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Sometimes I need to loop through consecutive pairs in a list. The way I do it right now is

(loop for x on lst while (not (null (cdr x)))
       (do something on (car x) and (cadr x)))

I'm wondering if there is a better/built-in way to do this.

The reason I need this is sometimes I want, e.g. some function that add consecutive pairs

(1 2 3 4 5) ----> (3 5 7 9)

Is there any built-in function like reduce which allow me to get this?

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Why am I getting down vote on this? Is this a wrong question to ask? –  hyh Aug 10 '12 at 16:33
    
Not my downvote, but possibly because your pseudocode doesn't run, yet looks sufficiently like real CL that someone was fooled? –  Inaimathi Aug 10 '12 at 17:05

2 Answers 2

up vote 6 down vote accepted

AFAIK, there isn't a built-in function to do what you want. You could try to put something together with maplist, but my first instinct would be to reach for loop too.

Just a couple of notes on what you've got there though. First, (not (null foo)) is equivalent to foo in CL, since a non-NIL value is treated as t by boolean operations. Second, loop can destructure its arguments, meaning you can write this more elegantly as

(loop for (a b) on lst while b
      collect (+ a b))

The maplist version would look something like

(maplist 
   (lambda (rest) 
     (when (cdr rest) 
        (+ (first rest) (second rest)))
   lst)

which I consider less readable (this would also return NIL as the last element of its result, rather than just ending before that).

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Thanks, I like the elegant way you suggested. –  hyh Aug 10 '12 at 18:06
    
Also, is it possible to enumerate all pairs or unordered pairs elegantly? Right now I'm doing ? (setf s '(1 2 3 4 5)) ? (loop for x in s nconc (loop for y in (member x s) collect (list x y))) ((1 1) (1 2) (1 3) (1 4) (1 5) (2 2) (2 3) (2 4) (2 5) (3 3) (3 4) (3 5) (4 4) (4 5) (5 5)) –  hyh Aug 10 '12 at 18:14
    
That kind of manipulation is usually handled more elegantly with mapcar and friends. In that specific case, I'd define something like (defun pair-with (elem list) (mapcar (lambda (a) (list elem a)) list)), then call (mapcon (lambda (rest) (pair-with (car rest) rest)) s). Getting all pairs would look quite similar. –  Inaimathi Aug 10 '12 at 18:33
    
So there's an implicit "&rest some-arg-not-used" in the (a b)? –  Clayton Stanley Aug 10 '12 at 21:25
    
@claytontstanley - I think it's a bit more complex than that, since you can do things like (loop for (a . rest) on ... or (loop for (a b) in '((1 2) (3 4) ...) .... But for the purposes of this particular example, yes, that's basically right. –  Inaimathi Aug 10 '12 at 22:30

I believe Paul Graham has a function named map-tuple in OnLisp which does this. It can move down the list by cdr, cddr, or however you please. Here is a commented version of it. It uses his anaphoric if macro aif.

(defun map-tuple (someList f &optional (by #'cdr))
 "(map-tuple someList f &optional (by #'cdr))
   f is a function that takes two args, returns one val (maybe)
   the map-tuple will collect all non-nil results in a list.
    example: 
(map-tuple '(1 2 3 4 5 6) (lambda (a b) (format T \"a: ~A b:~A~%\" a b)) #'cdr) 
a: 1 b:2
a: 2 b:3
a: 3 b:4
a: 4 b:5
a: 5 b:6
a: 6 b:NIL

(map-tuple '(1 2 3 4 5 6) (lambda (a b) (format T \"a: ~A b:~A~%\" a b)) #'cddr) 
a: 1 b:2
a: 3 b:4
a: 5 b:6
"
  (cond ((null someList)
        nil)
    (T
       (aif (funcall f (car someList) (cadr someList))
          (cons it (map-tuple (funcall by someList) f by))
           (map-tuple (funcall by someList) f by)))))
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