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Douglas Gregord2baafd2008-10-21 16:13:35 +00001//===--- SemaOverload.cpp - C++ Overloading ---------------------*- C++ -*-===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file provides Sema routines for C++ overloading.
11//
12//===----------------------------------------------------------------------===//
13
14#include "Sema.h"
Douglas Gregorbb461502008-10-24 04:54:22 +000015#include "SemaInherit.h"
Douglas Gregord2baafd2008-10-21 16:13:35 +000016#include "clang/Basic/Diagnostic.h"
Douglas Gregor70d26122008-11-12 17:17:38 +000017#include "clang/Lex/Preprocessor.h"
Douglas Gregord2baafd2008-10-21 16:13:35 +000018#include "clang/AST/ASTContext.h"
19#include "clang/AST/Expr.h"
Douglas Gregor10f3c502008-11-19 21:05:33 +000020#include "clang/AST/ExprCXX.h"
Douglas Gregor70d26122008-11-12 17:17:38 +000021#include "clang/AST/TypeOrdering.h"
Anders Carlssona21e7872009-08-26 23:45:07 +000022#include "clang/Basic/PartialDiagnostic.h"
Douglas Gregor3d4492e2008-11-13 20:12:29 +000023#include "llvm/ADT/SmallPtrSet.h"
Douglas Gregorddfd9d52008-12-23 00:26:44 +000024#include "llvm/ADT/STLExtras.h"
Douglas Gregord2baafd2008-10-21 16:13:35 +000025#include "llvm/Support/Compiler.h"
26#include <algorithm>
Edwin Török0fbc71c2009-08-24 13:25:12 +000027#include <cstdio>
Douglas Gregord2baafd2008-10-21 16:13:35 +000028
29namespace clang {
30
31/// GetConversionCategory - Retrieve the implicit conversion
32/// category corresponding to the given implicit conversion kind.
33ImplicitConversionCategory
34GetConversionCategory(ImplicitConversionKind Kind) {
35 static const ImplicitConversionCategory
36 Category[(int)ICK_Num_Conversion_Kinds] = {
37 ICC_Identity,
38 ICC_Lvalue_Transformation,
39 ICC_Lvalue_Transformation,
40 ICC_Lvalue_Transformation,
41 ICC_Qualification_Adjustment,
42 ICC_Promotion,
43 ICC_Promotion,
Douglas Gregore819caf2009-02-12 00:15:05 +000044 ICC_Promotion,
45 ICC_Conversion,
46 ICC_Conversion,
Douglas Gregord2baafd2008-10-21 16:13:35 +000047 ICC_Conversion,
48 ICC_Conversion,
49 ICC_Conversion,
50 ICC_Conversion,
51 ICC_Conversion,
Douglas Gregor2aecd1f2008-10-29 02:00:59 +000052 ICC_Conversion,
Douglas Gregorfcb19192009-02-11 23:02:49 +000053 ICC_Conversion,
Douglas Gregord2baafd2008-10-21 16:13:35 +000054 ICC_Conversion
55 };
56 return Category[(int)Kind];
57}
58
59/// GetConversionRank - Retrieve the implicit conversion rank
60/// corresponding to the given implicit conversion kind.
61ImplicitConversionRank GetConversionRank(ImplicitConversionKind Kind) {
62 static const ImplicitConversionRank
63 Rank[(int)ICK_Num_Conversion_Kinds] = {
64 ICR_Exact_Match,
65 ICR_Exact_Match,
66 ICR_Exact_Match,
67 ICR_Exact_Match,
68 ICR_Exact_Match,
69 ICR_Promotion,
70 ICR_Promotion,
Douglas Gregore819caf2009-02-12 00:15:05 +000071 ICR_Promotion,
72 ICR_Conversion,
73 ICR_Conversion,
Douglas Gregord2baafd2008-10-21 16:13:35 +000074 ICR_Conversion,
75 ICR_Conversion,
76 ICR_Conversion,
77 ICR_Conversion,
78 ICR_Conversion,
Douglas Gregor2aecd1f2008-10-29 02:00:59 +000079 ICR_Conversion,
Douglas Gregorfcb19192009-02-11 23:02:49 +000080 ICR_Conversion,
Douglas Gregord2baafd2008-10-21 16:13:35 +000081 ICR_Conversion
82 };
83 return Rank[(int)Kind];
84}
85
86/// GetImplicitConversionName - Return the name of this kind of
87/// implicit conversion.
88const char* GetImplicitConversionName(ImplicitConversionKind Kind) {
89 static const char* Name[(int)ICK_Num_Conversion_Kinds] = {
90 "No conversion",
91 "Lvalue-to-rvalue",
92 "Array-to-pointer",
93 "Function-to-pointer",
94 "Qualification",
95 "Integral promotion",
96 "Floating point promotion",
Douglas Gregore819caf2009-02-12 00:15:05 +000097 "Complex promotion",
Douglas Gregord2baafd2008-10-21 16:13:35 +000098 "Integral conversion",
99 "Floating conversion",
Douglas Gregore819caf2009-02-12 00:15:05 +0000100 "Complex conversion",
Douglas Gregord2baafd2008-10-21 16:13:35 +0000101 "Floating-integral conversion",
Douglas Gregore819caf2009-02-12 00:15:05 +0000102 "Complex-real conversion",
Douglas Gregord2baafd2008-10-21 16:13:35 +0000103 "Pointer conversion",
104 "Pointer-to-member conversion",
Douglas Gregor2aecd1f2008-10-29 02:00:59 +0000105 "Boolean conversion",
Douglas Gregorfcb19192009-02-11 23:02:49 +0000106 "Compatible-types conversion",
Douglas Gregor2aecd1f2008-10-29 02:00:59 +0000107 "Derived-to-base conversion"
Douglas Gregord2baafd2008-10-21 16:13:35 +0000108 };
109 return Name[Kind];
110}
111
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000112/// StandardConversionSequence - Set the standard conversion
113/// sequence to the identity conversion.
114void StandardConversionSequence::setAsIdentityConversion() {
115 First = ICK_Identity;
116 Second = ICK_Identity;
117 Third = ICK_Identity;
118 Deprecated = false;
119 ReferenceBinding = false;
120 DirectBinding = false;
Sebastian Redl9bc16ad2009-03-29 22:46:24 +0000121 RRefBinding = false;
Douglas Gregora3b34bb2008-11-03 19:09:14 +0000122 CopyConstructor = 0;
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000123}
124
Douglas Gregord2baafd2008-10-21 16:13:35 +0000125/// getRank - Retrieve the rank of this standard conversion sequence
126/// (C++ 13.3.3.1.1p3). The rank is the largest rank of each of the
127/// implicit conversions.
128ImplicitConversionRank StandardConversionSequence::getRank() const {
129 ImplicitConversionRank Rank = ICR_Exact_Match;
130 if (GetConversionRank(First) > Rank)
131 Rank = GetConversionRank(First);
132 if (GetConversionRank(Second) > Rank)
133 Rank = GetConversionRank(Second);
134 if (GetConversionRank(Third) > Rank)
135 Rank = GetConversionRank(Third);
136 return Rank;
137}
138
139/// isPointerConversionToBool - Determines whether this conversion is
140/// a conversion of a pointer or pointer-to-member to bool. This is
141/// used as part of the ranking of standard conversion sequences
142/// (C++ 13.3.3.2p4).
143bool StandardConversionSequence::isPointerConversionToBool() const
144{
145 QualType FromType = QualType::getFromOpaquePtr(FromTypePtr);
146 QualType ToType = QualType::getFromOpaquePtr(ToTypePtr);
147
148 // Note that FromType has not necessarily been transformed by the
149 // array-to-pointer or function-to-pointer implicit conversions, so
150 // check for their presence as well as checking whether FromType is
151 // a pointer.
152 if (ToType->isBooleanType() &&
Douglas Gregor80402cf2008-12-23 00:53:59 +0000153 (FromType->isPointerType() || FromType->isBlockPointerType() ||
Douglas Gregord2baafd2008-10-21 16:13:35 +0000154 First == ICK_Array_To_Pointer || First == ICK_Function_To_Pointer))
155 return true;
156
157 return false;
158}
159
Douglas Gregor14046502008-10-23 00:40:37 +0000160/// isPointerConversionToVoidPointer - Determines whether this
161/// conversion is a conversion of a pointer to a void pointer. This is
162/// used as part of the ranking of standard conversion sequences (C++
163/// 13.3.3.2p4).
164bool
165StandardConversionSequence::
166isPointerConversionToVoidPointer(ASTContext& Context) const
167{
168 QualType FromType = QualType::getFromOpaquePtr(FromTypePtr);
169 QualType ToType = QualType::getFromOpaquePtr(ToTypePtr);
170
171 // Note that FromType has not necessarily been transformed by the
172 // array-to-pointer implicit conversion, so check for its presence
173 // and redo the conversion to get a pointer.
174 if (First == ICK_Array_To_Pointer)
175 FromType = Context.getArrayDecayedType(FromType);
176
177 if (Second == ICK_Pointer_Conversion)
Ted Kremenekd00cd9e2009-07-29 21:53:49 +0000178 if (const PointerType* ToPtrType = ToType->getAs<PointerType>())
Douglas Gregor14046502008-10-23 00:40:37 +0000179 return ToPtrType->getPointeeType()->isVoidType();
180
181 return false;
182}
183
Douglas Gregord2baafd2008-10-21 16:13:35 +0000184/// DebugPrint - Print this standard conversion sequence to standard
185/// error. Useful for debugging overloading issues.
186void StandardConversionSequence::DebugPrint() const {
187 bool PrintedSomething = false;
188 if (First != ICK_Identity) {
189 fprintf(stderr, "%s", GetImplicitConversionName(First));
190 PrintedSomething = true;
191 }
192
193 if (Second != ICK_Identity) {
194 if (PrintedSomething) {
195 fprintf(stderr, " -> ");
196 }
197 fprintf(stderr, "%s", GetImplicitConversionName(Second));
Douglas Gregora3b34bb2008-11-03 19:09:14 +0000198
199 if (CopyConstructor) {
200 fprintf(stderr, " (by copy constructor)");
201 } else if (DirectBinding) {
202 fprintf(stderr, " (direct reference binding)");
203 } else if (ReferenceBinding) {
204 fprintf(stderr, " (reference binding)");
205 }
Douglas Gregord2baafd2008-10-21 16:13:35 +0000206 PrintedSomething = true;
207 }
208
209 if (Third != ICK_Identity) {
210 if (PrintedSomething) {
211 fprintf(stderr, " -> ");
212 }
213 fprintf(stderr, "%s", GetImplicitConversionName(Third));
214 PrintedSomething = true;
215 }
216
217 if (!PrintedSomething) {
218 fprintf(stderr, "No conversions required");
219 }
220}
221
222/// DebugPrint - Print this user-defined conversion sequence to standard
223/// error. Useful for debugging overloading issues.
224void UserDefinedConversionSequence::DebugPrint() const {
225 if (Before.First || Before.Second || Before.Third) {
226 Before.DebugPrint();
227 fprintf(stderr, " -> ");
228 }
Chris Lattner271d4c22008-11-24 05:29:24 +0000229 fprintf(stderr, "'%s'", ConversionFunction->getNameAsString().c_str());
Douglas Gregord2baafd2008-10-21 16:13:35 +0000230 if (After.First || After.Second || After.Third) {
231 fprintf(stderr, " -> ");
232 After.DebugPrint();
233 }
234}
235
236/// DebugPrint - Print this implicit conversion sequence to standard
237/// error. Useful for debugging overloading issues.
238void ImplicitConversionSequence::DebugPrint() const {
239 switch (ConversionKind) {
240 case StandardConversion:
241 fprintf(stderr, "Standard conversion: ");
242 Standard.DebugPrint();
243 break;
244 case UserDefinedConversion:
245 fprintf(stderr, "User-defined conversion: ");
246 UserDefined.DebugPrint();
247 break;
248 case EllipsisConversion:
249 fprintf(stderr, "Ellipsis conversion");
250 break;
251 case BadConversion:
252 fprintf(stderr, "Bad conversion");
253 break;
254 }
255
256 fprintf(stderr, "\n");
257}
258
259// IsOverload - Determine whether the given New declaration is an
260// overload of the Old declaration. This routine returns false if New
261// and Old cannot be overloaded, e.g., if they are functions with the
262// same signature (C++ 1.3.10) or if the Old declaration isn't a
263// function (or overload set). When it does return false and Old is an
264// OverloadedFunctionDecl, MatchedDecl will be set to point to the
265// FunctionDecl that New cannot be overloaded with.
266//
267// Example: Given the following input:
268//
269// void f(int, float); // #1
270// void f(int, int); // #2
271// int f(int, int); // #3
272//
273// When we process #1, there is no previous declaration of "f",
274// so IsOverload will not be used.
275//
276// When we process #2, Old is a FunctionDecl for #1. By comparing the
277// parameter types, we see that #1 and #2 are overloaded (since they
278// have different signatures), so this routine returns false;
279// MatchedDecl is unchanged.
280//
281// When we process #3, Old is an OverloadedFunctionDecl containing #1
282// and #2. We compare the signatures of #3 to #1 (they're overloaded,
283// so we do nothing) and then #3 to #2. Since the signatures of #3 and
284// #2 are identical (return types of functions are not part of the
285// signature), IsOverload returns false and MatchedDecl will be set to
286// point to the FunctionDecl for #2.
287bool
288Sema::IsOverload(FunctionDecl *New, Decl* OldD,
289 OverloadedFunctionDecl::function_iterator& MatchedDecl)
290{
291 if (OverloadedFunctionDecl* Ovl = dyn_cast<OverloadedFunctionDecl>(OldD)) {
292 // Is this new function an overload of every function in the
293 // overload set?
294 OverloadedFunctionDecl::function_iterator Func = Ovl->function_begin(),
295 FuncEnd = Ovl->function_end();
296 for (; Func != FuncEnd; ++Func) {
297 if (!IsOverload(New, *Func, MatchedDecl)) {
298 MatchedDecl = Func;
299 return false;
300 }
301 }
302
303 // This function overloads every function in the overload set.
304 return true;
Douglas Gregorb60eb752009-06-25 22:08:12 +0000305 } else if (FunctionTemplateDecl *Old = dyn_cast<FunctionTemplateDecl>(OldD))
306 return IsOverload(New, Old->getTemplatedDecl(), MatchedDecl);
307 else if (FunctionDecl* Old = dyn_cast<FunctionDecl>(OldD)) {
Douglas Gregorbf6bc302009-06-24 16:50:40 +0000308 FunctionTemplateDecl *OldTemplate = Old->getDescribedFunctionTemplate();
309 FunctionTemplateDecl *NewTemplate = New->getDescribedFunctionTemplate();
310
311 // C++ [temp.fct]p2:
312 // A function template can be overloaded with other function templates
313 // and with normal (non-template) functions.
314 if ((OldTemplate == 0) != (NewTemplate == 0))
315 return true;
316
Douglas Gregord2baafd2008-10-21 16:13:35 +0000317 // Is the function New an overload of the function Old?
318 QualType OldQType = Context.getCanonicalType(Old->getType());
319 QualType NewQType = Context.getCanonicalType(New->getType());
320
321 // Compare the signatures (C++ 1.3.10) of the two functions to
322 // determine whether they are overloads. If we find any mismatch
323 // in the signature, they are overloads.
324
325 // If either of these functions is a K&R-style function (no
326 // prototype), then we consider them to have matching signatures.
Douglas Gregor4fa58902009-02-26 23:50:07 +0000327 if (isa<FunctionNoProtoType>(OldQType.getTypePtr()) ||
328 isa<FunctionNoProtoType>(NewQType.getTypePtr()))
Douglas Gregord2baafd2008-10-21 16:13:35 +0000329 return false;
330
Douglas Gregorbf6bc302009-06-24 16:50:40 +0000331 FunctionProtoType* OldType = cast<FunctionProtoType>(OldQType);
332 FunctionProtoType* NewType = cast<FunctionProtoType>(NewQType);
Douglas Gregord2baafd2008-10-21 16:13:35 +0000333
334 // The signature of a function includes the types of its
335 // parameters (C++ 1.3.10), which includes the presence or absence
336 // of the ellipsis; see C++ DR 357).
337 if (OldQType != NewQType &&
338 (OldType->getNumArgs() != NewType->getNumArgs() ||
339 OldType->isVariadic() != NewType->isVariadic() ||
340 !std::equal(OldType->arg_type_begin(), OldType->arg_type_end(),
341 NewType->arg_type_begin())))
342 return true;
343
Douglas Gregorbf6bc302009-06-24 16:50:40 +0000344 // C++ [temp.over.link]p4:
345 // The signature of a function template consists of its function
346 // signature, its return type and its template parameter list. The names
347 // of the template parameters are significant only for establishing the
348 // relationship between the template parameters and the rest of the
349 // signature.
350 //
351 // We check the return type and template parameter lists for function
352 // templates first; the remaining checks follow.
353 if (NewTemplate &&
354 (!TemplateParameterListsAreEqual(NewTemplate->getTemplateParameters(),
355 OldTemplate->getTemplateParameters(),
356 false, false, SourceLocation()) ||
357 OldType->getResultType() != NewType->getResultType()))
358 return true;
359
Douglas Gregord2baafd2008-10-21 16:13:35 +0000360 // If the function is a class member, its signature includes the
361 // cv-qualifiers (if any) on the function itself.
362 //
363 // As part of this, also check whether one of the member functions
364 // is static, in which case they are not overloads (C++
365 // 13.1p2). While not part of the definition of the signature,
366 // this check is important to determine whether these functions
367 // can be overloaded.
368 CXXMethodDecl* OldMethod = dyn_cast<CXXMethodDecl>(Old);
369 CXXMethodDecl* NewMethod = dyn_cast<CXXMethodDecl>(New);
370 if (OldMethod && NewMethod &&
371 !OldMethod->isStatic() && !NewMethod->isStatic() &&
Douglas Gregora7b56a32008-11-21 15:36:28 +0000372 OldMethod->getTypeQualifiers() != NewMethod->getTypeQualifiers())
Douglas Gregord2baafd2008-10-21 16:13:35 +0000373 return true;
374
375 // The signatures match; this is not an overload.
376 return false;
377 } else {
378 // (C++ 13p1):
379 // Only function declarations can be overloaded; object and type
380 // declarations cannot be overloaded.
381 return false;
382 }
383}
384
Douglas Gregor81c29152008-10-29 00:13:59 +0000385/// TryImplicitConversion - Attempt to perform an implicit conversion
386/// from the given expression (Expr) to the given type (ToType). This
387/// function returns an implicit conversion sequence that can be used
388/// to perform the initialization. Given
Douglas Gregord2baafd2008-10-21 16:13:35 +0000389///
390/// void f(float f);
391/// void g(int i) { f(i); }
392///
393/// this routine would produce an implicit conversion sequence to
394/// describe the initialization of f from i, which will be a standard
395/// conversion sequence containing an lvalue-to-rvalue conversion (C++
396/// 4.1) followed by a floating-integral conversion (C++ 4.9).
397//
398/// Note that this routine only determines how the conversion can be
399/// performed; it does not actually perform the conversion. As such,
400/// it will not produce any diagnostics if no conversion is available,
401/// but will instead return an implicit conversion sequence of kind
402/// "BadConversion".
Douglas Gregora3b34bb2008-11-03 19:09:14 +0000403///
404/// If @p SuppressUserConversions, then user-defined conversions are
405/// not permitted.
Douglas Gregor6214d8a2009-01-14 15:45:31 +0000406/// If @p AllowExplicit, then explicit user-defined conversions are
407/// permitted.
Sebastian Redla55834a2009-04-12 17:16:29 +0000408/// If @p ForceRValue, then overloading is performed as if From was an rvalue,
409/// no matter its actual lvalueness.
Douglas Gregord2baafd2008-10-21 16:13:35 +0000410ImplicitConversionSequence
Douglas Gregora3b34bb2008-11-03 19:09:14 +0000411Sema::TryImplicitConversion(Expr* From, QualType ToType,
Douglas Gregor6214d8a2009-01-14 15:45:31 +0000412 bool SuppressUserConversions,
Sebastian Redla55834a2009-04-12 17:16:29 +0000413 bool AllowExplicit, bool ForceRValue)
Douglas Gregord2baafd2008-10-21 16:13:35 +0000414{
415 ImplicitConversionSequence ICS;
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000416 if (IsStandardConversion(From, ToType, ICS.Standard))
417 ICS.ConversionKind = ImplicitConversionSequence::StandardConversion;
Douglas Gregorfcb19192009-02-11 23:02:49 +0000418 else if (getLangOptions().CPlusPlus &&
419 IsUserDefinedConversion(From, ToType, ICS.UserDefined,
Sebastian Redla55834a2009-04-12 17:16:29 +0000420 !SuppressUserConversions, AllowExplicit,
421 ForceRValue)) {
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000422 ICS.ConversionKind = ImplicitConversionSequence::UserDefinedConversion;
Douglas Gregore640ab62008-11-03 17:51:48 +0000423 // C++ [over.ics.user]p4:
424 // A conversion of an expression of class type to the same class
425 // type is given Exact Match rank, and a conversion of an
426 // expression of class type to a base class of that type is
427 // given Conversion rank, in spite of the fact that a copy
428 // constructor (i.e., a user-defined conversion function) is
429 // called for those cases.
430 if (CXXConstructorDecl *Constructor
431 = dyn_cast<CXXConstructorDecl>(ICS.UserDefined.ConversionFunction)) {
Douglas Gregord9176392009-02-02 22:11:10 +0000432 QualType FromCanon
433 = Context.getCanonicalType(From->getType().getUnqualifiedType());
434 QualType ToCanon = Context.getCanonicalType(ToType).getUnqualifiedType();
435 if (FromCanon == ToCanon || IsDerivedFrom(FromCanon, ToCanon)) {
Douglas Gregora3b34bb2008-11-03 19:09:14 +0000436 // Turn this into a "standard" conversion sequence, so that it
437 // gets ranked with standard conversion sequences.
Douglas Gregore640ab62008-11-03 17:51:48 +0000438 ICS.ConversionKind = ImplicitConversionSequence::StandardConversion;
439 ICS.Standard.setAsIdentityConversion();
440 ICS.Standard.FromTypePtr = From->getType().getAsOpaquePtr();
441 ICS.Standard.ToTypePtr = ToType.getAsOpaquePtr();
Douglas Gregora3b34bb2008-11-03 19:09:14 +0000442 ICS.Standard.CopyConstructor = Constructor;
Douglas Gregord9176392009-02-02 22:11:10 +0000443 if (ToCanon != FromCanon)
Douglas Gregore640ab62008-11-03 17:51:48 +0000444 ICS.Standard.Second = ICK_Derived_To_Base;
445 }
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000446 }
Douglas Gregorb206cc42009-01-30 23:27:23 +0000447
448 // C++ [over.best.ics]p4:
449 // However, when considering the argument of a user-defined
450 // conversion function that is a candidate by 13.3.1.3 when
451 // invoked for the copying of the temporary in the second step
452 // of a class copy-initialization, or by 13.3.1.4, 13.3.1.5, or
453 // 13.3.1.6 in all cases, only standard conversion sequences and
454 // ellipsis conversion sequences are allowed.
455 if (SuppressUserConversions &&
456 ICS.ConversionKind == ImplicitConversionSequence::UserDefinedConversion)
457 ICS.ConversionKind = ImplicitConversionSequence::BadConversion;
Douglas Gregore640ab62008-11-03 17:51:48 +0000458 } else
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000459 ICS.ConversionKind = ImplicitConversionSequence::BadConversion;
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000460
461 return ICS;
462}
463
464/// IsStandardConversion - Determines whether there is a standard
465/// conversion sequence (C++ [conv], C++ [over.ics.scs]) from the
466/// expression From to the type ToType. Standard conversion sequences
467/// only consider non-class types; for conversions that involve class
468/// types, use TryImplicitConversion. If a conversion exists, SCS will
469/// contain the standard conversion sequence required to perform this
470/// conversion and this routine will return true. Otherwise, this
471/// routine will return false and the value of SCS is unspecified.
472bool
473Sema::IsStandardConversion(Expr* From, QualType ToType,
474 StandardConversionSequence &SCS)
475{
Douglas Gregord2baafd2008-10-21 16:13:35 +0000476 QualType FromType = From->getType();
477
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000478 // Standard conversions (C++ [conv])
Douglas Gregor70d26122008-11-12 17:17:38 +0000479 SCS.setAsIdentityConversion();
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000480 SCS.Deprecated = false;
Douglas Gregor6fd35572008-12-19 17:40:08 +0000481 SCS.IncompatibleObjC = false;
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000482 SCS.FromTypePtr = FromType.getAsOpaquePtr();
Douglas Gregora3b34bb2008-11-03 19:09:14 +0000483 SCS.CopyConstructor = 0;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000484
Douglas Gregorfcb19192009-02-11 23:02:49 +0000485 // There are no standard conversions for class types in C++, so
486 // abort early. When overloading in C, however, we do permit
487 if (FromType->isRecordType() || ToType->isRecordType()) {
488 if (getLangOptions().CPlusPlus)
489 return false;
490
491 // When we're overloading in C, we allow, as standard conversions,
492 }
493
Douglas Gregord2baafd2008-10-21 16:13:35 +0000494 // The first conversion can be an lvalue-to-rvalue conversion,
495 // array-to-pointer conversion, or function-to-pointer conversion
496 // (C++ 4p1).
497
498 // Lvalue-to-rvalue conversion (C++ 4.1):
499 // An lvalue (3.10) of a non-function, non-array type T can be
500 // converted to an rvalue.
501 Expr::isLvalueResult argIsLvalue = From->isLvalue(Context);
502 if (argIsLvalue == Expr::LV_Valid &&
Douglas Gregor45014fd2008-11-10 20:40:00 +0000503 !FromType->isFunctionType() && !FromType->isArrayType() &&
Douglas Gregor00fe3f62009-03-13 18:40:31 +0000504 Context.getCanonicalType(FromType) != Context.OverloadTy) {
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000505 SCS.First = ICK_Lvalue_To_Rvalue;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000506
507 // If T is a non-class type, the type of the rvalue is the
508 // cv-unqualified version of T. Otherwise, the type of the rvalue
Douglas Gregorfcb19192009-02-11 23:02:49 +0000509 // is T (C++ 4.1p1). C++ can't get here with class types; in C, we
510 // just strip the qualifiers because they don't matter.
511
512 // FIXME: Doesn't see through to qualifiers behind a typedef!
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000513 FromType = FromType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000514 } else if (FromType->isArrayType()) {
515 // Array-to-pointer conversion (C++ 4.2)
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000516 SCS.First = ICK_Array_To_Pointer;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000517
518 // An lvalue or rvalue of type "array of N T" or "array of unknown
519 // bound of T" can be converted to an rvalue of type "pointer to
520 // T" (C++ 4.2p1).
521 FromType = Context.getArrayDecayedType(FromType);
522
523 if (IsStringLiteralToNonConstPointerConversion(From, ToType)) {
524 // This conversion is deprecated. (C++ D.4).
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000525 SCS.Deprecated = true;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000526
527 // For the purpose of ranking in overload resolution
528 // (13.3.3.1.1), this conversion is considered an
529 // array-to-pointer conversion followed by a qualification
530 // conversion (4.4). (C++ 4.2p2)
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000531 SCS.Second = ICK_Identity;
532 SCS.Third = ICK_Qualification;
533 SCS.ToTypePtr = ToType.getAsOpaquePtr();
534 return true;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000535 }
Mike Stump90fc78e2009-08-04 21:02:39 +0000536 } else if (FromType->isFunctionType() && argIsLvalue == Expr::LV_Valid) {
537 // Function-to-pointer conversion (C++ 4.3).
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000538 SCS.First = ICK_Function_To_Pointer;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000539
540 // An lvalue of function type T can be converted to an rvalue of
541 // type "pointer to T." The result is a pointer to the
542 // function. (C++ 4.3p1).
543 FromType = Context.getPointerType(FromType);
Mike Stump90fc78e2009-08-04 21:02:39 +0000544 } else if (FunctionDecl *Fn
Douglas Gregor45014fd2008-11-10 20:40:00 +0000545 = ResolveAddressOfOverloadedFunction(From, ToType, false)) {
Mike Stump90fc78e2009-08-04 21:02:39 +0000546 // Address of overloaded function (C++ [over.over]).
Douglas Gregor45014fd2008-11-10 20:40:00 +0000547 SCS.First = ICK_Function_To_Pointer;
548
549 // We were able to resolve the address of the overloaded function,
550 // so we can convert to the type of that function.
551 FromType = Fn->getType();
Sebastian Redlce6fff02009-03-16 23:22:08 +0000552 if (ToType->isLValueReferenceType())
553 FromType = Context.getLValueReferenceType(FromType);
554 else if (ToType->isRValueReferenceType())
555 FromType = Context.getRValueReferenceType(FromType);
Sebastian Redl7434fc32009-02-04 21:23:32 +0000556 else if (ToType->isMemberPointerType()) {
557 // Resolve address only succeeds if both sides are member pointers,
558 // but it doesn't have to be the same class. See DR 247.
559 // Note that this means that the type of &Derived::fn can be
560 // Ret (Base::*)(Args) if the fn overload actually found is from the
561 // base class, even if it was brought into the derived class via a
562 // using declaration. The standard isn't clear on this issue at all.
563 CXXMethodDecl *M = cast<CXXMethodDecl>(Fn);
564 FromType = Context.getMemberPointerType(FromType,
565 Context.getTypeDeclType(M->getParent()).getTypePtr());
566 } else
Douglas Gregor45014fd2008-11-10 20:40:00 +0000567 FromType = Context.getPointerType(FromType);
Mike Stump90fc78e2009-08-04 21:02:39 +0000568 } else {
569 // We don't require any conversions for the first step.
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000570 SCS.First = ICK_Identity;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000571 }
572
573 // The second conversion can be an integral promotion, floating
574 // point promotion, integral conversion, floating point conversion,
575 // floating-integral conversion, pointer conversion,
576 // pointer-to-member conversion, or boolean conversion (C++ 4p1).
Douglas Gregorfcb19192009-02-11 23:02:49 +0000577 // For overloading in C, this can also be a "compatible-type"
578 // conversion.
Douglas Gregor6fd35572008-12-19 17:40:08 +0000579 bool IncompatibleObjC = false;
Douglas Gregorfcb19192009-02-11 23:02:49 +0000580 if (Context.hasSameUnqualifiedType(FromType, ToType)) {
Douglas Gregord2baafd2008-10-21 16:13:35 +0000581 // The unqualified versions of the types are the same: there's no
582 // conversion to do.
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000583 SCS.Second = ICK_Identity;
Mike Stump90fc78e2009-08-04 21:02:39 +0000584 } else if (IsIntegralPromotion(From, FromType, ToType)) {
585 // Integral promotion (C++ 4.5).
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000586 SCS.Second = ICK_Integral_Promotion;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000587 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000588 } else if (IsFloatingPointPromotion(FromType, ToType)) {
589 // Floating point promotion (C++ 4.6).
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000590 SCS.Second = ICK_Floating_Promotion;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000591 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000592 } else if (IsComplexPromotion(FromType, ToType)) {
593 // Complex promotion (Clang extension)
Douglas Gregore819caf2009-02-12 00:15:05 +0000594 SCS.Second = ICK_Complex_Promotion;
595 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000596 } else if ((FromType->isIntegralType() || FromType->isEnumeralType()) &&
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000597 (ToType->isIntegralType() && !ToType->isEnumeralType())) {
Mike Stump90fc78e2009-08-04 21:02:39 +0000598 // Integral conversions (C++ 4.7).
599 // FIXME: isIntegralType shouldn't be true for enums in C++.
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000600 SCS.Second = ICK_Integral_Conversion;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000601 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000602 } else if (FromType->isFloatingType() && ToType->isFloatingType()) {
603 // Floating point conversions (C++ 4.8).
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000604 SCS.Second = ICK_Floating_Conversion;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000605 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000606 } else if (FromType->isComplexType() && ToType->isComplexType()) {
607 // Complex conversions (C99 6.3.1.6)
Douglas Gregore819caf2009-02-12 00:15:05 +0000608 SCS.Second = ICK_Complex_Conversion;
609 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000610 } else if ((FromType->isFloatingType() &&
611 ToType->isIntegralType() && (!ToType->isBooleanType() &&
612 !ToType->isEnumeralType())) ||
613 ((FromType->isIntegralType() || FromType->isEnumeralType()) &&
614 ToType->isFloatingType())) {
615 // Floating-integral conversions (C++ 4.9).
616 // FIXME: isIntegralType shouldn't be true for enums in C++.
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000617 SCS.Second = ICK_Floating_Integral;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000618 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000619 } else if ((FromType->isComplexType() && ToType->isArithmeticType()) ||
620 (ToType->isComplexType() && FromType->isArithmeticType())) {
621 // Complex-real conversions (C99 6.3.1.7)
Douglas Gregore819caf2009-02-12 00:15:05 +0000622 SCS.Second = ICK_Complex_Real;
623 FromType = ToType.getUnqualifiedType();
Mike Stump90fc78e2009-08-04 21:02:39 +0000624 } else if (IsPointerConversion(From, FromType, ToType, FromType,
625 IncompatibleObjC)) {
626 // Pointer conversions (C++ 4.10).
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000627 SCS.Second = ICK_Pointer_Conversion;
Douglas Gregor6fd35572008-12-19 17:40:08 +0000628 SCS.IncompatibleObjC = IncompatibleObjC;
Mike Stump90fc78e2009-08-04 21:02:39 +0000629 } else if (IsMemberPointerConversion(From, FromType, ToType, FromType)) {
630 // Pointer to member conversions (4.11).
Sebastian Redlba387562009-01-25 19:43:20 +0000631 SCS.Second = ICK_Pointer_Member;
Mike Stump90fc78e2009-08-04 21:02:39 +0000632 } else if (ToType->isBooleanType() &&
633 (FromType->isArithmeticType() ||
634 FromType->isEnumeralType() ||
635 FromType->isPointerType() ||
636 FromType->isBlockPointerType() ||
637 FromType->isMemberPointerType() ||
638 FromType->isNullPtrType())) {
639 // Boolean conversions (C++ 4.12).
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000640 SCS.Second = ICK_Boolean_Conversion;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000641 FromType = Context.BoolTy;
Mike Stump90fc78e2009-08-04 21:02:39 +0000642 } else if (!getLangOptions().CPlusPlus &&
643 Context.typesAreCompatible(ToType, FromType)) {
644 // Compatible conversions (Clang extension for C function overloading)
Douglas Gregorfcb19192009-02-11 23:02:49 +0000645 SCS.Second = ICK_Compatible_Conversion;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000646 } else {
647 // No second conversion required.
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000648 SCS.Second = ICK_Identity;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000649 }
650
Douglas Gregor81c29152008-10-29 00:13:59 +0000651 QualType CanonFrom;
652 QualType CanonTo;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000653 // The third conversion can be a qualification conversion (C++ 4p1).
