Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm being sent a nested hash that needs to be sorted by its values. For example:

@foo = {"a"=>{"z"=>5, "y"=>3, "x"=>88}, "b"=>{"a"=>2, "d"=>-5}}

When running the following:

@foo["a"].sort{|a,b| a[1]<=>b[1]}

I get:

[["y", 3], ["z", 5], ["x", 88]]

This is great, it's exactly what I want. The problem is I'm not always going to know what all the keys are that are being sent to me so I need some sort of loop. I tried to do the following:

@foo.each do |e|   
  e.sort{|a,b| a[1]<=>b[1]}
end

This to me makes sense since if I manually call @foo.first[0] I get

"a"

and @foo.first[1] returns

{"z"=>5, "y"=>3, "x"=>8}

but for some reason this isn't sorting properly (e.g. at all). I assume this is because the each is calling sort on the entire hash object rather than on "a"'s values. How do I access the values of the nested hash without knowing what it's key is?

share|improve this question

3 Answers 3

up vote 2 down vote accepted

You might want to loop over the hash like this:

@foo.each do |key, value|
  @foo[key] = value.sort{ |a,b| a[1]<=>b[1] }
end
share|improve this answer
    
1) it's conceptually preferrable to use Enumerable#sort_by instead of sort, check Phrogz's answer. 2) this makes an inplace operation, creating new objects (functional approach) makes the code easier to follow. –  tokland Feb 7 '11 at 20:18
    
@tokland - all great points, but my goal was to follow the OPs code while still solving the actual problem. While creating new objects might be easier to follow, it's cleaner imo to not create a temporary variable if you are going to assign it back to the original anyways. –  Pan Thomakos Feb 7 '11 at 20:33
@foo = {"a"=>{"z"=>5, "y"=>3, "x"=>88}, "b"=>{"a"=>2, "d"=>-5}}
@bar = Hash[ @foo.map{ |key,values| [ key, values.sort_by(&:last) ] } ]

Or, via a less-tricky path:

@bar = {}
@foo.each do |key,values|
  @bar[key] = values.sort_by{ |key,value| value }
end

In both cases @bar turns out to be:

p @bar
#=> {
#=>   "a"=>[["y", 3], ["z", 5], ["x", 88]],
#=>   "b"=>[["d", -5], ["a", 2]]
#=> }
share|improve this answer
    
+1 but, I'd write an explicit getter for the sort_by: values.sort_by { |k, v| v }. Will we see the day that Ruby ships the absolutely necessary Enumerable#to_hash? I'm tired of recommending Facet's Enumberable#mash for something that should be built-in, sigh... @bar = @foo.to_hash { |key, values| [key, values.sort_by { |k, v| v }] } –  tokland Feb 7 '11 at 20:14

in your example e is an temporary array containing a [key,value] pair. In this case, the character key and the nested hash. So e.sort{|a,b|...} is going to try to compare the character to the hash, and fails with a runtime error. I think you probably meant to type e[1].sort{...}. But even that is not going to work correctly, because you don't store the sorted hash anywhere: @foo.each returns the original @foo and leaves it unchanged.

The better solution is the one suggested by @Pan Thomakos:

@foo.each do |key, value|
  @foo[key] = value.sort{ |a,b| a[1]<=>b[1] }
end
share|improve this answer

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.