14#ifndef LLVM_ANALYSIS_BLOCKFREQUENCYINFOIMPL_H
15#define LLVM_ANALYSIS_BLOCKFREQUENCYINFOIMPL_H
52#define DEBUG_TYPE "block-freq"
61class BranchProbabilityInfo;
65class MachineBasicBlock;
66class MachineBranchProbabilityInfo;
99 return BlockMass(std::numeric_limits<uint64_t>::max());
104 bool isFull()
const {
return Mass == std::numeric_limits<uint64_t>::max(); }
114 Mass = Sum < Mass ? std::numeric_limits<uint64_t>::max() : Sum;
124 Mass = Diff > Mass ? 0 : Diff;
129 Mass =
P.scale(Mass);
207 return std::numeric_limits<uint32_t>::max() - 1;
238 template <
class It1,
class It2>
243 Nodes.insert(
Nodes.end(), FirstOther, LastOther);
295 return Loop->Parent->Parent;
313 return L ? L->getHeader() :
Node;
320 while (L->Parent && L->Parent->IsPackaged)
335 return Loop->Parent->Mass;
465 std::list<LoopData>::iterator Insert);
523 std::optional<uint64_t>
525 bool AllowSynthetic =
false)
const;
526 std::optional<uint64_t>
528 bool AllowSynthetic =
false)
const;
539namespace bfi_detail {
559template <
class BlockT,
class BFIImplT>
570 assert(BB &&
"Unexpected nullptr");
571 auto MachineName =
"BB" +
Twine(BB->getNumber());
572 if (BB->getBasicBlock())
573 return (MachineName +
"[" + BB->getName() +
"]").str();
574 return MachineName.str();
578 assert(BB &&
"Unexpected nullptr");
609 using iterator = std::deque<const IrrNode *>::const_iterator;
630 template <
class BlockEdgesAdder>
632 BlockEdgesAdder addBlockEdges) :
BFI(
BFI) {
636 template <
class BlockEdgesAdder>
637 void initialize(
const BFIBase::LoopData *OuterLoop,
638 BlockEdgesAdder addBlockEdges);
648 template <
class BlockEdgesAdder>
650 BlockEdgesAdder addBlockEdges);
652 const BFIBase::LoopData *OuterLoop);
655template <
class BlockEdgesAdder>
657 BlockEdgesAdder addBlockEdges) {
660 for (
auto N : OuterLoop->
Nodes)
664 for (
uint32_t Index = 0; Index <
BFI.Working.size(); ++Index)
665 addEdges(Index, OuterLoop, addBlockEdges);
670template <
class BlockEdgesAdder>
673 BlockEdgesAdder addBlockEdges) {
678 const auto &Working =
BFI.Working[
Node.Index];
680 if (Working.isAPackage())
681 for (
const auto &
I : Working.Loop->Exits)
684 addBlockEdges(*
this, Irr, OuterLoop);
846 using BranchProbabilityInfoT =
852 using BFICallbackVH =
855 const BranchProbabilityInfoT *BPI =
nullptr;
856 const LoopInfoT *LI =
nullptr;
857 const FunctionT *F =
nullptr;
860 std::vector<BFICallbackVH> RPOT;
863 BlockNode getNode(
const BlockT *BB)
const {
return Nodes.lookup(BB); }
867 return RPOT[
Node.Index];
873 void initializeRPOT();
882 void initializeLoops();
910 bool tryToComputeMassInFunction();
924 void computeIrreducibleMass(
LoopData *OuterLoop,
925 std::list<LoopData>::iterator Insert);
936 void computeMassInLoops();
944 void computeMassInFunction();
946 std::string getBlockName(
const BlockNode &
Node)
const override {
960 bool needIterativeInference()
const;
963 void applyIterativeInference();
965 using ProbMatrixType = std::vector<std::vector<std::pair<size_t, Scaled64>>>;
968 void iterativeInference(
const ProbMatrixType &ProbMatrix,
969 std::vector<Scaled64> &Freq)
const;
973 void findReachableBlocks(std::vector<const BlockT *> &Blocks)
const;
977 void initTransitionProbabilities(
978 const std::vector<const BlockT *> &Blocks,
980 ProbMatrixType &ProbMatrix)
const;
985 Scaled64 discrepancy(
const ProbMatrixType &ProbMatrix,
986 const std::vector<Scaled64> &Freq)
const;
994 void calculate(
const FunctionT &F,
const BranchProbabilityInfoT &BPI,
995 const LoopInfoT &LI);
1003 std::optional<uint64_t>
1005 bool AllowSynthetic =
false)
const {
1010 std::optional<uint64_t>
1012 bool AllowSynthetic =
false)
const {
1027 auto It = Nodes.find(BB);
1028 assert(It != Nodes.end() &&
"cannot forget block that was never seen");
1029 RPOT[It->second.Index] = {};
1037 const BranchProbabilityInfoT &
getBPI()
const {
