminator is a `br`, and `musttail` calls expect to be followed by
1601 // a return.
1602 auto *C1 = dyn_cast<CallInst>(I1);
1603 auto *C2 = dyn_cast<CallInst>(I2);
1604 if (C1 && C2)
1605 if (C1->isMustTailCall() != C2->isMustTailCall())
1606 return false;
1607
1608 if (!TTI.isProfitableToHoist(I1) || !TTI.isProfitableToHoist(I2))
1609 return false;
1610
1611 // If any of the two call sites has nomerge or convergent attribute, stop
1612 // hoisting.
1613 if (const auto *CB1 = dyn_cast<CallBase>(I1))
1614 if (CB1->cannotMerge() || CB1->isConvergent())
1615 return false;
1616 if (const auto *CB2 = dyn_cast<CallBase>(I2))
1617 if (CB2->cannotMerge() || CB2->isConvergent())
1618 return false;
1619
1620 return true;
1621}
1622
1623/// Hoists DbgVariableRecords from \p I1 and \p OtherInstrs that are identical
1624/// in lock-step to \p TI. This matches how dbg.* intrinsics are hoisting in
1625/// hoistCommonCodeFromSuccessors. e.g. The input:
1626/// I1 DVRs: { x, z },
1627/// OtherInsts: { I2 DVRs: { x, y, z } }
1628/// would result in hoisting only DbgVariableRecord x.
1630 Instruction *TI, Instruction *I1,
1631 SmallVectorImpl<Instruction *> &OtherInsts) {
1632 if (!I1->hasDbgRecords())
1633 return;
1634 using CurrentAndEndIt =
1635 std::pair<DbgRecord::self_iterator, DbgRecord::self_iterator>;
1636 // Vector of {Current, End} iterators.
1638 Itrs.reserve(OtherInsts.size() + 1);
1639 // Helper lambdas for lock-step checks:
1640 // Return true if this Current == End.
1641 auto atEnd = [](const CurrentAndEndIt &Pair) {
1642 return Pair.first == Pair.second;
1643 };
1644 // Return true if all Current are identical.
1645 auto allIdentical = [](const SmallVector<CurrentAndEndIt> &Itrs) {
1646 return all_of(make_first_range(ArrayRef(Itrs).drop_front()),
1648 return Itrs[0].first->isIdenticalToWhenDefined(*I);
1649 });
1650 };
1651
1652 // Collect the iterators.
1653 Itrs.push_back(
1654 {I1->getDbgRecordRange().begin(), I1->getDbgRecordRange().end()});
1655 for (Instruction *Other : OtherInsts) {
1656 if (!Other->hasDbgRecords())
1657 return;
1658 Itrs.push_back(
1659 {Other->getDbgRecordRange().begin(), Other->getDbgRecordRange().end()});
1660 }
1661
1662 // Iterate in lock-step until any of the DbgRecord lists are exausted. If
1663 // the lock-step DbgRecord are identical, hoist all of them to TI.
1664 // This replicates the dbg.* intrinsic behaviour in
1665 // hoistCommonCodeFromSuccessors.
1666 while (none_of(Itrs, atEnd)) {
1667 bool HoistDVRs = allIdentical(Itrs);
1668 for (CurrentAndEndIt &Pair : Itrs) {
1669 // Increment Current iterator now as we may be about to move the
1670 // DbgRecord.
1671 DbgRecord &DR = *Pair.first++;
1672 if (HoistDVRs) {
1673 DR.removeFromParent();
1674 TI->getParent()->insertDbgRecordBefore(&DR, TI->getIterator());
1675 }
1676 }
1677 }
1678}
1679
1681 const Instruction *I2) {
1682 if (I1->isIdenticalToWhenDefined(I2, /*IntersectAttrs=*/true))
1683 return true;
1684
1685 if (auto *Cmp1 = dyn_cast<CmpInst>(I1))
1686 if (auto *Cmp2 = dyn_cast<CmpInst>(I2))
1687 return Cmp1->getPredicate() == Cmp2->getSwappedPredicate() &&
1688 Cmp1->getOperand(0) == Cmp2->getOperand(1) &&
1689 Cmp1->getOperand(1) == Cmp2->getOperand(0);
1690
1691 if (I1->isCommutative() && I1->isSameOperationAs(I2)) {
1692 return I1->getOperand(0) == I2->getOperand(1) &&
1693 I1->getOperand(1) == I2->getOperand(0) &&
1694 equal(drop_begin(I1->operands(), 2), drop_begin(I2->operands(), 2));
1695 }
1696
1697 return false;
1698}
1699
1700/// If the target supports conditional faulting,
1701/// we look for the following pattern:
1702/// \code
1703/// BB:
1704/// ...
1705/// %cond = icmp ult %x, %y
1706/// br i1 %cond, label %TrueBB, label %FalseBB
1707/// FalseBB:
1708/// store i32 1, ptr %q, align 4
1709/// ...
1710/// TrueBB:
1711/// %maskedloadstore = load i32, ptr %b, align 4
1712/// store i32 %maskedloadstore, ptr %p, align 4
1713/// ...
1714/// \endcode
1715///
1716/// and transform it into:
1717///
1718/// \code
1719/// BB:
1720/// ...
1721/// %cond = icmp ult %x, %y
1722/// %maskedloadstore = cload i32, ptr %b, %cond
1723/// cstore i32 %maskedloadstore, ptr %p, %cond
1724/// cstore i32 1, ptr %q, ~%cond
1725/// br i1 %cond, label %TrueBB, label %FalseBB
1726/// FalseBB:
1727/// ...
1728/// TrueBB:
1729/// ...
1730/// \endcode
1731///
1732/// where cload/cstore are represented by llvm.masked.load/store intrinsics,
1733/// e.g.
1734///
1735/// \code
1736/// %vcond = bitcast i1 %cond to <1 x i1>
1737/// %v0 = call <1 x i32> @llvm.masked.load.v1i32.p0
1738/// (ptr %b, i32 4, <1 x i1> %vcond, <1 x i32> poison)
1739/// %maskedloadstore = bitcast <1 x i32> %v0 to i32
1740/// call void @llvm.masked.store.v1i32.p0
1741/// (<1 x i32> %v0, ptr %p, i32 4, <1 x i1> %vcond)
1742/// %cond.not = xor i1 %cond, true
1743/// %vcond.not = bitcast i1 %cond.not to <1 x i>
1744/// call void @llvm.masked.store.v1i32.p0
1745/// (<1 x i32> <i32 1>, ptr %q, i32 4, <1x i1> %vcond.not)
1746/// \endcode
1747///
1748/// So we need to turn hoisted load/store into cload/cstore.
1749///
1750/// \param BI The branch instruction.
1751/// \param SpeculatedConditionalLoadsStores The load/store instructions that
1752/// will be speculated.
1753/// \param Invert indicates if speculates FalseBB. Only used in triangle CFG.
1755 CondBrInst *BI,
1756 SmallVectorImpl<Instruction *> &SpeculatedConditionalLoadsStores,
1757 std::optional<bool> Invert, Instruction *Sel) {
1758 auto &Context = BI->getParent()->getContext();
1759 auto *VCondTy = FixedVectorType::get(Type::getInt1Ty(Context), 1);
1760 auto *Cond = BI->getCondition();
1761 // Construct the condition if needed.
1762 BasicBlock *BB = BI->getParent();
1763 Value *Mask = nullptr;
1764 Value *MaskFalse = nullptr;
1765 Value *MaskTrue = nullptr;
1766 if (Invert.has_value()) {
1767 IRBuilder<> Builder(Sel ? Sel : SpeculatedConditionalLoadsStores.back());
1768 Mask = Builder.CreateBitCast(
1769 *Invert ? Builder.CreateXor(Cond, ConstantInt::getTrue(Context)) : Cond,
1770 VCondTy);
1771 } else {
1772 IRBuilder<> Builder(BI);
1773 MaskFalse = Builder.CreateBitCast(
1774 Builder.CreateXor(Cond, ConstantInt::getTrue(Context)), VCondTy);
1775 MaskTrue = Builder.CreateBitCast(Cond, VCondTy);
1776 }
1777 auto PeekThroughBitcasts = [](Value *V) {
1778 while (auto *BitCast = dyn_cast<BitCastInst>(V))
1779 V = BitCast->getOperand(0);
1780 return V;
1781 };
1782 for (auto *I : SpeculatedConditionalLoadsStores) {
1783 IRBuilder<> Builder(Invert.has_value() ? I : BI);
1784 if (!Invert.has_value())
1785 Mask = I->getParent() == BI->getSuccessor(0) ? MaskTrue : MaskFalse;
1786 // We currently assume conditional faulting load/store is supported for
1787 // scalar types only when creating new instructions. This can be easily
1788 // extended for vector types in the future.
1789 assert(!getLoadStoreType(I)->isVectorTy() && "not implemented");
1790 auto *Op0 = I->getOperand(0);
1791 CallInst *MaskedLoadStore = nullptr;
1792 if (auto *LI = dyn_cast<LoadInst>(I)) {
1793 // Handle Load.
1794 auto *Ty = I->getType();
1795 PHINode *PN = nullptr;
1796 Value *PassThru = nullptr;
1797 if (Invert.has_value())
1798 for (User *U : I->users()) {
1799 if ((PN = dyn_cast<PHINode>(U))) {
1800 PassThru = Builder.CreateBitCast(
1801 PeekThroughBitcasts(PN->getIncomingValueForBlock(BB)),
1802 FixedVectorType::get(Ty, 1));
1803 } else if (auto *Ins = cast<Instruction>(U);
1804 Sel && Ins->getParent() == BB) {
1805 // This happens when store or/and a speculative instruction between
1806 // load and store were hoisted to the BB. Make sure the masked load
1807 // inserted before its use.
1808 // We assume there's one of such use.
1809 Builder.SetInsertPoint(Ins);
1810 }
1811 }
1812 MaskedLoadStore = Builder.CreateMaskedLoad(
1813 FixedVectorType::get(Ty, 1), Op0, LI->getAlign(), Mask, PassThru);
1814 Value *NewLoadStore = Builder.CreateBitCast(MaskedLoadStore, Ty);
1815 if (PN)
1816 PN->setIncomingValue(PN->getBasicBlockIndex(BB), NewLoadStore);
1817 I->replaceAllUsesWith(NewLoadStore);
1818 } else {
1819 // Handle Store.
1820 auto *StoredVal = Builder.CreateBitCast(
1821 PeekThroughBitcasts(Op0), FixedVectorType::get(Op0->getType(), 1));
1822 MaskedLoadStore = Builder.CreateMaskedStore(
1823 StoredVal, I->getOperand(1), cast<StoreInst>(I)->getAlign(), Mask);
1824 }
1825 // For non-debug metadata, only !annotation, !range, !nonnull and !align are
1826 // kept when hoisting (see Instruction::dropUBImplyingAttrsAndMetadata).
1827 //
1828 // !nonnull, !align : Not support pointer type, no need to keep.
1829 // !range: Load type is changed from scalar to vector, but the metadata on
1830 // vector specifies a per-element range, so the semantics stay the
1831 // same. Keep it.
1832 // !annotation: Not impact semantics. Keep it.
1833 if (const MDNode *Ranges = I->getMetadata(LLVMContext::MD_range))
1834 MaskedLoadStore->addRangeRetAttr(getConstantRangeFromMetadata(*Ranges));
1835 I->dropUBImplyingAttrsAndUnknownMetadata({LLVMContext::MD_annotation});
1836 // FIXME: DIAssignID is not supported for masked store yet.
1837 // (Verifier::visitDIAssignIDMetadata)
1839 I->eraseMetadataIf([](unsigned MDKind, MDNode *Node) {
1840 return Node->getMetadataID() == Metadata::DIAssignIDKind;
1841 });
1842 MaskedLoadStore->copyMetadata(*I);
1843 I->eraseFromParent();
1844 }
1845}
1846
1848 const TargetTransformInfo &TTI) {
1849 // Not handle volatile or atomic.
1850 bool IsStore = false;
1851 if (auto *L = dyn_cast<LoadInst>(I)) {
1852 if (!L->isSimple() || !HoistLoadsWithCondFaulting)
1853 return false;
1854 } else if (auto *S = dyn_cast<StoreInst>(I)) {
1855 if (!S->isSimple() || !HoistStoresWithCondFaulting)
1856 return false;
1857 IsStore = true;
1858 } else
1859 return false;
1860
1861 // llvm.masked.load/store use i32 for alignment while load/store use i64.
1862 // That's why we have the alignment limitation.
1863 // FIXME: Update the prototype of the intrinsics?
1864 return TTI.hasConditionalLoadStoreForType(getLoadStoreType(I), IsStore) &&
1866}
1867
1868/// Hoist any common code in the successor blocks up into the block. This
1869/// function guarantees that BB dominates all successors. If AllInstsEqOnly is
1870/// given, only perform hoisting in case all successors blocks contain matching
1871/// instructions only. In that case, all instructions can be hoisted and the
1872/// original branch will be replaced and selects for PHIs are added.
1873bool SimplifyCFGOpt::hoistCommonCodeFromSuccessors(Instruction *TI,
1874 bool AllInstsEqOnly) {
1875 // This does very trivial matching, with limited scanning, to find identical
1876 // instructions in the two blocks. In particular, we don't want to get into
1877 // O(N1*N2*...) situations here where Ni are the sizes of these successors. As
1878 // such, we currently just scan for obviously identical instructions in an
1879 // identical order, possibly separated by the same number of non-identical
1880 // instructions.
1881 BasicBlock *BB = TI->getParent();
1882 unsigned int SuccSize = succ_size(BB);
1883 if (SuccSize < 2)
1884 return false;
1885
1886 // If either of the blocks has it's address taken, then we can't do this fold,
1887 // because the code we'd hoist would no longer run when we jump into the block
1888 // by it's address.
1889 SmallSetVector<BasicBlock *, 4> UniqueSuccessors(from_range, successors(BB));
1890 for (auto *Succ : UniqueSuccessors) {
1891 if (Succ->hasAddressTaken())
1892 return false;
1893 // Use getUniquePredecessor instead of getSinglePredecessor to support
1894 // multi-cases successors in switch.
1895 if (Succ->getUniquePredecessor())
1896 continue;
1897 // If Succ has >1 predecessors, continue to check if the Succ contains only
1898 // one `unreachable` inst. Since executing `unreachable` inst is an UB, we
1899 // can relax the condition based on the assumptiom that the program would
1900 // never enter Succ and trigger such an UB.
1901 if (isa<UnreachableInst>(*Succ->begin()))
1902 continue;
1903 return false;
1904 }
1905 // The second of pair is a SkipFlags bitmask.
1906 using SuccIterPair = std::pair<BasicBlock::iterator, unsigned>;
1907 SmallVector<SuccIterPair, 8> SuccIterPairs;
1908 for (auto *Succ : UniqueSuccessors) {
1909 BasicBlock::iterator SuccItr = Succ->begin();
1910 if (isa<PHINode>(*SuccItr))
1911 return false;
1912 SuccIterPairs.push_back(SuccIterPair(SuccItr, 0));
1913 }
1914
1915 if (AllInstsEqOnly) {
1916 // Check if all instructions in the successor blocks match. This allows
1917 // hoisting all instructions and removing the blocks we are hoisting from,
1918 // so does not add any new instructions.
1919
1920 // Check if sizes and terminators of all successors match.
1921 unsigned Size0 = UniqueSuccessors[0]->size();
1922 Instruction *Term0 = UniqueSuccessors[0]->getTerminator();
1923 bool AllSame =
1924 all_of(drop_begin(UniqueSuccessors), [Term0, Size0](BasicBlock *Succ) {
1925 return Succ->getTerminator()->isIdenticalTo(Term0) &&
1926 Succ->size() == Size0;
1927 });
1928 if (!AllSame)
1929 return false;
1930 LockstepReverseIterator<true> LRI(UniqueSuccessors.getArrayRef());
1931 while (LRI.isValid()) {
1932 Instruction *I0 = (*LRI)[0];
1933 if (any_of(*LRI, [I0](Instruction *I) {
1934 return !areIdenticalUpToCommutativity(I0, I);
1935 })) {
1936 return false;
1937 }
1938 --LRI;
1939 }
1940 // Now we know that all instructions in all successors can be hoisted. Let
1941 // the loop below handle the hoisting.
1942 }
1943
1944 // Count how many instructions were not hoisted so far. There's a limit on how
1945 // many instructions we skip, serving as a compilation time control as well as
1946 // preventing excessive increase of life ranges.
1947 unsigned NumSkipped = 0;
1948 // If we find an unreachable instruction at the beginning of a basic block, we
1949 // can still hoist instructions from the rest of the basic blocks.
1950 if (SuccIterPairs.size() > 2) {
1951 erase_if(SuccIterPairs,
1952 [](const auto &Pair) { return isa<UnreachableInst>(Pair.first); });
1953 if (SuccIterPairs.size() < 2)
1954 return false;
1955 }
1956
1957 bool Changed = false;
1958
1959 for (;;) {
1960 auto *SuccIterPairBegin = SuccIterPairs.begin();
1961 auto &BB1ItrPair = *SuccIterPairBegin++;
1962 auto OtherSuccIterPairRange =
1963 iterator_range(SuccIterPairBegin, SuccIterPairs.end());
1964 auto OtherSuccIterRange = make_first_range(OtherSuccIterPairRange);
1965
1966 Instruction *I1 = &*BB1ItrPair.first;
1967
1968 bool AllInstsAreIdentical = true;
1969 bool HasTerminator = I1->isTerminator();
1970 for (auto &SuccIter : OtherSuccIterRange) {
1971 Instruction *I2 = &*SuccIter;
1972 HasTerminator |= I2->isTerminator();
1973 if (AllInstsAreIdentical && (!areIdenticalUpToCommutativity(I1, I2) ||
1974 MMRAMetadata(*I1) != MMRAMetadata(*I2)))
1975 AllInstsAreIdentical = false;
1976 }
1977
1978 SmallVector<Instruction *, 8> OtherInsts;
1979 for (auto &SuccIter : OtherSuccIterRange)
1980 OtherInsts.push_back(&*SuccIter);
1981
1982 // If we are hoisting the terminator instruction, don't move one (making a
1983 // broken BB), instead clone it, and remove BI.
1984 if (HasTerminator) {
1985 // Even if BB, which contains only one unreachable instruction, is ignored
1986 // at the beginning of the loop, we can hoist the terminator instruction.
1987 // If any instructions remain in the block, we cannot hoist terminators.
1988 if (NumSkipped || !AllInstsAreIdentical) {
1989 hoistLockstepIdenticalDbgVariableRecords(TI, I1, OtherInsts);
1990 return Changed;
1991 }
1992
1993 return hoistSuccIdenticalTerminatorToSwitchOrIf(
1994 TI, I1, OtherInsts, UniqueSuccessors.getArrayRef()) ||
1995 Changed;
1996 }
1997
1998 if (AllInstsAreIdentical) {
1999 unsigned SkipFlagsBB1 = BB1ItrPair.second;
2000 AllInstsAreIdentical =
2001 isSafeToHoistInstr(I1, SkipFlagsBB1) &&
2002 all_of(OtherSuccIterPairRange, [=](const auto &Pair) {
2003 Instruction *I2 = &*Pair.first;
2004 unsigned SkipFlagsBB2 = Pair.second;
2005 // Even if the instructions are identical, it may not
2006 // be safe to hoist them if we have skipped over
2007 // instructions with side effects or their operands
2008 // weren't hoisted.
2009 return isSafeToHoistInstr(I2, SkipFlagsBB2) &&
2011 });
2012 }
2013
2014 // A musttail call must be immediately followed by a ret, so hoisting is
2015 // only legal if its ret is hoisted with it on the next iteration. That is,
2016 // no instruction has been skipped (the entire successor can be hoisted into
2017 // the predecessor) and the call is directly followed by a ret.
2018 if (auto *CI = dyn_cast<CallInst>(I1);
2019 AllInstsAreIdentical && CI && CI->isMustTailCall()) {
2020 AllInstsAreIdentical =
2021 NumSkipped == 0 && all_of(SuccIterPairs, [](const SuccIterPair &P) {
2022 return isa<ReturnInst>(*std::next(P.first));
2023 });
2024 }
2025
2026 if (AllInstsAreIdentical) {
2027 BB1ItrPair.first++;
2028 // For a normal instruction, we just move one to right before the
2029 // branch, then replace all uses of the other with the first. Finally,
2030 // we remove the now redundant second instruction.
2031 hoistLockstepIdenticalDbgVariableRecords(TI, I1, OtherInsts);
2032 // We've just hoisted DbgVariableRecords; move I1 after them (before TI)
2033 // and leave any that were not hoisted behind (by calling moveBefore
2034 // rather than moveBeforePreserving).
2035 I1->moveBefore(TI->getIterator());
2036 for (auto &SuccIter : OtherSuccIterRange) {
2037 Instruction *I2 = &*SuccIter++;
2038 assert(I2 != I1);
2039 if (!I2->use_empty())
2040 I2->replaceAllUsesWith(I1);
2041 I1->andIRFlags(I2);
2042 if (auto *CB = dyn_cast<CallBase>(I1)) {
2043 bool Success = CB->tryIntersectAttributes(cast<CallBase>(I2));
2044 assert(Success && "We should not be trying to hoist callbases "
2045 "with non-intersectable attributes");
2046 // For NDEBUG Compile.
2047 (void)Success;
2048 }
2049
2050 combineMetadataForCSE(I1, I2, true);
2051 // I1 and I2 are being combined into a single instruction. Its debug
2052 // location is the merged locations of the original instructions.
2053 I1->applyMergedLocation(I1->getDebugLoc(), I2->getDebugLoc());
2054 I2->eraseFromParent();
2055 }
2056 if (!Changed)
2057 NumHoistCommonCode += SuccIterPairs.size();
2058 Changed = true;
2059 NumHoistCommonInstrs += SuccIterPairs.size();
2060 } else {
2061 if (NumSkipped >= HoistCommonSkipLimit) {
2062 hoistLockstepIdenticalDbgVariableRecords(TI, I1, OtherInsts);
2063 return Changed;
2064 }
2065 // We are about to skip over a pair of non-identical instructions. Record
2066 // if any have characteristics that would prevent reordering instructions
2067 // across them.
2068 for (auto &SuccIterPair : SuccIterPairs) {
2069 Instruction *I = &*SuccIterPair.first++;
2070 SuccIterPair.second |= skippedInstrFlags(I);
2071 }
2072 ++NumSkipped;
2073 }
2074 }
2075}
2076
2077bool SimplifyCFGOpt::hoistSuccIdenticalTerminatorToSwitchOrIf(
2078 Instruction *TI, Instruction *I1,
2079 SmallVectorImpl<Instruction *> &OtherSuccTIs,
2080 ArrayRef<BasicBlock *> UniqueSuccessors) {
2081
2082 auto *BI = dyn_cast<CondBrInst>(TI);
2083
2084 bool Changed = false;
2085 BasicBlock *TIParent = TI->getParent();
2086 BasicBlock *BB1 = I1->getParent();
2087
2088 // Use only for an if statement.
2089 auto *I2 = *OtherSuccTIs.begin();
2090 auto *BB2 = I2->getParent();
2091 if (BI) {
2092 assert(OtherSuccTIs.size() == 1);
2093 assert(BI->getSuccessor(0) == I1->getParent());
2094 assert(BI->getSuccessor(1) == I2->getParent());
2095 }
2096
2097 // In the case of an if statement, we try to hoist an invoke.
2098 // FIXME: Can we define a safety predicate for CallBr?
2099 // FIXME: Test case llvm/test/Transforms/SimplifyCFG/2009-06-15-InvokeCrash.ll
2100 // removed in 4c923b3b3fd0ac1edebf0603265ca3ba51724937 commit?
2101 if (isa<InvokeInst>(I1) && (!BI || !isSafeToHoistInvoke(BB1, BB2, I1, I2)))
2102 return false;
2103
2104 // TODO: callbr hoisting currently disabled pending further study.
2105 if (isa<CallBrInst>(I1))
2106 return false;
2107
2108 for (BasicBlock *Succ : successors(BB1)) {
2109 for (PHINode &PN : Succ->phis()) {
2110 Value *BB1V = PN.getIncomingValueForBlock(BB1);
2111 for (Instruction *OtherSuccTI : OtherSuccTIs) {
2112 Value *BB2V = PN.getIncomingValueForBlock(OtherSuccTI->getParent());
2113 if (BB1V == BB2V)
2114 continue;
2115
2116 // In the case of an if statement, check for
2117 // passingValueIsAlwaysUndefined here because we would rather eliminate
2118 // undefined control flow then converting it to a select.
2119 if (!BI || passingValueIsAlwaysUndefined(BB1V, &PN) ||
2121 return false;
2122 }
2123 }
2124 }
2125
2126 // Hoist DbgVariableRecords attached to the terminator to match dbg.*
2127 // intrinsic hoisting behaviour in hoistCommonCodeFromSuccessors.
2128 hoistLockstepIdenticalDbgVariableRecords(TI, I1, OtherSuccTIs);
2129 // Clone the terminator and hoist it into the pred, without any debug info.
2130 Instruction *NT = I1->clone();
2131 NT->insertInto(TIParent, TI->getIterator());
2132 if (!NT->getType()->isVoidTy()) {
2133 I1->replaceAllUsesWith(NT);
2134 for (Instruction *OtherSuccTI : OtherSuccTIs)
2135 OtherSuccTI->replaceAllUsesWith(NT);
2136 NT->takeName(I1);
2137 }
2138 Changed = true;
2139 NumHoistCommonInstrs += OtherSuccTIs.size() + 1;
2140
2141 // Ensure terminator gets a debug location, even an unknown one, in case
2142 // it involves inlinable calls.
2144 Locs.push_back(I1->getDebugLoc());
2145 for (auto *OtherSuccTI : OtherSuccTIs)
2146 Locs.push_back(OtherSuccTI->getDebugLoc());
2147 NT->setDebugLoc(DebugLoc::getMergedLocations(Locs));
2148
2149 // PHIs created below will adopt NT's merged DebugLoc.
2150 IRBuilder<NoFolder> Builder(NT);
2151
2152 // In the case of an if statement, hoisting one of the terminators from our
2153 // successor is a great thing. Unfortunately, the successors of the if/else
2154 // blocks may have PHI nodes in them. If they do, all PHI entries for BB1/BB2
2155 // must agree for all PHI nodes, so we insert select instruction to compute
2156 // the final result.
2157 if (BI) {
2158 std::map<std::pair<Value *, Value *>, SelectInst *> InsertedSelects;
2159 for (BasicBlock *Succ : successors(BB1)) {
2160 for (PHINode &PN : Succ->phis()) {
2161 Value *BB1V = PN.getIncomingValueForBlock(BB1);
2162 Value *BB2V = PN.getIncomingValueForBlock(BB2);
2163 if (BB1V == BB2V)
2164 continue;
2165
2166 // These values do not agree. Insert a select instruction before NT
2167 // that determines the right value.
2168 SelectInst *&SI = InsertedSelects[std::make_pair(BB1V, BB2V)];
2169 if (!SI) {
2170 // Propagate fast-math-flags from phi node to its replacement select.
2172 BI->getCondition(), BB1V, BB2V,
2173 isa<FPMathOperator>(PN) ? &PN : nullptr,
2174 BB1V->getName() + "." + BB2V->getName(), BI));
2175 }
2176
2177 // Make the PHI node use the select for all incoming values for BB1/BB2
2178 for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i)
2179 if (PN.getIncomingBlock(i) == BB1 || PN.getIncomingBlock(i) == BB2)
2180 PN.setIncomingValue(i, SI);
2181 }
2182 }
2183 }
2184
2186
2187 // Update any PHI nodes in our new successors.
2188 SmallPtrSet<BasicBlock *, 8> VisitedSuccs;
2189 for (BasicBlock *Succ : successors(BB1)) {
2190 addPredecessorToBlock(Succ, TIParent, BB1);
2191
2192 if (DTU && VisitedSuccs.insert(Succ).second)
2193 Updates.push_back({DominatorTree::Insert, TIParent, Succ});
2194 }
2195
2196 if (DTU) {
2197 // TI might be a switch with multi-cases destination, so we need to care for
2198 // the duplication of successors.
2199 for (BasicBlock *Succ : UniqueSuccessors)
2200 Updates.push_back({DominatorTree::Delete, TIParent, Succ});
2201 }
2202
2204 if (DTU)
2205 DTU->applyUpdates(Updates);
2206 return Changed;
2207}
2208
2209// TODO: Refine this. This should avoid cases like turning constant memcpy sizes
2210// into variables.
2212 int OpIdx) {
2213 // Divide/Remainder by constant is typically much cheaper than by variable.
2214 if (I->isIntDivRem())
2215 return OpIdx != 1;
2216 return !isa<IntrinsicInst>(I);
2217}
2218
2219// All instructions in Insts belong to different blocks that all unconditionally
2220// branch to a common successor. Analyze each instruction and return true if it
2221// would be possible to sink them into their successor, creating one common
2222// instruction instead. For every value that would be required to be provided by
2223// PHI node (because an operand varies in each input block), add to PHIOperands.
2226 DenseMap<const Use *, SmallVector<Value *, 4>> &PHIOperands) {
2227 // Prune out obviously bad instructions to move. Each instruction must have
2228 // the same number of uses, and we check later that the uses are consistent.
2229 std::optional<unsigned> NumUses;
2230 for (auto *I : Insts) {
2231 // These instructions may change or break semantics if moved.
2232 if (isa<PHINode>(I) || I->isEHPad() || isa<AllocaInst>(I) ||
2233 I->getType()->isTokenTy())
2234 return false;
2235
2236 // Do not try to sink an instruction in an infinite loop - it can cause
2237 // this algorithm to infinite loop.
2238 if (I->getParent()->getSingleSuccessor() == I->getParent())
2239 return false;
2240
2241 // Conservatively return false if I is an inline-asm instruction. Sinking
2242 // and merging inline-asm instructions can potentially create arguments
2243 // that cannot satisfy the inline-asm constraints.
2244 // If the instruction has nomerge or convergent attribute, return false.
2245 if (const auto *C = dyn_cast<CallBase>(I))
2246 if (C->isInlineAsm() || C->cannotMerge() || C->isConvergent())
2247 return false;
2248
2249 if (!NumUses)
2250 NumUses = I->getNumUses();
2251 else if (NumUses != I->getNumUses())
2252 return false;
2253 }
2254
2255 const Instruction *I0 = Insts.front();
2256 const auto I0MMRA = MMRAMetadata(*I0);
2257 for (auto *I : Insts) {
2258 if (!I->isSameOperationAs(I0, Instruction::CompareUsingIntersectedAttrs))
2259 return false;
2260
2261 // Treat MMRAs conservatively. This pass can be quite aggressive and
2262 // could drop a lot of MMRAs otherwise.
2263 if (MMRAMetadata(*I) != I0MMRA)
2264 return false;
2265 }
2266
2267 // Uses must be consistent: If I0 is used in a phi node in the sink target,
2268 // then the other phi operands must match the instructions from Insts. This
2269 // also has to hold true for any phi nodes that would be created as a result
2270 // of sinking. Both of these cases are represented by PhiOperands.
2271 for (const Use &U : I0->uses()) {
2272 auto It = PHIOperands.find(&U);
2273 if (It == PHIOperands.end())
2274 // There may be uses in other blocks when sinking into a loop header.
2275 return false;
2276 if (!equal(Insts, It->second))
2277 return false;
2278 }
2279
2280 // For calls to be sinkable, they must all be indirect, or have same callee.
2281 // I.e. if we have two direct calls to different callees, we don't want to
2282 // turn that into an indirect call. Likewise, if we have an indirect call,
2283 // and a direct call, we don't actually want to have a single indirect call.
2284 if (isa<CallBase>(I0)) {
2285 auto IsIndirectCall = [](const Instruction *I) {
2286 return cast<CallBase>(I)->isIndirectCall();
2287 };
2288 bool HaveIndirectCalls = any_of(Insts, IsIndirectCall);
2289 bool AllCallsAreIndirect = all_of(Insts, IsIndirectCall);
2290 if (HaveIndirectCalls) {
2291 if (!AllCallsAreIndirect)
2292 return false;
2293 } else {
2294 // All callees must be identical.
2295 Value *Callee = nullptr;
2296 for (const Instruction *I : Insts) {
2297 Value *CurrCallee = cast<CallBase>(I)->getCalledOperand();
2298 if (!Callee)
2299 Callee = CurrCallee;
2300 else if (Callee != CurrCallee)
2301 return false;
2302 }
2303 }
2304 }
2305
2306 for (unsigned OI = 0, OE = I0->getNumOperands(); OI != OE; ++OI) {
2307 Value *Op = I0->getOperand(OI);
2308 auto SameAsI0 = [&I0, OI](const Instruction *I) {
2309 assert(I->getNumOperands() == I0->getNumOperands());
2310 return I->getOperand(OI) == I0->getOperand(OI);
2311 };
2312 if (!all_of(Insts, SameAsI0)) {
2313 auto CanReplaceOperand = [OI](const Instruction *I) {
2314 return canReplaceOperandWithVariable(I, OI);
2315 };
2317 !all_of(Insts, CanReplaceOperand))
2318 // We can't create a PHI from this operand.
2319 return false;
2320 auto &Ops = PHIOperands[&I0->getOperandUse(OI)];
2321 for (auto *I : Insts)
2322 Ops.push_back(I->getOperand(OI));
2323 }
2324 }
2325 return true;
2326}
2327
2328// Assuming canSinkInstructions(Blocks) has returned true, sink the last
2329// instruction of every block in Blocks to their common successor, commoning
2330// into one instruction.
2332 auto *BBEnd = Blocks[0]->getTerminator()->getSuccessor(0);
2333
2334 // canSinkInstructions returning true guarantees that every block has at
2335 // least one non-terminator instruction.
2337 for (auto *BB : Blocks) {
2338 Instruction *I = BB->getTerminator();
2339 I = I->getPrevNode();
2340 Insts.push_back(I);
2341 }
2342
2343 // We don't need to do any more checking here; canSinkInstructions should
2344 // have done it all for us.
2345 SmallVector<Value*, 4> NewOperands;
2346 Instruction *I0 = Insts.front();
2347 for (unsigned O = 0, E = I0->getNumOperands(); O != E; ++O) {
2348 // This check is different to that in canSinkInstructions. There, we
2349 // cared about the global view once simplifycfg (and instcombine) have
2350 // completed - it takes into account PHIs that become trivially
2351 // simplifiable. However here we need a more local view; if an operand
2352 // differs we create a PHI and rely on instcombine to clean up the very
2353 // small mess we may make.
2354 bool NeedPHI = any_of(Insts, [&I0, O](const Instruction *I) {
2355 return I->getOperand(O) != I0->getOperand(O);
2356 });
2357 if (!NeedPHI) {
2358 NewOperands.push_back(I0->getOperand(O));
2359 continue;
2360 }
2361
2362 // Create a new PHI in the successor block and populate it.
2363 auto *Op = I0->getOperand(O);
2364 assert(!Op->getType()->isTokenTy() && "Can't PHI tokens!");
2365 auto *PN =
2366 PHINode::Create(Op->getType(), Insts.size(), Op->getName() + ".sink");
2367 PN->insertBefore(BBEnd->begin());
2368 for (auto *I : Insts)
2369 PN->addIncoming(I->getOperand(O), I->getParent());
2370 NewOperands.push_back(PN);
2371 }
2372
2373 // Arbitrarily use I0 as the new "common" instruction; remap its operands
2374 // and move it to the start of the successor block.
2375 for (unsigned O = 0, E = I0->getNumOperands(); O != E; ++O)
2376 I0->getOperandUse(O).set(NewOperands[O]);
2377
2378 I0->moveBefore(*BBEnd, BBEnd->getFirstInsertionPt());
2379
2380 // Update metadata and IR flags, and merge debug locations.
2381 for (auto *I : Insts)
2382 if (I != I0) {
2383 // The debug location for the "common" instruction is the merged locations
2384 // of all the commoned instructions. We start with the original location
2385 // of the "common" instruction and iteratively merge each location in the
2386 // loop below.
2387 // This is an N-way merge, which will be inefficient if I0 is a CallInst.
2388 // However, as N-way merge for CallInst is rare, so we use simplified API
2389 // instead of using complex API for N-way merge.
2390 I0->applyMergedLocation(I0->getDebugLoc(), I->getDebugLoc());
2391 combineMetadataForCSE(I0, I, true);
2392 I0->andIRFlags(I);
2393 if (auto *CB = dyn_cast<CallBase>(I0)) {
2394 bool Success = CB->tryIntersectAttributes(cast<CallBase>(I));
2395 assert(Success && "We should not be trying to sink callbases "
2396 "with non-intersectable attributes");
2397 // For NDEBUG Compile.
2398 (void)Success;
2399 }
2400 }
2401
2402 for (User *U : make_early_inc_range(I0->users())) {
2403 // canSinkLastInstruction checked that all instructions are only used by
2404 // phi nodes in a way that allows replacing the phi node with the common
2405 // instruction.
2406 auto *PN = cast<PHINode>(U);
2407 PN->replaceAllUsesWith(I0);
2408 PN->eraseFromParent();
2409 }
2410
2411 // Finally nuke all instructions apart from the common instruction.
2412 for (auto *I : Insts) {
2413 if (I == I0)
2414 continue;
2415 // The remaining uses are debug users, replace those with the common inst.
2416 // In most (all?) cases this just introduces a use-before-def.
2417 assert(I->user_empty() && "Inst unexpectedly still has non-dbg users");
2418 I->replaceAllUsesWith(I0);
2419 I->eraseFromParent();
2420 }
2421}
2422
2423/// Check whether BB's predecessors end with unconditional branches. If it is
2424/// true, sink any common code from the predecessors to BB.
2426 DomTreeUpdater *DTU) {
2427 // We support two situations:
2428 // (1) all incoming arcs are unconditional
2429 // (2) there are non-unconditional incoming arcs
2430 //
2431 // (2) is very common in switch defaults and
2432 // else-if patterns;
2433 //
2434 // if (a) f(1);
2435 // else if (b) f(2);
2436 //
2437 // produces:
2438 //
2439 // [if]
2440 // / \
2441 // [f(1)] [if]
2442 // | | \
2443 // | | |
2444 // | [f(2)]|
2445 // \ | /
2446 // [ end ]
2447 //
2448 // [end] has two unconditional predecessor arcs and one conditional. The
2449 // conditional refers to the implicit empty 'else' arc. This conditional
2450 // arc can also be caused by an empty default block in a switch.
2451 //
2452 // In this case, we attempt to sink code from all *unconditional* arcs.
2453 // If we can sink instructions from these arcs (determined during the scan
2454 // phase below) we insert a common successor for all unconditional arcs and
2455 // connect that to [end], to enable sinking:
2456 //
2457 // [if]
2458 // / \
2459 // [x(1)] [if]
2460 // | | \
2461 // | | \
2462 // | [x(2)] |
2463 // \ / |
2464 // [sink.split] |
2465 // \ /
2466 // [ end ]
2467 //
2468 SmallVector<BasicBlock*,4> UnconditionalPreds;
2469 bool HaveNonUnconditionalPredecessors = false;
2470 for (auto *PredBB : predecessors(BB)) {
2471 auto *PredBr = dyn_cast<UncondBrInst>(PredBB->getTerminator());
2472 if (PredBr)
2473 UnconditionalPreds.push_back(PredBB);
2474 else
2475 HaveNonUnconditionalPredecessors = true;
2476 }
2477 if (UnconditionalPreds.size() < 2)
2478 return false;
2479
2480 // We take a two-step approach to tail sinking. First we scan from the end of
2481 // each block upwards in lockstep. If the n'th instruction from the end of each
2482 // block can be sunk, those instructions are added to ValuesToSink and we
2483 // carry on. If we can sink an instruction but need to PHI-merge some operands
2484 // (because they're not identical in each instruction) we add these to
2485 // PHIOperands.
2486 // We prepopulate PHIOperands with the phis that already exist in BB.
2488 for (PHINode &PN : BB->phis()) {
2490 for (const Use &U : PN.incoming_values())
2491 IncomingVals.insert({PN.getIncomingBlock(U), &U});
2492 auto &Ops = PHIOperands[IncomingVals[UnconditionalPreds[0]]];
2493 for (BasicBlock *Pred : UnconditionalPreds)
2494 Ops.push_back(*IncomingVals[Pred]);
2495 }
2496
2497 int ScanIdx = 0;
2498 SmallPtrSet<Value*,4> InstructionsToSink;
2499 LockstepReverseIterator<true> LRI(UnconditionalPreds);
2500 while (LRI.isValid() &&
2501 canSinkInstructions(*LRI, PHIOperands)) {
2502 LLVM_DEBUG(dbgs() << "SINK: instruction can be sunk: " << *(*LRI)[0]
2503 << "\n");
2504 InstructionsToSink.insert_range(*LRI);
2505 ++ScanIdx;
2506 --LRI;
2507 }
2508
2509 // If no instructions can be sunk, early-return.
2510 if (ScanIdx == 0)
2511 return false;
2512
2513 bool followedByDeoptOrUnreachable = IsBlockFollowedByDeoptOrUnreachable(BB);
2514
2515 if (!followedByDeoptOrUnreachable) {
2516 // Check whether this is the pointer operand of a load/store.
2517 auto IsMemOperand = [](Use &U) {
2518 auto *I = cast<Instruction>(U.getUser());
2519 if (isa<LoadInst>(I))
2520 return U.getOperandNo() == LoadInst::getPointerOperandIndex();
2521 if (isa<StoreInst>(I))
2522 return U.getOperandNo() == StoreInst::getPointerOperandIndex();
2523 return false;
2524 };
2525
2526 // Okay, we *could* sink last ScanIdx instructions. But how many can we
2527 // actually sink before encountering instruction that is unprofitable to
2528 // sink?
2529 auto ProfitableToSinkInstruction = [&](LockstepReverseIterator<true> &LRI) {
2530 unsigned NumPHIInsts = 0;
2531 for (Use &U : (*LRI)[0]->operands()) {
2532 auto It = PHIOperands.find(&U);
2533 if (It != PHIOperands.end() && !all_of(It->second, [&](Value *V) {
2534 return InstructionsToSink.contains(V);
2535 })) {
2536 ++NumPHIInsts;
2537 // Do not separate a load/store from the gep producing the address.
2538 // The gep can likely be folded into the load/store as an addressing
2539 // mode. Additionally, a load of a gep is easier to analyze than a
2540 // load of a phi.
2541 if (IsMemOperand(U) &&
2542 any_of(It->second, [](Value *V) { return isa<GEPOperator>(V); }))
2543 return false;
2544 // FIXME: this check is overly optimistic. We may end up not sinking
2545 // said instruction, due to the very same profitability check.
2546 // See @creating_too_many_phis in sink-common-code.ll.
2547 }
2548 }
2549 LLVM_DEBUG(dbgs() << "SINK: #phi insts: " << NumPHIInsts << "\n");
2550 return NumPHIInsts <= 1;
2551 };
2552
2553 // We've determined that we are going to sink last ScanIdx instructions,
2554 // and recorded them in InstructionsToSink. Now, some instructions may be
2555 // unprofitable to sink. But that determination depends on the instructions
2556 // that we are going to sink.
2557
2558 // First, forward scan: find the first instruction unprofitable to sink,
2559 // recording all the ones that are profitable to sink.
2560 // FIXME: would it be better, after we detect that not all are profitable.
2561 // to either record the profitable ones, or erase the unprofitable ones?
2562 // Maybe we need to choose (at runtime) the one that will touch least
2563 // instrs?
2564 LRI.reset();
2565 int Idx = 0;
2566 SmallPtrSet<Value *, 4> InstructionsProfitableToSink;
2567 while (Idx < ScanIdx) {
2568 if (!ProfitableToSinkInstruction(LRI)) {
2569 // Too many PHIs would be created.
2570 LLVM_DEBUG(
2571 dbgs() << "SINK: stopping here, too many PHIs would be created!\n");
2572 break;
2573 }
2574 InstructionsProfitableToSink.insert_range(*LRI);
2575 --LRI;
2576 ++Idx;
2577 }
2578
2579 // If no instructions can be sunk, early-return.
2580 if (Idx == 0)
2581 return false;
2582
2583 // Did we determine that (only) some instructions are unprofitable to sink?
2584 if (Idx < ScanIdx) {
2585 // Okay, some instructions are unprofitable.
2586 ScanIdx = Idx;
2587 InstructionsToSink = InstructionsProfitableToSink;
2588
2589 // But, that may make other instructions unprofitable, too.
2590 // So, do a backward scan, do any earlier instructions become
2591 // unprofitable?
2592 assert(
2593 !ProfitableToSinkInstruction(LRI) &&
2594 "We already know that the last instruction is unprofitable to sink");
2595 ++LRI;
2596 --Idx;
2597 while (Idx >= 0) {
2598 // If we detect that an instruction becomes unprofitable to sink,
2599 // all earlier instructions won't be sunk either,
2600 // so preemptively keep InstructionsProfitableToSink in sync.
2601 // FIXME: is this the most performant approach?
2602 for (auto *I : *LRI)
2603 InstructionsProfitableToSink.erase(I);
2604 if (!ProfitableToSinkInstruction(LRI)) {
2605 // Everything starting with this instruction won't be sunk.
2606 ScanIdx = Idx;
2607 InstructionsToSink = InstructionsProfitableToSink;
2608 }
2609 ++LRI;
2610 --Idx;
2611 }
2612 }
2613
2614 // If no instructions can be sunk, early-return.
2615 if (ScanIdx == 0)
2616 return false;
2617 }
2618
2619 bool Changed = false;
2620
2621 if (HaveNonUnconditionalPredecessors) {
2622 if (!followedByDeoptOrUnreachable) {
2623 // It is always legal to sink common instructions from unconditional
2624 // predecessors. However, if not all predecessors are unconditional,
2625 // this transformation might be pessimizing. So as a rule of thumb,
2626 // don't do it unless we'd sink at least one non-speculatable instruction.
2627 // See https://bugs.llvm.org/show_bug.cgi?id=30244
2628 LRI.reset();
2629 int Idx = 0;
2630 bool Profitable = false;
2631 while (Idx < ScanIdx) {
2632 if (!isSafeToSpeculativelyExecute((*LRI)[0])) {
2633 Profitable = true;
2634 break;
2635 }
2636 --LRI;
2637 ++Idx;
2638 }
2639 if (!Profitable)
2640 return false;
2641 }
2642
2643 LLVM_DEBUG(dbgs() << "SINK: Splitting edge\n");
2644 // We have a conditional edge and we're going to sink some instructions.
2645 // Insert a new block postdominating all blocks we're going to sink from.
2646 if (!SplitBlockPredecessors(BB, UnconditionalPreds, ".sink.split", DTU))
2647 // Edges couldn't be split.
2648 return false;
2649 Changed = true;
2650 }
2651
2652 // Now that we've analyzed all potential sinking candidates, perform the
2653 // actual sink. We iteratively sink the last non-terminator of the source
2654 // blocks into their common successor unless doing so would require too
2655 // many PHI instructions to be generated (currently only one PHI is allowed
2656 // per sunk instruction).
2657 //
2658 // We can use InstructionsToSink to discount values needing PHI-merging that will
2659 // actually be sunk in a later iteration. This allows us to be more
2660 // aggressive in what we sink. This does allow a false positive where we
2661 // sink presuming a later value will also be sunk, but stop half way through
2662 // and never actually sink it which means we produce more PHIs than intended.
2663 // This is unlikely in practice though.
2664 int SinkIdx = 0;
2665 for (; SinkIdx != ScanIdx; ++SinkIdx) {
2666 LLVM_DEBUG(dbgs() << "SINK: Sink: "
2667 << *UnconditionalPreds[0]->getTerminator()->getPrevNode()
2668 << "\n");
2669
2670 // Because we've sunk every instruction in turn, the current instruction to
2671 // sink is always at index 0.
2672 LRI.reset();
2673
2674 sinkLastInstruction(UnconditionalPreds);
2675 NumSinkCommonInstrs++;
2676 Changed = true;
2677 }
2678 if (SinkIdx != 0)
2679 ++NumSinkCommonCode;
2680 return Changed;
2681}
2682
2683namespace {
2684
2685struct CompatibleSets {
2686 using SetTy = SmallVector<InvokeInst *, 2>;
2687
2689
2690 static bool shouldBelongToSameSet(ArrayRef<InvokeInst *> Invokes);
2691
2692 SetTy &getCompatibleSet(InvokeInst *II);
2693
2694 void insert(InvokeInst *II);
2695};
2696
2697CompatibleSets::SetTy &CompatibleSets::getCompatibleSet(InvokeInst *II) {
2698 // Perform a linear scan over all the existing sets, see if the new `invoke`
2699 // is compatible with any particular set. Since we know that all the `invokes`
2700 // within a set are compatible, only check the first `invoke` in each set.
2701 // WARNING: at worst, this has quadratic complexity.
2702 for (CompatibleSets::SetTy &Set : Sets) {
2703 if (CompatibleSets::shouldBelongToSameSet({Set.front(), II}))
2704 return Set;
2705 }
2706
2707 // Otherwise, we either had no sets yet, or this invoke forms a new set.
2708 return Sets.emplace_back();
2709}
2710
2711void CompatibleSets::insert(InvokeInst *II) {
2712 getCompatibleSet(II).emplace_back(II);
2713}
2714
2715bool CompatibleSets::shouldBelongToSameSet(ArrayRef<InvokeInst *> Invokes) {
2716 assert(Invokes.size() == 2 && "Always called with exactly two candidates.");
2717
2718 // Can we theoretically merge these `invoke`s?
2719 auto IsIllegalToMerge = [](InvokeInst *II) {
2720 return II->cannotMerge() || II->isInlineAsm();
2721 };
2722 if (any_of(Invokes, IsIllegalToMerge))
2723 return false;
2724
2725 // Either both `invoke`s must be direct,
2726 // or both `invoke`s must be indirect.
2727 auto IsIndirectCall = [](InvokeInst *II) { return II->isIndirectCall(); };
2728 bool HaveIndirectCalls = any_of(Invokes, IsIndirectCall);
2729 bool AllCallsAreIndirect = all_of(Invokes, IsIndirectCall);
2730 if (HaveIndirectCalls) {
2731 if (!AllCallsAreIndirect)
2732 return false;
2733 } else {
2734 // All callees must be identical.
2735 Value *Callee = nullptr;
2736 for (InvokeInst *II : Invokes) {
2737 Value *CurrCallee = II->getCalledOperand();
2738 assert(CurrCallee && "There is always a called operand.");
2739 if (!Callee)
2740 Callee = CurrCallee;
2741 else if (Callee != CurrCallee)
2742 return false;
2743 }
2744 }
2745
2746 // Either both `invoke`s must not have a normal destination,
2747 // or both `invoke`s must have a normal destination,
2748 auto HasNormalDest = [](InvokeInst *II) {
2749 return !isa<UnreachableInst>(II->getNormalDest()->getFirstNonPHIOrDbg());
2750 };
2751 if (any_of(Invokes, HasNormalDest)) {
2752 // Do not merge `invoke` that does not have a normal destination with one
2753 // that does have a normal destination, even though doing so would be legal.
2754 if (!all_of(Invokes, HasNormalDest))
2755 return false;
2756
2757 // All normal destinations must be identical.
2758 BasicBlock *NormalBB = nullptr;
2759 for (InvokeInst *II : Invokes) {
2760 BasicBlock *CurrNormalBB = II->getNormalDest();
2761 assert(CurrNormalBB && "There is always a 'continue to' basic block.");
2762 if (!NormalBB)
2763 NormalBB = CurrNormalBB;
2764 else if (NormalBB != CurrNormalBB)
2765 return false;
2766 }
2767
2768 // In the normal destination, the incoming values for these two `invoke`s
2769 // must be compatible.
2770 SmallPtrSet<Value *, 16> EquivalenceSet(llvm::from_range, Invokes);
2772 NormalBB, {Invokes[0]->getParent(), Invokes[1]->getParent()},
2773 &EquivalenceSet))
2774 return false;
2775 }
2776
2777#ifndef NDEBUG
2778 // All unwind destinations must be identical.
2779 // We know that because we have started from said unwind destination.
