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I need to get index of element in list in scheme. For example:

(... 2 '(2 3 4 5))

0

(... 4 '(2 3 4 5))

2

Can someone help?

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Have you tried something? Also, which language do you use? –  looper Nov 26 '12 at 10:07
    
scheme, I have this: (define map-index-pred (lambda (pred? f l) (foldr (lambda (x y) (if (pred? x) (cons (f x) y) (cons x y))) '() l))) (map-index-pred odd? sqr '(2 3 4 5)) (map-index-pred (lambda(i) (< i 2)) - '(1 2 3 4 5)) it works only for the numbers (x), I need it for their indexes... :( –  kelly Nov 26 '12 at 10:29
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5 Answers

Somthing like this

(define list-index
        (lambda (e lst)
                (if (null? lst)
                        -1
                        (if (eq? (car lst) e)
                                0
                                (if (= (list-index e (cdr lst)) -1) 
                                        -1
                                        (+ 1 (list-index e (cdr lst))))))))
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thank you very much! :) –  kelly Nov 26 '12 at 12:01
    
Your welcome,if it solves your problem,please mark it as an answer –  meirrav Nov 26 '12 at 12:05
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The following is the clearest solution I could come up with:

(define (get-list-index l el)
    (if (null? l)
        -1
        (if (= (car l) el)
            0
            (let ((result (get-list-index (cdr l) el)))
                (if (= result -1)
                    -1
                    (1+ result))))))

This solution is largely the same as merriav's except that I've added a let at the end so that the recursive call is not unnecessarily repeated (in written code or execution).

The accepted solution does not seem to account for an empty list, or a list that does not contain the element being sought after.

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up vote 0 down vote accepted

my final solution:

(define index
  (lambda (cislo l)
    (if (equal? (car l) cislo) 0 (+ 1 (index cislo (cdr l))))))
(define map-index-pred
  (lambda (pred? f l)
     (foldr (lambda (x y)
       (if (pred? (index x l))
         (cons (f x) y) (cons x y))) '() l)))
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You could implement index using reverse, member, length, and cdr as follows:

(define (index a b)
  (let [(tail (member a (reverse b)))]
    (if tail (length (cdr tail)) #f))
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The answer was easier than you guys expected, also without recursion :)

Simple function, in case you are sure the element is in the list

(define element-index
  (lambda (elemento lista)
    (- (length lista) (length (memv elemento lista)))))

If you consider the case where the element may not be in the list. Return false if not found

(define element-index
  (lambda (elemento lista)
    (if (eqv? (list? (memv elemento lista)) #t)
        (- (length lista) (length (memv elemento lista)))
        false
        )
    ))

Final result:

> (element-index 2 '(2 3 4 5))
0
> (element-index 4 '(2 3 4 5))
2
> (element-index 6 '(2 3 4 5))
false
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