564

If I have a JavaScript object such as:

var list = {
  "you": 100, 
  "me": 75, 
  "foo": 116, 
  "bar": 15
};

Is there a way to sort the properties based on value? So that I end up with

list = {
  "bar": 15, 
  "me": 75, 
  "you": 100, 
  "foo": 116
};
  • 3
    Not only "sorting," but more importantly sorting numbers. Numbers are immune to Javascripts Array.sort() method, meaning you'll not just have to find a method for sorting properties, but you'll have to write your own function to compare the numerical values. – Sampson Jul 1 '09 at 15:12
  • 66
    Before you read the answers: The answer is No. The ordering of object properties is non-standard in ECMAScript. You should never make assumptions about the order of elements in a JavaScript object. An Object is an unordered collection of properties. The answers below show you how to "use" sorted properties, using the help of arrays, but never actually alter the order of properties of objects themselves. So, no, it's not possible. Even if you build an object with presorted properties, it is not guaranteed that they will display in the same order in the future. Read on :). – Govind Rai Oct 29 '16 at 0:31
  • 2
    @GovindRai yet, in real world frontend applications we loop over object collections with IDs as the keys and the order is important if translated to HTML templates. You say they have no order, I say they have exactly the order that I see when console.logging them in the current browser. And that order can get reordered. As soon as you loop over them, they have an order. – ProblemsOfSumit Dec 19 '16 at 15:27
  • 4
    @GovindRai: There is now a means of accessing properties in a specified order in the spec. Is it a good idea? Almost certainly not. :-) But it's there, as of ES2015. – T.J. Crowder Dec 31 '16 at 16:22
  • 2
    @T.J.Crowder ah, you're absolutely right. Still, with all the caveats that come with this addition, I hope our fellow SO'ers will read the borderline before adopting of this new approach (as one always should). :D – Govind Rai Dec 31 '16 at 20:17

29 Answers 29

598

Move them to an array, sort that array, and then use that array for your purposes. Here's a solution:

var maxSpeed = {
    car: 300, 
    bike: 60, 
    motorbike: 200, 
    airplane: 1000,
    helicopter: 400, 
    rocket: 8 * 60 * 60
};
var sortable = [];
for (var vehicle in maxSpeed) {
    sortable.push([vehicle, maxSpeed[vehicle]]);
}

sortable.sort(function(a, b) {
    return a[1] - b[1];
});

//[["bike", 60], ["motorbike", 200], ["car", 300],
//["helicopter", 400], ["airplane", 1000], ["rocket", 28800]]

Once you have the array, you could rebuild the object from the array in the order you like, thus achieving exactly what you set out to do. That would work in all the browsers I know of, but it would be dependent on an implementation quirk, and could break at any time. You should never make assumptions about the order of elements in a JavaScript object.

  • 23
    Can you please reformulate "you can rebuild" to "you can use array to maintain ordering of keys and pull values from object"? Not only it is non-standard, as you've yourself mentioned, this erroneous assumption is broken by more browsers than just Chrome today, so it's better not to encourage users to try it. – Oleg V. Volkov Aug 15 '12 at 15:42
  • 25
    Here is a more compact version of your code. Object.keys(maxSpeed).sort(function(a, b) {return -(maxSpeed[a] - maxSpeed[b])}); – TheBrain Sep 12 '12 at 11:07
  • 5
    @TheBrain: Just to add, keys() is only supported by IE9+ (and other modern browsers), if that is of concern. Also keys() excludes enumerable properties from the elements prototype chain (unlike for..in) - but that is usually more desirable. – MrWhite Nov 28 '12 at 9:07
  • 30
    _.pairs turns an object into [ [key1, value1], [key2, value2] ]. Then call sort on that. Then call _.object on it to turn it back. – Funkodebat Feb 20 '14 at 14:45
  • 8
    @Funkodebat AFAIK the question is not related with the underscore library.. – Xtreme Biker Mar 10 '15 at 7:40
359

We don't want to duplicate the entire data structure, or use an array where we need an associative array.