2780 BasicBlock *UnwindBB = nullptr;
2781 for (InvokeInst *II : Invokes) {
2782 BasicBlock *CurrUnwindBB = II->getUnwindDest();
2783 assert(CurrUnwindBB && "There is always an 'unwind to' basic block.");
2784 if (!UnwindBB)
2785 UnwindBB = CurrUnwindBB;
2786 else
2787 assert(UnwindBB == CurrUnwindBB && "Unexpected unwind destination.");
2788 }
2789#endif
2790
2791 // In the unwind destination, the incoming values for these two `invoke`s
2792 // must be compatible.
2794 Invokes.front()->getUnwindDest(),
2795 {Invokes[0]->getParent(), Invokes[1]->getParent()}))
2796 return false;
2797
2798 // Ignoring arguments, these `invoke`s must be identical,
2799 // including operand bundles.
2800 const InvokeInst *II0 = Invokes.front();
2801 for (auto *II : Invokes.drop_front())
2802 if (!II->isSameOperationAs(II0, Instruction::CompareUsingIntersectedAttrs))
2803 return false;
2804
2805 // Can we theoretically form the data operands for the merged `invoke`?
2806 auto IsIllegalToMergeArguments = [](auto Ops) {
2807 Use &U0 = std::get<0>(Ops);
2808 Use &U1 = std::get<1>(Ops);
2809 if (U0 == U1)
2810 return false;
2812 U0.getOperandNo());
2813 };
2814 assert(Invokes.size() == 2 && "Always called with exactly two candidates.");
2815 if (any_of(zip(Invokes[0]->data_ops(), Invokes[1]->data_ops()),
2816 IsIllegalToMergeArguments))
2817 return false;
2818
2819 return true;
2820}
2821
2822} // namespace
2823
2824// Merge all invokes in the provided set, all of which are compatible
2825// as per the `CompatibleSets::shouldBelongToSameSet()`.
2827 DomTreeUpdater *DTU) {
2828 assert(Invokes.size() >= 2 && "Must have at least two invokes to merge.");
2829
2831 if (DTU)
2832 Updates.reserve(2 + 3 * Invokes.size());
2833
2834 bool HasNormalDest =
2835 !isa<UnreachableInst>(Invokes[0]->getNormalDest()->getFirstNonPHIOrDbg());
2836
2837 // Clone one of the invokes into a new basic block.
2838 // Since they are all compatible, it doesn't matter which invoke is cloned.
2839 InvokeInst *MergedInvoke = [&Invokes, HasNormalDest]() {
2840 InvokeInst *II0 = Invokes.front();
2841 BasicBlock *II0BB = II0->getParent();
2842 BasicBlock *InsertBeforeBlock =
2843 II0->getParent()->getIterator()->getNextNode();
2844 Function *Func = II0BB->getParent();
2845 LLVMContext &Ctx = II0->getContext();
2846
2847 BasicBlock *MergedInvokeBB = BasicBlock::Create(
2848 Ctx, II0BB->getName() + ".invoke", Func, InsertBeforeBlock);
2849
2850 auto *MergedInvoke = cast<InvokeInst>(II0->clone());
2851 // NOTE: all invokes have the same attributes, so no handling needed.
2852 MergedInvoke->insertInto(MergedInvokeBB, MergedInvokeBB->end());
2853
2854 if (!HasNormalDest) {
2855 // This set does not have a normal destination,
2856 // so just form a new block with unreachable terminator.
2857 BasicBlock *MergedNormalDest = BasicBlock::Create(
2858 Ctx, II0BB->getName() + ".cont", Func, InsertBeforeBlock);
2859 auto *UI = new UnreachableInst(Ctx, MergedNormalDest);
2860 UI->setDebugLoc(DebugLoc::getTemporary());
2861 MergedInvoke->setNormalDest(MergedNormalDest);
2862 }
2863
2864 // The unwind destination, however, remainds identical for all invokes here.
2865
2866 return MergedInvoke;
2867 }();
2868
2869 if (DTU) {
2870 // Predecessor blocks that contained these invokes will now branch to
2871 // the new block that contains the merged invoke, ...
2872 for (InvokeInst *II : Invokes)
2873 Updates.push_back(
2874 {DominatorTree::Insert, II->getParent(), MergedInvoke->getParent()});
2875
2876 // ... which has the new `unreachable` block as normal destination,
2877 // or unwinds to the (same for all `invoke`s in this set) `landingpad`,
2878 for (BasicBlock *SuccBBOfMergedInvoke : successors(MergedInvoke))
2879 Updates.push_back({DominatorTree::Insert, MergedInvoke->getParent(),
2880 SuccBBOfMergedInvoke});
2881
2882 // Since predecessor blocks now unconditionally branch to a new block,
2883 // they no longer branch to their original successors.
2884 for (InvokeInst *II : Invokes)
2885 for (BasicBlock *SuccOfPredBB : successors(II->getParent()))
2886 Updates.push_back(
2887 {DominatorTree::Delete, II->getParent(), SuccOfPredBB});
2888 }
2889
2890 bool IsIndirectCall = Invokes[0]->isIndirectCall();
2891
2892 // Form the merged operands for the merged invoke.
2893 for (Use &U : MergedInvoke->operands()) {
2894 // Only PHI together the indirect callees and data operands.
2895 if (MergedInvoke->isCallee(&U)) {
2896 if (!IsIndirectCall)
2897 continue;
2898 } else if (!MergedInvoke->isDataOperand(&U))
2899 continue;
2900
2901 // Don't create trivial PHI's with all-identical incoming values.
2902 bool NeedPHI = any_of(Invokes, [&U](InvokeInst *II) {
2903 return II->getOperand(U.getOperandNo()) != U.get();
2904 });
2905 if (!NeedPHI)
2906 continue;
2907
2908 // Form a PHI out of all the data ops under this index.
2910 U->getType(), /*NumReservedValues=*/Invokes.size(), "", MergedInvoke->getIterator());
2911 for (InvokeInst *II : Invokes)
2912 PN->addIncoming(II->getOperand(U.getOperandNo()), II->getParent());
2913
2914 U.set(PN);
2915 }
2916
2917 // We've ensured that each PHI node has compatible (identical) incoming values
2918 // when coming from each of the `invoke`s in the current merge set,
2919 // so update the PHI nodes accordingly.
2920 for (BasicBlock *Succ : successors(MergedInvoke))
2921 addPredecessorToBlock(Succ, /*NewPred=*/MergedInvoke->getParent(),
2922 /*ExistPred=*/Invokes.front()->getParent());
2923
2924 // And finally, replace the original `invoke`s with an unconditional branch
2925 // to the block with the merged `invoke`. Also, give that merged `invoke`
2926 // the merged debugloc of all the original `invoke`s.
2927 DILocation *MergedDebugLoc = nullptr;
2928 for (InvokeInst *II : Invokes) {
2929 // Compute the debug location common to all the original `invoke`s.
2930 if (!MergedDebugLoc)
2931 MergedDebugLoc = II->getDebugLoc();
2932 else
2933 MergedDebugLoc =
2934 DebugLoc::getMergedLocation(MergedDebugLoc, II->getDebugLoc());
2935
2936 // And replace the old `invoke` with an unconditionally branch
2937 // to the block with the merged `invoke`.
2938 for (BasicBlock *OrigSuccBB : successors(II->getParent()))
2939 OrigSuccBB->removePredecessor(II->getParent());
2940 auto *BI = UncondBrInst::Create(MergedInvoke->getParent(), II->getParent());
2941 // The unconditional branch is part of the replacement for the original
2942 // invoke, so should use its DebugLoc.
2943 BI->setDebugLoc(II->getDebugLoc());
2944 bool Success = MergedInvoke->tryIntersectAttributes(II);
2945 assert(Success && "Merged invokes with incompatible attributes");
2946 // For NDEBUG Compile
2947 (void)Success;
2948 II->replaceAllUsesWith(MergedInvoke);
2949 II->eraseFromParent();
2950 ++NumInvokesMerged;
2951 }
2952 MergedInvoke->setDebugLoc(MergedDebugLoc);
2953 ++NumInvokeSetsFormed;
2954
2955 if (DTU)
2956 DTU->applyUpdates(Updates);
2957}
2958
2959/// If this block is a `landingpad` exception handling block, categorize all
2960/// the predecessor `invoke`s into sets, with all `invoke`s in each set
2961/// being "mergeable" together, and then merge invokes in each set together.
2962///
2963/// This is a weird mix of hoisting and sinking. Visually, it goes from:
2964/// [...] [...]
2965/// | |
2966/// [invoke0] [invoke1]
2967/// / \ / \
2968/// [cont0] [landingpad] [cont1]
2969/// to:
2970/// [...] [...]
2971/// \ /
2972/// [invoke]
2973/// / \
2974/// [cont] [landingpad]
2975///
2976/// But of course we can only do that if the invokes share the `landingpad`,
2977/// edges invoke0->cont0 and invoke1->cont1 are "compatible",
2978/// and the invoked functions are "compatible".
2981 return false;
2982
2983 bool Changed = false;
2984
2985 // FIXME: generalize to all exception handling blocks?
2986 if (!BB->isLandingPad())
2987 return Changed;
2988
2989 CompatibleSets Grouper;
2990
2991 // Record all the predecessors of this `landingpad`. As per verifier,
2992 // the only allowed predecessor is the unwind edge of an `invoke`.
2993 // We want to group "compatible" `invokes` into the same set to be merged.
2994 for (BasicBlock *PredBB : predecessors(BB))
2995 Grouper.insert(cast<InvokeInst>(PredBB->getTerminator()));
2996
2997 // And now, merge `invoke`s that were grouped togeter.
2998 for (ArrayRef<InvokeInst *> Invokes : Grouper.Sets) {
2999 if (Invokes.size() < 2)
3000 continue;
3001 Changed = true;
3002 mergeCompatibleInvokesImpl(Invokes, DTU);
3003 }
3004
3005 return Changed;
3006}
3007
3008namespace {
3009/// Track ephemeral values, which should be ignored for cost-modelling
3010/// purposes. Requires walking instructions in reverse order.
3011class EphemeralValueTracker {
3012 SmallPtrSet<const Instruction *, 32> EphValues;
3013
3014 bool isEphemeral(const Instruction *I) {
3015 if (isa<AssumeInst>(I))
3016 return true;
3017 return !I->mayHaveSideEffects() && !I->isTerminator() &&
3018 all_of(I->users(), [&](const User *U) {
3019 return EphValues.count(cast<Instruction>(U));
3020 });
3021 }
3022
3023public:
3024 bool track(const Instruction *I) {
3025 if (isEphemeral(I)) {
3026 EphValues.insert(I);
3027 return true;
3028 }
3029 return false;
3030 }
3031
3032 bool contains(const Instruction *I) const { return EphValues.contains(I); }
3033};
3034} // namespace
3035
3036/// Determine if we can hoist sink a sole store instruction out of a
3037/// conditional block.
3038///
3039/// We are looking for code like the following:
3040/// BrBB:
3041/// store i32 %add, i32* %arrayidx2
3042/// ... // No other stores or function calls (we could be calling a memory
3043/// ... // function).
3044/// %cmp = icmp ult %x, %y
3045/// br i1 %cmp, label %EndBB, label %ThenBB
3046/// ThenBB:
3047/// store i32 %add5, i32* %arrayidx2
3048/// br label EndBB
3049/// EndBB:
3050/// ...
3051/// We are going to transform this into:
3052/// BrBB:
3053/// store i32 %add, i32* %arrayidx2
3054/// ... //
3055/// %cmp = icmp ult %x, %y
3056/// %add.add5 = select i1 %cmp, i32 %add, %add5
3057/// store i32 %add.add5, i32* %arrayidx2
3058/// ...
3059///
3060/// \return The pointer to the value of the previous store if the store can be
3061/// hoisted into the predecessor block. 0 otherwise.
3063 BasicBlock *StoreBB, BasicBlock *EndBB) {
3064 StoreInst *StoreToHoist = dyn_cast<StoreInst>(I);
3065 if (!StoreToHoist)
3066 return nullptr;
3067
3068 // Volatile or atomic.
3069 if (!StoreToHoist->isSimple())
3070 return nullptr;
3071
3072 Value *StorePtr = StoreToHoist->getPointerOperand();
3073 Type *StoreTy = StoreToHoist->getValueOperand()->getType();
3074
3075 // Look for a store to the same pointer in BrBB.
3076 unsigned MaxNumInstToLookAt = 9;
3077 // Skip pseudo probe intrinsic calls which are not really killing any memory
3078 // accesses.
3079 for (Instruction &CurI : reverse(*BrBB)) {
3080 if (!MaxNumInstToLookAt)
3081 break;
3082 --MaxNumInstToLookAt;
3083
3084 if (isa<PseudoProbeInst>(CurI))
3085 continue;
3086
3087 // Could be calling an instruction that affects memory like free().
3088 if (CurI.mayWriteToMemory() && !isa<StoreInst>(CurI))
3089 return nullptr;
3090
3091 if (auto *SI = dyn_cast<StoreInst>(&CurI)) {
3092 // Found the previous store to same location and type. Make sure it is
3093 // simple, to avoid introducing a spurious non-atomic write after an
3094 // atomic write.
3095 if (SI->getPointerOperand() == StorePtr &&
3096 SI->getValueOperand()->getType() == StoreTy && SI->isSimple() &&
3097 SI->getAlign() >= StoreToHoist->getAlign())
3098 // Found the previous store, return its value operand.
3099 return SI->getValueOperand();
3100 return nullptr; // Unknown store.
3101 }
3102
3103 if (auto *LI = dyn_cast<LoadInst>(&CurI)) {
3104 if (LI->getPointerOperand() == StorePtr && LI->getType() == StoreTy &&
3105 LI->isSimple() && LI->getAlign() >= StoreToHoist->getAlign()) {
3106 Value *Obj = getUnderlyingObject(StorePtr);
3107 bool ExplicitlyDereferenceableOnly;
3108 // The dereferenceability query here is only required to satisfy the
3109 // writable contract, actual dereferenceability is proven by the
3110 // presence of an access. As such, we can ignore frees.
3111 if (isWritableObject(Obj, ExplicitlyDereferenceableOnly) &&
3114 .WithoutRet) &&
3115 (!ExplicitlyDereferenceableOnly ||
3116 isDereferenceablePointer(StorePtr, StoreTy, LI->getDataLayout(),
3117 /*IgnoreFree=*/true))) {
3118 // Found a previous load, return it.
3119 return LI;
3120 }
3121 }
3122 // The load didn't work out, but we may still find a store.
3123 }
3124 }
3125
3126 return nullptr;
3127}
3128
3129/// Estimate the cost of the insertion(s) and check that the PHI nodes can be
3130/// converted to selects.
3132 BasicBlock *EndBB,
3133 unsigned &SpeculatedInstructions,
3134 InstructionCost &Cost,
3135 const TargetTransformInfo &TTI) {
3137 BB->getParent()->hasMinSize()
3140
3141 bool HaveRewritablePHIs = false;
3142 for (PHINode &PN : EndBB->phis()) {
3143 Value *OrigV = PN.getIncomingValueForBlock(BB);
3144 Value *ThenV = PN.getIncomingValueForBlock(ThenBB);
3145
3146 // FIXME: Try to remove some of the duplication with
3147 // hoistCommonCodeFromSuccessors. Skip PHIs which are trivial.
3148 if (ThenV == OrigV)
3149 continue;
3150
3151 Cost += TTI.getCmpSelInstrCost(Instruction::Select, PN.getType(),
3152 CmpInst::makeCmpResultType(PN.getType()),
3154
3155 // Don't convert to selects if we could remove undefined behavior instead.
3156 if (passingValueIsAlwaysUndefined(OrigV, &PN) ||
3158 return false;
3159
3160 HaveRewritablePHIs = true;
3161 ConstantExpr *OrigCE = dyn_cast<ConstantExpr>(OrigV);
3162 ConstantExpr *ThenCE = dyn_cast<ConstantExpr>(ThenV);
3163 if (!OrigCE && !ThenCE)
3164 continue; // Known cheap (FIXME: Maybe not true for aggregates).
3165
3166 InstructionCost OrigCost = OrigCE ? computeSpeculationCost(OrigCE, TTI) : 0;
3167 InstructionCost ThenCost = ThenCE ? computeSpeculationCost(ThenCE, TTI) : 0;
3168 InstructionCost MaxCost =
3170 if (OrigCost + ThenCost > MaxCost)
3171 return false;
3172
3173 // Account for the cost of an unfolded ConstantExpr which could end up
3174 // getting expanded into Instructions.
3175 // FIXME: This doesn't account for how many operations are combined in the
3176 // constant expression.
3177 ++SpeculatedInstructions;
3178 if (SpeculatedInstructions > 1)
3179 return false;
3180 }
3181
3182 return HaveRewritablePHIs;
3183}
3184
3186 std::optional<bool> Invert,
3187 const TargetTransformInfo &TTI) {
3188 // If the branch is non-unpredictable, and is predicted to *not* branch to
3189 // the `then` block, then avoid speculating it.
3190 if (BI->getMetadata(LLVMContext::MD_unpredictable))
3191 return true;
3192
3193 uint64_t TWeight, FWeight;
3194 if (!extractBranchWeights(*BI, TWeight, FWeight) || (TWeight + FWeight) == 0)
3195 return true;
3196
3197 if (!Invert.has_value())
3198 return false;
3199
3200 uint64_t EndWeight = *Invert ? TWeight : FWeight;
3201 BranchProbability BIEndProb =
3202 BranchProbability::getBranchProbability(EndWeight, TWeight + FWeight);
3203 BranchProbability Likely = TTI.getPredictableBranchThreshold();
3204 return BIEndProb < Likely;
3205}
3206
3207/// Speculate a conditional basic block flattening the CFG.
3208///
3209/// Note that this is a very risky transform currently. Speculating
3210/// instructions like this is most often not desirable. Instead, there is an MI
3211/// pass which can do it with full awareness of the resource constraints.
3212/// However, some cases are "obvious" and we should do directly. An example of
3213/// this is speculating a single, reasonably cheap instruction.
3214///
3215/// There is only one distinct advantage to flattening the CFG at the IR level:
3216/// it makes very common but simplistic optimizations such as are common in
3217/// instcombine and the DAG combiner more powerful by removing CFG edges and
3218/// modeling their effects with easier to reason about SSA value graphs.
3219///
3220///
3221/// An illustration of this transform is turning this IR:
3222/// \code
3223/// BB:
3224/// %cmp = icmp ult %x, %y
3225/// br i1 %cmp, label %EndBB, label %ThenBB
3226/// ThenBB:
3227/// %sub = sub %x, %y
3228/// br label BB2
3229/// EndBB:
3230/// %phi = phi [ %sub, %ThenBB ], [ 0, %BB ]
3231/// ...
3232/// \endcode
3233///
3234/// Into this IR:
3235/// \code
3236/// BB:
3237/// %cmp = icmp ult %x, %y
3238/// %sub = sub %x, %y
3239/// %cond = select i1 %cmp, 0, %sub
3240/// ...
3241/// \endcode
3242///
3243/// \returns true if the conditional block is removed.
3244bool SimplifyCFGOpt::speculativelyExecuteBB(CondBrInst *BI,
3245 BasicBlock *ThenBB) {
3246 if (!Options.SpeculateBlocks)
3247 return false;
3248
3249 BasicBlock *BB = BI->getParent();
3250 BasicBlock *EndBB = ThenBB->getTerminator()->getSuccessor(0);
3251 InstructionCost Budget =
3253
3254 // If ThenBB is actually on the false edge of the conditional branch, remember
3255 // to swap the select operands later.
3256 bool Invert = false;
3257 if (ThenBB != BI->getSuccessor(0)) {
3258 assert(ThenBB == BI->getSuccessor(1) && "No edge from 'if' block?");
3259 Invert = true;
3260 }
3261 assert(EndBB == BI->getSuccessor(!Invert) && "No edge from to end block");
3262
3263 if (!isProfitableToSpeculate(BI, Invert, TTI))
3264 return false;
3265
3266 // Keep a count of how many times instructions are used within ThenBB when
3267 // they are candidates for sinking into ThenBB. Specifically:
3268 // - They are defined in BB, and
3269 // - They have no side effects, and
3270 // - All of their uses are in ThenBB.
3271 SmallDenseMap<Instruction *, unsigned, 4> SinkCandidateUseCounts;
3272
3273 SmallVector<Instruction *, 4> SpeculatedPseudoProbes;
3274
3275 unsigned SpeculatedInstructions = 0;
3276 bool HoistLoadsStores = Options.HoistLoadsStoresWithCondFaulting;
3277 SmallVector<Instruction *, 2> SpeculatedConditionalLoadsStores;
3278 Value *SpeculatedStoreValue = nullptr;
3279 StoreInst *SpeculatedStore = nullptr;
3280 EphemeralValueTracker EphTracker;
3281 for (Instruction &I : reverse(drop_end(*ThenBB))) {
3282 // Skip pseudo probes. The consequence is we lose track of the branch
3283 // probability for ThenBB, which is fine since the optimization here takes
3284 // place regardless of the branch probability.
3285 if (isa<PseudoProbeInst>(I)) {
3286 // The probe should be deleted so that it will not be over-counted when
3287 // the samples collected on the non-conditional path are counted towards
3288 // the conditional path. We leave it for the counts inference algorithm to
3289 // figure out a proper count for an unknown probe.
3290 SpeculatedPseudoProbes.push_back(&I);
3291 continue;
3292 }
3293
3294 // Ignore ephemeral values, they will be dropped by the transform.
3295 if (EphTracker.track(&I))
3296 continue;
3297
3298 // Only speculatively execute a single instruction (not counting the
3299 // terminator) for now.
3300 bool IsSafeCheapLoadStore = HoistLoadsStores &&
3302 SpeculatedConditionalLoadsStores.size() <
3304 // Not count load/store into cost if target supports conditional faulting
3305 // b/c it's cheap to speculate it.
3306 if (IsSafeCheapLoadStore)
3307 SpeculatedConditionalLoadsStores.push_back(&I);
3308 else
3309 ++SpeculatedInstructions;
3310
3311 if (SpeculatedInstructions > 1)
3312 return false;
3313
3314 // Don't hoist the instruction if it's unsafe or expensive.
3315 if (!IsSafeCheapLoadStore &&
3317 !(HoistCondStores && !SpeculatedStoreValue &&
3318 (SpeculatedStoreValue =
3319 isSafeToSpeculateStore(&I, BB, ThenBB, EndBB))))
3320 return false;
3321 if (!IsSafeCheapLoadStore && !SpeculatedStoreValue &&
3324 return false;
3325
3326 // Store the store speculation candidate.
3327 if (!SpeculatedStore && SpeculatedStoreValue)
3328 SpeculatedStore = cast<StoreInst>(&I);
3329
3330 // Do not hoist the instruction if any of its operands are defined but not
3331 // used in BB. The transformation will prevent the operand from
3332 // being sunk into the use block.
3333 for (Use &Op : I.operands()) {
3335 if (!OpI || OpI->getParent() != BB || OpI->mayHaveSideEffects())
3336 continue; // Not a candidate for sinking.
3337
3338 ++SinkCandidateUseCounts[OpI];
3339 }
3340 }
3341
3342 // Consider any sink candidates which are only used in ThenBB as costs for
3343 // speculation. Note, while we iterate over a DenseMap here, we are summing
3344 // and so iteration order isn't significant.
3345 for (const auto &[Inst, Count] : SinkCandidateUseCounts)
3346 if (Inst->hasNUses(Count)) {
3347 ++SpeculatedInstructions;
3348 if (SpeculatedInstructions > 1)
3349 return false;
3350 }
3351
3352 // Check that we can insert the selects and that it's not too expensive to do
3353 // so.
3354 bool Convert =
3355 SpeculatedStore != nullptr || !SpeculatedConditionalLoadsStores.empty();
3357 Convert |= validateAndCostRequiredSelects(BB, ThenBB, EndBB,
3358 SpeculatedInstructions, Cost, TTI);
3359 if (!Convert || Cost > Budget)
3360 return false;
3361
3362 // If we get here, we can hoist the instruction and if-convert.
3363 LLVM_DEBUG(dbgs() << "SPECULATIVELY EXECUTING BB" << *ThenBB << "\n";);
3364
3365 Instruction *Sel = nullptr;
3366 Value *BrCond = BI->getCondition();
3367 // Insert a select of the value of the speculated store.
3368 if (SpeculatedStoreValue) {
3369 IRBuilder<NoFolder> Builder(BI);
3370 Value *OrigV = SpeculatedStore->getValueOperand();
3371 Value *TrueV = SpeculatedStore->getValueOperand();
3372 Value *FalseV = SpeculatedStoreValue;
3373 if (Invert)
3374 std::swap(TrueV, FalseV);
3375 Value *S = Builder.CreateSelect(
3376 BrCond, TrueV, FalseV, "spec.store.select", BI);
3377 Sel = cast<Instruction>(S);
3378 SpeculatedStore->setOperand(0, S);
3379 SpeculatedStore->applyMergedLocation(BI->getDebugLoc(),
3380 SpeculatedStore->getDebugLoc());
3381 // The value stored is still conditional, but the store itself is now
3382 // unconditionally executed, so we must be sure that any linked dbg.assign
3383 // intrinsics are tracking the new stored value (the result of the
3384 // select). If we don't, and the store were to be removed by another pass
3385 // (e.g. DSE), then we'd eventually end up emitting a location describing
3386 // the conditional value, unconditionally.
3387 //
3388 // === Before this transformation ===
3389 // pred:
3390 // store %one, %x.dest, !DIAssignID !1
3391 // dbg.assign %one, "x", ..., !1, ...
3392 // br %cond if.then
3393 //
3394 // if.then:
3395 // store %two, %x.dest, !DIAssignID !2
3396 // dbg.assign %two, "x", ..., !2, ...
3397 //
3398 // === After this transformation ===
3399 // pred:
3400 // store %one, %x.dest, !DIAssignID !1
3401 // dbg.assign %one, "x", ..., !1
3402 /// ...
3403 // %merge = select %cond, %two, %one
3404 // store %merge, %x.dest, !DIAssignID !2
3405 // dbg.assign %merge, "x", ..., !2
3406 for (DbgVariableRecord *DbgAssign :
3407 at::getDVRAssignmentMarkers(SpeculatedStore))
3408 if (llvm::is_contained(DbgAssign->location_ops(), OrigV))
3409 DbgAssign->replaceVariableLocationOp(OrigV, S);
3410 }
3411
3412 // Metadata can be dependent on the condition we are hoisting above.
3413 // Strip all UB-implying metadata on the instruction. Drop the debug loc
3414 // to avoid making it appear as if the condition is a constant, which would
3415 // be misleading while debugging.
3416 // Similarly strip attributes that maybe dependent on condition we are
3417 // hoisting above.
3418 for (auto &I : make_early_inc_range(*ThenBB)) {
3419 if (!SpeculatedStoreValue || &I != SpeculatedStore) {
3420 I.dropLocation();
3421 }
3422 I.dropUBImplyingAttrsAndMetadata();
3423
3424 // Drop ephemeral values.
3425 if (EphTracker.contains(&I)) {
3426 I.replaceAllUsesWith(PoisonValue::get(I.getType()));
3427 I.eraseFromParent();
3428 }
3429 }
3430
3431 // Hoist the instructions.
3432 // Drop DbgVariableRecords attached to these instructions.
3433 for (auto &It : *ThenBB)
3434 for (DbgRecord &DR : make_early_inc_range(It.getDbgRecordRange()))
3435 // Drop all records except assign-kind DbgVariableRecords (dbg.assign
3436 // equivalent).
3437 if (DbgVariableRecord *DVR = dyn_cast<DbgVariableRecord>(&DR);
3438 !DVR || !DVR->isDbgAssign())
3439 It.dropOneDbgRecord(&DR);
3440 BB->splice(BI->getIterator(), ThenBB, ThenBB->begin(),
3441 std::prev(ThenBB->end()));
3442
3443 if (!SpeculatedConditionalLoadsStores.empty())
3444 hoistConditionalLoadsStores(BI, SpeculatedConditionalLoadsStores, Invert,
3445 Sel);
3446
3447 // Insert selects and rewrite the PHI operands.
3448 IRBuilder<NoFolder> Builder(BI);
3449 for (PHINode &PN : EndBB->phis()) {
3450 unsigned OrigI = PN.getBasicBlockIndex(BB);
3451 unsigned ThenI = PN.getBasicBlockIndex(ThenBB);
3452 Value *OrigV = PN.getIncomingValue(OrigI);
3453 Value *ThenV = PN.getIncomingValue(ThenI);
3454
3455 // Skip PHIs which are trivial.
3456 if (OrigV == ThenV)
3457 continue;
3458
3459 // Create a select whose true value is the speculatively executed value and
3460 // false value is the pre-existing value. Swap them if the branch
3461 // destinations were inverted.
3462 Value *TrueV = ThenV, *FalseV = OrigV;
3463 if (Invert)
3464 std::swap(TrueV, FalseV);
3465 // Propagate fast-math flags from the phi node to the replacement select.
3466 Value *V = Builder.CreateSelectFMF(
3467 BrCond, TrueV, FalseV, PN.getFastMathFlagsOrNone(), "spec.select", BI);
3468 PN.setIncomingValue(OrigI, V);
3469 PN.setIncomingValue(ThenI, V);
3470 }
3471
3472 // Remove speculated pseudo probes.
3473 for (Instruction *I : SpeculatedPseudoProbes)
3474 I->eraseFromParent();
3475
3476 ++NumSpeculations;
3477 return true;
3478}
3479
3481
3482// Return false if number of blocks searched is too much.
3483static bool findReaching(BasicBlock *BB, BasicBlock *DefBB,
3484 BlocksSet &ReachesNonLocalUses) {
3485 if (BB == DefBB)
3486 return true;
3487 if (!ReachesNonLocalUses.insert(BB).second)
3488 return true;
3489
3490 if (ReachesNonLocalUses.size() > MaxJumpThreadingLiveBlocks)
3491 return false;
3492 for (BasicBlock *Pred : predecessors(BB))
3493 if (!findReaching(Pred, DefBB, ReachesNonLocalUses))
3494 return false;
3495 return true;
3496}
3497
3498/// Return true if we can thread a branch across this block.
3500 BlocksSet &NonLocalUseBlocks) {
3501 int Size = 0;
3502 EphemeralValueTracker EphTracker;
3503
3504 // Walk the loop in reverse so that we can identify ephemeral values properly
3505 // (values only feeding assumes).
3506 for (Instruction &I : reverse(*BB)) {
3507 // Can't fold blocks that contain noduplicate or convergent calls.
3508 if (CallInst *CI = dyn_cast<CallInst>(&I))
3509 if (CI->cannotDuplicate() || CI->isConvergent())
3510 return false;
3511
3512 // Ignore ephemeral values which are deleted during codegen.
3513 // We will delete Phis while threading, so Phis should not be accounted in
3514 // block's size.
3515 if (!EphTracker.track(&I) && !isa<PHINode>(I)) {
3516 if (Size++ > MaxSmallBlockSize)
3517 return false; // Don't clone large BB's.
3518 }
3519
3520 // Record blocks with non-local uses of values defined in the current basic
3521 // block.
3522 for (User *U : I.users()) {
3524 BasicBlock *UsedInBB = UI->getParent();
3525 if (UsedInBB == BB) {
3526 if (isa<PHINode>(UI))
3527 return false;
3528 } else
3529 NonLocalUseBlocks.insert(UsedInBB);
3530 }
3531
3532 // Looks ok, continue checking.
3533 }
3534
3535 return true;
3536}
3537
3539 BasicBlock *To) {
3540 // Don't look past the block defining the value, we might get the value from
3541 // a previous loop iteration.
3542 auto *I = dyn_cast<Instruction>(V);
3543 if (I && I->getParent() == To)
3544 return nullptr;
3545
3546 // We know the value if the From block branches on it.
3547 auto *BI = dyn_cast<CondBrInst>(From->getTerminator());
3548 if (BI && BI->getCondition() == V &&
3549 BI->getSuccessor(0) != BI->getSuccessor(1))
3550 return BI->getSuccessor(0) == To ? ConstantInt::getTrue(BI->getContext())
3552
3553 return nullptr;
3554}
3555
3557 return CB->isConvergent() && !isa<ConvergenceControlInst>(CB) &&
3559}
3560
3562 BasicBlock *StopBB) {
3563 static constexpr unsigned MaxInstructionsToScan = 512;
3564
3565 // Walk predecessors of StopBB to find blocks that can reach it. Only
3566 // convergent calls on a cycle with StopBB matter - a convergent call on a
3567 // path to function exit cannot have its dynamic instance changed by
3568 // threading.
3569 SmallPtrSet<BasicBlock *, 8> CanReachStop;
3570 SmallPtrSet<BasicBlock *, 8> BlocksWithUncontrolledConvergentCalls;
3572 for (BasicBlock *Pred : predecessors(StopBB))
3573 Worklist.push_back(Pred);
3574
3575 // Cache blocks with relevant calls while building CanReachStop. This keeps
3576 // the instruction scan bounded without a separate block limit.
3577 unsigned NumScannedInstructions = 0;
3578 while (!Worklist.empty()) {
3579 BasicBlock *BB = Worklist.pop_back_val();
3580 if (BB == StopBB)
3581 continue;
3582 if (!CanReachStop.insert(BB).second)
3583 continue;
3584
3585 for (Instruction &I : *BB) {
3586 if (++NumScannedInstructions > MaxInstructionsToScan)
3587 return true;
3588 auto *CB = dyn_cast<CallBase>(&I);
3589 if (CB && isUncontrolledConvergentCall(CB)) {
3590 BlocksWithUncontrolledConvergentCalls.insert(BB);
3591 break;
3592 }
3593 }
3594
3595 append_range(Worklist, predecessors(BB));
3596 }
3597
3598 if (!CanReachStop.contains(From))
3599 return false;
3600
3602 Worklist.push_back(From);
3603
3604 while (!Worklist.empty()) {
3605 BasicBlock *BB = Worklist.pop_back_val();
3606 if (BB == StopBB || !CanReachStop.contains(BB))
3607 continue;
3608
3609 if (!Visited.insert(BB).second)
3610 continue;
3611
3612 if (BlocksWithUncontrolledConvergentCalls.contains(BB))
3613 return true;
3614
3615 append_range(Worklist, successors(BB));
3616 }
3617
3618 return false;
3619}
3620
3621/// If we have a conditional branch on something for which we know the constant
3622/// value in predecessors (e.g. a phi node in the current block), thread edges
3623/// from the predecessor to their ultimate destination.
3626 AssumptionCache *AC, const DataLayout &DL) {
3628 BasicBlock *BB = BI->getParent();
3629 Value *Cond = BI->getCondition();
3631 if (PN && PN->getParent() == BB) {
3632 // Degenerate case of a single entry PHI.
3633 if (PN->getNumIncomingValues() == 1) {
3635 return true;
3636 }
3637
3638 for (Use &U : PN->incoming_values())
3639 if (auto *CB = dyn_cast<ConstantInt>(U))
3640 KnownValues[CB].insert(PN->getIncomingBlock(U));
3641 } else {
3642 for (BasicBlock *Pred : predecessors(BB)) {
3643 if (ConstantInt *CB = getKnownValueOnEdge(Cond, Pred, BB))
3644 KnownValues[CB].insert(Pred);
3645 }
3646 }
3647
3648 if (KnownValues.empty())
3649 return false;
3650
3651 // Now we know that this block has multiple preds and two succs.
3652 // Check that the block is small enough and record which non-local blocks use
3653 // values defined in the block.
3654
3655 BlocksSet NonLocalUseBlocks;
3656 BlocksSet ReachesNonLocalUseBlocks;
3657 if (!blockIsSimpleEnoughToThreadThrough(BB, NonLocalUseBlocks))
3658 return false;
3659
3660 // Jump-threading can only be done to destinations where no values defined
3661 // in BB are live.
3662
3663 // Quickly check if both destinations have uses. If so, jump-threading cannot
3664 // be done.
3665 if (NonLocalUseBlocks.contains(BI->getSuccessor(0)) &&
3666 NonLocalUseBlocks.contains(BI->getSuccessor(1)))
3667 return false;
3668
3669 // Search backward from NonLocalUseBlocks to find which blocks
3670 // reach non-local uses.
3671 for (BasicBlock *UseBB : NonLocalUseBlocks)
3672 // Give up if too many blocks are searched.
3673 if (!findReaching(UseBB, BB, ReachesNonLocalUseBlocks))
3674 return false;
3675
3676 for (const auto &Pair : KnownValues) {
3677 ConstantInt *CB = Pair.first;
3678 ArrayRef<BasicBlock *> PredBBs = Pair.second.getArrayRef();
3679 BasicBlock *RealDest = BI->getSuccessor(!CB->getZExtValue());
3680
3681 // Okay, we now know that all edges from PredBB should be revectored to
3682 // branch to RealDest.
3683 if (RealDest == BB)
3684 continue; // Skip self loops.
3685
3686 // Skip if the predecessor's terminator is an indirect branch.
3687 if (any_of(PredBBs, [](BasicBlock *PredBB) {
3688 return isa<IndirectBrInst>(PredBB->getTerminator());
3689 }))
3690 continue;
3691
3692 // Only revector to RealDest if no values defined in BB are live.
3693 if (ReachesNonLocalUseBlocks.contains(RealDest))
3694 continue;
3695
3696 // Threading through a branch can bypass a reconvergence point. If the
3697 // destination can execute an uncontrolled convergent operation before
3698 // returning to this block, this may change the dynamic instance of that
3699 // operation.
3700 if (TTI.hasBranchDivergence(BB->getParent()) &&
3702 continue;
3703
3704 LLVM_DEBUG({
3705 dbgs() << "Condition " << *Cond << " in " << BB->getName()
3706 << " has value " << *Pair.first << " in predecessors:\n";
3707 for (const BasicBlock *PredBB : Pair.second)
3708 dbgs() << " " << PredBB->getName() << "\n";
3709 dbgs() << "Threading to destination " << RealDest->getName() << ".\n";
3710 });
3711
3712 // Split the predecessors we are threading into a new edge block. We'll
3713 // clone the instructions into this block, and then redirect it to RealDest.
3714 BasicBlock *EdgeBB = SplitBlockPredecessors(BB, PredBBs, ".critedge", DTU);
3715 if (!EdgeBB)
3716 continue;
3717
3718 // TODO: These just exist to reduce test diff, we can drop them if we like.
3719 EdgeBB->setName(RealDest->getName() + ".critedge");
3720 EdgeBB->moveBefore(RealDest);
3721
3722 // Update PHI nodes.
3723 addPredecessorToBlock(RealDest, EdgeBB, BB);
3724
3725 // BB may have instructions that are being threaded over. Clone these
3726 // instructions into EdgeBB. We know that there will be no uses of the
3727 // cloned instructions outside of EdgeBB.
3728 BasicBlock::iterator InsertPt = EdgeBB->getFirstInsertionPt();
3729 ValueToValueMapTy TranslateMap; // Track translated values.
3730 TranslateMap[Cond] = CB;
3731
3732 // RemoveDIs: track instructions that we optimise away while folding, so
3733 // that we can copy DbgVariableRecords from them later.
3734 BasicBlock::iterator SrcDbgCursor = BB->begin();
3735 for (BasicBlock::iterator BBI = BB->begin(); &*BBI != BI; ++BBI) {
3736 if (PHINode *PN = dyn_cast<PHINode>(BBI)) {
3737 TranslateMap[PN] = PN->getIncomingValueForBlock(EdgeBB);
3738 continue;
3739 }
3740 // Clone the instruction.
3741 Instruction *N = BBI->clone();
3742 // Insert the new instruction into its new home.
3743 N->insertInto(EdgeBB, InsertPt);
3744
3745 if (BBI->hasName())
3746 N->setName(BBI->getName() + ".c");
3747
3748 // Update operands due to translation.
3749 // Key Instructions: Remap all the atom groups.
3750 if (const DebugLoc &DL = BBI->getDebugLoc())
3751 mapAtomInstance(DL, TranslateMap);
3752 RemapInstruction(N, TranslateMap,
3754
3755 // Check for trivial simplification.
3756 if (Value *V = simplifyInstruction(N, {DL, nullptr, nullptr, AC})) {
3757 if (!BBI->use_empty())
3758 TranslateMap[&*BBI] = V;
3759 if (!N->mayHaveSideEffects()) {
3760 N->eraseFromParent(); // Instruction folded away, don't need actual
3761 // inst
3762 N = nullptr;
3763 }
3764 } else {
3765 if (!BBI->use_empty())
3766 TranslateMap[&*BBI] = N;
3767 }
3768 if (N) {
3769 // Copy all debug-info attached to instructions from the last we
3770 // successfully clone, up to this instruction (they might have been
3771 // folded away).
3772 for (; SrcDbgCursor != BBI; ++SrcDbgCursor)
3773 N->cloneDebugInfoFrom(&*SrcDbgCursor);
3774 SrcDbgCursor = std::next(BBI);
3775 // Clone debug-info on this instruction too.
3776 N->cloneDebugInfoFrom(&*BBI);
3777
3778 // Register the new instruction with the assumption cache if necessary.
3779 if (auto *Assume = dyn_cast<AssumeInst>(N))
3780 if (AC)
3781 AC->registerAssumption(Assume);
3782 }
3783 }
3784
3785 for (; &*SrcDbgCursor != BI; ++SrcDbgCursor)
3786 InsertPt->cloneDebugInfoFrom(&*SrcDbgCursor);
3787 InsertPt->cloneDebugInfoFrom(BI);
3788
3789 BB->removePredecessor(EdgeBB);
3790 UncondBrInst *EdgeBI = cast<UncondBrInst>(EdgeBB->getTerminator());
3791 EdgeBI->setSuccessor(0, RealDest);
3792 EdgeBI->setDebugLoc(BI->getDebugLoc());
3793
3794 if (DTU) {
3796 Updates.push_back({DominatorTree::Delete, EdgeBB, BB});
3797 Updates.push_back({DominatorTree::Insert, EdgeBB, RealDest});
3798 DTU->applyUpdates(Updates);
3799 }
3800
3801 // For simplicity, we created a separate basic block for the edge. Merge
3802 // it back into the predecessor if possible. This not only avoids
3803 // unnecessary SimplifyCFG iterations, but also makes sure that we don't
3804 // bypass the check for trivial cycles above.
3805 MergeBlockIntoPredecessor(EdgeBB, DTU);
3806
3807 // Signal repeat, simplifying any other constants.
3808 return std::nullopt;
3809 }
3810
3811 return false;
3812}
3813
3814bool SimplifyCFGOpt::foldCondBranchOnValueKnownInPredecessor(CondBrInst *BI) {
3815 // Note: If BB is a loop header then there is a risk that threading introduces
3816 // a non-canonical loop by moving a back edge. So we avoid this optimization
3817 // for loop headers if NeedCanonicalLoop is set.
3818 if (Options.NeedCanonicalLoop && is_contained(LoopHeaders, BI->getParent()))
3819 return false;
3820
3821 std::optional<bool> Result;
3822 bool EverChanged = false;
3823 do {
3824 // Note that None means "we changed things, but recurse further."
3826 Options.AC, DL);
3827 EverChanged |= Result == std::nullopt || *Result;
3828 } while (Result == std::nullopt);
3829 return EverChanged;
3830}
3831
3832/// Given a BB that starts with the specified two-entry PHI node,
3833/// see if we can eliminate it.
3836 const DataLayout &DL,
3837 bool SpeculateUnpredictables) {
3838 // Ok, this is a two entry PHI node. Check to see if this is a simple "if
3839 // statement", which has a very simple dominance structure. Basically, we
3840 // are trying to find the condition that is being branched on, which
3841 // subsequently causes this merge to happen. We really want control
3842 // dependence information for this check, but simplifycfg can't keep it up
3843 // to date, and this catches most of the cases we care about anyway.
3844 BasicBlock *BB = PN->getParent();
3845
3846 BasicBlock *IfTrue, *IfFalse;
3847 CondBrInst *DomBI = GetIfCondition(BB, IfTrue, IfFalse);
3848 if (!DomBI)
3849 return false;
3850 Value *IfCond = DomBI->getCondition();
3851 // Don't bother if the branch will be constant folded trivially.
3852 if (isa<ConstantInt>(IfCond))
3853 return false;
3854
3855 BasicBlock *DomBlock = DomBI->getParent();
3857 llvm::copy_if(PN->blocks(), std::back_inserter(IfBlocks),
3858 [](BasicBlock *IfBlock) {
3859 return isa<UncondBrInst>(IfBlock->getTerminator());
3860 });
3861 assert((IfBlocks.size() == 1 || IfBlocks.size() == 2) &&
3862 "Will have either one or two blocks to speculate.");
3863
3864 // If the branch is non-unpredictable, see if we either predictably jump to
3865 // the merge bb (if we have only a single 'then' block), or if we predictably
3866 // jump to one specific 'then' block (if we have two of them).
3867 // It isn't beneficial to speculatively execute the code
3868 // from the block that we know is predictably not entered.
3869 bool IsUnpredictable = DomBI->getMetadata(LLVMContext::MD_unpredictable);
3870 if (!IsUnpredictable) {
3871 uint64_t TWeight, FWeight;
3872 if (extractBranchWeights(*DomBI, TWeight, FWeight) &&
3873 (TWeight + FWeight) != 0) {
3874 BranchProbability BITrueProb =
3875 BranchProbability::getBranchProbability(TWeight, TWeight + FWeight);
3876 BranchProbability Likely = TTI.getPredictableBranchThreshold();
3877 BranchProbability BIFalseProb = BITrueProb.getCompl();
3878 if (IfBlocks.size() == 1) {
3879 BranchProbability BIBBProb =
3880 DomBI->getSuccessor(0) == BB ? BITrueProb : BIFalseProb;
3881 if (BIBBProb >= Likely)
3882 return false;
3883 } else {
3884 if (BITrueProb >= Likely || BIFalseProb >= Likely)
3885 return false;
3886 }
3887 }
3888 }
3889
3890 // Don't try to fold an unreachable block. For example, the phi node itself
3891 // can't be the candidate if-condition for a select that we want to form.
3892 if (auto *IfCondPhiInst = dyn_cast<PHINode>(IfCond))
3893 if (IfCondPhiInst->getParent() == BB)
3894 return false;
3895
3896 // Okay, we found that we can merge this two-entry phi node into a select.
3897 // Doing so would require us to fold *all* two entry phi nodes in this block.
3898 // At some point this becomes non-profitable (particularly if the target
3899 // doesn't support cmov's). Only do this transformation if there are two or
3900 // fewer PHI nodes in this block.
3901 unsigned NumPhis = 0;
3902 for (BasicBlock::iterator I = BB->begin(); isa<PHINode>(I); ++NumPhis, ++I)
3903 if (NumPhis > 2)
3904 return false;
3905
3906 // Loop over the PHI's seeing if we can promote them all to select
3907 // instructions. While we are at it, keep track of the instructions
3908 // that need to be moved to the dominating block.
3909 SmallPtrSet<Instruction *, 4> AggressiveInsts;
3910 SmallPtrSet<Instruction *, 2> ZeroCostInstructions;
3911 InstructionCost Cost = 0;
3912 InstructionCost Budget =
3914 if (SpeculateUnpredictables && IsUnpredictable)
3915 Budget += TTI.getBranchMispredictPenalty();
3916
3917 bool Changed = false;
3918 for (BasicBlock::iterator II = BB->begin(); isa<PHINode>(II);) {
3919 PHINode *PN = cast<PHINode>(II++);
3920 if (Value *V = simplifyInstruction(PN, {DL, PN})) {
3921 PN->replaceAllUsesWith(V);
3922 PN->eraseFromParent();
3923 Changed = true;
3924 continue;
3925 }
3926
3927 if (!dominatesMergePoint(PN->getIncomingValue(0), BB, DomBI,
3928 AggressiveInsts, Cost, Budget, TTI, AC,
3929 ZeroCostInstructions) ||
3930 !dominatesMergePoint(PN->getIncomingValue(1), BB, DomBI,
3931 AggressiveInsts, Cost, Budget, TTI, AC,
3932 ZeroCostInstructions))
3933 return Changed;
3934 }
3935
3936 // If we folded the first phi, PN dangles at this point. Refresh it. If
3937 // we ran out of PHIs then we simplified them all.
3938 PN = dyn_cast<PHINode>(BB->begin());
3939 if (!PN)
3940 return true;
3941
3942 // Don't fold i1 branches on PHIs which contain binary operators or
3943 // (possibly inverted) select form of or/ands if their parameters are
3944 // an equality test.
3945 auto IsBinOpOrAndEq = [](Value *V) {
3946 CmpPredicate Pred;
3947 if (match(V, m_CombineOr(
3949 m_BinOp(m_Cmp(Pred, m_Value(), m_Value()), m_Value()),
3950 m_BinOp(m_Value(), m_Cmp(Pred, m_Value(), m_Value()))),
3952 m_Cmp(Pred, m_Value(), m_Value()))))) {
3953 return CmpInst::isEquality(Pred);
3954 }
3955 return false;
3956 };
3957 if (PN->getType()->isIntegerTy(1) &&
3958 (IsBinOpOrAndEq(PN->getIncomingValue(0)) ||
3959 IsBinOpOrAndEq(PN->getIncomingValue(1)) || IsBinOpOrAndEq(IfCond)))
3960 return Changed;
3961
3962 // If all PHI nodes are promotable, check to make sure that all instructions
3963 // in the predecessor blocks can be promoted as well. If not, we won't be able
3964 // to get rid of the control flow, so it's not worth promoting to select
3965 // instructions.
3966 for (BasicBlock *IfBlock : IfBlocks)
3967 for (BasicBlock::iterator I = IfBlock->begin(); !I->isTerminator(); ++I)
3968 if (!AggressiveInsts.count(&*I) && !I->isDebugOrPseudoInst()) {
3969 // This is not an aggressive instruction that we can promote.
3970 // Because of this, we won't be able to get rid of the control flow, so
3971 // the xform is not worth it.
3972 return Changed;
3973 }
3974
3975 // If either of the blocks has it's address taken, we can't do this fold.
3976 if (any_of(IfBlocks,
3977 [](BasicBlock *IfBlock) { return IfBlock->hasAddressTaken(); }))
3978 return Changed;
3979
3980 LLVM_DEBUG(dbgs() << "FOUND IF CONDITION! " << *IfCond;
3981 if (IsUnpredictable) dbgs() << " (unpredictable)";
3982 dbgs() << " T: " << IfTrue->getName()
3983 << " F: " << IfFalse->getName() << "\n");
3984
3985 // If we can still promote the PHI nodes after this gauntlet of tests,
3986 // do all of the PHI's now.
3987
3988 // Move all 'aggressive' instructions, which are defined in the
3989 // conditional parts of the if's up to the dominating block.
3990 for (BasicBlock *IfBlock : IfBlocks)
3991 hoistAllInstructionsInto(DomBlock, DomBI, IfBlock);
3992
3993 IRBuilder<NoFolder> Builder(DomBI);
3994 // Propagate fast-math-flags from phi nodes to replacement selects.
3995 while (PHINode *PN = dyn_cast<PHINode>(BB->begin())) {
3996 // Change the PHI node into a select instruction.
3997 Value *TrueVal = PN->getIncomingValueForBlock(IfTrue);
3998 Value *FalseVal = PN->getIncomingValueForBlock(IfFalse);
3999
4000 Value *Sel = Builder.CreateSelectFMF(IfCond, TrueVal, FalseVal,
4001 isa<FPMathOperator>(PN) ? PN : nullptr,
4002 "", DomBI);
4003 PN->replaceAllUsesWith(Sel);
4004 Sel->takeName(PN);
4005 PN->eraseFromParent();
4006 }
4007
4008 // At this point, all IfBlocks are empty, so our if statement
4009 // has been flattened. Change DomBlock to jump directly to our new block to
4010 // avoid other simplifycfg's kicking in on the diamond.
4011 Builder.CreateBr(BB);
4012
4014 if (DTU) {
4015 Updates.push_back({DominatorTree::Insert, DomBlock, BB});
4016 for (auto *Successor : successors(DomBlock))
4017 Updates.push_back({DominatorTree::Delete, DomBlock, Successor});
4018 }
4019
4020 DomBI->eraseFromParent();
4021 if (DTU)
4022 DTU->applyUpdates(Updates);
4023
4024 return true;
4025}
4026
4029 Value *RHS, const Twine &Name = "") {
4030 // Try to relax logical op to binary op.
