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Chris Lattnerd43023a2002-08-02 16:43:03 +00001//===- Dominators.cpp - Dominator Calculation -----------------------------===//
Misha Brukmanb1c93172005-04-21 23:48:37 +00002//
John Criswell482202a2003-10-20 19:43:21 +00003// The LLVM Compiler Infrastructure
4//
Chris Lattnerf3ebc3f2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Misha Brukmanb1c93172005-04-21 23:48:37 +00007//
John Criswell482202a2003-10-20 19:43:21 +00008//===----------------------------------------------------------------------===//
Chris Lattner081aabc2001-07-02 05:46:38 +00009//
Chris Lattnerd43023a2002-08-02 16:43:03 +000010// This file implements simple dominator construction algorithms for finding
11// forward dominators. Postdominators are available in libanalysis, but are not
12// included in libvmcore, because it's not needed. Forward dominators are
13// needed to support the Verifier pass.
Chris Lattner081aabc2001-07-02 05:46:38 +000014//
15//===----------------------------------------------------------------------===//
16
Chandler Carruth5ad5f152014-01-13 09:26:24 +000017#include "llvm/IR/Dominators.h"
Reid Spencer7c16caa2004-09-01 22:55:40 +000018#include "llvm/ADT/DepthFirstIterator.h"
Devang Patel5a1bd402007-03-27 20:50:46 +000019#include "llvm/ADT/SmallPtrSet.h"
Chandler Carruth1305dc32014-03-04 11:45:46 +000020#include "llvm/IR/CFG.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000021#include "llvm/IR/Instructions.h"
Chandler Carruth64764b42015-01-14 10:19:28 +000022#include "llvm/IR/PassManager.h"
Dan Gohman4dbb3012009-09-28 00:27:48 +000023#include "llvm/Support/CommandLine.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000024#include "llvm/Support/Debug.h"
Chandler Carruthe509db42014-01-13 10:52:56 +000025#include "llvm/Support/GenericDomTreeConstruction.h"
Chandler Carruthed0881b2012-12-03 16:50:05 +000026#include "llvm/Support/raw_ostream.h"
Chris Lattnerc5e0be62004-06-05 00:24:59 +000027#include <algorithm>
Chris Lattner189d19f2003-11-21 20:23:48 +000028using namespace llvm;
Brian Gaeke960707c2003-11-11 22:41:34 +000029
Dan Gohman4dbb3012009-09-28 00:27:48 +000030// Always verify dominfo if expensive checking is enabled.
Filipe Cabecinhas0da99372016-04-29 15:22:48 +000031#ifdef EXPENSIVE_CHECKS
Serge Pavlov69b3ff92017-01-24 05:52:07 +000032bool llvm::VerifyDomInfo = true;
Dan Gohman4dbb3012009-09-28 00:27:48 +000033#else
Serge Pavlov69b3ff92017-01-24 05:52:07 +000034bool llvm::VerifyDomInfo = false;
Dan Gohman4dbb3012009-09-28 00:27:48 +000035#endif
36static cl::opt<bool,true>
37VerifyDomInfoX("verify-dom-info", cl::location(VerifyDomInfo),
38 cl::desc("Verify dominator info (time consuming)"));
39
Rafael Espindolacc80cde2012-08-16 15:09:43 +000040bool BasicBlockEdge::isSingleEdge() const {
41 const TerminatorInst *TI = Start->getTerminator();
42 unsigned NumEdgesToEnd = 0;
43 for (unsigned int i = 0, n = TI->getNumSuccessors(); i < n; ++i) {
44 if (TI->getSuccessor(i) == End)
45 ++NumEdgesToEnd;
46 if (NumEdgesToEnd >= 2)
47 return false;
48 }
49 assert(NumEdgesToEnd == 1);
50 return true;
Rafael Espindola11870772012-08-10 14:05:55 +000051}
52
Chris Lattnerc385beb2001-07-06 16:58:22 +000053//===----------------------------------------------------------------------===//
Owen Andersonf35a1db2007-04-15 08:47:27 +000054// DominatorTree Implementation
Chris Lattner00f51672003-12-07 00:38:08 +000055//===----------------------------------------------------------------------===//
56//
Owen Anderson84c357f2007-09-23 21:31:44 +000057// Provide public access to DominatorTree information. Implementation details
Chandler Carruthe509db42014-01-13 10:52:56 +000058// can be found in Dominators.h, GenericDomTree.h, and
59// GenericDomTreeConstruction.h.
