0

For gcc 9.3.0, when I try to print it as

int x = 0x7fffffff;
printf("%d", !(x+x+1+1));

it gives me 0. But when I try to print it as

int temp = (x+x+1+1);
temp = !temp;
printf("%d", temp);

it gives me 1 as expected. What happens?

  • 4
    x+x is int overflow and undefined behavior. Expectations are not supported by C. – chux - Reinstate Monica Aug 4 at 3:29
  • @JonathanLeffler As OP said "1 as expected", I assert the result of 0 or 1 as an expected result is not supported due to the UB in both. – chux - Reinstate Monica Aug 4 at 3:36
  • Signed integer overflow in C is, indeed, undefined behavior, but unsigned integer "overflow" is well defined, and is going to behave the way you expect here. – Boris Lipschitz Aug 4 at 4:14

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