165

Is it possible to sort and rearrange an array that looks like this:

itemsArray = [ 
    ['Anne', 'a'],
    ['Bob', 'b'],
    ['Henry', 'b'],
    ['Andrew', 'd'],
    ['Jason', 'c'],
    ['Thomas', 'b']
]

to match the arrangement of this array:

sortingArr = [ 'b', 'c', 'b', 'b', 'a', 'd' ]

Unfortunately, I don’t have any IDs to keep track on. I would need to priority the items-array to match the sortingArr as close as possible.

Update:

Here is the output I’m looking for:

itemsArray = [    
    ['Bob', 'b'],
    ['Jason', 'c'],
    ['Henry', 'b'],
    ['Thomas', 'b']
    ['Anne', 'a'],
    ['Andrew', 'd'],
]

Any idea how this can be done?

  • If you don't want to do everything manually, take a look at the array function sin PHP.js. – Adi Nov 9 '12 at 8:36
  • Only by looping over the sortingArray and rewrite the itemsArray – mplungjan Nov 9 '12 at 8:36
  • 6
    Where multiple arrays have the same sorting value (i.e. 'b') how do you decide which item goes where in the sorted array? With 'Bob', 'Henry' and 'Thomas' which all have the value 'b' - how do you decide which goes first, third and fourth? – Mitch Satchwell Nov 9 '12 at 8:52
  • @MitchS would it be possible to prioritize reading from left to right? This is a true headache, since I don’t have any IDs to compare. – user1448892 Nov 9 '12 at 8:55
  • By left to right do you mean the order they appear in the original itemsArray? – Mitch Satchwell Nov 9 '12 at 8:55

20 Answers 20

74
0

Something like:

items = [ 
    ['Anne', 'a'],
    ['Bob', 'b'],
    ['Henry', 'b'],
    ['Andrew', 'd'],
    ['Jason', 'c'],
    ['Thomas', 'b']
]

sorting = [ 'b', 'c', 'b', 'b', 'c', 'd' ];
result = []

sorting.forEach(function(key) {
    var found = false;
    items = items.filter(function(item) {
        if(!found && item[1] == key) {
            result.push(item);
            found = true;
            return false;
        } else 
            return true;
    })
})

result.forEach(function(item) {
    document.writeln(item[0]) /// Bob Jason Henry Thomas Andrew
})

Here's a shorter code, but it destroys the sorting array:

result = items.map(function(item) {
    var n = sorting.indexOf(item[1]);
    sorting[n] = '';
    return [n, item]
}).sort().map(function(j) { return j[1] })
| improve this answer | |
  • 27
    Quadratic complexity! Try it with a big amount of data… – Julien Royer Nov 9 '12 at 9:27
  • 6
    @thg435: complexity has little to do with "optimization", unless the volume of data is guaranteed to be small (which may be the case here). – Julien Royer Nov 9 '12 at 9:36
  • 2
    @georg When it comes to the complexity of algorithms acting on data structures, the optimizing of algorithms with quadratic (or worse) complexities is never premature and is always necessary (unless you can guarantee the size of the data set is going to be small). The difference in performance is (quite literally) expressed in orders of magnitude. – Abion47 Feb 4 '19 at 20:26
234
2

One Line answer.

itemsArray.sort(function(a, b){  
  return sortingArr.indexOf(a) - sortingArr.indexOf(b);
});
| improve this answer | |
  • 10
    This will mutate itemsArray. Depending on the performance requirement, it would be a lot safer to do itemsArray.slice().sort(...). – Sawtaytoes Mar 6 '18 at 19:09
  • 1
    sort method return an array. see developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – Durgpal Singh Oct 12 '18 at 6:26
  • 8
    It does return the array, but it also does the sort in place and mutates the original. – mynameistechno Nov 13 '18 at 0:22
  • 2
    this should be real answer – urmurmur Jul 17 '19 at 15:56
  • 6
    @Morvael, this is due to this answer requiring sortingArr to contain all values in itemsArray. The fix is to push items to the back of the array if they don't exist in sortingArr : allProducts.sort((product1, product2) => { const index1 = manualSort.indexOf(product1.id); const index2 = manualSort.indexOf(product2.id); return ( (index1 > -1 ? index1 : Infinity) - (index2 > -1 ? index2 : Infinity) ); }); – Freshollie Oct 9 '19 at 9:20
34
1

If you use the native array sort function, you can pass in a custom comparator to be used when sorting the array. The comparator should return a negative number if the first value is less than the second, zero if they're equal, and a positive number if the first value is greater.

