59

I've been confused with what I see on most C programs that has unfamiliar function declaration for me.

void *func_name(void *param){
    ...
}

What does * imply for the function? My understanding about (*) in a variable type is that it creates a pointer to another variable thus it can be able to track what address at which the latter variable is stored in the memory. But in this case of a function, I don't know what this * asterisk implies.

  • 5
    It would be very interesting question to ask the person who wrote the code why they put the asterisk next to the name of the function, rather than void* func_name or void * func_name. If they can come up with a rational argument why, I would be impressed. – Lundin Jan 18 '12 at 15:28
  • 9
    Rational argument: because we're used to writing "int *a", so it seems more consistent to do the same for functions – Guillaume Jan 18 '12 at 16:28
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    In addition to what Guillaume wrote the comming out of the function is a pointer that is to void. same as with int *a it is a pointing to a integer not that a is of type integer-pointer. – dhein Jul 17 '15 at 9:49
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    @Guillaume idiotic stuff. Because my teacher thought like you, I always got confused with pointers. Why the hell would we write int *a in the first place, here like declaration in C++ goes: [type] [name]. a is variable of type "pointer to int", why the hell would we put a asterisk on the other side of a space? It has nothing to do with name, it refers to TYPE, a is of "POINTER TO INT" type. I asked my teacher exact same question 10 years ago, that OP wrote, what the hell is asterisk before function name, what does it have to do with function name? – Roman Apr 18 '16 at 14:08
  • @Zaibis exactly a is of type integer-pointer, but this is how it's said the right way: a is of type POINTER TO INTEGER – Roman Apr 18 '16 at 14:13
69

The asterisk belongs to the return type, and not to the function name, i.e.:

void* func_name(void *param) { . . . . . }

It means that the function returns a void pointer.

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    thanks for the answers guys but what does a void pointer mean? – Aldee Jan 18 '12 at 13:55
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    It's just an address to a location in memory. You don't know what it points to - it's up to you to cast the pointer to a proper type that you can later use. Of course, casting it to an invalid type (for example, let's say that void* points to a float, but you cast it to a char) will produce undefined results. – Daniel Kamil Kozar Jan 18 '12 at 13:56
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    @AldeeMativo: Also, see stackoverflow.com/questions/692564/… – NPE Jan 18 '12 at 13:57
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    @DanielKamilKozar In C we don't cast pointers-to-void. We simply assign them. That's how it is standardized to work. (Unlike C++, which is a totally different beast.) – Jens Aug 5 '14 at 20:53
  • @Jens : true, of course. Thanks for pointing this out. Thankfully, my knowledge has improved since then. :) – Daniel Kamil Kozar Aug 6 '14 at 13:35
17

The * refers to the return type of the function, which is void *.

When you declare a pointer variable, it is the same thing to put the * close to the variable name or the variable type:

int *a;
int* a;

I personally consider the first choice more clear because if you want to define multiple pointers using the , separator, you will have to repeat the * each time:

int *a, *b;

Using the "close to type syntax" can be misleading in this case, because if you write:

int* a, b;

You are declaring a pointer to int (a) and an int (b).

So, you'll find that syntax in function return types too!

  • yeah. I also think that way. thanks @puller.. – Aldee Jan 18 '12 at 14:37
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    "if you want to define multiple pointers using the , operator". This is considered poor programming style since it leads to bugs when combining pointers and variables of the same type. The solution isn't to obfuscate the way you declare pointers, the solution is to declare every variable on a line of its own. There does not exist any case where it makes sense to declare several variables on the same row. What are you trying to achieve by doing so, save keyboard presses? Clearly, wear and tear of the keyboard is a more serious matter than readability of the code... – Lundin Jan 18 '12 at 15:35
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    I never said I do that. I said that is a reason to prefer the "close-to-variable-name" syntax, because it never creates confusion. And I said that is a possible explanation for the same syntax used in function interfaces. – Vincenzo Pii Jan 18 '12 at 16:45
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    if you want to define multiple pointers using the , operator, you will have to repeat the * each time: int *a, *b; In that context, the comma is a separator, not an operator. – Dan Jan 19 '12 at 3:24
  • @Dan, thanks, fixed it. – Vincenzo Pii Jan 19 '12 at 7:37
10

The * belongs to the return type. This function returns void *, a pointer to some memory location of unspecified type.

A pointer is a variable type by itself that has the address of some memory location as its value. The different pointer types in C represent the different types that you expect to reside at the memory location the pointer variable refers to. So a int * is expected to refer to a location that can be interpreted as a int. But a void * is a pointer type that refers to a memory location of unspecified type. You will have to cast such a void pointer to be able to access the data at the memory location it refers to.

5

It means that the function returns a void*.

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