列表处理类问题的解答,用Scheme实现,首先定义几个在后续解题中用到的公共过程:
; common procedure(define (check-element xs f) (call/cc (lambda (break) (for-each (lambda (x) (if (f x) (break #t))) xs) #f))) (define (foldl f init xs) (define (iter xs acc) (if (null? xs) acc (iter (cdr xs) (f acc (car xs))))) (iter xs init))(define (foldr f init xs) (define (iter xs acc) (if (null? xs) acc (iter (cdr xs) (f (car xs) acc)))) (iter (reverse xs) init))(define (rep x n) (define (iter result acc) (if (= n acc) result (iter (cons x result) (+ acc 1)))) (iter '() 0))(define (swapf xs f) (cond [(null? xs) '()] [(not (pair? xs)) '()] [(not (= (length xs) 2)) '()] [else (list (f (car (cdr xs))) (f (car xs)))]))(define (element-at xs at) (define (iter xs acc) (cond [(null? xs) "idx out of range"] [(= acc at) (car xs)] [else (iter (cdr xs) (+ acc 1))])) (iter xs 0))
P04 (*) Find the number of elements of a list.
(define (find xs x) (if (check-element xs (lambda (e) (= e x))) x (cons "can not find " x)))
P05 (*) Reverse a list.
(define (my-reverse xs) (foldl (lambda (acc x) (cons x acc)) '() xs))
P06 (*) Find out whether a list is a palindrome.
A palindrome can be read forward or backward; e.g. (x a m a x).
(define (palindrome xs) (equal? xs (my-reverse xs)))
P07 (**) Flatten a nested list structure.
Transform a list, possibly holding lists as elements into a `flat' list by replacing each list with its elements (recursively).Example:
(my-flatten '(a (b (c d) e))) (A B C D E) Hint: Use the predefined functions list and append.(define (my-flatten xs) (if (pair? xs) (foldr (lambda (x acc) (append (my-flatten x) acc)) '() xs) (list xs)))
P08 (**) Eliminate consecutive duplicates of list elements.
If a list contains repeated elements they should be replaced with a single copy of the element. The order of the elements should not be changed.Example:
(compress '(a a a a b c c a a d e e e e)) (A B C A D E)(define (compress xs) (reverse (foldl (lambda (acc x) (if (or (null? acc) (not (eq? (car acc) x))) (cons x acc) acc)) '() xs)))
P09 (**) Pack consecutive duplicates of list elements into sublists.
If a list contains repeated elements they should be placed in separate sublists.Example:
(pack '(a a a a b c c a a d e e e e)) ((A A A A) (B) (C C) (A A) (D) (E E E E))(define (pack xs) (reverse (car (cdr (foldl (lambda (acc x) (let ([fst (car acc)] ;记录前一个处理值 [snd (cadr acc)]) ;分组 (if (eq? fst x) (let ([h (car snd)];当前正在处理的分组 [t (cdr snd)]) (list x (cons (cons x h) t))) ;x与前一个处理值一样,将x添加进当前分组即可 (list x (cons (list x) snd))))) ;x与前一个处理值不一样,创建一个新的x分组 '(#f ()) xs)))))
P10 (*) Run-length encoding of a list.
Use the result of problem P09 to implement the so-called run-length encoding data compression method. Consecutive duplicates of elements are encoded as lists (N E) where N is the number of duplicates of the element E.Example:
(encode '(a a a a b c c a a d e e e e)) ((4 A) (1 B) (2 C) (2 A) (1 D)(4 E))(define (encode xs) (let ([p (pack xs)]) (foldr (lambda (x acc) (cons (list (length x) (car x)) acc)) '() p)))
P11 (*) Modified run-length encoding.
Modify the result of problem P10 in such a way that if an element has no duplicates it is simply copied into the result list. Only elements with duplicates are transferred as (N E) lists.Example:
(encode-modified '(a a a a b c c a a d e e e e)) ((4 A) B (2 C) (2 A) D (4 E))(define (encode-modified xs) (let ([p (pack xs)]) (foldr (lambda (x acc) (let ([size (length x)]) (if (> size 1) (cons (list (length x) (car x)) acc) (cons (car x) acc)))) '() p)))
P12 (**) Decode a run-length encoded list.
