Files
revng-revng/lib/RestructureCFGPass/RestructureCFG.cpp
T
Andrea Gussoni b66774bcd2 Connect the successor of an SCS only once
In case we do not emit an exit dispatcher, take care of connecting the
successor of a SCS only once.
2019-01-14 15:45:08 +01:00

1099 lines
33 KiB
C++

/// \file Restructure.cpp
/// \brief FunctionPass that applies the comb to the CFG of a function
//
// This file is distributed under the MIT License. See LICENSE.md for details.
//
// Standard includes
#include <sstream>
#include <stdlib.h>
// LLVM includes
#include "llvm/ADT/PostOrderIterator.h"
#include "llvm/IR/Dominators.h"
#include "llvm/IR/Function.h"
#include "llvm/Support/Casting.h"
#include "llvm/Support/FileSystem.h"
#include "llvm/Support/GenericDomTreeConstruction.h"
#include "llvm/Support/raw_os_ostream.h"
// Local libraries includes
#include "revng/Support/Debug.h"
#include "revng/Support/IRHelpers.h"
// Local includes
#include "RegionCFGTree.h"
#include "RestructureCFG.h"
#include "Utils.h"
using namespace llvm;
using std::make_pair;
using std::pair;
using std::string;
using std::to_string;
// TODO: Move the initialization of the logger here from "Utils.h"
// Debug logger.
Logger<> CombLogger("restructure");
// EdgeDescriptor is a handy way to create and manipulate edges on the CFG.
using EdgeDescriptor = std::pair<BasicBlockNode *, BasicBlockNode *>;
#if 0
static bool existsPath(BasicBlockNode &Source, BasicBlockNode &Target) {
std::set<BasicBlockNode *> Visited;
std::vector<BasicBlockNode *> Stack;
Stack.push_back(&Source);
while (!Stack.empty()) {
BasicBlockNode *Vertex = Stack.back();
Stack.pop_back();
if (Vertex == &Target) {
return true;
}
if (Visited.count(Vertex) == 0) {
Visited.insert(Vertex);
for (BasicBlockNode *Successor : Vertex->successors()) {
Stack.push_back(Successor);
}
}
}
return false;
}
#endif
static bool edgesEqual(EdgeDescriptor &First, EdgeDescriptor &Second) {
if ((First.first == Second.first) and (First.second == Second.second)) {
return true;
} else {
return false;
}
}
static bool containsEdge(std::set<EdgeDescriptor> &Container,
EdgeDescriptor &Edge) {
for (EdgeDescriptor Elem : Container) {
if (edgesEqual(Elem, Edge)) {
return true;
}
}
return false;
}
#if 0
static std::set<BasicBlockNode *> findReachableNodes2(CFG &CFG,
ReachabilityPass &Reachability,
BasicBlockNode &Source,
BasicBlockNode &Target) {
std::set<BasicBlock *> &ReachableBlocks =
Reachability.reachableFrom(Source.basicBlock());
std::set<BasicBlockNode *> ReachableNodes;
BasicBlock *TargetBlock = Target.basicBlock();
for (BasicBlock *Block : ReachableBlocks) {
if (Reachability.existsPath(Block, TargetBlock)) {
ReachableNodes.insert(&CFG.get(Block));
}
}
return ReachableNodes;
}
#endif
static std::set<EdgeDescriptor> getBackedges(CFG &Graph) {
// Some helper data structures.
int Time = 0;
std::map<BasicBlockNode *, int> StartTime;
std::map<BasicBlockNode *, int> FinishTime;
std::vector<std::pair<BasicBlockNode *, size_t>> Stack;
// Set of backedges.
std::set<EdgeDescriptor> Backedges;
// Push the entry node in the exploration stack.
BasicBlockNode &EntryNode = Graph.getEntryNode();
Stack.push_back(make_pair(&EntryNode, 0));
// Go through the exploration stack.
while (!Stack.empty()) {
auto StackElem = Stack.back();
Stack.pop_back();
BasicBlockNode *Vertex = StackElem.first;
Time++;
// Check if we are inspecting a vertex for the first time, and in case mark
// the start time of the visit.
if (StartTime.count(Vertex) == 0) {
StartTime[Vertex] = Time;
}
// Successor exploraition
size_t Index = StackElem.second;
// If we are still successors to explore.
if (Index < StackElem.first->successor_size()) {
BasicBlockNode *Successor = Vertex->getSuccessorI(Index);
Index++;
Stack.push_back(make_pair(Vertex, Index));
// We are in presence of a backedge.
if (StartTime.count(Successor) != 0
and FinishTime.count(Successor) == 0) {
Backedges.insert(make_pair(Vertex, Successor));
}
// Enqueue the successor for the visit.
if (StartTime.count(Successor) == 0) {
Stack.push_back(make_pair(Successor, 0));
}
} else {
// Mark the finish of the visit of a vertex.
