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I have a hash, say:

hash1 ={1=>"a",2=>"b",3=>"c",4=>"d"}

and an array, say:

arr=[2,3]

and I have to find a resultant hash like:

hash2={2="b",3=>"c"}

That is, the resultant hash must contain only those key-value pairs whose keys are present in the given array. Is it possible to do this without a loop?

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Re: "without any loop": Why can't you use a loop? –  ruakh Jul 17 '13 at 6:04
    
@ruakh - I'm guessing it's because a loop seems overly verbose for a simple task like this. (It seems like there should be a more concise syntax in a high-level language like Ruby.) –  DaoWen Jul 17 '13 at 6:10

4 Answers 4

The following will do what you want but is destructive to the original hash1.

hash2 = hash1.keep_if {|k,v| arr.include? k}

The following will do what you want but keeps hash1 as it originally was.

hash2 = hash1.select {|k,v| arr.include? k}
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This will alter hash1, it will delete all other key value pairs. Insert a dup to prevent this. –  Patrick Oscity Jul 17 '13 at 8:16
    
Good point, this does alter hash1. As pointed out in another answer using select will do the same but less destructive. –  Alex Peachey Jul 17 '13 at 8:24
    
Thats true, using select is better than using dup.keep_if if you need it. For some applications, it may well be useful to alter the original array. –  Patrick Oscity Jul 17 '13 at 8:28
  hash1.select {|k,v| arr.member? k}  # {2=>"b", 3=>"c"}
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This is the fastest solution and does not alter the original hash, so for me this sounds like the best. +1 –  Patrick Oscity Jul 17 '13 at 8:18
    
I will go also with this solution. –  Arup Rakshit Jul 17 '13 at 8:38

Are you looking for something like this?

1.9.3p392 :001 > hash1 ={1=>"a",2=>"b",3=>"c",4=>"d"}
 => {1=>"a", 2=>"b", 3=>"c", 4=>"d"} 
1.9.3p392 :002 > arr=[2,3]
 => [2, 3] 
1.9.3p392 :003 > hash2 = hash1.keep_if{|key, value| arr.include?(key)}
 => {2=>"b", 3=>"c"} 

I know you said no loop, but this is as much close as I could get

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Thanks for leaving the prompt as it is. Really easy to read. –  oldergod Jul 17 '13 at 7:12
    
Same here: This will alter hash1, it will delete all other key value pairs. Insert a dup to prevent this. –  Patrick Oscity Jul 17 '13 at 8:16

Benchmark for all answers so far:

require 'fruity'

hash1 = Hash[[*1..10000].zip[*1.10000]]
arr   = 1.upto(1000).select(&:odd?)

compare do
  keep_if_include do
    hash2 = hash1.dup.keep_if {|k,v| arr.include? k}
  end

  values_at_zip do
    hash2 = Hash[arr.zip(hash1.dup.values_at(*arr))]
  end

  select_member do
    hash2 = hash1.dup.select {|k,v| arr.member? k}
  end
end

Results:

Running each test 4096 times. Test will take about 17 seconds.
select_member is faster than keep_if_include by 2x ± 0.1
keep_if_include is faster than values_at_zip by 410x ± 100.0
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