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Possible Duplicate:
double negation in C : is it guaranteed to return 0/1?

int main(void)
{
  int i = 2, j = 1;

  printf("%d", !!i +!j);
  return 0;
}

From what I understand, the !! turns the expression into a bool, so is it saying since i not equal to 2 the value is 0 + j which is not equal to 1 the value is 0, and since 0 is equal to false it reads: false + false = true which represents the value of 1. Please help I am new to C programming.

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marked as duplicate by Nemo, Carl Norum, amalloy, Jason Sturges, Kevin Jul 17 '12 at 2:20

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.

    
@Nemo, good find. – Carl Norum Jul 16 '12 at 23:45

C doesn't have a boolean type (well, C99 and newer do, but there's nothing in your program that uses it).

! is just a unary operator that turns 0 into 1 and anything else into 0. So in your case, since i is 2, !i is 0, and !!i is 1. j is 1, so !j is 0. That leaves !!i + !j to be be 1 + 0, and you're printing 1. Try out this example program to see it in action:

#include <stdio.h>

int main(void)
{
    int i = 2, j = 1;

    printf("i = %d, j = %d\n", i, j);
    printf("!i = %d, !!i = %d\n", !i, !!i);
    printf("!j = %d\n", !j);
    printf("!!i + !j = %d + %d = %d\n", !!i, !j, !!i + !j);
    return 0;
}
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!x is 0 if x is true (i.e. not equal to 0) or 1 if x is false (i.e. equal to 0). Since your example i is 2, !i will be 0 and thus !!i will be 1. Likewise !j will be 0. So the result of the expression will be 1 + 0 = 1.

Note that there are no circumstances under which 0 + 0 (i.e. false + false) would equal 1.

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Here's what the specification states about the ! operator (C99 §6.5.3.3/5). The terse last sentence is all that is really required to understand its behavior:

The result of the logical negation operator !is 0 if the value of its operand compares unequal to 0, 1 if the value of its operand compares equal to 0.

The result has type int.

The expression !E is equivalent to (0==E).

We can use the transformation from the third sentence to evaluate your expression, !!i + !j. The transformation becomes:

(0 == (0 == i)) + (0 == j)

and we can evaluate it as follows:

(0 == (0 == 2)) + (0 == 1) // substitute the variable values
(0 == (0     )) + (0 == 1) // 0 == 2 is false, so it becomes 0
(0 == (0     )) + (0     ) // 0 == 1 is false, so it becomes 0
(1            ) + (0)      // 0 == 0 is true, so it becomes 1
 1                         // 1 + 0 is 1
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