FinishTime[Vertex] = Time;
}
}
return Backedges;
}
/// \brief The MetaRegion class, a wrapper for a set of nodes.
class MetaRegion {
public:
using links_container = std::set<BasicBlockNode *>;
using links_iterator = typename links_container::iterator;
using links_const_iterator = typename links_container::const_iterator;
using links_range = iterator_range<links_iterator>;
using links_const_range = iterator_range<links_const_iterator>;
inline links_iterator begin() { return Nodes.begin(); };
inline links_const_iterator cbegin() const { return Nodes.cbegin(); };
inline links_iterator end() { return Nodes.end(); };
inline links_const_iterator cend() const { return Nodes.cend(); };
private:
int Index;
links_container Nodes;
MetaRegion *ParentRegion;
bool IsSCS;
CFG Graph;
public:
MetaRegion(int Index, std::set<BasicBlockNode *> &Nodes, bool IsSCS = false) :
Index(Index), Nodes(Nodes), IsSCS(IsSCS) {}
int getIndex() {
return Index;
}
void replaceNodes(std::vector<std::unique_ptr<BasicBlockNode>> &NewNodes) {
Nodes.erase(Nodes.begin(), Nodes.end());
for (std::unique_ptr<BasicBlockNode> &Node : NewNodes) {
Nodes.insert(Node.get());
}
}
void updateNodes(std::set<BasicBlockNode *> &Removal,
BasicBlockNode *Collapsed,
std::vector<BasicBlockNode *> Dispatcher) {
// Remove the old SCS nodes
bool NeedSubstitution = false;
for (BasicBlockNode *Node : Removal) {
if (Nodes.count(Node) != 0) {
Nodes.erase(Node);
NeedSubstitution = true;
}
}
// Add the collapsed node.
if (NeedSubstitution) {
Nodes.insert(Collapsed);
Nodes.insert(Dispatcher.begin(), Dispatcher.end());
}
}
void setParent(MetaRegion *Parent) {
ParentRegion = Parent;
}
MetaRegion *getParent() {
return ParentRegion;
}
std::set<BasicBlockNode *> &getNodes() {
return Nodes;
}
size_t nodes_size() const { return Nodes.size(); }
links_const_range nodes() const {
return make_range(Nodes.begin(), Nodes.end());
}
links_range nodes() {
return make_range(Nodes.begin(), Nodes.end());
}
std::set<BasicBlockNode *> getSuccessors() {
std::set<BasicBlockNode *> Successors;
for (BasicBlockNode *Node : nodes()) {
for (BasicBlockNode *Successor : Node->successors()) {
if (!containsNode(Successor)) {
Successors.insert(Successor);
}
}
}
return Successors;
}
std::set<EdgeDescriptor> getOutEdges() {
std::set<EdgeDescriptor> OutEdges;
for (BasicBlockNode *Node : nodes()) {
for (BasicBlockNode *Successor : Node->successors()) {
if (!containsNode(Successor)) {
OutEdges.insert(EdgeDescriptor(Node, Successor));
}
}
}
return OutEdges;
}
std::set<EdgeDescriptor> getInEdges() {
std::set<EdgeDescriptor> InEdges;
for (BasicBlockNode *Node : nodes()) {
for (BasicBlockNode *Predecessor : Node->predecessors()) {
if (!containsNode(Predecessor)) {
InEdges.insert(EdgeDescriptor(Predecessor, Node));
}
}
}
return InEdges;
}
bool intersectsWith(MetaRegion &Other) {
std::vector<BasicBlockNode *> Intersection;
std::set<BasicBlockNode *> &OtherNodes = Other.getNodes();
std::set_intersection(Nodes.begin(),
Nodes.end(),
OtherNodes.begin(),
OtherNodes.end(),
std::back_inserter(Intersection));
return (Intersection.size() != 0);
}
bool isSubSet(MetaRegion &Other) {
std::set<BasicBlockNode *> &OtherNodes = Other.getNodes();
return std::includes(OtherNodes.begin(),
OtherNodes.end(),
Nodes.begin(),
Nodes.end());
}
bool isSuperSet(MetaRegion &Other) {
std::set<BasicBlockNode *> &OtherNodes = Other.getNodes();
return std::includes(Nodes.begin(),
