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what's the meaning of this piece of code? void (*signal(int sig, void (*func)(int)))(int);

I have complex declaration which have taken from "signal.h" header file ,below is the declaration

  void (*signal(int sig, void (*func)(int)))(int); 

Now How I parse it as

signal is function taking two arguments ‘sig’ of int type and ‘func’, which is a pointer to a function taking int as an argument and returns void type; it returns a pointer to the function taking int as argument and returning void.

Is it ok or signal is a pointer to function?

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marked as duplicate by Jens Gustedt, Flexo, Daenyth, Neil G, Malcolm Feb 29 '12 at 22:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
But this is where i got confused from joyofprogramming.com/Docs_ColumnArticles/36-JoP-Dec-09.pdf –  Amit Singh Tomar Feb 29 '12 at 14:29
    
typedef int foo(void): foo is a pointer to function, but you can shortcut it and say it is a function, because you can do foo x; x(); –  Benoit Feb 29 '12 at 14:32
    
@Benoit can you please add it as your answer? –  Amit Singh Tomar Feb 29 '12 at 14:33
    
I'm not sure on what basis my question got closed ,what I have asked is different from what's being asked before. –  Amit Singh Tomar Mar 1 '12 at 7:46
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5 Answers 5

up vote 55 down vote accepted

Start with the leftmost identifier and work your way out, remembering that [] and () bind before *, so *a[] is an array of pointers, (*a)[] is a pointer to an array, *f() is a function returning a pointer, and (*f)() is a pointer to a function:

       signal                                     -- signal
       signal(                          )         -- is a function
       signal(    sig,                  )         -- with a parameter named sig
       signal(int sig,                  )         --   of type int
       signal(int sig,        func      )         -- and a parameter named func
       signal(int sig,      (*func)     )         --   which is a pointer
       signal(int sig,      (*func)(   ))         --   to a function
       signal(int sig,      (*func)(int))         --     taking an int parameter
       signal(int sig, void (*func)(int))         --     and returning void
      *signal(int sig, void (*func)(int))         -- returning a pointer
     (*signal(int sig, void (*func)(int)))(   )   -- to a function
     (*signal(int sig, void (*func)(int)))(int)   --   taking an int parameter
void (*signal(int sig, void (*func)(int)))(int);  --   and returning void

signal associates a signal handler function func with a signal sig, and returns the pointer to the old signal handler function:

void new_interrupt_handler(int sig)
{
  ... // do something interesting with interrupt signal
}

int main(void)
{
  void (*old_interrupt_handler)(int);
  ...
  /**
   * Set up our new interrupt handler
   */
  old_interrupt_handler = signal(SIGINT, new_interrupt_handler);
  ...
  /**
   * Restore original interrupt handler
   */
  signal(SIGINT, old_interrupt_handler);
  ...
}
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4  
+1 Very nice, step by step explanation. –  watbywbarif Feb 29 '12 at 14:46
    
Thanks @John for your thoughts but some users here opposing it and saying signal is pointer to function . –  Amit Singh Tomar Feb 29 '12 at 14:51
    
@Amit - In Aaron's case, the string he fed to cdecl is not what you wrote in your question. –  John Bode Feb 29 '12 at 15:00
    
+1 One of the reasons why you use typedef for function pointers: it's easier on the brain. :) –  netcoder Feb 29 '12 at 16:33
1  
@netcoder: It can certainly make declarations like this easier to read, but I like knowing what the function signature looks like without having to search for the typedef. sighandler func; doesn't tell me how to use func, whereas void (*func)(int); does. –  John Bode Feb 29 '12 at 16:42
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Using cdecl.org, you get

declare signal as function (int, pointer to function (int) returning void) returning pointer to function (int) returning void

for the input

void (*signal(int, void(*)(int)))(int)

This means signal is a function. The result of of calling signal is pointer to a function void f(int).

Explanation: The signal() call installs a new signal handler and returns the old signal handler (so you can restore it later if you want to).

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But in my context its different ,is n't it? –  Amit Singh Tomar Feb 29 '12 at 14:36
    
@Aaron - you didn't enter the same declaration as the OP. –  John Bode Feb 29 '12 at 14:56
    
@JohnBode: You're right. Fixed. –  Aaron Digulla Feb 29 '12 at 15:14
    
+1 for linking to cdecl.org –  J. C. Salomon Feb 29 '12 at 21:48
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signal is a function which takes two parameters and returns a pointer to a function which takes an int as the parameter and returns void.

The two parameters that signal takes are an int and a pointer to a function which takes int as a parameter and returns void.

And yes, you got the description and the overall idea right.

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No that's right. signal takes 2 arguments, an int and a pointer to a function and returns a pointer to a function (with the same signature as the func argument.)

It's similar to the (imo) more readable:

typedef void (*sig_func)(int);
sig_func signal(int sig, sig_func func);
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GNU calls it sighandler_t, libc4 and libc5 call it SignalHandler and glibc calls it sig_t, BTW. ;) –  Gandaro Feb 29 '12 at 14:49
    
This is how you should write the code. If you aren't using typedef when declaring something so obscure as "a function pointer to a function taking function pointers as parameter", then you are evil and possibly quite daft. –  Lundin Feb 29 '12 at 14:56
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void (*signal(int, void (*)(int)))(int);  

       signal(                  )         // signal is a function
              int, void (*)(int)          // the parameter types of the function:
                                          //    an int and a function pointer (take int, return void)
void (*                          )(int);  // the return type of the function:
                                          //    a function pointer (take int, return void)

// Edit referring to John's answer.

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Now how signal is pointer to function ? –  Amit Singh Tomar Feb 29 '12 at 14:39
    
it tells signal is function returning pointer. –  Amit Singh Tomar Feb 29 '12 at 14:42
    
Its really confusing now ,most of the answer says its function returning pointer and you are saying different. –  Amit Singh Tomar Feb 29 '12 at 14:46
    
Like I said in my answer, () binds before *, so *f() is a function returning a pointer, not a pointer to a function. The form of the declaration for signal includes *signal(...), so signal is definitely a function returning a pointer. –  John Bode Feb 29 '12 at 14:57
    
Thank you @JohnBode for you nice explanation. I edited my was-wrong answer. –  Ade YU Feb 29 '12 at 15:02
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