4

EDIT - 3 elegant solutions

Three solutions, from odinho, Pranav and Bekim. Thanks, tested and worked perfectly.

One (@odinho - very cool)

data.push(...data.splice(data.findIndex(v => v.name == 'other'), 1))

Two (also great one liner)

for(var x in data)data[x].name == "other" ? data.push( data.splice(x,1)[0] ) : 0;

Three

   var res = data.slice(),
   len = res.length;

    for (var i = 0; i < len; i++) {
        if (res[i].name == 'other') {
            res.push(res.splice(i, 1)[0]);
            i--;
            len--;
        }
    }

JS TOOLS IM USING

Angular 1.5.6, lodash 4.1x

Here is the scenario I have an array of objects sorted alphabetically e.g. sortedData below etc.. However, within that array is also the catch all Other which is obviously sorted alphabetically as well. I want to remove other from the array and then move to the end of array without messing with the current sorted array.

NOTE

My current approach below works but is ugly. Does JS, angular or lodash have something more elegant?

var data = [
    {id:1,name:'apple'},
    {id:2,name:'banana'},
    {id:3,name:'other'},
    {id:4,name:'tomato'},
    {id:5,name:'strawberry'}
];

function move(array, fromIndex, toIndex) {
    array.splice(toIndex, 1, array.splice(fromIndex, 1)[0]);
    return array;
}

var moved = move(
    data,
    _.findIndex(data, ['name', 'other']),
    Object.keys(data).length
);

Ideal Outcome

 var data = [
        {id:1,name:'one'},
        {id:2,name:'two'},
        {id:4,name:'four'},
        {id:5,name:'five'}
        {id:3,name:'other'},
    ]
7
  • You can make a copy of the data array with var copy = JSON.parse(JSON.stringify(data)); Commented Jun 10, 2016 at 2:22
  • You could copy the info, splice the array, then push the array. Or, as @e4en just posted, as I commented, you can make it a one liner to remove the copying of the info.
    – ZomoXYZ
    Commented Jun 10, 2016 at 2:26
  • 1
    Is the array presorted, or are you sorting it, then afterwards, moving that one specific element? If you are sorting it, you could just write a custom sort that always returns that one object at the very end.
    – Alan
    Commented Jun 10, 2016 at 2:32
  • @Alan I tried the sort approach with lodash but I keep running into issues and frankly couldn't get it work. Best I got was added twice ... original spot and end
    – Nolan
    Commented Jun 10, 2016 at 4:10
  • I don't see any elegance on Pranav solution, I see overhead and confusion making the whole process at least 300% times slower than necessary, knowing that these kind of operations are slow by design, adding three self assignable incremental variables is a bit too much of unnecessary processing to an already not so fast native JavaScript array splice method. (and to be correct in your citation you need to switch the order of author names respectively to their corresponding js expressions / declarations). Commented Jun 10, 2016 at 4:40

3 Answers 3

13

You do Array.findIndex in pure Javascript (ES6), without using any libs:

data.push(data.splice(data.findIndex(v => v.name == 'other'), 1)[0])

Array.findIndex is new, but most browsers people actually use these days have it. So you can probably use it. (Edge supports it, but not IE).

If you find the [0] ugly, you can use spread to unpack the array (that way it'll also work for more than one item with some changes):

data.push(...data.splice(data.findIndex(v => v.name == 'other'), 1))
3
  • ES6 is very good for a website you like to show to your friends when they come over at your place. Commented Oct 1, 2018 at 19:12
  • ES6 is good for writing nicer code in production for anything. Either server side or frontend with babel :) Commented Oct 3, 2018 at 21:25
  • @odinho-Velmont love the one liner. Very neat. Thanks!
    – Nolan
    Commented Aug 12, 2023 at 18:03
5

A plain (Vanilla) JavaScript will do just fine:

 for(var x in data)data[x].name == "other" ? data.push( data.splice(x,1)[0] ) : 0;

var data = [
    {id:1,name:'apple'},
    {id:2,name:'banana'},
    {id:3,name:'other'},
    {id:4,name:'tomato'},
    {id:5,name:'strawberry'}
];

for(var x in data)data[x].name == "other" ? data.push( data.splice(x,1)[0] ) : 0;


console.log( data );

1
  • I'd like to report to the admins that this perfectly compact code and henceforth beautiful power solution, has been a consecutive target of 17 negative votes, delt arbitrarily and simply on the basis of hate in an attempt of damaging my reputation. Hence are zero comments demonstrating zero weakness of my giveaway one-liner. But I don't know how! Any help will be greatly appreciated. Commented Nov 17, 2023 at 15:43
2

Use simple for loop

var data = [{
  id: 1,
  name: 'apple'
}, {
  id: 2,
  name: 'banana'
}, {
  id: 3,
  name: 'other'
}, {
  id: 4,
  name: 'tomato'
}, {
  id: 5,
  name: 'strawberry'
}];

// store the length of array  
var len = data.length;

// iterate over all array elements
for (var i = 0; i < len; i++) {
  // check value is `other`
  if (data[i].name == 'other') {
    // if value is other then move the object
    data.push(data.splice(i, 1)[0]);
    // decrement i since the element removed
    i--;
    // decrement len to avoid moved element
    len--;
  }
}

console.log(data);

1
  • Aside, the unnecessary overhead imposed to js engine, the code clumsiness and completely unjustified power + time consumption this is not what the OP is asking for at all. You are NOT reordering the target element in the array of interest, but creating and recreating a new array leaving the target array / the array of interest untouched and in the same state it already was. Meaning, your "solution" begging for a down-vote ( which at this point, I will not bother giving ). Commented Jun 10, 2016 at 16:30

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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