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I got an array (see below for one object in the array) that I need to sort by firstname using JavaScript. How can I do it?

user = {
   bio = "<null>";
   email = "user@domain.com";
   firstname = "Anna";
   id = 318;
   "last_avatar" = "<null>";
   "last_message" = "<null>";
   lastname = "Nickson";
   nickname = "anny";
};
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12  
In an object, keys should have a : appended, not a =. –  pimvdb Jul 15 '11 at 19:12
2  
You javascript is malformed unless Anna, Nickson, etc. are variable names. They should be in quotes. –  James Montagne Jul 15 '11 at 19:13
    
possible duplicate of Sort JavaScript array of Objects –  Felix Kling Jul 15 '11 at 19:17

6 Answers 6

up vote 140 down vote accepted
user.sort(function(a, b){
    if(a.firstname < b.firstname) return -1;
    if(a.firstname > b.firstname) return 1;
    return 0;
})
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3  
Friggin awesome... I'm sorting a nodelist by id...works like a charm. Thx a ton! –  Cody Nov 16 '12 at 16:49
12  
For those coming in at a later date, Mrchief's answer is better because it's case insensitive. –  mlienau Apr 1 '13 at 14:19
4  
@mlienau, I wouldn't call it better or worse. It's just another –  RiaD Apr 9 '13 at 20:58
7  
@RiaD fair enough. Just can't think of many cases of sorting items alphabetically including casing, where 'Zebra' appears in the list before 'apple', would be very useful. –  mlienau Apr 9 '13 at 22:00
1  
This code will only work on english speaking countries. In other countries you should be using ovunccetin's answer with localeCompare. –  Spoike Jul 6 '13 at 5:47

Something like this:

[array].sort(function(a, b){
 var nameA=a.name.toLowerCase(), nameB=b.name.toLowerCase()
 if (nameA < nameB) //sort string ascending
  return -1 
 if (nameA > nameB)
  return 1
 return 0 //default return value (no sorting)
});
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3  
When sorting strings 'toLowerCase()' is very important - capital letters could affect your sort. –  MarzSocks Jan 9 at 13:06
1  
In case anyone else is wondering what the toLowerCase impacts, it's not much: 'a'>'A' //true 'z'>'a' //true 'A'>'z' //false –  Simple As Could Be Jan 14 at 18:13

If compared strings contain unicode characters you can use localeCompare function of String class like the following:

users.sort(function(a,b){
    return a.firstname.localeCompare(b.firstname);
})
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1  
String.localeCompare isn't supports Safari and IE < 11 :) –  CORSAIR Jun 11 at 8:21
    
@CORSAIR it is supported, it is just the second and third parameter that aren't supported. –  Codler Nov 25 at 12:24

underscorejs offers the very nice _.sortBy function:

_.sortBy([{a:1},{a:3},{a:2}], "a")

or you can use a custom sort function:

_.sortBy([{a:"b"},{a:"c"},{a:"a"}], function(i) {return i.a.toLowerCase()})
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the second example involves returning strings. Does sortBy detect the returned values are strings and thus performs an alphabetical sorting? Thanks –  superjos Nov 10 at 21:01

Basically you can sort arrays with method sort, but if you want to sort objects then you have to pass function to sort method of array, so I will give you an example using your array

user = [{
bio: "<null>",
email: "user@domain.com",
firstname: 'Anna',
id: 318,
"last_avatar": "<null>",
"last_message": "<null>",
lastname: 'Nickson',
nickname: 'anny'
},
{
bio: "<null>",
email: "user@domain.com",
firstname: 'Senad',
id: 318,
"last_avatar": "<null>",
"last_message": "<null>",
lastname: 'Nickson',
nickname: 'anny'
},
{
bio: "<null>",
email: "user@domain.com",
firstname: 'Muhamed',
id: 318,
"last_avatar": "<null>",
"last_message": "<null>",
lastname: 'Nickson',
nickname: 'anny'
}];

var ar = user.sort(function(a, b)
{
  var nA = a.firstname.toLowerCase();
  var nB = b.firstname.toLowerCase();

  if(nA < nB)
    return -1;
  else if(nA > nB)
    return 1;
 return 0;
});
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A more compact notation:

user.sort(function(a, b){
    return a.firstname == b.firstname ? 0 : a.firstname < b.firstname ? -1 : 1;
})
share|improve this answer
    
it's more compact but violates its contract: sign(f(a, b)) =-sign(f(b, a)) (for a = b) –  RiaD Oct 30 at 9:09
    
Answer corrected to account for that case. –  Ben Smiley Oct 30 at 14:25

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