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I'm writing a function in Haskell that recursively returns the list with the specified number of elements removed from the front of the list. I've gotten it to work doing this:

removefront :: Int -> [Int] -> [Int]
removefront n xs =
    if n <= 0 then xs
    else removefront (n-1) (tail xs)

This works and does exactly what I want however is there a way to do the same thing without the tail function. Thanks!

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1 Answer 1

up vote 5 down vote accepted

this function is "built in" in the sense that it is in the prelude and called drop

*Main> :t drop
drop :: Int -> [a] -> [a]
*Main> drop 3 [1,2,3,4,5,6,7]
[4,5,6,7]

now, I will assume that is not the answer you were looking for. You can easily modify your function to not use tail. The trick is to use pattern matching.

removefront :: Int -> [Int] -> [Int]
removefront n (x:xs) = if n <= 0 then (x:xs) else removefront (n-1) xs

three notes

  1. Most Haskeller would not use if then else for such a function, preferring guards

    removefront n (x:xs) 
       | n <= 0    = (x:xs)
       | otherwise = removefront (n-1) xs
    
  2. The type of removefront can be much more general

    removefront :: Int -> [a] -> [a]
    

    actually it could be all the way to

    removefront :: (Num i, Ord i) => i -> [a] -> [a]
    

    but that is getting excessive

  3. you should consider what happens when you hand your function the empty list--what do you want it to do?

share|improve this answer
    
i'm aware of the built in drop function. I'm essentially attempting to write my own drop function of sorts. I'm pretty much new at Haskell so I'm not too familiar with patten matching and how to use it –  NuNu Sep 30 '12 at 6:27
    
detailed explanation* & i added a condition to handle the empty list. thanks again –  NuNu Sep 30 '12 at 6:45

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