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i'm trying to implement a simple array of function descriptors of type fun_desc

struct fun_desc {
  char *name;
  void (*fun)();
};

i have 2 function f1 and f2 both are of type coolFunct

typedef int (*coolFunct) (unsigned int);

my array is defined as follows

struct fun_desc funArr[]={{"f1", &f1}, {"f2",&f2}};

now i am trying to call a function in the array, i presume i need to cast it to coolFunct because it is of unspecified type (or am i wrong) but the next call doesn't work (no compile or runtime error, just nothing happens) :

((coolFunct)(funArr[0].fun))(1);

as always help is greatly appreciated thanks ...

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2  
Is there a compelling reason not to do struct fun_desc { char *name; int (*fun)(unsigned int); }; ? –  Chris Lutz Mar 7 '11 at 20:27
2  
or even use the typedef in the struct –  fizzer Mar 7 '11 at 20:29
    
Also, do these functions have visible side effects? Or are you/should you be collecting/displaying the return value? –  Chris Lutz Mar 7 '11 at 20:30
    
Works for me with gcc 4.4 even without the cast. What C compiler are you using? Have you tried stepping with a debugger? –  Emil Sit Mar 7 '11 at 20:32
    
@Emil - The cast is necessary. It's UB without. Also, without the cast the int return value is impossible to collect. –  Chris Lutz Mar 7 '11 at 20:35

2 Answers 2

up vote 1 down vote accepted

Use this syntax:

(*funArr[0].fun)();

Also, don't cast, your function types differ and things will crash, try this:

typedef int (*coolFunct) (unsigned int);

struct fun_desc {
  char *name;
  coolFunct fun;
};

(*funArr[0].fun)(1);

EDIT: If you actually want to cast, the syntax for calling is:

((coolFunct)funArr[0].fun)(1);
share|improve this answer
    
Wrong. a) You don't need to dereference before you call, and b) you need to cast back to the appropriate signature (the function is int (*)(unsigned) but you're calling it using a void (*)() which is UB) –  Chris Lutz Mar 7 '11 at 20:29
    
is there a way to implement this with a void * pointer ? trying to get the returned int value of the function i get : error: void value not ignored as it ought to be –  Matan Mar 7 '11 at 20:36
    
The cast is legal. The standard mandates that casting a function pointer type to another function pointer type and back again yields the original function. It is a common technique to create a "generic" function pointer type, cast all functions to this type for storage and then cast them back to the appropriate type to call them. –  Chris Lutz Mar 7 '11 at 20:37
    
@james t - It is unsafe by the C standard to store function pointers in a void * pointer (or any other object pointer) type. It's part of the POSIX standard and probably works on Windows, if that's "good enough" for you. But your method should be working. If it's not, the code in your program must be different from the sample code you've posted. –  Chris Lutz Mar 7 '11 at 20:39
    
a) habit, due to member fp's, and works. But yes, cleaner without the deref. b) The struct var signature is void(*)() - whether his function actually is using the typedef or the type from the struct remains to be seen. –  Erik Mar 7 '11 at 20:39

You need to cast the function pointers when you store them in the struct. Your compiler is supposed to give you a diagnostic for this. It's hard to see how it could be the source of your problems though.

#include <stdio.h>
typedef int (*coolFunct) (unsigned int);
typedef void (*whackFunct)();

int f1(unsigned i) { puts("f1"); return 1; }
int f2(unsigned i) { puts("f2"); return 2; }

struct fun_desc {
  char *name;
  void (*fun)();
};

struct fun_desc funArr[]={{"f1", (whackFunct)&f1}, {"f2", (whackFunct)&f2}};

int main()
{
    printf("function returned %d\n", ((coolFunct)funArr[0].fun)(1));
    return 0;
}
share|improve this answer
    
that took care of the warnings :-) –  Matan Mar 7 '11 at 21:00

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