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I'm trying to pass a function from a derived class to a base class function which expects a function pointer, but I'm getting a compiler error.

[BCC32 Error] E2034 Cannot convert 'void (Bar::*)(int)' to 'void (Foo::*)(int)'

I guess this is as designed, but is there a way around this that doesn't involve unpleasant casting? Can boost::bind help me here?

#define CALL_MEMBER_FN(object,ptrToMember)  ((object).*(ptrToMember))

class Foo
{
public:
  typedef void (Foo::*FFunc)(int i);

  void test(FFunc f)
  {
    CALL_MEMBER_FN(*this,f)(123);
  }

  void barf1(int i) {};
};

class Bar : public Foo
{
public:
  void barf2(int i) {};
};

void ffff()
{
  Foo f;
  f.test(Foo::barf1); // works

  Bar b;
  b.test(Bar::barf1); // works
  b.test(Bar::barf2); // ERROR
}

As a side note, I have this working fine using a virtual function, which is the obvious approach rather than a function pointer, but I'm just trying to get it working this way before attempting some boost::bind trickery later...

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If you have a C++11 compiler, maybe you can use std::function together with std::bind? –  Joachim Pileborg Jan 10 '12 at 13:12
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3 Answers 3

b.test( ( Foo::FFunc )&Bar::barf2 );

Sorry, didn't mean to submit it as answer, wanted to comment. Sample code.

EDIT: Well, maybe this is more "pleasant" casting, since it's C++ style? Updated sample.

b.test( static_cast< Foo::FFunc >(&Bar::barf2) );

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Well yes, that works. but that's sort of the "unpleasant casting" I was hoping to avoid! –  Roddy Jan 10 '12 at 13:32
    
@Roddy You can use static_cast, that's totally valid C++ cast. I mean, I bet boost::bind uses such casting things internally somewhere... –  Petr Budnik Jan 10 '12 at 13:38
    
Are you sure that's valid c++? From what I remember casting a function (or member function) pointer to a different type and then trying to call it is illegal. It might work in this case, since the cast from b to Foo* (when calling test) is probably a noop, but I think that is not guaranteed (and won't work if multiple or virtual inheritance was involved). –  Grizzly Jan 10 '12 at 14:13
    
@Grizzly There is no cast from Bar* to Foo* when calling test. test is a member of Bar... The thing I called "valid C++ cast" is static_cast on functions that have same signature. If you declare void barf2( float); compiler won't let you static_cast it. –  Petr Budnik Jan 10 '12 at 14:52
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As well, as my knowledge of c++11 && bost && stl are not the best, I can only advise this:

 template <typename T>
    void test(void (T::*f)(int))
  {
    CALL_MEMBER_FN(static_cast<T&>(*this),f)(123);
  }

All other code same to yours.

Bad casting, but it is hidden

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Can you generalise the function pointer a bit more? I mean something like this:

typedef void (Foo::*FFunc)(int i);

to:

typedef void (*FFunc)(int i);

Then you can use bind:

b.test(bind(&Bar::barf2, &b));
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1  
No you can't since bind (I assume you mean boost::bind or std::bind, otherwise please elaborate) returns a functor object and not a function pointer. typedef function<void(int)> FFunc; should work though (but with lots of overhead of course). ` –  Grizzly Jan 10 '12 at 14:09
    
You are right, my mistake. I use boost:function, not function pointers. bind won't work with pointer. –  tsv.dimitrov Jan 10 '12 at 14:11
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