Here's another way to do the same thing as bonna:

var list = {"you": 100, "me": 75, "foo": 116, "bar": 15};
keysSorted = Object.keys(list).sort(function(a,b){return list[a]-list[b]})
console.log(keysSorted);     // bar,me,you,foo

  • 19
    This seems to be sorting by key, not value, which is not what the question called for? – Michael Jan 7 '15 at 4:26
  • 24
    It's sorted by value, and displays keys -- but we lose the value count when it prints out, as it prints only keys. – Hanna Jul 22 '15 at 21:16
  • 6
    Object property order is not guaranteed in JavaScript, so sorting should be done into an array, not an object (which is what you are referring to as an 'associative array'). – Christopher Meyers Nov 6 '15 at 20:59
  • 6
    Don't forget. keysSorted is an array! Not an object! – Green Feb 6 '17 at 15:14
  • 8
    If you add .map(key => list[key]); to the end of the sort, it will return the whole object instead of just the key – James Moran Jan 10 '18 at 15:00
165

Your objects can have any amount of properties and you can choose to sort by whatever object property you want, number or string, if you put the objects in an array. Consider this array:

var arrayOfObjects = [   
    {
        name: 'Diana',
        born: 1373925600000, // Mon, Jul 15 2013
        num: 4,
        sex: 'female'
    },
    {

        name: 'Beyonce',
        born: 1366832953000, // Wed, Apr 24 2013
        num: 2,
        sex: 'female'
    },
    {            
        name: 'Albert',
        born: 1370288700000, // Mon, Jun 3 2013
        num: 3,
        sex: 'male'
    },    
    {
        name: 'Doris',
        born: 1354412087000, // Sat, Dec 1 2012
        num: 1,
        sex: 'female'
    }
];

sort by date born, oldest first

// use slice() to copy the array and not just make a reference
var byDate = arrayOfObjects.slice(0);
byDate.sort(function(a,b) {
    return a.born - b.born;
});
console.log('by date:');
console.log(byDate);

sort by name

var byName = arrayOfObjects.slice(0);
byName.sort(function(a,b) {
    var x = a.name.toLowerCase();
    var y = b.name.toLowerCase();
    return x < y ? -1 : x > y ? 1 : 0;
});

console.log('by name:');
console.log(byName);

http://jsfiddle.net/xsM5s/16/

  • 1
    Sort by name should not substr out the first character; else Diana and Debra have an undefined order. Also, your byDate sort actually uses num, not born. – Lawrence Dol Mar 12 '14 at 19:55
  • This looks good, but note that to compare strings you can just use x.localeCompare(y) – Jemar Jones Mar 22 '17 at 15:38
  • 2
    @JemarJones localCompare looks like a very useful function! Just note that it won't be supported in every browser - IE 10 and less, Safari Mobile 9 and less. – inorganik Mar 22 '17 at 17:51
  • @inorganik Yes very good note for those who need to support those browsers – Jemar Jones Mar 23 '17 at 18:44
  • 1
    This is an array of Objects, which is not the OP asked for (an Object with several properties) – João Pimentel Ferreira Apr 15 '18 at 19:36
59

For completeness sake, this function returns sorted array of object properties:

function sortObject(obj) {
    var arr = [];
    for (var prop in obj) {
        if (obj.hasOwnProperty(prop)) {
            arr.push({
                'key': prop,
                'value': obj[prop]
            });
        }
    }
    arr.sort(function(a, b) { return a.value - b.value; });
    //arr.sort(function(a, b) { a.value.toLowerCase().localeCompare(b.value.toLowerCase()); }); //use this to sort as strings
    return arr; // returns array
}

var list = {"you": 100, "me": 75, "foo": 116, "bar": 15};
var arr = sortObject(list);
console.log(arr); // [{key:"bar", value:15}, {key:"me", value:75}, {key:"you", value:100}, {key:"foo", value:116}]

Jsfiddle with the code above is here. This solution is based on this article.