Given a run-length code list generated as specified in problem P11. Construct its uncompressed version.(define (decode xs) (foldr (lambda (x acc) (if (pair? x) (append (rep (cadr x) (car x)) acc) (append (list x) acc))) '() xs))
P13 (**) Run-length encoding of a list (direct solution).
与P11类似,不过不允许直接使用P9的结果 Implement the so-called run-length encoding data compression method directly. I.e. don't explicitly create the sublists containing the duplicates, as in problem P09, but only count them. As in problem P11, simplify the result list by replacing the singleton lists (1 X) by X.Example:
(encode-direct '(a a a a b c c a a d e e e e)) ((4 A) B (2 C) (2 A) D (4 E))(define (encode-direct xs) (reverse (car (cdr (foldl (lambda (acc x) (let ([fst (car acc)] ;记录前一个处理值 [snd (cadr acc)]) ;分组 (if (eq? fst x) (let ([h (car snd)];当前正在处理的分组 [t (cdr snd)]) (if (pair? h) (list x (cons (list (+ (car h) 1) x) t)) (list x (cons (cons 2 (list x)) t)))) (list x (cons x snd))))) ;x与前一个处理值不一样,创建一个新的x分组 '(#f ()) xs)))))
P14 (*) Duplicate the elements of a list.
Example: (dupli '(a b c c d)) (A A B B C C C C D D)(define (dupli xs) (foldr (lambda (x acc) (append (rep x 2) acc)) '() xs))
P15 (**) Replicate the elements of a list a given number of times.
Example: (repli '(a b c) 3) (A A A B B B C C C)(define (repli xs n) (foldr (lambda (x acc) (append (rep x n) acc)) '() xs))
P16 (**) Drop every N'th element from a list.
Example: (drop '(a b c d e f g h i k) 3) (A B D E G H K)(define (drop xs n) (reverse (car (cdr (foldl (lambda (acc x) (let ([fst (car acc)] [snd (car (cdr acc))]) (if (= (mod fst n) 0) (list (+ fst 1) snd) (list (+ fst 1) (cons x snd))))) '(1 ()) xs)))))
P17 (*) Split a list into two parts; the length of the first part is given.
Do not use any predefined predicates.Example:
(split '(a b c d e f g h i k) 3) ( (A B C) (D E F G H I K))(define (split xs n) (swapf (car (cdr (foldl (lambda (acc x) (let ([fst (car acc)] [snd (cadr acc)]) (if (or (= fst 0) (= fst n)) ;开辟新的组 (list (+ fst 1) (cons (list x) snd)) ;插入原组 (let ([h (car snd)];当前正在处理的分组 [t (cdr snd)]) (list (+ fst 1) (cons (cons x h) t)))))) '(0 ()) xs))) reverse))
P18 (**) Extract a slice from a list.
Given two indices, I and K, the slice is the list containing the elements between
the I'th and K'th element of the original list (both limits included). Start counting the elements with 1.Example:
(slice '(a b c d e f g h i k) 3 7) (C D E F G)(define (slice xs n1 n2) (reverse (car (cdr (foldl (lambda (acc x) (let ([fst (car acc)] [snd (car (cdr acc))]) (if (and (>= fst n1) (<= fst n2)) (list (+ fst 1) (cons x snd)) (list (+ fst 1) snd)))) '(1 ()) xs)))))
P19 (**) Rotate a list N places to the left.
Examples:
(rotate '(a b c d e f g h) 3) (D E F G H A B C)(rotate '(a b c d e f g h) -2)
(G H A B C D E F)Hint: Use the predefined functions length and append, as well as the result of problem P17.
