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I have a function f :: ByteString -> String, and need a Sink ByteString (ResourceT IO). How do I get this?

Unfortunately, the docs were not very helpful...

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What do you want the sink to do? –  dave4420 Aug 16 '12 at 13:15
And Sink ByteString (ResourceT IO) isn't a type. Do you mean Sink ByteString (ResourceT IO) String? –  dave4420 Aug 16 '12 at 13:20
Yes, sorry.Sink ByteString (ResourceT IO) String was needed. The sink was supposed to take the result of fileSource in a Yesod file upload, and compute its md5 hash (using Yesod.Static.base64md5). –  mrueg Aug 16 '12 at 15:41

2 Answers 2

up vote 1 down vote accepted

I'm not sure why you need anything to do with resourceT in this conduit.

In order to return it all in one big string composed from all the little bytestrings, you'll have to accumulate pieces for awhile, then return it a the end.

fSink :: Monad m => Sink ByteString m String
fSink = go []
    go accum = do
      x <- await
      case x of
        Nothing -> return . f . B.concat . reverse $ accum
        Just x' -> go (x':accum)
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Thank you for your answer. The requirement for ResourceT is just due to the way Yesod handles file uploads since version 1.1. You get a Source (ResourceT IO) ByteString instead of a ByteString as it was in Yesod 1.0. –  mrueg Aug 16 '12 at 15:08

Here's a general solution to the problem: let's take any function i -> r, where i is a Monoid, and turn it into a sink by folding all of the awaits up with mappend.

import Data.Conduit
import Data.Conduit.List as CL
import Data.Monoid

monoidFold :: (Monoid i, Monad m) => (i -> r) -> Sink i m r
monoidFold f = f `fmap` CL.fold mappend mempty

Since ByteString is a Monoid, your function of type ByteString -> String can be used as the argument of monoidFold.

myMD5 :: ByteString -> String
monoidFold myMD5 :: Monad m => Sink ByteString m String
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very instructive, thanks –  fp4me Aug 16 '12 at 18:04

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