1 //===- SparsePropagation.h - Sparse Conditional Property Propagation ------===//
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 // This file implements an abstract sparse conditional propagation algorithm,
10 // modeled after SCCP, but with a customizable lattice function.
11 //
12 //===----------------------------------------------------------------------===//
13
14 #ifndef LLVM_ANALYSIS_SPARSEPROPAGATION_H
15 #define LLVM_ANALYSIS_SPARSEPROPAGATION_H
16
17 #include "llvm/ADT/SmallPtrSet.h"
18 #include "llvm/IR/Constants.h"
19 #include "llvm/IR/Instructions.h"
20 #include "llvm/Support/Debug.h"
21 #include <set>
22
23 #define DEBUG_TYPE "sparseprop"
24
25 namespace llvm {
26
27 /// A template for translating between LLVM Values and LatticeKeys. Clients must
28 /// provide a specialization of LatticeKeyInfo for their LatticeKey type.
29 template <class LatticeKey> struct LatticeKeyInfo {
30 // static inline Value *getValueFromLatticeKey(LatticeKey Key);
31 // static inline LatticeKey getLatticeKeyFromValue(Value *V);
32 };
33
34 template <class LatticeKey, class LatticeVal,
35 class KeyInfo = LatticeKeyInfo<LatticeKey>>
36 class SparseSolver;
37
38 /// AbstractLatticeFunction - This class is implemented by the dataflow instance
39 /// to specify what the lattice values are and how they handle merges etc. This
40 /// gives the client the power to compute lattice values from instructions,
41 /// constants, etc. The current requirement is that lattice values must be
42 /// copyable. At the moment, nothing tries to avoid copying. Additionally,
43 /// lattice keys must be able to be used as keys of a mapping data structure.
44 /// Internally, the generic solver currently uses a DenseMap to map lattice keys
45 /// to lattice values. If the lattice key is a non-standard type, a
46 /// specialization of DenseMapInfo must be provided.
47 template <class LatticeKey, class LatticeVal> class AbstractLatticeFunction {
48 private:
49 LatticeVal UndefVal, OverdefinedVal, UntrackedVal;
50
51 public:
AbstractLatticeFunction(LatticeVal undefVal,LatticeVal overdefinedVal,LatticeVal untrackedVal)52 AbstractLatticeFunction(LatticeVal undefVal, LatticeVal overdefinedVal,
53 LatticeVal untrackedVal) {
54 UndefVal = undefVal;
55 OverdefinedVal = overdefinedVal;
56 UntrackedVal = untrackedVal;
57 }
58
59 virtual ~AbstractLatticeFunction() = default;
60
getUndefVal()61 LatticeVal getUndefVal() const { return UndefVal; }
getOverdefinedVal()62 LatticeVal getOverdefinedVal() const { return OverdefinedVal; }
getUntrackedVal()63 LatticeVal getUntrackedVal() const { return UntrackedVal; }
64
65 /// IsUntrackedValue - If the specified LatticeKey is obviously uninteresting
66 /// to the analysis (i.e., it would always return UntrackedVal), this
67 /// function can return true to avoid pointless work.
IsUntrackedValue(LatticeKey Key)68 virtual bool IsUntrackedValue(LatticeKey Key) { return false; }
69
70 /// ComputeLatticeVal - Compute and return a LatticeVal corresponding to the
71 /// given LatticeKey.
ComputeLatticeVal(LatticeKey Key)72 virtual LatticeVal ComputeLatticeVal(LatticeKey Key) {
73 return getOverdefinedVal();
74 }
75
76 /// IsSpecialCasedPHI - Given a PHI node, determine whether this PHI node is
77 /// one that the we want to handle through ComputeInstructionState.
IsSpecialCasedPHI(PHINode * PN)78 virtual bool IsSpecialCasedPHI(PHINode *PN) { return false; }
79
80 /// MergeValues - Compute and return the merge of the two specified lattice
81 /// values. Merging should only move one direction down the lattice to
82 /// guarantee convergence (toward overdefined).
