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I am new to Haskell and have some difficulties wrapping my head around some of it's concepts.

While playing around with IO I wanted to flatten an IO [[String]].

An example of what I have tried:

module DatabaseTestSO where

import Database.HDBC
import Database.HDBC.MySQL
import Data.Foldable

convSqlValue :: [SqlValue] -> [String]
convSqlValue xs = [ getString x | x <- xs ]
    where getString value = case fromSql value of
                Just x -> x
                Nothing -> "Null"

listValues :: [[SqlValue]] -> [[String]]
listValues [] = []
listValues xs = [ convSqlValue x | x <- xs ]

flatten :: [[a]] -> [a]
flatten = Data.Foldable.foldl (++) []

domains :: IO [[String]]
domains =
    do  conn <- connectMySQL defaultMySQLConnectInfo {
                mysqlHost       = "hostname",
                mysqlDatabase   = "dbname",
                mysqlUser       = "username",
                mysqlPassword   = "pass" }

        queryDomains <- quickQuery conn "SELECT name FROM domains" []

        return (listValues queryDomains)

That works with [[String]] in GHCi as expected:

*DatabaseTestSO> flatten [["blah","blab","wah"],["bloh","blob","woh"],["blih","blib","wuh"]]
["blah","blab","wah","bloh","blob","woh","blih","blib","wuh"]

but does not with IO [[String]] where I get

*DatabaseTestSO> flatten domains 

<interactive>:1:9:
    Couldn't match expected type `[[a0]]'
                with actual type `IO [[String]]'
    In the first argument of `flatten', namely `domains'
    In the expression: flatten domains
    In an equation for `it': it = flatten domains

I guess I can not use a function that is supposed to be pure with IO types? Can I convert IO [[String]] to [[String]]? How do I solve this problem correctly?

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4  
flatten is called concat and is defined in Prelude. –  Thomas Eding Dec 24 '11 at 22:54
    
I see. Is Prelude imported automatically when not using GHCi? –  matthias krull Dec 25 '11 at 13:01
    
Yes (filler...) –  Thomas Eding Dec 25 '11 at 18:58

2 Answers 2

up vote 11 down vote accepted

You have to realize what IO something means. It's not a something, it's an action that will return a something (In this case, something is [[String]]). So, you cannot do anything with the thing that the action returns, until you perform the action, which returns that thing.

You have two options to solve your problem.

  1. Perform the action, and use the result. This is done like this:

    do
      ds <- domains       -- Perform action, and save result in ds
      return $ flatten ds -- Flatten the result ds
    
  2. Create a new action that takes the result of some action, and applies a function to it. The new action then returns the transformed value. This is done with the liftM function in the Control.Monad module.

    import Control.Monad
    -- ...
    
    do
      -- Creates a new action that flattens the result of domains
      let getFlattenedDomains = liftM flatten domains
    
      -- Perform the new action to get ds, which contains the flattened result
      ds <- getFlattenedDomains
    
      return ds
    

PS. You might want to rename your domains variable to getDomains to clarify what it does. It's not a pure value; it's a monadic action that returns a pure value.

share|improve this answer
    
Your explanation was very helpful. –  matthias krull Dec 24 '11 at 19:48
3  
Note: fmap = liftM = liftA = <$>. –  Dan Burton Dec 24 '11 at 19:58

You can't get anything "out" of IO, so what you need to do is lift flatten to work inside it. The simplest way to do this is fmap--just like map applies a function over a list, fmap applies a function over any Functor instance, such as IO.

flattenIO xs = fmap flatten xs

In more general cases, you can use do notation to get at things in IO computations. For example:

flattenIO xs = do ys <- xs
                  return (flatten ys)

...which is just a roundabout way of writing fmap in this case.

share|improve this answer
    
Thank you for your reply. I will have to learn a lot. –  matthias krull Dec 24 '11 at 19:50

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