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Lets say i have the following arrays in ruby contained in an array and I don't know how many arrays there will be or the length of them. An example below:

[["cat", "dog"],[1, 3, 5, 7],["morning", "afternoon", "evening"]]

what i want to do is have all combinations of results from picking 1 value from each array and returning it as an array of these combinations. Therefore, in the following example, there should be 2*4*3, or 24 possible unique results.

the result would be like :

result = [["cat", 1, "morning"], ["cat", 1, "afternoon"], ["dog", 5, "evening"] ...]

How would i go about doing this in ruby for a list of N arrays? I tried messing around with products and maps and injects but I cant get it working.

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2 Answers 2

up vote 3 down vote accepted

EDIT Since you made it clear that you're dealing with not just three arrays a1, a2 and a3 but an arrays of arrays, changing my solution to use product.

Like this?{|x1|{|x2|{|x3| [x1, x2, x3] }}}.flatten(2)

Or with flat_map:

 a1.flat_map{|x1| a2.flat_map{|x2|{|x3| [x1, x2, x3] }}}

Wow, or just:


If you have several arrays (not just the fixed number of 3 in you first example), then:

 input = [["cat", "dog"],[1, 3, 5, 7],["morning", "afternoon", "evening"]]
 h,*rest = input
 result = h.product(*rest)
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I rephrased the question because i actually don't know how many arrays I will have, so it may be 3, it may be 10. I need some way to dynamically do it without knowing the amount of arrays i have. – Zyren Jan 30 '13 at 19:45
OK, so what would you consider as desirable the output for [[1,2,3], [4,5]] – Faiz Jan 30 '13 at 19:50
[[1,4],[1,5],[2,4],[2,5],[3,4],[3,5]] the order of the arrays inside doesn't matter. your edited answer looks correct. thanks! – Zyren Jan 30 '13 at 19:52
@nicooga This isn't reddit, that kind of comment is why we have the ability to flag comments as "not constructive/off topic". Please don't post that crap here. – meagar Jan 30 '13 at 20:22



Note that you'd rather like to write Array.product(*xs), but Ruby has no such classmethod in the core (easy to write, sure, but probably it should be there).

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+1 for succinctness. – Faiz Jan 30 '13 at 19:54
Or even, xs.first.product(*xs.drop(1)) – akuhn Jan 30 '13 at 20:35
xs.shift.product(*xs) – steenslag Jan 30 '13 at 21:26

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