44

I have an array like this

arr = ["orange","red","black","white"]

I want to augment the array object defining a deleteElem() method which acts like this:

arr2 = arr.deleteElem("red"); // ["orange","black","white"] (with no hole)

What is the best way to accomplish this task using just the value parameter (no index)?

10 Answers 10

87

Here's how it's done:

var arr = ["orange","red","black","white"];
var index = arr.indexOf("red");
if (index >= 0) {
  arr.splice( index, 1 );
}

This code will remove 1 occurency of "red" in your Array.

  • 5
    Also, you would have to augment your array to support .indexOf() which isn't supported in some older versions of IE. – jfriend00 Sep 5 '11 at 16:44
  • 14
    very dangerous, because if "red" is not in an array it deletes "white" – IvanM Apr 18 '14 at 8:50
  • 2
    @IvanMalyshev agreed, this is extremely dangerous. Array.prototype.splice(index, howMany) allows negative index, so you need to check that indexOf does not return -1 (not found) before calling splice. – Dakota Sep 5 '14 at 22:46
  • Really, how can this be the approved answer when i'ts demonstrably wrong, as per the comments by @IvanMalyshev and @Dakota? Downvoted, would upvote with appropriate correction. – enigment Dec 16 '14 at 15:59
  • 1
    Answer has been fixed, upvoted, with the mentioned caveat about .indexOf() compatibility. – enigment Jan 9 '15 at 15:53
21

I know the question already has an accepted answer but back when I was new to coding I always found splice not straight forward at all. Even today it feels less readable.

But readability counts.

So in this case I would rather use the filter method like so:

arr = ["orange","red","black","white","red"]

arr = arr.filter(val => val !== "red");

console.log(arr) // ["orange","black","white"]

And that's it.

Note that this method removes all occurrences of "red" in your array.

Now what I find really interesting with this, is you can actually read what's happening pretty easily. Even more interesting in my case, is that you can easily go further if you work with array of objects, for example:

arr = arr.filter(obj => obj.prop !== "red");

As per ryannjohnson's comment, there doesn't seem to be any caveat with this method.

4

There is an underscore method for this, http://underscorejs.org/#without

arr = ["orange","red","black","white"];

arr = _.without(arr, "red");
  • 1
    This solution removes all occurrences of the mentioned value, I was interested in removing only one occurrence of it and keep the duplicates, so in my case this was not a good solution. For example: arr = ["orange", "red", "black", "white", "orange"]; arr = _.without(arr, "orange"); => arr = ["red", "black", "white"] I wanted to keep the last "orange". Is there a way to do it with underscore.js? or lodash.js? – Vali D Oct 31 '16 at 11:14
1
Array.prototype.deleteElem = function(val) {
    var index = this.indexOf(val); 
    if (index >= 0) this.splice(index, 1);
    return this;
}; 
var arr = ["orange","red","black","white"];
var arr2 = arr.deleteElem("red");
1

My approach, let's see what others have to say. It supports an "equals" method as well.

 // Remove array value
 // @param {Object} val
 Array.prototype.removeByValue = function (val) {
    for (var i = 0; i < this.length; i++) {
       var c = this[i];
       if (c == val || (val.equals && val.equals(c))) {
          this.splice(i, 1);
          break;
       }
    }
 };

Read https://stackoverflow.com/a/3010848/356726 for the impact on iterations when using prototype with Array.

1

Or simply check all items, create a new array with non equal and return it.

var arr = ['orange', 'red', 'black', 'white'];

console.info('before: ' + JSON.stringify(arr));

var deleteElem = function ( val ) {
    var new_arr = [];
    for ( var i = 0; i < this.length; i++ ) {
        if ( this[i] !== val ) {
            new_arr.push(this[i]);
        }
    }
    return new_arr;
};

arr = deleteElem('red');

console.info('after: ' + JSON.stringify(arr));

http://jsfiddle.net/jthavn3m/

1

The trick is to go through the array from end to beginning, so you don't mess up the indices while removing elements.

var deleteMe = function( arr, me ){
   var i = arr.length;
   while( i-- ) if(arr[i] === me ) arr.splice(i,1);
}

var arr = ["orange","red","black", "orange", "white" , "orange" ];

deleteMe( arr , "orange");

arr is now ["red", "black", "white"]

0

The best way is to use splice and rebuild new array, because after splice, the length of array does't change.

Check out my answer:

function remove_array_value(array, value) {
    var index = array.indexOf(value);
    if (index >= 0) {
        array.splice(index, 1);
        reindex_array(array);
    }
}
function reindex_array(array) {
   var result = [];
    for (var key in array) {
        result.push(array[key]);
    }
    return result;
}

example:

var example_arr = ['apple', 'banana', 'lemon'];   // length = 3
remove_array_value(example_arr, 'banana');

banana is deleted and array length = 2

0

If order the array (changing positions) won't be a problem you can solve like:

var arr = ["orange","red","black","white"];
arr.remove = function ( item ) {
  delete arr[item];
  arr.sort();
  arr.pop();
  console.log(arr);
}

arr.remove('red');
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

-2

Here you go:

arr.deleteElem = function ( val ) {
    for ( var i = 0; i < this.length; i++ ) {
        if ( this[i] === val ) {
            this.splice( i, 1 );
            return i;
        }
    }
};

Live demo: http://jsfiddle.net/4vaE2/3/

The deleteElem method returns the index of the removed element.

var idx = arr.deleteElem( 'red' ); // idx is 1

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