17

How could I merge two hashes that results in no new keys, meaning the merge would merge keys that exist in both hashes?

For example, I want the following:

h = {:foo => "bar"}
j = {:foo => "baz", :extra => "value"}

puts h.merge(j)    # {:foo => "baz"}

I'm looking for a really clean way of doing this as my current implementation is pretty messy.

4
  • This is like a hash intersection. What do you want to happen with key/value pairs with different values? For example: h = {:foo => "value1"}; j={:foo=>"value2", :extra=>"value"}
    – Ron Gejman
    Jan 28, 2011 at 5:23
  • @Ron Gejman - I just want to throw them out. But you have sparked my interest. Is there some hash/enumerable method that would return two hashes (one with the duplicate keys and another with the leftovers)?
    – elmt
    Jan 28, 2011 at 6:03
  • No, but it's easy to get using something along the lines of DigitalRoss's answer. Just save to two different hashes—one for matches and one for non-matches.
    – Ron Gejman
    Jan 28, 2011 at 6:07
  • Based on your accepted answer, it sounds like you don't want intersection, but you want the resulting hash to have exactly the same keys as the first hash "h", but with values updated from the second hash "j".
    – Kelvin
    May 20, 2011 at 15:41

5 Answers 5

15

You could remove keys that weren't in the first hash from the second hash, then merge:

h.merge j.select { |k| h.keys.include? k }

Unlike my edited-out alternative, this is safe if you decide to change it to a merge! or update.

6
  • (removed my downvote, and changed it to an upvote. I got confused about merge)
    – Ken Bloom
    Jan 28, 2011 at 5:25
  • This gives a warning on my machine—Hash.select takes in a block with two arguments (|k,v|).
    – Ron Gejman
    Jan 28, 2011 at 5:27
  • 1
    Oh, whoops, I write Ruby 1.9. Jan 28, 2011 at 5:27
  • See my answer re Hash#select in 1.8.x vs. 1.9.x.
    – Ron Gejman
    Jan 28, 2011 at 5:37
  • 2
    @elmt, @yjerem, @ron-gejman Note that h.keys.include?(k) is the same as h.key?(k) but the latter should perform better because it avoids the linear search of the keys array.
    – Kelvin
    May 20, 2011 at 15:56
11

If you're using activesupport (part of rails), you can take advantage of 2 extra methods on Hash:

  • Hash#slice takes the desired keys as separate arguments (not an array of keys) and returns a new hash with just the keys you asked for.
  • Hash#except takes the same arguments as slice, but returns a new hash with keys that were not in the arguments.

First load activesupport:

require 'active_support/core_ext'

Merge only entries from j whose keys are already in h (i.e. modify, but don't add any or remove entries in h):

h.merge(j.slice(*h.keys))

Example:

ignore_new = ->(h, j) { h.merge(j.slice(* h.keys)) }
ignore_new.({a: 1, b: 2, c: 3}, {b: 10, c: 11, d: 12})
# => {:a=>1, :b=>10, :c=>11}

Get the leftovers from j that weren't in h:

j.except(*h.keys)

Bonus:

If you want true intersection, meaning you want a result that only has keys that are in common between the 2 hashes, do this:

h.merge(j).slice(* ( h.keys & j.keys ) )

Example:

intersect = ->(h, j) { h.merge(j).slice(* (h.keys & j.keys) ) }
intersect.({a: 1, b: 2, c: 3}, {b: 10, c: 11, d: 12})
# => {:b=>10, :c=>11}

and leftovers from h that weren't in j:

h.except(*j.keys)

You may also want to use activesupport's HashWithIndifferentAccess if you want string & symbol key-access to be considered equivalent.

Note that none of the above examples change the original hashes; new hashes are returned instead.

8

Yjerem's answer works in Ruby 1.9, but not in 1.8.x. In 1.8.x the Hash#select method returns an array. Hash#reject returns a hash.

h.reject { |k,v| !j.keys.include? k }

If you want to keep only key-value pairs that have identical values, you can do this:

h.reject { |k,v| j[k] != h[k] }

The edge case there is nils. If you are storing nils in your Hash then you have to do this:

h.reject { |k,v| !j.has_key? k or j[k] != h[k] }
1
  • Yep. It's forward compatible with 1.9 too.
    – Ron Gejman
    Jan 28, 2011 at 6:09
0
[h].inject({}) { |m,e| e.merge(j) { |k,o,n| m[k] = n }; m}

or

[{}].inject(h) { |m,e| m.merge(j) { |k,o,n| e[k] = n }; e}

or (probably the best, but not technically a single expression) ...

t = {}; h.merge(j) { |k,o,n| t[k] = n }; t
-1

The more customized way of doing this is:

 h = {"foo"=> "bar"}

 j = {"foo" => "baz", "extra" => "value"}


 k = h.merge(j)
result:  {"foo"=>"baz", "extra"=>"value"}

Here the key "foo" in the second hash is overriding the "foo" in first hash.But if you want to keep the old value i.e bar or if you want keep the new value i.e "baz"? You can do something like this:

  k = h.merge(j){|key, old, new| old}
 result: {"foo"=>"bar", "extra"=>"value"}


k = h.merge(j){|key, old, new| new}

result: {"foo"=>"baz", "extra"=>"value"}
1
  • The question asks for an intersection of the keys. The result should be {:foo => "baz"}, not {"foo"=>"baz", "extra"=>"value"}
    – AndrewKS
    Jan 12, 2016 at 1:42

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