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When encountering

x op y

Does ADL find member x.op(y)? Or is the lookup specified as if not x.op(y), then ADL(op, x, y)?

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up vote 4 down vote accepted

Member candidates, non-member candidates (with ADL) and built-in candidates are considered. The best candidate is picked.

[over.match.oper]/3

For a unary operator @ with an operand of a type whose cv-unqualified version is T1, and for a binary operator @ with a left operand of a type whose cv-unqualified version is T1 and a right operand of a type whose cv-unqualified version is T2, three sets of candidate functions, designated member candidates, non-member candidates and built-in candidates, are constructed as follows:

  • If T1 is a complete class type, the set of member candidates is the result of the qualified lookup of T1::operator@ (13.3.1.1.1); otherwise, the set of member candidates is empty.

  • The set of non-member candidates is the result of the unqualified lookup of operator@ in the context of the expression according to the usual rules for name lookup in unqualified function calls (3.4.2) except that all member functions are ignored. However, if no operand has a class type, only those non-member functions in the lookup set that have a first parameter of type T1 or “reference to (possibly cv-qualified) T1”, when T1 is an enumeration type, or (if there is a right operand) a second parameter of type T2 or “reference to (possibly cv-qualified) T2”, when T2 is an enumeration type, are candidate functions.

  • For the operator ,, the unary operator &, or the operator ->, the built-in candidates set is empty. For all other operators, the built-in candidates include all of the candidate operator functions defined in 13.6 that, compared to the given operator,

    • have the same operator name, and
    • accept the same number of operands, and
    • accept operand types to which the given operand or operands can be converted according to 13.3.3.1, and
    • do not have the same parameter-type-list as any non-template non-member candidate.

[over.match.oper]/6

The set of candidate functions for overload resolution is the union of the member candidates, the non-member candidates, and the built-in candidates. The argument list contains all of the operands of the operator. The best function from the set of candidate functions is selected according to 13.3.2 and 13.3.3.

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So the Standard does not give priority to any particular set of candidates? That is, if there were x.op(y) and op(x, y) that were equally good, then that would be ambiguous? – Puppy Jan 2 '13 at 0:41
    
@DeadMG: Yes, is ambiguous. I figured a bit too late where you were actually going with your question... – K-ballo Jan 2 '13 at 0:43

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