284 lines
		
	
	
		
			9.0 KiB
		
	
	
	
		
			C++
		
	
	
	
			
		
		
	
	
			284 lines
		
	
	
		
			9.0 KiB
		
	
	
	
		
			C++
		
	
	
	
//==- UninitializedValues.cpp - Find Unintialized Values --------*- C++ --*-==//
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//
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//                     The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This file implements Uninitialized Values analysis for source-level CFGs.
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//
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//===----------------------------------------------------------------------===//
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#include "clang/Analysis/Analyses/UninitializedValues.h"
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#include "clang/Analysis/Visitors/CFGRecStmtDeclVisitor.h"
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#include "clang/Analysis/LocalCheckers.h"
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#include "clang/Basic/Diagnostic.h"
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#include "clang/AST/ASTContext.h"
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#include "clang/Analysis/FlowSensitive/DataflowSolver.h"
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#include "llvm/Support/Compiler.h"
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#include "llvm/ADT/SmallPtrSet.h"
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using namespace clang;
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//===----------------------------------------------------------------------===//
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// Dataflow initialization logic.
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//===----------------------------------------------------------------------===//      
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namespace {
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class VISIBILITY_HIDDEN RegisterDecls
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  : public CFGRecStmtDeclVisitor<RegisterDecls> {  
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  UninitializedValues::AnalysisDataTy& AD;
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public:
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  RegisterDecls(UninitializedValues::AnalysisDataTy& ad) :  AD(ad) {}
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  void VisitVarDecl(VarDecl* VD) { AD.Register(VD); }
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  CFG& getCFG() { return AD.getCFG(); }
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};
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} // end anonymous namespace
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void UninitializedValues::InitializeValues(const CFG& cfg) {
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  RegisterDecls R(getAnalysisData());
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  cfg.VisitBlockStmts(R);
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}
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//===----------------------------------------------------------------------===//
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// Transfer functions.
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//===----------------------------------------------------------------------===//      
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namespace {
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class VISIBILITY_HIDDEN TransferFuncs
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  : public CFGStmtVisitor<TransferFuncs,bool> {
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  UninitializedValues::ValTy V;
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  UninitializedValues::AnalysisDataTy& AD;
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public:
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  TransferFuncs(UninitializedValues::AnalysisDataTy& ad) : AD(ad) {}
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  UninitializedValues::ValTy& getVal() { return V; }
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  CFG& getCFG() { return AD.getCFG(); }
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  void SetTopValue(UninitializedValues::ValTy& X) {
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    X.resetValues(AD);
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  }
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  bool VisitDeclRefExpr(DeclRefExpr* DR);
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  bool VisitBinaryOperator(BinaryOperator* B);
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  bool VisitUnaryOperator(UnaryOperator* U);
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  bool VisitStmt(Stmt* S);
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  bool VisitCallExpr(CallExpr* C);
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  bool VisitDeclStmt(DeclStmt* D);
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  bool VisitConditionalOperator(ConditionalOperator* C);
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  bool Visit(Stmt *S);
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  bool BlockStmt_VisitExpr(Expr* E);
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  void VisitTerminator(CFGBlock* B) { }
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};
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static const bool Initialized = true;
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static const bool Uninitialized = false;  
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bool TransferFuncs::VisitDeclRefExpr(DeclRefExpr* DR) {
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  if (VarDecl* VD = dyn_cast<VarDecl>(DR->getDecl()))
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    if (VD->isBlockVarDecl()) {
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      if (AD.Observer)
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        AD.Observer->ObserveDeclRefExpr(V, AD, DR, VD);
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      // Pseudo-hack to prevent cascade of warnings.  If an accessed variable
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      // is uninitialized, then we are already going to flag a warning for
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      // this variable, which a "source" of uninitialized values.
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      // We can otherwise do a full "taint" of uninitialized values.  The
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      // client has both options by toggling AD.FullUninitTaint.
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      if (AD.FullUninitTaint)
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        return V(VD,AD);
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    }
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  return Initialized;
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}
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static VarDecl* FindBlockVarDecl(Expr* E) {
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  // Blast through casts and parentheses to find any DeclRefExprs that
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  // refer to a block VarDecl.
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  if (DeclRefExpr* DR = dyn_cast<DeclRefExpr>(E->IgnoreParenCasts()))
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    if (VarDecl* VD = dyn_cast<VarDecl>(DR->getDecl()))      
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      if (VD->isBlockVarDecl()) return VD;
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  return NULL;
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}
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bool TransferFuncs::VisitBinaryOperator(BinaryOperator* B) {
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  if (VarDecl* VD = FindBlockVarDecl(B->getLHS()))
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    if (B->isAssignmentOp()) {
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      if (B->getOpcode() == BinaryOperator::Assign)
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        return V(VD,AD) = Visit(B->getRHS());
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      else // Handle +=, -=, *=, etc.  We do want '&', not '&&'.
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        return V(VD,AD) = Visit(B->getLHS()) & Visit(B->getRHS());
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    }
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  return VisitStmt(B);
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}
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bool TransferFuncs::VisitDeclStmt(DeclStmt* S) {
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  for (DeclStmt::decl_iterator I=S->decl_begin(), E=S->decl_end(); I!=E; ++I) {
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    VarDecl *VD = dyn_cast<VarDecl>(*I);
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    if (VD && VD->isBlockVarDecl()) {
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      if (Stmt* I = VD->getInit()) 
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        V(VD,AD) = AD.FullUninitTaint ? V(cast<Expr>(I),AD) : Initialized;
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      else {
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        // Special case for declarations of array types.  For things like:
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        //
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        //  char x[10];
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        //
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        // we should treat "x" as being initialized, because the variable
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        // "x" really refers to the memory block.  Clearly x[1] is
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        // uninitialized, but expressions like "(char *) x" really do refer to 
