121

This question already has an answer here:

My situation:

var id_tag = [1,2,3,78,5,6,7,8,47,34,90];

I would like to delete where id_tag = 90 and to return:

var id_tag = [1,2,3,78,5,6,7,8,47,34];

How can I do that?

marked as duplicate by Samuel Liew javascript Jul 13 '18 at 14:32

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 7
    I think the question heading should be "JS - Remove an array element by value in JavaScript" – kta Jan 27 '14 at 0:47
  • 2
    @kta It is! You used your mental-mind-powers and the heading reformed itself. Magic. – User2 May 22 '14 at 8:53
  • 1
    @User2 : I do believe in magic but in this case the Author had changed the question title after I wrote my first comment.:) – kta May 31 '14 at 17:17

10 Answers 10

216

You'll want to use JavaScript's Array splice method:

var tag_story = [1,3,56,6,8,90],
    id_tag = 90,
    position = tag_story.indexOf(id_tag);

if ( ~position ) tag_story.splice(position, 1);

P.S. For an explanation of that cool ~ tilde shortcut, see this post:

Using a ~ tilde with indexOf to check for the existence of an item in an array.


Note: IE < 9 does not support .indexOf() on arrays. If you want to make sure your code works in IE, you should use jQuery's $.inArray():

var tag_story = [1,3,56,6,8,90],
    id_tag = 90,
    position = $.inArray(id_tag, tag_story);

if ( ~position ) tag_story.splice(position, 1);

If you want to support IE < 9 but don't already have jQuery on the page, there's no need to use it just for $.inArray. You can use this polyfill instead.

  • 15
    +1 for the safety net. – alex Aug 22 '11 at 3:36
  • 1
    I wouldn't inlcude jQuery just for that. A simple indexOf function is available in the MDN docs – RobG Aug 22 '11 at 3:57
  • exactly what i needed. really thx Joseph ;) – itsme Aug 22 '11 at 13:29
  • 3
    As noted in the comments to the linked explanation of using the tilde...don't use the tilde. It's unclear for basically no benefit. – Dustin Wyatt May 12 '14 at 20:22
  • 1
    tilde is not cool. Unmaintainable code is NOT cool! – jperelli Mar 27 '15 at 23:20
17

If you're going to be using this often (and on multiple arrays), extend the Array object to create an unset function.

Array.prototype.unset = function(value) {
    if(this.indexOf(value) != -1) { // Make sure the value exists
        this.splice(this.indexOf(value), 1);
    }   
}

tag_story.unset(56)
  • Not good to extend native JS objects. Plus, OP wants to return the new array with the element removed.. it would be nice to return the new array.. – Andre Figueiredo Nov 19 '14 at 21:59
11
tag_story.splice(tag_story.indexOf(id_tag), 1);
  • 1
    Look at the question more carefully, it looks like he wants to remove a value from an array, not an index. – Peter Olson Aug 22 '11 at 3:31
  • 1
    @Peter Removing an index removes the associated value. – alex Aug 22 '11 at 3:32
  • 1
    @Ispuk then you should accept Eli's answer. – Matt Ball Aug 22 '11 at 3:35
  • 3
    This code is dangerous! If the value of id_tag is not found, it'll delete the last item in the array!! You'll have to first check if id_tag was found. See my answer. – Joseph Silber Aug 22 '11 at 3:35
  • 2
    @Ispuk: This is a very bad habit. You should never use code simply because "it does what I need". You should carefully consider the consequences of every single line of code!!! – Joseph Silber Aug 22 '11 at 3:41
4

As a variant

delete array[array.indexOf(item)];

If you know nothing about delete operator, DON'T use this.

  • 2
    Not a good solution, if you use delete keyword, you will have an undefined element in the array finally. – Afshin Mehrabani Apr 5 '13 at 7:40
  • This was actually exactly what I needed. Together with array.forEach, I can easily loop through defined indecis. – Olle Härstedt Jul 6 '13 at 14:51
  • 2
    Just a heads up that delete will blow up IE8 or lower... – Mike_K Oct 15 '13 at 21:55
4
function removeValue(arr, value) {
    for(var i = 0; i < arr.length; i++) {
        if(arr[i] === value) {
            arr.splice(i, 1);
            break;
        }
    }
    return arr;
}

This can be called like so:

removeValue(tag_story, 90);
  • this doesn't works as i espected ... the Eli code was exactly what i needed but it doesn't works on IE, check that and check your code , they do not same work :( ... – itsme Aug 22 '11 at 13:26
  • @lspuk Fixed it. – Peter Olson Aug 22 '11 at 14:23
  • this does not return the new array... – Andre Figueiredo Nov 19 '14 at 22:01
  • @AndreFigueiredo Thanks, I've edited to fix it. – Peter Olson Nov 19 '14 at 22:08
3

Here are some helper functions I use:

Array.contains = function (arr, key) {
    for (var i = arr.length; i--;) {
        if (arr[i] === key) return true;
    }
    return false;
};

Array.add = function (arr, key, value) {
    for (var i = arr.length; i--;) {
        if (arr[i] === key) return arr[key] = value;
    }
    this.push(key);
};

Array.remove = function (arr, key) {
    for (var i = arr.length; i--;) {
        if (arr[i] === key) return arr.splice(i, 1);
    }
};
  • OP wants to return the new array. he doesn't want to return the removed value.. – Andre Figueiredo Nov 19 '14 at 22:00
2

You'll want to use .indexOf() and .splice(). Something like:

tag_story.splice(tag_story.indexOf(90),1);
2

I like to use filter:

var id_tag = [1,2,3,78,5,6,7,8,47,34,90];

// delete where id_tag = 90
id_tag = id_tag.filter(function(x) {
    if (x !== 90) {
      return x;
    }
});
  • 1
    If you return x; in the callback then filter will also delete where Boolean(id_tag) = false. I think that's unintended. – Robert Sep 14 '14 at 8:22
1

You can use lodash.js

_.pull(arrayName,valueToBeRemove);

In your case :- _.pull(id_tag,90);

  • Please add some explenation to your answer and possibly the link to your source. – André Kool May 2 '16 at 12:49
  • Hope this might help @Andre from [ lodash documnetation](lodash.com/docs#pull) – Gourav Sahare May 3 '16 at 4:17
0
var id_tag = [1,2,3,78,5,6,7,8,47,34,90]; 
var delete_where_id_tag = 90
    id_tag =id_tag.filter((x)=> x!=delete_where_id_tag); 

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