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I have an array of hashes where I need to find and store matches based on one matching value between the hashes.

a = [{:id => 1, :name => "Jim", :email => "jim@jim.jim"}, 
     {:id => 2, :name => "Paul", :email => "paul@paul.paul"}, 
     {:id => 3, :name => "Tom", :email => "tom@tom.tom"}, 
     {:id => 1, :name => "Jim", :email => "jim@jim.jim"}, 
     {:id => 5, :name => "Tom", :email => "tom@tom.tom"}, 
     {:id => 6, :name => "Jim", :email => "jim@jim.jim"}]

So I would want to return

b = [{:id => 1, :name => "Jim", :email => "jim@jim.jim"},  
     {:id => 3, :name => "Tom", :email => "tom@tom.tom"}, 
     {:id => 5, :name => "Tom", :email => "tom@tom.tom"}, 
     {:id => 6, :name => "Jim", :email => "jim@jim.jim"}]

Notes: I can sort the data (csv) by :name after the fact so they don't have to be nicely grouped, just accurate. Also it's not necessary two of the same, it could be 3 or 10 or more.

Also, the data is about 22,000 rows.

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I guess what I'm trying to do is the opposite of uniq! but I haven't been able to figure out exactly how to process that. –  lyonsinbeta Aug 14 '13 at 2:54

1 Answer 1

up vote 8 down vote accepted

I tested this and it will do exactly what you want:

b = a.group_by { |h| h[:name] }.values.select { |a| a.size > 1 }.flatten

However, you might want to look at some of the intermediate objects produced in that calculation and see if those are more useful to you.

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I tested this and as you said it works great! Thanks so much for the lightening fast response. –  lyonsinbeta Aug 14 '13 at 3:08
    
If you're looking for extra credit, and to make a very tired person happy, what if I need to remove instances where :id was the same? Meaning keep only records where :email is the same but :id is different. –  lyonsinbeta Aug 14 '13 at 4:05
    
By email do you mean name? If two records have the same name and id, then the hashes should be equal, so I would simply put a.uniq! on its own line above my code. Or you could insert .uniq right before .group_by. –  David Grayson Aug 14 '13 at 5:08
    
Apologies; no, the real hash is larger with 8 keys. I need to find duplicates where the :id isn't the same so they can be combined. I've updated the original question to a better approximation of the data. –  lyonsinbeta Aug 14 '13 at 14:51

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