I need to sort JavaScript objects by key.

Hence the following:

{ 'b' : 'asdsad', 'c' : 'masdas', 'a' : 'dsfdsfsdf' }

Would become:

{ 'a' : 'dsfdsfsdf', 'b' : 'asdsad', 'c' : 'masdas' }
  • 3
    possible duplicate of Sorting a JSON object in Javascript – abraham Feb 25 '12 at 2:35
  • 24
    Back in 2011 (when this question was posted), the ECMAScript spec said that JavaScript objects don’t have an inherent order — the observed order was implementation-dependent and thus couldn’t be relied upon. However, it turns out all JavaScript engines implemented more or less the same semantics, so those have now been standardized in ES6. As a result, a lot of the answers below used to be correct as per the spec, but are now incorrect. – Mathias Bynens Jun 28 '15 at 17:37
  • shortly saying use sorted stringify when you need to compare or hash the results: npmjs.com/package/json-stable-stringify – exebook Oct 29 '15 at 11:11
  • Given that objects are just maps, or dicts depending on your language, there is little to no reason why you would do this. THAT BEING SAID, Generally, the order that they are injected into a map is in fact the order they reside when stringifying. SO, if you created a new map and assigned values based on a presorted key list, you will find yourself an ordered map based on keys – Fallenreaper Jun 28 at 22:04

24 Answers 24

The other answers to this question are outdated, never matched implementation reality, and have officially become incorrect now that the ES6/ES2015 spec has been published.


See the section on property iteration order in Exploring ES6 by Axel Rauschmayer:

All methods that iterate over property keys do so in the same order:

  1. First all Array indices, sorted numerically.
  2. Then all string keys (that are not indices), in the order in which they were created.
  3. Then all symbols, in the order in which they were created.

So yes, JavaScript objects are in fact ordered, and the order of their keys/properties can be changed.

Here’s how you can sort an object by its keys/properties, alphabetically:

const unordered = {
  'b': 'foo',
  'c': 'bar',
  'a': 'baz'
};

console.log(JSON.stringify(unordered));
// → '{"b":"foo","c":"bar","a":"baz"}'

const ordered = {};
Object.keys(unordered).sort().forEach(function(key) {
  ordered[key] = unordered[key];
});

console.log(JSON.stringify(ordered));
// → '{"a":"baz","b":"foo","c":"bar"}'

Use var instead of const for compatibility with ES5 engines.

  • 4
    I really cant see a difference to your code and the top answer here apart from using a slightly different looping technique. Whether or not the objects can be said to be "ordered" or not seems to be irrelevant. The answer to this question is still the same. The published spec merely confirms the answers here. – Phil Sep 22 '15 at 14:44
  • 3
    FYI, it was clarified that the enumeration order of properties is still undefined: esdiscuss.org/topic/… – Felix Kling Dec 1 '15 at 14:41
  • 4
    @Phil_1984_ This answer and top voted answer are very different. OP's question was how to sort an object literal. Top voted answer says you can't, then gives a workaround by storing sorted keys in an array, then iterating and printing key value pairs from the sorted array. This answer claims that the order of object literals are now sortable and his example stores the sorted key values back to an object literal, then prints the sorted object directly. On a side note, it would be nice if the linked site still existed. – cchamberlain Mar 14 '16 at 5:25
  • 4
    Both answers simply use the Array.sort function to sort the keys first. The OP is asking to sort a "JavaScript object" and is merely using JavaScript Object Notation (JSON) to describe the 2 objects. These 2 objects are logically identical meaning sorting is irrelevant. I think the top answer explains this a lot better. Saying "all other answers are now officially incorrect" is too extreme for me, especially with a broken link. I think the problem is "this new ES6 spec" is giving the illusion that Javascript objects have an ordered list of keys which is simply not true. – Phil Mar 14 '16 at 16:25
  • 1
    Surprisingly, the chrome.storage API still sorts object keys in lexicographic order, which is not even consistent with Chrome V8. – thdoan Apr 22 at 10:28

