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Example input:

((a1 . b) (a1 . c)): 

I have one list with two elements, those elements are lists or pairs with two elements. And i want to check if the first element of the first pair/list is equal to the first element of the second pair/list.

output: If so, i want to create a new list with two lists, the first is the list: while (b < c) -> (a1 . b(even)) (a1 . b+2(even))... The other list is the same, but with the odd's

How do I implement this in scheme:

INPUT:

((1 . 1) (1 . 7))

OUTPUT:

(((1 . 2) (1 . 4) (1 . 6)) ((1 . 3) (1 . 5) (1 . 7)))

I have one list with two elements. Each element is also a list with two elements, both integers >= 0 and < 8

I have to create this:

input ((a1 . b) (a1 . c)) 

output: (if (and (= a1 a2) (odd? b))
          While < b c
             (list (a1 . b+1) (a1 . b+3) (a1 . b+n)...)) 
             (list (a2 . b) (a2 . b+2) (a2 . b+4)...)

I had done this, but i can't find where i'm failing, could you help me?....

;;; Verify if absissa0 = absissa1

(define (game-position input)
  (if (= (car (car j)) (cdr (cdr j)))
          (col1_col2 j)
          (error "Not valid"))))
;;; verify if absissa0 is even

(define (col1_col2 gstart)
  (if (even? (cdr (car jstart))) 
      (list (pos-start jstart))
      (list (pos-start (list (cons (car (car jstart)) (- (cdr (car jstart)) 1)) (car (cdr jstart))))))


;;; Loop that creates positions of even's and odd's

(define (pos-start j2)
  (while ( < (cdr (car j2)) (- (cdr (cdr j2)) 2))
      ((cons (car (car j2)) (+ (cdr (car j2)) 2)) (pos-start (list (cons (car (car j2)) (+ (cdr (car j2)) 2)) (car (cdr j2)))))
      (odd_2 (list (cons (car (car j2)) (+ (cdr (car j2)) 1)) (car (cdr j2)))))

(define (odd_2 j3)
  (while ( < (cdr (car j3)) (- (car (cdr j3)) 2))
      ((j3) (odd_2 (list (cons (car (car j3)) (+ (cdr (car j3)) 2)) (car (cdr j3)))
         (value)))
share|improve this question

closed as not a real question by casperOne Nov 12 '12 at 14:30

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

    
Can you write your specification into plain english? You want to obtain two lists, the first with the even number in the interval definet by the input, the second with the odd ones? –  Eineki Nov 21 '10 at 11:05
    
yes! input ((a1 . b) (a1 . c)): I have one list with two elements, those elements are lists or pairs with two elements. And i want to check if the first element of the first pair/list is equal to the first element of the second pair/list. output: If so, i want to create a new list with two lists, the first is the list while (b < c) -> (a1 . b(even)) (a1 . b+2(even))... The other list is the same, but with the odd's –  gn66 Nov 21 '10 at 11:14
    
first of all (if (= (car (car j)) (cdr (cdr j))) should be (if (= (car (car j)) (car (cdr j))) if j is the list in input, obviously –  Eineki Nov 21 '10 at 11:30
    
yes thanks!... i was so concerned about the body of the program that i forget to verify that. –  gn66 Nov 21 '10 at 11:40
    
when i call this function: (game-position (list (cons 1 1) (cons 1 7))) the program return this bug: procedure application: expected procedure, given: (1 . 6); arguments were: #<void> –  gn66 Nov 21 '10 at 11:43

4 Answers 4

up vote 0 down vote accepted

I'm a bit rusty in scheme, I've managed to get this solution to your problem, it use recursion vs while, but I'm not accustomed to that construct in scheme:

(define data (list (cons 1 1) (cons 1 7)))

(define (neven n) (if (even? n) n (+ n 1)))

(define (sublist a mn mx) 
  (cond 
    ((<= mn mx ) (cons (cons a mn) (sublist a (+ mn 2) mx)))
    (else '())))

