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I have the function:

{-# INLINE f #-}
f x =
    \ y ->
        \z -> ...

It is defined so (see GHC docs about the trick) because I need 2-stage application inlining, ex.

comp (f a) ...
...
comp pAppliedF b1 b2 ... =
    f'1 = pAppliedF b1 -- I need these 2 functions inlined
    f'2 = pAppliedF b2

However, I obtain Core like this:

fa = \ y z -> ...
...
-- `comp` is inlined
-- Even though there are happy partial applications:
let f'1 = fa smth1
    f'2 = fa smth2
in ...

How to outwit GHC here?

UPDATE
In real world (huh):

  • f

  • comp, 20 lines below: f'1, f'2, actually zipped in fixed-vector

  • program (comp (f a) there), run (with -fexpose-all-unfoldings), Core -- $wa2 in the latter for fa

share|improve this question
2  
Can I see more of the code? It could be that f isn't inlinable because it's recursive or something. And what was the command line for compiling? –  Daniel Fischer Feb 7 '13 at 10:39
    
From what you've provided, I think ghc is doing exactly what you're telling it to. The call to f a is inlined and replaced with the body of f, applied to smth1 and smth2. I think you mean you want that application inlined as well. To do that, you may need to name \y -> ... and mark that function INLINE too. But you'll need to provide more code to be sure. It's also very likely that there will be no gain from doing so. –  John L Feb 7 '13 at 10:46
    
2John L: I tried to give a name to the second (\y -> ...) function, even with dummy parameters, to mess GHC, no effect –  leventov Feb 7 '13 at 10:53
    
Could you give a full compiling example and say what you would hope for it to compile into? –  shachaf Feb 7 '13 at 11:01
2  
@leventov Use @ to notify somebody, not 2. –  Daniel Fischer Feb 7 '13 at 11:11

1 Answer 1

up vote 1 down vote accepted

Add {-# INLINE f'1 #-} and f'2 in the where clause for those definitions.

share|improve this answer
    
f'1 and f'2 are zipped in fixed-vector actually –  leventov Feb 7 '13 at 11:24

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