Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

What is the syntax for indexOf() to go through a multidimensional array? For instance:

var x = [];
// do something
x.push([a,b]);

x.indexOf(a) // ??

I want to find 'a' and do something with 'b'. But it does not work... As this method should be iterative itself, I do not presume using any other iteration would be a good thing to do. Currently I simulate this using 2 simple arrays but I guess this should somehow work too...

share|improve this question
    
Are you trying to create a dictionary? Why not use an object? { } –  Joel Potter Sep 15 '09 at 14:50
    
Did any of the four suggestions for coding this differently work for you? Just curious. –  dlamblin Sep 19 '09 at 4:00
add comment

6 Answers 6

You could use a an object (or dictionary) as Philippe Leybaert suggested. That will allow quick access to elements:

var x = {};

x[a] = b; // to set

alert(x[a]) // to access

But if you insist on using indexOf, there's still a way, however ugly it is:

var x = [];

var o = Object(a); // "cast" to an object
o.b = b; // attach value

x.push(o);

alert(x.indexOf(a)); // will give you the index
alert(x[1].b); // access value at given index
share|improve this answer
add comment

Unless you want to preserve order, it's much simpler to use a dictionary:

var x = {};

// do something

x[a] = b;

You can still iterate over the keys, although the order is undefined:

for (var key in x) {
   alert(x[key]);
}
share|improve this answer
    
Use x[a] instead of x.a. "a" is not the key name, but the variable that holds the key. –  Ates Goral Sep 15 '09 at 15:50
    
true. I'll fix that. –  Philippe Leybaert Sep 15 '09 at 15:59
add comment

Simply: indexOf() does not work this way. It might work if you did something like this:

var x = [];
// do something
z = [a,b];
x.push(z);

x.indexOf(z);

But then you'd already have z.b wouldn't you? So if you must ignore the advice of everyone who thinks that using an object (or dictionary) is actually easier you'll have to either use Ates Goral's approach, or search for the index yourself:

Array.prototype.indexOf0 = 
  function(a){for(i=0;i<this.length;i++)if(a==this[i][0])return i;return null;};
var x = [];
// do something
x.push([a,b]);

x.indexOf0(a); //=> 0
share|improve this answer
add comment

JavaScript does not have multidimensional arrays as such, so x is merely an array. Also, the indexOf method of Array is not supported in all browsers, in particular IE (up to version 7, at least), only being introduced in JavaScript 1.6.

Your only option is to search manually, iterating over x and examining each element in turn.

share|improve this answer
add comment

So, basically, it is not doable. The Object way is unnecessarily complicated in this case, I want to stick with indexOf because of its simplicity, therefore I will keep my two arrays. Thanks to everyone of course.

share|improve this answer
    
You do know that indexOf is not very well supported (e.g. not implemented in IE), don't you? –  kangax Sep 15 '09 at 17:21
    
I do, it does not matter this time.. –  jirkap Sep 15 '09 at 17:35
add comment
x[ x.indexOf(a) ]

This will only work with ordered objects/lists and only if Array.prototype.indexOf is defined.

x = [1,2], b = {one:function(){alert('gj')}}, c = x.push(b);

x[ x.indexOf( b ) ]['one']()
share|improve this answer
    
I tried this, it does not work for some reason... –  jirkap Sep 15 '09 at 16:32
    
Well, you must've did it differently because the way I did it works. I did note that this ONLY works on arrays that are numerically ordered and have a length property, NOT on "multidimensional" or dictionaries. –  meder Sep 15 '09 at 18:16
    
Note - you also need to have a reference to the original object for the reference you're feeding to 'b', a similar object with similar properties is still different. –  meder Sep 15 '09 at 18:20
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.