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arr is array of strings, e.g.: ["hello", "world", "stack", "overflow", "hello", "again"].

What would be easy and elegant way to check if arr has duplicates, and if yes, return one of them (no matter which).

Examples:

["A", "B", "C", "B", "A"]    # => "A" or "B"
["A", "B", "C"]              # => nil
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8 Answers 8

up vote 90 down vote accepted
a = ["A", "B", "C", "B", "A"]
a.detect{ |e| a.count(e) > 1 }
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3  
Intelligent answer –  Shirjeel Alam Jan 20 '12 at 11:55
19  
Except quadratic for something that can be solved in linear time. –  jasonmp85 Mar 28 '13 at 7:47
3  
Providing O(n^2) solutions for linear problems is not the way to go. –  tdgs May 3 '13 at 9:18
8  
@jasonmp85 - True; however, that's only considering big-O runtime. in practice, unless you're writing this code for some huge scaling data (and if so, you can actually just use C or Python), the provided answer is far more elegant/readable, and isnt' going to run that much slower compared to a linear time solution. furthermore, in theory, the linear time solution requires linear space, which may not be available –  David T. May 25 '13 at 6:10
4  
@Kalanamith you can get duplicated values using this a.select {|e| a.count(e) > 1}.uniq –  Naveed Jul 12 '13 at 16:34

You can do this in a few ways, with the first option being the fastest:

ary = ["A", "B", "C", "B", "A"]

ary.group_by{ |e| e }.select { |k, v| v.size > 1 }.map(&:first)

ary.sort.chunk{ |e| e }.select { |e, chunk| chunk.size > 1 }.map(&:first)

ary.select{ |e| ary.count(e) > 1 }.uniq
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1  
Thanks! The last one is the most elegant! –  Misha Moroshko Jan 19 '12 at 23:24
5  
The first two are much more efficient for large arrays. The last one is O(n*n) so it can get slow. I needed to use this for an array with ~20k elements and the first two returned almost instantly. I had to cancel the third one because it was taking so long. Thanks!! –  Venkat D. Feb 4 '13 at 5:15
    
Just an observation but the first two that end with .map(&:first) could just end with .keys as that part is just pulling the keys on a hash. –  engineerDave Mar 2 '14 at 8:20
    
@engineerDave that depends on the ruby version being used. 1.8.7 would require &:first or even {|k,_| k } without ActiveSupport. –  Emirikol Nov 30 '14 at 17:01

Simply find the first instance where the index of the object (counting from the left) does not equal the index of the object (counting from the right).

arr.detect {|e| arr.rindex(e) != arr.index(e) }

If there are no duplicates, the return value will be nil.

I believe this is the fastest solution posted in the thread so far, as well, since it doesn't rely on the creation of additional objects, and #index and #rindex are implemented in C. The big-O runtime is slower than Sergio's, but the wall time is going to be much faster due to the the fact that the "slow" parts run in C.

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This is the best solution, solved in linear time. –  bruno077 Sep 23 '13 at 18:26
    
I like this solution, but it will only return the first duplicate. To find all duplicates: arr.find_all {|e| arr.rindex(e) != arr.index(e) }.uniq –  Josh Jan 7 at 4:01

Ruby Array objects have a great method, select.

select {|item| block } → new_ary
select → an_enumerator

The first form is what interests you here. It allows you to select objects which pass a test.

Ruby Array objects have another method, count.

count → int
count(obj) → int
count { |item| block } → int

In this case, you are interested in duplicates (objects which appear more than once in the array). The appropriate test is a.count(obj) > 1.

If a = ["A", "B", "C", "B", "A"], then

a.select{|item| a.count(item) > 1}.uniq
=> ["A", "B"]

You state that you only want one object. So pick one.

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1  
I like this one a lot, but you have to throw a uniq on the end or you'll get ["A", "B", "B", "A"] –  Joeyjoejoejr Dec 4 '12 at 20:28
1  
Great answer. This is exactly what I was looking for. As @Joeyjoejoejr pointed out. I have submitted an edit to put .uniq on array. –  Surya Feb 12 '13 at 8:07
    
Thank you, @Surya –  Martin Velez Feb 14 '13 at 5:52

detect only finds one duplicate. find_all will find them all:

a = ["A", "B", "C", "B", "A"]
a.find_all { |e| a.count(e) > 1 }
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Something like this will work

arr = ["A", "B", "C", "B", "A"]
arr.inject(Hash.new(0)) { |h,e| h[e] += 1; h }.
    select { |k,v| v > 1 }.
    collect { |x| x.first }

That is, put all values to a hash where key is the element of array and value is number of occurences. Then select all elements which occur more than once. Easy.

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I know this thread is about Ruby specifically, but I landed here looking for how to do this within the context of Ruby on Rails with ActiveRecord and thought I would share my solution too.

class ActiveRecordClass < ActiveRecord::Base
  #has two columns, a primary key (id) and an email_address (string)
end

ActiveRecordClass.group(:email_address).having("count(*) > 1").count.keys

The above returns an array of all email addresses that are duplicated in this example's database table (which in Rails would be "active_record_classes").

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I had was trying to find a way to do this that would be a little more cpu performant than the rindex vs index solution above. Here's what I came up with. It probably is just as inefficient, though.

class Array
  def select_duplicates
    dolly = self.clone
    select do |e|
      dollsize = dolly.size
      dolly.delete e
      dolly.size < dollsize - 1
    end
  end
end
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