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In such a situation

namespace n {
    void f() {
        void another_function();
    }
}

Should the function another_function be defined inside the namespace n or outside? VS 2012 (with the November CTP) says it should be outside, and GCC 4.7.2 on the Mac says it should be inside. If I do the wrong one, I get undefined symbol errors from the linkers.

I generally trust GCC to be more compliant to the standard, but this is C++ and you can never be sure.

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Why do you want to do that? –  Billy ONeal Jan 3 '13 at 18:34
1  
@BillyONeal because another_function is an implementation detail and f is a template. –  Seth Carnegie Jan 3 '13 at 18:34
1  
But declaring another_function inside f doesn't make it less visible than f. It will just cause multiple definition errors if someone happens to define their own n::another_function. –  Billy ONeal Jan 3 '13 at 18:40
    
@BillyONeal no client will/should be putting things into my namespace since it's a library. It does make it slightly less visible since they have to work to get the prototype. Is there a better way to do it? –  Seth Carnegie Jan 3 '13 at 18:42
1  
I would just put the prototype inside your_namespace::detail. That's what boost does in these situations anyway. The convention is that anything inside a namespace detail are implementation details. –  Billy ONeal Jan 3 '13 at 18:43

2 Answers 2

up vote 9 down vote accepted

C++11 3.5 (as well as C++03)

7 When a block scope declaration of an entity with linkage is not found to refer to some other declaration, then that entity is a member of the innermost enclosing namespace. However such a declaration does not introduce the member name in its namespace scope.

The declaration in your example declares n::another_function.

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+1. this seems to be correct answer. –  Nawaz Jan 3 '13 at 18:42
    
+1 -- this answer is more complete than mine. Leaving mine because it still has that useful example though. –  Billy ONeal Jan 3 '13 at 18:43

According to N3485 7.3.1 [namespace.def]/6, the correct answer is n::another_function.

The enclosing namespaces of a declaration are those namespaces in which the declaration lexically appears, except for a redeclaration of a namespace member outside its original namespace (e.g., a definition as specified in 7.3.1.2). Such a redeclaration has the same enclosing namespaces as the original declaration. [ Example:

namespace Q {
    namespace V {
        void f(); // enclosing namespaces are the global namespace, Q, and Q::V
        class C { void m(); };
    }
    void V::f() { // enclosing namespaces are the global namespace, Q, and Q::V
        extern void h(); // ... so this declares Q::V::h
    }
    void V::C::m() { // enclosing namespaces are the global namespace, Q, and Q::V
    }
}

—end example ]

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