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I have the following problem:

"list.c"

struct nmlist_element_s {
    void *data;
    struct nmlist_element_s *next;
};

struct nmlist_s {
    nmlist_element *head;
    nmlist_element *tail;
    unsigned int size;
    void (*destructor)(void *data);
    int (*match)(const void *e1, const void *e2);
};

/*** Other code ***/

What will be the signature for a function that returns 'destructor' from the structure ? For example the signature of the function that returns 'size' is:

unsigned int nmlist_size(nmlist *list);

What will be the case for 'destructor' .

share|improve this question
    
Trying to write C++ in C? I do not envy you. – T.E.D. Mar 26 '10 at 14:01
    
@T.E.D. Actually is very mind refreshing :). – Andrei Ciobanu Mar 26 '10 at 14:38
up vote 3 down vote accepted

General form:

void (*get_destructor())(void *data);

Exact form will depend on what parameters get_destructor is supposed to take. If you're just returning the destructor pointer from an instance of struct nmlist_s, then it will look like

void (*get_destructor(struct nmlist_s list))(void *data);
share|improve this answer
    
Thanks, the syntax is a little strange, but this is what I was looking for. – Andrei Ciobanu Mar 26 '10 at 13:41
2  
@nomemory: The syntax is inductive. It reads as: get_destructor is such that when applied some parameters (hence get_destructor is a function) it returns something on which * can be applied (the function returns a pointer). The result of that * is something on which a parameter of type void * can be applied (the pointer is a pointer to a function). Apply that parameter yields something of type void, i.e. nothing. To sum up: get_destructor is a function which takes some unspecified parameters and returns a pointer to a function which takes a void * and returns nothing. – Thomas Pornin Mar 26 '10 at 13:57
    
@Thomas Pornin , thanks for your clarification, now thing are clear. – Andrei Ciobanu Mar 26 '10 at 14:01

This will work:

typedef void (*Destructor)(void *data);
Destructor getDestructor();
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