1fa0734ecSArgyrios Kyrtzidis //=-- ExplodedGraph.cpp - Local, Path-Sens. "Exploded Graph" -*- C++ -*------=//
2fa0734ecSArgyrios Kyrtzidis //
3fa0734ecSArgyrios Kyrtzidis //                     The LLVM Compiler Infrastructure
4fa0734ecSArgyrios Kyrtzidis //
5fa0734ecSArgyrios Kyrtzidis // This file is distributed under the University of Illinois Open Source
6fa0734ecSArgyrios Kyrtzidis // License. See LICENSE.TXT for details.
7fa0734ecSArgyrios Kyrtzidis //
8fa0734ecSArgyrios Kyrtzidis //===----------------------------------------------------------------------===//
9fa0734ecSArgyrios Kyrtzidis //
10fa0734ecSArgyrios Kyrtzidis //  This file defines the template classes ExplodedNode and ExplodedGraph,
11fa0734ecSArgyrios Kyrtzidis //  which represent a path-sensitive, intra-procedural "exploded graph."
12fa0734ecSArgyrios Kyrtzidis //
13fa0734ecSArgyrios Kyrtzidis //===----------------------------------------------------------------------===//
14fa0734ecSArgyrios Kyrtzidis 
15f8cbac4bSTed Kremenek #include "clang/StaticAnalyzer/Core/PathSensitive/ExplodedGraph.h"
164f7df9beSJordan Rose #include "clang/StaticAnalyzer/Core/PathSensitive/CallEvent.h"
17001fd5b4STed Kremenek #include "clang/StaticAnalyzer/Core/PathSensitive/ProgramState.h"
18fa0734ecSArgyrios Kyrtzidis #include "clang/AST/Stmt.h"
1944d2973bSTed Kremenek #include "clang/AST/ParentMap.h"
20fa0734ecSArgyrios Kyrtzidis #include "llvm/ADT/DenseSet.h"
21fa0734ecSArgyrios Kyrtzidis #include "llvm/ADT/DenseMap.h"
22fa0734ecSArgyrios Kyrtzidis #include "llvm/ADT/SmallVector.h"
237aa3687bSAnna Zaks #include "llvm/ADT/Statistic.h"
24fa0734ecSArgyrios Kyrtzidis #include <vector>
25fa0734ecSArgyrios Kyrtzidis 
26fa0734ecSArgyrios Kyrtzidis using namespace clang;
27fa0734ecSArgyrios Kyrtzidis using namespace ento;
28fa0734ecSArgyrios Kyrtzidis 
29fa0734ecSArgyrios Kyrtzidis //===----------------------------------------------------------------------===//
30fa0734ecSArgyrios Kyrtzidis // Node auditing.
31fa0734ecSArgyrios Kyrtzidis //===----------------------------------------------------------------------===//
32fa0734ecSArgyrios Kyrtzidis 
33fa0734ecSArgyrios Kyrtzidis // An out of line virtual method to provide a home for the class vtable.
34fa0734ecSArgyrios Kyrtzidis ExplodedNode::Auditor::~Auditor() {}
35fa0734ecSArgyrios Kyrtzidis 
36fa0734ecSArgyrios Kyrtzidis #ifndef NDEBUG
37fa0734ecSArgyrios Kyrtzidis static ExplodedNode::Auditor* NodeAuditor = 0;
38fa0734ecSArgyrios Kyrtzidis #endif
39fa0734ecSArgyrios Kyrtzidis 
40fa0734ecSArgyrios Kyrtzidis void ExplodedNode::SetAuditor(ExplodedNode::Auditor* A) {
41fa0734ecSArgyrios Kyrtzidis #ifndef NDEBUG
42fa0734ecSArgyrios Kyrtzidis   NodeAuditor = A;
43fa0734ecSArgyrios Kyrtzidis #endif
44fa0734ecSArgyrios Kyrtzidis }
45fa0734ecSArgyrios Kyrtzidis 
46fa0734ecSArgyrios Kyrtzidis //===----------------------------------------------------------------------===//
47a40f8ebcSTed Kremenek // Cleanup.
