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To put it simply: My question is whats is the type of a define expression in Scheme?

Take for example:

(define x 5)

or

(define x (lambda (n) (* n n)))

It's a bit confusing for me. Can anyone help?

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What do you mean by its type? define does not have return value (and thus no return type) as it's not an expression. –  sepp2k Mar 19 '13 at 15:56
    
define actually is an expression. Now, for your other question: what do I mean by type? Well, you could say that '5 has the type of Number', '#f has the type of Boolean', '(lambda (n) (* n n))' has the type of [Number -> Number]. My question is: what is the type of a define expression? I hope i made myself clear. –  TheEmeritus Mar 19 '13 at 15:57
    
Not in Racket it's not. If you try to use it in an expression context, Racket will produce the error message "define: not allowed in an expression context". –  sepp2k Mar 19 '13 at 15:58
    
Ofcourse it is. (define x 5) is an expression. I've never heard of the mentioned error, sounds pretty puzzling to me. Are you sure we're talking about the same thing? –  TheEmeritus Mar 19 '13 at 16:00
1  
In racket (define x 5) is a statement, not an expression, in the sense that evaluating it produces a value. It's like asking about the type of if (x) { ... } in Java. it's not that its type is void or something; it simply isn't meaningful to talk about it having a type at all. –  jacobm Mar 19 '13 at 16:04
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1 Answer

In Racket define is a special form and not an expression, so it doesn't have a value per-se, if you try to execute something like this you'll get an error:

(display (define x 42))
=>  define: not allowed in an expression context in: (define x 42)

If it were to have a value it'd be something akin to void, but that will be dependent on the particular implementation details of the interpreter (I believe I saw one interpreter return #t after a define was completed)

The constant #<void> is returned by most forms and procedures that have a side-effect and no useful result

The specification doesn't go into details on this point, either - reinforcing the statement that it's implementation-dependent.

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1  
define is not an expression in Racket. If you use it in an expression context, you get an error - not #void. –  sepp2k Mar 19 '13 at 15:57
    
ok, I'll clarify that –  Óscar López Mar 19 '13 at 15:58
    
If you only write 'define', then it may not be an expression as you stated. But writing '(define x 5)' or anything else of that kind is an expression in 100%. –  TheEmeritus Mar 19 '13 at 16:03
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@TheEmeritus the error message is clear: a define can not be used where an expression is expected –  Óscar López Mar 19 '13 at 16:08
3  
@TheEmeritus, you are wrong. Learn by reading any Scheme RnRS document. –  GoZoner Mar 19 '13 at 16:31
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