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I have an array of hashes which look like:

ward = {id: id, name: record["Externalization"], mnemonic: record["Mnemonic"],
   seqno: record["SeqNo"]}

All fields are strings.

Now I want to sort them first on seqno and then on name. seqno can be nil (if seqno is nil, then this ward must come after the ones having a seqno).

What I have so far is:

wardList.sort! do |a,b| 
  return (a[:name] <=> b[:name]) if (a[:seqno].nil? && b[:seqno].nil?) 
  return -1 if a[:seqno].nil?
  return 1 if b[:seqno].nil?
  (a[:seqno] <=> b[:seqno]).nonzero? ||
    (a[:name] <=> b[:name])
end

But this gives me the error: can't convert Symbol into Integer

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3 Answers 3

up vote 2 down vote accepted

First, normalize your data, you can't work with integers as strings here:

wardList = wardList.map { |x| x.merge({:id    => x[:id].to_i, 
                                       :seqno => x[:seqno].try(:to_i) }) }

Then you can use sort_by, which supports lexicographical sorting:

wardList.sort_by! { |x| [x[:seqno] || Float::INFINITY, x[:name]] }

Example:

irb(main):034:0> a = [{:seqno=>5, :name=>"xsd"}, 
                      {:seqno=>nil, :name=>"foo"}, 
                      {:seqno=>nil, :name=>"bar"}, 
                      {:seqno=>1, :name=>"meh"}]
irb(main):033:0> a.sort_by { |x| [x[:seqno] || Float::INFINITY, x[:name]] }
=> [{:seqno=>1, :name=>"meh"},
    {:seqno=>5, :name=>"xsd"},
    {:seqno=>nil, :name=>"bar"},
    {:seqno=>nil, :name=>"foo"}]
share|improve this answer
    
Yes, but what if a[:seqno] is nil? –  Lieven Cardoen Mar 21 '12 at 15:35
2  
@Lieven, why nasty? how do you compare a number with nil? it's only natural to set a default value to cover this case. –  tokland Mar 21 '12 at 15:41
1  
@Lieven: So now you have two one-line solutions to solve this task perfectly simple and elegant. Congratulations. –  Niklas B. Mar 21 '12 at 16:05
1  
@Lieven: You seem to be lacking some basic understanding of the tools you are working with. Check my answer for an example of how to transform the data properly. –  Niklas B. Mar 21 '12 at 16:28
1  
@Lieven: Exactly the values false and nil are considered boolean false in Ruby. So with the first operand being nil, the second operand is not even evaluated. By the way, the expression doesn't return false, it returns the first falsy value (nil in this case). –  Niklas B. Mar 21 '12 at 16:46

This should work:

sorted = wardList.sort_by{|a| [a[:seqno] ? 0 : 1, a[:seqno], a[:name]] }

or for some rubies (e.g. 1.8.7):

sorted = wardList.sort_by{|a| [a[:seqno] ? 0 : 1, a[:seqno] || 0, a[:name]] }
share|improve this answer
    
Yes, but it also needs to be sorted on name if seqno are equal or both nil... –  Lieven Cardoen Mar 21 '12 at 15:33
    
Edited, that should include what you need –  PinnyM Mar 21 '12 at 15:38
    
Can you explain how this works? –  Lieven Cardoen Mar 21 '12 at 15:48
1  
sort_by uses tuple comparison, as opposed to standard sort comparison. Apparently tuples are allowed to contain nil (but not true or false), although I'm not sure myself how the comparison implementation actually does this. nil will normally precede non-nil, which is why we need to first sort on nil status –  PinnyM Mar 21 '12 at 15:59
1  
Oh, by the way, looking back at the question it should really be a[:seqno] ? 0 : 1 –  Niklas B. Mar 21 '12 at 16:13

I don't think you should use return here, it causes the block to return to the iterator, the iterator to return to the enclosing method and the enclosing method to return to its caller. Use next instead which only causes the block to return to the iterator (sort! in this case) and do something like:

wardList.sort! do |x,y|
  next  1 if x[:seqno].nil?
  next -1 if y[:seqno].nil?
  comp = x[:seqno] <=> y[:seqno]
  comp.zero? ? x[:name] <=> y[:name] : comp
end
share|improve this answer
    
This gives the wrong result if x[:seqno].nil? && !y[:seqno].nil? –  Niklas B. Mar 21 '12 at 16:19
    
works for me... can you give a minimal example? –  Patrick Oscity Mar 21 '12 at 16:28

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