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I'm trying to write a generic vector function that takes an immutable vector and returns an immutable vector, but operates on a (temporary) mutable vector. A simple example that demonstrates my problem is:

import Data.Vector.Generic as V

test :: (Vector v r) => v r -> v r
test v = runST $ do
  x <- V.thaw v
  -- modify the mutable vector x, code elided
  let s = V.sum x
  M.write x 0 s
  -- continue to modify the mutable vector x, code elided
  V.unsafeFreeze x

This function does not compile because GHC cannot deduce (Vector (Mutable v s) r). I realize this is a problem, but due to the higher-rank type of runST,

runST :: (forall s. ST s a) -> a

I can't just add this constraint to test, nor could I figure out how to appropriately use explicit forall'd variables. How can I make test compile?

share|improve this question
    
If you mean that V.sum will be replaced by a monadic function which operates on a mutable vector then you should bind its result using the bind operator and not using let. Otherwise, if your aim is to just use V.sum for immutable vectors then you can just replace V.sum x with V.sum v since x was not modified. However, if x was modified then you have to freeze it to use V.sum. –  is7s Nov 17 '12 at 9:42
    
I don't have a monadic version of sum, unfortunately. Perhaps there is one? I also can't use v because I modify the (thawed) version of v before calling sum. I could refreeze x first, but that's what I'm tring to avoid. –  Eric Nov 17 '12 at 15:36
    
Currently, the only solution I can think of is to unsafeFreeze it or implement the mutable version yourself. I've opened a ticket about the missing list-like functions in the mutable vector modules this morning. –  is7s Nov 17 '12 at 15:45
    
Is it okay to do y<-V.unsafeFreeze x; let s= V.sum y; z<-V.unsafeThaw y; ...continue operating on the mutable vector z? Basically: can I do two consecutive unsafe operations and still have access to my vector? Could I use the old handle x (since nothing was modified), or would be forced to use the new handle z? –  Eric Nov 17 '12 at 15:58
    
Best to assume nothing though, right? A new handle in constant time shouldn't hurt anything. –  Eric Nov 17 '12 at 16:09

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