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

18 Answers 18

up vote 208 down vote accepted
a = ["A", "B", "C", "B", "A"]
a.detect{ |e| a.count(e) > 1 }
  • 55
    Except quadratic for something that can be solved in linear time. – jasonmp85 Mar 28 '13 at 7:47
  • 14
    Providing O(n^2) solutions for linear problems is not the way to go. – tdgs May 3 '13 at 9:18
  • 20
    @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
  • 23
    @Kalanamith you can get duplicated values using this a.select {|e| a.count(e) > 1}.uniq – Naveed Jul 12 '13 at 16:34
  • 21
    The problem with the "detect" method is that it stops when it finds the first duplicate, and doesn't give you all the dups. – Jaime Bellmyer Jan 26 '14 at 22:57

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)

And a O(N^2) option (i.e. less efficient):

ary.select{ |e| ary.count(e) > 1 }.uniq
  • 2
    Thanks! The last one is the most elegant! – Misha Moroshko Jan 19 '12 at 23:24
  • 14
    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
  • 4
    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
  • 4
    If you're using Ruby > 2.1, you can use: ary.group_by(&:itself). :-) – Drenmi Jan 3 '17 at 13:43

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 N^2 and thus slower than Sergio's, but the wall time could be much faster due to the the fact that the "slow" parts run in C.

  • 1
    This is the best solution, solved in linear time. – bruno077 Sep 23 '13 at 18:26
  • 4
    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 '15 at 4:01
  • 1
    Nor does your answer show how to find if there are any triplicates, or whether one can draw elements from the array to spell "CAT". – Cary Swoveland Jul 11 '15 at 5:09
  • 3
    @bruno077 How is this linear time? – beauby Mar 13 '16 at 23:21
  • 2
    @chris Great answer, but I think you can do a bit better with this: arr.detect.with_index { |e, idx| idx != arr.rindex(e) }. Using with_index should remove the necessity for the first index search. – ki4jnq Sep 15 '16 at 12:57

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 }
  • 2
    The question is very specific that only one duplicate is to be returned. Imo, showing how to find all duplicates is fine, but only as an aside to an answer that answers the question asked, which you have not done. btw, it is agonizingly inefficient to invoke count for every element in the array. (A counting hash, for example, is much more efficient; e.g, construct h = {"A"=>2, "B"=>2, "C"=> 1 } then h.select { |k,v| v > 1 }.keys #=> ["A", "B"]. – Cary Swoveland Jul 11 '15 at 5:04

Here are two more ways of finding a duplicate.

Use a set

require 'set'

def find_a_dup_using_set(arr)
  s = Set.new
  arr.find { |e| !s.add?(e) }
end

find_a_dup_using_set arr
  #=> "hello" 

Use select in place of find to return an array of all duplicates.

Use Array#difference

class Array
  def difference(other)
    h = other.each_with_object(Hash.new(0)) { |e,h| h[e] += 1 }
    reject { |e| h[e] > 0 && h[e] -= 1 }
  end
end

def find_a_dup_using_difference(arr)
  arr.difference(arr.uniq).first
end

find_a_dup_using_difference arr
  #=> "hello" 

Drop .first to return an array of all duplicates.

Both methods return nil if there are no duplicates.

I proposed that Array#difference be added to the Ruby core. More information is in my answer here.

Benchmark

Let's compare suggested methods. First, we need an array for testing:

CAPS = ('AAA'..'ZZZ').to_a.first(10_000)
def test_array(nelements, ndups)
  arr = CAPS[0, nelements-ndups]
  arr = arr.concat(arr[0,ndups]).shuffle
end

and a method to run the benchmarks for different test arrays:

require 'fruity'

def benchmark(nelements, ndups)
  arr = test_array nelements, ndups
  puts "\n#{ndups} duplicates\n"    
  compare(
    Naveed:    -> {arr.detect{|e| arr.count(e) > 1}},
    Sergio:    -> {(arr.inject(Hash.new(0)) {|h,e| h[e] += 1; h}.find {|k,v| v > 1} ||
                     [nil]).first },
    Ryan:      -> {(arr.group_by{|e| e}.find {|k,v| v.size > 1} ||
                     [nil]).first},
    Chris:     -> {arr.detect {|e| arr.rindex(e) != arr.index(e)} },
    Cary_set:  -> {find_a_dup_using_set(arr)},
    Cary_diff: -> {find_a_dup_using_set(arr)}
  )
end

I did not include @JjP's answer because only one duplicate is to be returned, and when his/her answer is modified to do that it is the same as @Naveed's earlier answer. Nor did I include @Marin's answer, which, while posted before @Naveed's answer, returned all duplicates rather than just one (a minor point but there's no point evaluating both, as they are identical when return just one duplicate).

