mirror of
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9d0754ada5dbbc0c009bcc2f7824488419cc5530 dropped MC support required for optimal macro-fusion alignment in BOLT. Remove the support in BOLT as performance measurements with large binaries didn't show a significant improvement. Test Plan: macro-fusion alignment was never upstreamed, so no upstream tests are affected.
577 lines
18 KiB
C++
577 lines
18 KiB
C++
//===- bolt/Core/BinaryBasicBlock.cpp - Low-level basic block -------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// This file implements the BinaryBasicBlock class.
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//
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//===----------------------------------------------------------------------===//
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#include "bolt/Core/BinaryBasicBlock.h"
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#include "bolt/Core/BinaryContext.h"
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#include "bolt/Core/BinaryFunction.h"
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#include "llvm/ADT/SmallPtrSet.h"
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#include "llvm/MC/MCInst.h"
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#include "llvm/Support/Errc.h"
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#define DEBUG_TYPE "bolt"
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namespace llvm {
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namespace bolt {
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constexpr uint32_t BinaryBasicBlock::INVALID_OFFSET;
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bool operator<(const BinaryBasicBlock &LHS, const BinaryBasicBlock &RHS) {
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return LHS.Index < RHS.Index;
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}
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bool BinaryBasicBlock::hasCFG() const { return getParent()->hasCFG(); }
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bool BinaryBasicBlock::isEntryPoint() const {
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return getParent()->isEntryPoint(*this);
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}
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bool BinaryBasicBlock::hasInstructions() const {
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return getParent()->hasInstructions();
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}
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const JumpTable *BinaryBasicBlock::getJumpTable() const {
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const MCInst *Inst = getLastNonPseudoInstr();
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const JumpTable *JT = Inst ? Function->getJumpTable(*Inst) : nullptr;
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return JT;
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}
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void BinaryBasicBlock::adjustNumPseudos(const MCInst &Inst, int Sign) {
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BinaryContext &BC = Function->getBinaryContext();
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if (BC.MIB->isPseudo(Inst))
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NumPseudos += Sign;
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}
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BinaryBasicBlock::iterator BinaryBasicBlock::getFirstNonPseudo() {
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const BinaryContext &BC = Function->getBinaryContext();
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for (auto II = Instructions.begin(), E = Instructions.end(); II != E; ++II) {
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if (!BC.MIB->isPseudo(*II))
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return II;
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}
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return end();
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}
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BinaryBasicBlock::reverse_iterator BinaryBasicBlock::getLastNonPseudo() {
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const BinaryContext &BC = Function->getBinaryContext();
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for (auto RII = Instructions.rbegin(), E = Instructions.rend(); RII != E;
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++RII) {
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if (!BC.MIB->isPseudo(*RII))
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return RII;
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}
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return rend();
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}
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bool BinaryBasicBlock::validateSuccessorInvariants() {
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const MCInst *Inst = getLastNonPseudoInstr();
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const JumpTable *JT = Inst ? Function->getJumpTable(*Inst) : nullptr;
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BinaryContext &BC = Function->getBinaryContext();
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bool Valid = true;
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if (JT) {
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// Note: for now we assume that successors do not reference labels from
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// any overlapping jump tables. We only look at the entries for the jump
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// table that is referenced at the last instruction.
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const auto Range = JT->getEntriesForAddress(BC.MIB->getJumpTable(*Inst));
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const std::vector<const MCSymbol *> Entries(
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std::next(JT->Entries.begin(), Range.first),
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std::next(JT->Entries.begin(), Range.second));
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std::set<const MCSymbol *> UniqueSyms(Entries.begin(), Entries.end());
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for (BinaryBasicBlock *Succ : Successors) {
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auto Itr = UniqueSyms.find(Succ->getLabel());
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if (Itr != UniqueSyms.end()) {
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UniqueSyms.erase(Itr);
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} else {
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// Work on the assumption that jump table blocks don't
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// have a conditional successor.
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Valid = false;
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BC.errs() << "BOLT-WARNING: Jump table successor " << Succ->getName()
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<< " not contained in the jump table.\n";
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}
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}
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// If there are any leftover entries in the jump table, they
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// must be one of the function end labels.
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if (Valid) {
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for (const MCSymbol *Sym : UniqueSyms) {
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Valid &= (Sym == Function->getFunctionEndLabel() ||
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Sym == Function->getFunctionEndLabel(getFragmentNum()));
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if (!Valid) {
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BC.errs() << "BOLT-WARNING: Jump table contains illegal entry: "
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<< Sym->getName() << "\n";
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}
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}
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}
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} else {
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// Unknown control flow.