Chris Lattner00f51672003-12-07 00:38:08 +000060//
61//===----------------------------------------------------------------------===//
62
Benjamin Kramera667d1a2015-07-13 17:21:31 +000063template class llvm::DomTreeNodeBase<BasicBlock>;
64template class llvm::DominatorTreeBase<BasicBlock>;
Owen Anderson41878012007-10-16 19:59:25 +000065
Jakub Kuderskif9223362017-06-29 17:45:51 +000066template void llvm::DomTreeBuilder::Calculate<Function, BasicBlock *>(
Tim Shen8b58bdf2016-08-17 20:01:58 +000067 DominatorTreeBase<
68 typename std::remove_pointer<GraphTraits<BasicBlock *>::NodeRef>::type>
69 &DT,
70 Function &F);
Jakub Kuderskif9223362017-06-29 17:45:51 +000071template void llvm::DomTreeBuilder::Calculate<Function, Inverse<BasicBlock *>>(
Tim Shen8b58bdf2016-08-17 20:01:58 +000072 DominatorTreeBase<typename std::remove_pointer<
73 GraphTraits<Inverse<BasicBlock *>>::NodeRef>::type> &DT,
Benjamin Kramera667d1a2015-07-13 17:21:31 +000074 Function &F);
Jakub Kuderskif9223362017-06-29 17:45:51 +000075template bool llvm::DomTreeBuilder::Verify<BasicBlock *>(
76 const DominatorTreeBase<
77 typename std::remove_pointer<GraphTraits<BasicBlock *>::NodeRef>::type>
78 &DT);
79template bool llvm::DomTreeBuilder::Verify<Inverse<BasicBlock *>>(
80 const DominatorTreeBase<typename std::remove_pointer<
81 GraphTraits<Inverse<BasicBlock *>>::NodeRef>::type> &DT);
Rafael Espindola30616362014-02-14 22:36:16 +000082
Chandler Carruthca68a3e2017-01-15 06:32:49 +000083bool DominatorTree::invalidate(Function &F, const PreservedAnalyses &PA,
84 FunctionAnalysisManager::Invalidator &) {
85 // Check whether the analysis, all analyses on functions, or the function's
86 // CFG have been preserved.
87 auto PAC = PA.getChecker<DominatorTreeAnalysis>();
88 return !(PAC.preserved() || PAC.preservedSet<AllAnalysesOn<Function>>() ||
89 PAC.preservedSet<CFGAnalyses>());
90}
91
Rafael Espindola94df2672012-02-26 02:19:19 +000092// dominates - Return true if Def dominates a use in User. This performs
93// the special checks necessary if Def and User are in the same basic block.
94// Note that Def doesn't dominate a use in Def itself!
95bool DominatorTree::dominates(const Instruction *Def,
96 const Instruction *User) const {
97 const BasicBlock *UseBB = User->getParent();
98 const BasicBlock *DefBB = Def->getParent();
Rafael Espindola082d4822012-02-18 19:46:02 +000099
Rafael Espindolaa53c46a2012-03-30 16:46:21 +0000100 // Any unreachable use is dominated, even if Def == User.
101 if (!isReachableFromEntry(UseBB))
102 return true;
103
104 // Unreachable definitions don't dominate anything.
105 if (!isReachableFromEntry(DefBB))
106 return false;
Rafael Espindola082d4822012-02-18 19:46:02 +0000107
Rafael Espindola94df2672012-02-26 02:19:19 +0000108 // An instruction doesn't dominate a use in itself.
109 if (Def == User)
Chris Lattner22151ce2009-09-21 22:30:50 +0000110 return false;
Rafael Espindola082d4822012-02-18 19:46:02 +0000111
David Majnemer8a1c45d2015-12-12 05:38:55 +0000112 // The value defined by an invoke dominates an instruction only if it
113 // dominates every instruction in UseBB.
114 // A PHI is dominated only if the instruction dominates every possible use in
115 // the UseBB.
116 if (isa<InvokeInst>(Def) || isa<PHINode>(User))
Rafael Espindola94df2672012-02-26 02:19:19 +0000117 return dominates(Def, UseBB);
118
119 if (DefBB != UseBB)
120 return dominates(DefBB, UseBB);
121
122 // Loop through the basic block until we find Def or User.