return *BPI; }
1059template <
class BFIImplT>
1083template <
class BFIImplT>
1098 const BranchProbabilityInfoT &BPI,
1099 const LoopInfoT &LI) {
1112 <<
"\n================="
1113 << std::string(F.getName().size(),
'=') <<
"\n");
1119 computeMassInLoops();
1120 computeMassInFunction();
1124 if (needIterativeInference())
1125 applyIterativeInference();
1132 for (
const BlockT &BB : F)
1133 if (!Nodes.count(&BB))
1141 auto [It, Inserted] = Nodes.try_emplace(BB);
1149 It->second = NewNode;
1150 Freqs.emplace_back();
1151 RPOT.emplace_back(BB,
this);
1156template <
class BT>
void BlockFrequencyInfoImpl<BT>::initializeRPOT() {
1157 const BlockT *Entry = &
F->front();
1158 RPOT.reserve(
F->size());
1160 RPOT.emplace_back(BB,
this);
1161 std::reverse(RPOT.begin(), RPOT.end());
1163 assert(RPOT.size() - 1 <= BlockNode::getMaxIndex() &&
1164 "More nodes in function than Block Frequency Info supports");
1168 BlockNode
Node = BlockNode(Idx);
1173 Working.reserve(RPOT.size());
1174 for (
size_t Index = 0; Index < RPOT.size(); ++Index)
1175 Working.emplace_back(Index);
1176 Freqs.resize(RPOT.size());
1179template <
class BT>
void BlockFrequencyInfoImpl<BT>::initializeLoops() {
1185 std::deque<std::pair<const LoopT *, LoopData *>> Q;
1186 for (
const LoopT *L : *LI)
1187 Q.emplace_back(L,
nullptr);
1188 while (!Q.empty()) {
1189 const LoopT *
Loop = Q.front().first;
1190 LoopData *Parent = Q.front().second;
1194 assert(Header.isValid());
1196 Loops.emplace_back(Parent, Header);
1197 Working[Header.Index].Loop = &
Loops.back();
1200 for (
const LoopT *L : *
Loop)
1201 Q.emplace_back(L, &
Loops.back());
1206 for (
size_t Index = 0;
Index < RPOT.size(); ++
Index) {
1208 if (Working[Index].isLoopHeader()) {
1209 LoopData *ContainingLoop = Working[
Index].getContainingLoop();
1211 ContainingLoop->Nodes.push_back(Index);
1215 const LoopT *
Loop = LI->getLoopFor(RPOT[Index]);
1221 assert(Header.isValid());
1222 const auto &HeaderData = Working[Header.Index];
1223 assert(HeaderData.isLoopHeader());
1225 Working[
Index].Loop = HeaderData.Loop;
1226 HeaderData.Loop->Nodes.push_back(Index);
1232template <
class BT>
void BlockFrequencyInfoImpl<BT>::computeMassInLoops() {
1234 for (
auto L =
Loops.rbegin(),
E =
Loops.rend(); L !=
E; ++L) {
1235 if (computeMassInLoop(*L))
1237 auto Next = std::next(L);
1238 computeIrreducibleMass(&*L,
L.base());
1239 L = std::prev(
Next);
1240 if (computeMassInLoop(*L))
1247bool BlockFrequencyInfoImpl<BT>::computeMassInLoop(LoopData &
Loop) {
1251 if (
Loop.isIrreducible()) {
1254 unsigned NumHeadersWithWeight = 0;
1255 std::optional<uint64_t> MinHeaderWeight;
1258 for (uint32_t
H = 0;
H <
Loop.NumHeaders; ++
H) {
1259 auto &HeaderNode =
Loop.Nodes[
H];
1260 const BlockT *
Block = getBlock(HeaderNode);
1261 IsIrrLoopHeader.set(
Loop.Nodes[
H].Index);
1262 std::optional<uint64_t> HeaderWeight =
Block->getIrrLoopHeaderWeight();
1263 if (!HeaderWeight) {
1266 HeadersWithoutWeight.insert(
H);
1270 <<
" has irr loop header weight " << *HeaderWeight
1272 NumHeadersWithWeight++;
1273 uint64_t HeaderWeightValue = *HeaderWeight;
1274 if (!MinHeaderWeight || HeaderWeightValue < MinHeaderWeight)
1275 MinHeaderWeight = HeaderWeightValue;
1276 if (HeaderWeightValue) {
1277 Dist.addLocal(HeaderNode, HeaderWeightValue);
1286 if (!MinHeaderWeight)
1287 MinHeaderWeight = 1;
1288 for (uint32_t
H : HeadersWithoutWeight) {
1289 auto &HeaderNode =
Loop.Nodes[
H];
1290 assert(!getBlock(HeaderNode)->getIrrLoopHeaderWeight() &&
1291 "Shouldn't have a weight metadata");
1292 uint64_t MinWeight = *MinHeaderWeight;
1296 Dist.addLocal(HeaderNode, MinWeight);
1298 distributeIrrLoopHeaderMass(Dist);
1299 for (
const BlockNode &M :
Loop.Nodes)
1300 if (!propagateMassToSuccessors(&
Loop, M))
1302 if (NumHeadersWithWeight == 0)
1304 adjustLoopHeaderMass(
Loop);
1306 Working[
Loop.
