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If I typedef some types in a base class in public, Does the C++ standard guarantee the typedefed types are always visible for derived classes?

For example:

struct A
{
    typedef int T;
};

struct B : A
{
    void f(T) {}; // Does the C++ standard guarantee it can be compiled?
};

int main()
{
    B().f(8); 
}
share|improve this question
    
It can be hidden, e.g. struct B : A { int T; void f(T) {} /* error */ }; – M.M Jul 3 '14 at 5:55
up vote 1 down vote accepted

typedefs defined in a class have the same access rules as other names of a class. The usual access rules for private, protected, and public names apply to typedefs as well.

From the draft standard n3337:

7.1.3 The typedef Specifier

  1. ... Within the scope of its declaration, a typedef-name is syntactically equivalent to a keyword and names the type associated with the identifier in the way described in Clause 8.

9.2 Class Members

  1. The member-specification in a class definition declares the full set of members of the class; no member can be added elsewhere. Members of a class are data members, member functions (9.3), nested types, and enumerators. Data members and member functions are static or non-static; see 9.4. Nested types are classes (9.1, 9.7) and enumerations (7.2) defined in the class, and arbitrary types declared as members by use of a typedef declaration (7.1.3).
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Could you refer us to the pages of the C++ standard? – xmllmx Jul 3 '14 at 4:42
1  
@xmllmx I think you're looking for [class.access.base] 11.2/1. – Captain Obvlious Jul 3 '14 at 4:51

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