4031 if (impliesPoison(RHS, LHS))
4032 return Builder.CreateBinOp(Opc, LHS, RHS, Name);
4033 if (Opc == Instruction::And)
4034 return Builder.CreateLogicalAnd(LHS, RHS, Name);
4035 if (Opc == Instruction::Or)
4036 return Builder.CreateLogicalOr(LHS, RHS, Name);
4037 llvm_unreachable("Invalid logical opcode");
4038}
4039
4040/// Return true if either PBI or BI has branch weight available, and store
4041/// the weights in {Pred|Succ}{True|False}Weight. If one of PBI and BI does
4042/// not have branch weight, use 1:1 as its weight.
4044 uint64_t &PredTrueWeight,
4045 uint64_t &PredFalseWeight,
4046 uint64_t &SuccTrueWeight,
4047 uint64_t &SuccFalseWeight) {
4048 bool PredHasWeights =
4049 extractBranchWeights(*PBI, PredTrueWeight, PredFalseWeight);
4050 bool SuccHasWeights =
4051 extractBranchWeights(*BI, SuccTrueWeight, SuccFalseWeight);
4052 if (PredHasWeights || SuccHasWeights) {
4053 if (!PredHasWeights)
4054 PredTrueWeight = PredFalseWeight = 1;
4055 if (!SuccHasWeights)
4056 SuccTrueWeight = SuccFalseWeight = 1;
4057 return true;
4058 } else {
4059 return false;
4060 }
4061}
4062
4063/// Determine if the two branches share a common destination and deduce a glue
4064/// that joins the branches' conditions to arrive at the common destination if
4065/// that would be profitable.
4066static std::optional<std::tuple<BasicBlock *, Instruction::BinaryOps, bool>>
4068 const TargetTransformInfo *TTI) {
4069 assert(BI && PBI && "Both blocks must end with a conditional branches.");
4071 "PredBB must be a predecessor of BB.");
4072
4073 // We have the potential to fold the conditions together, but if the
4074 // predecessor branch is predictable, we may not want to merge them.
4075 uint64_t PTWeight, PFWeight;
4076 BranchProbability PBITrueProb, Likely;
4077 if (TTI && !PBI->getMetadata(LLVMContext::MD_unpredictable) &&
4078 extractBranchWeights(*PBI, PTWeight, PFWeight) &&
4079 (PTWeight + PFWeight) != 0) {
4080 PBITrueProb =
4081 BranchProbability::getBranchProbability(PTWeight, PTWeight + PFWeight);
4082 Likely = TTI->getPredictableBranchThreshold();
4083 }
4084
4085 if (PBI->getSuccessor(0) == BI->getSuccessor(0)) {
4086 // Speculate the 2nd condition unless the 1st is probably true.
4087 if (PBITrueProb.isUnknown() || PBITrueProb < Likely)
4088 return {{BI->getSuccessor(0), Instruction::Or, false}};
4089 } else if (PBI->getSuccessor(1) == BI->getSuccessor(1)) {
4090 // Speculate the 2nd condition unless the 1st is probably false.
4091 if (PBITrueProb.isUnknown() || PBITrueProb.getCompl() < Likely)
4092 return {{BI->getSuccessor(1), Instruction::And, false}};
4093 } else if (PBI->getSuccessor(0) == BI->getSuccessor(1)) {
4094 // Speculate the 2nd condition unless the 1st is probably true.
4095 if (PBITrueProb.isUnknown() || PBITrueProb < Likely)
4096 return {{BI->getSuccessor(1), Instruction::And, true}};
4097 } else if (PBI->getSuccessor(1) == BI->getSuccessor(0)) {
4098 // Speculate the 2nd condition unless the 1st is probably false.
4099 if (PBITrueProb.isUnknown() || PBITrueProb.getCompl() < Likely)
4100 return {{BI->getSuccessor(0), Instruction::Or, true}};
4101 }
4102 return std::nullopt;
4103}
4104
4106 DomTreeUpdater *DTU,
4107 MemorySSAUpdater *MSSAU,
4108 const TargetTransformInfo *TTI) {
4109 BasicBlock *BB = BI->getParent();
4110 BasicBlock *PredBlock = PBI->getParent();
4111
4112 // Determine if the two branches share a common destination.
4113 BasicBlock *CommonSucc;
4115 bool InvertPredCond;
4116 std::tie(CommonSucc, Opc, InvertPredCond) =
4118
4119 LLVM_DEBUG(dbgs() << "FOLDING BRANCH TO COMMON DEST:\n" << *PBI << *BB);
4120
4122 BB->getContext(), ConstantFolder{},
4124 // The builder is used to create instructions to eliminate the branch in
4125 // BB. If BB's terminator has !annotation metadata, add it to the new
4126 // instructions.
4127 I->copyMetadata(*BB->getTerminator(), LLVMContext::MD_annotation);
4128 }));
4129 Builder.SetInsertPoint(PBI);
4130
4131 // If we need to invert the condition in the pred block to match, do so now.
4132 if (InvertPredCond) {
4133 InvertBranch(PBI, Builder);
4134 }
4135
4136 BasicBlock *UniqueSucc =
4137 PBI->getSuccessor(0) == BB ? BI->getSuccessor(0) : BI->getSuccessor(1);
4138
4139 // Before cloning instructions, notify the successor basic block that it
4140 // is about to have a new predecessor. This will update PHI nodes,
4141 // which will allow us to update live-out uses of bonus instructions.
4142 addPredecessorToBlock(UniqueSucc, PredBlock, BB, MSSAU);
4143
4144 // Try to update branch weights.
4145 uint64_t PredTrueWeight, PredFalseWeight, SuccTrueWeight, SuccFalseWeight;
4146 SmallVector<uint64_t, 2> MDWeights;
4147 if (extractPredSuccWeights(PBI, BI, PredTrueWeight, PredFalseWeight,
4148 SuccTrueWeight, SuccFalseWeight)) {
4149
4150 if (PBI->getSuccessor(0) == BB) {
4151 // PBI: br i1 %x, BB, FalseDest
4152 // BI: br i1 %y, UniqueSucc, FalseDest
4153 // TrueWeight is TrueWeight for PBI * TrueWeight for BI.
4154 MDWeights.push_back(PredTrueWeight * SuccTrueWeight);
4155 // FalseWeight is FalseWeight for PBI * TotalWeight for BI +
4156 // TrueWeight for PBI * FalseWeight for BI.
4157 // We assume that total weights of a CondBrInst can fit into 32 bits.
4158 // Therefore, we will not have overflow using 64-bit arithmetic.
4159 MDWeights.push_back(PredFalseWeight * (SuccFalseWeight + SuccTrueWeight) +
4160 PredTrueWeight * SuccFalseWeight);
4161 } else {
4162 // PBI: br i1 %x, TrueDest, BB
4163 // BI: br i1 %y, TrueDest, UniqueSucc
4164 // TrueWeight is TrueWeight for PBI * TotalWeight for BI +
4165 // FalseWeight for PBI * TrueWeight for BI.
4166 MDWeights.push_back(PredTrueWeight * (SuccFalseWeight + SuccTrueWeight) +
4167 PredFalseWeight * SuccTrueWeight);
4168 // FalseWeight is FalseWeight for PBI * FalseWeight for BI.
4169 MDWeights.push_back(PredFalseWeight * SuccFalseWeight);
4170 }
4171
4172 setFittedBranchWeights(*PBI, MDWeights, /*IsExpected=*/false,
4173 /*ElideAllZero=*/true);
4174
4175 // TODO: If BB is reachable from all paths through PredBlock, then we
4176 // could replace PBI's branch probabilities with BI's.
4177 } else
4178 PBI->setMetadata(LLVMContext::MD_prof, nullptr);
4179
4180 // Now, update the CFG.
4181 PBI->setSuccessor(PBI->getSuccessor(0) != BB, UniqueSucc);
4182
4183 if (DTU)
4184 DTU->applyUpdates({{DominatorTree::Insert, PredBlock, UniqueSucc},
4185 {DominatorTree::Delete, PredBlock, BB}});
4186
4187 // If BI was a loop latch, it may have had associated loop metadata.
4188 // We need to copy it to the new latch, that is, PBI.
4189 if (MDNode *LoopMD = BI->getMetadata(LLVMContext::MD_loop))
4190 PBI->setMetadata(LLVMContext::MD_loop, LoopMD);
4191
4192 ValueToValueMapTy VMap; // maps original values to cloned values
4194
4195 Module *M = BB->getModule();
4196
4197 PredBlock->getTerminator()->cloneDebugInfoFrom(BB->getTerminator());
4198 for (DbgVariableRecord &DVR :
4200 RemapDbgRecord(M, &DVR, VMap,
4202 }
4203
4204 // Now that the Cond was cloned into the predecessor basic block,
4205 // or/and the two conditions together.
4206 Value *BICond = VMap[BI->getCondition()];
4207 PBI->setCondition(
4208 createLogicalOp(Builder, Opc, PBI->getCondition(), BICond, "or.cond"));
4210 if (auto *SI = dyn_cast<SelectInst>(PBI->getCondition()))
4211 if (!MDWeights.empty()) {
4212 assert(isSelectInRoleOfConjunctionOrDisjunction(SI));
4213 setFittedBranchWeights(*SI, {MDWeights[0], MDWeights[1]},
4214 /*IsExpected=*/false, /*ElideAllZero=*/true);
4215 }
4216
4217 ++NumFoldBranchToCommonDest;
4218 return true;
4219}
4220
4221/// Return if an instruction's type or any of its operands' types are a vector
4222/// type.
4223static bool isVectorOp(Instruction &I) {
4224 return I.getType()->isVectorTy() || any_of(I.operands(), [](Use &U) {
4225 return U->getType()->isVectorTy();
4226 });
4227}
4228
4229/// If this basic block is simple enough, and if a predecessor branches to us
4230/// and one of our successors, fold the block into the predecessor and use
4231/// logical operations to pick the right destination.
4233 MemorySSAUpdater *MSSAU,
4234 const TargetTransformInfo *TTI,
4235 AssumptionCache *AC,
4236 unsigned BonusInstThreshold) {
4237 BasicBlock *BB = BI->getParent();
4241
4243
4245 Cond->getParent() != BB || !Cond->hasOneUse())
4246 return false;
4247
4248 // Finally, don't infinitely unroll conditional loops.
4249 if (is_contained(successors(BB), BB))
4250 return false;
4251
4252 // With which predecessors will we want to deal with?
4254 for (BasicBlock *PredBlock : predecessors(BB)) {
4255 CondBrInst *PBI = dyn_cast<CondBrInst>(PredBlock->getTerminator());
4256
4257 // Check that we have two conditional branches. If there is a PHI node in
4258 // the common successor, verify that the same value flows in from both
4259 // blocks.
4260 if (!PBI || !safeToMergeTerminators(BI, PBI))
4261 continue;
4262
4263 // Determine if the two branches share a common destination.
4264 BasicBlock *CommonSucc;
4266 bool InvertPredCond;
4267 if (auto Recipe = shouldFoldCondBranchesToCommonDestination(BI, PBI, TTI))
4268 std::tie(CommonSucc, Opc, InvertPredCond) = *Recipe;
4269 else
4270 continue;
4271
4272 // Check the cost of inserting the necessary logic before performing the
4273 // transformation.
4274 if (TTI) {
4275 Type *Ty = BI->getCondition()->getType();
4276 InstructionCost Cost = TTI->getArithmeticInstrCost(Opc, Ty, CostKind);
4277 if (InvertPredCond && (!PBI->getCondition()->hasOneUse() ||
4278 !isa<CmpInst>(PBI->getCondition())))
4279 Cost += TTI->getArithmeticInstrCost(Instruction::Xor, Ty, CostKind);
4280
4282 continue;
4283 }
4284
4285 // Ok, we do want to deal with this predecessor. Record it.
4286 Preds.emplace_back(PredBlock);
4287 }
4288
4289 // If there aren't any predecessors into which we can fold,
4290 // don't bother checking the cost.
4291 if (Preds.empty())
4292 return false;
4293
4294 // Only allow this transformation if computing the condition doesn't involve
4295 // too many instructions and these involved instructions can be executed
4296 // unconditionally. We denote all involved instructions except the condition
4297 // as "bonus instructions", and only allow this transformation when the
4298 // number of the bonus instructions we'll need to create when cloning into
4299 // each predecessor does not exceed a certain threshold.
4300 unsigned NumBonusInsts = 0;
4301 bool SawVectorOp = false;
4302 const unsigned PredCount = Preds.size();
4303 // Speculated instructions will be inserted before the terminator of the
4304 // predecessor. Only handle the simple case of one predecessor.
4305 const Instruction *CxtI =
4306 PredCount == 1 ? Preds[0]->getTerminator() : nullptr;
4307 for (Instruction &I : *BB) {
4308 // Don't check the branch condition comparison itself.
4309 if (&I == Cond)
4310 continue;
4311 // Ignore the terminator.
4313 continue;
4314 // Pseudo probes aren't speculatable but can be dropped on fold.
4316 continue;
4317 // I must be safe to execute unconditionally.
4318 if (!isSafeToSpeculativelyExecute(&I, CxtI, AC))
4319 return false;
4320 SawVectorOp |= isVectorOp(I);
4321
4322 // Account for the cost of duplicating this instruction into each
4323 // predecessor. Ignore free instructions.
4324 if (!TTI || TTI->getInstructionCost(&I, CostKind) !=
4326 NumBonusInsts += PredCount;
4327
4328 // Early exits once we reach the limit.
4329 if (NumBonusInsts >
4330 BonusInstThreshold * BranchFoldToCommonDestVectorMultiplier)
4331 return false;
4332 }
4333
4334 auto IsBCSSAUse = [BB, &I](Use &U) {
4335 auto *UI = cast<Instruction>(U.getUser());
4336 if (auto *PN = dyn_cast<PHINode>(UI))
4337 return PN->getIncomingBlock(U) == BB;
4338 return UI->getParent() == BB && I.comesBefore(UI);
4339 };
4340
4341 // Does this instruction require rewriting of uses?
4342 if (!all_of(I.uses(), IsBCSSAUse))
4343 return false;
4344 }
4345 if (NumBonusInsts >
4346 BonusInstThreshold *
4347 (SawVectorOp ? BranchFoldToCommonDestVectorMultiplier : 1))
4348 return false;
4349
4350 // Ok, we have the budget. Perform the transformation.
4351 for (BasicBlock *PredBlock : Preds) {
4352 auto *PBI = cast<CondBrInst>(PredBlock->getTerminator());
4353 return performBranchToCommonDestFolding(BI, PBI, DTU, MSSAU, TTI);
4354 }
4355 return false;
4356}
4357
4358// If there is only one store in BB1 and BB2, return it, otherwise return
4359// nullptr.
4361 StoreInst *S = nullptr;
4362 for (auto *BB : {BB1, BB2}) {
4363 if (!BB)
4364 continue;
4365 for (auto &I : *BB)
4366 if (auto *SI = dyn_cast<StoreInst>(&I)) {
4367 if (S)
4368 // Multiple stores seen.
4369 return nullptr;
4370 else
4371 S = SI;
4372 }
4373 }
4374 return S;
4375}
4376
4378 Value *AlternativeV = nullptr) {
4379 // PHI is going to be a PHI node that allows the value V that is defined in
4380 // BB to be referenced in BB's only successor.
4381 //
4382 // If AlternativeV is nullptr, the only value we care about in PHI is V. It
4383 // doesn't matter to us what the other operand is (it'll never get used). We
4384 // could just create a new PHI with an undef incoming value, but that could
4385 // increase register pressure if EarlyCSE/InstCombine can't fold it with some
4386 // other PHI. So here we directly look for some PHI in BB's successor with V
4387 // as an incoming operand. If we find one, we use it, else we create a new
4388 // one.
4389 //
4390 // If AlternativeV is not nullptr, we care about both incoming values in PHI.
4391 // PHI must be exactly: phi <ty> [ %BB, %V ], [ %OtherBB, %AlternativeV]
4392 // where OtherBB is the single other predecessor of BB's only successor.
4393 PHINode *PHI = nullptr;
4394 BasicBlock *Succ = BB->getSingleSuccessor();
4395
4396 for (auto I = Succ->begin(); isa<PHINode>(I); ++I)
4397 if (cast<PHINode>(I)->getIncomingValueForBlock(BB) == V) {
4398 PHI = cast<PHINode>(I);
4399 if (!AlternativeV)
4400 break;
4401
4402 assert(Succ->hasNPredecessors(2));
4403 auto PredI = pred_begin(Succ);
4404 BasicBlock *OtherPredBB = *PredI == BB ? *++PredI : *PredI;
4405 if (PHI->getIncomingValueForBlock(OtherPredBB) == AlternativeV)
4406 break;
4407 PHI = nullptr;
4408 }
4409 if (PHI)
4410 return PHI;
4411
4412 // If V is not an instruction defined in BB, just return it.
4413 if (!AlternativeV &&
4414 (!isa<Instruction>(V) || cast<Instruction>(V)->getParent() != BB))
4415 return V;
4416
4417 PHI = PHINode::Create(V->getType(), 2, "simplifycfg.merge");
4418 PHI->insertBefore(Succ->begin());
4419 PHI->addIncoming(V, BB);
4420 for (BasicBlock *PredBB : predecessors(Succ))
4421 if (PredBB != BB)
4422 PHI->addIncoming(
4423 AlternativeV ? AlternativeV : PoisonValue::get(V->getType()), PredBB);
4424 return PHI;
4425}
4426
4428 BasicBlock *PTB, BasicBlock *PFB, BasicBlock *QTB, BasicBlock *QFB,
4429 BasicBlock *PostBB, Value *Address, bool InvertPCond, bool InvertQCond,
4430 DomTreeUpdater *DTU, const DataLayout &DL, const TargetTransformInfo &TTI) {
4431 // For every pointer, there must be exactly two stores, one coming from
4432 // PTB or PFB, and the other from QTB or QFB. We don't support more than one
4433 // store (to any address) in PTB,PFB or QTB,QFB.
4434 // FIXME: We could relax this restriction with a bit more work and performance
4435 // testing.
4436 StoreInst *PStore = findUniqueStoreInBlocks(PTB, PFB);
4437 StoreInst *QStore = findUniqueStoreInBlocks(QTB, QFB);
4438 if (!PStore || !QStore)
4439 return false;
4440
4441 // Now check the stores are compatible.
4442 if (!QStore->isUnordered() || !PStore->isUnordered() ||
4443 PStore->getOrdering() != QStore->getOrdering() ||
4444 PStore->getSyncScopeID() != QStore->getSyncScopeID() ||
4445 PStore->getValueOperand()->getType() !=
4446 QStore->getValueOperand()->getType())
4447 return false;
4448
4449 // Check that sinking the store won't cause program behavior changes. Sinking
4450 // the store out of the Q blocks won't change any behavior as we're sinking
4451 // from a block to its unconditional successor. But we're moving a store from
4452 // the P blocks down through the middle block (QBI) and past both QFB and QTB.
4453 // So we need to check that there are no aliasing loads or stores in
4454 // QBI, QTB and QFB. We also need to check there are no conflicting memory
4455 // operations between PStore and the end of its parent block.
4456 //
4457 // The ideal way to do this is to query AliasAnalysis, but we don't
4458 // preserve AA currently so that is dangerous. Be super safe and just
4459 // check there are no other memory operations at all.
4460 for (auto &I : *QFB->getSinglePredecessor())
4461 if (I.mayReadOrWriteMemory())
4462 return false;
4463 for (auto &I : *QFB)
4464 if (&I != QStore && I.mayReadOrWriteMemory())
4465 return false;
4466 if (QTB)
4467 for (auto &I : *QTB)
4468 if (&I != QStore && I.mayReadOrWriteMemory())
4469 return false;
4470 for (auto I = BasicBlock::iterator(PStore), E = PStore->getParent()->end();
4471 I != E; ++I)
4472 if (&*I != PStore && I->mayReadOrWriteMemory())
4473 return false;
4474
4475 // If we're not in aggressive mode, we only optimize if we have some
4476 // confidence that by optimizing we'll allow P and/or Q to be if-converted.
4477 auto IsWorthwhile = [&](BasicBlock *BB, ArrayRef<StoreInst *> FreeStores) {
4478 if (!BB)
4479 return true;
4480 // Heuristic: if the block can be if-converted/phi-folded and the
4481 // instructions inside are all cheap (arithmetic/GEPs), it's worthwhile to
4482 // thread this store.
4483 InstructionCost Cost = 0;
4484 InstructionCost Budget =
4486 for (auto &I : *BB) {
4487 // Consider terminator instruction to be free.
4488 if (I.isTerminator())
4489 continue;
4490 // If this is one the stores that we want to speculate out of this BB,
4491 // then don't count it's cost, consider it to be free.
4492 if (auto *S = dyn_cast<StoreInst>(&I))
4493 if (llvm::find(FreeStores, S))
4494 continue;
4495 // Else, we have a white-list of instructions that we are ak speculating.
4497 return false; // Not in white-list - not worthwhile folding.
4498 // And finally, if this is a non-free instruction that we are okay
4499 // speculating, ensure that we consider the speculation budget.
4500 Cost +=
4501 TTI.getInstructionCost(&I, TargetTransformInfo::TCK_SizeAndLatency);
4502 if (Cost > Budget)
4503 return false; // Eagerly refuse to fold as soon as we're out of budget.
4504 }
4505 assert(Cost <= Budget &&
4506 "When we run out of budget we will eagerly return from within the "
4507 "per-instruction loop.");
4508 return true;
4509 };
4510
4511 const std::array<StoreInst *, 2> FreeStores = {PStore, QStore};
4513 (!IsWorthwhile(PTB, FreeStores) || !IsWorthwhile(PFB, FreeStores) ||
4514 !IsWorthwhile(QTB, FreeStores) || !IsWorthwhile(QFB, FreeStores)))
4515 return false;
4516
4517 // If PostBB has more than two predecessors, we need to split it so we can
4518 // sink the store.
4519 if (std::next(pred_begin(PostBB), 2) != pred_end(PostBB)) {
4520 // We know that QFB's only successor is PostBB. And QFB has a single
4521 // predecessor. If QTB exists, then its only successor is also PostBB.
4522 // If QTB does not exist, then QFB's only predecessor has a conditional
4523 // branch to QFB and PostBB.
4524 BasicBlock *TruePred = QTB ? QTB : QFB->getSinglePredecessor();
4525 BasicBlock *NewBB =
4526 SplitBlockPredecessors(PostBB, {QFB, TruePred}, "condstore.split", DTU);
4527 if (!NewBB)
4528 return false;
4529 PostBB = NewBB;
4530 }
4531
4532 // OK, we're going to sink the stores to PostBB. The store has to be
4533 // conditional though, so first create the predicate.
4534 CondBrInst *PBranch =
4536 CondBrInst *QBranch =
4538 Value *PCond = PBranch->getCondition();
4539 Value *QCond = QBranch->getCondition();
4540
4542 PStore->getParent());
4544 QStore->getParent(), PPHI);
4545
4546 BasicBlock::iterator PostBBFirst = PostBB->getFirstInsertionPt();
4547 IRBuilder<> QB(PostBB, PostBBFirst);
4548 QB.SetCurrentDebugLocation(PostBBFirst->getStableDebugLoc());
4549
4550 InvertPCond ^= (PStore->getParent() != PTB);
4551 InvertQCond ^= (QStore->getParent() != QTB);
4552 Value *PPred = InvertPCond ? QB.CreateNot(PCond) : PCond;
4553 Value *QPred = InvertQCond ? QB.CreateNot(QCond) : QCond;
4554
4555 Value *CombinedPred = QB.CreateOr(PPred, QPred);
4556
4557 BasicBlock::iterator InsertPt = QB.GetInsertPoint();
4558 auto *T = SplitBlockAndInsertIfThen(CombinedPred, InsertPt,
4559 /*Unreachable=*/false,
4560 /*BranchWeights=*/nullptr, DTU);
4561 if (hasBranchWeightMD(*PBranch) && hasBranchWeightMD(*QBranch) &&
4563 SmallVector<uint32_t, 2> PWeights, QWeights;
4564 extractBranchWeights(*PBranch, PWeights);
4565 extractBranchWeights(*QBranch, QWeights);
4566 if (InvertPCond)
4567 std::swap(PWeights[0], PWeights[1]);
4568 if (InvertQCond)
4569 std::swap(QWeights[0], QWeights[1]);
4570 auto CombinedWeights = getDisjunctionWeights(PWeights, QWeights);
4572 {CombinedWeights[0], CombinedWeights[1]},
4573 /*IsExpected=*/false, /*ElideAllZero=*/true);
4574 }
4575
4576 QB.SetInsertPoint(T);
4577 StoreInst *SI = cast<StoreInst>(QB.CreateStore(QPHI, Address));
4578 combineMetadataForCSE(QStore, PStore, true);
4579 SI->copyMetadata(*QStore);
4580 // Update any dbg.assign intrinsics to track the merged value (QPHI) instead
4581 // of the original constant values, likely making these identical.
4582 for (auto *DbgAssign : at::getDVRAssignmentMarkers(SI)) {
4583 if (llvm::is_contained(DbgAssign->location_ops(),
4584 PStore->getValueOperand()))
4585 DbgAssign->replaceVariableLocationOp(PStore->getValueOperand(), QPHI);
4586 if (llvm::is_contained(DbgAssign->location_ops(),
4587 QStore->getValueOperand()))
4588 DbgAssign->replaceVariableLocationOp(QStore->getValueOperand(), QPHI);
4589 }
4590
4591 // Choose the minimum alignment. If we could prove both stores execute, we
4592 // could use biggest one. In this case, though, we only know that one of the
4593 // stores executes. And we don't know it's safe to take the alignment from a
4594 // store that doesn't execute.
4595 SI->setAlignment(std::min(PStore->getAlign(), QStore->getAlign()));
4596
4597 if (QStore->isAtomic())
4598 SI->setAtomic(QStore->getOrdering(), QStore->getSyncScopeID());
4599
4600 QStore->eraseFromParent();
4601 PStore->eraseFromParent();
4602
4603 return true;
4604}
4605
4607 DomTreeUpdater *DTU, const DataLayout &DL,
4608 const TargetTransformInfo &TTI) {
4609 // The intention here is to find diamonds or triangles (see below) where each
4610 // conditional block contains a store to the same address. Both of these
4611 // stores are conditional, so they can't be unconditionally sunk. But it may
4612 // be profitable to speculatively sink the stores into one merged store at the
4613 // end, and predicate the merged store on the union of the two conditions of
4614 // PBI and QBI.
4615 //
4616 // This can reduce the number of stores executed if both of the conditions are
4617 // true, and can allow the blocks to become small enough to be if-converted.
4618 // This optimization will also chain, so that ladders of test-and-set
4619 // sequences can be if-converted away.
4620 //
4621 // We only deal with simple diamonds or triangles:
4622 //
4623 // PBI or PBI or a combination of the two
4624 // / \ | \
4625 // PTB PFB | PFB
4626 // \ / | /
4627 // QBI QBI
4628 // / \ | \
4629 // QTB QFB | QFB
4630 // \ / | /
4631 // PostBB PostBB
4632 //
4633 // We model triangles as a type of diamond with a nullptr "true" block.
4634 // Triangles are canonicalized so that the fallthrough edge is represented by
4635 // a true condition, as in the diagram above.
4636 BasicBlock *PTB = PBI->getSuccessor(0);
4637 BasicBlock *PFB = PBI->getSuccessor(1);
4638 BasicBlock *QTB = QBI->getSuccessor(0);
4639 BasicBlock *QFB = QBI->getSuccessor(1);
4640 BasicBlock *PostBB = QFB->getSingleSuccessor();
4641
4642 // Make sure we have a good guess for PostBB. If QTB's only successor is
4643 // QFB, then QFB is a better PostBB.
4644 if (QTB->getSingleSuccessor() == QFB)
4645 PostBB = QFB;
4646
4647 // If we couldn't find a good PostBB, stop.
4648 if (!PostBB)
4649 return false;
4650
4651 bool InvertPCond = false, InvertQCond = false;
4652 // Canonicalize fallthroughs to the true branches.
4653 if (PFB == QBI->getParent()) {
4654 std::swap(PFB, PTB);
4655 InvertPCond = true;
4656 }
4657 if (QFB == PostBB) {
4658 std::swap(QFB, QTB);
4659 InvertQCond = true;
4660 }
4661
4662 // From this point on we can assume PTB or QTB may be fallthroughs but PFB
4663 // and QFB may not. Model fallthroughs as a nullptr block.
4664 if (PTB == QBI->getParent())
4665 PTB = nullptr;
4666 if (QTB == PostBB)
4667 QTB = nullptr;
4668
4669 // Legality bailouts. We must have at least the non-fallthrough blocks and
4670 // the post-dominating block, and the non-fallthroughs must only have one
4671 // predecessor.
4672 auto HasOnePredAndOneSucc = [](BasicBlock *BB, BasicBlock *P, BasicBlock *S) {
4673 return BB->getSinglePredecessor() == P && BB->getSingleSuccessor() == S;
4674 };
4675 if (!HasOnePredAndOneSucc(PFB, PBI->getParent(), QBI->getParent()) ||
4676 !HasOnePredAndOneSucc(QFB, QBI->getParent(), PostBB))
4677 return false;
4678 if ((PTB && !HasOnePredAndOneSucc(PTB, PBI->getParent(), QBI->getParent())) ||
4679 (QTB && !HasOnePredAndOneSucc(QTB, QBI->getParent(), PostBB)))
4680 return false;
4681 if (!QBI->getParent()->hasNUses(2))
4682 return false;
4683
4684 // OK, this is a sequence of two diamonds or triangles.
4685 // Check if there are stores in PTB or PFB that are repeated in QTB or QFB.
4686 SmallPtrSet<Value *, 4> PStoreAddresses, QStoreAddresses;
4687 for (auto *BB : {PTB, PFB}) {
4688 if (!BB)
4689 continue;
4690 for (auto &I : *BB)
4692 PStoreAddresses.insert(SI->getPointerOperand());
4693 }
4694 for (auto *BB : {QTB, QFB}) {
4695 if (!BB)
4696 continue;
4697 for (auto &I : *BB)
4699 QStoreAddresses.insert(SI->getPointerOperand());
4700 }
4701
4702 set_intersect(PStoreAddresses, QStoreAddresses);
4703 // set_intersect mutates PStoreAddresses in place. Rename it here to make it
4704 // clear what it contains.
4705 auto &CommonAddresses = PStoreAddresses;
4706
4707 bool Changed = false;
4708 for (auto *Address : CommonAddresses)
4709 Changed |=
4710 mergeConditionalStoreToAddress(PTB, PFB, QTB, QFB, PostBB, Address,
4711 InvertPCond, InvertQCond, DTU, DL, TTI);
4712 return Changed;
4713}
4714
4715/// If the previous block ended with a widenable branch, determine if reusing
4716/// the target block is profitable and legal. This will have the effect of
4717/// "widening" PBI, but doesn't require us to reason about hosting safety.
4719 DomTreeUpdater *DTU) {
4720 // TODO: This can be generalized in two important ways:
4721 // 1) We can allow phi nodes in IfFalseBB and simply reuse all the input
4722 // values from the PBI edge.
4723 // 2) We can sink side effecting instructions into BI's fallthrough
4724 // successor provided they doesn't contribute to computation of
4725 // BI's condition.
4726 BasicBlock *IfTrueBB = PBI->getSuccessor(0);
4727 BasicBlock *IfFalseBB = PBI->getSuccessor(1);
4728 if (!isWidenableBranch(PBI) || IfTrueBB != BI->getParent() ||
4729 !BI->getParent()->getSinglePredecessor())
4730 return false;
4731 if (!IfFalseBB->phis().empty())
4732 return false; // TODO
4733 // This helps avoid infinite loop with SimplifyCondBranchToCondBranch which
4734 // may undo the transform done here.
4735 // TODO: There might be a more fine-grained solution to this.
4736 if (!llvm::succ_empty(IfFalseBB))
4737 return false;
4738 // Use lambda to lazily compute expensive condition after cheap ones.
4739 auto NoSideEffects = [](BasicBlock &BB) {
4740 return llvm::none_of(BB, [](const Instruction &I) {
4741 return I.mayWriteToMemory() || I.mayHaveSideEffects();
4742 });
4743 };
4744 if (BI->getSuccessor(1) != IfFalseBB && // no inf looping
4745 BI->getSuccessor(1)->getTerminatingDeoptimizeCall() && // profitability
4746 NoSideEffects(*BI->getParent())) {
4747 auto *OldSuccessor = BI->getSuccessor(1);
4748 OldSuccessor->removePredecessor(BI->getParent());
4749 BI->setSuccessor(1, IfFalseBB);
4750 if (DTU)
4751 DTU->applyUpdates(
4752 {{DominatorTree::Insert, BI->getParent(), IfFalseBB},
4753 {DominatorTree::Delete, BI->getParent(), OldSuccessor}});
4754 return true;
4755 }
4756 if (BI->getSuccessor(0) != IfFalseBB && // no inf looping
4757 BI->getSuccessor(0)->getTerminatingDeoptimizeCall() && // profitability
4758 NoSideEffects(*BI->getParent())) {
4759 auto *OldSuccessor = BI->getSuccessor(0);
4760 OldSuccessor->removePredecessor(BI->getParent());
4761 BI->setSuccessor(0, IfFalseBB);
4762 if (DTU)
4763 DTU->applyUpdates(
4764 {{DominatorTree::Insert, BI->getParent(), IfFalseBB},
4765 {DominatorTree::Delete, BI->getParent(), OldSuccessor}});
4766 return true;
4767 }
4768 return false;
4769}
4770
4771/// If we have a conditional branch as a predecessor of another block,
4772/// this function tries to simplify it. We know
4773/// that PBI and BI are both conditional branches, and BI is in one of the
4774/// successor blocks of PBI - PBI branches to BI.
4776 DomTreeUpdater *DTU,
4777 const DataLayout &DL,
4778 const TargetTransformInfo &TTI) {
4779 BasicBlock *BB = BI->getParent();
4780
4781 // If this block ends with a branch instruction, and if there is a
4782 // predecessor that ends on a branch of the same condition, make
4783 // this conditional branch redundant.
4784 if (PBI->getCondition() == BI->getCondition() &&
4785 PBI->getSuccessor(0) != PBI->getSuccessor(1)) {
4786 // Okay, the outcome of this conditional branch is statically
4787 // knowable. If this block had a single pred, handle specially, otherwise
4788 // foldCondBranchOnValueKnownInPredecessor() will handle it.
4789 if (BB->getSinglePredecessor()) {
4790 // Turn this into a branch on constant.
4791 bool CondIsTrue = PBI->getSuccessor(0) == BB;
4792 BI->setCondition(
4793 ConstantInt::get(Type::getInt1Ty(BB->getContext()), CondIsTrue));
4794 return true; // Nuke the branch on constant.
4795 }
4796 }
4797
4798 // If the previous block ended with a widenable branch, determine if reusing
4799 // the target block is profitable and legal. This will have the effect of
4800 // "widening" PBI, but doesn't require us to reason about hosting safety.
4801 if (tryWidenCondBranchToCondBranch(PBI, BI, DTU))
4802 return true;
4803
4804 // If both branches are conditional and both contain stores to the same
4805 // address, remove the stores from the conditionals and create a conditional
4806 // merged store at the end.
4807 if (MergeCondStores && mergeConditionalStores(PBI, BI, DTU, DL, TTI))
4808 return true;
4809
4810 // If this is a conditional branch in an empty block, and if any
4811 // predecessors are a conditional branch to one of our destinations,
4812 // fold the conditions into logical ops and one cond br.
4813
4814 // Ignore dbg intrinsics.
4815 if (&*BB->begin() != BI)
4816 return false;
4817
4818 int PBIOp, BIOp;
4819 if (PBI->getSuccessor(0) == BI->getSuccessor(0)) {
4820 PBIOp = 0;
4821 BIOp = 0;
4822 } else if (PBI->getSuccessor(0) == BI->getSuccessor(1)) {
4823 PBIOp = 0;
4824 BIOp = 1;
4825 } else if (PBI->getSuccessor(1) == BI->getSuccessor(0)) {
4826 PBIOp = 1;
4827 BIOp = 0;
4828 } else if (PBI->getSuccessor(1) == BI->getSuccessor(1)) {
4829 PBIOp = 1;
4830 BIOp = 1;
4831 } else {
4832 return false;
4833 }
4834
4835 // Check to make sure that the other destination of this branch
4836 // isn't BB itself. If so, this is an infinite loop that will
4837 // keep getting unwound.
4838 if (PBI->getSuccessor(PBIOp) == BB)
4839 return false;
4840
4841 // If predecessor's branch probability to BB is too low don't merge branches.
4842 SmallVector<uint32_t, 2> PredWeights;
4843 if (!PBI->getMetadata(LLVMContext::MD_unpredictable) &&
4844 extractBranchWeights(*PBI, PredWeights) &&
4845 (static_cast<uint64_t>(PredWeights[0]) + PredWeights[1]) != 0) {
4846
4848 PredWeights[PBIOp],
4849 static_cast<uint64_t>(PredWeights[0]) + PredWeights[1]);
4850
4851 BranchProbability Likely = TTI.getPredictableBranchThreshold();
4852 if (CommonDestProb >= Likely)
4853 return false;
4854 }
4855
4856 // Do not perform this transformation if it would require
4857 // insertion of a large number of select instructions. For targets
4858 // without predication/cmovs, this is a big pessimization.
4859
4860 BasicBlock *CommonDest = PBI->getSuccessor(PBIOp);
4861 BasicBlock *RemovedDest = PBI->getSuccessor(PBIOp ^ 1);
4862 unsigned NumPhis = 0;
4863 for (BasicBlock::iterator II = CommonDest->begin(); isa<PHINode>(II);
4864 ++II, ++NumPhis) {
4865 if (NumPhis > 2) // Disable this xform.
4866 return false;
4867 }
4868
4869 // Finally, if everything is ok, fold the branches to logical ops.
4870 BasicBlock *OtherDest = BI->getSuccessor(BIOp ^ 1);
4871
4872 LLVM_DEBUG(dbgs() << "FOLDING BRs:" << *PBI->getParent()
4873 << "AND: " << *BI->getParent());
4874
4876
4877 // If OtherDest *is* BB, then BB is a basic block with a single conditional
4878 // branch in it, where one edge (OtherDest) goes back to itself but the other
4879 // exits. We don't *know* that the program avoids the infinite loop
4880 // (even though that seems likely). If we do this xform naively, we'll end up
4881 // recursively unpeeling the loop. Since we know that (after the xform is
4882 // done) that the block *is* infinite if reached, we just make it an obviously
4883 // infinite loop with no cond branch.
4884 if (OtherDest == BB) {
4885 // Insert it at the end of the function, because it's either code,
4886 // or it won't matter if it's hot. :)
4887 BasicBlock *InfLoopBlock =
4888 BasicBlock::Create(BB->getContext(), "infloop", BB->getParent());
4889 UncondBrInst::Create(InfLoopBlock, InfLoopBlock);
4890 if (DTU)
4891 Updates.push_back({DominatorTree::Insert, InfLoopBlock, InfLoopBlock});
4892 OtherDest = InfLoopBlock;
4893 }
4894
4895 LLVM_DEBUG(dbgs() << *PBI->getParent()->getParent());
4896
4897 // BI may have other predecessors. Because of this, we leave
4898 // it alone, but modify PBI.
4899
4900 // Make sure we get to CommonDest on True&True directions.
4901 Value *PBICond = PBI->getCondition();
4902 IRBuilder<NoFolder> Builder(PBI);
4903 if (PBIOp)
4904 PBICond = Builder.CreateNot(PBICond, PBICond->getName() + ".not");
4905
4906 Value *BICond = BI->getCondition();
4907 if (BIOp)
4908 BICond = Builder.CreateNot(BICond, BICond->getName() + ".not");
4909
4910 // Merge the conditions.
4911 Value *Cond =
4912 createLogicalOp(Builder, Instruction::Or, PBICond, BICond, "brmerge");
4913
4914 // Modify PBI to branch on the new condition to the new dests.
4915 PBI->setCondition(Cond);
4916 PBI->setSuccessor(0, CommonDest);
4917 PBI->setSuccessor(1, OtherDest);
4918
4919 if (DTU) {
4920 Updates.push_back({DominatorTree::Insert, PBI->getParent(), OtherDest});
4921 Updates.push_back({DominatorTree::Delete, PBI->getParent(), RemovedDest});
4922
4923 DTU->applyUpdates(Updates);
4924 }
4925
4926 // Update branch weight for PBI.
4927 uint64_t PredTrueWeight, PredFalseWeight, SuccTrueWeight, SuccFalseWeight;
4928 uint64_t PredCommon, PredOther, SuccCommon, SuccOther;
4929 bool HasWeights =
4930 extractPredSuccWeights(PBI, BI, PredTrueWeight, PredFalseWeight,
4931 SuccTrueWeight, SuccFalseWeight);
4932 if (HasWeights) {
4933 PredCommon = PBIOp ? PredFalseWeight : PredTrueWeight;
4934 PredOther = PBIOp ? PredTrueWeight : PredFalseWeight;
4935 SuccCommon = BIOp ? SuccFalseWeight : SuccTrueWeight;
4936 SuccOther = BIOp ? SuccTrueWeight : SuccFalseWeight;
4937 // The weight to CommonDest should be PredCommon * SuccTotal +
4938 // PredOther * SuccCommon.
4939 // The weight to OtherDest should be PredOther * SuccOther.
4940 uint64_t NewWeights[2] = {PredCommon * (SuccCommon + SuccOther) +
4941 PredOther * SuccCommon,
4942 PredOther * SuccOther};
4943
4944 setFittedBranchWeights(*PBI, NewWeights, /*IsExpected=*/false,
4945 /*ElideAllZero=*/true);
4946 // Cond may be a select instruction with the first operand set to "true", or
4947 // the second to "false" (see how createLogicalOp works for `and` and `or`)
4949 if (auto *SI = dyn_cast<SelectInst>(Cond)) {
4950 assert(isSelectInRoleOfConjunctionOrDisjunction(SI));
4951 // The select is predicated on PBICond
4952 assert(SI->getCondition() == PBICond);
4953 // The corresponding probabilities are what was referred to above as
4954 // PredCommon and PredOther.
4955 setFittedBranchWeights(*SI, {PredCommon, PredOther},
4956 /*IsExpected=*/false, /*ElideAllZero=*/true);
4957 }
4958 }
4959
4960 // OtherDest may have phi nodes. If so, add an entry from PBI's
4961 // block that are identical to the entries for BI's block.
4962 addPredecessorToBlock(OtherDest, PBI->getParent(), BB);
4963
4964 // We know that the CommonDest already had an edge from PBI to
4965 // it. If it has PHIs though, the PHIs may have different
4966 // entries for BB and PBI's BB. If so, insert a select to make
4967 // them agree.
4968 for (PHINode &PN : CommonDest->phis()) {
4969 Value *BIV = PN.getIncomingValueForBlock(BB);
4970 unsigned PBBIdx = PN.getBasicBlockIndex(PBI->getParent());
4971 Value *PBIV = PN.getIncomingValue(PBBIdx);
4972 if (BIV != PBIV) {
4973 // Insert a select in PBI to pick the right value.
4975 Builder.CreateSelect(PBICond, PBIV, BIV, PBIV->getName() + ".mux"));
4976 PN.setIncomingValue(PBBIdx, NV);
4977 // The select has the same condition as PBI, in the same BB. The
4978 // probabilities don't change.
4979 if (HasWeights) {
4980 uint64_t TrueWeight = PBIOp ? PredFalseWeight : PredTrueWeight;
4981 uint64_t FalseWeight = PBIOp ? PredTrueWeight : PredFalseWeight;
4982 setFittedBranchWeights(*NV, {TrueWeight, FalseWeight},
4983 /*IsExpected=*/false, /*ElideAllZero=*/true);
4984 }
4985 }
4986 }
4987
4988 LLVM_DEBUG(dbgs() << "INTO: " << *PBI->getParent());
4989 LLVM_DEBUG(dbgs() << *PBI->getParent()->getParent());
4990
4991 // This basic block is probably dead. We know it has at least
4992 // one fewer predecessor.
4993 return true;
4994}
4995
4996// Simplifies a terminator by replacing it with a branch to TrueBB if Cond is
4997// true or to FalseBB if Cond is false.
4998// Takes care of updating the successors and removing the old terminator.
4999// Also makes sure not to introduce new successors by assuming that edges to
5000// non-successor TrueBBs and FalseBBs aren't reachable.
5001bool SimplifyCFGOpt::simplifyTerminatorOnSelect(Instruction *OldTerm,
5002 Value *Cond, BasicBlock *TrueBB,
5003 BasicBlock *FalseBB,
5004 uint32_t TrueWeight,
5005 uint32_t FalseWeight) {
5006 auto *BB = OldTerm->getParent();
5007 // Remove any superfluous successor edges from the CFG.
5008 // First, figure out which successors to preserve.
5009 // If TrueBB and FalseBB are equal, only try to preserve one copy of that
5010 // successor.
5011 BasicBlock *KeepEdge1 = TrueBB;
5012 BasicBlock *KeepEdge2 = TrueBB != FalseBB ? FalseBB : nullptr;
5013
5014 SmallSetVector<BasicBlock *, 2> RemovedSuccessors;
5015
5016 // Then remove the rest.
5017 for (BasicBlock *Succ : successors(OldTerm)) {
5018 // Make sure only to keep exactly one copy of each edge.
5019 if (Succ == KeepEdge1)
5020 KeepEdge1 = nullptr;
5021 else if (Succ == KeepEdge2)
5022 KeepEdge2 = nullptr;
5023 else {
5024 Succ->removePredecessor(BB,
5025 /*KeepOneInputPHIs=*/true);
5026
5027 if (Succ != TrueBB && Succ != FalseBB)
5028 RemovedSuccessors.insert(Succ);
5029 }
5030 }
5031
5032 IRBuilder<> Builder(OldTerm);
5033 Builder.SetCurrentDebugLocation(OldTerm->getDebugLoc());
5034
5035 // Insert an appropriate new terminator.
5036 if (!KeepEdge1 && !KeepEdge2) {
5037 if (TrueBB == FalseBB) {
5038 // We were only looking for one successor, and it was present.
5039 // Create an unconditional branch to it.
5040 Builder.CreateBr(TrueBB);
5041 } else {
5042 // We found both of the successors we were looking for.
5043 // Create a conditional branch sharing the condition of the select.
5044 CondBrInst *NewBI = Builder.CreateCondBr(Cond, TrueBB, FalseBB);
5045 setBranchWeights(*NewBI, {TrueWeight, FalseWeight},
5046 /*IsExpected=*/false, /*ElideAllZero=*/true);
5047 }
5048 } else if (KeepEdge1 && (KeepEdge2 || TrueBB == FalseBB)) {
5049 // Neither of the selected blocks were successors, so this
5050 // terminator must be unreachable.
5051 new UnreachableInst(OldTerm->getContext(), OldTerm->getIterator());
5052 } else {
5053 // One of the selected values was a successor, but the other wasn't.
5054 // Insert an unconditional branch to the one that was found;
5055 // the edge to the one that wasn't must be unreachable.
5056 if (!KeepEdge1) {
5057 // Only TrueBB was found.
5058 Builder.CreateBr(TrueBB);
5059 } else {
5060 // Only FalseBB was found.
5061 Builder.CreateBr(FalseBB);
5062 }
5063 }
5064
5066
5067 if (DTU) {
5068 SmallVector<DominatorTree::UpdateType, 2> Updates;
5069 Updates.reserve(RemovedSuccessors.size());
5070 for (auto *RemovedSuccessor : RemovedSuccessors)
5071 Updates.push_back({DominatorTree::Delete, BB, RemovedSuccessor});
5072 DTU->applyUpdates(Updates);
5073 }
5074
5075 return true;
5076}
5077
5078// Folds switch(select(icmp eq X, C, K, X)) into switch(X), retargeting
5079// (or adding) the case for C to wherever K currently dispatches to:
5080// %cmp = icmp eq T %x, C
5081// %key = select i1 %cmp, T K, T %x
5082// switch T %key, label %default [ T K, label %case_k ... ]
5083// becomes
5084// switch T %x, label %default [ T C, label %case_k
5085// T K, label %case_k ... ]
5086bool SimplifyCFGOpt::simplifySwitchOnSelectRemap(SwitchInst *SI,
5087 SelectInst *Select, Value *X,
5088 ConstantInt *C, bool Negate) {
5089 Value *TrueVal = Select->getTrueValue();
5090 Value *FalseVal = Select->getFalseValue();
5091 if (Negate)
5092 std::swap(TrueVal, FalseVal);
5093 if (FalseVal != X)
5094 return false;
5095 auto *K = dyn_cast<ConstantInt>(TrueVal);
5096 if (!K)
5097 return false;
5098
5099 BasicBlock *DestFork = SI->findCaseValue(K)->getCaseSuccessor();
5100 auto CaseC = SI->findCaseValue(C);
5101 bool IsDefault = CaseC == SI->case_default();
5102 // Save before setSuccessor()/addCase() change it.
5103 BasicBlock *OldDest = CaseC->getCaseSuccessor();
5104 BasicBlock *BB = SI->getParent();
5105
5106 if (OldDest != DestFork) {
5107 // Case list is changing so we should drop stale profile weights.
5108 SI->setMetadata(LLVMContext::MD_prof, nullptr);
5109 if (!IsDefault)
5110 OldDest->removePredecessor(BB);
5111 if (IsDefault)
5112 SI->addCase(C, DestFork);
5113 else
5114 CaseC->setSuccessor(DestFork);
5115 // Not a new edge (BB->DestFork exists via K), just adding the PHI
5116 // entry.
5117 addPredecessorToBlock(DestFork, BB, BB);
5118
5119 if (!IsDefault) {
5120 // Edge to OldDest is gone only if nothing else still uses it.
5121 bool OldDestStillTargeted = any_of(
5122 successors(SI), [&](BasicBlock *Succ) { return Succ == OldDest; });
5123 if (DTU && !OldDestStillTargeted)
5124 DTU->applyUpdates({{DominatorTree::Delete, BB, OldDest}});
5125 }
5126 }
5127
5128 // X replaces the condition so compare/select are now dead.
5129 SI->setCondition(X);
5131 return true;
5132}
5133
5134// Replaces
5135// (switch (select cond, X, Y)) on constant X, Y
5136// with a branch - conditional if X and Y lead to distinct BBs,
5137// unconditional otherwise.
5138bool SimplifyCFGOpt::simplifySwitchOnSelect(SwitchInst *SI,
5139 SelectInst *Select) {
5140 CmpPredicate Pred;
5141 Value *X;
5142 ConstantInt *C;
5143 if (Select->hasOneUse() &&
5144 match(Select->getCondition(),
5145 m_ICmp(Pred, m_Value(X), m_ConstantInt(C))) &&
5146 ICmpInst::isEquality(Pred) &&
5147 simplifySwitchOnSelectRemap(SI, Select, X, C, Pred == ICmpInst::ICMP_NE))
5148 return true;
5149
5150 // Check for constant integer values in the select.
5151 ConstantInt *TrueVal = dyn_cast<ConstantInt>(Select->getTrueValue());
5152 ConstantInt *FalseVal = dyn_cast<ConstantInt>(Select->getFalseValue());
5153 if (!TrueVal || !FalseVal)
5154 return false;
5155
5156 // Find the relevant condition and destinations.
5157 Value *Condition = Select->getCondition();
5158 BasicBlock *TrueBB = SI->findCaseValue(TrueVal)->getCaseSuccessor();
5159 BasicBlock *FalseBB = SI->findCaseValue(FalseVal)->getCaseSuccessor();
5160
5161 // Get weight for TrueBB and FalseBB.
5162 uint32_t TrueWeight = 0, FalseWeight = 0;
5163 SmallVector<uint64_t, 8> Weights;
5164 bool HasWeights = hasBranchWeightMD(*SI);
5165 if (HasWeights) {
5166 getBranchWeights(SI, Weights);
5167 if (Weights.size() == 1 + SI->getNumCases()) {
5168 TrueWeight =
5169 (uint32_t)Weights[SI->findCaseValue(TrueVal)->getSuccessorIndex()];
5170 FalseWeight =
5171 (uint32_t)Weights[SI->findCaseValue(FalseVal)->getSuccessorIndex()];
5172 }
5173 }
5174
5175 // Perform the actual simplification.
5176 return simplifyTerminatorOnSelect(SI, Condition, TrueBB, FalseBB, TrueWeight,
5177 FalseWeight);
5178}
5179
5180// Replaces
5181// (indirectbr (select cond, blockaddress(@fn, BlockA),
5182// blockaddress(@fn, BlockB)))
5183// with
5184// (br cond, BlockA, BlockB).
