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I'm learning Racket, and wrote this definition:

(define y 2)
(define (f (x y))
  (print x)
  (print y))

When I evaluate (f 1), x is bound to 1, and y is bound to 2. This seems very strange to me. How is this expression being expanded? What does the interpreter do with this?

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@JoshuaTaylor Oops, I'm using a Racket interpreter, and such scenario really happens. –  kedebug Jun 23 '14 at 12:37
    
The Racket application supports a lot of languages. Which language are you using that supports such syntax? –  Sylwester Jun 23 '14 at 12:46
    
Not quite a duplicate, but definitely related: Implementation of Curried Functions in Scheme. It asks about things like (define ((func x) y) …). –  Joshua Taylor Jun 23 '14 at 12:52

2 Answers 2

up vote 6 down vote accepted

It's an optional argument

The grammar for definitions in Racket is in the documentation.

3.14 Definitions: define, define-syntax, ...

(define id expr)
(define (head args) body ...+)

head  =       id
      |       (head args)

args  =       arg ...
      |       arg ... . rest-id

arg   =       arg-id
      |       [arg-id default-expr]
      |       keyword arg-id
      |       keyword [arg-id default-expr]

Most of my Lisping is in Common Lisp where square brackets aren't parentheses, so I initially misread the grammar. The part about [arg-id default-expr] means you can have an optional argument with a default value. So

(define (f (x y)) …)

defines f as a procedure that accepts 0 or 1 arguments. If the argument is not provided, then its default value is y. That's why this works when you have an earlier definition of y. This also means that you can call (f), and you should see the value of y printed:

enter image description here

This was pointed out to me on the Racket users mailing list by Robby Findler and Tony Garnock-Jones in the thread [racket] (define (f (x y)) body) when y has a previous definition.

It's not legal in R5RS

This isn't legal in R5RS Scheme. The definition for definitions is given in:

5.2 Definitions

Definitions are valid in some, but not all, contexts where expressions are allowed. They are valid only at the top level of a and at the beginning of a .

A definition should have one of the following forms:

(define <variable> <expression>)
(define (<variable> <formals>) <body>)

should be either a sequence of zero or more variables, or a sequence of one or more variables followed by a space-delimited period and another variable (as in a lambda expression). This form is equivalent to

(define <variable>
  (lambda (<formals>) <body>)).

(define (<variable> . <formal>) <body>)

should be a single variable. This form is equivalent to

(define <variable>
  (lambda <formal> <body>)).

Dr.Racket won't accept your definition in the R5RS language:

Dr.Racket Screenshot

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Thanks for reminding, I really appreciate your patient. –  kedebug Jun 23 '14 at 12:45
    
You are right. Sorry for my mistake, I afraid I typed too much in my environment, and y maybe has defined somewhere... –  kedebug Jun 23 '14 at 12:51
    
well, if y is a procedure, try calling (y) and find out what it is. :) –  Joshua Taylor Jun 23 '14 at 12:57
    
If I define y first, this question still bother me: (define y 1) (define (f (x y)) (print x) (print y)), (f 1) will working. Is it related to Racket? Since it is not in R5RS standard. –  kedebug Jun 23 '14 at 13:00
    
Saying that (f 1) is still working doesn't mean all that much on its own. What does it do? –  Joshua Taylor Jun 23 '14 at 13:13

In Racket an argument can be defined as (argument-name default-value) (usually you'd use square brackets for this, but that's only a matter of style - the language itself does not care).

So (define (f (x y)) ...) defines a function f that takes one argument named x whose default value is y.

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