87

I was wondering how to properly check if an std::function is empty. Consider this example:

class Test {
    std::function<void(int a)> eventFunc;

    void registerEvent(std::function<void(int a)> e) {
        eventFunc = e;
    }

    void doSomething() {
        ...
        eventFunc(42);
    }
};

This code compiles just fine in MSVC but if I call doSomething() without initializing the eventFunc the code obviously crashes. That's expected but I was wondering what is the value of the eventFunc? The debugger says 'empty'. So I fixed that using simple if statement:

   void doSomething() {
        ...
        if (eventFunc) {
            eventFunc(42);
        }
   }

This works but I am still wondering what is the value of non-initialized std::function? I would like to write if (eventFunc != nullptr) but std::function is (obviously) not a pointer.

Why the pure if works? What's the magic behind it? And, is it the correct way how to check it?

  • 7
    Note that eventFunc isn't a lambda; it's a std::function. You can store lambdas in std::functions, but they're not the same thing. – templatetypedef Feb 16 '14 at 2:56
  • 3
    You are right, I changed the title to avoid confusion. Thanks. – NightElfik Feb 16 '14 at 18:38
91

You're not checking for an empty lambda, but whether the std::function has a callable target stored in it. The check is well-defined and works because of std::function::operator bool which allows for implicit conversion to bool in contexts where boolean values are required (such as the conditional expression in an if statement).

Besides, the notion of an empty lambda doesn't really make sense. Behind the scenes the compiler converts a lambda expression into a struct (or class) definition, with the variables you capture stored as data members of this struct. A public function call operator is also defined, which is what allows you to invoke the lambda. So what would an empty lambda be?


You can also write if(eventFunc != nullptr) if you wish to, it's equivalent to the code you have in the question. std::function defines operator== and operator!= overloads for comparing with a nullptr_t.

  • 1
    Doesn't == nullptr do the same thing, though? It looks like there's supposed to be an overload for the == operator that causes an "empty" std::function to compare true against nullptr: cplusplus.com/reference/functional/function/operators – Kyle Strand Jun 20 '15 at 0:54
  • 3
    @KyleStrand Yes, comparing to nullptr will work too, if(eventFunc != nullptr) is equivalent to if(eventFunc) in the question above. – Praetorian Jun 20 '15 at 1:09
  • 2
    Technically, std::function::operator bool does not allow implicit conversion to bool. It is marked explicit after all, but the standard makes an exception for certain language constructs that expect boolean expressions, calling it "contextually converted to bool." You can find the relevant snippet of standardese and an explanation here: chris-sharpe.blogspot.com/2013/07/… – bcrist Jun 20 '15 at 6:57
  • @bcrist Yep, I'm aware that the boolean conversion operator is explicit, that's why i was careful to state allows for implicit conversion to bool in contexts where boolean values are required. This is exactly what's happening in the code in question. – Praetorian Jun 20 '15 at 7:18
  • 5
    @Praetorian The point I'm trying to make is that the standard assigns a very specific meaning to the phrase "implicit conversion", and it is distinctly different from "contextual conversion to bool," which also has a very specific meaning. There is no "Is-a" relationship here. I understand that beginners probably don't need to know the difference between implicit/explicit/contextual conversion right away, but it's better to learn the right words subconsciously, than have to break old habits later. – bcrist Jun 20 '15 at 14:40
19

Check here http://www.cplusplus.com/reference/functional/function/operator_bool/

Example

// function::operator bool example
#include <iostream>     // std::cout
#include <functional>   // std::function, std::plus

int main () {
  std::function<int(int,int)> foo,bar;
  foo = std::plus<int>();

  foo.swap(bar);

  std::cout << "foo is " << (foo ? "callable" : "not callable") << ".\n";
  std::cout << "bar is " << (bar ? "callable" : "not callable") << ".\n";

  return 0;
}

Output

foo is not callable.

bar is callable.

  • 17
    I think this answer would be more clear without the swap(). I was thinking the output was backwards until I realized it. – cp.engr Apr 17 '18 at 14:05

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