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I'm teaching myself Haskell and I've run across the question in my book that ask me to define a function insert that takes a positive integer n, element y, and a list xs that inserts the specified element y after every n elements in the list.

I believe pattern matching would probably be a good way to go but I've yet to really grasp what it means

insert :: Int -> Char -> [a] -> [a]
insert 0 y xs = xs
insert n y [] = []
insert n y (x:xs)

An example of how the function should work:

insert 2 'X' "abcdefghijk" = "abXcdXefXghXijXk"

I've taken care of the base cases at this point but I don't know how to proceed from here.

Any ideas? Thanks

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insert 2 'X' "abcdefghijk" = "abXcdXefXghXijXk" I meant this (sorry i was typing fast) –  NuNu Sep 30 '12 at 18:00
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4 Answers

up vote 2 down vote accepted

You can write a helper function that counts down and resets when it gets to zero.

insert :: Int -> a -> [a] -> [a]
insert n y xs = countdown n xs where
   countdown 0 xs = y:countdown n xs -- reset to original n
   countdown _ [] = []
   countdown m (x:xs) = x:countdown (m-1) xs

What behaviour do you want if it's time to insert at the end? Here I've prioritised inserting over finishing by putting countdown 0 xs before countdown _ []. How could you rewrite it if you wanted to skip the insert at the end?

Sample usage:

*Main> insert 3 '|' "Hello Mum, erm... can I borrow £20000 please?"
"Hel|lo |Mum|, e|rm.|.. |can| I |bor|row| £2|000|0 p|lea|se?|"
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well this particular question asks for an element specifically a character. I ran your function and it throws me errors. Why is that? –  NuNu Sep 30 '12 at 8:21
1  
@NuNu What errors did you get? I'll paste a sample call in case that helps. –  AndrewC Sep 30 '12 at 9:08
    
If you want it to only work with characters, you could change the type singature to be insert :: Int -> Char -> [Char] -> [Char], which is the same as insert :: Int -> Char -> String -> String. –  AndrewC Sep 30 '12 at 15:52
    
i see. thanks it makes a whole lot of sense now –  NuNu Sep 30 '12 at 18:05
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In the last case, take n elements of the list, insert a singleton list of y and then append the result of recursively calling the function after dropping first n elements of the list.

insert :: Int -> Char -> [a] -> [a]
insert 0 y xs = xs
insert n y [] = []
insert n y xs
 | length xs < n = xs
 | otherwise = take n xs ++ [y] ++ insert n y (drop n xs)
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@AndrewC, given that the OP is just starting to learn Haskell, I think this answer is the simplest and hence best. –  Abhinav Sarkar Sep 30 '12 at 8:06
    
It is simple, yes, and helpful. And drop, take and length are important functions to introduce to the OP. (I didn't downvote, by the way.) –  AndrewC Sep 30 '12 at 8:08
1  
@AndrewC Isn't this the okay direction for (++)? This should be no less efficient (asymptotically) than manually counting the way you suggested. (++) only gets really bad when it's associated to the left. –  Daniel Wagner Sep 30 '12 at 8:12
    
Oooooops. I've let my own past mistakes mislead me - many years ago now, my second real-need haskell program analysed a vast number of polynomials for a property we were seeking for a research task. I used ++ the bad, left-associative way and ran out of memory on the department's biggest unix server before writing a line of data to the output files! Abhinav is not making the same mistake, you're right Daniel, so I deleted my original comment because it's wrong. I'm ashamed of myself. If I had a second upvote I would use it by way of apology. –  AndrewC Sep 30 '12 at 9:02
    
The downvotes just keep coming without any reasons. What is wrong with this solution? It is correct, simple and it run in linear time which the best you can get. –  Abhinav Sarkar Oct 1 '12 at 15:04
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It's OK to use library functions to your advantage.

import Data.List

insertAtN n y xs = intercalate [y] . groups n $ xs
  where
    groups n xs = takeWhile (not.null) . unfoldr (Just . splitAt n) $ xs

Of course if you insert Char into list of type [a] then a is Char, because in Haskell all elements of a list are of same type.


To help you understand this on a more immediate level, let's first look at just making a copy of a list:

copyList (x:xs) = x : copyList xs
copyList [] = []

Now imagine you add index value to each element being copied (re-implementing zip xs [1..]):

copyIdxList xs = go 1 xs where
  go i (x:xs) = (x,i) : go (i+1) xs
  go _ [] = []

Now that we have an index value when we're dealing with each element, we can use it and, say, put each 10-th element of a list twice into the result:

copyIdxTenthTwice xs = go 1 xs where
  go i (x:xs) | i==10 = (x,i) : (x,i) : go 1 xs
  go i (x:xs)         = (x,i) : go (i+1) xs
  go _ [] = []

See where I'm going with this? Instead of duplicating the x, you can insert y there. And you don't have to put the indices into the result.

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ins n y xs = zip xs (cycle [1..n]) >>= f where
  f (x,k) = if k == n then [x,y] else [x] 

The zip part attaches cyclic "indexes" to the elements of the list, e.g. for n = 3 and xs = "abcdefg" we get [('a',1),('b',2)('c',3)('d',1)('e',2)('f',3)('g',1)]. Now (>>=) (which is the same as concatMap in case of lists) uses f to map every pair back to the original element, except when we have the last index of a cycle: In that case we insert an additional divider element y as well.

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