Updated fiddle for sorting strings is here. You can remove both additional .toLowerCase() conversions from it for case sensitive string comparation.

  • 1
    What about an array of Objects? [ {name:Will}, {name:Bill}, {name:Ben} ] – Will Hancock Aug 16 '12 at 16:08
  • 1
    Hi Will, you can use localeCompare function for this comparation. Added it to the answer above. – Stano Aug 16 '12 at 16:29
  • Great solution. The string sort needs a return – pfwd Nov 14 '18 at 11:53
36

JavaScript objects are unordered by definition (see the ECMAScript Language Specification, section 8.6). The language specification doesn't even guarantee that, if you iterate over the properties of an object twice in succession, they'll come out in the same order the second time.

If you need things to be ordered, use an array and the Array.prototype.sort method.

  • 4
    Note that's there's been quite a bit of arguing about this. Most implementations keep the list in the order in which elements were added. IIRC, Chrome doesn't. There was argument about whether Chrome should fall in line with the other implementations. My belief is that a JavaScript object is a hash and no order should be assumed. I believe Python went through the same argument and a new ordered hash-like list was recently introduced. For most browsers, you CAN do what you want by recreating your object, adding elements by sorted value. But you shouldn't. – Nosredna Jul 1 '09 at 15:37
  • Edit. Chrome usually keeps order, but doesn't always. And here's the relevant Chromium bug: code.google.com/p/chromium/issues/detail?id=883 – Nosredna Jul 1 '09 at 15:43
  • 6
    That bug report is unjustified, and those who relied on the undocumented behaviour are the ones with the bugs. Read ECMASCript section 8.6; it clearly states that "An Object is an unordered collection of properties". Anybody who found that it didn't seem that way in a few implementations, and then started to depend on that implementation-specific behaviour,made a big mistake, and they shouldn't be trying to shift the blame away from themselves. If I was on the Chrome team I'd mark that bug report as "Invalid, WontFix". – NickFitz Jul 1 '09 at 15:58
  • 7
    EcmaScript 5 actually defines the order of enumeration to be the order of insertion -- the absence of definition is considered a spec bug in ES3. It's worth noting that the EcmaScript spec defines behaviour that no one would consider sane -- for example spec behaviour is that syntax errors are in many cases thrown at runtime, incorrect use of continue, break, ++, --, const, etc according to the spec any engine that throws an exception before reaching that code is wrong – olliej Jul 1 '09 at 21:24
  • 4
    @olliej - I don't think this is correct. The spec says: "The mechanics and order of enumerating the properties (step 6.a in the first algorithm, step 7.a in the second) is not specified". This is on page 92 of the PDF of the final draft. – whitneyland Feb 20 '12 at 17:06
30

An "arrowed" version of @marcusR 's answer for reference

var myObj = {"you": 100, "me": 75, "foo": 116, "bar": 15};
keysSorted = Object.keys(myObj).sort((a,b) => myObj[a]-myObj[b])
alert(keysSorted);     // bar,me,you,foo

UPDATE: April 2017 - This returns a sorted myObj object defined above.

Object
 .keys(myObj)
 .sort((a, b) => myObj[a]-myObj[b])
 .reduce((_sortedObj, key) => ({
   ..._sortedObj, 
   [key]: myObj[key]
 }), {})

Try it here!

UPDATE: October 2018 - Object.entries version

Object
 .entries(myObj)
 .sort()
 .reduce((_sortedObj, [k,v]) => ({
   ..._sortedObj, 
   [k]: v
 }), {})

Try it here!

