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I cannot find out how to bind a parameter to an overloaded function using std::bind. Somehow std::bind cannot deduce the overloaded type (for its template parameters). If I do not overload the function everything works. Code below:

#include <iostream>
#include <functional>
#include <cmath>

using namespace std;
using namespace std::placeholders;

double f(double x) 
{
    return x;
}

// std::bind works if this overloaded is commented out
float f(float x) 
{
    return x;
}

// want to bind to `f(2)`, for the double(double) version

int main()
{

    // none of the lines below compile:

    // auto f_binder = std::bind(f, static_cast<double>(2));

    // auto f_binder = bind((std::function<double(double)>)f, \
    //  static_cast<double>(2));

    // auto f_binder = bind<std::function<double(double)>>(f, \
    //  static_cast<double>(2));

    // auto f_binder = bind<std::function<double(double)>>\
    // ((std::function<double(double)>)f,\
    //  static_cast<double>(2));

    // cout << f_binder() << endl; // should output 2
}

My understanding is that std::bind cannot deduce somehow its template parameters, since f is overloaded, but I cannot figure out how to specify them. I tried 4 possible ways in the code (commented lines), none works. How can I specify the type of function for std::bind? Any help is much appreciated!

share|improve this question
    
Just note that std::function has the same problem std::bind does. It can't know which f you mean. –  chris Jul 21 '14 at 20:55
    
@chris, right, it makes a lot of sense now, thank you –  vsoftco Jul 21 '14 at 20:58
1  
@Jarod42, You can use just 2 as well. Because std::bind knows that the function takes a double, the int can be converted. –  chris Jul 21 '14 at 21:01
3  
One of the advantages of lambda expressions over std::bind is that lambdas need not separate naming from overload resolution. []{ return f(2.0); } is far more comprehensible than std::bind(static_cast<double(*)(double)>(f), 2.0). –  Casey Jul 21 '14 at 21:06
1  
@BenjaminLindley, ok, in C++14 you can have initialized lambda captures and that solves the problem, that is, can do something like auto generator_int = [x = 0]() mutable ->int {return x++;}; –  vsoftco Jul 21 '14 at 21:59

1 Answer 1

up vote 9 down vote accepted

You may use:

auto f_binder = std::bind(static_cast<double(&)(double)>(f), 2.);

or

auto f_binder = bind<double(double)>(f, 2.);
share|improve this answer
    
Yes, this was the only thing I didn't try :) For some reason I thought that I tried the second version, but I didn't, since both work. PS: the pointer-to-function works also. Thanks! –  vsoftco Jul 21 '14 at 20:55
1  
The second syntax is quite clean, I like it. –  Germán Diago Jul 22 '14 at 6:52

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