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if (Inst && BC.MIB->isIndirectBranch(*Inst))
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return true;
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const MCSymbol *TBB = nullptr;
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const MCSymbol *FBB = nullptr;
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MCInst *CondBranch = nullptr;
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MCInst *UncondBranch = nullptr;
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if (analyzeBranch(TBB, FBB, CondBranch, UncondBranch)) {
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switch (Successors.size()) {
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case 0:
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Valid = !CondBranch && !UncondBranch;
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break;
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case 1: {
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const bool HasCondBlock =
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CondBranch && Function->getBasicBlockForLabel(
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BC.MIB->getTargetSymbol(*CondBranch));
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Valid = !CondBranch || !HasCondBlock;
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break;
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}
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case 2:
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Valid =
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CondBranch && TBB == getConditionalSuccessor(true)->getLabel() &&
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(UncondBranch ? FBB == getConditionalSuccessor(false)->getLabel()
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: !FBB);
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break;
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}
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}
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}
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if (!Valid) {
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BC.errs() << "BOLT-WARNING: CFG invalid in " << *getFunction() << " @ "
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<< getName() << "\n";
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if (JT) {
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BC.errs() << "Jump Table instruction addr = 0x"
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<< Twine::utohexstr(BC.MIB->getJumpTable(*Inst)) << "\n";
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JT->print(errs());
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}
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getFunction()->dump();
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}
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return Valid;
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}
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BinaryBasicBlock *BinaryBasicBlock::getSuccessor(const MCSymbol *Label) const {
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if (!Label && succ_size() == 1)
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return *succ_begin();
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for (BinaryBasicBlock *BB : successors())
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if (BB->getLabel() == Label)
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return BB;
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return nullptr;
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}
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BinaryBasicBlock *BinaryBasicBlock::getSuccessor(const MCSymbol *Label,
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BinaryBranchInfo &BI) const {
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auto BIIter = branch_info_begin();
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for (BinaryBasicBlock *BB : successors()) {
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if (BB->getLabel() == Label) {
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BI = *BIIter;
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return BB;
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}
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++BIIter;
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}
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return nullptr;
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}
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BinaryBasicBlock *BinaryBasicBlock::getLandingPad(const MCSymbol *Label) const {
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for (BinaryBasicBlock *BB : landing_pads())
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if (BB->getLabel() == Label)
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return BB;
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return nullptr;
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}
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int32_t BinaryBasicBlock::getCFIStateAtInstr(const MCInst *Instr) const {
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assert(
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getFunction()->getState() >= BinaryFunction::State::CFG &&
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"can only calculate CFI state when function is in or past the CFG state");
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const BinaryFunction::CFIInstrMapType &FDEProgram =
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getFunction()->getFDEProgram();
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// Find the last CFI preceding Instr in this basic block.
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const MCInst *LastCFI = nullptr;
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bool InstrSeen = (Instr == nullptr);
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for (const MCInst &Inst : llvm::reverse(Instructions)) {
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if (!InstrSeen) {
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InstrSeen = (&Inst == Instr);
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continue;
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}
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if (Function->getBinaryContext().MIB->isCFI(Inst)) {
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LastCFI = &Inst;
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break;
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}
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}
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assert(InstrSeen && "instruction expected in basic block");
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// CFI state is the same as at basic block entry point.
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if (!LastCFI)
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return getCFIState();
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// Fold all RememberState/RestoreState sequences, such as for:
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//
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// [ CFI #(K-1) ]
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// RememberState (#K)
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// ....
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// RestoreState
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// RememberState
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// ....
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// RestoreState
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// [ GNU_args_size ]
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// RememberState
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// ....
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// RestoreState <- LastCFI
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//
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// we return K - the most efficient state to (re-)generate.
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int64_t State = LastCFI->getOperand(0).getImm();
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while (State >= 0 &&
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FDEProgram[State].getOperation() == MCCFIInstruction::OpRestoreState) {
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int32_t Depth = 1;
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--State;
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assert(State >= 0 && "first CFI cannot be RestoreState");
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while (Depth && State >= 0) {
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const MCCFIInstruction &CFIInstr = FDEProgram[State];
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if (CFIInstr.getOperation() == MCCFIInstruction::OpRestoreState)
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++Depth;
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else if (CFIInstr.getOperation() == MCCFIInstruction::OpRememberState)
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--Depth;
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--State;
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}
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assert(Depth == 0 && "unbalanced RememberState/RestoreState stack");
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// Skip any GNU_args_size.
