83

I'm using Ruby 1.8.6 with Rails 1.2.3, and need to determine whether two arrays have the same elements, regardless of whether or not they're in the same order. One of the arrays is guaranteed not to contain duplicates (the other might, in which case the answer is no).

My first thought was

require 'set'
a.to_set == b.to_set

but I was wondering if there was a more efficient or idiomatic way of doing it.

132

This doesn't require conversion to set:

a.sort == b.sort
  • No conversion? What is .uniq.sort then? Besides uniq is similar to to_set internally plus additional .to_a.sort – Victor Moroz Jun 6 '12 at 18:41
  • Accepting this since it's closest to what I ended up using, though without the uniqs. Actually I ended up creating one of the arrays with Range#to_a, so I only had to sort the other one. – Taymon Jun 7 '12 at 18:59
  • 9
    This won't work if the array contains elements that cannot be simply sorted (e.g. an array of hashes). sahil dhankhar's solution appears to be a more general solution. – brad Aug 24 '13 at 3:15
38

for two arrays A and B: A and B have same contents if: (A-B).blank? and (B-A).blank?

or you can just check for: ((A-B) + (B-A)).blank?

Also as suggested by @cort3z this solution als0 works for polymorphic arrays i.e

 A = [1 , "string", [1,2,3]]
 B = [[1,2,3] , "string", 1]
 (A-B).blank? and (B-A).blank? => true
 # while A.uniq.sort == B.uniq.sort will throw error `ArgumentError: comparison of Fixnum with String failed` 

::::::::::: EDIT :::::::::::::

As suggested in the comments, above solution fails for duplicates.Although as per the question that is not even required since the asker is not interested in duplicates(he is converting his arrays to set before checking and that masks duplicates and even if you look at the accepeted answer he is using a .uniq operator before checking and that too masks duplicates.). But still if duplicates interests you ,Just adding a check of count will fix the same(as per the question only one array can contain duplicates). So the final solution will be: A.size == B.size and ((A-B) + (B-A)).blank?

  • This will fail if either array contains duplicates. E.g., if A=[1] and B=[1,1], both (A-B) and (B-A) will return blank. See Array Documentation. – jtpereyda Sep 2 '13 at 18:10
  • @dafrazzman totally agree with you. I have modified my answer to incorporate your feedback.But if you have a close look at the question(or the accepted answer), asker is using: a.to_set == b.to_set and the accepted answer is using a.uniq.sort == b.uniq.sort and both give exact same result as ((A-B) + (B-A)).blank? for A=[1] and B=[1,1] agree ? Since he was just asking for an improvement over his original solution , my original solution still works :) . agree? – Sahil Dhankhar Sep 3 '13 at 4:40
  • 1
    This solution is quite nice since it handles objects of multiple types. Say you have A = [123, "test", [], some_object, nil] and B = A#because I am lazy, then A.uniq.sort will throw error (comparison of string and Array failed). – Automatico Feb 19 '15 at 10:20
  • Would this be O(n) then since it's dependent on the array size? (linear) – user3007294 Dec 27 '16 at 20:45
  • It wouldn't work if the arrays have same size but the repeated elements are not the same. For instance A = [1, 1, 2] and B = [1, 2, 2] – Boudi Nov 13 at 13:21
19

Speed comparsions

require 'benchmark/ips'
require 'set'

a = [1, 2, 3, 4, 5, 6]
b = [1, 2, 3, 4, 5, 6]

Benchmark.ips do |x|
  x.report('sort')   { a.sort == b.sort }  
  x.report('sort!')  { a.sort! == b.sort! }  
  x.report('to_set') { a.to_set == b.to_set }  
  x.report('minus')  { ((a - b) + (b - a)).empty? }  
end  

Warming up --------------------------------------
            sort    88.338k i/100ms
           sort!   118.207k i/100ms
          to_set    19.339k i/100ms
           minus    67.971k i/100ms
Calculating -------------------------------------
            sort      1.062M (± 0.9%) i/s -      5.389M in   5.075109s
           sort!      1.542M (± 1.2%) i/s -      7.802M in   5.061364s
          to_set    200.302k (± 2.1%) i/s -      1.006M in   5.022793s
           minus    783.106k (± 1.5%) i/s -      3.942M in   5.035311s
  • btw order of elemetns does not affect sort's speed – Morozov Apr 21 '16 at 12:10
  • Surprised me... I expected by-set comparison to outperform all others due to sets lookup O(n) time complexity. So that any well implemented sort would require O(n logn). Whereas casting to sets and looking up values would overall make it in O(n) time. – Oleg Afanasyev May 3 '18 at 10:05
  • 1
    I'd expect to_set to start outperforming with large enough arrays where O(n logn) would start mattering more than the effort required to convert array to set – Andrius Chamentauskas Feb 12 at 13:55
  • 1
    This is helpful, but not really an answer in itself? Perhaps better adding this to an existing solution? – SRack Jun 24 at 15:33
15

When the elements of a and b are Comparable,

a.sort == b.sort

Correction of @mori's answer based on @steenslag's comment

11

Ruby 2.6+

Ruby's introduced difference in 2.6.

