4

I am having trouble understanding c++ namespaces. Consider the following example:

//distr.h

namespace bogus{
    extern const int x;
    extern const int y;
    double made_up_distr(unsigned param);
}

Now if I define my variables like the cpp below everything compiles fine

//distr.cpp

#include "distr.h"
#include <cmath>

const int bogus::x = 10;   
const int bogus::y = 100;

double bogus::made_up_distr(unsigned param){
    auto pdf = (exp(param) / bogus::x) + bogus::y;
    return pdf;
}

But if I try to simply bring in the bogus namespace and use instead

//broken distr.cpp

#include "distr.h"
#include <cmath>

using namespace bogus;

const int x = 10;
const int y = 100;

double made_up_distr(unsigned param){
    auto pdf = (exp(param) / x) + y;
    return pdf;
}

My compiler tells me that the reference to x and y is ambiguous. Why is that?

  • 1
    I think it is because x and y in the second case might also be a separate definition not necessarily bogus::x and bogus::y. I mean compiler thinks that you want to define a different x and y, but at the same time bogus::x and bogus::y are also visible. So it is unable to decide and emits an error. – A. K. Jul 22 '13 at 14:53
  • WARNING: You must use EXTERN for both defines of const variables in C++!!! This is different from C!!! – Neil Kirk Jul 22 '13 at 15:56
  • extern const int bogus::x = 10; – Neil Kirk Jul 22 '13 at 15:57
  • @NeilKirk Not necessary in this case, because the extern inherits from the declaration in the namespace. (extern const int x;) – zwol Jul 23 '13 at 21:20
6

There's a simple reason why this can't plausibly work the way you expected:

namespace bogus {
    const int x;
}
namespace heinous {
    const int x;
}

using namespace bogus;
using namespace heinous;

const int x = 10;

now, should x above refer to bogus::x, heinous::x or a new global ::x? It would be the third without the using statements, which means here that adding a using statement would change the meaning of existing code in a particularly subtle way.

The using statement is used to introduce the contents of a scope (usually but not necessarily a namespace) for lookup. The statement

const int x = 10;

wouldn't normally require a lookup in the first place, except to detect an ODR violation.

1

Name lookup for the identifier in declarations/definitions doesn't work the same way as name lookup in usage. In particular, it doesn't care about using statements. There is a very simple reason for this: if it were different, it would lead to all sorts of nasty surprises. Consider this:

// sneakattack.h
namespace sneakattack { void foo(); }
using namespace sneakattack;

// somefile.cpp
#include "sneakattack.h"
void foo() { std::cout << "Hello\n"; }

// otherfile.cpp
void foo();
int main() { foo(); }

This program currently works: the declaration sneakattack::foo is ignored, and the definition ::foo is correctly linked to the use in otherfile. But if name lookup worked differently, somefile would suddenly define sneakattack::foo, not ::foo, and the program would fail to link.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.