#include "polly/ZoneAlgo.h"
#include "polly/ScopInfo.h"
#include "polly/Support/GICHelper.h"
#include "polly/Support/ISLTools.h"
#include "polly/Support/VirtualInstruction.h"
#include "llvm/ADT/Statistic.h"
#include "llvm/Support/raw_ostream.h"
#include "polly/Support/PollyDebug.h"
#define DEBUG_TYPE "polly-zone"
STATISTIC(NumIncompatibleArrays, "Number of not zone-analyzable arrays");
STATISTIC(NumCompatibleArrays, "Number of zone-analyzable arrays");
STATISTIC(NumRecursivePHIs, "Number of recursive PHIs");
STATISTIC(NumNormalizablePHIs, "Number of normalizable PHIs");
STATISTIC(NumPHINormialization, "Number of PHI executed normalizations");
using namespace polly;
using namespace llvm;
static isl::union_map computeReachingDefinition(isl::union_map Schedule,
isl::union_map Writes,
bool InclDef, bool InclRedef) {
return computeReachingWrite(Schedule, Writes, false, InclDef, InclRedef);
}
static isl::union_map computeScalarReachingDefinition(isl::union_map Schedule,
isl::union_set Writes,
bool InclDef,
bool InclRedef) {
isl::union_map Defs = isl::union_map::from_domain(Writes);
auto ReachDefs =
computeReachingDefinition(Schedule, Defs, InclDef, InclRedef);
return ReachDefs.curry().range().unwrap();
}
static isl::map computeScalarReachingDefinition(isl::union_map Schedule,
isl::set Writes, bool InclDef,
bool InclRedef) {
isl::space DomainSpace = Writes.get_space();
isl::space ScatterSpace = getScatterSpace(Schedule);
isl::union_map UMap = computeScalarReachingDefinition(
Schedule, isl::union_set(Writes), InclDef, InclRedef);
isl::space ResultSpace = ScatterSpace.map_from_domain_and_range(DomainSpace);
return singleton(UMap, ResultSpace);
}
isl::union_map polly::makeUnknownForDomain(isl::union_set Domain) {
return isl::union_map::from_domain(Domain);
}
static isl::map makeUnknownForDomain(isl::set Domain) {
return isl::map::from_domain(Domain);
}
static bool isMapToUnknown(const isl::map &Map) {
isl::space Space = Map.get_space().range();
return Space.has_tuple_id(isl::dim::set).is_false() &&
Space.is_wrapping().is_false() &&
Space.dim(isl::dim::set).release() == 0;
}
isl::union_map polly::filterKnownValInst(const isl::union_map &UMap) {
isl::union_map Result = isl::union_map::empty(UMap.ctx());
for (isl::map Map : UMap.get_map_list()) {
if (!isMapToUnknown(Map))
Result = Result.unite(Map);
}
return Result;
}
ZoneAlgorithm::ZoneAlgorithm(const char *PassName, Scop *S, LoopInfo *LI)
: PassName(PassName), IslCtx(S->getSharedIslCtx()), S(S), LI(LI),
Schedule(S->getSchedule()) {
auto Domains = S->getDomains();
Schedule = Schedule.intersect_domain(Domains);
ParamSpace = Schedule.get_space();
ScatterSpace = getScatterSpace(Schedule);
}
static bool onlySameValueWrites(ScopStmt *Stmt) {
Value *V = nullptr;
for (auto *MA : *Stmt) {
if (!MA->isLatestArrayKind() || !MA->isMustWrite() ||
!MA->isOriginalArrayKind())
continue;
if (!V) {
V = MA->getAccessValue();
continue;
}
if (V != MA->getAccessValue())
return false;
}
return true;
}
static bool isInsideLoop(Loop *OuterLoop, Loop *InnerLoop) {
return !OuterLoop || OuterLoop->contains(InnerLoop);
}
