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According to the standard:

A friend function defined in a class is in the (lexical) scope of the class in which it is defined.

Then why the heck doesn't this work (several versions of GCC tested)?

#include <iostream>
using namespace std;

class A
{
  friend void function() { cout << "text" << endl; };
};

// void function();

int main()
{
  function();
  return 0;
}

Uncommenting the declaration of course solves the problem.

Edit (gcc output):

(xterm) $ g++ -ansi -pedantic -Wall -Wextra test.cpp 
test.cpp: In function ‘int main()’:
test.cpp:13:11: error: ‘function’ was not declared in this scope
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Can you post the error you are getting? –  Björn Pollex Nov 6 '10 at 17:07

1 Answer 1

up vote 3 down vote accepted

The quote means that the following works - the code is in the lexical scope of the class, such that unqualified name lookup will behave specially

class A
{
  typedef int type;

  friend void function() { 
    type foo; /* type is visible */ 
  };
};

If you had defined "function" in the namespace scope, then "type" would not be visible - you would have to say "A::type". That's why it says in the next sentence "A friend function defined outside the class is not.". Unqualified name lookup for an in-class definition is stated as

Name lookup for a name used in the definition of a friend function (11.4) defined inline in the class granting friendship shall proceed as described for lookup in member function definitions. If the friend function is not defined in the class granting friendship, name lookup in the friend function definition shall proceed as described for lookup in namespace member function definitions.

So the text you quoted is not really required to be normative - the specification of unqualified name-lookup already covers it.

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Oh, you are right I read that wrong, but 11.4.5 still says that it should have namespace scope. –  Let_Me_Be Nov 6 '10 at 17:21
    
@Let_Me_be more properly, the text in 11.4/5 should say that the functon is a namespace member. Functions amd objects can't really have scope. Only names of them can have. The Standard is very lax with the terms "scope" and "name", so in many places only the context of the use can tell what is meant. –  Johannes Schaub - litb Nov 6 '10 at 17:32
    
For instance when it says that a specific function has a scope, it usually means that it is a member of some namespace (see a similar use at 3.4.2/1 "and namespace-scope friend function declarations (11.4) not otherwise visible may be found."). What makes this worse is that "declaration" can mean two functions: One thing is the introduction of a name, and the other thing is the actual syntactic construct. Only the context can tell what is talked about. –  Johannes Schaub - litb Nov 6 '10 at 17:36
1  
@litb "namespace scope" is an established technical term, in C++ it means "file scope". –  Let_Me_Be Nov 6 '10 at 17:38
    
For an attempt to clean the use of "scope" up, see open-std.org/jtc1/sc22/wg21/docs/cwg_active.html#554 . Much work is needed to make this end up being clear again, IMO, though. –  Johannes Schaub - litb Nov 6 '10 at 17:43

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