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I have an array of hashes:

[{number: 1},{number: 2}, {number: 3}, {number: 4}]

I need to sort them based on a custom order:

[3,4,1,2]

Thus, the result should be:

[{number: 3},{number: 4}, {number: 1}, {number: 2}]

I know sort_by exists but I've only used it for ascending and descending orders.

I could go crazy and not worry about performance, but is there an efficient way to order this array of hashes based on a custom order via an array?

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How would the order be defined? –  lurker Jul 8 '13 at 20:34
    
If I get your question right, it would be based on a custom order, in my example above it would be working off of [2,4,1,3]. I just need the first hash with the number value of 2 to be first, next is the hash with a number value of 4, etc. –  jason328 Jul 8 '13 at 20:35
    
Comparing my answer against Priti's answer, it seems like we are solving different problems. Given order = [i,...], his says "put the first hash at the ith position". Mine says "the first hash should have number i". Which one are you solving? –  Jim Lim Jul 8 '13 at 20:47
    
Yours. Sorry for the confusion. –  jason328 Jul 8 '13 at 20:49
    
OK I updated the input in my answer for clarity. –  Jim Lim Jul 8 '13 at 20:54

3 Answers 3

up vote 5 down vote accepted

Depending on how one interprets the problem, a potential solution might be:

input  = [{number: 6},{number: 10}, {number: 2}, {number: 8}]
hash   = Hash[input.map { |h| [h[:number], h] }]
order  = [8,10,6,2]
output = hash.values_at(*order)
# => [{:number=>8}, {:number=>10}, {:number=>6}, {:number=>2}]
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2  
output = hash.values_at(*order) –  tokland Jul 8 '13 at 20:43
    
updated with @tokland's suggestion –  Jim Lim Jul 8 '13 at 20:50
    
OMG! you changed the question context too :) –  Arup Rakshit Jul 8 '13 at 20:58
    
+1 for using values_at. It's an extremely useful method for this. –  the Tin Man Jul 8 '13 at 21:06
    
@theTinMan can you review my updated one ? –  Arup Rakshit Jul 8 '13 at 21:09
input  = [{number: 6},{number: 10}, {number: 2}, {number: 8}] 
order  = [8,10,6,2]
order.map{|i| input.find{|h| h[:number] == i }}
# => [{:number=>8}, {:number=>10}, {:number=>6}, {:number=>2}]

Updated shorter code:

input  = [{number: 6},{number: 10}, {number: 2}, {number: 8}] 
order  = [8,10,6,2]
input.group_by{|h| h[:number]}
# => {6=>[{:number=>6}],
#     10=>[{:number=>10}],
#     2=>[{:number=>2}],
#     8=>[{:number=>8}]}
input.group_by{|h| h[:number]}.values_at(*order)
# => [[{:number=>8}], [{:number=>10}], [{:number=>6}], [{:number=>2}]]
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Thanks. It's what I needed. –  jason328 Jul 8 '13 at 20:40
1  
Using shift is destructive to a which might not be acceptable. Using find forces a repeated linear search through the array, causing an increasingly slower search as order or the input arrays grow. –  the Tin Man Jul 8 '13 at 21:10
    
@theTinMan I removed the #shift version. –  Arup Rakshit Jul 8 '13 at 21:12
1  
I see that. Take a close look at @JimLim's answer, especially the code that massages input and creates an intermediate hash. That transform allows his code to reference the needed values using values_at in a very efficient/fast manner. It's a commonly used technique, transforming to an intermediate hash, then grabbing the needed results in another, arbitrary, order. –  the Tin Man Jul 8 '13 at 21:15
    
@theTinMan Please see my update. I have done using #group_by. –  Arup Rakshit Jul 8 '13 at 21:46

Just sort on the index of the value in a

h = [{number: 1},{number: 2}, {number: 3}, {number: 4}]
a = [3,4,1,2]

p h.sort_by{|el| a.index(el[:number])}
# => [{:number=>3}, {:number=>4}, {:number=>1}, {:number=>2}]
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Yes, that's a typical way to do it, only problem it's O(n^2). You can build an intermediate hash to make it O(n log n). –  tokland Jul 8 '13 at 20:56
    
@tokland You are doubtlessly right, but with these data it's two times as fast without an intermediate hash. I don't know what is the best choice in such a case. –  steenslag Jul 8 '13 at 21:20
    
Indeed, with small inputs the big-O of an algorithm is usually irrelevant, it was just a note for the readers, it's often forgotten that Array#index is O(n), so using it within a loop should be a red flag. –  tokland Jul 8 '13 at 21:23
    
@tokland Please see my update. I have done using #group_by. –  Arup Rakshit Jul 8 '13 at 21:47

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