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In the Google JavaScript style guide, it says not to use wrapper objects for primitive types. It says it's "dangerous" to do so. To prove its point, it uses the example:

var x = new Boolean(false);
if (x) {
  alert('hi');  // Shows 'hi'.
}

OK, I give up. Why is the if code being executed here?

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3  
Because Boolean(false) === !(new Boolean(false)). And Boolean(false) === new Boolean(false).valueOf(). –  katspaugh Jul 29 '11 at 18:11
    
@katspaugh: that makes it much clearer -- thanks. –  Bill Jul 29 '11 at 18:20

3 Answers 3

up vote 7 down vote accepted

Because every variable that is typeof Object is truthy and wrappers are objects.

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So basically you're saying that x is not being assigned the value false as I thought it was. It's being assigned an "object", which evaluates to true. –  Bill Jul 29 '11 at 18:16
    
Yes, an object that wraps the value, but as it is an object, it is truthy. –  marc Jul 30 '11 at 16:21
1  
typeof null -> "object", !!null -> false. Correct me if I'm wrong, but I believe nulls are falsy objects and a rather important exception to the above stated absolute rule. –  Patrick Apr 3 '13 at 20:40
    
@Patrick null isn't an object. See this. –  Matt Fenwick Mar 5 at 23:15
    
@MattFenwick I should have just said "nulls are falsy" and excluded the word "objects". Otherwise, I believe my comment still makes sense in context. Just because you have an x such that typeof x yields "object" is not a valid way to check that x is truthy. –  Patrick Mar 7 at 18:24

if(x) will run if x is truthy.

x is truthy is it's not falsey.

x is falsey if x is null, undefined, 0, "", false

So since new Boolean(false) is an Object and an Object is truthy, the block runs

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In the if(x) case, it's actually evaluating the default Boolean of the object named and not its value of false.

So be careful using Boolean objects instead of Boolean values. =)

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