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How do you sort a hash in ruby based on the value and then key? For example

h = {4 => 5, 2 => 5, 7 => 1}

would sort into

[[7, 1], [2,5], [4, 5]]

I can sort based on the value by doing

h.sort {|x,y| x[1] <=> y[1]}

but I can't figure out how to sort based on value and then key if the values are the same

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1 Answer 1

up vote 10 down vote accepted
h.sort_by {|k, v| [v, k] }

This uses the fact that Array mixes in Comparable and defines <=> element-wise.

Note that the above is equivalent to

h.sort_by {|el| el.reverse }

which is equivalent to

h.sort_by(&:reverse)

which may or may not be more readable.

If you know that Hashes usually sort by key first, then by value, the above should be obvious. Maybe with a small comment:

h.sort_by(&:reverse) # sort by value first, then by key

Note: if you simply want to delegate to some property's <=> method, (i.e. sort by a key rather than a general comparison function) it is generally prefered to use sort_by instead of sort. It's much easier to read. Generally, it also happens to be faster, but the readability aspect is the more important one.

You should really only write your own comparison function if absolutely necessary.

So, your non-working example would better be written as

h.sort_by {|el| el[1] }

Personally, I prefer to use destructuring bind in the block parameter list, instead of using el[0] and el[1]:

h.sort_by {|key, value| value }

However, in this particular case, el[1] also happens to be identical to el.last, so that you could simply write

h.sort_by(&:last)
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+1 for using a "keyed" sort rather than defining a comparison function when it isn't absolutely necessary. –  Karl Knechtel Dec 13 '10 at 2:22
    
@Karl Knechtel: Thanks! "Key" was the word I'm lookin for. –  Jörg W Mittag Dec 13 '10 at 2:37
    
BTW, how does {|k, v|... know that it will actually be receiving one argument each time and that it should unpack it as a 2-tuple? Is it somehow inferred from the h.sort_by context? (To use the terminology you have in there: how does it know whether or not to perform a "destructuring bind"?) I don't really understand how the Ruby implementation of lambdas works on this level. –  Karl Knechtel Dec 13 '10 at 2:48
    
Hash mixes in Enumerable, which implements sort and sort_by using the collection's each method. Hash's each method produces [k,v] arrays, and the |k,v| in the block thus amounts to k,v = [kx,vx] parallel assignment. As Jörg's |el| example suggests, you can use a single variable there and get the behavior el = [kx,vx]. For that matter, you could do |a,b,c,d,e| and get a,b,c,d,e = [kx,vx], although obviously that wouldn't be very useful. –  glenn mcdonald Dec 13 '10 at 3:00
1  
@Karl Knechtel: It's probably easier to demonstrate: def foo; yield 1; yield 1, 2; yield 1, 2, 3 end; puts '1 param'; foo {|a| p a }; puts '2 params'; foo {|a, b| p a, b }; puts '3 params'; foo {|a, b, c| p a, b, c }. In short: block argument semantics are much less strict than method argument semantics. They behave more like multiple assignment. (In fact, prior to Ruby 1.9, blocks did use assignment, which meant that you do really crazy stuff like foo {|@bar, baz.quux|}, which would assign the value passed into the block to the instance variable @bar and call the setter baz.quux=.) –  Jörg W Mittag Dec 13 '10 at 3:09

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