JavaScript objects1 are not ordered. It is meaningless to try to "sort" them. If you want to iterate over an object's properties, you can sort the keys and then retrieve the associated values:

var myObj = {
    'b': 'asdsadfd',
    'c': 'masdasaf',
    'a': 'dsfdsfsdf'
  },
  keys = [],
  k, i, len;

for (k in myObj) {
  if (myObj.hasOwnProperty(k)) {
    keys.push(k);
  }
}

keys.sort();

len = keys.length;

for (i = 0; i < len; i++) {
  k = keys[i];
  console.log(k + ':' + myObj[k]);
}


Alternate implementation using Object.keys fanciness:

var myObj = {
    'b': 'asdsadfd',
    'c': 'masdasaf',
    'a': 'dsfdsfsdf'
  },
  keys = Object.keys(myObj),
  i, len = keys.length;

keys.sort();

for (i = 0; i < len; i++) {
  k = keys[i];
  console.log(k + ':' + myObj[k]);
}


1Not to be pedantic, but there's no such thing as a JSON object.

  • 25
    Matt, I fear it's a lost case. No matter how many times we make comments like ‘There's no such thing as a "JSON Object"’, the term pops up every week, even every day if I'm actively participating. – Marcel Korpel Apr 20 '11 at 21:43
  • 7
    @Paulpro two things to note about that RFC: first, it's 7 years old at this point, and vocabulary changes over time; second, "This memo provides information for the Internet community. It does not specify an Internet standard of any kind." Whether a given sequence of characters represents a JavaScript object literal or a JSON text depends on context/usage. The term "JSON object" conflates and makes the distinction ambiguous in a detrimental way. Let's be rid of the imprecise terminology, and use the more precise term where possible. I see no reason to do otherwise. Words matter. – Matt Ball Jul 12 '13 at 20:33
  • 4
    @MattBall IMO JSON Object is a very precise term for a string like {"a", 1} just as JSON Array is precise term for a string like [1]. It is useful to be able to communicate by saying things like the third object in my array when you have the string [{x: 1}, {y: 2}, {z: 3}], so I much prefer "That is not a JSON object" when commenting about a Javascript literal, rather then "There is no such thing as a JSON object", which is just going to cause more confusion and communication difficulties later when the OP actually is working with JSON. – Paulpro Jul 12 '13 at 20:48
  • 3
    @Paulpro I must disagree. {"a", 1} is either an object literal or a JSON text (aka JSON string, if you really prefer). Which it is depends on context, the former if it appears verbatim within JavaScript source code, the latter if it's a string that needs to be passed to a JSON parser to be used further. There are real differences between the two when it comes to allowed syntax, correct usage, and serialization. – Matt Ball Jul 12 '13 at 21:01
  • 3
    Now that ES6/ES2015 is finalized, this answer has officially become incorrect. See my answer for more info. – Mathias Bynens Jun 28 '15 at 17:24

A lot of people have mention that "objects cannot be sorted", but after that they are giving you a solution which works. Paradox, isn't it?

No one mention why those solutions are working. They are, because in most of the browser's implementations values in objects are stored in the order in which they were added. That's why if you create new object from sorted list of keys it's returning an expected result.

And I think that we could add one more solution – ES5 functional way:

function sortObject(obj) {
    return Object.keys(obj).sort().reduce(function (result, key) {
        result[key] = obj[key];
        return result;
    }, {});
}

ES2015 version of above (formatted to "one-liner"):

function sortObject(o) {
    return Object.keys(o).sort().reduce((r, k) => (r[k] = o[k], r), {});
}

Short explanation of above examples (as asked in comments):

Object.keys is giving us a list of keys in provided object (obj or o), then we're sorting those using default sorting algorithm, next .reduce is used to convert that array back into an object, but this time with all of the keys sorted.

  • 7
    @Pointy This behavior has always available in all major browsers, and has been standardized in ES6/ES2015. I’d say this is good advice. – Mathias Bynens Jun 28 '15 at 17:26
  • 3
    This is the simplest and most concise way of accomplishing task in EcmaScript v5. A bit late to the party but should be the accepted answer. – Steven de Salas Jul 12 '15 at 12:55
  • 2
    "They are, because in most of the browser's implementations values in objects are stored in the order in which they were added" Only for non-numerical properties though. Also note that there is still no guarantee in which order the properties are iterated over (e.g. via for...in). – Felix Kling Feb 18 '16 at 16:17
  • 2
    Nice of you to explain why it's working it did the lesson for me. Thanks! – ola Apr 2 '17 at 17:06
  • 2
    My linter complained about that one-liner (returning an assignment), but this one works for me and is easier for me to read: Object.keys(dict).sort().reduce((r, k) => Object.assign(r, { [k]: dict[k] }), {}); – aks. Jun 22 '17 at 22:48