void ZoneAlgorithm::collectIncompatibleElts(ScopStmt *Stmt,
isl::union_set &IncompatibleElts,
isl::union_set &AllElts) {
auto Stores = makeEmptyUnionMap();
auto Loads = makeEmptyUnionMap();
for (auto *MA : *Stmt) {
if (!MA->isOriginalArrayKind())
continue;
isl::map AccRelMap = getAccessRelationFor(MA);
isl::union_map AccRel = AccRelMap;
auto ArrayElts = isl::set::universe(AccRelMap.get_space().range());
AllElts = AllElts.unite(ArrayElts);
if (MA->isRead()) {
if (!Stores.is_disjoint(AccRel)) {
POLLY_DEBUG(
dbgs() << "Load after store of same element in same statement\n");
OptimizationRemarkMissed R(PassName, "LoadAfterStore",
MA->getAccessInstruction());
R << "load after store of same element in same statement";
R << " (previous stores: " << Stores;
R << ", loading: " << AccRel << ")";
S->getFunction().getContext().diagnose(R);
IncompatibleElts = IncompatibleElts.unite(ArrayElts);
}
Loads = Loads.unite(AccRel);
continue;
}
if (Stmt->isRegionStmt() && !Loads.is_disjoint(AccRel)) {
POLLY_DEBUG(dbgs() << "WRITE in non-affine subregion not supported\n");
OptimizationRemarkMissed R(PassName, "StoreInSubregion",
MA->getAccessInstruction());
R << "store is in a non-affine subregion";
S->getFunction().getContext().diagnose(R);
IncompatibleElts = IncompatibleElts.unite(ArrayElts);
}
if (!Stores.is_disjoint(AccRel) && !onlySameValueWrites(Stmt)) {
POLLY_DEBUG(dbgs() << "WRITE after WRITE to same element\n");
OptimizationRemarkMissed R(PassName, "StoreAfterStore",
MA->getAccessInstruction());
R << "store after store of same element in same statement";
R << " (previous stores: " << Stores;
R << ", storing: " << AccRel << ")";
S->getFunction().getContext().diagnose(R);
IncompatibleElts = IncompatibleElts.unite(ArrayElts);
}
Stores = Stores.unite(AccRel);
}
}
void ZoneAlgorithm::addArrayReadAccess(MemoryAccess *MA) {
assert(MA->isLatestArrayKind());
assert(MA->isRead());
ScopStmt *Stmt = MA->getStatement();
auto AccRel = intersectRange(getAccessRelationFor(MA), CompatibleElts);
AllReads = AllReads.unite(AccRel);
if (LoadInst *Load = dyn_cast_or_null<LoadInst>(MA->getAccessInstruction())) {
isl::map LoadValInst = makeValInst(
Load, Stmt, LI->getLoopFor(Load->getParent()), Stmt->isBlockStmt());
isl::map IncludeElement = AccRel.domain_map().curry();
isl::map EltLoadValInst = LoadValInst.apply_domain(IncludeElement);
AllReadValInst = AllReadValInst.unite(EltLoadValInst);
}
}
isl::union_map ZoneAlgorithm::getWrittenValue(MemoryAccess *MA,
isl::map AccRel) {
if (!MA->isMustWrite())
return {};
Value *AccVal = MA->getAccessValue();
ScopStmt *Stmt = MA->getStatement();
Instruction *AccInst = MA->getAccessInstruction();
auto L = MA->isOriginalArrayKind() ? LI->getLoopFor(AccInst->getParent())
: Stmt->getSurroundingLoop();
if (AccVal &&
AccVal->getType() == MA->getLatestScopArrayInfo()->getElementType() &&
AccRel.is_single_valued().is_true())
return makeNormalizedValInst(AccVal, Stmt, L);
if (auto *Memset = dyn_cast<MemSetInst>(AccInst)) {
auto *WrittenConstant = dyn_cast<Constant>(Memset->getValue());
Type *Ty = MA->getLatestScopArrayInfo()->getElementType();