Nodes.end(),
OtherNodes.begin(),
OtherNodes.end());
}
bool nodesEquality(MetaRegion &Other) {
std::set<BasicBlockNode *> &OtherNodes = Other.getNodes();
return Nodes == OtherNodes;
}
void mergeWith(MetaRegion &Other) {
std::set<BasicBlockNode *> &OtherNodes = Other.getNodes();
Nodes.insert(OtherNodes.begin(), OtherNodes.end());
}
bool isSCS() {
return IsSCS;
}
bool containsNode(BasicBlockNode *Node) {
if (Nodes.count(Node) != 0) {
return true;
} else {
return false;
}
}
void insertNode(BasicBlockNode *NewNode) {
Nodes.insert(NewNode);
}
void removeNode(BasicBlockNode *Node) {
Nodes.erase(Node);
}
CFG &getGraph() {
return Graph;
}
};
static bool mergeSCSStep(std::vector<MetaRegion> &MetaRegions) {
for (auto RegionIt1 = MetaRegions.begin(); RegionIt1 != MetaRegions.end();
RegionIt1++) {
for (auto RegionIt2 = std::next(RegionIt1); RegionIt2 != MetaRegions.end();
RegionIt2++) {
bool Intersects = (*RegionIt1).intersectsWith(*RegionIt2);
bool IsIncluded = (*RegionIt1).isSubSet(*RegionIt2);
bool IsIncludedReverse = (*RegionIt2).isSubSet(*RegionIt1);
bool AreEquivalent = (*RegionIt1).nodesEquality(*RegionIt2);
if (Intersects and
(((!IsIncluded) and (!IsIncludedReverse)) or AreEquivalent)) {
(*RegionIt1).mergeWith(*RegionIt2);
MetaRegions.erase(RegionIt2);
return true;
}
}
}
return false;
}
static void simplifySCS(std::vector<MetaRegion> &MetaRegions) {
bool Changes = true;
while (Changes) {
Changes = mergeSCSStep(MetaRegions);
}
}
static void sortMetaRegions(std::vector<MetaRegion> &MetaRegions) {
std::sort(MetaRegions.begin(),
MetaRegions.end(),
[](MetaRegion &First,
MetaRegion &Second)
{ return First.getNodes().size() < Second.getNodes().size(); });
}
static void computeParents(std::vector<MetaRegion> &MetaRegions,
MetaRegion *RootMetaRegion) {
for (MetaRegion &MetaRegion1 : MetaRegions) {
bool ParentFound = false;
for (MetaRegion &MetaRegion2 : MetaRegions) {
if (&MetaRegion1 != &MetaRegion2) {
if (MetaRegion1.isSubSet(MetaRegion2)) {
if (CombLogger.isEnabled()) {
CombLogger << "For metaregion: " << &MetaRegion1 << "\n";
CombLogger << "parent found\n";
CombLogger << &MetaRegion2 << "\n";
}
MetaRegion1.setParent(&MetaRegion2);
ParentFound = true;
break;
}
}
}
if (!ParentFound) {
if (CombLogger.isEnabled()) {
CombLogger << "For metaregion: " << &MetaRegion1 << "\n";
CombLogger << "no parent found\n";
}
MetaRegion1.setParent(RootMetaRegion);
}
}
}
static std::vector<MetaRegion *> applyPartialOrder(std::vector<MetaRegion> &V) {
std::vector<MetaRegion *> OrderedVector;
std::set<MetaRegion *> Processed;
while (V.size() != Processed.size()) {
for (auto RegionIt1 = V.begin(); RegionIt1 != V.end();
RegionIt1++) {
if (Processed.count(&*RegionIt1) == 0) {
bool FoundParent = false;
for (auto RegionIt2 = V.begin(); RegionIt2 != V.end();
RegionIt2++) {
if ((RegionIt1 != RegionIt2) and Processed.count(&*RegionIt2) == 0) {
if ((*RegionIt1).getParent() == &*RegionIt2) {
FoundParent = true;
break;
}
}
}
if (FoundParent == false) {
OrderedVector.push_back(&*RegionIt1);
Processed.insert(&*RegionIt1);
break;
}
}
}
}
std::reverse(OrderedVector.begin(), OrderedVector.end());
return OrderedVector;
}
char RestructureCFG::ID = 0;
static RegisterPass<RestructureCFG> X("restructureCFG",
"Apply CFG restructuring transformation",
true,
true);
bool RestructureCFG::runOnFunction(Function &F) {
// Clear graph object from the previous pass.
