Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I'm having a problem figuring out how I can sort an array of an array. Both arrays are straight forward and I'm sure it's quite simple, but I can't seem to figure it out.

Here's the array:

[["happy", 1], ["sad", 2], ["mad", 1], ["bad", 3], ["glad", 12]]

I want to sort it by the integer value of the inner array which is a value of how many times the word has occurred, biggest number first.

share|improve this question
up vote 17 down vote accepted

Try either:

array = [["happy", 1], ["sad", 2], ["mad", 1], ["bad", 3], ["glad", 12]]
sorted = array.sort {|a,b| a[1] <=> b[1]}

Or:

array = [["happy", 1], ["sad", 2], ["mad", 1], ["bad", 3], ["glad", 12]]
sorted = array.sort {|a,b| b[1] <=> a[1]}

Depending if you want ascending or descending.

share|improve this answer

Using the Array#sort method:

ary = [["happy", 1], ["sad", 2], ["mad", 1], ["bad", 3], ["glad", 12]]
ary.sort { |a, b| b[1] <=> a[1] }
share|improve this answer

This should do what you want.

a = [["happy", 1], ["sad", 2], ["mad", 1], ["bad", 3], ["glad", 12]]
a.sort {|x,y| y[1] <=> x[1]}
share|improve this answer

sort can be used with a block.

a = [["happy", 1], ["sad", 2], ["mad", 1], ["bad", 3], ["glad", 12]]
a.sort { |o1, o2| o1[1] <=> o2[1] }
#=> [["happy", 1], ["mad", 1], ["sad", 2], ["bad", 3], ["glad", 12]] 
share|improve this answer
2  
You should always use sort_by for a keyed sort. Not only is it much easier to read, it is also more efficient. In this case it would be a.sort_by {|el| el[1] }, which, in this case, is the same as a.sort_by(&:last). – Jörg W Mittag Mar 8 '12 at 12:52
    
How can we use this a.sort_by { |el| el[1] } if we want to order it descending? – Vini.g.fer Jun 10 '15 at 15:30

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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