getHeader().Index].getMass() = BlockMass::getFull();
1309 for (
const BlockNode &M :
Loop.members())
1310 if (!propagateMassToSuccessors(&
Loop, M))
1315 computeLoopScale(
Loop);
1321bool BlockFrequencyInfoImpl<BT>::tryToComputeMassInFunction() {
1324 assert(!Working.empty() &&
"no blocks in function");
1325 assert(!Working[0].isLoopHeader() &&
"entry block is a loop header");
1327 Working[0].getMass() = BlockMass::getFull();
1328 for (
size_t i = 0, n = RPOT.size(); i != n; ++i) {
1330 if (Working[i].isPackaged())
1333 if (!propagateMassToSuccessors(
nullptr, BlockNode(i)))
1339template <
class BT>
void BlockFrequencyInfoImpl<BT>::computeMassInFunction() {
1340 if (tryToComputeMassInFunction())
1342 computeIrreducibleMass(
nullptr,
Loops.begin());
1343 if (tryToComputeMassInFunction())
1349bool BlockFrequencyInfoImpl<BT>::needIterativeInference()
const {
1352 if (!
F->getFunction().hasProfileData())
1356 for (
auto L =
Loops.rbegin(),
E =
Loops.rend(); L !=
E; ++L) {
1357 if (
L->isIrreducible())
1363template <
class BT>
void BlockFrequencyInfoImpl<BT>::applyIterativeInference() {
1368 std::vector<const BlockT *> ReachableBlocks;
1369 findReachableBlocks(ReachableBlocks);
1370 if (ReachableBlocks.empty())
1377 auto Freq = std::vector<Scaled64>(ReachableBlocks.size());
1379 for (
size_t I = 0;
I < ReachableBlocks.size();
I++) {
1380 const BlockT *BB = ReachableBlocks[
I];
1382 Freq[
I] = getFloatingBlockFreq(BB);
1385 assert(!SumFreq.isZero() &&
"empty initial block frequencies");
1387 LLVM_DEBUG(
dbgs() <<
"Applying iterative inference for " <<
F->getName()
1388 <<
" with " << ReachableBlocks.size() <<
" blocks\n");
1391 for (
auto &
Value : Freq) {
1397 ProbMatrixType ProbMatrix;
1398 initTransitionProbabilities(ReachableBlocks, BlockIndex, ProbMatrix);
1401 iterativeInference(ProbMatrix, Freq);
1404 for (
const BlockT &BB : *
F) {
1406 if (!
Node.isValid())
1408 if (
auto It = BlockIndex.find(&BB); It != BlockIndex.end())
1409 Freqs[
Node.Index].Scaled = Freq[It->second];
1411 Freqs[
Node.Index].Scaled = Scaled64::getZero();
1416void BlockFrequencyInfoImpl<BT>::iterativeInference(
1417 const ProbMatrixType &ProbMatrix, std::vector<Scaled64> &Freq)
const {
1419 "incorrectly specified precision");
1421 const auto Precision =
1427 << discrepancy(ProbMatrix, Freq).
