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typedef void int_void(int);

int_void is a function taking an integer and returning nothing.

My question is: can it be used "alone", without a pointer? That is, is it possible to use it as simply int_void and not int_void*?

typedef void int_void(int);
int_void test;

This code compiles. But can test be somehow used or assigned to something (without a cast)?


/* Even this does not work (error: assignment of function) */
typedef void int_void(int);
int_void test, test2;
test = test2;
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Have you tried actually compiling something like this? If so, what were the results? What was the actual source code? –  FrustratedWithFormsDesigner Feb 19 '10 at 14:44
    
Like I said in the question, it compiles. The actual source code is this. Just wrap it in int main(). –  Andreas Bonini Feb 19 '10 at 14:45
    
Notice that there is a restriction of what can be done with such a type. You are not allowed to use a dependent type for a function declaration that doesn't use the function declarator syntax: template<typename T> struct f { T g; } ... f<void()> s; this is ill-formed rather than declaring a member function of type void(), because T is a dependent function type. –  Johannes Schaub - litb Feb 19 '10 at 16:04

6 Answers 6

up vote 6 down vote accepted

What happens is that you get a shorter declaration for functions.

You can call test, but you will need an actual test() function.

You cannot assign anything to test because it is a label, essentially a constant value.

You can also use int_void to define a function pointer as Neil shows.


Example

typedef void int_void(int);

int main()
{
    int_void test; /* Forward declaration of test, equivalent to:
                    * void test(int); */
    test(5);
}

void test(int abc)
{
}
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Thanks! That's a really cool way to confuse people! I added the testcase I wrote to make sure what you said actually worked, I hope you don't mind –  Andreas Bonini Feb 19 '10 at 15:01
    
No, thank you. Alas, I can't figure a way to use it for the function itself, though. It would be cool to be able to eg. pthread_entryfn a { –  jbcreix Feb 19 '10 at 15:08
3  
It should be pointed out that the typedef can be used to declare a function, but it cannot be used to define the function, which is why in the example above the declaration of test and the definition look nothing alike. As far as I know, all other typedef'ed names can be used for both declaration and definition. –  Michael Burr Feb 19 '10 at 15:13
2  
@Andreas, not only it can confuse people, but also GCC: try struct foo { void f(); }; typedef void ftype(); struct bar { friend ftype foo::f; }; and see GCC failing. –  Johannes Schaub - litb Feb 19 '10 at 15:47
    
@Johannes: +1 even though if we had a +1 for every gcc bug we'd all be moderator gods.. ;-) –  R.. Oct 19 '10 at 4:31

You are not declaring a variable; you are making a forward declaration of a function.

typedef void int_void(int);
int_void test;

is equivalent to

void test(int);
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Pointers to functions are values in C/C++. Functions are not.

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It can be used in the following cases (out of the top of my head):

  • generic code:

    boost::function<int_void> func;

  • other typedefs:

    typedef int_void* int_void_ptr;

  • declarations:

    void add_callback(int_void* callback);

There may be others.

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I think it's legal - the following demonstrates its use:

typedef void f(int);

void t( int a ) {
}

int main() {
    f * p = t;
    p(1); // call t(1)
}

and actually, this C++ code compiles (with g++) & runs - I'm really not sure how kosher it is though.

#include <stdio.h>

typedef void f(int);

void t( int a ) {
    printf( "val is %d\n", a );
}

int main() {
    f & p = t;   // note reference not pointer
    p(1);
}
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Yes, I'm aware that you can use it as a pointer, but I specifically asked if it can be used without one :P (And, if not, why I can define a variable of that type) My question is: can it be used "alone", without a pointer? That is, is it possible to use it as simply int_void and not int_void*? –  Andreas Bonini Feb 19 '10 at 14:53
    
@Andreas No. What would it mean? –  anon Feb 19 '10 at 14:54
    
It is definitely kosher. Shorter form of void(&p)() = t; –  Johannes Schaub - litb Feb 19 '10 at 15:45
    
@Johannes But how come I can initialise a reference with a pointer? –  anon Feb 19 '10 at 15:51
    
@Neil, it's not a pointer but it's a function. The function-to-pointer conversion is done only when needed, like with arrays. As written, t is an lvalue and has type void(int). –  Johannes Schaub - litb Feb 19 '10 at 15:52

This should work, no casting required:

void f(int x) { printf("%d\n", x); }

int main(int argc, const char ** argv)
{
    typedef void (*int_void)(int);
    int_void test = f;
    ...
 }

A function's name "devolves" into a function pointer anytime you use the function's name in something other than a function call. If is is being assigned to a func ptr of the same type, you don't need a cast.

The original

typedef int_void(int);

is not useful by itself, without using a pointer to the type. So the answer to your question is "no, you can't use that typedef without a pointer".

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