192

Given:

a1 = [5, 1, 6, 14, 2, 8]

I would like to determine if it contains all elements of:

a2 = [2, 6, 15]

In this case the result is false.

Are there any built-in Ruby/Rails methods to identify such array inclusion?

One way to implement this is:

a2.index{ |x| !a1.include?(x) }.nil?

Is there a better, more readable, way?

1
335
a = [5, 1, 6, 14, 2, 8]
b = [2, 6, 15]

a - b
# => [5, 1, 14, 8]

b - a
# => [15]

(b - a).empty?
# => false
4
  • 63
    This the the way to go. It might just be a bit shortened to (a2-a1).empty? – Holger Just Sep 12 '11 at 12:43
  • 10
    This only works for arrays that are sets, not for arrays with duplicates – Chris Nov 25 '12 at 17:58
  • 4
    @Chris - You could try using Array#uniq for that. With Holger Just's example, it would be (a2.uniq - a1.uniq).empty? – Nick Dec 4 '12 at 17:07
  • stackoverflow.com/questions/13553822/… is what I meant. Array#unique will explicitly fail that. – Chris Dec 5 '12 at 14:54
86

Perhaps this is easier to read:

a2.all? { |e| a1.include?(e) }

You can also use array intersection:

(a1 & a2).size == a1.size

Note that size is used here just for speed, you can also do (slower):

(a1 & a2) == a1

But I guess the first is more readable. These 3 are plain ruby (not rails).

1
  • If using the OP's definition of a1 and a2, and a1 "containing all elements of" a2, I think this should be _ (a1 & a2).size == a2.size _ since a2 is the smaller array, which should have all elements included in the larger array (to obtain 'true') - hence the intersection of the two arrays should be the same length as the smaller-array if all elements in it are present in the larger one. – JosephK Aug 26 '17 at 10:47
60

This can be achieved by doing

(a2 & a1) == a2

This creates the intersection of both arrays, returning all elements from a2 which are also in a1. If the result is the same as a2, you can be sure you have all elements included in a1.

This approach only works if all elements in a2 are different from each other in the first place. If there are doubles, this approach fails. The one from Tempos still works then, so I wholeheartedly recommend his approach (also it's probably faster).

4
  • 2
    using the length method will perform much better – Pablo Fernandez Sep 12 '11 at 12:48
  • 3
    This won't work if the intersection set has the same elements in a different order. I found this out the hard way while trying to answer this question: stackoverflow.com/questions/12062970/… later realized many smart folks had done it here already! – CubaLibre Aug 22 '12 at 21:23
  • 1
    @CubaLibre Interesting. Do you have some test data to reproduce this? Fom my tests it seemed as if the resulting array retains the order of elements from the first array (hence my most recent edit to my answer). However, if this is indeed not the case, I'd like to learn. – Holger Just Aug 23 '12 at 7:12
  • @HolgerJust i had made the mistake of doing (a1 & a2) instead of (a2 & a1), which is why I was seeing the error. You are right about & retaining the order from the first array. – CubaLibre Aug 23 '12 at 13:35
10

If there are are no duplicate elements or you don't care about them, then you can use the Set class:

a1 = Set.new [5, 1, 6, 14, 2, 8]
a2 = Set.new [2, 6, 15]
a1.subset?(a2)
=> false

Behind the scenes this uses

all? { |o| set.include?(o) }
1

You can monkey-patch the Array class:

class Array
    def contains_all?(ary)
        ary.uniq.all? { |x| count(x) >= ary.count(x) }
    end
end

test

irb(main):131:0> %w[a b c c].contains_all? %w[a b c]
=> true
irb(main):132:0> %w[a b c c].contains_all? %w[a b c c]
=> true
irb(main):133:0> %w[a b c c].contains_all? %w[a b c c c]
=> false
irb(main):134:0> %w[a b c c].contains_all? %w[a]
=> true
irb(main):135:0> %w[a b c c].contains_all? %w[x]
=> false
irb(main):136:0> %w[a b c c].contains_all? %w[]
=> true
irb(main):137:0> %w[a b c d].contains_all? %w[d c h]
=> false
irb(main):138:0> %w[a b c d].contains_all? %w[d b c]
=> true

Of course the method can be written as a standard-alone method, eg

def contains_all?(a,b)
    b.uniq.all? { |x| a.count(x) >= b.count(x) }
end

and you can invoke it like

contains_all?(%w[a b c c], %w[c c c])

Indeed, after profiling, the following version is much faster, and the code is shorter.

def contains_all?(a,b)
    b.all? { |x| a.count(x) >= b.count(x) }
end
0

Depending on how big your arrays are you might consider an efficient algorithm O(n log n)

def equal_a(a1, a2)
  a1sorted = a1.sort
  a2sorted = a2.sort
  return false if a1.length != a2.length
  0.upto(a1.length - 1) do 
    |i| return false if a1sorted[i] != a2sorted[i]
  end
end

Sorting costs O(n log n) and checking each pair costs O(n) thus this algorithm is O(n log n). The other algorithms cannot be faster (asymptotically) using unsorted arrays.

4
  • You can do it in O(n) with a counting sort. – klochner Sep 12 '11 at 17:48
  • No you cannot. Counting sort uses a limited universe and Ruby does not have a limitation on how big numbers can get. – ayckoster Sep 12 '11 at 18:11
  • You can, because you don't actually have to sort the items - you just need a hash mapping item-->count for both arrays, then iterate over the keys and compare counts. – klochner Sep 12 '11 at 18:13
  • Are you sure that Array#sort uses merge sort? – Nate Symer Apr 23 '14 at 1:10
0

Most answers based on (a1 - a2) or (a1 & a2) would not work if there are duplicate elements in either array. I arrived here looking for a way to see if all letters of a word (split to an array) were part of a set of letters (for scrabble for example). None of these answers worked, but this one does:

def contains_all?(a1, a2)
  try = a1.chars.all? do |letter|
    a1.count(letter) <= a2.count(letter)
  end
  return try
end

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