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How can I obtain a list of combinations from a list of lists?

For example:

ghci> getCombinations [[1,2,3],[10,20,30],[100,200,300]]

[[1,10,100],[1,10,200],[1,10,300],[1,20,100],[1,20,200],[1,20,300],[1,30,100],
[1,30,200],[1,30,300],[2,10,100],[2,10,200],[2,10,300],[2,20,100],[2,20,200],
[2,20,300],[2,30,100],[2,30,200],[2,30,300],[3,10,100],[3,10,200],[3,10,300],
[3,20,100],[3,20,200],[3,20,300],[3,30,100],[3,30,200],[3,30,300]]
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possible duplicate of Calculate n-ary Cartesian Product –  Matt Fenwick Mar 7 '13 at 21:16

1 Answer 1

import Control.Applicative

getCombinations :: [[a]] -> [[a]]
getCombinations values =
foldl (\acc values -> (\list value -> list ++ [value]) <$> acc <*> values) [[]] values

getCombinations [[1,2,3],[10,20,30],[100,200,300]]

[[1,10,100],[1,10,200],[1,10,300],[1,20,100],[1,20,200],[1,20,300],[1,30,100],[1,30,200],[1,30,300],[2,10,100],[2,10,200],[2,10,300],[2,20,100],[2,20,200],[2,20,300],[2,30,100],[2,30,200],[2,30,300],[3,10,100],[3,10,200],[3,10,300],[3,20,100],[3,20,200],[3,20,300],[3,30,100],[3,30,200],[3,30,300]]

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6  
The simpler version, without the need for an import, is sequence. –  Daniel Fischer Mar 7 '13 at 17:16
    
LOL! You are right: sequence [[1,2,3],[10,20,30],[100,200,300]] –  Juan Carlos Kuri Pinto Mar 7 '13 at 17:23

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