CompleteGraph = CFG();
// Analyze only isolated functions.
if (!F.getName().startswith("bb.")) {
return false;
}
// Logger object
auto &Log = CombLogger;
// Random seed initialization
srand(time(NULL));
// Initialize the CFG object
CompleteGraph.initialize(F);
CFG &Graph = CompleteGraph;
// Dump the object in .dot format if debug mode is activated.
if (Log.isEnabled()) {
Graph.dumpDot();
}
// Identify SCS regions.
if (CombLogger.isEnabled()) {
BasicBlockNode &FirstRandom = Graph.getRandomNode();
BasicBlockNode &SecondRandom = Graph.getRandomNode();
Log << "Source: ";
Log << FirstRandom.getNameStr() << "\n";
Log << "Target: ";
Log << SecondRandom.getNameStr() << "\n";
Log << "Nodes Reachable:\n";
std::set<BasicBlockNode *> Reachables = findReachableNodes(FirstRandom,
SecondRandom);
for (BasicBlockNode *Element : Reachables) {
Log << Element->getNameStr() << "\n";
}
}
std::set<EdgeDescriptor> Backedges = getBackedges(Graph);
Log << "Backedges in the graph:\n";
for (auto &Backedge : Backedges) {
Log << Backedge.first->getNameStr() << " -> "
<< Backedge.second->getNameStr() << "\n";
}
//
std::vector<std::set<BasicBlockNode *>> Regions;
for (auto &Backedge : Backedges) {
auto SCSNodes = findReachableNodes(*Backedge.second, *Backedge.first);
if (Log.isEnabled()) {
Log << "SCS identified by: ";
Log << Backedge.first->getNameStr() << " -> "
<< Backedge.second->getNameStr() << "\n";
Log << "Is composed of nodes:\n";
for (auto Node : SCSNodes) {
Log << Node->getNameStr() << "\n";
}
}
Regions.push_back(SCSNodes);
}
for (auto RegionIt1 = Regions.begin(); RegionIt1 != Regions.end();
RegionIt1++) {
for (auto RegionIt2 = std::next(RegionIt1); RegionIt2 != Regions.end();
RegionIt2++) {
if (RegionIt1 != RegionIt2) {
std::vector<BasicBlockNode *> Intersection;
bool IsSubset = std::includes((*RegionIt1).begin(),
(*RegionIt1).end(),
(*RegionIt2).begin(),
(*RegionIt2).end());
std::set_intersection((*RegionIt1).begin(),
(*RegionIt1).end(),
(*RegionIt2).begin(),
(*RegionIt2).end(),
std::back_inserter(Intersection));
if (Log.isEnabled()) {
Log << "IsSubset: " << IsSubset << "\n";
Log << "Intersection between:\n";
Log << "1:\n";
for (auto &Node : *RegionIt1) {
Log << Node->getNameStr() << "\n";
}
Log << "2:\n";
for (auto &Node : *RegionIt2) {
Log << Node->getNameStr() << "\n";
}
Log << "is:\n";
for (auto &Node : Intersection) {
Log << Node->getNameStr() << "\n";
}
}
}
}
}
std::vector<MetaRegion> MetaRegions;
int SCSIndex = 1;
for (size_t I = 0; I < Regions.size(); ++I) {
auto &SCS = Regions[I];
MetaRegions.push_back(MetaRegion(SCSIndex, SCS, true));
SCSIndex++;
}
// Simplify SCS in a fixed-point fashion.
simplifySCS(MetaRegions);
// Print SCS after simplification.
if (Log.isEnabled()) {
Log << "\n";
Log << "Metaregions after simplification:\n";
for (auto &Meta : MetaRegions) {
Log << "\n";
Log << &Meta << "\n";
auto &Nodes = Meta.getNodes();
Log << "Is composed of nodes:\n";
for (auto *Node : Nodes) {
Log << Node->getNameStr() << "\n";
}
}
}
// Sort the Metaregions in increasing number of composing nodes order.
sortMetaRegions(MetaRegions);
// Print SCS after ordering.
if (Log.isEnabled()) {
Log << "\n";
Log << "Metaregions after ordering:\n";
for (auto &Meta : MetaRegions) {
Log << "\n";
Log << &Meta << "\n";
Log << "Is composed of nodes:\n";
auto &Nodes = Meta.getNodes();
for (auto *Node : Nodes) {
Log << Node->getNameStr() << "\n";
}
}
}
// Compute parent relations for the identified SCSs.
