mirror of
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537 lines
19 KiB
C++
537 lines
19 KiB
C++
//===--- PerformanceInlinerUtils.cpp - Performance inliner utilities. -----===//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2017 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See https://swift.org/LICENSE.txt for license information
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// See https://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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#include "swift/SILOptimizer/Utils/PerformanceInlinerUtils.h"
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//===----------------------------------------------------------------------===//
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// ConstantTracker
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//===----------------------------------------------------------------------===//
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void ConstantTracker::trackInst(SILInstruction *inst) {
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if (auto *LI = dyn_cast<LoadInst>(inst)) {
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SILValue baseAddr = scanProjections(LI->getOperand());
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if (SILInstruction *loadLink = getMemoryContent(baseAddr))
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links[LI] = loadLink;
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} else if (StoreInst *SI = dyn_cast<StoreInst>(inst)) {
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SILValue baseAddr = scanProjections(SI->getOperand(1));
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memoryContent[baseAddr] = SI;
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} else if (CopyAddrInst *CAI = dyn_cast<CopyAddrInst>(inst)) {
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if (!CAI->isTakeOfSrc()) {
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// Treat a copy_addr as a load + store
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SILValue loadAddr = scanProjections(CAI->getOperand(0));
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if (SILInstruction *loadLink = getMemoryContent(loadAddr)) {
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links[CAI] = loadLink;
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SILValue storeAddr = scanProjections(CAI->getOperand(1));
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memoryContent[storeAddr] = CAI;
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}
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}
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}
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}
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SILValue ConstantTracker::scanProjections(SILValue addr,
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SmallVectorImpl<Projection> *Result) {
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for (;;) {
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if (Projection::isAddressProjection(addr)) {
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SILInstruction *I = cast<SILInstruction>(addr);
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if (Result) {
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Result->push_back(Projection(I));
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}
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addr = I->getOperand(0);
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continue;
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}
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if (SILValue param = getParam(addr)) {
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// Go to the caller.
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addr = param;
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continue;
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}
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// Return the base address = the first address which is not a projection.
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return addr;
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}
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}
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SILValue ConstantTracker::getStoredValue(SILInstruction *loadInst,
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ProjectionPath &projStack) {
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SILInstruction *store = links[loadInst];
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if (!store && callerTracker)
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store = callerTracker->links[loadInst];
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if (!store) return SILValue();
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assert(isa<LoadInst>(loadInst) || isa<CopyAddrInst>(loadInst));
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// Push the address projections of the load onto the stack.
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SmallVector<Projection, 4> loadProjections;
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scanProjections(loadInst->getOperand(0), &loadProjections);
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for (const Projection &proj : loadProjections) {
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projStack.push_back(proj);
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}
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// Pop the address projections of the store from the stack.
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SmallVector<Projection, 4> storeProjections;
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scanProjections(store->getOperand(1), &storeProjections);
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for (auto iter = storeProjections.rbegin(); iter != storeProjections.rend();
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++iter) {
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const Projection &proj = *iter;
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// The corresponding load-projection must match the store-projection.
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if (projStack.empty() || projStack.back() != proj)
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return SILValue();
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projStack.pop_back();
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}
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if (isa<StoreInst>(store))
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return store->getOperand(0);
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// The copy_addr instruction is both a load and a store. So we follow the link
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// again.
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assert(isa<CopyAddrInst>(store));
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return getStoredValue(store, projStack);
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}
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// Get the aggregate member based on the top of the projection stack.
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static SILValue getMember(SILInstruction *inst, ProjectionPath &projStack) {
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if (!projStack.empty()) {
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const Projection &proj = projStack.back();
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return proj.getOperandForAggregate(inst);
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}
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return SILValue();
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}
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SILInstruction *ConstantTracker::getDef(SILValue val,
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ProjectionPath &projStack) {
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// Track the value up the dominator tree.
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for (;;) {
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if (SILInstruction *inst = dyn_cast<SILInstruction>(val)) {
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if (Projection::isObjectProjection(inst)) {
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// Extract a member from a struct/tuple/enum.
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projStack.push_back(Projection(inst));
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val = inst->getOperand(0);
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continue;
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} else if (SILValue member = getMember(inst, projStack)) {
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// The opposite of a projection instruction: composing a struct/tuple.
