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I am wondering how to merge 3 lists into one list.

here is merging two lists

 merge :: Ord a => [a] -> [a] -> [a]
 merge xs [] = xs
 merge [] ys = ys
 merge (x:xs) (y:ys) | x <= y    = x:merge xs (y:ys)
                     | otherwise = y:merge (x:xs) ys

what should I do if I want to merge three lists ?

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Your merge function can already merge two lists and since it is a binary associative operation you could do:

list1 `merge` (list2 `merge` list3)

Or more generally if you want to merge an arbitrary number of lists:

mergeAll :: Ord a => [[a]] -> [a]
mergeAll = foldl merge []

Wikipedia has a great explanation on Folding.

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  • 1
    Wow, a rare case where the non-strict foldl is reasonable :)
    – ephemient
    Nov 7 '20 at 5:06
  • Yeah, though if strictness becomes a concern they would be probably be using something from array or containers rather than linked lists. :P Nov 7 '20 at 5:10
  • 3
    @ephemient however it's still no better than foldr. BTW this mergeAll is asymptotically bad in the case where all the lists are similar length -- better to merge in a tree-like pattern mergeAll xss = mergeAll (uncurry merge <$> adjacentPairs xss) (plus appropriate base cases)
    – luqui
    Nov 7 '20 at 5:59
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    @luqui As the only thing that foldl' forces is the list head, there's effectively no difference between foldl and foldl'. This is contrary to the common case where there is a difference, hence my original comment.
    – ephemient
    Nov 7 '20 at 7:57
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    @ephemient I observed a timing difference of a factor of 1.5. And you are also right of course that the list head is the only difference. But the list head is 5 million thunks deeper for foldl than foldl', which does make a pretty substantial difference here. foldl still has yet to prove it deserves attention (but I suppose it's getting our attention now by continuing to be crappy). As you chomp further out in the output list they start getting comparable in timing, as expected.
    – luqui
    Nov 7 '20 at 8:05

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