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Hopefully an easy question.

Why is that checking for existence of a key in a multidimensional array:

a = new Array(Array());
a[0][0]='1';
a[0][1]='2';
if(a[1][2] == undefined){
alert("sorry, that key doesn't exist");
} else {alert('good, your key exists');
}

seems not to be working in general, but it works when I check for a first index (in this case, '0') that is 'defined' by a[0][x]. For example, when I ask for a[0][2] (which is not defined), it shows the first alert. However, when I ask for a[1][0], I get:

"Uncaught TypeError: Cannot read property '0' of undefined"

How can I solve this problem?

Thanks

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5 Answers 5

up vote 6 down vote accepted

Check first if the first dimension exists then if the key in the second dimension exists

The logic will return false if the first test returns false, and tests the second dimension only if the first one is true.

  if(a[1] == undefined && a[1][2] == undefined)
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Thank you very much :-). –  Robert Smith Feb 27 '11 at 17:06
    
if first is undefined then why to check next one? If a[1] is undefined then obviously a[1][2] will be undefined. No ? –  Hafiz Mar 12 at 11:29

With the first three assignments your array actually looks like this:

a = [['1','2']]

Reading a[0][2] just returns undefined because a[0] exists but its property '0' is not defined.

But trying to read a[1][0] throws a TypeError because a[1] is already undefined and isn’t an object and thus doesn’t have any properties. This is also what your error message says:

Cannot read property '0' of undefined.

You can solve this problem by first checking for a[1] and then checking for a[1][0] using the typeof operator:

if (typeof a[1] !== 'undefined' && typeof a[1][0] !== 'undefined')
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In my real code, I have more than a=[['1','2']], however, I get the point. Thank you very much for your answer. –  Robert Smith Feb 27 '11 at 17:00
a = Array(Array())

does not define a multi-dimensional array. It just defines an array with one item, which happens to be another (empty) array. There are no built-in multidimensional arrays in javascript, so you will have to handle things more manually.

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Plus, there should be some new keywords in there. Calling a constructor function without new is a Bad Thing. –  johusman Feb 27 '11 at 16:58
    
Well, that doesn't answer my question, however, thanks for pointing out 'new Array(Array());'. Fixed. –  Robert Smith Feb 27 '11 at 17:04

You just need to further qualify the conditional. Since the [1] index of the array is undefined you can't test for values in it.

if(a[1] === undefined || a[1][2] === undefined)
share|improve this answer
    
Thanks for your answer. Unfortunately, @Caspar posted earlier (3 minutes earlier), so I must accept his answer. +1, though. –  Robert Smith Feb 27 '11 at 17:07
a = Array(Array());
    a[0][0]='1';
    a[0][1]='2';
    if(a[1] === undefined || a[1][2] === undefined){
    alert("sorry, that key doesn't exist");
    } else {alert('good, your key exists');
    }
share|improve this answer

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