So if I understand the example you're giving correctly, you could do something like:

function sortFunc(a, b) {
  var sortingArr = [ 'b', 'c', 'b', 'b', 'c', 'd' ];
  return sortingArr.indexOf(a[1]) - sortingArr.indexOf(b[1]);
}

itemsArray.sort(sortFunc);
| improve this answer | |
  • 3
    That won't work, the resulting order would be b,b,b,c,c,d as indexOf returns the first index. – Mitch Satchwell Nov 9 '12 at 8:50
  • Thank you, but I would like the output of itemsArray to match the sortingArray. – user1448892 Nov 9 '12 at 8:51
  • 6
    I prefer this answer if the "ids" in the sortingArr are unique - which, thankfully, they are in my case :) – dillondrenzek May 12 '17 at 16:57
  • 3
    You should declare the sortingArray outside of the function to avoir re-declaring it on each sorting iteration – aurumpotestasest Sep 6 '18 at 8:33
26
1

Case 1: Original Question (No Libraries)

Plenty of other answers that work. :)

Case 2: Original Question (Lodash.js or Underscore.js)

var groups = _.groupBy(itemArray, 1);
var result = _.map(sortArray, function (i) { return groups[i].shift(); });

Case 3: Sort Array1 as if it were Array2

I'm guessing that most people came here looking for an equivalent to PHP's array_multisort (I did) so I thought I'd post that answer as well. There are a couple options:

1. There's an existing JS implementation of array_multisort(). Thanks to @Adnan for pointing it out in the comments. It is pretty large, though.

2. Write your own. (JSFiddle demo)

function refSort (targetData, refData) {
  // Create an array of indices [0, 1, 2, ...N].
  var indices = Object.keys(refData);

  // Sort array of indices according to the reference data.
  indices.sort(function(indexA, indexB) {
    if (refData[indexA] < refData[indexB]) {
      return -1;
    } else if (refData[indexA] > refData[indexB]) {
      return 1;
    }
    return 0;
  });

  // Map array of indices to corresponding values of the target array.
  return indices.map(function(index) {
    return targetData[index];
  });
}

3. Lodash.js or Underscore.js (both popular, smaller libraries that focus on performance) offer helper functions that allow you to do this:

    var result = _.chain(sortArray)
      .pairs()
      .sortBy(1)
      .map(function (i) { return itemArray[i[0]]; })
      .value();

...Which will (1) group the sortArray into [index, value] pairs, (2) sort them by the value (you can also provide a callback here), (3) replace each of the pairs with the item from the itemArray at the index the pair originated from.

| improve this answer | |
  • 1
    Excellent solution, alternatively you can use _.indexBy and remove the shift if your data structure is a little more complex – Frozenfire May 31 '16 at 14:02
20
0

this is probably too late but, you could also use some modified version of the code below in ES6 style. This code is for arrays like:

var arrayToBeSorted = [1,2,3,4,5];
var arrayWithReferenceOrder = [3,5,8,9];

The actual operation :

arrayToBeSorted = arrayWithReferenceOrder.filter(v => arrayToBeSorted.includes(v));

The actual operation in ES5 :

arrayToBeSorted = arrayWithReferenceOrder.filter(function(v) {
    return arrayToBeSorted.includes(v);
});

Should result in arrayToBeSorted = [3,5]

Does not destroy the reference array.

| improve this answer | |
  • 4
    What if I the arrayToBeSorted is an Array of Objects ie: {1: {…}, 2: {…}, 3: {…}, 4: {…}, 5: {…}}? but the arrayWithReferenceOrder is just a normal array? – Crystal Nov 28 '17 at 0:16
  • 3
    @sushruth how does this sort the array? – hitautodestruct May 19 '19 at 11:39
  • @Crystal, that's an object, not an array of objects. The elements/items in an object have no order, that is, their order is not set. An array of objects would look something like [{name: "1"}, {name: "2"}, {name: "3"}, ...]. – JohnK Mar 20 at 21:54
8
0