5185bool SimplifyCFGOpt::simplifyIndirectBrOnSelect(IndirectBrInst *IBI,
5186 SelectInst *SI) {
5187 // Check that both operands of the select are block addresses.
5188 BlockAddress *TBA = dyn_cast<BlockAddress>(SI->getTrueValue());
5189 BlockAddress *FBA = dyn_cast<BlockAddress>(SI->getFalseValue());
5190 if (!TBA || !FBA)
5191 return false;
5192
5193 // Extract the actual blocks.
5194 BasicBlock *TrueBB = TBA->getBasicBlock();
5195 BasicBlock *FalseBB = FBA->getBasicBlock();
5196
5197 // The select's profile becomes the profile of the conditional branch that
5198 // replaces the indirect branch.
5199 SmallVector<uint32_t> SelectBranchWeights(2);
5201 extractBranchWeights(*SI, SelectBranchWeights);
5202 // Perform the actual simplification.
5203 return simplifyTerminatorOnSelect(IBI, SI->getCondition(), TrueBB, FalseBB,
5204 SelectBranchWeights[0],
5205 SelectBranchWeights[1]);
5206}
5207
5208/// This is called when we find an icmp instruction
5209/// (a seteq/setne with a constant) as the only instruction in a
5210/// block that ends with an uncond branch. We are looking for a very specific
5211/// pattern that occurs when "A == 1 || A == 2 || A == 3" gets simplified. In
5212/// this case, we merge the first two "or's of icmp" into a switch, but then the
5213/// default value goes to an uncond block with a seteq in it, we get something
5214/// like:
5215///
5216/// switch i8 %A, label %DEFAULT [ i8 1, label %end i8 2, label %end ]
5217/// DEFAULT:
5218/// %tmp = icmp eq i8 %A, 92
5219/// br label %end
5220/// end:
5221/// ... = phi i1 [ true, %entry ], [ %tmp, %DEFAULT ], [ true, %entry ]
5222///
5223/// We prefer to split the edge to 'end' so that there is a true/false entry to
5224/// the PHI, merging the third icmp into the switch.
5225bool SimplifyCFGOpt::tryToSimplifyUncondBranchWithICmpInIt(
5226 ICmpInst *ICI, IRBuilder<> &Builder) {
5227 // Select == nullptr means we assume that there is a hidden no-op select
5228 // instruction of `_ = select %icmp, true, false` after `%icmp = icmp ...`
5229 return tryToSimplifyUncondBranchWithICmpSelectInIt(ICI, nullptr, Builder);
5230}
5231
5232/// Similar to tryToSimplifyUncondBranchWithICmpInIt, but handle a more generic
5233/// case. This is called when we find an icmp instruction (a seteq/setne with a
5234/// constant) and its following select instruction as the only TWO instructions
5235/// in a block that ends with an uncond branch. We are looking for a very
5236/// specific pattern that occurs when "
5237/// if (A == 1) return C1;
5238/// if (A == 2) return C2;
5239/// if (A < 3) return C3;
5240/// return C4;
5241/// " gets simplified. In this case, we merge the first two "branches of icmp"
5242/// into a switch, but then the default value goes to an uncond block with a lt
5243/// icmp and select in it, as InstCombine can not simplify "A < 3" as "A == 2".
5244/// After SimplifyCFG and other subsequent optimizations (e.g., SCCP), we might
5245/// get something like:
5246///
5247/// case1:
5248/// switch i8 %A, label %DEFAULT [ i8 0, label %end i8 1, label %case2 ]
5249/// case2:
5250/// br label %end
5251/// DEFAULT:
5252/// %tmp = icmp eq i8 %A, 2
5253/// %val = select i1 %tmp, i8 C3, i8 C4
5254/// br label %end
5255/// end:
5256/// _ = phi i8 [ C1, %case1 ], [ C2, %case2 ], [ %val, %DEFAULT ]
5257///
5258/// We prefer to split the edge to 'end' so that there are TWO entries of V3/V4
5259/// to the PHI, merging the icmp & select into the switch, as follows:
5260///
5261/// case1:
5262/// switch i8 %A, label %DEFAULT [
5263/// i8 0, label %end
5264/// i8 1, label %case2
5265/// i8 2, label %case3
5266/// ]
5267/// case2:
5268/// br label %end
5269/// case3:
5270/// br label %end
5271/// DEFAULT:
5272/// br label %end
5273/// end:
5274/// _ = phi i8 [ C1, %case1 ], [ C2, %case2 ], [ C3, %case2 ], [ C4, %DEFAULT]
5275bool SimplifyCFGOpt::tryToSimplifyUncondBranchWithICmpSelectInIt(
5276 ICmpInst *ICI, SelectInst *Select, IRBuilder<> &Builder) {
5277 BasicBlock *BB = ICI->getParent();
5278
5279 // If the block has any PHIs in it or the icmp/select has multiple uses, it is
5280 // too complex.
5281 /// TODO: support multi-phis in succ BB of select's BB.
5282 if (isa<PHINode>(BB->begin()) || !ICI->hasOneUse() ||
5283 (Select && !Select->hasOneUse()))
5284 return false;
5285
5286 // The pattern we're looking for is where our only predecessor is a switch on
5287 // 'V' and this block is the default case for the switch. In this case we can
5288 // fold the compared value into the switch to simplify things.
5289 BasicBlock *Pred = BB->getSinglePredecessor();
5290 if (!Pred || !isa<SwitchInst>(Pred->getTerminator()))
5291 return false;
5292
5293 Value *IcmpCond;
5294 ConstantInt *NewCaseVal;
5295 CmpPredicate Predicate;
5296
5297 // Match icmp X, C
5298 if (!match(ICI,
5299 m_ICmp(Predicate, m_Value(IcmpCond), m_ConstantInt(NewCaseVal))))
5300 return false;
5301
5302 Value *SelectCond, *SelectTrueVal, *SelectFalseVal;
5304 if (!Select) {
5305 // If Select == nullptr, we can assume that there is a hidden no-op select
5306 // just after icmp
5307 SelectCond = ICI;
5308 SelectTrueVal = Builder.getTrue();
5309 SelectFalseVal = Builder.getFalse();
5310 User = ICI->user_back();
5311 } else {
5312 SelectCond = Select->getCondition();
5313 // Check if the select condition is the same as the icmp condition.
5314 if (SelectCond != ICI)
5315 return false;
5316 SelectTrueVal = Select->getTrueValue();
5317 SelectFalseVal = Select->getFalseValue();
5318 User = Select->user_back();
5319 }
5320
5321 SwitchInst *SI = cast<SwitchInst>(Pred->getTerminator());
5322 if (SI->getCondition() != IcmpCond)
5323 return false;
5324
5325 // If BB is reachable on a non-default case, then we simply know the value of
5326 // V in this block. Substitute it and constant fold the icmp instruction
5327 // away.
5328 if (SI->getDefaultDest() != BB) {
5329 ConstantInt *VVal = SI->findCaseDest(BB);
5330 assert(VVal && "Should have a unique destination value");
5331 ICI->setOperand(0, VVal);
5332
5333 if (Value *V = simplifyInstruction(ICI, {DL, ICI})) {
5334 ICI->replaceAllUsesWith(V);
5335 ICI->eraseFromParent();
5336 }
5337 // BB is now empty, so it is likely to simplify away.
5338 return requestResimplify();
5339 }
5340
5341 // Ok, the block is reachable from the default dest. If the constant we're
5342 // comparing exists in one of the other edges, then we can constant fold ICI
5343 // and zap it.
5344 if (SI->findCaseValue(NewCaseVal) != SI->case_default()) {
5345 Value *V;
5346 if (Predicate == ICmpInst::ICMP_EQ)
5348 else
5350
5351 ICI->replaceAllUsesWith(V);
5352 ICI->eraseFromParent();
5353 // BB is now empty, so it is likely to simplify away.
5354 return requestResimplify();
5355 }
5356
5357 // The use of the select has to be in the 'end' block, by the only PHI node in
5358 // the block.
5359 BasicBlock *SuccBlock = BB->getTerminator()->getSuccessor(0);
5360 PHINode *PHIUse = dyn_cast<PHINode>(User);
5361 if (PHIUse == nullptr || PHIUse != &SuccBlock->front() ||
5363 return false;
5364
5365 // If the icmp is a SETEQ, then the default dest gets SelectFalseVal, the new
5366 // edge gets SelectTrueVal in the PHI.
5367 Value *DefaultCst = SelectFalseVal;
5368 Value *NewCst = SelectTrueVal;
5369
5370 if (ICI->getPredicate() == ICmpInst::ICMP_NE)
5371 std::swap(DefaultCst, NewCst);
5372
5373 // Replace Select (which is used by the PHI for the default value) with
5374 // SelectFalseVal or SelectTrueVal depending on if ICI is EQ or NE.
5375 if (Select) {
5376 Select->replaceAllUsesWith(DefaultCst);
5377 Select->eraseFromParent();
5378 } else {
5379 ICI->replaceAllUsesWith(DefaultCst);
5380 }
5381 ICI->eraseFromParent();
5382
5383 SmallVector<DominatorTree::UpdateType, 2> Updates;
5384
5385 // Okay, the switch goes to this block on a default value. Add an edge from
5386 // the switch to the merge point on the compared value.
5387 BasicBlock *NewBB =
5388 BasicBlock::Create(BB->getContext(), "switch.edge", BB->getParent(), BB);
5389 {
5390 SwitchInstProfUpdateWrapper SIW(*SI);
5391 auto W0 = SIW.getSuccessorWeight(0);
5393 if (W0) {
5394 NewW = ((uint64_t(*W0) + 1) >> 1);
5395 SIW.setSuccessorWeight(0, *NewW);
5396 }
5397 SIW.addCase(NewCaseVal, NewBB, NewW);
5398 if (DTU)
5399 Updates.push_back({DominatorTree::Insert, Pred, NewBB});
5400 }
5401
5402 // NewBB branches to the phi block, add the uncond branch and the phi entry.
5403 Builder.SetInsertPoint(NewBB);
5404 Builder.SetCurrentDebugLocation(SI->getDebugLoc());
5405 Builder.CreateBr(SuccBlock);
5406 PHIUse->addIncoming(NewCst, NewBB);
5407 if (DTU) {
5408 Updates.push_back({DominatorTree::Insert, NewBB, SuccBlock});
5409 DTU->applyUpdates(Updates);
5410 }
5411 return true;
5412}
5413
5414/// Check to see if it is branching on an or/and chain of icmp instructions, and
5415/// fold it into a switch instruction if so.
5416bool SimplifyCFGOpt::simplifyBranchOnICmpChain(CondBrInst *BI,
5417 IRBuilder<> &Builder,
5418 const DataLayout &DL) {
5420 if (!Cond)
5421 return false;
5422
5423 // Change br (X == 0 | X == 1), T, F into a switch instruction.
5424 // If this is a bunch of seteq's or'd together, or if it's a bunch of
5425 // 'setne's and'ed together, collect them.
5426
5427 // Try to gather values from a chain of and/or to be turned into a switch
5428 ConstantComparesGatherer ConstantCompare(Cond, DL);
5429 // Unpack the result
5430 SmallVectorImpl<ConstantInt *> &Values = ConstantCompare.Vals;
5431 Value *CompVal = ConstantCompare.CompValue;
5432 unsigned UsedICmps = ConstantCompare.UsedICmps;
5433 Value *ExtraCase = ConstantCompare.Extra;
5434 bool TrueWhenEqual = ConstantCompare.IsEq;
5435
5436 // If we didn't have a multiply compared value, fail.
5437 if (!CompVal)
5438 return false;
5439
5440 // Avoid turning single icmps into a switch.
5441 if (UsedICmps <= 1)
5442 return false;
5443
5444 // There might be duplicate constants in the list, which the switch
5445 // instruction can't handle, remove them now.
5447 Values.erase(llvm::unique(Values), Values.end());
5448
5449 // If Extra was used, we require at least two switch values to do the
5450 // transformation. A switch with one value is just a conditional branch.
5451 if (ExtraCase && Values.size() < 2)
5452 return false;
5453
5454 SmallVector<uint32_t> BranchWeights;
5455 const bool HasProfile = !ProfcheckDisableMetadataFixes &&
5456 extractBranchWeights(*BI, BranchWeights);
5457
5458 // Figure out which block is which destination.
5459 BasicBlock *DefaultBB = BI->getSuccessor(1);
5460 BasicBlock *EdgeBB = BI->getSuccessor(0);
5461 if (!TrueWhenEqual) {
5462 std::swap(DefaultBB, EdgeBB);
5463 if (HasProfile)
5464 std::swap(BranchWeights[0], BranchWeights[1]);
5465 }
5466
5467 BasicBlock *BB = BI->getParent();
5468
5469 LLVM_DEBUG(dbgs() << "Converting 'icmp' chain with " << Values.size()
5470 << " cases into SWITCH. BB is:\n"
5471 << *BB);
5472
5473 SmallVector<DominatorTree::UpdateType, 2> Updates;
5474
5475 // If there are any extra values that couldn't be folded into the switch
5476 // then we evaluate them with an explicit branch first. Split the block
5477 // right before the condbr to handle it.
5478 if (ExtraCase) {
5479 BasicBlock *NewBB = SplitBlock(BB, BI, DTU, /*LI=*/nullptr,
5480 /*MSSAU=*/nullptr, "switch.early.test");
5481
5482 // Remove the uncond branch added to the old block.
5483 Instruction *OldTI = BB->getTerminator();
5484 Builder.SetInsertPoint(OldTI);
5485
5486 // There can be an unintended UB if extra values are Poison. Before the
5487 // transformation, extra values may not be evaluated according to the
5488 // condition, and it will not raise UB. But after transformation, we are
5489 // evaluating extra values before checking the condition, and it will raise
5490 // UB. It can be solved by adding freeze instruction to extra values.
5491 AssumptionCache *AC = Options.AC;
5492
5493 if (!isGuaranteedNotToBeUndefOrPoison(ExtraCase, AC, BI, nullptr))
5494 ExtraCase = Builder.CreateFreeze(ExtraCase);
5495
5496 // We don't have any info about this condition.
5497 auto *Br = TrueWhenEqual ? Builder.CreateCondBr(ExtraCase, EdgeBB, NewBB)
5498 : Builder.CreateCondBr(ExtraCase, NewBB, EdgeBB);
5500
5501 OldTI->eraseFromParent();
5502
5503 if (DTU)
5504 Updates.push_back({DominatorTree::Insert, BB, EdgeBB});
5505
5506 // If there are PHI nodes in EdgeBB, then we need to add a new entry to them
5507 // for the edge we just added.
5508 addPredecessorToBlock(EdgeBB, BB, NewBB);
5509
5510 LLVM_DEBUG(dbgs() << " ** 'icmp' chain unhandled condition: " << *ExtraCase
5511 << "\nEXTRABB = " << *BB);
5512 BB = NewBB;
5513 }
5514
5515 Builder.SetInsertPoint(BI);
5516 // Convert pointer to int before we switch.
5517 if (CompVal->getType()->isPointerTy()) {
5518 assert(!DL.hasUnstableRepresentation(CompVal->getType()) &&
5519 "Should not end up here with unstable pointers");
5520 CompVal = Builder.CreatePtrToInt(
5521 CompVal, DL.getIntPtrType(CompVal->getType()), "magicptr");
5522 }
5523
5524 // Check if we can represent the values as a contiguous range. If so, we use a
5525 // range check + conditional branch instead of a switch.
5526 if (Values.front()->getValue() - Values.back()->getValue() ==
5527 Values.size() - 1) {
5528 ConstantRange RangeToCheck = ConstantRange::getNonEmpty(
5529 Values.back()->getValue(), Values.front()->getValue() + 1);
5530 APInt Offset, RHS;
5531 ICmpInst::Predicate Pred;
5532 RangeToCheck.getEquivalentICmp(Pred, RHS, Offset);
5533 Value *X = CompVal;
5534 if (!Offset.isZero())
5535 X = Builder.CreateAdd(X, ConstantInt::get(CompVal->getType(), Offset));
5536 Value *Cond =
5537 Builder.CreateICmp(Pred, X, ConstantInt::get(CompVal->getType(), RHS));
5538 CondBrInst *NewBI = Builder.CreateCondBr(Cond, EdgeBB, DefaultBB);
5539 if (HasProfile)
5540 setBranchWeights(*NewBI, BranchWeights, /*IsExpected=*/false);
5541 if (MDNode *Unpredictable = BI->getMetadata(LLVMContext::MD_unpredictable))
5542 NewBI->setMetadata(LLVMContext::MD_unpredictable, Unpredictable);
5543 // We don't need to update PHI nodes since we don't add any new edges.
5544 } else {
5545 // Create the new switch instruction now.
5546 SwitchInst *New = Builder.CreateSwitch(CompVal, DefaultBB, Values.size());
5547 if (MDNode *Unpredictable = BI->getMetadata(LLVMContext::MD_unpredictable))
5548 New->setMetadata(LLVMContext::MD_unpredictable, Unpredictable);
5549 if (HasProfile) {
5550 // We know the weight of the default case. We don't know the weight of the
5551 // other cases, but rather than completely lose profiling info, we split
5552 // the remaining probability equally over them.
5553 SmallVector<uint32_t> NewWeights(Values.size() + 1);
5554 NewWeights[0] = BranchWeights[1]; // this is the default, and we swapped
5555 // if TrueWhenEqual.
5556 for (auto &V : drop_begin(NewWeights))
5557 V = BranchWeights[0] / Values.size();
5558 setBranchWeights(*New, NewWeights, /*IsExpected=*/false);
5559 }
5560
5561 // Add all of the 'cases' to the switch instruction.
5562 for (ConstantInt *Val : Values)
5563 New->addCase(Val, EdgeBB);
5564
5565 // We added edges from PI to the EdgeBB. As such, if there were any
5566 // PHI nodes in EdgeBB, they need entries to be added corresponding to
5567 // the number of edges added.
5568 for (BasicBlock::iterator BBI = EdgeBB->begin(); isa<PHINode>(BBI); ++BBI) {
5569 PHINode *PN = cast<PHINode>(BBI);
5570 Value *InVal = PN->getIncomingValueForBlock(BB);
5571 for (unsigned i = 0, e = Values.size() - 1; i != e; ++i)
5572 PN->addIncoming(InVal, BB);
5573 }
5574 }
5575
5576 // Erase the old branch instruction.
5578 if (DTU)
5579 DTU->applyUpdates(Updates);
5580
5581 LLVM_DEBUG(dbgs() << " ** 'icmp' chain result is:\n" << *BB << '\n');
5582 return true;
5583}
5584
5585bool SimplifyCFGOpt::simplifyResume(ResumeInst *RI, IRBuilder<> &Builder) {
5586 if (isa<PHINode>(RI->getValue()))
5587 return simplifyCommonResume(RI);
5588 else if (isa<LandingPadInst>(RI->getParent()->getFirstNonPHIIt()) &&
5589 RI->getValue() == &*RI->getParent()->getFirstNonPHIIt())
5590 // The resume must unwind the exception that caused control to branch here.
5591 return simplifySingleResume(RI);
5592
5593 return false;
5594}
5595
5596// Check if cleanup block is empty
5598 for (Instruction &I : R) {
5599 auto *II = dyn_cast<IntrinsicInst>(&I);
5600 if (!II)
5601 return false;
5602
5603 Intrinsic::ID IntrinsicID = II->getIntrinsicID();
5604 switch (IntrinsicID) {
5605 case Intrinsic::dbg_declare:
5606 case Intrinsic::dbg_value:
5607 case Intrinsic::dbg_label:
5608 case Intrinsic::lifetime_end:
5609 break;
5610 default:
5611 return false;
5612 }
5613 }
5614 return true;
5615}
5616
5617// Simplify resume that is shared by several landing pads (phi of landing pad).
5618bool SimplifyCFGOpt::simplifyCommonResume(ResumeInst *RI) {
5619 BasicBlock *BB = RI->getParent();
5620
5621 // Check that there are no other instructions except for debug and lifetime
5622 // intrinsics between the phi's and resume instruction.
5623 if (!isCleanupBlockEmpty(make_range(RI->getParent()->getFirstNonPHIIt(),
5624 BB->getTerminator()->getIterator())))
5625 return false;
5626
5627 SmallSetVector<BasicBlock *, 4> TrivialUnwindBlocks;
5628 auto *PhiLPInst = cast<PHINode>(RI->getValue());
5629
5630 // Check incoming blocks to see if any of them are trivial.
5631 for (unsigned Idx = 0, End = PhiLPInst->getNumIncomingValues(); Idx != End;
5632 Idx++) {
5633 auto *IncomingBB = PhiLPInst->getIncomingBlock(Idx);
5634 auto *IncomingValue = PhiLPInst->getIncomingValue(Idx);
5635
5636 // If the block has other successors, we can not delete it because
5637 // it has other dependents.
5638 if (IncomingBB->getUniqueSuccessor() != BB)
5639 continue;
5640
5641 auto *LandingPad = dyn_cast<LandingPadInst>(IncomingBB->getFirstNonPHIIt());
5642 // Not the landing pad that caused the control to branch here.
5643 if (IncomingValue != LandingPad)
5644 continue;
5645
5647 make_range(LandingPad->getNextNode(), IncomingBB->getTerminator())))
5648 TrivialUnwindBlocks.insert(IncomingBB);
5649 }
5650
5651 // If no trivial unwind blocks, don't do any simplifications.
5652 if (TrivialUnwindBlocks.empty())
5653 return false;
5654
5655 // Turn all invokes that unwind here into calls.
5656 for (auto *TrivialBB : TrivialUnwindBlocks) {
5657 // Blocks that will be simplified should be removed from the phi node.
5658 // Note there could be multiple edges to the resume block, and we need
5659 // to remove them all.
5660 while (PhiLPInst->getBasicBlockIndex(TrivialBB) != -1)
5661 BB->removePredecessor(TrivialBB, true);
5662
5663 for (BasicBlock *Pred :
5665 removeUnwindEdge(Pred, DTU);
5666 ++NumInvokes;
5667 }
5668
5669 // In each SimplifyCFG run, only the current processed block can be erased.
5670 // Otherwise, it will break the iteration of SimplifyCFG pass. So instead
5671 // of erasing TrivialBB, we only remove the branch to the common resume
5672 // block so that we can later erase the resume block since it has no
5673 // predecessors.
5674 TrivialBB->getTerminator()->eraseFromParent();
5675 new UnreachableInst(RI->getContext(), TrivialBB);
5676 if (DTU)
5677 DTU->applyUpdates({{DominatorTree::Delete, TrivialBB, BB}});
5678 }
5679
5680 // Delete the resume block if all its predecessors have been removed.
5681 if (pred_empty(BB))
5682 DeleteDeadBlock(BB, DTU);
5683
5684 return !TrivialUnwindBlocks.empty();
5685}
5686
5687// Simplify resume that is only used by a single (non-phi) landing pad.
5688bool SimplifyCFGOpt::simplifySingleResume(ResumeInst *RI) {
5689 BasicBlock *BB = RI->getParent();
5690 auto *LPInst = cast<LandingPadInst>(BB->getFirstNonPHIIt());
5691 assert(RI->getValue() == LPInst &&
5692 "Resume must unwind the exception that caused control to here");
5693
5694 // Check that there are no other instructions except for debug intrinsics.
5696 make_range<Instruction *>(LPInst->getNextNode(), RI)))
5697 return false;
5698
5699 // Turn all invokes that unwind here into calls and delete the basic block.
5700 for (BasicBlock *Pred : llvm::make_early_inc_range(predecessors(BB))) {
5701 removeUnwindEdge(Pred, DTU);
5702 ++NumInvokes;
5703 }
5704
5705 // The landingpad is now unreachable. Zap it.
5706 DeleteDeadBlock(BB, DTU);
5707 return true;
5708}
5709
5711 // If this is a trivial cleanup pad that executes no instructions, it can be
5712 // eliminated. If the cleanup pad continues to the caller, any predecessor
5713 // that is an EH pad will be updated to continue to the caller and any
5714 // predecessor that terminates with an invoke instruction will have its invoke
5715 // instruction converted to a call instruction. If the cleanup pad being
5716 // simplified does not continue to the caller, each predecessor will be
5717 // updated to continue to the unwind destination of the cleanup pad being
5718 // simplified.
5719 BasicBlock *BB = RI->getParent();
5720 CleanupPadInst *CPInst = RI->getCleanupPad();
5721 if (CPInst->getParent() != BB)
5722 // This isn't an empty cleanup.
5723 return false;
5724
5725 // We cannot kill the pad if it has multiple uses. This typically arises
5726 // from unreachable basic blocks.
5727 if (!CPInst->hasOneUse())
5728 return false;
5729
5730 // Check that there are no other instructions except for benign intrinsics.
5732 make_range<Instruction *>(CPInst->getNextNode(), RI)))
5733 return false;
5734
5735 // If the cleanup return we are simplifying unwinds to the caller, this will
5736 // set UnwindDest to nullptr.
5737 BasicBlock *UnwindDest = RI->getUnwindDest();
5738
5739 // We're about to remove BB from the control flow. Before we do, sink any
5740 // PHINodes into the unwind destination. Doing this before changing the
5741 // control flow avoids some potentially slow checks, since we can currently
5742 // be certain that UnwindDest and BB have no common predecessors (since they
5743 // are both EH pads).
5744 if (UnwindDest) {
5745 // First, go through the PHI nodes in UnwindDest and update any nodes that
5746 // reference the block we are removing
5747 for (PHINode &DestPN : UnwindDest->phis()) {
5748 int Idx = DestPN.getBasicBlockIndex(BB);
5749 // Since BB unwinds to UnwindDest, it has to be in the PHI node.
5750 assert(Idx != -1);
5751 // This PHI node has an incoming value that corresponds to a control
5752 // path through the cleanup pad we are removing. If the incoming
5753 // value is in the cleanup pad, it must be a PHINode (because we
5754 // verified above that the block is otherwise empty). Otherwise, the
5755 // value is either a constant or a value that dominates the cleanup
5756 // pad being removed.
5757 //
5758 // Because BB and UnwindDest are both EH pads, all of their
5759 // predecessors must unwind to these blocks, and since no instruction
5760 // can have multiple unwind destinations, there will be no overlap in
5761 // incoming blocks between SrcPN and DestPN.
5762 Value *SrcVal = DestPN.getIncomingValue(Idx);
5763 PHINode *SrcPN = dyn_cast<PHINode>(SrcVal);
5764
5765 bool NeedPHITranslation = SrcPN && SrcPN->getParent() == BB;
5766 for (auto *Pred : predecessors(BB)) {
5767 Value *Incoming =
5768 NeedPHITranslation ? SrcPN->getIncomingValueForBlock(Pred) : SrcVal;
5769 DestPN.addIncoming(Incoming, Pred);
5770 }
5771 }
5772
5773 // Sink any remaining PHI nodes directly into UnwindDest.
5774 BasicBlock::iterator InsertPt = UnwindDest->getFirstNonPHIIt();
5775 for (PHINode &PN : make_early_inc_range(BB->phis())) {
5776 if (PN.use_empty() || !PN.isUsedOutsideOfBlock(BB))
5777 // If the PHI node has no uses or all of its uses are in this basic
5778 // block (meaning they are debug or lifetime intrinsics), just leave
5779 // it. It will be erased when we erase BB below.
5780 continue;
5781
5782 // Otherwise, sink this PHI node into UnwindDest.
5783 // Any predecessors to UnwindDest which are not already represented
5784 // must be back edges which inherit the value from the path through
5785 // BB. In this case, the PHI value must reference itself.
5786 for (auto *pred : predecessors(UnwindDest))
5787 if (pred != BB)
5788 PN.addIncoming(&PN, pred);
5789 PN.moveBefore(InsertPt);
5790 // Also, add a dummy incoming value for the original BB itself,
5791 // so that the PHI is well-formed until we drop said predecessor.
5792 PN.addIncoming(PoisonValue::get(PN.getType()), BB);
5793 }
5794 }
5795
5796 std::vector<DominatorTree::UpdateType> Updates;
5797
5798 // We use make_early_inc_range here because we will remove all predecessors.
5800 if (UnwindDest == nullptr) {
5801 if (DTU) {
5802 DTU->applyUpdates(Updates);
5803 Updates.clear();
5804 }
5805 removeUnwindEdge(PredBB, DTU);
5806 ++NumInvokes;
5807 } else {
5808 BB->removePredecessor(PredBB);
5809 Instruction *TI = PredBB->getTerminator();
5810 TI->replaceUsesOfWith(BB, UnwindDest);
5811 if (DTU) {
5812 Updates.push_back({DominatorTree::Insert, PredBB, UnwindDest});
5813 Updates.push_back({DominatorTree::Delete, PredBB, BB});
5814 }
5815 }
5816 }
5817
5818 if (DTU)
5819 DTU->applyUpdates(Updates);
5820
5821 DeleteDeadBlock(BB, DTU);
5822
5823 return true;
5824}
5825
5826// Try to merge two cleanuppads together.
5828 // Skip any cleanuprets which unwind to caller, there is nothing to merge
5829 // with.
5830 BasicBlock *UnwindDest = RI->getUnwindDest();
5831 if (!UnwindDest)
5832 return false;
5833
5834 // This cleanupret isn't the only predecessor of this cleanuppad, it wouldn't
5835 // be safe to merge without code duplication.
5836 if (UnwindDest->getSinglePredecessor() != RI->getParent())
5837 return false;
5838
5839 // Verify that our cleanuppad's unwind destination is another cleanuppad.
5840 auto *SuccessorCleanupPad = dyn_cast<CleanupPadInst>(&UnwindDest->front());
5841 if (!SuccessorCleanupPad)
5842 return false;
5843
5844 CleanupPadInst *PredecessorCleanupPad = RI->getCleanupPad();
5845 // Replace any uses of the successor cleanupad with the predecessor pad
5846 // The only cleanuppad uses should be this cleanupret, it's cleanupret and
5847 // funclet bundle operands.
5848 SuccessorCleanupPad->replaceAllUsesWith(PredecessorCleanupPad);
5849 // Remove the old cleanuppad.
5850 SuccessorCleanupPad->eraseFromParent();
5851 // Now, we simply replace the cleanupret with a branch to the unwind
5852 // destination.
5853 UncondBrInst::Create(UnwindDest, RI->getParent());
5854 RI->eraseFromParent();
5855
5856 return true;
5857}
5858
5859bool SimplifyCFGOpt::simplifyCleanupReturn(CleanupReturnInst *RI) {
5860 // It is possible to transiantly have an undef cleanuppad operand because we
5861 // have deleted some, but not all, dead blocks.
5862 // Eventually, this block will be deleted.
5863 if (isa<UndefValue>(RI->getOperand(0)))
5864 return false;
5865
5866 if (mergeCleanupPad(RI))
5867 return true;
5868
5869 if (removeEmptyCleanup(RI, DTU))
5870 return true;
5871
5872 return false;
5873}
5874
5875// WARNING: keep in sync with InstCombinerImpl::visitUnreachableInst()!
5876bool SimplifyCFGOpt::simplifyUnreachable(UnreachableInst *UI) {
5877 BasicBlock *BB = UI->getParent();
5878
5879 bool Changed = false;
5880
5881 // Ensure that any debug-info records that used to occur after the Unreachable
5882 // are moved to in front of it -- otherwise they'll "dangle" at the end of
5883 // the block.
5885
5886 // Debug-info records on the unreachable inst itself should be deleted, as
5887 // below we delete everything past the final executable instruction.
5888 UI->dropDbgRecords();
5889
5890 // If there are any instructions immediately before the unreachable that can
5891 // be removed, do so.
5892 while (UI->getIterator() != BB->begin()) {
5894 --BBI;
5895
5897 break; // Can not drop any more instructions. We're done here.
5898 // Otherwise, this instruction can be freely erased,
5899 // even if it is not side-effect free.
5900
5901 // Note that deleting EH's here is in fact okay, although it involves a bit
5902 // of subtle reasoning. If this inst is an EH, all the predecessors of this
5903 // block will be the unwind edges of Invoke/CatchSwitch/CleanupReturn,
5904 // and we can therefore guarantee this block will be erased.
5905
5906 // If we're deleting this, we're deleting any subsequent debug info, so
5907 // delete DbgRecords.
5908 BBI->dropDbgRecords();
5909
5910 // Delete this instruction (any uses are guaranteed to be dead)
5911 BBI->replaceAllUsesWith(PoisonValue::get(BBI->getType()));
5912 BBI->eraseFromParent();
5913 Changed = true;
5914 }
5915
5916 // If the unreachable instruction is the first in the block, take a gander
5917 // at all of the predecessors of this instruction, and simplify them.
5918 if (&BB->front() != UI)
5919 return Changed;
5920
5921 std::vector<DominatorTree::UpdateType> Updates;
5922
5923 SmallSetVector<BasicBlock *, 8> Preds(pred_begin(BB), pred_end(BB));
5924 for (BasicBlock *Predecessor : Preds) {
5925 Instruction *TI = Predecessor->getTerminator();
5926 IRBuilder<> Builder(TI);
5927 if (isa<UncondBrInst>(TI)) {
5928 new UnreachableInst(TI->getContext(), TI->getIterator());
5929 TI->eraseFromParent();
5930 Changed = true;
5931 if (DTU)
5932 Updates.push_back({DominatorTree::Delete, Predecessor, BB});
5933 } else if (auto *BI = dyn_cast<CondBrInst>(TI)) {
5934 // We could either have a proper unconditional branch,
5935 // or a degenerate conditional branch with matching destinations.
5936 if (BI->getSuccessor(0) == BI->getSuccessor(1)) {
5937 new UnreachableInst(TI->getContext(), TI->getIterator());
5938 TI->eraseFromParent();
5939 Changed = true;
5940 } else {
5941 Value* Cond = BI->getCondition();
5942 assert(BI->getSuccessor(0) != BI->getSuccessor(1) &&
5943 "The destinations are guaranteed to be different here.");
5944 CallInst *Assumption;
5945 if (BI->getSuccessor(0) == BB) {
5946 Assumption = Builder.CreateAssumption(Builder.CreateNot(Cond));
5947 Builder.CreateBr(BI->getSuccessor(1));
5948 } else {
5949 assert(BI->getSuccessor(1) == BB && "Incorrect CFG");
5950 Assumption = Builder.CreateAssumption(Cond);
5951 Builder.CreateBr(BI->getSuccessor(0));
5952 }
5953 if (Options.AC)
5954 Options.AC->registerAssumption(cast<AssumeInst>(Assumption));
5955
5957 Changed = true;
5958 }
5959 if (DTU)
5960 Updates.push_back({DominatorTree::Delete, Predecessor, BB});
5961 } else if (auto *SI = dyn_cast<SwitchInst>(TI)) {
5962 SwitchInstProfUpdateWrapper SU(*SI);
5963 for (auto i = SU->case_begin(), e = SU->case_end(); i != e;) {
5964 if (i->getCaseSuccessor() != BB) {
5965 ++i;
5966 continue;
5967 }
5968 BB->removePredecessor(SU->getParent());
5969 i = SU.removeCase(i);
5970 e = SU->case_end();
5971 Changed = true;
5972 }
5973 // Note that the default destination can't be removed!
5974 if (DTU && SI->getDefaultDest() != BB)
5975 Updates.push_back({DominatorTree::Delete, Predecessor, BB});
5976 } else if (auto *II = dyn_cast<InvokeInst>(TI)) {
5977 if (II->getUnwindDest() == BB) {
5978 if (DTU) {
5979 DTU->applyUpdates(Updates);
5980 Updates.clear();
5981 }
5982 auto *CI = cast<CallInst>(removeUnwindEdge(TI->getParent(), DTU));
5983 if (!CI->doesNotThrow())
5984 CI->setDoesNotThrow();
5985 Changed = true;
5986 }
5987 } else if (auto *CSI = dyn_cast<CatchSwitchInst>(TI)) {
5988 if (CSI->getUnwindDest() == BB) {
5989 if (DTU) {
5990 DTU->applyUpdates(Updates);
5991 Updates.clear();
5992 }
5993 removeUnwindEdge(TI->getParent(), DTU);
5994 Changed = true;
5995 continue;
5996 }
5997
5998 for (CatchSwitchInst::handler_iterator I = CSI->handler_begin(),
5999 E = CSI->handler_end();
6000 I != E; ++I) {
6001 if (*I == BB) {
6002 CSI->removeHandler(I);
6003 --I;
6004 --E;
6005 Changed = true;
6006 }
6007 }
6008 if (DTU)
6009 Updates.push_back({DominatorTree::Delete, Predecessor, BB});
6010 if (CSI->getNumHandlers() == 0) {
6011 if (CSI->hasUnwindDest()) {
6012 // Redirect all predecessors of the block containing CatchSwitchInst
6013 // to instead branch to the CatchSwitchInst's unwind destination.
6014 if (DTU) {
6015 for (auto *PredecessorOfPredecessor : predecessors(Predecessor)) {
6016 Updates.push_back({DominatorTree::Insert,
6017 PredecessorOfPredecessor,
6018 CSI->getUnwindDest()});
6019 Updates.push_back({DominatorTree::Delete,
6020 PredecessorOfPredecessor, Predecessor});
6021 }
6022 }
6023 Predecessor->replaceAllUsesWith(CSI->getUnwindDest());
6024 } else {
6025 // Rewrite all preds to unwind to caller (or from invoke to call).
6026 if (DTU) {
6027 DTU->applyUpdates(Updates);
6028 Updates.clear();
6029 }
6030 SmallVector<BasicBlock *, 8> EHPreds(predecessors(Predecessor));
6031 for (BasicBlock *EHPred : EHPreds)
6032 removeUnwindEdge(EHPred, DTU);
6033 }
6034 // The catchswitch is no longer reachable.
6035 new UnreachableInst(CSI->getContext(), CSI->getIterator());
6036 CSI->eraseFromParent();
6037 Changed = true;
6038 }
6039 } else if (auto *CRI = dyn_cast<CleanupReturnInst>(TI)) {
6040 (void)CRI;
6041 assert(CRI->hasUnwindDest() && CRI->getUnwindDest() == BB &&
6042 "Expected to always have an unwind to BB.");
6043 if (DTU)
6044 Updates.push_back({DominatorTree::Delete, Predecessor, BB});
6045 new UnreachableInst(TI->getContext(), TI->getIterator());
6046 TI->eraseFromParent();
6047 Changed = true;
6048 }
6049 }
6050
6051 if (DTU)
6052 DTU->applyUpdates(Updates);
6053
6054 // If this block is now dead, remove it.
6055 if (pred_empty(BB) && BB != &BB->getParent()->getEntryBlock()) {
6056 DeleteDeadBlock(BB, DTU);
6057 return true;
6058 }
6059
6060 return Changed;
6061}
6062
6071
6072static std::optional<ContiguousCasesResult>
6075 BasicBlock *Dest, BasicBlock *OtherDest) {
6076 assert(Cases.size() >= 1);
6077
6079 const APInt &Min = Cases.back()->getValue();
6080 const APInt &Max = Cases.front()->getValue();
6081 APInt Offset = Max - Min;
6082 size_t ContiguousOffset = Cases.size() - 1;
6083 if (Offset == ContiguousOffset) {
6084 return ContiguousCasesResult{
6085 /*Min=*/Cases.back(),
6086 /*Max=*/Cases.front(),
6087 /*Dest=*/Dest,
6088 /*OtherDest=*/OtherDest,
6089 /*Cases=*/&Cases,
6090 /*OtherCases=*/&OtherCases,
6091 };
6092 }
6093 ConstantRange CR = computeConstantRange(Condition, /*ForSigned=*/false,
6094 SimplifyQuery(Dest->getDataLayout()));
6095 // If this is a wrapping contiguous range, that is, [Min, OtherMin] +
6096 // [OtherMax, Max] (also [OtherMax, OtherMin]), [OtherMin+1, OtherMax-1] is a
6097 // contiguous range for the other destination. N.B. If CR is not a full range,
6098 // Max+1 is not equal to Min. It's not continuous in arithmetic.
6099 if (Max == CR.getUnsignedMax() && Min == CR.getUnsignedMin()) {
6100 assert(Cases.size() >= 2);
6101 auto *It =
6102 std::adjacent_find(Cases.begin(), Cases.end(), [](auto L, auto R) {
6103 return L->getValue() != R->getValue() + 1;
6104 });
6105 if (It == Cases.end())
6106 return std::nullopt;
6107 auto [OtherMax, OtherMin] = std::make_pair(*It, *std::next(It));
6108 if ((Max - OtherMax->getValue()) + (OtherMin->getValue() - Min) ==
6109 Cases.size() - 2) {
6110 return ContiguousCasesResult{
6111 /*Min=*/cast<ConstantInt>(
6112 ConstantInt::get(OtherMin->getType(), OtherMin->getValue() + 1)),
6113 /*Max=*/
6115 ConstantInt::get(OtherMax->getType(), OtherMax->getValue() - 1)),
6116 /*Dest=*/OtherDest,
6117 /*OtherDest=*/Dest,
6118 /*Cases=*/&OtherCases,
6119 /*OtherCases=*/&Cases,
6120 };
6121 }
6122 }
6123 return std::nullopt;
6124}
6125
6127 DomTreeUpdater *DTU,
6128 bool RemoveOrigDefaultBlock = true) {
6129 LLVM_DEBUG(dbgs() << "SimplifyCFG: switch default is dead.\n");
6130 auto *BB = Switch->getParent();
6131 auto *OrigDefaultBlock = Switch->getDefaultDest();
6132 if (RemoveOrigDefaultBlock)
6133 OrigDefaultBlock->removePredecessor(BB);
6134 BasicBlock *NewDefaultBlock = BasicBlock::Create(
6135 BB->getContext(), BB->getName() + ".unreachabledefault", BB->getParent(),
6136 OrigDefaultBlock);
6137 auto *UI = new UnreachableInst(Switch->getContext(), NewDefaultBlock);
6139 Switch->setDefaultDest(&*NewDefaultBlock);
6140 if (DTU) {
6142 Updates.push_back({DominatorTree::Insert, BB, &*NewDefaultBlock});
6143 if (RemoveOrigDefaultBlock &&
6144 !is_contained(successors(BB), OrigDefaultBlock))
6145 Updates.push_back({DominatorTree::Delete, BB, &*OrigDefaultBlock});
6146 DTU->applyUpdates(Updates);
6147 }
6148}
6149
6150/// Turn a switch into an integer range comparison and branch.
6151/// Switches with more than 2 destinations are ignored.
6152/// Switches with 1 destination are also ignored.
6153bool SimplifyCFGOpt::turnSwitchRangeIntoICmp(SwitchInst *SI,
6154 IRBuilder<> &Builder) {
6155 assert(SI->getNumCases() > 1 && "Degenerate switch?");
6156
6157 bool HasDefault = !SI->defaultDestUnreachable();
6158
6159 auto *BB = SI->getParent();
6160 // Partition the cases into two sets with different destinations.
6161 BasicBlock *DestA = HasDefault ? SI->getDefaultDest() : nullptr;
6162 BasicBlock *DestB = nullptr;
6165
6166 for (auto Case : SI->cases()) {
6167 BasicBlock *Dest = Case.getCaseSuccessor();
6168 if (!DestA)
6169 DestA = Dest;
6170 if (Dest == DestA) {
6171 CasesA.push_back(Case.getCaseValue());
6172 continue;
6173 }
6174 if (!DestB)
6175 DestB = Dest;
6176 if (Dest == DestB) {
6177 CasesB.push_back(Case.getCaseValue());
6178 continue;
6179 }
6180 return false; // More than two destinations.
6181 }
6182 if (!DestB)
6183 return false; // All destinations are the same and the default is unreachable
6184
6185 assert(DestA && DestB &&
6186 "Single-destination switch should have been folded.");
6187 assert(DestA != DestB);
6188 assert(DestB != SI->getDefaultDest());
6189 assert(!CasesB.empty() && "There must be non-default cases.");
6190 assert(!CasesA.empty() || HasDefault);
6191
6192 // Figure out if one of the sets of cases form a contiguous range.
6193 std::optional<ContiguousCasesResult> ContiguousCases;
6194
6195 // Only one icmp is needed when there is only one case.
6196 if (!HasDefault && CasesA.size() == 1)
6197 ContiguousCases = ContiguousCasesResult{
6198 /*Min=*/CasesA[0],
6199 /*Max=*/CasesA[0],
6200 /*Dest=*/DestA,
6201 /*OtherDest=*/DestB,
6202 /*Cases=*/&CasesA,
6203 /*OtherCases=*/&CasesB,
6204 };
6205 else if (CasesB.size() == 1)
6206 ContiguousCases = ContiguousCasesResult{
6207 /*Min=*/CasesB[0],
6208 /*Max=*/CasesB[0],
6209 /*Dest=*/DestB,
6210 /*OtherDest=*/DestA,
6211 /*Cases=*/&CasesB,
6212 /*OtherCases=*/&CasesA,
6213 };
6214 // Correctness: Cases to the default destination cannot be contiguous cases.
6215 else if (!HasDefault)
6216 ContiguousCases =
6217 findContiguousCases(SI->getCondition(), CasesA, CasesB, DestA, DestB);
6218
6219 if (!ContiguousCases)
6220 ContiguousCases =
6221 findContiguousCases(SI->getCondition(), CasesB, CasesA, DestB, DestA);
6222
6223 if (!ContiguousCases)
6224 return false;
6225
6226 auto [Min, Max, Dest, OtherDest, Cases, OtherCases] = *ContiguousCases;
6227
6228 // Start building the compare and branch.
6229
6231 Constant *NumCases = ConstantInt::get(Offset->getType(),
6232 Max->getValue() - Min->getValue() + 1);
6233 Instruction *NewBI;
6234 if (NumCases->isOneValue()) {
6235 assert(Max->getValue() == Min->getValue());
6236 Value *Cmp = Builder.CreateICmpEQ(SI->getCondition(), Min);
6237 NewBI = Builder.CreateCondBr(Cmp, Dest, OtherDest);
6238 }
6239 // If NumCases overflowed, then all possible values jump to the successor.
6240 else if (NumCases->isNullValue() && !Cases->empty()) {
6241 NewBI = Builder.CreateBr(Dest);
6242 } else {
6243 Value *Sub = SI->getCondition();
6244 if (!Offset->isNullValue())
6245 Sub = Builder.CreateAdd(Sub, Offset, Sub->getName() + ".off");
6246 Value *Cmp = Builder.CreateICmpULT(Sub, NumCases, "switch");
6247 NewBI = Builder.CreateCondBr(Cmp, Dest, OtherDest);
6248 }
6249
6250 // Update weight for the newly-created conditional branch.
6251 if (hasBranchWeightMD(*SI) && isa<CondBrInst>(NewBI)) {
6252 SmallVector<uint64_t, 8> Weights;
6253 getBranchWeights(SI, Weights);
6254 if (Weights.size() == 1 + SI->getNumCases()) {
6255 uint64_t TrueWeight = 0;
6256 uint64_t FalseWeight = 0;
6257 for (size_t I = 0, E = Weights.size(); I != E; ++I) {
6258 if (SI->getSuccessor(I) == Dest)
6259 TrueWeight += Weights[I];
6260 else
6261 FalseWeight += Weights[I];
6262 }
6263 while (TrueWeight > UINT32_MAX || FalseWeight > UINT32_MAX) {
6264 TrueWeight /= 2;
6265 FalseWeight /= 2;
6266 }
6267 setFittedBranchWeights(*NewBI, {TrueWeight, FalseWeight},
6268 /*IsExpected=*/false, /*ElideAllZero=*/true);
6269 }
6270 }
6271
6272 // Prune obsolete incoming values off the successors' PHI nodes.
6273 for (auto &PHI : make_early_inc_range(Dest->phis())) {
6274 unsigned PreviousEdges = Cases->size();
6275 if (Dest == SI->getDefaultDest())
6276 ++PreviousEdges;
6277 for (unsigned I = 0, E = PreviousEdges - 1; I != E; ++I)
6278 PHI.removeIncomingValue(SI->getParent());
6279 }
6280 for (auto &PHI : make_early_inc_range(OtherDest->phis())) {
6281 unsigned PreviousEdges = OtherCases->size();
6282 if (OtherDest == SI->getDefaultDest())
6283 ++PreviousEdges;
6284 unsigned E = PreviousEdges - 1;
6285 // Remove all incoming values from OtherDest if OtherDest is unreachable.
6286 if (isa<UncondBrInst>(NewBI))
6287 ++E;
6288 for (unsigned I = 0; I != E; ++I)
6289 PHI.removeIncomingValue(SI->getParent());
6290 }
6291
6292 // Clean up the default block.
6293 SmallVector<DominatorTree::UpdateType, 2> Updates;
6294 if (!HasDefault) {
6295 BasicBlock *OrigDefaultBlock = SI->getDefaultDest();
6296 OrigDefaultBlock->removePredecessor(BB);
6297 Updates.push_back({DominatorTree::Delete, BB, OrigDefaultBlock});
6298 }
6299
6300 // Drop the switch.
6301 SI->eraseFromParent();
6302
6303 if (isa<UncondBrInst>(NewBI))
6304 Updates.push_back({DominatorTree::Delete, BB, OtherDest});
6305
6306 if (DTU)
6307 DTU->applyUpdates(Updates);
6308 return true;
6309}
6310
6311/// Compute masked bits for the condition of a switch
6312/// and use it to remove dead cases.
6314 AssumptionCache *AC,
6315 const DataLayout &DL) {
6316 Value *Cond = SI->getCondition();
6319 bool IsKnownValuesValid = collectPossibleValues(Cond, KnownValues, 4);
6320
6321 // We can also eliminate cases by determining that their values are outside of
6322 // the limited range of the condition based on how many significant (non-sign)
6323 // bits are in the condition value.
6324 unsigned MaxSignificantBitsInCond =
6326
6327 // Gather dead cases.
6329 SmallDenseMap<BasicBlock *, int, 8> NumPerSuccessorCases;
6330 SmallVector<BasicBlock *, 8> UniqueSuccessors;
6331 for (const auto &Case : SI->cases()) {
6332 auto *Successor = Case.getCaseSuccessor();
6333 if (DTU) {
6334 auto [It, Inserted] = NumPerSuccessorCases.try_emplace(Successor);
6335 if (Inserted)
6336 UniqueSuccessors.push_back(Successor);
6337 ++It->second;
6338 }
6339 ConstantInt *CaseC = Case.getCaseValue();
6340 const APInt &CaseVal = CaseC->getValue();
6341 if (Known.Zero.intersects(CaseVal) || !Known.One.isSubsetOf(CaseVal) ||
6342 (CaseVal.getSignificantBits() > MaxSignificantBitsInCond) ||
6343 (IsKnownValuesValid && !KnownValues.contains(CaseC))) {
6344 DeadCases.push_back(CaseC);
6345 if (DTU)
6346 --NumPerSuccessorCases[Successor];
6347 LLVM_DEBUG(dbgs() << "SimplifyCFG: switch case " << CaseVal
6348 << " is dead.\n");
6349 } else if (IsKnownValuesValid)
6350 KnownValues.erase(CaseC);
6351 }
6352
6353 // If we can prove that the cases must cover all possible values, the
6354 // default destination becomes dead and we can remove it. If we know some
6355 // of the bits in the value, we can use that to more precisely compute the
6356 // number of possible unique case values.
6357 bool HasDefault = !SI->defaultDestUnreachable();
6358 const unsigned NumUnknownBits =
6359 Known.getBitWidth() - (Known.Zero | Known.One).popcount();
6360 assert(NumUnknownBits <= Known.getBitWidth());
6361 if (HasDefault && DeadCases.empty()) {
6362 if (IsKnownValuesValid && all_of(KnownValues, IsaPred<UndefValue>)) {
6364 return true;
6365 }
6366
6367 if (NumUnknownBits < 64 /* avoid overflow */) {
6368 uint64_t AllNumCases = 1ULL << NumUnknownBits;
6369 if (SI->getNumCases() == AllNumCases) {
6371 return true;
6372 }
6373 // When only one case value is missing, replace default with that case.
6374 // Eliminating the default branch will provide more opportunities for
6375 // optimization, such as lookup tables.