This gives a very fast, very readable solution here, as follows:

a = [1, 2, 3, 4, 5, 6]
b = [1, 2, 3, 4, 5, 6]

a.difference(b).any?
# => false
a.difference(b.reverse).any?
# => false

a = [1, 2, 3, 4, 5, 6]
b = [1, 2, 3]
a.difference(b).any?
# => true

Running the benchmarks:

a = Array.new(1000) { rand(100) }
b = Array.new(1000) { rand(100) }

Benchmark.ips do |x|
  x.report('sort')   { a.sort == b.sort }  
  x.report('sort!')  { a.sort! == b.sort! }  
  x.report('to_set') { a.to_set == b.to_set }  
  x.report('minus')  { ((a - b) + (b - a)).empty? }  
  x.report('difference') { a.difference(b).any? }
end

      sort     13.908k (± 2.6%) i/s -     69.513k in   5.001443s
     sort!     14.656k (± 3.0%) i/s -     73.736k in   5.035744s
    to_set     5.125k  (± 2.9%) i/s -     26.023k in   5.082083s
     minus     16.398k (± 2.2%) i/s -     83.181k in   5.074938s
difference     27.839k (± 5.2%) i/s -    141.048k in   5.080706s

Hope that helps someone!

  • difference is breaking in this case a = [1, 2, 3] b = [1, 2, 3, 4, 5] a.difference(b).any? => false – error-404 Nov 4 at 7:23
7

If you expect [:a, :b] != [:a, :a, :b] to_set doesn't work. You can use frequency instead:

class Array
  def frequency
    p = Hash.new(0)
    each{ |v| p[v] += 1 }
    p
  end
end

[:a, :b].frequency == [:a, :a, :b].frequency #=> false
[:a, :b].frequency == [:b, :a].frequency #=> true
  • why not just a.sort == b.sort if he cares about frequency? – fl00r Jun 6 '12 at 19:40
  • 4
    @fl00r What if items are not comparable? ["", :b].frequency == [:b, ""].frequency #=> true – Victor Moroz Jun 6 '12 at 20:06
  • 2
    also you can do something functional as a.group_by{|i| i} == b.group_by{|i| i} – fl00r Jun 6 '12 at 20:21
6

If you know the arrays are of equal length and neither array contains duplicates then this works too:

( array1 & array2 ) == array1

Explanation: the & operator in this case returns a copy of a1 sans any items not found in a2, which is the same as the original a1 iff both arrays have the same contents with no duplicates.

Analyis: Given that the order is unchanged, I'm guessing this is implemented as a double iteration so consistently O(n*n), notably worse for large arrays than a1.sort == a2.sort which should perform with worst-case O(n*logn).

  • 2
    Doesn't work always: a1 = [1,2,3], a2 = [2, 1, 3] a1 && a2 returns [2,1,3] for me which is not equal to a1 – Kalyan Raghu Mar 2 '16 at 14:33
  • @Kaylan, don't you mean it only works when a1==a2? It may work if array1 on the right side of the equality is replaced by array2, but I doubt that the order of the elements returned by & is guaranteed. – Cary Swoveland Mar 25 '16 at 18:15
  • 1
    @KalyanRaghu & is a set intersection operator for arrays, && is logical AND - they are very different! – Kimball Sep 5 '18 at 0:30
1

One approach is to iterate over the array with no duplicates

# assume array a has no duplicates and you want to compare to b
!a.map { |n| b.include?(n) }.include?(false)

This returns an array of trues. If any false appears, then the outer include? will return true. Thus you have to invert the whole thing to determine if it's a match.

  • @Victor Moroz, you're correct, and a frequency count would simply be O(n). – Ron Jun 6 '12 at 19:22
1

combining & and size may be fast too.

require 'benchmark/ips'
require 'set'

Benchmark.ips do |x|
  x.report('sort')   { a.sort == b.sort }  
  x.report('sort!')  { a.sort! == b.sort! }  
  x.report('to_set') { a.to_set == b.to_set }  
  x.report('minus')  { ((a - b) + (b - a)).empty? }
  x.report('&.size') { a.size == b.size && (a & b).size == a.size }  
end  

Calculating -------------------------------------
                sort    896.094k (±11.4%) i/s -      4.458M in   5.056163s
               sort!      1.237M (± 4.5%) i/s -      6.261M in   5.071796s
              to_set    224.564k (± 6.3%) i/s -      1.132M in   5.064753s
               minus      2.230M (± 7.0%) i/s -     11.171M in   5.038655s
              &.size      2.829M (± 5.4%) i/s -     14.125M in   5.010414s

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