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projStack.pop_back();
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val = member;
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continue;
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} else if (SILValue loadedVal = getStoredValue(inst, projStack)) {
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// A value loaded from memory.
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val = loadedVal;
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continue;
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} else if (isa<ThinToThickFunctionInst>(inst)) {
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val = inst->getOperand(0);
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continue;
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}
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return inst;
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} else if (SILValue param = getParam(val)) {
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// Continue in the caller.
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val = param;
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continue;
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}
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return nullptr;
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}
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}
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ConstantTracker::IntConst ConstantTracker::getBuiltinConst(BuiltinInst *BI, int depth) {
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const BuiltinInfo &Builtin = BI->getBuiltinInfo();
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OperandValueArrayRef Args = BI->getArguments();
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switch (Builtin.ID) {
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default: break;
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// Fold comparison predicates.
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#define BUILTIN(id, name, Attrs)
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#define BUILTIN_BINARY_PREDICATE(id, name, attrs, overload) \
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case BuiltinValueKind::id:
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#include "swift/AST/Builtins.def"
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{
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IntConst lhs = getIntConst(Args[0], depth);
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IntConst rhs = getIntConst(Args[1], depth);
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if (lhs.isValid && rhs.isValid) {
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return IntConst(constantFoldComparison(lhs.value, rhs.value,
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Builtin.ID),
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lhs.isFromCaller || rhs.isFromCaller);
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}
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break;
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}
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case BuiltinValueKind::SAddOver:
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case BuiltinValueKind::UAddOver:
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case BuiltinValueKind::SSubOver:
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case BuiltinValueKind::USubOver:
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case BuiltinValueKind::SMulOver:
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case BuiltinValueKind::UMulOver: {
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IntConst lhs = getIntConst(Args[0], depth);
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IntConst rhs = getIntConst(Args[1], depth);
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if (lhs.isValid && rhs.isValid) {
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bool IgnoredOverflow;
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return IntConst(constantFoldBinaryWithOverflow(lhs.value, rhs.value,
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IgnoredOverflow,
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getLLVMIntrinsicIDForBuiltinWithOverflow(Builtin.ID)),
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lhs.isFromCaller || rhs.isFromCaller);
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}
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break;
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}
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case BuiltinValueKind::SDiv:
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case BuiltinValueKind::SRem:
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case BuiltinValueKind::UDiv:
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case BuiltinValueKind::URem: {
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IntConst lhs = getIntConst(Args[0], depth);
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IntConst rhs = getIntConst(Args[1], depth);
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if (lhs.isValid && rhs.isValid && rhs.value != 0) {
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bool IgnoredOverflow;
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return IntConst(constantFoldDiv(lhs.value, rhs.value,
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IgnoredOverflow, Builtin.ID),
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lhs.isFromCaller || rhs.isFromCaller);
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}
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break;
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}
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case BuiltinValueKind::And:
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case BuiltinValueKind::AShr:
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case BuiltinValueKind::LShr:
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case BuiltinValueKind::Or:
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case BuiltinValueKind::Shl:
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case BuiltinValueKind::Xor: {
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IntConst lhs = getIntConst(Args[0], depth);
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IntConst rhs = getIntConst(Args[1], depth);
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if (lhs.isValid && rhs.isValid) {
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return IntConst(constantFoldBitOperation(lhs.value, rhs.value,
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Builtin.ID),
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lhs.isFromCaller || rhs.isFromCaller);
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}
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break;
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}
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case BuiltinValueKind::Trunc:
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case BuiltinValueKind::ZExt:
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case BuiltinValueKind::SExt:
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case BuiltinValueKind::TruncOrBitCast:
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case BuiltinValueKind::ZExtOrBitCast:
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case BuiltinValueKind::SExtOrBitCast: {
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IntConst val = getIntConst(Args[0], depth);
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if (val.isValid) {
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return IntConst(constantFoldCast(val.value, Builtin), val.isFromCaller);
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}
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break;
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}
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}
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return IntConst();
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}
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// Tries to evaluate the integer constant of a value. The \p depth is used
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// to limit the complexity.
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ConstantTracker::IntConst ConstantTracker::getIntConst(SILValue val, int depth) {
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// Don't spend too much time with constant evaluation.