if (WrittenConstant && WrittenConstant->isZeroValue()) {
Constant *Zero = Constant::getNullValue(Ty);
return makeNormalizedValInst(Zero, Stmt, L);
}
}
return {};
}
void ZoneAlgorithm::addArrayWriteAccess(MemoryAccess *MA) {
assert(MA->isLatestArrayKind());
assert(MA->isWrite());
auto *Stmt = MA->getStatement();
isl::map AccRel = intersectRange(getAccessRelationFor(MA), CompatibleElts);
if (MA->isMustWrite())
AllMustWrites = AllMustWrites.unite(AccRel);
if (MA->isMayWrite())
AllMayWrites = AllMayWrites.unite(AccRel);
isl::union_map WriteValInstance = getWrittenValue(MA, AccRel);
if (WriteValInstance.is_null())
WriteValInstance = makeUnknownForDomain(Stmt);
isl::map IncludeElement = AccRel.domain_map().curry();
isl::union_map EltWriteValInst =
WriteValInstance.apply_domain(IncludeElement);
AllWriteValInst = AllWriteValInst.unite(EltWriteValInst);
}
isl::map ZoneAlgorithm::computeUseToDefFlowDependency(ScopStmt *UseStmt,
ScopStmt *DefStmt) {
isl::map UseScatter = getScatterFor(UseStmt);
isl::map ReachDefZone = getScalarReachingDefinition(DefStmt);
isl::map ReachDefTimepoints =
convertZoneToTimepoints(ReachDefZone, isl::dim::in, false, true);
return UseScatter.apply_range(ReachDefTimepoints);
}
static bool isRecursivePHI(const PHINode *PHI) {
SmallVector<const PHINode *, 8> Worklist;
SmallPtrSet<const PHINode *, 8> Visited;
Worklist.push_back(PHI);
while (!Worklist.empty()) {
const PHINode *Cur = Worklist.pop_back_val();
if (Visited.count(Cur))
continue;
Visited.insert(Cur);
for (const Use &Incoming : Cur->incoming_values()) {
Value *IncomingVal = Incoming.get();
auto *IncomingPHI = dyn_cast<PHINode>(IncomingVal);
if (!IncomingPHI)
continue;
if (IncomingPHI == PHI)
return true;
Worklist.push_back(IncomingPHI);
}
}
return false;
}
isl::union_map ZoneAlgorithm::computePerPHI(const ScopArrayInfo *SAI) {
auto *PHI = cast<PHINode>(SAI->getBasePtr());
auto It = PerPHIMaps.find(PHI);
if (It != PerPHIMaps.end())
return It->second;
isl::set DefinedContext = S->getDefinedBehaviorContext();
if (DefinedContext.is_null())
return {};
assert(SAI->isPHIKind());
isl::union_map PHIWriteScatter = makeEmptyUnionMap();
for (MemoryAccess *MA : S->getPHIIncomings(SAI)) {
isl::map Scatter = getScatterFor(MA);
PHIWriteScatter = PHIWriteScatter.unite(Scatter);
}
isl::map PHIReadScatter = getScatterFor(S->getPHIRead(SAI));
isl::map BeforeRead = beforeScatter(PHIReadScatter, true);
isl::set WriteTimes = singleton(PHIWriteScatter.range(), ScatterSpace);
isl::map PHIWriteTimes = BeforeRead.intersect_range(WriteTimes);
PHIWriteTimes = PHIWriteTimes.intersect_params(DefinedContext);
isl::map LastPerPHIWrites = PHIWriteTimes.lexmax();
isl::union_map Result =
isl::union_map(LastPerPHIWrites).apply_range(PHIWriteScatter.reverse());
assert(!Result.is_single_valued().is_false());
assert(!Result.is_injective().is_false());
PerPHIMaps.insert({PHI, Result});
return Result;
}
isl::union_set ZoneAlgorithm::makeEmptyUnionSet() const {
return isl::union_set::empty(ParamSpace.ctx());
}
isl::union_map ZoneAlgorithm::makeEmptyUnionMap() const {
return isl::union_map::empty(ParamSpace.ctx());
