Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I was looking over some (C++) code and found something like this:

//Foo.cpp
namespace
{
    void SomeHelperFunctionA() {}
    void SomeHelperFunctionB() {}
    void SomeHelperFunctionC() {}

    //etc...    

    class SomeClass //<---
    {
        //Impl
    };
}

SomeHelperFunction[A-Z] are functions that are only needed in that translation unit, so I understand why they're in an anonymous namespace. Similarly, SomeClass is also only required in that translation unit, but I was under the impression that you could have classes with identical names in different translation units without any sort of naming collisions provided that you didn't have a global class declaration (e.g., in a commonly included header file).

I should also mention that this particular translation unit does not include any headers that might declare a class with an identical name (SomeClass).

So, given this information, could someone please shed some light on why the original programmer might have done this? Perhaps just as a precaution for the future?

I'll be honest, I've never seen classes used in anonymous namespaces before.

Thanks!

share|improve this question

4 Answers 4

up vote 7 down vote accepted

An anonymous namespace is like the static keyword when it is applied at the global level.

An anonymous namespace makes it so you can't call anything inside the namespace from another file.

Anonymous namespaces allow you to limit the scope of what's within to the current file only.

The programmer would have done this to avoid naming conflicts. No global names will conflict in this way at linking time.

Example:

File: test.cpp

namespace 
{
  void A()
  {
  }
  void B()
  {
  }
  void C()
  {
  }
}

void CallABC()
{ 
  A();
  B();
  C();
}

File: main.cpp

void CallABC();//You can use ABC from this file but not A, B and C

void A()
{
//Do something different
}

int main(int argc, char** argv)
{
  CallABC();
  A();//<--- calls the local file's A() not the other file. 
  return 0;
}

The above will compile fine. But if you tried to write an CallABC() function in your main you would have a linking error.

In this way you can't call A(), B() and C() functions individually, but you can call CallABC() that will call all of them one after the other.

You can forward declare CallABC() inside your main.cpp and call it. But you can't forward declare test.cpp's A(), B() nor C() inside your main.cpp as you will have a linking error.

As for why there is a class inside the namespace. It is to make sure no external files use this class. Something inside the .cpp probably uses that class.

share|improve this answer
    
Thanks Brian, I understand that an anonymous namespace creates a distinct namespace with a unique name which prevents this. But how does this internal/external linkage business apply to classes? Sorry if I wasn't clear in my question. –  CIU5_8 Jul 18 '09 at 16:16
    
Added more information about that. –  Brian R. Bondy Jul 18 '09 at 16:28
    
Marked as answered; more effort, and more complete. ;) Thanks. –  CIU5_8 Jul 18 '09 at 16:42
    
Edit: test.cpp's function is called "CallABC", whereas all other code refers to it as "ABC" -- could you update one or the others? Thanks! –  Kim Gräsman Jul 18 '09 at 20:37
    
Thanks @Kim. Corrected. –  Brian R. Bondy Jul 18 '09 at 20:44

If someone links this code and has the definition of an identical named class included and this file is linked before the other implementation you would have a name conflict.

share|improve this answer
    
Well, that makes more sense now. Thanks! –  CIU5_8 Jul 18 '09 at 16:20
    
Assuming the class is not defined within the anonymous namespace, that is?? –  HelloGoodbye Aug 27 '13 at 11:34

In the C++ ISO standard (Section 2.3), you will find a rule called The One Definition Rule.

Due to the complex relationship in C++ between compilation and linking, this is not a very simple rule. Most of the details are here.

But it applies to the functions that are members of a class, because they are (at the linking level) simply functions with long names.

It applies in a slightly different way to templates, because the linker will happily discard extra definitions of template classes or functions that appear in separate translation units (source files). This means that if you provide two different definitions of the same template, your program has undefined behaviour (best case scenario: one of the definitions will be silently chosen at random).

share|improve this answer

I was under the impression that you could have classes with identical names in different translation units without any sort of naming collisions provided that you didn't have a global class declaration

Well, that's not the case. Remember that those "common" global class definitions are in header files. Those are literally included, copying that common global class definition to all translation units. If you use another way of including exactly the same class definitions in multiple translation units (eg. macro expansion), it's fine too. But if you have different definitions for the same class name, you risk undefined behavior. Link failures if you're lucky.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.