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if (depth >= 10)
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return IntConst();
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SILInstruction *I = getDef(val);
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if (!I)
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return IntConst();
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if (auto *IL = dyn_cast<IntegerLiteralInst>(I)) {
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return IntConst(IL->getValue(), IL->getFunction() != F);
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}
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if (auto *BI = dyn_cast<BuiltinInst>(I)) {
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if (constCache.count(BI) != 0)
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return constCache[BI];
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IntConst builtinConst = getBuiltinConst(BI, depth + 1);
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constCache[BI] = builtinConst;
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return builtinConst;
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}
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return IntConst();
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}
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// Returns the taken block of a terminator instruction if the condition turns
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// out to be constant.
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SILBasicBlock *ConstantTracker::getTakenBlock(TermInst *term) {
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if (CondBranchInst *CBI = dyn_cast<CondBranchInst>(term)) {
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IntConst condConst = getIntConst(CBI->getCondition());
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if (condConst.isFromCaller) {
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return condConst.value != 0 ? CBI->getTrueBB() : CBI->getFalseBB();
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}
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return nullptr;
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}
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if (SwitchValueInst *SVI = dyn_cast<SwitchValueInst>(term)) {
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IntConst switchConst = getIntConst(SVI->getOperand());
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if (switchConst.isFromCaller) {
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for (unsigned Idx = 0; Idx < SVI->getNumCases(); ++Idx) {
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auto switchCase = SVI->getCase(Idx);
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if (auto *IL = dyn_cast<IntegerLiteralInst>(switchCase.first)) {
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if (switchConst.value == IL->getValue())
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return switchCase.second;
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} else {
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return nullptr;
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}
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}
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if (SVI->hasDefault())
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return SVI->getDefaultBB();
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}
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return nullptr;
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}
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if (SwitchEnumInst *SEI = dyn_cast<SwitchEnumInst>(term)) {
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if (SILInstruction *def = getDefInCaller(SEI->getOperand())) {
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if (EnumInst *EI = dyn_cast<EnumInst>(def)) {
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for (unsigned Idx = 0; Idx < SEI->getNumCases(); ++Idx) {
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auto enumCase = SEI->getCase(Idx);
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if (enumCase.first == EI->getElement())
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return enumCase.second;
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}
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if (SEI->hasDefault())
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return SEI->getDefaultBB();
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}
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}
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return nullptr;
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}
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if (CheckedCastBranchInst *CCB = dyn_cast<CheckedCastBranchInst>(term)) {
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if (SILInstruction *def = getDefInCaller(CCB->getOperand())) {
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if (UpcastInst *UCI = dyn_cast<UpcastInst>(def)) {
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SILType castType = UCI->getOperand()->getType();
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if (CCB->getCastType().isExactSuperclassOf(castType)) {
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return CCB->getSuccessBB();
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}
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if (!castType.isBindableToSuperclassOf(CCB->getCastType())) {
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return CCB->getFailureBB();
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}
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}
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}
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}
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return nullptr;
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}
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//===----------------------------------------------------------------------===//
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// Shortest path analysis
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//===----------------------------------------------------------------------===//
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int ShortestPathAnalysis::getEntryDistFromPreds(const SILBasicBlock *BB,
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int LoopDepth) {
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int MinDist = InitialDist;
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for (SILBasicBlock *Pred : BB->getPredecessorBlocks()) {
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BlockInfo *PredInfo = getBlockInfo(Pred);
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Distances &PDists = PredInfo->getDistances(LoopDepth);
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int DistFromEntry = PDists.DistFromEntry + PredInfo->Length +
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PDists.LoopHeaderLength;
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assert(DistFromEntry >= 0);
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if (DistFromEntry < MinDist)
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MinDist = DistFromEntry;
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}
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return MinDist;
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}
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int ShortestPathAnalysis::getExitDistFromSuccs(const SILBasicBlock *BB,
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int LoopDepth) {
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int MinDist = InitialDist;
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for (const SILSuccessor &Succ : BB->getSuccessors()) {
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BlockInfo *SuccInfo = getBlockInfo(Succ);
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Distances &SDists = SuccInfo->getDistances(LoopDepth);
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if (SDists.DistToExit < MinDist)
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MinDist = SDists.DistToExit;
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}
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return MinDist;
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}
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/// Detect an edge from the loop pre-header's predecessor to the loop exit
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/// block. Such an edge "short-cuts" a loop if it is never iterated. But usually
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/// it is the less frequent case and we want to ignore it.
