ThreadSafetyCommon.cpp 35 KB

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  1. //===- ThreadSafetyCommon.cpp ---------------------------------------------===//
  2. //
  3. // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
  4. // See https://llvm.org/LICENSE.txt for license information.
  5. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  6. //
  7. //===----------------------------------------------------------------------===//
  8. //
  9. // Implementation of the interfaces declared in ThreadSafetyCommon.h
  10. //
  11. //===----------------------------------------------------------------------===//
  12. #include "clang/Analysis/Analyses/ThreadSafetyCommon.h"
  13. #include "clang/AST/Attr.h"
  14. #include "clang/AST/Decl.h"
  15. #include "clang/AST/DeclCXX.h"
  16. #include "clang/AST/DeclGroup.h"
  17. #include "clang/AST/DeclObjC.h"
  18. #include "clang/AST/Expr.h"
  19. #include "clang/AST/ExprCXX.h"
  20. #include "clang/AST/OperationKinds.h"
  21. #include "clang/AST/Stmt.h"
  22. #include "clang/AST/Type.h"
  23. #include "clang/Analysis/Analyses/ThreadSafetyTIL.h"
  24. #include "clang/Analysis/CFG.h"
  25. #include "clang/Basic/LLVM.h"
  26. #include "clang/Basic/OperatorKinds.h"
  27. #include "clang/Basic/Specifiers.h"
  28. #include "llvm/ADT/StringExtras.h"
  29. #include "llvm/ADT/StringRef.h"
  30. #include "llvm/Support/Casting.h"
  31. #include <algorithm>
  32. #include <cassert>
  33. #include <string>
  34. #include <utility>
  35. using namespace clang;
  36. using namespace threadSafety;
  37. // From ThreadSafetyUtil.h
  38. std::string threadSafety::getSourceLiteralString(const Expr *CE) {
  39. switch (CE->getStmtClass()) {
  40. case Stmt::IntegerLiteralClass:
  41. return toString(cast<IntegerLiteral>(CE)->getValue(), 10, true);
  42. case Stmt::StringLiteralClass: {
  43. std::string ret("\"");
  44. ret += cast<StringLiteral>(CE)->getString();
  45. ret += "\"";
  46. return ret;
  47. }
  48. case Stmt::CharacterLiteralClass:
  49. case Stmt::CXXNullPtrLiteralExprClass:
  50. case Stmt::GNUNullExprClass:
  51. case Stmt::CXXBoolLiteralExprClass:
  52. case Stmt::FloatingLiteralClass:
  53. case Stmt::ImaginaryLiteralClass:
  54. case Stmt::ObjCStringLiteralClass:
  55. default:
  56. return "#lit";
  57. }
  58. }
  59. // Return true if E is a variable that points to an incomplete Phi node.
  60. static bool isIncompletePhi(const til::SExpr *E) {
  61. if (const auto *Ph = dyn_cast<til::Phi>(E))
  62. return Ph->status() == til::Phi::PH_Incomplete;
  63. return false;
  64. }
  65. using CallingContext = SExprBuilder::CallingContext;
  66. til::SExpr *SExprBuilder::lookupStmt(const Stmt *S) {
  67. auto It = SMap.find(S);
  68. if (It != SMap.end())
  69. return It->second;
  70. return nullptr;
  71. }
  72. til::SCFG *SExprBuilder::buildCFG(CFGWalker &Walker) {
  73. Walker.walk(*this);
  74. return Scfg;
  75. }
  76. static bool isCalleeArrow(const Expr *E) {
  77. const auto *ME = dyn_cast<MemberExpr>(E->IgnoreParenCasts());
  78. return ME ? ME->isArrow() : false;
  79. }
  80. static StringRef ClassifyDiagnostic(const CapabilityAttr *A) {
  81. return A->getName();
  82. }
  83. static StringRef ClassifyDiagnostic(QualType VDT) {
  84. // We need to look at the declaration of the type of the value to determine
  85. // which it is. The type should either be a record or a typedef, or a pointer
  86. // or reference thereof.
  87. if (const auto *RT = VDT->getAs<RecordType>()) {
  88. if (const auto *RD = RT->getDecl())
  89. if (const auto *CA = RD->getAttr<CapabilityAttr>())
  90. return ClassifyDiagnostic(CA);
  91. } else if (const auto *TT = VDT->getAs<TypedefType>()) {
  92. if (const auto *TD = TT->getDecl())
  93. if (const auto *CA = TD->getAttr<CapabilityAttr>())
  94. return ClassifyDiagnostic(CA);
  95. } else if (VDT->isPointerType() || VDT->isReferenceType())
  96. return ClassifyDiagnostic(VDT->getPointeeType());
  97. return "mutex";
  98. }
  99. /// Translate a clang expression in an attribute to a til::SExpr.
  100. /// Constructs the context from D, DeclExp, and SelfDecl.
  101. ///
  102. /// \param AttrExp The expression to translate.
  103. /// \param D The declaration to which the attribute is attached.
  104. /// \param DeclExp An expression involving the Decl to which the attribute
  105. /// is attached. E.g. the call to a function.
  106. /// \param Self S-expression to substitute for a \ref CXXThisExpr.
  107. CapabilityExpr SExprBuilder::translateAttrExpr(const Expr *AttrExp,
  108. const NamedDecl *D,
  109. const Expr *DeclExp,
  110. til::SExpr *Self) {
  111. // If we are processing a raw attribute expression, with no substitutions.
  112. if (!DeclExp && !Self)
  113. return translateAttrExpr(AttrExp, nullptr);
  114. CallingContext Ctx(nullptr, D);
  115. // Examine DeclExp to find SelfArg and FunArgs, which are used to substitute
  116. // for formal parameters when we call buildMutexID later.
