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The documentation for Control.Monad.List.ListT states that it "does not yield a monad unless the argument monad is commutative."

  1. How do I find out whether a monad is commutative? Is there a CommutativeMonad typeclass? Should there be?

  2. In particular, is Control.Monad.RWS.Lazy.RWS a commutative monad?

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2 Answers 2

up vote 4 down vote accepted

In general, a monad is commutative if the expression a >>= \x -> b >>= \y -> f x y is equivalent to b >>= \y -> a >>= \x -> f x y.

In other words, it is commutative if the order of side effects is not important. We can replace the expression:

do a <- ma
   b <- mb
   f a b

with one which switches the arguments.

do b <- mb
   a <- ma
   f a b

Most Many common monads are commutative, but you can determine if a particular monad is commutative by either looking at the design and logicking it, or by writing a small program to test it with appropriate expressions (which naturally depend on the nature of the monad). As far as I know there is no CommutativeMonad typeclass.

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3  
I would say the opposite, most monads are not commutative, can you name any examples besides Maybe and Reader? –  Tarrasch May 22 '11 at 19:10
    
I use MonadSupply and Random pretty often, and of course there are the implementations of certain unordered data structures like multisets. But that's a fair criticism. –  JeremyKun May 22 '11 at 19:35
    
MonadSupply does not appear to be commutative by your definition. runSupply (do {a <- supply; b <- supply; return (a - b)}) [1,2]-1 but runSupply (do {b <- supply; a <- supply; return (a - b)}) [1,2]1. Is there a mistake in my reasoning? –  dave4420 May 22 '11 at 19:49
2  
@Tarrasch: This talk from ICFP 2009 has some cool examples of commutative monads. –  hammar May 22 '11 at 20:18
    
I've seen that before. It's a great lecture. –  JeremyKun May 22 '11 at 21:35

No, there's no CommutativeMonad class. And RWS is not commutative. For a monad to be commutative you have to be able to reorder the effects without anything changing.

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