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/// E.g. it handles the case of N==0 for
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/// for i in 0..<N { ... }
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/// If the \p Loop has such an edge the source block of this edge is returned,
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/// which is the predecessor of the loop pre-header.
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static SILBasicBlock *detectLoopBypassPreheader(SILLoop *Loop) {
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SILBasicBlock *Pred = Loop->getLoopPreheader();
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if (!Pred)
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return nullptr;
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SILBasicBlock *PredPred = Pred->getSinglePredecessorBlock();
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if (!PredPred)
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return nullptr;
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auto *CBR = dyn_cast<CondBranchInst>(PredPred->getTerminator());
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if (!CBR)
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return nullptr;
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SILBasicBlock *Succ = (CBR->getTrueBB() == Pred ? CBR->getFalseBB() :
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CBR->getTrueBB());
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for (SILBasicBlock *PredOfSucc : Succ->getPredecessorBlocks()) {
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SILBasicBlock *Exiting = PredOfSucc->getSinglePredecessorBlock();
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if (!Exiting)
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Exiting = PredOfSucc;
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if (Loop->contains(Exiting))
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return PredPred;
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}
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return nullptr;
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}
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void ShortestPathAnalysis::analyzeLoopsRecursively(SILLoop *Loop, int LoopDepth) {
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if (LoopDepth >= MaxNumLoopLevels)
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return;
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// First dive into the inner loops.
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for (SILLoop *SubLoop : Loop->getSubLoops()) {
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analyzeLoopsRecursively(SubLoop, LoopDepth + 1);
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}
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BlockInfo *HeaderInfo = getBlockInfo(Loop->getHeader());
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Distances &HeaderDists = HeaderInfo->getDistances(LoopDepth);
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// Initial values for the entry (== header) and exit-predecessor (== header as
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// well).
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HeaderDists.DistFromEntry = 0;
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HeaderDists.DistToExit = 0;
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solveDataFlow(Loop->getBlocks(), LoopDepth);
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int LoopLength = getExitDistFromSuccs(Loop->getHeader(), LoopDepth) +
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HeaderInfo->getLength(LoopDepth);
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HeaderDists.DistToExit = LoopLength;
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// If there is a loop bypass edge, add the loop length to the loop pre-pre-
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// header instead to the header. This actually let us ignore the loop bypass
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// edge in the length calculation for the loop's parent scope.
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if (SILBasicBlock *Bypass = detectLoopBypassPreheader(Loop))
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HeaderInfo = getBlockInfo(Bypass);
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// Add the full loop length (= assumed-iteration-count * length) to the loop
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// header so that it is considered in the parent scope.
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HeaderInfo->getDistances(LoopDepth - 1).LoopHeaderLength =
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LoopCount * LoopLength;
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}
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ShortestPathAnalysis::Weight ShortestPathAnalysis::
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getWeight(SILBasicBlock *BB, Weight CallerWeight) {
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assert(BB->getParent() == F);
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SILLoop *Loop = LI->getLoopFor(BB);
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if (!Loop) {
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// We are not in a loop. So just account the length of our function scope
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// in to the length of the CallerWeight.
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return Weight(CallerWeight.ScopeLength + getScopeLength(BB, 0),
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CallerWeight.LoopWeight);
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}
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int LoopDepth = Loop->getLoopDepth();
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// Deal with the corner case of having more than 4 nested loops.
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while (LoopDepth >= MaxNumLoopLevels) {
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--LoopDepth;
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Loop = Loop->getParentLoop();
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}
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Weight W(getScopeLength(BB, LoopDepth), SingleLoopWeight);
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// Add weights for all the loops BB is in.
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while (Loop) {
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assert(LoopDepth > 0);
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BlockInfo *HeaderInfo = getBlockInfo(Loop->getHeader());
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int InnerLoopLength = HeaderInfo->getScopeLength(LoopDepth) *
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ShortestPathAnalysis::LoopCount;
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int OuterLoopWeight = SingleLoopWeight;
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int OuterScopeLength = HeaderInfo->getScopeLength(LoopDepth - 1);
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// Reaching the outermost loop, we use the CallerWeight to get the outer
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// length+loopweight.