  117. if (!DeclExp)
  118. /* We'll use Self. */;
  119. else if (const auto *ME = dyn_cast<MemberExpr>(DeclExp)) {
  120. Ctx.SelfArg = ME->getBase();
  121. Ctx.SelfArrow = ME->isArrow();
  122. } else if (const auto *CE = dyn_cast<CXXMemberCallExpr>(DeclExp)) {
  123. Ctx.SelfArg = CE->getImplicitObjectArgument();
  124. Ctx.SelfArrow = isCalleeArrow(CE->getCallee());
  125. Ctx.NumArgs = CE->getNumArgs();
  126. Ctx.FunArgs = CE->getArgs();
  127. } else if (const auto *CE = dyn_cast<CallExpr>(DeclExp)) {
  128. Ctx.NumArgs = CE->getNumArgs();
  129. Ctx.FunArgs = CE->getArgs();
  130. } else if (const auto *CE = dyn_cast<CXXConstructExpr>(DeclExp)) {
  131. Ctx.SelfArg = nullptr; // Will be set below
  132. Ctx.NumArgs = CE->getNumArgs();
  133. Ctx.FunArgs = CE->getArgs();
  134. }
  135. if (Self) {
  136. assert(!Ctx.SelfArg && "Ambiguous self argument");
  137. Ctx.SelfArg = Self;
  138. // If the attribute has no arguments, then assume the argument is "this".
  139. if (!AttrExp)
  140. return CapabilityExpr(
  141. Self, ClassifyDiagnostic(cast<CXXMethodDecl>(D)->getThisObjectType()),
  142. false);
  143. else // For most attributes.
  144. return translateAttrExpr(AttrExp, &Ctx);
  145. }
  146. // If the attribute has no arguments, then assume the argument is "this".
  147. if (!AttrExp)
  148. return translateAttrExpr(cast<const Expr *>(Ctx.SelfArg), nullptr);
  149. else // For most attributes.
  150. return translateAttrExpr(AttrExp, &Ctx);
  151. }
  152. /// Translate a clang expression in an attribute to a til::SExpr.
  153. // This assumes a CallingContext has already been created.
  154. CapabilityExpr SExprBuilder::translateAttrExpr(const Expr *AttrExp,
  155. CallingContext *Ctx) {
  156. if (!AttrExp)
  157. return CapabilityExpr();
  158. if (const auto* SLit = dyn_cast<StringLiteral>(AttrExp)) {
  159. if (SLit->getString() == StringRef("*"))
  160. // The "*" expr is a universal lock, which essentially turns off
  161. // checks until it is removed from the lockset.
  162. return CapabilityExpr(new (Arena) til::Wildcard(), StringRef("wildcard"),
  163. false);
  164. else
  165. // Ignore other string literals for now.
  166. return CapabilityExpr();
  167. }
  168. bool Neg = false;
  169. if (const auto *OE = dyn_cast<CXXOperatorCallExpr>(AttrExp)) {
  170. if (OE->getOperator() == OO_Exclaim) {
  171. Neg = true;
  172. AttrExp = OE->getArg(0);
  173. }
  174. }
  175. else if (const auto *UO = dyn_cast<UnaryOperator>(AttrExp)) {
  176. if (UO->getOpcode() == UO_LNot) {
  177. Neg = true;
  178. AttrExp = UO->getSubExpr();
  179. }
  180. }
  181. til::SExpr *E = translate(AttrExp, Ctx);
  182. // Trap mutex expressions like nullptr, or 0.
  183. // Any literal value is nonsense.
  184. if (!E || isa<til::Literal>(E))
  185. return CapabilityExpr();
  186. StringRef Kind = ClassifyDiagnostic(AttrExp->getType());
  187. // Hack to deal with smart pointers -- strip off top-level pointer casts.
  188. if (const auto *CE = dyn_cast<til::Cast>(E)) {
  189. if (CE->castOpcode() == til::CAST_objToPtr)
  190. return CapabilityExpr(CE->expr(), Kind, Neg);
  191. }
  192. return CapabilityExpr(E, Kind, Neg);
  193. }
  194. til::LiteralPtr *SExprBuilder::createVariable(const VarDecl *VD) {
  195. return new (Arena) til::LiteralPtr(VD);
  196. }
  197. std::pair<til::LiteralPtr *, StringRef>
  198. SExprBuilder::createThisPlaceholder(const Expr *Exp) {
  199. return {new (Arena) til::LiteralPtr(nullptr),
  200. ClassifyDiagnostic(Exp->getType())};
  201. }
  202. // Translate a clang statement or expression to a TIL expression.
  203. // Also performs substitution of variables; Ctx provides the context.
  204. // Dispatches on the type of S.
  205. til::SExpr *SExprBuilder::translate(const Stmt *S, CallingContext *Ctx) {
  206. if (!S)
  207. return nullptr;
  208. // Check if S has already been translated and cached.
  209. // This handles the lookup of SSA names for DeclRefExprs here.