toString() <<
"\n");
1431 auto Successors = std::vector<std::vector<size_t>>(Freq.size());
1432 for (
size_t I = 0;
I < Freq.size();
I++) {
1433 for (
const auto &Jump : ProbMatrix[
I]) {
1434 Successors[Jump.first].push_back(
I);
1442 auto IsActive =
BitVector(Freq.size(),
false);
1443 std::queue<size_t> ActiveSet;
1444 for (
size_t I = 0;
I < Freq.size();
I++) {
1453 while (It++ < MaxIterations && !ActiveSet.empty()) {
1454 size_t I = ActiveSet.front();
1456 IsActive[
I] =
false;
1462 Scaled64 OneMinusSelfProb = Scaled64::getOne();
1463 for (
const auto &Jump : ProbMatrix[
I]) {
1464 if (Jump.first ==
I) {
1465 OneMinusSelfProb -= Jump.second;
1467 NewFreq += Freq[Jump.first] * Jump.second;
1470 if (OneMinusSelfProb != Scaled64::getOne())
1471 NewFreq /= OneMinusSelfProb;
1475 auto Change = Freq[
I] >= NewFreq ? Freq[
I] - NewFreq : NewFreq - Freq[
I];
1476 if (Change > Precision) {
1479 for (
size_t Succ : Successors[
I]) {
1480 if (!IsActive[Succ]) {
1481 ActiveSet.push(Succ);
1482 IsActive[Succ] =
true;
1491 LLVM_DEBUG(
dbgs() <<
" Completed " << It <<
" inference iterations"
1492 <<
format(
" (%0.0f per block)",
double(It) / Freq.size())
1496 << discrepancy(ProbMatrix, Freq).
toString() <<
"\n");
1501void BlockFrequencyInfoImpl<BT>::findReachableBlocks(
1502 std::vector<const BlockT *> &Blocks)
const {
1505 std::queue<const BlockT *>
Queue;
1507 const BlockT *
Entry = &
F->front();
1509 Reachable.insert(Entry);
1510 while (!
Queue.empty()) {
1511 const BlockT *SrcBB =
Queue.front();
1514 auto EP = BPI->getEdgeProbability(SrcBB, DstBB);
1517 if (Reachable.insert(DstBB).second)
1525 for (
const BlockT &BB : *
F) {
1528 if (!HasSucc && Reachable.count(&BB)) {
1530 InverseReachable.insert(&BB);
1533 while (!
Queue.empty()) {
1534 const BlockT *SrcBB =
Queue.front();
1537 auto EP = BPI->getEdgeProbability(DstBB, SrcBB);
1540 if (InverseReachable.insert(DstBB).second)
1546 Blocks.reserve(
F->size());
1547 for (
const BlockT &BB : *
F) {
1548 if (Reachable.count(&BB) && InverseReachable.count(&BB)) {
1549 Blocks.push_back(&BB);
1555void BlockFrequencyInfoImpl<BT>::initTransitionProbabilities(
1556 const std::vector<const BlockT *> &Blocks,
1558 ProbMatrixType &ProbMatrix)
const {
1559 const size_t NumBlocks = Blocks.size();
1560 auto Succs = std::vector<std::vector<std::pair<size_t, Scaled64>>>(NumBlocks);
1561 auto SumProb = std::vector<Scaled64>(NumBlocks);
1564 for (
size_t Src = 0; Src < NumBlocks; Src++) {
1565 const BlockT *BB = Blocks[Src];
1569 auto BlockIndexIt = BlockIndex.find(
SI);
1570 if (BlockIndexIt == BlockIndex.end())
1573 if (!UniqueSuccs.insert(
SI).second)
1576 auto EP = BPI->getEdgeProbability(BB,
SI);
1581 Scaled64::getFraction(EP.getNumerator(), EP.getDenominator());
1582 size_t Dst = BlockIndexIt->second;
1583 Succs[Src].push_back(std::make_pair(Dst, EdgeProb));
1584 SumProb[Src] += EdgeProb;
1589 ProbMatrix = ProbMatrixType(NumBlocks);
1590 for (
size_t Src = 0; Src < NumBlocks; Src++) {
1592 if (Succs[Src].
empty())
1595 assert(!SumProb[Src].
isZero() &&
"Zero sum probability of non-exit block");
1596 for (
auto &Jump : Succs[Src]) {
1597 size_t Dst = Jump.first;
1598 Scaled64 Prob = Jump.second;
1599 ProbMatrix[Dst].push_back(std::make_pair(Src, Prob / SumProb[Src]));
1604 size_t EntryIdx = BlockIndex.find(&
F->front())->second;
1605 for (
size_t Src = 0; Src < NumBlocks; Src++) {
1606 if (Succs[Src].
