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I got quite confusions about associatives in OCaml.

lets have some examples first.

1. Is + left associative or right?

I think it is left associative. which means if we have a + b + c + d, then it is ((a+b)+c)+d.

But what if we do f1 1 + f2 2? Will it throw an error? because it should be ((f1 1)+f2) 2, right?

2. :: is right associative, but what if with ,?

If we do 4,3::[], then we have [4,3]. it will create a tuple (4,3), then :: into [].

then why 4,3::5,6::[] doesn't work?

3. functions

say, we have let f x y = y x 5, so y is a function taking two parameters.

if we do f 1 + 2, because + is actually a function taking two parameters, why f 1 + 2 won't work? why does not + become a parameter of f?

4. right associative

How to create a infix function with right associative?


Basically, i guess I haven't understood the whole associative / precedence thing in OCaml.

I know there are tables like this http://caml.inria.fr/pub/docs/manual-caml-light/node4.9.html out there. But can someone explain more to me?

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1 Answer 1

up vote 2 down vote accepted

Operator associativity determines how to parse an expression when there are multiple operators with the same precedence. For example, a + b + c has two operators with the same precedence (+ and +), so the associativity determines how to parse that expression: the operator is left-associative, so the expression is equivalent to (a + b) + c.

In the expression f1 1 + f2 2, juxtaposition (f1 1 and f2 2) has higher precedence than +, so the expression is equivalent to (f1 1) + (f2 2). There aren't two or more operators at the same precedence level, so associativity doesn't matter.

Your statement about 4,3::[] is wrong: :: has higher precedence than ,, so it is parsed as 4, (3::[]), not (4,3)::[]. The result is a pair whose second element is a list. Read the type error for 4,3::5,6::[]: it is equivalent to (4, (3::5), (6::[])), thus the compiler complains that 5 has type int but the context (due to the :: operator) requires a list.

When you write f 1 + 2, it is parsed as (f 1) + 2. The function f is applied to an integer argument; since f expects two arguments, the result is a function (waiting for the second argument), but the + operator wants an integer, so the expression is ill-typed. + isn't a parameter of f because + by itself is not an expression, and the argument of a function is an expression.

I don't know what you mean by “infix function with right associative”. The associativity and precedence of operators in Ocaml is determined by the first character of the operator as indicated in the table you link to.

These are all standard concepts in parsing, applicable to almost every programming language out there. I recommend reading any textbook with a chapter on programming language syntax or parsing, or start with the Wikipedia articles on associativity and precedence.

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in f 1 + 2, why it is not (f 1 +) 2? as + is a function itself. Maybe if f 1 (+) 2, then (+) will be considered as a parameter of f? –  Jackson Tale Mar 10 '14 at 14:14
1  
@JacksonTale + is the name of a function, but that name can only be used in an infix position. + is not an expression. f 1 + is not an expression either, so (f 1 +) 2 is not valid syntax. (+) is an expression (any operator can be put in parentheses to form an expression). So f 1 (+) 2 applies the function f to the three parameters 1, (+) and 2. –  Gilles Mar 10 '14 at 14:18
    
@JacksonTale: + is not an expression. (+) is an expression, whose value is a function. –  newacct Mar 12 '14 at 23:13

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