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I'm having a hard time figuring out how to move an array element. For example, given the following:

var arr = [ 'a', 'b', 'c', 'd', 'e'];

How can I write a function to move 'd' before 'b'?

Or 'a' after 'c'?

After the move, the indices of the rest of the elements should be updated. This means in the first example after the move arr[0] would = 'a', arr[1] = 'd' arr[2] = 'b', arr[3] = 'c', arr[4] = 'e'

This seems like it should be pretty simple, but I can't wrap my head around it.

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12 Answers 12

up vote 137 down vote accepted

I had fairly good success with this function:

Array.prototype.move = function (old_index, new_index) {
    if (new_index >= this.length) {
        var k = new_index - this.length;
        while ((k--) + 1) {
            this.push(undefined);
        }
    }
    this.splice(new_index, 0, this.splice(old_index, 1)[0]);
    return this; // for testing purposes
};

Example code: [1, 2, 3].move(0, 1) gives [2, 1, 3].

Note that the last return is simply for testing purposes: splice performs operations on the array in-place, so a return is not necessary. By extension, this move is an in-place operation. If you want to avoid that and return a copy, use slice.

Stepping through the code:

  1. If new_index is greater than the length of the array, we want (I presume) to pad the array properly with new undefineds. This little snippet handles this by pushing undefined on the array until we have the proper length.
  2. Then, in this.splice(old_index, 1)[0], we splice out the old element. splice returns the element that was spliced out, but it's in an array. In our above example, this was [1]. So we take the first index of that array to get the raw 1 there.
  3. Then we use splice to insert this element in the new_index's place. Since we padded the array above if new_index > this.length, it will probably appear in the right place, unless they've done something strange like pass in a negative number.

A fancier version to account for negative indices:

Array.prototype.move = function (old_index, new_index) {
    while (old_index < 0) {
        old_index += this.length;
    }
    while (new_index < 0) {
        new_index += this.length;
    }
    if (new_index >= this.length) {
        var k = new_index - this.length;
        while ((k--) + 1) {
            this.push(undefined);
        }
    }
    this.splice(new_index, 0, this.splice(old_index, 1)[0]);
    return this; // for testing purposes
};

Which should account for things like [1, 2, 3, 4, 5].move(-1, -2) properly (move the last element to the second to last place). Result for that should be [1, 2, 3, 5, 4].

Either way, in your original question, you would do arr.move(0, 2) for a after c. For d before b, you would do arr.move(3, 1).

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9  
This works perfectly! And your explanation is very clear. Thanks for taking the time to write this up. –  Mark Brown Mar 15 '11 at 4:31
2  
You shouldn't manipulate Object and Array prototypes, it causes problems when iterating elements. –  burak emre Mar 19 '13 at 1:38
2  
@burakemre: I think that conclusion is not so clearly reached. Most good JS programmers (and most popular libraries) will use a .hasOwnProperty check when iterating with things like for..in, especially with libraries like Prototype and MooTools which modify prototypes. Anyway, I didn't feel it was a particularly important issue in a relatively limited example like this, and there is a nice split in the community over whether or not prototype modification is a good idea. Normally, iteration problems are the least concern, though. –  Reid Mar 19 '13 at 3:24

Here's a one liner I found on JSPerf....

Array.prototype.move = function(from, to) {
    this.splice(to, 0, this.splice(from, 1)[0]);
};

which is awesome to read, but if you want performance (in small data sets) try...

 Array.prototype.move2 = function(pos1, pos2) {
    // local variables
    var i, tmp;
    // cast input parameters to integers
    pos1 = parseInt(pos1, 10);
    pos2 = parseInt(pos2, 10);
    // if positions are different and inside array
    if (pos1 !== pos2 && 0 <= pos1 && pos1 <= this.length && 0 <= pos2 && pos2 <= this.length) {
      // save element from position 1
      tmp = this[pos1];
      // move element down and shift other elements up
      if (pos1 < pos2) {
        for (i = pos1; i < pos2; i++) {
          this[i] = this[i + 1];
        }
      }
      // move element up and shift other elements down
      else {
        for (i = pos1; i > pos2; i--) {
          this[i] = this[i - 1];
        }
      }
      // put element from position 1 to destination
      this[pos2] = tmp;
    }
  }

I can't take any credit, it should all go to Richard Scarrott. It beats the splice based method for smaller data sets in this performance test. It is however significantly slower on larger data sets as Darwayne points out.