}
void ZoneAlgorithm::collectCompatibleElts() {
isl::union_set AllElts = makeEmptyUnionSet();
isl::union_set IncompatibleElts = makeEmptyUnionSet();
for (auto &Stmt : *S)
collectIncompatibleElts(&Stmt, IncompatibleElts, AllElts);
NumIncompatibleArrays += isl_union_set_n_set(IncompatibleElts.get());
CompatibleElts = AllElts.subtract(IncompatibleElts);
NumCompatibleArrays += isl_union_set_n_set(CompatibleElts.get());
}
isl::map ZoneAlgorithm::getScatterFor(ScopStmt *Stmt) const {
isl::space ResultSpace =
Stmt->getDomainSpace().map_from_domain_and_range(ScatterSpace);
return Schedule.extract_map(ResultSpace);
}
isl::map ZoneAlgorithm::getScatterFor(MemoryAccess *MA) const {
return getScatterFor(MA->getStatement());
}
isl::union_map ZoneAlgorithm::getScatterFor(isl::union_set Domain) const {
return Schedule.intersect_domain(Domain);
}
isl::map ZoneAlgorithm::getScatterFor(isl::set Domain) const {
auto ResultSpace = Domain.get_space().map_from_domain_and_range(ScatterSpace);
auto UDomain = isl::union_set(Domain);
auto UResult = getScatterFor(std::move(UDomain));
auto Result = singleton(std::move(UResult), std::move(ResultSpace));
assert(Result.is_null() || Result.domain().is_equal(Domain) == isl_bool_true);
return Result;
}
isl::set ZoneAlgorithm::getDomainFor(ScopStmt *Stmt) const {
return Stmt->getDomain().remove_redundancies();
}
isl::set ZoneAlgorithm::getDomainFor(MemoryAccess *MA) const {
return getDomainFor(MA->getStatement());
}
isl::map ZoneAlgorithm::getAccessRelationFor(MemoryAccess *MA) const {
auto Domain = getDomainFor(MA);
auto AccRel = MA->getLatestAccessRelation();
return AccRel.intersect_domain(Domain);
}
isl::map ZoneAlgorithm::getDefToTarget(ScopStmt *DefStmt,
ScopStmt *TargetStmt) {
if (TargetStmt == DefStmt)
return isl::map::identity(
getDomainFor(TargetStmt).get_space().map_from_set());
isl::map &Result = DefToTargetCache[std::make_pair(TargetStmt, DefStmt)];
if (Result.is_null() && S->isOriginalSchedule() &&
isInsideLoop(DefStmt->getSurroundingLoop(),
TargetStmt->getSurroundingLoop())) {
isl::set DefDomain = getDomainFor(DefStmt);
isl::set TargetDomain = getDomainFor(TargetStmt);
assert(unsignedFromIslSize(DefDomain.tuple_dim()) <=
unsignedFromIslSize(TargetDomain.tuple_dim()));
Result = isl::map::from_domain_and_range(DefDomain, TargetDomain);
for (unsigned i : rangeIslSize(0, DefDomain.tuple_dim()))
Result = Result.equate(isl::dim::in, i, isl::dim::out, i);
}
if (Result.is_null()) {
Result = computeUseToDefFlowDependency(TargetStmt, DefStmt).reverse();
simplify(Result);
}
return Result;
}
isl::map ZoneAlgorithm::getScalarReachingDefinition(ScopStmt *Stmt) {
auto &Result = ScalarReachDefZone[Stmt];
if (!Result.is_null())
return Result;
auto Domain = getDomainFor(Stmt);
Result = computeScalarReachingDefinition(Schedule, Domain, false, true);
simplify(Result);
return Result;
}
isl::map ZoneAlgorithm::getScalarReachingDefinition(isl::set DomainDef) {
auto DomId = DomainDef.get_tuple_id();
auto *Stmt = static_cast<ScopStmt *>(isl_id_get_user(DomId.get()));
auto StmtResult = getScalarReachingDefinition(Stmt);