  • 1
    does not work for var myObj = {"1": {"Value": 40}, "2": {"Value": 10}, "3": {"Value": 30}, "4": {"Value": 20}}; – Rohanil Jan 5 '18 at 10:03
  • 2
    The OP's question, along with this answer does not contain nested objects @Rohanil Maybe you'd want to ask another question instead of down-voting. Your nested object with various types obviously needs more than this solution provides – Jason J. Nathan Jan 6 '18 at 12:21
  • Just a note: your updates won't work actually. At least not everywhere and not because of entries. According to the standard, an object is an unordered collection of properties. Well, that means if you are trying to construct the new object after sorting it by property value or anything else, the property key ordering becomes again undefined. Chrome, for example, is by default ordering the property keys, thus every attempt to order them differently is useless. Your only chance is to get an "index" based on your ordering preferences and traverse the original object accordingly. – ZorgoZ Oct 25 '18 at 10:49
  • Yes @ZorgoZ, you are right and many people have mentioned it on this post. Most of the time, we use this function as a transformation before converting to another type (like JSON) or before another reduce function. If the objective is to mutate the object thereafter, then there might be unexpected results. I have had success with this function across engines. – Jason J. Nathan Oct 28 '18 at 23:07
  • Note: you don't want to use sort() on Object.entries() – Solvitieg Feb 4 at 22:15
22

ECMAScript 2017 introduces Object.values / Object.entries. As the name suggests, the former aggregates all the values of an object into an array, and the latter does the whole object into an array of [key, value] arrays; Python's equivalent of dict.values() and dict.items().

The features make it pretty easier to sort any hash into an ordered object. As of now, only a small portion of JavaScript platforms support them, but you can try it on Firefox 47+.

let obj = {"you": 100, "me": 75, "foo": 116, "bar": 15};

let entries = Object.entries(obj);
// [["you",100],["me",75],["foo",116],["bar",15]]

let sorted = entries.sort((a, b) => a[1] - b[1]);
// [["bar",15],["me",75],["you",100],["foo",116]]
  • how does this possibly answers the question's title Sorting JavaScript Object by property value ? you misunderstood the question I think, since you are to change the original Object and not create a new Array from it. – vsync Jun 14 '17 at 15:15
  • 1
    @vsync This answer gives the same result as the accepted answer, but with less code and no temporary variable. – Darren Cook Apr 3 '18 at 18:18
  • 1
    FWIW, this answer is clean af and is the only one that helped me. – NetOperator Wibby Apr 20 '18 at 23:04
21

OK, as you may know, javascript has sort() function, to sort arrays, but nothing for object...

So in that case, we need to somehow get array of the keys and sort them, thats the reason the apis gives you objects in an array most of the time, because Array has more native functions to play with them than object literal, anyway, the quick solotion is using Object.key which return an array of the object keys, I create the ES6 function below which does the job for you, it uses native sort() and reduce() functions in javascript:

function sortObject(obj) {
  return Object.keys(obj)
    .sort().reduce((a, v) => {
    a[v] = obj[v];
    return a; }, {});
}

And now you can use it like this:

let myObject = {a: 1, c: 3, e: 5, b: 2, d: 4};
let sortedMyObject = sortObject(myObject);

Check the sortedMyObject and you can see the result sorted by keys like this:

{a: 1, b: 2, c: 3, d: 4, e: 5}

Also this way, the main object won't be touched and we actually getting a new object.

I also create the image below, to make the function steps more clear, in case you need to change it a bit to work it your way:

Sorting a javascript object by property value

  • 4
    This sort by key, not by value. – ROROROOROROR Aug 28 '17 at 9:39
  • @ROROROOROROR, it's just an indication how it works as they are not that different, but all good, I will add sorting by value too – Alireza Aug 28 '17 at 10:35
  • 1
    Sorting by value is wrong and it's your dataset. Change c: 3 to c: 13 and you'll see it fall apart. – VtoCorleone Nov 1 '17 at 18:32
  • @VtoCorleone That's just a natural sorting error, 1 comes first, not a flaw in the algorithm as presented. – Michael Ryan Soileau Apr 23 '18 at 3:23
8
var list = {
    "you": 100, 
    "me": 75, 
    "foo": 116, 
    "bar": 15
};