Douglas Gregor6573cfd2008-10-21 23:43:52 +0000654 if (IsQualificationConversion(FromType, ToType)) {
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000655 SCS.Third = ICK_Qualification;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000656 FromType = ToType;
Douglas Gregor81c29152008-10-29 00:13:59 +0000657 CanonFrom = Context.getCanonicalType(FromType);
658 CanonTo = Context.getCanonicalType(ToType);
Douglas Gregord2baafd2008-10-21 16:13:35 +0000659 } else {
660 // No conversion required
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000661 SCS.Third = ICK_Identity;
662
663 // C++ [over.best.ics]p6:
664 // [...] Any difference in top-level cv-qualification is
665 // subsumed by the initialization itself and does not constitute
666 // a conversion. [...]
Douglas Gregor81c29152008-10-29 00:13:59 +0000667 CanonFrom = Context.getCanonicalType(FromType);
668 CanonTo = Context.getCanonicalType(ToType);
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000669 if (CanonFrom.getUnqualifiedType() == CanonTo.getUnqualifiedType() &&
Douglas Gregor81c29152008-10-29 00:13:59 +0000670 CanonFrom.getCVRQualifiers() != CanonTo.getCVRQualifiers()) {
671 FromType = ToType;
672 CanonFrom = CanonTo;
673 }
Douglas Gregord2baafd2008-10-21 16:13:35 +0000674 }
675
676 // If we have not converted the argument type to the parameter type,
677 // this is a bad conversion sequence.
Douglas Gregor81c29152008-10-29 00:13:59 +0000678 if (CanonFrom != CanonTo)
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000679 return false;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000680
Douglas Gregorb72e9da2008-10-31 16:23:19 +0000681 SCS.ToTypePtr = FromType.getAsOpaquePtr();
682 return true;
Douglas Gregord2baafd2008-10-21 16:13:35 +0000683}
684
685/// IsIntegralPromotion - Determines whether the conversion from the
686/// expression From (whose potentially-adjusted type is FromType) to
687/// ToType is an integral promotion (C++ 4.5). If so, returns true and
688/// sets PromotedType to the promoted type.
689bool Sema::IsIntegralPromotion(Expr *From, QualType FromType, QualType ToType)
690{
691 const BuiltinType *To = ToType->getAsBuiltinType();
Sebastian Redl12aee862008-11-04 15:59:10 +0000692 // All integers are built-in.
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000693 if (!To) {
694 return false;
695 }
Douglas Gregord2baafd2008-10-21 16:13:35 +0000696
697 // An rvalue of type char, signed char, unsigned char, short int, or
698 // unsigned short int can be converted to an rvalue of type int if
699 // int can represent all the values of the source type; otherwise,
700 // the source rvalue can be converted to an rvalue of type unsigned
701 // int (C++ 4.5p1).
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000702 if (FromType->isPromotableIntegerType() && !FromType->isBooleanType()) {
Douglas Gregord2baafd2008-10-21 16:13:35 +0000703 if (// We can promote any signed, promotable integer type to an int
704 (FromType->isSignedIntegerType() ||
705 // We can promote any unsigned integer type whose size is
706 // less than int to an int.
707 (!FromType->isSignedIntegerType() &&
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000708 Context.getTypeSize(FromType) < Context.getTypeSize(ToType)))) {
Douglas Gregord2baafd2008-10-21 16:13:35 +0000709 return To->getKind() == BuiltinType::Int;
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000710 }
711
Douglas Gregord2baafd2008-10-21 16:13:35 +0000712 return To->getKind() == BuiltinType::UInt;
713 }
714
715 // An rvalue of type wchar_t (3.9.1) or an enumeration type (7.2)
716 // can be converted to an rvalue of the first of the following types
717 // that can represent all the values of its underlying type: int,
718 // unsigned int, long, or unsigned long (C++ 4.5p2).
719 if ((FromType->isEnumeralType() || FromType->isWideCharType())
720 && ToType->isIntegerType()) {
721 // Determine whether the type we're converting from is signed or
722 // unsigned.
723 bool FromIsSigned;
724 uint64_t FromSize = Context.getTypeSize(FromType);
725 if (const EnumType *FromEnumType = FromType->getAsEnumType()) {
726 QualType UnderlyingType = FromEnumType->getDecl()->getIntegerType();
727 FromIsSigned = UnderlyingType->isSignedIntegerType();
728 } else {
729 // FIXME: Is wchar_t signed or unsigned? We assume it's signed for now.
730 FromIsSigned = true;
731 }
732
733 // The types we'll try to promote to, in the appropriate
734 // order. Try each of these types.
Douglas Gregor6b5e34f2008-12-12 02:00:36 +0000735 QualType PromoteTypes[6] = {
Douglas Gregord2baafd2008-10-21 16:13:35 +0000736 Context.IntTy, Context.UnsignedIntTy,
Douglas Gregor6b5e34f2008-12-12 02:00:36 +0000737 Context.LongTy, Context.UnsignedLongTy ,
738 Context.LongLongTy, Context.UnsignedLongLongTy
Douglas Gregord2baafd2008-10-21 16:13:35 +0000739 };
Douglas Gregor6b5e34f2008-12-12 02:00:36 +0000740 for (int Idx = 0; Idx < 6; ++Idx) {
Douglas Gregord2baafd2008-10-21 16:13:35 +0000741 uint64_t ToSize = Context.getTypeSize(PromoteTypes[Idx]);
742 if (FromSize < ToSize ||
743 (FromSize == ToSize &&
744 FromIsSigned == PromoteTypes[Idx]->isSignedIntegerType())) {
745 // We found the type that we can promote to. If this is the
746 // type we wanted, we have a promotion. Otherwise, no
747 // promotion.
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000748 return Context.getCanonicalType(ToType).getUnqualifiedType()
Douglas Gregord2baafd2008-10-21 16:13:35 +0000749 == Context.getCanonicalType(PromoteTypes[Idx]).getUnqualifiedType();
750 }
751 }
752 }
753
754 // An rvalue for an integral bit-field (9.6) can be converted to an
755 // rvalue of type int if int can represent all the values of the
756 // bit-field; otherwise, it can be converted to unsigned int if
757 // unsigned int can represent all the values of the bit-field. If
758 // the bit-field is larger yet, no integral promotion applies to
759 // it. If the bit-field has an enumerated type, it is treated as any
760 // other value of that type for promotion purposes (C++ 4.5p3).
Mike Stumpe127ae32009-05-16 07:39:55 +0000761 // FIXME: We should delay checking of bit-fields until we actually perform the
762 // conversion.
Douglas Gregor531434b2009-05-02 02:18:30 +0000763 using llvm::APSInt;
764 if (From)
765 if (FieldDecl *MemberDecl = From->getBitField()) {
Douglas Gregor82d44772008-12-20 23:49:58 +0000766 APSInt BitWidth;
Douglas Gregor531434b2009-05-02 02:18:30 +0000767 if (FromType->isIntegralType() && !FromType->isEnumeralType() &&
768 MemberDecl->getBitWidth()->isIntegerConstantExpr(BitWidth, Context)) {
769 APSInt ToSize(BitWidth.getBitWidth(), BitWidth.isUnsigned());
770 ToSize = Context.getTypeSize(ToType);
Douglas Gregor82d44772008-12-20 23:49:58 +0000771
772 // Are we promoting to an int from a bitfield that fits in an int?
773 if (BitWidth < ToSize ||
774 (FromType->isSignedIntegerType() && BitWidth <= ToSize)) {
775 return To->getKind() == BuiltinType::Int;
776 }
777
778 // Are we promoting to an unsigned int from an unsigned bitfield
779 // that fits into an unsigned int?
780 if (FromType->isUnsignedIntegerType() && BitWidth <= ToSize) {
781 return To->getKind() == BuiltinType::UInt;
782 }
783
784 return false;
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000785 }
Douglas Gregord2baafd2008-10-21 16:13:35 +0000786 }
Douglas Gregor531434b2009-05-02 02:18:30 +0000787
Douglas Gregord2baafd2008-10-21 16:13:35 +0000788 // An rvalue of type bool can be converted to an rvalue of type int,
789 // with false becoming zero and true becoming one (C++ 4.5p4).
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000790 if (FromType->isBooleanType() && To->getKind() == BuiltinType::Int) {
Douglas Gregord2baafd2008-10-21 16:13:35 +0000791 return true;
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000792 }
Douglas Gregord2baafd2008-10-21 16:13:35 +0000793
794 return false;
795}
796
797/// IsFloatingPointPromotion - Determines whether the conversion from
798/// FromType to ToType is a floating point promotion (C++ 4.6). If so,
799/// returns true and sets PromotedType to the promoted type.
800bool Sema::IsFloatingPointPromotion(QualType FromType, QualType ToType)
801{
802 /// An rvalue of type float can be converted to an rvalue of type
803 /// double. (C++ 4.6p1).
804 if (const BuiltinType *FromBuiltin = FromType->getAsBuiltinType())
Douglas Gregore819caf2009-02-12 00:15:05 +0000805 if (const BuiltinType *ToBuiltin = ToType->getAsBuiltinType()) {
Douglas Gregord2baafd2008-10-21 16:13:35 +0000806 if (FromBuiltin->getKind() == BuiltinType::Float &&
807 ToBuiltin->getKind() == BuiltinType::Double)
808 return true;
809
Douglas Gregore819caf2009-02-12 00:15:05 +0000810 // C99 6.3.1.5p1:
811 // When a float is promoted to double or long double, or a
812 // double is promoted to long double [...].
813 if (!getLangOptions().CPlusPlus &&
814 (FromBuiltin->getKind() == BuiltinType::Float ||
815 FromBuiltin->getKind() == BuiltinType::Double) &&
816 (ToBuiltin->getKind() == BuiltinType::LongDouble))
817 return true;
818 }
819
Douglas Gregord2baafd2008-10-21 16:13:35 +0000820 return false;
821}
822
Douglas Gregore819caf2009-02-12 00:15:05 +0000823/// \brief Determine if a conversion is a complex promotion.
824///
825/// A complex promotion is defined as a complex -> complex conversion
826/// where the conversion between the underlying real types is a
Douglas Gregor4ff48512009-02-12 00:26:06 +0000827/// floating-point or integral promotion.
Douglas Gregore819caf2009-02-12 00:15:05 +0000828bool Sema::IsComplexPromotion(QualType FromType, QualType ToType) {
829 const ComplexType *FromComplex = FromType->getAsComplexType();
830 if (!FromComplex)
831 return false;
832
833 const ComplexType *ToComplex = ToType->getAsComplexType();
834 if (!ToComplex)
835 return false;
836
837 return IsFloatingPointPromotion(FromComplex->getElementType(),
Douglas Gregor4ff48512009-02-12 00:26:06 +0000838 ToComplex->getElementType()) ||
839 IsIntegralPromotion(0, FromComplex->getElementType(),
840 ToComplex->getElementType());
Douglas Gregore819caf2009-02-12 00:15:05 +0000841}
842
Douglas Gregor24a90a52008-11-26 23:31:11 +0000843/// BuildSimilarlyQualifiedPointerType - In a pointer conversion from
844/// the pointer type FromPtr to a pointer to type ToPointee, with the
845/// same type qualifiers as FromPtr has on its pointee type. ToType,
846/// if non-empty, will be a pointer to ToType that may or may not have
847/// the right set of qualifiers on its pointee.
848static QualType
849BuildSimilarlyQualifiedPointerType(const PointerType *FromPtr,
850 QualType ToPointee, QualType ToType,
851 ASTContext &Context) {
852 QualType CanonFromPointee = Context.getCanonicalType(FromPtr->getPointeeType());
853 QualType CanonToPointee = Context.getCanonicalType(ToPointee);
854 unsigned Quals = CanonFromPointee.getCVRQualifiers();
855
856 // Exact qualifier match -> return the pointer type we're converting to.
857 if (CanonToPointee.getCVRQualifiers() == Quals) {
858 // ToType is exactly what we need. Return it.
859 if (ToType.getTypePtr())
860 return ToType;
861
862 // Build a pointer to ToPointee. It has the right qualifiers
863 // already.
864 return Context.getPointerType(ToPointee);
865 }
866
867 // Just build a canonical type that has the right qualifiers.
868 return Context.getPointerType(CanonToPointee.getQualifiedType(Quals));
869}
870
Douglas Gregord2baafd2008-10-21 16:13:35 +0000871/// IsPointerConversion - Determines whether the conversion of the
872/// expression From, which has the (possibly adjusted) type FromType,
873/// can be converted to the type ToType via a pointer conversion (C++
874/// 4.10). If so, returns true and places the converted type (that
875/// might differ from ToType in its cv-qualifiers at some level) into
876/// ConvertedType.
Douglas Gregor9036ef72008-11-27 00:15:41 +0000877///
Douglas Gregor3f5a00c2008-11-27 01:19:21 +0000878/// This routine also supports conversions to and from block pointers
879/// and conversions with Objective-C's 'id', 'id<protocols...>', and
880/// pointers to interfaces. FIXME: Once we've determined the
881/// appropriate overloading rules for Objective-C, we may want to
882/// split the Objective-C checks into a different routine; however,
883/// GCC seems to consider all of these conversions to be pointer
Douglas Gregor6fd35572008-12-19 17:40:08 +0000884/// conversions, so for now they live here. IncompatibleObjC will be
885/// set if the conversion is an allowed Objective-C conversion that
886/// should result in a warning.
Douglas Gregord2baafd2008-10-21 16:13:35 +0000887bool Sema::IsPointerConversion(Expr *From, QualType FromType, QualType ToType,
Douglas Gregor6fd35572008-12-19 17:40:08 +0000888 QualType& ConvertedType,
889 bool &IncompatibleObjC)
Douglas Gregord2baafd2008-10-21 16:13:35 +0000890{
Douglas Gregor6fd35572008-12-19 17:40:08 +0000891 IncompatibleObjC = false;
Douglas Gregor932778b2008-12-19 19:13:09 +0000892 if (isObjCPointerConversion(FromType, ToType, ConvertedType, IncompatibleObjC))
893 return true;
Douglas Gregor6fd35572008-12-19 17:40:08 +0000894
Douglas Gregorf1d75712008-12-22 20:51:52 +0000895 // Conversion from a null pointer constant to any Objective-C pointer type.
Steve Naroffad75bd22009-07-16 15:41:00 +0000896 if (ToType->isObjCObjectPointerType() &&
Douglas Gregorf1d75712008-12-22 20:51:52 +0000897 From->isNullPointerConstant(Context)) {
898 ConvertedType = ToType;
899 return true;
900 }
901
Douglas Gregor9036ef72008-11-27 00:15:41 +0000902 // Blocks: Block pointers can be converted to void*.
903 if (FromType->isBlockPointerType() && ToType->isPointerType() &&
Ted Kremenekd00cd9e2009-07-29 21:53:49 +0000904 ToType->getAs<PointerType>()->getPointeeType()->isVoidType()) {
Douglas Gregor9036ef72008-11-27 00:15:41 +0000905 ConvertedType = ToType;
906 return true;
907 }
908 // Blocks: A null pointer constant can be converted to a block
909 // pointer type.
910 if (ToType->isBlockPointerType() && From->isNullPointerConstant(Context)) {
911 ConvertedType = ToType;
912 return true;
913 }
914
Sebastian Redl5d0ead72009-05-10 18:38:11 +0000915 // If the left-hand-side is nullptr_t, the right side can be a null
916 // pointer constant.
917 if (ToType->isNullPtrType() && From->isNullPointerConstant(Context)) {
918 ConvertedType = ToType;
919 return true;
920 }
921
Ted Kremenekd00cd9e2009-07-29 21:53:49 +0000922 const PointerType* ToTypePtr = ToType->getAs<PointerType>();
Douglas Gregord2baafd2008-10-21 16:13:35 +0000923 if (!ToTypePtr)
924 return false;
925
926 // A null pointer constant can be converted to a pointer type (C++ 4.10p1).
927 if (From->isNullPointerConstant(Context)) {
928 ConvertedType = ToType;
929 return true;
930 }
Sebastian Redl9ac68aa2008-10-31 14:43:28 +0000931
Douglas Gregor24a90a52008-11-26 23:31:11 +0000932 // Beyond this point, both types need to be pointers.
Ted Kremenekd00cd9e2009-07-29 21:53:49 +0000933 const PointerType *FromTypePtr = FromType->getAs<PointerType>();
Douglas Gregor24a90a52008-11-26 23:31:11 +0000934 if (!FromTypePtr)
935 return false;
936
937 QualType FromPointeeType = FromTypePtr->getPointeeType();
938 QualType ToPointeeType = ToTypePtr->getPointeeType();
939
Douglas Gregord2baafd2008-10-21 16:13:35 +0000940 // An rvalue of type "pointer to cv T," where T is an object type,
941 // can be converted to an rvalue of type "pointer to cv void" (C++
942 // 4.10p2).
Douglas Gregor26ea1222009-03-24 20:32:41 +0000943 if (FromPointeeType->isObjectType() && ToPointeeType->isVoidType()) {
Douglas Gregor8bb7ad82008-11-27 00:52:49 +0000944 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr,
945 ToPointeeType,
Douglas Gregor24a90a52008-11-26 23:31:11 +0000946 ToType, Context);
Douglas Gregord2baafd2008-10-21 16:13:35 +0000947 return true;
948 }
949
Douglas Gregorfcb19192009-02-11 23:02:49 +0000950 // When we're overloading in C, we allow a special kind of pointer
951 // conversion for compatible-but-not-identical pointee types.
952 if (!getLangOptions().CPlusPlus &&
953 Context.typesAreCompatible(FromPointeeType, ToPointeeType)) {
954 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr,
955 ToPointeeType,
956 ToType, Context);
957 return true;
958 }
959
Douglas Gregor14046502008-10-23 00:40:37 +0000960 // C++ [conv.ptr]p3:
961 //
962 // An rvalue of type "pointer to cv D," where D is a class type,
963 // can be converted to an rvalue of type "pointer to cv B," where
964 // B is a base class (clause 10) of D. If B is an inaccessible
965 // (clause 11) or ambiguous (10.2) base class of D, a program that
966 // necessitates this conversion is ill-formed. The result of the
967 // conversion is a pointer to the base class sub-object of the
968 // derived class object. The null pointer value is converted to
969 // the null pointer value of the destination type.
970 //
Douglas Gregorbb461502008-10-24 04:54:22 +0000971 // Note that we do not check for ambiguity or inaccessibility
972 // here. That is handled by CheckPointerConversion.
Douglas Gregorfcb19192009-02-11 23:02:49 +0000973 if (getLangOptions().CPlusPlus &&
974 FromPointeeType->isRecordType() && ToPointeeType->isRecordType() &&
Douglas Gregor24a90a52008-11-26 23:31:11 +0000975 IsDerivedFrom(FromPointeeType, ToPointeeType)) {
Douglas Gregor8bb7ad82008-11-27 00:52:49 +0000976 ConvertedType = BuildSimilarlyQualifiedPointerType(FromTypePtr,
977 ToPointeeType,
Douglas Gregor24a90a52008-11-26 23:31:11 +0000978 ToType, Context);
979 return true;
980 }
Douglas Gregor14046502008-10-23 00:40:37 +0000981
Douglas Gregor932778b2008-12-19 19:13:09 +0000982 return false;
983}
984
985/// isObjCPointerConversion - Determines whether this is an
986/// Objective-C pointer conversion. Subroutine of IsPointerConversion,
987/// with the same arguments and return values.
988bool Sema::isObjCPointerConversion(QualType FromType, QualType ToType,
989 QualType& ConvertedType,
990 bool &IncompatibleObjC) {
991 if (!getLangOptions().ObjC1)
992 return false;
993
Steve Naroff329ec222009-07-10 23:34:53 +0000994 // First, we handle all conversions on ObjC object pointer types.
995 const ObjCObjectPointerType* ToObjCPtr = ToType->getAsObjCObjectPointerType();
996 const ObjCObjectPointerType *FromObjCPtr =
997 FromType->getAsObjCObjectPointerType();
Douglas Gregor932778b2008-12-19 19:13:09 +0000998
Steve Naroff329ec222009-07-10 23:34:53 +0000999 if (ToObjCPtr && FromObjCPtr) {
Steve Naroff7bffd372009-07-15 18:40:39 +00001000 // Objective C++: We're able to convert between "id" or "Class" and a
Steve Naroff329ec222009-07-10 23:34:53 +00001001 // pointer to any interface (in both directions).
Steve Naroff7bffd372009-07-15 18:40:39 +00001002 if (ToObjCPtr->isObjCBuiltinType() && FromObjCPtr->isObjCBuiltinType()) {
Steve Naroff329ec222009-07-10 23:34:53 +00001003 ConvertedType = ToType;
1004 return true;
1005 }
1006 // Conversions with Objective-C's id<...>.
1007 if ((FromObjCPtr->isObjCQualifiedIdType() ||
1008 ToObjCPtr->isObjCQualifiedIdType()) &&
Steve Naroff99eb86b2009-07-23 01:01:38 +00001009 Context.ObjCQualifiedIdTypesAreCompatible(ToType, FromType,
1010 /*compare=*/false)) {
Steve Naroff329ec222009-07-10 23:34:53 +00001011 ConvertedType = ToType;
1012 return true;
1013 }
1014 // Objective C++: We're able to convert from a pointer to an
1015 // interface to a pointer to a different interface.
1016 if (Context.canAssignObjCInterfaces(ToObjCPtr, FromObjCPtr)) {
1017 ConvertedType = ToType;
1018 return true;
1019 }
1020
1021 if (Context.canAssignObjCInterfaces(FromObjCPtr, ToObjCPtr)) {
1022 // Okay: this is some kind of implicit downcast of Objective-C
1023 // interfaces, which is permitted. However, we're going to
1024 // complain about it.
1025 IncompatibleObjC = true;
1026 ConvertedType = FromType;
1027 return true;
1028 }
1029 }
1030 // Beyond this point, both types need to be C pointers or block pointers.
Douglas Gregor80402cf2008-12-23 00:53:59 +00001031 QualType ToPointeeType;
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001032 if (const PointerType *ToCPtr = ToType->getAs<PointerType>())
Steve Naroff329ec222009-07-10 23:34:53 +00001033 ToPointeeType = ToCPtr->getPointeeType();
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001034 else if (const BlockPointerType *ToBlockPtr = ToType->getAs<BlockPointerType>())
Douglas Gregor80402cf2008-12-23 00:53:59 +00001035 ToPointeeType = ToBlockPtr->getPointeeType();
1036 else
Douglas Gregor932778b2008-12-19 19:13:09 +00001037 return false;
1038
Douglas Gregor80402cf2008-12-23 00:53:59 +00001039 QualType FromPointeeType;
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001040 if (const PointerType *FromCPtr = FromType->getAs<PointerType>())
Steve Naroff329ec222009-07-10 23:34:53 +00001041 FromPointeeType = FromCPtr->getPointeeType();
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001042 else if (const BlockPointerType *FromBlockPtr = FromType->getAs<BlockPointerType>())
Douglas Gregor80402cf2008-12-23 00:53:59 +00001043 FromPointeeType = FromBlockPtr->getPointeeType();
1044 else
Douglas Gregor932778b2008-12-19 19:13:09 +00001045 return false;
1046
Douglas Gregor932778b2008-12-19 19:13:09 +00001047 // If we have pointers to pointers, recursively check whether this
1048 // is an Objective-C conversion.
1049 if (FromPointeeType->isPointerType() && ToPointeeType->isPointerType() &&
1050 isObjCPointerConversion(FromPointeeType, ToPointeeType, ConvertedType,
1051 IncompatibleObjC)) {
1052 // We always complain about this conversion.
1053 IncompatibleObjC = true;
1054 ConvertedType = ToType;
1055 return true;
1056 }
Douglas Gregor80402cf2008-12-23 00:53:59 +00001057 // If we have pointers to functions or blocks, check whether the only
Douglas Gregor932778b2008-12-19 19:13:09 +00001058 // differences in the argument and result types are in Objective-C
1059 // pointer conversions. If so, we permit the conversion (but
1060 // complain about it).
Douglas Gregor4fa58902009-02-26 23:50:07 +00001061 const FunctionProtoType *FromFunctionType
1062 = FromPointeeType->getAsFunctionProtoType();
1063 const FunctionProtoType *ToFunctionType
1064 = ToPointeeType->getAsFunctionProtoType();
Douglas Gregor932778b2008-12-19 19:13:09 +00001065 if (FromFunctionType && ToFunctionType) {
1066 // If the function types are exactly the same, this isn't an
1067 // Objective-C pointer conversion.
1068 if (Context.getCanonicalType(FromPointeeType)
1069 == Context.getCanonicalType(ToPointeeType))
1070 return false;
1071
1072 // Perform the quick checks that will tell us whether these
1073 // function types are obviously different.
1074 if (FromFunctionType->getNumArgs() != ToFunctionType->getNumArgs() ||
1075 FromFunctionType->isVariadic() != ToFunctionType->isVariadic() ||
1076 FromFunctionType->getTypeQuals() != ToFunctionType->getTypeQuals())
1077 return false;
1078
1079 bool HasObjCConversion = false;
1080 if (Context.getCanonicalType(FromFunctionType->getResultType())
1081 == Context.getCanonicalType(ToFunctionType->getResultType())) {
1082 // Okay, the types match exactly. Nothing to do.
1083 } else if (isObjCPointerConversion(FromFunctionType->getResultType(),
1084 ToFunctionType->getResultType(),
1085 ConvertedType, IncompatibleObjC)) {
1086 // Okay, we have an Objective-C pointer conversion.
1087 HasObjCConversion = true;
1088 } else {
1089 // Function types are too different. Abort.
1090 return false;
1091 }
1092
1093 // Check argument types.
1094 for (unsigned ArgIdx = 0, NumArgs = FromFunctionType->getNumArgs();
1095 ArgIdx != NumArgs; ++ArgIdx) {
1096 QualType FromArgType = FromFunctionType->getArgType(ArgIdx);
1097 QualType ToArgType = ToFunctionType->getArgType(ArgIdx);
1098 if (Context.getCanonicalType(FromArgType)
1099 == Context.getCanonicalType(ToArgType)) {
1100 // Okay, the types match exactly. Nothing to do.
1101 } else if (isObjCPointerConversion(FromArgType, ToArgType,
1102 ConvertedType, IncompatibleObjC)) {
1103 // Okay, we have an Objective-C pointer conversion.
1104 HasObjCConversion = true;
1105 } else {
1106 // Argument types are too different. Abort.
1107 return false;
1108 }
1109 }
1110
1111 if (HasObjCConversion) {
1112 // We had an Objective-C conversion. Allow this pointer
1113 // conversion, but complain about it.
1114 ConvertedType = ToType;
1115 IncompatibleObjC = true;
1116 return true;
1117 }
1118 }
1119
Sebastian Redlba387562009-01-25 19:43:20 +00001120 return false;
Douglas Gregord2baafd2008-10-21 16:13:35 +00001121}
1122
Douglas Gregorbb461502008-10-24 04:54:22 +00001123/// CheckPointerConversion - Check the pointer conversion from the
1124/// expression From to the type ToType. This routine checks for
Sebastian Redl0e35d042009-07-25 15:41:38 +00001125/// ambiguous or inaccessible derived-to-base pointer
Douglas Gregorbb461502008-10-24 04:54:22 +00001126/// conversions for which IsPointerConversion has already returned
1127/// true. It returns true and produces a diagnostic if there was an
1128/// error, or returns false otherwise.
1129bool Sema::CheckPointerConversion(Expr *From, QualType ToType) {
1130 QualType FromType = From->getType();
1131
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001132 if (const PointerType *FromPtrType = FromType->getAs<PointerType>())
1133 if (const PointerType *ToPtrType = ToType->getAs<PointerType>()) {
Douglas Gregorbb461502008-10-24 04:54:22 +00001134 QualType FromPointeeType = FromPtrType->getPointeeType(),
1135 ToPointeeType = ToPtrType->getPointeeType();
Douglas Gregord0c653a2008-12-18 23:43:31 +00001136
Douglas Gregorbb461502008-10-24 04:54:22 +00001137 if (FromPointeeType->isRecordType() &&
1138 ToPointeeType->isRecordType()) {
1139 // We must have a derived-to-base conversion. Check an
1140 // ambiguous or inaccessible conversion.
Douglas Gregor651d1cc2008-10-24 16:17:19 +00001141 return CheckDerivedToBaseConversion(FromPointeeType, ToPointeeType,
1142 From->getExprLoc(),
1143 From->getSourceRange());
Douglas Gregorbb461502008-10-24 04:54:22 +00001144 }
1145 }
Steve Naroff329ec222009-07-10 23:34:53 +00001146 if (const ObjCObjectPointerType *FromPtrType =
1147 FromType->getAsObjCObjectPointerType())
1148 if (const ObjCObjectPointerType *ToPtrType =
1149 ToType->getAsObjCObjectPointerType()) {
1150 // Objective-C++ conversions are always okay.
1151 // FIXME: We should have a different class of conversions for the
1152 // Objective-C++ implicit conversions.
Steve Naroff7bffd372009-07-15 18:40:39 +00001153 if (FromPtrType->isObjCBuiltinType() || ToPtrType->isObjCBuiltinType())
Steve Naroff329ec222009-07-10 23:34:53 +00001154 return false;
Douglas Gregorbb461502008-10-24 04:54:22 +00001155
Steve Naroff329ec222009-07-10 23:34:53 +00001156 }
Douglas Gregorbb461502008-10-24 04:54:22 +00001157 return false;
1158}
1159
Sebastian Redlba387562009-01-25 19:43:20 +00001160/// IsMemberPointerConversion - Determines whether the conversion of the
1161/// expression From, which has the (possibly adjusted) type FromType, can be
1162/// converted to the type ToType via a member pointer conversion (C++ 4.11).
1163/// If so, returns true and places the converted type (that might differ from
1164/// ToType in its cv-qualifiers at some level) into ConvertedType.
1165bool Sema::IsMemberPointerConversion(Expr *From, QualType FromType,
1166 QualType ToType, QualType &ConvertedType)
1167{
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001168 const MemberPointerType *ToTypePtr = ToType->getAs<MemberPointerType>();
Sebastian Redlba387562009-01-25 19:43:20 +00001169 if (!ToTypePtr)
1170 return false;
1171
1172 // A null pointer constant can be converted to a member pointer (C++ 4.11p1)
1173 if (From->isNullPointerConstant(Context)) {
1174 ConvertedType = ToType;
1175 return true;
1176 }
1177
1178 // Otherwise, both types have to be member pointers.
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001179 const MemberPointerType *FromTypePtr = FromType->getAs<MemberPointerType>();
Sebastian Redlba387562009-01-25 19:43:20 +00001180 if (!FromTypePtr)
1181 return false;
1182
1183 // A pointer to member of B can be converted to a pointer to member of D,
1184 // where D is derived from B (C++ 4.11p2).
1185 QualType FromClass(FromTypePtr->getClass(), 0);
1186 QualType ToClass(ToTypePtr->getClass(), 0);
1187 // FIXME: What happens when these are dependent? Is this function even called?
1188
1189 if (IsDerivedFrom(ToClass, FromClass)) {
1190 ConvertedType = Context.getMemberPointerType(FromTypePtr->getPointeeType(),
1191 ToClass.getTypePtr());
1192 return true;
1193 }
1194
1195 return false;
1196}
1197
1198/// CheckMemberPointerConversion - Check the member pointer conversion from the
1199/// expression From to the type ToType. This routine checks for ambiguous or
1200/// virtual (FIXME: or inaccessible) base-to-derived member pointer conversions
1201/// for which IsMemberPointerConversion has already returned true. It returns
1202/// true and produces a diagnostic if there was an error, or returns false
1203/// otherwise.
Anders Carlsson512f4ba2009-08-22 23:33:40 +00001204bool Sema::CheckMemberPointerConversion(Expr *From, QualType ToType,
1205 CastExpr::CastKind &Kind) {
Sebastian Redlba387562009-01-25 19:43:20 +00001206 QualType FromType = From->getType();
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001207 const MemberPointerType *FromPtrType = FromType->getAs<MemberPointerType>();
Anders Carlsson512f4ba2009-08-22 23:33:40 +00001208 if (!FromPtrType) {
1209 // This must be a null pointer to member pointer conversion
1210 assert(From->isNullPointerConstant(Context) &&
1211 "Expr must be null pointer constant!");
1212 Kind = CastExpr::CK_NullToMemberPointer;
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001213 return false;
Anders Carlsson512f4ba2009-08-22 23:33:40 +00001214 }
Sebastian Redlba387562009-01-25 19:43:20 +00001215
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001216 const MemberPointerType *ToPtrType = ToType->getAs<MemberPointerType>();
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001217 assert(ToPtrType && "No member pointer cast has a target type "
1218 "that is not a member pointer.");
Sebastian Redlba387562009-01-25 19:43:20 +00001219
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001220 QualType FromClass = QualType(FromPtrType->getClass(), 0);
1221 QualType ToClass = QualType(ToPtrType->getClass(), 0);
Sebastian Redlba387562009-01-25 19:43:20 +00001222
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001223 // FIXME: What about dependent types?
1224 assert(FromClass->isRecordType() && "Pointer into non-class.");
1225 assert(ToClass->isRecordType() && "Pointer into non-class.");
Sebastian Redlba387562009-01-25 19:43:20 +00001226
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001227 BasePaths Paths(/*FindAmbiguities=*/true, /*RecordPaths=*/false,
1228 /*DetectVirtual=*/true);
1229 bool DerivationOkay = IsDerivedFrom(ToClass, FromClass, Paths);
1230 assert(DerivationOkay &&
1231 "Should not have been called if derivation isn't OK.");
1232 (void)DerivationOkay;
Sebastian Redlba387562009-01-25 19:43:20 +00001233
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001234 if (Paths.isAmbiguous(Context.getCanonicalType(FromClass).
1235 getUnqualifiedType())) {
1236 // Derivation is ambiguous. Redo the check to find the exact paths.
1237 Paths.clear();
1238 Paths.setRecordingPaths(true);
1239 bool StillOkay = IsDerivedFrom(ToClass, FromClass, Paths);
1240 assert(StillOkay && "Derivation changed due to quantum fluctuation.");
1241 (void)StillOkay;
Sebastian Redlba387562009-01-25 19:43:20 +00001242
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001243 std::string PathDisplayStr = getAmbiguousPathsDisplayString(Paths);
1244 Diag(From->getExprLoc(), diag::err_ambiguous_memptr_conv)
1245 << 0 << FromClass << ToClass << PathDisplayStr << From->getSourceRange();
1246 return true;
Sebastian Redlba387562009-01-25 19:43:20 +00001247 }
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001248
Douglas Gregor2e047592009-02-28 01:32:25 +00001249 if (const RecordType *VBase = Paths.getDetectedVirtual()) {
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001250 Diag(From->getExprLoc(), diag::err_memptr_conv_via_virtual)
1251 << FromClass << ToClass << QualType(VBase, 0)
1252 << From->getSourceRange();
1253 return true;
1254 }
1255
Anders Carlsson512f4ba2009-08-22 23:33:40 +00001256 // Must be a base to derived member conversion.