empty()) {
1607 ProbMatrix[EntryIdx].push_back(std::make_pair(Src, Scaled64::getOne()));
1615 const ProbMatrixType &ProbMatrix,
const std::vector<Scaled64> &Freq)
const {
1616 assert(Freq[0] > 0 &&
"Incorrectly computed frequency of the entry block");
1617 Scaled64 Discrepancy;
1618 for (
size_t I = 0;
I < ProbMatrix.size();
I++) {
1620 for (
const auto &Jump : ProbMatrix[
I]) {
1621 Sum += Freq[Jump.first] * Jump.second;
1623 Discrepancy += Freq[
I] >= Sum ? Freq[
I] - Sum : Sum - Freq[
I];
1626 return Discrepancy / Freq[0];
1631void BlockFrequencyInfoImpl<BT>::computeIrreducibleMass(
1632 LoopData *OuterLoop, std::list<LoopData>::iterator Insert) {
1634 if (OuterLoop)
dbgs()
1635 <<
"loop: " << getLoopName(*OuterLoop) <<
"\n";
1636 else dbgs() <<
"function\n");
1640 auto addBlockEdges = [&](IrreducibleGraph &
G, IrreducibleGraph::IrrNode &Irr,
1641 const LoopData *OuterLoop) {
1642 const BlockT *BB = RPOT[Irr.Node.Index];
1644 G.addEdge(Irr,
getNode(Succ), OuterLoop);
1646 IrreducibleGraph
G(*
this, OuterLoop, addBlockEdges);
1648 for (
auto &L : analyzeIrreducible(
G, OuterLoop, Insert))
1649 computeMassInLoop(L);
1653 updateLoopWithIrreducible(*OuterLoop);
1663BlockFrequencyInfoImpl<BT>::propagateMassToSuccessors(LoopData *OuterLoop,
1664 const BlockNode &
Node) {
1668 if (
auto *Loop = Working[
Node.Index].getPackagedLoop()) {
1669 assert(Loop != OuterLoop &&
"Cannot propagate mass in a packaged loop");
1670 if (!addLoopSuccessorsToDist(OuterLoop, *Loop, Dist))
1674 const BlockT *BB = getBlock(Node);
1687 distributeMass(Node, OuterLoop, Dist);
1695 OS <<
"block-frequency-info: " << F->getName() <<
"\n";
1696 for (
const BlockT &BB : *F) {
1702 F->getFunction(), getNode(&BB)))
1704 if (std::optional<uint64_t> IrrLoopHeaderWeight =
1705 BB.getIrrLoopHeaderWeight())
1706 OS <<
", irr_loop_header_weight = " << *IrrLoopHeaderWeight;
1721 for (
auto &Entry : Nodes) {
1722 const BlockT *BB = Entry.first;
1724 ValidNodes[BB] = Entry.second;
1727 for (
auto &Entry :
Other.Nodes) {
1728 const BlockT *BB = Entry.first;
1730 OtherValidNodes[BB] = Entry.second;
1733 unsigned NumValidNodes = ValidNodes.
size();
1734 unsigned NumOtherValidNodes = OtherValidNodes.
size();
1735 if (NumValidNodes != NumOtherValidNodes) {
1737 dbgs() <<
"Number of blocks mismatch: " << NumValidNodes <<
" vs "
1738 << NumOtherValidNodes <<
"\n";
1740 for (
auto &Entry : ValidNodes) {
1741 const BlockT *BB = Entry.first;
1743 if (
auto It = OtherValidNodes.
find(BB); It != OtherValidNodes.
end()) {
1746 const auto &OtherFreq =
Other.Freqs[OtherNode.
Index];
1747 if (Freq.Integer != OtherFreq.Integer) {
1750 << Freq.Integer <<
" vs " << OtherFreq.Integer <<
"\n";
1755 <<
Node.Index <<
" does not exist in Other.\n";
1764 dbgs() <<
"Other\n";
1767 assert(Match &&
"BFI mismatch");
1775template <
class BlockFrequencyInfoT,
class BranchProbabilityInfoT>
1788 return G->getFunction()->getName();
1792 unsigned HotPercentThreshold = 0) {
1794 if (!HotPercentThreshold)
1804 std::max(
MaxFrequency, Graph->getBlockFreq(
N).getFrequency());
1820 GVDAGType GType,
int layout_order = -1) {
1824 if (layout_order != -1)
1825 OS <<
Node->getName() <<
"[" << layout_order <<
"] : ";
1827 OS <<
Node->getName() <<
" : ";
1833 OS << Graph->getBlockFreq(
Node).getFrequency();
1836 auto Count = Graph->getBlockProfileCount(
Node);
1845 "never reach this point.");
1851 const BlockFrequencyInfoT *BFI,
1852 const BranchProbabilityInfoT *BPI,
1853 unsigned HotPercentThreshold = 0) {
1865 if (HotPercentThreshold) {
1870 if (EFreq >= HotFreq)
1871 OS <<
",color=\"red\"";
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
static msgpack::DocNode getNode(msgpack::DocNode DN, msgpack::Type Type, MCValue Val)
This file implements the BitVector class.
static GCRegistry::Add< StatepointGC > D("statepoint-example", "an example strategy for statepoint")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
This file defines the DenseMap class.
This file defines the DenseSet and SmallDenseSet classes.
