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after defining the matrix :

(setq matriz '((1 0 0 0 0 0)
               (1 1 0 0 0 0)
               (0 1 1 1 0 0)
               (0 0 0 1 0 0)
               (0 0 0 1 1 0)
               (0 0 0 0 1 1)))

I already made a function to get a number according to position (line and column) But now i want to do a function to replace a number in the matrix according to the position and i am having trouble doing it. Lets say i want to replace the position (3 3) that corresponds to the 1 in (0 0 0 1 0 0) i just don't know how to do it. Can only use recursive functions what means no cycles . This I'm working is for maze solver Would appreciate some help thanks :=)

:edited part this is what i have so far

(setq matriz '((1 0 0 0 0 0)(1 1 0 0 0 0)(0 1 1 1 0 0)(0 0 0 1 0 0)(0 0 0 1 1 0)(0 0 0 0 1 1)))


(defun path(i j)
           (list (list (+ i 1) j)
                 (list (- i 1) j)
                 (list i (+ j 1))
                 (list i (- j 1))
                 ))

(defun validsons (lf mat)
           (cond
            ((null lf) nil)
            ((eq (devposmat (caar lf) (cadar lf) mat) 1) (cons (car lf) (validsons (cdr lf) mat)))
            (t (validsons (cdr lf) mat))
           )
          )

(defun Devposicao(i lista)
           (cond
             ((null lista) nil)
             ((< i 0)      nil)
             ((= i 0)      (car lista))
             (t (Devposicao (- i 1) (cdr lista)))))

(defun DevPosMat(i j lista)
(Devposicao j  (Devposicao i lista)))

;shows up avaiable paths (only 1s)

(defun rightpath(i j mat)
           (validsons (path i j) mat)
           )

;so you see the matrix correctly and not a list

(defun writematrix(Mat)
(cond
((null Mat) nil)
(t (progn
(print (car Mat))
(writematrix (cdr Mat))))
)
 )

;this is what i was trying to do to replace

(defun changenumber (i j matriz)
           (cond
            ((null matriz) nil)
            ((< i 0)      nil)
            ((= i 0)      (dec j (car matriz)))
            (t (changenumber (- i 1) j (cdr matriz)))))
(defun dec (pos l)
        (cond
         ((null l) nil)
         ((= pos 0) (cons (- (car l) 1) (cdr l)))
         (t (cons (car l) (dec (- pos 1) (cdr l))))))   

So i am able to use rightpath to move forward and see wich paths i have avaiable, but i just have to edit previous place i was so i dont keep going to my previous position. Sorry if i posted something in the wrong way im not used to this.

share|improve this question
    
What Lisp are you working with? Common Lisp, elisp, something else? –  djf Jun 3 '13 at 15:31
    
I am working with common lisp –  user2312436 Jun 3 '13 at 15:33

2 Answers 2

(defun set-matriz-ij (matriz i j val)
  (setf (car (nthcdr j (nth i matriz))) val))

More generally, you ought to write a 'maze' abstraction:

(defun maze-ref (maze i j)
  (nth j (nth i maze)))

(defsetf maze-ref (maze i j) (val)
  `(setf (car (nthcdr ,j (nth ,i ,maze))) ,val))

(defun make-maze (n) ...)
(defun maze-path-at (i j)
  `((,(+ i 1) ,j)
    (,(- i 1) ,j)
     ...)))
;; etc

The above uses lists to implement the abstraction; matrices might be preferred but once you've made the abstraction, the implementation is a largely unimportant detail.

share|improve this answer

Don't do it...

Common Lisp comes with multidimensional arrays, and it is crazy to use lists for matrices instead.

(defparameter *matrix*
  (make-array '(6 6)
              :element-type 'bit
              :initial-contents
              '((1 0 0 0 0 0)
                (1 1 0 0 0 0)
                (0 1 1 1 0 0)
                (0 0 0 1 0 0)
                (0 0 0 1 1 0)
                (0 0 0 0 1 1))))
(setf (aref *matrix* 3 3) 1)

(see make-array)

...unless forced to

If you are required to use lists by a crazy professor, you can use something like

(setf (car (nthcdr (nth matrix i) j)) 1)

(see nth, nthcdr).

If you are forbidden from using those functions and are required to write your own recursive setter, please state so clearly and show your work (since we are now in the realm of crazy limitations, please also specify if your matrix is supposed to be immutable).

share|improve this answer
    
problem is that i can't use arrays aswell... I have the functions to find the 4 possible ways ( up down left right) already but when i'm trying to run it, it will go back because the path is possible. so i want to change the 1's i went throught to 0's. So if it's possible in my way i would love some help :D –  user2312436 Jun 3 '13 at 16:45
1  
arrays are a basic data type in programming. if you have a problem with them, you have to read up. As for changing 1 to 0, use (setf aref) as in my answer. –  sds Jun 3 '13 at 16:52
    
it's not possible to create a homework tag –  user2312436 Jun 4 '13 at 17:08
    
The homework tag has been deprecated. Otherwise, good answer. –  Inaimathi Jun 4 '13 at 20:41

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