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#include <iostream>
using namespace std;

class A {
    typedef int myInt;
    int k;
public:
    A(int i) : k(i) {}
    myInt getK();
};

myInt A::getK() { return k; }

int main (int argc, char * const argv[]) {
    A a(5);
    cout << a.getK() << endl;
    return 0;
}

myInt is not recognized by the compiler as an 'int' in this line:

myInt A::getK() { return k; }

How can I get the compiler to recognize myInt as int?

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up vote 12 down vote accepted

typedef creates synonyms, not new types, so myInt and int are already the same. The problem is scope — there is no myInt in a global scope, you have to use A::myInt outside of the class.

A::myInt A::getK() { return k; }
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1  
+1 although I might use alias instead of synonym – AJG85 Apr 20 '12 at 19:16

A::myInt A::getK() { return k; }

You have to qualify the typedef type because you created it inside the class A scope.

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Put the definition outside of the class.

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