This file defines the little GraphTraits<X> template class that should be specialized by classes that...
static bool isZero(Value *V, const DataLayout &DL, DominatorTree *DT, AssumptionCache *AC)
Branch Probability Basic Block static false std::string getBlockName(const MachineBasicBlock *BB)
Helper to print the name of a MBB.
This file builds on the ADT/GraphTraits.h file to build a generic graph post order iterator.
This file defines the SmallPtrSet class.
This file defines the SmallVector class.
This file defines the SparseBitVector class.
static TableGen::Emitter::OptClass< SkeletonEmitter > X("gen-skeleton-class", "Generate example skeleton class")
Value handle that asserts if the Value is deleted.
LLVM Basic Block Representation.
Base class for BlockFrequencyInfoImpl.
std::vector< WorkingData > Working
Loop data: see initializeLoops().
virtual ~BlockFrequencyInfoImplBase()=default
Virtual destructor.
std::list< LoopData > Loops
Indexed information about loops.
bool addLoopSuccessorsToDist(const LoopData *OuterLoop, LoopData &Loop, Distribution &Dist)
Add all edges out of a packaged loop to the distribution.
ScaledNumber< uint64_t > Scaled64
std::string getLoopName(const LoopData &Loop) const
bool isIrrLoopHeader(const BlockNode &Node)
void computeLoopScale(LoopData &Loop)
Compute the loop scale for a loop.
bfi_detail::BlockMass BlockMass
void packageLoop(LoopData &Loop)
Package up a loop.
virtual raw_ostream & print(raw_ostream &OS) const
virtual std::string getBlockName(const BlockNode &Node) const
void finalizeMetrics()
Finalize frequency metrics.
void setBlockFreq(const BlockNode &Node, BlockFrequency Freq)
BlockFrequency getEntryFreq() const
void updateLoopWithIrreducible(LoopData &OuterLoop)
Update a loop after packaging irreducible SCCs inside of it.
void clear()
Clear all memory.
std::optional< uint64_t > getBlockProfileCount(const Function &F, const BlockNode &Node, bool AllowSynthetic=false) const
BlockFrequency getBlockFreq(const BlockNode &Node) const
void distributeIrrLoopHeaderMass(Distribution &Dist)
iterator_range< std::list< LoopData >::iterator > analyzeIrreducible(const bfi_detail::IrreducibleGraph &G, LoopData *OuterLoop, std::list< LoopData >::iterator Insert)
Analyze irreducible SCCs.
bool addToDist(Distribution &Dist, const LoopData *OuterLoop, const BlockNode &Pred, const BlockNode &Succ, uint64_t Weight)
Add an edge to the distribution.
void unwrapLoops()
Unwrap loops.
std::optional< uint64_t > getProfileCountFromFreq(const Function &F, BlockFrequency Freq, bool AllowSynthetic=false) const
Scaled64 getFloatingBlockFreq(const BlockNode &Node) const
void distributeMass(const BlockNode &Source, LoopData *OuterLoop, Distribution &Dist)
Distribute mass according to a distribution.
SparseBitVector IsIrrLoopHeader
Whether each block is an irreducible loop header.
std::vector< FrequencyData > Freqs
Data about each block. This is used downstream.
void adjustLoopHeaderMass(LoopData &Loop)
Adjust the mass of all headers in an irreducible loop.
bool isIrrLoopHeader(const BlockT *BB)
std::optional< uint64_t > getBlockProfileCount(const Function &F, const BlockT *BB, bool AllowSynthetic=false) const
const BranchProbabilityInfoT & getBPI() const
const FunctionT * getFunction() const
void verifyMatch(BlockFrequencyInfoImpl< BT > &Other) const
Scaled64 getFloatingBlockFreq(const BlockT *BB) const
std::optional< uint64_t > getProfileCountFromFreq(const Function &F, BlockFrequency Freq, bool AllowSynthetic=false) const
void calculate(const FunctionT &F, const BranchProbabilityInfoT &BPI, const LoopInfoT &LI)
void setBlockFreq(const BlockT *BB, BlockFrequency Freq)
BlockFrequencyInfoImpl()=default
raw_ostream & print(raw_ostream &OS) const override
Print the frequencies for the current function.
void forgetBlock(const BlockT *BB)
BlockFrequency getBlockFreq(const BlockT *BB) const
Analysis providing branch probability information.
static LLVM_ABI BranchProbability getBranchProbability(uint64_t Numerator, uint64_t Denominator)
static uint32_t getDenominator()
uint32_t getNumerator() const
CallbackVH(const CallbackVH &)=default
iterator find(const_arg_type_t< KeyT > Val)
Implements a dense probed hash-table based set.
BlockT * getHeader() const
Represents a single loop in the control flow graph.
Simple representation of a scaled number.
