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I have an array of objects to sort.Each object has two parameters: Strength and Name

objects = []
object[0] = {strength: 3, name: "Leo"}
object[1] = {strength: 3, name: "Mike"}

I want to sort first by Strength and then alphabetically. I am using the following code to sort by the first parameter. How do I sort then by the second?

function sortF(ob1,ob2) {
  if (ob1.strength > ob2.strength) {return 1}
  else if (ob1.strength < ob2.strength){return -1}
  return 0;
};

Thanks for your help.

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4 Answers 4

up vote 22 down vote accepted

Expand your sort function to be like this;

function sortF(ob1,ob2) {
    if (ob1.strength > ob2.strength) {
        return 1;
    } else if (obj1.strength < obj2.strength) { 
        return -1;
    }

    // Else go to the 2nd item
    if (ob1.name < ob2.name) { 
        return -1;
    } else if (ob1.name > ob2.name) {
        return 1
    } else { // nothing to split them
        return 0;
    }
}

A < and > comparison on strings is an alphabetic comparison.

share|improve this answer
    
Matt as they say. YOU ARE GENIUS!!! Thank you. –  Leonardo Amigoni Feb 7 '12 at 11:28
    
This shed some light on how to sort by firstname then by lastname. Thanks! –  Mike Lyons Sep 4 '14 at 2:38

This little function is often handy when sorting by multiple keys:

cmp = function(a, b) {
    if (a > b) return +1;
    if (a < b) return -1;
    return 0;
}

Apply it like this:

array.sort(function(a, b) { 
    return cmp(a.strength,b.strength) || cmp(a.name,b.name)
})

Javascript is really missing Ruby's spaceship operator, which makes such comparisons extremely elegant.

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Short, sweet and beautiful –  Serj Sagan Jun 3 '13 at 22:08
2  
cough Perl's spaceship operator. –  Richard Simões Mar 24 '14 at 20:32

When I was looking for an answer to this very question, the answers I found on StackOverflow weren't really what I hoped for. So I created a simple, reusable function that does exactly this. It allows you to use the standard Array.sort, but with firstBy().thenBy().thenBy() style. https://github.com/Teun/thenBy.js

PS. This is the second time I post this. The first time was removed by a moderator saying "Please don't make promotional posts for your own work". I'm not sure what the rules are here, but I was trying to answer this question. I'm very sorry that it is my own work. Feel free to remove again, but please point me to the rule involved then.

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function sortF(ob1,ob2) {
  if (ob1.strength > ob2.strength) {return 1}
  else if (ob1.strength < ob2.strength) {return -1}
  else if (ob1.name > ob2.name) {return 1}
  return -1;
};

EDIT: Sort by strength, then if strength is equal, sort by name. The case where strength and name are equal in both objects doesn't need to be accounted for seperately, since the final return of -1 indicates a less-than-or-equal-to relationship. The outcome of the sort will be correct. It might make it run faster or slower, I don't know. If you want to be explicit, just replace

return -1;

with

else if (ob1.name < ob2.name) {return -1}
return 0;
share|improve this answer
1  
You missed out the equal case. –  T.J. Crowder Feb 7 '12 at 11:24
    
Please add some short text which explains your answer a little bit... –  Daniele B Feb 7 '12 at 11:38

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