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Can someone please explain what's going on in my function.

arrayReader :: [Int] -> IO [Int]
arrayReader arr = do
  item <- readLn
  return $ if item == 0
          then arr
          else arrayReader item:arr

But Haskell is not happy with the 6th line:

reader.hs:6:17:
    Couldn't match expected type `Int' with actual type `IO [Int]'
    In the return type of a call of `arrayReader'
    In the first argument of `(:)', namely `arrayReader item'
    In the expression: arrayReader item : arr

Can someone explain what needs to be changed to make this function compile?

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1 Answer 1

up vote 2 down vote accepted

Firstly, you have a precedence error - arrayReader item:arr parses as (arrayReader item):arr. You need to write arrayReader (item:arr).

Secondly, arrayReader produces something of type IO [Int], but in this context return takes something of type [Int] and produces IO [Int]. You need to rearrange your code so that return is only called on arr, not on the result of arrayReader.

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Thanks for the first tip. 2nd one: I need the result of arrayReader.. –  mgoszcz2 Jan 5 '14 at 22:33
    
You don't have to use return to produce a result - just calling something that produces a result as the "last thing" you do will also return that result to your own caller. –  Ganesh Sittampalam Jan 5 '14 at 22:36
    
In other words, don't return $ if ... but use if ... and then return arr. –  Thomas M. DuBuisson Jan 5 '14 at 22:59
    
return is not the same as in other languages. It doesn't mean return this result. It means stick this thing inside the current context type. So in your case it wraps things in IO. –  Ryan Booker Jan 5 '14 at 23:00
    
OK I understand now. Thanks you very much. –  mgoszcz2 Jan 6 '14 at 5:13

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