(define (game-position input)
   (if (= (caar input) (caadr input))
       (list (sublist (caar input) 
                      (neven (cdar input)) 
                      (cdadr input))
             (sublist (caar input) 
                      (+ 1 (neven (cdar input))) 
                      (cdadr input)))
       (error "no match")))

(game-position data)

edit: It works in guile and drscheme. Hope it will works in plt-scheme too. edit: sublist inner working

First the parameters:

  • a is the car of the pairs contained into the list
  • mn is the cdr of the first pair
  • mx is the upper limit of the serie.

the body of the function is quite simple:

if the cdr of the current pair is smaller or equal to the upper limit then return a list composed by a pair (a . mn) and the list created by a call to sublist with the mn parameter changed to reflect the next possible pair. if the current pair will have a cdr higher than the upper limit then return null (empty list) in order to close the cons issued by the previous invocation of sublist.

share|improve this answer
    
Thanks, it works xD –  gn66 Nov 21 '10 at 17:36
    
I understood almost everything you did, i still have to do 2 more things, one: if the (cdr (cdr input)) = (cdr (car (cdr input))) >> Do the same that you did for the column in the line Two: >> do the same that you did but this time, if (car (car input)) = (car (car (cdr input))) and if (this is the diference->) (if car (cdr input) > (cdr (car (cdr input))) do the same that you did earlier, but this time increasing (cdr (car (cdr input))) and separating the even's from the odd's I can implement that but can you explin-me what the function sublist work? –  gn66 Nov 21 '10 at 18:35
    
i changed, the first part still work perfectly, but the second that i add when i call this: (define data (list (cons 1 7) (cons 7 7))) - I want to recieve: (((2 . 7) (4 . 7) (6 . 7)) ((1 . 7) (3 . 7) (5 . 7))) but i only recieve: (((2 . 7)) ((3 . 7))) –  gn66 Nov 21 '10 at 18:41
    
what environment do you use. drscheme, alias drracket has a debug/trace option that explains step for step what is happening into the program. I will add an explanation of sublist into the answer, of couurse –  Eineki Nov 21 '10 at 18:46
    
I use dr scheme. When i change the values, like: input: ((1 . 3)(1 . 7) it returns (((1 . 2) (1 . 4) (1 . 6)) ((1 . 3) (1 . 5) (1 . 7))) but it shouldn't return (((1 . 4)(1 . 6))(1 . 5)(1 . 7)) (between 3 and 7) –  gn66 Nov 21 '10 at 18:53
; position l e a coluna c.
(define (do-pos l c)
  (if (and (integer? l) (integer? c) (>= l 0) (>= c 0) (<= l 7) (<= c 7))
      (cons l c)
      (error "insert a valid number between 0 and 7")))


; returns l
(define (line-pos p)
    (car p))

; returns c
(define (column-pos p)
    (cdr p))

; Arg is position.
(define (pos? arg) 
  (and (pair? arg) (integer? (line-pos arg)) (integer? (column-pos arg)) (< (car arg) 8) (>= (car arg) 0) (< (cdr arg) 8) (>= (cdr arg) 0)))

; two positions are equal?
(define (pos=? p1 p2)
  (and (= (line-pos p1)(line-pos p2))(= (column-pos p1)(column-pos p2))))

(define (oper* x y)
  (* (- x y) (- x y)))

; Distance between p1 e p2.
(define (distance p1 p2)
  (sqrt (+ (oper* (line-pos p1) (line-pos p2)) (oper* (column-pos p1) (column-pos p2)))))


; Same directions? if same line and same column
(define (same-direction? p1 p2)
  (or (= (line-pos p1) (line-pos p2)) (= (column-pos p1) (column-pos p2))))

; check if to positions are adjacent
(define (adjacent? p1 p2)
  (and (same-direccao? p1 p2) (= (distance p1 p2) 1)))