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This move2 method is nice, as it allows for moving the an array element either up or down the array. I ran into problems, with some of the other solutions when moving array elements to the right. –  Benjen Jun 1 '12 at 2:04
2  
Your more performant solution is slower on large datasets. jsperf.com/array-prototype-move/8 –  Darwayne May 20 '13 at 11:55
5  
This seems like a really silly tradeof. Performance on small data sets is a negligible gain, but loss on large data sets is a significant loss. Your net exchange is negative. –  Tyrsius Nov 6 '13 at 2:30

I like this. I think it is the quickest:

function arraymove(arr, fromIndex, toIndex) {
    var element = arr[fromIndex]
    arr.splice(fromIndex, 1);
    arr.splice(toIndex, 0, element);
}

Note: this does not control if you run out of the array, so be careful.

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4  
index1? Did you mean fromIndex? –  Matt M. Mar 29 '12 at 5:19
1  
Since Array.splice returns the removed value(s) in a new Array, you can write it as a one liner... arr.splice(index + 1, 0, arr.splice(index, 1)[0]); –  Eric Feb 3 at 19:20
    
very clean code thank's –  بهنام محمدی Aug 25 at 8:55
    
haha steak overflow haha –  Exitos Aug 28 at 19:54
    
@Exitos XD XD XD –  SteakOverflow Sep 29 at 12:09

The splice method of Array might help: https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/Array/splice

Just keep in mind it might be relatively expensive since it has to actively re-index the array.

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Yep, but as soon as I perform the splice, the array indices are updated, which makes it difficult for me to figure out where to place the element that I just removed. Especially since I need the function to be able to handle moves in both directions. –  Mark Brown Mar 15 '11 at 2:12
    
@Mark: don't splice the string and save it into the same variable, make a new string and splice that. See my answer below. –  Jared Updike Mar 15 '11 at 16:04

Got this idea from @Reid of pushing something in the place of the item that is supposed to be moved to keep the array size constant. That does simplify calculations. Also, pushing an empty object has the added benefits of being able to search for it uniquely later on. This works because two objects are not equal until they are referring to the same object.

({}) == ({}); // false

So here's the function which takes in the source array, and the source, destination indexes. You could add it to the Array.prototype if needed.

function moveObjectAtIndex(array, sourceIndex, destIndex) {
    var placeholder = {};
    // remove the object from its initial position and
    // plant the placeholder object in its place to
    // keep the array length constant
    var objectToMove = array.splice(sourceIndex, 1, placeholder)[0];
    // place the object in the desired position
    array.splice(destIndex, 0, objectToMove);
    // take out the temporary object
    array.splice(array.indexOf(placeholder), 1);
}
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1  
This looks promising...and I didn't know that about javascript js comparisons. Thanks! –  Mark Brown Mar 15 '11 at 4:32

The splice() method adds/removes items to/from an array, and returns the removed item(s).

Note: This method changes the original array. /w3schools/

Array.prototype.move = function(from,to){
  this.splice(to,0,this.splice(from,1)[0]);
  return this;
};

var arr = [ 'a', 'b', 'c', 'd', 'e'];
arr.move(3,1);//["a", "d", "b", "c", "e"]


var arr = [ 'a', 'b', 'c', 'd', 'e'];
arr.move(0,2);//["b", "c", "a", "d", "e"]

as the function is chainable this works too:

alert(arr.move(0,2).join(','));

demo here

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You can implement some basic Calculus and create a universal function for moving array element from one position to the other.

For JavaScript it looks like this:

function magicFunction (targetArray, indexFrom, indexTo) { 

    targetElement = targetArray[indexFrom]; 
    magicIncrement = (indexTo - indexFrom) / Math.abs (indexTo - indexFrom); 

    for (Element = indexFrom; Element != indexTo; Element += magicIncrement){ 
        targetArray[Element] = targetArray[Element + magicIncrement]; 
    } 

    targetArray[indexTo] = targetElement; 

}

Check out "moving array elements" at "gloommatter" for detailed explanation.

http://www.gloommatter.com/DDesign/programming/moving-any-array-elements-universal-function.html

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This ought to be the correct answer, as it does not allocate any new arrays. Thanks! –  Cory Aug 4 '13 at 0:56
    Array.prototype.moveUp = function (value, by) {
        var index = this.indexOf(value),
            newPos = index - (by || 1);

        if (index === -1)
            throw new Error("Element not found in array");

        if (newPos < 0)
            newPos = 0;

        this.splice(index, 1);
        this.splice(newPos, 0, value);
    };

