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I want to define my own infix operator using Haskell that concats two strings together. However, I want to throw in an extra clause where the operator will concat over the overlapping elements in both strings. So an example would be

"eagle" myinfix "eagleeyes" = "eagleeyes"
"water" myinfix "book" = "waterbook"
"need" myinfix "education" = "needucation"

I already figured out how to return the overlapping portions in the strings with:

check x y = head $ filter (`isPrefixOf` y) (tails x)

But I don't know how to incorporate that in. Any help?

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2  
Why isn't the third example "needucation"? –  Dietrich Epp Oct 8 '12 at 8:25
1  
And why isn't the first example "eagleeyes"? check "eagle" "eagleeyes" = "eagle". –  dave4420 Oct 8 '12 at 8:33
    
yeah sorry guys i realized i made some errors in the example outputs. I have corrected that –  Bobo Oct 8 '12 at 9:30

2 Answers 2

up vote 7 down vote accepted

You're going about it in slightly the wrong way.

(+++) :: Eq a => [a] -> [a] -> [a]
xs     +++ ys | xs `isPrefixOf` ys = ys
(x:xs) +++ ys                      = x : (xs +++ ys)

That is, you don't really care what the overlap is, you just care whether you have reached it.


Here's another solution without the explicit recursion.

(++++) :: Eq a => [a] -> [a] -> [a]
xs ++++ ys = prefix ++ ys
  where (prefix, _) : _ = filter (\(_, overlap) -> overlap `isPrefixOf` ys) $ zip (inits xs) (tails xs)

Here we go about finding the overlap, as in your check, but instead of keeping the overlap, we yield the portion of xs that doesn't overlap.

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Another one using the Data.List.stripPrefix function: xs +++++ ys = xs ++ head [suffix | Just suffix <- map (flip stripPrefix ys) (tails xs)] –  Ørjan Johansen Oct 9 '12 at 6:19
overlapConcat :: (Eq a) => [a] -> [a] -> [a]
overlapConcat s t = s ++ drop (length $ check s t) t

This won't be as fast as the other versions provided since it will perform two passes over s, but I think it is more readable, and makes intuitive sense.

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