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using namespace boost;

typedef void (*PtrFunc)(any& );

how to understand above code sample about typedef in c++?

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It's defining a function pointer. –  Nick May 9 '13 at 8:41
    
It's defining a type named PtrFunc: a pointer to a function which accepts a reference to any as its argument and returns void. –  M M. May 9 '13 at 8:42
1  
By reading a good book which would explain how pointers to functions are formed. This one in particular makes PtrFunc a pointer to function taking any& and returning void). –  Angew May 9 '13 at 8:42

2 Answers 2

This code is declaring a typedef called PtrFunc which is a function type which takes a single parameter of type boost::any&

You can use it like:

void myFunc(any&)
{
    ....
}

PtrFunc pointerToMyFunc = myFunc;
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This is a pointer to a function returning void and accepting boost:any& as its sole argument.

It can be used like this:

void someFunction(any& arg)
{
    // ...
}

int main() {
    PtrFunc fn = someFunction;
    // ...
    fn(...);

    // You can also do this without a typedef
    void (*other_fn)(any&) = someFunction;
    other_fn(...);

    return 0;
}

See this article for a complete guide to reading type declarations in C (and, consequently, C++).

Also, this article provides some ASCII art!

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