6376 if (SI->getNumCases() == AllNumCases - 1) {
6377 assert(NumUnknownBits > 1 && "Should be canonicalized to a branch");
6378 IntegerType *CondTy = cast<IntegerType>(Cond->getType());
6379 if (CondTy->getIntegerBitWidth() > 64 ||
6380 !DL.fitsInLegalInteger(CondTy->getIntegerBitWidth()))
6381 return false;
6382
6383 uint64_t MissingCaseVal = 0;
6384 for (const auto &Case : SI->cases())
6385 MissingCaseVal ^= Case.getCaseValue()->getValue().getLimitedValue();
6386 auto *MissingCase = cast<ConstantInt>(
6387 ConstantInt::get(Cond->getType(), MissingCaseVal));
6389 SIW.addCase(MissingCase, SI->getDefaultDest(),
6390 SIW.getSuccessorWeight(0));
6392 /*RemoveOrigDefaultBlock*/ false);
6393 SIW.setSuccessorWeight(0, 0);
6394 return true;
6395 }
6396 }
6397 }
6398
6399 if (DeadCases.empty())
6400 return false;
6401
6403 for (ConstantInt *DeadCase : DeadCases) {
6404 SwitchInst::CaseIt CaseI = SI->findCaseValue(DeadCase);
6405 assert(CaseI != SI->case_default() &&
6406 "Case was not found. Probably mistake in DeadCases forming.");
6407 // Prune unused values from PHI nodes.
6408 CaseI->getCaseSuccessor()->removePredecessor(SI->getParent());
6409 SIW.removeCase(CaseI);
6410 }
6411
6412 if (DTU) {
6413 std::vector<DominatorTree::UpdateType> Updates;
6414 for (auto *Successor : UniqueSuccessors)
6415 if (NumPerSuccessorCases[Successor] == 0)
6416 Updates.push_back({DominatorTree::Delete, SI->getParent(), Successor});
6417 DTU->applyUpdates(Updates);
6418 }
6419
6420 return true;
6421}
6422
6423/// If BB would be eligible for simplification by
6424/// TryToSimplifyUncondBranchFromEmptyBlock (i.e. it is empty and terminated
6425/// by an unconditional branch), look at the phi node for BB in the successor
6426/// block and see if the incoming value is equal to CaseValue. If so, return
6427/// the phi node, and set PhiIndex to BB's index in the phi node.
6429 BasicBlock *BB, int *PhiIndex) {
6430 if (&*BB->getFirstNonPHIIt() != BB->getTerminator())
6431 return nullptr; // BB must be empty to be a candidate for simplification.
6432 if (!BB->getSinglePredecessor())
6433 return nullptr; // BB must be dominated by the switch.
6434
6436 if (!Branch)
6437 return nullptr; // Terminator must be unconditional branch.
6438
6439 BasicBlock *Succ = Branch->getSuccessor();
6440
6441 for (PHINode &PHI : Succ->phis()) {
6442 int Idx = PHI.getBasicBlockIndex(BB);
6443 assert(Idx >= 0 && "PHI has no entry for predecessor?");
6444
6445 Value *InValue = PHI.getIncomingValue(Idx);
6446 if (InValue != CaseValue)
6447 continue;
6448
6449 *PhiIndex = Idx;
6450 return &PHI;
6451 }
6452
6453 return nullptr;
6454}
6455
6456/// Try to forward the condition of a switch instruction to a phi node
6457/// dominated by the switch, if that would mean that some of the destination
6458/// blocks of the switch can be folded away. Return true if a change is made.
6460 using ForwardingNodesMap = DenseMap<PHINode *, SmallVector<int, 4>>;
6461
6462 ForwardingNodesMap ForwardingNodes;
6463 BasicBlock *SwitchBlock = SI->getParent();
6464 bool Changed = false;
6465 for (const auto &Case : SI->cases()) {
6466 ConstantInt *CaseValue = Case.getCaseValue();
6467 BasicBlock *CaseDest = Case.getCaseSuccessor();
6468
6469 // Replace phi operands in successor blocks that are using the constant case
6470 // value rather than the switch condition variable:
6471 // switchbb:
6472 // switch i32 %x, label %default [
6473 // i32 17, label %succ
6474 // ...
6475 // succ:
6476 // %r = phi i32 ... [ 17, %switchbb ] ...
6477 // -->
6478 // %r = phi i32 ... [ %x, %switchbb ] ...
6479
6480 for (PHINode &Phi : CaseDest->phis()) {
6481 // This only works if there is exactly 1 incoming edge from the switch to
6482 // a phi. If there is >1, that means multiple cases of the switch map to 1
6483 // value in the phi, and that phi value is not the switch condition. Thus,
6484 // this transform would not make sense (the phi would be invalid because
6485 // a phi can't have different incoming values from the same block).
6486 int SwitchBBIdx = Phi.getBasicBlockIndex(SwitchBlock);
6487 if (Phi.getIncomingValue(SwitchBBIdx) == CaseValue &&
6488 count(Phi.blocks(), SwitchBlock) == 1) {
6489 Phi.setIncomingValue(SwitchBBIdx, SI->getCondition());
6490 Changed = true;
6491 }
6492 }
6493
6494 // Collect phi nodes that are indirectly using this switch's case constants.
6495 int PhiIdx;
6496 if (auto *Phi = findPHIForConditionForwarding(CaseValue, CaseDest, &PhiIdx))
6497 ForwardingNodes[Phi].push_back(PhiIdx);
6498 }
6499
6500 for (auto &ForwardingNode : ForwardingNodes) {
6501 PHINode *Phi = ForwardingNode.first;
6502 SmallVectorImpl<int> &Indexes = ForwardingNode.second;
6503 // Check if it helps to fold PHI.
6504 if (Indexes.size() < 2 && !llvm::is_contained(Phi->incoming_values(), SI->getCondition()))
6505 continue;
6506
6507 for (int Index : Indexes)
6508 Phi->setIncomingValue(Index, SI->getCondition());
6509 Changed = true;
6510 }
6511
6512 return Changed;
6513}
6514
6515/// Return true if the backend will be able to handle
6516/// initializing an array of constants like C.
6518 if (C->isThreadDependent())
6519 return false;
6520 if (C->isDLLImportDependent())
6521 return false;
6522
6525 return false;
6526
6527 // Globals cannot contain scalable types.
6528 if (C->getType()->isScalableTy())
6529 return false;
6530
6532 // Pointer casts and in-bounds GEPs will not prohibit the backend from
6533 // materializing the array of constants.
6534 Constant *StrippedC = cast<Constant>(CE->stripInBoundsConstantOffsets());
6535 if (StrippedC == C || !validLookupTableConstant(StrippedC, TTI))
6536 return false;
6537 }
6538
6539 if (!TTI.shouldBuildLookupTablesForConstant(C))
6540 return false;
6541
6542 return true;
6543}
6544
6545/// If V is a Constant, return it. Otherwise, try to look up
6546/// its constant value in ConstantPool, returning 0 if it's not there.
6547static Constant *
6550 if (Constant *C = dyn_cast<Constant>(V))
6551 return C;
6552 return ConstantPool.lookup(V);
6553}
6554
6555/// Try to fold instruction I into a constant. This works for
6556/// simple instructions such as binary operations where both operands are
6557/// constant or can be replaced by constants from the ConstantPool. Returns the
6558/// resulting constant on success, 0 otherwise.
6559static Constant *
6563 Constant *A = lookupConstant(Select->getCondition(), ConstantPool);
6564 if (!A)
6565 return nullptr;
6566 if (A->isAllOnesValue())
6567 return lookupConstant(Select->getTrueValue(), ConstantPool);
6568 if (A->isNullValue())
6569 return lookupConstant(Select->getFalseValue(), ConstantPool);
6570 return nullptr;
6571 }
6572
6574 for (unsigned N = 0, E = I->getNumOperands(); N != E; ++N) {
6575 if (Constant *A = lookupConstant(I->getOperand(N), ConstantPool))
6576 COps.push_back(A);
6577 else
6578 return nullptr;
6579 }
6580
6581 return ConstantFoldInstOperands(I, COps, DL);
6582}
6583
6584/// Try to determine the resulting constant values in phi nodes
6585/// at the common destination basic block, *CommonDest, for one of the case
6586/// destinations CaseDest corresponding to value CaseVal (nullptr for the
6587/// default case), of a switch instruction SI.
6588static bool
6590 BasicBlock **CommonDest,
6591 SmallVectorImpl<std::pair<PHINode *, Constant *>> &Res,
6592 const DataLayout &DL, const TargetTransformInfo &TTI) {
6593 // The block from which we enter the common destination.
6594 BasicBlock *Pred = SI->getParent();
6595
6596 // If CaseDest is empty except for some side-effect free instructions through
6597 // which we can constant-propagate the CaseVal, continue to its successor.
6599 ConstantPool.insert(std::make_pair(SI->getCondition(), CaseVal));
6600 for (Instruction &I : *CaseDest) {
6601 if (I.isTerminator()) {
6602 // If the terminator is a simple branch, continue to the next block.
6603 if (I.getNumSuccessors() != 1 || I.isSpecialTerminator())
6604 return false;
6605 Pred = CaseDest;
6606 CaseDest = I.getSuccessor(0);
6607 } else if (Constant *C = constantFold(&I, DL, ConstantPool)) {
6608 // Instruction is side-effect free and constant.
6609
6610 // If the instruction has uses outside this block or a phi node slot for
6611 // the block, it is not safe to bypass the instruction since it would then
6612 // no longer dominate all its uses.
6613 for (auto &Use : I.uses()) {
6614 User *User = Use.getUser();
6616 if (I->getParent() == CaseDest)
6617 continue;
6618 if (PHINode *Phi = dyn_cast<PHINode>(User))
6619 if (Phi->getIncomingBlock(Use) == CaseDest)
6620 continue;
6621 return false;
6622 }
6623
6624 ConstantPool.insert(std::make_pair(&I, C));
6625 } else {
6626 break;
6627 }
6628 }
6629
6630 // If we did not have a CommonDest before, use the current one.
6631 if (!*CommonDest)
6632 *CommonDest = CaseDest;
6633 // If the destination isn't the common one, abort.
6634 if (CaseDest != *CommonDest)
6635 return false;
6636
6637 // Get the values for this case from phi nodes in the destination block.
6638 for (PHINode &PHI : (*CommonDest)->phis()) {
6639 int Idx = PHI.getBasicBlockIndex(Pred);
6640 if (Idx == -1)
6641 continue;
6642
6643 Constant *ConstVal =
6644 lookupConstant(PHI.getIncomingValue(Idx), ConstantPool);
6645 if (!ConstVal)
6646 return false;
6647
6648 // Be conservative about which kinds of constants we support.
6649 if (!validLookupTableConstant(ConstVal, TTI))
6650 return false;
6651
6652 Res.push_back(std::make_pair(&PHI, ConstVal));
6653 }
6654
6655 return Res.size() > 0;
6656}
6657
6658// Helper function used to add CaseVal to the list of cases that generate
6659// Result. Returns the updated number of cases that generate this result.
6660static size_t mapCaseToResult(ConstantInt *CaseVal,
6661 SwitchCaseResultVectorTy &UniqueResults,
6662 Constant *Result) {
6663 for (auto &I : UniqueResults) {
6664 if (I.first == Result) {
6665 I.second.push_back(CaseVal);
6666 return I.second.size();
6667 }
6668 }
6669 UniqueResults.push_back(
6670 std::make_pair(Result, SmallVector<ConstantInt *, 4>(1, CaseVal)));
6671 return 1;
6672}
6673
6674// Helper function that initializes a map containing
6675// results for the PHI node of the common destination block for a switch
6676// instruction. Returns false if multiple PHI nodes have been found or if
6677// there is not a common destination block for the switch.
6679 BasicBlock *&CommonDest,
6680 SwitchCaseResultVectorTy &UniqueResults,
6681 Constant *&DefaultResult,
6682 const DataLayout &DL,
6683 const TargetTransformInfo &TTI,
6684 uintptr_t MaxUniqueResults) {
6685 for (const auto &I : SI->cases()) {
6686 ConstantInt *CaseVal = I.getCaseValue();
6687
6688 // Resulting value at phi nodes for this case value.
6689 SwitchCaseResultsTy Results;
6690 if (!getCaseResults(SI, CaseVal, I.getCaseSuccessor(), &CommonDest, Results,
6691 DL, TTI))
6692 return false;
6693
6694 // Only one value per case is permitted.
6695 if (Results.size() > 1)
6696 return false;
6697
6698 // Add the case->result mapping to UniqueResults.
6699 const size_t NumCasesForResult =
6700 mapCaseToResult(CaseVal, UniqueResults, Results.begin()->second);
6701
6702 // Early out if there are too many cases for this result.
6703 if (NumCasesForResult > MaxSwitchCasesPerResult)
6704 return false;
6705
6706 // Early out if there are too many unique results.
6707 if (UniqueResults.size() > MaxUniqueResults)
6708 return false;
6709
6710 // Check the PHI consistency.
6711 if (!PHI)
6712 PHI = Results[0].first;
6713 else if (PHI != Results[0].first)
6714 return false;
6715 }
6716 // Find the default result value.
6718 getCaseResults(SI, nullptr, SI->getDefaultDest(), &CommonDest, DefaultResults,
6719 DL, TTI);
6720 // If the default value is not found abort unless the default destination
6721 // is unreachable.
6722 DefaultResult =
6723 DefaultResults.size() == 1 ? DefaultResults.begin()->second : nullptr;
6724
6725 return DefaultResult || SI->defaultDestUnreachable();
6726}
6727
6728// Helper function that checks if it is possible to transform a switch with only
6729// two cases (or two cases + default) that produces a result into a select.
6730// TODO: Handle switches with more than 2 cases that map to the same result.
6731// The branch weights correspond to the provided Condition (i.e. if Condition is
6732// modified from the original SwitchInst, the caller must adjust the weights)
6733static Value *foldSwitchToSelect(const SwitchCaseResultVectorTy &ResultVector,
6734 Constant *DefaultResult, Value *Condition,
6735 IRBuilder<> &Builder, const DataLayout &DL,
6736 ArrayRef<uint32_t> BranchWeights) {
6737 // If we are selecting between only two cases transform into a simple
6738 // select or a two-way select if default is possible.
6739 // Example:
6740 // switch (a) { %0 = icmp eq i32 %a, 10
6741 // case 10: return 42; %1 = select i1 %0, i32 42, i32 4
6742 // case 20: return 2; ----> %2 = icmp eq i32 %a, 20
6743 // default: return 4; %3 = select i1 %2, i32 2, i32 %1
6744 // }
6745
6746 const bool HasBranchWeights =
6747 !BranchWeights.empty() && !ProfcheckDisableMetadataFixes;
6748
6749 if (ResultVector.size() == 2 && ResultVector[0].second.size() == 1 &&
6750 ResultVector[1].second.size() == 1) {
6751 ConstantInt *FirstCase = ResultVector[0].second[0];
6752 ConstantInt *SecondCase = ResultVector[1].second[0];
6753 Value *SelectValue = ResultVector[1].first;
6754 if (DefaultResult) {
6755 Value *ValueCompare =
6756 Builder.CreateICmpEQ(Condition, SecondCase, "switch.selectcmp");
6757 SelectValue = Builder.CreateSelect(ValueCompare, ResultVector[1].first,
6758 DefaultResult, "switch.select");
6759 if (auto *SI = dyn_cast<SelectInst>(SelectValue);
6760 SI && HasBranchWeights) {
6761 // We start with 3 probabilities, where the numerator is the
6762 // corresponding BranchWeights[i], and the denominator is the sum over
6763 // BranchWeights. We want the probability and negative probability of
6764 // Condition == SecondCase.
6765 assert(BranchWeights.size() == 3);
6767 *SI, {BranchWeights[2], BranchWeights[0] + BranchWeights[1]},
6768 /*IsExpected=*/false, /*ElideAllZero=*/true);
6769 }
6770 }
6771 Value *ValueCompare =
6772 Builder.CreateICmpEQ(Condition, FirstCase, "switch.selectcmp");
6773 Value *Ret = Builder.CreateSelect(ValueCompare, ResultVector[0].first,
6774 SelectValue, "switch.select");
6775 if (auto *SI = dyn_cast<SelectInst>(Ret); SI && HasBranchWeights) {
6776 // We may have had a DefaultResult. Base the position of the first and
6777 // second's branch weights accordingly. Also the proability that Condition
6778 // != FirstCase needs to take that into account.
6779 assert(BranchWeights.size() >= 2);
6780 size_t FirstCasePos = (Condition != nullptr);
6781 size_t SecondCasePos = FirstCasePos + 1;
6782 uint32_t DefaultCase = (Condition != nullptr) ? BranchWeights[0] : 0;
6784 {BranchWeights[FirstCasePos],
6785 DefaultCase + BranchWeights[SecondCasePos]},
6786 /*IsExpected=*/false, /*ElideAllZero=*/true);
6787 }
6788 return Ret;
6789 }
6790
6791 // Handle the degenerate case where two cases have the same result value.
6792 if (ResultVector.size() == 1 && DefaultResult) {
6793 ArrayRef<ConstantInt *> CaseValues = ResultVector[0].second;
6794 unsigned CaseCount = CaseValues.size();
6795 // n bits group cases map to the same result:
6796 // case 0,4 -> Cond & 0b1..1011 == 0 ? result : default
6797 // case 0,2,4,6 -> Cond & 0b1..1001 == 0 ? result : default
6798 // case 0,2,8,10 -> Cond & 0b1..0101 == 0 ? result : default
6799 if (isPowerOf2_32(CaseCount)) {
6800 ConstantInt *MinCaseVal = CaseValues[0];
6801 // If there are bits that are set exclusively by CaseValues, we
6802 // can transform the switch into a select if the conjunction of
6803 // all the values uniquely identify CaseValues.
6804 APInt AndMask = APInt::getAllOnes(MinCaseVal->getBitWidth());
6805
6806 // Find the minimum value and compute the and of all the case values.
6807 for (auto *Case : CaseValues) {
6808 if (Case->getValue().slt(MinCaseVal->getValue()))
6809 MinCaseVal = Case;
6810 AndMask &= Case->getValue();
6811 }
6812 KnownBits Known = computeKnownBits(Condition, DL);
6813
6814 if (!AndMask.isZero() && Known.getMaxValue().uge(AndMask)) {
6815 // Compute the number of bits that are free to vary.
6816 unsigned FreeBits = Known.countMaxActiveBits() - AndMask.popcount();
6817
6818 // Check if the number of values covered by the mask is equal
6819 // to the number of cases.
6820 if (FreeBits == Log2_32(CaseCount)) {
6821 Value *And = Builder.CreateAnd(Condition, AndMask);
6822 Value *Cmp = Builder.CreateICmpEQ(
6823 And, Constant::getIntegerValue(And->getType(), AndMask));
6824 Value *Ret =
6825 Builder.CreateSelect(Cmp, ResultVector[0].first, DefaultResult);
6826 if (auto *SI = dyn_cast<SelectInst>(Ret); SI && HasBranchWeights) {
6827 // We know there's a Default case. We base the resulting branch
6828 // weights off its probability.
6829 assert(BranchWeights.size() >= 2);
6831 *SI,
6832 {accumulate(drop_begin(BranchWeights), 0U), BranchWeights[0]},
6833 /*IsExpected=*/false, /*ElideAllZero=*/true);
6834 }
6835 return Ret;
6836 }
6837 }
6838
6839 // Mark the bits case number touched.
6840 APInt BitMask = APInt::getZero(MinCaseVal->getBitWidth());
6841 for (auto *Case : CaseValues)
6842 BitMask |= (Case->getValue() - MinCaseVal->getValue());
6843
6844 // Check if cases with the same result can cover all number
6845 // in touched bits.
6846 if (BitMask.popcount() == Log2_32(CaseCount)) {
6847 if (!MinCaseVal->isNullValue())
6848 Condition = Builder.CreateSub(Condition, MinCaseVal);
6849 Value *And = Builder.CreateAnd(Condition, ~BitMask, "switch.and");
6850 Value *Cmp = Builder.CreateICmpEQ(
6851 And, Constant::getNullValue(And->getType()), "switch.selectcmp");
6852 Value *Ret =
6853 Builder.CreateSelect(Cmp, ResultVector[0].first, DefaultResult);
6854 if (auto *SI = dyn_cast<SelectInst>(Ret); SI && HasBranchWeights) {
6855 assert(BranchWeights.size() >= 2);
6857 *SI,
6858 {accumulate(drop_begin(BranchWeights), 0U), BranchWeights[0]},
6859 /*IsExpected=*/false, /*ElideAllZero=*/true);
6860 }
6861 return Ret;
6862 }
6863 }
6864
6865 // Handle the degenerate case where two cases have the same value.
6866 if (CaseValues.size() == 2) {
6867 Value *Cmp1 = Builder.CreateICmpEQ(Condition, CaseValues[0],
6868 "switch.selectcmp.case1");
6869 Value *Cmp2 = Builder.CreateICmpEQ(Condition, CaseValues[1],
6870 "switch.selectcmp.case2");
6871 Value *Cmp = Builder.CreateOr(Cmp1, Cmp2, "switch.selectcmp");
6872 Value *Ret =
6873 Builder.CreateSelect(Cmp, ResultVector[0].first, DefaultResult);
6874 if (auto *SI = dyn_cast<SelectInst>(Ret); SI && HasBranchWeights) {
6875 assert(BranchWeights.size() >= 2);
6877 *SI, {accumulate(drop_begin(BranchWeights), 0U), BranchWeights[0]},
6878 /*IsExpected=*/false, /*ElideAllZero=*/true);
6879 }
6880 return Ret;
6881 }
6882 }
6883
6884 return nullptr;
6885}
6886
6887// Helper function to cleanup a switch instruction that has been converted into
6888// a select, fixing up PHI nodes and basic blocks.
6890 Value *SelectValue,
6891 IRBuilder<> &Builder,
6892 DomTreeUpdater *DTU) {
6893 std::vector<DominatorTree::UpdateType> Updates;
6894
6895 BasicBlock *SelectBB = SI->getParent();
6896 BasicBlock *DestBB = PHI->getParent();
6897
6898 if (DTU && !is_contained(predecessors(DestBB), SelectBB))
6899 Updates.push_back({DominatorTree::Insert, SelectBB, DestBB});
6900 Builder.CreateBr(DestBB);
6901
6902 // Remove the switch.
6903
6904 PHI->removeIncomingValueIf(
6905 [&](unsigned Idx) { return PHI->getIncomingBlock(Idx) == SelectBB; });
6906 PHI->addIncoming(SelectValue, SelectBB);
6907
6908 SmallPtrSet<BasicBlock *, 4> RemovedSuccessors;
6909 for (unsigned i = 0, e = SI->getNumSuccessors(); i < e; ++i) {
6910 BasicBlock *Succ = SI->getSuccessor(i);
6911
6912 if (Succ == DestBB)
6913 continue;
6914 Succ->removePredecessor(SelectBB);
6915 if (DTU && RemovedSuccessors.insert(Succ).second)
6916 Updates.push_back({DominatorTree::Delete, SelectBB, Succ});
6917 }
6918 SI->eraseFromParent();
6919 if (DTU)
6920 DTU->applyUpdates(Updates);
6921}
6922
6923/// If a switch is only used to initialize one or more phi nodes in a common
6924/// successor block with only two different constant values, try to replace the
6925/// switch with a select. Returns true if the fold was made.
6927 DomTreeUpdater *DTU, const DataLayout &DL,
6928 const TargetTransformInfo &TTI) {
6929 Value *const Cond = SI->getCondition();
6930 PHINode *PHI = nullptr;
6931 BasicBlock *CommonDest = nullptr;
6932 Constant *DefaultResult;
6933 SwitchCaseResultVectorTy UniqueResults;
6934 // Collect all the cases that will deliver the same value from the switch.
6935 if (!initializeUniqueCases(SI, PHI, CommonDest, UniqueResults, DefaultResult,
6936 DL, TTI, /*MaxUniqueResults*/ 2))
6937 return false;
6938
6939 assert(PHI != nullptr && "PHI for value select not found");
6940 Builder.SetInsertPoint(SI);
6941 SmallVector<uint32_t, 4> BranchWeights;
6943 [[maybe_unused]] auto HasWeights =
6945 assert(!HasWeights == (BranchWeights.empty()));
6946 }
6947 assert(BranchWeights.empty() ||
6948 (BranchWeights.size() >=
6949 UniqueResults.size() + (DefaultResult != nullptr)));
6950
6951 Value *SelectValue = foldSwitchToSelect(UniqueResults, DefaultResult, Cond,
6952 Builder, DL, BranchWeights);
6953 if (!SelectValue)
6954 return false;
6955
6956 removeSwitchAfterSelectFold(SI, PHI, SelectValue, Builder, DTU);
6957 return true;
6958}
6959
6960namespace {
6961
6962/// This class finds alternatives for switches to ultimately
6963/// replace the switch.
6964class SwitchReplacement {
6965public:
6966 /// Create a helper for optimizations to use as a switch replacement.
6967 /// Find a better representation for the content of Values,
6968 /// using DefaultValue to fill any holes in the table.
6969 SwitchReplacement(
6970 Module &M, uint64_t TableSize, ConstantInt *Offset,
6971 const SmallVectorImpl<std::pair<ConstantInt *, Constant *>> &Values,
6972 Constant *DefaultValue, const DataLayout &DL,
6973 const TargetTransformInfo &TTI, const StringRef &FuncName);
6974
6975 /// Build instructions with Builder to retrieve values using Index
6976 /// and replace the switch.
6977 Value *replaceSwitch(Value *Index, IRBuilder<> &Builder, const DataLayout &DL,
6978 Function *Func);
6979
6980 /// Return true if a table with TableSize elements of
6981 /// type ElementType would fit in a target-legal register.
6982 static bool wouldFitInRegister(const DataLayout &DL, uint64_t TableSize,
6983 Type *ElementType);
6984
6985 /// Return the default value of the switch.
6986 Constant *getDefaultValue();
6987
6988 /// Return true if the replacement is a lookup table.
6989 bool isLookupTable();
6990
6991 /// Return true if the replacement is a bit map.
6992 bool isBitMap();
6993
6994private:
6995 // Depending on the switch, there are different alternatives.
6996 enum {
6997 // For switches where each case contains the same value, we just have to
6998 // store that single value and return it for each lookup.
6999 SingleValueKind,
7000
7001 // For switches where there is a linear relationship between table index
7002 // and values. We calculate the result with a simple multiplication
7003 // and addition instead of a table lookup.
7004 LinearMapKind,
7005
7006 // For small tables with integer elements, we can pack them into a bitmap
7007 // that fits into a target-legal register. Values are retrieved by
7008 // shift and mask operations.
7009 BitMapKind,
7010
7011 // The table is stored as an array of values. Values are retrieved by load
7012 // instructions from the table.
7013 LookupTableKind
7014 } Kind;
7015
7016 // The default value of the switch.
7017 Constant *DefaultValue;
7018
7019 // The type of the output values.
7020 Type *ValueType;
7021
7022 // For SingleValueKind, this is the single value.
7023 Constant *SingleValue = nullptr;
7024
7025 // For BitMapKind, this is the bitmap.
7026 ConstantInt *BitMap = nullptr;
7027 IntegerType *BitMapElementTy = nullptr;
7028
7029 // For LinearMapKind, these are the constants used to derive the value.
7030 ConstantInt *LinearOffset = nullptr;
7031 ConstantInt *LinearMultiplier = nullptr;
7032 bool LinearMapValWrapped = false;
7033
7034 // For LookupTableKind, this is the table.
7035 Constant *Initializer = nullptr;
7036};
7037
7038} // end anonymous namespace
7039
7040SwitchReplacement::SwitchReplacement(
7041 Module &M, uint64_t TableSize, ConstantInt *Offset,
7042 const SmallVectorImpl<std::pair<ConstantInt *, Constant *>> &Values,
7043 Constant *DefaultValue, const DataLayout &DL,
7044 const TargetTransformInfo &TTI, const StringRef &FuncName)
7045 : DefaultValue(DefaultValue) {
7046 assert(Values.size() && "Can't build lookup table without values!");
7047 assert(TableSize >= Values.size() && "Can't fit values in table!");
7048
7049 // If all values in the table are equal, this is that value.
7050 SingleValue = Values.begin()->second;
7051
7052 ValueType = Values.begin()->second->getType();
7053
7054 // Build up the table contents.
7055 SmallVector<Constant *, 64> TableContents(TableSize);
7056 for (const auto &[CaseVal, CaseRes] : Values) {
7057 assert(CaseRes->getType() == ValueType);
7058
7059 uint64_t Idx = (CaseVal->getValue() - Offset->getValue()).getLimitedValue();
7060 TableContents[Idx] = CaseRes;
7061
7062 if (SingleValue && !isa<PoisonValue>(CaseRes) && CaseRes != SingleValue)
7063 SingleValue = isa<PoisonValue>(SingleValue) ? CaseRes : nullptr;
7064 }
7065
7066 // Fill in any holes in the table with the default result.
7067 if (Values.size() < TableSize) {
7068 assert(DefaultValue &&
7069 "Need a default value to fill the lookup table holes.");
7070 assert(DefaultValue->getType() == ValueType);
7071 for (uint64_t I = 0; I < TableSize; ++I) {
7072 if (!TableContents[I])
7073 TableContents[I] = DefaultValue;
7074 }
7075
7076 // If the default value is poison, all the holes are poison.
7077 bool DefaultValueIsPoison = isa<PoisonValue>(DefaultValue);
7078
7079 if (DefaultValue != SingleValue && !DefaultValueIsPoison)
7080 SingleValue = nullptr;
7081 }
7082
7083 // If each element in the table contains the same value, we only need to store
7084 // that single value.
7085 if (SingleValue) {
7086 Kind = SingleValueKind;
7087 return;
7088 }
7089
7090 // Check if we can derive the value with a linear transformation from the
7091 // table index.
7093 bool LinearMappingPossible = true;
7094 APInt PrevVal;
7095 APInt DistToPrev;
7096 // When linear map is monotonic and signed overflow doesn't happen on
7097 // maximum index, we can attach nsw on Add and Mul.
7098 bool NonMonotonic = false;
7099 assert(TableSize >= 2 && "Should be a SingleValue table.");
7100 // Check if there is the same distance between two consecutive values.
7101 for (uint64_t I = 0; I < TableSize; ++I) {
7102 ConstantInt *ConstVal = dyn_cast<ConstantInt>(TableContents[I]);
7103
7104 if (!ConstVal && isa<PoisonValue>(TableContents[I])) {
7105 // This is an poison, so it's (probably) a lookup table hole.
7106 // To prevent any regressions from before we switched to using poison as
7107 // the default value, holes will fall back to using the first value.
7108 // This can be removed once we add proper handling for poisons in lookup
7109 // tables.
7110 ConstVal = dyn_cast<ConstantInt>(Values[0].second);
7111 }
7112
7113 if (!ConstVal) {
7114 // This is an undef. We could deal with it, but undefs in lookup tables
7115 // are very seldom. It's probably not worth the additional complexity.
7116 LinearMappingPossible = false;
7117 break;
7118 }
7119 const APInt &Val = ConstVal->getValue();
7120 if (I != 0) {
7121 APInt Dist = Val - PrevVal;
7122 if (I == 1) {
7123 DistToPrev = Dist;
7124 } else if (Dist != DistToPrev) {
7125 LinearMappingPossible = false;
7126 break;
7127 }
7128 NonMonotonic |=
7129 Dist.isStrictlyPositive() ? Val.sle(PrevVal) : Val.sgt(PrevVal);
7130 }
7131 PrevVal = Val;
7132 }
7133 if (LinearMappingPossible) {
7134 LinearOffset = cast<ConstantInt>(TableContents[0]);
7135 LinearMultiplier = ConstantInt::get(M.getContext(), DistToPrev);
7136 APInt M = LinearMultiplier->getValue();
7137 bool MayWrap = true;
7138 if (isIntN(M.getBitWidth(), TableSize - 1))
7139 (void)M.smul_ov(APInt(M.getBitWidth(), TableSize - 1), MayWrap);
7140 LinearMapValWrapped = NonMonotonic || MayWrap;
7141 Kind = LinearMapKind;
7142 return;
7143 }
7144 }
7145
7146 // If the type is integer and the table fits in a register, build a bitmap.
7147 if (wouldFitInRegister(DL, TableSize, ValueType)) {
7149 APInt TableInt(TableSize * IT->getBitWidth(), 0);
7150 for (uint64_t I = TableSize; I > 0; --I) {
7151 TableInt <<= IT->getBitWidth();
7152 // Insert values into the bitmap. Undef values are set to zero.
7153 if (!isa<UndefValue>(TableContents[I - 1])) {
7154 ConstantInt *Val = cast<ConstantInt>(TableContents[I - 1]);
7155 TableInt |= Val->getValue().zext(TableInt.getBitWidth());
7156 }
7157 }
7158 BitMap = ConstantInt::get(M.getContext(), TableInt);
7159 BitMapElementTy = IT;
7160 Kind = BitMapKind;
7161 return;
7162 }
7163
7164 if (auto *IT = dyn_cast<IntegerType>(ValueType)) {
7165 ConstantRange Range(IT->getBitWidth(), false);
7166 for (Constant *Value : TableContents)
7167 if (!isa<UndefValue>(Value))
7168 Range = Range.unionWith(cast<ConstantInt>(Value)->getValue());
7169 // TODO: handle sign extension as well?
7170 unsigned NeededBitWidth =
7171 std::max(TTI.getMinimumLookupTableEntryBitWidth(),
7172 unsigned(PowerOf2Ceil(Range.getActiveBits())));
7173 if (NeededBitWidth < IT->getBitWidth()) {
7174 IntegerType *DstTy = IntegerType::get(IT->getContext(), NeededBitWidth);
7175 for (Constant *&Value : TableContents)
7176 Value = ConstantFoldCastInstruction(Instruction::Trunc, Value, DstTy);
7177 }
7178 }
7179
7180 // Store the table in an array.
7181 auto *TableTy = ArrayType::get(TableContents[0]->getType(), TableSize);
7182 Initializer = ConstantArray::get(TableTy, TableContents);
7183
7184 Kind = LookupTableKind;
7185}
7186
7187Value *SwitchReplacement::replaceSwitch(Value *Index, IRBuilder<> &Builder,
7188 const DataLayout &DL, Function *Func) {
7189 switch (Kind) {
7190 case SingleValueKind:
7191 return SingleValue;
7192 case LinearMapKind: {
7193 ++NumLinearMaps;
7194 // Derive the result value from the input value.
7195 Value *Result = Builder.CreateIntCast(Index, LinearMultiplier->getType(),
7196 false, "switch.idx.cast");
7197 if (!LinearMultiplier->isOne())
7198 Result = Builder.CreateMul(Result, LinearMultiplier, "switch.idx.mult",
7199 /*HasNUW = */ false,
7200 /*HasNSW = */ !LinearMapValWrapped);
7201
7202 if (!LinearOffset->isZero())
7203 Result = Builder.CreateAdd(Result, LinearOffset, "switch.offset",
7204 /*HasNUW = */ false,
7205 /*HasNSW = */ !LinearMapValWrapped);
7206 return Result;
7207 }
7208 case BitMapKind: {
7209 ++NumBitMaps;
7210 // Type of the bitmap (e.g. i59).
7211 IntegerType *MapTy = BitMap->getIntegerType();
7212
7213 // Cast Index to the same type as the bitmap.
7214 // Note: The Index is <= the number of elements in the table, so
7215 // truncating it to the width of the bitmask is safe.
7216 Value *ShiftAmt = Builder.CreateZExtOrTrunc(Index, MapTy, "switch.cast");
7217
7218 // Multiply the shift amount by the element width. NUW/NSW can always be
7219 // set, because wouldFitInRegister guarantees Index * ShiftAmt is in
7220 // BitMap's bit width.
7221 ShiftAmt = Builder.CreateMul(
7222 ShiftAmt, ConstantInt::get(MapTy, BitMapElementTy->getBitWidth()),
7223 "switch.shiftamt",/*HasNUW =*/true,/*HasNSW =*/true);
7224
7225 // Shift down.
7226 Value *DownShifted =
7227 Builder.CreateLShr(BitMap, ShiftAmt, "switch.downshift");
7228 // Mask off.
7229 return Builder.CreateTrunc(DownShifted, BitMapElementTy, "switch.masked");
7230 }
7231 case LookupTableKind: {
7232 ++NumLookupTables;
7233 auto *Table =
7234 new GlobalVariable(*Func->getParent(), Initializer->getType(),
7235 /*isConstant=*/true, GlobalVariable::PrivateLinkage,
7236 Initializer, "switch.table." + Func->getName());
7237 Table->setUnnamedAddr(GlobalValue::UnnamedAddr::Global);
7238 // Set the alignment to that of an array items. We will be only loading one
7239 // value out of it.
7240 Table->setAlignment(DL.getPrefTypeAlign(ValueType));
7241 Type *IndexTy = DL.getIndexType(Table->getType());
7242 auto *ArrayTy = cast<ArrayType>(Table->getValueType());
7243
7244 if (Index->getType() != IndexTy) {
7245 unsigned OldBitWidth = Index->getType()->getIntegerBitWidth();
7246 Index = Builder.CreateZExtOrTrunc(Index, IndexTy);
7247 if (auto *Zext = dyn_cast<ZExtInst>(Index))
7248 Zext->setNonNeg(
7249 isUIntN(OldBitWidth - 1, ArrayTy->getNumElements() - 1));
7250 }
7251
7252 Value *GEPIndices[] = {ConstantInt::get(IndexTy, 0), Index};
7253 Value *GEP =
7254 Builder.CreateInBoundsGEP(ArrayTy, Table, GEPIndices, "switch.gep");
7255 Value *Load =
7256 Builder.CreateLoad(ArrayTy->getElementType(), GEP, "switch.load");
7257 if (Load->getType() == ValueType)
7258 return Load;
7259 return Builder.CreateZExt(Load, ValueType, "switch.ext");
7260 }
7261 }
7262 llvm_unreachable("Unknown helper kind!");
7263}
7264
7265bool SwitchReplacement::wouldFitInRegister(const DataLayout &DL,
7266 uint64_t TableSize,
7267 Type *ElementType) {
7268 auto *IT = dyn_cast<IntegerType>(ElementType);
7269 if (!IT)
7270 return false;
7271 // FIXME: If the type is wider than it needs to be, e.g. i8 but all values
7272 // are <= 15, we could try to narrow the type.
7273
7274 // Avoid overflow, fitsInLegalInteger uses unsigned int for the width.
7275 if (TableSize >= UINT_MAX / IT->getBitWidth())
7276 return false;
7277 return DL.fitsInLegalInteger(TableSize * IT->getBitWidth());
7278}
7279
7281 const DataLayout &DL) {
7282 // Allow any legal type.
7283 if (TTI.isTypeLegal(Ty))
7284 return true;
7285
7286 auto *IT = dyn_cast<IntegerType>(Ty);
7287 if (!IT)
7288 return false;
7289
7290 // Also allow power of 2 integer types that have at least 8 bits and fit in
7291 // a register. These types are common in frontend languages and targets
7292 // usually support loads of these types.
7293 // TODO: We could relax this to any integer that fits in a register and rely
7294 // on ABI alignment and padding in the table to allow the load to be widened.
7295 // Or we could widen the constants and truncate the load.
7296 unsigned BitWidth = IT->getBitWidth();
7297 return BitWidth >= 8 && isPowerOf2_32(BitWidth) &&
7298 DL.fitsInLegalInteger(IT->getBitWidth());
7299}
7300
7301Constant *SwitchReplacement::getDefaultValue() { return DefaultValue; }
7302
7303bool SwitchReplacement::isLookupTable() { return Kind == LookupTableKind; }
7304
7305bool SwitchReplacement::isBitMap() { return Kind == BitMapKind; }
7306
7307static bool isSwitchDense(uint64_t NumCases, uint64_t CaseRange, bool OptSize) {
7308 // 40% is the default density for building a jump table in optsize/minsize
7309 // mode, 10% is the default density for jump tables. See also
7310 // TargetLoweringBase::isSuitableForJumpTable(), which this function was based
7311 // on.
7312 const uint64_t MinDensity = OptSize ? 40 : 10;
7313
7314 if (CaseRange >= UINT64_MAX / 100)
7315 return false; // Avoid multiplication overflows below.
7316
7317 return NumCases * 100 >= CaseRange * MinDensity;
7318}
7319
7320static bool isSwitchDense(ArrayRef<int64_t> Values, bool OptSize) {
7321 uint64_t Diff = (uint64_t)Values.back() - (uint64_t)Values.front();
7322 uint64_t Range = Diff + 1;
7323 if (Range < Diff)
7324 return false; // Overflow.
7325
7326 return isSwitchDense(Values.size(), Range, OptSize);
7327}
7328
7329static std::optional<unsigned>
7331 bool OptSize) {
7332 assert(Values.size() > 1 && "expected multiple switch cases");
7333 if (!llvm::all_of(Values, [Base](int64_t V) { return V >= Base; }))
7334 return std::nullopt;
7335
7336 // First, transform the values by subtracting Base.
7337 SmallVector<int64_t, 4> ReducedValues(Values);
7338 uint64_t ReducedValuesOr = 0;
7339 for (auto &V : ReducedValues) {
7340 uint64_t Reduced = (uint64_t)V - (uint64_t)Base;
7341 ReducedValuesOr |= Reduced;
7342 V = (int64_t)Reduced;
7343 }
7344
7345 // Conceptually, the reduced values are non-negative distances from Base.
7346 // Since the rest of the transform is bitwise only, treat them as unsigned
7347 // bit patterns from here.
7348
7349 // countr_zero(0) returns 64. As Values is guaranteed to have more than
7350 // one element and LLVM disallows duplicate cases, ReducedValuesOr will
7351 // have at least one bit set, so Shift will be less than 64.
7352 unsigned Shift = llvm::countr_zero(ReducedValuesOr);
7353 assert(Shift < 64);
7354 if (Shift > 0)
7355 for (auto &V : ReducedValues)
7356 V = (int64_t)((uint64_t)V >> Shift);
7357
7358 if (!isSwitchDense(ReducedValues, OptSize))
7359 return std::nullopt;
7360
7361 return Shift;
7362}
7363
7364/// Determine whether a lookup table should be built for this switch, based on
7365/// the number of cases, size of the table, and the types of the results.
7366// TODO: We could support larger than legal types by limiting based on the
7367// number of loads required and/or table size. If the constants are small we
7368// could use smaller table entries and extend after the load.
7370 const TargetTransformInfo &TTI,
7371 const DataLayout &DL,
7372 const SmallVector<Type *> &ResultTypes) {
7373 if (SI->getNumCases() > TableSize)
7374 return false; // TableSize overflowed.
7375
7376 bool AllTablesFitInRegister = true;
7377 bool HasIllegalType = false;
7378 for (const auto &Ty : ResultTypes) {
7379 // Saturate this flag to true.
7380 HasIllegalType = HasIllegalType || !isTypeLegalForLookupTable(Ty, TTI, DL);
7381
7382 // Saturate this flag to false.
7383 AllTablesFitInRegister =
7384 AllTablesFitInRegister &&
7385 SwitchReplacement::wouldFitInRegister(DL, TableSize, Ty);
7386
7387 // If both flags saturate, we're done. NOTE: This *only* works with
7388 // saturating flags, and all flags have to saturate first due to the
7389 // non-deterministic behavior of iterating over a dense map.
7390 if (HasIllegalType && !AllTablesFitInRegister)
7391 break;
7392 }
7393
7394 // If each table would fit in a register, we should build it anyway.
7395 if (AllTablesFitInRegister)
7396 return true;
7397
7398 // Don't build a table that doesn't fit in-register if it has illegal types.
7399 if (HasIllegalType)
7400 return false;
7401
7402 return isSwitchDense(SI->getNumCases(), TableSize,
7403 SI->getFunction()->hasOptSize());
7404}
7405
7407 ConstantInt &MinCaseVal, const ConstantInt &MaxCaseVal,
7408 bool HasDefaultResults, const SmallVector<Type *> &ResultTypes,
7409 const DataLayout &DL, const TargetTransformInfo &TTI) {
7410 if (MinCaseVal.isNullValue())
7411 return true;
7412 if (MinCaseVal.isNegative() ||
7413 MaxCaseVal.getLimitedValue() == std::numeric_limits<uint64_t>::max() ||
7414 !HasDefaultResults)
7415 return false;
7416 return all_of(ResultTypes, [&](const auto &ResultType) {
7417 return SwitchReplacement::wouldFitInRegister(
7418 DL, MaxCaseVal.getLimitedValue() + 1 /* TableSize */, ResultType);
7419 });
7420}
7421
7422/// Try to reuse the switch table index compare. Following pattern:
7423/// \code
7424/// if (idx < tablesize)
7425/// r = table[idx]; // table does not contain default_value
7426/// else
7427/// r = default_value;
7428/// if (r != default_value)
7429/// ...
7430/// \endcode
7431/// Is optimized to:
7432/// \code
7433/// cond = idx < tablesize;
7434/// if (cond)
7435/// r = table[idx];
7436/// else
7437/// r = default_value;
7438/// if (cond)
7439/// ...
7440/// \endcode
7441/// Jump threading will then eliminate the second if(cond).
7443 User *PhiUser, BasicBlock *PhiBlock, CondBrInst *RangeCheckBranch,
7444 Constant *DefaultValue,
7445 const SmallVectorImpl<std::pair<ConstantInt *, Constant *>> &Values) {
7447 if (!CmpInst)
7448 return;
7449
7450 // We require that the compare is in the same block as the phi so that jump
7451 // threading can do its work afterwards.
7452 if (CmpInst->getParent() != PhiBlock)
7453 return;
7454
7456 if (!CmpOp1)
7457 return;
7458
7459 Value *RangeCmp = RangeCheckBranch->getCondition();
7460 Constant *TrueConst = ConstantInt::getTrue(RangeCmp->getType());
7461 Constant *FalseConst = ConstantInt::getFalse(RangeCmp->getType());
7462
7463 // Check if the compare with the default value is constant true or false.
7464 const DataLayout &DL = PhiBlock->getDataLayout();
7466 CmpInst->getPredicate(), DefaultValue, CmpOp1, DL);
7467 if (DefaultConst != TrueConst && DefaultConst != FalseConst)
7468 return;
7469
7470 // Check if the compare with the case values is distinct from the default
7471 // compare result.
7472 for (auto ValuePair : Values) {
7474 CmpInst->getPredicate(), ValuePair.second, CmpOp1, DL);
7475 if (!CaseConst || CaseConst == DefaultConst ||
7476 (CaseConst != TrueConst && CaseConst != FalseConst))
7477 return;
7478 }
7479
7480 // Check if the branch instruction dominates the phi node. It's a simple
7481 // dominance check, but sufficient for our needs.
7482 // Although this check is invariant in the calling loops, it's better to do it
7483 // at this late stage. Practically we do it at most once for a switch.
7484 BasicBlock *BranchBlock = RangeCheckBranch->getParent();
7485 for (BasicBlock *Pred : predecessors(PhiBlock)) {
7486 if (Pred != BranchBlock && Pred->getUniquePredecessor() != BranchBlock)
7487 return;
7488 }
7489
7490 if (DefaultConst == FalseConst) {
7491 // The compare yields the same result. We can replace it.
7492 CmpInst->replaceAllUsesWith(RangeCmp);
7493 ++NumTableCmpReuses;
7494 } else {
7495 // The compare yields the same result, just inverted. We can replace it.
7496 Value *InvertedTableCmp = BinaryOperator::CreateXor(
7497 RangeCmp, ConstantInt::get(RangeCmp->getType(), 1), "inverted.cmp",
7498 RangeCheckBranch->getIterator());
7499 CmpInst->replaceAllUsesWith(InvertedTableCmp);
7500 ++NumTableCmpReuses;
7501 }
7502}
7503
7504/// If the switch is only used to initialize one or more phi nodes in a common
7505/// successor block with different constant values, replace the switch with
7506/// lookup tables.
7508 DomTreeUpdater *DTU, const DataLayout &DL,
7509 const TargetTransformInfo &TTI,
7510 bool ConvertSwitchToLookupTable) {
7511 assert(SI->getNumCases() > 1 && "Degenerate switch?");
7512
7513 BasicBlock *BB = SI->getParent();
7514 Function *Fn = BB->getParent();
7515
7516 // FIXME: If the switch is too sparse for a lookup table, perhaps we could
7517 // split off a dense part and build a lookup table for that.
7518
7519 // FIXME: This creates arrays of GEPs to constant strings, which means each
7520 // GEP needs a runtime relocation in PIC code. We should just build one big
7521 // string and lookup indices into that.
7522
7523 // Ignore switches with less than three cases. Lookup tables will not make
7524 // them faster, so we don't analyze them.
7525 if (SI->getNumCases() < 3)
7526 return false;
7527
7528 // Figure out the corresponding result for each case value and phi node in the
7529 // common destination, as well as the min and max case values.
7530 assert(!SI->cases().empty());
7531 SwitchInst::CaseIt CI = SI->case_begin();
7532 ConstantInt *MinCaseVal = CI->getCaseValue();
7533 ConstantInt *MaxCaseVal = CI->getCaseValue();
7534
7535 BasicBlock *CommonDest = nullptr;
7536
7537 using ResultListTy = SmallVector<std::pair<ConstantInt *, Constant *>, 4>;
7539
7541 SmallVector<Type *> ResultTypes;
7543
7544 for (SwitchInst::CaseIt E = SI->case_end(); CI != E; ++CI) {
7545 ConstantInt *CaseVal = CI->getCaseValue();
7546 if (CaseVal->getValue().slt(MinCaseVal->getValue()))
7547 MinCaseVal = CaseVal;
7548 if (CaseVal->getValue().sgt(MaxCaseVal->getValue()))
7549 MaxCaseVal = CaseVal;
7550
7551 // Resulting value at phi nodes for this case value.
7553 ResultsTy Results;
7554 if (!getCaseResults(SI, CaseVal, CI->getCaseSuccessor(), &CommonDest,
7555 Results, DL, TTI))
7556 return false;
7557
7558 // Append the result and result types from this case to the list for each
7559 // phi.
7560 for (const auto &I : Results) {
7561 PHINode *PHI = I.first;
7562 Constant *Value = I.second;
7563 auto [It, Inserted] = ResultLists.try_emplace(PHI);
7564 if (Inserted)
7565 PHIs.push_back(PHI);
7566 It->second.push_back(std::make_pair(CaseVal, Value));
7567 ResultTypes.push_back(PHI->getType());
7568 }
7569 }
7570
7571 // If the table has holes, we need a constant result for the default case
7572 // or a bitmask that fits in a register.
7573 SmallVector<std::pair<PHINode *, Constant *>, 4> DefaultResultsList;
7574 bool HasDefaultResults =
7575 getCaseResults(SI, nullptr, SI->getDefaultDest(), &CommonDest,
7576 DefaultResultsList, DL, TTI);
7577 for (const auto &I : DefaultResultsList) {
7578 PHINode *PHI = I.first;
7579 Constant *Result = I.second;
7580 DefaultResults[PHI] = Result;
7581 }
7582
7583 bool UseSwitchConditionAsTableIndex = shouldUseSwitchConditionAsTableIndex(
7584 *MinCaseVal, *MaxCaseVal, HasDefaultResults, ResultTypes, DL, TTI);
7585 uint64_t TableSize;
7586 ConstantInt *TableIndexOffset;
7587 if (UseSwitchConditionAsTableIndex) {
7588 TableSize = MaxCaseVal->getLimitedValue() + 1;
7589 TableIndexOffset = ConstantInt::get(MaxCaseVal->getIntegerType(), 0);
7590 } else {
7591 TableSize =
7592 (MaxCaseVal->getValue() - MinCaseVal->getValue()).getLimitedValue() + 1;
7593
7594 TableIndexOffset = MinCaseVal;
7595 }
7596
7597 // If the default destination is unreachable, or if the lookup table covers
7598 // all values of the conditional variable, branch directly to the lookup table
7599 // BB. Otherwise, check that the condition is within the case range.
7600 uint64_t NumResults = ResultLists[PHIs[0]].size();
7601 bool DefaultIsReachable = !SI->defaultDestUnreachable();
7602
7603 bool TableHasHoles = (NumResults < TableSize);
7604
7605 // If the table has holes but the default destination doesn't produce any
7606 // constant results, the lookup table entries corresponding to the holes will
7607 // contain poison.
7608 bool AllHolesArePoison = TableHasHoles && !HasDefaultResults;
7609
7610 // If the default destination doesn't produce a constant result but is still
7611 // reachable, and the lookup table has holes, we need to use a mask to
7612 // determine if the current index should load from the lookup table or jump
7613 // to the default case.
