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Why is the nested std::bind in the below code not implicitly converted to an std::function<void()> by any of the major compilers (VS2010/2012, gcc, clang)? Is this standard behavior, or a bug?

#include <functional>

void bar(int, std::function<void()>) { }
void foo() { }

int main()
{
    std::function<void(int, std::function<void()>)> func;
    func = std::bind(bar, 5, std::bind(foo));

    std::cin.get();
    return 0;
}
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1  
Because nested bind expressions are eagerly evaluated. In effect you're doing something akin to std::bind(bar, 5, void), which is nonsensical. –  ildjarn Nov 28 '12 at 22:56
1  
This doesn't answer the question but this: func = std::bind(bar, 5,foo); works as you expected. –  111111 Nov 28 '12 at 22:56
3  
What is it that you are trying to achieve? bar can be assigned directly to func, by binding the arguments you are creating a functor that can be called with no arguments (or any combination or arguments). With the current code (assuming it compiled) func would have to be called with an int and a std::function<void()>, both arguments would be ignored and that would trigger the execution of bar(5,foo)... –  David Rodríguez - dribeas Nov 28 '12 at 23:13
    
I realized this example was functionally wrong, but it displayed the compiler error I was asking about. –  Collin Dauphinee Nov 28 '12 at 23:21

1 Answer 1

up vote 3 down vote accepted

This is explained in the boost documentation:

The inner bind expressions are evaluated, in unspecified order, before the outer bind when the function object is called; the results of the evaluation are then substituted in their place when the outer bind is evaluated. In the example above, when the function object is called with the argument list (x), bind(g, _1)(x) is evaluated first, yielding g(x), and then bind(f, g(x))(x) is evaluated, yielding the final result f(g(x)).

Boost even provides protect to prevent this evaluation:

#include <boost/bind/protect.hpp>
...
func = std::bind(bar, 5, boost::protect(std::bind(foo)));

However, to call func you have to provide both arguments like this (thanks to David Rodríguez - dribeas for pointing that out), so this example is definitely not good:

func(1, std::function<void()>());
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Do boost::protect and std::bind play nicely together? I haven't tried, but I assumed they wouldn't... –  ildjarn Nov 28 '12 at 23:03
    
@ildjam: They do –  Collin Dauphinee Nov 28 '12 at 23:04
    
@ildjarn: boost::protect is nothing special really, it's just a perfect forwarding functor, if you so will. What's special is std::bind's return type, for which std::is_bind_expression is true. Depending on that trait, a functor is either eagerly evaluated, or just passed along normally. For the result of boost::protect, is_bind_expression derives from false_type. –  Xeo Nov 29 '12 at 2:31

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