#include "mlir/Transforms/CSE.h"
#include "mlir/IR/Dominance.h"
#include "mlir/IR/PatternMatch.h"
#include "mlir/Interfaces/SideEffectInterfaces.h"
#include "mlir/Pass/Pass.h"
#include "mlir/Transforms/Passes.h"
#include "llvm/ADT/DenseMapInfo.h"
#include "llvm/ADT/Hashing.h"
#include "llvm/ADT/ScopedHashTable.h"
#include "llvm/Support/Allocator.h"
#include "llvm/Support/RecyclingAllocator.h"
#include <deque>
namespace mlir {
#define GEN_PASS_DEF_CSE
#include "mlir/Transforms/Passes.h.inc"
}
using namespace mlir;
namespace {
struct SimpleOperationInfo : public llvm::DenseMapInfo<Operation *> {
static unsigned getHashValue(const Operation *opC) {
return OperationEquivalence::computeHash(
const_cast<Operation *>(opC),
OperationEquivalence::directHashValue,
OperationEquivalence::ignoreHashValue,
OperationEquivalence::IgnoreLocations);
}
static bool isEqual(const Operation *lhsC, const Operation *rhsC) {
auto *lhs = const_cast<Operation *>(lhsC);
auto *rhs = const_cast<Operation *>(rhsC);
if (lhs == rhs)
return true;
if (lhs == getTombstoneKey() || lhs == getEmptyKey() ||
rhs == getTombstoneKey() || rhs == getEmptyKey())
return false;
return OperationEquivalence::isEquivalentTo(
const_cast<Operation *>(lhsC), const_cast<Operation *>(rhsC),
OperationEquivalence::IgnoreLocations);
}
};
}
namespace {
class CSEDriver {
public:
CSEDriver(RewriterBase &rewriter, DominanceInfo *domInfo)
: rewriter(rewriter), domInfo(domInfo) {}
void simplify(Operation *op, bool *changed = nullptr);
int64_t getNumCSE() const { return numCSE; }
int64_t getNumDCE() const { return numDCE; }
private:
using AllocatorTy = llvm::RecyclingAllocator<
llvm::BumpPtrAllocator,
llvm::ScopedHashTableVal<Operation *, Operation *>>;
using ScopedMapTy = llvm::ScopedHashTable<Operation *, Operation *,
SimpleOperationInfo, AllocatorTy>;
using MemEffectsCache =
DenseMap<Operation *, std::pair<Operation *, MemoryEffects::Effect *>>;
struct CFGStackNode {
CFGStackNode(ScopedMapTy &knownValues, DominanceInfoNode *node)
: scope(knownValues), node(node), childIterator(node->begin()) {}
ScopedMapTy::ScopeTy scope;
DominanceInfoNode *node;
DominanceInfoNode::const_iterator childIterator;
bool processed = false;
};
LogicalResult simplifyOperation(ScopedMapTy &knownValues, Operation *op,
bool hasSSADominance);
void simplifyBlock(ScopedMapTy &knownValues, Block *bb, bool hasSSADominance);
void simplifyRegion(ScopedMapTy &knownValues, Region ®ion);
void replaceUsesAndDelete(ScopedMapTy &knownValues, Operation *op,
Operation *existing, bool hasSSADominance);
bool hasOtherSideEffectingOpInBetween(Operation *fromOp, Operation *toOp);
RewriterBase &rewriter;
std::vector<Operation *> opsToErase;
DominanceInfo *domInfo = nullptr;
MemEffectsCache memEffectsCache;
int64_t numCSE = 0;
int64_t numDCE = 0;
};
}
void CSEDriver::replaceUsesAndDelete(ScopedMapTy &knownValues, Operation *op,
Operation *existing,
bool hasSSADominance) {
if (hasSSADominance) {
if (auto *rewriteListener =
dyn_cast_if_present<RewriterBase::Listener>(rewriter.getListener()))
rewriteListener->notifyOperationReplaced(op, existing);
rewriter.replaceAllUsesWith(op->getResults(), existing->getResults());
opsToErase.push_back(op);
} else {
auto wasVisited = [&](OpOperand &operand) {
return !knownValues.count(operand.getOwner());
};
if (auto *rewriteListener =
dyn_cast_if_present<RewriterBase::Listener>(rewriter.getListener()))
for (Value v : op->getResults())
if (all_of(v.getUses(), wasVisited))
rewriteListener->notifyOperationReplaced(op, existing);
rewriter.replaceUsesWithIf(op->getResults(), existing->getResults(),
wasVisited);
if (op->use_empty())
opsToErase.push_back(op);
}
if (isa<UnknownLoc>(existing->getLoc()) && !isa<UnknownLoc>(op->getLoc()))
existing->setLoc(op->getLoc());
++numCSE;
}
bool CSEDriver::hasOtherSideEffectingOpInBetween(Operation *fromOp,
Operation *toOp) {
assert(fromOp->getBlock() == toOp->getBlock());
assert(
isa<MemoryEffectOpInterface>(fromOp) &&
cast<MemoryEffectOpInterface>(fromOp).hasEffect<MemoryEffects::Read>() &&
isa<MemoryEffectOpInterface>(toOp) &&
cast<MemoryEffectOpInterface>(toOp).hasEffect<MemoryEffects::Read>());
Operation *nextOp = fromOp->getNextNode();
auto result =