This works for me

/**
 * Return an Object sorted by it's Key
 */
var sortObjectByKey = function(obj){
    var keys = [];
    var sorted_obj = {};

    for(var key in obj){
        if(obj.hasOwnProperty(key)){
            keys.push(key);
        }
    }

    // sort keys
    keys.sort();

    // create new array based on Sorted Keys
    jQuery.each(keys, function(i, key){
        sorted_obj[key] = obj[key];
    });

    return sorted_obj;
};
  • 9
    This is actually the correct answer to the question at hand. For a simplified version using Underscore, see: jsfiddle.net/wPjaQ/1 – radicand Apr 26 '13 at 10:30
  • 6
    @radicand No this answer is not correct. It returns a new object, which also has no order. – Paulpro Jul 12 '13 at 21:50
  • 3
    @radicand It doesn't in practice either. There is no such thing as order on an objects keys, so how can you say that in practice this gives you an object in sorted order? It really just gives you back a shallow copy of the object you pass in. – Paulpro Jul 15 '13 at 15:39
  • 9
    This is super wrong. It might happen to work for now, but will break in a different web browser or different page load in the same browser. Browsers may randomize object keys for security, or as you fill up an object, it will put the values into different memory buckets depending on the keys, which will return a different order. If this happens to work it's just lucky for you. – Yobert Oct 1 '14 at 6:06
  • 10
    It also has a needless use of jQuery. – RobG Dec 1 '14 at 7:17

Guys I'm figuratively shocked! Sure all answers are somewhat old, but no one did even mention the stability in sorting! So bear with me I'll try my best to answer the question itself and go into details here. So I'm going to apologize now it will be a lot to read.

Since it is 2018 I will only use ES6, the Polyfills are all available at the MDN docs, which I will link at the given part.


Answer to the question:

If your keys are only numbers then you can safely use Object.keys() together with Array.prototype.reduce() to return the sorted object:

// Only numbers to show it will be sorted.
const testObj = {
  '2000': 'Articel1',
  '4000': 'Articel2',
  '1000': 'Articel3',
  '3000': 'Articel4',
};

// I'll explain what reduces does after the answer.
console.log(Object.keys(testObj).reduce((accumulator, currentValue) => {
  accumulator[currentValue] = testObj[currentValue];
  return accumulator;
}, {}));

/**
 * expected output:
 * {
 * '1000': 'Articel3',
 * '2000': 'Articel1',
 * '3000': 'Articel4',
 * '4000': 'Articel2' 
 *  } 
 */

// if needed here is the one liner:
console.log(Object.keys(testObj).reduce((a, c) => (a[c] = testObj[c], a), {}));

However if you are working with strings I highly recommend chaining Array.prototype.sort() into all of this:

// String example
const testObj = {
  'a1d78eg8fdg387fg38': 'Articel1',
  'z12989dh89h31d9h39': 'Articel2',
  'f1203391dhj32189h2': 'Articel3',
  'b10939hd83f9032003': 'Articel4',
};
// Chained sort into all of this.
console.log(Object.keys(testObj).sort().reduce((accumulator, currentValue) => {
  accumulator[currentValue] = testObj[currentValue];
  return accumulator;
}, {}));

/**
 * expected output:   
 * { 
 * a1d78eg8fdg387fg38: 'Articel1',
 * b10939hd83f9032003: 'Articel4',
 * f1203391dhj32189h2: 'Articel3',
 * z12989dh89h31d9h39: 'Articel2' 
 * }
 */

// again the one liner:
console.log(Object.keys(testObj).sort().reduce((a, c) => (a[c] = testObj[c], a), {}));

If someone is wondering what reduce does:

// Will return Keys of object as an array (sorted if only numbers or single strings like a,b,c).
Object.keys(testObj)

// Chaining reduce to the returned array from Object.keys().
// Array.prototype.reduce() takes one callback 
// (and another param look at the last line) and passes 4 arguments to it: 
// accumulator, currentValue, currentIndex and array
.reduce((accumulator, currentValue) => {

