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If I have a value 'Dog' and an array ['Cat', 'Dog', 'Bird'], how do I check this w/o looping through. Is there a simple way of checking if the value exists, nothing more?

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14 Answers 14

up vote 559 down vote accepted

You're looking for include?:

>> ['Cat', 'Dog', 'Bird'].include? 'Dog'
=> true
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20  
Alternate syntax: %w(Cat Dog Bird).include? 'Dog' –  scarver2 Dec 18 '12 at 22:04
25  
Sometimes I wish it was "contains" not include. I always get it mixed up with includes. –  Henley Chiu Oct 9 '13 at 2:11
1  
Let me just note that internally, #include? still does perform looping. The coder is saved from writing the loop explicitly, though. I have added an answer that performs the task truly without looping. –  Boris Stitnicky Dec 16 '13 at 3:49
    
@HenleyChiu I which it was called [ 'Dog', 'Bird', 'Cat' ].has? 'Dog' –  nus May 21 at 23:01
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Try

['Cat', 'Dog', 'Bird'].include?('Dog')
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this is the older syntax, look ^^^ @brian's answer –  jahrichie Feb 24 at 15:30
    
@jahrichie what exactly do you consider "older syntax" in this answer, the optional parentheses? –  Dennis Jul 11 at 22:50
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There is an in? method in ActiveSupport (part of Rails) since v3.1, as pointed out by @campaterson. So within Rails, or if you require 'active_support', you can write:

'Unicorn'.in?(['Cat', 'Dog', 'Bird']) # => false

OTOH, there is no in operator or #in? method in Ruby itself, even though it has been proposed before, in particular by Yusuke Endoh a top notch member of ruby-core.

As pointed out by others, the reverse method include? exists, for all Enumerables including Array, Hash, Set, Range:

['Cat', 'Dog', 'Bird'].include?('Unicorn') # => false

Note that if you have many values in your array, they will all be checked one after the other (i.e. O(n)), while that lookup for a hash will be constant time (i.e O(1)). So if you array is constant, for example, it is a good idea to use a Set instead. E.g:

require 'set'
ALLOWED_METHODS = Set[:to_s, :to_i, :upcase, :downcase
                       # etc
                     ]

def foo(what)
  raise "Not allowed" unless ALLOWED_METHODS.include?(what.to_sym)
  bar.send(what)
end

A quick test reveals that calling include? on a 10 element Set is about 3.5x faster than calling it on the equivalent Array (if the element is not found).

A final closing note: be wary when using include? on a Range, there are subtleties, so refer to the doc and compare with cover?...

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While Ruby doesn't include #in? in it's core, if you are using Rails, it is available. api.rubyonrails.org/classes/Object.html#method-i-in-3F (I know this is a Ruby, not a Rails question, but it may help anyone looking to use #in? in Rails. Looks like it was added in Rails 3.1 apidock.com/rails/Object/in%3F –  campeterson Aug 21 '13 at 17:34
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Use Enumerable#include:

a.include? 'Dog'
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If you want to check by a block, you could try any? or all?.

%w{ant bear cat}.any? {|word| word.length >= 3}   #=> true  
%w{ant bear cat}.any? {|word| word.length >= 4}   #=> true  
[ nil, true, 99 ].any?                            #=> true  

Details are here: http://ruby-doc.org/core-1.9.3/Enumerable.html
My inspiration come from here: http://stackoverflow.com/a/10342734/576497

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Very useful if you want check any/all of those string is included in another string/constant –  thanikkal Jul 12 '12 at 12:40
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Several answers suggest Array#include?, but there is one important caveat: Looking at the source, even Array#include? does perform looping:

rb_ary_includes(VALUE ary, VALUE item)
{
    long i;

    for (i=0; i<RARRAY_LEN(ary); i++) {
        if (rb_equal(RARRAY_AREF(ary, i), item)) {
            return Qtrue;
        }
    }
    return Qfalse;
}

The way to test the word presence without looping is by constructing a trie for your array. There are many trie implementations out there (google "ruby trie"). I will use rambling-trie in this example:

a = %w/cat dog bird/

require 'rambling-trie' # if necessary, gem install rambling-trie
trie = Rambling::Trie.create { |trie| a.each do |e| trie << e end }

And now we are ready to test the presence of various words in your array without looping over it, in O(log n) time, with same syntactic simplicity as Array#include?, using sublinear Trie#include?:

trie.include? 'bird' #=> true
trie.include? 'duck' #=> false
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1  
a.each do ... end Umm... not sure how that's not a loop –  Doorknob Dec 15 '13 at 0:57
    
