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The following function uses int as the second argument type,

memchr(const void *buf, int ch, size_t count);

Though it is used for a character type. Why is the function defined to use int for the argument of char type? Are there any special reasons for this?

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You might also want to read this which is basically the same question. stackoverflow.com/questions/5919735/… –  tangrs Apr 3 '13 at 21:45
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3 Answers 3

up vote 1 down vote accepted

It is so because this a a very "old" standard function, which existed from the very early times of C language evolution.

Old versions of C did not have such things as function prototypes. Functions were either left undeclared, or declared with "unknown" parameter list, e.g.

void *memchr();

When calling such functions, all argument were subjected to automatic argument promotions, which means that such functions never received argument values of type char or short. Such arguments were always automatically promoted to type int and the function itself actually received an int. (This is still true in modern C for functions declared without prototype.)

When eventually C language developed to the point where prototype function declaration were introduced, it was important to align the new declarations with legacy behavior of standard functions and with already compiled legacy libraries.

This is the reason why you will never see such types as char or short in argument lists of legacy function declarations. For the very same reason you won't see type float used there either.

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Because char, signed char, and unsigned char are three distinct types. On a specific implementation you don't know whether char is signed or unsigned.

Except in rare systems (see Keith's note), the type int comprises all the values those three types can have.

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And EOF too.... –  user529758 Apr 3 '13 at 21:44
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EOF is not a char :) –  pmg Apr 3 '13 at 21:45
    
On most systems. If sizeof (int) == 1 (implying CHAR_BIT >= 16), then int may not be able to hold all values of type unsigned char. Such systems are rare. –  Keith Thompson Apr 3 '13 at 21:46
    
@pmg That's why I completed "char, signed char and unsigned char" with EOF. –  user529758 Apr 3 '13 at 21:48
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All of the standard functions that deal in characters do. I think the reason is partly historical (in some pre-standard versions of C, a function couldn't take a char or unsigned char argument, just like varargs arguments can't have character type) and partly for consistency across all such functions.

There are a few character-handling functions that have to use int in order to allow for the possibility of EOF, but memchr isn't one of them.

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Did you really mean "EOL"? –  Keith Thompson Apr 3 '13 at 21:47
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@Keith: no, I do not –  Steve Jessop Apr 3 '13 at 21:48
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