MergeValues(LatticeVal X,LatticeVal Y)83 virtual LatticeVal MergeValues(LatticeVal X, LatticeVal Y) {
84 return getOverdefinedVal(); // always safe, never useful.
85 }
86
87 /// ComputeInstructionState - Compute the LatticeKeys that change as a result
88 /// of executing instruction \p I. Their associated LatticeVals are store in
89 /// \p ChangedValues.
90 virtual void ComputeInstructionState(
91 Instruction &I, SmallDenseMap<LatticeKey, LatticeVal, 16> &ChangedValues,
92 SparseSolver<LatticeKey, LatticeVal> &SS) = 0;
93
94 /// PrintLatticeVal - Render the given LatticeVal to the specified stream.
95 virtual void PrintLatticeVal(LatticeVal LV, raw_ostream &OS);
96
97 /// PrintLatticeKey - Render the given LatticeKey to the specified stream.
98 virtual void PrintLatticeKey(LatticeKey Key, raw_ostream &OS);
99
100 /// GetValueFromLatticeVal - If the given LatticeVal is representable as an
101 /// LLVM value, return it; otherwise, return nullptr. If a type is given, the
102 /// returned value must have the same type. This function is used by the
103 /// generic solver in attempting to resolve branch and switch conditions.
104 virtual Value *GetValueFromLatticeVal(LatticeVal LV, Type *Ty = nullptr) {
105 return nullptr;
106 }
107 };
108
109 /// SparseSolver - This class is a general purpose solver for Sparse Conditional
110 /// Propagation with a programmable lattice function.
111 template <class LatticeKey, class LatticeVal, class KeyInfo>
112 class SparseSolver {
113
114 /// LatticeFunc - This is the object that knows the lattice and how to
115 /// compute transfer functions.
116 AbstractLatticeFunction<LatticeKey, LatticeVal> *LatticeFunc;
117
118 /// ValueState - Holds the LatticeVals associated with LatticeKeys.
119 DenseMap<LatticeKey, LatticeVal> ValueState;
120
121 /// BBExecutable - Holds the basic blocks that are executable.
122 SmallPtrSet<BasicBlock *, 16> BBExecutable;
123
124 /// ValueWorkList - Holds values that should be processed.
125 SmallVector<Value *, 64> ValueWorkList;
126
127 /// BBWorkList - Holds basic blocks that should be processed.
128 SmallVector<BasicBlock *, 64> BBWorkList;
129
130 using Edge = std::pair<BasicBlock *, BasicBlock *>;
131
132 /// KnownFeasibleEdges - Entries in this set are edges which have already had
133 /// PHI nodes retriggered.
134 std::set<Edge> KnownFeasibleEdges;
135
136 public:
SparseSolver(AbstractLatticeFunction<LatticeKey,LatticeVal> * Lattice)137 explicit SparseSolver(
138 AbstractLatticeFunction<LatticeKey, LatticeVal> *Lattice)
139 : LatticeFunc(Lattice) {}
140 SparseSolver(const SparseSolver &) = delete;
141 SparseSolver &operator=(const SparseSolver &) = delete;
142
143 /// Solve - Solve for constants and executable blocks.
144 void Solve();
145
146 void Print(raw_ostream &OS) const;
147
148 /// getExistingValueState - Return the LatticeVal object corresponding to the
149 /// given value from the ValueState map. If the value is not in the map,
150 /// UntrackedVal is returned, unlike the getValueState method.
getExistingValueState(LatticeKey Key)151 LatticeVal getExistingValueState(LatticeKey Key) const {
152 auto I = ValueState.find(Key);
153 return I != ValueState.end() ? I->second : LatticeFunc->getUntrackedVal();
154 }
155
156 /// getValueState - Return the LatticeVal object corresponding to the given
157 /// value from the ValueState map. If the value is not in the map, its state
158 /// is initialized.
159 LatticeVal getValueState(LatticeKey Key);
160
161 /// isEdgeFeasible - Return true if the control flow edge from the 'From'
162 /// basic block to the 'To' basic block is currently feasible. If
163 /// AggressiveUndef is true, then this treats values with unknown lattice
164 /// values as undefined. This is generally only useful when solving the
165 /// lattice, not when querying it.