  210. if (til::SExpr *E = lookupStmt(S))
  211. return E;
  212. switch (S->getStmtClass()) {
  213. case Stmt::DeclRefExprClass:
  214. return translateDeclRefExpr(cast<DeclRefExpr>(S), Ctx);
  215. case Stmt::CXXThisExprClass:
  216. return translateCXXThisExpr(cast<CXXThisExpr>(S), Ctx);
  217. case Stmt::MemberExprClass:
  218. return translateMemberExpr(cast<MemberExpr>(S), Ctx);
  219. case Stmt::ObjCIvarRefExprClass:
  220. return translateObjCIVarRefExpr(cast<ObjCIvarRefExpr>(S), Ctx);
  221. case Stmt::CallExprClass:
  222. return translateCallExpr(cast<CallExpr>(S), Ctx);
  223. case Stmt::CXXMemberCallExprClass:
  224. return translateCXXMemberCallExpr(cast<CXXMemberCallExpr>(S), Ctx);
  225. case Stmt::CXXOperatorCallExprClass:
  226. return translateCXXOperatorCallExpr(cast<CXXOperatorCallExpr>(S), Ctx);
  227. case Stmt::UnaryOperatorClass:
  228. return translateUnaryOperator(cast<UnaryOperator>(S), Ctx);
  229. case Stmt::BinaryOperatorClass:
  230. case Stmt::CompoundAssignOperatorClass:
  231. return translateBinaryOperator(cast<BinaryOperator>(S), Ctx);
  232. case Stmt::ArraySubscriptExprClass:
  233. return translateArraySubscriptExpr(cast<ArraySubscriptExpr>(S), Ctx);
  234. case Stmt::ConditionalOperatorClass:
  235. return translateAbstractConditionalOperator(
  236. cast<ConditionalOperator>(S), Ctx);
  237. case Stmt::BinaryConditionalOperatorClass:
  238. return translateAbstractConditionalOperator(
  239. cast<BinaryConditionalOperator>(S), Ctx);
  240. // We treat these as no-ops
  241. case Stmt::ConstantExprClass:
  242. return translate(cast<ConstantExpr>(S)->getSubExpr(), Ctx);
  243. case Stmt::ParenExprClass:
  244. return translate(cast<ParenExpr>(S)->getSubExpr(), Ctx);
  245. case Stmt::ExprWithCleanupsClass:
  246. return translate(cast<ExprWithCleanups>(S)->getSubExpr(), Ctx);
  247. case Stmt::CXXBindTemporaryExprClass:
  248. return translate(cast<CXXBindTemporaryExpr>(S)->getSubExpr(), Ctx);
  249. case Stmt::MaterializeTemporaryExprClass:
  250. return translate(cast<MaterializeTemporaryExpr>(S)->getSubExpr(), Ctx);
  251. // Collect all literals
  252. case Stmt::CharacterLiteralClass:
  253. case Stmt::CXXNullPtrLiteralExprClass:
  254. case Stmt::GNUNullExprClass:
  255. case Stmt::CXXBoolLiteralExprClass:
  256. case Stmt::FloatingLiteralClass:
  257. case Stmt::ImaginaryLiteralClass:
  258. case Stmt::IntegerLiteralClass:
  259. case Stmt::StringLiteralClass:
  260. case Stmt::ObjCStringLiteralClass:
  261. return new (Arena) til::Literal(cast<Expr>(S));
  262. case Stmt::DeclStmtClass:
  263. return translateDeclStmt(cast<DeclStmt>(S), Ctx);
  264. default:
  265. break;
  266. }
  267. if (const auto *CE = dyn_cast<CastExpr>(S))
  268. return translateCastExpr(CE, Ctx);
  269. return new (Arena) til::Undefined(S);
  270. }
  271. til::SExpr *SExprBuilder::translateDeclRefExpr(const DeclRefExpr *DRE,
  272. CallingContext *Ctx) {
  273. const auto *VD = cast<ValueDecl>(DRE->getDecl()->getCanonicalDecl());
  274. // Function parameters require substitution and/or renaming.
  275. if (const auto *PV = dyn_cast<ParmVarDecl>(VD)) {
  276. unsigned I = PV->getFunctionScopeIndex();
  277. const DeclContext *D = PV->getDeclContext();
  278. if (Ctx && Ctx->FunArgs) {
  279. const Decl *Canonical = Ctx->AttrDecl->getCanonicalDecl();
  280. if (isa<FunctionDecl>(D)
  281. ? (cast<FunctionDecl>(D)->getCanonicalDecl() == Canonical)
  282. : (cast<ObjCMethodDecl>(D)->getCanonicalDecl() == Canonical)) {
  283. // Substitute call arguments for references to function parameters
  284. assert(I < Ctx->NumArgs);
  285. return translate(Ctx->FunArgs[I], Ctx->Prev);
  286. }
  287. }
  288. // Map the param back to the param of the original function declaration
  289. // for consistent comparisons.
  290. VD = isa<FunctionDecl>(D)
  291. ? cast<FunctionDecl>(D)->getCanonicalDecl()->getParamDecl(I)
  292. : cast<ObjCMethodDecl>(D)->getCanonicalDecl()->getParamDecl(I);
  293. }
  294. // For non-local variables, treat it as a reference to a named object.
  295. return new (Arena) til::LiteralPtr(VD);
  296. }
  297. til::SExpr *SExprBuilder::translateCXXThisExpr(const CXXThisExpr *TE,
  298. CallingContext *Ctx) {
  299. // Substitute for 'this'
  300. if (Ctx && Ctx->SelfArg) {
  301. if (const auto *SelfArg = dyn_cast<const Expr *>(Ctx->SelfArg))
  302. return translate(SelfArg, Ctx->Prev);
  303. else
  304. return cast<til::SExpr *>(Ctx->SelfArg);
  305. }
  306. assert(SelfVar && "We have no variable for 'this'!");
  307. return SelfVar;
  308. }
  309. static const ValueDecl *getValueDeclFromSExpr(const til::SExpr *E) {
  310. if (const auto *V = dyn_cast<til::Variable>(E))
  311. return V->clangDecl();
  312. if (const auto *Ph = dyn_cast<til::Phi>(E))
  313. return Ph->clangDecl();
  314. if (const auto *P = dyn_cast<til::Project>(E))
  315. return P->clangDecl();
  316. if (const auto *L = dyn_cast<til::LiteralPtr>(E))
  317. return L->clangDecl();
  318. return nullptr;
  319. }
  320. static bool hasAnyPointerType(const til::SExpr *E) {
  321. auto *VD = getValueDeclFromSExpr(E);
  322. if (VD && VD->getType()->isAnyPointerType())
  323. return true;
  324. if (const auto *C = dyn_cast<til::Cast>(E))
  325. return C->castOpcode() == til::CAST_objToPtr;
  326. return false;
  327. }
  328. // Grab the very first declaration of virtual method D
  329. static const CXXMethodDecl *getFirstVirtualDecl(const CXXMethodDecl *D) {
  330. while (true) {
  331. D = D->getCanonicalDecl();
  332. auto OverriddenMethods = D->overridden_methods();
  333. if (OverriddenMethods.begin() == OverriddenMethods.end())
  334. return D; // Method does not override anything
  335. // FIXME: this does not work with multiple inheritance.