I also modified other answers that returned all duplicates to return just the first one found, but that should have essentially no effect on performance, as they computed all duplicates before selecting one.

First suppose the array contains 100 elements:

benchmark(100, 0)
0 duplicates
Running each test 64 times. Test will take about 2 seconds.
Cary_set is similar to Cary_diff
Cary_diff is similar to Ryan
Ryan is similar to Sergio
Sergio is faster than Chris by 4x ± 1.0
Chris is faster than Naveed by 2x ± 1.0

benchmark(100, 1)
1 duplicates
Running each test 128 times. Test will take about 2 seconds.
Cary_set is similar to Cary_diff
Cary_diff is faster than Ryan by 2x ± 1.0
Ryan is similar to Sergio
Sergio is faster than Chris by 2x ± 1.0
Chris is faster than Naveed by 2x ± 1.0

benchmark(100, 10)
10 duplicates
Running each test 1024 times. Test will take about 3 seconds.
Chris is faster than Naveed by 2x ± 1.0
Naveed is faster than Cary_diff by 2x ± 1.0 (results differ: AAC vs AAF)
Cary_diff is similar to Cary_set
Cary_set is faster than Sergio by 3x ± 1.0 (results differ: AAF vs AAC)
Sergio is similar to Ryan

Now consider an array with 10,000 elements:

benchmark(10000, 0)
0 duplicates
Running each test once. Test will take about 4 minutes.
Ryan is similar to Sergio
Sergio is similar to Cary_set
Cary_set is similar to Cary_diff
Cary_diff is faster than Chris by 400x ± 100.0
Chris is faster than Naveed by 3x ± 0.1

benchmark(10000, 1)
1 duplicates
Running each test once. Test will take about 1 second.
Cary_set is similar to Cary_diff
Cary_diff is similar to Sergio
Sergio is similar to Ryan
Ryan is faster than Chris by 2x ± 1.0
Chris is faster than Naveed by 2x ± 1.0

benchmark(10000, 10)
10 duplicates
Running each test once. Test will take about 11 seconds.
Cary_set is similar to Cary_diff
Cary_diff is faster than Sergio by 3x ± 1.0 (results differ: AAE vs AAA)
Sergio is similar to Ryan
Ryan is faster than Chris by 20x ± 10.0
Chris is faster than Naveed by 3x ± 1.0

benchmark(10000, 100)
100 duplicates
Cary_set is similar to Cary_diff
Cary_diff is faster than Sergio by 11x ± 10.0 (results differ: ADG vs ACL)
Sergio is similar to Ryan
Ryan is similar to Chris
Chris is faster than Naveed by 3x ± 1.0

Note that find_a_dup_using_difference(arr) would be much more efficient if Array#difference were implemented in C, which would be the case if it were added to the Ruby core.

  • Excellent solution. It's not quite as obvious what's going on at first as some of the methods, but it should run in truly linear time, at the expense of a bit of memory. – Chris Heald Jul 11 '15 at 6:51
  • With find_a_dup_using_set, I get the Set back, instead of one of the duplicates. Also I can't find "find.with_object" in Ruby docs anywhere. – ScottJ Oct 6 '16 at 22:44
  • @Scottj, thanks for the catch! It's interesting that no one caught that before now. I fixed it. That's Enumerable#find chained to Enumerator#with_object. I'll update the benchmarks, adding your solution and others. – Cary Swoveland Oct 6 '16 at 23:08
  • Excellent comparison @CarySwoveland – Naveed Dec 27 '16 at 1:33

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.

  • 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
  • This is hugely inefficient. Not only do you find all duplicates and then throw away all but one, you invoke count for each element of the array, which is wasteful and unnecessary. See my comment on JjP's answer. – Cary Swoveland Jul 11 '15 at 5:16
  • Thanks for running the benchmarks. It is useful to see how the different solutions compare in running time. Elegant answers are readable but often not the most efficient. – Martin Velez Jul 12 '15 at 1:29

Alas most of the answers are O(n^2).

