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Say I have a hash like this

{"k1"=>["v1"], "k2"=>["v2"], "k3"=>["v3"], "k4"=>["v4"]}

And I want it to look like this:

{"k1"=>"v1", "k2"=>"v2", "k3"=>"v3", "k4"=>"v4"}

Is there a simpler way to do it than this ugly inject?

h1 = {"k1"=>["v1"], "k2"=>["v2"], "k3"=>["v3"], "k4"=>["v4"]}
h2 = h1.inject({}){|h,v| h[v.first]=v.last.first; h}
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5 Answers 5

Somewhat less ugly than your "inject" solution:

h1 = {"k1"=>["v1"], "k2"=>["v2"], "k3"=>["v3"], "k4"=>["v4"]}
h2 = Hash[*h1.map.flatten]
h2 # => {"k1"=>"v1", "k2"=>"v2", "k3"=>"v3", "k4"=>"v4"}

As @the Tin Man points out in a comment, if your value arrays might have more than one element then you'll need to do something slightly different for it to work as expected:

h2 = Hash[*h1.map{|k,v|[k,v[0]]}.flatten]
h2 # => {"k1"=>"v1", "k2"=>"v2", "k3"=>"v3", "k4"=>"v4"}
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+1. That is awesome. –  zetetic Jun 1 '11 at 3:27
    
It won't work if the value arrays have more than one element. –  the Tin Man Jun 1 '11 at 5:05
1  
Only works in 1.8, where map returns an Array. In 1.9, you need Hash[*h1.map.to_a.flatten], since map gives you an Enumerator. Otherwise, very cool. –  Amadan Jun 1 '11 at 8:22
1  
Note that (fortunately) there is no need to flatten the array (that was necessary for old versions of Ruby). An array of pairs define a mapping: Hash[h1.map { |k,v| [k, v[0]] }] –  tokland Jun 1 '11 at 12:20
    
@Amaden, @tokland: thanks for the tip! I've been doing Ruby stuff for a long time and yet have never spent any time using Ruby 1.9... –  maerics Jun 1 '11 at 16:02

You could modify it in-place with a simple each:

h = {"k1"=>["v1"], "k2"=>["v2"], "k3"=>["v3"], "k4"=>["v4"]}
h.each { |k,v| h[k] = v[0] }

Or, if you want to make a copy, you can use a cleaner inject thusly:

flatter_h = h.inject({ }) { |x, (k,v)| x[k] = v[0]; x }

Or, if you have each_with_object available (i.e. Rails or Ruby 1.9):

flatter_h = h.each_with_object({ }) { |(k,v), x| x[k] = v[0] }
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Ah good point. You win ;) –  Ryan Bigg Jun 1 '11 at 2:16
    
@Ryan: You should have left your's up, it was reasonable solution if you wanted to leave the original alone. –  mu is too short Jun 1 '11 at 2:23
    
Wait, we can mutate? Well damn :) –  zetetic Jun 1 '11 at 2:29
    
I like the (k,v) thing in your inject option and went one step further with h.inject({}){|h,(k,(v))| h[k]=v; h} –  nohat Oct 1 '11 at 2:04

Perhaps a somewhat more attractive use of inject. Hash#merge is your friend:

hash = {"k1"=>["v1"], "k2"=>["v2"], "k3"=>["v3"], "k4"=>["v4"]}
hash.inject({}) {|r,a| r.merge(a.first=>a.last.first)}
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1  
Using |r,(k,v)| would be even more attractive, I added a couple options with this notation to my answer. –  mu is too short Jun 1 '11 at 2:43
    
Hmm, this one actually reads a bit uglier for me =) –  maerics Jun 1 '11 at 2:59
    
@mu: Nice, I didn't know you could get at the key/value arguments that way. –  zetetic Jun 1 '11 at 3:25
    
it's one of the additions in 1.9 if I remember right. –  the Tin Man Jun 1 '11 at 5:06
    
@the Tin Man: destructuring hashes like that has worked for a long time. The oldest Ruby I have lying around is 1.8.6 and it works there, but I'm quite sure this already worked in earlier versions too. –  Michael Kohl Jun 1 '11 at 6:50
>> h = {"k1"=>["v1"], "k2"=>["v2"], "k3"=>["v3"], "k4"=>["v4"]}
>> Hash[h.map { |k, vs| [k, vs.first] }]
=> {"k1"=>"v1", "k2"=>"v2", "k3"=>"v3", "k4"=>"v4"}
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Combining the Hash[h.map { |k, v| [k, v.first] }] syntax from @tokland's answer with the array destructuring syntax introduced in @mu's h.inject({ }) { |x, (k,v)| x[k] = v[0]; x }, I came up with what I think is the cleanest solution:

h1 = {"k1"=>["v1"], "k2"=>["v2"], "k3"=>["v3"], "k4"=>["v4"]}
h2 = Hash[h1.map{|k,(v)| [k, v]}]
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