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I read that the cons operator (:) and the ++ operator can be used interchangeably in Haskell strings. How can this be done? I'm not sure I completely understand what it means.

Edit: here's what I think it should be:

x:xs = [x]++xs


[]++list = list

(x:xs)++list = x:(xs++list)
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Where did you read that? – John Bartholomew Oct 19 '13 at 19:09
in a practice lab assignment where you need to implement it – u_ser722345 Oct 19 '13 at 19:10
Please quote the paragraph (or whatever context is required for understanding the statement) that says so. That would be plain wrong, so you may have misunderstood something. – delnan Oct 19 '13 at 19:11
I have given an example of what it means, perhaps that helps? – u_ser722345 Oct 19 '13 at 19:13
Your edit is correct. Those are the two conversions back and forth. – Gabriel Gonzalez Oct 19 '13 at 19:16

2 Answers 2

(:) is a constructor for the list type. It's a special case of a rule that we can have infix constructors as long as they start with a colon:

Prelude> :info []
data [] a = [] | a : [a]    -- Defined in `GHC.Types'

(++) is a function trivially implemented in terms of (:):

Prelude> :info (++)
(++) :: [a] -> [a] -> [a]   -- Defined in `GHC.Base'
infixr 5 ++

As you can see the types are different:

Prelude> :t (:)
(:) :: a -> [a] -> [a]
Prelude> :t (++)
(++) :: [a] -> [a] -> [a]

Above I've used hoogle (and implementations linked in haddock docs) and GHCi with the :t and :info commands, and now you can too!

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x:xs = [x]++xs


[]++list = list

(x:xs)++list = x:(xs++list)
share|improve this answer

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