123 BasicBlock::const_iterator I = DefBB->begin();
124 for (; &*I != Def && &*I != User; ++I)
Chris Lattner22151ce2009-09-21 22:30:50 +0000125 /*empty*/;
Rafael Espindola082d4822012-02-18 19:46:02 +0000126
Rafael Espindola94df2672012-02-26 02:19:19 +0000127 return &*I == Def;
128}
129
130// true if Def would dominate a use in any instruction in UseBB.
131// note that dominates(Def, Def->getParent()) is false.
132bool DominatorTree::dominates(const Instruction *Def,
133 const BasicBlock *UseBB) const {
134 const BasicBlock *DefBB = Def->getParent();
135
Rafael Espindolaa53c46a2012-03-30 16:46:21 +0000136 // Any unreachable use is dominated, even if DefBB == UseBB.
137 if (!isReachableFromEntry(UseBB))
138 return true;
139
140 // Unreachable definitions don't dominate anything.
141 if (!isReachableFromEntry(DefBB))
142 return false;
Rafael Espindola94df2672012-02-26 02:19:19 +0000143
144 if (DefBB == UseBB)
145 return false;
146
David Majnemer8a1c45d2015-12-12 05:38:55 +0000147 // Invoke results are only usable in the normal destination, not in the
148 // exceptional destination.
David Majnemer0bc0eef2015-08-15 02:46:08 +0000149 if (const auto *II = dyn_cast<InvokeInst>(Def)) {
150 BasicBlock *NormalDest = II->getNormalDest();
151 BasicBlockEdge E(DefBB, NormalDest);
152 return dominates(E, UseBB);
153 }
Rafael Espindola94df2672012-02-26 02:19:19 +0000154
David Majnemer0bc0eef2015-08-15 02:46:08 +0000155 return dominates(DefBB, UseBB);
Rafael Espindola59564072012-08-07 17:30:46 +0000156}
157
158bool DominatorTree::dominates(const BasicBlockEdge &BBE,
159 const BasicBlock *UseBB) const {
160 // If the BB the edge ends in doesn't dominate the use BB, then the
161 // edge also doesn't.
162 const BasicBlock *Start = BBE.getStart();
163 const BasicBlock *End = BBE.getEnd();
164 if (!dominates(End, UseBB))
Rafael Espindola94df2672012-02-26 02:19:19 +0000165 return false;
166
Rafael Espindola59564072012-08-07 17:30:46 +0000167 // Simple case: if the end BB has a single predecessor, the fact that it
168 // dominates the use block implies that the edge also does.
169 if (End->getSinglePredecessor())
Rafael Espindola94df2672012-02-26 02:19:19 +0000170 return true;
171
172 // The normal edge from the invoke is critical. Conceptually, what we would
173 // like to do is split it and check if the new block dominates the use.
174 // With X being the new block, the graph would look like:
175 //
176 // DefBB
177 // /\ . .
178 // / \ . .
179 // / \ . .
180 // / \ | |
181 // A X B C
182 // | \ | /
183 // . \|/
184 // . NormalDest
185 // .
186 //
Sylvestre Ledru91ce36c2012-09-27 10:14:43 +0000187 // Given the definition of dominance, NormalDest is dominated by X iff X
Rafael Espindola94df2672012-02-26 02:19:19 +0000188 // dominates all of NormalDest's predecessors (X, B, C in the example). X
189 // trivially dominates itself, so we only have to find if it dominates the
190 // other predecessors. Since the only way out of X is via NormalDest, X can
191 // only properly dominate a node if NormalDest dominates that node too.
Adam Nemet4ef096b2017-06-05 16:27:09 +0000192 int IsDuplicateEdge = 0;
Duncan P. N. Exon Smith6c990152014-07-21 17:06:51 +0000193 for (const_pred_iterator PI = pred_begin(End), E = pred_end(End);
194 PI != E; ++PI) {
195 const BasicBlock *BB = *PI;
Adam Nemet4ef096b2017-06-05 16:27:09 +0000196 if (BB == Start) {
197 // If there are multiple edges between Start and End, by definition they
198 // can't dominate anything.