  // setting the accumulator (sorted new object) with the actual property from old (unsorted) object.
  accumulator[currentValue] = testObj[currentValue];

  // returning the newly sorted object for the next element in array.
  return accumulator;

  // the empty object {} ist the initial value for  Array.prototype.reduce().
}, {});

If needed here is the explanation for the one liner:

Object.keys(testObj).reduce(

  // Arrow function as callback parameter.
  (a, c) => 

  // parenthesis return! so we can safe the return and write only (..., a);
  (a[c] = testObj[c], a)

  // initial value for reduce.
  ,{}
);

Why Sorting is a bit complicated:

In short Object.keys() will return an array with the same order as we get with a normal loop:

const object1 = {
  a: 'somestring',
  b: 42,
  c: false
};

console.log(Object.keys(object1));
// expected output: Array ["a", "b", "c"]

Object.keys() returns an array whose elements are strings corresponding to the enumerable properties found directly upon object. The ordering of the properties is the same as that given by looping over the properties of the object manually.

Sidenote - you can use Object.keys() on arrays as well, keep in mind the index will be returned:

// simple array
const arr = ['a', 'b', 'c'];
console.log(Object.keys(arr)); // console: ['0', '1', '2']

But it is not as easy at shown by those examples, real world objects may contain numbers and alphabetical characters or even symbols (please don't do it).

Here is an example with all of them in one object:

// This is just to show what happens, please don't use symbols in keys.
const testObj = {
  '1asc': '4444',
  1000: 'a',
  b: '1231',
  '#01010101010': 'asd',
  2: 'c'
};

console.log(Object.keys(testObj));
// output: [ '2', '1000', '1asc', 'b', '#01010101010' ]

Now if we use Array.prototype.sort() on the array above the output changes:

console.log(Object.keys(testObj).sort());
// output: [ '#01010101010', '1000', '1asc', '2', 'b' ]

Here is a quote from the docs:

The sort() method sorts the elements of an array in place and returns the array. The sort is not necessarily stable. The default sort order is according to string Unicode code points.

The time and space complexity of the sort cannot be guaranteed as it is implementation dependent.

You have to make sure that one of them returns the desired output for you. In reallife examples people tend to mix up things expecially if you use different information inputs like APIs and Databases together.


So what's the big deal?

Well there are two articles which every programmer should understand:

In-place algorithm:

In computer science, an in-place algorithm is an algorithm which transforms input using no auxiliary data structure. However a small amount of extra storage space is allowed for auxiliary variables. The input is usually overwritten by the output as the algorithm executes. In-place algorithm updates input sequence only through replacement or swapping of elements. An algorithm which is not in-place is sometimes called not-in-place or out-of-place.

So basically our old array will be overwritten! This is important if you want to keep the old array for other reasons. So keep this in mind.

Sorting algorithm

Stable sort algorithms sort identical elements in the same order that they appear in the input. When sorting some kinds of data, only part of the data is examined when determining the sort order. For example, in the card sorting example to the right, the cards are being sorted by their rank, and their suit is being ignored. This allows the possibility of multiple different correctly sorted versions of the original list. Stable sorting algorithms choose one of these, according to the following rule: if two items compare as equal, like the two 5 cards, then their relative order will be preserved, so that if one came before the other in the input, it will also come before the other in the output.

enter image description here

An example of stable sort on playing cards. When the cards are sorted by rank with a stable sort, the two 5s must remain in the same order in the sorted output that they were originally in. When they are sorted with a non-stable sort, the 5s may end up in the opposite order in the sorted output.

This shows that the sorting is right but it changed. So in the real world even if the sorting is correct we have to make sure that we get what we expect! This is super important keep this in mind as well. For more JavaScript examples look into the Array.prototype.sort() - docs: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/sort

  • 2
    You flippin rock, thank you for this incredible answer. One of the best I've seen on SO. Cheers. – Gavin Oct 12 at 18:57

This is an old question, but taking the cue from Mathias Bynens' answer, I've made a short version to sort the current object, without much overhead.

    Object.keys(unordered).sort().forEach(function(key) {
        var value = unordered[key];
        delete unordered[key];
        unordered[key] = value;
    });

after the code execution, the "unordered" object itself will have the keys alphabetically sorted.