  336. D = *OverriddenMethods.begin();
  337. }
  338. return nullptr;
  339. }
  340. til::SExpr *SExprBuilder::translateMemberExpr(const MemberExpr *ME,
  341. CallingContext *Ctx) {
  342. til::SExpr *BE = translate(ME->getBase(), Ctx);
  343. til::SExpr *E = new (Arena) til::SApply(BE);
  344. const auto *D = cast<ValueDecl>(ME->getMemberDecl()->getCanonicalDecl());
  345. if (const auto *VD = dyn_cast<CXXMethodDecl>(D))
  346. D = getFirstVirtualDecl(VD);
  347. til::Project *P = new (Arena) til::Project(E, D);
  348. if (hasAnyPointerType(BE))
  349. P->setArrow(true);
  350. return P;
  351. }
  352. til::SExpr *SExprBuilder::translateObjCIVarRefExpr(const ObjCIvarRefExpr *IVRE,
  353. CallingContext *Ctx) {
  354. til::SExpr *BE = translate(IVRE->getBase(), Ctx);
  355. til::SExpr *E = new (Arena) til::SApply(BE);
  356. const auto *D = cast<ObjCIvarDecl>(IVRE->getDecl()->getCanonicalDecl());
  357. til::Project *P = new (Arena) til::Project(E, D);
  358. if (hasAnyPointerType(BE))
  359. P->setArrow(true);
  360. return P;
  361. }
  362. til::SExpr *SExprBuilder::translateCallExpr(const CallExpr *CE,
  363. CallingContext *Ctx,
  364. const Expr *SelfE) {
  365. if (CapabilityExprMode) {
  366. // Handle LOCK_RETURNED
  367. if (const FunctionDecl *FD = CE->getDirectCallee()) {
  368. FD = FD->getMostRecentDecl();
  369. if (LockReturnedAttr *At = FD->getAttr<LockReturnedAttr>()) {
  370. CallingContext LRCallCtx(Ctx);
  371. LRCallCtx.AttrDecl = CE->getDirectCallee();
  372. LRCallCtx.SelfArg = SelfE;
  373. LRCallCtx.NumArgs = CE->getNumArgs();
  374. LRCallCtx.FunArgs = CE->getArgs();
  375. return const_cast<til::SExpr *>(
  376. translateAttrExpr(At->getArg(), &LRCallCtx).sexpr());
  377. }
  378. }
  379. }
  380. til::SExpr *E = translate(CE->getCallee(), Ctx);
  381. for (const auto *Arg : CE->arguments()) {
  382. til::SExpr *A = translate(Arg, Ctx);
  383. E = new (Arena) til::Apply(E, A);
  384. }
  385. return new (Arena) til::Call(E, CE);
  386. }
  387. til::SExpr *SExprBuilder::translateCXXMemberCallExpr(
  388. const CXXMemberCallExpr *ME, CallingContext *Ctx) {
  389. if (CapabilityExprMode) {
  390. // Ignore calls to get() on smart pointers.
  391. if (ME->getMethodDecl()->getNameAsString() == "get" &&
  392. ME->getNumArgs() == 0) {
  393. auto *E = translate(ME->getImplicitObjectArgument(), Ctx);
  394. return new (Arena) til::Cast(til::CAST_objToPtr, E);
  395. // return E;
  396. }
  397. }
  398. return translateCallExpr(cast<CallExpr>(ME), Ctx,
  399. ME->getImplicitObjectArgument());
  400. }
  401. til::SExpr *SExprBuilder::translateCXXOperatorCallExpr(
  402. const CXXOperatorCallExpr *OCE, CallingContext *Ctx) {
  403. if (CapabilityExprMode) {
  404. // Ignore operator * and operator -> on smart pointers.
  405. OverloadedOperatorKind k = OCE->getOperator();
  406. if (k == OO_Star || k == OO_Arrow) {
  407. auto *E = translate(OCE->getArg(0), Ctx);
  408. return new (Arena) til::Cast(til::CAST_objToPtr, E);
  409. // return E;
  410. }
  411. }
  412. return translateCallExpr(cast<CallExpr>(OCE), Ctx);
  413. }
  414. til::SExpr *SExprBuilder::translateUnaryOperator(const UnaryOperator *UO,
  415. CallingContext *Ctx) {
  416. switch (UO->getOpcode()) {
  417. case UO_PostInc:
  418. case UO_PostDec:
  419. case UO_PreInc:
  420. case UO_PreDec:
  421. return new (Arena) til::Undefined(UO);
  422. case UO_AddrOf:
  423. if (CapabilityExprMode) {
  424. // interpret &Graph::mu_ as an existential.
  425. if (const auto *DRE = dyn_cast<DeclRefExpr>(UO->getSubExpr())) {
  426. if (DRE->getDecl()->isCXXInstanceMember()) {
  427. // This is a pointer-to-member expression, e.g. &MyClass::mu_.
  428. // We interpret this syntax specially, as a wildcard.