memEffectsCache.try_emplace(fromOp, std::make_pair(fromOp, nullptr));
if (result.second) {
auto memEffectsCachePair = result.first->second;
if (memEffectsCachePair.second == nullptr) {
nextOp = memEffectsCachePair.first;
} else {
return true;
}
}
while (nextOp && nextOp != toOp) {
std::optional<SmallVector<MemoryEffects::EffectInstance>> effects =
getEffectsRecursively(nextOp);
if (!effects) {
result.first->second =
std::make_pair(nextOp, MemoryEffects::Write::get());
return true;
}
for (const MemoryEffects::EffectInstance &effect : *effects) {
if (isa<MemoryEffects::Write>(effect.getEffect())) {
result.first->second = {nextOp, MemoryEffects::Write::get()};
return true;
}
}
nextOp = nextOp->getNextNode();
}
result.first->second = std::make_pair(toOp, nullptr);
return false;
}
LogicalResult CSEDriver::simplifyOperation(ScopedMapTy &knownValues,
Operation *op,
bool hasSSADominance) {
if (op->hasTrait<OpTrait::IsTerminator>())
return failure();
if (isOpTriviallyDead(op)) {
opsToErase.push_back(op);
++numDCE;
return success();
}
if (!llvm::all_of(op->getRegions(), [](Region &r) {
return r.getBlocks().empty() || llvm::hasSingleElement(r.getBlocks());
}))
return failure();
if (!isMemoryEffectFree(op)) {
auto memEffects = dyn_cast<MemoryEffectOpInterface>(op);
if (!memEffects || !memEffects.onlyHasEffect<MemoryEffects::Read>())
return failure();
if (auto *existing = knownValues.lookup(op)) {
if (existing->getBlock() == op->getBlock() &&
!hasOtherSideEffectingOpInBetween(existing, op)) {
replaceUsesAndDelete(knownValues, op, existing, hasSSADominance);
return success();
}
}
knownValues.insert(op, op);
return failure();
}
if (auto *existing = knownValues.lookup(op)) {
replaceUsesAndDelete(knownValues, op, existing, hasSSADominance);
++numCSE;
return success();
}
knownValues.insert(op, op);
return failure();
}
void CSEDriver::simplifyBlock(ScopedMapTy &knownValues, Block *bb,
bool hasSSADominance) {
for (auto &op : *bb) {
if (op.getNumRegions() != 0) {
if (op.mightHaveTrait<OpTrait::IsIsolatedFromAbove>()) {
ScopedMapTy nestedKnownValues;
for (auto ®ion : op.getRegions())
simplifyRegion(nestedKnownValues, region);
} else {
for (auto ®ion : op.getRegions())
simplifyRegion(knownValues, region);
}
}
if (succeeded(simplifyOperation(knownValues, &op, hasSSADominance)))
continue;
}
memEffectsCache.clear();
}
void CSEDriver::simplifyRegion(ScopedMapTy &knownValues, Region ®ion) {
if (region.empty())
return;
bool hasSSADominance = domInfo->hasSSADominance(®ion);
if (region.hasOneBlock()) {
ScopedMapTy::ScopeTy scope(knownValues);
simplifyBlock(knownValues, ®ion.front(), hasSSADominance);
return;
}
if (!hasSSADominance)
return;
std::deque<std::unique_ptr<CFGStackNode>> stack;
stack.emplace_back(std::make_unique<CFGStackNode>(
knownValues, domInfo->getRootNode(®ion)));
while (!stack.empty()) {
auto ¤tNode = stack.back();
if (!currentNode->processed) {
currentNode->processed = true;
simplifyBlock(knownValues, currentNode->node->getBlock(),
hasSSADominance);
}
if (currentNode->childIterator != currentNode->node->end()) {
auto *childNode = *(currentNode->childIterator++);
stack.emplace_back(
std::make_unique<CFGStackNode>(knownValues, childNode));
} else {
stack.pop_back();
}
}
}
void CSEDriver::simplify(Operation *op, bool *changed) {
ScopedMapTy knownValues;
for (auto ®ion : op->getRegions())
simplifyRegion(knownValues, region);
for (auto *op : opsToErase)
rewriter.eraseOp(op);
if (changed)
*changed = !opsToErase.empty();
}
void mlir::eliminateCommonSubExpressions(RewriterBase &rewriter,
DominanceInfo &domInfo, Operation *op,
bool *changed) {
CSEDriver driver(rewriter, &domInfo);
driver.simplify(op, changed);
}
namespace {
struct CSE : public impl::CSEBase<CSE> {
void runOnOperation() override;
};
}
void CSE::runOnOperation() {
IRRewriter rewriter(&getContext());
CSEDriver driver(rewriter, &getAnalysis<DominanceInfo>());
bool changed = false;
driver.simplify(getOperation(), &changed);
numCSE = driver.getNumCSE();
numDCE = driver.getNumDCE();
if (!changed)
return markAllAnalysesPreserved();
markAnalysesPreserved<DominanceInfo, PostDominanceInfo>();
}
std::unique_ptr<Pass> mlir::createCSEPass() { return std::make_unique<CSE>(); }