103

I have the following code:

a = ["Cat", "Dog", "Mouse"]
s = ["and", "&"]

I want to merge the array s into array a which would give me:

["Cat", "and", "Dog", "&", "Mouse"]

Looking through the Ruby Array and Enumerable docs, I don't see such a method that will accomplish this.

Is there a way I can do this without iterating through each array?

  • a will always have 3 elements and s two? some more examples would be useful. – tokland Sep 5 '11 at 21:55
  • @PetrolMan Try now – Chris Ledet Jul 23 '13 at 21:28

10 Answers 10

168

You can do that with:

a.zip(s).flatten.compact
  • 4
    What if a has more than 3 elements? – Michael Kohl Sep 5 '11 at 21:17
  • 114
    [ "a", "b" ].concat( ["c", "d"] ) #=> [ "a", "b", "c", "d" ] – Leo Romanovsky Oct 4 '12 at 4:41
  • 30
    @Leo, @chuck: if you read the example you will see that Chris wants to interleave the elements, not concatenate them. Essentially, he wants [a, s].transpose except that the two rows don't conform, leaving #zip as the obvious solution. And I don't believe he meant that he really cared whether a was mutated ... I don't think he was commenting on a mutated vs functional solution at all, he was just trying to describe the pattern. – DigitalRoss Feb 24 '13 at 21:33
  • 15
    +1 for being the only person who actually read the blummin' question! >_< – Matt Fletcher Dec 12 '13 at 10:31
  • 5
    More importantly, what if the two arrays are of unequal lengths? Especially if s is the longer one? I think I can safely assume the example Chris gave isn't he actual data he;s working with. consider: [].zip[1, 2] => nil (going to have a hard time calling #flatten on that) [3,4].zip([1, 3, 5, 7]) => [[3, 1], [4, 3]] (oops, guess we don't care about the last few elements in the 2nd array) – hoff2 Jan 22 '14 at 22:13
32

This won't give a result array in the order Chris asked for, but if the order of the resulting array doesn't matter, you can just use a |= b. If you don't want to mutate a, you can write a | b and assign the result to a variable.

See the set union documentation for the Array class at http://www.ruby-doc.org/core/classes/Array.html#M000275.

This answer assumes that you don't want duplicate array elements. If you want to allow duplicate elements in your final array, a += b should do the trick. Again, if you don't want to mutate a, use a + b and assign the result to a variable.

In response to some of the comments on this page, these two solutions will work with arrays of any size.

  • This one definitely seems to be the best. – ardavis Sep 6 '11 at 2:37
  • 11
    This gives ["Cat", "Dog", "Mouse", "and", "&"], which isn't what the OP wanted. – Andrew Grimm Sep 6 '11 at 22:42
  • Excellent call, Andrew. I'll update my answer to say that I didn't answer Chris's question. – Michael Stalker Sep 10 '11 at 21:31
28

If you don't want duplicate, why not just use the union operator :

new_array = a | s
  • 1
    Awarding a +1 for a underrated, simple, elegant solution. – JakeGould Jan 15 '15 at 3:53
  • Of course it answers the question ! The question was : "I want to merge the array s into array a" – Douglas May 15 '15 at 9:25
  • Good solution - but this does change the order of the results. The results from s will be at the end of the new array. – Hendrik Sep 2 '15 at 12:15
  • 1
    The order of the elements won't be what the OP wanted, though. – tokland Feb 28 '16 at 22:03
6
s.inject(a, :<<)

s   #=> ["and", "&"]
a   #=> ["Cat", "Dog", "Mouse", "and", "&"]

It doesn't give you the order you asked for, but it's a nice way of merging two arrays by appending to the one.

  • I like it, short and clean. :) – Nafaa Boutefer Oct 20 '15 at 10:59
6

Here's a solution that allows interleaving multiple arrays of different sizes (general solution):

arr = [["Cat", "Dog", "Mouse", "boo", "zoo"],
 ["and", "&"],
 ["hello", "there", "you"]]

first, *rest = *arr; first.zip(*rest).flatten.compact
=> ["Cat", "and", "hello", "Dog", "&", "there", "Mouse", "you", "boo", "zoo"]
  • 2
    Nice! One limitation, the first array must be the longest. – Brian Low May 16 '16 at 3:33
  • @BrianLow great catch! – Abdo May 17 '16 at 9:42
5

It's not exactly elegant, but it works for arrays of any size:

>> a.map.with_index { |x, i| [x, i == a.size - 2 ? s.last : s.first] }.flatten[0..-2] 
#=> ["Cat", "and", "Dog", "&", "Mouse"]
  • +1 for dealing with weird edge cases, I think i = s.cycle; a.map { |x| [x, i.next] }.flatten[0..-2] would be equally valid though. – mu is too short Sep 5 '11 at 21:29
  • I wasn't sure if OP wants to alternate and and &, so I took him as literally as possible, while allowing for a of any length. – Michael Kohl Sep 5 '11 at 21:45
3

How about a more general solution that works even if the first array isn't the longest and accepts any number of arrays?

a = [
    ["and", "&"],
    ["Cat", "Dog", "Mouse"]
]

b = a.max_by(&:length)
a -= [b]
b.zip(*a).flatten.compact

 => ["Cat", "and", "Dog", "&", "Mouse"]
1

One way to do the interleave and also guarantee which one is the biggest array for the zip method, is to fill up one of the arrays with nil until the other array size. This way, you also guarantee which element of which array will be on first position:

preferred_arr = ["Cat", "Dog", "Mouse"]
other_arr = ["and","&","are","great","friends"]

preferred_arr << nil while preferred_arr.length < other_arr.length
preferred_arr.zip(other_arr).flatten.compact
#=> ["Cat", "and", "Dog", "&", "Mouse", "are", "great", "friends"]
  • 1
    Bit better: preferred_arr.zip(other_arr).flatten | other_arr (without the nil backfilling) – Adam Fendley Apr 15 at 18:07
1

To handle the situation where both a & s are not of the same size:

a.zip(s).flatten.compact | s
  • .compact will remove nil when a is larger than s
  • | s will add the remaining items from s when a is smaller than s
-2
arr = [0, 1]
arr + [2, 3, 4]

//outputs [0, 1, 2, 3, 4]
  • 5
    sorry... didn't notice the specific order you wanted the output in. Apologies for trying to help, wont happen again. – David Morrow Sep 13 '12 at 18:50

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