  429. auto *W = new (Arena) til::Wildcard();
  430. return new (Arena) til::Project(W, DRE->getDecl());
  431. }
  432. }
  433. }
  434. // otherwise, & is a no-op
  435. return translate(UO->getSubExpr(), Ctx);
  436. // We treat these as no-ops
  437. case UO_Deref:
  438. case UO_Plus:
  439. return translate(UO->getSubExpr(), Ctx);
  440. case UO_Minus:
  441. return new (Arena)
  442. til::UnaryOp(til::UOP_Minus, translate(UO->getSubExpr(), Ctx));
  443. case UO_Not:
  444. return new (Arena)
  445. til::UnaryOp(til::UOP_BitNot, translate(UO->getSubExpr(), Ctx));
  446. case UO_LNot:
  447. return new (Arena)
  448. til::UnaryOp(til::UOP_LogicNot, translate(UO->getSubExpr(), Ctx));
  449. // Currently unsupported
  450. case UO_Real:
  451. case UO_Imag:
  452. case UO_Extension:
  453. case UO_Coawait:
  454. return new (Arena) til::Undefined(UO);
  455. }
  456. return new (Arena) til::Undefined(UO);
  457. }
  458. til::SExpr *SExprBuilder::translateBinOp(til::TIL_BinaryOpcode Op,
  459. const BinaryOperator *BO,
  460. CallingContext *Ctx, bool Reverse) {
  461. til::SExpr *E0 = translate(BO->getLHS(), Ctx);
  462. til::SExpr *E1 = translate(BO->getRHS(), Ctx);
  463. if (Reverse)
  464. return new (Arena) til::BinaryOp(Op, E1, E0);
  465. else
  466. return new (Arena) til::BinaryOp(Op, E0, E1);
  467. }
  468. til::SExpr *SExprBuilder::translateBinAssign(til::TIL_BinaryOpcode Op,
  469. const BinaryOperator *BO,
  470. CallingContext *Ctx,
  471. bool Assign) {
  472. const Expr *LHS = BO->getLHS();
  473. const Expr *RHS = BO->getRHS();
  474. til::SExpr *E0 = translate(LHS, Ctx);
  475. til::SExpr *E1 = translate(RHS, Ctx);
  476. const ValueDecl *VD = nullptr;
  477. til::SExpr *CV = nullptr;
  478. if (const auto *DRE = dyn_cast<DeclRefExpr>(LHS)) {
  479. VD = DRE->getDecl();
  480. CV = lookupVarDecl(VD);
  481. }
  482. if (!Assign) {
  483. til::SExpr *Arg = CV ? CV : new (Arena) til::Load(E0);
  484. E1 = new (Arena) til::BinaryOp(Op, Arg, E1);
  485. E1 = addStatement(E1, nullptr, VD);
  486. }
  487. if (VD && CV)
  488. return updateVarDecl(VD, E1);
  489. return new (Arena) til::Store(E0, E1);
  490. }
  491. til::SExpr *SExprBuilder::translateBinaryOperator(const BinaryOperator *BO,
  492. CallingContext *Ctx) {
  493. switch (BO->getOpcode()) {
  494. case BO_PtrMemD:
  495. case BO_PtrMemI:
  496. return new (Arena) til::Undefined(BO);
  497. case BO_Mul: return translateBinOp(til::BOP_Mul, BO, Ctx);
  498. case BO_Div: return translateBinOp(til::BOP_Div, BO, Ctx);
  499. case BO_Rem: return translateBinOp(til::BOP_Rem, BO, Ctx);
  500. case BO_Add: return translateBinOp(til::BOP_Add, BO, Ctx);
  501. case BO_Sub: return translateBinOp(til::BOP_Sub, BO, Ctx);
  502. case BO_Shl: return translateBinOp(til::BOP_Shl, BO, Ctx);
  503. case BO_Shr: return translateBinOp(til::BOP_Shr, BO, Ctx);
  504. case BO_LT: return translateBinOp(til::BOP_Lt, BO, Ctx);
  505. case BO_GT: return translateBinOp(til::BOP_Lt, BO, Ctx, true);
  506. case BO_LE: return translateBinOp(til::BOP_Leq, BO, Ctx);
  507. case BO_GE: return translateBinOp(til::BOP_Leq, BO, Ctx, true);
  508. case BO_EQ: return translateBinOp(til::BOP_Eq, BO, Ctx);
  509. case BO_NE: return translateBinOp(til::BOP_Neq, BO, Ctx);
  510. case BO_Cmp: return translateBinOp(til::BOP_Cmp, BO, Ctx);
  511. case BO_And: return translateBinOp(til::BOP_BitAnd, BO, Ctx);
  512. case BO_Xor: return translateBinOp(til::BOP_BitXor, BO, Ctx);
  513. case BO_Or: return translateBinOp(til::BOP_BitOr, BO, Ctx);
  514. case BO_LAnd: return translateBinOp(til::BOP_LogicAnd, BO, Ctx);
  515. case BO_LOr: return translateBinOp(til::BOP_LogicOr, BO, Ctx);
  516. case BO_Assign: return translateBinAssign(til::BOP_Eq, BO, Ctx, true);
  517. case BO_MulAssign: return translateBinAssign(til::BOP_Mul, BO, Ctx);
  518. case BO_DivAssign: return translateBinAssign(til::BOP_Div, BO, Ctx);
  519. case BO_RemAssign: return translateBinAssign(til::BOP_Rem, BO, Ctx);
  520. case BO_AddAssign: return translateBinAssign(til::BOP_Add, BO, Ctx);
  521. case BO_SubAssign: return translateBinAssign(til::BOP_Sub, BO, Ctx);
  522. case BO_ShlAssign: return translateBinAssign(til::BOP_Shl, BO, Ctx);
  523. case BO_ShrAssign: return translateBinAssign(til::BOP_Shr, BO, Ctx);
  524. case BO_AndAssign: return translateBinAssign(til::BOP_BitAnd, BO, Ctx);
  525. case BO_XorAssign: return translateBinAssign(til::BOP_BitXor, BO, Ctx);
  526. case BO_OrAssign: return translateBinAssign(til::BOP_BitOr, BO, Ctx);
  527. case BO_Comma:
  528. // The clang CFG should have already processed both sides.
  529. return translate(BO->getRHS(), Ctx);
  530. }
  531. return new (Arena) til::Undefined(BO);
  532. }
  533. til::SExpr *SExprBuilder::translateCastExpr(const CastExpr *CE,
  534. CallingContext *Ctx) {
  535. CastKind K = CE->getCastKind();
  536. switch (K) {
  537. case CK_LValueToRValue: {
  538. if (const auto *DRE = dyn_cast<DeclRefExpr>(CE->getSubExpr())) {
  539. til::SExpr *E0 = lookupVarDecl(DRE->getDecl());
  540. if (E0)
  541. return E0;
  542. }
  543. til::SExpr *E0 = translate(CE->getSubExpr(), Ctx);
  544. return E0;
  545. // FIXME!! -- get Load working properly
  546. // return new (Arena) til::Load(E0);
  547. }
  548. case CK_NoOp:
  549. case CK_DerivedToBase:
  550. case CK_UncheckedDerivedToBase:
  551. case CK_ArrayToPointerDecay:
  552. case CK_FunctionToPointerDecay: {
  553. til::SExpr *E0 = translate(CE->getSubExpr(), Ctx);
  554. return E0;
  555. }
  556. default: {
  557. // FIXME: handle different kinds of casts.
