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I'm trying to group an array of integers into an hash based on where the individual values fall in a range. Basically I want to convert an array to a fixed-width histogram.

Example:

values = [1,3,4,4,4,4,4,10,12,15,18]
bin_width = 3

I need to group the array values into a range-based historgram by where they fall into a 3-unit wide bucket like so:

{'0..2'=>[1,3],'3..5'=>[4,4,4,4,4],'6..8'=>[],'9..11'=>[10]....

Is there a simple one line solution ( maybe something like values.group_by{|x| #range calc}) that would work here?

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1  
questions: 1) I guess 3 should be in 3..5. 2) why use strings as keys instead of real ranges?, 3) you need the empty ranges also? –  tokland Jul 31 '12 at 14:16
3  
there should be no obsession to write one-liners. Striving for solutions that only involve expressions (that's it, using a functional approach) yes, fearing assignments to save a couple of lines, no. –  tokland Jul 31 '12 at 14:30

2 Answers 2

up vote 8 down vote accepted
values = [1, 7, 2, 8, 2]
Hash[values.group_by { |x| x / 3 }.map { |k, vs| [(3*k..3*k+2), vs] }]
#=> {0..2=>[1, 2, 2], 6..8=>[7, 8]}

If you really need the empty ranges, I don't think a clean one-liner is possible. But this should do:

grouped = values.group_by { |x| x / 3 }
min, max = grouped.keys.minmax
Hash[min.upto(max).map { |n| [(3*n..3*n+2), grouped.fetch(n, [])] }]
#=> {0..2=>[1, 2, 2], 3..5=>[], 6..8=>[7, 8]}
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Hah, I just wanted to suggest something that doesn't require Facets and then you updated your post. –  Michael Kohl Jul 31 '12 at 14:16
1  
@Michael, yeah sorry, in fact my facets snippet was completely wrong, map_by is not useful here, we need to process the keys, not the values. That's how you'd write it? –  tokland Jul 31 '12 at 14:17

I came up with a rather inefficient but quite clear solution:

ranges = 0.step(values.max, bin_width).each_cons(2).map { |s, e| Range.new(s, e, true) }
values.group_by { |v| ranges.find { |r| r.cover? v } }
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