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A while back I found that it's possible to write a C++ function that takes a parameter of function type (not function pointer type!). For example here's a function that takes a callback function that accepts and returns a double:

void MyFunction(double function(double));

My question is what it means to have a variable of function type, since you can't declare one in any other context. Semantically, how is it different from a function pointer or reference to a function? Is there an important difference between function pointers and variables of function type that I should be aware of?

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I've never seen C++ like that before. – The Communist Duck Mar 18 '11 at 19:09
    
As far as I know it's not possible in C++. Can you give a example wher this was possible? – Pradeep Nayak Mar 18 '11 at 19:14
    
This is one of those things like array shorthand arrData == &arrData[0] but I haven't seen it since boost::function showed up on the seen and when lambda functions are fully supported that'll change things too. – AJG85 Mar 18 '11 at 19:35
up vote 13 down vote accepted

Just like void f(int x[]) is the same as void f(int* x), the following two are identical:

void MyFunction(double function(double)); 
void MyFunction(double (*function)(double)); 

Or, in official language (C++03 8.3.5/3), when determining the type of a function,

After determining the type of each parameter, any parameter of type "array of T" or "function returning T" is adjusted to be "pointer to T" or "pointer to function returning T," respectively.

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Awesome! That perfectly answers my question. – templatetypedef Mar 18 '11 at 19:18
    
+1 for the quotation. That is very cogent! – Nawaz Mar 18 '11 at 19:43
3  
There are rare occasions where the ISO Standard is clear and understandable. – James McNellis Mar 18 '11 at 20:10

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