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I wrote the following function:

(.>=.) :: Num a => STRef s a -> a -> Bool
r .>=. x = runST $ do
 v <- readSTRef r
 return $ v >= x

but when I tried to compile I got the following error:

Could not deduce (s ~ s1)
from the context (Num a)
  bound by the type signature for
             .>=. :: Num a => STRef s a -> a -> Bool
  at test.hs:(27,1)-(29,16)
  `s' is a rigid type variable bound by
      the type signature for .>=. :: Num a => STRef s a -> a -> Bool
      at test.hs:27:1
  `s1' is a rigid type variable bound by
       a type expected by the context: ST s1 Bool at test.hs:27:12
Expected type: STRef s1 a
  Actual type: STRef s a
In the first argument of `readSTRef', namely `r'
In a stmt of a 'do' expression: v <- readSTRef r

Can anyone help?

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2 Answers 2

This is exactly as intended. An STRef is only valid in one run of runST. And you try to put an external STRef into a new run of runST. That is not valid. That would allow arbitrary side-effects in pure code.

So, what you try is impossible to achieve. By design!

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You need to stay within the ST context:

(.>=.) :: Ord a => STRef s a -> a -> ST s Bool
r .>=. x = do
 v <- readSTRef r
 return $ v >= x

(And as hammar points out, to use >= you need the Ord typeclass, which Num doesn't provide.)

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1  
Note that this still won't type check, as the constraint should be Ord, not Num. –  hammar Nov 4 '11 at 10:05
    
Thanks for spotting that. –  dave4420 Nov 4 '11 at 10:12

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