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This question comes up in my mind when I look at the synopsis of pthread_create, which is:

int pthread_create(pthread_t *thread, const pthread_attr_t *attr,
                   void *(*start_routine) (void *), void *arg);

I don't understand why the third parameter has to be that complex. Its purpose is just for passing in a function address. So why don't they use

void (*start_routine)(void *)

or even

void (start_routine)(void *)

In general, in what situations should we use a function signature like the third parameter above?

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1  
In situations when you want the function passed to be able to return any sort of data via pointer. –  Ignacio Vazquez-Abrams Jul 30 '11 at 2:33

3 Answers 3

up vote 0 down vote accepted

The start_routine takes a void* to allow the thread starter to pass some arbitrary data to the new thread. It returns a void* so that the thread can return a meaningful exit code to the caller (instead of explicitly having to invoke pthread_exit from the thread function).

Note that your second suggestion (void (start_routine)(void*) is not a function pointer, and so isn't an option for a parameter to pthread_create or any other function at all.

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I see. So it is the purpose of returning an exit code that they use void* in front of the function pointer. Thank you very much. –  tsubasa Jul 30 '11 at 2:48
1  
void start_routine(void *) as a function parameter is converted to a function pointer (unless I'm badly mistaken). –  Chris Lutz Jul 30 '11 at 2:50
    
really? is it implicit converted? like parkovski answered below, I thought it is not even allowed to be parameter type. –  tsubasa Jul 30 '11 at 2:59
    
Just tested on GCC and it does accept it and treat it as a function pointer. However, it still returns void instead of void * and using the * is the more widely understood way to do it. –  parkovski Jul 30 '11 at 3:07
    
"Note that your second suggestion...is not a function pointer." That is not true: as a function parameter type, void (*)(void*) and void()(void*) are the same: the function type is implicitly transformed into its corresponding function-pointer type, in the same way that an array type is implicitly transformed into its corresponding element pointer type. –  James McNellis Jan 9 '12 at 4:04

C function pointer syntax is notoriously ugly and hard to understand. Basically the answer is that it has to be that way because that's how the designers of C decided to do it.

void *(*start_routine) (void *) refers to a pointer to a function, taking one parameter of type void *, and returning a void *.

The first example you gave, void (*start_routine)(void *) is also a function pointer, and also takes a void * parameter, but returns nothing.

The other example, void (start_routine)(void *) isn't a function pointer, and it doesn't return anything. The parenthesis don't really serve any purpose there, and it would be the same as writing void start_routine(void *) which I'm fairly sure is not allowed as a parameter type.

Edit: that one actually is allowed as a parameter, but it's not as widely used and still has the wrong return type.

Hope that clears things up.

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Let's see what cdecl has to say about that:

declare start_routine as pointer to function (pointer to void) returning pointer to void

The first void * means that the function returns a generic pointer. (*start_routine) means that the parameter is a pointer (to a function). (void *) means that the function takes a single argument, a generic pointer.

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+9001 for cdecl. –  Chris Lutz Jul 30 '11 at 2:51

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