48a40f8ebcSTed Kremenek //===----------------------------------------------------------------------===//
49a40f8ebcSTed Kremenek 
5035e55fe4STed Kremenek static const unsigned CounterTop = 1000;
5135e55fe4STed Kremenek 
5244d2973bSTed Kremenek ExplodedGraph::ExplodedGraph()
5335e55fe4STed Kremenek   : NumNodes(0), reclaimNodes(false), reclaimCounter(CounterTop) {}
5444d2973bSTed Kremenek 
55a2aa929eSTed Kremenek ExplodedGraph::~ExplodedGraph() {}
56a40f8ebcSTed Kremenek 
57a40f8ebcSTed Kremenek //===----------------------------------------------------------------------===//
58a40f8ebcSTed Kremenek // Node reclamation.
59a40f8ebcSTed Kremenek //===----------------------------------------------------------------------===//
60a40f8ebcSTed Kremenek 
611dd7fd71STed Kremenek bool ExplodedGraph::shouldCollect(const ExplodedNode *node) {
627e53bd6fSAnna Zaks   // Reclaim all nodes that match *all* the following criteria:
631dd7fd71STed Kremenek   //
641dd7fd71STed Kremenek   // (1) 1 predecessor (that has one successor)
651dd7fd71STed Kremenek   // (2) 1 successor (that has one predecessor)
661dd7fd71STed Kremenek   // (3) The ProgramPoint is for a PostStmt.
671dd7fd71STed Kremenek   // (4) There is no 'tag' for the ProgramPoint.
681dd7fd71STed Kremenek   // (5) The 'store' is the same as the predecessor.
691dd7fd71STed Kremenek   // (6) The 'GDM' is the same as the predecessor.
701dd7fd71STed Kremenek   // (7) The LocationContext is the same as the predecessor.
711dd7fd71STed Kremenek   // (8) The PostStmt is for a non-consumed Stmt or Expr.
727ab0182eSJordan Rose   // (9) The successor is not a CallExpr StmtPoint (so that we would be able to
73bec49efdSAnna Zaks   //     find it when retrying a call with no inlining).
74681cce99SJordan Rose   // FIXME: It may be safe to reclaim PreCall and PostCall nodes as well.
751dd7fd71STed Kremenek 
761dd7fd71STed Kremenek   // Conditions 1 and 2.
771dd7fd71STed Kremenek   if (node->pred_size() != 1 || node->succ_size() != 1)
781dd7fd71STed Kremenek     return false;
791dd7fd71STed Kremenek 
801dd7fd71STed Kremenek   const ExplodedNode *pred = *(node->pred_begin());
811dd7fd71STed Kremenek   if (pred->succ_size() != 1)
821dd7fd71STed Kremenek     return false;
831dd7fd71STed Kremenek 
841dd7fd71STed Kremenek   const ExplodedNode *succ = *(node->succ_begin());
851dd7fd71STed Kremenek   if (succ->pred_size() != 1)
861dd7fd71STed Kremenek     return false;
871dd7fd71STed Kremenek 
881dd7fd71STed Kremenek   // Condition 3.
891dd7fd71STed Kremenek   ProgramPoint progPoint = node->getLocation();
90681cce99SJordan Rose   if (!isa<PostStmt>(progPoint))
911dd7fd71STed Kremenek     return false;
921dd7fd71STed Kremenek 
931dd7fd71STed Kremenek   // Condition 4.
941dd7fd71STed Kremenek   PostStmt ps = cast<PostStmt>(progPoint);
951dd7fd71STed Kremenek   if (ps.getTag())
961dd7fd71STed Kremenek     return false;
971dd7fd71STed Kremenek 
981dd7fd71STed Kremenek   // Conditions 5, 6, and 7.
991dd7fd71STed Kremenek   ProgramStateRef state = node->getState();
1001dd7fd71STed Kremenek   ProgramStateRef pred_state = pred->getState();
1011dd7fd71STed Kremenek   if (state->store != pred_state->store || state->GDM != pred_state->GDM ||
1021dd7fd71STed Kremenek       progPoint.getLocationContext() != pred->getLocationContext())
1031dd7fd71STed Kremenek     return false;
1041dd7fd71STed Kremenek 
1051dd7fd71STed Kremenek   // Condition 8.
