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I wish to produce the cartesian product of 2 lists in Haskell, but I cannot work out how to do it. The cartesian product gives all combinations of the list elements:

xs = [1,2,3]
ys = [4,5,6]

cartProd :: [a] -> [b] -> [(a,b)]
cartProd xs ys ==> [(1,4),(1,5),(1,6),(2,4),(2,5),(2,6),(3,4),(3,5),(3,6)]

This is not an actual homework question and is not related to any such question, but the way in which this problem is solved may help with one I am stuck on.

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This shurely needs [rosetta-stone]!!! ;) –  FUZxxl Nov 8 '10 at 4:34
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Your type declaration should be cartProd :: [a] -> [b] -> [(a,b)], not cartProd :: a -> b -> [(a,b)] –  Boris Nov 8 '10 at 13:49
    
@Boris: Good point, corrected. –  Callum Rogers Nov 9 '10 at 1:45
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9 Answers

up vote 37 down vote accepted

This is very easy with list comprehensions. To get the cartesian product of the lists xs and ys, we just need to take the tuple (x,y) for each element x in xs and each element y in ys.

This gives us the following list comprehension:

cartProd xs ys = [(x,y) | x <- xs, y <- ys]
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Thanks, so simple yet elegant, really helped with the other problem :) –  Callum Rogers Nov 8 '10 at 9:20
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Good also for Erlang, thanks. Little changing in syntax: cartProd(Xs, Ys) -> [{X,Y} || X <- Xs, Y <- Ys]. –  Dacav Oct 31 '11 at 11:18
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As other answers have noted, using a list comprehension is the most natural way to do this in Haskell.

If you're learning Haskell and want to work on developing intuitions about type classes like Monad, however, it's a fun exercise to figure out why this slightly shorter definition is equivalent:

import Control.Monad (liftM2)

cartProd :: [a] -> [b] -> [(a, b)]
cartProd = liftM2 (,)

You probably wouldn't ever want to write this in real code, but the basic idea is something you'll see in Haskell all the time: we're using liftM2 to lift the non-monadic function (,) into a monad—in this case specifically the list monad.

If this doesn't make any sense or isn't useful, forget it—it's just another way to look at the problem.

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Probably a good idea to learn what monads actually do first :P –  Callum Rogers Nov 7 '10 at 22:02
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As a footnote (three years later): I'd guess now that I originally used the monadic liftM2 here for the sake of clarity (more people have heard about monads than applicative functors?), but all you need is the applicative functor instance for lists, so liftA2 will work equivalently. –  Travis Brown Sep 19 '13 at 12:27
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If your input lists are of the same type, you can get the cartesian product of an arbitrary number of lists using sequence (using the List monad). This will get you a list of lists instead of a list of tuples:

> sequence [[1,2,3],[4,5,6]]
[[1,4],[1,5],[1,6],[2,4],[2,5],[2,6],[3,4],[3,5],[3,6]]
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There is a very elegant way to do this with Applicative Functors:

import Control.Applicative

(,) <$> [1,2,3] <*> [4,5,6]
-- [(1,4),(1,5),(1,6),(2,4),(2,5),(2,6),(3,4),(3,5),(3,6)]

The basic idea is to apply a function on "wrapped" arguments, e.g.

(+) <$> (Just 4) <*> (Just 10)
-- Just 14

In case of lists, the function will be applied to all combinations, so all you have to do is to "tuple" them with (,).

See http://learnyouahaskell.com/functors-applicative-functors-and-monoids#applicative-functors or (more theoretical) http://www.soi.city.ac.uk/~ross/papers/Applicative.pdf for details.

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The right way is using list comprehensions, as other people have already pointed out, but if you wanted to do it without using list comprehensions for any reason, then you could do this:

cartProd :: [a] -> [b] -> [(a,b)]
cartProd xs [] = []
cartProd [] ys = []
cartProd (x:xs) ys = map (\y -> (x,y)) ys ++ cartProd xs ys
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An easier way without list comprehensions is cartProd xs ys = xs >>= \x -> ys >>= \y -> [(x,y)] –  Chuck Nov 7 '10 at 21:53
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Instead of map (\y -> (x,y)) you can write map ((,) x). –  Yitz Nov 8 '10 at 9:19
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@Chuck: Nice :) It's been a while for me Haskell-wise, which is why I err on the side of simplistic solutions... –  Stuart Golodetz Nov 8 '10 at 12:16
    
@Yitz: Yup, good call. I'd forgotten about that (see above on the "it's been a while")... –  Stuart Golodetz Nov 8 '10 at 12:17
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Yet another way to accomplish this is using applicatives:

import Control.Applicative

cartProd :: [a] -> [b] -> [(a,b)]
cartProd xs ys = (,) <$> xs <*> ys
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something like:

cartProd x y = [(a,b) | a <- x, b <- y]
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Yet another way, using the do notation:

cartProd :: [a] -> [b] -> [(a,b)]
cartProd xs ys = do x <- xs
                    y <- ys
                    return (x,y)
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Well, one very easy way to do this would be with list comprehensions:

cartProd :: [a] -> [b] -> [(a, b)]
cartProd xs ys = [(x, y) | x <- xs, y <- ys]

Which I suppose is how I would do this, although I'm not a Haskell expert (by any means).

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