cb424d7448
verify-patch-sanity.py validates every active recipe .patch has internally- consistent hunk line counts — catching the 'malformed patch at line N' failure at commit/CI/preflight time instead of hours into a cook. This cycle hit that class three times (qtwaylandscanner, sddm, xwayland), each only discovered when cookbook tried to apply the patch. Running it across the repo found 29 latent malformed patches (validated against GNU patch: e.g. relibc/P3-sysv-ipc reproduces 'malformed patch at line 22'). They were harmless only because they sit in vendored recipes (baked, not re- applied) — but would fail on any version-bump re-derivation. --fix recounts the hunk headers (body untouched) and repaired all 29. Wired into build-preflight.sh (Phase 1.0D) and redbear-ci.yml, with a unit test (test-patch-sanity.sh). Skips archived/legacy trees and unvalidatable formats (empty placeholders, bare-@@ git hunks).
347 lines
13 KiB
C++
347 lines
13 KiB
C++
//===- llvm/Target/TargetSchedule.cpp - Sched Machine Model ---------------===//
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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 a wrapper around MCSchedModel that allows the interface
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// to benefit from information currently only available in TargetInstrInfo.
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//
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//===----------------------------------------------------------------------===//
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#include "llvm/CodeGen/TargetSchedule.h"
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#include "llvm/CodeGen/MachineFunction.h"
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#include "llvm/CodeGen/MachineInstr.h"
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#include "llvm/CodeGen/MachineOperand.h"
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#include "llvm/CodeGen/TargetInstrInfo.h"
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#include "llvm/CodeGen/TargetSubtargetInfo.h"
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#include "llvm/MC/MCInstrDesc.h"
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#include "llvm/MC/MCInstrItineraries.h"
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#include "llvm/MC/MCSchedule.h"
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#include "llvm/Support/CommandLine.h"
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#include "llvm/Support/ErrorHandling.h"
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#include "llvm/Support/raw_ostream.h"
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#include <algorithm>
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#include <cassert>
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#include <numeric>
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using namespace llvm;
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static cl::opt<bool> ForceEnableIntervals(
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"sched-model-force-enable-intervals", cl::Hidden, cl::init(false),
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cl::desc("Force the use of resource intervals in the schedule model"));
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bool TargetSchedModel::hasInstrSchedModel() const {
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return EnableSchedModel && SchedModel.hasInstrSchedModel();
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}
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bool TargetSchedModel::hasInstrItineraries() const {
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return EnableSchedItins && !InstrItins.isEmpty();
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}
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void TargetSchedModel::init(const TargetSubtargetInfo *TSInfo,
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bool EnableSModel, bool EnableSItins) {
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STI = TSInfo;
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SchedModel = TSInfo->getSchedModel();
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TII = TSInfo->getInstrInfo();
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STI->initInstrItins(InstrItins);
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EnableSchedModel = EnableSModel;
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EnableSchedItins = EnableSItins;
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unsigned NumRes = SchedModel.getNumProcResourceKinds();
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ResourceFactors.resize(NumRes);
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ResourceLCM = SchedModel.IssueWidth;
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for (unsigned Idx = 0; Idx < NumRes; ++Idx) {
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unsigned NumUnits = SchedModel.getProcResource(Idx)->NumUnits;
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if (NumUnits > 0)
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ResourceLCM = std::lcm(ResourceLCM, NumUnits);
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}
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MicroOpFactor = ResourceLCM / SchedModel.IssueWidth;
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for (unsigned Idx = 0; Idx < NumRes; ++Idx) {
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unsigned NumUnits = SchedModel.getProcResource(Idx)->NumUnits;
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ResourceFactors[Idx] = NumUnits ? (ResourceLCM / NumUnits) : 0;
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}
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}
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/// Returns true only if instruction is specified as single issue.