106*891bcdb6STed Kremenek   if (!isa<Expr>(ps.getStmt()))
107*891bcdb6STed Kremenek     return false;
108*891bcdb6STed Kremenek 
1091dd7fd71STed Kremenek   if (const Expr *Ex = dyn_cast<Expr>(ps.getStmt())) {
1101dd7fd71STed Kremenek     ParentMap &PM = progPoint.getLocationContext()->getParentMap();
1111dd7fd71STed Kremenek     if (!PM.isConsumedExpr(Ex))
1121dd7fd71STed Kremenek       return false;
1131dd7fd71STed Kremenek   }
1141dd7fd71STed Kremenek 
115bec49efdSAnna Zaks   // Condition 9.
116bec49efdSAnna Zaks   const ProgramPoint SuccLoc = succ->getLocation();
117bec49efdSAnna Zaks   if (const StmtPoint *SP = dyn_cast<StmtPoint>(&SuccLoc))
118e537cc05SJordan Rose     if (CallEvent::isCallStmt(SP->getStmt()))
119bec49efdSAnna Zaks       return false;
120bec49efdSAnna Zaks 
1211dd7fd71STed Kremenek   return true;
1221dd7fd71STed Kremenek }
1231dd7fd71STed Kremenek 
1241dd7fd71STed Kremenek void ExplodedGraph::collectNode(ExplodedNode *node) {
1251dd7fd71STed Kremenek   // Removing a node means:
1261dd7fd71STed Kremenek   // (a) changing the predecessors successor to the successor of this node
1271dd7fd71STed Kremenek   // (b) changing the successors predecessor to the predecessor of this node
1281dd7fd71STed Kremenek   // (c) Putting 'node' onto freeNodes.
1291dd7fd71STed Kremenek   assert(node->pred_size() == 1 || node->succ_size() == 1);
1301dd7fd71STed Kremenek   ExplodedNode *pred = *(node->pred_begin());
1311dd7fd71STed Kremenek   ExplodedNode *succ = *(node->succ_begin());
1321dd7fd71STed Kremenek   pred->replaceSuccessor(succ);
1331dd7fd71STed Kremenek   succ->replacePredecessor(pred);
134a2aa929eSTed Kremenek   FreeNodes.push_back(node);
1351dd7fd71STed Kremenek   Nodes.RemoveNode(node);
1361dd7fd71STed Kremenek   --NumNodes;
1371dd7fd71STed Kremenek   node->~ExplodedNode();
1381dd7fd71STed Kremenek }
1391dd7fd71STed Kremenek 
14035e55fe4STed Kremenek void ExplodedGraph::reclaimRecentlyAllocatedNodes() {
141a2aa929eSTed Kremenek   if (ChangedNodes.empty())
142a40f8ebcSTed Kremenek     return;
14344d2973bSTed Kremenek 
14435e55fe4STed Kremenek   // Only periodically relcaim nodes so that we can build up a set of
14535e55fe4STed Kremenek   // nodes that meet the reclamation criteria.  Freshly created nodes
14635e55fe4STed Kremenek   // by definition have no successor, and thus cannot be reclaimed (see below).
14735e55fe4STed Kremenek   assert(reclaimCounter > 0);
14835e55fe4STed Kremenek   if (--reclaimCounter != 0)
14935e55fe4STed Kremenek     return;
15035e55fe4STed Kremenek   reclaimCounter = CounterTop;
15135e55fe4STed Kremenek 
15235e55fe4STed Kremenek   for (NodeVector::iterator it = ChangedNodes.begin(), et = ChangedNodes.end();
153a2aa929eSTed Kremenek        it != et; ++it) {
154a2aa929eSTed Kremenek     ExplodedNode *node = *it;
1551dd7fd71STed Kremenek     if (shouldCollect(node))
1561dd7fd71STed Kremenek       collectNode(node);
157a40f8ebcSTed Kremenek   }
158a2aa929eSTed Kremenek   ChangedNodes.clear();
159a40f8ebcSTed Kremenek }
160a40f8ebcSTed Kremenek 
161a40f8ebcSTed Kremenek //===----------------------------------------------------------------------===//
162fa0734ecSArgyrios Kyrtzidis // ExplodedNode.
163fa0734ecSArgyrios Kyrtzidis //===----------------------------------------------------------------------===//
164fa0734ecSArgyrios Kyrtzidis 
1652b10f3f8SJordan Rose // An NodeGroup's storage type is actually very much like a TinyPtrVector:
1662b10f3f8SJordan Rose // it can be either a pointer to a single ExplodedNode, or a pointer to a
1672b10f3f8SJordan Rose // BumpVector allocated with the ExplodedGraph's allocator. This allows the
1682b10f3f8SJordan Rose // common case of single-node NodeGroups to be implemented with no extra memory.