(define (rotate xs n) (let ([s (if (> n 0) n (+ (length xs) n))]) (my-flatten (swapf (split xs s) (lambda (x) x)))))
P20 (*) Remove the K'th element from a list.
Example: (remove-at '(a b c d) 2) (A C D)(define (remove-at xs n) (reverse (car (cdr (foldl (lambda (acc x) (let ([fst (car acc)] [snd (car (cdr acc))]) (if (= fst n) (list (+ fst 1) snd) (list (+ fst 1) (cons x snd))))) '(1 ()) xs)))))
P21 (*) Insert an element at a given position into a list.
Example: (insert-at 'alfa '(a b c d) 2) (A ALFA B C D)(define (insert-at e xs n) (reverse (car (cdr (foldl (lambda (acc x) (let ([fst (car acc)] [snd (car (cdr acc))]) (if (= fst n) (list (+ fst 1) (cons x (cons e snd))) (list (+ fst 1) (cons x snd))))) '(1 ()) xs)))))
P22 (*) Create a list containing all integers within a given range.
If first argument is smaller than second, produce a list in decreasing order. Example: (range 4 9) (4 5 6 7 8 9)(define (range b e) (define (iter acc result) (if (< acc b) result (iter (- acc 1) (cons acc result)))) (iter e '()))
P23 (**) Extract a given number of randomly selected elements from a list.
The selected items shall be returned in a list. Example: (rnd-select '(a b c d e f g h) 3) (E D A)(define (rnd-select xs n) (define (iter acc result num) (if (or (null? num) (>= 0 acc)) result (let ([i (+ (random (length num)) 1)]) (iter (- acc 1) (cons (element-at num i) result) (remove-at num i))))) (iter n '() xs))
P24 (*) Lotto: Draw N different random numbers from the set 1..M.
The selected numbers shall be returned in a list. Example: (lotto-select 6 49) (23 1 17 33 21 37)(define (lotto-select n num) (rnd-select (range 1 num) n))
P25 (*) Generate a random permutation of the elements of a list.
Example: (rnd-permu '(a b c d e f)) (B A D C E F)Hint: Use the solution of problem P23.
(define (rnd-permu xs) (rnd-select xs (length xs)))
P26 (**) Generate the combinations of K distinct objects chosen from the N elements of a list
In how many ways can a committee of 3 be chosen from a group of 12 people? We all know that there are C(12,3) = 220 possibilities (C(N,K) denotes the well-known binomial coefficients). For pure mathematicians, this result may be great. But we want to really generate all the possibilities in a list.;组合(define (combination xs n) (cond [(or (null? xs) (< (length xs) n))'()] [(= n 1) (foldr (lambda (x acc) (cons (list x) acc)) '() xs)] [else (append (foldr (lambda (x acc) (cons (cons (car xs) x) acc)) '() (combination (cdr xs) (- n 1))) ;取当前(car xs) + (cdr xs)中取n-1个 (combination (cdr xs) n))]));从(cdr xs)中取n个 ;(length (combination '(1 2 3 4 5 6 7 8 9 10 11 12) 3));排列(define (permutation xs n) (cond [(or (null? xs) (< (length xs) n))'()] [(= n 1) (foldr (lambda (x acc) (cons (list x) acc)) '() xs)] [else (let* ([permutation-n-1 (permutation (cdr xs) (- n 1))];(cdr xs)取n-1的排列 [head (car xs)] [permutation-swap (foldl (lambda (acc x) ;将head与arrange-n-1中的元素互换 (append (foldl (lambda (acc1 xx) (append (foldl (lambda (acc2 xxx) (cons (cons (element-at x xx) xxx) acc2)) '() (list (replace x head xx))) acc1)) '() (range 1 (length x))) acc)) '() permutation-n-1)]) (append (append (foldl (lambda (acc x) (cons (cons head x) acc)) '() permutation-n-1) permutation-swap) (permutation (cdr xs) n)))]))
P27 (**) Group the elements of a set into disjoint subsets.