I would use an intermediary object (itemsMap), thus avoiding quadratic complexity:

function createItemsMap(itemsArray) { // {"a": ["Anne"], "b": ["Bob", "Henry"], …}
  var itemsMap = {};
  for (var i = 0, item; (item = itemsArray[i]); ++i) {
    (itemsMap[item[1]] || (itemsMap[item[1]] = [])).push(item[0]);
  }
  return itemsMap;
}

function sortByKeys(itemsArray, sortingArr) {
  var itemsMap = createItemsMap(itemsArray), result = [];
  for (var i = 0; i < sortingArr.length; ++i) {
    var key = sortingArr[i];
    result.push([itemsMap[key].shift(), key]);
  }
  return result;
}

See http://jsfiddle.net/eUskE/

| improve this answer | |
6
0
var sortedArray = [];
for(var i=0; i < sortingArr.length; i++) {
    var found = false;
    for(var j=0; j < itemsArray.length && !found; j++) {
        if(itemsArray[j][1] == sortingArr[i]) {
            sortedArray.push(itemsArray[j]);
            itemsArray.splice(j,1);
            found = true;
        }
    }
}

http://jsfiddle.net/s7b2P/

Resulting order: Bob,Jason,Henry,Thomas,Anne,Andrew

| improve this answer | |
4
0

Why not something like

//array1: array of elements to be sorted
//array2: array with the indexes

array1 = array2.map((object, i) => array1[object]);

The map function may not be available on all versions of Javascript

| improve this answer | |
  • This is the cleanest solution, and should be accepted answer. Thx! – newman May 13 at 14:05
3
0
let a = ['A', 'B', 'C' ]

let b = [3, 2, 1]

let c = [1.0, 5.0, 2.0]

// these array can be sorted by sorting order of b

const zip = rows => rows[0].map((_, c) => rows.map(row => row[c]))

const sortBy = (a, b, c) => {
  const zippedArray = zip([a, b, c])
  const sortedZipped = zippedArray.sort((x, y) => x[1] - y[1])

  return zip(sortedZipped)
}

sortBy(a, b, c)
| improve this answer | |
  • 2
    Please consider adding a brief explanation/description explaining why/how this code answers the question. – Yannis Jun 12 '18 at 11:47
3
0

This is what I was looking for and I did for sorting an Array of Arrays based on another Array:

It's On^3 and might not be the best practice(ES6)

function sortArray(arr, arr1){
      return arr.map(item => {
        let a = [];
        for(let i=0; i< arr1.length; i++){
          for (const el of item) {
            if(el == arr1[i]){
              a.push(el);
            }   
            }
          }
          return a;
      });
    }
    
    const arr1 = ['fname', 'city', 'name'];
  const arr = [['fname', 'city', 'name'],
  ['fname', 'city', 'name', 'name', 'city','fname']];
  console.log(sortArray(arr,arr1));
It might help someone

| improve this answer | |
2
0

I had to do this for a JSON payload I receive from an API, but it wasn't in the order I wanted it.

Array to be the reference array, the one you want the second array sorted by:

var columns = [
    {last_name: "last_name"},
    {first_name: "first_name"},
    {book_description: "book_description"},
    {book_id: "book_id"},
    {book_number: "book_number"},
    {due_date: "due_date"},
    {loaned_out: "loaned_out"}
];

I did these as objects because these will have other properties eventually.

Created array:

 var referenceArray= [];
 for (var key in columns) {
     for (var j in columns[key]){
         referenceArray.push(j);
     }
  }

Used this with result set from database. I don't know how efficient it is but with the few number of columns I used, it worked fine.

result.forEach((element, index, array) => {                            
    var tr = document.createElement('tr');
    for (var i = 0; i < referenceArray.length - 1; i++) {
        var td = document.createElement('td');
        td.innerHTML = element[referenceArray[i]];
        tr.appendChild(td);

    }
    tableBody.appendChild(tr);
}); 
| improve this answer | |
2
0

For getting a new ordered array, you could take a Map and collect all items with the wanted key in an array and map the wanted ordered keys by taking sifted element of the wanted group.

