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I want to check if the next element in the array exists before performing actions on it, but I can't check if it is undefined or not. For example:

// Variable and array are both undefined
alert(typeof var1);   // This works
alert(typeof arr[1]); // This does nothing

var arr = [1,1];
alert(typeof arr[1]); // This works now
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2  
How about arr.length? –  mellamokb Dec 24 '12 at 23:06
1  
Check your console for errors! –  Mathletics Dec 24 '12 at 23:11

2 Answers 2

up vote 6 down vote accepted
alert(typeof arr[1]); // This does nothing

It doesn't do anything because it's failing with an error:

ReferenceError: arr is not defined

If you try it this way instead:

var arr = [];
alert(typeof arr[1]);

Then you'll get what you expect. However, a better way to do this check would be to use the .length property of the array:

// Instead of this...
if(typeof arr[2] == "undefined") alert("No element with index 2!");

// do this:
if(arr.length <= 2) alert("No element with index 2!");
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1  
^this. To expand on the first line of non-code: the javascript engine gets through alert(typeof arr just fine, but because arr is not an array at that point, the javascript engine throws an error when you try to access an element of it ([1]), and stops executing that statement. –  joequincy Dec 24 '12 at 23:16
    
@joequincy No, it has nothing to do with being an array or not: it is a ReferenceError at that point (not a failed property lookup or otherwise). For instance (to re-iterate the response example), in a = {}; alert(typeof a[1]) there is no ReferenceError (as a can be resolved in scope) and a[1] will quite happily evaluate to undefined. –  user166390 Dec 24 '12 at 23:42
1  
To be specific: a ReferenceError occurs because JavaScript attempts to dereference arr to look up arr[1], before typeof's logic is invoked. Because arr does not exist, trying to dereference it (which is what the [1] does) fails. –  Amber Dec 24 '12 at 23:47
    
@pst Yes, it has everything to do with the fact that at that point in the code, arr is not a type of variable that supports property lookups. Of course, that phrasing is extremely cumbersome, so I typed "array" instead because it's the type that is actually relevant to the situation. And you'll note that at no point did I state that it only applies to arrays. –  joequincy Dec 24 '12 at 23:53
    
@Ambder I prefer view it the other way: it is not that a "dereference" is forced, but rather that the expression (a in a[1]) is not treated as a reference type (only the 1 property would be, but by that time it's too late as a failed to evaluate) .. –  user166390 Dec 24 '12 at 23:57

when working with arrays, before you access an array index you should also check the array itself.

wrong:

if (arr[0] == ...)

good:

if (typeof arr != "undefined" and arr[0]==......
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