std::set<BasicBlockNode *> Empty;
MetaRegion RootMetaRegion(0, Empty);
computeParents(MetaRegions, &RootMetaRegion);
// Print metaregions after ordering.
if (Log.isEnabled()) {
Log << "\n";
Log << "Metaregions parent relationship:\n";
for (auto &Meta : MetaRegions) {
Log << "\n";
Log << &Meta << "\n";
auto &Nodes = Meta.getNodes();
Log << "Is composed of nodes:\n";
for (auto *Node : Nodes) {
Log << Node->getNameStr() << "\n";
}
Log << "Has parent: " << Meta.getParent() << "\n";
}
}
// Find an ordering for the metaregions that satisfies the inclusion
// relationship. We create a new "shadow" vector containing only pointers to
// the "real" metaregions.
std::vector<MetaRegion *> OrderedMetaRegions = applyPartialOrder(MetaRegions);
// Print metaregions after ordering.
if (Log.isEnabled()) {
Log << "\n";
Log << "Metaregions after ordering:\n";
for (auto *Meta : OrderedMetaRegions) {
Log << "\n";
Log << Meta << "\n";
auto &Nodes = Meta->getNodes();
Log << "Is composed of nodes:\n";
for (auto *Node : Nodes) {
Log << Node->getNameStr() << "\n";
}
Log << "Has parent: " << Meta->getParent() << "\n";
Log << "Is SCS: " << Meta->isSCS() << "\n";
}
}
ReversePostOrderTraversal<BasicBlockNode *> RPOT(&Graph.getEntryNode());
if (Log.isEnabled()) {
Log << "Reverse post order is:\n";
for (BasicBlockNode *BN : RPOT) {
Log << BN->getNameStr() << "\n";
}
Log << "Reverse post order end\n";
}
Log << "Debugged function" << "\n";
Log << F.getName().equals("bb._start_c") << "\n";
DominatorTreeBase<BasicBlockNode, false> DT;
DT.recalculate(Graph);
DominatorTreeBase<BasicBlockNode, true> PDT;
PDT.recalculate(Graph);
// Some debug information on dominator and postdominator tree.
if (Log.isEnabled()) {
Log << DT.isPostDominator() << "\n";
Log << "The root node of the dominator tree is:\n";
Log << DT.getRoot()->getNameStr() << "\n";
Log << "Between these two nodes:\n";
BasicBlockNode *Random = &Graph.getRandomNode();
BasicBlockNode *Random2 = &Graph.getRandomNode();
Log << Random->getNameStr() << "\n";
Log << Random2->getNameStr() << "\n";
Log << "Dominance:\n";
Log << DT.dominates(Random, Random2) << "\n";
Log << "PostDominance:\n";
Log << PDT.dominates(Random, Random2) << "\n";
Log << PDT.isPostDominator() << "\n";
}
for (MetaRegion *Meta : OrderedMetaRegions) {
if (Log.isEnabled()) {
Log << "\nAnalyzing region: " << Meta->getIndex() <<"\n";
}
std::map<BasicBlockNode *, int> IncomingDegree;
for (BasicBlockNode *Node : Meta->nodes()) {
int IncomingCounter = 0;
for (BasicBlockNode *Predecessor : Node->predecessors()) {
EdgeDescriptor Edge = make_pair(Predecessor, Node);
if ((Meta->containsNode(Predecessor))
and (containsEdge(Backedges, Edge)) ) {
IncomingCounter++;
}
}
IncomingDegree[Node] = IncomingCounter;
}
// Print information about incoming edge degrees.
if (Log.isEnabled()) {
Log << "Incoming degree:\n";
for (auto &it : IncomingDegree) {
Log << it.first->getNameStr() << " " << it.second << "\n";
}
}
auto MaxDegreeIt = max_element(IncomingDegree.begin(),
IncomingDegree.end(),
[](const pair<BasicBlockNode *, int> &p1,
const pair<BasicBlockNode *, int> &p2)
{ return p1.second < p2.second; });
int MaxDegree = (*MaxDegreeIt).second;
if (Log.isEnabled()) {
Log << "Maximum incoming degree found: ";
Log << MaxDegree << "\n";
}
std::set<BasicBlockNode *> MaximuxEdgesNodes;
copy_if(Meta->begin(),
Meta->end(),
std::inserter(MaximuxEdgesNodes, MaximuxEdgesNodes.begin()),
[&IncomingDegree, &MaxDegree]
(BasicBlockNode *Node)
{ return IncomingDegree[Node] == MaxDegree; });
BasicBlockNode *FirstCandidate;
if (MaximuxEdgesNodes.size() > 1) {
for (BasicBlockNode *BN : RPOT) {
if (MaximuxEdgesNodes.count(BN) != 0) {
FirstCandidate = BN;
break;
}
}
} else {
FirstCandidate = *MaximuxEdgesNodes.begin();
}
if (Log.isEnabled()) {
Log << "Elected head is: " << FirstCandidate->getNameStr() << "\n";
}
// Identify all the abnormal retreating edges in a SCS.