  558. til::SExpr *E0 = translate(CE->getSubExpr(), Ctx);
  559. if (CapabilityExprMode)
  560. return E0;
  561. return new (Arena) til::Cast(til::CAST_none, E0);
  562. }
  563. }
  564. }
  565. til::SExpr *
  566. SExprBuilder::translateArraySubscriptExpr(const ArraySubscriptExpr *E,
  567. CallingContext *Ctx) {
  568. til::SExpr *E0 = translate(E->getBase(), Ctx);
  569. til::SExpr *E1 = translate(E->getIdx(), Ctx);
  570. return new (Arena) til::ArrayIndex(E0, E1);
  571. }
  572. til::SExpr *
  573. SExprBuilder::translateAbstractConditionalOperator(
  574. const AbstractConditionalOperator *CO, CallingContext *Ctx) {
  575. auto *C = translate(CO->getCond(), Ctx);
  576. auto *T = translate(CO->getTrueExpr(), Ctx);
  577. auto *E = translate(CO->getFalseExpr(), Ctx);
  578. return new (Arena) til::IfThenElse(C, T, E);
  579. }
  580. til::SExpr *
  581. SExprBuilder::translateDeclStmt(const DeclStmt *S, CallingContext *Ctx) {
  582. DeclGroupRef DGrp = S->getDeclGroup();
  583. for (auto *I : DGrp) {
  584. if (auto *VD = dyn_cast_or_null<VarDecl>(I)) {
  585. Expr *E = VD->getInit();
  586. til::SExpr* SE = translate(E, Ctx);
  587. // Add local variables with trivial type to the variable map
  588. QualType T = VD->getType();
  589. if (T.isTrivialType(VD->getASTContext()))
  590. return addVarDecl(VD, SE);
  591. else {
  592. // TODO: add alloca
  593. }
  594. }
  595. }
  596. return nullptr;
  597. }
  598. // If (E) is non-trivial, then add it to the current basic block, and
  599. // update the statement map so that S refers to E. Returns a new variable
  600. // that refers to E.
  601. // If E is trivial returns E.
  602. til::SExpr *SExprBuilder::addStatement(til::SExpr* E, const Stmt *S,
  603. const ValueDecl *VD) {
  604. if (!E || !CurrentBB || E->block() || til::ThreadSafetyTIL::isTrivial(E))
  605. return E;
  606. if (VD)
  607. E = new (Arena) til::Variable(E, VD);
  608. CurrentInstructions.push_back(E);
  609. if (S)
  610. insertStmt(S, E);
  611. return E;
  612. }
  613. // Returns the current value of VD, if known, and nullptr otherwise.
  614. til::SExpr *SExprBuilder::lookupVarDecl(const ValueDecl *VD) {
  615. auto It = LVarIdxMap.find(VD);
  616. if (It != LVarIdxMap.end()) {
  617. assert(CurrentLVarMap[It->second].first == VD);
  618. return CurrentLVarMap[It->second].second;
  619. }
  620. return nullptr;
  621. }
  622. // if E is a til::Variable, update its clangDecl.
  623. static void maybeUpdateVD(til::SExpr *E, const ValueDecl *VD) {
  624. if (!E)
  625. return;
  626. if (auto *V = dyn_cast<til::Variable>(E)) {
  627. if (!V->clangDecl())
  628. V->setClangDecl(VD);
  629. }
  630. }
  631. // Adds a new variable declaration.
  632. til::SExpr *SExprBuilder::addVarDecl(const ValueDecl *VD, til::SExpr *E) {
  633. maybeUpdateVD(E, VD);
  634. LVarIdxMap.insert(std::make_pair(VD, CurrentLVarMap.size()));
  635. CurrentLVarMap.makeWritable();
  636. CurrentLVarMap.push_back(std::make_pair(VD, E));
  637. return E;
  638. }
  639. // Updates a current variable declaration. (E.g. by assignment)
  640. til::SExpr *SExprBuilder::updateVarDecl(const ValueDecl *VD, til::SExpr *E) {
  641. maybeUpdateVD(E, VD);
  642. auto It = LVarIdxMap.find(VD);
  643. if (It == LVarIdxMap.end()) {
  644. til::SExpr *Ptr = new (Arena) til::LiteralPtr(VD);
  645. til::SExpr *St = new (Arena) til::Store(Ptr, E);
  646. return St;
  647. }
  648. CurrentLVarMap.makeWritable();
  649. CurrentLVarMap.elem(It->second).second = E;
  650. return E;
  651. }
  652. // Make a Phi node in the current block for the i^th variable in CurrentVarMap.
  653. // If E != null, sets Phi[CurrentBlockInfo->ArgIndex] = E.
  654. // If E == null, this is a backedge and will be set later.
  655. void SExprBuilder::makePhiNodeVar(unsigned i, unsigned NPreds, til::SExpr *E) {
  656. unsigned ArgIndex = CurrentBlockInfo->ProcessedPredecessors;
  657. assert(ArgIndex > 0 && ArgIndex < NPreds);
  658. til::SExpr *CurrE = CurrentLVarMap[i].second;
  659. if (CurrE->block() == CurrentBB) {
  660. // We already have a Phi node in the current block,
  661. // so just add the new variable to the Phi node.
  662. auto *Ph = dyn_cast<til::Phi>(CurrE);
  663. assert(Ph && "Expecting Phi node.");
  664. if (E)
  665. Ph->values()[ArgIndex] = E;
  666. return;
  667. }
  668. // Make a new phi node: phi(..., E)
  669. // All phi args up to the current index are set to the current value.