7614 // The mask is unnecessary if the table has holes but the default destination
7615 // is unreachable, as in that case the holes must also be unreachable.
7616 bool NeedMask = AllHolesArePoison && DefaultIsReachable;
7617 if (NeedMask) {
7618 // As an extra penalty for the validity test we require more cases.
7619 if (SI->getNumCases() < 4) // FIXME: Find best threshold value (benchmark).
7620 return false;
7621 if (!DL.fitsInLegalInteger(TableSize))
7622 return false;
7623 }
7624
7625 if (!shouldBuildLookupTable(SI, TableSize, TTI, DL, ResultTypes))
7626 return false;
7627
7628 // Compute the table index value.
7629 Value *TableIndex;
7630 if (UseSwitchConditionAsTableIndex) {
7631 TableIndex = SI->getCondition();
7632 if (HasDefaultResults) {
7633 // Grow the table to cover all possible index values to avoid the range
7634 // check. It will use the default result to fill in the table hole later,
7635 // so make sure it exist.
7636 ConstantRange CR = computeConstantRange(TableIndex, /*ForSigned=*/false,
7637 SimplifyQuery(DL));
7638 // Grow the table shouldn't have any size impact by checking
7639 // wouldFitInRegister.
7640 // TODO: Consider growing the table also when it doesn't fit in a register
7641 // if no optsize is specified.
7642 const uint64_t UpperBound = CR.getUpper().getLimitedValue();
7643 if (!CR.isUpperWrapped() &&
7644 all_of(ResultTypes, [&](const auto &ResultType) {
7645 return SwitchReplacement::wouldFitInRegister(DL, UpperBound,
7646 ResultType);
7647 })) {
7648 // There may be some case index larger than the UpperBound (unreachable
7649 // case), so make sure the table size does not get smaller.
7650 TableSize = std::max(UpperBound, TableSize);
7651 // The default branch is unreachable after we enlarge the lookup table.
7652 // Adjust DefaultIsReachable to reuse code path.
7653 DefaultIsReachable = false;
7654 }
7655 }
7656 }
7657
7658 // Keep track of the switch replacement for each phi
7660 for (PHINode *PHI : PHIs) {
7661 const auto &ResultList = ResultLists[PHI];
7662
7663 Type *ResultType = ResultList.begin()->second->getType();
7664 // Use any value to fill the lookup table holes.
7665 Constant *DefaultVal =
7666 AllHolesArePoison ? PoisonValue::get(ResultType) : DefaultResults[PHI];
7667 StringRef FuncName = Fn->getName();
7668 SwitchReplacement Replacement(*Fn->getParent(), TableSize, TableIndexOffset,
7669 ResultList, DefaultVal, DL, TTI, FuncName);
7670 PhiToReplacementMap.insert({PHI, Replacement});
7671 }
7672
7673 bool AnyLookupTables = any_of(
7674 PhiToReplacementMap, [](auto &KV) { return KV.second.isLookupTable(); });
7675 bool AnyBitMaps = any_of(PhiToReplacementMap,
7676 [](auto &KV) { return KV.second.isBitMap(); });
7677
7678 // A few conditions prevent the generation of lookup tables:
7679 // 1. The target does not support lookup tables.
7680 // 2. The "no-jump-tables" function attribute is set.
7681 // However, these objections do not apply to other switch replacements, like
7682 // the bitmap, so we only stop here if any of these conditions are met and we
7683 // want to create a LUT. Otherwise, continue with the switch replacement.
7684 if (AnyLookupTables &&
7685 (!TTI.shouldBuildLookupTables() ||
7686 Fn->getFnAttribute("no-jump-tables").getValueAsBool()))
7687 return false;
7688
7689 // In the early optimization pipeline, disable formation of lookup tables,
7690 // bit maps and mask checks, as they may inhibit further optimization.
7691 if (!ConvertSwitchToLookupTable &&
7692 (AnyLookupTables || AnyBitMaps || NeedMask))
7693 return false;
7694
7695 Builder.SetInsertPoint(SI);
7696 // TableIndex is the switch condition - TableIndexOffset if we don't
7697 // use the condition directly
7698 if (!UseSwitchConditionAsTableIndex) {
7699 // If the default is unreachable, all case values are s>= MinCaseVal. Then
7700 // we can try to attach nsw.
7701 bool MayWrap = true;
7702 if (!DefaultIsReachable) {
7703 APInt Res =
7704 MaxCaseVal->getValue().ssub_ov(MinCaseVal->getValue(), MayWrap);
7705 (void)Res;
7706 }
7707 TableIndex = Builder.CreateSub(SI->getCondition(), TableIndexOffset,
7708 "switch.tableidx", /*HasNUW =*/false,
7709 /*HasNSW =*/!MayWrap);
7710 }
7711
7712 std::vector<DominatorTree::UpdateType> Updates;
7713
7714 // Compute the maximum table size representable by the integer type we are
7715 // switching upon.
7716 unsigned CaseSize = MinCaseVal->getType()->getPrimitiveSizeInBits();
7717 uint64_t MaxTableSize = CaseSize > 63 ? UINT64_MAX : 1ULL << CaseSize;
7718 assert(MaxTableSize >= TableSize &&
7719 "It is impossible for a switch to have more entries than the max "
7720 "representable value of its input integer type's size.");
7721
7722 // Create the BB that does the lookups.
7723 Module &Mod = *CommonDest->getParent()->getParent();
7724 BasicBlock *LookupBB = BasicBlock::Create(
7725 Mod.getContext(), "switch.lookup", CommonDest->getParent(), CommonDest);
7726
7727 CondBrInst *RangeCheckBranch = nullptr;
7728 CondBrInst *CondBranch = nullptr;
7729
7730 Builder.SetInsertPoint(SI);
7731 const bool GeneratingCoveredLookupTable = (MaxTableSize == TableSize);
7732 if (!DefaultIsReachable || GeneratingCoveredLookupTable) {
7733 Builder.CreateBr(LookupBB);
7734 if (DTU)
7735 Updates.push_back({DominatorTree::Insert, BB, LookupBB});
7736 // Note: We call removeProdecessor later since we need to be able to get the
7737 // PHI value for the default case in case we're using a bit mask.
7738 } else {
7739 Value *Cmp = Builder.CreateICmpULT(
7740 TableIndex, ConstantInt::get(MinCaseVal->getType(), TableSize));
7741 RangeCheckBranch =
7742 Builder.CreateCondBr(Cmp, LookupBB, SI->getDefaultDest());
7743 CondBranch = RangeCheckBranch;
7744 if (DTU)
7745 Updates.push_back({DominatorTree::Insert, BB, LookupBB});
7746 }
7747
7748 // Populate the BB that does the lookups.
7749 Builder.SetInsertPoint(LookupBB);
7750
7751 if (NeedMask) {
7752 // Before doing the lookup, we do the hole check. The LookupBB is therefore
7753 // re-purposed to do the hole check, and we create a new LookupBB.
7754 BasicBlock *MaskBB = LookupBB;
7755 MaskBB->setName("switch.hole_check");
7756 LookupBB = BasicBlock::Create(Mod.getContext(), "switch.lookup",
7757 CommonDest->getParent(), CommonDest);
7758
7759 // Make the mask's bitwidth at least 8-bit and a power-of-2 to avoid
7760 // unnecessary illegal types.
7761 uint64_t TableSizePowOf2 = NextPowerOf2(std::max(7ULL, TableSize - 1ULL));
7762 APInt MaskInt(TableSizePowOf2, 0);
7763 APInt One(TableSizePowOf2, 1);
7764 // Build bitmask; fill in a 1 bit for every case.
7765 const ResultListTy &ResultList = ResultLists[PHIs[0]];
7766 for (const auto &Result : ResultList) {
7767 uint64_t Idx = (Result.first->getValue() - TableIndexOffset->getValue())
7768 .getLimitedValue();
7769 MaskInt |= One << Idx;
7770 }
7771 ConstantInt *TableMask = ConstantInt::get(Mod.getContext(), MaskInt);
7772
7773 // Get the TableIndex'th bit of the bitmask.
7774 // If this bit is 0 (meaning hole) jump to the default destination,
7775 // else continue with table lookup.
7776 IntegerType *MapTy = TableMask->getIntegerType();
7777 Value *MaskIndex =
7778 Builder.CreateZExtOrTrunc(TableIndex, MapTy, "switch.maskindex");
7779 Value *Shifted = Builder.CreateLShr(TableMask, MaskIndex, "switch.shifted");
7780 Value *LoBit = Builder.CreateTrunc(
7781 Shifted, Type::getInt1Ty(Mod.getContext()), "switch.lobit");
7782 CondBranch = Builder.CreateCondBr(LoBit, LookupBB, SI->getDefaultDest());
7783 if (DTU) {
7784 Updates.push_back({DominatorTree::Insert, MaskBB, LookupBB});
7785 Updates.push_back({DominatorTree::Insert, MaskBB, SI->getDefaultDest()});
7786 }
7787 Builder.SetInsertPoint(LookupBB);
7788 addPredecessorToBlock(SI->getDefaultDest(), MaskBB, BB);
7789 }
7790
7791 if (!DefaultIsReachable || GeneratingCoveredLookupTable) {
7792 // We cached PHINodes in PHIs. To avoid accessing deleted PHINodes later,
7793 // do not delete PHINodes here.
7794 SI->getDefaultDest()->removePredecessor(BB,
7795 /*KeepOneInputPHIs=*/true);
7796 if (DTU)
7797 Updates.push_back({DominatorTree::Delete, BB, SI->getDefaultDest()});
7798 }
7799
7800 for (PHINode *PHI : PHIs) {
7801 const ResultListTy &ResultList = ResultLists[PHI];
7802 auto Replacement = PhiToReplacementMap.at(PHI);
7803 auto *Result = Replacement.replaceSwitch(TableIndex, Builder, DL, Fn);
7804 // Do a small peephole optimization: re-use the switch table compare if
7805 // possible.
7806 if (!TableHasHoles && HasDefaultResults && RangeCheckBranch) {
7807 BasicBlock *PhiBlock = PHI->getParent();
7808 // Search for compare instructions which use the phi.
7809 for (auto *User : PHI->users()) {
7810 reuseTableCompare(User, PhiBlock, RangeCheckBranch,
7811 Replacement.getDefaultValue(), ResultList);
7812 }
7813 }
7814
7815 PHI->addIncoming(Result, LookupBB);
7816 }
7817
7818 Builder.CreateBr(CommonDest);
7819 if (DTU)
7820 Updates.push_back({DominatorTree::Insert, LookupBB, CommonDest});
7821
7822 SmallVector<uint32_t> BranchWeights;
7823 const bool HasBranchWeights = CondBranch && !ProfcheckDisableMetadataFixes &&
7824 extractBranchWeights(*SI, BranchWeights);
7825 uint64_t ToLookupWeight = 0;
7826 uint64_t ToDefaultWeight = 0;
7827
7828 // Remove the switch.
7829 SmallPtrSet<BasicBlock *, 8> RemovedSuccessors;
7830 for (unsigned I = 0, E = SI->getNumSuccessors(); I < E; ++I) {
7831 BasicBlock *Succ = SI->getSuccessor(I);
7832
7833 if (Succ == SI->getDefaultDest()) {
7834 if (HasBranchWeights)
7835 ToDefaultWeight += BranchWeights[I];
7836 continue;
7837 }
7838 Succ->removePredecessor(BB);
7839 if (DTU && RemovedSuccessors.insert(Succ).second)
7840 Updates.push_back({DominatorTree::Delete, BB, Succ});
7841 if (HasBranchWeights)
7842 ToLookupWeight += BranchWeights[I];
7843 }
7844 SI->eraseFromParent();
7845 if (HasBranchWeights)
7846 setFittedBranchWeights(*CondBranch, {ToLookupWeight, ToDefaultWeight},
7847 /*IsExpected=*/false);
7848 if (DTU)
7849 DTU->applyUpdates(Updates);
7850
7851 if (NeedMask)
7852 ++NumLookupTablesHoles;
7853 return true;
7854}
7855
7856/// Try to transform a switch that has "holes" in it to a contiguous sequence
7857/// of cases.
7858///
7859/// A switch such as: switch(i) {case 5: case 9: case 13: case 17:} can be
7860/// range-reduced to: switch ((i-5) / 4) {case 0: case 1: case 2: case 3:}.
7861///
7862/// This converts a sparse switch into a dense switch which allows better
7863/// lowering and could also allow transforming into a lookup table.
7865 const DataLayout &DL,
7866 const TargetTransformInfo &TTI) {
7867 auto *CondTy = cast<IntegerType>(SI->getCondition()->getType());
7868 if (CondTy->getIntegerBitWidth() > 64 ||
7869 !DL.fitsInLegalInteger(CondTy->getIntegerBitWidth()))
7870 return false;
7871 // Only bother with this optimization if there are more than 3 switch cases;
7872 // SDAG will only bother creating jump tables for 4 or more cases.
7873 if (SI->getNumCases() < 4)
7874 return false;
7875
7876 // This transform is agnostic to the signedness of the input or case values. We
7877 // can treat the case values as signed or unsigned. We can optimize more common
7878 // cases such as a sequence crossing zero {-4,0,4,8} if we interpret case values
7879 // as signed.
7881 for (const auto &C : SI->cases())
7882 Values.push_back(C.getCaseValue()->getValue().getSExtValue());
7884
7885 // If the switch is already dense, there's nothing useful to do here.
7886 bool OptSize = SI->getFunction()->hasOptSize();
7887 if (isSwitchDense(Values, OptSize))
7888 return false;
7889
7890 // Find a Base and corresponding Shift that results in a dense switch range.
7891 // Values[0] is the local minimum.
7892 int64_t Base = Values[0];
7893 std::optional<unsigned> Shift;
7894 // Prefer Base=0 when shifting out common low zero bits still produces a dense
7895 // range, as this avoids an unnecessary `(condition - local_min)` expression.
7896 // However, avoiding the subtract can leave a wider reduced range than using
7897 // the local minimum, so require Base=0 to satisfy the stricter optsize
7898 // density threshold before falling back to the normal density policy for
7899 // local-min.
7900 if ((Shift = getDenseSwitchRangeReductionShift(Values, /*Base=*/0,
7901 /*OptSize=*/true)))
7902 Base = 0;
7903 else if (Base != 0)
7905
7906 if (!Shift)
7907 return false;
7908
7909 // The obvious transform is to shift the switch condition right and emit a
7910 // check that the condition actually cleanly divided by GCD, i.e.
7911 // C & (1 << Shift - 1) == 0
7912 // inserting a new CFG edge to handle the case where it didn't divide cleanly.
7913 //
7914 // A cheaper way of doing this is a simple ROTR(C, Shift). This performs the
7915 // shift and puts the shifted-off bits in the uppermost bits. If any of these
7916 // are nonzero then the switch condition will be very large and will hit the
7917 // default case.
7918 //
7919 // This transform can be done speculatively because it is so cheap - it
7920 // results in a single rotate operation being inserted.
7921
7922 auto *Ty = cast<IntegerType>(SI->getCondition()->getType());
7923 Builder.SetInsertPoint(SI);
7924 Value *Sub = SI->getCondition();
7925 if (Base != 0)
7926 Sub = Builder.CreateSub(Sub, ConstantInt::getSigned(Ty, Base));
7927 Value *Rot = Builder.CreateIntrinsic(
7928 Ty, Intrinsic::fshl,
7929 {Sub, Sub, ConstantInt::get(Ty, Ty->getBitWidth() - *Shift)});
7930 SI->replaceUsesOfWith(SI->getCondition(), Rot);
7931
7932 for (auto Case : SI->cases()) {
7933 auto *Orig = Case.getCaseValue();
7934 auto Sub = Orig->getValue() - APInt(Ty->getBitWidth(), Base, true);
7935 Case.setValue(cast<ConstantInt>(ConstantInt::get(Ty, Sub.lshr(*Shift))));
7936 }
7937 return true;
7938}
7939
7940/// Tries to transform the switch when the condition is umin with a constant.
7941/// In that case, the default branch can be replaced by the constant's branch.
7942/// This method also removes dead cases when the simplification cannot replace
7943/// the default branch.
7944///
7945/// For example:
7946/// switch(umin(a, 3)) {
7947/// case 0:
7948/// case 1:
7949/// case 2:
7950/// case 3:
7951/// case 4:
7952/// // ...
7953/// default:
7954/// unreachable
7955/// }
7956///
7957/// Transforms into:
7958///
7959/// switch(a) {
7960/// case 0:
7961/// case 1:
7962/// case 2:
7963/// default:
7964/// // This is case 3
7965/// }
7967 Value *A;
7969
7970 if (!match(SI->getCondition(), m_UMin(m_Value(A), m_ConstantInt(Constant))))
7971 return false;
7972
7975 BasicBlock *BB = SIW->getParent();
7976
7977 // Dead cases are removed even when the simplification fails.
7978 // A case is dead when its value is higher than the Constant.
7979 for (auto I = SI->case_begin(), E = SI->case_end(); I != E;) {
7980 if (!I->getCaseValue()->getValue().ugt(Constant->getValue())) {
7981 ++I;
7982 continue;
7983 }
7984 BasicBlock *DeadCaseBB = I->getCaseSuccessor();
7985 DeadCaseBB->removePredecessor(BB);
7986 I = SIW.removeCase(I);
7987 E = SIW->case_end();
7988 if (!is_contained(successors(BB), DeadCaseBB))
7989 Updates.push_back({DominatorTree::Delete, BB, DeadCaseBB});
7990 }
7991
7992 auto Case = SI->findCaseValue(Constant);
7993 // If the case value is not found, `findCaseValue` returns the default case.
7994 // In this scenario, since there is no explicit `case 3:`, the simplification
7995 // fails. The simplification also fails when the switch’s default destination
7996 // is reachable.
7997 if (!SI->defaultDestUnreachable() || Case == SI->case_default()) {
7998 if (DTU)
7999 DTU->applyUpdates(Updates);
8000 return !Updates.empty();
8001 }
8002
8003 BasicBlock *Unreachable = SI->getDefaultDest();
8004 SIW.replaceDefaultDest(Case);
8005 SIW.removeCase(Case);
8006 SIW->setCondition(A);
8007
8008 Updates.push_back({DominatorTree::Delete, BB, Unreachable});
8009
8010 if (DTU)
8011 DTU->applyUpdates(Updates);
8012
8013 return true;
8014}
8015
8017 const DataLayout &DL,
8018 AssumptionCache *AC) {
8019 assert(SI);
8020 if (SI->defaultDestUnreachable())
8021 return false;
8022
8023 // If it can be proved that the switch condition takes some concrete value
8024 // in the default block, we can make some nice simplifications to the
8025 // switch.
8026 BasicBlock *Default = SI->getDefaultDest();
8027 const Instruction *CxtI = &*Default->getFirstNonPHIIt();
8029 SI->getCondition(),
8030 SimplifyQuery(DL, /*DT=*/nullptr, AC, CxtI).allowEphemerals(true));
8031 if (!Known.isConstant())
8032 return false;
8033
8034 // At this point, we know that only one value can be mapped to the
8035 // default block. So, if a case doesn't exist for it already, we
8036 // can create one pointing to the default block.
8037 ConstantInt *CaseVal =
8038 ConstantInt::get(SI->getContext(), Known.getConstant());
8039 const llvm::SwitchInst::CaseIt CaseIt = SI->findCaseValue(CaseVal);
8040 if (CaseIt == SI->case_default()) {
8042 SIW.addCase(CaseVal, Default, SIW.getSuccessorWeight(0));
8043 SIW.setSuccessorWeight(0, 0);
8044 }
8045 // If there is a pre-existing case for the constant, the default branch
8046 // will be removed rather than being moved. Thus, we are removing an edge
8047 // in the CFG, and need to update any PHIs in the default block.
8048 createUnreachableSwitchDefault(SI, DTU, /*RemoveOrigDefaultBlock=*/CaseIt !=
8049 SI->case_default());
8050
8051 assert(SI->getNumCases() > 0 && "Switch should have at least one case");
8052 assert(SI->findCaseValue(CaseVal) != SI->case_default() &&
8053 "Proven value should have a dedicated case");
8054 assert(SI->defaultDestUnreachable());
8055 return true;
8056}
8057
8058/// Tries to transform switch of powers of two to reduce switch range.
8059/// For example, switch like:
8060/// switch (C) { case 1: case 2: case 64: case 128: }
8061/// will be transformed to:
8062/// switch (count_trailing_zeros(C)) { case 0: case 1: case 6: case 7: }
8063///
8064/// This transformation allows better lowering and may transform the switch
8065/// instruction into a sequence of bit manipulation and a smaller
8066/// log2(C)-indexed value table (instead of traditionally emitting a load of the
8067/// address of the jump target, and indirectly jump to it).
8069 DomTreeUpdater *DTU,
8070 const DataLayout &DL,
8071 const TargetTransformInfo &TTI) {
8072 Value *Condition = SI->getCondition();
8073 LLVMContext &Context = SI->getContext();
8074 auto *CondTy = cast<IntegerType>(Condition->getType());
8075
8076 if (CondTy->getIntegerBitWidth() > 64 ||
8077 !DL.fitsInLegalInteger(CondTy->getIntegerBitWidth()))
8078 return false;
8079
8080 // Ensure trailing zeroes count intrinsic emission is not too expensive.
8081 IntrinsicCostAttributes Attrs(Intrinsic::cttz, CondTy,
8082 {Condition, ConstantInt::getTrue(Context)});
8083 if (TTI.getIntrinsicInstrCost(Attrs, TTI::TCK_SizeAndLatency) >
8084 TTI::TCC_Basic * 2)
8085 return false;
8086
8087 // Only bother with this optimization if there are more than 3 switch cases.
8088 // SDAG will start emitting jump tables for 4 or more cases.
8089 if (SI->getNumCases() < 4)
8090 return false;
8091
8092 // Check that switch cases are powers of two.
8094 for (const auto &Case : SI->cases()) {
8095 uint64_t CaseValue = Case.getCaseValue()->getValue().getZExtValue();
8096 if (llvm::has_single_bit(CaseValue))
8097 Values.push_back(CaseValue);
8098 else
8099 return false;
8100 }
8101
8102 // isSwichDense requires case values to be sorted.
8104 if (!isSwitchDense(Values.size(),
8105 llvm::countr_zero(Values.back()) -
8106 llvm::countr_zero(Values.front()) + 1,
8107 SI->getFunction()->hasOptSize()))
8108 // Transform is unable to generate dense switch.
8109 return false;
8110
8111 Builder.SetInsertPoint(SI);
8112
8113 if (!SI->defaultDestUnreachable()) {
8114 // Let non-power-of-two inputs jump to the default case, when the latter is
8115 // reachable.
8116 auto *PopC = Builder.CreateUnaryIntrinsic(Intrinsic::ctpop, Condition);
8117 auto *IsPow2 = Builder.CreateICmpEQ(PopC, ConstantInt::get(CondTy, 1));
8118
8119 auto *OrigBB = SI->getParent();
8120 auto *DefaultCaseBB = SI->getDefaultDest();
8121 BasicBlock *SplitBB = SplitBlock(OrigBB, SI, DTU);
8122 auto It = OrigBB->getTerminator()->getIterator();
8123 SmallVector<uint32_t> Weights;
8124 auto HasWeights =
8126 auto *BI = CondBrInst::Create(IsPow2, SplitBB, DefaultCaseBB, It);
8127 if (HasWeights && any_of(Weights, not_equal_to(0))) {
8128 // IsPow2 covers a subset of the cases in which we'd go to the default
8129 // label. The other is those powers of 2 that don't appear in the case
8130 // statement. We don't know the distribution of the values coming in, so
8131 // the safest is to split 50-50 the original probability to `default`.
8132 uint64_t OrigDenominator =
8134 SmallVector<uint64_t> NewWeights(2);
8135 NewWeights[1] = Weights[0] / 2;
8136 NewWeights[0] = OrigDenominator - NewWeights[1];
8137 setFittedBranchWeights(*BI, NewWeights, /*IsExpected=*/false);
8138 // The probability of executing the default block stays constant. It was
8139 // p_d = Weights[0] / OrigDenominator
8140 // we rewrite as W/D
8141 // We want to find the probability of the default branch of the switch
8142 // statement. Let's call it X. We have W/D = W/2D + X * (1-W/2D)
8143 // i.e. the original probability is the probability we go to the default
8144 // branch from the BI branch, or we take the default branch on the SI.
8145 // Meaning X = W / (2D - W), or (W/2) / (D - W/2)
8146 // This matches using W/2 for the default branch probability numerator and
8147 // D-W/2 as the denominator.
8148 Weights[0] = NewWeights[1];
8149 uint64_t CasesDenominator = OrigDenominator - Weights[0];
8150 for (auto &W : drop_begin(Weights))
8151 W = NewWeights[0] * static_cast<double>(W) / CasesDenominator;
8152
8153 setBranchWeights(*SI, Weights, /*IsExpected=*/false);
8154 }
8155 // BI is handling the default case for SI, and so should share its DebugLoc.
8156 BI->setDebugLoc(SI->getDebugLoc());
8157 It->eraseFromParent();
8158
8159 addPredecessorToBlock(DefaultCaseBB, OrigBB, SplitBB);
8160 if (DTU)
8161 DTU->applyUpdates({{DominatorTree::Insert, OrigBB, DefaultCaseBB}});
8162 }
8163
8164 // Replace each case with its trailing zeros number.
8165 for (auto &Case : SI->cases()) {
8166 auto *OrigValue = Case.getCaseValue();
8167 Case.setValue(ConstantInt::get(OrigValue->getIntegerType(),
8168 OrigValue->getValue().countr_zero()));
8169 }
8170
8171 // Replace condition with its trailing zeros number.
8172 auto *ConditionTrailingZeros = Builder.CreateIntrinsic(
8173 Intrinsic::cttz, {CondTy}, {Condition, ConstantInt::getTrue(Context)});
8174
8175 SI->setCondition(ConditionTrailingZeros);
8176
8177 return true;
8178}
8179
8180/// Fold switch over ucmp/scmp intrinsic to br if two of the switch arms have
8181/// the same destination.
8183 DomTreeUpdater *DTU) {
8184 auto *Cmp = dyn_cast<CmpIntrinsic>(SI->getCondition());
8185 if (!Cmp || !Cmp->hasOneUse())
8186 return false;
8187
8189 bool HasWeights = extractBranchWeights(getBranchWeightMDNode(*SI), Weights);
8190 if (!HasWeights)
8191 Weights.resize(4); // Avoid checking HasWeights everywhere.
8192
8193 // Normalize to [us]cmp == Res ? Succ : OtherSucc.
8194 int64_t Res;
8195 BasicBlock *Succ, *OtherSucc;
8196 uint32_t SuccWeight = 0, OtherSuccWeight = 0;
8197 BasicBlock *Unreachable = nullptr;
8198
8199 if (SI->getNumCases() == 2) {
8200 // Find which of 1, 0 or -1 is missing (handled by default dest).
8201 SmallSet<int64_t, 3> Missing;
8202 Missing.insert(1);
8203 Missing.insert(0);
8204 Missing.insert(-1);
8205
8206 Succ = SI->getDefaultDest();
8207 SuccWeight = Weights[0];
8208 OtherSucc = nullptr;
8209 for (auto &Case : SI->cases()) {
8210 std::optional<int64_t> Val =
8211 Case.getCaseValue()->getValue().trySExtValue();
8212 if (!Val)
8213 return false;
8214 if (!Missing.erase(*Val))
8215 return false;
8216 if (OtherSucc && OtherSucc != Case.getCaseSuccessor())
8217 return false;
8218 OtherSucc = Case.getCaseSuccessor();
8219 OtherSuccWeight += Weights[Case.getSuccessorIndex()];
8220 }
8221
8222 assert(Missing.size() == 1 && "Should have one case left");
8223 Res = *Missing.begin();
8224 } else if (SI->getNumCases() == 3 && SI->defaultDestUnreachable()) {
8225 // Normalize so that Succ is taken once and OtherSucc twice.
8226 Unreachable = SI->getDefaultDest();
8227 Succ = OtherSucc = nullptr;
8228 for (auto &Case : SI->cases()) {
8229 BasicBlock *NewSucc = Case.getCaseSuccessor();
8230 uint32_t Weight = Weights[Case.getSuccessorIndex()];
8231 if (!OtherSucc || OtherSucc == NewSucc) {
8232 OtherSucc = NewSucc;
8233 OtherSuccWeight += Weight;
8234 } else if (!Succ) {
8235 Succ = NewSucc;
8236 SuccWeight = Weight;
8237 } else if (Succ == NewSucc) {
8238 std::swap(Succ, OtherSucc);
8239 std::swap(SuccWeight, OtherSuccWeight);
8240 } else
8241 return false;
8242 }
8243 for (auto &Case : SI->cases()) {
8244 std::optional<int64_t> Val =
8245 Case.getCaseValue()->getValue().trySExtValue();
8246 if (!Val || (Val != 1 && Val != 0 && Val != -1))
8247 return false;
8248 if (Case.getCaseSuccessor() == Succ) {
8249 Res = *Val;
8250 break;
8251 }
8252 }
8253 } else {
8254 return false;
8255 }
8256
8257 // Determine predicate for the missing case.
8259 switch (Res) {
8260 case 1:
8261 Pred = ICmpInst::ICMP_UGT;
8262 break;
8263 case 0:
8264 Pred = ICmpInst::ICMP_EQ;
8265 break;
8266 case -1:
8267 Pred = ICmpInst::ICMP_ULT;
8268 break;
8269 }
8270 if (Cmp->isSigned())
8271 Pred = ICmpInst::getSignedPredicate(Pred);
8272
8273 MDNode *NewWeights = nullptr;
8274 if (HasWeights)
8275 NewWeights = MDBuilder(SI->getContext())
8276 .createBranchWeights(SuccWeight, OtherSuccWeight);
8277
8278 BasicBlock *BB = SI->getParent();
8279 Builder.SetInsertPoint(SI->getIterator());
8280 Value *ICmp = Builder.CreateICmp(Pred, Cmp->getLHS(), Cmp->getRHS());
8281 Builder.CreateCondBr(ICmp, Succ, OtherSucc, NewWeights,
8282 SI->getMetadata(LLVMContext::MD_unpredictable));
8283 OtherSucc->removePredecessor(BB);
8284 if (Unreachable)
8285 Unreachable->removePredecessor(BB);
8286 SI->eraseFromParent();
8287 Cmp->eraseFromParent();
8288 if (DTU && Unreachable)
8289 DTU->applyUpdates({{DominatorTree::Delete, BB, Unreachable}});
8290 return true;
8291}
8292
8293/// Checking whether two BBs are equal depends on the contents of the
8294/// BasicBlock and the incoming values of their successor PHINodes.
8295/// PHINode::getIncomingValueForBlock is O(|Preds|), so we'd like to avoid
8296/// calling this function on each BasicBlock every time isEqual is called,
8297/// especially since the same BasicBlock may be passed as an argument multiple
8298/// times. To do this, we can precompute a map of PHINode -> Pred BasicBlock ->
8299/// IncomingValue and add it in the Wrapper so isEqual can do O(1) checking
8300/// of the incoming values.
8303
8304 // One Phi usually has < 8 incoming values.
8308
8309 // We only merge the identical non-entry BBs with
8310 // - terminator unconditional br to Succ (pending relaxation),
8311 // - does not have address taken / weird control.
8312 static bool canBeMerged(const BasicBlock *BB) {
8313 assert(BB && "Expected non-null BB");
8314 // Entry block cannot be eliminated or have predecessors.
8315 if (BB->isEntryBlock())
8316 return false;
8317
8318 // Single successor and must be Succ.
8319 // FIXME: Relax that the terminator is a BranchInst by checking for equality
8320 // on other kinds of terminators. We decide to only support unconditional
8321 // branches for now for compile time reasons.
8322 auto *BI = dyn_cast<UncondBrInst>(BB->getTerminator());
8323 if (!BI)
8324 return false;
8325
8326 // Avoid blocks that are "address-taken" (blockaddress) or have unusual
8327 // uses.
8328 if (BB->hasAddressTaken() || BB->isEHPad())
8329 return false;
8330
8331 // TODO: relax this condition to merge equal blocks with >1 instructions?
8332 // Here, we use a O(1) form of the O(n) comparison of `size() != 1`.
8333 if (&BB->front() != &BB->back())
8334 return false;
8335
8336 // The BB must have at least one predecessor.
8337 if (pred_empty(BB))
8338 return false;
8339
8340 return true;
8341 }
8342};
8343
8345 static unsigned getHashValue(const EqualBBWrapper *EBW) {
8346 BasicBlock *BB = EBW->BB;
8348 assert(BB->size() == 1 && "Expected just a single branch in the BB");
8349
8350 // Since we assume the BB is just a single UncondBrInst with a single
8351 // successor, we hash as the BB and the incoming Values of its successor
8352 // PHIs. Initially, we tried to just use the successor BB as the hash, but
8353 // including the incoming PHI values leads to better performance.
8354 // We also tried to build a map from BB -> Succs.IncomingValues ahead of
8355 // time and passing it in EqualBBWrapper, but this slowed down the average
8356 // compile time without having any impact on the worst case compile time.
8357 BasicBlock *Succ = BI->getSuccessor();
8358 auto PhiValsForBB = map_range(Succ->phis(), [&](PHINode &Phi) {
8359 return (*EBW->PhiPredIVs)[&Phi][BB];
8360 });
8361 return hash_combine(Succ, hash_combine_range(PhiValsForBB));
8362 }
8363 static bool isEqual(const EqualBBWrapper *LHS, const EqualBBWrapper *RHS) {
8364 BasicBlock *A = LHS->BB;
8365 BasicBlock *B = RHS->BB;
8366
8367 // FIXME: we checked that the size of A and B are both 1 in
8368 // mergeIdenticalUncondBBs to make the Case list smaller to
8369 // improve performance. If we decide to support BasicBlocks with more
8370 // than just a single instruction, we need to check that A.size() ==
8371 // B.size() here, and we need to check more than just the BranchInsts
8372 // for equality.
8373
8374 UncondBrInst *ABI = cast<UncondBrInst>(A->getTerminator());
8375 UncondBrInst *BBI = cast<UncondBrInst>(B->getTerminator());
8376 if (ABI->getSuccessor() != BBI->getSuccessor())
8377 return false;
8378
8379 // Need to check that PHIs in successor have matching values.
8380 BasicBlock *Succ = ABI->getSuccessor();
8381 auto IfPhiIVMatch = [&](PHINode &Phi) {
8382 // Replace O(|Pred|) Phi.getIncomingValueForBlock with this O(1) hashmap
8383 // query.
8384 auto &PredIVs = (*LHS->PhiPredIVs)[&Phi];
8385 return PredIVs[A] == PredIVs[B];
8386 };
8387 return all_of(Succ->phis(), IfPhiIVMatch);
8388 }
8389};
8390
8391// Merge identical BBs into one of them.
8393 DomTreeUpdater *DTU) {
8394 if (Candidates.size() < 2)
8395 return false;
8396
8397 // Build Cases. Skip BBs that are not candidates for simplification. Mark
8398 // PHINodes which need to be processed into PhiPredIVs. We decide to process
8399 // an entire PHI at once after the loop, opposed to calling
8400 // getIncomingValueForBlock inside this loop, since each call to
8401 // getIncomingValueForBlock is O(|Preds|).
8402 EqualBBWrapper::Phi2IVsMap PhiPredIVs;
8404 BBs2Merge.reserve(Candidates.size());
8406
8407 for (BasicBlock *BB : Candidates) {
8408 BasicBlock *Succ = BB->getSingleSuccessor();
8409 assert(Succ && "Expected unconditional BB");
8410 BBs2Merge.emplace_back(EqualBBWrapper{BB, &PhiPredIVs});
8411 Phis.insert_range(make_pointer_range(Succ->phis()));
8412 }
8413
8414 // Precompute a data structure to improve performance of isEqual for
8415 // EqualBBWrapper.
8416 PhiPredIVs.reserve(Phis.size());
8417 for (PHINode *Phi : Phis) {
8418 auto &IVs =
8419 PhiPredIVs.try_emplace(Phi, Phi->getNumIncomingValues()).first->second;
8420 // Pre-fill all incoming for O(1) lookup as Phi.getIncomingValueForBlock is
8421 // O(|Pred|).
8422 for (auto &IV : Phi->incoming_values())
8423 IVs.insert({Phi->getIncomingBlock(IV), IV.get()});
8424 }
8425
8426 // Group duplicates using DenseSet with custom equality/hashing.
8427 // Build a set such that if the EqualBBWrapper exists in the set and another
8428 // EqualBBWrapper isEqual, then the equivalent EqualBBWrapper which is not in
8429 // the set should be replaced with the one in the set. If the EqualBBWrapper
8430 // is not in the set, then it should be added to the set so other
8431 // EqualBBWrapper can check against it in the same manner. We use
8432 // EqualBBWrapper instead of just BasicBlock because we'd like to pass around
8433 // information to isEquality, getHashValue, and when doing the replacement
8434 // with better performance.
8436 Keep.reserve(BBs2Merge.size());
8437
8439 Updates.reserve(BBs2Merge.size() * 2);
8440
8441 bool MadeChange = false;
8442
8443 // Helper: redirect all edges X -> DeadPred to X -> LivePred.
8444 auto RedirectIncomingEdges = [&](BasicBlock *Dead, BasicBlock *Live) {
8447 if (DTU) {
8448 // All predecessors of DeadPred (except the common predecessor) will be
8449 // moved to LivePred.
8450 Updates.reserve(Updates.size() + DeadPreds.size() * 2);
8452 predecessors(Live));
8453 for (BasicBlock *PredOfDead : DeadPreds) {
8454 // Do not modify those common predecessors of DeadPred and LivePred.
8455 if (!LivePreds.contains(PredOfDead))
8456 Updates.push_back({DominatorTree::Insert, PredOfDead, Live});
8457 Updates.push_back({DominatorTree::Delete, PredOfDead, Dead});
8458 }
8459 }
8460 LLVM_DEBUG(dbgs() << "Replacing duplicate pred BB ";
8461 Dead->printAsOperand(dbgs()); dbgs() << " with pred ";
8462 Live->printAsOperand(dbgs()); dbgs() << " for ";
8463 Live->getSingleSuccessor()->printAsOperand(dbgs());
8464 dbgs() << "\n");
8465 // Replace successors in all predecessors of DeadPred.
8466 for (BasicBlock *PredOfDead : DeadPreds) {
8467 Instruction *T = PredOfDead->getTerminator();
8468 T->replaceSuccessorWith(Dead, Live);
8469 }
8470 };
8471
8472 // Try to eliminate duplicate predecessors.
8473 for (const auto &EBW : BBs2Merge) {
8474 // EBW is a candidate for simplification. If we find a duplicate BB,
8475 // replace it.
8476 const auto &[It, Inserted] = Keep.insert(&EBW);
8477 if (Inserted)
8478 continue;
8479
8480 // Found duplicate: merge P into canonical predecessor It->Pred.
8481 BasicBlock *KeepBB = (*It)->BB;
8482 BasicBlock *DeadBB = EBW.BB;
8483
8484 // Avoid merging a BB with itself.
8485 if (KeepBB == DeadBB)
8486 continue;
8487
8488 // Redirect all edges into DeadPred to KeepPred.
8489 RedirectIncomingEdges(DeadBB, KeepBB);
8490
8491 // Now DeadBB should become unreachable; leave DCE to later,
8492 // but we can try to simplify it if it only branches to Succ.
8493 // (We won't erase here to keep the routine simple and DT-safe.)
8494 assert(pred_empty(DeadBB) && "DeadBB should be unreachable.");
8495 MadeChange = true;
8496 }
8497
8498 if (DTU && !Updates.empty())
8499 DTU->applyUpdates(Updates);
8500
8501 return MadeChange;
8502}
8503
8504bool SimplifyCFGOpt::simplifyDuplicateSwitchArms(SwitchInst *SI,
8505 DomTreeUpdater *DTU) {
8506 // Collect candidate switch-arms top-down.
8507 SmallSetVector<BasicBlock *, 16> FilteredArms(
8510 return mergeIdenticalBBs(FilteredArms.getArrayRef(), DTU);
8511}
8512
8513bool SimplifyCFGOpt::simplifyDuplicatePredecessors(BasicBlock *BB,
8514 DomTreeUpdater *DTU) {
8515 // Need at least 2 predecessors to do anything.
8516 if (!BB || !BB->hasNPredecessorsOrMore(2))
8517 return false;
8518
8519 // Compilation time consideration: retain the canonical loop, otherwise, we
8520 // require more time in the later loop canonicalization.
8521 if (Options.NeedCanonicalLoop && is_contained(LoopHeaders, BB))
8522 return false;
8523
8524 // Collect candidate predecessors bottom-up.
8525 SmallSetVector<BasicBlock *, 8> FilteredPreds(
8528 return mergeIdenticalBBs(FilteredPreds.getArrayRef(), DTU);
8529}
8530
8531bool SimplifyCFGOpt::simplifySwitch(SwitchInst *SI, IRBuilder<> &Builder) {
8532 BasicBlock *BB = SI->getParent();
8533
8534 if (isValueEqualityComparison(SI)) {
8535 // If we only have one predecessor, and if it is a branch on this value,
8536 // see if that predecessor totally determines the outcome of this switch.
8537 if (BasicBlock *OnlyPred = BB->getSinglePredecessor())
8538 if (simplifyEqualityComparisonWithOnlyPredecessor(SI, OnlyPred, Builder))
8539 return requestResimplify();
8540
8541 Value *Cond = SI->getCondition();
8542 if (SelectInst *Select = dyn_cast<SelectInst>(Cond))
8543 if (simplifySwitchOnSelect(SI, Select))
8544 return requestResimplify();
8545
8546 // If the block only contains the switch, see if we can fold the block
8547 // away into any preds.
8548 if (SI == &*BB->begin())
8549 if (foldValueComparisonIntoPredecessors(SI, Builder))
8550 return requestResimplify();
8551 }
8552
8553 // Try to transform the switch into an icmp and a branch.
8554 // The conversion from switch to comparison may lose information on
8555 // impossible switch values, so disable it early in the pipeline.
8556 if (Options.ConvertSwitchRangeToICmp && turnSwitchRangeIntoICmp(SI, Builder))
8557 return requestResimplify();
8558
8559 // Remove unreachable cases.
8560 if (eliminateDeadSwitchCases(SI, DTU, Options.AC, DL))
8561 return requestResimplify();
8562
8563 if (simplifySwitchOfCmpIntrinsic(SI, Builder, DTU))
8564 return requestResimplify();
8565
8566 if (trySwitchToSelect(SI, Builder, DTU, DL, TTI))
8567 return requestResimplify();
8568
8569 if (Options.ForwardSwitchCondToPhi && forwardSwitchConditionToPHI(SI))
8570 return requestResimplify();
8571
8572 // The conversion of switches to arithmetic or lookup table is disabled in
8573 // the early optimization pipeline, as it may lose information or make the
8574 // resulting code harder to analyze.
8575 if (Options.ConvertSwitchToArithmetic || Options.ConvertSwitchToLookupTable)
8576 if (simplifySwitchLookup(SI, Builder, DTU, DL, TTI,
8577 Options.ConvertSwitchToLookupTable))
8578 return requestResimplify();
8579
8580 if (simplifySwitchOfPowersOfTwo(SI, Builder, DTU, DL, TTI))
8581 return requestResimplify();
8582
8583 if (reduceSwitchRange(SI, Builder, DL, TTI))
8584 return requestResimplify();
8585
8586 if (HoistCommon &&
8587 hoistCommonCodeFromSuccessors(SI, !Options.HoistCommonInsts))
8588 return requestResimplify();
8589
8590 // We can merge identical switch arms early to enhance more aggressive
8591 // optimization on switch.
8592 if (simplifyDuplicateSwitchArms(SI, DTU))
8593 return requestResimplify();
8594
8595 if (simplifySwitchWhenUMin(SI, DTU))
8596 return requestResimplify();
8597
8598 if (simplifySwitchDefaultBranch(SI, DTU, DL, Options.AC))
8599 return requestResimplify();
8600
8601 return false;
8602}
8603
8604bool SimplifyCFGOpt::simplifyIndirectBr(IndirectBrInst *IBI) {
8605 BasicBlock *BB = IBI->getParent();
8606 bool Changed = false;
8607 SmallVector<uint32_t> BranchWeights;
8608 const bool HasBranchWeights = !ProfcheckDisableMetadataFixes &&
8609 extractBranchWeights(*IBI, BranchWeights);
8610
8611 DenseMap<const BasicBlock *, uint64_t> TargetWeight;
8612 if (HasBranchWeights)
8613 for (size_t I = 0, E = IBI->getNumDestinations(); I < E; ++I)
8614 TargetWeight[IBI->getDestination(I)] += BranchWeights[I];
8615
8616 // Eliminate redundant destinations.
8617 SmallPtrSet<Value *, 8> Succs;
8618 SmallSetVector<BasicBlock *, 8> RemovedSuccs;
8619 for (unsigned I = 0, E = IBI->getNumDestinations(); I != E; ++I) {
8620 BasicBlock *Dest = IBI->getDestination(I);
8621 if (!Dest->hasAddressTaken() || !Succs.insert(Dest).second) {
8622 if (!Dest->hasAddressTaken())
8623 RemovedSuccs.insert(Dest);
8624 Dest->removePredecessor(BB);
8625 IBI->removeDestination(I);
8626 --I;
8627 --E;
8628 Changed = true;
8629 }
8630 }
8631
8632 if (DTU) {
8633 std::vector<DominatorTree::UpdateType> Updates;
8634 Updates.reserve(RemovedSuccs.size());
8635 for (auto *RemovedSucc : RemovedSuccs)
8636 Updates.push_back({DominatorTree::Delete, BB, RemovedSucc});
8637 DTU->applyUpdates(Updates);
8638 }
8639
8640 if (IBI->getNumDestinations() == 0) {
8641 // If the indirectbr has no successors, change it to unreachable.
8642 new UnreachableInst(IBI->getContext(), IBI->getIterator());
8644 return true;
8645 }
8646
8647 if (IBI->getNumDestinations() == 1) {
8648 // If the indirectbr has one successor, change it to a direct branch.
8651 return true;
8652 }
8653 if (HasBranchWeights) {
8654 SmallVector<uint64_t> NewBranchWeights(IBI->getNumDestinations());
8655 for (size_t I = 0, E = IBI->getNumDestinations(); I < E; ++I)
8656 NewBranchWeights[I] += TargetWeight.find(IBI->getDestination(I))->second;
8657 setFittedBranchWeights(*IBI, NewBranchWeights, /*IsExpected=*/false);
8658 }
8659 if (SelectInst *SI = dyn_cast<SelectInst>(IBI->getAddress())) {
8660 if (simplifyIndirectBrOnSelect(IBI, SI))
8661 return requestResimplify();
8662 }
8663 return Changed;
8664}
8665
8666/// Given an block with only a single landing pad and a unconditional branch
8667/// try to find another basic block which this one can be merged with. This
8668/// handles cases where we have multiple invokes with unique landing pads, but
8669/// a shared handler.
8670///
8671/// We specifically choose to not worry about merging non-empty blocks
8672/// here. That is a PRE/scheduling problem and is best solved elsewhere. In
8673/// practice, the optimizer produces empty landing pad blocks quite frequently
8674/// when dealing with exception dense code. (see: instcombine, gvn, if-else
8675/// sinking in this file)
8676///
8677/// This is primarily a code size optimization. We need to avoid performing
8678/// any transform which might inhibit optimization (such as our ability to
8679/// specialize a particular handler via tail commoning). We do this by not
8680/// merging any blocks which require us to introduce a phi. Since the same
8681/// values are flowing through both blocks, we don't lose any ability to
8682/// specialize. If anything, we make such specialization more likely.
8683///
8684/// TODO - This transformation could remove entries from a phi in the target
8685/// block when the inputs in the phi are the same for the two blocks being
8686/// merged. In some cases, this could result in removal of the PHI entirely.
8688 BasicBlock *BB, DomTreeUpdater *DTU) {
8689 auto Succ = BB->getUniqueSuccessor();
8690 assert(Succ);
8691 // If there's a phi in the successor block, we'd likely have to introduce
8692 // a phi into the merged landing pad block.
8693 if (isa<PHINode>(*Succ->begin()))
8694 return false;
8695
8696 for (BasicBlock *OtherPred : predecessors(Succ)) {
8697 if (BB == OtherPred)
8698 continue;
8699 BasicBlock::iterator I = OtherPred->begin();
8701 if (!LPad2 || !LPad2->isIdenticalTo(LPad))
8702 continue;
8703 ++I;
8705 if (!BI2 || !BI2->isIdenticalTo(BI))
8706 continue;
8707
8708 std::vector<DominatorTree::UpdateType> Updates;
8709
8710 // We've found an identical block. Update our predecessors to take that
8711 // path instead and make ourselves dead.
8713 for (BasicBlock *Pred : UniquePreds) {
8714 InvokeInst *II = cast<InvokeInst>(Pred->getTerminator());
8715 assert(II->getNormalDest() != BB && II->getUnwindDest() == BB &&
8716 "unexpected successor");
8717 II->setUnwindDest(OtherPred);
8718 if (DTU) {
8719 Updates.push_back({DominatorTree::Insert, Pred, OtherPred});
8720 Updates.push_back({DominatorTree::Delete, Pred, BB});
8721 }
8722 }
8723
8725 for (BasicBlock *Succ : UniqueSuccs) {
8726 Succ->removePredecessor(BB);
8727 if (DTU)
8728 Updates.push_back({DominatorTree::Delete, BB, Succ});
8729 }
8730
8731 IRBuilder<> Builder(BI);
8732 Builder.CreateUnreachable();
8733 BI->eraseFromParent();
8734 if (DTU)
8735 DTU->applyUpdates(Updates);
8736 return true;
8737 }
8738 return false;
8739}
8740
8741bool SimplifyCFGOpt::simplifyUncondBranch(UncondBrInst *BI,
8742 IRBuilder<> &Builder) {
8743 BasicBlock *BB = BI->getParent();
8744 BasicBlock *Succ = BI->getSuccessor(0);
8745
8746 // If the Terminator is the only non-phi instruction, simplify the block.
8747 // If LoopHeader is provided, check if the block or its successor is a loop
8748 // header. (This is for early invocations before loop simplify and
8749 // vectorization to keep canonical loop forms for nested loops. These blocks
8750 // can be eliminated when the pass is invoked later in the back-end.)
8751 // Note that if BB has only one predecessor then we do not introduce new
8752 // backedge, so we can eliminate BB.
8753 bool NeedCanonicalLoop =
8754 Options.NeedCanonicalLoop &&
8755 (!LoopHeaders.empty() && BB->hasNPredecessorsOrMore(2) &&
8756 (is_contained(LoopHeaders, BB) || is_contained(LoopHeaders, Succ)));
8758 if (I->isTerminator() && BB != &BB->getParent()->getEntryBlock() &&
8759 !NeedCanonicalLoop && TryToSimplifyUncondBranchFromEmptyBlock(BB, DTU))
8760 return true;
8761
8762 // If the only instruction in the block is a seteq/setne comparison against a
8763 // constant, try to simplify the block.
8764 if (ICmpInst *ICI = dyn_cast<ICmpInst>(I)) {
8765 if (ICI->isEquality() && isa<ConstantInt>(ICI->getOperand(1))) {
8766 ++I;
8767 if (I->isTerminator() &&
8768 tryToSimplifyUncondBranchWithICmpInIt(ICI, Builder))
8769 return true;
8770 if (isa<SelectInst>(I) && I->getNextNode()->isTerminator() &&
8771 tryToSimplifyUncondBranchWithICmpSelectInIt(ICI, cast<SelectInst>(I),
8772 Builder))
8773 return true;
8774 }
8775 }
8776
8777 // See if we can merge an empty landing pad block with another which is
8778 // equivalent.
8779 if (LandingPadInst *LPad = dyn_cast<LandingPadInst>(I)) {
8780 ++I;
8781 if (I->isTerminator() && tryToMergeLandingPad(LPad, BI, BB, DTU))
8782 return true;
8783 }
8784
8785 return false;
8786}
8787
8789 BasicBlock *PredPred = nullptr;
8790 for (auto *P : predecessors(BB)) {
8791 BasicBlock *PPred = P->getSinglePredecessor();
8792 if (!PPred || (PredPred && PredPred != PPred))
8793 return nullptr;
8794 PredPred = PPred;
8795 }
8796 return PredPred;
8797}
8798
8799/// Fold the following pattern:
8800/// bb0:
8801/// br i1 %cond1, label %bb1, label %bb2
8802/// bb1:
8803/// br i1 %cond2, label %bb3, label %bb4
8804/// bb2:
8805/// br i1 %cond2, label %bb4, label %bb3
8806/// bb3:
8807/// ...
