2

Please tell me what will the call to given function return and how? The code:

typedef struct {
    int size;
    ptrdiff_t index;
    void (*inlet) ();
    int argsize;
    ptrdiff_t argindex;
} CilkProcInfo;


/*
 * Returns a pointer to the slow version for a procedure
 * whose signature is p.
 */

/* the function definition is - */
static void (*get_proc_slow(CilkProcInfo *p)) () {
     return p[0].inlet;
}

/*The function gets called as -*/
   (get_proc_slow(f->sig)) (ws, f);
/*where f->sig is a pointer to CilkProcInfo struct*/
2
  • 4
    A fine example of how awful the inside-out C type syntax is. – starblue Oct 28 '09 at 8:21
  • This is the reason function pointers are often declared with a typedef. – Josh Lee Oct 28 '09 at 8:24
5

In your CilkProcInfo structure, inlet is a pointer to a function that takes an unspecified number of arguments and does not return a value, like void foo();.

In the line

(get_proc_slow(f->sig)) (ws, f);

the get_proc_slow(f->sig) call returns this function pointer, so it is equivalent to

(f->sig[0].inlet) (ws, f);

So if your f->sig[0].inlet points to the function foo(), it is equivalent to the call

foo (ws, f);

I should admit that the static void (*get_proc_slow(CilkProcInfo *p)) () {... syntax is a bit unfamiliar to me.

7
  • static void (*get_proc_slow(CilkProcInfo *p)) () is the same as: typedef void (proc_sig)(); static proc_sig * get_proc_slow(CilkProcInfo *p); – Adrien Plisson Oct 28 '09 at 8:04
  • I am a bit confused.. if foo() doesn't take any parameters how you could pass ws and f as params? Isn't that a compiler error? – Naveen Oct 28 '09 at 8:13
  • 3
    No. void (*inlet)() is a pointer to a function taking unspecified arguments and returning no value, not no arguments. – CB Bailey Oct 28 '09 at 8:14
  • @iWerner: You can always edit your post to include corrections. – CB Bailey Oct 28 '09 at 9:19
  • Isn't there a type mismatch between what is returned by the function and what is in declaration? I mean that the declaration says - void, but it actually returns a pointer to a function. – Swapnil Oct 28 '09 at 10:15
1

get_proc_slow() returns a function pointer of type void(*)() which the code then calls. So when you do:

(get_proc_slow(f->sig)) (ws, f);

It's basically same as doing:

void (*fptr)() = get_proc_slow(f->sig);
fptr(ws, f);
0

It looks like it's a function that returns a pointer to a function whose return value is void that has no parameters (void(*)()) and that accepts a pointer to a CilkProcInfo struct as a parameter. I'm not sure why you'd need the p[0].inlet construct though. Couldn't you just return it as p->inlet?

Oh yeah, and get_proc_slow is the name of the function that returns said function pointer.

1
  • As it has already been noted in other comments, () parameter list in C does not mean "has no parameters`. It means "unspecified number of parameters". – AnT Oct 28 '09 at 10:08
0
static void (*get_proc_slow(CilkProcInfo *p)) () {
     return p[0].inlet;
}

Reading from the name out, taking care with the grammar rules: get_proc_slow is a function (with internal linkage) that takes a pointer to a CilkProcInfo struct and returns a pointer to a function taking unspecified arguments and returning no value (void).

(get_proc_slow(f->sig)) (ws, f);

This statement calls the get_proc_slow with an appropriate parameter (f->sig is a pointer to a CilkProcInfo) and then uses the return value (a pointer to a function) to call that function with ws and f as arguments.

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