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I'm reading through Learn You a Haskell and reached a spot where I'm trying to move an element in a list to the head. I've come up with what I think is the naive way and I'm curious if someone can show me what the experienced Haskell programmer would do instead.

In this example, I have a list of Integers and I want to move the element '4', which would be index '3', to the head of the list.

let nums = [1, 2, 3, 4, 5]
(nums !! 3) : delete (nums !! 3) nums

returns [4, 1, 2, 3, 5].

What do you think?

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3  
"delete" deletes the first occurrence of the given element, so it might remove the wrong element if there are duplicates... –  sth Jun 24 '09 at 23:25

5 Answers 5

up vote 12 down vote accepted

I would do it this way:

move n as = head ts : (hs ++ tail ts)
   where (hs, ts) = splitAt n as

splitAt splits a list at the given position, it returns the two parts that are created by the splitting (here hs and ts). The element that should be moved to the front is now at the beginning of ts. head ts returns just this first element of hs, tail ts returns everything but that first element. The result of the function are just these parts combined in the right order: hs concatenated with tail ts and prepended by the element head ts.

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3  
toHead n l = let (xs, y:ys) = splitAt n l in y : xs ++ ys –  Stephan202 Jun 24 '09 at 23:24
    
sth: Could you describe it please to understand the code? –  shahkalpesh Jun 24 '09 at 23:31

Experienced Haskellers hardly ever using list indexing. I'd use break to avoid repeated traversals (assuming you want to match on element '4', not index '3'):

case break (== 4)  [1, 2, 3, 4, 5] of
    (a,x:xs) -> x:a ++ xs
    (a,xs)    -> a ++ xs

As in:

Prelude Data.List> case break (== 4)  [1, 2, 3, 4, 5] of (a,x:xs) -> x:a ++ xs; (a,xs) -> a ++ xs
[4,1,2,3,5]

We can do the same with indexing via 'splitAt':

Prelude Data.List> case splitAt 3  [1, 2, 3, 4, 5] of (a,x:xs) -> x:a ++ xs; (a,xs) -> a ++ xs
[4,1,2,3,5]
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Yes, it's matching on element 4 not on index '3'. Sorry for the confusion –  afrosteve Jun 25 '09 at 4:32

small modification on sth's solution:

toHead n xs = x : pre ++ post
  where (pre, x:post) = splitAt n xs

using pattern matching instead of head n tail

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There's also

toHead n l = l !! n : take n l ++ drop (n+1) l

which may be a little easier to follow than using splitAt.

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isn't this slower than the splitAt version? –  yairchu Jun 25 '09 at 12:15
    
Not clear after the optimizer gets done with it. Run with ghc -O and find out! –  Norman Ramsey Jun 25 '09 at 21:11
    
Would this do 2 passes over the list? –  Daniel Apr 18 '11 at 12:38

What a co-incidence?
I was reading the same thing a few days back. Looked it up again & wrote it like following.

nums !! 3 : [x | x <- nums, (x == (num !! 3)) == False]
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Two problems: First, duplicate elements are removed. Second (less of a problem), the not equal operator is (/=), as opposed to ( (a == b) == False). –  Mark Rushakoff Jun 24 '09 at 23:25
    
Good catch. As you can see, I am a beginner. Thanks for correcting :) –  shahkalpesh Jun 24 '09 at 23:28

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