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I'm reading a lot about "typedef functions", but I getting casting errors when I try to call this one. What's the correct syntax to call this function?

typedef ::com::Type* Func(const char* c, int i);
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5  
There is no function here, so there's nothing to call. The statement defines Func as a type, not a function. –  Pete Becker Jan 17 '13 at 19:09
    
The syntax is invalid from what I understand. typedef ::com::Type (*Func)(const char* c, int i); would be closer to being valid. –  andre Jan 17 '13 at 19:29
1  
@ahenderson: There's absolutely nothing invalid about this specific syntax. It is perfectly legal to define a typedef name for a function type (as opposed to pointer to function type) in C++ (and in C). –  AndreyT Jan 17 '13 at 19:51
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3 Answers 3

up vote 2 down vote accepted

There's no function in your code. There's only a type name Func that stands for function type. There's nothing to call there.

The name Func, as defined in your question, can be used in several different ways.

For example, you can use it to declare a function

Func foo;

The above is equivalent to declaring

::com::Type* foo(const char*, int);

This will also work for member function declarations. (However, you can't use it to define a function).

For another example, you can use it when declaring a pointer to a function, by adding an explicit *

Func *ptr = &some_other_function;

The above is equivalent to declaring

::com::Type* (*ptr)(const char*, int) = &some_other_function;

For yet another example, you can use it as a parameter type in another function

void bar(Func foo)

in which case the function type will automatically decay to function pointer type, meaning that the above declaration of bar is equivalent to

void bar(Func *foo)

and equivalent to

void bar(::com::Type* (*foo)(const char*, int));

And so on.

In other words, show us what your are trying to do with it. As is your question is too broad to be answered specifically.

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I was just trying to understand somebody else code. Looks like it's missing an "implementation" (if I can call it this) for that function. Thanks for the detailed explanation. –  Tom Brito Jan 23 '13 at 12:00
    
@Tom Brito: Well, once again, what you have in your original post is not a function. It cannot have an "implementation". There's nothing to "implement" there. Your declaration declares a type, not a function. Types don't have "implementations". –  AndreyT Jan 23 '13 at 18:18
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that statement makes Func a type. Then you'll have to say Func *f = anotherFunc given another func is defined as : ::com::Type* anotherFunc(const char *c, int i){ /*body*/ }

Then you can call f("hello", 0) and it should work.

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Yes you're right @AndreyT I must change that to Func* thanks a bunch :) –  Aniket Jan 17 '13 at 19:19
    
So there must be another function that implements it (your anotherFunc)? Becouse I've searched all the code for it, and looks like there isn't... :( –  Tom Brito Jan 17 '13 at 19:30
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typedef function syntax:

#include <iostream>
using namespace std;

int add(int a, int b) {return a+b;}

typedef int(*F)(int a, int b);

int main() {
    F f = add;
    cout  << f(1,2) << endl;
    return 0;
}

The break down of typedef int(*F)(int a, int b);

  • The type name is F in brackets
  • Return type is the int at the beginning.
  • The parameters are (int, int)

Usage F f = &add;:

  • F is our type.
  • f is the variable name.
  • add is the function with the correct signature.

A valid syntax in your case would be: typedef ::com::Type (*Func)(const char* c, int i);

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dont need & ---> F f=add; –  qPCR4vir Jan 17 '13 at 19:23
    
@qPCR4vir Nicely spotted. Removed. –  andre Jan 17 '13 at 19:25
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