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if (LoopDepth == 1) {
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// If the apply in the caller is not in a significant loop, just stop with
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// what we have now.
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if (CallerWeight.LoopWeight < 4)
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return W;
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// If this function is part of the caller's scope length take the caller's
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// scope length. Note: this is not the case e.g. if the apply is in a
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// then-branch of an if-then-else in the caller and the else-branch is
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// the short path.
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if (CallerWeight.ScopeLength > OuterScopeLength)
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OuterScopeLength = CallerWeight.ScopeLength;
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OuterLoopWeight = CallerWeight.LoopWeight;
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}
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assert(OuterScopeLength >= InnerLoopLength);
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// If the current loop is only a small part of its outer loop, we don't
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// take the outer loop that much into account. Only if the current loop is
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// actually the "main part" in the outer loop we add the full loop weight
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// for the outer loop.
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if (OuterScopeLength < InnerLoopLength * 2) {
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W.LoopWeight += OuterLoopWeight - 1;
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} else if (OuterScopeLength < InnerLoopLength * 3) {
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W.LoopWeight += OuterLoopWeight - 2;
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} else if (OuterScopeLength < InnerLoopLength * 4) {
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W.LoopWeight += OuterLoopWeight - 3;
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} else {
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return W;
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}
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--LoopDepth;
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Loop = Loop->getParentLoop();
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}
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assert(LoopDepth == 0);
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return W;
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}
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void ShortestPathAnalysis::dump() {
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printFunction(llvm::errs());
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}
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void ShortestPathAnalysis::printFunction(llvm::raw_ostream &OS) {
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OS << "SPA @" << F->getName() << "\n";
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for (SILBasicBlock &BB : *F) {
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printBlockInfo(OS, &BB, 0);
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}
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for (SILLoop *Loop : *LI) {
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printLoop(OS, Loop, 1);
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}
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|
}
|
|
|
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void ShortestPathAnalysis::printLoop(llvm::raw_ostream &OS, SILLoop *Loop,
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|
int LoopDepth) {
|
|
if (LoopDepth >= MaxNumLoopLevels)
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|
return;
|
|
assert(LoopDepth == (int)Loop->getLoopDepth());
|
|
|
|
OS << "Loop bb" << Loop->getHeader()->getDebugID() << ":\n";
|
|
for (SILBasicBlock *BB : Loop->getBlocks()) {
|
|
printBlockInfo(OS, BB, LoopDepth);
|
|
}
|
|
for (SILLoop *SubLoop : Loop->getSubLoops()) {
|
|
printLoop(OS, SubLoop, LoopDepth + 1);
|
|
}
|
|
}
|
|
|
|
void ShortestPathAnalysis::printBlockInfo(llvm::raw_ostream &OS,
|
|
SILBasicBlock *BB, int LoopDepth) {
|
|
BlockInfo *BBInfo = getBlockInfo(BB);
|
|
Distances &D = BBInfo->getDistances(LoopDepth);
|
|
OS << " bb" << BB->getDebugID() << ": length=" << BBInfo->Length << '+'
|
|
<< D.LoopHeaderLength << ", d-entry=" << D.DistFromEntry
|
|
<< ", d-exit=" << D.DistToExit << '\n';
|
|
}
|
|
|
|
void ShortestPathAnalysis::Weight::updateBenefit(int &Benefit,
|
|
int Importance) const {
|
|
assert(isValid());
|
|
int newBenefit = 0;
|
|
|
|
// Use some heuristics. The basic idea is: length is bad, loops are good.
|
|
if (ScopeLength > 320) {
|
|
newBenefit = Importance;
|
|
} else if (ScopeLength > 160) {
|
|
newBenefit = Importance + LoopWeight * 4;
|
|
} else if (ScopeLength > 80) {
|
|
newBenefit = Importance + LoopWeight * 8;
|
|
} else if (ScopeLength > 40) {
|
|
newBenefit = Importance + LoopWeight * 12;
|
|
} else if (ScopeLength > 20) {
|
|
newBenefit = Importance + LoopWeight * 16;
|
|
} else {
|
|
newBenefit = Importance + 20 + LoopWeight * 16;
|
|
}
|
|
// We don't accumulate the benefit instead we max it.
|
|
if (newBenefit > Benefit)
|
|
Benefit = newBenefit;
|
|
}
|