var itemsArray = [['Anne', 'a'], ['Bob', 'b'], ['Henry', 'b'], ['Andrew', 'd'], ['Jason', 'c'], ['Thomas', 'b']],
    sortingArr = [ 'b', 'c', 'b', 'b', 'a', 'd' ],
    map = itemsArray.reduce((m, a) => m.set(a[1], (m.get(a[1]) || []).concat([a])), new Map),
    result = sortingArr.map(k => (map.get(k) || []).shift());

console.log(result);

| improve this answer | |
  • 👏That's my fav, I do the same yet use {} instead of Map 🤷‍♂️ – Can Rau Feb 3 at 19:21
2
0
let sortedOrder = [ 'b', 'c', 'b', 'b' ]
let itemsArray = [ 
    ['Anne', 'a'],
    ['Bob', 'b'],
    ['Henry', 'b'],
    ['Andrew', 'd'],
    ['Jason', 'c'],
    ['Thomas', 'b']
]
a.itemsArray(function (a, b) {
    let A = a[1]
    let B = b[1]

    if(A != undefined)
        A = A.toLowerCase()

    if(B != undefined)
        B = B.toLowerCase()

    let indA = sortedOrder.indexOf(A)
    let indB = sortedOrder.indexOf(B)

    if (indA == -1 )
        indA = sortedOrder.length-1
    if( indB == -1)
        indB = sortedOrder.length-1

    if (indA < indB ) {
        return -1;
    } else if (indA > indB) {
        return 1;
    }
    return 0;
})

This solution will append the objects at the end if the sorting key is not present in reference array

| improve this answer | |
0
0

this should works:

var i,search, itemsArraySorted = [];
while(sortingArr.length) {
    search = sortingArr.shift();
    for(i = 0; i<itemsArray.length; i++) {
        if(itemsArray[i][1] == search) {
            itemsArraySorted.push(itemsArray[i]);
            break;
        }
    } 
}

itemsArray = itemsArraySorted;
| improve this answer | |
0
0

You could try this method.

const sortListByRanking = (rankingList, listToSort) => {
  let result = []

  for (let id of rankingList) {
    for (let item of listToSort) {
      if (item && item[1] === id) {
        result.push(item)
      }
    }
  }

  return result
}
| improve this answer | |
0
0

ES6

const arrayMap = itemsArray.reduce(
  (accumulator, currentValue) => ({
    ...accumulator,
    [currentValue[1]]: currentValue,
  }),
  {}
);
const result = sortingArr.map(key => arrayMap[key]);

More examples with different input arrays

| improve this answer | |
0
0

In case you get here needing to do this with an array of objects, here is an adaptation of @Durgpal Singh's awesome answer:

const itemsArray = [
  { name: 'Anne', id: 'a' },
  { name: 'Bob', id: 'b' },
  { name: 'Henry', id: 'b' },
  { name: 'Andrew', id: 'd' },
  { name: 'Jason', id: 'c' },
  { name: 'Thomas', id: 'b' }
]

const sortingArr = [ 'b', 'c', 'b', 'b', 'a', 'd' ]

Object.keys(itemsArray).sort((a, b) => {
  return sortingArr.indexOf(itemsArray[a].id) - sortingArr.indexOf(itemsArray[b].id);
})
| improve this answer | |
-1
0

Use the $.inArray() method from jQuery. You then could do something like this

var sortingArr = [ 'b', 'c', 'b', 'b', 'c', 'd' ];
var newSortedArray = new Array();

for(var i=sortingArr.length; i--;) {
 var foundIn = $.inArray(sortingArr[i], itemsArray);
 newSortedArray.push(itemsArray[foundIn]);
}
| improve this answer | |
-1
0

Use intersection of two arrays.

Ex:

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

var arrayToBeSort = ['z', 's', 'b',  'e', 'a'];

_.intersection(sortArray, arrayToBeSort) 

=> ['a', 'b', 'e']

if 'z and 's' are out of range of first array, append it at the end of result

| improve this answer | |
-4
0

You can do something like this:

function getSorted(itemsArray , sortingArr ) {
  var result = [];
  for(var i=0; i<arr.length; i++) {
    result[i] = arr[sortArr[i]];
  }
  return result;
}

You can test it out here.

Note: this assumes the arrays you pass in are equivalent in size, you'd need to add some additional checks if this may not be the case.

refer link

refer

| improve this answer | |
  • This badly needs editing. not only does the jfiddle return the wrong result, the function argument names don't match the inner content? – twobob May 5 '17 at 10:47

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