    Array.prototype.moveDown = function (value, by) {
        var index = this.indexOf(value),
            newPos = index + (by || 1);

        if (index === -1)
            throw new Error("Element not found in array");

        if (newPos >= this.length)
            newPos = this.length;

        this.splice(index, 1);
        this.splice(newPos, 0, value);
    };



    var arr = ['banana', 'curyWurst', 'pc', 'remembaHaruMembaru'];

    alert('withiout changes= '+arr[0]+' ||| '+arr[1]+' ||| '+arr[2]+' ||| '+arr[3]);
    arr.moveDown(arr[2]);


    alert('third word moved down= '+arr[0] + ' ||| ' + arr[1] + ' ||| ' + arr[2] + ' ||| ' + arr[3]);
    arr.moveUp(arr[2]);
    alert('third word moved up= '+arr[0] + ' ||| ' + arr[1] + ' ||| ' + arr[2] + ' ||| ' + arr[3]);

i found it here: http://jeffijoe.com/2013/08/moving-elements-up-and-down-in-a-javascript-array/

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Array.move.js

Summary

Moves elements within an array, returning an array containing the moved elements.

Syntax

array.move(index, howMany, toIndex);

Parameters

index: Index at which to move elements. If negative, index will start from the end.

howMany: Number of elements to move from index.

toIndex: Index of the array at which to place the moved elements. If negative, toIndex will start from the end.

Usage

array = ["a", "b", "c", "d", "e", "f", "g"];

array.move(3, 2, 1); // returns ["d","e"]

array; // returns ["a", "d", "e", "b", "c", "f", "g"]

Polyfill

Array.prototype.move || Object.defineProperty(Array.prototype, "move", {
    value: function (index, howMany, toIndex) {
        var
        array = this,
        index = parseInt(index) || 0,
        index = index < 0 ? array.length + index : index,
        toIndex = parseInt(toIndex) || 0,
        toIndex = toIndex < 0 ? array.length + toIndex : toIndex,
        toIndex = toIndex <= index ? toIndex : toIndex <= index + howMany ? index : toIndex - howMany,
        moved;

        array.splice.apply(array, [toIndex, 0].concat(moved = array.splice(index, howMany)));

        return moved;
    }
});
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2  
While the .move looks like it should work (I haven't tested it), you should note that it isn't part of any standard. It is also good to warn folks that polyfill/monkeypatched functions can break some code that assumes everything enumerable is theirs. –  Jeremy J Starcher Sep 18 '12 at 19:06
    
a=["a", "b", "c"];a.move(0,1,1); // a = ["a", "b", "c"], should be ["b", "a", "c"] –  Leonard Pauli Jul 15 '13 at 17:11

One approach would be to create a new array with the pieces in the order you want, using the slice method.

Example

var arr = [ 'a', 'b', 'c', 'd', 'e'];
var arr2 = arr.slice(0,1).concat( ['d'] ).concat( arr.slice(2,4) ).concat( arr.slice(4) );
  • arr.slice(0,1) gives you ['a']
  • arr.slice(2,4) gives you ['b', 'c']
  • arr.slice(4) gives you ['e']
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You do realize that your arr2 ends up being a string due to the concatenation operations, right? :) It ends up being "adc,de". –  Ken Franqueiro Mar 15 '11 at 2:07
    
@Ken: thanks, fixed. –  Jared Updike Mar 15 '11 at 16:03

I ended up combining two of these to work a little better when moving both small and large distances. I get fairly consistent results, but this could probably be tweaked a little bit by someone smarter than me to work differently for different sizes, etc.

Using some of the other methods when moving objects small distances was significantly faster (x10) than using splice. This might change depending on the array lengths though, but it is true for large arrays.

function ArrayMove(array, from, to) {
    if ( Math.abs(from - to) > 60) {
        array.splice(to, 0, array.splice(from, 1)[0]);
    } else {
        // works better when we are not moving things very far
        var target = array[from];
        var inc = (to - from) / Math.abs(to - from);
        var current = from;
        for (; current != to; current += inc) {
            array[current] = array[current + inc];
        }
        array[to] = target;    
    }
}

http://jsperf.com/arraymove-many-sizes

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My 2c. Easy to read, it works, it's fast, it doesn't create new arrays.

function move(array, from, to) {
  if( to === from ) return;

  var target = array[from];                         
  var increment = to < from ? -1 : 1;

  for(var k = from; k != to; k += increment){
    array[k] = array[k + increment];
  }
  array[to] = target;

}

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