  670. til::Phi *Ph = new (Arena) til::Phi(Arena, NPreds);
  671. Ph->values().setValues(NPreds, nullptr);
  672. for (unsigned PIdx = 0; PIdx < ArgIndex; ++PIdx)
  673. Ph->values()[PIdx] = CurrE;
  674. if (E)
  675. Ph->values()[ArgIndex] = E;
  676. Ph->setClangDecl(CurrentLVarMap[i].first);
  677. // If E is from a back-edge, or either E or CurrE are incomplete, then
  678. // mark this node as incomplete; we may need to remove it later.
  679. if (!E || isIncompletePhi(E) || isIncompletePhi(CurrE))
  680. Ph->setStatus(til::Phi::PH_Incomplete);
  681. // Add Phi node to current block, and update CurrentLVarMap[i]
  682. CurrentArguments.push_back(Ph);
  683. if (Ph->status() == til::Phi::PH_Incomplete)
  684. IncompleteArgs.push_back(Ph);
  685. CurrentLVarMap.makeWritable();
  686. CurrentLVarMap.elem(i).second = Ph;
  687. }
  688. // Merge values from Map into the current variable map.
  689. // This will construct Phi nodes in the current basic block as necessary.
  690. void SExprBuilder::mergeEntryMap(LVarDefinitionMap Map) {
  691. assert(CurrentBlockInfo && "Not processing a block!");
  692. if (!CurrentLVarMap.valid()) {
  693. // Steal Map, using copy-on-write.
  694. CurrentLVarMap = std::move(Map);
  695. return;
  696. }
  697. if (CurrentLVarMap.sameAs(Map))
  698. return; // Easy merge: maps from different predecessors are unchanged.
  699. unsigned NPreds = CurrentBB->numPredecessors();
  700. unsigned ESz = CurrentLVarMap.size();
  701. unsigned MSz = Map.size();
  702. unsigned Sz = std::min(ESz, MSz);
  703. for (unsigned i = 0; i < Sz; ++i) {
  704. if (CurrentLVarMap[i].first != Map[i].first) {
  705. // We've reached the end of variables in common.
  706. CurrentLVarMap.makeWritable();
  707. CurrentLVarMap.downsize(i);
  708. break;
  709. }
  710. if (CurrentLVarMap[i].second != Map[i].second)
  711. makePhiNodeVar(i, NPreds, Map[i].second);
  712. }
  713. if (ESz > MSz) {
  714. CurrentLVarMap.makeWritable();
  715. CurrentLVarMap.downsize(Map.size());
  716. }
  717. }
  718. // Merge a back edge into the current variable map.
  719. // This will create phi nodes for all variables in the variable map.
  720. void SExprBuilder::mergeEntryMapBackEdge() {
  721. // We don't have definitions for variables on the backedge, because we
  722. // haven't gotten that far in the CFG. Thus, when encountering a back edge,
  723. // we conservatively create Phi nodes for all variables. Unnecessary Phi
  724. // nodes will be marked as incomplete, and stripped out at the end.
  725. //
  726. // An Phi node is unnecessary if it only refers to itself and one other
  727. // variable, e.g. x = Phi(y, y, x) can be reduced to x = y.
  728. assert(CurrentBlockInfo && "Not processing a block!");
  729. if (CurrentBlockInfo->HasBackEdges)
  730. return;
  731. CurrentBlockInfo->HasBackEdges = true;
  732. CurrentLVarMap.makeWritable();
  733. unsigned Sz = CurrentLVarMap.size();
  734. unsigned NPreds = CurrentBB->numPredecessors();
  735. for (unsigned i = 0; i < Sz; ++i)
  736. makePhiNodeVar(i, NPreds, nullptr);
  737. }
  738. // Update the phi nodes that were initially created for a back edge
  739. // once the variable definitions have been computed.
  740. // I.e., merge the current variable map into the phi nodes for Blk.
  741. void SExprBuilder::mergePhiNodesBackEdge(const CFGBlock *Blk) {
  742. til::BasicBlock *BB = lookupBlock(Blk);
  743. unsigned ArgIndex = BBInfo[Blk->getBlockID()].ProcessedPredecessors;
  744. assert(ArgIndex > 0 && ArgIndex < BB->numPredecessors());
  745. for (til::SExpr *PE : BB->arguments()) {
  746. auto *Ph = dyn_cast_or_null<til::Phi>(PE);
  747. assert(Ph && "Expecting Phi Node.");
  748. assert(Ph->values()[ArgIndex] == nullptr && "Wrong index for back edge.");
  749. til::SExpr *E = lookupVarDecl(Ph->clangDecl());
  750. assert(E && "Couldn't find local variable for Phi node.");
  751. Ph->values()[ArgIndex] = E;
  752. }
  753. }
  754. void SExprBuilder::enterCFG(CFG *Cfg, const NamedDecl *D,
  755. const CFGBlock *First) {
  756. // Perform initial setup operations.
  757. unsigned NBlocks = Cfg->getNumBlockIDs();
  758. Scfg = new (Arena) til::SCFG(Arena, NBlocks);
  759. // allocate all basic blocks immediately, to handle forward references.
  760. BBInfo.resize(NBlocks);
  761. BlockMap.resize(NBlocks, nullptr);
  762. // create map from clang blockID to til::BasicBlocks
  763. for (auto *B : *Cfg) {
  764. auto *BB = new (Arena) til::BasicBlock(Arena);
  765. BB->reserveInstructions(B->size());
  766. BlockMap[B->getBlockID()] = BB;
  767. }
  768. CurrentBB = lookupBlock(&Cfg->getEntry());
  769. auto Parms = isa<ObjCMethodDecl>(D) ? cast<ObjCMethodDecl>(D)->parameters()
  770. : cast<FunctionDecl>(D)->parameters();
  771. for (auto *Pm : Parms) {
  772. QualType T = Pm->getType();
  773. if (!T.isTrivialType(Pm->getASTContext()))
  774. continue;
  775. // Add parameters to local variable map.
  776. // FIXME: right now we emulate params with loads; that should be fixed.
