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I have this class with a foo method and the main method where I have a few variables and a print statement.

public static boolean foo(int x, boolean b) {
    if (x < 0) {
          return true;
    }
    return !b; 
}

Say I print the following:

foo (-3, c || !c)

I'm having trouble understanding what the || is supposed to do. I declared boolean c = false in main, but I don't see how it can choose to input c (false) or !c (true). Also, side-question: the exclamation point in front of a boolean variable will just give the opposite right? i.e. if the input was false, and foo returns !b, it'd return true?

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It doesn't choose. || is a logical operator. true || false evaluates to true, because at least one is true. –  Diego Basch Dec 7 '12 at 21:43

5 Answers 5

up vote 3 down vote accepted

It's a tautology so to speak, always true.

c || !c means: "c OR not c". One of these is always true.

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I don't see how it can choose to input c (false) or !c (true)

It's not "choosing to input" two different possibilities. It's passing the value that is the result of evaluating c || !c, a single boolean.

Note: x || !x will always evaluate to true, for any boolean value of x.

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I'm going to bed, but perhaps you can expand on evaluation order and side effects, if functions are used. –  Prof. Falken Dec 7 '12 at 21:45

c || !c will always be true - you might as well replace the code with

foo (-3, true)
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If you declared c as:

 boolean c = false;// or true

then c || !c will always result into true.

so you method call foo (-3, c || !c) is nothing but equivalent to foo (-3, true)

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"||" means OR, so any x || !x will always return true, no matter whether you declare x as false or true.

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