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    #include <stdio.h>

    int main()
    {
        int x = 0;

        if (x++)
            printf("true\n");
        else if (x == 1)
            printf("false\n");
        return 0;
    }

Output:

false

Why is the output false?

x++ is post increment; this means that the value of x is used then it is incremented. If it is so, then x=0 should be used and the answer should be true.

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1  
Because try ++x and you'll know. –  Maroun Maroun Jan 29 '14 at 15:13
    
At one time, this was marked as a duplicate of Post-increment operator behaviour but (as I noted in April 2014 in a comment I've since removed), the content of the duplicate is about undefined behaviour from using both i and ++i in two arguments to a function call — which is not a good match or this question, therefore (even though the title is a good match). This question has no undefined behaviour. –  Jonathan Leffler Jan 1 at 3:11

5 Answers 5

up vote 5 down vote accepted

In C, 0 is treated as false. In x++, the value of x, i.e, 0 is used in the expression and it becomes

if(0)  // It is false
    printf("true\n");  

The body of if doesn't get executed. After that x is now 1. Now the condition in else if, i.e, x == 1 is checked. since x is 1 , this condition evaluates to true and hence its body gets executed and prints "false".

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Post increment means that it returns the current value (in this case for the purpose of the if) and increments it afterwards. It is equivalent to

if(x) {
  x++;
  // ...
} else {
  x++;
  // ...
}
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0 is equivalent to false in C. As you are using post-increment operator, condition is evaluated before increment so x is false and printf("true\n"); is never executed. Then goes to else and succeeds evaluating x == 1, then prints false.

As a good practice, try to avoid assignations in condition sentences.

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0 is false in C. You're using the post-increment operator.

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You yourself wrote: "x++ is post increment, this means that the value of x is used then it is incremented"

Consider what that means:

  1. x is 0

  2. The expression is evaluated, 0 is false, so the expression is false.

  3. The post increment happens, changing x from 0 to 1.
    (After the expression was evaluated)

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