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Complete Haskell newbie here, my apologies....

I am trying to create a sequence of values out of another sequence and the last value generated (So it's not completely obvious to me how I would use map).

In clojure I would use a loop construct which is basically equivalent to a recursive function. So I thought I could use this problem with a recursive function along the lines of

genSequence :: [a] -> [b] -> [a]
genSequence result [] = reverse result
genSequence a:as b:bs = genSequence ((computeNextA a b):a:as) bs

and I guess this isn't so bad (the real function is of course more complicated ...) but I read about monads (read the excellent tutorial by Philip Walder, then some stuff on monads in clojure) and can't help the feeling that I should be using them here. So far my knowledge of monads is purely theoretical, unfortunately, so I would be very thankful if you could help me along.

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Check out mapAccumL (which is really a specialized mapM in the state monad). –  augustss Dec 9 '11 at 12:29
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If I understand you correctly, foldl' is enough for your sequence generator example: reverse . foldl' (\a x -> computeNextA (head a) x : a) listA $ listB –  Matvey Aksenov Dec 9 '11 at 12:33
    
@augustss Will do, thank you. As it turns out I won't need it here ... –  Paul Dec 9 '11 at 13:39
    
@MatveyB.Aksenov Yes, this already seems to do the trick ... or use scanl I guess. Was apparently over complicating things a bit ... –  Paul Dec 9 '11 at 13:39
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1 Answer

up vote 4 down vote accepted

Not sure if this helps, but something like (assuming that computeNextA is +)

genSequence [4] [60,70,80,90]
--[4,64,134,214,304]

is equivalent to

scanl (+) 4 [60,70,80,90]
--[4,64,134,214,304]
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Thank you @Landei! This does indeed solve my problem.. I guess I was over complicating it a bit. Bonus question: Is there a way to do this with the n last entries as well? –  Paul Dec 9 '11 at 13:35
    
@Paul Not sure if that's what you're wanting, but there's also scanr, which is to foldr what scanl is to foldl. scanr (+) 4 [60,70,80,90] -- [304,244,174,94,4]. –  Daniel Fischer Dec 9 '11 at 18:31
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