1692b10f3f8SJordan Rose //
1702b10f3f8SJordan Rose // Consequently, each of the NodeGroup methods have up to four cases to handle:
1712b10f3f8SJordan Rose // 1. The flag is set and this group does not actually contain any nodes.
1722b10f3f8SJordan Rose // 2. The group is empty, in which case the storage value is null.
1732b10f3f8SJordan Rose // 3. The group contains a single node.
1742b10f3f8SJordan Rose // 4. The group contains more than one node.
17580547386SJordan Rose typedef BumpVector<ExplodedNode *> ExplodedNodeVector;
17680547386SJordan Rose typedef llvm::PointerUnion<ExplodedNode *, ExplodedNodeVector *> GroupStorage;
177fa0734ecSArgyrios Kyrtzidis 
178fa0734ecSArgyrios Kyrtzidis void ExplodedNode::addPredecessor(ExplodedNode *V, ExplodedGraph &G) {
179fa0734ecSArgyrios Kyrtzidis   assert (!V->isSink());
180fa0734ecSArgyrios Kyrtzidis   Preds.addNode(V, G);
181fa0734ecSArgyrios Kyrtzidis   V->Succs.addNode(this, G);
182fa0734ecSArgyrios Kyrtzidis #ifndef NDEBUG
183fa0734ecSArgyrios Kyrtzidis   if (NodeAuditor) NodeAuditor->AddEdge(V, this);
184fa0734ecSArgyrios Kyrtzidis #endif
185fa0734ecSArgyrios Kyrtzidis }
186fa0734ecSArgyrios Kyrtzidis 
187a40f8ebcSTed Kremenek void ExplodedNode::NodeGroup::replaceNode(ExplodedNode *node) {
1882b10f3f8SJordan Rose   assert(!getFlag());
1892b10f3f8SJordan Rose 
19080547386SJordan Rose   GroupStorage &Storage = reinterpret_cast<GroupStorage&>(P);
19180547386SJordan Rose   assert(Storage.is<ExplodedNode *>());
19280547386SJordan Rose   Storage = node;
19380547386SJordan Rose   assert(Storage.is<ExplodedNode *>());
194a40f8ebcSTed Kremenek }
195a40f8ebcSTed Kremenek 
196fa0734ecSArgyrios Kyrtzidis void ExplodedNode::NodeGroup::addNode(ExplodedNode *N, ExplodedGraph &G) {
197fa0734ecSArgyrios Kyrtzidis   assert(!getFlag());
198fa0734ecSArgyrios Kyrtzidis 
19980547386SJordan Rose   GroupStorage &Storage = reinterpret_cast<GroupStorage&>(P);
20080547386SJordan Rose   if (Storage.isNull()) {
20180547386SJordan Rose     Storage = N;
20280547386SJordan Rose     assert(Storage.is<ExplodedNode *>());
20380547386SJordan Rose     return;
20480547386SJordan Rose   }
205fa0734ecSArgyrios Kyrtzidis 
20680547386SJordan Rose   ExplodedNodeVector *V = Storage.dyn_cast<ExplodedNodeVector *>();
20780547386SJordan Rose 
20880547386SJordan Rose   if (!V) {
20980547386SJordan Rose     // Switch from single-node to multi-node representation.
