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I have this code:

Typedef to function pointer

typedef bool(*tMyFunc)(tSomeTypeDef);

The function pointer is used to declare a member var to point to a callback function in an Obj-C class

@interface MyClass : NSObject
{
    tSomeTypeDef _someValue;
    tMyFunc _callback;
}

- (void) registerNotificationWithCallback:(tMyFunc)callback;
@end

@implementation MyClass

- (void) registerNotificationWithCallback:(tMyFunc)callback {
    _callback = callback;
}

- (void) didSomething:(NSNotification*)notification {
    if (_callback)
        _callback(_someValue);
}
@end

In a C++ class, I want to pass a functor in place of a tMyFunc function pointer

class MyOtherClass {
    MyClass* m_instance;
public:
    bool operator ()(tSomeTypeDef val);
}

MyOtherClass::MyOtherClass()
{
    //... init m_instance, then register callback as follows
    [m_instance registerNotificationWithCallback:*this];
}

bool MyOtherClass::operator ()(tSomeTypeDef val)
{
    return false;
}

It compile with the error

No viable conversion from 'MyOtherClass' to 'tMyFunc' (aka 'bool(*)(tSomeTypeDef)')

share|improve this question
    
Yes, that is correct. Function pointers have more restricted semantics than function objects. You want to have your class be implemented in terms of function objects, not function pointers. –  Dietmar Kühl Aug 25 '13 at 1:34
    
@DietmarKühl hmm, I don't want to use std::function to "typedef" a functor, I can't include stdlib in my build –  rraallvv Aug 25 '13 at 1:50
    
I didn't say anything about std::function although it is a solution to the problem you have. However, yes, my point is that you need to use a type-erased function object if you don't want to be restricted to use function pointers. Cooking up a custom version of std::function<void(T)> isn't too hard, though. –  Dietmar Kühl Aug 25 '13 at 1:55
    
@DietmarKühl Sure thing, thanks. –  rraallvv Aug 25 '13 at 1:59

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