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The problem would be easy to solve with a manual loop and a result array, which you add onto as you go. But I'm looking for a more ruby-esque solution, probably something that uses inject or select. Here's the problem:

arr_of_hashes = [
  {id: 1, val: "blah1"},
  {id: 1, val: "blah2"},
  {id: 1, val: "blah3"},
  {id: 2, val: "blah4"},
  {id: 2, val: "blah5"},
  {id: 3, val: "blah6"},
  {id: 3, val: "blah7"},
  {id: 3, val: "blah8"},
  {id: 3, val: "blah9"}
]

"Groups" are defined by the "id" field in the hashes. We are guaranteed each group has at least two items. We want to return an array containing the 2nd item of each group:

output_should_be = [
  {id: 1, val: "blah2"},
  {id: 2, val: "blah5"},
  {id: 3, val: "blah7"}
]
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2 Answers

up vote 4 down vote accepted

"I'm looking for a more ruby-esque solution". I guess you mean functional:

arr_of_hashes.chunk { |h| h[:id] }.map { |id, hs| hs[1] }
#=> [{:id=>1, :val=>"blah2"}, {:id=>2, :val=>"blah5"}, {:id=>3, :val=>"blah7"}]

Use group_by if elements are not pre-ordered by id.

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Very nice. I almost didn't post my group_by solution because you beat me to it with the nice chunk solution. I should really remember chunk. –  Mark Thomas Nov 2 '12 at 23:10
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Here's a solution using group_by:

arr_of_hashes.group_by{|h| h[:id]}.to_a.map{|id,a| a[1]}
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+1 for this as it works the same on all versions. here is the proof –  user904990 Nov 2 '12 at 23:13
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