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I want to sort an array in particular order given in another array.

EX: consider an array

a=["one", "two", "three"]
b=["two", "one", "three"]

Now I want to sort array 'a' in the order of 'b', i.e

a.each do |t|
  # It should be in the order of 'b'
  puts t
end

So the output should be

two
one 
three 

Any suggestions?

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2  
As it is, this question makes no sense. The example shows two arrays with the exact same values (only in different order). If you want to iterate the elements in a in the order found in b, well, iterate b and you're done :-) So I guess there are more conditions, maybe items in arrays do not match? is not a "==" between objects what you need but a different kind of equality? show some more meaningful examples. –  tokland Dec 14 '12 at 8:14

3 Answers 3

up vote 25 down vote accepted

Array#sort_by is what you're after.

a.sort_by do |element|
  b.index(element)
end

More scalable version in response to comment:

a=["one", "two", "three"]
b=["two", "one", "three"]

lookup = {}
b.each_with_index do |item, index|
  lookup[item] = index
end

a.sort_by do |item|
  lookup.fetch(item)
end
share|improve this answer
    
The simplest for small arrays, but note that this is O(n^2) when the problem is O(n). –  tokland Dec 14 '12 at 8:09
    
@tokland Ok. Supplied a more scalable version. –  Andrew Grimm Dec 14 '12 at 8:44
    
exactly, create an auxiliar mapping + sort_by. I'd probably write it lookup = Hash[b.to_enum.with_index], but well, that's just a detail. Btw, did you see my comment to the question? do you remember what the OP had in mind? –  tokland Dec 14 '12 at 8:49
    
@tokland and I'd probably use a.sort_by(&lookup.method(:fetch)). I suspect that even the OP wouldn't remember what they had in mind. Sometimes I do order an array of objects based on an attribute, where there's another array containing values equal to that attribute, though. –  Andrew Grimm Dec 14 '12 at 9:01
    
Yeah, equality on a given attribute is very common. And yeah, I know you are a friend of the &:obj.method(:name) trick, I remember your blog post about it :-) –  tokland Dec 14 '12 at 9:04

If b includes all elements of a and if elements are unique, then:

puts b & a
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If that condition holds then b&a == b. –  Pan Thomakos Jan 7 '12 at 18:46
1  
@PanThomakos, It can include elements and also have others. %w{ameba bug bird dog horse shark} & %w{horse ameba shark} => ["ameba", "horse", "shark"] –  Nakilon Jan 7 '12 at 20:01
1  
I think it's cool that this works, but here are my reservations: 1. Using & (set intersection) to sort arrays is misleading. 2. The code is brittle. If the lists have duplicate elements or are of the wrong size the code breaks. If the implementation of & changes so that elements are no longer sorted the code breaks. –  Pan Thomakos Jan 7 '12 at 21:41

Assuming a is to be sorted with respect to order of elements in b

sorted_a = 
a.sort do |e1, e2|
  b.index(e1) <=> b.index(e2)
end

I normally use this to sort error messages in ActiveRecord in the order of appearance of fields on the form.

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1  
Why use sort when you can use sort_by? –  Andrew Grimm Nov 26 '10 at 9:26
2  
My benchmark shows N sec for sort, 0.07 N sec for sort_by and 0.01 N for &. –  Nakilon Nov 26 '10 at 11:59
1  
For example, ideone: ideone.com/oAvP4 –  Nakilon Nov 26 '10 at 12:06
2  
Because in sort_by indexes are calculated only once for each element, and in sort it could be possible only if it were some caching. And & is compiled in Ruby. –  Nakilon Nov 26 '10 at 12:09
4  
That benchmark in the doc compares sort without a block to sort_by using a (no-op) block. If you compare sort with a block (like the example in this answer) to the corresponding sort_by version you'll see that sort_by is considerably faster. –  glenn mcdonald Nov 26 '10 at 15:50

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