SmallPtrSet - This class implements a set which is optimized for holding SmallSize or less elements.
ptrdiff_t difference_type
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
StringRef - Represent a constant reference to a string, i.e.
std::string str() const
str - Get the contents as an std::string.
Twine - A lightweight data structure for efficiently representing the concatenation of temporary valu...
The instances of the Type class are immutable: once they are created, they are never changed.
Value * getValPtr() const
LLVM Value Representation.
LLVM_ABI StringRef getName() const
Return a constant reference to the value's name.
void deleted() override
Callback for Value destruction.
BFICallbackVH(const BasicBlock *BB, BFIImplT *BFIImpl)
virtual ~BFICallbackVH()=default
BFICallbackVH(const MachineBasicBlock *MBB, BFIImplT *)
bool operator<(BlockMass X) const
bool operator>(BlockMass X) const
raw_ostream & print(raw_ostream &OS) const
bool operator==(BlockMass X) const
static BlockMass getEmpty()
BlockMass & operator-=(BlockMass X)
Subtract another mass.
bool operator<=(BlockMass X) const
BlockMass & operator*=(BranchProbability P)
static BlockMass getFull()
bool operator!=(BlockMass X) const
BlockMass & operator+=(BlockMass X)
Add another mass.
bool operator>=(BlockMass X) const
ScaledNumber< uint64_t > toScaled() const
Convert to scaled number.
void reserve(size_t Size)
Grow the DenseSet so that it can contain at least NumEntries items before resizing again.
A range adaptor for a pair of iterators.
This class implements an extremely fast bulk output stream that can only output to a stream.
A raw_ostream that writes to an std::string.
This provides a very simple, boring adaptor for a begin and end iterator into a range type.
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
std::string getBlockName(const BlockT *BB)
Get the name of a MachineBasicBlock.
BlockMass operator*(BlockMass L, BranchProbability R)
BlockMass operator+(BlockMass L, BlockMass R)
raw_ostream & operator<<(raw_ostream &OS, BlockMass X)
BlockMass operator-(BlockMass L, BlockMass R)
NodeAddr< NodeBase * > Node
This is an optimization pass for GlobalISel generic memory operations.
GCNRegPressure max(const GCNRegPressure &P1, const GCNRegPressure &P2)
Printable print(const GCNRegPressure &RP, const GCNSubtarget *ST=nullptr, unsigned DynamicVGPRBlockSize=0)
uint32_t getWeightFromBranchProb(const BranchProbability Prob)
auto enumerate(FirstRange &&First, RestRanges &&...Rest)
Given two or more input ranges, returns a new range whose values are tuples (A, B,...
iterator_range< T > make_range(T x, T y)
Convenience function for iterating over sub-ranges.
iterator_range< po_iterator< T > > post_order(const T &G)
llvm::cl::opt< unsigned > IterativeBFIMaxIterationsPerBlock
llvm::cl::opt< bool > UseIterativeBFIInference
LLVM_ABI raw_ostream & dbgs()
dbgs() - This returns a reference to a raw_ostream for debugging messages.
FunctionAddr VTableAddr Count
Function::ProfileCount ProfileCount
format_object< Ts... > format(const char *Fmt, const Ts &... Vals)
These are helper functions used to produce formatted output.
llvm::cl::opt< bool > CheckBFIUnknownBlockQueries
iterator_range< typename GraphTraits< Inverse< GraphType > >::ChildIteratorType > inverse_children(const typename GraphTraits< GraphType >::NodeRef &G)
FunctionAddr VTableAddr Next
std::string toString(const APInt &I, unsigned Radix, bool Signed, bool formatAsCLiteral=false, bool UpperCase=true, bool InsertSeparators=false)
decltype(auto) cast(const From &Val)
cast<X> - Return the argument parameter cast to the specified type.
iterator_range< typename GraphTraits< GraphType >::ChildIteratorType > children(const typename GraphTraits< GraphType >::NodeRef &G)
LLVM_ABI Printable printBlockFreq(const BlockFrequencyInfo &BFI, BlockFrequency Freq)
Print the block frequency Freq relative to the current functions entry frequency.
llvm::cl::opt< double > IterativeBFIPrecision
Implement std::hash so that hash_code can be used in STL containers.