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        // an initialized value.  This simple dataflow analysis does not reason 
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        // about the contents of arrays, although it could be potentially
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        // extended to do so if the array were of constant size.
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        if (VD->getType()->isArrayType())
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          V(VD,AD) = Initialized;
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        else        
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          V(VD,AD) = Uninitialized;
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      }
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    }
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  }
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  return Uninitialized; // Value is never consumed.
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}
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bool TransferFuncs::VisitCallExpr(CallExpr* C) {
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  VisitChildren(C);
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  return Initialized;
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}
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bool TransferFuncs::VisitUnaryOperator(UnaryOperator* U) {
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  switch (U->getOpcode()) {
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    case UnaryOperator::AddrOf: {
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      VarDecl* VD = FindBlockVarDecl(U->getSubExpr());
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      if (VD && VD->isBlockVarDecl())
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        return V(VD,AD) = Initialized;
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      break;
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    }
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    case UnaryOperator::SizeOf:
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      return Initialized;
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    default:
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      break;
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  }
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  return Visit(U->getSubExpr());
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}
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bool TransferFuncs::VisitConditionalOperator(ConditionalOperator* C) {
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  Visit(C->getCond());
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  bool rhsResult = Visit(C->getRHS());
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  // Handle the GNU extension for missing LHS.
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  if (Expr *lhs = C->getLHS())
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    return Visit(lhs) & rhsResult; // Yes: we want &, not &&.
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  else
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    return rhsResult;
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}
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bool TransferFuncs::VisitStmt(Stmt* S) {
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  bool x = Initialized;
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  // We don't stop at the first subexpression that is Uninitialized because
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  // evaluating some subexpressions may result in propogating "Uninitialized"
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  // or "Initialized" to variables referenced in the other subexpressions.
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  for (Stmt::child_iterator I=S->child_begin(), E=S->child_end(); I!=E; ++I)
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    if (*I && Visit(*I) == Uninitialized) x = Uninitialized;
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  return x;
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}
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bool TransferFuncs::Visit(Stmt *S) {
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  if (AD.isTracked(static_cast<Expr*>(S))) return V(static_cast<Expr*>(S),AD);
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  else return static_cast<CFGStmtVisitor<TransferFuncs,bool>*>(this)->Visit(S);
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}
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bool TransferFuncs::BlockStmt_VisitExpr(Expr* E) {
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  bool x = static_cast<CFGStmtVisitor<TransferFuncs,bool>*>(this)->Visit(E);  
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  if (AD.isTracked(E)) V(E,AD) = x;
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  return x;
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}
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} // end anonymous namespace
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//===----------------------------------------------------------------------===//
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// Merge operator.
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//
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//  In our transfer functions we take the approach that any
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//  combination of unintialized values, e.g. Unitialized + ___ = Unitialized.
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//
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//  Merges take the same approach, preferring soundness.  At a confluence point,
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//  if any predecessor has a variable marked uninitialized, the value is
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//  uninitialized at the confluence point.
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//===----------------------------------------------------------------------===//      
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namespace {
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  typedef ExprDeclBitVector_Types::Intersect Merge;
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  typedef DataflowSolver<UninitializedValues,TransferFuncs,Merge> Solver;
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}
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//===----------------------------------------------------------------------===//
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// Unitialized values checker.   Scan an AST and flag variable uses
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//===----------------------------------------------------------------------===//      
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UninitializedValues_ValueTypes::ObserverTy::~ObserverTy() {}
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namespace {
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class VISIBILITY_HIDDEN UninitializedValuesChecker
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  : public UninitializedValues::ObserverTy {
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  ASTContext &Ctx;
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  Diagnostic &Diags;
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  llvm::SmallPtrSet<VarDecl*,10> AlreadyWarned;
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public:
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  UninitializedValuesChecker(ASTContext &ctx, Diagnostic &diags)
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    : Ctx(ctx), Diags(diags) {}
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  virtual void ObserveDeclRefExpr(UninitializedValues::ValTy& V,
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                                  UninitializedValues::AnalysisDataTy& AD,
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                                  DeclRefExpr* DR, VarDecl* VD) {
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    assert ( AD.isTracked(VD) && "Unknown VarDecl.");
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    if (V(VD,AD) == Uninitialized)
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      if (AlreadyWarned.insert(VD))
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        Diags.Report(Ctx.getFullLoc(DR->getSourceRange().getBegin()),
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                     diag::warn_uninit_val);
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  }
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};
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} // end anonymous namespace
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namespace clang {
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void CheckUninitializedValues(CFG& cfg, ASTContext &Ctx, Diagnostic &Diags,
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                              bool FullUninitTaint) {
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  // Compute the unitialized values information.
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  UninitializedValues U(cfg);
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  U.getAnalysisData().FullUninitTaint = FullUninitTaint;
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  Solver S(U);
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  S.runOnCFG(cfg);
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  // Scan for DeclRefExprs that use uninitialized values.
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  UninitializedValuesChecker Observer(Ctx,Diags);
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  U.getAnalysisData().Observer = &Observer;
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  S.runOnAllBlocks(cfg);
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}
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} // end namespace clang
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