return StmtResult.intersect_range(DomainDef);
}
isl::map ZoneAlgorithm::makeUnknownForDomain(ScopStmt *Stmt) const {
return ::makeUnknownForDomain(getDomainFor(Stmt));
}
isl::id ZoneAlgorithm::makeValueId(Value *V) {
if (!V)
return {};
auto &Id = ValueIds[V];
if (Id.is_null()) {
auto Name = getIslCompatibleName("Val_", V, ValueIds.size() - 1,
std::string(), UseInstructionNames);
Id = isl::id::alloc(IslCtx.get(), Name.c_str(), V);
}
return Id;
}
isl::space ZoneAlgorithm::makeValueSpace(Value *V) {
auto Result = ParamSpace.set_from_params();
return Result.set_tuple_id(isl::dim::set, makeValueId(V));
}
isl::set ZoneAlgorithm::makeValueSet(Value *V) {
auto Space = makeValueSpace(V);
return isl::set::universe(Space);
}
isl::map ZoneAlgorithm::makeValInst(Value *Val, ScopStmt *UserStmt, Loop *Scope,
bool IsCertain) {
if (!IsCertain)
return makeUnknownForDomain(UserStmt);
auto DomainUse = getDomainFor(UserStmt);
auto VUse = VirtualUse::create(S, UserStmt, Scope, Val, true);
switch (VUse.getKind()) {
case VirtualUse::Constant:
case VirtualUse::Block:
case VirtualUse::Hoisted:
case VirtualUse::ReadOnly: {
auto ValSet = makeValueSet(Val);
return isl::map::from_domain_and_range(DomainUse, ValSet);
}
case VirtualUse::Synthesizable: {
auto *ScevExpr = VUse.getScevExpr();
auto UseDomainSpace = DomainUse.get_space();
auto ScevId = isl::manage(isl_id_alloc(UseDomainSpace.ctx().get(), nullptr,
const_cast<SCEV *>(ScevExpr)));
auto ScevSpace = UseDomainSpace.drop_dims(isl::dim::set, 0, 0);
ScevSpace = ScevSpace.set_tuple_id(isl::dim::set, ScevId);
auto ValInst =
isl::map::identity(UseDomainSpace.map_from_domain_and_range(ScevSpace));
return ValInst;
}
case VirtualUse::Intra: {
auto ValSet = makeValueSet(Val);
auto ValInstSet = isl::map::from_domain_and_range(DomainUse, ValSet);
auto Result = ValInstSet.domain_map().reverse();
simplify(Result);
return Result;
}
case VirtualUse::Inter: {
auto *Inst = cast<Instruction>(Val);
auto *ValStmt = S->getStmtFor(Inst);
if (!ValStmt)
return ::makeUnknownForDomain(DomainUse);
auto UsedInstance = getDefToTarget(ValStmt, UserStmt).reverse();
auto ValSet = makeValueSet(Val);
auto ValInstSet = isl::map::from_domain_and_range(DomainUse, ValSet);
auto Result = UsedInstance.range_product(ValInstSet);
simplify(Result);
return Result;
}
}
llvm_unreachable("Unhandled use type");
}
static isl::union_map normalizeValInst(isl::union_map Input,
const DenseSet<PHINode *> &ComputedPHIs,
isl::union_map NormalizeMap) {
isl::union_map Result = isl::union_map::empty(Input.ctx());
for (isl::map Map : Input.get_map_list()) {
isl::space Space = Map.get_space();
isl::space RangeSpace = Space.range();
if (!RangeSpace.is_wrapping()) {
Result = Result.unite(Map);
continue;
}
auto *PHI = dyn_cast<PHINode>(static_cast<Value *>(
RangeSpace.unwrap().get_tuple_id(isl::dim::out).get_user()));
if (!ComputedPHIs.count(PHI)) {
Result = Result.unite(Map);
continue;
}
isl::union_map Mapped = isl::union_map(Map).apply_range(NormalizeMap);
Result = Result.unite(Mapped);
NumPHINormialization++;
}
return Result;
}