1257 Kind = CastExpr::CK_BaseToDerivedMemberPointer;
Sebastian Redlba387562009-01-25 19:43:20 +00001258 return false;
1259}
1260
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001261/// IsQualificationConversion - Determines whether the conversion from
1262/// an rvalue of type FromType to ToType is a qualification conversion
1263/// (C++ 4.4).
1264bool
1265Sema::IsQualificationConversion(QualType FromType, QualType ToType)
1266{
1267 FromType = Context.getCanonicalType(FromType);
1268 ToType = Context.getCanonicalType(ToType);
1269
1270 // If FromType and ToType are the same type, this is not a
1271 // qualification conversion.
1272 if (FromType == ToType)
1273 return false;
Sebastian Redlf41a58c2009-01-28 18:33:18 +00001274
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001275 // (C++ 4.4p4):
1276 // A conversion can add cv-qualifiers at levels other than the first
1277 // in multi-level pointers, subject to the following rules: [...]
1278 bool PreviousToQualsIncludeConst = true;
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001279 bool UnwrappedAnyPointer = false;
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001280 while (UnwrapSimilarPointerTypes(FromType, ToType)) {
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001281 // Within each iteration of the loop, we check the qualifiers to
1282 // determine if this still looks like a qualification
1283 // conversion. Then, if all is well, we unwrap one more level of
Douglas Gregorabed2172008-10-22 17:49:05 +00001284 // pointers or pointers-to-members and do it all again
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001285 // until there are no more pointers or pointers-to-members left to
1286 // unwrap.
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001287 UnwrappedAnyPointer = true;
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001288
1289 // -- for every j > 0, if const is in cv 1,j then const is in cv
1290 // 2,j, and similarly for volatile.
Douglas Gregore5db4f72008-10-22 00:38:21 +00001291 if (!ToType.isAtLeastAsQualifiedAs(FromType))
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001292 return false;
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001293
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001294 // -- if the cv 1,j and cv 2,j are different, then const is in
1295 // every cv for 0 < k < j.
1296 if (FromType.getCVRQualifiers() != ToType.getCVRQualifiers()
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001297 && !PreviousToQualsIncludeConst)
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001298 return false;
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001299
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001300 // Keep track of whether all prior cv-qualifiers in the "to" type
1301 // include const.
1302 PreviousToQualsIncludeConst
1303 = PreviousToQualsIncludeConst && ToType.isConstQualified();
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001304 }
Douglas Gregor6573cfd2008-10-21 23:43:52 +00001305
1306 // We are left with FromType and ToType being the pointee types
1307 // after unwrapping the original FromType and ToType the same number
1308 // of types. If we unwrapped any pointers, and if FromType and
1309 // ToType have the same unqualified type (since we checked
1310 // qualifiers above), then this is a qualification conversion.
1311 return UnwrappedAnyPointer &&
1312 FromType.getUnqualifiedType() == ToType.getUnqualifiedType();
1313}
1314
Douglas Gregor8c860df2009-08-21 23:19:43 +00001315/// \brief Given a function template or function, extract the function template
1316/// declaration (if any) and the underlying function declaration.
1317template<typename T>
1318static void GetFunctionAndTemplate(AnyFunctionDecl Orig, T *&Function,
1319 FunctionTemplateDecl *&FunctionTemplate) {
1320 FunctionTemplate = dyn_cast<FunctionTemplateDecl>(Orig);
1321 if (FunctionTemplate)
1322 Function = cast<T>(FunctionTemplate->getTemplatedDecl());
1323 else
1324 Function = cast<T>(Orig);
1325}
1326
1327
Douglas Gregorb206cc42009-01-30 23:27:23 +00001328/// Determines whether there is a user-defined conversion sequence
1329/// (C++ [over.ics.user]) that converts expression From to the type
1330/// ToType. If such a conversion exists, User will contain the
1331/// user-defined conversion sequence that performs such a conversion
1332/// and this routine will return true. Otherwise, this routine returns
1333/// false and User is unspecified.
1334///
1335/// \param AllowConversionFunctions true if the conversion should
1336/// consider conversion functions at all. If false, only constructors
1337/// will be considered.
1338///
1339/// \param AllowExplicit true if the conversion should consider C++0x
1340/// "explicit" conversion functions as well as non-explicit conversion
1341/// functions (C++0x [class.conv.fct]p2).
Sebastian Redla55834a2009-04-12 17:16:29 +00001342///
1343/// \param ForceRValue true if the expression should be treated as an rvalue
1344/// for overload resolution.
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001345bool Sema::IsUserDefinedConversion(Expr *From, QualType ToType,
Douglas Gregor6214d8a2009-01-14 15:45:31 +00001346 UserDefinedConversionSequence& User,
Douglas Gregorb206cc42009-01-30 23:27:23 +00001347 bool AllowConversionFunctions,
Sebastian Redla55834a2009-04-12 17:16:29 +00001348 bool AllowExplicit, bool ForceRValue)
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001349{
1350 OverloadCandidateSet CandidateSet;
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001351 if (const RecordType *ToRecordType = ToType->getAs<RecordType>()) {
Douglas Gregor2e047592009-02-28 01:32:25 +00001352 if (CXXRecordDecl *ToRecordDecl
1353 = dyn_cast<CXXRecordDecl>(ToRecordType->getDecl())) {
1354 // C++ [over.match.ctor]p1:
1355 // When objects of class type are direct-initialized (8.5), or
1356 // copy-initialized from an expression of the same or a
1357 // derived class type (8.5), overload resolution selects the
1358 // constructor. [...] For copy-initialization, the candidate
1359 // functions are all the converting constructors (12.3.1) of
1360 // that class. The argument list is the expression-list within
1361 // the parentheses of the initializer.
1362 DeclarationName ConstructorName
1363 = Context.DeclarationNames.getCXXConstructorName(
1364 Context.getCanonicalType(ToType).getUnqualifiedType());
1365 DeclContext::lookup_iterator Con, ConEnd;
Douglas Gregorc55b0b02009-04-09 21:40:53 +00001366 for (llvm::tie(Con, ConEnd)
Argiris Kirtzidisab6e38a2009-06-30 02:36:12 +00001367 = ToRecordDecl->lookup(ConstructorName);
Douglas Gregor2e047592009-02-28 01:32:25 +00001368 Con != ConEnd; ++Con) {
Douglas Gregor050cabf2009-08-21 18:42:58 +00001369 // Find the constructor (which may be a template).
1370 CXXConstructorDecl *Constructor = 0;
1371 FunctionTemplateDecl *ConstructorTmpl
1372 = dyn_cast<FunctionTemplateDecl>(*Con);
1373 if (ConstructorTmpl)
1374 Constructor
1375 = cast<CXXConstructorDecl>(ConstructorTmpl->getTemplatedDecl());
1376 else
1377 Constructor = cast<CXXConstructorDecl>(*Con);
1378
Fariborz Jahanian625fb9d2009-08-06 17:22:51 +00001379 if (!Constructor->isInvalidDecl() &&
Douglas Gregor050cabf2009-08-21 18:42:58 +00001380 Constructor->isConvertingConstructor()) {
1381 if (ConstructorTmpl)
1382 AddTemplateOverloadCandidate(ConstructorTmpl, false, 0, 0, &From,
1383 1, CandidateSet,
1384 /*SuppressUserConversions=*/true,
1385 ForceRValue);
1386 else
1387 AddOverloadCandidate(Constructor, &From, 1, CandidateSet,
1388 /*SuppressUserConversions=*/true, ForceRValue);
1389 }
Douglas Gregor2e047592009-02-28 01:32:25 +00001390 }
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001391 }
1392 }
1393
Douglas Gregorb206cc42009-01-30 23:27:23 +00001394 if (!AllowConversionFunctions) {
1395 // Don't allow any conversion functions to enter the overload set.
Anders Carlssona21e7872009-08-26 23:45:07 +00001396 } else if (RequireCompleteType(From->getLocStart(), From->getType(),
1397 PDiag(0)
1398 << From->getSourceRange())) {
Douglas Gregorb35c7992009-08-24 15:23:48 +00001399 // No conversion functions from incomplete types.
Douglas Gregor2e047592009-02-28 01:32:25 +00001400 } else if (const RecordType *FromRecordType
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001401 = From->getType()->getAs<RecordType>()) {
Douglas Gregor2e047592009-02-28 01:32:25 +00001402 if (CXXRecordDecl *FromRecordDecl
1403 = dyn_cast<CXXRecordDecl>(FromRecordType->getDecl())) {
1404 // Add all of the conversion functions as candidates.
1405 // FIXME: Look for conversions in base classes!
1406 OverloadedFunctionDecl *Conversions
1407 = FromRecordDecl->getConversionFunctions();
1408 for (OverloadedFunctionDecl::function_iterator Func
1409 = Conversions->function_begin();
1410 Func != Conversions->function_end(); ++Func) {
Douglas Gregor8c860df2009-08-21 23:19:43 +00001411 CXXConversionDecl *Conv;
1412 FunctionTemplateDecl *ConvTemplate;
1413 GetFunctionAndTemplate(*Func, Conv, ConvTemplate);
1414 if (ConvTemplate)
1415 Conv = dyn_cast<CXXConversionDecl>(ConvTemplate->getTemplatedDecl());
1416 else
1417 Conv = dyn_cast<CXXConversionDecl>(*Func);
1418
1419 if (AllowExplicit || !Conv->isExplicit()) {
1420 if (ConvTemplate)
1421 AddTemplateConversionCandidate(ConvTemplate, From, ToType,
1422 CandidateSet);
1423 else
1424 AddConversionCandidate(Conv, From, ToType, CandidateSet);
1425 }
Douglas Gregor2e047592009-02-28 01:32:25 +00001426 }
Douglas Gregor60714f92008-11-07 22:36:19 +00001427 }
1428 }
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001429
1430 OverloadCandidateSet::iterator Best;
Douglas Gregor98189262009-06-19 23:52:42 +00001431 switch (BestViableFunction(CandidateSet, From->getLocStart(), Best)) {
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001432 case OR_Success:
1433 // Record the standard conversion we used and the conversion function.
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001434 if (CXXConstructorDecl *Constructor
1435 = dyn_cast<CXXConstructorDecl>(Best->Function)) {
1436 // C++ [over.ics.user]p1:
1437 // If the user-defined conversion is specified by a
1438 // constructor (12.3.1), the initial standard conversion
1439 // sequence converts the source type to the type required by
1440 // the argument of the constructor.
1441 //
1442 // FIXME: What about ellipsis conversions?
1443 QualType ThisType = Constructor->getThisType(Context);
1444 User.Before = Best->Conversions[0].Standard;
1445 User.ConversionFunction = Constructor;
1446 User.After.setAsIdentityConversion();
1447 User.After.FromTypePtr
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001448 = ThisType->getAs<PointerType>()->getPointeeType().getAsOpaquePtr();
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001449 User.After.ToTypePtr = ToType.getAsOpaquePtr();
1450 return true;
Douglas Gregor60714f92008-11-07 22:36:19 +00001451 } else if (CXXConversionDecl *Conversion
1452 = dyn_cast<CXXConversionDecl>(Best->Function)) {
1453 // C++ [over.ics.user]p1:
1454 //
1455 // [...] If the user-defined conversion is specified by a
1456 // conversion function (12.3.2), the initial standard
1457 // conversion sequence converts the source type to the
1458 // implicit object parameter of the conversion function.
1459 User.Before = Best->Conversions[0].Standard;
1460 User.ConversionFunction = Conversion;
1461
1462 // C++ [over.ics.user]p2:
1463 // The second standard conversion sequence converts the
1464 // result of the user-defined conversion to the target type
1465 // for the sequence. Since an implicit conversion sequence
1466 // is an initialization, the special rules for
1467 // initialization by user-defined conversion apply when
1468 // selecting the best user-defined conversion for a
1469 // user-defined conversion sequence (see 13.3.3 and
1470 // 13.3.3.1).
1471 User.After = Best->FinalConversion;
1472 return true;
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001473 } else {
Douglas Gregor60714f92008-11-07 22:36:19 +00001474 assert(false && "Not a constructor or conversion function?");
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001475 return false;
1476 }
1477
1478 case OR_No_Viable_Function:
Douglas Gregoraa57e862009-02-18 21:56:37 +00001479 case OR_Deleted:
Douglas Gregorb72e9da2008-10-31 16:23:19 +00001480 // No conversion here! We're done.
1481 return false;
1482
1483 case OR_Ambiguous:
1484 // FIXME: See C++ [over.best.ics]p10 for the handling of
1485 // ambiguous conversion sequences.
1486 return false;
1487 }
1488
1489 return false;
1490}
1491
Douglas Gregord2baafd2008-10-21 16:13:35 +00001492/// CompareImplicitConversionSequences - Compare two implicit
1493/// conversion sequences to determine whether one is better than the
1494/// other or if they are indistinguishable (C++ 13.3.3.2).
1495ImplicitConversionSequence::CompareKind
1496Sema::CompareImplicitConversionSequences(const ImplicitConversionSequence& ICS1,
1497 const ImplicitConversionSequence& ICS2)
1498{
1499 // (C++ 13.3.3.2p2): When comparing the basic forms of implicit
1500 // conversion sequences (as defined in 13.3.3.1)
1501 // -- a standard conversion sequence (13.3.3.1.1) is a better
1502 // conversion sequence than a user-defined conversion sequence or
1503 // an ellipsis conversion sequence, and
1504 // -- a user-defined conversion sequence (13.3.3.1.2) is a better
1505 // conversion sequence than an ellipsis conversion sequence
1506 // (13.3.3.1.3).
1507 //
1508 if (ICS1.ConversionKind < ICS2.ConversionKind)
1509 return ImplicitConversionSequence::Better;
1510 else if (ICS2.ConversionKind < ICS1.ConversionKind)
1511 return ImplicitConversionSequence::Worse;
1512
1513 // Two implicit conversion sequences of the same form are
1514 // indistinguishable conversion sequences unless one of the
1515 // following rules apply: (C++ 13.3.3.2p3):
1516 if (ICS1.ConversionKind == ImplicitConversionSequence::StandardConversion)
1517 return CompareStandardConversionSequences(ICS1.Standard, ICS2.Standard);
1518 else if (ICS1.ConversionKind ==
1519 ImplicitConversionSequence::UserDefinedConversion) {
1520 // User-defined conversion sequence U1 is a better conversion
1521 // sequence than another user-defined conversion sequence U2 if
1522 // they contain the same user-defined conversion function or
1523 // constructor and if the second standard conversion sequence of
1524 // U1 is better than the second standard conversion sequence of
1525 // U2 (C++ 13.3.3.2p3).
1526 if (ICS1.UserDefined.ConversionFunction ==
1527 ICS2.UserDefined.ConversionFunction)
1528 return CompareStandardConversionSequences(ICS1.UserDefined.After,
1529 ICS2.UserDefined.After);
1530 }
1531
1532 return ImplicitConversionSequence::Indistinguishable;
1533}
1534
1535/// CompareStandardConversionSequences - Compare two standard
1536/// conversion sequences to determine whether one is better than the
1537/// other or if they are indistinguishable (C++ 13.3.3.2p3).
1538ImplicitConversionSequence::CompareKind
1539Sema::CompareStandardConversionSequences(const StandardConversionSequence& SCS1,
1540 const StandardConversionSequence& SCS2)
1541{
1542 // Standard conversion sequence S1 is a better conversion sequence
1543 // than standard conversion sequence S2 if (C++ 13.3.3.2p3):
1544
1545 // -- S1 is a proper subsequence of S2 (comparing the conversion
1546 // sequences in the canonical form defined by 13.3.3.1.1,
1547 // excluding any Lvalue Transformation; the identity conversion
1548 // sequence is considered to be a subsequence of any
1549 // non-identity conversion sequence) or, if not that,
1550 if (SCS1.Second == SCS2.Second && SCS1.Third == SCS2.Third)
1551 // Neither is a proper subsequence of the other. Do nothing.
1552 ;
1553 else if ((SCS1.Second == ICK_Identity && SCS1.Third == SCS2.Third) ||
1554 (SCS1.Third == ICK_Identity && SCS1.Second == SCS2.Second) ||
1555 (SCS1.Second == ICK_Identity &&
1556 SCS1.Third == ICK_Identity))
1557 // SCS1 is a proper subsequence of SCS2.
1558 return ImplicitConversionSequence::Better;
1559 else if ((SCS2.Second == ICK_Identity && SCS2.Third == SCS1.Third) ||
1560 (SCS2.Third == ICK_Identity && SCS2.Second == SCS1.Second) ||
1561 (SCS2.Second == ICK_Identity &&
1562 SCS2.Third == ICK_Identity))
1563 // SCS2 is a proper subsequence of SCS1.
1564 return ImplicitConversionSequence::Worse;
1565
1566 // -- the rank of S1 is better than the rank of S2 (by the rules
1567 // defined below), or, if not that,
1568 ImplicitConversionRank Rank1 = SCS1.getRank();
1569 ImplicitConversionRank Rank2 = SCS2.getRank();
1570 if (Rank1 < Rank2)
1571 return ImplicitConversionSequence::Better;
1572 else if (Rank2 < Rank1)
1573 return ImplicitConversionSequence::Worse;
Douglas Gregord2baafd2008-10-21 16:13:35 +00001574
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001575 // (C++ 13.3.3.2p4): Two conversion sequences with the same rank
1576 // are indistinguishable unless one of the following rules
1577 // applies:
1578
1579 // A conversion that is not a conversion of a pointer, or
1580 // pointer to member, to bool is better than another conversion
1581 // that is such a conversion.
1582 if (SCS1.isPointerConversionToBool() != SCS2.isPointerConversionToBool())
1583 return SCS2.isPointerConversionToBool()
1584 ? ImplicitConversionSequence::Better
1585 : ImplicitConversionSequence::Worse;
1586
Douglas Gregor14046502008-10-23 00:40:37 +00001587 // C++ [over.ics.rank]p4b2:
1588 //
1589 // If class B is derived directly or indirectly from class A,
Douglas Gregor0e343382008-10-29 14:50:44 +00001590 // conversion of B* to A* is better than conversion of B* to
1591 // void*, and conversion of A* to void* is better than conversion
1592 // of B* to void*.
Douglas Gregor14046502008-10-23 00:40:37 +00001593 bool SCS1ConvertsToVoid
1594 = SCS1.isPointerConversionToVoidPointer(Context);
1595 bool SCS2ConvertsToVoid
1596 = SCS2.isPointerConversionToVoidPointer(Context);
Douglas Gregor0e343382008-10-29 14:50:44 +00001597 if (SCS1ConvertsToVoid != SCS2ConvertsToVoid) {
1598 // Exactly one of the conversion sequences is a conversion to
1599 // a void pointer; it's the worse conversion.
Douglas Gregor14046502008-10-23 00:40:37 +00001600 return SCS2ConvertsToVoid ? ImplicitConversionSequence::Better
1601 : ImplicitConversionSequence::Worse;
Douglas Gregor0e343382008-10-29 14:50:44 +00001602 } else if (!SCS1ConvertsToVoid && !SCS2ConvertsToVoid) {
1603 // Neither conversion sequence converts to a void pointer; compare
1604 // their derived-to-base conversions.
Douglas Gregor14046502008-10-23 00:40:37 +00001605 if (ImplicitConversionSequence::CompareKind DerivedCK
1606 = CompareDerivedToBaseConversions(SCS1, SCS2))
1607 return DerivedCK;
Douglas Gregor0e343382008-10-29 14:50:44 +00001608 } else if (SCS1ConvertsToVoid && SCS2ConvertsToVoid) {
1609 // Both conversion sequences are conversions to void
1610 // pointers. Compare the source types to determine if there's an
1611 // inheritance relationship in their sources.
1612 QualType FromType1 = QualType::getFromOpaquePtr(SCS1.FromTypePtr);
1613 QualType FromType2 = QualType::getFromOpaquePtr(SCS2.FromTypePtr);
1614
1615 // Adjust the types we're converting from via the array-to-pointer
1616 // conversion, if we need to.
1617 if (SCS1.First == ICK_Array_To_Pointer)
1618 FromType1 = Context.getArrayDecayedType(FromType1);
1619 if (SCS2.First == ICK_Array_To_Pointer)
1620 FromType2 = Context.getArrayDecayedType(FromType2);
1621
1622 QualType FromPointee1
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001623 = FromType1->getAs<PointerType>()->getPointeeType().getUnqualifiedType();
Douglas Gregor0e343382008-10-29 14:50:44 +00001624 QualType FromPointee2
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001625 = FromType2->getAs<PointerType>()->getPointeeType().getUnqualifiedType();
Douglas Gregor0e343382008-10-29 14:50:44 +00001626
1627 if (IsDerivedFrom(FromPointee2, FromPointee1))
1628 return ImplicitConversionSequence::Better;
1629 else if (IsDerivedFrom(FromPointee1, FromPointee2))
1630 return ImplicitConversionSequence::Worse;
Douglas Gregor24a90a52008-11-26 23:31:11 +00001631
1632 // Objective-C++: If one interface is more specific than the
1633 // other, it is the better one.
1634 const ObjCInterfaceType* FromIface1 = FromPointee1->getAsObjCInterfaceType();
1635 const ObjCInterfaceType* FromIface2 = FromPointee2->getAsObjCInterfaceType();
1636 if (FromIface1 && FromIface1) {
1637 if (Context.canAssignObjCInterfaces(FromIface2, FromIface1))
1638 return ImplicitConversionSequence::Better;
1639 else if (Context.canAssignObjCInterfaces(FromIface1, FromIface2))
1640 return ImplicitConversionSequence::Worse;
1641 }
Douglas Gregor0e343382008-10-29 14:50:44 +00001642 }
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001643
1644 // Compare based on qualification conversions (C++ 13.3.3.2p3,
1645 // bullet 3).
Douglas Gregor14046502008-10-23 00:40:37 +00001646 if (ImplicitConversionSequence::CompareKind QualCK
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001647 = CompareQualificationConversions(SCS1, SCS2))
Douglas Gregor14046502008-10-23 00:40:37 +00001648 return QualCK;
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001649
Douglas Gregor0e343382008-10-29 14:50:44 +00001650 if (SCS1.ReferenceBinding && SCS2.ReferenceBinding) {
Sebastian Redl8a8b3512009-03-22 23:49:27 +00001651 // C++0x [over.ics.rank]p3b4:
1652 // -- S1 and S2 are reference bindings (8.5.3) and neither refers to an
1653 // implicit object parameter of a non-static member function declared
1654 // without a ref-qualifier, and S1 binds an rvalue reference to an
1655 // rvalue and S2 binds an lvalue reference.
Sebastian Redldfc30332009-03-29 15:27:50 +00001656 // FIXME: We don't know if we're dealing with the implicit object parameter,
1657 // or if the member function in this case has a ref qualifier.
1658 // (Of course, we don't have ref qualifiers yet.)
1659 if (SCS1.RRefBinding != SCS2.RRefBinding)
1660 return SCS1.RRefBinding ? ImplicitConversionSequence::Better
1661 : ImplicitConversionSequence::Worse;
Sebastian Redl8a8b3512009-03-22 23:49:27 +00001662
1663 // C++ [over.ics.rank]p3b4:
1664 // -- S1 and S2 are reference bindings (8.5.3), and the types to
1665 // which the references refer are the same type except for
1666 // top-level cv-qualifiers, and the type to which the reference
1667 // initialized by S2 refers is more cv-qualified than the type
1668 // to which the reference initialized by S1 refers.
Sebastian Redldfc30332009-03-29 15:27:50 +00001669 QualType T1 = QualType::getFromOpaquePtr(SCS1.ToTypePtr);
1670 QualType T2 = QualType::getFromOpaquePtr(SCS2.ToTypePtr);
Douglas Gregor0e343382008-10-29 14:50:44 +00001671 T1 = Context.getCanonicalType(T1);
1672 T2 = Context.getCanonicalType(T2);
1673 if (T1.getUnqualifiedType() == T2.getUnqualifiedType()) {
1674 if (T2.isMoreQualifiedThan(T1))
1675 return ImplicitConversionSequence::Better;
1676 else if (T1.isMoreQualifiedThan(T2))
1677 return ImplicitConversionSequence::Worse;
1678 }
1679 }
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001680
1681 return ImplicitConversionSequence::Indistinguishable;
1682}
1683
1684/// CompareQualificationConversions - Compares two standard conversion
1685/// sequences to determine whether they can be ranked based on their
1686/// qualification conversions (C++ 13.3.3.2p3 bullet 3).
1687ImplicitConversionSequence::CompareKind
1688Sema::CompareQualificationConversions(const StandardConversionSequence& SCS1,
1689 const StandardConversionSequence& SCS2)
1690{
Douglas Gregor4459bbe2008-10-22 15:04:37 +00001691 // C++ 13.3.3.2p3:
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001692 // -- S1 and S2 differ only in their qualification conversion and
1693 // yield similar types T1 and T2 (C++ 4.4), respectively, and the
1694 // cv-qualification signature of type T1 is a proper subset of
1695 // the cv-qualification signature of type T2, and S1 is not the
1696 // deprecated string literal array-to-pointer conversion (4.2).
1697 if (SCS1.First != SCS2.First || SCS1.Second != SCS2.Second ||
1698 SCS1.Third != SCS2.Third || SCS1.Third != ICK_Qualification)
1699 return ImplicitConversionSequence::Indistinguishable;
1700
1701 // FIXME: the example in the standard doesn't use a qualification
1702 // conversion (!)
1703 QualType T1 = QualType::getFromOpaquePtr(SCS1.ToTypePtr);
1704 QualType T2 = QualType::getFromOpaquePtr(SCS2.ToTypePtr);
1705 T1 = Context.getCanonicalType(T1);
1706 T2 = Context.getCanonicalType(T2);
1707
1708 // If the types are the same, we won't learn anything by unwrapped
1709 // them.
1710 if (T1.getUnqualifiedType() == T2.getUnqualifiedType())
1711 return ImplicitConversionSequence::Indistinguishable;
1712
1713 ImplicitConversionSequence::CompareKind Result
1714 = ImplicitConversionSequence::Indistinguishable;
1715 while (UnwrapSimilarPointerTypes(T1, T2)) {
1716 // Within each iteration of the loop, we check the qualifiers to
1717 // determine if this still looks like a qualification
1718 // conversion. Then, if all is well, we unwrap one more level of
Douglas Gregorabed2172008-10-22 17:49:05 +00001719 // pointers or pointers-to-members and do it all again
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001720 // until there are no more pointers or pointers-to-members left
1721 // to unwrap. This essentially mimics what
1722 // IsQualificationConversion does, but here we're checking for a
1723 // strict subset of qualifiers.
1724 if (T1.getCVRQualifiers() == T2.getCVRQualifiers())
1725 // The qualifiers are the same, so this doesn't tell us anything
1726 // about how the sequences rank.
1727 ;
1728 else if (T2.isMoreQualifiedThan(T1)) {
1729 // T1 has fewer qualifiers, so it could be the better sequence.
1730 if (Result == ImplicitConversionSequence::Worse)
1731 // Neither has qualifiers that are a subset of the other's
1732 // qualifiers.
1733 return ImplicitConversionSequence::Indistinguishable;
1734
1735 Result = ImplicitConversionSequence::Better;
1736 } else if (T1.isMoreQualifiedThan(T2)) {
1737 // T2 has fewer qualifiers, so it could be the better sequence.
1738 if (Result == ImplicitConversionSequence::Better)
1739 // Neither has qualifiers that are a subset of the other's
1740 // qualifiers.
1741 return ImplicitConversionSequence::Indistinguishable;
1742
1743 Result = ImplicitConversionSequence::Worse;
1744 } else {
1745 // Qualifiers are disjoint.
1746 return ImplicitConversionSequence::Indistinguishable;
1747 }
1748
1749 // If the types after this point are equivalent, we're done.
1750 if (T1.getUnqualifiedType() == T2.getUnqualifiedType())
1751 break;
Douglas Gregord2baafd2008-10-21 16:13:35 +00001752 }
1753
Douglas Gregorccc0ccc2008-10-22 14:17:15 +00001754 // Check that the winning standard conversion sequence isn't using
1755 // the deprecated string literal array to pointer conversion.
1756 switch (Result) {
1757 case ImplicitConversionSequence::Better:
1758 if (SCS1.Deprecated)
1759 Result = ImplicitConversionSequence::Indistinguishable;
1760 break;
1761
1762 case ImplicitConversionSequence::Indistinguishable:
1763 break;
1764
1765 case ImplicitConversionSequence::Worse:
1766 if (SCS2.Deprecated)
1767 Result = ImplicitConversionSequence::Indistinguishable;
1768 break;
1769 }
1770
1771 return Result;
Douglas Gregord2baafd2008-10-21 16:13:35 +00001772}
1773
Douglas Gregor14046502008-10-23 00:40:37 +00001774/// CompareDerivedToBaseConversions - Compares two standard conversion
1775/// sequences to determine whether they can be ranked based on their
Douglas Gregor24a90a52008-11-26 23:31:11 +00001776/// various kinds of derived-to-base conversions (C++
1777/// [over.ics.rank]p4b3). As part of these checks, we also look at
1778/// conversions between Objective-C interface types.
Douglas Gregor14046502008-10-23 00:40:37 +00001779ImplicitConversionSequence::CompareKind
1780Sema::CompareDerivedToBaseConversions(const StandardConversionSequence& SCS1,
1781 const StandardConversionSequence& SCS2) {
1782 QualType FromType1 = QualType::getFromOpaquePtr(SCS1.FromTypePtr);
1783 QualType ToType1 = QualType::getFromOpaquePtr(SCS1.ToTypePtr);
1784 QualType FromType2 = QualType::getFromOpaquePtr(SCS2.FromTypePtr);
1785 QualType ToType2 = QualType::getFromOpaquePtr(SCS2.ToTypePtr);
1786
1787 // Adjust the types we're converting from via the array-to-pointer
1788 // conversion, if we need to.
1789 if (SCS1.First == ICK_Array_To_Pointer)
1790 FromType1 = Context.getArrayDecayedType(FromType1);
1791 if (SCS2.First == ICK_Array_To_Pointer)
1792 FromType2 = Context.getArrayDecayedType(FromType2);
1793
1794 // Canonicalize all of the types.
1795 FromType1 = Context.getCanonicalType(FromType1);
1796 ToType1 = Context.getCanonicalType(ToType1);
1797 FromType2 = Context.getCanonicalType(FromType2);
1798 ToType2 = Context.getCanonicalType(ToType2);
1799
Douglas Gregor0e343382008-10-29 14:50:44 +00001800 // C++ [over.ics.rank]p4b3:
Douglas Gregor14046502008-10-23 00:40:37 +00001801 //
1802 // If class B is derived directly or indirectly from class A and
1803 // class C is derived directly or indirectly from B,
Douglas Gregor24a90a52008-11-26 23:31:11 +00001804 //
1805 // For Objective-C, we let A, B, and C also be Objective-C
1806 // interfaces.
Douglas Gregor0e343382008-10-29 14:50:44 +00001807
1808 // Compare based on pointer conversions.
Douglas Gregor14046502008-10-23 00:40:37 +00001809 if (SCS1.Second == ICK_Pointer_Conversion &&
Douglas Gregor3f5a00c2008-11-27 01:19:21 +00001810 SCS2.Second == ICK_Pointer_Conversion &&
1811 /*FIXME: Remove if Objective-C id conversions get their own rank*/
1812 FromType1->isPointerType() && FromType2->isPointerType() &&
1813 ToType1->isPointerType() && ToType2->isPointerType()) {
Douglas Gregor14046502008-10-23 00:40:37 +00001814 QualType FromPointee1
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001815 = FromType1->getAs<PointerType>()->getPointeeType().getUnqualifiedType();
Douglas Gregor14046502008-10-23 00:40:37 +00001816 QualType ToPointee1
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001817 = ToType1->getAs<PointerType>()->getPointeeType().getUnqualifiedType();
Douglas Gregor14046502008-10-23 00:40:37 +00001818 QualType FromPointee2
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001819 = FromType2->getAs<PointerType>()->getPointeeType().getUnqualifiedType();
Douglas Gregor14046502008-10-23 00:40:37 +00001820 QualType ToPointee2
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001821 = ToType2->getAs<PointerType>()->getPointeeType().getUnqualifiedType();
Douglas Gregor24a90a52008-11-26 23:31:11 +00001822
1823 const ObjCInterfaceType* FromIface1 = FromPointee1->getAsObjCInterfaceType();
1824 const ObjCInterfaceType* FromIface2 = FromPointee2->getAsObjCInterfaceType();
1825 const ObjCInterfaceType* ToIface1 = ToPointee1->getAsObjCInterfaceType();
1826 const ObjCInterfaceType* ToIface2 = ToPointee2->getAsObjCInterfaceType();
1827
Douglas Gregor0e343382008-10-29 14:50:44 +00001828 // -- conversion of C* to B* is better than conversion of C* to A*,
Douglas Gregor14046502008-10-23 00:40:37 +00001829 if (FromPointee1 == FromPointee2 && ToPointee1 != ToPointee2) {
1830 if (IsDerivedFrom(ToPointee1, ToPointee2))
1831 return ImplicitConversionSequence::Better;
1832 else if (IsDerivedFrom(ToPointee2, ToPointee1))
1833 return ImplicitConversionSequence::Worse;
Douglas Gregor24a90a52008-11-26 23:31:11 +00001834
1835 if (ToIface1 && ToIface2) {
1836 if (Context.canAssignObjCInterfaces(ToIface2, ToIface1))
1837 return ImplicitConversionSequence::Better;
1838 else if (Context.canAssignObjCInterfaces(ToIface1, ToIface2))
1839 return ImplicitConversionSequence::Worse;
1840 }
Douglas Gregor14046502008-10-23 00:40:37 +00001841 }
Douglas Gregor0e343382008-10-29 14:50:44 +00001842
1843 // -- conversion of B* to A* is better than conversion of C* to A*,
1844 if (FromPointee1 != FromPointee2 && ToPointee1 == ToPointee2) {
1845 if (IsDerivedFrom(FromPointee2, FromPointee1))
1846 return ImplicitConversionSequence::Better;
1847 else if (IsDerivedFrom(FromPointee1, FromPointee2))
1848 return ImplicitConversionSequence::Worse;
Douglas Gregor24a90a52008-11-26 23:31:11 +00001849
1850 if (FromIface1 && FromIface2) {
1851 if (Context.canAssignObjCInterfaces(FromIface1, FromIface2))
1852 return ImplicitConversionSequence::Better;
1853 else if (Context.canAssignObjCInterfaces(FromIface2, FromIface1))
1854 return ImplicitConversionSequence::Worse;
1855 }
Douglas Gregor0e343382008-10-29 14:50:44 +00001856 }
Douglas Gregor14046502008-10-23 00:40:37 +00001857 }
1858
Douglas Gregor0e343382008-10-29 14:50:44 +00001859 // Compare based on reference bindings.
