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What does “options = options || {}” mean in Javascript?

I stumbled upon this line, and can't seem to figure out what it means

var G = G || {};

Any ideas?

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marked as duplicate by BalusC, squint, Andreas Köberle, James Allardice, qwertymk Feb 6 '12 at 19:57

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.

3 Answers

up vote 3 down vote accepted

If G is currently any "falsey" value, then the object literal will be assigned to G.

The "falsey" values are...

  • undefined
  • null
  • ''
  • NaN
  • false
  • 0

The operator being used is the logical OR operator.

The way it works is that it evaluates its left operand first. If that operand has a "truthy" value (any non-falsey value), it returns it, and doesn't evaluate (short-circuits) the second operand.

If the left operand was "falsey", then it returns its right operand, irrespective of its value.


Example where G is falsey...

//      v--- Evaluate G. The value of G is the "falsey" value undefined...
var G = G || {};
//            ^--- ...so evaluate and return the right hand operand.

Example where G is truthy...

G = 123;

//      v--- Evaluate G. The value of G is a "truthy" value 123...
var G = G || {};
//      ^--- ...so return 123, and do not evaluate the right hand operand.
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That's what I guessed, but it makes no sense to me, because of the "var" part. I mean, the G variable is defined in the same line, what's the point of giving it the value of G||{}? Isn't it the same as var G = {}; ? –  Loupax Feb 6 '12 at 19:54
    
@Loupax: Yes you're right, if there's no way that G could have already been initialized, then the || doesn't have much point. Sometimes people unnecessarily redeclare variables, or declare variables that are already declared as parameters, so maybe that's what's happening here. –  squint Feb 6 '12 at 19:57
    
...note that undefined is the default value for declared variables. –  squint Feb 6 '12 at 20:00
    
Doesn't undefined || {} == false? Empty objects evaluate to true? That's something I didn't know... –  Loupax Feb 6 '12 at 20:06
1  
@Loupax: No, it evaluates the operand as "truthy" or "falsey", but it always returns the operand itself. So lets say the first operand is {foo:'bar'}, it evaluates its "truthyness", decides that it is indeed "truthy", and so it returns the object. So while it considers its truthyness, it never coerces the operand to a boolean. –  squint Feb 6 '12 at 20:15
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G = G, and if G does not exist, create it as an empty object.

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G is G or a new object if G is not defined "falsy".

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Oh I get it! So in case I've already declared G on other part of the script, G won't be overwritten? –  Loupax Feb 6 '12 at 19:58
    
Right. Also, as suggested by @am-not-i-am it's not just " not declared", but "undefined", "false", etc. –  Yuriy Zubarev Feb 6 '12 at 20:04
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