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#include <functional>
#include <iostream>

struct Test
{
    void fnc(int & a) { ++a; }
};

int main ()
{
    typedef std::function<void(int)> Func;

    int i = 0;
    Test t;
    Func f = std::bind(&Test::fnc, &t, std::ref(i));
    //f(); //error C2064: term does not evaluate to a function taking 0 arguments
    f(37); //Here I am forced to pass evidently unused int
    std::cout << i;
}

Do I use it right?

Is it really necessary to pass some random int?

If so, why is that? Is that because the magic of templates is limited, and I actually must pass int to function taking int OR is it by design for some purposes? (e.g. to force user not to forget how the declaration of the function already looks like?)

I use vs2012

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2 Answers 2

up vote 4 down vote accepted

No no no: What you have is a function taking zero arguments, because everything is bound already! You want one of the following two:

std::function<void()> f = std::bind(&Test::fnc, &t, std::ref(i));

std::function<void(int&)> g = std::bind(&Test::fnc, &t, std::placeholders::_1);

Now the following two effect t.fnc(i):

f();  // OK, bound to `i` always.

g(i); // Same effect

Note that if possible you should declare the bound functions as auto, which is more efficient. And a third option is a closure expression, [&i,&t](){t.fnc(i);}.

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Thank you, Kerrek –  relaxxx Aug 31 '12 at 21:20
    
One question, is it possible to pass by ref but provide the variable during the call, not during binding? Or if I do not want to copy whole object (int here is wrong example) I use placeholders but with pointers? –  relaxxx Aug 31 '12 at 21:37
    
@relaxxx: Doesn't g precisely fit those requirements? (Note the correction I just made; it takes a reference now.) –  Kerrek SB Aug 31 '12 at 21:39
    
Oh, yes it does. I had just stack this in my head: en.cppreference.com/w/cpp/utility/functional/bind Notes The arguments to bind are copied or moved, and are never passed by reference unless wrapped in std::ref or std::cref. Did I understand it wrong, or is it wrong? –  relaxxx Aug 31 '12 at 21:46
    
Oh! Arguments to BIND... I understand it now :) I should get some sleep :) Thank you very much for your help –  relaxxx Aug 31 '12 at 21:47

There are two places where you have to look at arguments: in the call to bind(), where the arguments become part of the bind object, and in the call to the bind object itself, where the arguments are passed to placeholders that were established in the original call to bind(). In the example here, there are no placeholders in the call to bind(), so there is no need for any arguments in the call to the bind object. If you call it with more arguments than it needs, the extra ones are ignored.

The code here adds a layer to the bind object by wrapping it in a std::function object. The signature defined for the std::function object (here, std::function<void(int)>) determines how to call that object: it takes an argument of type int and passes that value to the bind object, which ignores it.

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thank you, Pete –  relaxxx Sep 1 '12 at 13:43

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