21080547386SJordan Rose     ExplodedNode *Old = Storage.get<ExplodedNode *>();
21180547386SJordan Rose 
21280547386SJordan Rose     BumpVectorContext &Ctx = G.getNodeAllocator();
21380547386SJordan Rose     V = G.getAllocator().Allocate<ExplodedNodeVector>();
21480547386SJordan Rose     new (V) ExplodedNodeVector(Ctx, 4);
21580547386SJordan Rose     V->push_back(Old, Ctx);
21680547386SJordan Rose 
21780547386SJordan Rose     Storage = V;
21880547386SJordan Rose     assert(!getFlag());
21980547386SJordan Rose     assert(Storage.is<ExplodedNodeVector *>());
220fa0734ecSArgyrios Kyrtzidis   }
22180547386SJordan Rose 
22280547386SJordan Rose   V->push_back(N, G.getNodeAllocator());
223fa0734ecSArgyrios Kyrtzidis }
224fa0734ecSArgyrios Kyrtzidis 
225fa0734ecSArgyrios Kyrtzidis unsigned ExplodedNode::NodeGroup::size() const {
226fa0734ecSArgyrios Kyrtzidis   if (getFlag())
227fa0734ecSArgyrios Kyrtzidis     return 0;
228fa0734ecSArgyrios Kyrtzidis 
22980547386SJordan Rose   const GroupStorage &Storage = reinterpret_cast<const GroupStorage &>(P);
23080547386SJordan Rose   if (Storage.isNull())
23180547386SJordan Rose     return 0;
23280547386SJordan Rose   if (ExplodedNodeVector *V = Storage.dyn_cast<ExplodedNodeVector *>())
23380547386SJordan Rose     return V->size();
23480547386SJordan Rose   return 1;
235fa0734ecSArgyrios Kyrtzidis }
236fa0734ecSArgyrios Kyrtzidis 
23780547386SJordan Rose ExplodedNode * const *ExplodedNode::NodeGroup::begin() const {
238fa0734ecSArgyrios Kyrtzidis   if (getFlag())
23980547386SJordan Rose     return 0;
240fa0734ecSArgyrios Kyrtzidis 
24180547386SJordan Rose   const GroupStorage &Storage = reinterpret_cast<const GroupStorage &>(P);
24280547386SJordan Rose   if (Storage.isNull())
24380547386SJordan Rose     return 0;
24480547386SJordan Rose   if (ExplodedNodeVector *V = Storage.dyn_cast<ExplodedNodeVector *>())
24580547386SJordan Rose     return V->begin();
24680547386SJordan Rose   return Storage.getAddrOfPtr1();
247fa0734ecSArgyrios Kyrtzidis }
248fa0734ecSArgyrios Kyrtzidis 
24980547386SJordan Rose ExplodedNode * const *ExplodedNode::NodeGroup::end() const {
250fa0734ecSArgyrios Kyrtzidis   if (getFlag())
25180547386SJordan Rose     return 0;
252fa0734ecSArgyrios Kyrtzidis 
25380547386SJordan Rose   const GroupStorage &Storage = reinterpret_cast<const GroupStorage &>(P);
25480547386SJordan Rose   if (Storage.isNull())
25580547386SJordan Rose     return 0;
25680547386SJordan Rose   if (ExplodedNodeVector *V = Storage.dyn_cast<ExplodedNodeVector *>())
25780547386SJordan Rose     return V->end();
25880547386SJordan Rose   return Storage.getAddrOfPtr1() + 1;
259fa0734ecSArgyrios Kyrtzidis }
260fa0734ecSArgyrios Kyrtzidis 
261fa0734ecSArgyrios Kyrtzidis ExplodedNode *ExplodedGraph::getNode(const ProgramPoint &L,
26249b1e38eSTed Kremenek                                      ProgramStateRef State,
26349ea5bf5SAnna Zaks                                      bool IsSink,
26449ea5bf5SAnna Zaks                                      bool* IsNew) {
265fa0734ecSArgyrios Kyrtzidis   // Profile 'State' to determine if we already have an existing node.
266fa0734ecSArgyrios Kyrtzidis   llvm::FoldingSetNodeID profile;
267fa0734ecSArgyrios Kyrtzidis   void *InsertPos = 0;
268fa0734ecSArgyrios Kyrtzidis 
26949ea5bf5SAnna Zaks   NodeTy::Profile(profile, L, State, IsSink);
270fa0734ecSArgyrios Kyrtzidis   NodeTy* V = Nodes.FindNodeOrInsertPos(profile, InsertPos);
271fa0734ecSArgyrios Kyrtzidis 
272fa0734ecSArgyrios Kyrtzidis   if (!V) {
273a2aa929eSTed Kremenek     if (!FreeNodes.empty()) {
274a2aa929eSTed Kremenek       V = FreeNodes.back();
275a2aa929eSTed Kremenek       FreeNodes.pop_back();
276a40f8ebcSTed Kremenek     }
277a40f8ebcSTed Kremenek     else {
278fa0734ecSArgyrios Kyrtzidis       // Allocate a new node.