isl::union_map ZoneAlgorithm::makeNormalizedValInst(llvm::Value *Val,
ScopStmt *UserStmt,
llvm::Loop *Scope,
bool IsCertain) {
isl::map ValInst = makeValInst(Val, UserStmt, Scope, IsCertain);
isl::union_map Normalized =
normalizeValInst(ValInst, ComputedPHIs, NormalizeMap);
return Normalized;
}
bool ZoneAlgorithm::isCompatibleAccess(MemoryAccess *MA) {
if (!MA)
return false;
if (!MA->isLatestArrayKind())
return false;
Instruction *AccInst = MA->getAccessInstruction();
return isa<StoreInst>(AccInst) || isa<LoadInst>(AccInst);
}
bool ZoneAlgorithm::isNormalizable(MemoryAccess *MA) {
assert(MA->isRead());
if (!MA->isOriginalPHIKind())
return false;
auto *PHI = cast<PHINode>(MA->getAccessInstruction());
if (RecursivePHIs.count(PHI))
return false;
const ScopArrayInfo *SAI = MA->getOriginalScopArrayInfo();
auto Incomings = S->getPHIIncomings(SAI);
for (MemoryAccess *Incoming : Incomings) {
if (Incoming->getIncoming().size() != 1)
return false;
}
return true;
}
isl::boolean ZoneAlgorithm::isNormalized(isl::map Map) {
isl::space Space = Map.get_space();
isl::space RangeSpace = Space.range();
isl::boolean IsWrapping = RangeSpace.is_wrapping();
if (!IsWrapping.is_true())
return !IsWrapping;
isl::space Unwrapped = RangeSpace.unwrap();
isl::id OutTupleId = Unwrapped.get_tuple_id(isl::dim::out);
if (OutTupleId.is_null())
return isl::boolean();
auto *PHI = dyn_cast<PHINode>(static_cast<Value *>(OutTupleId.get_user()));
if (!PHI)
return true;
isl::id InTupleId = Unwrapped.get_tuple_id(isl::dim::in);
if (OutTupleId.is_null())
return isl::boolean();
auto *IncomingStmt = static_cast<ScopStmt *>(InTupleId.get_user());
MemoryAccess *PHIRead = IncomingStmt->lookupPHIReadOf(PHI);
if (!isNormalizable(PHIRead))
return true;
return false;
}
isl::boolean ZoneAlgorithm::isNormalized(isl::union_map UMap) {
isl::boolean Result = true;
for (isl::map Map : UMap.get_map_list()) {
Result = isNormalized(Map);
if (Result.is_true())
continue;
break;
}
return Result;
}
void ZoneAlgorithm::computeCommon() {
AllReads = makeEmptyUnionMap();
AllMayWrites = makeEmptyUnionMap();
AllMustWrites = makeEmptyUnionMap();
AllWriteValInst = makeEmptyUnionMap();
AllReadValInst = makeEmptyUnionMap();
NormalizeMap = makeEmptyUnionMap();
ComputedPHIs.clear();
for (auto &Stmt : *S) {
for (auto *MA : Stmt) {
if (!MA->isLatestArrayKind())
continue;
if (MA->isRead())
addArrayReadAccess(MA);
if (MA->isWrite())
addArrayWriteAccess(MA);
}
}
AllWrites = AllMustWrites.unite(AllMayWrites);
WriteReachDefZone =
computeReachingDefinition(Schedule, AllWrites, false, true);
simplify(WriteReachDefZone);
}
void ZoneAlgorithm::computeNormalizedPHIs() {
for (ScopStmt &Stmt : *S) {
for (MemoryAccess *MA : Stmt) {
if (!MA->isPHIKind())
continue;
if (!MA->isRead())
continue;
auto *PHI = cast<PHINode>(MA->getAccessInstruction());
if (isRecursivePHI(PHI)) {
NumRecursivePHIs++;
RecursivePHIs.insert(PHI);
}
}
}
isl::union_map AllPHIMaps = makeEmptyUnionMap();
DenseSet<PHINode *> AllPHIs;
for (ScopStmt &Stmt : *S) {
for (MemoryAccess *MA : Stmt) {
if (!MA->isOriginalPHIKind())
continue;
if (!MA->isRead())
continue;
if (!isNormalizable(MA))
continue;