That loop is performed only once, when the trie is constructed. It is a constant term that does not influence the algorithmic complexity. Bluntly, the algorithm has to loop through the array at least once to know what words are there at all. Once the trie is constructed, it can be used many times to check for the presence of a word with roughly logarithmic complexity. –  Boris Stitnicky Dec 16 '13 at 3:44
6  
Note that this does actually include a loop; anything that's not O(1) includes some kind of loop. It just happens to be a loop over the characters of the input string. Also note than an answer already mentioned Set#include? for people who are concerned about efficiency; coupled with using symbols instead of strings, it can be O(1) average case (if you use strings, then just computing the hash is O(n) where n is the length of the string). Or if you want to use third party libraries, you can use a perfect hash which is O(1) worst case. –  Brian Campbell Dec 16 '13 at 7:21
    
Nice comment. I have not noticed Set#include and I am not aware (yet) about how is it implemented. I have also not analyzed the code of rambling-trie which I have randomly chosen for my example, so I cannot guarantee that its implementation is not flawed. In any case, with a well-implemented trie complexity should be about O(log n). Complexity O(1) is theoretically not possible, but can be achieved pragmatically for n smaller than certain finite number, which is hardware-dependent. –  Boris Stitnicky Dec 16 '13 at 9:15
    
AFAIK, Set uses hashes to index its members, so actually Set#include? should be of complexity O(1) for a well-distributed Set (more specifically O(input-size) for the hashing, and O(log(n/bucket-number)) for the searching) –  Uri Agassi Feb 7 at 20:40
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This is another way to do this: use the Array#index method.

It returns the index of the first occurrence of the element in the array.

example:

a = ['cat','dog','horse']
if a.index('dog')
    puts "dog exists in the array"
end

index() can also take a block

for example

a = ['cat','dog','horse']
puts a.index {|x| x.match /o/}

here, return the index of the first word in the array that containing letter 'o'.

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That's actually quite useful. –  superluminary Apr 9 at 12:52
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This will tell you not only that it exists but also how many times it appears:

 a = ['Cat', 'Dog', 'Bird']
 a.count("Dog")
 #=> 1
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There's the other way around, too!

Suppose the array is [ :edit, :update, :create, :show ] - well perhaps the entire seven deadly/restful sins :)

And further toy with the idea of pulling a valid action from some string - say

my brother would like me to update his profile

Solution

[ :edit, :update, :create, :show ].select{|v| v if "my brother would like me to update his profile".downcase =~ /[,|.| |]#{v.to_s}[,|.| |]/}
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If we want to not use include? this also works:

['cat','dog','horse'].select{ |x| x == 'dog' }.any?
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If you have on mind more values... you can try:

Example: if Cat and Dog exist in the array:

(['Cat','Dog','Bird'] & ['Cat','Dog'] ).size == 2   #or replace 2 with ['Cat','Dog].size

Instead of:

['Cat','Dog','Bird'].member?('Cat') and ['Cat','Dog','Bird'].include?('Dog')

Note: member? and include? are the same.

This can do the work in one line!

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If you don't want to loop, there's no way to do it with Arrays. You should use a Set instead.

require 'set'
s = Set.new
100.times{|i| s << "foo#{i}"}
s.include?("foo99")
 => true
[1,2,3,4,5,6,7,8].to_set.include?(4) 
  => true

Sets work internally like hashes, so Ruby doesn't need to loop through the collection to find items, since as the name implies, it generates hashes of the keys and creates a memory map so that each hash point to a certain point in memory. The previous example done with a Hash:

fake_array = {}
100.times{|i| fake_array["foo#{i}"] = 1}
fake_array.has_key?("foo99")
  => true

The downside is that Sets and hash keys can only include unique items and if you add a lot of items, Ruby will have to rehash the whole thing after certain number of items to build a new map that suits a larger keyspace. For more about this, I recommend you watch MountainWest RubyConf 2014 - Big O in a Homemade Hash by Nathan Long

Here's a benchmark:

require 'benchmark'
require 'set'

array = []
set   = Set.new

10_000.times do |i|
  array << "foo#{i}"
  set   << "foo#{i}"
end

Benchmark.bm do |x|
  x.report("array") { 10_000.times { array.include?("foo9999") } }
  x.report("set  ") { 10_000.times { set.include?("foo9999")   } }
end

And the results:

      user     system      total        real
array  7.020000   0.000000   7.020000 (  7.031525)
set    0.010000   0.000000   0.010000 (  0.004816)
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Plenty of good answers above and for what its worth ruby-docs are an amazing resource for these kinds of questions.

http://ruby-doc.org/core-2.0/Array.html

I would also take note at the length of the array your searching through. The .include? method will run a linear search with O(n) complexity which can get pretty ugly depending on the size of the array.

If your working with a large array, I would consider writing up a binary search algorithm which shouldn't be too difficult and has a worst case of O(log n).

http://en.wikipedia.org/wiki/Binary_search_algorithm

Or if your using Ruby 2.0, you can take advantage of Array#bsearch

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if you don't want to use include? you can first wrap the element in an array and then check whether the wrapped element is equal to the intersection of the array and the wrapped element. This will return a boolean value based on equality.

def in_array?(array, item)
    item = [item] unless item.is_a?(Array)
    item == array & item
end
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