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bool TargetSchedModel::mustBeginGroup(const MachineInstr *MI,
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const MCSchedClassDesc *SC) const {
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if (hasInstrSchedModel()) {
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if (!SC)
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SC = resolveSchedClass(MI);
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if (SC->isValid())
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return SC->BeginGroup;
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}
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return false;
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}
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bool TargetSchedModel::mustEndGroup(const MachineInstr *MI,
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const MCSchedClassDesc *SC) const {
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if (hasInstrSchedModel()) {
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if (!SC)
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SC = resolveSchedClass(MI);
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if (SC->isValid())
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return SC->EndGroup;
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}
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return false;
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}
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unsigned TargetSchedModel::getNumMicroOps(const MachineInstr *MI,
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const MCSchedClassDesc *SC) const {
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if (hasInstrItineraries()) {
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int UOps = InstrItins.getNumMicroOps(MI->getDesc().getSchedClass());
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return (UOps >= 0) ? UOps : TII->getNumMicroOps(&InstrItins, *MI);
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}
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if (hasInstrSchedModel()) {
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if (!SC)
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SC = resolveSchedClass(MI);
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if (SC->isValid())
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return SC->NumMicroOps;
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}
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return MI->isTransient() ? 0 : 1;
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}
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// The machine model may explicitly specify an invalid latency, which
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// effectively means infinite latency. Since users of the TargetSchedule API
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// don't know how to handle this, we convert it to a very large latency that is
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// easy to distinguish when debugging the DAG but won't induce overflow.
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static unsigned capLatency(int Cycles) {
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return Cycles >= 0 ? Cycles : 1000;
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}
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/// Return the MCSchedClassDesc for this instruction. Some SchedClasses require
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/// evaluation of predicates that depend on instruction operands or flags.
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const MCSchedClassDesc *TargetSchedModel::
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resolveSchedClass(const MachineInstr *MI) const {
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// Get the definition's scheduling class descriptor from this machine model.
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unsigned SchedClass = MI->getDesc().getSchedClass();
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const MCSchedClassDesc *SCDesc = SchedModel.getSchedClassDesc(SchedClass);
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if (!SCDesc->isValid())
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return SCDesc;
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#ifndef NDEBUG
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unsigned NIter = 0;
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#endif
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while (SCDesc->isVariant()) {
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assert(++NIter < 6 && "Variants are nested deeper than the magic number");
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SchedClass = STI->resolveSchedClass(SchedClass, MI, this);
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SCDesc = SchedModel.getSchedClassDesc(SchedClass);
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}
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return SCDesc;
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}
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/// Find the def index of this operand. This index maps to the machine model and
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/// is independent of use operands. Def operands may be reordered with uses or
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/// merged with uses without affecting the def index (e.g. before/after
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/// regalloc). However, an instruction's def operands must never be reordered
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/// with respect to each other.
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static unsigned findDefIdx(const MachineInstr *MI, unsigned DefOperIdx) {
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unsigned DefIdx = 0;
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for (unsigned i = 0; i != DefOperIdx; ++i) {
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const MachineOperand &MO = MI->getOperand(i);
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if (MO.isReg() && MO.isDef())
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++DefIdx;
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}
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return DefIdx;
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}
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/// Find the use index of this operand. This is independent of the instruction's
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/// def operands.
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///
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/// Note that uses are not determined by the operand's isUse property, which
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/// is simply the inverse of isDef. Here we consider any readsReg operand to be
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/// a "use". The machine model allows an operand to be both a Def and Use.
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static unsigned findUseIdx(const MachineInstr *MI, unsigned UseOperIdx) {
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unsigned UseIdx = 0;
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for (unsigned i = 0; i != UseOperIdx; ++i) {
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const MachineOperand &MO = MI->getOperand(i);
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if (MO.isReg() && MO.readsReg() && !MO.isDef())
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++UseIdx;
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}
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return UseIdx;
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}
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// Top-level API for clients that know the operand indices. This doesn't need to
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// return std::optional<unsigned>, as it always returns a valid latency.
