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In the C++ code below, foobar is defined first for a single double parameter, and then again for a single parameter of type Foo. Both are defined within the global namespace.

Within the one namespace, a further overload of foobar is defined, with a single parameter of type Bar. From this version of foobar, an unqualified call to foobar with a double argument (42.0) will fail. A similar call to foobar, this time qualified with the (::) scope resolution operator, also with a double argument, will though succeed.

On the other hand, an unqualified call to foobar, with an argument of type Foo, succeeds. A call to foobar with a Foo argument, qualified by the scope resolution operator, also succeeds.

Why do the two scenarios behave differently? I use both gcc 4.7 and clang++ 3.2.

struct Foo {};
struct Bar {};

double foobar(double x) { return x; }
Foo    foobar(Foo f)    { return f; }

namespace one {

  Bar foobar(Bar b) {
    //foobar(42.0); // error: can't convert to Bar
    ::foobar(42.0);

    Foo f;
      foobar(f);    // no problem
    ::foobar(f);
    return b;
  }
};
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1 Answer 1

up vote 7 down vote accepted

Argument dependent lookup.

In the call foobar(f) functions from the namespace of Foo will be considered.

Doesn't work for double because that type is not declared in any namespace.

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As an addition to the last sentence: Unqualified name lookup stops as soon as it finds a matching name, first considering the local scopes and only if it doesn't find any name there it will search the upper and global scopes. –  Xeo Aug 8 '12 at 22:09
    
Thanks Bo. The link to ADL makes things clear. –  user2023370 Aug 8 '12 at 22:18
    
@Xeo: Would that not imply that the call to foobar(f) would fail upon finding foobar(Bar b)? –  user2023370 Aug 8 '12 at 22:39
    
@user643722: No. Since f is of class-type, ADL is done too, in addition to unqualified lookup. –  Xeo Aug 9 '12 at 7:32

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