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 new to Ruby. I have a two-dimensional Array of the following form (It is probably an array of hash entries (key, value pairs) as argument to a function and not being initialised in the same way I have shown here):

a = [[:"49e8cfb", 1],
[:"4b5a73dc", 1],
[:"4c1e65c4", 1],
[:"4cb4c06f", 1],
[:"4cc0ac3c", 5],
[:"4d8ee865", 21]]

And I have another similar Array (say b). I want to find intersection of the two Arrays based only on the first column (the string values). For example, if

b = [[:"49e8cfb", 2],
[:"4b5a73dc", 78],
[:"4c1e65c4", 4],
[:"4cb4c06f", 3],
[:"4cc0ac3c", 52]]

Then the intersection should be

[:"49e8cfb", :"4b5a73dc", :"4c1e65c4", :"4cb4c06f", :"4cc0ac3c"]
share|improve this question
1  
Your b was not correct. You didn't end it with ]. So that error came. Now run it again... –  Arup Rakshit Mar 11 at 10:46
    
The array is not being initialised in the way I have shown here. Sorry I provided less information but its a big program. The type of first element is Symbol and its not working with that... –  NGInd Mar 11 at 10:50
    
You mean [:"49e8cfb", 1] is actually {:"49e8cfb" => 1} ? –  Arup Rakshit Mar 11 at 11:01
    
When I am printing the arguments on screen, it is in the way I have written and the type of argument is array. –  NGInd Mar 11 at 11:03
1  
May be then you can check the source code first and see what the exact data is, how then you got like [ [..],[..] ].... Without real input example, I can't edit my answer. But don't change the input data you are now having. Rather Edit with new data... I will take a look into that. –  Arup Rakshit Mar 11 at 11:07

3 Answers 3

Do as below using Array#& :

a.map(&:first) & b.map(&:first)
  • a.map(&:first) will you give you an array of all first entry from the inner arays of a.

  • b.map(&:first) will do the same as I just said.

  • Then use &, on the 2 resultant arrays returned from a.map(&:first) and b.map(&:first).

share|improve this answer
    
I am getting this message.........rb:460:in map': undefined method first' for :"425c610":Symbol (NoMethodError) –  NGInd Mar 11 at 10:42
    
@NGInd His code works fine for me. Be sure to call .map on the main Array, not on the inner Array. Just use his code with your a and b, it works here. –  Daniël Knippers Mar 11 at 10:44
    
@DaniëlKnippers OP's second array was wrong.. which was causing error. I just fixed it. :-) –  Arup Rakshit Mar 11 at 10:45
    
Sorry I provided less information but the type of first element is Symbol –  NGInd Mar 11 at 10:46
    
Yes the , at the end, I know :) I fixed that too when I ran your code ;) –  Daniël Knippers Mar 11 at 10:46

Try this

a.group_by(&:first).keys & b.group_by(&:first).keys
=> [:"49e8cfb", :"4b5a73dc", :"4c1e65c4", :"4cb4c06f", :"4cc0ac3c"]

require 'benchmark'

Benchmark.bm do |x|
  x.report { a.group_by(&:first).keys & b.group_by(&:first).keys }
  x.report { a.map(&:first) & b.map(&:first) }
  x.report { a.collect(&:first) & b.collect(&:first) }
end

    user      system      total        real
  0.000000   0.000000   0.000000   (  0.000029)
  0.000000   0.000000   0.000000   (  0.000015)
  0.000000   0.000000   0.000000   (  0.000012)

So use a.collect(&:first) & b.collect(&:first) as it is the fastest.

share|improve this answer
    
Why you need to create the Hash, then fetch keys and then intersection ? –  Arup Rakshit Mar 11 at 10:47
    
It stroked first to my mind, no specific reason. –  Alok Anand Mar 11 at 10:50

You could also try this

Hash[a].keys & Hash[b].keys
#=> [:"49e8cfb", :"4b5a73dc", :"4c1e65c4", :"4cb4c06f", :"4cc0ac3c"]

This will convert both objects into a Hash and only return the keys that exist in both hashs. but collect is the fastest as @AlokAnand pointed out.

share|improve this answer

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.