199 if (IsDuplicateEdge++)
200 return false;
Rafael Espindola94df2672012-02-26 02:19:19 +0000201 continue;
Adam Nemet4ef096b2017-06-05 16:27:09 +0000202 }
Rafael Espindola94df2672012-02-26 02:19:19 +0000203
Rafael Espindola59564072012-08-07 17:30:46 +0000204 if (!dominates(End, BB))
Rafael Espindola94df2672012-02-26 02:19:19 +0000205 return false;
206 }
207 return true;
Chris Lattner22151ce2009-09-21 22:30:50 +0000208}
Dan Gohman73273272012-04-12 23:31:46 +0000209
Chandler Carruth73523022014-01-13 13:07:17 +0000210bool DominatorTree::dominates(const BasicBlockEdge &BBE, const Use &U) const {
Rafael Espindola59564072012-08-07 17:30:46 +0000211 Instruction *UserInst = cast<Instruction>(U.getUser());
212 // A PHI in the end of the edge is dominated by it.
213 PHINode *PN = dyn_cast<PHINode>(UserInst);
214 if (PN && PN->getParent() == BBE.getEnd() &&
215 PN->getIncomingBlock(U) == BBE.getStart())
216 return true;
217
218 // Otherwise use the edge-dominates-block query, which
219 // handles the crazy critical edge cases properly.
220 const BasicBlock *UseBB;
221 if (PN)
222 UseBB = PN->getIncomingBlock(U);
223 else
224 UseBB = UserInst->getParent();
225 return dominates(BBE, UseBB);
226}
227
Chandler Carruth73523022014-01-13 13:07:17 +0000228bool DominatorTree::dominates(const Instruction *Def, const Use &U) const {
Rafael Espindola59564072012-08-07 17:30:46 +0000229 Instruction *UserInst = cast<Instruction>(U.getUser());
Dan Gohman73273272012-04-12 23:31:46 +0000230 const BasicBlock *DefBB = Def->getParent();
231
232 // Determine the block in which the use happens. PHI nodes use
233 // their operands on edges; simulate this by thinking of the use
234 // happening at the end of the predecessor block.
235 const BasicBlock *UseBB;
236 if (PHINode *PN = dyn_cast<PHINode>(UserInst))
237 UseBB = PN->getIncomingBlock(U);
238 else
239 UseBB = UserInst->getParent();
240
241 // Any unreachable use is dominated, even if Def == User.
242 if (!isReachableFromEntry(UseBB))
243 return true;
244
245 // Unreachable definitions don't dominate anything.
246 if (!isReachableFromEntry(DefBB))
247 return false;
248
David Majnemer8a1c45d2015-12-12 05:38:55 +0000249 // Invoke instructions define their return values on the edges to their normal
250 // successors, so we have to handle them specially.
Dan Gohman73273272012-04-12 23:31:46 +0000251 // Among other things, this means they don't dominate anything in
252 // their own block, except possibly a phi, so we don't need to
253 // walk the block in any case.
254 if (const InvokeInst *II = dyn_cast<InvokeInst>(Def)) {
Rafael Espindola59564072012-08-07 17:30:46 +0000255 BasicBlock *NormalDest = II->getNormalDest();
256 BasicBlockEdge E(DefBB, NormalDest);
257 return dominates(E, U);
Dan Gohman73273272012-04-12 23:31:46 +0000258 }
259
260 // If the def and use are in different blocks, do a simple CFG dominator
261 // tree query.
262 if (DefBB != UseBB)
263 return dominates(DefBB, UseBB);
264
265 // Ok, def and use are in the same block. If the def is an invoke, it
266 // doesn't dominate anything in the block. If it's a PHI, it dominates
267 // everything in the block.
268 if (isa<PHINode>(UserInst))
269 return true;
270
271 // Otherwise, just loop through the basic block until we find Def or User.
272 BasicBlock::const_iterator I = DefBB->begin();
273 for (; &*I != Def && &*I != UserInst; ++I)
274 /*empty*/;
275
276 return &*I != UserInst;
277}
278
279bool DominatorTree::isReachableFromEntry(const Use &U) const {
280 Instruction *I = dyn_cast<Instruction>(U.getUser());
281
282 // ConstantExprs aren't really reachable from the entry block, but they
283 // don't need to be treated like unreachable code either.
284 if (!I) return true;
285
286 // PHI nodes use their operands on their incoming edges.
287 if (PHINode *PN = dyn_cast<PHINode>(I))
288 return isReachableFromEntry(PN->getIncomingBlock(U));
289
290 // Everything else uses their operands in their own block.
291 return isReachableFromEntry(I->getParent());
292}
Chandler Carruth73523022014-01-13 13:07:17 +0000293
294void DominatorTree::verifyDomTree() const {
Jakub Kuderski069e5cfa2017-06-30 16:33:04 +0000295 // Perform the expensive checks only when VerifyDomInfo is set.