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while (State >= 0 && FDEProgram[State].getOperation() ==
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MCCFIInstruction::OpGnuArgsSize) {
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--State;
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}
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}
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assert((State + 1 >= 0) && "miscalculated CFI state");
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return State + 1;
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}
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void BinaryBasicBlock::addSuccessor(BinaryBasicBlock *Succ, uint64_t Count,
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uint64_t MispredictedCount) {
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Successors.push_back(Succ);
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BranchInfo.push_back({Count, MispredictedCount});
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Succ->Predecessors.push_back(this);
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}
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void BinaryBasicBlock::replaceSuccessor(BinaryBasicBlock *Succ,
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BinaryBasicBlock *NewSucc,
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uint64_t Count,
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uint64_t MispredictedCount) {
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Succ->removePredecessor(this, /*Multiple=*/false);
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auto I = succ_begin();
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auto BI = BranchInfo.begin();
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for (; I != succ_end(); ++I) {
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assert(BI != BranchInfo.end() && "missing BranchInfo entry");
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if (*I == Succ)
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break;
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++BI;
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}
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assert(I != succ_end() && "no such successor!");
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*I = NewSucc;
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*BI = BinaryBranchInfo{Count, MispredictedCount};
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NewSucc->addPredecessor(this);
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}
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void BinaryBasicBlock::removeAllSuccessors() {
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SmallPtrSet<BinaryBasicBlock *, 2> UniqSuccessors(succ_begin(), succ_end());
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for (BinaryBasicBlock *SuccessorBB : UniqSuccessors)
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SuccessorBB->removePredecessor(this);
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Successors.clear();
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BranchInfo.clear();
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}
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void BinaryBasicBlock::removeSuccessor(BinaryBasicBlock *Succ) {
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Succ->removePredecessor(this, /*Multiple=*/false);
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auto I = succ_begin();
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auto BI = BranchInfo.begin();
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for (; I != succ_end(); ++I) {
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assert(BI != BranchInfo.end() && "missing BranchInfo entry");
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if (*I == Succ)
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break;
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++BI;
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}
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assert(I != succ_end() && "no such successor!");
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Successors.erase(I);
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BranchInfo.erase(BI);
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}
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void BinaryBasicBlock::addPredecessor(BinaryBasicBlock *Pred) {
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Predecessors.push_back(Pred);
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}
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void BinaryBasicBlock::removePredecessor(BinaryBasicBlock *Pred,
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bool Multiple) {
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// Note: the predecessor could be listed multiple times.
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bool Erased = false;
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for (auto PredI = Predecessors.begin(); PredI != Predecessors.end();) {
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if (*PredI == Pred) {
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Erased = true;
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PredI = Predecessors.erase(PredI);
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if (!Multiple)
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return;
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} else {
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++PredI;
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}
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}
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assert(Erased && "Pred is not a predecessor of this block!");
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(void)Erased;
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}
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void BinaryBasicBlock::removeDuplicateConditionalSuccessor(MCInst *CondBranch) {
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assert(succ_size() == 2 && Successors[0] == Successors[1] &&
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"conditional successors expected");
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BinaryBasicBlock *Succ = Successors[0];
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const BinaryBranchInfo CondBI = BranchInfo[0];
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const BinaryBranchInfo UncondBI = BranchInfo[1];
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eraseInstruction(findInstruction(CondBranch));
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Successors.clear();
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BranchInfo.clear();
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Successors.push_back(Succ);
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uint64_t Count = COUNT_NO_PROFILE;
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if (CondBI.Count != COUNT_NO_PROFILE && UncondBI.Count != COUNT_NO_PROFILE)
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Count = CondBI.Count + UncondBI.Count;
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BranchInfo.push_back({Count, 0});
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}
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void BinaryBasicBlock::updateJumpTableSuccessors() {
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const JumpTable *JT = getJumpTable();
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assert(JT && "Expected jump table instruction.");
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// Clear existing successors.
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removeAllSuccessors();
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// Generate the list of successors in deterministic order without duplicates.