279fa0734ecSArgyrios Kyrtzidis       V = (NodeTy*) getAllocator().Allocate<NodeTy>();
280a40f8ebcSTed Kremenek     }
281a40f8ebcSTed Kremenek 
28249ea5bf5SAnna Zaks     new (V) NodeTy(L, State, IsSink);
283fa0734ecSArgyrios Kyrtzidis 
28435e55fe4STed Kremenek     if (reclaimNodes)
28535e55fe4STed Kremenek       ChangedNodes.push_back(V);
28635e55fe4STed Kremenek 
287fa0734ecSArgyrios Kyrtzidis     // Insert the node into the node set and return it.
288fa0734ecSArgyrios Kyrtzidis     Nodes.InsertNode(V, InsertPos);
289fa0734ecSArgyrios Kyrtzidis     ++NumNodes;
290fa0734ecSArgyrios Kyrtzidis 
291fa0734ecSArgyrios Kyrtzidis     if (IsNew) *IsNew = true;
292fa0734ecSArgyrios Kyrtzidis   }
293fa0734ecSArgyrios Kyrtzidis   else
294fa0734ecSArgyrios Kyrtzidis     if (IsNew) *IsNew = false;
295fa0734ecSArgyrios Kyrtzidis 
296fa0734ecSArgyrios Kyrtzidis   return V;
297fa0734ecSArgyrios Kyrtzidis }
298fa0734ecSArgyrios Kyrtzidis 
299fa0734ecSArgyrios Kyrtzidis std::pair<ExplodedGraph*, InterExplodedGraphMap*>
300fa0734ecSArgyrios Kyrtzidis ExplodedGraph::Trim(const NodeTy* const* NBeg, const NodeTy* const* NEnd,
301fa0734ecSArgyrios Kyrtzidis                llvm::DenseMap<const void*, const void*> *InverseMap) const {
302fa0734ecSArgyrios Kyrtzidis 
303fa0734ecSArgyrios Kyrtzidis   if (NBeg == NEnd)
304fa0734ecSArgyrios Kyrtzidis     return std::make_pair((ExplodedGraph*) 0,
305fa0734ecSArgyrios Kyrtzidis                           (InterExplodedGraphMap*) 0);
306fa0734ecSArgyrios Kyrtzidis 
307fa0734ecSArgyrios Kyrtzidis   assert (NBeg < NEnd);
308fa0734ecSArgyrios Kyrtzidis 
309e2778999SDylan Noblesmith   OwningPtr<InterExplodedGraphMap> M(new InterExplodedGraphMap());
310fa0734ecSArgyrios Kyrtzidis 
311fa0734ecSArgyrios Kyrtzidis   ExplodedGraph* G = TrimInternal(NBeg, NEnd, M.get(), InverseMap);
312fa0734ecSArgyrios Kyrtzidis 
313fa0734ecSArgyrios Kyrtzidis   return std::make_pair(static_cast<ExplodedGraph*>(G), M.take());
314fa0734ecSArgyrios Kyrtzidis }
315fa0734ecSArgyrios Kyrtzidis 
316fa0734ecSArgyrios Kyrtzidis ExplodedGraph*
317fa0734ecSArgyrios Kyrtzidis ExplodedGraph::TrimInternal(const ExplodedNode* const* BeginSources,
318fa0734ecSArgyrios Kyrtzidis                             const ExplodedNode* const* EndSources,
319fa0734ecSArgyrios Kyrtzidis                             InterExplodedGraphMap* M,
320fa0734ecSArgyrios Kyrtzidis                    llvm::DenseMap<const void*, const void*> *InverseMap) const {
321fa0734ecSArgyrios Kyrtzidis 
322fa0734ecSArgyrios Kyrtzidis   typedef llvm::DenseSet<const ExplodedNode*> Pass1Ty;
323fa0734ecSArgyrios Kyrtzidis   Pass1Ty Pass1;
324fa0734ecSArgyrios Kyrtzidis 
325fa0734ecSArgyrios Kyrtzidis   typedef llvm::DenseMap<const ExplodedNode*, ExplodedNode*> Pass2Ty;
326fa0734ecSArgyrios Kyrtzidis   Pass2Ty& Pass2 = M->M;
327fa0734ecSArgyrios Kyrtzidis 
3280e62c1ccSChris Lattner   SmallVector<const ExplodedNode*, 10> WL1, WL2;
329fa0734ecSArgyrios Kyrtzidis 
330fa0734ecSArgyrios Kyrtzidis   // ===- Pass 1 (reverse DFS) -===
331fa0734ecSArgyrios Kyrtzidis   for (const ExplodedNode* const* I = BeginSources; I != EndSources; ++I) {
332fa0734ecSArgyrios Kyrtzidis     assert(*I);
333fa0734ecSArgyrios Kyrtzidis     WL1.push_back(*I);
334fa0734ecSArgyrios Kyrtzidis   }
335fa0734ecSArgyrios Kyrtzidis 
336fa0734ecSArgyrios Kyrtzidis   // Process the first worklist until it is empty.  Because it is a std::list
337fa0734ecSArgyrios Kyrtzidis   // it acts like a FIFO queue.