1860 if (SCS1.ReferenceBinding && SCS2.ReferenceBinding &&
1861 SCS1.Second == ICK_Derived_To_Base) {
1862 // -- binding of an expression of type C to a reference of type
1863 // B& is better than binding an expression of type C to a
1864 // reference of type A&,
1865 if (FromType1.getUnqualifiedType() == FromType2.getUnqualifiedType() &&
1866 ToType1.getUnqualifiedType() != ToType2.getUnqualifiedType()) {
1867 if (IsDerivedFrom(ToType1, ToType2))
1868 return ImplicitConversionSequence::Better;
1869 else if (IsDerivedFrom(ToType2, ToType1))
1870 return ImplicitConversionSequence::Worse;
1871 }
1872
Douglas Gregora3b34bb2008-11-03 19:09:14 +00001873 // -- binding of an expression of type B to a reference of type
1874 // A& is better than binding an expression of type C to a
1875 // reference of type A&,
Douglas Gregor0e343382008-10-29 14:50:44 +00001876 if (FromType1.getUnqualifiedType() != FromType2.getUnqualifiedType() &&
1877 ToType1.getUnqualifiedType() == ToType2.getUnqualifiedType()) {
1878 if (IsDerivedFrom(FromType2, FromType1))
1879 return ImplicitConversionSequence::Better;
1880 else if (IsDerivedFrom(FromType1, FromType2))
1881 return ImplicitConversionSequence::Worse;
1882 }
1883 }
1884
1885
1886 // FIXME: conversion of A::* to B::* is better than conversion of
1887 // A::* to C::*,
1888
1889 // FIXME: conversion of B::* to C::* is better than conversion of
1890 // A::* to C::*, and
1891
Douglas Gregora3b34bb2008-11-03 19:09:14 +00001892 if (SCS1.CopyConstructor && SCS2.CopyConstructor &&
1893 SCS1.Second == ICK_Derived_To_Base) {
1894 // -- conversion of C to B is better than conversion of C to A,
1895 if (FromType1.getUnqualifiedType() == FromType2.getUnqualifiedType() &&
1896 ToType1.getUnqualifiedType() != ToType2.getUnqualifiedType()) {
1897 if (IsDerivedFrom(ToType1, ToType2))
1898 return ImplicitConversionSequence::Better;
1899 else if (IsDerivedFrom(ToType2, ToType1))
1900 return ImplicitConversionSequence::Worse;
1901 }
Douglas Gregor0e343382008-10-29 14:50:44 +00001902
Douglas Gregora3b34bb2008-11-03 19:09:14 +00001903 // -- conversion of B to A is better than conversion of C to A.
1904 if (FromType1.getUnqualifiedType() != FromType2.getUnqualifiedType() &&
1905 ToType1.getUnqualifiedType() == ToType2.getUnqualifiedType()) {
1906 if (IsDerivedFrom(FromType2, FromType1))
1907 return ImplicitConversionSequence::Better;
1908 else if (IsDerivedFrom(FromType1, FromType2))
1909 return ImplicitConversionSequence::Worse;
1910 }
1911 }
Douglas Gregor0e343382008-10-29 14:50:44 +00001912
Douglas Gregor14046502008-10-23 00:40:37 +00001913 return ImplicitConversionSequence::Indistinguishable;
1914}
1915
Douglas Gregor81c29152008-10-29 00:13:59 +00001916/// TryCopyInitialization - Try to copy-initialize a value of type
1917/// ToType from the expression From. Return the implicit conversion
1918/// sequence required to pass this argument, which may be a bad
1919/// conversion sequence (meaning that the argument cannot be passed to
Douglas Gregora3b34bb2008-11-03 19:09:14 +00001920/// a parameter of this type). If @p SuppressUserConversions, then we
Sebastian Redla55834a2009-04-12 17:16:29 +00001921/// do not permit any user-defined conversion sequences. If @p ForceRValue,
1922/// then we treat @p From as an rvalue, even if it is an lvalue.
Douglas Gregor81c29152008-10-29 00:13:59 +00001923ImplicitConversionSequence
Douglas Gregora3b34bb2008-11-03 19:09:14 +00001924Sema::TryCopyInitialization(Expr *From, QualType ToType,
Sebastian Redla55834a2009-04-12 17:16:29 +00001925 bool SuppressUserConversions, bool ForceRValue) {
Douglas Gregorfcb19192009-02-11 23:02:49 +00001926 if (ToType->isReferenceType()) {
Douglas Gregor81c29152008-10-29 00:13:59 +00001927 ImplicitConversionSequence ICS;
Sebastian Redla55834a2009-04-12 17:16:29 +00001928 CheckReferenceInit(From, ToType, &ICS, SuppressUserConversions,
1929 /*AllowExplicit=*/false, ForceRValue);
Douglas Gregor81c29152008-10-29 00:13:59 +00001930 return ICS;
1931 } else {
Sebastian Redla55834a2009-04-12 17:16:29 +00001932 return TryImplicitConversion(From, ToType, SuppressUserConversions,
1933 ForceRValue);
Douglas Gregor81c29152008-10-29 00:13:59 +00001934 }
1935}
1936
Sebastian Redla55834a2009-04-12 17:16:29 +00001937/// PerformCopyInitialization - Copy-initialize an object of type @p ToType with
1938/// the expression @p From. Returns true (and emits a diagnostic) if there was
1939/// an error, returns false if the initialization succeeded. Elidable should
1940/// be true when the copy may be elided (C++ 12.8p15). Overload resolution works
1941/// differently in C++0x for this case.
Douglas Gregor81c29152008-10-29 00:13:59 +00001942bool Sema::PerformCopyInitialization(Expr *&From, QualType ToType,
Sebastian Redla55834a2009-04-12 17:16:29 +00001943 const char* Flavor, bool Elidable) {
Douglas Gregor81c29152008-10-29 00:13:59 +00001944 if (!getLangOptions().CPlusPlus) {
1945 // In C, argument passing is the same as performing an assignment.
1946 QualType FromType = From->getType();
Douglas Gregor144b06c2009-04-29 22:16:16 +00001947
Douglas Gregor81c29152008-10-29 00:13:59 +00001948 AssignConvertType ConvTy =
1949 CheckSingleAssignmentConstraints(ToType, From);
Douglas Gregor144b06c2009-04-29 22:16:16 +00001950 if (ConvTy != Compatible &&
1951 CheckTransparentUnionArgumentConstraints(ToType, From) == Compatible)
1952 ConvTy = Compatible;
1953
Douglas Gregor81c29152008-10-29 00:13:59 +00001954 return DiagnoseAssignmentResult(ConvTy, From->getLocStart(), ToType,
1955 FromType, From, Flavor);
Douglas Gregor81c29152008-10-29 00:13:59 +00001956 }
Sebastian Redla55834a2009-04-12 17:16:29 +00001957
Chris Lattner271d4c22008-11-24 05:29:24 +00001958 if (ToType->isReferenceType())
1959 return CheckReferenceInit(From, ToType);
1960
Sebastian Redla55834a2009-04-12 17:16:29 +00001961 if (!PerformImplicitConversion(From, ToType, Flavor,
1962 /*AllowExplicit=*/false, Elidable))
Chris Lattner271d4c22008-11-24 05:29:24 +00001963 return false;
Sebastian Redla55834a2009-04-12 17:16:29 +00001964
Chris Lattner271d4c22008-11-24 05:29:24 +00001965 return Diag(From->getSourceRange().getBegin(),
1966 diag::err_typecheck_convert_incompatible)
1967 << ToType << From->getType() << Flavor << From->getSourceRange();
Douglas Gregor81c29152008-10-29 00:13:59 +00001968}
1969
Douglas Gregor5ed15042008-11-18 23:14:02 +00001970/// TryObjectArgumentInitialization - Try to initialize the object
1971/// parameter of the given member function (@c Method) from the
1972/// expression @p From.
1973ImplicitConversionSequence
1974Sema::TryObjectArgumentInitialization(Expr *From, CXXMethodDecl *Method) {
1975 QualType ClassType = Context.getTypeDeclType(Method->getParent());
1976 unsigned MethodQuals = Method->getTypeQualifiers();
1977 QualType ImplicitParamType = ClassType.getQualifiedType(MethodQuals);
1978
1979 // Set up the conversion sequence as a "bad" conversion, to allow us
1980 // to exit early.
1981 ImplicitConversionSequence ICS;
1982 ICS.Standard.setAsIdentityConversion();
1983 ICS.ConversionKind = ImplicitConversionSequence::BadConversion;
1984
1985 // We need to have an object of class type.
1986 QualType FromType = From->getType();
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00001987 if (const PointerType *PT = FromType->getAs<PointerType>())
Anders Carlsson2d30f6b2009-05-01 18:34:30 +00001988 FromType = PT->getPointeeType();
1989
1990 assert(FromType->isRecordType());
Douglas Gregor5ed15042008-11-18 23:14:02 +00001991
1992 // The implicit object parmeter is has the type "reference to cv X",
1993 // where X is the class of which the function is a member
1994 // (C++ [over.match.funcs]p4). However, when finding an implicit
1995 // conversion sequence for the argument, we are not allowed to
1996 // create temporaries or perform user-defined conversions
1997 // (C++ [over.match.funcs]p5). We perform a simplified version of
1998 // reference binding here, that allows class rvalues to bind to
1999 // non-constant references.
2000
2001 // First check the qualifiers. We don't care about lvalue-vs-rvalue
2002 // with the implicit object parameter (C++ [over.match.funcs]p5).
2003 QualType FromTypeCanon = Context.getCanonicalType(FromType);
2004 if (ImplicitParamType.getCVRQualifiers() != FromType.getCVRQualifiers() &&
2005 !ImplicitParamType.isAtLeastAsQualifiedAs(FromType))
2006 return ICS;
2007
2008 // Check that we have either the same type or a derived type. It
2009 // affects the conversion rank.
2010 QualType ClassTypeCanon = Context.getCanonicalType(ClassType);
2011 if (ClassTypeCanon == FromTypeCanon.getUnqualifiedType())
2012 ICS.Standard.Second = ICK_Identity;
2013 else if (IsDerivedFrom(FromType, ClassType))
2014 ICS.Standard.Second = ICK_Derived_To_Base;
2015 else
2016 return ICS;
2017
2018 // Success. Mark this as a reference binding.
2019 ICS.ConversionKind = ImplicitConversionSequence::StandardConversion;
2020 ICS.Standard.FromTypePtr = FromType.getAsOpaquePtr();
2021 ICS.Standard.ToTypePtr = ImplicitParamType.getAsOpaquePtr();
2022 ICS.Standard.ReferenceBinding = true;
2023 ICS.Standard.DirectBinding = true;
Sebastian Redl9bc16ad2009-03-29 22:46:24 +00002024 ICS.Standard.RRefBinding = false;
Douglas Gregor5ed15042008-11-18 23:14:02 +00002025 return ICS;
2026}
2027
2028/// PerformObjectArgumentInitialization - Perform initialization of
2029/// the implicit object parameter for the given Method with the given
2030/// expression.
2031bool
2032Sema::PerformObjectArgumentInitialization(Expr *&From, CXXMethodDecl *Method) {
Anders Carlsson2d30f6b2009-05-01 18:34:30 +00002033 QualType FromRecordType, DestType;
2034 QualType ImplicitParamRecordType =
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002035 Method->getThisType(Context)->getAs<PointerType>()->getPointeeType();
Anders Carlsson2d30f6b2009-05-01 18:34:30 +00002036
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002037 if (const PointerType *PT = From->getType()->getAs<PointerType>()) {
Anders Carlsson2d30f6b2009-05-01 18:34:30 +00002038 FromRecordType = PT->getPointeeType();
2039 DestType = Method->getThisType(Context);
2040 } else {
2041 FromRecordType = From->getType();
2042 DestType = ImplicitParamRecordType;
2043 }
2044
Douglas Gregor5ed15042008-11-18 23:14:02 +00002045 ImplicitConversionSequence ICS
2046 = TryObjectArgumentInitialization(From, Method);
2047 if (ICS.ConversionKind == ImplicitConversionSequence::BadConversion)
2048 return Diag(From->getSourceRange().getBegin(),
Chris Lattner8ba580c2008-11-19 05:08:23 +00002049 diag::err_implicit_object_parameter_init)
Anders Carlsson2d30f6b2009-05-01 18:34:30 +00002050 << ImplicitParamRecordType << FromRecordType << From->getSourceRange();
2051
Douglas Gregor5ed15042008-11-18 23:14:02 +00002052 if (ICS.Standard.Second == ICK_Derived_To_Base &&
Anders Carlsson2d30f6b2009-05-01 18:34:30 +00002053 CheckDerivedToBaseConversion(FromRecordType,
2054 ImplicitParamRecordType,
Douglas Gregor5ed15042008-11-18 23:14:02 +00002055 From->getSourceRange().getBegin(),
2056 From->getSourceRange()))
2057 return true;
2058
Anders Carlssone25b6cd2009-08-07 18:45:49 +00002059 ImpCastExprToType(From, DestType, CastExpr::CK_DerivedToBase,
2060 /*isLvalue=*/true);
Douglas Gregor5ed15042008-11-18 23:14:02 +00002061 return false;
2062}
2063
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002064/// TryContextuallyConvertToBool - Attempt to contextually convert the
2065/// expression From to bool (C++0x [conv]p3).
2066ImplicitConversionSequence Sema::TryContextuallyConvertToBool(Expr *From) {
2067 return TryImplicitConversion(From, Context.BoolTy, false, true);
2068}
2069
2070/// PerformContextuallyConvertToBool - Perform a contextual conversion
2071/// of the expression From to bool (C++0x [conv]p3).
2072bool Sema::PerformContextuallyConvertToBool(Expr *&From) {
2073 ImplicitConversionSequence ICS = TryContextuallyConvertToBool(From);
2074 if (!PerformImplicitConversion(From, Context.BoolTy, ICS, "converting"))
2075 return false;
2076
2077 return Diag(From->getSourceRange().getBegin(),
2078 diag::err_typecheck_bool_condition)
2079 << From->getType() << From->getSourceRange();
2080}
2081
Douglas Gregord2baafd2008-10-21 16:13:35 +00002082/// AddOverloadCandidate - Adds the given function to the set of
Douglas Gregora3b34bb2008-11-03 19:09:14 +00002083/// candidate functions, using the given function call arguments. If
2084/// @p SuppressUserConversions, then don't allow user-defined
2085/// conversions via constructors or conversion operators.
Sebastian Redla55834a2009-04-12 17:16:29 +00002086/// If @p ForceRValue, treat all arguments as rvalues. This is a slightly
2087/// hacky way to implement the overloading rules for elidable copy
2088/// initialization in C++0x (C++0x 12.8p15).
Douglas Gregord2baafd2008-10-21 16:13:35 +00002089void
2090Sema::AddOverloadCandidate(FunctionDecl *Function,
2091 Expr **Args, unsigned NumArgs,
Douglas Gregora3b34bb2008-11-03 19:09:14 +00002092 OverloadCandidateSet& CandidateSet,
Sebastian Redla55834a2009-04-12 17:16:29 +00002093 bool SuppressUserConversions,
2094 bool ForceRValue)
Douglas Gregord2baafd2008-10-21 16:13:35 +00002095{
Douglas Gregor4fa58902009-02-26 23:50:07 +00002096 const FunctionProtoType* Proto
2097 = dyn_cast<FunctionProtoType>(Function->getType()->getAsFunctionType());
Douglas Gregord2baafd2008-10-21 16:13:35 +00002098 assert(Proto && "Functions without a prototype cannot be overloaded");
Douglas Gregor60714f92008-11-07 22:36:19 +00002099 assert(!isa<CXXConversionDecl>(Function) &&
2100 "Use AddConversionCandidate for conversion functions");
Douglas Gregorb60eb752009-06-25 22:08:12 +00002101 assert(!Function->getDescribedFunctionTemplate() &&
2102 "Use AddTemplateOverloadCandidate for function templates");
2103
Douglas Gregor3257fb52008-12-22 05:46:06 +00002104 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Function)) {
Sebastian Redlbd261962009-04-16 17:51:27 +00002105 if (!isa<CXXConstructorDecl>(Method)) {
2106 // If we get here, it's because we're calling a member function
2107 // that is named without a member access expression (e.g.,
2108 // "this->f") that was either written explicitly or created
2109 // implicitly. This can happen with a qualified call to a member
2110 // function, e.g., X::f(). We use a NULL object as the implied
2111 // object argument (C++ [over.call.func]p3).
2112 AddMethodCandidate(Method, 0, Args, NumArgs, CandidateSet,
2113 SuppressUserConversions, ForceRValue);
2114 return;
2115 }
2116 // We treat a constructor like a non-member function, since its object
2117 // argument doesn't participate in overload resolution.
Douglas Gregor3257fb52008-12-22 05:46:06 +00002118 }
2119
2120
Douglas Gregord2baafd2008-10-21 16:13:35 +00002121 // Add this candidate
2122 CandidateSet.push_back(OverloadCandidate());
2123 OverloadCandidate& Candidate = CandidateSet.back();
2124 Candidate.Function = Function;
Douglas Gregor3257fb52008-12-22 05:46:06 +00002125 Candidate.Viable = true;
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00002126 Candidate.IsSurrogate = false;
Douglas Gregor3257fb52008-12-22 05:46:06 +00002127 Candidate.IgnoreObjectArgument = false;
Douglas Gregord2baafd2008-10-21 16:13:35 +00002128
2129 unsigned NumArgsInProto = Proto->getNumArgs();
2130
2131 // (C++ 13.3.2p2): A candidate function having fewer than m
2132 // parameters is viable only if it has an ellipsis in its parameter
2133 // list (8.3.5).
2134 if (NumArgs > NumArgsInProto && !Proto->isVariadic()) {
2135 Candidate.Viable = false;
2136 return;
2137 }
2138
2139 // (C++ 13.3.2p2): A candidate function having more than m parameters
2140 // is viable only if the (m+1)st parameter has a default argument
2141 // (8.3.6). For the purposes of overload resolution, the
2142 // parameter list is truncated on the right, so that there are
2143 // exactly m parameters.
2144 unsigned MinRequiredArgs = Function->getMinRequiredArguments();
2145 if (NumArgs < MinRequiredArgs) {
2146 // Not enough arguments.
2147 Candidate.Viable = false;
2148 return;
2149 }
2150
2151 // Determine the implicit conversion sequences for each of the
2152 // arguments.
Douglas Gregord2baafd2008-10-21 16:13:35 +00002153 Candidate.Conversions.resize(NumArgs);
2154 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx) {
2155 if (ArgIdx < NumArgsInProto) {
2156 // (C++ 13.3.2p3): for F to be a viable function, there shall
2157 // exist for each argument an implicit conversion sequence
2158 // (13.3.3.1) that converts that argument to the corresponding
2159 // parameter of F.
2160 QualType ParamType = Proto->getArgType(ArgIdx);
2161 Candidate.Conversions[ArgIdx]
Douglas Gregora3b34bb2008-11-03 19:09:14 +00002162 = TryCopyInitialization(Args[ArgIdx], ParamType,
Sebastian Redla55834a2009-04-12 17:16:29 +00002163 SuppressUserConversions, ForceRValue);
Douglas Gregord2baafd2008-10-21 16:13:35 +00002164 if (Candidate.Conversions[ArgIdx].ConversionKind
Douglas Gregor5ed15042008-11-18 23:14:02 +00002165 == ImplicitConversionSequence::BadConversion) {
Douglas Gregord2baafd2008-10-21 16:13:35 +00002166 Candidate.Viable = false;
Douglas Gregor5ed15042008-11-18 23:14:02 +00002167 break;
2168 }
Douglas Gregord2baafd2008-10-21 16:13:35 +00002169 } else {
2170 // (C++ 13.3.2p2): For the purposes of overload resolution, any
2171 // argument for which there is no corresponding parameter is
2172 // considered to ""match the ellipsis" (C+ 13.3.3.1.3).
2173 Candidate.Conversions[ArgIdx].ConversionKind
2174 = ImplicitConversionSequence::EllipsisConversion;
2175 }
2176 }
2177}
2178
Douglas Gregor00fe3f62009-03-13 18:40:31 +00002179/// \brief Add all of the function declarations in the given function set to
2180/// the overload canddiate set.
2181void Sema::AddFunctionCandidates(const FunctionSet &Functions,
2182 Expr **Args, unsigned NumArgs,
2183 OverloadCandidateSet& CandidateSet,
2184 bool SuppressUserConversions) {
2185 for (FunctionSet::const_iterator F = Functions.begin(),
2186 FEnd = Functions.end();
Douglas Gregor993a0602009-06-27 21:05:07 +00002187 F != FEnd; ++F) {
2188 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(*F))
2189 AddOverloadCandidate(FD, Args, NumArgs, CandidateSet,
2190 SuppressUserConversions);
2191 else
Douglas Gregorc9a03b72009-06-30 23:57:56 +00002192 AddTemplateOverloadCandidate(cast<FunctionTemplateDecl>(*F),
2193 /*FIXME: explicit args */false, 0, 0,
2194 Args, NumArgs, CandidateSet,
Douglas Gregor993a0602009-06-27 21:05:07 +00002195 SuppressUserConversions);
2196 }
Douglas Gregor00fe3f62009-03-13 18:40:31 +00002197}
2198
Douglas Gregor5ed15042008-11-18 23:14:02 +00002199/// AddMethodCandidate - Adds the given C++ member function to the set
2200/// of candidate functions, using the given function call arguments
2201/// and the object argument (@c Object). For example, in a call
2202/// @c o.f(a1,a2), @c Object will contain @c o and @c Args will contain
2203/// both @c a1 and @c a2. If @p SuppressUserConversions, then don't
2204/// allow user-defined conversions via constructors or conversion
Sebastian Redla55834a2009-04-12 17:16:29 +00002205/// operators. If @p ForceRValue, treat all arguments as rvalues. This is
2206/// a slightly hacky way to implement the overloading rules for elidable copy
2207/// initialization in C++0x (C++0x 12.8p15).
Douglas Gregor5ed15042008-11-18 23:14:02 +00002208void
2209Sema::AddMethodCandidate(CXXMethodDecl *Method, Expr *Object,
2210 Expr **Args, unsigned NumArgs,
2211 OverloadCandidateSet& CandidateSet,
Sebastian Redla55834a2009-04-12 17:16:29 +00002212 bool SuppressUserConversions, bool ForceRValue)
Douglas Gregor5ed15042008-11-18 23:14:02 +00002213{
Douglas Gregor4fa58902009-02-26 23:50:07 +00002214 const FunctionProtoType* Proto
2215 = dyn_cast<FunctionProtoType>(Method->getType()->getAsFunctionType());
Douglas Gregor5ed15042008-11-18 23:14:02 +00002216 assert(Proto && "Methods without a prototype cannot be overloaded");
Sebastian Redlbd261962009-04-16 17:51:27 +00002217 assert(!isa<CXXConversionDecl>(Method) &&
Douglas Gregor5ed15042008-11-18 23:14:02 +00002218 "Use AddConversionCandidate for conversion functions");
Sebastian Redlbd261962009-04-16 17:51:27 +00002219 assert(!isa<CXXConstructorDecl>(Method) &&
2220 "Use AddOverloadCandidate for constructors");
Douglas Gregor5ed15042008-11-18 23:14:02 +00002221
2222 // Add this candidate
2223 CandidateSet.push_back(OverloadCandidate());
2224 OverloadCandidate& Candidate = CandidateSet.back();
2225 Candidate.Function = Method;
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00002226 Candidate.IsSurrogate = false;
Douglas Gregor3257fb52008-12-22 05:46:06 +00002227 Candidate.IgnoreObjectArgument = false;
Douglas Gregor5ed15042008-11-18 23:14:02 +00002228
2229 unsigned NumArgsInProto = Proto->getNumArgs();
2230
2231 // (C++ 13.3.2p2): A candidate function having fewer than m
2232 // parameters is viable only if it has an ellipsis in its parameter
2233 // list (8.3.5).
2234 if (NumArgs > NumArgsInProto && !Proto->isVariadic()) {
2235 Candidate.Viable = false;
2236 return;
2237 }
2238
2239 // (C++ 13.3.2p2): A candidate function having more than m parameters
2240 // is viable only if the (m+1)st parameter has a default argument
2241 // (8.3.6). For the purposes of overload resolution, the
2242 // parameter list is truncated on the right, so that there are
2243 // exactly m parameters.
2244 unsigned MinRequiredArgs = Method->getMinRequiredArguments();
2245 if (NumArgs < MinRequiredArgs) {
2246 // Not enough arguments.
2247 Candidate.Viable = false;
2248 return;
2249 }
2250
2251 Candidate.Viable = true;
2252 Candidate.Conversions.resize(NumArgs + 1);
2253
Douglas Gregor3257fb52008-12-22 05:46:06 +00002254 if (Method->isStatic() || !Object)
2255 // The implicit object argument is ignored.
2256 Candidate.IgnoreObjectArgument = true;
2257 else {
2258 // Determine the implicit conversion sequence for the object
2259 // parameter.
2260 Candidate.Conversions[0] = TryObjectArgumentInitialization(Object, Method);
2261 if (Candidate.Conversions[0].ConversionKind
2262 == ImplicitConversionSequence::BadConversion) {
2263 Candidate.Viable = false;
2264 return;
2265 }
Douglas Gregor5ed15042008-11-18 23:14:02 +00002266 }
2267
2268 // Determine the implicit conversion sequences for each of the
2269 // arguments.
2270 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx) {
2271 if (ArgIdx < NumArgsInProto) {
2272 // (C++ 13.3.2p3): for F to be a viable function, there shall
2273 // exist for each argument an implicit conversion sequence
2274 // (13.3.3.1) that converts that argument to the corresponding
2275 // parameter of F.
2276 QualType ParamType = Proto->getArgType(ArgIdx);
2277 Candidate.Conversions[ArgIdx + 1]
2278 = TryCopyInitialization(Args[ArgIdx], ParamType,
Sebastian Redla55834a2009-04-12 17:16:29 +00002279 SuppressUserConversions, ForceRValue);
Douglas Gregor5ed15042008-11-18 23:14:02 +00002280 if (Candidate.Conversions[ArgIdx + 1].ConversionKind
2281 == ImplicitConversionSequence::BadConversion) {
2282 Candidate.Viable = false;
2283 break;
2284 }
2285 } else {
2286 // (C++ 13.3.2p2): For the purposes of overload resolution, any
2287 // argument for which there is no corresponding parameter is
2288 // considered to ""match the ellipsis" (C+ 13.3.3.1.3).
2289 Candidate.Conversions[ArgIdx + 1].ConversionKind
2290 = ImplicitConversionSequence::EllipsisConversion;
2291 }
2292 }
2293}
2294
Douglas Gregor4fdcdda2009-08-21 00:16:32 +00002295/// \brief Add a C++ member function template as a candidate to the candidate
2296/// set, using template argument deduction to produce an appropriate member
2297/// function template specialization.
2298void
2299Sema::AddMethodTemplateCandidate(FunctionTemplateDecl *MethodTmpl,
2300 bool HasExplicitTemplateArgs,
2301 const TemplateArgument *ExplicitTemplateArgs,
2302 unsigned NumExplicitTemplateArgs,
2303 Expr *Object, Expr **Args, unsigned NumArgs,
2304 OverloadCandidateSet& CandidateSet,
2305 bool SuppressUserConversions,
2306 bool ForceRValue) {
2307 // C++ [over.match.funcs]p7:
2308 // In each case where a candidate is a function template, candidate
2309 // function template specializations are generated using template argument
2310 // deduction (14.8.3, 14.8.2). Those candidates are then handled as
2311 // candidate functions in the usual way.113) A given name can refer to one
2312 // or more function templates and also to a set of overloaded non-template
2313 // functions. In such a case, the candidate functions generated from each
2314 // function template are combined with the set of non-template candidate
2315 // functions.
2316 TemplateDeductionInfo Info(Context);
2317 FunctionDecl *Specialization = 0;
2318 if (TemplateDeductionResult Result
2319 = DeduceTemplateArguments(MethodTmpl, HasExplicitTemplateArgs,
2320 ExplicitTemplateArgs, NumExplicitTemplateArgs,
2321 Args, NumArgs, Specialization, Info)) {
2322 // FIXME: Record what happened with template argument deduction, so
2323 // that we can give the user a beautiful diagnostic.
2324 (void)Result;
2325 return;
2326 }
2327
2328 // Add the function template specialization produced by template argument
2329 // deduction as a candidate.
2330 assert(Specialization && "Missing member function template specialization?");
2331 assert(isa<CXXMethodDecl>(Specialization) &&
2332 "Specialization is not a member function?");
2333 AddMethodCandidate(cast<CXXMethodDecl>(Specialization), Object, Args, NumArgs,
2334 CandidateSet, SuppressUserConversions, ForceRValue);
2335}
2336
Douglas Gregor8c860df2009-08-21 23:19:43 +00002337/// \brief Add a C++ function template specialization as a candidate
2338/// in the candidate set, using template argument deduction to produce
2339/// an appropriate function template specialization.
Douglas Gregorb60eb752009-06-25 22:08:12 +00002340void
2341Sema::AddTemplateOverloadCandidate(FunctionTemplateDecl *FunctionTemplate,
Douglas Gregorc9a03b72009-06-30 23:57:56 +00002342 bool HasExplicitTemplateArgs,
2343 const TemplateArgument *ExplicitTemplateArgs,
2344 unsigned NumExplicitTemplateArgs,
Douglas Gregorb60eb752009-06-25 22:08:12 +00002345 Expr **Args, unsigned NumArgs,
2346 OverloadCandidateSet& CandidateSet,
2347 bool SuppressUserConversions,
2348 bool ForceRValue) {
2349 // C++ [over.match.funcs]p7:
2350 // In each case where a candidate is a function template, candidate
2351 // function template specializations are generated using template argument
2352 // deduction (14.8.3, 14.8.2). Those candidates are then handled as
2353 // candidate functions in the usual way.113) A given name can refer to one
2354 // or more function templates and also to a set of overloaded non-template
2355 // functions. In such a case, the candidate functions generated from each
2356 // function template are combined with the set of non-template candidate
2357 // functions.
2358 TemplateDeductionInfo Info(Context);
2359 FunctionDecl *Specialization = 0;
2360 if (TemplateDeductionResult Result
Douglas Gregorc9a03b72009-06-30 23:57:56 +00002361 = DeduceTemplateArguments(FunctionTemplate, HasExplicitTemplateArgs,
2362 ExplicitTemplateArgs, NumExplicitTemplateArgs,
2363 Args, NumArgs, Specialization, Info)) {
Douglas Gregorb60eb752009-06-25 22:08:12 +00002364 // FIXME: Record what happened with template argument deduction, so
2365 // that we can give the user a beautiful diagnostic.
2366 (void)Result;
2367 return;
2368 }
2369
2370 // Add the function template specialization produced by template argument
2371 // deduction as a candidate.
2372 assert(Specialization && "Missing function template specialization?");
2373 AddOverloadCandidate(Specialization, Args, NumArgs, CandidateSet,
2374 SuppressUserConversions, ForceRValue);
2375}
2376
Douglas Gregor60714f92008-11-07 22:36:19 +00002377/// AddConversionCandidate - Add a C++ conversion function as a
2378/// candidate in the candidate set (C++ [over.match.conv],
2379/// C++ [over.match.copy]). From is the expression we're converting from,
2380/// and ToType is the type that we're eventually trying to convert to
2381/// (which may or may not be the same type as the type that the
2382/// conversion function produces).
2383void
2384Sema::AddConversionCandidate(CXXConversionDecl *Conversion,
2385 Expr *From, QualType ToType,
2386 OverloadCandidateSet& CandidateSet) {
Douglas Gregor8c860df2009-08-21 23:19:43 +00002387 assert(!Conversion->getDescribedFunctionTemplate() &&
2388 "Conversion function templates use AddTemplateConversionCandidate");
2389
Douglas Gregor60714f92008-11-07 22:36:19 +00002390 // Add this candidate
2391 CandidateSet.push_back(OverloadCandidate());
2392 OverloadCandidate& Candidate = CandidateSet.back();
2393 Candidate.Function = Conversion;
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00002394 Candidate.IsSurrogate = false;
Douglas Gregor3257fb52008-12-22 05:46:06 +00002395 Candidate.IgnoreObjectArgument = false;
Douglas Gregor60714f92008-11-07 22:36:19 +00002396 Candidate.FinalConversion.setAsIdentityConversion();
2397 Candidate.FinalConversion.FromTypePtr
2398 = Conversion->getConversionType().getAsOpaquePtr();
2399 Candidate.FinalConversion.ToTypePtr = ToType.getAsOpaquePtr();
2400
Douglas Gregor5ed15042008-11-18 23:14:02 +00002401 // Determine the implicit conversion sequence for the implicit
2402 // object parameter.
Douglas Gregor60714f92008-11-07 22:36:19 +00002403 Candidate.Viable = true;
2404 Candidate.Conversions.resize(1);
Douglas Gregor5ed15042008-11-18 23:14:02 +00002405 Candidate.Conversions[0] = TryObjectArgumentInitialization(From, Conversion);
Douglas Gregor60714f92008-11-07 22:36:19 +00002406
Douglas Gregor60714f92008-11-07 22:36:19 +00002407 if (Candidate.Conversions[0].ConversionKind
2408 == ImplicitConversionSequence::BadConversion) {
2409 Candidate.Viable = false;
2410 return;
2411 }
2412
2413 // To determine what the conversion from the result of calling the
2414 // conversion function to the type we're eventually trying to
2415 // convert to (ToType), we need to synthesize a call to the
2416 // conversion function and attempt copy initialization from it. This
2417 // makes sure that we get the right semantics with respect to
2418 // lvalues/rvalues and the type. Fortunately, we can allocate this
2419 // call on the stack and we don't need its arguments to be
2420 // well-formed.
2421 DeclRefExpr ConversionRef(Conversion, Conversion->getType(),
2422 SourceLocation());
2423 ImplicitCastExpr ConversionFn(Context.getPointerType(Conversion->getType()),
Anders Carlsson7ef181c2009-07-31 00:48:10 +00002424 CastExpr::CK_Unknown,
Douglas Gregor70d26122008-11-12 17:17:38 +00002425 &ConversionRef, false);
Ted Kremenek362abcd2009-02-09 20:51:47 +00002426
2427 // Note that it is safe to allocate CallExpr on the stack here because
2428 // there are 0 arguments (i.e., nothing is allocated using ASTContext's
2429 // allocator).
