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When you define operators as datatype in SML, do they act as functions as operators?

like datatype egexp= egadd of egexp*egexp

does egadd act as operator or function? I mean do I write the expression a+b as egadd(a)(b) or (a)egadd(b)?

Thank You

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3 Answers 3

up vote 0 down vote accepted

You write neither. It acts on a "function" (actually, as a value constructor), taking the types you specified.

That is, since you specified that egadd takes an egexp * egexp, it takes a tuple of two egexps, that is: egadd (a, b), where a and b are values of the type egexp.

If desired, you can make it infix like any other function by using infix or infixr.

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You are essentially asking about infix syntax. This actually has nothing to do with functions vs constructors, both can either be infix or (by default) nonfix:

fun f (x, y) = ...
val a = f (1, 2)
infix f
val b = 1 f 2

datatype t = C of int * int
val c = C (1, 2)
infix C
val d = 1 C 2

This applies uniformly to alphanumeric and symbolic identifiers:

fun ++ (x, y) = ...
val a = ++ (1, 2)
infix ++
val b = 1 ++ 2

datatype t = && of int * int
val c = && (1, 2)
infix &&
val d = 1 && 2

That is, there is no distinction between 'functions' and 'operators' in SML. You just have nonfix vs infix identifiers.

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egadd is a "constructor". egexp is an algebraic data type, and egadd is one of its constructors. Constructors in SML can either have no arguments, or one argument (multiple "components" can be packed into 1 tuple argument). As a constructor with an argument, egadd is also a function that takes an argument of that argument type (egexp*egexp) and returns ("constructs") a value of the algebraic data type egexp. For example, as @SebastianPaaskeTørho mentioned, if a and b are values of type egexp, then egadd (a, b) constructs a new value of type egexp.

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