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Apparently the only possible interpretation of runSomeMonad do ... is runSomeMonad (do ...). Why isn't the first variant allowed by the Haskell syntax? Is there some case where foo do bar could be actually ambiguous?

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7  
Not just do, foo if bar then quux else baz as well. –  jozefg Feb 20 '14 at 19:27
2  
It probably has something to do with the fact that you can have something like runSomeMonad (do ...) x y z .... –  David Young Feb 20 '14 at 20:44
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@DavidYoung I don't see how the proposed grammar change would prevent that kind of thing. –  Daniel Wagner Feb 20 '14 at 22:51
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Just a historical accident, as far as I know. –  augustss Feb 20 '14 at 23:38

2 Answers 2

up vote 26 down vote accepted

Note that you can observe this effect with not just do, but also let, if, \, case, the extensions mdo and proc…and the dread unary -. I cannot think of a case in which this is ambiguous except for unary -. Here’s how the grammar is defined in the Haskell 2010 Language Report, §3: Expressions.

exp
    → infixexp :: [context =>] type
    | infixexp

infixexp
    → lexp qop infixexp
    | - infixexp
    | lexp

lexp
    → \ apat1 … apatn -> exp
    | let decls in exp
    | if exp [;] then exp [;] else exp
    | case exp of { alts }
    | do { stmts }
    | fexp

fexp
    → [fexp] aexp

aexp
    → ( exp )
    | …

There just happens to be no case defined in fexp (function application) or aexp (literal expression) that allows an unparenthesised lexp (lambda, let, etc.). I would consider this a bug in the grammar.

Fixing this would also remove the need for the $ typing hack.

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9  
Years ago, I built GHC from sources with the grammar modified in this sort of way, and it indeed seemed not to break anything (e.g, it could successfully rebuild itself). I especially liked the look of calls which pass arguments to the block, like withOpenFile path \ handle -> do ... –  Brandon Feb 21 '14 at 4:29
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@Brandon: I suppose you wouldn't have the time to push this modification as an e.g. {-# LANGUAGE UnparenthesizedLayoutHeralds #-} extension? –  leftaroundabout Mar 4 '14 at 13:01
    
@leftaroundabout: Maybe with a slightly shorter name… –  Jon Purdy Mar 4 '14 at 19:35
    
What, shorter? Whenever I type MultiParamTypeClasses I'm so delighted that Emacs' auto-complete is disabled in "comments", I'd love more of that kind of fun... –  leftaroundabout Mar 5 '14 at 0:24
    
@leftaroundabout: Solution: type XMulti, hit M-/ to dabbrev-expand from the compiler error “perhaps you meant -XMultiParamTypeClasses”, then delete the X. :P –  Jon Purdy Mar 5 '14 at 1:23

By default functions are grouped as:

(f g h x)

I.e. grouped 'to the left', with g, h and x as arguments to f. Instead, what you're imagining:

(f (g (h x)))

Would be grouped 'to the right'. ($) is simply the operator that allows you to do function application grouping 'to the right':

ghci> :i ($)
($) :: (a -> b) -> a -> b   -- Defined in `GHC.Base'
infixr 0 $

What infixr 0 tells you is that $ can be used between arguments (infix r) and it does this by grouping 'to the right' (infix r).

And the 0 is simply the operator precedence, meaning that if any other function appears next to ($), it will bind more strongly than it. In cases where you need to do function application but need higher precedence, you should use (.):

ghci> :i (.)
(.) :: (b -> c) -> (a -> b) -> a -> c   -- Defined in `GHC.Base'
infixr 9 .

Also, check a post about this at FP Complete. (I'm not the author there; I just think it's a great explanation)

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3  
This doesn’t address the question of why $ is required in this context. –  Jon Purdy Feb 20 '14 at 22:43

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