; from a position, returns all adjacents moves

(define (adjacent p) (cond ((and (= (line-pos p) 0) (= (column-pos p) 0)) (list (faz-pos (+ (line-pos p) 1) (column-pos p)) (do-pos (line-pos p) (+ (column-pos p) 1))))
                         ((and (= (line-pos p) 7) (= (column-pos p) 7)) (list (do-pos (- (line-pos p) 1) (column-pos p)) (do-pos (line-pos p) (- (column-pos p) 1))))
                         ((= (line-pos p) 0) (list (do-pos (+ (line-pos p) 1) (column-pos p)) (do-pos (line-pos p) (+ (column-pos p) 1)) (do-pos (line-pos p) (- (column-pos p) 1))))
                         ((= (column-pos p) 0) (list (do-pos (+ (line-pos p) 1) (column-pos p)) (do-pos (- (line-pos p) 1) (column-pos p)) (do-pos (line-pos p) (+ (column-pos p) 1))))
                         ((= (line-pos p) 7) (list (do-pos (- (line-pos p) 1) (column-pos p)) (do-pos (line-pos p) (+ (column-pos p) 1)) (do-pos (line-pos p) (- (column-pos p) 1))))
                         ((= (column-pos p) 7) (list (do-pos (+ (line-pos p) 1) (column-pos p)) (do-pos (- (line-pos p) 1) (column-pos p)) (do-pos (line-pos p) (- (column-pos p) 1))))
                         (else (list (do-pos (+ (line-pos p) 1) (column-pos p)) (do-pos (- (line-pos p) 1) (column-pos p)) (do-pos (line-pos p) (+ (column-pos p) 1)) (do-pos (line-pos p) (- (column-pos p) 1))))))

; returns a move with p1 and p2

(define (do-game p1 p2)
  (if (and (pos? p1) (pos? p2))
      (list p1 p2)
      (error "Insert two valid positions")))


   ; returns the beguining of j.

(define (b-do-game j)
  (car j))

; returns the end of j.

(define (e-do-hame j)
  (car (cdr j)))

; Arg is a do-game?.
(define (do-game? arg)
  (and (list? arg) (pos? (b-do-game arg)) (pos? (e-do-game arg))))

; do game is null?.
(define (do-game-null? j)
  (pos=? (b-do-game j) (e-do-game j)))

; list with two do-game (pc and pl)
(define (play-pos pc pl)
  (if (and (list? pc) (list? pl))
      (list pc pl)
      (error "Insere two valid moves")))

; returns pc.

(define (cap-pieces pj)
  (b-do-game pj))

; returns pj

(define (free_pieces pj)
  (e-do-game pj))



(define (neven n) 
  (if (even? n) 
      n (+ n 1)))

; create sublists

    (define (sublist a mn mx)
      (cond ((<= mn mx) (cons (do-pos a mn) (sublist a (+ mn 2) mx)))
            (else '())))

(define (sublist2 a mn mx)
  (cond ((<= mx (- mn 2)) (cons (do-pos a (- mn 2)) (sublist2 a (- mn 2) mx)))
        (else '())))

(define (sublist3 a mn mx)
  (cond ((<= mn mx) (cons (do-pos mn a) (sublist3 a (+ mn 2) mx)))
        (else '())))

(define (sublist4 a mn mx)
  (cond ((<= mx (- mn 2)) (cons (do-pos (- mn 2) a) (sublist4 a (- mn 2) mx)))
        (else '())))
;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;;


; Returns game-positions
(define (game-positions j)
  (if (not (and (do-game? j) (same-direction? (b-do-game j) (e-do-game j)) (even? (distance (b-do-game j) (e-do-game j)))))
      (list)
      (if (= (line-pos (b-do-game j)) (line-pos (e-do-game j)))
             (f_odd_even? j)
             (f_odd_even2? j))))

; Check is starts with odd or even.

