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Having a producer of type Producer ByteString IO () and a pipe of type Pipe ByteString a IO () how do I compose an effect, which will result in IO a when run?

Here's my best attempt:

{-# LANGUAGE ScopedTypeVariables #-}
import Pipes
import Data.ByteString

run :: forall a. IO a
run = runEffect $ 
  (undefined :: Producer ByteString IO ()) >-> (undefined :: Pipe ByteString a IO ())

It fails with the following:

Couldn't match type `Void' with `()'
Expected type: IO a
  Actual type: IO ()
In the expression:
  runEffect
  $ (undefined :: Producer ByteString IO ())
    >-> (undefined :: Pipe ByteString a IO ())
In an equation for `run':
    run
      = runEffect
        $ (undefined :: Producer ByteString IO ())
          >-> (undefined :: Pipe ByteString a IO ())
share|improve this question
    
Is that the full source and error message? It looks very strange! After all, it says it's trying to unify Void and () but Void doesn't appear in the expected type. –  Daniel Wagner Oct 16 '13 at 22:13
    
@DanielWagner Void appears in the signature of Effect type alias. Concerning the code and error - see updates. –  Nikita Volkov Oct 16 '13 at 22:32
1  
Regardless of the solution to your problem, I'd complain to GHC HQ about how bad that error is! –  Daniel Wagner Oct 16 '13 at 22:44
    
Do you want the first value emitted? –  Gabriel Gonzalez Oct 16 '13 at 23:06
4  
I filed a feature request on GHC Trac to improve this error message. –  Daniel Wagner Oct 16 '13 at 23:23

1 Answer 1

up vote 4 down vote accepted

Generally, you need to compose a Producer with a Consumer in order to get an Effect which can be run by runEffect. That's not what you've got here, but fortunately, there are more ways to eliminate a Proxy than just runEffect.

Taking stock of what we have, this composition ends up with a Producer.

pipe :: Producer a IO ()
pipe = (undefined :: Producer ByteString IO ()) >-> (undefined :: Pipe ByteString a IO ()) 

The Pipes.Prelude module contains many other ways to eliminate Producers like Pipes.Prelude.last

last :: Monad m => Producer a m () -> m (Maybe a)

Probably the most general way to get as out is to use Pipes.Prelude.fold

fold :: Monad m => (x -> a -> x) -> x -> (x -> b) -> Producer a m () -> m b

which is like runEffect except it reduces Producers to their underlying Monad. Since that's what we have it'll work great. Here's how we can implement Pipes.Prelude.head

slowHead = fold (\res a -> res <> First (Just a)) mempty getFirst

Though it's worth noting that slowHead consumes the entire Producer (and thus performs all of the needed effects) while Pipes.Prelude.head performs just the first one. It's much lazier!

share|improve this answer
    
You can also use head to get the first value. It will be lazy and only run the producer long enough to get the first element. –  Gabriel Gonzalez Oct 16 '13 at 23:07
1  
Great! Thanks guys! So, the final result is run = Pipes.head $ (undefined :: Producer ByteString IO ()) >-> (undefined :: Pipe ByteString a IO ()) with a type signature run :: forall a. IO (Maybe a) –  Nikita Volkov Oct 16 '13 at 23:13
    
@GabrielGonzalez Would the solution using head have the same effect as run = runEffect $ ((undefined :: Producer ByteString IO ()) >> return Nothing) >-> ((undefined :: Pipe ByteString a IO ()) >> return Nothing) >-> (await >>= return . Just)? –  Nikita Volkov Oct 16 '13 at 23:21
    
Oomph, yes. I'll change that answer to clarify that the fold solution I wrote has potentially massively different performance characteristics... –  J. Abrahamson Oct 17 '13 at 0:00
    
@NikitaVolkov Yes. head is just more efficient. –  Gabriel Gonzalez Oct 17 '13 at 0:17

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