I am finding the maximum value of a char by simple addition and testing for when the number goes negative:

#include<stdio.h>

/*find max value of char by adding*/
int main(){
  char c = 1;

  while(c + 1 > 0)
    ++c;

  printf("Max c = %d\n",(int)c);  /*outputs Max c = -128*/
  return 0;
}

The while loop tests ahead, so the first time c+1 is negative it breaks and we print the value of c. However, the programming is outputting the negative number!

Why doesn't this program output 127?

  • I would use limits.h for this. But if you insist, use int as counter and compare it with counter casted as char c != (char) c – KIIV Jul 25 '16 at 19:58
up vote 5 down vote accepted

There is an implicit cast occurring in the while conditional which is causing the comparison to work on ints rather than chars.

If you change it to

while((char)(c + 1) > 0)
    ++c;

then it will print 127.

  • 4
    Correct... except I think the correct terminology would be "integer promotion", not "implicit cast"...? – phonetagger Jul 25 '16 at 20:01
  • 1
    @phonetagger Thanks for the comment. My understanding is that integer promotion is a specific case of implicit casting, thus both terms are technically correct. – bgoldst Jul 25 '16 at 20:10
  • 1
    "Integer promotion" is searchable, in case anyone wants to find out more about it – anatolyg Jul 25 '16 at 20:19
  • 1
    There is no such thing as an "implicit cast". A cast is an explicit conversion; a cast operator consists of a type name in parentheses. A conversion not using a cast is an implicit conversion. – Keith Thompson Jul 25 '16 at 20:51

Signed integer overflow is undefined behavior. This means that a conforming C compiler is allowed to change c + 1 > 0 to true, because the addition "cannot" overflow.

This means that your program could legitimately be compiled to an endless loop.

  • While this may be true, it doesn't explain the behavior the OP observed. – phonetagger Jul 25 '16 at 20:13
  • This is only undefined if INT_MAX == CHAR_MAX. – EOF Jul 25 '16 at 20:23
  • 1
    @EOF - I'm not sure that's right. The right-hand side of the expression c + 1 is of type int and its left-hand-side is a smaller type, so the entire result of that expression is an int. So the comparison c + 1 > 0 is one int compared to zero (another int, but a special one). – phonetagger Jul 25 '16 at 20:33
  • @phonetagger: I'm not sure where you're going with that. The expression (c+1<0) is undefined if c+1 is evaluated at int-precision, and c is INT_MAX. If c is of type char, and char is equivalent to signed char, and INT_MAX == CHAR_MAX, this can indeed happen. If CHAR_MAX < INT_MAX, it cannot. – EOF Jul 25 '16 at 20:37
  • @EOF @phonetagger Either way, the ++c; in the loop body is still undefined (or maybe implementation defined) if char is signed and c is CHAR_MAX. – Dmitri Jul 25 '16 at 21:16

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