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LISP lists L1 and L2 are composed form random alphanumeric chars.

Appliyng recursion (and Variable Collector) generate list L3 by taking numbers from L1 and chars From L2

Example:

L1 = (1 a f 5 6 8)
L2 = (3 t 4 5 3 2)

Result: 
L3= (1 5 6 8 t)

Do you know how to do this?

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is that homework? What did you try? –  Francesco Mar 23 '12 at 13:15
    
Stackoverflow is not a platform to solve your homework. –  Rainer Joswig Mar 23 '12 at 17:04

2 Answers 2

up vote 1 down vote accepted

Sounds like homework but here's how I'd do it with loop

(loop for i in L1 
      and j in L2
      if (numberp i)
         collect i into x
      if (symbolp j)
         collect j into y
      finally (return (append x y)))
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How define L1 and L2? –  Alex Mar 23 '12 at 13:51
    
huh? i thought L1 and L2 were defined already, you posted it yourself. –  hroptatyr Mar 23 '12 at 13:56
    
I have not worked in Lisp and and I wrote this as I think of, but not sure if correct –  Alex Mar 23 '12 at 13:59
1  
well this looks clearly like homework to me then, am i right? And it's (defvar L1 '(1 a f 5 6 8)) (defvar L2 '(3 t 4 5 3 2)) –  hroptatyr Mar 23 '12 at 14:02

Since this already have been answered, here's an alternative, a bit shorter way to do it:

(defparameter *l1* '(1 a f 5 6 8))
(defparameter *l2* '(3 t 4 5 3 2))

(append (delete-if #'symbolp *l1*)
    (delete-if #'numberp *l2*)) ; (1 5 6 8 t)
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@wvcvw How to print the result in this form: Result is L3 (1 5 6 8 t) –  Alex Mar 27 '12 at 9:53

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