function sortAssocObject(list) {
    var sortable = [];
    for (var key in list) {
        sortable.push([key, list[key]]);
    }
    // [["you",100],["me",75],["foo",116],["bar",15]]

    sortable.sort(function(a, b) {
        return (a[1] < b[1] ? -1 : (a[1] > b[1] ? 1 : 0));
    });
    // [["bar",15],["me",75],["you",100],["foo",116]]

    var orderedList = {};
    for (var idx in sortable) {
        orderedList[sortable[idx][0]] = sortable[idx][1];
    }

    return orderedList;
}

sortAssocObject(list);

// {bar: 15, me: 75, you: 100, foo: 116}
  • Simple and Perfect! This answers the question. Thanks. – Ajay Singh Apr 27 '17 at 15:20
  • Key order is not guaranteed in javascript so this fails for me if keys are integers or the like – ParoX May 29 '17 at 18:05
  • exact, ParoX. This is not working correctly when the key is integer type. – jwjin Jan 29 '18 at 9:41
6

Underscore.js or Lodash.js for advanced array or object sorts

 var data={
        "models": {

            "LTI": [
                "TX"
            ],
            "Carado": [
                "A",
                "T",
                "A(пасс)",
                "A(груз)",
                "T(пасс)",
                "T(груз)",
                "A",
                "T"
            ],
            "SPARK": [
                "SP110C 2",
                "sp150r 18"
            ],
            "Autobianchi": [
                "A112"
            ]
        }
    };

    var arr=[],
        obj={};
    for(var i in data.models){
      arr.push([i, _.sortBy(data.models[i],function (el){return el;})]);
    }
    arr=_.sortBy(arr,function (el){
      return el[0];
    });
    _.map(arr,function (el){return obj[el[0]]=el[1];});
     console.log(obj);

demo

6

Update with ES6: If your concern is having a sorted object to iterate through (which is why i'd imagine you want your object properties sorted), you can use the Map object.

You can insert your (key, value) pairs in sorted order and then doing a for..of loop will guarantee having them loop in the order you inserted them

var myMap = new Map();
myMap.set(0, "zero");
myMap.set(1, "one");
for (var [key, value] of myMap) {
  console.log(key + " = " + value);
}
// 0 = zero 
// 1 = one
  • Also in ES6 (ES2015): Object properties do have order (or there is a means of accessing them in a defined order, depending on your point of view). If the property names are strings and don't look like array indexes, the order is the order they were added to the object. This order is not specified to be respected by for-in or Object.keys, but it is defined to be respected by Object.getOwnPropertyNames and the other new methods for accessing property name arrays. So that's another option. – T.J. Crowder Dec 31 '16 at 16:26
  • But where is `sort' operation? They are not sorted at all – Green Feb 6 '17 at 15:21
  • @Green I think what I wanted to highlight here is that, with Map you actually have a data structure that can store in sorted order (sort your data, loop through it and store it in the map) where as you aren't guaranteed that with objects. – julianljk Feb 7 '17 at 16:08
5

I am following the solution given by slebetman (go read it for all the details), but adjusted, since your object is non-nested.

// First create the array of keys/values so that we can sort it:
var sort_array = [];
for (var key in list) {
    sort_array.push({key:key,value:list[key]});
}

// Now sort it:
sort_array.sort(function(x,y){return x.value - y.value});

// Now process that object with it:
for (var i=0;i<sort_array.length;i++) {
    var item = list[sort_array[i].key];

    // now do stuff with each item
}
2

This could be a simple way to handle it as a real ordered object. Not sure how slow it is. also might be better with a while loop.

