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I have the following C++ classes. The question is in red.. Appreciate any help !!

in xyz.h

class xyz {
public:
    static int abc();
};

in qwe.h

#include xyz.h

namespace xyz {

class qwe{
public:
    void bnm() {
        int value = xyz::abc();

    }
};

}

How do I access xyz::abc() here, I get a compilation error here saying abc is not a member of xyz. I understand the reason that its trying to search for the abc method inside this xyz namespace whereas what it should ideally get is a static method in the xyz class..

But is there a way to get around this without changing the namespace names and all?

Thanks

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What happens if you use a namespace alias before defining the class? namespace xyz xyzns; should cause xyzns to become an alias for the xyz namespace. –  Kevin Ballard Sep 25 '12 at 21:20
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4 Answers 4

up vote 5 down vote accepted

Don't make a class with the same name as a namespace (or its own namespace for that matter).

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1  
well thanks but the code is already written by someone else and i am just trying to append my line or code. –  Puneet Mittal Sep 25 '12 at 21:12
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In your particular case there is no direct solution. Altough C++ has a concept of elaborated type specifier, in particular:

xyz       ab;   // The defn is ambiguous.
class xyz ab;   // The ambiguity is resolved.

You can aslo try this:

class xyz dummy;
int value = dummy.abc();

C++ allows calling static methods using syntax of the instance methods.

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In the special case that the file xyz.h is really simple and depend on little else, you can do this:

namespace othername {
   #include "xyz.h"
}

and then use

othername::xyz::abc();
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namespace hack = xyz;
hack::abc();
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