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This question already has an answer here:

I tried it in Racket like this

> (apply and '(1 2 3))
. and: bad syntax in: and
> (and 1 2 3)
3

Does anyone have ideas about this?

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marked as duplicate by finnw, Inaimathi, Joshua Taylor, Ziyao Wei, C-Pound Guru Jun 21 '13 at 17:31

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

7  
Because and is a macro, not a function. – SK-logic Jun 21 '13 at 10:30

Chris Jester-Young's answer is right, but there's one other point I want to highlight. The standard and operator is a macro which delays the evaluation of its arguments, by (essentially, if not exactly) turning (and a b c) into (if a (if b c #f) #f). This means that if a is false, b and c do not get evaluated.

We also have the option of defining an and-function such that (and-function a b c) evaluates a, b, and c, and returns true when the values are all true. This means that all of a, b, and c get evaluated. and-function has the nice property that you can pass it around as function because it is a function.

There's still one option that seems to be missing: an and-function-delaying-evaluation that returns return if and only if a, b, and c all return true, but that doesn't evaluate, e.g., b and c if a produces false. This can be had, actually, with a function and-funcalling-function that requires its arguments to be a list of functions. For instance:

(define (and-funcalling-function functions)
  (or (null? functions)
      (and ((car functions))
           (and-funcalling-function (cdr functions)))))

(and-funcalling-function 
 (list (lambda () (even? 2))
       (lambda () (odd? 3))))
; => #t

(and-funcalling-function 
 (list (lambda () (odd? 2))
       (lambda () (even? 3)))) ; (even? 3) does not get evaluated
; => #f

Using a macro and this idiom, we can actually implement something with the standard and semantics:

(define-syntax standard-and
  (syntax-rules ()
    ((standard-and form ...)
     (and-funcalling-function (list (lambda () form) ...)))))

(macroexpand '(standard-and (odd? 2) (even? 3)))
; =>
; (and-funcalling-function 
;  (list (lambda () (odd? 2))
;        (lambda () (even? 3))))

The lesson to take away from this, of course, is that you can have an and-like function that you can pass around and still get delayed evaluation; you just need to delay evaluation by wrapping things in functions and letting the and-like function call those functions to produce values. (In Scheme, this might be an opportunity to use promises.)

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1  
@ChrisJester-Young Thanks for the edit! I know that I mentioned translating, but I never did get around to it. The post it much more in line with the question now. Thanks! – Joshua Taylor Sep 17 '13 at 13:21

and is not a function, it's a macro, so you cannot pass it around like a function.

The reason and is a macro, is to enable short-circuiting behaviour. You can make your own non-short-circuiting version:

(define (my-and . items)
  (if (null? items) #t
      (let loop ((test (car items))
                 (rest (cdr items)))
        (cond ((null? rest) test)
              (test (loop (car rest) (cdr rest)))
              (else #f)))))

and my-and can be used with apply.

For comparison, here's what the macro (which does do short-circuiting) looks like:

(define-syntax and
  (syntax-rules ()
    ((and) #t)
    ((and test) test)
    ((and test rest ...) (if test
                             (and rest ...)
                             #f))))
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