Object.sortByKeys = function(myObj){
  var keys = Object.keys(myObj)
  keys.sort()
  var sortedObject = Object()
  for(i in keys){
    key = keys[i]
    sortedObject[key]=myObj[key]
   }

  return sortedObject

}

And then I found this invert function from: http://nelsonwells.net/2011/10/swap-object-key-and-values-in-javascript/

Object.invert = function (obj) {

  var new_obj = {};

  for (var prop in obj) {
    if(obj.hasOwnProperty(prop)) {
      new_obj[obj[prop]] = prop;
    }
  }

  return new_obj;
};

So

var list = {"you": 100, "me": 75, "foo": 116, "bar": 15};
var invertedList = Object.invert(list)
var invertedOrderedList = Object.sortByKeys(invertedList)
var orderedList = Object.invert(invertedOrderedList)
2

Just in case, someone is looking for keeping the object (with keys and values), using the code reference by @Markus R and @James Moran comment, just use:

var list = {"you": 100, "me": 75, "foo": 116, "bar": 15};
var newO = {};
Object.keys(list).sort(function(a,b){return list[a]-list[b]})
                 .map(key => newO[key] = list[key]);
console.log(newO);  // {bar: 15, me: 75, you: 100, foo: 116}
  • 1
    You are returning an assignment in that map, forEach would be better – DiegoRBaquero Mar 8 at 18:39
1

many similar and useful functions: https://github.com/shimondoodkin/groupbyfunctions/

function sortobj(obj)
{
    var keys=Object.keys(obj);
    var kva= keys.map(function(k,i)
    {
        return [k,obj[k]];
    });
    kva.sort(function(a,b){
        if(a[1]>b[1]) return -1;if(a[1]<b[1]) return 1;
        return 0
    });
    var o={}
    kva.forEach(function(a){ o[a[0]]=a[1]})
    return o;
}

function sortobjkey(obj,key)
{
    var keys=Object.keys(obj);
    var kva= keys.map(function(k,i)
    {
        return [k,obj[k]];
    });
    kva.sort(function(a,b){
        k=key;      if(a[1][k]>b[1][k]) return -1;if(a[1][k]<b[1][k]) return 1;
        return 0
    });
    var o={}
    kva.forEach(function(a){ o[a[0]]=a[1]})
    return o;
}
1

Object sorted by value (DESC)

function sortObject(list) {
  var sortable = [];
  for (var key in list) {
    sortable.push([key, list[key]]);
  }

  sortable.sort(function(a, b) {
    return (a[1] > b[1] ? -1 : (a[1] < b[1] ? 1 : 0));
  });

  var orderedList = {};
  for (var i = 0; i < sortable.length; i++) {
    orderedList[sortable[i][0]] = sortable[i][1];
  }

  return orderedList;
}
1

Here is one more example:

function sortObject(obj) {
  var arr = [];
  var prop;
  for (prop in obj) {
    if (obj.hasOwnProperty(prop)) {
      arr.push({
        'key': prop,
        'value': obj[prop]
      });
    }
  }
  arr.sort(function(a, b) {
    return a.value - b.value;
  });
  return arr; // returns array
}
var list = {
  car: 300,
  bike: 60,
  motorbike: 200,
  airplane: 1000,
  helicopter: 400,
  rocket: 8 * 60 * 60
};
var arr = sortObject(list);
console.log(arr);

0

Another way to solve this:-

var res = [{"s1":5},{"s2":3},{"s3":8}].sort(function(obj1,obj2){ 
 var prop1;
 var prop2;
 for(prop in obj1) {
  prop1=prop;
 }
 for(prop in obj2) {
  prop2=prop;
 }
 //the above two for loops will iterate only once because we use it to find the key
 return obj1[prop1]-obj2[prop2];
});

//res will have the result array

0

Thank you and continue answer @Nosredna

Now that we understand object need to be converted to array then sort the array. this is useful for sorting array (or converted object to array) by string:

Object {6: Object, 7: Object, 8: Object, 9: Object, 10: Object, 11: Object, 12: Object}
   6: Object
   id: "6"
   name: "PhD"
   obe_service_type_id: "2"
   __proto__: Object
   7: Object
   id: "7"
   name: "BVC (BPTC)"
   obe_service_type_id: "2"
   __proto__: Object


