Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I was wondering. What is the fastest way to test if an array contains another in Ruby? So I build this little benchmark script. Would love to hear your thoughts on comparison methods. Do you know some other - perhaps even better way to do it?

require 'benchmark'
require 'set'

a = ('a'..'z').to_a.shuffle
b = ["b","d","f"] do |x| do
      10000.times do
  end do
      10000.times do
          (a & b).count == b.size
  end do
      10000.times do
          (a.inject(0) {|s,i| s += b.include?(i)?1:0 } == b.size)
    end do
      10000.times do
          (b - a).empty?
    end do
      10000.times do
          b.all? { |o| a.include? o }

And results:

     user     system      total        real
 0.380000   0.010000   0.390000 (  0.404371)
 0.050000   0.010000   0.060000 (  0.075062)
 0.140000   0.000000   0.140000 (  0.140420)
 0.130000   0.000000   0.130000 (  0.136385)
 0.030000   0.000000   0.030000 (  0.034405)
share|improve this question
What exactly are you trying to compare? That they have the same size or the same elements? Why not just do a == b? –  elevine Feb 8 '13 at 17:24
It looks like he just wants to know that b is a subset of a. –  Ron Warholic Feb 8 '13 at 17:25
You should run each part many times (i.e., wrap each in 10000.times do ... end) and/or use larger arrays in order to get more meaningful results. –  Andrew Marshall Feb 8 '13 at 17:36
@AndrewMarshall I changed code. Now there is bigger initial array and some loops... Thanks. –  Oto Brglez Feb 8 '13 at 18:00

3 Answers 3

First, be very careful about micro benchmarking. I recommend using my gem fruity for that, see the docs as to why.

Second, do you want to compare the creation of your arrays plus the comparison, or just the comparison?

Third, your data is so small you won't be able to understand what is going on. For example, your b variable holds 3 elements. If you compare an algorithm in O(n^2) to one in O(n), with such a small n (3) it won't be obvious.

You may want to start from:

require 'fruity'
require 'set'

a = ('a'..'z').to_a.shuffle
b = %w[b d f]
a_set = a.to_set
b_set = b.to_set

compare do
  subset        { b_set.subset?(a_set) }
  intersect     { (a & b).size == b.size }
  subtract      { (b - a).empty? }
  array_include { b.all?{|o| a.include? o} }
  set_include   { b.all?{|o| a_set.include? o} }


Running each test 2048 times. Test will take about 2 seconds.
set_include is faster than subset by 1.9x ± 0.1
subset is faster than intersect by 60% ± 10.0%
intersect is faster than array_include by 40% ± 1.0%
array_include is faster than subtract by 1.9x ± 0.1

Note that Array#& and Array#- will basically convert on of the argument to a Set internally. The all? and include? on the array should be the worst solution, because it will be O(n^2)... this would be apparent if you increase the size of b.

The general answer is: use the most legible unless you know for sure you need to optimize.

share|improve this answer
+1 Love using fruity ever since I found it! –  Andrew Marshall Feb 8 '13 at 18:25

It depends on your data size. For a small data set as you have; b.all? { |o| a.include? o } is quicker almost every time.

However, if you try with larger arrays. E.g. arrays of 1000 elements, (a & b) == b.size is considerably faster.

I also tried the opposite version: (a | b) == a.size, which was more or less the same.

Here are the (commented) results where a has 10000 elements and b has 5000 elements:

    user     system      total        real
0.010000   0.000000   0.010000 (  0.004445) # subset
0.000000   0.000000   0.000000 (  0.003073) # & (intersection)
1.620000   0.000000   1.620000 (  1.625472) # inject
0.000000   0.000000   0.000000 (  0.004485) # difference
0.530000   0.000000   0.530000 (  0.529042) # include
0.010000   0.000000   0.010000 (  0.004416) # | (union)
share|improve this answer

I do a lot of benchmarks for answers on SO. Take a look through the results of

share|improve this answer

Your Answer


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.