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I've seen code like this on the web:

function MyEventHandler(e)
{
    var ev = e || event;
    var target = ev.srcElement || ev.target
}

In essence, the || operator is used as a shorthand for a?a:b. As far as I can tell - it works on all browsers. But bringing up specs for, say, JScript, I see:

Performs a logical disjunction on two expressions.

and

JScript uses the following rules for converting non-Boolean values to Boolean values:

  • All objects are considered true.

So... according to this the result should be a boolean true/false. I'm just wondering - am I walking the knife-edge of undocumented behavior, or is there some fine implication here that I haven't picked up?

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3 Answers 3

up vote 4 down vote accepted

That behavior is quite well documenten. See Chapter 11.11 of the ECMAScript Specification: http://www.ecma-international.org/publications/files/ECMA-ST/ECMA-262.pdf

Unfortunately it's not very easy to understand, however the last paragraph states:

The value produced by a && or || operator is not necessarily of type Boolean. The value produced will always be the value of one of the two operand expressions.

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Thank you! This is the answer that I was looking for! :) –  Vilx- Dec 3 '10 at 13:33

No, I think you understand the coalescent behavior of || just fine.

EDIT:

&& is also coalescent. a && b behaves like a ? b : a.

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Where is this documented? Why doesn't it first convert a and b to booleans? –  Vilx- Dec 3 '10 at 11:15
    
It doesn't convert, but evaluate the variable as expression. When the variable is null or undefined it becomes false. The operator always return the value of the variable instead of the expression. –  airmanx86 Dec 3 '10 at 11:27

It's just an inaccuracy in JScript specs. JScript is an implementation of the ECMAScript standard, so for the real state of affairs you should look at the ECMAScript spec.

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