std::set<EdgeDescriptor> Retreatings;
std::set<BasicBlockNode *> RetreatingTargets;
for (EdgeDescriptor Backedge : Backedges) {
if (Meta->containsNode(Backedge.first)) {
Retreatings.insert(Backedge);
RetreatingTargets.insert(Backedge.second);
}
}
if (Log.isEnabled()) {
Log << "Retreatings found:\n";
for (EdgeDescriptor Retreating : Retreatings) {
Log << Retreating.first->getNameStr() << " -> ";
Log << Retreating.second->getNameStr() << "\n";
}
}
bool NewHeadNeeded = false;
for (BasicBlockNode *Node : RetreatingTargets) {
if (Node != FirstCandidate) {
NewHeadNeeded = true;
}
}
if (Log.isEnabled()) {
Log << "New head needed: " << NewHeadNeeded << "\n";
}
BasicBlockNode *Head;
if (F.getName() == "bb.printf_core") {
dbg << "here\n";
}
if (NewHeadNeeded) {
Head = Graph.newNode("head dispatcher");
Meta->insertNode(Head);
// Move the incoming edge from the old head to new one.
for (BasicBlockNode *Predecessor : FirstCandidate->predecessors()) {
if (!Meta->containsNode(Predecessor)) {
moveEdgeTarget(EdgeDescriptor(Predecessor, FirstCandidate), Head);
}
}
// Build the tree dispatcher structure.
BasicBlockNode *Dummy = Head;
std::map<BasicBlockNode *, int> RetreatingIdxMap;
int Idx = 0;
for (BasicBlockNode *Target : RetreatingTargets) {
BasicBlockNode *NewDummy = Graph.newNodeID("entry dummy dispatcher idx "
+ to_string(Idx)
+ " ");
Meta->insertNode(NewDummy);
RetreatingIdxMap[Target] = Idx;
Idx++;
addEdge(EdgeDescriptor(Dummy, Target));
addEdge(EdgeDescriptor(Dummy, NewDummy));
Dummy = NewDummy;
}
for (EdgeDescriptor Retreating : Retreatings) {
Idx = RetreatingIdxMap[Retreating.second];
string NodeName = "entry idx set " + std::to_string(Idx);
BasicBlockNode *IdxSetNode = Graph.newNode(NodeName);
Meta->insertNode(IdxSetNode);
addEdge(EdgeDescriptor(Retreating.first, IdxSetNode));
addEdge(EdgeDescriptor(IdxSetNode, Head));
removeEdge(EdgeDescriptor(Retreating.first, Retreating.second));
}
} else {
Head = FirstCandidate;
//Meta->insertNode(Head);
}
if (Log.isEnabled()) {
Log << "New head name is: " << Head->getNameStr() << "\n";
}
// Successor refinement step.
std::set<BasicBlockNode *> Successors = Meta->getSuccessors();
if (Log.isEnabled()) {
Log << "Region successors are:\n";
for (BasicBlockNode *Node : Successors) {
Log << Node->getNameStr() << "\n";
}
}
bool AnotherIteration = true;
while (AnotherIteration and Successors.size() > 1) {
AnotherIteration = false;
std::set<EdgeDescriptor> OutgoingEdges = Meta->getOutEdges();
std::vector<BasicBlockNode *> Frontiers;
std::map<BasicBlockNode *,
pair<BasicBlockNode *, BasicBlockNode *>> EdgeExtremal;
for (EdgeDescriptor Edge : OutgoingEdges) {
BasicBlockNode *Frontier = Graph.newNode("frontier");
BasicBlockNode *OldSource = Edge.first;
BasicBlockNode *OldTarget = Edge.second;
EdgeExtremal[Frontier] = make_pair(OldSource, OldTarget);
moveEdgeTarget(Edge, Frontier);
addEdge(EdgeDescriptor(Frontier, OldTarget));
Meta->insertNode(Frontier);
Frontiers.push_back(Frontier);
}
DT.recalculate(Graph);
for (BasicBlockNode *Frontier : Frontiers) {
for (BasicBlockNode *Successor : Successors) {
if ((DT.dominates(Head, Successor))
and (DT.dominates(Frontier, Successor))) {
Meta->insertNode(Successor);
AnotherIteration = true;
if (Log.isEnabled()) {
Log << "Identified new candidate for successor refinement:";
Log << Successor->getNameStr() << "\n";
}
}
}
}
for (BasicBlockNode *Frontier : Frontiers) {
BasicBlockNode *OriginalSource = EdgeExtremal[Frontier].first;
BasicBlockNode *OriginalTarget = EdgeExtremal[Frontier].second;
addEdge(EdgeDescriptor(OriginalSource, OriginalTarget));
Graph.removeNode(Frontier);
Meta->removeNode(Frontier);
}
Successors = Meta->getSuccessors();
}
// First Iteration outlining.