Using lodash this will work:

some_map = { 'b' : 'asdsad', 'c' : 'masdas', 'a' : 'dsfdsfsdf' }

// perform a function in order of ascending key
_(some_map).keys().sort().each(function (key) {
  var value = some_map[key];
  // do something
});

// or alternatively to build a sorted list
sorted_list = _(some_map).keys().sort().map(function (key) {
  var value = some_map[key];
  // return something that shall become an item in the sorted list
}).value();

Just food for thought.

Suppose it could be useful in VisualStudio debugger which shows unordered object properties.

(function(s){var t={};Object.keys(s).sort().forEach(function(k){t[k]=s[k]});return t})({b:2,a:1,c:3})
  • So Great Thanks a loooot – Mugiwara Jan 1 '14 at 20:43
  • very nice onliner! – opio Mar 10 '14 at 16:56
  • Nice! Thank you for this succinct solution. – Con Antonakos Nov 5 '15 at 16:28

here is the 1 liner

var data = { zIndex:99,
             name:'sravan',
             age:25, 
             position:'architect',
             amount:'100k',
             manager:'mammu'


  };
console.log(Object.entries(data).sort().reduce( (o,[k,v]) => (o[k]=v,o), {} ));

  • totally works. should be the accepted answer. – Ron Daulagupu Aug 10 at 7:18

Underscore version:

function order(unordered)
{
return _.object(_.sortBy(_.pairs(unordered),function(o){return o[0]}));
}

If you don't trust your browser for keeping the order of the keys, I strongly suggest to rely on a ordered array of key-value paired arrays.

_.sortBy(_.pairs(c),function(o){return o[0]})
function sortObjectKeys(obj){
    return Object.keys(obj).sort().reduce((acc,key)=>{
        acc[key]=obj[key];
        return acc;
    },{});
}

sortObjectKeys({
    telephone: '069911234124',
    name: 'Lola',
    access: true,
});
  • Maybe adding some explanation of your code is better. – aristotll Aug 26 '17 at 16:57
  • 1
    Gets the keys of the object, so it is array of strings, I sort() them and as it is array of strings (keys) I reduce them (with reduce() of js Array). The acc initially is an empty object {} (last arg of reducer) and the reducer (callback) assigns on the empty object the values of the source obj with the ordered key sequence. – user3286817 Aug 29 '17 at 5:32

Maybe a bit more elegant form:

 /**
     * Sorts a key-value object by key, maintaining key to data correlations.
     * @param {Object} src  key-value object
     * @returns {Object}
     */
var ksort = function ( src ) {
      var keys = Object.keys( src ),
          target = {};
      keys.sort();
      keys.forEach(function ( key ) {
        target[ key ] = src[ key ];
      });
      return target;
    };


// Usage
console.log(ksort({
  a:1,
  c:3,
  b:2  
}));

P.S. and the same with ES6+ syntax:

function ksort( src ) {
  const keys = Object.keys( src );
  keys.sort();
  return keys.reduce(( target, key ) => {
        target[ key ] = src[ key ];
        return target;
  }, {});
};

recursive sort, for nested object and arrays

function sortObjectKeys(obj){
    return Object.keys(obj).sort().reduce((acc,key)=>{
        if (Array.isArray(obj[key])){
            acc[key]=obj[key].map(sortObjectKeys);
        }
        if (typeof obj[key] === 'object'){
            acc[key]=sortObjectKeys(obj[key]);
        }
        else{
            acc[key]=obj[key];
        }
        return acc;
    },{});
}

// test it
sortObjectKeys({
    telephone: '069911234124',
    name: 'Lola',
    access: true,
    cars: [
        {name: 'Family', brand: 'Volvo', cc:1600},
        {
            name: 'City', brand: 'VW', cc:1200, 
            interior: {
                wheel: 'plastic',
                radio: 'blaupunkt'
            }
        },
        {
            cc:2600, name: 'Killer', brand: 'Plymouth',
            interior: {
                wheel: 'wooden',
                radio: 'earache!'
            }
        },
    ]
});
  • This is simple enough and effective for most regular uses... – fvlinden Oct 25 '17 at 19:54
  • I think you need an else in there -- could be true for both Array.isArray(obj[key]) and for typeof obj[key] === 'object' – jononomo Apr 26 at 6:44

As already mentioned, objects are unordered.

