54

I've been looking for a while and want a way to sort a Javascript object like this:

{
    method: 'artist.getInfo',
    artist: 'Green Day',
    format: 'json',
    api_key: 'fa3af76b9396d0091c9c41ebe3c63716'
}

and sort is alphabetically by name to get:

{
    api_key: 'fa3af76b9396d0091c9c41ebe3c63716',
    artist: 'Green Day',
    format: 'json',
    method: 'artist.getInfo'
}

I can't find any code that will do this. Can anyone give me some help?

84

By definition, the order of keys in an object is undefined, so you probably won't be able to do that in a way that is future-proof. Instead, you should think about sorting these keys when the object is actually being displayed to the user. Whatever sort order it uses internally doesn't really matter anyway.

By convention, most browsers will retain the order of keys in an object in the order that they were added. So, you could do this, but don't expect it to always work:

function sortObject(o) {
    var sorted = {},
    key, a = [];

    for (key in o) {
        if (o.hasOwnProperty(key)) {
            a.push(key);
        }
    }

    a.sort();

    for (key = 0; key < a.length; key++) {
        sorted[a[key]] = o[a[key]];
    }
    return sorted;
}
  • That seems to work perfectly. I'll have to keep an eye on it breaking in future browsers but it seems to work for now. Thanks for the help :) – matto1990 Aug 31 '09 at 23:14
  • It may in fact always work, and it is being codified into the Ecmascript standard, but it's still not a safe assumption to rely on, because having a defined order is not logically part of an "object". If you want to define order, you should use an array. – Breton Aug 31 '09 at 23:33
  • The only reason I need to do it is to sort the values once so I can generate an api signature as defined on this page in section 6: last.fm/api/webauth If I was using it for more than that I'd use an array and them sort that. – matto1990 Aug 31 '09 at 23:37
  • 2
    You should most definately use an array for that. – Breton Aug 31 '09 at 23:44
  • 25
    Almost works with stacksort. – Athari Mar 19 '13 at 11:11
12

this function takes an object and returns a sorted array of arrays of the form [key,value]

function (o) {
   var a = [],i;
   for(i in o){ 
     if(o.hasOwnProperty(i)){
         a.push([i,o[i]]);
     }
   }
   a.sort(function(a,b){ return a[0]>b[0]?1:-1; })
   return a;
}

The object data structure does not have a well defined order. In mathematical terms, the collection of keys in an object are an Unordered Set, and should be treated as such. If you want to define order, you SHOULD use an array, because an array having an order is an assumption you can rely on. An object having some kind of order is something that is left to the whims of the implementation.

5

Just use sorted stringify() when you need to compare or hash the results.

3
// if ya need old browser support
Object.keys = Object.keys || function(o) {  
var result = [];  
for(var name in o) {  
    if (o.hasOwnProperty(name))  
      result.push(name);  
}  
    return result;  
};

var o = {c: 3, a: 1, b: 2};
var n = sortem(o);

function sortem(old){
  var newo = {}; Object.keys(old).sort().forEach(function(k) {new[k]=old[k]});
  return newo;
}

// deep
function sortem(old){
  var newo = {}; Object.keys(old).sort().forEach(function(k){ newo[k]=sortem(old[k]) });
  return newo;
}
sortem({b:{b:1,a:2},a:{b:1,a:2}})
  • Quite nice and slick, but unfortunately Object.keys() is not supported in IE<9 and also not in Quirks mode of any IE>=9. See MSDN's IE Dev Center. – Jpsy Oct 28 '13 at 11:29
  • Added poly fill to above answer – John Williams Mar 9 '14 at 15:27
  • If you mean deep sort of the obj, I edited the answer above. The 'new' was a typo. – John Williams Mar 9 '14 at 15:54
0

This should be used with caution as your code shouldn't rely on Object properties order. If it's just a matter of presentation (or just for the fun !), you can sort properties deeply like this :

function sortObject(src) {
  var out;
  if (typeof src === 'object' && Object.keys(src).length > 0) {
    out = {};
    Object.keys(src).sort().forEach(function (key) {
      out[key] = sortObject(src[key]);
    });
    return out;
  }
  return src;
}

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

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