166 bool isEdgeFeasible(BasicBlock *From, BasicBlock *To,
167 bool AggressiveUndef = false);
168
169 /// isBlockExecutable - Return true if there are any known feasible
170 /// edges into the basic block. This is generally only useful when
171 /// querying the lattice.
isBlockExecutable(BasicBlock * BB)172 bool isBlockExecutable(BasicBlock *BB) const {
173 return BBExecutable.count(BB);
174 }
175
176 /// MarkBlockExecutable - This method can be used by clients to mark all of
177 /// the blocks that are known to be intrinsically live in the processed unit.
178 void MarkBlockExecutable(BasicBlock *BB);
179
180 private:
181 /// UpdateState - When the state of some LatticeKey is potentially updated to
182 /// the given LatticeVal, this function notices and adds the LLVM value
183 /// corresponding the key to the work list, if needed.
184 void UpdateState(LatticeKey Key, LatticeVal LV);
185
186 /// markEdgeExecutable - Mark a basic block as executable, adding it to the BB
187 /// work list if it is not already executable.
188 void markEdgeExecutable(BasicBlock *Source, BasicBlock *Dest);
189
190 /// getFeasibleSuccessors - Return a vector of booleans to indicate which
191 /// successors are reachable from a given terminator instruction.
192 void getFeasibleSuccessors(Instruction &TI, SmallVectorImpl<bool> &Succs,
193 bool AggressiveUndef);
194
195 void visitInst(Instruction &I);
196 void visitPHINode(PHINode &I);
197 void visitTerminator(Instruction &TI);
198 };
199
200 //===----------------------------------------------------------------------===//
201 // AbstractLatticeFunction Implementation
202 //===----------------------------------------------------------------------===//
203
204 template <class LatticeKey, class LatticeVal>
PrintLatticeVal(LatticeVal V,raw_ostream & OS)205 void AbstractLatticeFunction<LatticeKey, LatticeVal>::PrintLatticeVal(
206 LatticeVal V, raw_ostream &OS) {
207 if (V == UndefVal)
208 OS << "undefined";
209 else if (V == OverdefinedVal)
210 OS << "overdefined";
211 else if (V == UntrackedVal)
212 OS << "untracked";
213 else
214 OS << "unknown lattice value";
215 }
216
217 template <class LatticeKey, class LatticeVal>
PrintLatticeKey(LatticeKey Key,raw_ostream & OS)218 void AbstractLatticeFunction<LatticeKey, LatticeVal>::PrintLatticeKey(
219 LatticeKey Key, raw_ostream &OS) {
220 OS << "unknown lattice key";
221 }
222
223 //===----------------------------------------------------------------------===//
224 // SparseSolver Implementation
225 //===----------------------------------------------------------------------===//
226
227 template <class LatticeKey, class LatticeVal, class KeyInfo>
228 LatticeVal
getValueState(LatticeKey Key)229 SparseSolver<LatticeKey, LatticeVal, KeyInfo>::getValueState(LatticeKey Key) {
230 auto I = ValueState.find(Key);
231 if (I != ValueState.end())
232 return I->second; // Common case, in the map
233
234 if (LatticeFunc->IsUntrackedValue(Key))
235 return LatticeFunc->getUntrackedVal();
236 LatticeVal LV = LatticeFunc->ComputeLatticeVal(Key);
237
238 // If this value is untracked, don't add it to the map.
239 if (LV == LatticeFunc->getUntrackedVal())
240 return LV;
241 return ValueState[Key] = std::move(LV);
242 }
243
244 template <class LatticeKey, class LatticeVal, class KeyInfo>
UpdateState(LatticeKey Key,LatticeVal LV)245 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::UpdateState(LatticeKey Key,
246 LatticeVal LV) {
247 auto [I, Inserted] = ValueState.try_emplace(Key);
248 if (!Inserted && I->second == LV)
249 return; // No change.
