23

I have two threads in haskell that perform IO. (They print only). Something like the following:

thread1 :: IO ()
thread1 = putStrLn "One"

thread2 :: IO ()
thread2 = putStrLn "Two"

I am currently getting results like the following:

OnTwoe
OTnweo

How can I ensure that each thread completes its IO atomically?

0
25

Use a synchronization variable to ensure atomic access to the resource. A simple way is with an MVar:

main = do
   lock <- newMVar ()
   forkIO $ ... lock 
   forkIO $ ... lock

Now, to do IO without interleaving, each thread takes the lock:

thread1 lock = do
      withMVar lock $ \_ -> putStrLn "foo"

thread2 lock = do
      withMVar lock $ \_ -> putStrLn "bar"

An alternate design is to have a dedicated worker thread that does all the putStrLns, and you send messages to print out over a Chan.

5
  • 4
    As an exercise: try writing this using transactional memory to order access to the resource. Jun 5 '10 at 21:08
  • 2
    I will give that a shot! also I changed: withMVar lock $ (_ -> putStrLn "bar")
    – Toymakerii
    Jun 5 '10 at 22:26
  • 1
    I haven't used this design but the alternate design you mention at the end has worked pretty well for me in a couple of projects. Jun 8 '15 at 9:44
  • What if the monad context isn't in IO? I was using the monad-parallel package, and it's able to fork monads that aren't IO. I couldn't use mVars for the non-IO monads. Aug 12 '15 at 12:50
  • @Toymakerii is correct. the 2nd parameter of withMVar should be a function, not just putStrLn "...". Aug 12 '15 at 13:08

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