GraphTraits< BlockFrequencyInfoT * > GTraits
std::string getNodeAttributes(NodeRef Node, const BlockFrequencyInfoT *Graph, unsigned HotPercentThreshold=0)
typename GTraits::nodes_iterator NodeIter
typename GTraits::NodeRef NodeRef
typename GTraits::ChildIteratorType EdgeIter
std::string getNodeLabel(NodeRef Node, const BlockFrequencyInfoT *Graph, GVDAGType GType, int layout_order=-1)
std::string getEdgeAttributes(NodeRef Node, EdgeIter EI, const BlockFrequencyInfoT *BFI, const BranchProbabilityInfoT *BPI, unsigned HotPercentThreshold=0)
BFIDOTGraphTraitsBase(bool isSimple=false)
static StringRef getGraphName(const BlockFrequencyInfoT *G)
Representative of a block.
bool operator==(const BlockNode &X) const
bool operator!=(const BlockNode &X) const
bool operator<(const BlockNode &X) const
bool operator>=(const BlockNode &X) const
BlockNode(IndexType Index)
static size_t getMaxIndex()
bool operator<=(const BlockNode &X) const
bool operator>(const BlockNode &X) const
Distribution of unscaled probability weight.
void addBackedge(const BlockNode &Node, uint64_t Amount)
SmallVector< Weight, 4 > WeightList
WeightList Weights
Individual successor weights.
uint64_t Total
Sum of all weights.
void normalize()
Normalize the distribution.
void addExit(const BlockNode &Node, uint64_t Amount)
bool DidOverflow
Whether Total did overflow.
void addLocal(const BlockNode &Node, uint64_t Amount)
Stats about a block itself.
bool isHeader(const BlockNode &Node) const
SmallVector< std::pair< BlockNode, BlockMass >, 4 > ExitMap
LoopData * Parent
The parent loop.
LoopData(LoopData *Parent, It1 FirstHeader, It1 LastHeader, It2 FirstOther, It2 LastOther)
ExitMap Exits
Successor edges (and weights).
uint32_t NumHeaders
Number of headers.
bool IsPackaged
Whether this has been packaged.
LoopData(LoopData *Parent, const BlockNode &Header)
SmallVector< BlockNode, 4 > NodeList
NodeList::const_iterator members_end() const
NodeList::const_iterator members_begin() const
bool isIrreducible() const
BlockNode getHeader() const
SmallVector< BlockMass, 1 > HeaderMassList
NodeList Nodes
Header and the members of the loop.
HeaderMassList BackedgeMass
Mass returned to each loop header.
HeaderMassList::difference_type getHeaderIndex(const BlockNode &B)
iterator_range< NodeList::const_iterator > members() const
Unscaled probability weight.
Weight(DistType Type, BlockNode TargetNode, uint64_t Amount)
bool isPackaged() const
Has ContainingLoop been packaged up?
BlockMass Mass
Mass distribution from the entry block.
BlockMass & getMass()
Get the appropriate mass for a node.
WorkingData(const BlockNode &Node)
bool isAPackage() const
Has Loop been packaged up?
bool isLoopHeader() const
bool isDoubleLoopHeader() const
LoopData * Loop
The loop this block is inside.
LoopData * getContainingLoop() const
LoopData * getPackagedLoop() const
BlockNode getResolvedNode() const
Resolve a node to its representative.
bool isADoublePackage() const
Has Loop been packaged up twice?
DefaultDOTGraphTraits(bool simple=false)
static nodes_iterator nodes_end(const BlockFrequencyInfo *G)
static nodes_iterator nodes_begin(const BlockFrequencyInfo *G)
typename BlockFrequencyInfoT *::UnknownGraphTypeError NodeRef
iterator pred_end() const
IrrNode(const BlockNode &Node)
iterator pred_begin() const
iterator succ_begin() const
std::deque< const IrrNode * >::const_iterator iterator
std::deque< const IrrNode * > Edges
iterator succ_end() const
Graph of irreducible control flow.
void addNodesInFunction()
IrreducibleGraph(BFIBase &BFI, const BFIBase::LoopData *OuterLoop, BlockEdgesAdder addBlockEdges)
Construct an explicit graph containing irreducible control flow.
void addEdge(IrrNode &Irr, const BlockNode &Succ, const BFIBase::LoopData *OuterLoop)
BlockFrequencyInfoImplBase BFIBase
void addEdges(const BlockNode &Node, const BFIBase::LoopData *OuterLoop, BlockEdgesAdder addBlockEdges)
BFIBase::BlockNode BlockNode
std::vector< IrrNode > Nodes
SmallDenseMap< uint32_t, IrrNode *, 4 > Lookup
void initialize(const BFIBase::LoopData *OuterLoop, BlockEdgesAdder addBlockEdges)
void addNode(const BlockNode &Node)
void addNodesInLoop(const BFIBase::LoopData &OuterLoop)
BranchProbabilityInfo BranchProbabilityInfoT
AssertingVH< const BasicBlock > BlockKeyT
MachineLoopInfo LoopInfoT
MachineFunction FunctionT
MachineBranchProbabilityInfo BranchProbabilityInfoT
const MachineBasicBlock * BlockKeyT