    //Sort options
    var sortable = [];
    for (var vehicle in options)
    sortable.push([vehicle, options[vehicle]]);
    sortable.sort(function(a, b) {
        return a[1].name < b[1].name ? -1 : 1;
    });


    //sortable => prints  
[Array[2], Array[2], Array[2], Array[2], Array[2], Array[2], Array[2]]
    0: Array[2]
    0: "11"
    1: Object
        id: "11"
        name: "AS/A2"
        obe_service_type_id: "2"
        __proto__: Object
        length: 2
        __proto__: Array[0]
    1: Array[2]
    0: "7"
    1: Object
        id: "7"
        name: "BVC (BPTC)"
        obe_service_type_id: "2"
        __proto__: Object
        length: 2
0

Try this. Even your object is not having the property based on which you are trying to sort also will get handled.

Just call it by sending property with object.

var sortObjectByProperty = function(property,object){

    console.time("Sorting");
    var  sortedList      = [];
         emptyProperty   = [];
         tempObject      = [];
         nullProperty    = [];
    $.each(object,function(index,entry){
        if(entry.hasOwnProperty(property)){
            var propertyValue = entry[property];
            if(propertyValue!="" && propertyValue!=null){
              sortedList.push({key:propertyValue.toLowerCase().trim(),value:entry});  
            }else{
                emptyProperty.push(entry);
           }
        }else{
            nullProperty.push(entry);
        }
    });

      sortedList.sort(function(a,b){
           return a.key < b.key ? -1 : 1;
         //return a.key < b.key?-1:1;   // Asc 
         //return a.key < b.key?1:-1;  // Desc
      });


    $.each(sortedList,function(key,entry){
        tempObject[tempObject.length] = entry.value;
     });

    if(emptyProperty.length>0){
        tempObject.concat(emptyProperty);
    }
    if(nullProperty.length>0){
        tempObject.concat(nullProperty);
    }
    console.timeEnd("Sorting");
    return tempObject;
}
0

I made a plugin just for this, it accepts 1 arg which is an unsorted object, and returns an object which has been sorted by prop value. This will work on all 2 dimensional objects such as {"Nick": 28, "Bob": 52}...

var sloppyObj = {
    'C': 78,
    'A': 3,
    'B': 4
};

// Extend object to support sort method
function sortObj(obj) {
    "use strict";

    function Obj2Array(obj) {
        var newObj = [];
        for (var key in obj) {
            if (!obj.hasOwnProperty(key)) return;
            var value = [key, obj[key]];
            newObj.push(value);
        }
        return newObj;
    }

    var sortedArray = Obj2Array(obj).sort(function(a, b) {
        if (a[1] < b[1]) return -1;
        if (a[1] > b[1]) return 1;
        return 0;
    });

    function recreateSortedObject(targ) {
        var sortedObj = {};
        for (var i = 0; i < targ.length; i++) {
            sortedObj[targ[i][0]] = targ[i][1];
        }
        return sortedObj;
    }
    return recreateSortedObject(sortedArray);
}

var sortedObj = sortObj(sloppyObj);

alert(JSON.stringify(sortedObj));

Here is a demo of the function working as expected http://codepen.io/nicholasabrams/pen/RWRqve?editors=001

0

Using query-js you can do it like this

list.keys().select(function(k){
    return {
        key: k,
        value : list[k]
    }
}).orderBy(function(e){ return e.value;});

You can find an introductory article on query-js here

0

Couln't find answer above that would both work and be SMALL, and would support nested objects (not arrays), so I wrote my own one :) Works both with strings and ints.

  function sortObjectProperties(obj, sortValue){
      var keysSorted = Object.keys(obj).sort(function(a,b){return obj[a][sortValue]-obj[b][sortValue]});
      var objSorted = {};
      for(var i = 0; i < keysSorted.length; i++){
          objSorted[keysSorted[i]] = obj[keysSorted[i]];
      }
      return objSorted;
    }

