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While writing a test suite, I needed to provide an implementation of operator<<(std::ostream&... for Boost unit test to use.

This worked:

namespace theseus { namespace core {
    std::ostream& operator<<(std::ostream& ss, const PixelRGB& p) {
        return (ss << "PixelRGB(" << (int)p.r << "," << (int)p.g << "," << (int)p.b << ")");
    }
}}

This didn't:

std::ostream& operator<<(std::ostream& ss, const theseus::core::PixelRGB& p) {
    return (ss << "PixelRGB(" << (int)p.r << "," << (int)p.g << "," << (int)p.b << ")");
}

Apparently, the second wasn't included in the candidate matches when g++ tried to resolve the use of the operator. Why (what rule causes this)?

The code calling operator<< is deep within the Boost unit test framework, but here's the test code:

BOOST_AUTO_TEST_SUITE(core_image)

BOOST_AUTO_TEST_CASE(test_output) {
    using namespace theseus::core;
    BOOST_TEST_MESSAGE(PixelRGB(5,5,5)); // only compiles with operator<< definition inside theseus::core
    std::cout << PixelRGB(5,5,5) << "\n"; // works with either definition
    BOOST_CHECK(true); // prevent no-assertion error
}

BOOST_AUTO_TEST_SUITE_END()

For reference, I'm using g++ 4.4 (though for the moment I'm assuming this behaviour is standards-conformant).

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From what scope were you trying to use your operator<< ? –  Charles Bailey Jan 5 '11 at 12:30
    
@Charles: I've edited to add the test code. –  John Bartholomew Jan 5 '11 at 12:40
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2 Answers 2

up vote 6 down vote accepted

in argument dependent lookup (the correct name for koenig lookup) the compiler adds to the overloaded function set the functions which are declared in the namespaces of each parameter

In your case, the first operator<< is declared in the namespace thesus::core, which is the type of the argument you call the operator with. therefore this operator<< is considered for ADL because it's declared in an associated namespace

in the second case, the oeprator<< seems to be declared in the global namespace which is not an associated namespace as parameter one is of type from namespace std and param 2 is of type from namespace theseus::core

Actually, probably your 2nd operator<< isnt declared in global namespace as that would be found through looking in parent scopes.. maybe you've got osmething more like this ? if you can post more code we can give a better answer


ok i remembered, lookup doesnt lookup in parent scopes when it finds a name in the current scope. so hte boost macro BOOST_TEST_MESSAGE expands to include an operator<< and there is some in the scope tree a non-viable operator<< between the expression and global scope. i updated code to illustrate this (hopefully) #include

namespace NS1
{
  class A
  {};

  // this is found by expr in NS2 because of ADL
  std::ostream & operator<<(std::ostream &, NS1::A &);
}


// this is not seen because lookup for the expression in NS2::foo stops when it finds the operator<< in NS2
std::ostream & operator<<(std::ostream &, NS1::A &);

namespace NS2
{
   class B
   {};

  // if you comment this out lookup will look in the parent scope
  std::ostream & operator<<(std::ostream &, B &);

  void foo(NS1::A &a)
  {
      std::cout << a;
  }  

}

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2  
Exactly, and the global namespace is not associated because the boost unit-test stuff is not global. This is a feature to prevent non-intended injection of functions into template-code. –  ltjax Jan 5 '11 at 12:38
    
hmm.. ok global not associated, but a viable operator<< in global scope should be found by lookup through parent scopes no ? –  dancl Jan 5 '11 at 12:41
    
The second operator<< is declared in global namespace (it appears before any boost unit test macros that might affect scope). So why wouldn't parent scope lookup find it? –  John Bartholomew Jan 5 '11 at 12:42
1  
(unaccepted -- I'll re-accept when the parent/global scope thing has been cleared up) –  John Bartholomew Jan 5 '11 at 12:43
    
@dancl: Code formatting on SO works by indenting the code by four spaces, not by using <code>-tags. –  Björn Pollex Jan 5 '11 at 12:56
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Operator overloading is like a function but differs, and one of the differences is namespace lookup.

Like functions, operator overloads belong in a namespace, but scoping the way you scope a function would be impractical. Imagine if your code had to call

std::cout thesus::core::<< p; // ouch and obviously incorrect syntax

Therefore the << operator must be in the namespace of one of the parameters, either std (for the cout) or the namespace of the p, in this case thesus::core.

This is the Koenig Lookup principle. You must define the operator overload in the correct namespace.

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2  
The lookup rules for resolving overloaded operators are exactly the same as for overloaded functions. –  Charles Bailey Jan 5 '11 at 13:45
    
@Charles: Yes, though name hiding behaviour differs subtly. Well not so subtly, really... stackoverflow.com/q/24168137/560648 –  Lightness Races in Orbit Jun 11 at 17:10
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