338fa0734ecSArgyrios Kyrtzidis   while (!WL1.empty()) {
339fa0734ecSArgyrios Kyrtzidis     const ExplodedNode *N = WL1.back();
340fa0734ecSArgyrios Kyrtzidis     WL1.pop_back();
341fa0734ecSArgyrios Kyrtzidis 
342fa0734ecSArgyrios Kyrtzidis     // Have we already visited this node?  If so, continue to the next one.
343fa0734ecSArgyrios Kyrtzidis     if (Pass1.count(N))
344fa0734ecSArgyrios Kyrtzidis       continue;
345fa0734ecSArgyrios Kyrtzidis 
346fa0734ecSArgyrios Kyrtzidis     // Otherwise, mark this node as visited.
347fa0734ecSArgyrios Kyrtzidis     Pass1.insert(N);
348fa0734ecSArgyrios Kyrtzidis 
349fa0734ecSArgyrios Kyrtzidis     // If this is a root enqueue it to the second worklist.
350fa0734ecSArgyrios Kyrtzidis     if (N->Preds.empty()) {
351fa0734ecSArgyrios Kyrtzidis       WL2.push_back(N);
352fa0734ecSArgyrios Kyrtzidis       continue;
353fa0734ecSArgyrios Kyrtzidis     }
354fa0734ecSArgyrios Kyrtzidis 
355fa0734ecSArgyrios Kyrtzidis     // Visit our predecessors and enqueue them.
35680547386SJordan Rose     for (ExplodedNode::pred_iterator I = N->Preds.begin(), E = N->Preds.end();
35780547386SJordan Rose          I != E; ++I)
358fa0734ecSArgyrios Kyrtzidis       WL1.push_back(*I);
359fa0734ecSArgyrios Kyrtzidis   }
360fa0734ecSArgyrios Kyrtzidis 
361fa0734ecSArgyrios Kyrtzidis   // We didn't hit a root? Return with a null pointer for the new graph.
362fa0734ecSArgyrios Kyrtzidis   if (WL2.empty())
363fa0734ecSArgyrios Kyrtzidis     return 0;
364fa0734ecSArgyrios Kyrtzidis 
365fa0734ecSArgyrios Kyrtzidis   // Create an empty graph.
366fa0734ecSArgyrios Kyrtzidis   ExplodedGraph* G = MakeEmptyGraph();
367fa0734ecSArgyrios Kyrtzidis 
368fa0734ecSArgyrios Kyrtzidis   // ===- Pass 2 (forward DFS to construct the new graph) -===
369fa0734ecSArgyrios Kyrtzidis   while (!WL2.empty()) {
370fa0734ecSArgyrios Kyrtzidis     const ExplodedNode *N = WL2.back();
371fa0734ecSArgyrios Kyrtzidis     WL2.pop_back();
372fa0734ecSArgyrios Kyrtzidis 
373fa0734ecSArgyrios Kyrtzidis     // Skip this node if we have already processed it.
374fa0734ecSArgyrios Kyrtzidis     if (Pass2.find(N) != Pass2.end())
375fa0734ecSArgyrios Kyrtzidis       continue;
376fa0734ecSArgyrios Kyrtzidis 
377fa0734ecSArgyrios Kyrtzidis     // Create the corresponding node in the new graph and record the mapping
378fa0734ecSArgyrios Kyrtzidis     // from the old node to the new node.
37949ea5bf5SAnna Zaks     ExplodedNode *NewN = G->getNode(N->getLocation(), N->State, N->isSink(), 0);
380fa0734ecSArgyrios Kyrtzidis     Pass2[N] = NewN;
381fa0734ecSArgyrios Kyrtzidis 
382fa0734ecSArgyrios Kyrtzidis     // Also record the reverse mapping from the new node to the old node.
