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Im learning Haskell and I wrote this code to test some concepts of Haskell.

identifyThing :: [arg] -> String
identifyThing arg = "This looks like a " ++
    case arg of
        [] -> "empty list"
        [arg] -> "list"
        arg -> "something else"

main :: IO ()
main = putStrLn (identifyThing [])
    putStrLn (identifyThing [1..10]) 
    putStrLn (identifyThing ()) 
    putStrLn (identifyThing 1)

I get an error on the first line of the main declaration: cannot apply 7 arguments to putStrLn. I think this is because I don't know how to tell haskell that I am not wrapping the arguments over to the next line.

I would be grateful if somebody could show me what I've done wrong. Thanks.

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4  
You should move the "a" part of the string and write "an empty list", "a list" and "something else" to get the grammar right :p –  keyser Oct 1 '12 at 7:58
2  
Also, note that your cases [arg] -> "list" and then arg -> "something else" don't really make sense: it should read something like [arg] -> "singleton list"; arg -> "list with length >1". (The type [a] has a slightly different meaning from the value [a].) –  leftaroundabout Oct 1 '12 at 8:10
    
Thanks for that! Was unsure whether [x] was valid for many members or just an array with members –  kvanberendonck Oct 1 '12 at 8:31
1  
Read a tutorial on haskell which explains the concepts more clearly before jumping into programming, otherwise you might develop bad programming habits which will bite you in the future. –  Satvik Oct 1 '12 at 11:08
    
Yeah I was reading learnyouahaskell, but I must have missed something somewhere :) –  kvanberendonck Oct 1 '12 at 13:20

2 Answers 2

up vote 6 down vote accepted

A longer answer is that in Haskell you can't lump lines together and expect they work in sequence. When you write do it's not a syntax for { } - style block or something, it's a syntax for joining the lines using >>= function into a bigger line. So when you write do it's just a single line in fact:

main = putStrLn (identifyThing []) >>= \_ -> putStrLn (identifyThing [1..10]) >>= \_  -> putStrLn (identifyThing [1])

Pattern matching (as in case or equivalent definitions using multiple equations) works from top to bottom though.

The whole idea of Haskell is that you can't write vertical programs - you can only write horizontal ones :) And usually you can reformulate your "vertical" program into a shorter "horizontal" one. E.g.

main = mapM_ (putStrLn . identifying) [[], [1..10], [1]]

is another way to say "horizontally" what you wanted to say "vertically".

For beginners do, <- and return constructs are rather misleading. So you should use >>=, >>, \ -> and return and then learn how to shorten that using <$>, <*>, ., liftM2 and other functions from Control.Monad and Control.Applicative. Also, in many cases you can redesign your algorithms so "vertical" code is not needed anymore in the first place.

For your example, an easy to understand beginner's code would be:

main = putStrLn (identifyThing [1..10]) >> putStrLn (identifyThing ()) >> putStrLn (identifyThing 1)
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Fixed it, using "do" after main, plus a newline, did the trick.

Here's what I used to make it work (also corrected other parts of the program):

identifyThing :: [a] -> String
identifyThing arg = "This looks like " ++
    case arg of
        [] -> "an empty list"
        [x] -> "a list with one element"
        x -> "a list with more than one element"

main :: IO ()
main = do
    putStrLn (identifyThing [])
    putStrLn (identifyThing [1..10]) 
    putStrLn (identifyThing [()])
    putStrLn (identifyThing [1])
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() is a value that has type (). It's not nothing. [()] is a list with one element, which is (). Your code can't correctly say "something else" because the type signature [a] -> String forces the first argument to be a list. Calling the type [arg] is acceptable but confuses two things, so I changed that too. –  AndrewC Oct 2 '12 at 11:19

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