250
251 // Update the state of the given LatticeKey and add its corresponding LLVM
252 // value to the work list.
253 I->second = std::move(LV);
254 if (Value *V = KeyInfo::getValueFromLatticeKey(Key))
255 ValueWorkList.push_back(V);
256 }
257
258 template <class LatticeKey, class LatticeVal, class KeyInfo>
MarkBlockExecutable(BasicBlock * BB)259 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::MarkBlockExecutable(
260 BasicBlock *BB) {
261 if (!BBExecutable.insert(BB).second)
262 return;
263 LLVM_DEBUG(dbgs() << "Marking Block Executable: " << BB->getName() << "\n");
264 BBWorkList.push_back(BB); // Add the block to the work list!
265 }
266
267 template <class LatticeKey, class LatticeVal, class KeyInfo>
markEdgeExecutable(BasicBlock * Source,BasicBlock * Dest)268 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::markEdgeExecutable(
269 BasicBlock *Source, BasicBlock *Dest) {
270 if (!KnownFeasibleEdges.insert(Edge(Source, Dest)).second)
271 return; // This edge is already known to be executable!
272
273 LLVM_DEBUG(dbgs() << "Marking Edge Executable: " << Source->getName()
274 << " -> " << Dest->getName() << "\n");
275
276 if (BBExecutable.count(Dest)) {
277 // The destination is already executable, but we just made an edge
278 // feasible that wasn't before. Revisit the PHI nodes in the block
279 // because they have potentially new operands.
280 for (BasicBlock::iterator I = Dest->begin(); isa<PHINode>(I); ++I)
281 visitPHINode(*cast<PHINode>(I));
282 } else {
283 MarkBlockExecutable(Dest);
284 }
285 }
286
287 template <class LatticeKey, class LatticeVal, class KeyInfo>
getFeasibleSuccessors(Instruction & TI,SmallVectorImpl<bool> & Succs,bool AggressiveUndef)288 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::getFeasibleSuccessors(
289 Instruction &TI, SmallVectorImpl<bool> &Succs, bool AggressiveUndef) {
290 Succs.resize(TI.getNumSuccessors());
291 if (TI.getNumSuccessors() == 0)
292 return;
293
294 if (BranchInst *BI = dyn_cast<BranchInst>(&TI)) {
295 if (BI->isUnconditional()) {
296 Succs[0] = true;
297 return;
298 }
299
300 LatticeVal BCValue;
301 if (AggressiveUndef)
302 BCValue =
303 getValueState(KeyInfo::getLatticeKeyFromValue(BI->getCondition()));
304 else
305 BCValue = getExistingValueState(
306 KeyInfo::getLatticeKeyFromValue(BI->getCondition()));
307
308 if (BCValue == LatticeFunc->getOverdefinedVal() ||
309 BCValue == LatticeFunc->getUntrackedVal()) {
310 // Overdefined condition variables can branch either way.
311 Succs[0] = Succs[1] = true;
312 return;
313 }
314
315 // If undefined, neither is feasible yet.
316 if (BCValue == LatticeFunc->getUndefVal())
317 return;
318
319 Constant *C =
320 dyn_cast_or_null<Constant>(LatticeFunc->GetValueFromLatticeVal(
321 std::move(BCValue), BI->getCondition()->getType()));
322 if (!C || !isa<ConstantInt>(C)) {
323 // Non-constant values can go either way.
324 Succs[0] = Succs[1] = true;
325 return;
326 }
327
328 // Constant condition variables mean the branch can only go a single way
329 Succs[C->isNullValue()] = true;
330 return;
331 }
332
333 if (!isa<SwitchInst>(TI)) {
334 // Unknown termintor, assume all successors are feasible.