(define (f_odd_even? j) (if (even? (column-pos (b-do-game j)))
                           (b_even j)
                           (b_odd j)))

(define (f_odd_even2? j) (if (even? (line-pos (b-do-jogada j)))
                           (b-even1 j)
                           (b_odd1 j)))


; If starts with odd:

(define (b_odd j)
   (if (< (column-pos (b-do-game j)) (column-pos (e-do-game j)))
       (list (sublist (line-pos (b-do-game j))
                      (neven (column-pos (b-do-game j)))
                      (column-pos (e-do-game j)))

             (sublist (line-pos (b-do-game j)) 
                      (+ 1 (neven (column-pos (b-do-game j)))) 
                      (column-pos (e-do-game j))))

       (list (sublist2 (line-pos (b-do-game j))
                      (+ 1 (column-pos (b-do-game j)))
                      (column-pos (e-do-game j)))

             (sublist2 (line-pos (b-do-game j))
                      (column-pos (b-do-game j))
                      (- 1 (column-pos (e-do-game j)))))))


(define (b_even j)
   (if (< (column-pos (b-do-game j)) (column-pos (e-do-game j)))
       (list (sublist (line-pos (b-do-game j))
                      (+ 2 (neven (column-pos (b-do-game j))))
                      (column-pos (e-do-game j)))

             (sublist (line-pos (b-do-game j)) 
                      (+ 1 (neven (column-pos (b-do-game j)))) 
                      (column-pos (e-do-game j))))

       (list (sublist2 (line-pos (b-do-game j))
                      (column-pos (b-do-game j))
                      (column-pos (e-do-game j)))

             (sublist2 (line-pos (b-do-game j))
                      (+ 1 (column-pos (b-do-game j)))
                      (column-pos (e-do-game j))))))



(define (b_odd1 j)
   (if (< (line-pos (b-do-game j)) (column-pos (e-do-game j)))
       (list (sublist3 (column-pos (b-do-game j))
                      (neven (line-pos (b-do-game j)))
                      (line-pos (e-do-game j)))

             (sublist3 (column-pos (b-do-game j)) 
                      (+ 1 (neven (line-pos (b-do-game j)))) 
                      (line-pos (e-do-game j))))

       (list (sublist4 (column-pos (b-do-game j))
                      (+ 1 (line-pos (b-do-game j)))
                      (line-pos (e-do-game j)))

             (sublist4 (column-pos (b-do-game j)) 
                      (line-pos (b-do-game j))
                      (- 1 (line-pos (e-do-game j)))))))


(define (b_even1 j)
   (if (< (line-pos (b-do-game j)) (line-pos (e-do-game j)))
       (list (sublist3 (column-pos (b-do-game j))
                      (+ 2 (neven (line-pos (b-do-game j))))
                      (line-pos (e-do-game j)))

             (sublist3 (column-pos (b-do-game j)) 
                      (+ 1 (neven (line-pos (b-do-game j)))) 
                      (line-pos (e-do-game j))))

       (list (sublist4 (column-pos (b-do-game j))
                      (line-pos (b-do-game j))
                      (line-pos (e-do-game j)))

             (sublist4 (column-pos (b-do-game j)) 
                      (+ 1 (line-pos (b-do-game j)))
                      (line-pos (e-do-game j))))))
  • This is the first part of the game I'm making, I was translating the variables from portuguese to english so it could have some error.

Dlm, can you do the same that you did in your code with "while cicles"?

Could you check my code and improve it a litle? I am trying to improve my programming skills, and it's starts from my code, Basicaly I want to get a programming style

share|improve this answer

Sorry for the previous posting. It was my first post and I posted as an unregistered user. I obviously haven't figured out how to format text yet.

I've created an account (user dlm) and I'm making a second attempt -- here goes.

I've been working on learning Racket/Scheme for a while now and this site looks like a great place to share and learn from others.

I'm not 100% sure of the spec on this question and have my doubts that my code actually solves the problem at hand but I think it's readable enough to be modified as needed

Readability is one of the things I've been working on and would appreciate feedback/suggestions from others.

dlm.