296 if (VerifyDomInfo && !verify()) {
Jakub Kuderskif9223362017-06-29 17:45:51 +0000297 errs() << "\n~~~~~~~~~~~\n\t\tDomTree verification failed!\n~~~~~~~~~~~\n";
298 print(errs());
299 abort();
300 }
301
Chandler Carruth73523022014-01-13 13:07:17 +0000302 Function &F = *getRoot()->getParent();
303
304 DominatorTree OtherDT;
305 OtherDT.recalculate(F);
306 if (compare(OtherDT)) {
307 errs() << "DominatorTree is not up to date!\nComputed:\n";
308 print(errs());
309 errs() << "\nActual:\n";
310 OtherDT.print(errs());
311 abort();
312 }
313}
314
315//===----------------------------------------------------------------------===//
Chandler Carruth64764b42015-01-14 10:19:28 +0000316// DominatorTreeAnalysis and related pass implementations
317//===----------------------------------------------------------------------===//
318//
319// This implements the DominatorTreeAnalysis which is used with the new pass
320// manager. It also implements some methods from utility passes.
321//
322//===----------------------------------------------------------------------===//
323
Chandler Carruth164a2aa62016-06-17 00:11:01 +0000324DominatorTree DominatorTreeAnalysis::run(Function &F,
Sean Silva36e0d012016-08-09 00:28:15 +0000325 FunctionAnalysisManager &) {
Chandler Carruth64764b42015-01-14 10:19:28 +0000326 DominatorTree DT;
327 DT.recalculate(F);
328 return DT;
329}
330
Chandler Carruthdab4eae2016-11-23 17:53:26 +0000331AnalysisKey DominatorTreeAnalysis::Key;
NAKAMURA Takumidf0cd722016-02-28 17:17:00 +0000332
Chandler Carruth64764b42015-01-14 10:19:28 +0000333DominatorTreePrinterPass::DominatorTreePrinterPass(raw_ostream &OS) : OS(OS) {}
334
335PreservedAnalyses DominatorTreePrinterPass::run(Function &F,
Chandler Carruthb47f8012016-03-11 11:05:24 +0000336 FunctionAnalysisManager &AM) {
Chandler Carruth64764b42015-01-14 10:19:28 +0000337 OS << "DominatorTree for function: " << F.getName() << "\n";
Chandler Carruthb47f8012016-03-11 11:05:24 +0000338 AM.getResult<DominatorTreeAnalysis>(F).print(OS);
Chandler Carruth64764b42015-01-14 10:19:28 +0000339
340 return PreservedAnalyses::all();
341}
342
343PreservedAnalyses DominatorTreeVerifierPass::run(Function &F,
Chandler Carruthb47f8012016-03-11 11:05:24 +0000344 FunctionAnalysisManager &AM) {
345 AM.getResult<DominatorTreeAnalysis>(F).verifyDomTree();
Chandler Carruth64764b42015-01-14 10:19:28 +0000346
347 return PreservedAnalyses::all();
348}
349
350//===----------------------------------------------------------------------===//
Chandler Carruth73523022014-01-13 13:07:17 +0000351// DominatorTreeWrapperPass Implementation
352//===----------------------------------------------------------------------===//
353//
Chandler Carruth64764b42015-01-14 10:19:28 +0000354// The implementation details of the wrapper pass that holds a DominatorTree
355// suitable for use with the legacy pass manager.
Chandler Carruth73523022014-01-13 13:07:17 +0000356//
357//===----------------------------------------------------------------------===//
358
359char DominatorTreeWrapperPass::ID = 0;
360INITIALIZE_PASS(DominatorTreeWrapperPass, "domtree",
361 "Dominator Tree Construction", true, true)
362
363bool DominatorTreeWrapperPass::runOnFunction(Function &F) {
364 DT.recalculate(F);
365 return false;
366}
367
Adam Nemete340f852015-05-06 08:18:41 +0000368void DominatorTreeWrapperPass::verifyAnalysis() const {
369 if (VerifyDomInfo)
370 DT.verifyDomTree();
371}
Chandler Carruth73523022014-01-13 13:07:17 +0000372
373void DominatorTreeWrapperPass::print(raw_ostream &OS, const Module *) const {
374 DT.print(OS);
375}
376