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unsigned TargetSchedModel::computeOperandLatency(
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const MachineInstr *DefMI, unsigned DefOperIdx,
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const MachineInstr *UseMI, unsigned UseOperIdx) const {
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const unsigned InstrLatency = computeInstrLatency(DefMI);
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const unsigned DefaultDefLatency = TII->defaultDefLatency(SchedModel, *DefMI);
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if (!hasInstrSchedModel() && !hasInstrItineraries())
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return DefaultDefLatency;
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if (hasInstrItineraries()) {
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std::optional<unsigned> OperLatency;
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if (UseMI) {
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OperLatency = TII->getOperandLatency(&InstrItins, *DefMI, DefOperIdx,
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*UseMI, UseOperIdx);
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}
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else {
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unsigned DefClass = DefMI->getDesc().getSchedClass();
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OperLatency = InstrItins.getOperandCycle(DefClass, DefOperIdx);
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}
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// Expected latency is the max of InstrLatency and DefaultDefLatency, if we
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// didn't find an operand latency.
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return OperLatency ? *OperLatency
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: std::max(InstrLatency, DefaultDefLatency);
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}
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// hasInstrSchedModel()
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const MCSchedClassDesc *SCDesc = resolveSchedClass(DefMI);
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unsigned DefIdx = findDefIdx(DefMI, DefOperIdx);
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if (DefIdx < SCDesc->NumWriteLatencyEntries) {
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// Lookup the definition's write latency in SubtargetInfo.
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const MCWriteLatencyEntry *WLEntry =
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STI->getWriteLatencyEntry(SCDesc, DefIdx);
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unsigned WriteID = WLEntry->WriteResourceID;
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unsigned Latency = capLatency(WLEntry->Cycles);
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if (!UseMI)
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return Latency;
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// Lookup the use's latency adjustment in SubtargetInfo.
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const MCSchedClassDesc *UseDesc = resolveSchedClass(UseMI);
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if (UseDesc->NumReadAdvanceEntries == 0)
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return Latency;
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unsigned UseIdx = findUseIdx(UseMI, UseOperIdx);
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int Advance = STI->getReadAdvanceCycles(UseDesc, UseIdx, WriteID);
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if (Advance > 0 && (unsigned)Advance > Latency) // unsigned wrap
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return 0;
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return Latency - Advance;
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}
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// If DefIdx does not exist in the model (e.g. implicit defs), then return
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// unit latency (defaultDefLatency may be too conservative).
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#ifndef NDEBUG
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if (SCDesc->isValid() && !DefMI->getOperand(DefOperIdx).isImplicit() &&
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!DefMI->getDesc().operands()[DefOperIdx].isOptionalDef() &&
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SchedModel.isComplete()) {
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errs() << "DefIdx " << DefIdx << " exceeds machine model writes for "
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<< *DefMI << " (Try with MCSchedModel.CompleteModel set to false)";
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llvm_unreachable("incomplete machine model");
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}
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#endif
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// FIXME: Automatically giving all implicit defs defaultDefLatency is
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// undesirable. We should only do it for defs that are known to the MC
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// desc like flags. Truly implicit defs should get 1 cycle latency.
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return DefMI->isTransient() ? 0 : DefaultDefLatency;
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}
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unsigned
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TargetSchedModel::computeInstrLatency(const MCSchedClassDesc &SCDesc) const {
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return capLatency(MCSchedModel::computeInstrLatency(*STI, SCDesc));
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}
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unsigned TargetSchedModel::computeInstrLatency(unsigned Opcode) const {
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assert(hasInstrSchedModel() && "Only call this function with a SchedModel");
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unsigned SCIdx = TII->get(Opcode).getSchedClass();
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return capLatency(SchedModel.computeInstrLatency(*STI, SCIdx));
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}
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unsigned TargetSchedModel::computeInstrLatency(const MCInst &Inst) const {
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if (hasInstrSchedModel())
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return capLatency(SchedModel.computeInstrLatency(*STI, *TII, Inst));
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return computeInstrLatency(Inst.getOpcode());
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}
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unsigned
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TargetSchedModel::computeInstrLatency(const MachineInstr *MI,
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bool UseDefaultDefLatency) const {
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// For the itinerary model, fall back to the old subtarget hook.