auto *PHI = cast<PHINode>(MA->getAccessInstruction());
const ScopArrayInfo *SAI = MA->getOriginalScopArrayInfo();
isl::union_map PerPHI = computePerPHI(SAI);
if (PerPHI.is_null())
continue;
isl::map PHIValInst = makeValInst(PHI, &Stmt, Stmt.getSurroundingLoop());
isl::union_map IncomingValInsts = makeEmptyUnionMap();
for (MemoryAccess *MA : S->getPHIIncomings(SAI)) {
ScopStmt *IncomingStmt = MA->getStatement();
auto Incoming = MA->getIncoming();
assert(Incoming.size() == 1 && "The incoming value must be "
"representable by something else than "
"the PHI itself");
Value *IncomingVal = Incoming[0].second;
isl::map IncomingValInst = makeValInst(
IncomingVal, IncomingStmt, IncomingStmt->getSurroundingLoop());
IncomingValInsts = IncomingValInsts.unite(IncomingValInst);
}
isl::union_map PHIMap =
PerPHI.apply_domain(PHIValInst).apply_range(IncomingValInsts);
assert(!PHIMap.is_single_valued().is_false());
PHIMap = normalizeValInst(PHIMap, AllPHIs, AllPHIMaps);
AllPHIs.insert(PHI);
AllPHIMaps = normalizeValInst(AllPHIMaps, AllPHIs, PHIMap);
AllPHIMaps = AllPHIMaps.unite(PHIMap);
NumNormalizablePHIs++;
}
}
simplify(AllPHIMaps);
ComputedPHIs = AllPHIs;
NormalizeMap = AllPHIMaps;
assert(NormalizeMap.is_null() || isNormalized(NormalizeMap));
}
void ZoneAlgorithm::printAccesses(llvm::raw_ostream &OS, int Indent) const {
OS.indent(Indent) << "After accesses {\n";
for (auto &Stmt : *S) {
OS.indent(Indent + 4) << Stmt.getBaseName() << "\n";
for (auto *MA : Stmt)
MA->print(OS);
}
OS.indent(Indent) << "}\n";
}
isl::union_map ZoneAlgorithm::computeKnownFromMustWrites() const {
isl::union_map EltReachdDef = distributeDomain(WriteReachDefZone.curry());
isl::union_map AllKnownWriteValInst = filterKnownValInst(AllWriteValInst);
return EltReachdDef.apply_range(AllKnownWriteValInst);
}
isl::union_map ZoneAlgorithm::computeKnownFromLoad() const {
isl::union_set AllAccessedElts = AllReads.range().unite(AllWrites.range());
isl::union_map EltZoneUniverse = isl::union_map::from_domain_and_range(
AllAccessedElts, isl::set::universe(ScatterSpace));
isl::union_set NonReachDef =
EltZoneUniverse.wrap().subtract(WriteReachDefZone.domain());
isl::union_map DefZone =
WriteReachDefZone.unite(isl::union_map::from_domain(NonReachDef));
isl::union_map EltZoneElt = EltZoneUniverse.domain_map();
isl::union_map DefZoneEltDefId = EltZoneElt.range_product(DefZone);
isl::union_map EltDefZone = DefZone.curry();
isl::union_map EltZoneEltDefid = distributeDomain(EltDefZone);
isl::union_map Reads = AllReads.range_product(Schedule).reverse();
isl::union_map ReadsElt = EltZoneElt.range_product(Reads);
isl::union_map ScatterKnown = ReadsElt.apply_range(AllReadValInst);
isl::union_map DefidKnown =
DefZoneEltDefId.apply_domain(ScatterKnown).reverse();
return DefZoneEltDefId.apply_range(DefidKnown);
}
isl::union_map ZoneAlgorithm::computeKnown(bool FromWrite,
bool FromRead) const {
isl::union_map Result = makeEmptyUnionMap();
if (FromWrite)
Result = Result.unite(computeKnownFromMustWrites());
if (FromRead)
Result = Result.unite(computeKnownFromLoad());
simplify(Result);
return Result;
}