2430 CallExpr Call(Context, &ConversionFn, 0, 0,
Douglas Gregor60714f92008-11-07 22:36:19 +00002431 Conversion->getConversionType().getNonReferenceType(),
2432 SourceLocation());
2433 ImplicitConversionSequence ICS = TryCopyInitialization(&Call, ToType, true);
2434 switch (ICS.ConversionKind) {
2435 case ImplicitConversionSequence::StandardConversion:
2436 Candidate.FinalConversion = ICS.Standard;
2437 break;
2438
2439 case ImplicitConversionSequence::BadConversion:
2440 Candidate.Viable = false;
2441 break;
2442
2443 default:
2444 assert(false &&
2445 "Can only end up with a standard conversion sequence or failure");
2446 }
2447}
2448
Douglas Gregor8c860df2009-08-21 23:19:43 +00002449/// \brief Adds a conversion function template specialization
2450/// candidate to the overload set, using template argument deduction
2451/// to deduce the template arguments of the conversion function
2452/// template from the type that we are converting to (C++
2453/// [temp.deduct.conv]).
2454void
2455Sema::AddTemplateConversionCandidate(FunctionTemplateDecl *FunctionTemplate,
2456 Expr *From, QualType ToType,
2457 OverloadCandidateSet &CandidateSet) {
2458 assert(isa<CXXConversionDecl>(FunctionTemplate->getTemplatedDecl()) &&
2459 "Only conversion function templates permitted here");
2460
2461 TemplateDeductionInfo Info(Context);
2462 CXXConversionDecl *Specialization = 0;
2463 if (TemplateDeductionResult Result
2464 = DeduceTemplateArguments(FunctionTemplate, ToType,
2465 Specialization, Info)) {
2466 // FIXME: Record what happened with template argument deduction, so
2467 // that we can give the user a beautiful diagnostic.
2468 (void)Result;
2469 return;
2470 }
2471
2472 // Add the conversion function template specialization produced by
2473 // template argument deduction as a candidate.
2474 assert(Specialization && "Missing function template specialization?");
2475 AddConversionCandidate(Specialization, From, ToType, CandidateSet);
2476}
2477
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00002478/// AddSurrogateCandidate - Adds a "surrogate" candidate function that
2479/// converts the given @c Object to a function pointer via the
2480/// conversion function @c Conversion, and then attempts to call it
2481/// with the given arguments (C++ [over.call.object]p2-4). Proto is
2482/// the type of function that we'll eventually be calling.
2483void Sema::AddSurrogateCandidate(CXXConversionDecl *Conversion,
Douglas Gregor4fa58902009-02-26 23:50:07 +00002484 const FunctionProtoType *Proto,
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00002485 Expr *Object, Expr **Args, unsigned NumArgs,
2486 OverloadCandidateSet& CandidateSet) {
2487 CandidateSet.push_back(OverloadCandidate());
2488 OverloadCandidate& Candidate = CandidateSet.back();
2489 Candidate.Function = 0;
2490 Candidate.Surrogate = Conversion;
2491 Candidate.Viable = true;
2492 Candidate.IsSurrogate = true;
Douglas Gregor3257fb52008-12-22 05:46:06 +00002493 Candidate.IgnoreObjectArgument = false;
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00002494 Candidate.Conversions.resize(NumArgs + 1);
2495
2496 // Determine the implicit conversion sequence for the implicit
2497 // object parameter.
2498 ImplicitConversionSequence ObjectInit
2499 = TryObjectArgumentInitialization(Object, Conversion);
2500 if (ObjectInit.ConversionKind == ImplicitConversionSequence::BadConversion) {
2501 Candidate.Viable = false;
2502 return;
2503 }
2504
2505 // The first conversion is actually a user-defined conversion whose
2506 // first conversion is ObjectInit's standard conversion (which is
2507 // effectively a reference binding). Record it as such.
2508 Candidate.Conversions[0].ConversionKind
2509 = ImplicitConversionSequence::UserDefinedConversion;
2510 Candidate.Conversions[0].UserDefined.Before = ObjectInit.Standard;
2511 Candidate.Conversions[0].UserDefined.ConversionFunction = Conversion;
2512 Candidate.Conversions[0].UserDefined.After
2513 = Candidate.Conversions[0].UserDefined.Before;
2514 Candidate.Conversions[0].UserDefined.After.setAsIdentityConversion();
2515
2516 // Find the
2517 unsigned NumArgsInProto = Proto->getNumArgs();
2518
2519 // (C++ 13.3.2p2): A candidate function having fewer than m
2520 // parameters is viable only if it has an ellipsis in its parameter
2521 // list (8.3.5).
2522 if (NumArgs > NumArgsInProto && !Proto->isVariadic()) {
2523 Candidate.Viable = false;
2524 return;
2525 }
2526
2527 // Function types don't have any default arguments, so just check if
2528 // we have enough arguments.
2529 if (NumArgs < NumArgsInProto) {
2530 // Not enough arguments.
2531 Candidate.Viable = false;
2532 return;
2533 }
2534
2535 // Determine the implicit conversion sequences for each of the
2536 // arguments.
2537 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx) {
2538 if (ArgIdx < NumArgsInProto) {
2539 // (C++ 13.3.2p3): for F to be a viable function, there shall
2540 // exist for each argument an implicit conversion sequence
2541 // (13.3.3.1) that converts that argument to the corresponding
2542 // parameter of F.
2543 QualType ParamType = Proto->getArgType(ArgIdx);
2544 Candidate.Conversions[ArgIdx + 1]
2545 = TryCopyInitialization(Args[ArgIdx], ParamType,
2546 /*SuppressUserConversions=*/false);
2547 if (Candidate.Conversions[ArgIdx + 1].ConversionKind
2548 == ImplicitConversionSequence::BadConversion) {
2549 Candidate.Viable = false;
2550 break;
2551 }
2552 } else {
2553 // (C++ 13.3.2p2): For the purposes of overload resolution, any
2554 // argument for which there is no corresponding parameter is
2555 // considered to ""match the ellipsis" (C+ 13.3.3.1.3).
2556 Candidate.Conversions[ArgIdx + 1].ConversionKind
2557 = ImplicitConversionSequence::EllipsisConversion;
2558 }
2559 }
2560}
2561
Mike Stumpe127ae32009-05-16 07:39:55 +00002562// FIXME: This will eventually be removed, once we've migrated all of the
2563// operator overloading logic over to the scheme used by binary operators, which
2564// works for template instantiation.
Douglas Gregor00fe3f62009-03-13 18:40:31 +00002565void Sema::AddOperatorCandidates(OverloadedOperatorKind Op, Scope *S,
Douglas Gregor48a87322009-02-04 16:44:47 +00002566 SourceLocation OpLoc,
Douglas Gregor5ed15042008-11-18 23:14:02 +00002567 Expr **Args, unsigned NumArgs,
Douglas Gregor48a87322009-02-04 16:44:47 +00002568 OverloadCandidateSet& CandidateSet,
2569 SourceRange OpRange) {
Douglas Gregor00fe3f62009-03-13 18:40:31 +00002570
2571 FunctionSet Functions;
2572
2573 QualType T1 = Args[0]->getType();
2574 QualType T2;
2575 if (NumArgs > 1)
2576 T2 = Args[1]->getType();
2577
2578 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op);
Douglas Gregorde72f3e2009-05-19 00:01:19 +00002579 if (S)
2580 LookupOverloadedOperatorName(Op, S, T1, T2, Functions);
Douglas Gregor00fe3f62009-03-13 18:40:31 +00002581 ArgumentDependentLookup(OpName, Args, NumArgs, Functions);
2582 AddFunctionCandidates(Functions, Args, NumArgs, CandidateSet);
2583 AddMemberOperatorCandidates(Op, OpLoc, Args, NumArgs, CandidateSet, OpRange);
2584 AddBuiltinOperatorCandidates(Op, Args, NumArgs, CandidateSet);
2585}
2586
2587/// \brief Add overload candidates for overloaded operators that are
2588/// member functions.
2589///
2590/// Add the overloaded operator candidates that are member functions
2591/// for the operator Op that was used in an operator expression such
2592/// as "x Op y". , Args/NumArgs provides the operator arguments, and
2593/// CandidateSet will store the added overload candidates. (C++
2594/// [over.match.oper]).
2595void Sema::AddMemberOperatorCandidates(OverloadedOperatorKind Op,
2596 SourceLocation OpLoc,
2597 Expr **Args, unsigned NumArgs,
2598 OverloadCandidateSet& CandidateSet,
2599 SourceRange OpRange) {
Douglas Gregor5ed15042008-11-18 23:14:02 +00002600 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op);
2601
2602 // C++ [over.match.oper]p3:
2603 // For a unary operator @ with an operand of a type whose
2604 // cv-unqualified version is T1, and for a binary operator @ with
2605 // a left operand of a type whose cv-unqualified version is T1 and
2606 // a right operand of a type whose cv-unqualified version is T2,
2607 // three sets of candidate functions, designated member
2608 // candidates, non-member candidates and built-in candidates, are
2609 // constructed as follows:
2610 QualType T1 = Args[0]->getType();
2611 QualType T2;
2612 if (NumArgs > 1)
2613 T2 = Args[1]->getType();
2614
2615 // -- If T1 is a class type, the set of member candidates is the
2616 // result of the qualified lookup of T1::operator@
2617 // (13.3.1.1.1); otherwise, the set of member candidates is
2618 // empty.
Douglas Gregor00fe3f62009-03-13 18:40:31 +00002619 // FIXME: Lookup in base classes, too!
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002620 if (const RecordType *T1Rec = T1->getAs<RecordType>()) {
Douglas Gregorddfd9d52008-12-23 00:26:44 +00002621 DeclContext::lookup_const_iterator Oper, OperEnd;
Argiris Kirtzidisab6e38a2009-06-30 02:36:12 +00002622 for (llvm::tie(Oper, OperEnd) = T1Rec->getDecl()->lookup(OpName);
Douglas Gregorddfd9d52008-12-23 00:26:44 +00002623 Oper != OperEnd; ++Oper)
2624 AddMethodCandidate(cast<CXXMethodDecl>(*Oper), Args[0],
2625 Args+1, NumArgs - 1, CandidateSet,
Douglas Gregor5ed15042008-11-18 23:14:02 +00002626 /*SuppressUserConversions=*/false);
Douglas Gregor5ed15042008-11-18 23:14:02 +00002627 }
Douglas Gregor5ed15042008-11-18 23:14:02 +00002628}
2629
Douglas Gregor70d26122008-11-12 17:17:38 +00002630/// AddBuiltinCandidate - Add a candidate for a built-in
2631/// operator. ResultTy and ParamTys are the result and parameter types
2632/// of the built-in candidate, respectively. Args and NumArgs are the
Douglas Gregorab141112009-01-13 00:52:54 +00002633/// arguments being passed to the candidate. IsAssignmentOperator
2634/// should be true when this built-in candidate is an assignment
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002635/// operator. NumContextualBoolArguments is the number of arguments
2636/// (at the beginning of the argument list) that will be contextually
2637/// converted to bool.
Douglas Gregor70d26122008-11-12 17:17:38 +00002638void Sema::AddBuiltinCandidate(QualType ResultTy, QualType *ParamTys,
2639 Expr **Args, unsigned NumArgs,
Douglas Gregorab141112009-01-13 00:52:54 +00002640 OverloadCandidateSet& CandidateSet,
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002641 bool IsAssignmentOperator,
2642 unsigned NumContextualBoolArguments) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002643 // Add this candidate
2644 CandidateSet.push_back(OverloadCandidate());
2645 OverloadCandidate& Candidate = CandidateSet.back();
2646 Candidate.Function = 0;
Douglas Gregor6b5e34f2008-12-12 02:00:36 +00002647 Candidate.IsSurrogate = false;
Douglas Gregor3257fb52008-12-22 05:46:06 +00002648 Candidate.IgnoreObjectArgument = false;
Douglas Gregor70d26122008-11-12 17:17:38 +00002649 Candidate.BuiltinTypes.ResultTy = ResultTy;
2650 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx)
2651 Candidate.BuiltinTypes.ParamTypes[ArgIdx] = ParamTys[ArgIdx];
2652
2653 // Determine the implicit conversion sequences for each of the
2654 // arguments.
2655 Candidate.Viable = true;
2656 Candidate.Conversions.resize(NumArgs);
2657 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx) {
Douglas Gregorab141112009-01-13 00:52:54 +00002658 // C++ [over.match.oper]p4:
2659 // For the built-in assignment operators, conversions of the
2660 // left operand are restricted as follows:
2661 // -- no temporaries are introduced to hold the left operand, and
2662 // -- no user-defined conversions are applied to the left
2663 // operand to achieve a type match with the left-most
2664 // parameter of a built-in candidate.
2665 //
2666 // We block these conversions by turning off user-defined
2667 // conversions, since that is the only way that initialization of
2668 // a reference to a non-class type can occur from something that
2669 // is not of the same type.
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002670 if (ArgIdx < NumContextualBoolArguments) {
2671 assert(ParamTys[ArgIdx] == Context.BoolTy &&
2672 "Contextual conversion to bool requires bool type");
2673 Candidate.Conversions[ArgIdx] = TryContextuallyConvertToBool(Args[ArgIdx]);
2674 } else {
2675 Candidate.Conversions[ArgIdx]
2676 = TryCopyInitialization(Args[ArgIdx], ParamTys[ArgIdx],
2677 ArgIdx == 0 && IsAssignmentOperator);
2678 }
Douglas Gregor70d26122008-11-12 17:17:38 +00002679 if (Candidate.Conversions[ArgIdx].ConversionKind
Douglas Gregor5ed15042008-11-18 23:14:02 +00002680 == ImplicitConversionSequence::BadConversion) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002681 Candidate.Viable = false;
Douglas Gregor5ed15042008-11-18 23:14:02 +00002682 break;
2683 }
Douglas Gregor70d26122008-11-12 17:17:38 +00002684 }
2685}
2686
2687/// BuiltinCandidateTypeSet - A set of types that will be used for the
2688/// candidate operator functions for built-in operators (C++
2689/// [over.built]). The types are separated into pointer types and
2690/// enumeration types.
2691class BuiltinCandidateTypeSet {
2692 /// TypeSet - A set of types.
Chris Lattnerf0bb03c2009-03-29 00:04:01 +00002693 typedef llvm::SmallPtrSet<QualType, 8> TypeSet;
Douglas Gregor70d26122008-11-12 17:17:38 +00002694
2695 /// PointerTypes - The set of pointer types that will be used in the
2696 /// built-in candidates.
2697 TypeSet PointerTypes;
2698
Sebastian Redl674d1b72009-04-19 21:53:20 +00002699 /// MemberPointerTypes - The set of member pointer types that will be
2700 /// used in the built-in candidates.
2701 TypeSet MemberPointerTypes;
2702
Douglas Gregor70d26122008-11-12 17:17:38 +00002703 /// EnumerationTypes - The set of enumeration types that will be
2704 /// used in the built-in candidates.
2705 TypeSet EnumerationTypes;
2706
Douglas Gregorb35c7992009-08-24 15:23:48 +00002707 /// Sema - The semantic analysis instance where we are building the
2708 /// candidate type set.
2709 Sema &SemaRef;
2710
Douglas Gregor70d26122008-11-12 17:17:38 +00002711 /// Context - The AST context in which we will build the type sets.
2712 ASTContext &Context;
2713
Sebastian Redl674d1b72009-04-19 21:53:20 +00002714 bool AddPointerWithMoreQualifiedTypeVariants(QualType Ty);
2715 bool AddMemberPointerWithMoreQualifiedTypeVariants(QualType Ty);
Douglas Gregor70d26122008-11-12 17:17:38 +00002716
2717public:
2718 /// iterator - Iterates through the types that are part of the set.
Chris Lattnerf0bb03c2009-03-29 00:04:01 +00002719 typedef TypeSet::iterator iterator;
Douglas Gregor70d26122008-11-12 17:17:38 +00002720
Douglas Gregorb35c7992009-08-24 15:23:48 +00002721 BuiltinCandidateTypeSet(Sema &SemaRef)
2722 : SemaRef(SemaRef), Context(SemaRef.Context) { }
Douglas Gregor70d26122008-11-12 17:17:38 +00002723
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002724 void AddTypesConvertedFrom(QualType Ty, bool AllowUserConversions,
2725 bool AllowExplicitConversions);
Douglas Gregor70d26122008-11-12 17:17:38 +00002726
2727 /// pointer_begin - First pointer type found;
2728 iterator pointer_begin() { return PointerTypes.begin(); }
2729
Sebastian Redl674d1b72009-04-19 21:53:20 +00002730 /// pointer_end - Past the last pointer type found;
Douglas Gregor70d26122008-11-12 17:17:38 +00002731 iterator pointer_end() { return PointerTypes.end(); }
2732
Sebastian Redl674d1b72009-04-19 21:53:20 +00002733 /// member_pointer_begin - First member pointer type found;
2734 iterator member_pointer_begin() { return MemberPointerTypes.begin(); }
2735
2736 /// member_pointer_end - Past the last member pointer type found;
2737 iterator member_pointer_end() { return MemberPointerTypes.end(); }
2738
Douglas Gregor70d26122008-11-12 17:17:38 +00002739 /// enumeration_begin - First enumeration type found;
2740 iterator enumeration_begin() { return EnumerationTypes.begin(); }
2741
Sebastian Redl674d1b72009-04-19 21:53:20 +00002742 /// enumeration_end - Past the last enumeration type found;
Douglas Gregor70d26122008-11-12 17:17:38 +00002743 iterator enumeration_end() { return EnumerationTypes.end(); }
2744};
2745
Sebastian Redl674d1b72009-04-19 21:53:20 +00002746/// AddPointerWithMoreQualifiedTypeVariants - Add the pointer type @p Ty to
Douglas Gregor70d26122008-11-12 17:17:38 +00002747/// the set of pointer types along with any more-qualified variants of
2748/// that type. For example, if @p Ty is "int const *", this routine
2749/// will add "int const *", "int const volatile *", "int const
2750/// restrict *", and "int const volatile restrict *" to the set of
2751/// pointer types. Returns true if the add of @p Ty itself succeeded,
2752/// false otherwise.
Sebastian Redl674d1b72009-04-19 21:53:20 +00002753bool
2754BuiltinCandidateTypeSet::AddPointerWithMoreQualifiedTypeVariants(QualType Ty) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002755 // Insert this type.
Chris Lattnerf0bb03c2009-03-29 00:04:01 +00002756 if (!PointerTypes.insert(Ty))
Douglas Gregor70d26122008-11-12 17:17:38 +00002757 return false;
2758
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002759 if (const PointerType *PointerTy = Ty->getAs<PointerType>()) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002760 QualType PointeeTy = PointerTy->getPointeeType();
2761 // FIXME: Optimize this so that we don't keep trying to add the same types.
2762
Mike Stumpe127ae32009-05-16 07:39:55 +00002763 // FIXME: Do we have to add CVR qualifiers at *all* levels to deal with all
2764 // pointer conversions that don't cast away constness?
Douglas Gregor70d26122008-11-12 17:17:38 +00002765 if (!PointeeTy.isConstQualified())
Sebastian Redl674d1b72009-04-19 21:53:20 +00002766 AddPointerWithMoreQualifiedTypeVariants
Douglas Gregor70d26122008-11-12 17:17:38 +00002767 (Context.getPointerType(PointeeTy.withConst()));
2768 if (!PointeeTy.isVolatileQualified())
Sebastian Redl674d1b72009-04-19 21:53:20 +00002769 AddPointerWithMoreQualifiedTypeVariants
Douglas Gregor70d26122008-11-12 17:17:38 +00002770 (Context.getPointerType(PointeeTy.withVolatile()));
2771 if (!PointeeTy.isRestrictQualified())
Sebastian Redl674d1b72009-04-19 21:53:20 +00002772 AddPointerWithMoreQualifiedTypeVariants
Douglas Gregor70d26122008-11-12 17:17:38 +00002773 (Context.getPointerType(PointeeTy.withRestrict()));
2774 }
2775
2776 return true;
2777}
2778
Sebastian Redl674d1b72009-04-19 21:53:20 +00002779/// AddMemberPointerWithMoreQualifiedTypeVariants - Add the pointer type @p Ty
2780/// to the set of pointer types along with any more-qualified variants of
2781/// that type. For example, if @p Ty is "int const *", this routine
2782/// will add "int const *", "int const volatile *", "int const
2783/// restrict *", and "int const volatile restrict *" to the set of
2784/// pointer types. Returns true if the add of @p Ty itself succeeded,
2785/// false otherwise.
2786bool
2787BuiltinCandidateTypeSet::AddMemberPointerWithMoreQualifiedTypeVariants(
2788 QualType Ty) {
2789 // Insert this type.
2790 if (!MemberPointerTypes.insert(Ty))
2791 return false;
2792
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002793 if (const MemberPointerType *PointerTy = Ty->getAs<MemberPointerType>()) {
Sebastian Redl674d1b72009-04-19 21:53:20 +00002794 QualType PointeeTy = PointerTy->getPointeeType();
2795 const Type *ClassTy = PointerTy->getClass();
2796 // FIXME: Optimize this so that we don't keep trying to add the same types.
2797
2798 if (!PointeeTy.isConstQualified())
2799 AddMemberPointerWithMoreQualifiedTypeVariants
2800 (Context.getMemberPointerType(PointeeTy.withConst(), ClassTy));
2801 if (!PointeeTy.isVolatileQualified())
2802 AddMemberPointerWithMoreQualifiedTypeVariants
2803 (Context.getMemberPointerType(PointeeTy.withVolatile(), ClassTy));
2804 if (!PointeeTy.isRestrictQualified())
2805 AddMemberPointerWithMoreQualifiedTypeVariants
2806 (Context.getMemberPointerType(PointeeTy.withRestrict(), ClassTy));
2807 }
2808
2809 return true;
2810}
2811
Douglas Gregor70d26122008-11-12 17:17:38 +00002812/// AddTypesConvertedFrom - Add each of the types to which the type @p
2813/// Ty can be implicit converted to the given set of @p Types. We're
Sebastian Redl674d1b72009-04-19 21:53:20 +00002814/// primarily interested in pointer types and enumeration types. We also
2815/// take member pointer types, for the conditional operator.
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002816/// AllowUserConversions is true if we should look at the conversion
2817/// functions of a class type, and AllowExplicitConversions if we
2818/// should also include the explicit conversion functions of a class
2819/// type.
2820void
2821BuiltinCandidateTypeSet::AddTypesConvertedFrom(QualType Ty,
2822 bool AllowUserConversions,
2823 bool AllowExplicitConversions) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002824 // Only deal with canonical types.
2825 Ty = Context.getCanonicalType(Ty);
2826
2827 // Look through reference types; they aren't part of the type of an
2828 // expression for the purposes of conversions.
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002829 if (const ReferenceType *RefTy = Ty->getAs<ReferenceType>())
Douglas Gregor70d26122008-11-12 17:17:38 +00002830 Ty = RefTy->getPointeeType();
2831
2832 // We don't care about qualifiers on the type.
2833 Ty = Ty.getUnqualifiedType();
2834
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002835 if (const PointerType *PointerTy = Ty->getAs<PointerType>()) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002836 QualType PointeeTy = PointerTy->getPointeeType();
2837
2838 // Insert our type, and its more-qualified variants, into the set
2839 // of types.
Sebastian Redl674d1b72009-04-19 21:53:20 +00002840 if (!AddPointerWithMoreQualifiedTypeVariants(Ty))
Douglas Gregor70d26122008-11-12 17:17:38 +00002841 return;
2842
2843 // Add 'cv void*' to our set of types.
2844 if (!Ty->isVoidType()) {
2845 QualType QualVoid
2846 = Context.VoidTy.getQualifiedType(PointeeTy.getCVRQualifiers());
Sebastian Redl674d1b72009-04-19 21:53:20 +00002847 AddPointerWithMoreQualifiedTypeVariants(Context.getPointerType(QualVoid));
Douglas Gregor70d26122008-11-12 17:17:38 +00002848 }
2849
2850 // If this is a pointer to a class type, add pointers to its bases
2851 // (with the same level of cv-qualification as the original
2852 // derived class, of course).
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002853 if (const RecordType *PointeeRec = PointeeTy->getAs<RecordType>()) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002854 CXXRecordDecl *ClassDecl = cast<CXXRecordDecl>(PointeeRec->getDecl());
2855 for (CXXRecordDecl::base_class_iterator Base = ClassDecl->bases_begin();
2856 Base != ClassDecl->bases_end(); ++Base) {
2857 QualType BaseTy = Context.getCanonicalType(Base->getType());
2858 BaseTy = BaseTy.getQualifiedType(PointeeTy.getCVRQualifiers());
2859
2860 // Add the pointer type, recursively, so that we get all of
2861 // the indirect base classes, too.
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002862 AddTypesConvertedFrom(Context.getPointerType(BaseTy), false, false);
Douglas Gregor70d26122008-11-12 17:17:38 +00002863 }
2864 }
Sebastian Redl674d1b72009-04-19 21:53:20 +00002865 } else if (Ty->isMemberPointerType()) {
2866 // Member pointers are far easier, since the pointee can't be converted.
2867 if (!AddMemberPointerWithMoreQualifiedTypeVariants(Ty))
2868 return;
Douglas Gregor70d26122008-11-12 17:17:38 +00002869 } else if (Ty->isEnumeralType()) {
Chris Lattnerf0bb03c2009-03-29 00:04:01 +00002870 EnumerationTypes.insert(Ty);
Douglas Gregor70d26122008-11-12 17:17:38 +00002871 } else if (AllowUserConversions) {
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00002872 if (const RecordType *TyRec = Ty->getAs<RecordType>()) {
Douglas Gregorb35c7992009-08-24 15:23:48 +00002873 if (SemaRef.RequireCompleteType(SourceLocation(), Ty, 0)) {
2874 // No conversion functions in incomplete types.
2875 return;
2876 }
2877
Douglas Gregor70d26122008-11-12 17:17:38 +00002878 CXXRecordDecl *ClassDecl = cast<CXXRecordDecl>(TyRec->getDecl());
2879 // FIXME: Visit conversion functions in the base classes, too.
2880 OverloadedFunctionDecl *Conversions
2881 = ClassDecl->getConversionFunctions();
2882 for (OverloadedFunctionDecl::function_iterator Func
2883 = Conversions->function_begin();
2884 Func != Conversions->function_end(); ++Func) {
Douglas Gregor8c860df2009-08-21 23:19:43 +00002885 CXXConversionDecl *Conv;
2886 FunctionTemplateDecl *ConvTemplate;
2887 GetFunctionAndTemplate(*Func, Conv, ConvTemplate);
2888
2889 // Skip conversion function templates; they don't tell us anything
2890 // about which builtin types we can convert to.
2891 if (ConvTemplate)
2892 continue;
2893
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002894 if (AllowExplicitConversions || !Conv->isExplicit())
2895 AddTypesConvertedFrom(Conv->getConversionType(), false, false);
Douglas Gregor70d26122008-11-12 17:17:38 +00002896 }
2897 }
2898 }
2899}
2900
Douglas Gregor9a375942009-08-24 13:43:27 +00002901/// \brief Helper function for AddBuiltinOperatorCandidates() that adds
2902/// the volatile- and non-volatile-qualified assignment operators for the
2903/// given type to the candidate set.
2904static void AddBuiltinAssignmentOperatorCandidates(Sema &S,
2905 QualType T,
2906 Expr **Args,
2907 unsigned NumArgs,
2908 OverloadCandidateSet &CandidateSet) {
2909 QualType ParamTypes[2];
2910
2911 // T& operator=(T&, T)
2912 ParamTypes[0] = S.Context.getLValueReferenceType(T);
2913 ParamTypes[1] = T;
2914 S.AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet,
2915 /*IsAssignmentOperator=*/true);
2916
2917 if (!S.Context.getCanonicalType(T).isVolatileQualified()) {
2918 // volatile T& operator=(volatile T&, T)
2919 ParamTypes[0] = S.Context.getLValueReferenceType(T.withVolatile());
2920 ParamTypes[1] = T;
2921 S.AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet,
2922 /*IsAssignmentOperator=*/true);
2923 }
2924}
2925
Douglas Gregor4f6904d2008-11-19 15:42:04 +00002926/// AddBuiltinOperatorCandidates - Add the appropriate built-in
2927/// operator overloads to the candidate set (C++ [over.built]), based
2928/// on the operator @p Op and the arguments given. For example, if the
2929/// operator is a binary '+', this routine might add "int
2930/// operator+(int, int)" to cover integer addition.
Douglas Gregor70d26122008-11-12 17:17:38 +00002931void
Douglas Gregor4f6904d2008-11-19 15:42:04 +00002932Sema::AddBuiltinOperatorCandidates(OverloadedOperatorKind Op,
2933 Expr **Args, unsigned NumArgs,
2934 OverloadCandidateSet& CandidateSet) {
Douglas Gregor70d26122008-11-12 17:17:38 +00002935 // The set of "promoted arithmetic types", which are the arithmetic
2936 // types are that preserved by promotion (C++ [over.built]p2). Note
2937 // that the first few of these types are the promoted integral
2938 // types; these types need to be first.
2939 // FIXME: What about complex?
2940 const unsigned FirstIntegralType = 0;
2941 const unsigned LastIntegralType = 13;
2942 const unsigned FirstPromotedIntegralType = 7,
2943 LastPromotedIntegralType = 13;
2944 const unsigned FirstPromotedArithmeticType = 7,
2945 LastPromotedArithmeticType = 16;
2946 const unsigned NumArithmeticTypes = 16;
2947 QualType ArithmeticTypes[NumArithmeticTypes] = {
Alisdair Meredith2bcacb62009-07-14 06:30:34 +00002948 Context.BoolTy, Context.CharTy, Context.WCharTy,
Douglas Gregor9a375942009-08-24 13:43:27 +00002949// FIXME: Context.Char16Ty, Context.Char32Ty,
Douglas Gregor70d26122008-11-12 17:17:38 +00002950 Context.SignedCharTy, Context.ShortTy,
2951 Context.UnsignedCharTy, Context.UnsignedShortTy,
2952 Context.IntTy, Context.LongTy, Context.LongLongTy,
2953 Context.UnsignedIntTy, Context.UnsignedLongTy, Context.UnsignedLongLongTy,
2954 Context.FloatTy, Context.DoubleTy, Context.LongDoubleTy
2955 };
2956
2957 // Find all of the types that the arguments can convert to, but only
2958 // if the operator we're looking at has built-in operator candidates
2959 // that make use of these types.
Douglas Gregorb35c7992009-08-24 15:23:48 +00002960 BuiltinCandidateTypeSet CandidateTypes(*this);
Douglas Gregor70d26122008-11-12 17:17:38 +00002961 if (Op == OO_Less || Op == OO_Greater || Op == OO_LessEqual ||
2962 Op == OO_GreaterEqual || Op == OO_EqualEqual || Op == OO_ExclaimEqual ||
Douglas Gregor4f6904d2008-11-19 15:42:04 +00002963 Op == OO_Plus || (Op == OO_Minus && NumArgs == 2) || Op == OO_Equal ||
Douglas Gregor70d26122008-11-12 17:17:38 +00002964 Op == OO_PlusEqual || Op == OO_MinusEqual || Op == OO_Subscript ||
Douglas Gregor4f6904d2008-11-19 15:42:04 +00002965 Op == OO_ArrowStar || Op == OO_PlusPlus || Op == OO_MinusMinus ||
Sebastian Redlbd261962009-04-16 17:51:27 +00002966 (Op == OO_Star && NumArgs == 1) || Op == OO_Conditional) {
Douglas Gregor4f6904d2008-11-19 15:42:04 +00002967 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx)
Douglas Gregor6214d8a2009-01-14 15:45:31 +00002968 CandidateTypes.AddTypesConvertedFrom(Args[ArgIdx]->getType(),
2969 true,
2970 (Op == OO_Exclaim ||
2971 Op == OO_AmpAmp ||
2972 Op == OO_PipePipe));
Douglas Gregor70d26122008-11-12 17:17:38 +00002973 }
2974
2975 bool isComparison = false;
2976 switch (Op) {
2977 case OO_None:
2978 case NUM_OVERLOADED_OPERATORS:
2979 assert(false && "Expected an overloaded operator");
2980 break;
2981
Douglas Gregor4f6904d2008-11-19 15:42:04 +00002982 case OO_Star: // '*' is either unary or binary
2983 if (NumArgs == 1)
2984 goto UnaryStar;
2985 else
2986 goto BinaryStar;
2987 break;
2988
2989 case OO_Plus: // '+' is either unary or binary
2990 if (NumArgs == 1)
2991 goto UnaryPlus;
2992 else
2993 goto BinaryPlus;
2994 break;
2995
2996 case OO_Minus: // '-' is either unary or binary
2997 if (NumArgs == 1)
2998 goto UnaryMinus;
2999 else
3000 goto BinaryMinus;
3001 break;
3002
3003 case OO_Amp: // '&' is either unary or binary
3004 if (NumArgs == 1)
3005 goto UnaryAmp;
3006 else
3007 goto BinaryAmp;
3008
3009 case OO_PlusPlus:
3010 case OO_MinusMinus:
3011 // C++ [over.built]p3:
3012 //
3013 // For every pair (T, VQ), where T is an arithmetic type, and VQ
3014 // is either volatile or empty, there exist candidate operator
3015 // functions of the form
3016 //
3017 // VQ T& operator++(VQ T&);
3018 // T operator++(VQ T&, int);
3019 //
3020 // C++ [over.built]p4:
3021 //
3022 // For every pair (T, VQ), where T is an arithmetic type other
3023 // than bool, and VQ is either volatile or empty, there exist
3024 // candidate operator functions of the form
3025 //
3026 // VQ T& operator--(VQ T&);
3027 // T operator--(VQ T&, int);
3028 for (unsigned Arith = (Op == OO_PlusPlus? 0 : 1);
3029 Arith < NumArithmeticTypes; ++Arith) {
3030 QualType ArithTy = ArithmeticTypes[Arith];
3031 QualType ParamTypes[2]
Sebastian Redlce6fff02009-03-16 23:22:08 +00003032 = { Context.getLValueReferenceType(ArithTy), Context.IntTy };
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003033
3034 // Non-volatile version.
3035 if (NumArgs == 1)
3036 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 1, CandidateSet);
3037 else
3038 AddBuiltinCandidate(ArithTy, ParamTypes, Args, 2, CandidateSet);
3039
3040 // Volatile version
Sebastian Redlce6fff02009-03-16 23:22:08 +00003041 ParamTypes[0] = Context.getLValueReferenceType(ArithTy.withVolatile());
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003042 if (NumArgs == 1)
3043 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 1, CandidateSet);
3044 else
3045 AddBuiltinCandidate(ArithTy, ParamTypes, Args, 2, CandidateSet);
3046 }
3047
3048 // C++ [over.built]p5:
3049 //
3050 // For every pair (T, VQ), where T is a cv-qualified or
3051 // cv-unqualified object type, and VQ is either volatile or
3052 // empty, there exist candidate operator functions of the form
3053 //
3054 // T*VQ& operator++(T*VQ&);
3055 // T*VQ& operator--(T*VQ&);
3056 // T* operator++(T*VQ&, int);
3057 // T* operator--(T*VQ&, int);
3058 for (BuiltinCandidateTypeSet::iterator Ptr = CandidateTypes.pointer_begin();
3059 Ptr != CandidateTypes.pointer_end(); ++Ptr) {
3060 // Skip pointer types that aren't pointers to object types.