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// Allow subtargets to compute Bundle latencies outside the machine model.
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if (hasInstrItineraries() || MI->isBundle() ||
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(!hasInstrSchedModel() && !UseDefaultDefLatency))
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return TII->getInstrLatency(&InstrItins, *MI);
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if (hasInstrSchedModel()) {
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const MCSchedClassDesc *SCDesc = resolveSchedClass(MI);
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if (SCDesc->isValid())
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return computeInstrLatency(*SCDesc);
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}
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return TII->defaultDefLatency(SchedModel, *MI);
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}
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unsigned TargetSchedModel::
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computeOutputLatency(const MachineInstr *DefMI, unsigned DefOperIdx,
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const MachineInstr *DepMI) const {
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if (!SchedModel.isOutOfOrder())
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return 1;
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// Out-of-order processor can dispatch WAW dependencies in the same cycle.
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// Treat predication as a data dependency for out-of-order cpus. In-order
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// cpus do not need to treat predicated writes specially.
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//
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// TODO: The following hack exists because predication passes do not
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// correctly append imp-use operands, and readsReg() strangely returns false
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// for predicated defs.
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Register Reg = DefMI->getOperand(DefOperIdx).getReg();
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const MachineFunction &MF = *DefMI->getMF();
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const TargetRegisterInfo *TRI = MF.getSubtarget().getRegisterInfo();
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if (!DepMI->readsRegister(Reg, TRI) && TII->isPredicated(*DepMI))
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return computeInstrLatency(DefMI);
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// If we have a per operand scheduling model, check if this def is writing
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// an unbuffered resource. If so, it treated like an in-order cpu.
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if (hasInstrSchedModel()) {
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const MCSchedClassDesc *SCDesc = resolveSchedClass(DefMI);
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if (SCDesc->isValid()) {
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for (const MCWriteProcResEntry *PRI = STI->getWriteProcResBegin(SCDesc),
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*PRE = STI->getWriteProcResEnd(SCDesc); PRI != PRE; ++PRI) {
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if (!SchedModel.getProcResource(PRI->ProcResourceIdx)->BufferSize)
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return 1;
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}
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}
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}
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return 0;
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}
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double
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TargetSchedModel::computeReciprocalThroughput(const MachineInstr *MI) const {
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if (hasInstrItineraries()) {
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unsigned SchedClass = MI->getDesc().getSchedClass();
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return MCSchedModel::getReciprocalThroughput(SchedClass,
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*getInstrItineraries());
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}
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if (hasInstrSchedModel())
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return MCSchedModel::getReciprocalThroughput(*STI, *resolveSchedClass(MI));
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return 0.0;
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}
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double
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TargetSchedModel::computeReciprocalThroughput(unsigned Opcode) const {
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unsigned SchedClass = TII->get(Opcode).getSchedClass();
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if (hasInstrItineraries())
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return MCSchedModel::getReciprocalThroughput(SchedClass,
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*getInstrItineraries());
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if (hasInstrSchedModel()) {
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const MCSchedClassDesc &SCDesc = *SchedModel.getSchedClassDesc(SchedClass);
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if (SCDesc.isValid() && !SCDesc.isVariant())
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return MCSchedModel::getReciprocalThroughput(*STI, SCDesc);
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}
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return 0.0;
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}
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double
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TargetSchedModel::computeReciprocalThroughput(const MCInst &MI) const {
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if (hasInstrSchedModel())
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return SchedModel.getReciprocalThroughput(*STI, *TII, MI);
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return computeReciprocalThroughput(MI.getOpcode());
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}
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bool TargetSchedModel::enableIntervals() const {
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if (ForceEnableIntervals)
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return true;
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return SchedModel.EnableIntervals;
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}
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