8808/// bb4:
8809/// ...
8810/// into
8811/// bb0:
8812/// %cond = xor i1 %cond1, %cond2
8813/// br i1 %cond, label %bb4, label %bb3
8814/// bb3:
8815/// ...
8816/// bb4:
8817/// ...
8818/// NOTE: %cond2 always dominates the terminator of bb0.
8820 BasicBlock *BB = BI->getParent();
8821 BasicBlock *BB1 = BI->getSuccessor(0);
8822 BasicBlock *BB2 = BI->getSuccessor(1);
8823 auto IsSimpleSuccessor = [BB](BasicBlock *Succ, CondBrInst *&SuccBI) {
8824 if (Succ == BB)
8825 return false;
8826 if (&Succ->front() != Succ->getTerminator())
8827 return false;
8828 SuccBI = dyn_cast<CondBrInst>(Succ->getTerminator());
8829 if (!SuccBI)
8830 return false;
8831 BasicBlock *Succ1 = SuccBI->getSuccessor(0);
8832 BasicBlock *Succ2 = SuccBI->getSuccessor(1);
8833 return Succ1 != Succ && Succ2 != Succ && Succ1 != BB && Succ2 != BB &&
8834 !isa<PHINode>(Succ1->front()) && !isa<PHINode>(Succ2->front());
8835 };
8836 CondBrInst *BB1BI, *BB2BI;
8837 if (!IsSimpleSuccessor(BB1, BB1BI) || !IsSimpleSuccessor(BB2, BB2BI))
8838 return false;
8839
8840 if (BB1BI->getCondition() != BB2BI->getCondition() ||
8841 BB1BI->getSuccessor(0) != BB2BI->getSuccessor(1) ||
8842 BB1BI->getSuccessor(1) != BB2BI->getSuccessor(0))
8843 return false;
8844
8845 BasicBlock *BB3 = BB1BI->getSuccessor(0);
8846 BasicBlock *BB4 = BB1BI->getSuccessor(1);
8847 // Bail out on trivial cases to avoid bothering to handle the special case in
8848 // the code below.
8849 if (BB3 == BB4)
8850 return false;
8851 IRBuilder<> Builder(BI);
8852 BI->setCondition(
8853 Builder.CreateXor(BI->getCondition(), BB1BI->getCondition()));
8854 BB1->removePredecessor(BB);
8855 BI->setSuccessor(0, BB4);
8856 BB2->removePredecessor(BB);
8857 BI->setSuccessor(1, BB3);
8858 if (DTU) {
8860 Updates.push_back({DominatorTree::Delete, BB, BB1});
8861 Updates.push_back({DominatorTree::Insert, BB, BB4});
8862 Updates.push_back({DominatorTree::Delete, BB, BB2});
8863 Updates.push_back({DominatorTree::Insert, BB, BB3});
8864
8865 DTU->applyUpdates(Updates);
8866 }
8867 bool HasWeight = false;
8868 uint64_t BBTWeight, BBFWeight;
8869 if (extractBranchWeights(*BI, BBTWeight, BBFWeight))
8870 HasWeight = true;
8871 else
8872 BBTWeight = BBFWeight = 1;
8873 uint64_t BB1TWeight, BB1FWeight;
8874 if (extractBranchWeights(*BB1BI, BB1TWeight, BB1FWeight))
8875 HasWeight = true;
8876 else
8877 BB1TWeight = BB1FWeight = 1;
8878 uint64_t BB2TWeight, BB2FWeight;
8879 if (extractBranchWeights(*BB2BI, BB2TWeight, BB2FWeight))
8880 HasWeight = true;
8881 else
8882 BB2TWeight = BB2FWeight = 1;
8883 if (HasWeight) {
8884 uint64_t Weights[2] = {BBTWeight * BB1FWeight + BBFWeight * BB2TWeight,
8885 BBTWeight * BB1TWeight + BBFWeight * BB2FWeight};
8886 setFittedBranchWeights(*BI, Weights, /*IsExpected=*/false,
8887 /*ElideAllZero=*/true);
8888 }
8889 return true;
8890}
8891
8892bool SimplifyCFGOpt::simplifyCondBranch(CondBrInst *BI, IRBuilder<> &Builder) {
8893 assert(
8895 BI->getSuccessor(0) != BI->getSuccessor(1) &&
8896 "Tautological conditional branch should have been eliminated already.");
8897
8898 BasicBlock *BB = BI->getParent();
8899 if (!Options.SimplifyCondBranch ||
8900 BI->getFunction()->hasFnAttribute(Attribute::OptForFuzzing))
8901 return false;
8902
8903 // Conditional branch
8904 if (isValueEqualityComparison(BI)) {
8905 // If we only have one predecessor, and if it is a branch on this value,
8906 // see if that predecessor totally determines the outcome of this
8907 // switch.
8908 if (BasicBlock *OnlyPred = BB->getSinglePredecessor())
8909 if (simplifyEqualityComparisonWithOnlyPredecessor(BI, OnlyPred, Builder))
8910 return requestResimplify();
8911
8912 // This block must be empty, except for the setcond inst, if it exists.
8913 // Ignore pseudo intrinsics.
8914 for (auto &I : *BB) {
8915 if (isa<PseudoProbeInst>(I) ||
8916 &I == cast<Instruction>(BI->getCondition()))
8917 continue;
8918 if (&I == BI)
8919 if (foldValueComparisonIntoPredecessors(BI, Builder))
8920 return requestResimplify();
8921 break;
8922 }
8923 }
8924
8925 // Try to turn "br (X == 0 | X == 1), T, F" into a switch instruction.
8926 if (simplifyBranchOnICmpChain(BI, Builder, DL))
8927 return true;
8928
8929 // If this basic block has dominating predecessor blocks and the dominating
8930 // blocks' conditions imply BI's condition, we know the direction of BI.
8931 std::optional<bool> Imp = isImpliedByDomCondition(BI->getCondition(), BI, DL);
8932 if (Imp) {
8933 // Turn this into a branch on constant.
8934 auto *OldCond = BI->getCondition();
8935 ConstantInt *TorF = *Imp ? ConstantInt::getTrue(BB->getContext())
8936 : ConstantInt::getFalse(BB->getContext());
8937 BI->setCondition(TorF);
8939 return requestResimplify();
8940 }
8941
8942 // If this basic block is ONLY a compare and a branch, and if a predecessor
8943 // branches to us and one of our successors, fold the comparison into the
8944 // predecessor and use logical operations to pick the right destination.
8945 if (Options.SpeculateBlocks &&
8946 foldBranchToCommonDest(BI, DTU, /*MSSAU=*/nullptr, &TTI, Options.AC,
8947 Options.BonusInstThreshold))
8948 return requestResimplify();
8949
8950 // We have a conditional branch to two blocks that are only reachable
8951 // from BI. We know that the condbr dominates the two blocks, so see if
8952 // there is any identical code in the "then" and "else" blocks. If so, we
8953 // can hoist it up to the branching block.
8954 if (BI->getSuccessor(0)->getSinglePredecessor()) {
8955 if (BI->getSuccessor(1)->getSinglePredecessor()) {
8956 if (HoistCommon &&
8957 hoistCommonCodeFromSuccessors(BI, !Options.HoistCommonInsts))
8958 return requestResimplify();
8959
8960 if (BI && Options.HoistLoadsStoresWithCondFaulting &&
8961 isProfitableToSpeculate(BI, std::nullopt, TTI)) {
8962 SmallVector<Instruction *, 2> SpeculatedConditionalLoadsStores;
8963 auto CanSpeculateConditionalLoadsStores = [&]() {
8964 for (auto *Succ : successors(BB)) {
8965 for (Instruction &I : *Succ) {
8966 if (I.isTerminator()) {
8967 if (I.getNumSuccessors() > 1)
8968 return false;
8969 continue;
8970 } else if (!isSafeCheapLoadStore(&I, TTI) ||
8971 SpeculatedConditionalLoadsStores.size() ==
8973 return false;
8974 }
8975 SpeculatedConditionalLoadsStores.push_back(&I);
8976 }
8977 }
8978 return !SpeculatedConditionalLoadsStores.empty();
8979 };
8980
8981 if (CanSpeculateConditionalLoadsStores()) {
8982 hoistConditionalLoadsStores(BI, SpeculatedConditionalLoadsStores,
8983 std::nullopt, nullptr);
8984 return requestResimplify();
8985 }
8986 }
8987 } else {
8988 // If Successor #1 has multiple preds, we may be able to conditionally
8989 // execute Successor #0 if it branches to Successor #1.
8990 Instruction *Succ0TI = BI->getSuccessor(0)->getTerminator();
8991 if (Succ0TI->getNumSuccessors() == 1 &&
8992 Succ0TI->getSuccessor(0) == BI->getSuccessor(1))
8993 if (speculativelyExecuteBB(BI, BI->getSuccessor(0)))
8994 return requestResimplify();
8995 }
8996 } else if (BI->getSuccessor(1)->getSinglePredecessor()) {
8997 // If Successor #0 has multiple preds, we may be able to conditionally
8998 // execute Successor #1 if it branches to Successor #0.
8999 Instruction *Succ1TI = BI->getSuccessor(1)->getTerminator();
9000 if (Succ1TI->getNumSuccessors() == 1 &&
9001 Succ1TI->getSuccessor(0) == BI->getSuccessor(0))
9002 if (speculativelyExecuteBB(BI, BI->getSuccessor(1)))
9003 return requestResimplify();
9004 }
9005
9006 // If this is a branch on something for which we know the constant value in
9007 // predecessors (e.g. a phi node in the current block), thread control
9008 // through this block.
9009 if (foldCondBranchOnValueKnownInPredecessor(BI))
9010 return requestResimplify();
9011
9012 // Scan predecessor blocks for conditional branches.
9013 for (BasicBlock *Pred : predecessors(BB))
9014 if (CondBrInst *PBI = dyn_cast<CondBrInst>(Pred->getTerminator()))
9015 if (PBI != BI)
9016 if (SimplifyCondBranchToCondBranch(PBI, BI, DTU, DL, TTI))
9017 return requestResimplify();
9018
9019 // Look for diamond patterns.
9020 if (MergeCondStores)
9021 if (BasicBlock *PrevBB = allPredecessorsComeFromSameSource(BB))
9022 if (CondBrInst *PBI = dyn_cast<CondBrInst>(PrevBB->getTerminator()))
9023 if (PBI != BI)
9024 if (mergeConditionalStores(PBI, BI, DTU, DL, TTI))
9025 return requestResimplify();
9026
9027 // Look for nested conditional branches.
9028 if (mergeNestedCondBranch(BI, DTU))
9029 return requestResimplify();
9030
9031 return false;
9032}
9033
9034/// Check if passing a value to an instruction will cause undefined behavior.
9035static bool passingValueIsAlwaysUndefined(Value *V, Instruction *I, bool PtrValueMayBeModified) {
9036 assert(V->getType() == I->getType() && "Mismatched types");
9038 if (!C)
9039 return false;
9040
9041 if (I->use_empty())
9042 return false;
9043
9044 if (C->isNullValue() || isa<UndefValue>(C)) {
9045 // Find the first same-block use with a UB-triggering opcode, skipping
9046 // cross-block or before-I uses.
9047 auto FindUse = llvm::find_if(I->uses(), [I](auto &U) {
9048 auto *Use = cast<Instruction>(U.getUser());
9049 // Only same-block uses after I can witness UB at I's program point.
9050 // Self-uses and before-I uses can occur when I is a PHI node.
9051 if (Use->getParent() != I->getParent() || Use == I || Use->comesBefore(I))
9052 return false;
9053 // Change this list when we want to add new instructions.
9054 switch (Use->getOpcode()) {
9055 default:
9056 return false;
9057 case Instruction::GetElementPtr:
9058 case Instruction::Ret:
9059 case Instruction::BitCast:
9060 case Instruction::Load:
9061 case Instruction::Store:
9062 case Instruction::Call:
9063 case Instruction::CallBr:
9064 case Instruction::Invoke:
9065 case Instruction::UDiv:
9066 case Instruction::URem:
9067 // Note: signed div/rem of INT_MIN / -1 is also immediate UB, not
9068 // implemented to avoid code complexity as it is unclear how useful such
9069 // logic is.
9070 case Instruction::SDiv:
9071 case Instruction::SRem:
9072 return true;
9073 }
9074 });
9075 if (FindUse == I->use_end())
9076 return false;
9077 auto &Use = *FindUse;
9078 auto *User = cast<Instruction>(Use.getUser());
9079
9080 // Now make sure that there are no instructions in between that can alter
9081 // control flow (eg. calls)
9082 auto InstrRange =
9083 make_range(std::next(I->getIterator()), User->getIterator());
9084 if (any_of(InstrRange, [](Instruction &I) {
9086 }))
9087 return false;
9088
9089 // Look through GEPs. A load from a GEP derived from NULL is still undefined
9091 if (GEP->getPointerOperand() == I) {
9092 // The type of GEP may differ from the type of base pointer.
9093 // Bail out on vector GEPs, as they are not handled by other checks.
9094 if (GEP->getType()->isVectorTy())
9095 return false;
9096 // The current base address is null, there are four cases to consider:
9097 // getelementptr (TY, null, 0) -> null
9098 // getelementptr (TY, null, not zero) -> may be modified
9099 // getelementptr inbounds (TY, null, 0) -> null
9100 // getelementptr inbounds (TY, null, not zero) -> poison iff null is
9101 // undefined?
9102 if (!GEP->hasAllZeroIndices() &&
9103 (!GEP->isInBounds() ||
9104 NullPointerIsDefined(GEP->getFunction(),
9105 GEP->getPointerAddressSpace())))
9106 PtrValueMayBeModified = true;
9107 return passingValueIsAlwaysUndefined(V, GEP, PtrValueMayBeModified);
9108 }
9109
9110 // Look through return.
9111 if (ReturnInst *Ret = dyn_cast<ReturnInst>(User)) {
9112 bool HasNoUndefAttr =
9113 Ret->getFunction()->hasRetAttribute(Attribute::NoUndef);
9114 // Return undefined to a noundef return value is undefined.
9115 if (isa<UndefValue>(C) && HasNoUndefAttr)
9116 return true;
9117 // Return null to a nonnull+noundef return value is undefined.
9118 if (C->isNullValue() && HasNoUndefAttr &&
9119 Ret->getFunction()->hasRetAttribute(Attribute::NonNull)) {
9120 return !PtrValueMayBeModified;
9121 }
9122 }
9123
9124 // Load from null is undefined.
9125 if (LoadInst *LI = dyn_cast<LoadInst>(User))
9126 if (!LI->isVolatile())
9127 return !NullPointerIsDefined(LI->getFunction(),
9128 LI->getPointerAddressSpace());
9129
9130 // Store to null is undefined.
9132 if (!SI->isVolatile())
9133 return (!NullPointerIsDefined(SI->getFunction(),
9134 SI->getPointerAddressSpace())) &&
9135 SI->getPointerOperand() == I;
9136
9137 // llvm.assume(false/undef) always triggers immediate UB.
9138 if (auto *Assume = dyn_cast<AssumeInst>(User)) {
9139 // Ignore assume operand bundles.
9140 if (I == Assume->getArgOperand(0))
9141 return true;
9142 }
9143
9144 if (auto *CB = dyn_cast<CallBase>(User)) {
9145 if (C->isNullValue() && NullPointerIsDefined(CB->getFunction()))
9146 return false;
9147 // A call to null is undefined.
9148 if (CB->getCalledOperand() == I)
9149 return true;
9150
9151 if (CB->isArgOperand(&Use)) {
9152 unsigned ArgIdx = CB->getArgOperandNo(&Use);
9153 // Passing null to a nonnnull+noundef argument is undefined.
9154 if (isa<ConstantPointerNull>(C) && C->getType()->isPointerTy() &&
9155 CB->paramHasNonNullAttr(ArgIdx, /*AllowUndefOrPoison=*/false))
9156 return !PtrValueMayBeModified;
9157 // Passing undef to a noundef argument is undefined.
9158 if (isa<UndefValue>(C) && CB->isPassingUndefUB(ArgIdx))
9159 return true;
9160 }
9161 }
9162 // Div/Rem by zero is immediate UB
9163 if (match(User, m_BinOp(m_Value(), m_Specific(I))) && User->isIntDivRem())
9164 return true;
9165 }
9166 return false;
9167}
9168
9169/// If BB has an incoming value that will always trigger undefined behavior
9170/// (eg. null pointer dereference), remove the branch leading here.
9172 DomTreeUpdater *DTU,
9173 AssumptionCache *AC) {
9174 for (PHINode &PHI : BB->phis())
9175 for (unsigned i = 0, e = PHI.getNumIncomingValues(); i != e; ++i)
9176 if (passingValueIsAlwaysUndefined(PHI.getIncomingValue(i), &PHI)) {
9177 BasicBlock *Predecessor = PHI.getIncomingBlock(i);
9178 Instruction *T = Predecessor->getTerminator();
9179 IRBuilder<> Builder(T);
9180 if (isa<UncondBrInst>(T)) {
9181 BB->removePredecessor(Predecessor);
9182 // Turn unconditional branches into unreachables.
9183 Builder.CreateUnreachable();
9184 T->eraseFromParent();
9185 if (DTU)
9186 DTU->applyUpdates({{DominatorTree::Delete, Predecessor, BB}});
9187 return true;
9188 } else if (CondBrInst *BI = dyn_cast<CondBrInst>(T)) {
9189 BB->removePredecessor(Predecessor);
9190 // Handle degenerate conditional branches.
9191 if (BI->getSuccessor(0) == BI->getSuccessor(1)) {
9192 // The only difference from the UncondBrInst path above is that it
9193 // has two edges in CFG.
9194 BB->removePredecessor(Predecessor);
9195 // Turn unconditional branches into unreachables.
9196 Builder.CreateUnreachable();
9197 } else {
9198 // Preserve guarding condition in assume, because it might not be
9199 // inferrable from any dominating condition.
9200 Value *Cond = BI->getCondition();
9201 CallInst *Assumption;
9202 if (BI->getSuccessor(0) == BB)
9203 Assumption = Builder.CreateAssumption(Builder.CreateNot(Cond));
9204 else
9205 Assumption = Builder.CreateAssumption(Cond);
9206 if (AC)
9207 AC->registerAssumption(cast<AssumeInst>(Assumption));
9208 Builder.CreateBr(BI->getSuccessor(0) == BB ? BI->getSuccessor(1)
9209 : BI->getSuccessor(0));
9210 }
9211 BI->eraseFromParent();
9212 if (DTU)
9213 DTU->applyUpdates({{DominatorTree::Delete, Predecessor, BB}});
9214 return true;
9215 } else if (SwitchInst *SI = dyn_cast<SwitchInst>(T)) {
9216 // Redirect all branches leading to UB into
9217 // a newly created unreachable block.
9218 BasicBlock *Unreachable = BasicBlock::Create(
9219 Predecessor->getContext(), "unreachable", BB->getParent(), BB);
9220 Builder.SetInsertPoint(Unreachable);
9221 // The new block contains only one instruction: Unreachable
9222 Builder.CreateUnreachable();
9223 for (const auto &Case : SI->cases())
9224 if (Case.getCaseSuccessor() == BB) {
9225 BB->removePredecessor(Predecessor);
9226 Case.setSuccessor(Unreachable);
9227 }
9228 if (SI->getDefaultDest() == BB) {
9229 BB->removePredecessor(Predecessor);
9230 SI->setDefaultDest(Unreachable);
9231 }
9232
9233 if (DTU)
9234 DTU->applyUpdates(
9235 { { DominatorTree::Insert, Predecessor, Unreachable },
9236 { DominatorTree::Delete, Predecessor, BB } });
9237 return true;
9238 }
9239 }
9240
9241 return false;
9242}
9243
9244bool SimplifyCFGOpt::simplifyOnce(BasicBlock *BB) {
9245 bool Changed = false;
9246
9247 assert(BB && BB->getParent() && "Block not embedded in function!");
9248 assert(BB->getTerminator() && "Degenerate basic block encountered!");
9249
9250 // Remove basic blocks that have no predecessors (except the entry block)...
9251 // or that just have themself as a predecessor. These are unreachable.
9252 if ((pred_empty(BB) && BB != &BB->getParent()->getEntryBlock()) ||
9253 BB->getSinglePredecessor() == BB) {
9254 LLVM_DEBUG(dbgs() << "Removing BB: \n" << *BB);
9255 DeleteDeadBlock(BB, DTU);
9256 return true;
9257 }
9258
9259 // Check to see if we can constant propagate this terminator instruction
9260 // away...
9261 Changed |= ConstantFoldTerminator(BB, /*DeleteDeadConditions=*/true,
9262 /*TLI=*/nullptr, DTU);
9263
9264 // Check for and eliminate duplicate PHI nodes in this block.
9266
9267 // Check for and remove branches that will always cause undefined behavior.
9269 return requestResimplify();
9270
9271 // Merge basic blocks into their predecessor if there is only one distinct
9272 // pred, and if there is only one distinct successor of the predecessor, and
9273 // if there are no PHI nodes.
9274 if (MergeBlockIntoPredecessor(BB, DTU))
9275 return true;
9276
9277 if (SinkCommon && Options.SinkCommonInsts) {
9278 if (sinkCommonCodeFromPredecessors(BB, DTU) ||
9279 mergeCompatibleInvokes(BB, DTU)) {
9280 // sinkCommonCodeFromPredecessors() does not automatically CSE PHI's,
9281 // so we may now how duplicate PHI's.
9282 // Let's rerun EliminateDuplicatePHINodes() first,
9283 // before foldTwoEntryPHINode() potentially converts them into select's,
9284 // after which we'd need a whole EarlyCSE pass run to cleanup them.
9285 return true;
9286 }
9287 // Merge identical predecessors of this block.
9288 if (simplifyDuplicatePredecessors(BB, DTU))
9289 return true;
9290 }
9291
9292 if (Options.SpeculateBlocks &&
9293 !BB->getParent()->hasFnAttribute(Attribute::OptForFuzzing)) {
9294 // If there is a trivial two-entry PHI node in this basic block, and we can
9295 // eliminate it, do so now.
9296 if (auto *PN = dyn_cast<PHINode>(BB->begin()))
9297 if (PN->getNumIncomingValues() == 2)
9298 if (foldTwoEntryPHINode(PN, TTI, DTU, Options.AC, DL,
9299 Options.SpeculateUnpredictables))
9300 return true;
9301 }
9302
9303 IRBuilder<> Builder(BB);
9305 Builder.SetInsertPoint(Terminator);
9306 switch (Terminator->getOpcode()) {
9307 case Instruction::UncondBr:
9308 Changed |= simplifyUncondBranch(cast<UncondBrInst>(Terminator), Builder);
9309 break;
9310 case Instruction::CondBr:
9311 Changed |= simplifyCondBranch(cast<CondBrInst>(Terminator), Builder);
9312 break;
9313 case Instruction::Resume:
9314 Changed |= simplifyResume(cast<ResumeInst>(Terminator), Builder);
9315 break;
9316 case Instruction::CleanupRet:
9317 Changed |= simplifyCleanupReturn(cast<CleanupReturnInst>(Terminator));
9318 break;
9319 case Instruction::Switch:
9320 Changed |= simplifySwitch(cast<SwitchInst>(Terminator), Builder);
9321 break;
9322 case Instruction::Unreachable:
9323 Changed |= simplifyUnreachable(cast<UnreachableInst>(Terminator));
9324 break;
9325 case Instruction::IndirectBr:
9326 Changed |= simplifyIndirectBr(cast<IndirectBrInst>(Terminator));
9327 break;
9328 }
9329
9330 return Changed;
9331}
9332
9333bool SimplifyCFGOpt::run(BasicBlock *BB) {
9334 bool Changed = false;
9335
9336 // Repeated simplify BB as long as resimplification is requested.
9337 do {
9338 Resimplify = false;
9339
9340 // Perform one round of simplifcation. Resimplify flag will be set if
9341 // another iteration is requested.
9342 Changed |= simplifyOnce(BB);
9343 } while (Resimplify);
9344
9345 return Changed;
9346}
9347
9350 ArrayRef<WeakVH> LoopHeaders) {
9351 return SimplifyCFGOpt(TTI, DTU, BB->getDataLayout(), LoopHeaders,
9352 Options)
9353 .run(BB);
9354}
#define Fail
#define Success
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
aarch64 promote const
unsigned uint64_t
AMDGPU Register Bank Select
Rewrite undef for PHI
This file implements a class to represent arbitrary precision integral constant values and operations...
static MachineBasicBlock * OtherSucc(MachineBasicBlock *MBB, MachineBasicBlock *Succ)
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
static cl::opt< ITMode > IT(cl::desc("IT block support"), cl::Hidden, cl::init(DefaultIT), cl::values(clEnumValN(DefaultIT, "arm-default-it", "Generate any type of IT block"), clEnumValN(RestrictedIT, "arm-restrict-it", "Disallow complex IT blocks")))
Function Alias Analysis Results
This file contains the simple types necessary to represent the attributes associated with functions a...
static const Function * getParent(const Value *V)
#define X(NUM, ENUM, NAME)
Definition ELF.h:857
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
This file contains the declarations for the subclasses of Constant, which represent the different fla...
static cl::opt< OutputCostKind > CostKind("cost-kind", cl::desc("Target cost kind"), cl::init(OutputCostKind::RecipThroughput), cl::values(clEnumValN(OutputCostKind::RecipThroughput, "throughput", "Reciprocal throughput"), clEnumValN(OutputCostKind::Latency, "latency", "Instruction latency"), clEnumValN(OutputCostKind::CodeSize, "code-size", "Code size"), clEnumValN(OutputCostKind::SizeAndLatency, "size-latency", "Code size and latency"), clEnumValN(OutputCostKind::All, "all", "Print all cost kinds")))
This file defines the DenseMap class.
@ Default
#define DEBUG_TYPE
Hexagon Common GEP
static bool IsIndirectCall(const MachineInstr *MI)
This file provides various utilities for inspecting and working with the control flow graph in LLVM I...
Module.h This file contains the declarations for the Module class.
This defines the Use class.
static Constant * getFalse(Type *Ty)
For a boolean type or a vector of boolean type, return false or a vector with every element false.
static constexpr Value * getValue(Ty &ValueOrUse)
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
static LVOptions Options
Definition LVOptions.cpp:25
#define I(x, y, z)
Definition MD5.cpp:57
Machine Check Debug Module
This file implements a map that provides insertion order iteration.
This file provides utility for Memory Model Relaxation Annotations (MMRAs).
This file exposes an interface to building/using memory SSA to walk memory instructions using a use/d...
This file contains the declarations for metadata subclasses.
#define T
ConstantRange Range(APInt(BitWidth, Low), APInt(BitWidth, High))
uint64_t IntrinsicInst * II
#define P(N)
if(auto Err=PB.parsePassPipeline(MPM, Passes)) return wrap(std MPM run * Mod
This file contains the declarations for profiling metadata utility functions.
const SmallVectorImpl< MachineOperand > & Cond
Func getContext().diagnose(DiagnosticInfoUnsupported(Func
This file contains some templates that are useful if you are working with the STL at all.
static bool contains(SmallPtrSetImpl< ConstantExpr * > &Cache, ConstantExpr *Expr, Constant *C)
Definition Value.cpp:484
Provides some synthesis utilities to produce sequences of values.
This file defines generic set operations that may be used on set's of different types,...
This file implements a set that has insertion order iteration characteristics.
static std::optional< ContiguousCasesResult > findContiguousCases(Value *Condition, SmallVectorImpl< ConstantInt * > &Cases, SmallVectorImpl< ConstantInt * > &OtherCases, BasicBlock *Dest, BasicBlock *OtherDest)
static void addPredecessorToBlock(BasicBlock *Succ, BasicBlock *NewPred, BasicBlock *ExistPred, MemorySSAUpdater *MSSAU=nullptr)
Update PHI nodes in Succ to indicate that there will now be entries in it from the 'NewPred' block.
static bool validLookupTableConstant(Constant *C, const TargetTransformInfo &TTI)
Return true if the backend will be able to handle initializing an array of constants like C.
static StoreInst * findUniqueStoreInBlocks(BasicBlock *BB1, BasicBlock *BB2)
static bool isSwitchDense(uint64_t NumCases, uint64_t CaseRange, bool OptSize)
static bool validateAndCostRequiredSelects(BasicBlock *BB, BasicBlock *ThenBB, BasicBlock *EndBB, unsigned &SpeculatedInstructions, InstructionCost &Cost, const TargetTransformInfo &TTI)
Estimate the cost of the insertion(s) and check that the PHI nodes can be converted to selects.
static bool simplifySwitchLookup(SwitchInst *SI, IRBuilder<> &Builder, DomTreeUpdater *DTU, const DataLayout &DL, const TargetTransformInfo &TTI, bool ConvertSwitchToLookupTable)
If the switch is only used to initialize one or more phi nodes in a common successor block with diffe...
static void removeSwitchAfterSelectFold(SwitchInst *SI, PHINode *PHI, Value *SelectValue, IRBuilder<> &Builder, DomTreeUpdater *DTU)
static bool valuesOverlap(std::vector< ValueEqualityComparisonCase > &C1, std::vector< ValueEqualityComparisonCase > &C2)
Return true if there are any keys in C1 that exist in C2 as well.
static bool isProfitableToSpeculate(const CondBrInst *BI, std::optional< bool > Invert, const TargetTransformInfo &TTI)
static bool mergeConditionalStoreToAddress(BasicBlock *PTB, BasicBlock *PFB, BasicBlock *QTB, BasicBlock *QFB, BasicBlock *PostBB, Value *Address, bool InvertPCond, bool InvertQCond, DomTreeUpdater *DTU, const DataLayout &DL, const TargetTransformInfo &TTI)
static bool mergeCleanupPad(CleanupReturnInst *RI)
static bool isVectorOp(Instruction &I)
Return if an instruction's type or any of its operands' types are a vector type.
static BasicBlock * allPredecessorsComeFromSameSource(BasicBlock *BB)
static void cloneInstructionsIntoPredecessorBlockAndUpdateSSAUses(BasicBlock *BB, BasicBlock *PredBlock, ValueToValueMapTy &VMap)
static int constantIntSortPredicate(ConstantInt *const *P1, ConstantInt *const *P2)
static bool getCaseResults(SwitchInst *SI, ConstantInt *CaseVal, BasicBlock *CaseDest, BasicBlock **CommonDest, SmallVectorImpl< std::pair< PHINode *, Constant * > > &Res, const DataLayout &DL, const TargetTransformInfo &TTI)
Try to determine the resulting constant values in phi nodes at the common destination basic block,...
static bool passingValueIsAlwaysUndefined(Value *V, Instruction *I, bool PtrValueMayBeModified=false)
Check if passing a value to an instruction will cause undefined behavior.
static std::optional< std::tuple< BasicBlock *, Instruction::BinaryOps, bool > > shouldFoldCondBranchesToCommonDestination(CondBrInst *BI, CondBrInst *PBI, const TargetTransformInfo *TTI)
Determine if the two branches share a common destination and deduce a glue that joins the branches' c...
static bool isSafeToHoistInstr(Instruction *I, unsigned Flags)
static std::optional< bool > foldCondBranchOnValueKnownInPredecessorImpl(CondBrInst *BI, const TargetTransformInfo &TTI, DomTreeUpdater *DTU, AssumptionCache *AC, const DataLayout &DL)
If we have a conditional branch on something for which we know the constant value in predecessors (e....
static bool isSafeToHoistInvoke(BasicBlock *BB1, BasicBlock *BB2, Instruction *I1, Instruction *I2)
static ConstantInt * getConstantInt(Value *V, const DataLayout &DL)
Extract ConstantInt from value, looking through IntToPtr and PointerNullValue.
static bool simplifySwitchOfCmpIntrinsic(SwitchInst *SI, IRBuilderBase &Builder, DomTreeUpdater *DTU)
Fold switch over ucmp/scmp intrinsic to br if two of the switch arms have the same destination.
static bool shouldBuildLookupTable(SwitchInst *SI, uint64_t TableSize, const TargetTransformInfo &TTI, const DataLayout &DL, const SmallVector< Type * > &ResultTypes)
Determine whether a lookup table should be built for this switch, based on the number of cases,...
static Constant * constantFold(Instruction *I, const DataLayout &DL, const SmallDenseMap< Value *, Constant * > &ConstantPool)
Try to fold instruction I into a constant.
static bool areIdenticalUpToCommutativity(const Instruction *I1, const Instruction *I2)
static bool forwardSwitchConditionToPHI(SwitchInst *SI)
Try to forward the condition of a switch instruction to a phi node dominated by the switch,...
static PHINode * findPHIForConditionForwarding(ConstantInt *CaseValue, BasicBlock *BB, int *PhiIndex)
If BB would be eligible for simplification by TryToSimplifyUncondBranchFromEmptyBlock (i....
static bool reachesUncontrolledConvergentCallBeforeBlock(BasicBlock *From, BasicBlock *StopBB)
static bool simplifySwitchOfPowersOfTwo(SwitchInst *SI, IRBuilder<> &Builder, DomTreeUpdater *DTU, const DataLayout &DL, const TargetTransformInfo &TTI)
Tries to transform switch of powers of two to reduce switch range.
static bool isCleanupBlockEmpty(iterator_range< BasicBlock::iterator > R)
static Value * ensureValueAvailableInSuccessor(Value *V, BasicBlock *BB, Value *AlternativeV=nullptr)
static Value * createLogicalOp(IRBuilderBase &Builder, Instruction::BinaryOps Opc, Value *LHS, Value *RHS, const Twine &Name="")
static void hoistConditionalLoadsStores(CondBrInst *BI, SmallVectorImpl< Instruction * > &SpeculatedConditionalLoadsStores, std::optional< bool > Invert, Instruction *Sel)
If the target supports conditional faulting, we look for the following pattern:
static bool shouldHoistCommonInstructions(Instruction *I1, Instruction *I2, const TargetTransformInfo &TTI)
Helper function for hoistCommonCodeFromSuccessors.
static bool reduceSwitchRange(SwitchInst *SI, IRBuilder<> &Builder, const DataLayout &DL, const TargetTransformInfo &TTI)
Try to transform a switch that has "holes" in it to a contiguous sequence of cases.
static bool safeToMergeTerminators(Instruction *SI1, Instruction *SI2, SmallSetVector< BasicBlock *, 4 > *FailBlocks=nullptr)
Return true if it is safe to merge these two terminator instructions together.
SkipFlags
@ SkipReadMem
@ SkipSideEffect
@ SkipImplicitControlFlow
static bool simplifySwitchDefaultBranch(SwitchInst *SI, DomTreeUpdater *DTU, const DataLayout &DL, AssumptionCache *AC)
static bool incomingValuesAreCompatible(BasicBlock *BB, ArrayRef< BasicBlock * > IncomingBlocks, SmallPtrSetImpl< Value * > *EquivalenceSet=nullptr)
Return true if all the PHI nodes in the basic block BB receive compatible (identical) incoming values...
static bool trySwitchToSelect(SwitchInst *SI, IRBuilder<> &Builder, DomTreeUpdater *DTU, const DataLayout &DL, const TargetTransformInfo &TTI)
If a switch is only used to initialize one or more phi nodes in a common successor block with only tw...
static void createUnreachableSwitchDefault(SwitchInst *Switch, DomTreeUpdater *DTU, bool RemoveOrigDefaultBlock=true)
static Value * foldSwitchToSelect(const SwitchCaseResultVectorTy &ResultVector, Constant *DefaultResult, Value *Condition, IRBuilder<> &Builder, const DataLayout &DL, ArrayRef< uint32_t > BranchWeights)
static bool sinkCommonCodeFromPredecessors(BasicBlock *BB, DomTreeUpdater *DTU)
Check whether BB's predecessors end with unconditional branches.
static bool isTypeLegalForLookupTable(Type *Ty, const TargetTransformInfo &TTI, const DataLayout &DL)
static bool eliminateDeadSwitchCases(SwitchInst *SI, DomTreeUpdater *DTU, AssumptionCache *AC, const DataLayout &DL)
Compute masked bits for the condition of a switch and use it to remove dead cases.
static bool blockIsSimpleEnoughToThreadThrough(BasicBlock *BB, BlocksSet &NonLocalUseBlocks)
Return true if we can thread a branch across this block.
static Value * isSafeToSpeculateStore(Instruction *I, BasicBlock *BrBB, BasicBlock *StoreBB, BasicBlock *EndBB)
Determine if we can hoist sink a sole store instruction out of a conditional block.
static bool foldTwoEntryPHINode(PHINode *PN, const TargetTransformInfo &TTI, DomTreeUpdater *DTU, AssumptionCache *AC, const DataLayout &DL, bool SpeculateUnpredictables)
Given a BB that starts with the specified two-entry PHI node, see if we can eliminate it.
static bool findReaching(BasicBlock *BB, BasicBlock *DefBB, BlocksSet &ReachesNonLocalUses)
static bool extractPredSuccWeights(CondBrInst *PBI, CondBrInst *BI, uint64_t &PredTrueWeight, uint64_t &PredFalseWeight, uint64_t &SuccTrueWeight, uint64_t &SuccFalseWeight)
Return true if either PBI or BI has branch weight available, and store the weights in {Pred|Succ}...
static bool initializeUniqueCases(SwitchInst *SI, PHINode *&PHI, BasicBlock *&CommonDest, SwitchCaseResultVectorTy &UniqueResults, Constant *&DefaultResult, const DataLayout &DL, const TargetTransformInfo &TTI, uintptr_t MaxUniqueResults)
static bool shouldUseSwitchConditionAsTableIndex(ConstantInt &MinCaseVal, const ConstantInt &MaxCaseVal, bool HasDefaultResults, const SmallVector< Type * > &ResultTypes, const DataLayout &DL, const TargetTransformInfo &TTI)
static InstructionCost computeSpeculationCost(const User *I, const TargetTransformInfo &TTI)
Compute an abstract "cost" of speculating the given instruction, which is assumed to be safe to specu...
static bool performBranchToCommonDestFolding(CondBrInst *BI, CondBrInst *PBI, DomTreeUpdater *DTU, MemorySSAUpdater *MSSAU, const TargetTransformInfo *TTI)
static std::optional< unsigned > getDenseSwitchRangeReductionShift(ArrayRef< int64_t > Values, int64_t Base, bool OptSize)
SmallPtrSet< BasicBlock *, 8 > BlocksSet
static unsigned skippedInstrFlags(Instruction *I)
static bool mergeCompatibleInvokes(BasicBlock *BB, DomTreeUpdater *DTU)
If this block is a landingpad exception handling block, categorize all the predecessor invokes into s...
static bool replacingOperandWithVariableIsCheap(const Instruction *I, int OpIdx)
static void eraseTerminatorAndDCECond(Instruction *TI, MemorySSAUpdater *MSSAU=nullptr)
static void eliminateBlockCases(BasicBlock *BB, std::vector< ValueEqualityComparisonCase > &Cases)
Given a vector of bb/value pairs, remove any entries in the list that match the specified block.
static bool mergeConditionalStores(CondBrInst *PBI, CondBrInst *QBI, DomTreeUpdater *DTU, const DataLayout &DL, const TargetTransformInfo &TTI)
static bool mergeNestedCondBranch(CondBrInst *BI, DomTreeUpdater *DTU)
Fold the following pattern: bb0: br i1 cond1, label bb1, label bb2 bb1: br i1 cond2,...
static void sinkLastInstruction(ArrayRef< BasicBlock * > Blocks)
static size_t mapCaseToResult(ConstantInt *CaseVal, SwitchCaseResultVectorTy &UniqueResults, Constant *Result)
static bool tryWidenCondBranchToCondBranch(CondBrInst *PBI, CondBrInst *BI, DomTreeUpdater *DTU)
If the previous block ended with a widenable branch, determine if reusing the target block is profita...
static void mergeCompatibleInvokesImpl(ArrayRef< InvokeInst * > Invokes, DomTreeUpdater *DTU)
static bool mergeIdenticalBBs(ArrayRef< BasicBlock * > Candidates, DomTreeUpdater *DTU)
static void getBranchWeights(Instruction *TI, SmallVectorImpl< uint64_t > &Weights)
Get Weights of a given terminator, the default weight is at the front of the vector.
static bool tryToMergeLandingPad(LandingPadInst *LPad, UncondBrInst *BI, BasicBlock *BB, DomTreeUpdater *DTU)
Given an block with only a single landing pad and a unconditional branch try to find another basic bl...
static Constant * lookupConstant(Value *V, const SmallDenseMap< Value *, Constant * > &ConstantPool)
If V is a Constant, return it.
static bool SimplifyCondBranchToCondBranch(CondBrInst *PBI, CondBrInst *BI, DomTreeUpdater *DTU, const DataLayout &DL, const TargetTransformInfo &TTI)
If we have a conditional branch as a predecessor of another block, this function tries to simplify it...
static bool canSinkInstructions(ArrayRef< Instruction * > Insts, DenseMap< const Use *, SmallVector< Value *, 4 > > &PHIOperands)
static void hoistLockstepIdenticalDbgVariableRecords(Instruction *TI, Instruction *I1, SmallVectorImpl< Instruction * > &OtherInsts)
Hoists DbgVariableRecords from I1 and OtherInstrs that are identical in lock-step to TI.
static bool removeEmptyCleanup(CleanupReturnInst *RI, DomTreeUpdater *DTU)
static bool removeUndefIntroducingPredecessor(BasicBlock *BB, DomTreeUpdater *DTU, AssumptionCache *AC)
If BB has an incoming value that will always trigger undefined behavior (eg.
static bool isUncontrolledConvergentCall(CallBase *CB)
static bool simplifySwitchWhenUMin(SwitchInst *SI, DomTreeUpdater *DTU)
Tries to transform the switch when the condition is umin with a constant.
static bool isSafeCheapLoadStore(const Instruction *I, const TargetTransformInfo &TTI)
static ConstantInt * getKnownValueOnEdge(Value *V, BasicBlock *From, BasicBlock *To)
static bool dominatesMergePoint(Value *V, BasicBlock *BB, Instruction *InsertPt, SmallPtrSetImpl< Instruction * > &AggressiveInsts, InstructionCost &Cost, InstructionCost Budget, const TargetTransformInfo &TTI, AssumptionCache *AC, SmallPtrSetImpl< Instruction * > &ZeroCostInstructions, unsigned Depth=0)
If we have a merge point of an "if condition" as accepted above, return true if the specified value d...
static void reuseTableCompare(User *PhiUser, BasicBlock *PhiBlock, CondBrInst *RangeCheckBranch, Constant *DefaultValue, const SmallVectorImpl< std::pair< ConstantInt *, Constant * > > &Values)
Try to reuse the switch table index compare.
This file defines the SmallPtrSet class.
This file defines the SmallVector class.
This file defines the 'Statistic' class, which is designed to be an easy way to expose various metric...
#define STATISTIC(VARNAME, DESC)
Definition Statistic.h:171
#define LLVM_DEBUG(...)
Definition Debug.h:119
static SymbolRef::Type getType(const Symbol *Sym)
Definition TapiFile.cpp:39
This pass exposes codegen information to IR-level passes.
static unsigned getBitWidth(Type *Ty, const DataLayout &DL)
Returns the bitwidth of the given scalar or pointer type.
Value * RHS
Value * LHS
static const uint32_t IV[8]
Definition blake3_impl.h:83
Class for arbitrary precision integers.
Definition APInt.h:78
static APInt getAllOnes(unsigned numBits)
Return an APInt of a specified width with all bits set.
Definition APInt.h:231
LLVM_ABI APInt zext(unsigned width) const
Zero extend to a new width.
Definition APInt.cpp:1057
unsigned popcount() const
Count the number of bits set.
Definition APInt.h:1691
bool sgt(const APInt &RHS) const
Signed greater than comparison.
Definition APInt.h:1206
bool isZero() const
Determine if this value is zero, i.e. all bits are clear.
Definition APInt.h:377
bool sle(const APInt &RHS) const
Signed less or equal comparison.
Definition APInt.h:1171
unsigned getSignificantBits() const
Get the minimum bit size for this signed APInt.
Definition APInt.h:1552
bool isStrictlyPositive() const
Determine if this APInt Value is positive.
Definition APInt.h:353
uint64_t getLimitedValue(uint64_t Limit=UINT64_MAX) const
If this value is smaller than the specified limit, return it, otherwise return the limit value.
Definition APInt.h:472
LLVM_ABI APInt smul_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:1998
bool slt(const APInt &RHS) const
Signed less than comparison.
Definition APInt.h:1135
static APInt getZero(unsigned numBits)
Get the '0' value for the specified bit-width.
Definition APInt.h:197
std::optional< int64_t > trySExtValue() const
Get sign extended value if possible.
Definition APInt.h:1595
LLVM_ABI APInt ssub_ov(const APInt &RHS, bool &Overflow) const
Definition APInt.cpp:1979
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
const T & front() const
Get the first element.
Definition ArrayRef.h:144
size_t size() const
Get the array size.
Definition ArrayRef.h:141
bool empty() const
Check if the array is empty.
Definition ArrayRef.h:136
static LLVM_ABI ArrayType * get(Type *ElementType, uint64_t NumElements)
This static method is the primary way to construct an ArrayType.
A cache of @llvm.assume calls within a function.
LLVM_ABI void registerAssumption(AssumeInst *CI)
Add an @llvm.assume intrinsic to this function's cache.
LLVM_ABI bool getValueAsBool() const
Return the attribute's value as a boolean.
LLVM Basic Block Representation.
Definition BasicBlock.h:62
iterator end()
Definition BasicBlock.h:459
iterator begin()
Instruction iterator methods.
Definition BasicBlock.h:446
iterator_range< const_phi_iterator > phis() const
Returns a range that iterates over the phis in the basic block.
Definition BasicBlock.h:515
LLVM_ABI const_iterator getFirstInsertionPt() const
Returns an iterator to the first instruction in this block that is suitable for inserting a non-PHI i...
const Function * getParent() const
Return the enclosing method, or null if none.
Definition BasicBlock.h:213
bool hasAddressTaken() const
Returns true if there are any uses of this basic block other than direct branches,...
Definition BasicBlock.h:672
LLVM_ABI InstListType::const_iterator getFirstNonPHIIt() const
Returns an iterator to the first instruction in this block that is not a PHINode instruction.
static BasicBlock * Create(LLVMContext &Context, const Twine &Name="", Function *Parent=nullptr, BasicBlock *InsertBefore=nullptr)
Creates a new BasicBlock.
Definition BasicBlock.h:206
LLVM_ABI InstListType::const_iterator getFirstNonPHIOrDbg(bool SkipPseudoOp=true) const
Returns a pointer to the first instruction in this block that is not a PHINode or a debug intrinsic,...
LLVM_ABI bool hasNPredecessors(unsigned N) const
Return true if this block has exactly N predecessors.
LLVM_ABI const BasicBlock * getUniqueSuccessor() const
Return the successor of this block if it has a unique successor.
LLVM_ABI const BasicBlock * getSinglePredecessor() const
Return the predecessor of this block if it has a single predecessor block.
const Instruction & front() const
Definition BasicBlock.h:469
LLVM_ABI const CallInst * getTerminatingDeoptimizeCall() const
Returns the call instruction calling @llvm.experimental.deoptimize prior to the terminating return in...
LLVM_ABI const BasicBlock * getUniquePredecessor() const
Return the predecessor of this block if it has a unique predecessor block.
LLVM_ABI const BasicBlock * getSingleSuccessor() const
Return the successor of this block if it has a single successor.
LLVM_ABI void flushTerminatorDbgRecords()
Eject any debug-info trailing at the end of a block.
LLVM_ABI const DataLayout & getDataLayout() const
Get the data layout of the module this basic block belongs to.
InstListType::iterator iterator
Instruction iterators...
Definition BasicBlock.h:170
LLVM_ABI LLVMContext & getContext() const
Get the context in which this basic block lives.
size_t size() const
Definition BasicBlock.h:467
LLVM_ABI bool isLandingPad() const
Return true if this basic block is a landing pad.
LLVM_ABI bool hasNPredecessorsOrMore(unsigned N) const
Return true if this block has N predecessors or more.
const Instruction * getTerminator() const LLVM_READONLY
Returns the terminator instruction; assumes that the block is well-formed.
Definition BasicBlock.h:237
void splice(BasicBlock::iterator ToIt, BasicBlock *FromBB)
Transfer all instructions from FromBB to this basic block at ToIt.
Definition BasicBlock.h:644
LLVM_ABI const Module * getModule() const
Return the module owning the function this basic block belongs to, or nullptr if the function does no...
LLVM_ABI void removePredecessor(BasicBlock *Pred, bool KeepOneInputPHIs=false)
Update PHI nodes in this BasicBlock before removal of predecessor Pred.
BasicBlock * getBasicBlock() const
Definition Constants.h:1125
static LLVM_ABI BranchProbability getBranchProbability(uint64_t Numerator, uint64_t Denominator)
BranchProbability getCompl() const
Base class for all callable instructions (InvokeInst and CallInst) Holds everything related to callin...
void addRangeRetAttr(const ConstantRange &CR)
adds the range attribute to the list of attributes.
bool isCallee(Value::const_user_iterator UI) const
Determine whether the passed iterator points to the callee operand's Use.
bool isConvergent() const
Determine if the invoke is convergent.
Value * getConvergenceControlToken() const
Return the convergence control token for this call, if it exists.
bool isDataOperand(const Use *U) const
bool tryIntersectAttributes(const CallBase *Other)
Try to intersect the attributes from 'this' CallBase and the 'Other' CallBase.
This class represents a function call, abstracting a target machine's calling convention.
mapped_iterator< op_iterator, DerefFnTy > handler_iterator
CleanupPadInst * getCleanupPad() const
Convenience accessor.
BasicBlock * getUnwindDest() const
This class is the base class for the comparison instructions.
Definition InstrTypes.h:728
static Type * makeCmpResultType(Type *opnd_type)
Create a result type for fcmp/icmp.
bool isEquality() const
Determine if this is an equals/not equals predicate.
Definition InstrTypes.h:978
Predicate
This enumeration lists the possible predicates for CmpInst subclasses.
Definition InstrTypes.h:740
@ ICMP_UGT
unsigned greater than
Definition InstrTypes.h:763
@ ICMP_ULT
unsigned less than
Definition InstrTypes.h:765
Predicate getPredicate() const
Return the predicate for this instruction.
Definition InstrTypes.h:828
An abstraction over a floating-point predicate, and a pack of an integer predicate with samesign info...
Conditional Branch instruction.
static CondBrInst * Create(Value *Cond, BasicBlock *IfTrue, BasicBlock *IfFalse, InsertPosition InsertBefore=nullptr)
void setSuccessor(unsigned idx, BasicBlock *NewSucc)
void setCondition(Value *V)
Value * getCondition() const
BasicBlock * getSuccessor(unsigned i) const
static LLVM_ABI Constant * get(ArrayType *T, ArrayRef< Constant * > V)
A vector constant whose element type is a simple 1/2/4/8-byte integer or float/double,...
Definition Constants.h:951
A constant value that is initialized with an expression using other constant values.
Definition Constants.h:1316
static LLVM_ABI Constant * getNeg(Constant *C, bool HasNSW=false)
ConstantFP - Floating Point Values [float, double].
Definition Constants.h:420
ConstantFolder - Create constants with minimum, target independent, folding.
This is the shared class of boolean and integer constants.
Definition Constants.h:87
bool isOne() const
This is just a convenience method to make client code smaller for a common case.
Definition Constants.h:225
bool isNegative() const
Definition Constants.h:214
uint64_t getLimitedValue(uint64_t Limit=~0ULL) const
getLimitedValue - If the value is smaller than the specified limit, return it, otherwise return the l...
Definition Constants.h:269
IntegerType * getIntegerType() const
Variant of the getType() method to always return an IntegerType, which reduces the amount of casting ...
Definition Constants.h:198
static LLVM_ABI ConstantInt * getTrue(LLVMContext &Context)
static ConstantInt * getSigned(IntegerType *Ty, int64_t V, bool ImplicitTrunc=false)
Return a ConstantInt with the specified value for the specified type.