  777. til::SExpr *Lp = new (Arena) til::LiteralPtr(Pm);
  778. til::SExpr *Ld = new (Arena) til::Load(Lp);
  779. til::SExpr *V = addStatement(Ld, nullptr, Pm);
  780. addVarDecl(Pm, V);
  781. }
  782. }
  783. void SExprBuilder::enterCFGBlock(const CFGBlock *B) {
  784. // Initialize TIL basic block and add it to the CFG.
  785. CurrentBB = lookupBlock(B);
  786. CurrentBB->reservePredecessors(B->pred_size());
  787. Scfg->add(CurrentBB);
  788. CurrentBlockInfo = &BBInfo[B->getBlockID()];
  789. // CurrentLVarMap is moved to ExitMap on block exit.
  790. // FIXME: the entry block will hold function parameters.
  791. // assert(!CurrentLVarMap.valid() && "CurrentLVarMap already initialized.");
  792. }
  793. void SExprBuilder::handlePredecessor(const CFGBlock *Pred) {
  794. // Compute CurrentLVarMap on entry from ExitMaps of predecessors
  795. CurrentBB->addPredecessor(BlockMap[Pred->getBlockID()]);
  796. BlockInfo *PredInfo = &BBInfo[Pred->getBlockID()];
  797. assert(PredInfo->UnprocessedSuccessors > 0);
  798. if (--PredInfo->UnprocessedSuccessors == 0)
  799. mergeEntryMap(std::move(PredInfo->ExitMap));
  800. else
  801. mergeEntryMap(PredInfo->ExitMap.clone());
  802. ++CurrentBlockInfo->ProcessedPredecessors;
  803. }
  804. void SExprBuilder::handlePredecessorBackEdge(const CFGBlock *Pred) {
  805. mergeEntryMapBackEdge();
  806. }
  807. void SExprBuilder::enterCFGBlockBody(const CFGBlock *B) {
  808. // The merge*() methods have created arguments.
  809. // Push those arguments onto the basic block.
  810. CurrentBB->arguments().reserve(
  811. static_cast<unsigned>(CurrentArguments.size()), Arena);
  812. for (auto *A : CurrentArguments)
  813. CurrentBB->addArgument(A);
  814. }
  815. void SExprBuilder::handleStatement(const Stmt *S) {
  816. til::SExpr *E = translate(S, nullptr);
  817. addStatement(E, S);
  818. }
  819. void SExprBuilder::handleDestructorCall(const VarDecl *VD,
  820. const CXXDestructorDecl *DD) {
  821. til::SExpr *Sf = new (Arena) til::LiteralPtr(VD);
  822. til::SExpr *Dr = new (Arena) til::LiteralPtr(DD);
  823. til::SExpr *Ap = new (Arena) til::Apply(Dr, Sf);
  824. til::SExpr *E = new (Arena) til::Call(Ap);
  825. addStatement(E, nullptr);
  826. }
  827. void SExprBuilder::exitCFGBlockBody(const CFGBlock *B) {
  828. CurrentBB->instructions().reserve(
  829. static_cast<unsigned>(CurrentInstructions.size()), Arena);
  830. for (auto *V : CurrentInstructions)
  831. CurrentBB->addInstruction(V);
  832. // Create an appropriate terminator
  833. unsigned N = B->succ_size();
  834. auto It = B->succ_begin();
  835. if (N == 1) {
  836. til::BasicBlock *BB = *It ? lookupBlock(*It) : nullptr;
  837. // TODO: set index
  838. unsigned Idx = BB ? BB->findPredecessorIndex(CurrentBB) : 0;
  839. auto *Tm = new (Arena) til::Goto(BB, Idx);
  840. CurrentBB->setTerminator(Tm);
  841. }
  842. else if (N == 2) {
  843. til::SExpr *C = translate(B->getTerminatorCondition(true), nullptr);
  844. til::BasicBlock *BB1 = *It ? lookupBlock(*It) : nullptr;
  845. ++It;
  846. til::BasicBlock *BB2 = *It ? lookupBlock(*It) : nullptr;
  847. // FIXME: make sure these aren't critical edges.
  848. auto *Tm = new (Arena) til::Branch(C, BB1, BB2);
  849. CurrentBB->setTerminator(Tm);
  850. }
  851. }
  852. void SExprBuilder::handleSuccessor(const CFGBlock *Succ) {
  853. ++CurrentBlockInfo->UnprocessedSuccessors;
  854. }
  855. void SExprBuilder::handleSuccessorBackEdge(const CFGBlock *Succ) {
  856. mergePhiNodesBackEdge(Succ);
  857. ++BBInfo[Succ->getBlockID()].ProcessedPredecessors;
  858. }
  859. void SExprBuilder::exitCFGBlock(const CFGBlock *B) {
  860. CurrentArguments.clear();
  861. CurrentInstructions.clear();
  862. CurrentBlockInfo->ExitMap = std::move(CurrentLVarMap);
  863. CurrentBB = nullptr;
  864. CurrentBlockInfo = nullptr;
  865. }
  866. void SExprBuilder::exitCFG(const CFGBlock *Last) {
  867. for (auto *Ph : IncompleteArgs) {
  868. if (Ph->status() == til::Phi::PH_Incomplete)
  869. simplifyIncompleteArg(Ph);
  870. }
  871. CurrentArguments.clear();
  872. CurrentInstructions.clear();
  873. IncompleteArgs.clear();
  874. }
  875. /*
  876. namespace {
  877. class TILPrinter :
  878. public til::PrettyPrinter<TILPrinter, llvm::raw_ostream> {};
  879. } // namespace
  880. namespace clang {
  881. namespace threadSafety {
  882. void printSCFG(CFGWalker &Walker) {
  883. llvm::BumpPtrAllocator Bpa;
  884. til::MemRegionRef Arena(&Bpa);
  885. SExprBuilder SxBuilder(Arena);
  886. til::SCFG *Scfg = SxBuilder.buildCFG(Walker);
  887. TILPrinter::print(Scfg, llvm::errs());
  888. }
  889. } // namespace threadSafety
  890. } // namespace clang
  891. */