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003061 if (!(*Ptr)->getAs<PointerType>()->getPointeeType()->isObjectType())
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003062 continue;
3063
3064 QualType ParamTypes[2] = {
Sebastian Redlce6fff02009-03-16 23:22:08 +00003065 Context.getLValueReferenceType(*Ptr), Context.IntTy
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003066 };
3067
3068 // Without volatile
3069 if (NumArgs == 1)
3070 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 1, CandidateSet);
3071 else
3072 AddBuiltinCandidate(*Ptr, ParamTypes, Args, 2, CandidateSet);
3073
3074 if (!Context.getCanonicalType(*Ptr).isVolatileQualified()) {
3075 // With volatile
Sebastian Redlce6fff02009-03-16 23:22:08 +00003076 ParamTypes[0] = Context.getLValueReferenceType((*Ptr).withVolatile());
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003077 if (NumArgs == 1)
3078 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 1, CandidateSet);
3079 else
3080 AddBuiltinCandidate(*Ptr, ParamTypes, Args, 2, CandidateSet);
3081 }
3082 }
3083 break;
3084
3085 UnaryStar:
3086 // C++ [over.built]p6:
3087 // For every cv-qualified or cv-unqualified object type T, there
3088 // exist candidate operator functions of the form
3089 //
3090 // T& operator*(T*);
3091 //
3092 // C++ [over.built]p7:
3093 // For every function type T, there exist candidate operator
3094 // functions of the form
3095 // T& operator*(T*);
3096 for (BuiltinCandidateTypeSet::iterator Ptr = CandidateTypes.pointer_begin();
3097 Ptr != CandidateTypes.pointer_end(); ++Ptr) {
3098 QualType ParamTy = *Ptr;
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003099 QualType PointeeTy = ParamTy->getAs<PointerType>()->getPointeeType();
Sebastian Redlce6fff02009-03-16 23:22:08 +00003100 AddBuiltinCandidate(Context.getLValueReferenceType(PointeeTy),
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003101 &ParamTy, Args, 1, CandidateSet);
3102 }
3103 break;
3104
3105 UnaryPlus:
3106 // C++ [over.built]p8:
3107 // For every type T, there exist candidate operator functions of
3108 // the form
3109 //
3110 // T* operator+(T*);
3111 for (BuiltinCandidateTypeSet::iterator Ptr = CandidateTypes.pointer_begin();
3112 Ptr != CandidateTypes.pointer_end(); ++Ptr) {
3113 QualType ParamTy = *Ptr;
3114 AddBuiltinCandidate(ParamTy, &ParamTy, Args, 1, CandidateSet);
3115 }
3116
3117 // Fall through
3118
3119 UnaryMinus:
3120 // C++ [over.built]p9:
3121 // For every promoted arithmetic type T, there exist candidate
3122 // operator functions of the form
3123 //
3124 // T operator+(T);
3125 // T operator-(T);
3126 for (unsigned Arith = FirstPromotedArithmeticType;
3127 Arith < LastPromotedArithmeticType; ++Arith) {
3128 QualType ArithTy = ArithmeticTypes[Arith];
3129 AddBuiltinCandidate(ArithTy, &ArithTy, Args, 1, CandidateSet);
3130 }
3131 break;
3132
3133 case OO_Tilde:
3134 // C++ [over.built]p10:
3135 // For every promoted integral type T, there exist candidate
3136 // operator functions of the form
3137 //
3138 // T operator~(T);
3139 for (unsigned Int = FirstPromotedIntegralType;
3140 Int < LastPromotedIntegralType; ++Int) {
3141 QualType IntTy = ArithmeticTypes[Int];
3142 AddBuiltinCandidate(IntTy, &IntTy, Args, 1, CandidateSet);
3143 }
3144 break;
3145
Douglas Gregor70d26122008-11-12 17:17:38 +00003146 case OO_New:
3147 case OO_Delete:
3148 case OO_Array_New:
3149 case OO_Array_Delete:
Douglas Gregor70d26122008-11-12 17:17:38 +00003150 case OO_Call:
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003151 assert(false && "Special operators don't use AddBuiltinOperatorCandidates");
Douglas Gregor70d26122008-11-12 17:17:38 +00003152 break;
3153
3154 case OO_Comma:
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003155 UnaryAmp:
3156 case OO_Arrow:
Douglas Gregor70d26122008-11-12 17:17:38 +00003157 // C++ [over.match.oper]p3:
3158 // -- For the operator ',', the unary operator '&', or the
3159 // operator '->', the built-in candidates set is empty.
Douglas Gregor70d26122008-11-12 17:17:38 +00003160 break;
3161
Douglas Gregor9a375942009-08-24 13:43:27 +00003162 case OO_EqualEqual:
3163 case OO_ExclaimEqual:
3164 // C++ [over.match.oper]p16:
3165 // For every pointer to member type T, there exist candidate operator
3166 // functions of the form
3167 //
3168 // bool operator==(T,T);
3169 // bool operator!=(T,T);
3170 for (BuiltinCandidateTypeSet::iterator
3171 MemPtr = CandidateTypes.member_pointer_begin(),
3172 MemPtrEnd = CandidateTypes.member_pointer_end();
3173 MemPtr != MemPtrEnd;
3174 ++MemPtr) {
3175 QualType ParamTypes[2] = { *MemPtr, *MemPtr };
3176 AddBuiltinCandidate(Context.BoolTy, ParamTypes, Args, 2, CandidateSet);
3177 }
3178
3179 // Fall through
3180
Douglas Gregor70d26122008-11-12 17:17:38 +00003181 case OO_Less:
3182 case OO_Greater:
3183 case OO_LessEqual:
3184 case OO_GreaterEqual:
Douglas Gregor70d26122008-11-12 17:17:38 +00003185 // C++ [over.built]p15:
3186 //
3187 // For every pointer or enumeration type T, there exist
3188 // candidate operator functions of the form
3189 //
3190 // bool operator<(T, T);
3191 // bool operator>(T, T);
3192 // bool operator<=(T, T);
3193 // bool operator>=(T, T);
3194 // bool operator==(T, T);
3195 // bool operator!=(T, T);
3196 for (BuiltinCandidateTypeSet::iterator Ptr = CandidateTypes.pointer_begin();
3197 Ptr != CandidateTypes.pointer_end(); ++Ptr) {
3198 QualType ParamTypes[2] = { *Ptr, *Ptr };
3199 AddBuiltinCandidate(Context.BoolTy, ParamTypes, Args, 2, CandidateSet);
3200 }
3201 for (BuiltinCandidateTypeSet::iterator Enum
3202 = CandidateTypes.enumeration_begin();
3203 Enum != CandidateTypes.enumeration_end(); ++Enum) {
3204 QualType ParamTypes[2] = { *Enum, *Enum };
3205 AddBuiltinCandidate(Context.BoolTy, ParamTypes, Args, 2, CandidateSet);
3206 }
3207
3208 // Fall through.
3209 isComparison = true;
3210
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003211 BinaryPlus:
3212 BinaryMinus:
Douglas Gregor70d26122008-11-12 17:17:38 +00003213 if (!isComparison) {
3214 // We didn't fall through, so we must have OO_Plus or OO_Minus.
3215
3216 // C++ [over.built]p13:
3217 //
3218 // For every cv-qualified or cv-unqualified object type T
3219 // there exist candidate operator functions of the form
3220 //
3221 // T* operator+(T*, ptrdiff_t);
3222 // T& operator[](T*, ptrdiff_t); [BELOW]
3223 // T* operator-(T*, ptrdiff_t);
3224 // T* operator+(ptrdiff_t, T*);
3225 // T& operator[](ptrdiff_t, T*); [BELOW]
3226 //
3227 // C++ [over.built]p14:
3228 //
3229 // For every T, where T is a pointer to object type, there
3230 // exist candidate operator functions of the form
3231 //
3232 // ptrdiff_t operator-(T, T);
3233 for (BuiltinCandidateTypeSet::iterator Ptr
3234 = CandidateTypes.pointer_begin();
3235 Ptr != CandidateTypes.pointer_end(); ++Ptr) {
3236 QualType ParamTypes[2] = { *Ptr, Context.getPointerDiffType() };
3237
3238 // operator+(T*, ptrdiff_t) or operator-(T*, ptrdiff_t)
3239 AddBuiltinCandidate(*Ptr, ParamTypes, Args, 2, CandidateSet);
3240
3241 if (Op == OO_Plus) {
3242 // T* operator+(ptrdiff_t, T*);
3243 ParamTypes[0] = ParamTypes[1];
3244 ParamTypes[1] = *Ptr;
3245 AddBuiltinCandidate(*Ptr, ParamTypes, Args, 2, CandidateSet);
3246 } else {
3247 // ptrdiff_t operator-(T, T);
3248 ParamTypes[1] = *Ptr;
3249 AddBuiltinCandidate(Context.getPointerDiffType(), ParamTypes,
3250 Args, 2, CandidateSet);
3251 }
3252 }
3253 }
3254 // Fall through
3255
Douglas Gregor70d26122008-11-12 17:17:38 +00003256 case OO_Slash:
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003257 BinaryStar:
Sebastian Redlbd261962009-04-16 17:51:27 +00003258 Conditional:
Douglas Gregor70d26122008-11-12 17:17:38 +00003259 // C++ [over.built]p12:
3260 //
3261 // For every pair of promoted arithmetic types L and R, there
3262 // exist candidate operator functions of the form
3263 //
3264 // LR operator*(L, R);
3265 // LR operator/(L, R);
3266 // LR operator+(L, R);
3267 // LR operator-(L, R);
3268 // bool operator<(L, R);
3269 // bool operator>(L, R);
3270 // bool operator<=(L, R);
3271 // bool operator>=(L, R);
3272 // bool operator==(L, R);
3273 // bool operator!=(L, R);
3274 //
3275 // where LR is the result of the usual arithmetic conversions
3276 // between types L and R.
Sebastian Redlbd261962009-04-16 17:51:27 +00003277 //
3278 // C++ [over.built]p24:
3279 //
3280 // For every pair of promoted arithmetic types L and R, there exist
3281 // candidate operator functions of the form
3282 //
3283 // LR operator?(bool, L, R);
3284 //
3285 // where LR is the result of the usual arithmetic conversions
3286 // between types L and R.
3287 // Our candidates ignore the first parameter.
Douglas Gregor70d26122008-11-12 17:17:38 +00003288 for (unsigned Left = FirstPromotedArithmeticType;
3289 Left < LastPromotedArithmeticType; ++Left) {
3290 for (unsigned Right = FirstPromotedArithmeticType;
3291 Right < LastPromotedArithmeticType; ++Right) {
3292 QualType LandR[2] = { ArithmeticTypes[Left], ArithmeticTypes[Right] };
Eli Friedman6ae7d112009-08-19 07:44:53 +00003293 QualType Result
3294 = isComparison
3295 ? Context.BoolTy
3296 : Context.UsualArithmeticConversionsType(LandR[0], LandR[1]);
Douglas Gregor70d26122008-11-12 17:17:38 +00003297 AddBuiltinCandidate(Result, LandR, Args, 2, CandidateSet);
3298 }
3299 }
3300 break;
3301
3302 case OO_Percent:
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003303 BinaryAmp:
Douglas Gregor70d26122008-11-12 17:17:38 +00003304 case OO_Caret:
3305 case OO_Pipe:
3306 case OO_LessLess:
3307 case OO_GreaterGreater:
3308 // C++ [over.built]p17:
3309 //
3310 // For every pair of promoted integral types L and R, there
3311 // exist candidate operator functions of the form
3312 //
3313 // LR operator%(L, R);
3314 // LR operator&(L, R);
3315 // LR operator^(L, R);
3316 // LR operator|(L, R);
3317 // L operator<<(L, R);
3318 // L operator>>(L, R);
3319 //
3320 // where LR is the result of the usual arithmetic conversions
3321 // between types L and R.
3322 for (unsigned Left = FirstPromotedIntegralType;
3323 Left < LastPromotedIntegralType; ++Left) {
3324 for (unsigned Right = FirstPromotedIntegralType;
3325 Right < LastPromotedIntegralType; ++Right) {
3326 QualType LandR[2] = { ArithmeticTypes[Left], ArithmeticTypes[Right] };
3327 QualType Result = (Op == OO_LessLess || Op == OO_GreaterGreater)
3328 ? LandR[0]
Eli Friedman6ae7d112009-08-19 07:44:53 +00003329 : Context.UsualArithmeticConversionsType(LandR[0], LandR[1]);
Douglas Gregor70d26122008-11-12 17:17:38 +00003330 AddBuiltinCandidate(Result, LandR, Args, 2, CandidateSet);
3331 }
3332 }
3333 break;
3334
3335 case OO_Equal:
3336 // C++ [over.built]p20:
3337 //
3338 // For every pair (T, VQ), where T is an enumeration or
Douglas Gregor9a375942009-08-24 13:43:27 +00003339 // pointer to member type and VQ is either volatile or
Douglas Gregor70d26122008-11-12 17:17:38 +00003340 // empty, there exist candidate operator functions of the form
3341 //
3342 // VQ T& operator=(VQ T&, T);
Douglas Gregor9a375942009-08-24 13:43:27 +00003343 for (BuiltinCandidateTypeSet::iterator
3344 Enum = CandidateTypes.enumeration_begin(),
3345 EnumEnd = CandidateTypes.enumeration_end();
3346 Enum != EnumEnd; ++Enum)
3347 AddBuiltinAssignmentOperatorCandidates(*this, *Enum, Args, 2,
3348 CandidateSet);
3349 for (BuiltinCandidateTypeSet::iterator
3350 MemPtr = CandidateTypes.member_pointer_begin(),
3351 MemPtrEnd = CandidateTypes.member_pointer_end();
3352 MemPtr != MemPtrEnd; ++MemPtr)
3353 AddBuiltinAssignmentOperatorCandidates(*this, *MemPtr, Args, 2,
3354 CandidateSet);
3355 // Fall through.
Douglas Gregor70d26122008-11-12 17:17:38 +00003356
3357 case OO_PlusEqual:
3358 case OO_MinusEqual:
3359 // C++ [over.built]p19:
3360 //
3361 // For every pair (T, VQ), where T is any type and VQ is either
3362 // volatile or empty, there exist candidate operator functions
3363 // of the form
3364 //
3365 // T*VQ& operator=(T*VQ&, T*);
3366 //
3367 // C++ [over.built]p21:
3368 //
3369 // For every pair (T, VQ), where T is a cv-qualified or
3370 // cv-unqualified object type and VQ is either volatile or
3371 // empty, there exist candidate operator functions of the form
3372 //
3373 // T*VQ& operator+=(T*VQ&, ptrdiff_t);
3374 // T*VQ& operator-=(T*VQ&, ptrdiff_t);
3375 for (BuiltinCandidateTypeSet::iterator Ptr = CandidateTypes.pointer_begin();
3376 Ptr != CandidateTypes.pointer_end(); ++Ptr) {
3377 QualType ParamTypes[2];
3378 ParamTypes[1] = (Op == OO_Equal)? *Ptr : Context.getPointerDiffType();
3379
3380 // non-volatile version
Sebastian Redlce6fff02009-03-16 23:22:08 +00003381 ParamTypes[0] = Context.getLValueReferenceType(*Ptr);
Douglas Gregorab141112009-01-13 00:52:54 +00003382 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet,
3383 /*IsAssigmentOperator=*/Op == OO_Equal);
Douglas Gregor70d26122008-11-12 17:17:38 +00003384
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003385 if (!Context.getCanonicalType(*Ptr).isVolatileQualified()) {
3386 // volatile version
Sebastian Redlce6fff02009-03-16 23:22:08 +00003387 ParamTypes[0] = Context.getLValueReferenceType((*Ptr).withVolatile());
Douglas Gregorab141112009-01-13 00:52:54 +00003388 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet,
3389 /*IsAssigmentOperator=*/Op == OO_Equal);
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003390 }
Douglas Gregor70d26122008-11-12 17:17:38 +00003391 }
3392 // Fall through.
3393
3394 case OO_StarEqual:
3395 case OO_SlashEqual:
3396 // C++ [over.built]p18:
3397 //
3398 // For every triple (L, VQ, R), where L is an arithmetic type,
3399 // VQ is either volatile or empty, and R is a promoted
3400 // arithmetic type, there exist candidate operator functions of
3401 // the form
3402 //
3403 // VQ L& operator=(VQ L&, R);
3404 // VQ L& operator*=(VQ L&, R);
3405 // VQ L& operator/=(VQ L&, R);
3406 // VQ L& operator+=(VQ L&, R);
3407 // VQ L& operator-=(VQ L&, R);
3408 for (unsigned Left = 0; Left < NumArithmeticTypes; ++Left) {
3409 for (unsigned Right = FirstPromotedArithmeticType;
3410 Right < LastPromotedArithmeticType; ++Right) {
3411 QualType ParamTypes[2];
3412 ParamTypes[1] = ArithmeticTypes[Right];
3413
3414 // Add this built-in operator as a candidate (VQ is empty).
Sebastian Redlce6fff02009-03-16 23:22:08 +00003415 ParamTypes[0] = Context.getLValueReferenceType(ArithmeticTypes[Left]);
Douglas Gregorab141112009-01-13 00:52:54 +00003416 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet,
3417 /*IsAssigmentOperator=*/Op == OO_Equal);
Douglas Gregor70d26122008-11-12 17:17:38 +00003418
3419 // Add this built-in operator as a candidate (VQ is 'volatile').
3420 ParamTypes[0] = ArithmeticTypes[Left].withVolatile();
Sebastian Redlce6fff02009-03-16 23:22:08 +00003421 ParamTypes[0] = Context.getLValueReferenceType(ParamTypes[0]);
Douglas Gregorab141112009-01-13 00:52:54 +00003422 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet,
3423 /*IsAssigmentOperator=*/Op == OO_Equal);
Douglas Gregor70d26122008-11-12 17:17:38 +00003424 }
3425 }
3426 break;
3427
3428 case OO_PercentEqual:
3429 case OO_LessLessEqual:
3430 case OO_GreaterGreaterEqual:
3431 case OO_AmpEqual:
3432 case OO_CaretEqual:
3433 case OO_PipeEqual:
3434 // C++ [over.built]p22:
3435 //
3436 // For every triple (L, VQ, R), where L is an integral type, VQ
3437 // is either volatile or empty, and R is a promoted integral
3438 // type, there exist candidate operator functions of the form
3439 //
3440 // VQ L& operator%=(VQ L&, R);
3441 // VQ L& operator<<=(VQ L&, R);
3442 // VQ L& operator>>=(VQ L&, R);
3443 // VQ L& operator&=(VQ L&, R);
3444 // VQ L& operator^=(VQ L&, R);
3445 // VQ L& operator|=(VQ L&, R);
3446 for (unsigned Left = FirstIntegralType; Left < LastIntegralType; ++Left) {
3447 for (unsigned Right = FirstPromotedIntegralType;
3448 Right < LastPromotedIntegralType; ++Right) {
3449 QualType ParamTypes[2];
3450 ParamTypes[1] = ArithmeticTypes[Right];
3451
3452 // Add this built-in operator as a candidate (VQ is empty).
Sebastian Redlce6fff02009-03-16 23:22:08 +00003453 ParamTypes[0] = Context.getLValueReferenceType(ArithmeticTypes[Left]);
Douglas Gregor70d26122008-11-12 17:17:38 +00003454 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet);
3455
3456 // Add this built-in operator as a candidate (VQ is 'volatile').
3457 ParamTypes[0] = ArithmeticTypes[Left];
3458 ParamTypes[0].addVolatile();
Sebastian Redlce6fff02009-03-16 23:22:08 +00003459 ParamTypes[0] = Context.getLValueReferenceType(ParamTypes[0]);
Douglas Gregor70d26122008-11-12 17:17:38 +00003460 AddBuiltinCandidate(ParamTypes[0], ParamTypes, Args, 2, CandidateSet);
3461 }
3462 }
3463 break;
3464
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003465 case OO_Exclaim: {
3466 // C++ [over.operator]p23:
3467 //
3468 // There also exist candidate operator functions of the form
3469 //
3470 // bool operator!(bool);
3471 // bool operator&&(bool, bool); [BELOW]
3472 // bool operator||(bool, bool); [BELOW]
3473 QualType ParamTy = Context.BoolTy;
Douglas Gregor6214d8a2009-01-14 15:45:31 +00003474 AddBuiltinCandidate(ParamTy, &ParamTy, Args, 1, CandidateSet,
3475 /*IsAssignmentOperator=*/false,
3476 /*NumContextualBoolArguments=*/1);
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003477 break;
3478 }
3479
Douglas Gregor70d26122008-11-12 17:17:38 +00003480 case OO_AmpAmp:
3481 case OO_PipePipe: {
3482 // C++ [over.operator]p23:
3483 //
3484 // There also exist candidate operator functions of the form
3485 //
Douglas Gregor4f6904d2008-11-19 15:42:04 +00003486 // bool operator!(bool); [ABOVE]
Douglas Gregor70d26122008-11-12 17:17:38 +00003487 // bool operator&&(bool, bool);
3488 // bool operator||(bool, bool);
3489 QualType ParamTypes[2] = { Context.BoolTy, Context.BoolTy };
Douglas Gregor6214d8a2009-01-14 15:45:31 +00003490 AddBuiltinCandidate(Context.BoolTy, ParamTypes, Args, 2, CandidateSet,
3491 /*IsAssignmentOperator=*/false,
3492 /*NumContextualBoolArguments=*/2);
Douglas Gregor70d26122008-11-12 17:17:38 +00003493 break;
3494 }
3495
3496 case OO_Subscript:
3497 // C++ [over.built]p13:
3498 //
3499 // For every cv-qualified or cv-unqualified object type T there
3500 // exist candidate operator functions of the form
3501 //
3502 // T* operator+(T*, ptrdiff_t); [ABOVE]
3503 // T& operator[](T*, ptrdiff_t);
3504 // T* operator-(T*, ptrdiff_t); [ABOVE]
3505 // T* operator+(ptrdiff_t, T*); [ABOVE]
3506 // T& operator[](ptrdiff_t, T*);
3507 for (BuiltinCandidateTypeSet::iterator Ptr = CandidateTypes.pointer_begin();
3508 Ptr != CandidateTypes.pointer_end(); ++Ptr) {
3509 QualType ParamTypes[2] = { *Ptr, Context.getPointerDiffType() };
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003510 QualType PointeeType = (*Ptr)->getAs<PointerType>()->getPointeeType();
Sebastian Redlce6fff02009-03-16 23:22:08 +00003511 QualType ResultTy = Context.getLValueReferenceType(PointeeType);
Douglas Gregor70d26122008-11-12 17:17:38 +00003512
3513 // T& operator[](T*, ptrdiff_t)
3514 AddBuiltinCandidate(ResultTy, ParamTypes, Args, 2, CandidateSet);
3515
3516 // T& operator[](ptrdiff_t, T*);
3517 ParamTypes[0] = ParamTypes[1];
3518 ParamTypes[1] = *Ptr;
3519 AddBuiltinCandidate(ResultTy, ParamTypes, Args, 2, CandidateSet);
3520 }
3521 break;
3522
3523 case OO_ArrowStar:
3524 // FIXME: No support for pointer-to-members yet.
3525 break;
Sebastian Redlbd261962009-04-16 17:51:27 +00003526
3527 case OO_Conditional:
3528 // Note that we don't consider the first argument, since it has been
3529 // contextually converted to bool long ago. The candidates below are
3530 // therefore added as binary.
3531 //
3532 // C++ [over.built]p24:
3533 // For every type T, where T is a pointer or pointer-to-member type,
3534 // there exist candidate operator functions of the form
3535 //
3536 // T operator?(bool, T, T);
3537 //
Sebastian Redlbd261962009-04-16 17:51:27 +00003538 for (BuiltinCandidateTypeSet::iterator Ptr = CandidateTypes.pointer_begin(),
3539 E = CandidateTypes.pointer_end(); Ptr != E; ++Ptr) {
3540 QualType ParamTypes[2] = { *Ptr, *Ptr };
3541 AddBuiltinCandidate(*Ptr, ParamTypes, Args, 2, CandidateSet);
3542 }
Sebastian Redl674d1b72009-04-19 21:53:20 +00003543 for (BuiltinCandidateTypeSet::iterator Ptr =
3544 CandidateTypes.member_pointer_begin(),
3545 E = CandidateTypes.member_pointer_end(); Ptr != E; ++Ptr) {
3546 QualType ParamTypes[2] = { *Ptr, *Ptr };
3547 AddBuiltinCandidate(*Ptr, ParamTypes, Args, 2, CandidateSet);
3548 }
Sebastian Redlbd261962009-04-16 17:51:27 +00003549 goto Conditional;
Douglas Gregor70d26122008-11-12 17:17:38 +00003550 }
3551}
3552
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00003553/// \brief Add function candidates found via argument-dependent lookup
3554/// to the set of overloading candidates.
3555///
3556/// This routine performs argument-dependent name lookup based on the
3557/// given function name (which may also be an operator name) and adds
3558/// all of the overload candidates found by ADL to the overload
3559/// candidate set (C++ [basic.lookup.argdep]).
3560void
3561Sema::AddArgumentDependentLookupCandidates(DeclarationName Name,
3562 Expr **Args, unsigned NumArgs,
3563 OverloadCandidateSet& CandidateSet) {
Douglas Gregor3fc092f2009-03-13 00:33:25 +00003564 FunctionSet Functions;
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00003565
Douglas Gregor3fc092f2009-03-13 00:33:25 +00003566 // Record all of the function candidates that we've already
3567 // added to the overload set, so that we don't add those same
3568 // candidates a second time.
3569 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin(),
3570 CandEnd = CandidateSet.end();
3571 Cand != CandEnd; ++Cand)
Douglas Gregor993a0602009-06-27 21:05:07 +00003572 if (Cand->Function) {
Douglas Gregor3fc092f2009-03-13 00:33:25 +00003573 Functions.insert(Cand->Function);
Douglas Gregor993a0602009-06-27 21:05:07 +00003574 if (FunctionTemplateDecl *FunTmpl = Cand->Function->getPrimaryTemplate())
3575 Functions.insert(FunTmpl);
3576 }
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00003577
Douglas Gregor3fc092f2009-03-13 00:33:25 +00003578 ArgumentDependentLookup(Name, Args, NumArgs, Functions);
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00003579
Douglas Gregor3fc092f2009-03-13 00:33:25 +00003580 // Erase all of the candidates we already knew about.
3581 // FIXME: This is suboptimal. Is there a better way?
3582 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin(),
3583 CandEnd = CandidateSet.end();
3584 Cand != CandEnd; ++Cand)
Douglas Gregor993a0602009-06-27 21:05:07 +00003585 if (Cand->Function) {
Douglas Gregor3fc092f2009-03-13 00:33:25 +00003586 Functions.erase(Cand->Function);
Douglas Gregor993a0602009-06-27 21:05:07 +00003587 if (FunctionTemplateDecl *FunTmpl = Cand->Function->getPrimaryTemplate())
3588 Functions.erase(FunTmpl);
3589 }
Douglas Gregor3fc092f2009-03-13 00:33:25 +00003590
3591 // For each of the ADL candidates we found, add it to the overload
3592 // set.
3593 for (FunctionSet::iterator Func = Functions.begin(),
3594 FuncEnd = Functions.end();
Douglas Gregor993a0602009-06-27 21:05:07 +00003595 Func != FuncEnd; ++Func) {
3596 if (FunctionDecl *FD = dyn_cast<FunctionDecl>(*Func))
3597 AddOverloadCandidate(FD, Args, NumArgs, CandidateSet);
3598 else
Douglas Gregorc9a03b72009-06-30 23:57:56 +00003599 AddTemplateOverloadCandidate(cast<FunctionTemplateDecl>(*Func),
3600 /*FIXME: explicit args */false, 0, 0,
3601 Args, NumArgs, CandidateSet);
Douglas Gregor993a0602009-06-27 21:05:07 +00003602 }
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00003603}
3604
Douglas Gregord2baafd2008-10-21 16:13:35 +00003605/// isBetterOverloadCandidate - Determines whether the first overload
3606/// candidate is a better candidate than the second (C++ 13.3.3p1).
3607bool
3608Sema::isBetterOverloadCandidate(const OverloadCandidate& Cand1,
3609 const OverloadCandidate& Cand2)
3610{
3611 // Define viable functions to be better candidates than non-viable
3612 // functions.
3613 if (!Cand2.Viable)
3614 return Cand1.Viable;
3615 else if (!Cand1.Viable)
3616 return false;
3617
Douglas Gregor3257fb52008-12-22 05:46:06 +00003618 // C++ [over.match.best]p1:
3619 //
3620 // -- if F is a static member function, ICS1(F) is defined such
3621 // that ICS1(F) is neither better nor worse than ICS1(G) for
3622 // any function G, and, symmetrically, ICS1(G) is neither
3623 // better nor worse than ICS1(F).
3624 unsigned StartArg = 0;
3625 if (Cand1.IgnoreObjectArgument || Cand2.IgnoreObjectArgument)
3626 StartArg = 1;
Douglas Gregord2baafd2008-10-21 16:13:35 +00003627
Douglas Gregor8aef85a2009-07-07 23:38:56 +00003628 // C++ [over.match.best]p1:
3629 // A viable function F1 is defined to be a better function than another
3630 // viable function F2 if for all arguments i, ICSi(F1) is not a worse
3631 // conversion sequence than ICSi(F2), and then...
Douglas Gregord2baafd2008-10-21 16:13:35 +00003632 unsigned NumArgs = Cand1.Conversions.size();
3633 assert(Cand2.Conversions.size() == NumArgs && "Overload candidate mismatch");
3634 bool HasBetterConversion = false;
Douglas Gregor3257fb52008-12-22 05:46:06 +00003635 for (unsigned ArgIdx = StartArg; ArgIdx < NumArgs; ++ArgIdx) {
Douglas Gregord2baafd2008-10-21 16:13:35 +00003636 switch (CompareImplicitConversionSequences(Cand1.Conversions[ArgIdx],
3637 Cand2.Conversions[ArgIdx])) {
3638 case ImplicitConversionSequence::Better:
3639 // Cand1 has a better conversion sequence.
3640 HasBetterConversion = true;
3641 break;
3642
3643 case ImplicitConversionSequence::Worse:
3644 // Cand1 can't be better than Cand2.
3645 return false;
3646
3647 case ImplicitConversionSequence::Indistinguishable:
3648 // Do nothing.
3649 break;
3650 }
3651 }
3652
Douglas Gregor8aef85a2009-07-07 23:38:56 +00003653 // -- for some argument j, ICSj(F1) is a better conversion sequence than
3654 // ICSj(F2), or, if not that,
Douglas Gregord2baafd2008-10-21 16:13:35 +00003655 if (HasBetterConversion)
3656 return true;
3657
Douglas Gregor8aef85a2009-07-07 23:38:56 +00003658 // - F1 is a non-template function and F2 is a function template
3659 // specialization, or, if not that,
3660 if (Cand1.Function && !Cand1.Function->getPrimaryTemplate() &&
3661 Cand2.Function && Cand2.Function->getPrimaryTemplate())
3662 return true;
3663
3664 // -- F1 and F2 are function template specializations, and the function
3665 // template for F1 is more specialized than the template for F2
3666 // according to the partial ordering rules described in 14.5.5.2, or,
3667 // if not that,
Douglas Gregorf8e51672009-08-02 23:46:29 +00003668 if (Cand1.Function && Cand1.Function->getPrimaryTemplate() &&
3669 Cand2.Function && Cand2.Function->getPrimaryTemplate())
Douglas Gregor8c860df2009-08-21 23:19:43 +00003670 if (FunctionTemplateDecl *BetterTemplate
3671 = getMoreSpecializedTemplate(Cand1.Function->getPrimaryTemplate(),
3672 Cand2.Function->getPrimaryTemplate(),
3673 true))
3674 return BetterTemplate == Cand1.Function->getPrimaryTemplate();
Douglas Gregord2baafd2008-10-21 16:13:35 +00003675
Douglas Gregor60714f92008-11-07 22:36:19 +00003676 // -- the context is an initialization by user-defined conversion
3677 // (see 8.5, 13.3.1.5) and the standard conversion sequence
3678 // from the return type of F1 to the destination type (i.e.,
3679 // the type of the entity being initialized) is a better
3680 // conversion sequence than the standard conversion sequence
3681 // from the return type of F2 to the destination type.
Douglas Gregor849ea9c2008-11-19 03:25:36 +00003682 if (Cand1.Function && Cand2.Function &&
3683 isa<CXXConversionDecl>(Cand1.Function) &&
Douglas Gregor60714f92008-11-07 22:36:19 +00003684 isa<CXXConversionDecl>(Cand2.Function)) {
3685 switch (CompareStandardConversionSequences(Cand1.FinalConversion,
3686 Cand2.FinalConversion)) {
3687 case ImplicitConversionSequence::Better:
3688 // Cand1 has a better conversion sequence.
3689 return true;
3690
3691 case ImplicitConversionSequence::Worse:
3692 // Cand1 can't be better than Cand2.
3693 return false;
3694
3695 case ImplicitConversionSequence::Indistinguishable:
3696 // Do nothing
3697 break;
3698 }
3699 }
3700
Douglas Gregord2baafd2008-10-21 16:13:35 +00003701 return false;
3702}
3703
Douglas Gregor98189262009-06-19 23:52:42 +00003704/// \brief Computes the best viable function (C++ 13.3.3)
3705/// within an overload candidate set.
3706///
3707/// \param CandidateSet the set of candidate functions.
3708///
3709/// \param Loc the location of the function name (or operator symbol) for
3710/// which overload resolution occurs.
3711///
3712/// \param Best f overload resolution was successful or found a deleted
3713/// function, Best points to the candidate function found.
3714///
3715/// \returns The result of overload resolution.
Douglas Gregord2baafd2008-10-21 16:13:35 +00003716Sema::OverloadingResult
3717Sema::BestViableFunction(OverloadCandidateSet& CandidateSet,
Douglas Gregor98189262009-06-19 23:52:42 +00003718 SourceLocation Loc,
Douglas Gregord2baafd2008-10-21 16:13:35 +00003719 OverloadCandidateSet::iterator& Best)
3720{
3721 // Find the best viable function.
3722 Best = CandidateSet.end();
3723 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin();
3724 Cand != CandidateSet.end(); ++Cand) {
3725 if (Cand->Viable) {
3726 if (Best == CandidateSet.end() || isBetterOverloadCandidate(*Cand, *Best))
3727 Best = Cand;
3728 }
3729 }
3730
3731 // If we didn't find any viable functions, abort.
3732 if (Best == CandidateSet.end())
3733 return OR_No_Viable_Function;
3734
3735 // Make sure that this function is better than every other viable
3736 // function. If not, we have an ambiguity.