However...

You may find this idiom useful:

var o = { 'b' : 'asdsad', 'c' : 'masdas', 'a' : 'dsfdsfsdf' };

var kv = [];

for (var k in o) {
  kv.push([k, o[k]]);
}

kv.sort()

You can then iterate through kv and do whatever you wish.

> kv.sort()
[ [ 'a', 'dsfdsfsdf' ],
  [ 'b', 'asdsad' ],
  [ 'c', 'masdas' ] ]

Here is a clean lodash-based version that works with nested objects

/**
 * Sort of the keys of an object alphabetically
 */
const sortKeys = function(obj) {
  if(_.isArray(obj)) {
    return obj.map(sortKeys);
  }
  if(_.isObject(obj)) {
    return _.fromPairs(_.keys(obj).sort().map(key => [key, sortKeys(obj[key])]));
  }
  return obj;
};

It would be even cleaner if lodash had a toObject() method...

Just use lodash to unzip map and sortBy first value of pair and zip again it will return sorted key.

If you want sortby value change pair index to 1 instead of 0

var o = { 'b' : 'asdsad', 'c' : 'masdas', 'a' : 'dsfdsfsdf' };
console.log(_(o).toPairs().sortBy(0).fromPairs().value())

enter image description here

  • Please use the edit link explain how this code works and don't just give the code, as an explanation is more likely to help future readers. See also How to Answer. source – J F Jan 10 '17 at 23:40

Use this code if you have nested objects or if you have nested array obj.

var sortObjectByKey = function(obj){
    var keys = [];
    var sorted_obj = {};
    for(var key in obj){
        if(obj.hasOwnProperty(key)){
            keys.push(key);
        }
    }
    // sort keys
    keys.sort();

    // create new array based on Sorted Keys
    jQuery.each(keys, function(i, key){
        var val = obj[key];
        if(val instanceof Array){
            //do for loop;
            var arr = [];
            jQuery.each(val,function(){
                arr.push(sortObjectByKey(this));
            }); 
            val = arr;

        }else if(val instanceof Object){
            val = sortObjectByKey(val)
        }
        sorted_obj[key] = val;
    });
    return sorted_obj;
};
  • 5
    The author doesn't state say that he is using jQuery, nor is the question tagged jQuery. It would be nice if you addes a solution in pure javascript. – rusmus Feb 25 '14 at 14:53
  • Thanks @Phani this is exactly what I needed – Will Sheppard Mar 18 '16 at 14:47

Solution:

function getSortedObject(object) {
  var sortedObject = {};

  var keys = Object.keys(object);
  keys.sort();

  for (var i = 0, size = keys.length; i < size; i++) {
    key = keys[i];
    value = object[key];
    sortedObject[key] = value;
  }

  return sortedObject;
}

// Test run
getSortedObject({d: 4, a: 1, b: 2, c: 3});

Explanation:

Many JavaScript runtimes store values inside an object in the order in which they are added.

To sort the properties of an object by their keys you can make use of the Object.keys function which will return an array of keys. The array of keys can then be sorted by the Array.prototype.sort() method which sorts the elements of an array in place (no need to assign them to a new variable).

Once the keys are sorted you can start using them one-by-one to access the contents of the old object to fill a new object (which is now sorted).

Below is an example of the procedure (you can test it in your targeted browsers):

/**
 * Returns a copy of an object, which is ordered by the keys of the original object.
 *
 * @param {Object} object - The original object.
 * @returns {Object} Copy of the original object sorted by keys.
 */
function getSortedObject(object) {
  // New object which will be returned with sorted keys
  var sortedObject = {};

  // Get array of keys from the old/current object
  var keys = Object.keys(object);
  // Sort keys (in place)
  keys.sort();

  // Use sorted keys to copy values from old object to the new one
  for (var i = 0, size = keys.length; i < size; i++) {
    key = keys[i];
    value = object[key];
    sortedObject[key] = value;
  }

  // Return the new object
  return sortedObject;
}

/**
 * Test run
 */
var unsortedObject = {
  d: 4,
  a: 1,
  b: 2,
  c: 3
};

var sortedObject = getSortedObject(unsortedObject);

for (var key in sortedObject) {
  var text = "Key: " + key + ", Value: " + sortedObject[key];
  var paragraph = document.createElement('p');
  paragraph.textContent = text;
  document.body.appendChild(paragraph);
}

Note: Object.keys is an ECMAScript 5.1 method but here is a polyfill for older browsers:

if (!Object.keys) {
  Object.keys = function (object) {
    var key = [];
    var property = undefined;
    for (property in object) {
      if (Object.prototype.hasOwnProperty.call(object, property)) {
        key.push(property);
      }
    }
    return key;
  };
}

I transfered some Java enums to javascript objects.

