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i have to use exit(1) command in a function. Does it have anything to do with the return data type of the function in which it is being used?

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1 Answer 1

up vote 4 down vote accepted

No. The exit function never returns but instead terminates the process it's called from. The C compiler has no intuitive understanding of it and treats it like any other void returning function.

This does mean though that while exit will end your function the C compiler doesn't see it that way. Hence it will still want a valid return else it will spit out warnings /errors (with a high enough error level enabled). But this is easy enough to work around

int myFunc() {
  ...
  exit(exitCode);
  return 42;  // Never hit but keeps C compiler happy
}
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1  
+1 for returning 42. I'd give another +1 for the good answer however it's not possible. –  sidyll Oct 20 '11 at 18:57
    
Correct. But note that the argument to exit() is used as the exit status for your program -- and the meaning of that status code is system-specific. On Unix-like systems, exit(1); denotes failure; on VMS, it denotes success. Use exit(EXIT_SUCCESS); for success, exit(EXIT_FAILURE); for failure (declared in <stdlib.h>, which you should be #includeing anyway if you're calling exit()). (As a special case, exit(0); always indicates success.) exit(N); is equivalent to return N; in main(). –  Keith Thompson Oct 20 '11 at 21:35

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