Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The function "greaterthan", (< NUM1 NUM2), allows only for returning t/nil for comparing 2 values.

I would like to test (var1 > var2 < var3 < var4), is there any way to do that using only one function in lisp? If not, what is the best procedure?

share|improve this question

4 Answers 4

The following is a macro implementation for variadic <

(defmacro << (x y &rest args)
  (if args
      (if (or (symbolp y)
              (numberp y))
          `(and (< ,x ,y) (<< ,y ,@args))
          (let ((ys (make-symbol "y")))
            `(let (,ys)
               (and (< ,x (setq ,ys ,y))
                    (<< ,ys ,@args)))))
      `(< ,x ,y)))

for simple cases just expands to (and ...) chains

(<< x y z) ==> (and (< x y) (< y z))

where the expression is not a number and not a symbol expands to a more complex form to avoid multiple evaluations in presence of side effects

(<< (f x) (g y) (h z)) ==> (let ((gy)) (and (< (f x) (setq gy (g y)))
                                            (< gy (h z))))

for example

(setq foo (list))
nil

(defun call (x) (push x foo) x)
call

(<< (call 1) (call 2) (call 5) (call 4) (call 0))
nil

foo
(4 5 2 1)

every function has been called once, except for 0 that didn't need to be called because of short circuiting (I'm not 100% sure if short circuiting is a really good idea or not... #'< in Common Lisp is a regular function with all arguments all evaluated exactly once in left-to-right order without short circuiting).

share|improve this answer
    
@wvxvw: note that in Common Lisp #'< is a regular function so all arguments are always evaluated exactly once in left-to-right order. Originally I liked the idea of short-circuiting (like Python does for example does f() <= g() < h()) but later found that in practice multiple-arguments/single-operator tests are not that useful (what is nice in Python is that you can have different operators and a semi-open interval check is IMO a very common case, something that would require irregular syntax). = and /= case however seems useful (with /= checking all pairs short-circuiting). –  6502 Feb 12 '13 at 8:37
(defmacro << (&rest args)
  (let ((first (car args))
        (min (gensym))
        (max (gensym))
        (forms '(t)) iterator)
    (setq args (reverse (cdr args))
          iterator args)
    `(let ((,min ,first) ,max)
       ,(or 
         (while iterator
           (push `(setq ,min ,max) forms)
           (push  `(< ,min ,max) forms)
           (push `(setq ,max ,(car iterator)) forms)
           (setq iterator (cdr iterator))) `(and ,@forms)))))

(macroexpand '(<< 10 20 30 (+ 30 3) (* 10 4)))
(let ((G99730 10) G99731)
  (and (setq G99731 20)
       (< G99730 G99731)
       (setq G99730 G99731)
       (setq G99731 30)
       (< G99730 G99731)
       (setq G99730 G99731)
       (setq G99731 (+ 30 3))
       (< G99730 G99731)
       (setq G99730 G99731)
       (setq G99731 (* 10 4))
       (< G99730 G99731)
       (setq G99730 G99731) t))

This is the idea similar to 6502's, but it may create less code, in a less trivial situation, but it will create more code in a trivial situation.

share|improve this answer

The best procedure is not to bother: (and (< var2 var1) (< var2 var3) (< var3 var4)) is not harder to read that your ..>..<..<.. chain.

It makes sense to test for the ascending order:

(require 'cl)
(defun cl-< (&rest args)
   (every '< args (cdr args))

These days I don't hesitate to (require 'cl) anymore, but if you do, here is another variant:

(defun cl-< (arg &rest more-args)
  (or (null more-args)
      (and (< arg (first more-args))
           (apply #'cl-< more-args))))
share|improve this answer
    
Yea I figured that it could be done in 3 steps. Still, imagine having to do several similar tests, such as (var1 < var2 > var 3 < var 4), I think it would be easier to read if it could be done that way. –  PascalvKooten Feb 11 '13 at 7:13
    
This is excellent though! It is even possible to test an uneven amount of arguments here. Is there no way to do this without requiring cl? –  PascalvKooten Feb 11 '13 at 7:19
    
Added a variant which does not require cl. Generally, writing without cl is much harder, and what we're doing here is adding a Common Lispish < function anyway (it would be a part of cl.el if a bit more people needed it). –  Anton Kovalenko Feb 11 '13 at 9:51
(defun << (arg1 arg2 arg3 arg4)
 (when (and (< arg1 arg2) (< arg2 arg3) (< arg3 arg4)))
)

(<< 1 2 3 4)

Probably possible to extend with any amount of arguments, but such a general form would seem useful.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.