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SmallVector<BinaryBasicBlock *, 16> SuccessorBBs;
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for (const MCSymbol *Label : JT->Entries) {
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BinaryBasicBlock *BB = getFunction()->getBasicBlockForLabel(Label);
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// Ignore __builtin_unreachable()
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if (!BB) {
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assert(Label == getFunction()->getFunctionEndLabel() &&
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"JT label should match a block or end of function.");
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continue;
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}
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SuccessorBBs.emplace_back(BB);
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}
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llvm::sort(SuccessorBBs,
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[](const BinaryBasicBlock *BB1, const BinaryBasicBlock *BB2) {
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return BB1->getInputOffset() < BB2->getInputOffset();
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});
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SuccessorBBs.erase(std::unique(SuccessorBBs.begin(), SuccessorBBs.end()),
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SuccessorBBs.end());
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for (BinaryBasicBlock *BB : SuccessorBBs)
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addSuccessor(BB);
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}
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void BinaryBasicBlock::adjustExecutionCount(double Ratio) {
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auto adjustedCount = [&](uint64_t Count) -> uint64_t {
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double NewCount = Count * Ratio;
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if (!NewCount && Count && (Ratio > 0.0))
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NewCount = 1;
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return NewCount;
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};
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setExecutionCount(adjustedCount(getKnownExecutionCount()));
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for (BinaryBranchInfo &BI : branch_info()) {
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if (BI.Count != COUNT_NO_PROFILE)
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BI.Count = adjustedCount(BI.Count);
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if (BI.MispredictedCount != COUNT_INFERRED)
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BI.MispredictedCount = adjustedCount(BI.MispredictedCount);
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}
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}
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bool BinaryBasicBlock::analyzeBranch(const MCSymbol *&TBB, const MCSymbol *&FBB,
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MCInst *&CondBranch,
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MCInst *&UncondBranch) {
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auto &MIB = Function->getBinaryContext().MIB;
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return MIB->analyzeBranch(Instructions.begin(), Instructions.end(), TBB, FBB,
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CondBranch, UncondBranch);
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}
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MCInst *BinaryBasicBlock::getTerminatorBefore(MCInst *Pos) {
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BinaryContext &BC = Function->getBinaryContext();
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auto Itr = rbegin();
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bool Check = Pos ? false : true;
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MCInst *FirstTerminator = nullptr;
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while (Itr != rend()) {
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if (!Check) {
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if (&*Itr == Pos)
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Check = true;
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++Itr;
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continue;
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}
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if (BC.MIB->isTerminator(*Itr))
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FirstTerminator = &*Itr;
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++Itr;
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}
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return FirstTerminator;
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}
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bool BinaryBasicBlock::hasTerminatorAfter(MCInst *Pos) {
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BinaryContext &BC = Function->getBinaryContext();
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auto Itr = rbegin();
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while (Itr != rend()) {
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if (&*Itr == Pos)
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return false;
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if (BC.MIB->isTerminator(*Itr))
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return true;
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++Itr;
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}
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return false;
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}
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bool BinaryBasicBlock::swapConditionalSuccessors() {
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if (succ_size() != 2)
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return false;
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std::swap(Successors[0], Successors[1]);
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std::swap(BranchInfo[0], BranchInfo[1]);
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return true;
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}
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void BinaryBasicBlock::addBranchInstruction(const BinaryBasicBlock *Successor) {
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assert(isSuccessor(Successor));
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BinaryContext &BC = Function->getBinaryContext();