My 2 cents :

(define (process-list? lst)
  (let*([pair-0   (list-ref lst 0)]
        [pair-1   (list-ref lst 1)])
    (and    (=   (car pair-0)  (car pair-1))
            (<   (cdr pair-0)  (cdr pair-1)))))

(define (make-odd/even-sets data) 
  (let*([x         (car (list-ref data 0))]
        [y-start   (cdr (list-ref data 0))]
        [max       (cdr (list-ref data 1))])

    (define (loop y evens odds)
      (if (<= y max)
          (loop (add1 y)
                (if (even? y)   (cons (cons x y) evens)   evens)
                (if (odd?  y)   (cons (cons x y) odds)    odds))
          (list (reverse odds) (reverse evens))))
    (loop  y-start '()  '())))

(define (main data)
  (if (process-list? data)
      (let*([odd/even   (make-odd/even-sets data)])
        (printf "~a~n" (list-ref odd/even 0))
        (printf "~a~n" (list-ref odd/even 1)))
      (printf "Invalid list~n" )))

(main  '((1 . 1) (1 . 7)) )

UPDATE:

Hi gn66,

I don't know how much I can actually do in terms of the game itself but I might be able to give you some pointers/ideas.

A major thing to look for in improving code is to to look for repeating code applied to specific situations and try to think of ways to generalize. At first the generalized form can seam harder to read when you don't see what's going on but once you fully understand it it's actually easier, not only to read but modify.

Looking at your code the 'adjacent' procedure jumps out as something that could be shortened so I'll use that as an example. Let's start by first ignoring the boundary conditions and look for the generial pattern of operations (example: where you put the logic for conditional test can have a big effect on the size of the code).

(define (adjacent p) 
  (list (do-pos  (+ (line-pos p) 1) (column-pos p)) 
        (do-pos  (- (line-pos p) 1) (column-pos p)) 
        (do-pos  (line-pos p)       (+ (column-pos p) 1)) 
        (do-pos  (line-pos p)       (- (column-pos p) 1))) )

The problem here can be partitioned into 2 different problems: 1) changing line postions + - 1 and 2) changing row positions + - 1. Both applying the same operations to different components of the position. So let's just work with one.

(instead of a while loop lets look at MAP which is like a "while list not empty" loop)

Using 'map' to apply an operation to data list(s) is pretty straight forward:

(map  (lambda (val)  (+ val 5))
      '(10 20 30))

If needed you can inclose it inside the scope of a procdure to maintain state information such as a counter:

(define (test lst)
  (let*([i   0])
    (map  (lambda (val)  
            (set!  i  (+ i 1))
            (+ val i)) 
          lst)))
(test '(10 20 30))

Or pass in values to use in the operation:

(define (test lst amount)
    (map   (lambda (val)  (+ val amount))
           lst)) 
(test '(10 20 30) 100)

Now turn your thinking inside out and consider that it's possible to have it map a list of operations to some data rather than data to the operation.

(define (test val operations-lst)
    (map  (lambda (operation)   (operation val))
          operations-lst))
(test  10  (list sub1 add1))

Now we have the tools to start creating a new 'adjacent' procedure:

(define (adjacent p) 

  (define (up/down p)  ;; operations applied to the line componet
    (map   (lambda (operation)  
               (cons    (operation (line-pos p))   (column-pos p)))
           (list add1 sub1)))

  (define (left/right p)  ;; operations applied to the column componet
    (map   (lambda (operation)  
               (cons    (line-pos p)   (operation (column-pos p))))
           (list add1 sub1)))

  (append  (up/down p)  (left/right p))
  )

(adjacent (do-pos 1 1))

This works find for positions that aren't on the boundary but just as the old saying goes "it's sometimes easier to do something and then apologize for it than it is to first ask permission". Let's take the same approach and let the errant situations occur then remove them. The 'filter' command is just the tool for the job.

The 'filter' command is similiar to the map command in that it takes a list of values and passes them to a function. The 'map' command returns a new list containing new elements that correpsond to each element consumed. Filter returns the original values but only the ones that the (predicate) function "approves of" (returns true for).

