Function call operator [duplicate]
https://stackoverflow.com/questions/4689430
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11-10-2019 - |
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Possible Duplicates:
C++ Functors - and their uses.
Why override operator() ?
I've seen the use of operator() on STL containers but what is it and when do you use it?
Solution
That operator turns your object into functor. Here is nice example of how it is done.
Next example demonstrates how to implement a class to use it as a functor :
#include <iostream>
struct Multiply
{
double operator()( const double v1, const double v2 ) const
{
return v1 * v2;
}
};
int main ()
{
const double v1 = 3.3;
const double v2 = 2.0;
Multiply m;
std::cout << v1 << " * " << v2 << " = "
<< m( v1, v2 )
<< std::endl;
}
OTHER TIPS
It makes the object "callable" like a function. Unlike a function though, an object can hold state. Actually a function can do this in a weak sense, using a static local, but then that static local is permanently there for any call to that function made in any context by any thread.
With an object acting as a function, the state is a member of that object only and you can have other objects of the same class that have their own set of member variables.
The entirety of boost::bind (which was based on the old STL binders) is based on this concept.
The function has a fixed signature but often you need more parameters than are actually passed in the signature to perform the action.
