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agrupa :: String -> [(Char,Int)]

agrupa [ ] = [ ] 

agrupa (x:xs) = let (l1, l2) = span' (==x) xs  

                in (x, (length l1) + 1) : agrupa l2 

span' :: (a->Bool) -> [a] -> ([a],[a])

span' p l = (takeWhile p l, dropWhile p l)

this function gets a string and gives us how many of each character are there?

my question is related to the 1 in (length l1) + 1 why do we need it? I'd really appreciate if you explain it with different example because such cases (like+1) I've seen lots of times also in scan( or debug only the agrope part please) the function to see how it works exactly?

thanks for your time

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Why do you define span' rather than using Data.List.span? –  leftaroundabout Nov 21 '13 at 20:28
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1 Answer 1

The + 1 is there because you've previously matched one of the == x elements away, namely x itself, in the pattern (x:xs). If you didn't consider that, a list with no duplicates would give all 0s in the snd of each tuple in the result; as you have it the snd always gives the actual number of consecutive elements.

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then when we are using let's say if x == maximum (x:xs) then –  user2999428 Nov 22 '13 at 7:07
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Usually, there is no good reason to put in x:xs as an argument to a function. You'll either be deconstructing a list (in your case, with agrupa (x:xs) = ..., or cons-ing up another one, in which case you first need to calculate the new head and tail. Of course, you could also write agrupa (x:xs) = y:ys where {y = (x, length l1 + 1); ys = agrupa ls; ...}. That's just trivial restructuring of your implementation. –  leftaroundabout Nov 22 '13 at 12:23
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