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According to the C++ Primer book, the author mentioned that We can specify a class member function as a friend of another class, instead of the entire class (page 634).

Then, I tested this code:

class A
{
public:
    friend void B::fB(A& a);
    void fA(){}
};
class B
{
public:
    void fB(A& a){};
    void fB2(A& a){};
};

I just wanted the fB() to be friend of class A, not the entire class B. But the about code produced an error: 'B' : is not a class or namespace name. (I am using Visual C++ 2005)

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2 Answers

up vote 3 down vote accepted

Try putting the B definition before A's:

class A; // forward declaration of A needed by B

class B
{
public:
    // if these require full definition of A, then put body in implementation file
    void fB(A& a); // Note: no body, unlike original.
    void fB2(A& a); // no body.
};

class A
{
public:
    friend void B::fB(A& a);
    void fA(){}
};

A needs the full definition of B. However, B needs to know about A, but does not need the full definition, so you need the forward declaration of A.

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But if in fB(A& a) I use a to access variable in A for instance, a.variable; that would be illegal because A had no been defined yet. –  ipkiss May 11 '12 at 7:27
    
@ipkiss yes, because then you would need the full definition if you that in the header class declaration. But if you did it in a separate implementation file, you could include the full declaration of A. –  juanchopanza May 11 '12 at 7:30
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For this to work, the full definition of B needs to be known before the definition of A.

So forward declare A, since B doesn't need the full type, and switch the definitions around:

class A;
class B
{
public:
    void fB(A& a){};
    void fB2(A& a){};
};
class A
{
public:
    friend void B::fB(A& a);
    void fA(){}
};
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