383fa0734ecSArgyrios Kyrtzidis     if (InverseMap) (*InverseMap)[NewN] = N;
384fa0734ecSArgyrios Kyrtzidis 
385fa0734ecSArgyrios Kyrtzidis     // If this node is a root, designate it as such in the graph.
386fa0734ecSArgyrios Kyrtzidis     if (N->Preds.empty())
387fa0734ecSArgyrios Kyrtzidis       G->addRoot(NewN);
388fa0734ecSArgyrios Kyrtzidis 
389fa0734ecSArgyrios Kyrtzidis     // In the case that some of the intended predecessors of NewN have already
390fa0734ecSArgyrios Kyrtzidis     // been created, we should hook them up as predecessors.
391fa0734ecSArgyrios Kyrtzidis 
392fa0734ecSArgyrios Kyrtzidis     // Walk through the predecessors of 'N' and hook up their corresponding
393fa0734ecSArgyrios Kyrtzidis     // nodes in the new graph (if any) to the freshly created node.
39480547386SJordan Rose     for (ExplodedNode::pred_iterator I = N->Preds.begin(), E = N->Preds.end();
39580547386SJordan Rose          I != E; ++I) {
396fa0734ecSArgyrios Kyrtzidis       Pass2Ty::iterator PI = Pass2.find(*I);
397fa0734ecSArgyrios Kyrtzidis       if (PI == Pass2.end())
398fa0734ecSArgyrios Kyrtzidis         continue;
399fa0734ecSArgyrios Kyrtzidis 
400fa0734ecSArgyrios Kyrtzidis       NewN->addPredecessor(PI->second, *G);
401fa0734ecSArgyrios Kyrtzidis     }
402fa0734ecSArgyrios Kyrtzidis 
403fa0734ecSArgyrios Kyrtzidis     // In the case that some of the intended successors of NewN have already
404fa0734ecSArgyrios Kyrtzidis     // been created, we should hook them up as successors.  Otherwise, enqueue
405fa0734ecSArgyrios Kyrtzidis     // the new nodes from the original graph that should have nodes created
406fa0734ecSArgyrios Kyrtzidis     // in the new graph.
40780547386SJordan Rose     for (ExplodedNode::succ_iterator I = N->Succs.begin(), E = N->Succs.end();
40880547386SJordan Rose          I != E; ++I) {
409fa0734ecSArgyrios Kyrtzidis       Pass2Ty::iterator PI = Pass2.find(*I);
410fa0734ecSArgyrios Kyrtzidis       if (PI != Pass2.end()) {
411fa0734ecSArgyrios Kyrtzidis         PI->second->addPredecessor(NewN, *G);
412fa0734ecSArgyrios Kyrtzidis         continue;
413fa0734ecSArgyrios Kyrtzidis       }
414fa0734ecSArgyrios Kyrtzidis 
415fa0734ecSArgyrios Kyrtzidis       // Enqueue nodes to the worklist that were marked during pass 1.
416fa0734ecSArgyrios Kyrtzidis       if (Pass1.count(*I))
417fa0734ecSArgyrios Kyrtzidis         WL2.push_back(*I);
418fa0734ecSArgyrios Kyrtzidis     }
419fa0734ecSArgyrios Kyrtzidis   }
420fa0734ecSArgyrios Kyrtzidis 
421fa0734ecSArgyrios Kyrtzidis   return G;
422fa0734ecSArgyrios Kyrtzidis }
423fa0734ecSArgyrios Kyrtzidis 
42468e081d6SDavid Blaikie void InterExplodedGraphMap::anchor() { }
42568e081d6SDavid Blaikie 
426fa0734ecSArgyrios Kyrtzidis ExplodedNode*
427fa0734ecSArgyrios Kyrtzidis InterExplodedGraphMap::getMappedNode(const ExplodedNode *N) const {
428fa0734ecSArgyrios Kyrtzidis   llvm::DenseMap<const ExplodedNode*, ExplodedNode*>::const_iterator I =
429fa0734ecSArgyrios Kyrtzidis     M.find(N);
430fa0734ecSArgyrios Kyrtzidis 
431fa0734ecSArgyrios Kyrtzidis   return I == M.end() ? 0 : I->second;
432fa0734ecSArgyrios Kyrtzidis }
433fa0734ecSArgyrios Kyrtzidis 
434