Usage:

    /* sample object with unsorder properties, that we want to sort by 
    their "customValue" property */

    var objUnsorted = {
       prop1 : {
          customValue : 'ZZ'
       },
       prop2 : {
          customValue : 'AA'
       }
    }

    // call the function, passing object and property with it should be sorted out
    var objSorted = sortObjectProperties(objUnsorted, 'customValue');

    // now console.log(objSorted) will return:
    { 
       prop2 : {
          customValue : 'AA'
       },
       prop1 : {
          customValue : 'ZZ'
       } 
    }
  • keysSorted is sorted in ascending order of sortValue but as a javascript object is an unordered collection of properties, it doesn't make sense to attempt to order these properties – Olivier Dec 6 '17 at 11:53
0

here is the way to get sort the object and get sorted object in return

let sortedObject = {}
sortedObject = Object.keys(yourObject).sort((a, b) => {
                        return yourObject[a] - yourObject[b] 
                    }).reduce((prev, curr, i) => {
                        prev[i] = yourObject[curr]
                        return prev
                    }, {});

you can customise your sorting function as per your requirement

  • Great answer. Thanks! – Gaston Sanchez Aug 25 '17 at 18:15
  • This code just crashes your object – Akim Kelar Aug 5 '18 at 7:21
0
function sortObjByValue(list){
 var sortedObj = {}
 Object.keys(list)
  .map(key => [key, list[key]])
  .sort((a,b) => a[1] > b[1] ? 1 : a[1] < b[1] ? -1 : 0)
  .forEach(data => sortedObj[data[0]] = data[1]);
 return sortedObj;
}
sortObjByValue(list);

Github Gist Link

0
    var list = {
    "you": 100,
    "me": 75,
    "foo": 116,
    "bar": 15
};
var tmpList = {};
while (Object.keys(list).length) {
    var key = Object.keys(list).reduce((a, b) => list[a] > list[b] ? a : b);
    tmpList[key] = list[key];
    delete list[key];
}
list = tmpList;
console.log(list); // { foo: 116, you: 100, me: 75, bar: 15 }
0

Sort values without multiple for-loops (to sort by the keys change index in the sort callback to "0")

const list = {
    "you": 100, 
    "me": 75, 
    "foo": 116, 
    "bar": 15
  };

let sorted = Object.fromEntries(
                Object.entries(list).sort( (a,b) => a[1] - b[1] )    
             ) 
console.log('Sorted object: ', sorted) 

-1

If I am having a Object like this ,

var dayObj = {
              "Friday":["5:00pm to 12:00am"] ,
              "Wednesday":["5:00pm to 11:00pm"],
              "Sunday":["11:00am to 11:00pm"], 
              "Thursday":["5:00pm to 11:00pm"],
              "Saturday":["11:00am to 12:00am"]
           }

want to sort it by day order,

we should have the daySorterMap first,

var daySorterMap = {
  // "sunday": 0, // << if sunday is first day of week
  "Monday": 1,
  "Tuesday": 2,
  "Wednesday": 3,
  "Thursday": 4,
  "Friday": 5,
  "Saturday": 6,
  "Sunday": 7
}

Initiate a separate Object sortedDayObj,

var sortedDayObj={};
Object.keys(dayObj)
.sort((a,b) => daySorterMap[a] - daySorterMap[b])
.forEach(value=>sortedDayObj[value]= dayObj[value])

You can return the sortedDayObj

-1
a = { b: 1, p: 8, c: 2, g: 1 }
Object.keys(a)
  .sort((c,b) => {
    return a[b]-a[c]
  })
  .reduce((acc, cur) => {
    let o = {}
    o[cur] = a[cur]
    acc.push(o)
    return acc
   } , [])

output = [ { p: 8 }, { c: 2 }, { b: 1 }, { g: 1 } ]

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