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(define filter-in
  (lambda (predicate list)
    (let((f
        (lambda (l)
          (filter-in-sexpr predicate l))))
    (map f list))))

(define filter-in-aux
  (lambda (pred lst)
    (if (null? lst) '()
        (cons (filter-in-sexpr pred (car lst))
              (filter-in-aux pred (cdr lst))))))

(define filter-in-sexpr
  (lambda (pred sexpr)
    (if (equal? (pred sexpr) #t)
            sexpr
            '())))

Calling (filter-in number? ’(a 2 (1 3) b 7)) produces ( () 2 () () 7).

How I can skip null elements from the generated list to get final outcome of (2 7) ?

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1 Answer

up vote 1 down vote accepted

The problem is that you're mapping filter-in-sxpr over the list. You can either run another filter pass to remove the nulls, or use a modified filter-in-aux like this:

(define filter-in-aux
  (lambda (pred lst)
    (if (null? lst) '()
        (let ((h (filter-in-sexpr pred (car lst)))
              (t (filter-in-aux pred (cdr lst))))
          (if (null? h) t
              (cons h t))))))
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