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var b:Boolean = condition1() && condition2();

In this statement, if condition1() evaluates to false, will condition2() be evaluated?

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1  
Have you tried it out? You could put a trace() call in both condition1 and condition2, then see which gets called. Help using the trace command: republicofcode.com/tutorials/flash/as3trace –  Douglas Jul 5 '10 at 11:06

3 Answers 3

up vote 7 down vote accepted

Yes. The && operator (and also ||) is short-circuited.

This has been explained in http://help.adobe.com/en_US/FlashPlatform/reference/actionscript/3/operators.html#logical_AND.

Returns expression1 if it is false or can be converted to false, and expression2 otherwise. Examples of values that can be converted to false are 0, NaN, null, and undefined. If you use a function call as expression2, the function is not called if expression1 evaluates to false.

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A little googling indicates yes. Also, the usual term is short-circuited, rather than lazy.

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Correct. The compiler should always take the quickest path out of a conditional. If any test case fails, the compiler knows that the results of further tests are irrelevant and decides to bail right then and there.

var obj:Object = null;
if( obj && obj.name == "fred" )
{
    trace( "Hi, fred." );
}

You will never see "Hi, fred." because Obj is null. Good thing too, because the second test case will throw an error since you cannot dereference a null object in that manner. I've used this particular approach many times when I need to make sure some object is not null before dereferencing it.

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