3737 for (OverloadCandidateSet::iterator Cand = CandidateSet.begin();
3738 Cand != CandidateSet.end(); ++Cand) {
3739 if (Cand->Viable &&
3740 Cand != Best &&
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00003741 !isBetterOverloadCandidate(*Best, *Cand)) {
3742 Best = CandidateSet.end();
Douglas Gregord2baafd2008-10-21 16:13:35 +00003743 return OR_Ambiguous;
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00003744 }
Douglas Gregord2baafd2008-10-21 16:13:35 +00003745 }
3746
3747 // Best is the best viable function.
Douglas Gregoraa57e862009-02-18 21:56:37 +00003748 if (Best->Function &&
3749 (Best->Function->isDeleted() ||
Argiris Kirtzidisfe5f9732009-06-30 02:34:44 +00003750 Best->Function->getAttr<UnavailableAttr>()))
Douglas Gregoraa57e862009-02-18 21:56:37 +00003751 return OR_Deleted;
3752
Douglas Gregor98189262009-06-19 23:52:42 +00003753 // C++ [basic.def.odr]p2:
3754 // An overloaded function is used if it is selected by overload resolution
3755 // when referred to from a potentially-evaluated expression. [Note: this
3756 // covers calls to named functions (5.2.2), operator overloading
3757 // (clause 13), user-defined conversions (12.3.2), allocation function for
3758 // placement new (5.3.4), as well as non-default initialization (8.5).
3759 if (Best->Function)
3760 MarkDeclarationReferenced(Loc, Best->Function);
Douglas Gregord2baafd2008-10-21 16:13:35 +00003761 return OR_Success;
3762}
3763
3764/// PrintOverloadCandidates - When overload resolution fails, prints
3765/// diagnostic messages containing the candidates in the candidate
3766/// set. If OnlyViable is true, only viable candidates will be printed.
3767void
3768Sema::PrintOverloadCandidates(OverloadCandidateSet& CandidateSet,
3769 bool OnlyViable)
3770{
3771 OverloadCandidateSet::iterator Cand = CandidateSet.begin(),
3772 LastCand = CandidateSet.end();
3773 for (; Cand != LastCand; ++Cand) {
Douglas Gregor70d26122008-11-12 17:17:38 +00003774 if (Cand->Viable || !OnlyViable) {
3775 if (Cand->Function) {
Douglas Gregoraa57e862009-02-18 21:56:37 +00003776 if (Cand->Function->isDeleted() ||
Argiris Kirtzidisfe5f9732009-06-30 02:34:44 +00003777 Cand->Function->getAttr<UnavailableAttr>()) {
Douglas Gregoraa57e862009-02-18 21:56:37 +00003778 // Deleted or "unavailable" function.
3779 Diag(Cand->Function->getLocation(), diag::err_ovl_candidate_deleted)
3780 << Cand->Function->isDeleted();
3781 } else {
3782 // Normal function
3783 // FIXME: Give a better reason!
3784 Diag(Cand->Function->getLocation(), diag::err_ovl_candidate);
3785 }
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00003786 } else if (Cand->IsSurrogate) {
Douglas Gregor30c8ddf2008-11-21 02:54:28 +00003787 // Desugar the type of the surrogate down to a function type,
3788 // retaining as many typedefs as possible while still showing
3789 // the function type (and, therefore, its parameter types).
3790 QualType FnType = Cand->Surrogate->getConversionType();
Sebastian Redlce6fff02009-03-16 23:22:08 +00003791 bool isLValueReference = false;
3792 bool isRValueReference = false;
Douglas Gregor30c8ddf2008-11-21 02:54:28 +00003793 bool isPointer = false;
Sebastian Redlce6fff02009-03-16 23:22:08 +00003794 if (const LValueReferenceType *FnTypeRef =
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003795 FnType->getAs<LValueReferenceType>()) {
Douglas Gregor30c8ddf2008-11-21 02:54:28 +00003796 FnType = FnTypeRef->getPointeeType();
Sebastian Redlce6fff02009-03-16 23:22:08 +00003797 isLValueReference = true;
3798 } else if (const RValueReferenceType *FnTypeRef =
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003799 FnType->getAs<RValueReferenceType>()) {
Sebastian Redlce6fff02009-03-16 23:22:08 +00003800 FnType = FnTypeRef->getPointeeType();
3801 isRValueReference = true;
Douglas Gregor30c8ddf2008-11-21 02:54:28 +00003802 }
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003803 if (const PointerType *FnTypePtr = FnType->getAs<PointerType>()) {
Douglas Gregor30c8ddf2008-11-21 02:54:28 +00003804 FnType = FnTypePtr->getPointeeType();
3805 isPointer = true;
3806 }
3807 // Desugar down to a function type.
3808 FnType = QualType(FnType->getAsFunctionType(), 0);
3809 // Reconstruct the pointer/reference as appropriate.
3810 if (isPointer) FnType = Context.getPointerType(FnType);
Sebastian Redlce6fff02009-03-16 23:22:08 +00003811 if (isRValueReference) FnType = Context.getRValueReferenceType(FnType);
3812 if (isLValueReference) FnType = Context.getLValueReferenceType(FnType);
Douglas Gregor30c8ddf2008-11-21 02:54:28 +00003813
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00003814 Diag(Cand->Surrogate->getLocation(), diag::err_ovl_surrogate_cand)
Chris Lattner4bfd2232008-11-24 06:25:27 +00003815 << FnType;
Douglas Gregor70d26122008-11-12 17:17:38 +00003816 } else {
3817 // FIXME: We need to get the identifier in here
Mike Stumpe127ae32009-05-16 07:39:55 +00003818 // FIXME: Do we want the error message to point at the operator?
3819 // (built-ins won't have a location)
Douglas Gregor70d26122008-11-12 17:17:38 +00003820 QualType FnType
3821 = Context.getFunctionType(Cand->BuiltinTypes.ResultTy,
3822 Cand->BuiltinTypes.ParamTypes,
3823 Cand->Conversions.size(),
3824 false, 0);
3825
Chris Lattner4bfd2232008-11-24 06:25:27 +00003826 Diag(SourceLocation(), diag::err_ovl_builtin_candidate) << FnType;
Douglas Gregor70d26122008-11-12 17:17:38 +00003827 }
3828 }
Douglas Gregord2baafd2008-10-21 16:13:35 +00003829 }
3830}
3831
Douglas Gregor45014fd2008-11-10 20:40:00 +00003832/// ResolveAddressOfOverloadedFunction - Try to resolve the address of
3833/// an overloaded function (C++ [over.over]), where @p From is an
3834/// expression with overloaded function type and @p ToType is the type
3835/// we're trying to resolve to. For example:
3836///
3837/// @code
3838/// int f(double);
3839/// int f(int);
3840///
3841/// int (*pfd)(double) = f; // selects f(double)
3842/// @endcode
3843///
3844/// This routine returns the resulting FunctionDecl if it could be
3845/// resolved, and NULL otherwise. When @p Complain is true, this
3846/// routine will emit diagnostics if there is an error.
3847FunctionDecl *
Sebastian Redl7434fc32009-02-04 21:23:32 +00003848Sema::ResolveAddressOfOverloadedFunction(Expr *From, QualType ToType,
Douglas Gregor45014fd2008-11-10 20:40:00 +00003849 bool Complain) {
3850 QualType FunctionType = ToType;
Sebastian Redl7434fc32009-02-04 21:23:32 +00003851 bool IsMember = false;
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003852 if (const PointerType *ToTypePtr = ToType->getAs<PointerType>())
Douglas Gregor45014fd2008-11-10 20:40:00 +00003853 FunctionType = ToTypePtr->getPointeeType();
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003854 else if (const ReferenceType *ToTypeRef = ToType->getAs<ReferenceType>())
Daniel Dunbarf6c06ce2009-02-26 19:13:44 +00003855 FunctionType = ToTypeRef->getPointeeType();
Sebastian Redl7434fc32009-02-04 21:23:32 +00003856 else if (const MemberPointerType *MemTypePtr =
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00003857 ToType->getAs<MemberPointerType>()) {
Sebastian Redl7434fc32009-02-04 21:23:32 +00003858 FunctionType = MemTypePtr->getPointeeType();
3859 IsMember = true;
3860 }
Douglas Gregor45014fd2008-11-10 20:40:00 +00003861
3862 // We only look at pointers or references to functions.
Douglas Gregor72bb4992009-07-09 17:16:51 +00003863 FunctionType = Context.getCanonicalType(FunctionType).getUnqualifiedType();
Douglas Gregor62f78762009-07-08 20:55:45 +00003864 if (!FunctionType->isFunctionType())
Douglas Gregor45014fd2008-11-10 20:40:00 +00003865 return 0;
3866
3867 // Find the actual overloaded function declaration.
3868 OverloadedFunctionDecl *Ovl = 0;
3869
3870 // C++ [over.over]p1:
3871 // [...] [Note: any redundant set of parentheses surrounding the
3872 // overloaded function name is ignored (5.1). ]
3873 Expr *OvlExpr = From->IgnoreParens();
3874
3875 // C++ [over.over]p1:
3876 // [...] The overloaded function name can be preceded by the &
3877 // operator.
3878 if (UnaryOperator *UnOp = dyn_cast<UnaryOperator>(OvlExpr)) {
3879 if (UnOp->getOpcode() == UnaryOperator::AddrOf)
3880 OvlExpr = UnOp->getSubExpr()->IgnoreParens();
3881 }
3882
3883 // Try to dig out the overloaded function.
Douglas Gregor62f78762009-07-08 20:55:45 +00003884 FunctionTemplateDecl *FunctionTemplate = 0;
3885 if (DeclRefExpr *DR = dyn_cast<DeclRefExpr>(OvlExpr)) {
Douglas Gregor45014fd2008-11-10 20:40:00 +00003886 Ovl = dyn_cast<OverloadedFunctionDecl>(DR->getDecl());
Douglas Gregor62f78762009-07-08 20:55:45 +00003887 FunctionTemplate = dyn_cast<FunctionTemplateDecl>(DR->getDecl());
3888 }
Douglas Gregor45014fd2008-11-10 20:40:00 +00003889
Douglas Gregor62f78762009-07-08 20:55:45 +00003890 // If there's no overloaded function declaration or function template,
3891 // we're done.
3892 if (!Ovl && !FunctionTemplate)
Douglas Gregor45014fd2008-11-10 20:40:00 +00003893 return 0;
3894
Douglas Gregor62f78762009-07-08 20:55:45 +00003895 OverloadIterator Fun;
3896 if (Ovl)
3897 Fun = Ovl;
3898 else
3899 Fun = FunctionTemplate;
3900
Douglas Gregor45014fd2008-11-10 20:40:00 +00003901 // Look through all of the overloaded functions, searching for one
3902 // whose type matches exactly.
Douglas Gregora142a052009-07-08 23:33:52 +00003903 llvm::SmallPtrSet<FunctionDecl *, 4> Matches;
3904
3905 bool FoundNonTemplateFunction = false;
Douglas Gregor62f78762009-07-08 20:55:45 +00003906 for (OverloadIterator FunEnd; Fun != FunEnd; ++Fun) {
Douglas Gregor45014fd2008-11-10 20:40:00 +00003907 // C++ [over.over]p3:
3908 // Non-member functions and static member functions match
Sebastian Redl3a75abf2009-02-05 12:33:33 +00003909 // targets of type "pointer-to-function" or "reference-to-function."
3910 // Nonstatic member functions match targets of
Sebastian Redl7434fc32009-02-04 21:23:32 +00003911 // type "pointer-to-member-function."
3912 // Note that according to DR 247, the containing class does not matter.
Douglas Gregor62f78762009-07-08 20:55:45 +00003913
3914 if (FunctionTemplateDecl *FunctionTemplate
3915 = dyn_cast<FunctionTemplateDecl>(*Fun)) {
Douglas Gregora142a052009-07-08 23:33:52 +00003916 if (CXXMethodDecl *Method
3917 = dyn_cast<CXXMethodDecl>(FunctionTemplate->getTemplatedDecl())) {
3918 // Skip non-static function templates when converting to pointer, and
3919 // static when converting to member pointer.
3920 if (Method->isStatic() == IsMember)
3921 continue;
3922 } else if (IsMember)
3923 continue;
3924
3925 // C++ [over.over]p2:
3926 // If the name is a function template, template argument deduction is
3927 // done (14.8.2.2), and if the argument deduction succeeds, the
3928 // resulting template argument list is used to generate a single
3929 // function template specialization, which is added to the set of
3930 // overloaded functions considered.
Douglas Gregor62f78762009-07-08 20:55:45 +00003931 FunctionDecl *Specialization = 0;
3932 TemplateDeductionInfo Info(Context);
3933 if (TemplateDeductionResult Result
3934 = DeduceTemplateArguments(FunctionTemplate, /*FIXME*/false,
3935 /*FIXME:*/0, /*FIXME:*/0,
3936 FunctionType, Specialization, Info)) {
3937 // FIXME: make a note of the failed deduction for diagnostics.
3938 (void)Result;
3939 } else {
3940 assert(FunctionType
3941 == Context.getCanonicalType(Specialization->getType()));
Douglas Gregora142a052009-07-08 23:33:52 +00003942 Matches.insert(
Argiris Kirtzidis17c7cab2009-07-18 00:34:25 +00003943 cast<FunctionDecl>(Specialization->getCanonicalDecl()));
Douglas Gregor62f78762009-07-08 20:55:45 +00003944 }
3945 }
3946
Sebastian Redl7434fc32009-02-04 21:23:32 +00003947 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(*Fun)) {
3948 // Skip non-static functions when converting to pointer, and static
3949 // when converting to member pointer.
3950 if (Method->isStatic() == IsMember)
Douglas Gregor45014fd2008-11-10 20:40:00 +00003951 continue;
Douglas Gregora142a052009-07-08 23:33:52 +00003952 } else if (IsMember)
Sebastian Redl7434fc32009-02-04 21:23:32 +00003953 continue;
Douglas Gregor45014fd2008-11-10 20:40:00 +00003954
Douglas Gregorb60eb752009-06-25 22:08:12 +00003955 if (FunctionDecl *FunDecl = dyn_cast<FunctionDecl>(*Fun)) {
Douglas Gregora142a052009-07-08 23:33:52 +00003956 if (FunctionType == Context.getCanonicalType(FunDecl->getType())) {
Argiris Kirtzidis17c7cab2009-07-18 00:34:25 +00003957 Matches.insert(cast<FunctionDecl>(Fun->getCanonicalDecl()));
Douglas Gregora142a052009-07-08 23:33:52 +00003958 FoundNonTemplateFunction = true;
3959 }
Douglas Gregor62f78762009-07-08 20:55:45 +00003960 }
Douglas Gregor45014fd2008-11-10 20:40:00 +00003961 }
3962
Douglas Gregora142a052009-07-08 23:33:52 +00003963 // If there were 0 or 1 matches, we're done.
3964 if (Matches.empty())
3965 return 0;
3966 else if (Matches.size() == 1)
3967 return *Matches.begin();
3968
3969 // C++ [over.over]p4:
3970 // If more than one function is selected, [...]
3971 llvm::SmallVector<FunctionDecl *, 4> RemainingMatches;
Douglas Gregor8c860df2009-08-21 23:19:43 +00003972 typedef llvm::SmallPtrSet<FunctionDecl *, 4>::iterator MatchIter;
Douglas Gregora142a052009-07-08 23:33:52 +00003973 if (FoundNonTemplateFunction) {
Douglas Gregor8c860df2009-08-21 23:19:43 +00003974 // [...] any function template specializations in the set are
3975 // eliminated if the set also contains a non-template function, [...]
3976 for (MatchIter M = Matches.begin(), MEnd = Matches.end(); M != MEnd; ++M)
Douglas Gregora142a052009-07-08 23:33:52 +00003977 if ((*M)->getPrimaryTemplate() == 0)
3978 RemainingMatches.push_back(*M);
3979 } else {
Douglas Gregor8c860df2009-08-21 23:19:43 +00003980 // [...] and any given function template specialization F1 is
3981 // eliminated if the set contains a second function template
3982 // specialization whose function template is more specialized
3983 // than the function template of F1 according to the partial
3984 // ordering rules of 14.5.5.2.
3985
3986 // The algorithm specified above is quadratic. We instead use a
3987 // two-pass algorithm (similar to the one used to identify the
3988 // best viable function in an overload set) that identifies the
3989 // best function template (if it exists).
3990 MatchIter Best = Matches.begin();
3991 MatchIter M = Best, MEnd = Matches.end();
3992 // Find the most specialized function.
3993 for (++M; M != MEnd; ++M)
3994 if (getMoreSpecializedTemplate((*M)->getPrimaryTemplate(),
3995 (*Best)->getPrimaryTemplate(),
3996 false)
3997 == (*M)->getPrimaryTemplate())
3998 Best = M;
3999
4000 // Determine whether this function template is more specialized
4001 // that all of the others.
4002 bool Ambiguous = false;
4003 for (M = Matches.begin(); M != MEnd; ++M) {
4004 if (M != Best &&
4005 getMoreSpecializedTemplate((*M)->getPrimaryTemplate(),
4006 (*Best)->getPrimaryTemplate(),
4007 false)
4008 != (*Best)->getPrimaryTemplate()) {
4009 Ambiguous = true;
4010 break;
4011 }
4012 }
4013
4014 // If one function template was more specialized than all of the
4015 // others, return it.
4016 if (!Ambiguous)
4017 return *Best;
4018
4019 // We could not find a most-specialized function template, which
4020 // is equivalent to having a set of function templates with more
4021 // than one such template. So, we place all of the function
4022 // templates into the set of remaining matches and produce a
4023 // diagnostic below. FIXME: we could perform the quadratic
4024 // algorithm here, pruning the result set to limit the number of
4025 // candidates output later.
4026 RemainingMatches.append(Matches.begin(), Matches.end());
Douglas Gregora142a052009-07-08 23:33:52 +00004027 }
4028
4029 // [...] After such eliminations, if any, there shall remain exactly one
4030 // selected function.
4031 if (RemainingMatches.size() == 1)
4032 return RemainingMatches.front();
4033
4034 // FIXME: We should probably return the same thing that BestViableFunction
4035 // returns (even if we issue the diagnostics here).
4036 Diag(From->getLocStart(), diag::err_addr_ovl_ambiguous)
4037 << RemainingMatches[0]->getDeclName();
4038 for (unsigned I = 0, N = RemainingMatches.size(); I != N; ++I)
4039 Diag(RemainingMatches[I]->getLocation(), diag::err_ovl_candidate);
Douglas Gregor45014fd2008-11-10 20:40:00 +00004040 return 0;
4041}
4042
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004043/// ResolveOverloadedCallFn - Given the call expression that calls Fn
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00004044/// (which eventually refers to the declaration Func) and the call
4045/// arguments Args/NumArgs, attempt to resolve the function call down
4046/// to a specific function. If overload resolution succeeds, returns
4047/// the function declaration produced by overload
Douglas Gregorbf4f0582008-11-26 06:01:48 +00004048/// resolution. Otherwise, emits diagnostics, deletes all of the
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004049/// arguments and Fn, and returns NULL.
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00004050FunctionDecl *Sema::ResolveOverloadedCallFn(Expr *Fn, NamedDecl *Callee,
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004051 DeclarationName UnqualifiedName,
Douglas Gregorc9a03b72009-06-30 23:57:56 +00004052 bool HasExplicitTemplateArgs,
4053 const TemplateArgument *ExplicitTemplateArgs,
4054 unsigned NumExplicitTemplateArgs,
Douglas Gregorbf4f0582008-11-26 06:01:48 +00004055 SourceLocation LParenLoc,
4056 Expr **Args, unsigned NumArgs,
4057 SourceLocation *CommaLocs,
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00004058 SourceLocation RParenLoc,
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004059 bool &ArgumentDependentLookup) {
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004060 OverloadCandidateSet CandidateSet;
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004061
4062 // Add the functions denoted by Callee to the set of candidate
4063 // functions. While we're doing so, track whether argument-dependent
4064 // lookup still applies, per:
4065 //
4066 // C++0x [basic.lookup.argdep]p3:
4067 // Let X be the lookup set produced by unqualified lookup (3.4.1)
4068 // and let Y be the lookup set produced by argument dependent
4069 // lookup (defined as follows). If X contains
4070 //
4071 // -- a declaration of a class member, or
4072 //
4073 // -- a block-scope function declaration that is not a
4074 // using-declaration, or
4075 //
4076 // -- a declaration that is neither a function or a function
4077 // template
4078 //
4079 // then Y is empty.
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00004080 if (OverloadedFunctionDecl *Ovl
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004081 = dyn_cast_or_null<OverloadedFunctionDecl>(Callee)) {
4082 for (OverloadedFunctionDecl::function_iterator Func = Ovl->function_begin(),
4083 FuncEnd = Ovl->function_end();
4084 Func != FuncEnd; ++Func) {
Douglas Gregorb60eb752009-06-25 22:08:12 +00004085 DeclContext *Ctx = 0;
4086 if (FunctionDecl *FunDecl = dyn_cast<FunctionDecl>(*Func)) {
Douglas Gregorc9a03b72009-06-30 23:57:56 +00004087 if (HasExplicitTemplateArgs)
4088 continue;
4089
Douglas Gregorb60eb752009-06-25 22:08:12 +00004090 AddOverloadCandidate(FunDecl, Args, NumArgs, CandidateSet);
4091 Ctx = FunDecl->getDeclContext();
4092 } else {
4093 FunctionTemplateDecl *FunTmpl = cast<FunctionTemplateDecl>(*Func);
Douglas Gregorc9a03b72009-06-30 23:57:56 +00004094 AddTemplateOverloadCandidate(FunTmpl, HasExplicitTemplateArgs,
4095 ExplicitTemplateArgs,
4096 NumExplicitTemplateArgs,
4097 Args, NumArgs, CandidateSet);
Douglas Gregorb60eb752009-06-25 22:08:12 +00004098 Ctx = FunTmpl->getDeclContext();
4099 }
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004100
Douglas Gregorb60eb752009-06-25 22:08:12 +00004101
4102 if (Ctx->isRecord() || Ctx->isFunctionOrMethod())
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004103 ArgumentDependentLookup = false;
4104 }
4105 } else if (FunctionDecl *Func = dyn_cast_or_null<FunctionDecl>(Callee)) {
Douglas Gregorc9a03b72009-06-30 23:57:56 +00004106 assert(!HasExplicitTemplateArgs && "Explicit template arguments?");
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004107 AddOverloadCandidate(Func, Args, NumArgs, CandidateSet);
4108
4109 if (Func->getDeclContext()->isRecord() ||
4110 Func->getDeclContext()->isFunctionOrMethod())
4111 ArgumentDependentLookup = false;
Douglas Gregorb60eb752009-06-25 22:08:12 +00004112 } else if (FunctionTemplateDecl *FuncTemplate
4113 = dyn_cast_or_null<FunctionTemplateDecl>(Callee)) {
Douglas Gregorc9a03b72009-06-30 23:57:56 +00004114 AddTemplateOverloadCandidate(FuncTemplate, HasExplicitTemplateArgs,
4115 ExplicitTemplateArgs,
4116 NumExplicitTemplateArgs,
4117 Args, NumArgs, CandidateSet);
Douglas Gregorb60eb752009-06-25 22:08:12 +00004118
4119 if (FuncTemplate->getDeclContext()->isRecord())
4120 ArgumentDependentLookup = false;
4121 }
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004122
4123 if (Callee)
4124 UnqualifiedName = Callee->getDeclName();
4125
Douglas Gregorc9a03b72009-06-30 23:57:56 +00004126 // FIXME: Pass explicit template arguments through for ADL
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00004127 if (ArgumentDependentLookup)
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004128 AddArgumentDependentLookupCandidates(UnqualifiedName, Args, NumArgs,
Douglas Gregoraa1da4a2009-02-04 00:32:51 +00004129 CandidateSet);
4130
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004131 OverloadCandidateSet::iterator Best;
Douglas Gregor98189262009-06-19 23:52:42 +00004132 switch (BestViableFunction(CandidateSet, Fn->getLocStart(), Best)) {
Douglas Gregorbf4f0582008-11-26 06:01:48 +00004133 case OR_Success:
4134 return Best->Function;
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004135
4136 case OR_No_Viable_Function:
Chris Lattner4a526112009-02-17 07:29:20 +00004137 Diag(Fn->getSourceRange().getBegin(),
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004138 diag::err_ovl_no_viable_function_in_call)
Chris Lattner4a526112009-02-17 07:29:20 +00004139 << UnqualifiedName << Fn->getSourceRange();
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004140 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/false);
4141 break;
4142
4143 case OR_Ambiguous:
4144 Diag(Fn->getSourceRange().getBegin(), diag::err_ovl_ambiguous_call)
Douglas Gregor4646f9c2009-02-04 15:01:18 +00004145 << UnqualifiedName << Fn->getSourceRange();
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004146 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4147 break;
Douglas Gregoraa57e862009-02-18 21:56:37 +00004148
4149 case OR_Deleted:
4150 Diag(Fn->getSourceRange().getBegin(), diag::err_ovl_deleted_call)
4151 << Best->Function->isDeleted()
4152 << UnqualifiedName
4153 << Fn->getSourceRange();
4154 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4155 break;
Douglas Gregor3ed006b2008-11-26 05:54:23 +00004156 }
4157
4158 // Overload resolution failed. Destroy all of the subexpressions and
4159 // return NULL.
4160 Fn->Destroy(Context);
4161 for (unsigned Arg = 0; Arg < NumArgs; ++Arg)
4162 Args[Arg]->Destroy(Context);
4163 return 0;
4164}
4165
Douglas Gregorc78182d2009-03-13 23:49:33 +00004166/// \brief Create a unary operation that may resolve to an overloaded
4167/// operator.
4168///
4169/// \param OpLoc The location of the operator itself (e.g., '*').
4170///
4171/// \param OpcIn The UnaryOperator::Opcode that describes this
4172/// operator.
4173///
4174/// \param Functions The set of non-member functions that will be
4175/// considered by overload resolution. The caller needs to build this
4176/// set based on the context using, e.g.,
4177/// LookupOverloadedOperatorName() and ArgumentDependentLookup(). This
4178/// set should not contain any member functions; those will be added
4179/// by CreateOverloadedUnaryOp().
4180///
4181/// \param input The input argument.
4182Sema::OwningExprResult Sema::CreateOverloadedUnaryOp(SourceLocation OpLoc,
4183 unsigned OpcIn,
4184 FunctionSet &Functions,
4185 ExprArg input) {
4186 UnaryOperator::Opcode Opc = static_cast<UnaryOperator::Opcode>(OpcIn);
4187 Expr *Input = (Expr *)input.get();
4188
4189 OverloadedOperatorKind Op = UnaryOperator::getOverloadedOperator(Opc);
4190 assert(Op != OO_None && "Invalid opcode for overloaded unary operator");
4191 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op);
4192
4193 Expr *Args[2] = { Input, 0 };
4194 unsigned NumArgs = 1;
4195
4196 // For post-increment and post-decrement, add the implicit '0' as
4197 // the second argument, so that we know this is a post-increment or
4198 // post-decrement.
4199 if (Opc == UnaryOperator::PostInc || Opc == UnaryOperator::PostDec) {
4200 llvm::APSInt Zero(Context.getTypeSize(Context.IntTy), false);
4201 Args[1] = new (Context) IntegerLiteral(Zero, Context.IntTy,
4202 SourceLocation());
4203 NumArgs = 2;
4204 }
4205
4206 if (Input->isTypeDependent()) {
4207 OverloadedFunctionDecl *Overloads
4208 = OverloadedFunctionDecl::Create(Context, CurContext, OpName);
4209 for (FunctionSet::iterator Func = Functions.begin(),
4210 FuncEnd = Functions.end();
4211 Func != FuncEnd; ++Func)
4212 Overloads->addOverload(*Func);
4213
4214 DeclRefExpr *Fn = new (Context) DeclRefExpr(Overloads, Context.OverloadTy,
4215 OpLoc, false, false);
4216
4217 input.release();
4218 return Owned(new (Context) CXXOperatorCallExpr(Context, Op, Fn,
4219 &Args[0], NumArgs,
4220 Context.DependentTy,
4221 OpLoc));
4222 }
4223
4224 // Build an empty overload set.
4225 OverloadCandidateSet CandidateSet;
4226
4227 // Add the candidates from the given function set.
4228 AddFunctionCandidates(Functions, &Args[0], NumArgs, CandidateSet, false);
4229
4230 // Add operator candidates that are member functions.
4231 AddMemberOperatorCandidates(Op, OpLoc, &Args[0], NumArgs, CandidateSet);
4232
4233 // Add builtin operator candidates.
4234 AddBuiltinOperatorCandidates(Op, &Args[0], NumArgs, CandidateSet);
4235
4236 // Perform overload resolution.
4237 OverloadCandidateSet::iterator Best;
Douglas Gregor98189262009-06-19 23:52:42 +00004238 switch (BestViableFunction(CandidateSet, OpLoc, Best)) {
Douglas Gregorc78182d2009-03-13 23:49:33 +00004239 case OR_Success: {
4240 // We found a built-in operator or an overloaded operator.
4241 FunctionDecl *FnDecl = Best->Function;
4242
4243 if (FnDecl) {
4244 // We matched an overloaded operator. Build a call to that
4245 // operator.
4246
4247 // Convert the arguments.
4248 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(FnDecl)) {
4249 if (PerformObjectArgumentInitialization(Input, Method))
4250 return ExprError();
4251 } else {
4252 // Convert the arguments.
4253 if (PerformCopyInitialization(Input,
4254 FnDecl->getParamDecl(0)->getType(),
4255 "passing"))
4256 return ExprError();
4257 }
4258
4259 // Determine the result type
4260 QualType ResultTy
4261 = FnDecl->getType()->getAsFunctionType()->getResultType();
4262 ResultTy = ResultTy.getNonReferenceType();
4263
4264 // Build the actual expression node.
4265 Expr *FnExpr = new (Context) DeclRefExpr(FnDecl, FnDecl->getType(),
4266 SourceLocation());
4267 UsualUnaryConversions(FnExpr);
4268
4269 input.release();
Anders Carlsson16497742009-08-16 04:11:06 +00004270
4271 Expr *CE = new (Context) CXXOperatorCallExpr(Context, Op, FnExpr,
4272 &Input, 1, ResultTy, OpLoc);
4273 return MaybeBindToTemporary(CE);
Douglas Gregorc78182d2009-03-13 23:49:33 +00004274 } else {
4275 // We matched a built-in operator. Convert the arguments, then
4276 // break out so that we will build the appropriate built-in
4277 // operator node.
4278 if (PerformImplicitConversion(Input, Best->BuiltinTypes.ParamTypes[0],
4279 Best->Conversions[0], "passing"))
4280 return ExprError();
4281
4282 break;
4283 }
4284 }
4285
4286 case OR_No_Viable_Function:
4287 // No viable function; fall through to handling this as a
4288 // built-in operator, which will produce an error message for us.
4289 break;
4290
4291 case OR_Ambiguous:
4292 Diag(OpLoc, diag::err_ovl_ambiguous_oper)
4293 << UnaryOperator::getOpcodeStr(Opc)
4294 << Input->getSourceRange();
4295 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4296 return ExprError();
4297
4298 case OR_Deleted:
4299 Diag(OpLoc, diag::err_ovl_deleted_oper)
4300 << Best->Function->isDeleted()
4301 << UnaryOperator::getOpcodeStr(Opc)
4302 << Input->getSourceRange();
4303 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4304 return ExprError();
4305 }
4306
4307 // Either we found no viable overloaded operator or we matched a
4308 // built-in operator. In either case, fall through to trying to
4309 // build a built-in operation.
4310 input.release();
4311 return CreateBuiltinUnaryOp(OpLoc, Opc, Owned(Input));
4312}
4313
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004314/// \brief Create a binary operation that may resolve to an overloaded
4315/// operator.
4316///
4317/// \param OpLoc The location of the operator itself (e.g., '+').
4318///
4319/// \param OpcIn The BinaryOperator::Opcode that describes this
4320/// operator.
4321///
4322/// \param Functions The set of non-member functions that will be
4323/// considered by overload resolution. The caller needs to build this
4324/// set based on the context using, e.g.,
4325/// LookupOverloadedOperatorName() and ArgumentDependentLookup(). This
4326/// set should not contain any member functions; those will be added
4327/// by CreateOverloadedBinOp().
4328///
4329/// \param LHS Left-hand argument.
4330/// \param RHS Right-hand argument.
4331Sema::OwningExprResult
4332Sema::CreateOverloadedBinOp(SourceLocation OpLoc,
4333 unsigned OpcIn,
4334 FunctionSet &Functions,
4335 Expr *LHS, Expr *RHS) {
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004336 Expr *Args[2] = { LHS, RHS };
Douglas Gregor114c6192009-08-26 17:08:25 +00004337 LHS=RHS=0; //Please use only Args instead of LHS/RHS couple
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004338
4339 BinaryOperator::Opcode Opc = static_cast<BinaryOperator::Opcode>(OpcIn);
4340 OverloadedOperatorKind Op = BinaryOperator::getOverloadedOperator(Opc);
4341 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(Op);
4342
4343 // If either side is type-dependent, create an appropriate dependent
4344 // expression.
Douglas Gregor114c6192009-08-26 17:08:25 +00004345 if (Args[0]->isTypeDependent() || Args[1]->isTypeDependent()) {
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004346 // .* cannot be overloaded.
4347 if (Opc == BinaryOperator::PtrMemD)
Douglas Gregor114c6192009-08-26 17:08:25 +00004348 return Owned(new (Context) BinaryOperator(Args[0], Args[1], Opc,
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004349 Context.DependentTy, OpLoc));
4350
4351 OverloadedFunctionDecl *Overloads
4352 = OverloadedFunctionDecl::Create(Context, CurContext, OpName);
4353 for (FunctionSet::iterator Func = Functions.begin(),
4354 FuncEnd = Functions.end();
4355 Func != FuncEnd; ++Func)
4356 Overloads->addOverload(*Func);
4357
4358 DeclRefExpr *Fn = new (Context) DeclRefExpr(Overloads, Context.OverloadTy,
4359 OpLoc, false, false);
4360
4361 return Owned(new (Context) CXXOperatorCallExpr(Context, Op, Fn,
4362 Args, 2,
4363 Context.DependentTy,
4364 OpLoc));
4365 }
4366
4367 // If this is the .* operator, which is not overloadable, just
4368 // create a built-in binary operator.
4369 if (Opc == BinaryOperator::PtrMemD)
Douglas Gregor114c6192009-08-26 17:08:25 +00004370 return CreateBuiltinBinOp(OpLoc, Opc, Args[0], Args[1]);
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004371
4372 // If this is one of the assignment operators, we only perform
4373 // overload resolution if the left-hand side is a class or
4374 // enumeration type (C++ [expr.ass]p3).
