Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am using Ruby on Rails 3.2.2 and Ruby 1.9.3. I would like to compare two Hashes (A and B) so to return true if a Hash (A) include all keys/values of the other Hash (B).

For example, given I have

params.inspect
# => { "action"=>"...", "controller"=>"...", "key_param1"=>"value_param1", , "key_param2"=>"value_param2", "key_param3"=>"value_param3", ... }

my_hash1.inspect
# => { "key_param1"=>"value_param1", "key_param2"=>"value_param2" }

my_hash2.inspect
# => { "key_param4"=>"value_param4", "key_param1"=>"value_param1" }

my_hash3.inspect
# => {}

Then I am looking for a method (or something like that) in order to make

params.has_same_keys_and_values_as?(my_hash1)
# => true

params.has_same_keys_and_values_as?(my_hash2)
# => false

params.has_same_keys_and_values_as?(my_hash3)
# => true
share|improve this question

5 Answers 5

up vote 0 down vote accepted
class Hash
  def >=(b)  
    eq = true
    b.each { |k, v| eq &= !(self.include? k) ? false : ( ( ((self[k]&&v).is_a? Hash) && !((v||self[k]).empty?) ) ? self[k]>=v : true)}

    return eq
  end

end
params = { "action"=>"...", "controller"=>"...", "key_param1"=>"value_param1", "key_param2"=>"value_param2", "key_param3"=>"value_param3" }
my_hash1 = { "key_param1"=>"value_param1", "key_param2"=>"value_param2" }
my_hash2 = { "key_param4"=>"value_param4", "key_param1"=>"value_param1" }
my_hash3 = {}

p params >= my_hash1 #true
p params >= my_hash2 #false
p params >= my_hash3 #true

It'll work with "deep" hashes as well:

b = {1 => {2 => {} }, 4 => {} }
a = {1 => {2 => {3 => {} }}, 4 => {}, 5 => "123" }

p a >= b #true
p b >= a #false

P.S.
Whether one hash includes another hash

share|improve this answer

better way, there's an active support method for this, hash.diff, wrap it with .empty? to check if they are the same

{:one => 1}.diff({:one => 1}).empty?

=> true

{:one => 1}.diff({:one => 2}).empty?

=> false

http://as.rubyonrails.org/classes/ActiveSupport/CoreExtensions/Hash/Diff.html

share|improve this answer

I think you can use:

a.slice(*b.keys) == b

where a and b are your hashes. note that slice is a rails method and not ruby. in plain ruby you can write:

a.keep_if{|k, v| b[k]} == b
share|improve this answer
    
slice method is also included in rubyfacets: rubyworks.github.com/rubyfaux/?doc=http://rubyworks.github.com/… –  DNNX Aug 2 '12 at 7:27
    
@davidrac - I updated the question including a case related to a my_hash3. –  user12882 Aug 2 '12 at 7:39
    
this should still work. a.slice(*b.keys) will return {}. {} == {} should return true. –  davidrac Aug 2 '12 at 7:42

EDIT: This is assuming that the values/keys are not in the same order in both hashes.

You could iterate over each key in hash1 and use has_key? on hash2. Keep in mind this is naive solution that could be slow for large datasets.

Checkout has_key? and has_value? here: http://www.ruby-doc.org/core-1.9.3/Hash.html#method-i-has_key-3F

You could loop as follows:

hash1.each_key { |key|
    if hash2.has_key?(key)
        do whatever
    endif
}
share|improve this answer

Assuming that Hash#keys and Hash#values return values in the same order:

params.values_at(*my_hash.keys) == my_hash.values
share|improve this answer
    
Assuming that Hash#keys and Hash#values do not return values in the same order, what could be made to accomplish that? –  user12882 Aug 2 '12 at 7:19
    
params.values_at(*my_hash.keys.sort) == my_hash.values_at(*my_hash.keys.sort) –  DNNX Aug 2 '12 at 7:21
    
Sorting two the sets and comparing their elements one by one would be beneficial if we DON'T use hashes. The advantage with hashes is that we can quickly look if a value exists, so we can skip sorting and just iterate over each element in one of the hashes. –  Oday Mansour Aug 2 '12 at 7:22
    
Oday, totally agree. Your code is faster. –  DNNX Aug 2 '12 at 7:25

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.