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MCInst NewInst;
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std::unique_lock<llvm::sys::RWMutex> Lock(BC.CtxMutex);
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BC.MIB->createUncondBranch(NewInst, Successor->getLabel(), BC.Ctx.get());
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Instructions.emplace_back(std::move(NewInst));
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}
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void BinaryBasicBlock::addTailCallInstruction(const MCSymbol *Target) {
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BinaryContext &BC = Function->getBinaryContext();
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MCInst NewInst;
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BC.MIB->createTailCall(NewInst, Target, BC.Ctx.get());
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Instructions.emplace_back(std::move(NewInst));
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}
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uint32_t BinaryBasicBlock::getNumCalls() const {
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uint32_t N = 0;
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BinaryContext &BC = Function->getBinaryContext();
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for (const MCInst &Instr : Instructions) {
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if (BC.MIB->isCall(Instr))
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++N;
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}
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return N;
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}
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uint32_t BinaryBasicBlock::getNumPseudos() const {
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#ifndef NDEBUG
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BinaryContext &BC = Function->getBinaryContext();
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uint32_t N = 0;
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for (const MCInst &Instr : Instructions)
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if (BC.MIB->isPseudo(Instr))
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++N;
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if (N != NumPseudos) {
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BC.errs() << "BOLT-ERROR: instructions for basic block " << getName()
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<< " in function " << *Function << ": calculated pseudos " << N
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<< ", set pseudos " << NumPseudos << ", size " << size() << '\n';
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llvm_unreachable("pseudos mismatch");
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}
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#endif
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return NumPseudos;
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}
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ErrorOr<std::pair<double, double>>
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BinaryBasicBlock::getBranchStats(const BinaryBasicBlock *Succ) const {
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if (Function->hasValidProfile()) {
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uint64_t TotalCount = 0;
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uint64_t TotalMispreds = 0;
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for (const BinaryBranchInfo &BI : BranchInfo) {
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if (BI.Count != COUNT_NO_PROFILE) {
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TotalCount += BI.Count;
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TotalMispreds += BI.MispredictedCount;
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}
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}
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if (TotalCount > 0) {
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auto Itr = llvm::find(Successors, Succ);
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assert(Itr != Successors.end());
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const BinaryBranchInfo &BI = BranchInfo[Itr - Successors.begin()];
|
|
if (BI.Count && BI.Count != COUNT_NO_PROFILE) {
|
|
if (TotalMispreds == 0)
|
|
TotalMispreds = 1;
|
|
return std::make_pair(double(BI.Count) / TotalCount,
|
|
double(BI.MispredictedCount) / TotalMispreds);
|
|
}
|
|
}
|
|
}
|
|
return make_error_code(llvm::errc::result_out_of_range);
|
|
}
|
|
|
|
void BinaryBasicBlock::dump() const {
|
|
BinaryContext &BC = Function->getBinaryContext();
|
|
if (Label)
|
|
BC.outs() << Label->getName() << ":\n";
|
|
BC.printInstructions(BC.outs(), Instructions.begin(), Instructions.end(),
|
|
getOffset(), Function);
|
|
BC.outs() << "preds:";
|
|
for (auto itr = pred_begin(); itr != pred_end(); ++itr) {
|
|
BC.outs() << " " << (*itr)->getName();
|
|
}
|
|
BC.outs() << "\nsuccs:";
|
|
for (auto itr = succ_begin(); itr != succ_end(); ++itr) {
|
|
BC.outs() << " " << (*itr)->getName();
|
|
}
|
|
BC.outs() << "\n";
|
|
}
|
|
|
|
uint64_t BinaryBasicBlock::estimateSize(const MCCodeEmitter *Emitter) const {
|
|
return Function->getBinaryContext().computeCodeSize(begin(), end(), Emitter);
|
|
}
|
|
|
|
BinaryBasicBlock::BinaryBranchInfo &
|
|
BinaryBasicBlock::getBranchInfo(const BinaryBasicBlock &Succ) {
|
|
return const_cast<BinaryBranchInfo &>(
|
|
static_cast<const BinaryBasicBlock &>(*this).getBranchInfo(Succ));
|
|
}
|
|
|
|
const BinaryBasicBlock::BinaryBranchInfo &
|
|
BinaryBasicBlock::getBranchInfo(const BinaryBasicBlock &Succ) const {
|
|
const auto Zip = llvm::zip(successors(), branch_info());
|
|
const auto Result = llvm::find_if(
|
|
Zip, [&](const auto &Tuple) { return std::get<0>(Tuple) == &Succ; });
|
|
assert(Result != Zip.end() && "Cannot find target in successors");
|
|
return std::get<1>(*Result);
|
|
}
|
|
|
|
BinaryBasicBlock *BinaryBasicBlock::splitAt(iterator II) {
|
|
assert(II != end() && "expected iterator pointing to instruction");
|
|
|
|
BinaryBasicBlock *NewBlock = getFunction()->addBasicBlock();
|
|
|
|
// Adjust successors/predecessors and propagate the execution count.
|
|
moveAllSuccessorsTo(NewBlock);
|
|
addSuccessor(NewBlock, getExecutionCount(), 0);
|
|
|
|
// Set correct CFI state for the new block.
|
|
NewBlock->setCFIState(getCFIStateAtInstr(&*II));
|
|
|
|
// Move instructions over.
|
|
adjustNumPseudos(II, end(), -1);
|
|
NewBlock->addInstructions(II, end());
|
|
Instructions.erase(II, end());
|
|
|
|
return NewBlock;
|
|
}
|
|
|
|
} // namespace bolt
|
|
} // namespace llvm
|