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Here are some pragmas and some imports:

{-# LANGUAGE ScopedTypeVariables #-}

import Control.Monad.ST
import Data.Array.ST
import Data.Array

Now here's my problem. The following code typechecks:

foo :: forall a. a -> [a]
foo x = elems $ runSTArray $ do
    newListArray (1,10) (replicate 10 x) :: ST s (STArray s Int a)

However, when I replace the $ with composition:

foo :: forall a. a -> [a]
foo x = elems . runSTArray $ do
    newListArray (1,10) (replicate 10 x) :: ST s (STArray s Int a)

I get this error:

Couldn't match expected type `forall s. ST s (STArray s i0 e0)'
            with actual type `ST s0 (STArray s0 Int a)'
In the expression:
    newListArray (1, 10) (replicate 10 x) :: ST s (STArray s Int a)
In the second argument of `($)', namely
  `do { newListArray (1, 10) (replicate 10 x) ::
          ST s (STArray s Int a) }'
In the expression:
      elems . runSTArray
  $ do { newListArray (1, 10) (replicate 10 x) ::
           ST s (STArray s Int a) }

What's werid is, if I give the function composition its own name, then it typechecks again:

elemSTArray = elems . runSTArray

foo :: forall a. a -> [a]
foo x = elemSTArray $ do
    newListArray (1,10) (replicate 10 x) :: ST s (STArray s Int a)

I'm not sure what's going on here. I would expect the second piece of code to typecheck nicely. And I don't understand why it typechecks again if I give the composed function its own name.

This is a simplified version of some code that I had that broke when upgrading from GHC 6.2 to 7 and I'm trying to understand why this happens now. Thanks for helping!

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I'm not really a Haskell programmer, but what is the precedence of composition relative to $? What happens if you parenthesise the sub-expression elems . runSTArray? –  Gian Dec 1 '11 at 14:53
1  
I can't reproduce this with GHC 6.12.1. –  opqdonut Dec 1 '11 at 14:57
    
Gian: $ has lower precedence than ., so if I parenthesise the sub-expression it behaves the same. opqdonut: This didn't happen to me either on GHC 6.2 but it does on GHC 7.0.3 –  EEVIAC Dec 1 '11 at 15:01
    
@EEVIAC: oh sorry, didn't catch the bit about upgrading. Definitely reproducible under 7. Have you filed a GHC bug already? –  opqdonut Dec 1 '11 at 15:09
    
No, I haven't, since I wasn't sure that it's a bug, I just assumed it was an error in my understanding of the type system currently, since I haven't been following the development of GHC lately. So it's a bug? –  EEVIAC Dec 1 '11 at 15:31
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2 Answers

up vote 13 down vote accepted

As you already hint at in the title of your post, the problem has to do with runSTArray having a polymorphic type of rank 2.

runSTArray :: Ix i => (forall s. ST s (STArray s i e)) -> Array i e

With

elems :: Ix i => Array i e -> [e]

and

($) :: (a -> b) -> a -> b

writing runSTArray $ ... means that the type variable a in the type schema of ($) needs to be instantiated with a polymorphic type rather than a monomorphic type. This requires so-called impredicative polymorphism. How GHC implements impredicative polymorphism is explained in the ICFP 2008 paper by Dimitrios Vytiniotis, Stephanie Weirich, and Simon Peyton Jones: FPH : First-class Polymorphism for Haskell. The bottom line is that while FPH often gives you the behaviour that you expect, typeability is sometimes not preserved under simple transformations like the ones you describe in your question: see Section 6.2 of the aforementioned paper.

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Stefan beat me to the answer -- the tricky bit is that it's not the $ vs . between elems and runSTArray that's the issue -- it's the $ following runSTArray. Since something $ rankNthing is so common, there's a clever bit (I forget the details) that tries to let you do that as a corner case. But somehow using the composition earlier on prevents this. The location of the issue is demonstrated by the fact that the following will typecheck:

foo x = (elems . runSTArray) (
    (newListArray (1,10) (replicate 10 x) :: ST s (STArray s Int String)))

I'm not sure this is a bug per se, but its certainly an unexpected behavior worth creating a ticket about, since there might still be a better algorithm to catch cases like the one you provided.

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