4375 if (Opc >= BinaryOperator::Assign && Opc <= BinaryOperator::OrAssign &&
Douglas Gregor114c6192009-08-26 17:08:25 +00004376 !Args[0]->getType()->isOverloadableType())
4377 return CreateBuiltinBinOp(OpLoc, Opc, Args[0], Args[1]);
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004378
Douglas Gregorc78182d2009-03-13 23:49:33 +00004379 // Build an empty overload set.
4380 OverloadCandidateSet CandidateSet;
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004381
4382 // Add the candidates from the given function set.
4383 AddFunctionCandidates(Functions, Args, 2, CandidateSet, false);
4384
4385 // Add operator candidates that are member functions.
4386 AddMemberOperatorCandidates(Op, OpLoc, Args, 2, CandidateSet);
4387
4388 // Add builtin operator candidates.
4389 AddBuiltinOperatorCandidates(Op, Args, 2, CandidateSet);
4390
4391 // Perform overload resolution.
4392 OverloadCandidateSet::iterator Best;
Douglas Gregor98189262009-06-19 23:52:42 +00004393 switch (BestViableFunction(CandidateSet, OpLoc, Best)) {
Sebastian Redlbd261962009-04-16 17:51:27 +00004394 case OR_Success: {
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004395 // We found a built-in operator or an overloaded operator.
4396 FunctionDecl *FnDecl = Best->Function;
4397
4398 if (FnDecl) {
4399 // We matched an overloaded operator. Build a call to that
4400 // operator.
4401
4402 // Convert the arguments.
4403 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(FnDecl)) {
Douglas Gregor114c6192009-08-26 17:08:25 +00004404 if (PerformObjectArgumentInitialization(Args[0], Method) ||
4405 PerformCopyInitialization(Args[1], FnDecl->getParamDecl(0)->getType(),
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004406 "passing"))
4407 return ExprError();
4408 } else {
4409 // Convert the arguments.
Douglas Gregor114c6192009-08-26 17:08:25 +00004410 if (PerformCopyInitialization(Args[0], FnDecl->getParamDecl(0)->getType(),
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004411 "passing") ||
Douglas Gregor114c6192009-08-26 17:08:25 +00004412 PerformCopyInitialization(Args[1], FnDecl->getParamDecl(1)->getType(),
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004413 "passing"))
4414 return ExprError();
4415 }
4416
4417 // Determine the result type
4418 QualType ResultTy
4419 = FnDecl->getType()->getAsFunctionType()->getResultType();
4420 ResultTy = ResultTy.getNonReferenceType();
4421
4422 // Build the actual expression node.
4423 Expr *FnExpr = new (Context) DeclRefExpr(FnDecl, FnDecl->getType(),
Argiris Kirtzidiscca21b82009-07-14 03:19:38 +00004424 OpLoc);
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004425 UsualUnaryConversions(FnExpr);
4426
Anders Carlsson16497742009-08-16 04:11:06 +00004427 Expr *CE = new (Context) CXXOperatorCallExpr(Context, Op, FnExpr,
4428 Args, 2, ResultTy, OpLoc);
4429 return MaybeBindToTemporary(CE);
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004430 } else {
4431 // We matched a built-in operator. Convert the arguments, then
4432 // break out so that we will build the appropriate built-in
4433 // operator node.
Douglas Gregor114c6192009-08-26 17:08:25 +00004434 if (PerformImplicitConversion(Args[0], Best->BuiltinTypes.ParamTypes[0],
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004435 Best->Conversions[0], "passing") ||
Douglas Gregor114c6192009-08-26 17:08:25 +00004436 PerformImplicitConversion(Args[1], Best->BuiltinTypes.ParamTypes[1],
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004437 Best->Conversions[1], "passing"))
4438 return ExprError();
4439
4440 break;
4441 }
4442 }
4443
4444 case OR_No_Viable_Function:
Sebastian Redl35196b42009-05-21 11:50:50 +00004445 // For class as left operand for assignment or compound assigment operator
4446 // do not fall through to handling in built-in, but report that no overloaded
4447 // assignment operator found
Douglas Gregor114c6192009-08-26 17:08:25 +00004448 if (Args[0]->getType()->isRecordType() && Opc >= BinaryOperator::Assign && Opc <= BinaryOperator::OrAssign) {
Sebastian Redl35196b42009-05-21 11:50:50 +00004449 Diag(OpLoc, diag::err_ovl_no_viable_oper)
4450 << BinaryOperator::getOpcodeStr(Opc)
Douglas Gregor114c6192009-08-26 17:08:25 +00004451 << Args[0]->getSourceRange() << Args[1]->getSourceRange();
Sebastian Redl35196b42009-05-21 11:50:50 +00004452 return ExprError();
4453 }
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004454 // No viable function; fall through to handling this as a
4455 // built-in operator, which will produce an error message for us.
4456 break;
4457
4458 case OR_Ambiguous:
4459 Diag(OpLoc, diag::err_ovl_ambiguous_oper)
4460 << BinaryOperator::getOpcodeStr(Opc)
Douglas Gregor114c6192009-08-26 17:08:25 +00004461 << Args[0]->getSourceRange() << Args[1]->getSourceRange();
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004462 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4463 return ExprError();
4464
4465 case OR_Deleted:
4466 Diag(OpLoc, diag::err_ovl_deleted_oper)
4467 << Best->Function->isDeleted()
4468 << BinaryOperator::getOpcodeStr(Opc)
Douglas Gregor114c6192009-08-26 17:08:25 +00004469 << Args[0]->getSourceRange() << Args[1]->getSourceRange();
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004470 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4471 return ExprError();
4472 }
4473
4474 // Either we found no viable overloaded operator or we matched a
4475 // built-in operator. In either case, try to build a built-in
4476 // operation.
Douglas Gregor114c6192009-08-26 17:08:25 +00004477 return CreateBuiltinBinOp(OpLoc, Opc, Args[0], Args[1]);
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004478}
4479
Douglas Gregor3257fb52008-12-22 05:46:06 +00004480/// BuildCallToMemberFunction - Build a call to a member
4481/// function. MemExpr is the expression that refers to the member
4482/// function (and includes the object parameter), Args/NumArgs are the
4483/// arguments to the function call (not including the object
4484/// parameter). The caller needs to validate that the member
4485/// expression refers to a member function or an overloaded member
4486/// function.
4487Sema::ExprResult
4488Sema::BuildCallToMemberFunction(Scope *S, Expr *MemExprE,
4489 SourceLocation LParenLoc, Expr **Args,
4490 unsigned NumArgs, SourceLocation *CommaLocs,
4491 SourceLocation RParenLoc) {
4492 // Dig out the member expression. This holds both the object
4493 // argument and the member function we're referring to.
4494 MemberExpr *MemExpr = 0;
4495 if (ParenExpr *ParenE = dyn_cast<ParenExpr>(MemExprE))
4496 MemExpr = dyn_cast<MemberExpr>(ParenE->getSubExpr());
4497 else
4498 MemExpr = dyn_cast<MemberExpr>(MemExprE);
4499 assert(MemExpr && "Building member call without member expression");
4500
4501 // Extract the object argument.
4502 Expr *ObjectArg = MemExpr->getBase();
Anders Carlsson2d30f6b2009-05-01 18:34:30 +00004503
Douglas Gregor3257fb52008-12-22 05:46:06 +00004504 CXXMethodDecl *Method = 0;
Douglas Gregor4fdcdda2009-08-21 00:16:32 +00004505 if (isa<OverloadedFunctionDecl>(MemExpr->getMemberDecl()) ||
4506 isa<FunctionTemplateDecl>(MemExpr->getMemberDecl())) {
Douglas Gregor3257fb52008-12-22 05:46:06 +00004507 // Add overload candidates
4508 OverloadCandidateSet CandidateSet;
Douglas Gregor4fdcdda2009-08-21 00:16:32 +00004509 DeclarationName DeclName = MemExpr->getMemberDecl()->getDeclName();
4510
Douglas Gregor050cabf2009-08-21 18:42:58 +00004511 for (OverloadIterator Func(MemExpr->getMemberDecl()), FuncEnd;
4512 Func != FuncEnd; ++Func) {
4513 if ((Method = dyn_cast<CXXMethodDecl>(*Func)))
4514 AddMethodCandidate(Method, ObjectArg, Args, NumArgs, CandidateSet,
4515 /*SuppressUserConversions=*/false);
4516 else
4517 AddMethodTemplateCandidate(cast<FunctionTemplateDecl>(*Func),
4518 /*FIXME:*/false, /*FIXME:*/0,
4519 /*FIXME:*/0, ObjectArg, Args, NumArgs,
4520 CandidateSet,
4521 /*SuppressUsedConversions=*/false);
4522 }
Douglas Gregor4fdcdda2009-08-21 00:16:32 +00004523
Douglas Gregor3257fb52008-12-22 05:46:06 +00004524 OverloadCandidateSet::iterator Best;
Douglas Gregor98189262009-06-19 23:52:42 +00004525 switch (BestViableFunction(CandidateSet, MemExpr->getLocStart(), Best)) {
Douglas Gregor3257fb52008-12-22 05:46:06 +00004526 case OR_Success:
4527 Method = cast<CXXMethodDecl>(Best->Function);
4528 break;
4529
4530 case OR_No_Viable_Function:
4531 Diag(MemExpr->getSourceRange().getBegin(),
4532 diag::err_ovl_no_viable_member_function_in_call)
Douglas Gregor4fdcdda2009-08-21 00:16:32 +00004533 << DeclName << MemExprE->getSourceRange();
Douglas Gregor3257fb52008-12-22 05:46:06 +00004534 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/false);
4535 // FIXME: Leaking incoming expressions!
4536 return true;
4537
4538 case OR_Ambiguous:
4539 Diag(MemExpr->getSourceRange().getBegin(),
4540 diag::err_ovl_ambiguous_member_call)
Douglas Gregor4fdcdda2009-08-21 00:16:32 +00004541 << DeclName << MemExprE->getSourceRange();
Douglas Gregor3257fb52008-12-22 05:46:06 +00004542 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/false);
4543 // FIXME: Leaking incoming expressions!
4544 return true;
Douglas Gregoraa57e862009-02-18 21:56:37 +00004545
4546 case OR_Deleted:
4547 Diag(MemExpr->getSourceRange().getBegin(),
4548 diag::err_ovl_deleted_member_call)
4549 << Best->Function->isDeleted()
Douglas Gregor4fdcdda2009-08-21 00:16:32 +00004550 << DeclName << MemExprE->getSourceRange();
Douglas Gregoraa57e862009-02-18 21:56:37 +00004551 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/false);
4552 // FIXME: Leaking incoming expressions!
4553 return true;
Douglas Gregor3257fb52008-12-22 05:46:06 +00004554 }
4555
4556 FixOverloadedFunctionReference(MemExpr, Method);
4557 } else {
4558 Method = dyn_cast<CXXMethodDecl>(MemExpr->getMemberDecl());
4559 }
4560
4561 assert(Method && "Member call to something that isn't a method?");
Ted Kremenek0c97e042009-02-07 01:47:29 +00004562 ExprOwningPtr<CXXMemberCallExpr>
Ted Kremenek362abcd2009-02-09 20:51:47 +00004563 TheCall(this, new (Context) CXXMemberCallExpr(Context, MemExpr, Args,
4564 NumArgs,
Douglas Gregor3257fb52008-12-22 05:46:06 +00004565 Method->getResultType().getNonReferenceType(),
4566 RParenLoc));
4567
4568 // Convert the object argument (for a non-static member function call).
4569 if (!Method->isStatic() &&
4570 PerformObjectArgumentInitialization(ObjectArg, Method))
4571 return true;
4572 MemExpr->setBase(ObjectArg);
4573
4574 // Convert the rest of the arguments
Douglas Gregor4fa58902009-02-26 23:50:07 +00004575 const FunctionProtoType *Proto = cast<FunctionProtoType>(Method->getType());
Douglas Gregor3257fb52008-12-22 05:46:06 +00004576 if (ConvertArgumentsForCall(&*TheCall, MemExpr, Method, Proto, Args, NumArgs,
4577 RParenLoc))
4578 return true;
4579
Anders Carlsson7fb13802009-08-16 01:56:34 +00004580 if (CheckFunctionCall(Method, TheCall.get()))
4581 return true;
Anders Carlssonb8ff3402009-08-16 03:42:12 +00004582
4583 return MaybeBindToTemporary(TheCall.release()).release();
Douglas Gregor3257fb52008-12-22 05:46:06 +00004584}
4585
Douglas Gregor10f3c502008-11-19 21:05:33 +00004586/// BuildCallToObjectOfClassType - Build a call to an object of class
4587/// type (C++ [over.call.object]), which can end up invoking an
4588/// overloaded function call operator (@c operator()) or performing a
4589/// user-defined conversion on the object argument.
Douglas Gregor3257fb52008-12-22 05:46:06 +00004590Sema::ExprResult
Douglas Gregora133e262008-12-06 00:22:45 +00004591Sema::BuildCallToObjectOfClassType(Scope *S, Expr *Object,
4592 SourceLocation LParenLoc,
Douglas Gregor10f3c502008-11-19 21:05:33 +00004593 Expr **Args, unsigned NumArgs,
4594 SourceLocation *CommaLocs,
4595 SourceLocation RParenLoc) {
4596 assert(Object->getType()->isRecordType() && "Requires object type argument");
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00004597 const RecordType *Record = Object->getType()->getAs<RecordType>();
Douglas Gregor10f3c502008-11-19 21:05:33 +00004598
4599 // C++ [over.call.object]p1:
4600 // If the primary-expression E in the function call syntax
Eli Friedmand5a72f02009-08-05 19:21:58 +00004601 // evaluates to a class object of type "cv T", then the set of
Douglas Gregor10f3c502008-11-19 21:05:33 +00004602 // candidate functions includes at least the function call
4603 // operators of T. The function call operators of T are obtained by
4604 // ordinary lookup of the name operator() in the context of
4605 // (E).operator().
4606 OverloadCandidateSet CandidateSet;
Douglas Gregor8acb7272008-12-11 16:49:14 +00004607 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(OO_Call);
Douglas Gregorddfd9d52008-12-23 00:26:44 +00004608 DeclContext::lookup_const_iterator Oper, OperEnd;
Argiris Kirtzidisab6e38a2009-06-30 02:36:12 +00004609 for (llvm::tie(Oper, OperEnd) = Record->getDecl()->lookup(OpName);
Douglas Gregorddfd9d52008-12-23 00:26:44 +00004610 Oper != OperEnd; ++Oper)
4611 AddMethodCandidate(cast<CXXMethodDecl>(*Oper), Object, Args, NumArgs,
4612 CandidateSet, /*SuppressUserConversions=*/false);
Douglas Gregor10f3c502008-11-19 21:05:33 +00004613
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004614 // C++ [over.call.object]p2:
4615 // In addition, for each conversion function declared in T of the
4616 // form
4617 //
4618 // operator conversion-type-id () cv-qualifier;
4619 //
4620 // where cv-qualifier is the same cv-qualification as, or a
4621 // greater cv-qualification than, cv, and where conversion-type-id
Douglas Gregor261afa72008-11-20 13:33:37 +00004622 // denotes the type "pointer to function of (P1,...,Pn) returning
4623 // R", or the type "reference to pointer to function of
4624 // (P1,...,Pn) returning R", or the type "reference to function
4625 // of (P1,...,Pn) returning R", a surrogate call function [...]
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004626 // is also considered as a candidate function. Similarly,
4627 // surrogate call functions are added to the set of candidate
4628 // functions for each conversion function declared in an
4629 // accessible base class provided the function is not hidden
4630 // within T by another intervening declaration.
Douglas Gregorb35c7992009-08-24 15:23:48 +00004631
4632 if (!RequireCompleteType(SourceLocation(), Object->getType(), 0)) {
4633 // FIXME: Look in base classes for more conversion operators!
4634 OverloadedFunctionDecl *Conversions
4635 = cast<CXXRecordDecl>(Record->getDecl())->getConversionFunctions();
4636 for (OverloadedFunctionDecl::function_iterator
4637 Func = Conversions->function_begin(),
4638 FuncEnd = Conversions->function_end();
4639 Func != FuncEnd; ++Func) {
4640 CXXConversionDecl *Conv;
4641 FunctionTemplateDecl *ConvTemplate;
4642 GetFunctionAndTemplate(*Func, Conv, ConvTemplate);
Douglas Gregor8c860df2009-08-21 23:19:43 +00004643
Douglas Gregorb35c7992009-08-24 15:23:48 +00004644 // Skip over templated conversion functions; they aren't
4645 // surrogates.
4646 if (ConvTemplate)
4647 continue;
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004648
Douglas Gregorb35c7992009-08-24 15:23:48 +00004649 // Strip the reference type (if any) and then the pointer type (if
4650 // any) to get down to what might be a function type.
4651 QualType ConvType = Conv->getConversionType().getNonReferenceType();
4652 if (const PointerType *ConvPtrType = ConvType->getAs<PointerType>())
4653 ConvType = ConvPtrType->getPointeeType();
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004654
Douglas Gregorb35c7992009-08-24 15:23:48 +00004655 if (const FunctionProtoType *Proto = ConvType->getAsFunctionProtoType())
4656 AddSurrogateCandidate(Conv, Proto, Object, Args, NumArgs, CandidateSet);
4657 }
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004658 }
Douglas Gregorb35c7992009-08-24 15:23:48 +00004659
Douglas Gregor10f3c502008-11-19 21:05:33 +00004660 // Perform overload resolution.
4661 OverloadCandidateSet::iterator Best;
Douglas Gregor98189262009-06-19 23:52:42 +00004662 switch (BestViableFunction(CandidateSet, Object->getLocStart(), Best)) {
Douglas Gregor10f3c502008-11-19 21:05:33 +00004663 case OR_Success:
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004664 // Overload resolution succeeded; we'll build the appropriate call
4665 // below.
Douglas Gregor10f3c502008-11-19 21:05:33 +00004666 break;
4667
4668 case OR_No_Viable_Function:
Sebastian Redlfd9f2ac2008-11-22 13:44:36 +00004669 Diag(Object->getSourceRange().getBegin(),
4670 diag::err_ovl_no_viable_object_call)
Chris Lattner4a526112009-02-17 07:29:20 +00004671 << Object->getType() << Object->getSourceRange();
Sebastian Redlfd9f2ac2008-11-22 13:44:36 +00004672 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/false);
Douglas Gregor10f3c502008-11-19 21:05:33 +00004673 break;
4674
4675 case OR_Ambiguous:
4676 Diag(Object->getSourceRange().getBegin(),
4677 diag::err_ovl_ambiguous_object_call)
Chris Lattner4bfd2232008-11-24 06:25:27 +00004678 << Object->getType() << Object->getSourceRange();
Douglas Gregor10f3c502008-11-19 21:05:33 +00004679 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4680 break;
Douglas Gregoraa57e862009-02-18 21:56:37 +00004681
4682 case OR_Deleted:
4683 Diag(Object->getSourceRange().getBegin(),
4684 diag::err_ovl_deleted_object_call)
4685 << Best->Function->isDeleted()
4686 << Object->getType() << Object->getSourceRange();
4687 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
4688 break;
Douglas Gregor10f3c502008-11-19 21:05:33 +00004689 }
4690
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004691 if (Best == CandidateSet.end()) {
Douglas Gregor10f3c502008-11-19 21:05:33 +00004692 // We had an error; delete all of the subexpressions and return
4693 // the error.
Ted Kremenek0c97e042009-02-07 01:47:29 +00004694 Object->Destroy(Context);
Douglas Gregor10f3c502008-11-19 21:05:33 +00004695 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx)
Ted Kremenek0c97e042009-02-07 01:47:29 +00004696 Args[ArgIdx]->Destroy(Context);
Douglas Gregor10f3c502008-11-19 21:05:33 +00004697 return true;
4698 }
4699
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004700 if (Best->Function == 0) {
4701 // Since there is no function declaration, this is one of the
4702 // surrogate candidates. Dig out the conversion function.
4703 CXXConversionDecl *Conv
4704 = cast<CXXConversionDecl>(
4705 Best->Conversions[0].UserDefined.ConversionFunction);
4706
4707 // We selected one of the surrogate functions that converts the
4708 // object parameter to a function pointer. Perform the conversion
4709 // on the object argument, then let ActOnCallExpr finish the job.
4710 // FIXME: Represent the user-defined conversion in the AST!
Sebastian Redl8b769972009-01-19 00:08:26 +00004711 ImpCastExprToType(Object,
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004712 Conv->getConversionType().getNonReferenceType(),
Anders Carlsson85186942009-07-31 01:23:52 +00004713 CastExpr::CK_Unknown,
Sebastian Redlce6fff02009-03-16 23:22:08 +00004714 Conv->getConversionType()->isLValueReferenceType());
Sebastian Redl8b769972009-01-19 00:08:26 +00004715 return ActOnCallExpr(S, ExprArg(*this, Object), LParenLoc,
4716 MultiExprArg(*this, (ExprTy**)Args, NumArgs),
4717 CommaLocs, RParenLoc).release();
Douglas Gregor67fdb5b2008-11-19 22:57:39 +00004718 }
4719
4720 // We found an overloaded operator(). Build a CXXOperatorCallExpr
4721 // that calls this method, using Object for the implicit object
4722 // parameter and passing along the remaining arguments.
4723 CXXMethodDecl *Method = cast<CXXMethodDecl>(Best->Function);
Douglas Gregor4fa58902009-02-26 23:50:07 +00004724 const FunctionProtoType *Proto = Method->getType()->getAsFunctionProtoType();
Douglas Gregor10f3c502008-11-19 21:05:33 +00004725
4726 unsigned NumArgsInProto = Proto->getNumArgs();
4727 unsigned NumArgsToCheck = NumArgs;
4728
4729 // Build the full argument list for the method call (the
4730 // implicit object parameter is placed at the beginning of the
4731 // list).
4732 Expr **MethodArgs;
4733 if (NumArgs < NumArgsInProto) {
4734 NumArgsToCheck = NumArgsInProto;
4735 MethodArgs = new Expr*[NumArgsInProto + 1];
4736 } else {
4737 MethodArgs = new Expr*[NumArgs + 1];
4738 }
4739 MethodArgs[0] = Object;
4740 for (unsigned ArgIdx = 0; ArgIdx < NumArgs; ++ArgIdx)
4741 MethodArgs[ArgIdx + 1] = Args[ArgIdx];
4742
Ted Kremenek0c97e042009-02-07 01:47:29 +00004743 Expr *NewFn = new (Context) DeclRefExpr(Method, Method->getType(),
4744 SourceLocation());
Douglas Gregor10f3c502008-11-19 21:05:33 +00004745 UsualUnaryConversions(NewFn);
4746
4747 // Once we've built TheCall, all of the expressions are properly
4748 // owned.
4749 QualType ResultTy = Method->getResultType().getNonReferenceType();
Ted Kremenek0c97e042009-02-07 01:47:29 +00004750 ExprOwningPtr<CXXOperatorCallExpr>
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004751 TheCall(this, new (Context) CXXOperatorCallExpr(Context, OO_Call, NewFn,
4752 MethodArgs, NumArgs + 1,
Ted Kremenek0c97e042009-02-07 01:47:29 +00004753 ResultTy, RParenLoc));
Douglas Gregor10f3c502008-11-19 21:05:33 +00004754 delete [] MethodArgs;
4755
Douglas Gregordb0ae4a2009-01-13 05:10:00 +00004756 // We may have default arguments. If so, we need to allocate more
4757 // slots in the call for them.
4758 if (NumArgs < NumArgsInProto)
Ted Kremenek0c97e042009-02-07 01:47:29 +00004759 TheCall->setNumArgs(Context, NumArgsInProto + 1);
Douglas Gregordb0ae4a2009-01-13 05:10:00 +00004760 else if (NumArgs > NumArgsInProto)
4761 NumArgsToCheck = NumArgsInProto;
4762
Chris Lattner81f00ed2009-04-12 08:11:20 +00004763 bool IsError = false;
4764
Douglas Gregor10f3c502008-11-19 21:05:33 +00004765 // Initialize the implicit object parameter.
Chris Lattner81f00ed2009-04-12 08:11:20 +00004766 IsError |= PerformObjectArgumentInitialization(Object, Method);
Douglas Gregor10f3c502008-11-19 21:05:33 +00004767 TheCall->setArg(0, Object);
4768
Chris Lattner81f00ed2009-04-12 08:11:20 +00004769
Douglas Gregor10f3c502008-11-19 21:05:33 +00004770 // Check the argument types.
4771 for (unsigned i = 0; i != NumArgsToCheck; i++) {
Douglas Gregor10f3c502008-11-19 21:05:33 +00004772 Expr *Arg;
Douglas Gregordb0ae4a2009-01-13 05:10:00 +00004773 if (i < NumArgs) {
Douglas Gregor10f3c502008-11-19 21:05:33 +00004774 Arg = Args[i];
Douglas Gregordb0ae4a2009-01-13 05:10:00 +00004775
4776 // Pass the argument.
4777 QualType ProtoArgType = Proto->getArgType(i);
Chris Lattner81f00ed2009-04-12 08:11:20 +00004778 IsError |= PerformCopyInitialization(Arg, ProtoArgType, "passing");
Douglas Gregordb0ae4a2009-01-13 05:10:00 +00004779 } else {
Anders Carlsson3d752db2009-08-14 18:30:22 +00004780 Arg = CXXDefaultArgExpr::Create(Context, Method->getParamDecl(i));
Douglas Gregordb0ae4a2009-01-13 05:10:00 +00004781 }
Douglas Gregor10f3c502008-11-19 21:05:33 +00004782
4783 TheCall->setArg(i + 1, Arg);
4784 }
4785
4786 // If this is a variadic call, handle args passed through "...".
4787 if (Proto->isVariadic()) {
4788 // Promote the arguments (C99 6.5.2.2p7).
4789 for (unsigned i = NumArgsInProto; i != NumArgs; i++) {
4790 Expr *Arg = Args[i];
Chris Lattner81f00ed2009-04-12 08:11:20 +00004791 IsError |= DefaultVariadicArgumentPromotion(Arg, VariadicMethod);
Douglas Gregor10f3c502008-11-19 21:05:33 +00004792 TheCall->setArg(i + 1, Arg);
4793 }
4794 }
4795
Chris Lattner81f00ed2009-04-12 08:11:20 +00004796 if (IsError) return true;
4797
Anders Carlsson7fb13802009-08-16 01:56:34 +00004798 if (CheckFunctionCall(Method, TheCall.get()))
4799 return true;
4800
Anders Carlsson422a5fe2009-08-16 03:53:54 +00004801 return MaybeBindToTemporary(TheCall.release()).release();
Douglas Gregor10f3c502008-11-19 21:05:33 +00004802}
4803
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004804/// BuildOverloadedArrowExpr - Build a call to an overloaded @c operator->
4805/// (if one exists), where @c Base is an expression of class type and
4806/// @c Member is the name of the member we're trying to find.
Douglas Gregorda61ad22009-08-06 03:17:00 +00004807Sema::OwningExprResult
4808Sema::BuildOverloadedArrowExpr(Scope *S, ExprArg BaseIn, SourceLocation OpLoc) {
4809 Expr *Base = static_cast<Expr *>(BaseIn.get());
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004810 assert(Base->getType()->isRecordType() && "left-hand side must have class type");
4811
4812 // C++ [over.ref]p1:
4813 //
4814 // [...] An expression x->m is interpreted as (x.operator->())->m
4815 // for a class object x of type T if T::operator->() exists and if
4816 // the operator is selected as the best match function by the
4817 // overload resolution mechanism (13.3).
4818 // FIXME: look in base classes.
4819 DeclarationName OpName = Context.DeclarationNames.getCXXOperatorName(OO_Arrow);
4820 OverloadCandidateSet CandidateSet;
Ted Kremenekd00cd9e2009-07-29 21:53:49 +00004821 const RecordType *BaseRecord = Base->getType()->getAs<RecordType>();
Douglas Gregorda61ad22009-08-06 03:17:00 +00004822
Douglas Gregorddfd9d52008-12-23 00:26:44 +00004823 DeclContext::lookup_const_iterator Oper, OperEnd;
Douglas Gregorc55b0b02009-04-09 21:40:53 +00004824 for (llvm::tie(Oper, OperEnd)
Argiris Kirtzidisab6e38a2009-06-30 02:36:12 +00004825 = BaseRecord->getDecl()->lookup(OpName); Oper != OperEnd; ++Oper)
Douglas Gregorddfd9d52008-12-23 00:26:44 +00004826 AddMethodCandidate(cast<CXXMethodDecl>(*Oper), Base, 0, 0, CandidateSet,
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004827 /*SuppressUserConversions=*/false);
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004828
4829 // Perform overload resolution.
4830 OverloadCandidateSet::iterator Best;
Douglas Gregor98189262009-06-19 23:52:42 +00004831 switch (BestViableFunction(CandidateSet, OpLoc, Best)) {
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004832 case OR_Success:
4833 // Overload resolution succeeded; we'll build the call below.
4834 break;
4835
4836 case OR_No_Viable_Function:
4837 if (CandidateSet.empty())
4838 Diag(OpLoc, diag::err_typecheck_member_reference_arrow)
Douglas Gregorda61ad22009-08-06 03:17:00 +00004839 << Base->getType() << Base->getSourceRange();
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004840 else
4841 Diag(OpLoc, diag::err_ovl_no_viable_oper)
Douglas Gregorda61ad22009-08-06 03:17:00 +00004842 << "operator->" << Base->getSourceRange();
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004843 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/false);
Douglas Gregorda61ad22009-08-06 03:17:00 +00004844 return ExprError();
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004845
4846 case OR_Ambiguous:
4847 Diag(OpLoc, diag::err_ovl_ambiguous_oper)
Douglas Gregorda61ad22009-08-06 03:17:00 +00004848 << "operator->" << Base->getSourceRange();
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004849 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
Douglas Gregorda61ad22009-08-06 03:17:00 +00004850 return ExprError();
Douglas Gregoraa57e862009-02-18 21:56:37 +00004851
4852 case OR_Deleted:
4853 Diag(OpLoc, diag::err_ovl_deleted_oper)
4854 << Best->Function->isDeleted()
Douglas Gregorda61ad22009-08-06 03:17:00 +00004855 << "operator->" << Base->getSourceRange();
Douglas Gregoraa57e862009-02-18 21:56:37 +00004856 PrintOverloadCandidates(CandidateSet, /*OnlyViable=*/true);
Douglas Gregorda61ad22009-08-06 03:17:00 +00004857 return ExprError();
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004858 }
4859
4860 // Convert the object parameter.
4861 CXXMethodDecl *Method = cast<CXXMethodDecl>(Best->Function);
Douglas Gregor9c690e92008-11-21 03:04:22 +00004862 if (PerformObjectArgumentInitialization(Base, Method))
Douglas Gregorda61ad22009-08-06 03:17:00 +00004863 return ExprError();
Douglas Gregor9c690e92008-11-21 03:04:22 +00004864
4865 // No concerns about early exits now.
Douglas Gregorda61ad22009-08-06 03:17:00 +00004866 BaseIn.release();
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004867
4868 // Build the operator call.
Ted Kremenek0c97e042009-02-07 01:47:29 +00004869 Expr *FnExpr = new (Context) DeclRefExpr(Method, Method->getType(),
4870 SourceLocation());
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004871 UsualUnaryConversions(FnExpr);
Douglas Gregor00fe3f62009-03-13 18:40:31 +00004872 Base = new (Context) CXXOperatorCallExpr(Context, OO_Arrow, FnExpr, &Base, 1,
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004873 Method->getResultType().getNonReferenceType(),
4874 OpLoc);
Douglas Gregorda61ad22009-08-06 03:17:00 +00004875 return Owned(Base);
Douglas Gregor7f3fec52008-11-20 16:27:02 +00004876}
4877
Douglas Gregor45014fd2008-11-10 20:40:00 +00004878/// FixOverloadedFunctionReference - E is an expression that refers to
4879/// a C++ overloaded function (possibly with some parentheses and
4880/// perhaps a '&' around it). We have resolved the overloaded function
4881/// to the function declaration Fn, so patch up the expression E to
4882/// refer (possibly indirectly) to Fn.
4883void Sema::FixOverloadedFunctionReference(Expr *E, FunctionDecl *Fn) {
4884 if (ParenExpr *PE = dyn_cast<ParenExpr>(E)) {
4885 FixOverloadedFunctionReference(PE->getSubExpr(), Fn);
4886 E->setType(PE->getSubExpr()->getType());
4887 } else if (UnaryOperator *UnOp = dyn_cast<UnaryOperator>(E)) {
4888 assert(UnOp->getOpcode() == UnaryOperator::AddrOf &&
4889 "Can only take the address of an overloaded function");
Douglas Gregor3f411962009-02-11 01:18:59 +00004890 if (CXXMethodDecl *Method = dyn_cast<CXXMethodDecl>(Fn)) {
4891 if (Method->isStatic()) {
4892 // Do nothing: static member functions aren't any different
4893 // from non-member functions.
Mike Stump90fc78e2009-08-04 21:02:39 +00004894 } else if (QualifiedDeclRefExpr *DRE
Douglas Gregor3f411962009-02-11 01:18:59 +00004895 = dyn_cast<QualifiedDeclRefExpr>(UnOp->getSubExpr())) {
4896 // We have taken the address of a pointer to member
4897 // function. Perform the computation here so that we get the
4898 // appropriate pointer to member type.
4899 DRE->setDecl(Fn);
4900 DRE->setType(Fn->getType());
4901 QualType ClassType
4902 = Context.getTypeDeclType(cast<RecordDecl>(Method->getDeclContext()));
4903 E->setType(Context.getMemberPointerType(Fn->getType(),
4904 ClassType.getTypePtr()));
4905 return;
4906 }
4907 }
Douglas Gregor45014fd2008-11-10 20:40:00 +00004908 FixOverloadedFunctionReference(UnOp->getSubExpr(), Fn);
Douglas Gregor2eedd992009-02-11 00:19:33 +00004909 E->setType(Context.getPointerType(UnOp->getSubExpr()->getType()));
Douglas Gregor45014fd2008-11-10 20:40:00 +00004910 } else if (DeclRefExpr *DR = dyn_cast<DeclRefExpr>(E)) {
Douglas Gregor62f78762009-07-08 20:55:45 +00004911 assert((isa<OverloadedFunctionDecl>(DR->getDecl()) ||
4912 isa<FunctionTemplateDecl>(DR->getDecl())) &&
4913 "Expected overloaded function or function template");
Douglas Gregor45014fd2008-11-10 20:40:00 +00004914 DR->setDecl(Fn);
4915 E->setType(Fn->getType());
Douglas Gregor3257fb52008-12-22 05:46:06 +00004916 } else if (MemberExpr *MemExpr = dyn_cast<MemberExpr>(E)) {
4917 MemExpr->setMemberDecl(Fn);
4918 E->setType(Fn->getType());
Douglas Gregor45014fd2008-11-10 20:40:00 +00004919 } else {
4920 assert(false && "Invalid reference to overloaded function");
4921 }
4922}
4923
Douglas Gregord2baafd2008-10-21 16:13:35 +00004924} // end namespace clang