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I'm looking to perform a conversion of the values in a Ruby hash from String to Integer.

I thought this would be fairly similar to the way you perform a conversion in a Ruby array (using the map method), but I have not been able to find an elegant solution that doesn't involve converting the hash to an array, flattening it, etc.

Is there a clean solution to do this?

Eg. From

x = { "a" => "1", "b" => "2", "c"=> "3" }


x = { "a" => 1, "b" => 2, "c" => 3 }
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4 Answers 4

up vote 3 down vote accepted

My preferred solution:

Hash[ { |k, v| [k, v.to_i]}] #=> {"a"=>1, "b"=>2, "c"=>3}

A somewhat wasteful one (has to iterate over the values twice):

Hash[] #=> {"a"=>1, "b"=>2, "c"=>3}
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thanks! this solution seems like the one i would use. I thought there would be something that used the map function. – Ken Apr 6 '12 at 17:04
Note that this answer creates an intermediate Array (Enumerable#map always returns an Array), so for big Hashes it's better to use my solution. – sluukkonen Apr 17 '12 at 12:24 { |key| p[key] = p[key].to_i }
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This doesn't work. The block parameters are in the wrong place and neither Array or Enumerable have a method called to_map. – sluukkonen Apr 6 '12 at 7:16 { |key| p[key] = p[key].to_i } is what you meant. – Michael Kohl Apr 6 '12 at 7:19
to_map was my custom method.. just forgot that.. thanks for correction – Gaurav Shah Apr 6 '12 at 7:21

Try this:

x.each{|k,v| x[k]=v.to_i}
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To avoid modifying the original Hash (unlike the existing answers), I'd use

newhash = x.reduce({}) do |h, (k, v)|
  h[k] = v.to_i and h

If you're using Ruby 1.9, you can also use Enumerable#each_with_object to achieve the same effect a bit more cleanly.

newhash = x.each_with_object({}) do |(k, v), h|
  h[k] = v.to_i

If you want to, you can also extract the logic into a module and extend the Hash class with it.

module HMap
  def hmap
    self.each_with_object({}) do |(k, v), h|
      h[k] = yield(k, v)

class Hash
  include HMap

Now you can use

newhash = x.hmap { |k, v| v.to_i } # => {"a"=>1, "b"=>2, "c"=>3}
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Great thorough answer, very well detailed. – joelparkerhenderson Apr 6 '12 at 7:46

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