335 Succs.assign(Succs.size(), true);
336 return;
337 }
338
339 SwitchInst &SI = cast<SwitchInst>(TI);
340 LatticeVal SCValue;
341 if (AggressiveUndef)
342 SCValue = getValueState(KeyInfo::getLatticeKeyFromValue(SI.getCondition()));
343 else
344 SCValue = getExistingValueState(
345 KeyInfo::getLatticeKeyFromValue(SI.getCondition()));
346
347 if (SCValue == LatticeFunc->getOverdefinedVal() ||
348 SCValue == LatticeFunc->getUntrackedVal()) {
349 // All destinations are executable!
350 Succs.assign(TI.getNumSuccessors(), true);
351 return;
352 }
353
354 // If undefined, neither is feasible yet.
355 if (SCValue == LatticeFunc->getUndefVal())
356 return;
357
358 Constant *C = dyn_cast_or_null<Constant>(LatticeFunc->GetValueFromLatticeVal(
359 std::move(SCValue), SI.getCondition()->getType()));
360 if (!C || !isa<ConstantInt>(C)) {
361 // All destinations are executable!
362 Succs.assign(TI.getNumSuccessors(), true);
363 return;
364 }
365 SwitchInst::CaseHandle Case = *SI.findCaseValue(cast<ConstantInt>(C));
366 Succs[Case.getSuccessorIndex()] = true;
367 }
368
369 template <class LatticeKey, class LatticeVal, class KeyInfo>
isEdgeFeasible(BasicBlock * From,BasicBlock * To,bool AggressiveUndef)370 bool SparseSolver<LatticeKey, LatticeVal, KeyInfo>::isEdgeFeasible(
371 BasicBlock *From, BasicBlock *To, bool AggressiveUndef) {
372 SmallVector<bool, 16> SuccFeasible;
373 Instruction *TI = From->getTerminator();
374 getFeasibleSuccessors(*TI, SuccFeasible, AggressiveUndef);
375
376 for (unsigned i = 0, e = TI->getNumSuccessors(); i != e; ++i)
377 if (TI->getSuccessor(i) == To && SuccFeasible[i])
378 return true;
379
380 return false;
381 }
382
383 template <class LatticeKey, class LatticeVal, class KeyInfo>
visitTerminator(Instruction & TI)384 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::visitTerminator(
385 Instruction &TI) {
386 SmallVector<bool, 16> SuccFeasible;
387 getFeasibleSuccessors(TI, SuccFeasible, true);
388
389 BasicBlock *BB = TI.getParent();
390
391 // Mark all feasible successors executable...
392 for (unsigned i = 0, e = SuccFeasible.size(); i != e; ++i)
393 if (SuccFeasible[i])
394 markEdgeExecutable(BB, TI.getSuccessor(i));
395 }
396
397 template <class LatticeKey, class LatticeVal, class KeyInfo>
visitPHINode(PHINode & PN)398 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::visitPHINode(PHINode &PN) {
399 // The lattice function may store more information on a PHINode than could be
400 // computed from its incoming values. For example, SSI form stores its sigma
401 // functions as PHINodes with a single incoming value.
402 if (LatticeFunc->IsSpecialCasedPHI(&PN)) {
403 SmallDenseMap<LatticeKey, LatticeVal, 16> ChangedValues;
404 LatticeFunc->ComputeInstructionState(PN, ChangedValues, *this);
405 for (auto &ChangedValue : ChangedValues)
406 if (ChangedValue.second != LatticeFunc->getUntrackedVal())
407 UpdateState(std::move(ChangedValue.first),
408 std::move(ChangedValue.second));
409 return;
410 }
411
412 LatticeKey Key = KeyInfo::getLatticeKeyFromValue(&PN);
413 LatticeVal PNIV = getValueState(Key);
414 LatticeVal Overdefined = LatticeFunc->getOverdefinedVal();
415
416 // If this value is already overdefined (common) just return.
417 if (PNIV == Overdefined || PNIV == LatticeFunc->getUntrackedVal())
418 return; // Quick exit
419
420 // Super-extra-high-degree PHI nodes are unlikely to ever be interesting,
421 // and slow us down a lot. Just mark them overdefined.
