Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I need basically the same functionality as Underscore's find but with the index of the element as a result (and not the element itself).

As far as I know, Underscore's indexOf looks for a value and doesn't take a function. Same problem for jQuery's inArray function.

I came up with the following implementation, but I'm not sure it is the most efficient:

function myIndexOf(arr, filter) {
  var index;
  $.each(arr, function (i, elt) { if (filter(elt)) { index=i; return false; } });
  return index;
}
share|improve this question

5 Answers 5

up vote 3 down vote accepted

Here is a simple implementation:

function find(collection, filter) {
    for (var i = 0; i < collection.length; i++) {
        if(filter(collection[i], i, collection)) return i;
    }
    return -1;
}

It will work on any indexable object that has a length property, and you can pass a complex filter function of the form filter(element, index, collection) (optional parameters).

share|improve this answer

_.findIndex is available in Lo-Dash and Underscore.js:

var characters = [
  { 'name': 'barney',  'age': 36, 'blocked': false },
  { 'name': 'fred',    'age': 40, 'blocked': true },
  { 'name': 'pebbles', 'age': 1,  'blocked': false }
];

_.findIndex(characters, function(chr) {
  return chr.age < 20;
});
// → 2

_.findIndex(characters, { 'age': 36 });
// → 0

_.findIndex(characters, { 'name': 'dino' });
// → -1 (not found)
share|improve this answer
    
Underscore also has exactly same method since v1.8.0 (Feb. 19, 2015). underscorejs.org/#findIndex –  Kremchik May 27 at 15:15
    
Oh, didn't check it, thanks. Then not the same. –  Kremchik May 27 at 17:22

Underscore uses the following implementation:

_.find = function(obj, iterator, context) {
    var result;
    _.any(obj, function(value, index, list) {
        if(iterator.call(context, value, index, list)) {
            result = value;
            return true;
        }
    });
    return result;
}

This in turn calls, _.any, which calls _.each, which calls Array.prototype.forEach. Efficiency isn't exactly the name of the game. It is more about utility.

If you know for a fact that you are dealing with an array or array-like object, you can use @Thor84no's solution and simply loop through the array until your filter condition is met. If not, and you may be dealing with objects as well, I would simply rewrite _.find as _.findIndex and use result = index;.

share|improve this answer
    
If it is not a matter of efficiency, why _.indexOf and $.inArray are not taking a predicate instead of a value? –  Sinbadsoft.com Nov 2 '11 at 15:45
    
_.indexOf targets efficiency and uses either a binary search or the native Array.prototype.indexOf function. This means that they can't use function arguments. With _.find, you're already planning to have a lot of function calls so what's three more? –  Brian Nickel Nov 2 '11 at 21:06

You can just use a local variable to get that like so:

var idx = 0; 
var match = _.detect(my_list, function(itm){
    return itm.something == some_test_value || ++idx == my_list.length && (idx = -1);
}

Viola. You got the index AND the matching value. If the iterator reaches the end, the index goes to -1, and if you hit a match, it short-circuits on that index.

share|improve this answer

It would be more efficient to do the for loop yourself and use break; (or return) to leave the loop once you've found the index.

for (var i = 0; i < arr.length; i++) {
    if (filter(arr[i])) {
        return i;
    }
}
share|improve this answer
1  
I think using for ... in to iterate over an array is not a good idea. Please use for(var i = 0; ... ). Actually it's even faster, and also works on DOM collections. –  Luc125 Nov 1 '11 at 16:25
    
True, I was just in too much of a hurry when writing it. Thanks. On the other hand for ... in also works for finding matches in objects (has to be used carefully of course). –  Thor84no Nov 1 '11 at 16:47

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.