// Clone all the nodes of the SCS except for the head.
std::map<BasicBlockNode *, BasicBlockNode *> ClonedMap;
for (BasicBlockNode *Node : Meta->nodes()) {
if (Node != Head) {
BasicBlockNode *Clone = Graph.newNode(Node->getNameStr() + " clone");
ClonedMap[Node] = Clone;
}
}
// Restore edges between cloned nodes.
for (BasicBlockNode *Node : Meta->nodes()) {
if (Node != Head) {
// Handle outgoing edges from SCS nodes.
for (BasicBlockNode *Successor : Node->successors()) {
if (Meta->containsNode(Successor)) {
// Handle edges pointing inside the SCS.
if ((Successor == Head) or (Successor == FirstCandidate)) {
// Retreating edges should point to the new head.
addEdge(EdgeDescriptor(ClonedMap[Node], Head));
} else {
// Other edges should be restored between cloned nodes.
addEdge(EdgeDescriptor(ClonedMap[Node], ClonedMap[Successor]));
}
} else {
// Edges exiting from the SCS should go to the right target.
addEdge(EdgeDescriptor(ClonedMap[Node], Successor));
}
}
// Handle incoming edges in SCS nodes.
for (BasicBlockNode *Predecessor : Node->predecessors()) {
if (!Meta->containsNode(Predecessor)) {
addEdge(EdgeDescriptor(Predecessor, ClonedMap[Node]));
removeEdge(EdgeDescriptor(Predecessor, Node));
}
}
}
}
// Exit dispatcher creation.
// TODO: Factorize this out together with the head dispatcher creation.
bool NewExitNeeded = false;
BasicBlockNode *Exit;
std::vector<BasicBlockNode *> ExitDispatcherNodes;
if (Successors.size() > 1) {
NewExitNeeded = true;
}
if (Log.isEnabled()) {
Log << "New exit needed: " << NewExitNeeded << "\n";
}
if (NewExitNeeded) {
Exit = Graph.newNode("exit dispatcher");
ExitDispatcherNodes.push_back(Exit);
std::set<EdgeDescriptor> OutEdges = Meta->getOutEdges();
// Build the tree dispatcher structure.
BasicBlockNode *Dummy = Exit;
std::map<BasicBlockNode *, int> SuccessorsIdxMap;
int Idx = 0;
for (BasicBlockNode *Target : Successors) {
BasicBlockNode *NewDummy = Graph.newNodeID("exit dummy dispatcher "
+ to_string(Idx)
+ " ");
ExitDispatcherNodes.push_back(NewDummy);
SuccessorsIdxMap[Target] = Idx;
Idx++;
addEdge(EdgeDescriptor(Dummy, Target));
addEdge(EdgeDescriptor(Dummy, NewDummy));
Dummy = NewDummy;
}
for (EdgeDescriptor Edge : OutEdges) {
Idx = SuccessorsIdxMap[Edge.second];
string NodeName = "exit idx " + std::to_string(Idx);
BasicBlockNode *IdxSetNode = Graph.newNode(NodeName);
Meta->insertNode(IdxSetNode);
addEdge(EdgeDescriptor(Edge.first, IdxSetNode));
addEdge(EdgeDescriptor(IdxSetNode, Edge.second));
removeEdge(EdgeDescriptor(Edge.first, Edge.second));
}
if (Log.isEnabled()) {
Log << "New exit name is: " << Exit->getNameStr() << "\n";
}
}
// Collapse Region.
