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I've been trying many different ways to do this in Haskell, and I can't for the life of me figure this out.

I want to get a list of names from the user, and if I know the length of the list (let's assume that is n), I want to prompt the user n times and ask for the i th item at the i'th time.

So far, I have this:

getinput a b
| a == b = []
| otherwise = input:getinput (a+1) b
where input = do
  a <- getLine
  return a

but I keep getting errors.

Strongly appreciate any help!

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What type of error are you getting? –  akjoshi Dec 21 '12 at 6:30
    
I got an error saying that ghci could not print the returned value correctly. That said, I guess that the printing wasn't the real problem. Thanks so much! –  adeeshaek Dec 21 '12 at 16:35
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2 Answers

up vote 7 down vote accepted

Problem with your code

  • The return type of input is IO String so you just can not append it to a list.
  • Similarly the return type of getinput (a+1) b is IO [String] and not just [String].

Here I have corrected your code

getinput a b | a == b = return []
             | otherwise = do
                    i <- getLine
                    rest <- getinput (a+1) b
                    return (i:rest)

A better and more haskellish way

getinput2 n = sequence $ replicate n getLine
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3  
Or replicateM n getLine. –  dave4420 Dec 21 '12 at 10:33
    
Wow, thanks so much. I didn't have the faintest idea that you could do that in 1 line! Could you please tell me what sequence and replicate does in this case? Again, thanks so very much to Satvik, and dave4420 as well. –  adeeshaek Dec 21 '12 at 16:34
    
Your haskellish code is more elegant, but OP's code isn't wrong. –  amindfv Dec 22 '12 at 3:18
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Satvik had a good answer, but your code is also 100% correct.

You can append an IO String to the beginning of a list, as long as all elements are of the same type -- so you end up with something that has the type [IO String]

All you need to do, with the code you've written, is apply it with sequence -- for example:

sequence $ getinput 0 4
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Thanks so much, amindfv. Again, my mind is blown by how elegant Haskell can be! –  adeeshaek Feb 16 '13 at 5:06
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