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Like the title says, I want to know what "(int (*)())" in a C-define-function-call means?

As example, it looks similar to this:

#define Bla(x)    (Char *) read((char *(*)()) Blub, (char **) x)

or this

#define XXX(nx, id)     PEM_ASN1_write_bio((int (*)()) id, (char *) nx)

Thank you in advance!

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5 Answers 5

up vote 9 down vote accepted

The casts the argument to a pointer to a function that returns char * and takes zero or more arguments. The second function returns int.

You can use a program (and website, now) called "cdecl" to help with these, it says:

  • (char *(*)()): cast unknown_name into pointer to function returning pointer to char
  • (int (*)()): cast unknown_name into pointer to function returning int
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In fact, cdecl cannot parse these –  intgr Nov 25 '09 at 14:51
1  
Great website, btw. –  JSBձոգչ Nov 25 '09 at 14:52
    
@intgr: cdecl works just fine here.. –  Michael Foukarakis Nov 25 '09 at 14:56
    
@JS Bangs: I agree! Just to be clear, I have no affiliation with it at all, just found it when trying to answer this question. :) –  unwind Nov 25 '09 at 15:01
    
cdecl also converts english like sentences into C declaration . e.g. 'declare p as pointer to integer' will give you 'int *p ' as output. –  atv Nov 25 '09 at 17:38

The easiest way of deciphering complex C expressions is to start with the innermost expression, then in an anti-clockwise pattern move on to the next. (int (*)())

  1. (*) A Pointer, anti-clockwise motion hits on (, then move on again to hit on )
  2. (*)() A pointer to function, move on to (, then move on again to )
  3. int (*)() A pointer to a function returning int, move on to int, then move on to hit on )
  4. (int (*)()) finally move on to (, and there you have it,

A pointer to a function returning int, since it is wrapped in the outer () is because of the macro.

Hope this helps, Best regards, Tom

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It means that the first argument of read, named Blub is a pointer to a function that returns a char * and receives no arguments.

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(int (*)()) is a typecast operator, which is to say you ask the compiler to behave as if the expression on its right were of type int (*)(). As others have indicated, the type in question means "a pointer to a function accepting any arguments, and returning an int".

To understand the type itself, you first need to understand the weird way in which variables are declared in C: in most languages, the syntax for variable declarations is constructed from the syntax for type specifications, but in C, in a way, it's the other way around.

If you were to declare a variable containing a pointer to such a function, you would write:

int (*fp)();

meaning that an expression resembling (*fp)() would be of type int: "take fp, dereference it, call that with any arguments and you will get an int".

Now, in order to obtain a typecast operator for the type of fp in the above declaration, lose the identifier and add parentheses around: you get (int (*)()).

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First one says that read takes "a function pointer that returns a char pointer" as first argument and "pointer to a char pointer" as second argument. If you want to do Bla, just write Bla(x), I ll handle de read part!

Second one says that, first parameter to PEM_ASN1_write_bio must be "a function pointer returning an int". And the second argument is "a pointer to a char". And you can use XXX(a,b) instead of PEM_ASN1_write_bio(b,a), thats all

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