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I have something resembling the following setup:

namespace MyNamespace
{
    enum MyEnum{
        Type1,
        Type2
    };

    class MyClass
    {
        private:
            void MyFunction( MyEnum::Type1 );
    };
}

I would have assumed that since both MyEnum and MyClass are within MyNAmespace, using the enumerated types within the class wouldn't be a problem, but when I try to compile it I get the following error:

'MyEnum::Type1' is not a type

How can I fix this so I can use my enum and class in the same namespace?

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3  
MyEnum::Type1 is an enum value, not a type, as your compiler is saying. –  Mat Mar 28 '12 at 14:57
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3 Answers

up vote 1 down vote accepted

MyEnum is how you would reference it.

namespace MyNamespace
{
    enum MyEnum{
        Type1,
        Type2
    };

    class MyClass
    {
        private:
            void MyFunction( MyEnum );
    };
}

where the definition might look like this:

namespace MyNamespace
{
  void MyClass::MyFunction( MyEnum val) {
    if (val == Type1)
      std::cout << "Type1" << std::endl;
  }
}
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MyEnum::Type1 is not a type. It is a value. Try this:

void MyFunction( MyEnum );
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Typedef your enum

typedef enum _MyEnum{ Type1, Typ2}MyEnum;
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This is totally not necessary in C++ and _MyEnum is a reserved name. –  R. Martinho Fernandes Mar 28 '12 at 15:06
    
Yeah i completly mixed up things. I mixed up with adding enum in class to access through class, like: MyClass::Type1. Sorry –  grifos Mar 28 '12 at 16:23
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