Definition Constants.h:135
bool isZero() const
This is just a convenience method to make client code smaller for a common code.
Definition Constants.h:219
static LLVM_ABI ConstantInt * getFalse(LLVMContext &Context)
unsigned getBitWidth() const
getBitWidth - Return the scalar bitwidth of this constant.
Definition Constants.h:162
uint64_t getZExtValue() const
Return the constant as a 64-bit unsigned integer value after it has been zero extended as appropriate...
Definition Constants.h:168
const APInt & getValue() const
Return the constant as an APInt value reference.
Definition Constants.h:159
A constant pointer value that points to null.
Definition Constants.h:716
This class represents a range of values.
LLVM_ABI bool getEquivalentICmp(CmpInst::Predicate &Pred, APInt &RHS) const
Set up Pred and RHS such that ConstantRange::makeExactICmpRegion(Pred, RHS) == *this.
LLVM_ABI ConstantRange subtract(const APInt &CI) const
Subtract the specified constant from the endpoints of this constant range.
const APInt & getLower() const
Return the lower value for this range.
LLVM_ABI APInt getUnsignedMin() const
Return the smallest unsigned value contained in the ConstantRange.
LLVM_ABI bool isEmptySet() const
Return true if this set contains no members.
LLVM_ABI bool isSizeLargerThan(uint64_t MaxSize) const
Compare set size of this range with Value.
const APInt & getUpper() const
Return the upper value for this range.
LLVM_ABI bool isUpperWrapped() const
Return true if the exclusive upper bound wraps around the unsigned domain.
static LLVM_ABI ConstantRange makeExactICmpRegion(CmpInst::Predicate Pred, const APInt &Other)
Produce the exact range such that all values in the returned range satisfy the given predicate with a...
LLVM_ABI ConstantRange inverse() const
Return a new range that is the logical not of the current set.
LLVM_ABI APInt getUnsignedMax() const
Return the largest unsigned value contained in the ConstantRange.
static ConstantRange getNonEmpty(APInt Lower, APInt Upper)
Create non-empty constant range with the given bounds.
This is an important base class in LLVM.
Definition Constant.h:43
static LLVM_ABI Constant * getIntegerValue(Type *Ty, const APInt &V)
Return the value for an integer or pointer constant, or a vector thereof, with the given scalar value...
bool isNullValue() const
Return true if this is the value that would be returned by getNullValue.
Definition Constant.h:64
LLVM_ABI bool isOneValue() const
Returns true if the value is one.
Definition Constants.cpp:89
static LLVM_ABI Constant * getNullValue(Type *Ty)
Constructor to create a '0' constant of arbitrary type.
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
Base class for non-instruction debug metadata records that have positions within IR.
LLVM_ABI void removeFromParent()
simple_ilist< DbgRecord >::iterator self_iterator
Record of a variable value-assignment, aka a non instruction representation of the dbg....
A debug info location.
Definition DebugLoc.h:126
bool isSameSourceLocation(const DebugLoc &Other) const
Return true if the source locations match, ignoring isImplicitCode and source atom info.
Definition DebugLoc.h:244
static DebugLoc getTemporary()
Definition DebugLoc.h:152
static LLVM_ABI DebugLoc getMergedLocation(DebugLoc LocA, DebugLoc LocB)
When two instructions are combined into a single instruction we also need to combine the original loc...
Definition DebugLoc.cpp:173
static LLVM_ABI DebugLoc getMergedLocations(ArrayRef< DebugLoc > Locs)
Try to combine the vector of locations passed as input in a single one.
Definition DebugLoc.cpp:160
static DebugLoc getDropped()
Definition DebugLoc.h:155
ValueT & at(const_arg_type_t< KeyT > Val)
Return the entry for the specified key, or abort if no such entry exists.
Definition DenseMap.h:268
iterator find(const_arg_type_t< KeyT > Val)
Definition DenseMap.h:223
std::pair< iterator, bool > try_emplace(KeyT &&Key, Ts &&...Args)
Definition DenseMap.h:299
unsigned size() const
Definition DenseMap.h:172
iterator end()
Definition DenseMap.h:141
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Definition DenseMap.h:284
void reserve(size_type NumEntries)
Grow the densemap so that it can contain at least NumEntries items before resizing again.
Definition DenseMap.h:176
Implements a dense probed hash-table based set.
Definition DenseSet.h:281
static LLVM_ABI FixedVectorType * get(Type *ElementType, unsigned NumElts)
Definition Type.cpp:867
const BasicBlock & getEntryBlock() const
Definition Function.h:794
Attribute getFnAttribute(Attribute::AttrKind Kind) const
Return the attribute for the given attribute kind.
Definition Function.cpp:765
bool hasMinSize() const
Optimize this function for minimum size (-Oz).
Definition Function.h:696
bool hasFnAttribute(Attribute::AttrKind Kind) const
Return true if the function has the attribute.
Definition Function.cpp:730
void applyUpdates(ArrayRef< UpdateT > Updates)
Submit updates to all available trees.
an instruction for type-safe pointer arithmetic to access elements of arrays and structs
Module * getParent()
Get the module that this global value is contained inside of...
This instruction compares its operands according to the predicate given to the constructor.
Predicate getSignedPredicate() const
For example, EQ->EQ, SLE->SLE, UGT->SGT, etc.
bool isEquality() const
Return true if this predicate is either EQ or NE.
static bool isEquality(Predicate P)
Return true if this predicate is either EQ or NE.
Common base class shared among various IRBuilders.
Definition IRBuilder.h:114
Value * CreateICmpULT(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:2408
Value * CreateZExtOrTrunc(Value *V, Type *DestTy, const Twine &Name="")
Create a ZExt or Trunc from the integer value V to DestTy.
Definition IRBuilder.h:2149
CondBrInst * CreateCondBr(Value *Cond, BasicBlock *True, BasicBlock *False, MDNode *BranchWeights=nullptr, MDNode *Unpredictable=nullptr)
Create a conditional 'br Cond, TrueDest, FalseDest' instruction.
Definition IRBuilder.h:1226
LLVM_ABI Value * CreateSelectFMF(Value *C, Value *True, Value *False, FMFSource FMFSource, const Twine &Name="", Instruction *MDFrom=nullptr)
ConstantInt * getTrue()
Get the constant value for i1 true.
Definition IRBuilder.h:457
LLVM_ABI Value * CreateSelect(Value *C, Value *True, Value *False, const Twine &Name="", Instruction *MDFrom=nullptr)
BasicBlock::iterator GetInsertPoint() const
Definition IRBuilder.h:176
Value * CreateFreeze(Value *V, const Twine &Name="")
Definition IRBuilder.h:2745
void SetCurrentDebugLocation(const DebugLoc &L)
Set location information used by debugging information.
Definition IRBuilder.h:221
Value * CreateLShr(Value *LHS, Value *RHS, const Twine &Name="", bool isExact=false)
Definition IRBuilder.h:1542
LLVM_ABI CallInst * CreateAssumption(Value *Cond)
Create an assume intrinsic call that allows the optimizer to assume that the provided condition will ...
Value * CreateInBoundsGEP(Type *Ty, Value *Ptr, ArrayRef< Value * > IdxList, const Twine &Name="")
Definition IRBuilder.h:2029
UncondBrInst * CreateBr(BasicBlock *Dest)
Create an unconditional 'br label X' instruction.
Definition IRBuilder.h:1220
Value * CreateNot(Value *V, const Twine &Name="")
Definition IRBuilder.h:1864
SwitchInst * CreateSwitch(Value *V, BasicBlock *Dest, unsigned NumCases=10, MDNode *BranchWeights=nullptr, MDNode *Unpredictable=nullptr)
Create a switch instruction with the specified value, default dest, and with a hint for the number of...
Definition IRBuilder.h:1249
Value * CreateICmpEQ(Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:2392
LoadInst * CreateLoad(Type *Ty, Value *Ptr, const char *Name)
Provided to resolve 'CreateLoad(Ty, Ptr, "...")' correctly, instead of converting the string to 'bool...
Definition IRBuilder.h:1916
Value * CreateZExt(Value *V, Type *DestTy, const Twine &Name="", bool IsNonNeg=false)
Definition IRBuilder.h:2131
StoreInst * CreateStore(Value *Val, Value *Ptr, bool isVolatile=false)
Definition IRBuilder.h:1935
Value * CreateAdd(Value *LHS, Value *RHS, const Twine &Name="", bool HasNUW=false, bool HasNSW=false)
Definition IRBuilder.h:1432
Value * CreatePtrToInt(Value *V, Type *DestTy, const Twine &Name="")
Definition IRBuilder.h:2243
ConstantInt * getFalse()
Get the constant value for i1 false.
Definition IRBuilder.h:462
Value * CreateTrunc(Value *V, Type *DestTy, const Twine &Name="", bool IsNUW=false, bool IsNSW=false)
Definition IRBuilder.h:2117
Value * CreateIntCast(Value *V, Type *DestTy, bool isSigned, const Twine &Name="")
Definition IRBuilder.h:2333
void SetInsertPoint(BasicBlock *TheBB)
This specifies that created instructions should be appended to the end of the specified block.
Definition IRBuilder.h:181
Value * CreateICmp(CmpInst::Predicate P, Value *LHS, Value *RHS, const Twine &Name="")
Definition IRBuilder.h:2502
Value * CreateOr(Value *LHS, Value *RHS, const Twine &Name="", bool IsDisjoint=false)
Definition IRBuilder.h:1602
Value * CreateMul(Value *LHS, Value *RHS, const Twine &Name="", bool HasNUW=false, bool HasNSW=false)
Definition IRBuilder.h:1466
Provides an 'InsertHelper' that calls a user-provided callback after performing the default insertion...
Definition IRBuilder.h:75
This provides a uniform API for creating instructions and inserting them into a basic block: either a...
Definition IRBuilder.h:2910
Indirect Branch Instruction.
BasicBlock * getDestination(unsigned i)
Return the specified destination.
unsigned getNumDestinations() const
return the number of possible destinations in this indirectbr instruction.
LLVM_ABI void removeDestination(unsigned i)
This method removes the specified successor from the indirectbr instruction.
LLVM_ABI void dropUBImplyingAttrsAndMetadata(ArrayRef< unsigned > Keep={})
Drop any attributes or metadata that can cause immediate undefined behavior.
LLVM_ABI Instruction * clone() const
Create a copy of 'this' instruction that is identical in all ways except the following:
LLVM_ABI iterator_range< simple_ilist< DbgRecord >::iterator > cloneDebugInfoFrom(const Instruction *From, std::optional< simple_ilist< DbgRecord >::iterator > FromHere=std::nullopt, bool InsertAtHead=false)
Clone any debug-info attached to From onto this instruction.
LLVM_ABI unsigned getNumSuccessors() const LLVM_READONLY
Return the number of successors that this instruction has.
iterator_range< simple_ilist< DbgRecord >::iterator > getDbgRecordRange() const
Return a range over the DbgRecords attached to this instruction.
const DebugLoc & getDebugLoc() const
Return the debug location for this node as a DebugLoc.
LLVM_ABI const Module * getModule() const
Return the module owning the function this instruction belongs to or nullptr it the function does not...
LLVM_ABI void andIRFlags(const Value *V)
Logical 'and' of any supported wrapping, exact, and fast-math flags of V and this instruction.
bool hasMetadata() const
Return true if this instruction has any metadata attached to it.
LLVM_ABI void moveBefore(InstListType::iterator InsertPos)
Unlink this instruction from its current basic block and insert it into the basic block that MovePos ...
LLVM_ABI bool isAtomic() const LLVM_READONLY
Return true if this instruction has an AtomicOrdering of unordered or higher.
LLVM_ABI InstListType::iterator eraseFromParent()
This method unlinks 'this' from the containing basic block and deletes it.
Instruction * user_back()
Specialize the methods defined in Value, as we know that an instruction can only be used by other ins...
LLVM_ABI const Function * getFunction() const
Return the function this instruction belongs to.
MDNode * getMetadata(unsigned KindID) const
Get the metadata of given kind attached to this Instruction.
LLVM_ABI BasicBlock * getSuccessor(unsigned Idx) const LLVM_READONLY
Return the specified successor. This instruction must be a terminator.
LLVM_ABI bool mayHaveSideEffects() const LLVM_READONLY
Return true if the instruction may have side effects.
bool isTerminator() const
LLVM_ABI bool isUsedOutsideOfBlock(const BasicBlock *BB) const LLVM_READONLY
Return true if there are any uses of this instruction in blocks other than the specified block.
LLVM_ABI void setMetadata(unsigned KindID, MDNode *Node)
Set the metadata of the specified kind to the specified node.
@ CompareUsingIntersectedAttrs
Check for equivalence with intersected callbase attrs.
LLVM_ABI bool isIdenticalTo(const Instruction *I) const LLVM_READONLY
Return true if the specified instruction is exactly identical to the current one.
void setDebugLoc(DebugLoc Loc)
Set the debug location information for this instruction.
LLVM_ABI void copyMetadata(const Instruction &SrcInst, ArrayRef< unsigned > WL=ArrayRef< unsigned >())
Copy metadata from SrcInst to this instruction.
LLVM_ABI void applyMergedLocation(DebugLoc LocA, DebugLoc LocB)
Merge 2 debug locations and apply it to the Instruction.
LLVM_ABI void dropDbgRecords()
Erase any DbgRecords attached to this instruction.
LLVM_ABI InstListType::iterator insertInto(BasicBlock *ParentBB, InstListType::iterator It)
Inserts an unlinked instruction into ParentBB at position It and returns the iterator of the inserted...
Class to represent integer types.
static LLVM_ABI IntegerType * get(LLVMContext &C, unsigned NumBits)
This static method is the primary way of constructing an IntegerType.
Definition Type.cpp:348
unsigned getBitWidth() const
Get the number of bits in this IntegerType.
Invoke instruction.
void setNormalDest(BasicBlock *B)
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
The landingpad instruction holds all of the information necessary to generate correct exception handl...
An instruction for reading from memory.
static unsigned getPointerOperandIndex()
Iterates through instructions in a set of blocks in reverse order from the first non-terminator.
LLVM_ABI MDNode * createBranchWeights(uint32_t TrueWeight, uint32_t FalseWeight, bool IsExpected=false)
Return metadata containing two branch weights.
Definition MDBuilder.cpp:38
Metadata node.
Definition Metadata.h:1069
Helper class to manipulate !mmra metadata nodes.
bool empty() const
Definition MapVector.h:79
std::pair< iterator, bool > insert(const std::pair< KeyT, ValueT > &KV)
Definition MapVector.h:126
size_type size() const
Definition MapVector.h:58
A Module instance is used to store all the information related to an LLVM module.
Definition Module.h:68
void addIncoming(Value *V, BasicBlock *BB)
Add an incoming value to the end of the PHI list.
iterator_range< const_block_iterator > blocks() const
op_range incoming_values()
void setIncomingValue(unsigned i, Value *V)
Value * getIncomingValueForBlock(const BasicBlock *BB) const
BasicBlock * getIncomingBlock(unsigned i) const
Return incoming basic block number i.
Value * getIncomingValue(unsigned i) const
Return incoming value number x.
int getBasicBlockIndex(const BasicBlock *BB) const
Return the first index of the specified basic block in the value list for this PHI.
unsigned getNumIncomingValues() const
Return the number of incoming edges.
static PHINode * Create(Type *Ty, unsigned NumReservedValues, const Twine &NameStr="", InsertPosition InsertBefore=nullptr)
Constructors - NumReservedValues is a hint for the number of incoming edges that this phi node will h...
static LLVM_ABI PoisonValue * get(Type *T)
Static factory methods - Return an 'poison' object of the specified type.
Value * getValue() const
Convenience accessor.
Return a value (possibly void), from a function.
This class represents the LLVM 'select' instruction.
size_type size() const
Determine the number of elements in the SetVector.
Definition SetVector.h:103
void insert_range(Range &&R)
Definition SetVector.h:182
bool empty() const
Determine if the SetVector is empty or not.
Definition SetVector.h:100
bool insert(const value_type &X)
Insert a new element into the SetVector.
Definition SetVector.h:157
size_type size() const
A templated base class for SmallPtrSet which provides the typesafe interface that is common across al...
bool erase(PtrType Ptr)
Remove pointer from the set.
size_type count(ConstPtrType Ptr) const
count - Return 1 if the specified pointer is in the set, 0 otherwise.
void insert_range(Range &&R)
std::pair< iterator, bool > insert(PtrType Ptr)
Inserts Ptr if and only if there is no element in the container equal to Ptr.
bool contains(ConstPtrType Ptr) const
SmallPtrSet - This class implements a set which is optimized for holding SmallSize or less elements.
A SetVector that performs no allocations if smaller than a certain size.
Definition SetVector.h:345
SmallSet - This maintains a set of unique values, optimizing for the case when the set is small (less...
Definition SmallSet.h:134
std::pair< const_iterator, bool > insert(const T &V)
insert - Insert an element into the set if it isn't already there.
Definition SmallSet.h:184
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
void assign(size_type NumElts, ValueParamT Elt)
reference emplace_back(ArgTypes &&... Args)
void reserve(size_type N)
void resize(size_type N)
void push_back(const T &Elt)
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
An instruction for storing to memory.
AtomicOrdering getOrdering() const
Returns the ordering constraint of this store instruction.
Align getAlign() const
bool isSimple() const
Value * getValueOperand()
bool isUnordered() const
static unsigned getPointerOperandIndex()
SyncScope::ID getSyncScopeID() const
Returns the synchronization scope ID of this store instruction.
Value * getPointerOperand()
Represent a constant reference to a string, i.e.
Definition StringRef.h:56
A wrapper class to simplify modification of SwitchInst cases along with their prof branch_weights met...
LLVM_ABI void setSuccessorWeight(unsigned idx, CaseWeightOpt W)
LLVM_ABI void addCase(ConstantInt *OnVal, BasicBlock *Dest, CaseWeightOpt W)
Delegate the call to the underlying SwitchInst::addCase() and set the specified branch weight for the...
LLVM_ABI CaseWeightOpt getSuccessorWeight(unsigned idx)
LLVM_ABI void replaceDefaultDest(SwitchInst::CaseIt I)
Replace the default destination by given case.
std::optional< uint32_t > CaseWeightOpt
LLVM_ABI SwitchInst::CaseIt removeCase(SwitchInst::CaseIt I)
Delegate the call to the underlying SwitchInst::removeCase() and remove correspondent branch weight.
Multiway switch.
CaseIt case_end()
Returns a read/write iterator that points one past the last in the SwitchInst.
BasicBlock * getSuccessor(unsigned idx) const
void setCondition(Value *V)
LLVM_ABI void addCase(ConstantInt *OnVal, BasicBlock *Dest)
Add an entry to the switch instruction.
CaseIteratorImpl< CaseHandle > CaseIt
void setSuccessor(unsigned idx, BasicBlock *NewSucc)
unsigned getNumSuccessors() const
This pass provides access to the codegen interfaces that are needed for IR-level transformations.
TargetCostKind
The kind of cost model.
@ TCK_CodeSize
Instruction code size.
@ TCK_SizeAndLatency
The weighted sum of size and latency.
@ TCC_Free
Expected to fold away in lowering.
@ TCC_Basic
The cost of a typical 'add' instruction.
Twine - A lightweight data structure for efficiently representing the concatenation of temporary valu...
Definition Twine.h:82
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
bool isPointerTy() const
True if this is an instance of PointerType.
Definition Type.h:282
LLVM_ABI TypeSize getPrimitiveSizeInBits() const LLVM_READONLY
Return the basic size of this type if it is a primitive type.
Definition Type.cpp:197
static LLVM_ABI IntegerType * getInt1Ty(LLVMContext &C)
Definition Type.cpp:306
bool isIntegerTy() const
True if this is an instance of IntegerType.
Definition Type.h:257
Unconditional Branch instruction.
void setSuccessor(BasicBlock *NewSucc)
static UncondBrInst * Create(BasicBlock *Target, InsertPosition InsertBefore=nullptr)
BasicBlock * getSuccessor(unsigned i=0) const
'undef' values are things that do not have specified contents.
Definition Constants.h:1631
This function has undefined behavior.
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
LLVM_ABI unsigned getOperandNo() const
Return the operand # of this use in its User.
Definition Use.cpp:35
LLVM_ABI void set(Value *Val)
Definition Value.h:874
User * getUser() const
Returns the User that contains this Use.
Definition Use.h:61
op_range operands()
Definition User.h:267
const Use & getOperandUse(unsigned i) const
Definition User.h:220
void setOperand(unsigned i, Value *Val)
Definition User.h:212
LLVM_ABI bool replaceUsesOfWith(Value *From, Value *To)
Replace uses of one Value with another.
Definition User.cpp:25
Value * getOperand(unsigned i) const
Definition User.h:207
unsigned getNumOperands() const
Definition User.h:229
LLVM Value Representation.
Definition Value.h:75
Type * getType() const
All values are typed, get the type of this value.
Definition Value.h:255
static constexpr uint64_t MaximumAlignment
Definition Value.h:799
LLVM_ABI Value(Type *Ty, unsigned scid)
Definition Value.cpp:54
LLVM_ABI void setName(const Twine &Name)
Change the name of the value.
Definition Value.cpp:394
bool hasOneUse() const
Return true if there is exactly one use of this value.
Definition Value.h:439
LLVM_ABI void replaceAllUsesWith(Value *V)
Change all uses of this to point to a new Value.
Definition Value.cpp:553
LLVMContext & getContext() const
All values hold a context through their type.
Definition Value.h:258
iterator_range< user_iterator > users()
Definition Value.h:426
bool use_empty() const
Definition Value.h:346
iterator_range< use_iterator > uses()
Definition Value.h:380
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
Definition Value.cpp:319
LLVM_ABI void takeName(Value *V)
Transfer the name from V to this value.
Definition Value.cpp:400
Represents an op.with.overflow intrinsic.
const ParentTy * getParent() const
Definition ilist_node.h:34
self_iterator getIterator()
Definition ilist_node.h:123
NodeTy * getNextNode()
Get the next node, or nullptr for the list tail.
Definition ilist_node.h:348
A range adaptor for a pair of iterators.
Changed
#define UINT64_MAX
Definition DataTypes.h:77
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
constexpr std::underlying_type_t< E > Mask()
Get a bitmask with 1s in all places up to the high-order bit of E's largest value.
@ BasicBlock
Various leaf nodes.
Definition ISDOpcodes.h:81
BinaryOp_match< SrcTy, SpecificConstantMatch, TargetOpcode::G_XOR, true > m_Not(const SrcTy &&Src)
Matches a register not-ed by a G_XOR.
OneUse_match< SubPat > m_OneUse(const SubPat &SP)
Predicate
Predicate - These are "(BI << 5) | BO" for various predicates.
match_combine_or< Ty... > m_CombineOr(const Ty &...Ps)
Combine pattern matchers matching any of Ps patterns.
BinaryOp_match< LHS, RHS, Instruction::And > m_And(const LHS &L, const RHS &R)
auto m_Cmp()
Matches any compare instruction and ignore it.
BinaryOp_match< LHS, RHS, Instruction::Add > m_Add(const LHS &L, const RHS &R)
ap_match< APInt > m_APInt(const APInt *&Res)
Match a ConstantInt or splatted ConstantVector, binding the specified pointer to the contained APInt.
bool match(Val *V, const Pattern &P)
match_bind< Instruction > m_Instruction(Instruction *&I)
Match an instruction, capturing it if we match.
auto m_UMin(const Opnd0 &Op0, const Opnd1 &Op1)
specificval_ty m_Specific(const Value *V)
Match if we have a specific specified value.
auto m_BinOp()
Match an arbitrary binary operation and ignore it.
ExtractValue_match< Ind, Val_t > m_ExtractValue(const Val_t &V)
Match a single index ExtractValue instruction.
auto m_Value()
Match an arbitrary value and ignore it.
auto m_LogicalOr()
Matches L || R where L and R are arbitrary values.
ThreeOps_match< decltype(m_Value()), LHS, RHS, Instruction::Select, true > m_c_Select(const LHS &L, const RHS &R)
Match Select(C, LHS, RHS) or Select(C, RHS, LHS)
match_bind< WithOverflowInst > m_WithOverflowInst(WithOverflowInst *&I)
Match a with overflow intrinsic, capturing it if we match.
match_immconstant_ty m_ImmConstant()
Match an arbitrary immediate Constant and ignore it.
NoWrapTrunc_match< OpTy, TruncInst::NoUnsignedWrap > m_NUWTrunc(const OpTy &Op)
Matches trunc nuw.
CmpClass_match< LHS, RHS, ICmpInst > m_ICmp(CmpPredicate &Pred, const LHS &L, const RHS &R)
auto m_LogicalAnd()
Matches L && R where L and R are arbitrary values.
BinaryOp_match< LHS, RHS, Instruction::Or > m_Or(const LHS &L, const RHS &R)
auto m_ConstantInt()
Match an arbitrary ConstantInt and ignore it.
SmallVector< DbgVariableRecord * > getDVRAssignmentMarkers(const Instruction *Inst)
Return a range of dbg_assign records for which Inst performs the assignment they encode.
Definition DebugInfo.h:205
LLVM_ABI void deleteAssignmentMarkers(const Instruction *Inst)
Delete the llvm.dbg.assign intrinsics linked to Inst.
initializer< Ty > init(const Ty &Val)
PointerTypeMap run(const Module &M)
Compute the PointerTypeMap for the module M.
constexpr double e
@ User
could "use" a pointer
NodeAddr< UseNode * > Use
Definition RDFGraph.h:385
NodeAddr< FuncNode * > Func
Definition RDFGraph.h:393
friend class Instruction
Iterator for Instructions in a `BasicBlock.
Definition BasicBlock.h:73
This is an optimization pass for GlobalISel generic memory operations.
auto drop_begin(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the first N elements excluded.
Definition STLExtras.h:315
@ Offset
Definition DWP.cpp:577
detail::zippy< detail::zip_shortest, T, U, Args... > zip(T &&t, U &&u, Args &&...args)
zip iterator for two or more iteratable types.
Definition STLExtras.h:830
bool operator<(int64_t V1, const APSInt &V2)
Definition APSInt.h:360
constexpr auto not_equal_to(T &&Arg)
Functor variant of std::not_equal_to that can be used as a UnaryPredicate in functional algorithms li...
Definition STLExtras.h:2180
LLVM_ABI bool foldBranchToCommonDest(CondBrInst *BI, llvm::DomTreeUpdater *DTU=nullptr, MemorySSAUpdater *MSSAU=nullptr, const TargetTransformInfo *TTI=nullptr, AssumptionCache *AC=nullptr, unsigned BonusInstThreshold=1)
If this basic block is ONLY a setcc and a branch, and if a predecessor branches to us and one of our ...
auto find(R &&Range, const T &Val)
Provide wrappers to std::find which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1765
LLVM_ABI cl::opt< bool > ProfcheckDisableMetadataFixes
Definition LoopInfo.cpp:60
bool all_of(R &&range, UnaryPredicate P)
Provide wrappers to std::all_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1739
LLVM_ABI bool RecursivelyDeleteTriviallyDeadInstructions(Value *V, const TargetLibraryInfo *TLI=nullptr, MemorySSAUpdater *MSSAU=nullptr, std::function< void(Value *)> AboutToDeleteCallback=std::function< void(Value *)>())
If the specified value is a trivially dead instruction, delete it.
Definition Local.cpp:522
bool succ_empty(const Instruction *I)
Definition CFG.h:141
LLVM_ABI bool IsBlockFollowedByDeoptOrUnreachable(const BasicBlock *BB)
Check if we can prove that all paths starting from this block converge to a block that either has a @...
LLVM_ABI bool ConstantFoldTerminator(BasicBlock *BB, bool DeleteDeadConditions=false, const TargetLibraryInfo *TLI=nullptr, DomTreeUpdater *DTU=nullptr)
If a terminator instruction is predicated on a constant value, convert it into an unconditional branc...
Definition Local.cpp:133
static cl::opt< unsigned > MaxSwitchCasesPerResult("max-switch-cases-per-result", cl::Hidden, cl::init(16), cl::desc("Limit cases to analyze when converting a switch to select"))
InstructionCost Cost
RelativeUniformCounterPtr Values
Definition InstrProf.h:91
static cl::opt< bool > SpeculateOneExpensiveInst("speculate-one-expensive-inst", cl::Hidden, cl::init(true), cl::desc("Allow exactly one expensive instruction to be speculatively " "executed"))
@ Known
Known to have no common set bits.
@ Dead
Unused definition.
auto pred_end(const MachineBasicBlock *BB)
void set_intersect(S1Ty &S1, const S2Ty &S2)
set_intersect(A, B) - Compute A := A ^ B Identical to set_intersection, except that it works on set<>...
LLVM_ABI void setExplicitlyUnknownBranchWeightsIfProfiled(Instruction &I, StringRef PassName, const Function *F=nullptr)
Like setExplicitlyUnknownBranchWeights(...), but only sets unknown branch weights in the new instruct...
decltype(auto) dyn_cast(const From &Val)
dyn_cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:643
auto successors(const MachineBasicBlock *BB)
@ Load
The value being inserted comes from a load (InsertElement only).
auto accumulate(R &&Range, E &&Init)
Wrapper for std::accumulate.
Definition STLExtras.h:1702
constexpr from_range_t from_range
iterator_range< T > make_range(T x, T y)
Convenience function for iterating over sub-ranges.
LLVM_ABI MDNode * getBranchWeightMDNode(const Instruction &I)
Get the branch weights metadata node.
void append_range(Container &C, Range &&R)
Wrapper function to append range R to container C.
Definition STLExtras.h:2208
constexpr bool isUIntN(unsigned N, uint64_t x)
Checks if an unsigned integer fits into the given (dynamic) bit width.
Definition MathExtras.h:244
LLVM_ABI Constant * ConstantFoldCompareInstOperands(unsigned Predicate, Constant *LHS, Constant *RHS, const DataLayout &DL, const TargetLibraryInfo *TLI=nullptr, const Instruction *I=nullptr)
Attempt to constant fold a compare instruction (icmp/fcmp) with the specified operands.
iterator_range< early_inc_iterator_impl< detail::IterOfRange< RangeT > > > make_early_inc_range(RangeT &&Range)
Make a range that does early increment to allow mutation of the underlying range without disrupting i...
Definition STLExtras.h:633
Align getLoadStoreAlignment(const Value *I)
A helper function that returns the alignment of load or store instruction.
LLVM_ABI void DeleteDeadBlock(BasicBlock *BB, DomTreeUpdater *DTU=nullptr, bool KeepOneInputPHIs=false)
Delete the specified block, which must have no predecessors.
LLVM_ABI bool isSafeToSpeculativelyExecute(const Instruction *I, const Instruction *CtxI=nullptr, AssumptionCache *AC=nullptr, const DominatorTree *DT=nullptr, const TargetLibraryInfo *TLI=nullptr, bool UseVariableInfo=true, bool IgnoreUBImplyingAttrs=true)
Return true if the instruction does not have any effects besides calculating the result and does not ...
auto unique(Range &&R, Predicate P)
Definition STLExtras.h:2134
static cl::opt< unsigned > MaxSpeculationDepth("max-speculation-depth", cl::Hidden, cl::init(10), cl::desc("Limit maximum recursion depth when calculating costs of " "speculatively executed instructions"))
OutputIt copy_if(R &&Range, OutputIt Out, UnaryPredicate P)
Provide wrappers to std::copy_if which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1791
static cl::opt< unsigned > PHINodeFoldingThreshold("phi-node-folding-threshold", cl::Hidden, cl::init(2), cl::desc("Control the amount of phi node folding to perform (default = 2)"))
bool operator==(const AddressRangeValuePair &LHS, const AddressRangeValuePair &RHS)
static cl::opt< bool > MergeCondStoresAggressively("simplifycfg-merge-cond-stores-aggressively", cl::Hidden, cl::init(false), cl::desc("When merging conditional stores, do so even if the resultant " "basic blocks are unlikely to be if-converted as a result"))
constexpr int popcount(T Value) noexcept
Count the number of set bits in a value.
Definition bit.h:156
LLVM_ABI ConstantRange getConstantRangeFromMetadata(const MDNode &RangeMD)
Parse out a conservative ConstantRange from !range metadata.
auto map_range(ContainerTy &&C, FuncTy F)
Return a range that applies F to the elements of C.
Definition STLExtras.h:365
static cl::opt< unsigned > BranchFoldThreshold("simplifycfg-branch-fold-threshold", cl::Hidden, cl::init(2), cl::desc("Maximum cost of combining conditions when " "folding branches"))
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Value
Definition InstrProf.h:143
uint64_t PowerOf2Ceil(uint64_t A)
Returns the power of two which is greater than or equal to the given value.
Definition MathExtras.h:380
int countr_zero(T Val)
Count number of 0's from the least significant bit to the most stopping at the first 1.
Definition bit.h:204
LLVM_ABI Value * simplifyInstruction(Instruction *I, const SimplifyQuery &Q)
See if we can compute a simplified version of this instruction.
LLVM_ABI void setBranchWeights(Instruction &I, ArrayRef< uint32_t > Weights, bool IsExpected, bool ElideAllZero=false)
Create a new branch_weights metadata node and add or overwrite a prof metadata reference to instructi...
static cl::opt< bool > SinkCommon("simplifycfg-sink-common", cl::Hidden, cl::init(true), cl::desc("Sink common instructions down to the end block"))
void erase(Container &C, ValueType V)
Wrapper function to remove a value from a container:
Definition STLExtras.h:2200
constexpr bool has_single_bit(T Value) noexcept
Definition bit.h:149
static cl::opt< bool > HoistStoresWithCondFaulting("simplifycfg-hoist-stores-with-cond-faulting", cl::Hidden, cl::init(true), cl::desc("Hoist stores if the target supports conditional faulting"))
bool any_of(R &&range, UnaryPredicate P)
Provide wrappers to std::any_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1746
constexpr detail::StaticCastFunc< To > StaticCastTo
Function objects corresponding to the Cast types defined above.
Definition Casting.h:882
unsigned Log2_32(uint32_t Value)
Return the floor log base 2 of the specified value, -1 if the value is zero.
Definition MathExtras.h:326
LLVM_ABI CondBrInst * GetIfCondition(BasicBlock *BB, BasicBlock *&IfTrue, BasicBlock *&IfFalse)
Check whether BB is the merge point of a if-region.
LLVM_ABI bool TryToSimplifyUncondBranchFromEmptyBlock(BasicBlock *BB, DomTreeUpdater *DTU=nullptr)
BB is known to contain an unconditional branch, and contains no instructions other than PHI nodes,...
Definition Local.cpp:1147
void RemapDbgRecordRange(Module *M, iterator_range< DbgRecordIterator > Range, ValueToValueMapTy &VM, RemapFlags Flags=RF_None, ValueMapTypeRemapper *TypeMapper=nullptr, ValueMaterializer *Materializer=nullptr, const MetadataPredicate *IdentityMD=nullptr)
Remap the Values used in the DbgRecords Range using the value map VM.
LLVM_ABI void InvertBranch(CondBrInst *PBI, IRBuilderBase &Builder)
auto reverse(ContainerTy &&C)
Definition STLExtras.h:407
constexpr bool isPowerOf2_32(uint32_t Value)
Return true if the argument is a power of two > 0.
Definition MathExtras.h:280
LLVM_ABI bool impliesPoison(const Value *ValAssumedPoison, const Value *V)
Return true if V is poison given that ValAssumedPoison is already poison.
void sort(IteratorTy Start, IteratorTy End)
Definition STLExtras.h:1636
static cl::opt< bool > EnableMergeCompatibleInvokes("simplifycfg-merge-compatible-invokes", cl::Hidden, cl::init(true), cl::desc("Allow SimplifyCFG to merge invokes together when appropriate"))
@ RF_IgnoreMissingLocals
If this flag is set, the remapper ignores missing function-local entries (Argument,...
Definition ValueMapper.h:98
@ RF_NoModuleLevelChanges
If this flag is set, the remapper knows that only local values within a function (such as an instruct...
Definition ValueMapper.h:80
LLVM_ABI void computeKnownBits(const Value *V, KnownBits &Known, const DataLayout &DL, AssumptionCache *AC=nullptr, const Instruction *CxtI=nullptr, const DominatorTree *DT=nullptr, bool UseInstrInfo=true, unsigned Depth=0)
Determine which bits of V are known to be either zero or one and return them in the KnownZero/KnownOn...
LLVM_ABI bool NullPointerIsDefined(const Function *F, unsigned AS=0)
Check whether null pointer dereferencing is considered undefined behavior for a given function or an ...
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
Definition Debug.cpp:209
bool none_of(R &&Range, UnaryPredicate P)
Provide wrappers to std::none_of which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1753
auto make_first_range(ContainerTy &&c)
Given a container of pairs, return a range over the first elements.
Definition STLExtras.h:1399
LLVM_ABI bool collectPossibleValues(const Value *V, SmallPtrSetImpl< const Constant * > &Constants, unsigned MaxCount, bool AllowUndefOrPoison=true)
Enumerates all possible immediate values of V and inserts them into the set Constants.
LLVM_ABI Instruction * removeUnwindEdge(BasicBlock *BB, DomTreeUpdater *DTU=nullptr)
Replace 'BB's terminator with one that does not have an unwind successor block.
Definition Local.cpp:2874
auto succ_size(const MachineBasicBlock *BB)
iterator_range< filter_iterator< detail::IterOfRange< RangeT >, PredicateT > > make_filter_range(RangeT &&Range, PredicateT Pred)
Convenience function that takes a range of elements and a predicate, and return a new filter_iterator...
Definition STLExtras.h:551
class LLVM_GSL_OWNER SmallVector
Forward declaration of SmallVector so that calculateSmallVectorDefaultInlinedElements can reference s...
bool isa(const From &Val)
isa<X> - Return true if the parameter to the template is an instance of one of the template type argu...
Definition Casting.h:547
static cl::opt< unsigned > MaxJumpThreadingLiveBlocks("max-jump-threading-live-blocks", cl::Hidden, cl::init(24), cl::desc("Limit number of blocks a define in a threaded block is allowed " "to be live in"))
RNSuccIterator< NodeRef, BlockT, RegionT > succ_begin(NodeRef Node)
LLVM_ABI void combineMetadataForCSE(Instruction *K, const Instruction *J, bool DoesKMove)
Combine the metadata of two instructions so that K can replace J.
Definition Local.cpp:3116
iterator_range(Container &&) -> iterator_range< llvm::detail::IterOfRange< Container > >
auto drop_end(T &&RangeOrContainer, size_t N=1)
Return a range covering RangeOrContainer with the last N elements excluded.
Definition STLExtras.h:322
static cl::opt< int > MaxSmallBlockSize("simplifycfg-max-small-block-size", cl::Hidden, cl::init(10), cl::desc("Max size of a block which is still considered " "small enough to thread through"))
LLVM_ABI BasicBlock * SplitBlockPredecessors(BasicBlock *BB, ArrayRef< BasicBlock * > Preds, const char *Suffix, DominatorTree *DT, LoopInfo *LI=nullptr, MemorySSAUpdater *MSSAU=nullptr, bool PreserveLCSSA=false)
This method introduces at least one new basic block into the function and moves some of the predecess...
LLVM_ABI bool isWidenableBranch(const User *U)
Returns true iff U is a widenable branch (that is, extractWidenableCondition returns widenable condit...
@ Other
Any other memory.
Definition ModRef.h:68
TargetTransformInfo TTI
static cl::opt< unsigned > HoistCommonSkipLimit("simplifycfg-hoist-common-skip-limit", cl::Hidden, cl::init(20), cl::desc("Allow reordering across at most this many " "instructions when hoisting"))
IRBuilder(LLVMContext &, FolderTy, InserterTy, MDNode *, ArrayRef< OperandBundleDef >) -> IRBuilder< FolderTy, InserterTy >
LLVM_ABI cl::opt< bool > RequireAndPreserveDomTree
This function is used to do simplification of a CFG.
static cl::opt< bool > MergeCondStores("simplifycfg-merge-cond-stores", cl::Hidden, cl::init(true), cl::desc("Hoist conditional stores even if an unconditional store does not " "precede - hoist multiple conditional stores into a single " "predicated store"))
static cl::opt< unsigned > BranchFoldToCommonDestVectorMultiplier("simplifycfg-branch-fold-common-dest-vector-multiplier", cl::Hidden, cl::init(2), cl::desc("Multiplier to apply to threshold when determining whether or not " "to fold branch to common destination when vector operations are " "present"))
RNSuccIterator< NodeRef, BlockT, RegionT > succ_end(NodeRef Node)
LLVM_ABI bool MergeBlockIntoPredecessor(BasicBlock *BB, DomTreeUpdater *DTU=nullptr, LoopInfo *LI=nullptr, MemorySSAUpdater *MSSAU=nullptr, MemoryDependenceResults *MemDep=nullptr, bool PredecessorWithTwoSuccessors=false, DominatorTree *DT=nullptr)
Attempts to merge a block into its predecessor, if possible.
LLVM_ABI void hoistAllInstructionsInto(BasicBlock *DomBlock, Instruction *InsertPt, BasicBlock *BB)
Hoist all of the instructions in the IfBlock to the dominant block DomBlock, by moving its instructio...
Definition Local.cpp:3395
@ Sub
Subtraction of integers.
LLVM_ABI BasicBlock * SplitBlock(BasicBlock *Old, BasicBlock::iterator SplitPt, DominatorTree *DT, LoopInfo *LI=nullptr, MemorySSAUpdater *MSSAU=nullptr, const Twine &BBName="")
Split the specified block at the specified instruction.
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Count
Definition InstrProf.h:145
auto count(R &&Range, const E &Element)
Wrapper function around std::count to count the number of times an element Element occurs in the give...
Definition STLExtras.h:2012
IntPtrTy
Definition InstrProf.h:82
void RemapInstruction(Instruction *I, ValueToValueMapTy &VM, RemapFlags Flags=RF_None, ValueMapTypeRemapper *TypeMapper=nullptr, ValueMaterializer *Materializer=nullptr, const MetadataPredicate *IdentityMD=nullptr)
Convert the instruction operands from referencing the current values into those specified by VM.
LLVM_ABI bool canReplaceOperandWithVariable(const Instruction *I, unsigned OpIdx)
Given an instruction, is it legal to set operand OpIdx to a non-constant value?
Definition Local.cpp:3901
DWARFExpression::Operation Op
LLVM_ABI bool PointerMayBeCaptured(const Value *V, bool ReturnCaptures, unsigned MaxUsesToExplore=0)
PointerMayBeCaptured - Return true if this pointer value may be captured by the enclosing function (w...
LLVM_ABI bool FoldSingleEntryPHINodes(BasicBlock *BB, MemoryDependenceResults *MemDep=nullptr)
We know that BB has one predecessor.
LLVM_ABI bool isGuaranteedNotToBeUndefOrPoison(const Value *V, AssumptionCache *AC=nullptr, const Instruction *CtxI=nullptr, const DominatorTree *DT=nullptr, unsigned Depth=0)
Return true if this function can prove that V does not have undef bits and is never poison.
void RemapDbgRecord(Module *M, DbgRecord *DR, ValueToValueMapTy &VM, RemapFlags Flags=RF_None, ValueMapTypeRemapper *TypeMapper=nullptr, ValueMaterializer *Materializer=nullptr, const MetadataPredicate *IdentityMD=nullptr)
Remap the Values used in the DbgRecord DR using the value map VM.
ArrayRef(const T &OneElt) -> ArrayRef< T >
constexpr unsigned BitWidth
auto sum_of(R &&Range, E Init=E{0})
Returns the sum of all values in Range with Init initial value.
Definition STLExtras.h:1717
ValueMap< const Value *, WeakTrackingVH > ValueToValueMapTy
LLVM_ABI bool isGuaranteedToTransferExecutionToSuccessor(const Instruction *I)
Return true if this function can prove that the instruction I will always transfer execution to one o...
static cl::opt< bool > HoistCondStores("simplifycfg-hoist-cond-stores", cl::Hidden, cl::init(true), cl::desc("Hoist conditional stores if an unconditional store precedes"))
LLVM_ABI bool extractBranchWeights(const MDNode *ProfileData, SmallVectorImpl< uint32_t > &Weights)
Extract branch weights from MD_prof metadata.
LLVM_ABI bool simplifyCFG(BasicBlock *BB, const TargetTransformInfo &TTI, DomTreeUpdater *DTU=nullptr, const SimplifyCFGOptions &Options={}, ArrayRef< WeakVH > LoopHeaders={})
auto pred_begin(const MachineBasicBlock *BB)
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
Definition Casting.h:559
auto find_if(R &&Range, UnaryPredicate P)
Provide wrappers to std::find_if which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1772
constexpr auto seq(T Begin, T End)
Iterate over an integral type from Begin up to - but not including - End.
Definition Sequence.h:341
void erase_if(Container &C, UnaryPredicate P)
Provide a container algorithm similar to C++ Library Fundamentals v2's erase_if which is equivalent t...
Definition STLExtras.h:2192
constexpr bool isIntN(unsigned N, int64_t x)
Checks if an signed integer fits into the given (dynamic) bit width.
Definition MathExtras.h:249
auto predecessors(const MachineBasicBlock *BB)
static cl::opt< unsigned > HoistLoadsStoresWithCondFaultingThreshold("hoist-loads-stores-with-cond-faulting-threshold", cl::Hidden, cl::init(6), cl::desc("Control the maximal conditional load/store that we are willing " "to speculatively execute to eliminate conditional branch " "(default = 6)"))
static cl::opt< bool > HoistCommon("simplifycfg-hoist-common", cl::Hidden, cl::init(true), cl::desc("Hoist common instructions up to the parent block"))
iterator_range< pointer_iterator< WrappedIteratorT > > make_pointer_range(RangeT &&Range)
Definition iterator.h:368
LLVM_ABI unsigned ComputeMaxSignificantBits(const Value *Op, const DataLayout &DL, AssumptionCache *AC=nullptr, const Instruction *CxtI=nullptr, const DominatorTree *DT=nullptr, unsigned Depth=0)
Get the upper bound on bit size for this Value Op as a signed integer.
bool is_contained(R &&Range, const E &Element)
Returns true if Element is found in Range.
Definition STLExtras.h:1947
static cl::opt< unsigned > TwoEntryPHINodeFoldingThreshold("two-entry-phi-node-folding-threshold", cl::Hidden, cl::init(4), cl::desc("Control the maximal total instruction cost that we are willing " "to speculatively execute to fold a 2-entry PHI node into a " "select (default = 4)"))
Type * getLoadStoreType(const Value *I)
A helper function that returns the type of a load or store instruction.
PointerUnion< const Value *, const PseudoSourceValue * > ValueType
SmallVector< uint64_t, 2 > getDisjunctionWeights(const SmallVector< T1, 2 > &B1, const SmallVector< T2, 2 > &B2)
Get the branch weights of a branch conditioned on b1 || b2, where b1 and b2 are 2 booleans that are t...
bool pred_empty(const BasicBlock *BB)
Definition CFG.h:107
LLVM_ABI Constant * ConstantFoldCastInstruction(unsigned opcode, Constant *V, Type *DestTy)
LLVM_ABI Instruction * SplitBlockAndInsertIfThen(Value *Cond, BasicBlock::iterator SplitBefore, bool Unreachable, MDNode *BranchWeights=nullptr, DomTreeUpdater *DTU=nullptr, LoopInfo *LI=nullptr, BasicBlock *ThenBlock=nullptr)
Split the containing block at the specified instruction - everything before SplitBefore stays in the ...
LLVM_ABI std::optional< bool > isImpliedByDomCondition(const Value *Cond, const Instruction *ContextI, const DataLayout &DL)
Return the boolean condition value in the context of the given instruction if it is known based on do...
void array_pod_sort(IteratorTy Start, IteratorTy End)
array_pod_sort - This sorts an array with the specified start and end extent.
Definition STLExtras.h:1596
LLVM_ABI bool hasBranchWeightMD(const Instruction &I)
Checks if an instructions has Branch Weight Metadata.
hash_code hash_combine(const Ts &...args)
Combine values into a single hash_code.
Definition Hashing.h:307
LLVM_ABI bool isDereferenceablePointer(const Value *V, Type *Ty, const SimplifyQuery &Q, bool IgnoreFree=false)
Equivalent to isDereferenceableAndAlignedPointer with an alignment of 1.
Definition Loads.cpp:264
bool equal(L &&LRange, R &&RRange)
Wrapper function around std::equal to detect if pair-wise elements between two ranges are the same.
Definition STLExtras.h:2146
static cl::opt< bool > HoistLoadsWithCondFaulting("simplifycfg-hoist-loads-with-cond-faulting", cl::Hidden, cl::init(true), cl::desc("Hoist loads if the target supports conditional faulting"))
LLVM_ABI Constant * ConstantFoldInstOperands(const Instruction *I, ArrayRef< Constant * > Ops, const DataLayout &DL, const TargetLibraryInfo *TLI=nullptr, bool AllowNonDeterministic=true)
ConstantFoldInstOperands - Attempt to constant fold an instruction with the specified operands.
LLVM_ABI void setFittedBranchWeights(Instruction &I, ArrayRef< uint64_t > Weights, bool IsExpected, bool ElideAllZero=false)
Variant of setBranchWeights where the Weights will be fit first to uint32_t by shifting right.
LLVM_ABI const Value * getUnderlyingObject(const Value *V, unsigned MaxLookup=MaxLookupSearchDepth)
This method strips off any GEP address adjustments, pointer casts or llvm.threadlocal....
LLVM_ABI Constant * ConstantFoldIntegerCast(Constant *C, Type *DestTy, bool IsSigned, const DataLayout &DL)
Constant fold a zext, sext or trunc, depending on IsSigned and whether the DestTy is wider or narrowe...
bool capturesNothing(CaptureComponents CC)
Definition ModRef.h:375
static auto filterDbgVars(iterator_range< simple_ilist< DbgRecord >::iterator > R)
Filter the DbgRecord range to DbgVariableRecord types only and downcast.
LLVM_ABI bool EliminateDuplicatePHINodes(BasicBlock *BB)
Check for and eliminate duplicate PHI nodes in this block.
Definition Local.cpp:1501
@ Keep
No function return thunk.
Definition CodeGen.h:229
constexpr detail::IsaCheckPredicate< Types... > IsaPred
Function object wrapper for the llvm::isa type check.
Definition Casting.h:866
LLVM_ABI void RemapSourceAtom(Instruction *I, ValueToValueMapTy &VM)
Remap source location atom.
hash_code hash_combine_range(InputIteratorT first, InputIteratorT last)
Compute a hash_code for a sequence of values.
Definition Hashing.h:287
LLVM_ABI bool isWritableObject(const Value *Object, bool &ExplicitlyDereferenceableOnly)
Return true if the Object is writable, in the sense that any location based on this pointer that can ...
LLVM_ABI void mapAtomInstance(const DebugLoc &DL, ValueToValueMapTy &VMap)
Mark a cloned instruction as a new instance so that its source loc can be updated when remapped.
constexpr uint64_t NextPowerOf2(uint64_t A)
Returns the next power of two (in 64-bits) that is strictly greater than A.
Definition MathExtras.h:368
LLVM_ABI void extractFromBranchWeightMD64(const MDNode *ProfileData, SmallVectorImpl< uint64_t > &Weights)
Faster version of extractBranchWeights() that skips checks and must only be called with "branch_weigh...
LLVM_ABI ConstantRange computeConstantRange(const Value *V, bool ForSigned, const SimplifyQuery &SQ, unsigned Depth=0)
Determine the possible constant range of an integer or vector of integer value.
void swap(llvm::BitVector &LHS, llvm::BitVector &RHS)
Implement std::swap in terms of BitVector swap.
Definition BitVector.h:880
#define N
SmallVectorImpl< ConstantInt * > * Cases
SmallVectorImpl< ConstantInt * > * OtherCases
Checking whether two BBs are equal depends on the contents of the BasicBlock and the incoming values ...
SmallDenseMap< BasicBlock *, Value *, 8 > BB2ValueMap
Phi2IVsMap * PhiPredIVs
DenseMap< PHINode *, BB2ValueMap > Phi2IVsMap
static bool canBeMerged(const BasicBlock *BB)
BasicBlock * BB
static bool isEqual(const EqualBBWrapper *LHS, const EqualBBWrapper *RHS)
static unsigned getHashValue(const EqualBBWrapper *EBW)
An information struct used to provide DenseMap with the various necessary components for a given valu...
Matching combinators.
A MapVector that performs no allocations if smaller than a certain size.
Definition MapVector.h:342