These objects returned correct arrays for me. if object keys are mixed type (string, int, char), there is a problem.

var Helper = {
    isEmpty: function (obj) {
        return !obj || obj === null || obj === undefined || Array.isArray(obj) && obj.length === 0;
    },

    isObject: function (obj) {
        return (typeof obj === 'object');
    },

    sortObjectKeys: function (object) {
        return Object.keys(object)
            .sort(function (a, b) {
                c = a - b;
                return c
            });
    },
    containsItem: function (arr, item) {
        if (arr && Array.isArray(arr)) {
            return arr.indexOf(item) > -1;
        } else {
            return arr === item;
        }
    },

    pushArray: function (arr1, arr2) {
        if (arr1 && arr2 && Array.isArray(arr1)) {
            arr1.push.apply(arr1, Array.isArray(arr2) ? arr2 : [arr2]);
        }
    }
};

function TypeHelper() {
    var _types = arguments[0],
        _defTypeIndex = 0,
        _currentType,
        _value;

    if (arguments.length == 2) {
        _defTypeIndex = arguments[1];
    }

    Object.defineProperties(this, {
        Key: {
            get: function () {
                return _currentType;
            },
            set: function (val) {
                _currentType.setType(val, true);
            },
            enumerable: true
        },
        Value: {
            get: function () {
                return _types[_currentType];
            },
            set: function (val) {
                _value.setType(val, false);
            },
            enumerable: true
        }
    });

    this.getAsList = function (keys) {
        var list = [];
        Helper.sortObjectKeys(_types).forEach(function (key, idx, array) {
            if (key && _types[key]) {

                if (!Helper.isEmpty(keys) && Helper.containsItem(keys, key) || Helper.isEmpty(keys)) {
                    var json = {};
                    json.Key = key;
                    json.Value = _types[key];
                    Helper.pushArray(list, json);
                }
            }
        });
        return list;
    };

    this.setType = function (value, isKey) {
        if (!Helper.isEmpty(value)) {
            Object.keys(_types).forEach(function (key, idx, array) {
                if (Helper.isObject(value)) {
                    if (value && value.Key == key) {
                        _currentType = key;
                    }
                } else if (isKey) {
                    if (value && value.toString() == key.toString()) {
                        _currentType = key;
                    }
                } else if (value && value.toString() == _types[key]) {
                    _currentType = key;
                }
            });
        } else {
            this.setDefaultType();
        }
        return isKey ? _types[_currentType] : _currentType;
    };

    this.setTypeByIndex = function (index) {
        var keys = Helper.sortObjectKeys(_types);
        for (var i = 0; i < keys.length; i++) {
            if (index === i) {
                _currentType = keys[index];
                break;
            }
        }
    };

    this.setDefaultType = function () {
        this.setTypeByIndex(_defTypeIndex);
    };

    this.setDefaultType();
}


var TypeA = {
    "-1": "Any",
    "2": "2L",
    "100": "100L",
    "200": "200L",
    "1000": "1000L"
};

var TypeB = {
    "U": "Any",
    "W": "1L",
    "V": "2L",
    "A": "100L",
    "Z": "200L",
    "K": "1000L"
};
console.log('keys of TypeA', Helper.sortObjectKeys(TypeA));//keys of TypeA ["-1", "2", "100", "200", "1000"]

console.log('keys of TypeB', Helper.sortObjectKeys(TypeB));//keys of TypeB ["U", "W", "V", "A", "Z", "K"]

var objectTypeA = new TypeHelper(TypeA),
    objectTypeB = new TypeHelper(TypeB);

console.log('list of objectA = ', objectTypeA.getAsList());
console.log('list of objectB = ', objectTypeB.getAsList());

Types:

var TypeA = {
    "-1": "Any",
    "2": "2L",
    "100": "100L",
    "200": "200L",
    "1000": "1000L"
};

var TypeB = {
    "U": "Any",
    "W": "1L",
    "V": "2L",
    "A": "100L",
    "Z": "200L",
    "K": "1000L"
};


Sorted Keys(output):

Key list of TypeA -> ["-1", "2", "100", "200", "1000"]

Key list of TypeB -> ["U", "W", "V", "A", "Z", "K"]

Simple and readable snippet, using lodash.