(filter
 (lambda (val) (even? val))
 '(1 2 3 4 5 6 7 8))

will return the list (2 4 6 8)

So adding this to the new 'adjacent' procedure we get:

(define (adjacent p)

  (define (up/down p)
    (map   (lambda (operation)  
             (cons    (operation (line-pos p))   (column-pos p)))
           (list add1 sub1))) 

  (define (left/right p)
    (map   (lambda (operation)  
             (cons    (line-pos p)   (operation (column-pos p))))
           (list add1 sub1)))

  (define (select-valid p-lst)
    (filter 
       (lambda (p)  (and (>= (line-pos p) 0)  (>= (column-pos p) 0)
                         (<= (line-pos p) 7)  (<= (column-pos p) 7)))
       p-lst))

     (select-valid
           (append  (up/down p)  (left/right p))))

As for the "while cycles" you asked about: you need to develop the ability to "extract" information like this from existing examples. You can explore different aspects of existing code by trying to remove as much code as you can and still get it to work for what you are interested in (using print statements to get a window onto what's going on). This is a great way to learn.

From my first posting cut out the loop that creates the evens/odds list. When you try to run you find out what is missing (the dependencies) from the error messages so just define them as needed:

(define x 1)
(define max 5)

(define (loop y evens odds)
  (if (<= y max)
      (loop (add1 y)
            (if (even? y)   (cons (cons x y) evens)   evens)
            (if (odd?  y)   (cons (cons x y) odds)    odds))
      (list (reverse odds) (reverse evens))))
(loop  1 '()  '())

Add a print statement to get info on the mechanics of how it works:

(define x 1) (define max 5) (define y-start 1)

(define (loop y evens odds)
  (if (<= y max)
      (begin
        (printf "section 1 :  y=~a~n" y)
        (loop (add1 y)
              (if (even? y)   (cons (cons x y) evens)   evens)
              (if (odd?  y)   (cons (cons x y) odds)    odds)))
      (begin
        (printf "section 2 :  y=~a~n" y)
        (list (reverse odds) (reverse evens))
        )))

(loop  y-start '()  '())

Now remove parts you aren't interested in or don't need, which may take some exploration:

(let*([max   5])

  (define (loop y)
    (if (<= y max)
        (begin
          (printf "section 1 :  y=~a~n" y)
          (loop (add1 y)))
        (begin
          (printf "section 2 :  y=~a~n" y)
          '()
          )))
  (loop  1))

Now you should be able to more easily see the mechanics of a recursive while loop and use this as a simple template to apply to other situations.

I hope this helps and I hope it doesn't cross the line on the "subjective questions" guidelines -- I'm new to this site and hope to fit in as it looks like a great resource.

share|improve this answer
    
hell of an answer! –  Martin Neal Jan 10 '11 at 22:28

I've been working on learning Racket/Scheme for a while now and this site looks like a great place to share and learn from others.

I'm not 100% sure of the spec on this question and have my doubts that my code actually solves the problem at hand but I think it's readable enough to be modified as needed

Readability is one of the things I've been working on and would appreciate feedback/suggestions from others.

dlm.

My 2 cents :

(define (process-list? lst)
  (let*([pair-0   (list-ref lst 0)]
        [pair-1   (list-ref lst 1)])
    (and    (=   (car pair-0)  (car pair-1))
            (<   (cdr pair-0)  (cdr pair-1)))))

(define (make-odd/even-sets data) 
  (let*([x         (car (list-ref data 0))]
        [y-start   (cdr (list-ref data 0))]
        [max       (cdr (list-ref data 1))])

    (define (loop y evens odds)
      (if (<= y max)
          (loop (add1 y)
                (if (even? y)   (cons (cons x y) evens)   evens)
                (if (odd?  y)   (cons (cons x y) odds)    odds))
          (list (reverse odds) (reverse evens))))
    (loop  y-start '()  '())))

(define (main data)
  (if (process-list? data)
      (let*([odd/even   (make-odd/even-sets data)])
        (printf "~a~n" (list-ref odd/even 0))
        (printf "~a~n" (list-ref odd/even 1)))
      (printf "Invalid list~n" )))

(main  '((1 . 1) (1 . 7)) )
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Yes, i used define's to create global variables and you used let* to do that work. I thouht about that, but was not sure how to use it 100 per cent xD I submited my work with a few changes (i used the code of Eineki and i developed from it) –  gn66 Nov 26 '10 at 20:24

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