422 if (PN.getNumIncomingValues() > 64) {
423 UpdateState(Key, Overdefined);
424 return;
425 }
426
427 // Look at all of the executable operands of the PHI node. If any of them
428 // are overdefined, the PHI becomes overdefined as well. Otherwise, ask the
429 // transfer function to give us the merge of the incoming values.
430 for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i) {
431 // If the edge is not yet known to be feasible, it doesn't impact the PHI.
432 if (!isEdgeFeasible(PN.getIncomingBlock(i), PN.getParent(), true))
433 continue;
434
435 // Merge in this value.
436 LatticeVal OpVal =
437 getValueState(KeyInfo::getLatticeKeyFromValue(PN.getIncomingValue(i)));
438 if (OpVal != PNIV)
439 PNIV = LatticeFunc->MergeValues(PNIV, OpVal);
440
441 if (PNIV == Overdefined)
442 break; // Rest of input values don't matter.
443 }
444
445 // Update the PHI with the compute value, which is the merge of the inputs.
446 UpdateState(Key, PNIV);
447 }
448
449 template <class LatticeKey, class LatticeVal, class KeyInfo>
visitInst(Instruction & I)450 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::visitInst(Instruction &I) {
451 // PHIs are handled by the propagation logic, they are never passed into the
452 // transfer functions.
453 if (PHINode *PN = dyn_cast<PHINode>(&I))
454 return visitPHINode(*PN);
455
456 // Otherwise, ask the transfer function what the result is. If this is
457 // something that we care about, remember it.
458 SmallDenseMap<LatticeKey, LatticeVal, 16> ChangedValues;
459 LatticeFunc->ComputeInstructionState(I, ChangedValues, *this);
460 for (auto &ChangedValue : ChangedValues)
461 if (ChangedValue.second != LatticeFunc->getUntrackedVal())
462 UpdateState(ChangedValue.first, ChangedValue.second);
463
464 if (I.isTerminator())
465 visitTerminator(I);
466 }
467
468 template <class LatticeKey, class LatticeVal, class KeyInfo>
Solve()469 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::Solve() {
470 // Process the work lists until they are empty!
471 while (!BBWorkList.empty() || !ValueWorkList.empty()) {
472 // Process the value work list.
473 while (!ValueWorkList.empty()) {
474 Value *V = ValueWorkList.pop_back_val();
475
476 LLVM_DEBUG(dbgs() << "\nPopped off V-WL: " << *V << "\n");
477
478 // "V" got into the work list because it made a transition. See if any
479 // users are both live and in need of updating.
480 for (User *U : V->users())
481 if (Instruction *Inst = dyn_cast<Instruction>(U))
482 if (BBExecutable.count(Inst->getParent())) // Inst is executable?
483 visitInst(*Inst);
484 }
485
486 // Process the basic block work list.
487 while (!BBWorkList.empty()) {
488 BasicBlock *BB = BBWorkList.pop_back_val();
489
490 LLVM_DEBUG(dbgs() << "\nPopped off BBWL: " << *BB);
491
492 // Notify all instructions in this basic block that they are newly
493 // executable.
494 for (Instruction &I : *BB)
495 visitInst(I);
496 }
497 }
498 }
499
500 template <class LatticeKey, class LatticeVal, class KeyInfo>
Print(raw_ostream & OS)501 void SparseSolver<LatticeKey, LatticeVal, KeyInfo>::Print(
502 raw_ostream &OS) const {
503 if (ValueState.empty())
504 return;
505
506 LatticeKey Key;
507 LatticeVal LV;
508
509 OS << "ValueState:\n";
510 for (auto &Entry : ValueState) {
511 std::tie(Key, LV) = Entry;
512 if (LV == LatticeFunc->getUntrackedVal())
513 continue;
514 OS << "\t";
515 LatticeFunc->PrintLatticeVal(LV, OS);
516 OS << ": ";
517 LatticeFunc->PrintLatticeKey(Key, OS);
518 OS << "\n";
519 }
520 }
521 } // end namespace llvm
522
523 #undef DEBUG_TYPE
524
525 #endif // LLVM_ANALYSIS_SPARSEPROPAGATION_H
526