You need to put the key in quotes only when calling sortBy. It doesn't have to be in quotes in the data itself.

_.sortBy(myObj, "key")

Also, your second parameter to map is wrong. It should be a function, but using pluck is easier.

_.map( _.sortBy(myObj, "key") , "value");

There's a great project by @sindresorhus called sort-keys that works awesome.

You can check its source code here:

https://github.com/sindresorhus/sort-keys

Or you can use it with npm:

$ npm install --save sort-keys

Here are also code examples from his readme

const sortKeys = require('sort-keys');

sortKeys({c: 0, a: 0, b: 0});
//=> {a: 0, b: 0, c: 0}

sortKeys({b: {b: 0, a: 0}, a: 0}, {deep: true});
//=> {a: 0, b: {a: 0, b: 0}}

sortKeys({c: 0, a: 0, b: 0}, {
    compare: (a, b) => -a.localeCompare(b)
});
//=> {c: 0, b: 0, a: 0}

Pure JavaScript answer to sort an Object. This is the only answer that I know of that will handle negative numbers. This function is for sorting numerical Objects.

Input obj = {1000: {}, -1200: {}, 10000: {}, 200: {}};

function osort(obj) {
var keys = Object.keys(obj);
var len = keys.length;
var rObj = [];
var rK = [];
var t = Object.keys(obj).length;
while(t > rK.length) {
    var l = null;
    for(var x in keys) {
        if(l && parseInt(keys[x]) < parseInt(l)) {
            l = keys[x];
            k = x;
        }
        if(!l) { // Find Lowest
            var l = keys[x];
            var k = x;
        }
    }
    delete keys[k];
    rK.push(l);
}

for (var i = 0; i < len; i++) {

    k = rK[i];
    rObj.push(obj[k]);
}
return rObj;
}

The output will be an object sorted by those numbers with new keys starting at 0.

Just to simplify it and make it more clear the answer from Matt Ball

//your object
var myObj = {
    b : 'asdsadfd',
    c : 'masdasaf',
    a : 'dsfdsfsdf'
  };

//fixed code
var keys = [];
for (var k in myObj) {
  if (myObj.hasOwnProperty(k)) {
    keys.push(k);
  }
}
keys.sort();
for (var i = 0; i < keys.length; i++) {
  k = keys[i];
  alert(k + ':' + myObj[k]);
}

Sorts keys recursively while preserving references.

function sortKeys(o){
    if(o && o.constructor === Array)
        o.forEach(i=>sortKeys(i));
    else if(o && o.constructor === Object)
        Object.entries(o).sort((a,b)=>a[0]>b[0]?1:-1).forEach(e=>{
            sortKeys(e[1]);
            delete o[e[0]];
            o[e[0]] = e[1];
        });
}

Example:

let x = {d:3, c:{g:20, a:[3,2,{s:200, a:100}]}, a:1};
let y = x.c;
let z = x.c.a[2];
sortKeys(x);
console.log(x); // {a: 1, c: {a: [3, 2, {a: 1, s: 2}], g: 2}, d: 3}
console.log(y); // {a: [3, 2, {a: 100, s: 200}}, g: 20}
console.log(z); // {a: 100, s: 200}
  • Nice snippet! What's the purpose of delete o[e[0]]; there? Can't we just assign? – Boyang Oct 19 at 4:11
  • It seems like only new assignments to non existent keys will append the key at the end. If delete is commented out, keys wont be sorted, at least not in Chrome. – brunettdan Oct 20 at 8:51
  • that makes sense. Thanks! In any case, this is sort of a lost cause because js object keys have no sequence, according to the specs. We are just exploiting obj and log function impl details – Boyang Oct 23 at 9:21
  • Yea, I use the Map when order of keys are important: developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… – brunettdan Oct 24 at 11:21

protected by Pankaj Parkar Nov 12 '15 at 14:30

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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