Here is an O(n) solution,

a = %w{the quick brown fox jumps over the lazy dog}
h = Hash.new(0)
a.find { |each| (h[each] += 1) == 2 } # => 'the"

What is the complexity of this?

  • Runs in O(n) and breaks on first match
  • Uses O(n) memory, but only the minimal amount

Now, depending on how frequent duplicates are in your array these runtimes might actually become even better. For example if the array of size O(n) has been sampled from a population of k << n different elements only the complexity for both runtime and space becomes O(k), however it is more likely that the original poster is validating input and wants to make sure there are no duplicates. In that case both runtime and memory complexity O(n) since we expect the elements to have no repetitions for the majority of inputs.

  • This should be the accepted answer! – Martin Nyaga May 17 at 19:00

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.

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").

find_all() returns an array containing all elements of enum for which block is not false.

To get duplicate elements

>> arr = ["A", "B", "C", "B", "A"]
>> arr.find_all { |x| arr.count(x) > 1 }

=> ["A", "B", "B", "A"]

Or duplicate uniq elements

>> arr.find_all { |x| arr.count(x) > 1 }.uniq
=> ["A", "B"] 
a = ["A", "B", "C", "B", "A"]
a.each_with_object(Hash.new(0)) {|i,hash| hash[i] += 1}.select{|_, count| count > 1}.keys

This is a O(n) procedure.

Alternatively you can do either of the following lines. Also O(n) but only one iteration

a.each_with_object(Hash.new(0).merge dup: []){|x,h| h[:dup] << x if (h[x] += 1) == 2}[:dup]

a.inject(Hash.new(0).merge dup: []){|h,x| h[:dup] << x if (h[x] += 1) == 2;h}[:dup]

Here is my take on it on a big set of data - such as a legacy dBase table to find duplicate parts

# Assuming ps is an array of 20000 part numbers & we want to find duplicates
# actually had to it recently.
# having a result hash with part number and number of times part is 
# duplicated is much more convenient in the real world application
# Takes about 6  seconds to run on my data set
# - not too bad for an export script handling 20000 parts

h = {};

# or for readability

h = {} # result hash
ps.select{ |e| 
  ct = ps.count(e) 
  h[e] = ct if ct > 1
}; nil # so that the huge result of select doesn't print in the console
r = [1, 2, 3, 5, 1, 2, 3, 1, 2, 1]

r.group_by(&:itself).map { |k, v| v.size > 1 ? [k] + [v.size] : nil }.compact.sort_by(&:last).map(&:first)

each_with_object is your friend!

input = [:bla,:blubb,:bleh,:bla,:bleh,:bla,:blubb,:brrr]

# to get the counts of the elements in the array:
> input.each_with_object({}){|x,h| h[x] ||= 0; h[x] += 1}
=> {:bla=>3, :blubb=>2, :bleh=>2, :brrr=>1}

# to get only the counts of the non-unique elements in the array:
> input.each_with_object({}){|x,h| h[x] ||= 0; h[x] += 1}.reject{|k,v| v < 2}
=> {:bla=>3, :blubb=>2, :bleh=>2}

If you are comparing two different arrays (instead of one against itself) a very fast way is to use the intersect operator & provided by Ruby's Array class.

# Given
a = ['a', 'b', 'c', 'd']
b = ['e', 'f', 'c', 'd']

# Then this...
a & b # => ['c', 'd']
  • 1
    That finds items that exist in both arrays, not duplicates in one array. – Kimmo Lehto Apr 25 at 11:43
  • Thanks for pointing that out. I've changed the wording in my answer. I'll leave it here because it's already proven helpful for some people coming from search. – IAmNaN May 1 at 19:28
a = ["A", "B", "C", "B", "A"]
b = a.select {|e| a.count(e) > 1}.uniq
c = a - b
d = b + c

Results

 d
=> ["A", "B", "C"]
def firstRepeatedWord(string)
  h_data = Hash.new(0)
  string.split(" ").each{|x| h_data[x] +=1}
  h_data.key(h_data.values.max)
end

[1,2,3].uniq!.nil? => true [1,2,3,3].uniq!.nil? => false

Notice the above is destructive

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