Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This may be a silly question, but I'm very new to Haskell. (I just started using it a couple of hours ago actually.)

So my problem is that I have a list of 4 elements and I need to print two on one line and two on a new line.

Here's the list:

let list1 = ["#", "@", "#", "#"]

I need the output to look like this:

#@
##

I know that i could use the following to print every element on a new line:

mapM_ putStrLn list1 

but I'm not sure how to adapt this for only printing part of the list on a new line.

share|improve this question

4 Answers 4

up vote 4 down vote accepted

You want something like Data.Text.chunksOf for arbitrary lists, which I've never seen anywhere so I always reimplement it.

import Data.List (unfoldr)

-- This version ensures that the output consists of lists 
-- of equal length. To do so, it trims the input.
chunksOf :: Int -> [a] -> [[a]]
chunksOf n = unfoldr (test . splitAt n) where
  test (_, []) = Nothing
  test x       = Just x

Then we can take your [String] and turn it into [[String]], a list of lists each corresponding to String components of a line. We map concat over that list to merge up each line from its components, then use unlines to glue them all together.

grid :: Int -> [String] -> String
grid n = unlines . map concat . chunksOf n

Then we can print that string if desired

main :: IO ()
main = putStrLn $ grid 2 list1

Edit: apparently there is a chunksOf in a fairly popular library Data.List.Split. Their version is to my knowledge identical to mine, though it's implemented a little differently. Both of ours ought to satisfy

chunksOf n xs ++ chunksOf n ys == chunksOf n (xs ++ ys)

whenever length xs `mod` n == 0.

share|improve this answer
    
I'm not sure I entirely understand chunksOf. What exactly do the test (_, []) and test x lines do? –  mrg1023 May 5 '13 at 3:07
1  
splitAt n has type [a] -> ([a], [a])—it splits a list into two pieces at n. If the second piece is empty then n is larger than the length of your input list; you've reached the end. unfoldr has almost the same type, it takes a function almost like (a -> (b, a)) which generates one b from an a while creating a new a to repeat the process. Unfortunately, this leads to an infinite loop—so we actually use a function (a -> Maybe (b,a)) where Nothing means to stop unfolding. Finally, test just stops the unfoldr when the second piece from splitAt is empty. –  J. Abrahamson May 5 '13 at 14:44
    
To take a closer look, consider what happens when test = Just. –  J. Abrahamson May 5 '13 at 14:45
    
That makes sense. I ended up going with the Data.List.Split route as all I have to add myself is the grid function. It's working very well. Thank you! –  mrg1023 May 5 '13 at 19:38
    
Yeah, Data.List.Split is one of those missing-from-Prelude libraries that I always forget about but never feel too bad about including. I'm always surprised it's not a Platform package. –  J. Abrahamson May 6 '13 at 1:07

You can do:

mapM_ putStrLn [(take 2 list1), (drop 2 list1)]

where take and drop return lists with the expected number of elements. take 2 takes two elements and drop 2 drops the first two elements.

share|improve this answer
    
I'm getting the following error: mapM_ putStrLn [(take 2 list1), (drop 2 list1)] <interactive>:337:25: Couldn't match expected type 'Char' with actual type '[Char]' Expected type: [Char] Actual type: [[Char]] In the second argument of 'take', namely 'list1' In the expression: (take 2 list1) –  mrg1023 May 5 '13 at 0:20
    
list1 is currently a list of strings (even though the strings are only one letter long); the compiler is telling you it wants a list of chars. Change all the double-quotes to single-quotes in your definition of list1 and it should work. –  Benjamin Hodgson May 5 '13 at 0:51
    
Alternatively, you could explicitly lower the dimension of the input list by first doing map head over list1 and then applying @SimeonVisser's solution. –  Benjamin Hodgson May 5 '13 at 0:57
1  
@poorsod That's note really great code. It'll crash if any of the strings are empty, and silently ignore data if any of them are more than one length. In other words, it'll only work under the assumption that all the strings are single characters in which case you should use a datatype which represents that, namely Char. Or you should handle the strings as strings, and change Simeon's solution to something like mapM_ putStr (intercalate ["\n"] [take 2 list1, drop 2 list1]) >> putChar '\n'. –  Ben May 5 '13 at 1:37
    
@Ben - you're right, I should have pointed out the assumptions and limitations in the comment. It'll do the job if the input data is guaranteed to be of the form that OP gave, though. –  Benjamin Hodgson May 5 '13 at 11:07

Looking at tel link Data.List.Split, another solution can be built on using chop.
Define as follow into the lib,

chop :: ([a] -> (b, [a])) -> [a] -> [b]
chop _ [] = []
chop f as = b : chop f as'
  where (b, as') = f as

Then following's simeon advice we end with this one liner,

let fun n = mapM_ putStrLn . chop (splitAt n)

chop appears to be a nice function, enough to be mentioned here to illustrate an alternative solution. (unfoldr is great too).

share|improve this answer

Beginner attempt:

myOut :: [String] -> IO ()
myOut [] = putStr "\n" 
myOut (x:xs) = 
    do if x=="@"
       then putStrLn x
       else putStr x

       myOut xs



ghci>myOut ["#", "@", "#", "#"]
#@
##
ghci>
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.