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#include <iostream>

namespace Foo
{
    class Baz { };   

    std::ostream& operator<< ( std::ostream& ostream , const Baz& baz )
    {
        return ostream << "operator<<\n";
    }
}

int main()
{
    std::cout << Foo::Baz();
}

I define an operator<< in the Foo namespace. Why it can be called from the global scope?

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1 Answer 1

up vote 9 down vote accepted

DRTL

The compiler can find the user-defined operator<< through argument-dependent lookup.

Explanation

The call

 std::cout << Foo::Baz();

is actually an infix shorthand for

 operator<<(std::cout, Foo::Baz());

Because the function call is unqualified (i.e. without any namespace prefix or surrounding parentheses), the compiler will not only do ordinary name lookup (outwards from the local function scope), but also argument-dependent lookup (a.k.a ADL) for other overloads of function operator<< in all the associated namespaces of both arguments std::cout and class Baz. These associated namespaces are std and Foo in this case.

Thus argument-dependent lookup will find the definitions

 std::operator<<(std::ostream&, /* all the builtin types and Standard strings and streams */)
 Foo::operator<<(std::ostream&, const& Baz)

After name-lookup, argument deduction will fail for all the std::operator<< overloads. This is why overload resolution will find that the user-defined Foo::operator<< is in fact the only match. That's why it is called.

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TemplateRex, thank you very much for a comprehensive answer! –  Kolyunya Jun 13 '13 at 10:43
    
@Kolyunya Glad to have been of help! –  TemplateRex Jun 13 '13 at 10:44

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