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Ok, maybe the title is a little confusing, but what I am trying to do is have a function like this: f (a:b:c:d:is) = ... but be able to refer to a:b:c:d without writing it again. As it turns out, I can't do something like e@(a:b:c:d):is and get the expected result. Any ideas?

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You'll want to user the proper syntax, e@(a:b:c:d:is) –  Sarah Jan 3 '12 at 11:43
    
Oh I see what you're getting at. If you're using (e@(a:b:c:d):is), then it's a list of lists with d being the tail of the inner lists. I don't think you can help this with as patterns, since the parens for grouping will be necessary. –  Sarah Jan 3 '12 at 11:53
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2 Answers 2

up vote 6 down vote accepted

The best I can think of is using view patterns, like this:

{-# LANGUAGE ViewPatterns #-}
f (splitAt 4 -> (as@[a,b,c,d], is)) = is ++ [d,c,b,a] ++ as
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+1, that's the better thing I couldn't think of OTTOMH. –  Daniel Fischer Jan 3 '12 at 11:58
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You could avoid the language pragma by just using pattern guards. "f xs | (e@[a,b,c,d], is) <- splitAt 4 xs = e" –  Sarah Jan 3 '12 at 12:14
    
I was hoping for something as 'clean' as as-patterns, but thanks anyway. –  byrondrossos Jan 3 '12 at 13:09
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You can't do that, one reason is that a:b:c:d is not a well-typed expression. By the binding in the definition of f, a, b, c, d all have the same type, say t, but the type of the list constructor is

(:) :: t -> [t] -> [t]

You can sort-of achieve what you want by binding let foo = take 4 inputList. Admittedly clunky, but I can't think of anything better off the top of my head.

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+1 for explaining the problem. –  Dan Burton Jan 3 '12 at 18:46
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