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how can you implement a Scheme function has-list recursively, which tests whether a list contains other list as an element. For example (has-list '(1 2 3)) should return false, and (has-list '(1 2 (3 4) 5)) should return true.

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3  
Spizzy - we aren't just an answer service, we like to see people try things first. – zellio Feb 27 '11 at 21:15
(define (has-list? X) (apply or (map list? X)))
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1  
this doesn't work if or is a macro (as it is in racket (plt-scheme)) – Dan D. Mar 1 '11 at 23:39

If your implementation has something like ormap, then:

(define (has-list? l) (ormap list? l))

Using or as in Dan D.'s answer will not work.

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ormap is not available before r6rs. – ray May 13 '11 at 5:03
    
(1) I started it with an "if"; (2) R6RS is Scheme; (3) even in pre-R6RS schemes such a function is very common -- for example, SRFI-1's any. – Eli Barzilay May 13 '11 at 5:43

A list has a list as an element iff it is not the empty list and either its first element is a list or the rest of the list has a list as an element. The translation to Scheme code is left as an exercise for the reader.

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If you need to do it recursively and without using map:

 (define (has-list? lst)
    (cond
      ((null? lst) #f)
      ((list? (car lst)) #t)
      (else (has-list? (cdr lst)))))
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