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I am reading f# code and I am confused by the syntax. A Parser type is introduced as follows:

type Parser<'r> = Parser of (char list -> ('r*char list) list)

This is evaluated by the interpreter as:

type Parser<'r> = | Parser of (char list -> ('r * char list) list)

which makes sense to me. Then, a new line of code is introduced: 'A parser function also needs to be applied so we define a partial function for that:', and the code that follows:

let parse (Parser p) = p

and the interpreter output is:

Parser<'a> -> (char list -> ('a * char list) list)

I am surprised this is even valid syntax. What is it and why is it needed?

Many thanks

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2 Answers 2

up vote 9 down vote accepted

In general

let fpattern=body

is equivalent to

let f = function
|pattern ->body

or, even more verbosely,

let f x =
    match x with
    |pattern->body

This allows you to avoid introducing a new identifier which is immediately destructured and then never used again.

In this particular example, that means that parse is equivalent to:

let parse x = 
    match x with
    | Parser p -> p

Since there is only a single case in the Parser type, this destructuring will always succeed.

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Many thanks, upvoted and accepted as the answer. I did not know the notation used is shorthand for a pattern matching expression with the function being bound to p. (Pattern p) did not make sense, I thought it should have been (p:Pattern) or something, but it makes sense now. –  martijn_himself Jan 31 '12 at 15:14

You can easily interprete these types if you understand the type of (char list -> ('r*char list) list) as a black box.

Suppose we have a type abbreviation:

type R<'r> = char list -> ('r*char list) list

Then Parser<'r> could be written as:

type Parser<'r> = Parser of R<'r>

When you declare a function:

let parse (Parser p) = p

the type checker infers the parameter of type Parser<'r> (by looking into the structure of Parser p). Therefore, the return value p obviously has type of R<'r>:

val parse : Parser<'a> -> R<'a>

Hypothetically, substituting R<'r> by its real declaration:

val parse : Parser<'r> -> (char list -> ('r*char list) list)

So the types inferred here totally make sense.

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Thank you, upvoted. –  martijn_himself Jan 31 '12 at 15:15

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