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say I have a C++ function

int foo(int x, int y){
   return x+y ;
}

Is there a way to create a "parameterized" version of this function?

What I mean is that starting from foo() I would like to define function pointers that have y fixed to a specific values, the equivalent of creating the function foo2() like this:

int foo2(int x){
  return foo(x,2);
}

If not with function pointers, which can be an alternative to have a similar behaviour?

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std::bind / boost::bind ? –  ForEveR Oct 8 '12 at 8:14

4 Answers 4

up vote 6 down vote accepted

You can fix (or curry) function arguments using std::bind.

For example, foo2 could be

auto foo2 = std::bind(foo, std::placeholders::_1, 2);

You could read this as:

A call to foo2 is like a call to foo where the first argument is the first argument to the foo2 call and the second argument is 2.

The could be done with a lambda function:

auto foo2 = [] (int x) { return foo(x, 2); }

See the above in action.

Finally, if you cannot use C++11 then there's the equivalent boost::bind.

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Thanks. So what I am looking for is called "binding" in programming? Also, I would like to avoid boost libraries. To your knowledge does g++ with -std=c+11 flag support binding? –  lucacerone Oct 8 '12 at 9:43
    
@LucaCerone: Binding is one term that you can use, but "fixing arguments" and "currying" are better if you are searching for it. g++ supports C++11, so it does support these solutions (I 've added a link to live code). –  Jon Oct 8 '12 at 10:10
    
Thanks Jon, unfortunately my compiler doesn't support C++11 yet. (It's gcc 4.6, c++11 support has been introduced in 4.7.. I'll try to update, but I don't want to risk that my older program have problems...) –  lucacerone Oct 8 '12 at 11:28
    
@LucaCerone: For C++03 the simplest solution is to use boost::bind, which uses almost exactly the same syntax (you will need to specify the type of the return value -- use boost::function<int(int)> as the type and see here for more info). Alternatively you can use standard C++03 syntax as per tozka's answer, but that works only for simple cases and is a little bit less readable. –  Jon Oct 8 '12 at 11:35

You can overload the function with

int foo(int x) {
    return foo(x,2);
}

and you will have the same name... or the default argument solution...

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Function pointers do not support anything of the sort. In fact, all they do support is pointing to static functions. Don't ever use them for callbacks, use std::function instead or a template.

You can use std::bind or a lambda to achieve this goal. But you won't get out a function pointer, only a function object, which you can use through the proper abstraction (template or std::function).

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You can use std::bind for instance:

std::bind2nd (std::ptr_fun (foo), arg2) (arg1) // replace second argument
std::bind1st (std::ptr_fun (foo), arg1) (arg2) // replace/bind first argument

you can also assign it to variable:

auto fun = std::bind1st (std::ptr_fun (foo), 2);
auto fun = std::bind2nd (std::ptr_fun (foo), 2);

or if your compiler does not support C++11

typedef std::binder1st<std::pointer_to_binary_function<int, int, int>> fun_type;
fun_type fun = std::bind1st (std::ptr_fun (foo), 2); // foo (2, arg2);


typedef std::binder2nd<std::pointer_to_binary_function<int, int, int>> fun_type2;
fun_type2 fun = std::bind2nd (std::ptr_fun (foo), 2); // foo (arg1, 2);

and then call it

fun (arg);
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thanks @tozka, I find your answer a bit hard to follow, though I could get the general idea.. –  lucacerone Oct 8 '12 at 9:44

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