a) In how many ways can a group of 9 people work in 3 disjoint subgroups of 2, 3 and 4
persons? Write a function that generates all the possibilities and returns them in a list.Example:
(group3 '(aldo beat carla david evi flip gary hugo ida)) ( ( (ALDO BEAT) (CARLA DAVID EVI) (FLIP GARY HUGO IDA) ) ... )b) Generalize the above predicate in a way that we can specify a list of group sizes and the
predicate will return a list of groups.Example:
(group '(aldo beat carla david evi flip gary hugo ida) '(2 2 5)) ( ( (ALDO BEAT) (CARLA DAVID) (EVI FLIP GARY HUGO IDA) ) ... )Note that we do not want permutations of the group members; i.e. ((ALDO BEAT) ...) is
the same solution as ((BEAT ALDO) ...). However, we make a difference between ((ALDO BEAT) (CARLA DAVID) ...) and ((CARLA DAVID) (ALDO BEAT) ...).You may find more about this combinatorial problem in a good book on discrete mathematics under the term "multinomial coefficients".
(define (group xs g) (define (tail xs) (car (reverse xs))) ;输入xs和n,输出((xs取n的组合1,剩余元素1) (xs取n的组合2,剩余元素2) ...) (define (half-group xs n) ;输出差集 (define (diffset xs xs1) (foldr (lambda (x acc) (if (not (check-element xs1 (lambda (xx) (eq? x xx)))) (cons x acc) acc)) '() xs)) (let ([c (combination xs n)]) (foldr (lambda (x acc) (cons (list x (diffset xs x)) acc)) '() c))) (if (and (not (null? g)) (not (= (length xs) (car g)))) (let* ([half (half-group xs (car g))]) (foldr (lambda (x acc) (let ([t (group (tail x) (cdr g))]) (append (foldr (lambda (x1 acc1) (let ([xx (if (= (length g) 1) (list x1) x1)]) (cons (cons (car x) xx) acc1))) '() t) acc))) '() half)) (if (and (not (null? g)) (= (length xs) (car g))) (list (list xs)) (list xs))))
P28 (**) Sorting a list of lists according to length of sublists
a) We suppose that a list contains elements that are lists themselves.
The objective is to sort the elements of this list according to their length. E.g. short lists first, longer lists later, or vice versa.Example:
(lsort '((a b c) (d e) (f g h) (d e) (i j k l) (m n) (o))) ((O) (D E) (D E) (M N) (A B C) (F G H) (I J K L))b) Again, we suppose that a list contains elements that are lists themselves.
But this time the objective is to sort the elements of this list according to their length frequency; i.e., in the default, where sorting is done ascendingly, lists with rare lengths are placed first, others with a more frequent length come later.Example:
(lfsort '((a b c) (d e) (f g h) (d e) (i j k l) (m n) (o))) ((i j k l) (o) (a b c) (f g h) (d e) (d e) (m n))Note that in the above example, the first two lists in the result have length 4 and 1,
both lengths appear just once. The third and forth list have length 3 which appears twice (there are two list of this length). And finally, the last three lists have length 2. This is the most frequent length.quick sort
(define (qsort l greater) (if (not (pair? l)) '() (let ([m (car l)] [partition (foldr (lambda (x acc) (let ([small (car acc)] [large (cadr acc)]) (if (greater x m) (list small (cons x large)) (list (cons x small) large)))) '(()()) (cdr l))]) (append (qsort (car partition) greater) (cons m (qsort (cadr partition) greater))))))
a)
(define (lsort xs) (qsort xs (lambda (l r) (> (length l) (length r)))))
b)
(define (lfsort xs) (define (statistics xs) (foldr (lambda (x acc) (cons (length x) acc)) '() xs)) (define (get-frequent ftable l) (if (= (cadar ftable) (length l)) (caar ftable) (get-frequent (cdr ftable) l))) (let ([ftable (encode (qsort (statistics xs) (lambda (l r) (> l r))))]) (qsort xs (lambda (l r) (> (get-frequent ftable l) (get-frequent ftable r))))))