// Create a new CFG object for representing the collapsed region and
// populate it with the internal nodes.
std::set<EdgeDescriptor> OutgoingEdges = Meta->getOutEdges();
std::set<EdgeDescriptor> IncomingEdges = Meta->getInEdges();
CFG &CollapsedGraph = Meta->getGraph();
assert(Head != nullptr);
CollapsedGraph.insertBulkNodes(Meta->getNodes(), Head);
// Create the break and continue node.
BasicBlockNode *Continue = CollapsedGraph.newNodeID("continue ");
BasicBlockNode *Break = CollapsedGraph.newNodeID("break ");
// Connect the break and continue nodes with the necessary edges.
Log.emit();
if (F.getName() == "bb.printf_core") {
dbg << "here\n";
}
CollapsedGraph.connectContinueNode(Continue);
CollapsedGraph.connectBreakNode(OutgoingEdges, Break);
// Create the collapsed node in the outer region.
string NodeName = "collapsed " + std::to_string(Meta->getIndex());
BasicBlockNode *CollapsedNode = Graph.newNode(NodeName);
CollapsedNode->setCollapsedCFG(&CollapsedGraph);
// Connect the old incoming edges to the collapsed node.
for (EdgeDescriptor Edge : IncomingEdges) {
moveEdgeTarget(Edge, CollapsedNode);
}
// Connect the outgoing edges to the collapsed node.
if (NewExitNeeded) {
revng_assert(Exit != nullptr);
addEdge(EdgeDescriptor(CollapsedNode, Exit));
} else {
// Double check that we have a single successor
revng_assert(Successors.size() == 1);
BasicBlockNode *Successor = *Successors.begin();
//Connect the collapsed node to the unique successor
addEdge(EdgeDescriptor(CollapsedNode, Successor));
}
// Remove collapsed nodes from the outer region.
for (BasicBlockNode *Node : Meta->nodes()) {
if (Log.isEnabled()) {
Log << "Removing from main graph node :" << Node->getNameStr() << "\n";
}
Graph.removeNode(Node);
}
// Substitute in the other SCSs the nodes of the current SCS with the
// collapsed node and the exit dispatcher structure.
for (MetaRegion *OtherMeta : OrderedMetaRegions) {
if (OtherMeta != Meta) {
OtherMeta->updateNodes(Meta->getNodes(),
CollapsedNode,
ExitDispatcherNodes);
}
}
// Replace the pointers inside SCS.
Meta->replaceNodes(CollapsedGraph.getNodes());
// Serialize the newly collapsed SCS region.
if (Log.isEnabled()) {
Log << "Dumping CFG of metaregion " << Meta->getIndex() << "\n";
CollapsedGraph.dumpDot();
Log << "Dumping main graph snapshot\n";
Graph.dumpDot();
}
}
// Serialize the newly collapsed SCS region.
if (Log.isEnabled()) {
Log << "Dumping main graph before final purge\n";
Graph.dumpDot();
}
// Remove nodes that have no predecessors (nodes that are the result of node
// cloning and that remains dandling around).
bool Difference = true;
while (Difference) {
Difference = false;
BasicBlockNode *EntryNode = &Graph.getEntryNode();
for (auto It = Graph.begin(); It != Graph.end(); It++) {
if ((EntryNode != *It and (*It)->predecessor_size() == 0)) {
Graph.removeNode(*It);
Difference = true;
break;
}
}
}
// Serialize the newly collapsed SCS region.
if (Log.isEnabled()) {
Log << "Dumping main graph after final purge\n";
Graph.dumpDot();
}
// Print metaregions after ordering.
if (Log.isEnabled()) {
Log << "\n";
Log << "Metaregions after collapse:\n";
for (auto *Meta : OrderedMetaRegions) {
Log << "\n";
Log << Meta << "\n";
auto &Nodes = Meta->getNodes();
Log << "Is composed of nodes:\n";
for (auto *Node : Nodes) {
Log << Node->getNameStr() << "\n";
}
Log << "Has parent: " << Meta->getParent() << "\n";
Log << "Is SCS: " << Meta->isSCS() << "\n";
}
}
// Invoke the AST generation for the root region.
Log.emit();
ASTNode *RootNode = Graph.generateAst();
// Serialize AST on a file named as the function
std::ofstream ASTFile;
ASTFile.open("ast/" + F.getName().str() + ".dot");
ASTFile << "digraph CFGFunction {\n";
RootNode->dump(ASTFile);
ASTFile << "}\n";
ASTFile.close();
// Serialize AST on stderr
Log << "\nFinal AST is:\n";
Log << "digraph CFGFunction {\n";
dumpNode(RootNode);
Log << "}\n";
// Sync Logger.
Log.emit();
return false;
}