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Let's say I have this code

let identifier = spaces_surrounded (many1Satisfy isLetter)

I was wondering if it there was any native F# function that allowed me to refactor it to

let identifier = spaces_surrounded $ many1Satisfy isLetter

that is, something such as

let ($) f1 f2 = f1 (f2)

(that is if I am not mistaken, my Haskell skills are not too sharp..).

1 Answer 1

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The standard F# idiom for this is the forward pipe operator |> were you would rewrite

let identifier = spaces_surrounded (many1Satisfy isLetter)

as

let identifier = many1Satisfy isLetter |> spaces_surrounded 

you can also use the backward pipe operator <| if you want to maintain the original order, but this tends to be a little less common

let identifier = spaces_surrounded <| many1Satisfy isLetter
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  • Hmm so it seems <| is what I was looking for. What is its definition? Commented Aug 25, 2011 at 0:48
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    It is let inline (<|) f x = f x as seen here: github.com/fsharp/fsharp/blob/master/src/fsharp/FSharp.Core/…
    – Brian
    Commented Aug 25, 2011 at 0:52
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    Note that defining your own operators a la Haskell is subject to F# rules of associativity/precedence, e.g. see research.microsoft.com/en-us/um/cambridge/projects/fsharp/…
    – Brian
    Commented Aug 25, 2011 at 0:53
  • The (<|) operator associates the other way from ($), and the type-checker seems better at inferring what I went when I use (|>), so watch out for both of those. Commented Aug 25, 2011 at 19:49
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    well "ignore <| stuff" reads nicer than the other way round but I guess it's just a preference (and looking at your greps I might be a weirdo ;) ). The only think I don't like is mixing <| and |>.
    – Random Dev
    Commented Aug 31, 2011 at 6:56

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