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I have two lists as follows:

(x y z) & (2 1)

and I want to have a result like:

((x y) (z))

The relation of the lists is quite clear. So basically I want to rearrange the members of the first list into a list of lists with two (length of second list) lists. I have tried running two dotimes iterations to do this:

(let ((result) (list1* list1))
   (dotimes (n (length list2) result)
     (progn (setq result
                  (append result
                          (list (let ((result2))
                                  (dotimes (m (nth n list2) result2)
                                    (setq result2
                                         (append result2
                                                 (list (nth m list1*)))))))))
            (setq list1*
                 (subseq list1* 0 (nth n list2))))))

The idea is that I make the first list of the expected result (x y), and then I want to update the (x y z) list so that the x any y are removed and I only have (z). Then the loop runs again to get the (z) list in the expected result. This does not work correctly and results in:

 ((x y) (x))

which means apparently the second command for progn which is basically updating the list1* is not working. Clearly there must be a correct and better way of doing this and I was wondering whether anyone can help with this. Also explain why it is not possible to have the solution explained?

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2 Answers 2

up vote 3 down vote accepted

If I see that right, your problem is in (subseq list1* 0 (nth n list2)), which returns the part of the list that you do not want.

I have the following to offer:

(defun partition-list (list lengths)
  (mapcar (lambda (length)
            (loop :repeat length
                  :collect (pop list)))
          lengths))

This is a bit simplistic, of course, as it does not handle unexpected input, such as (length list) being smaller than (reduce #'+ lengths), but it can be expanded upon.

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Just for the sake of example, an alternative using iterate:

(defun partition-list (list by)
  (iter:iter
    (iter:for element in list)
    (iter:for i from 1)
    (iter:generating measure in by)
    (iter:collect element into sublist)
    (when (= (or measure (iter:next measure)) i)
      (iter:collect sublist)
      (iter:next measure)
      (setf i 0 sublist nil))))
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1  
I think that iterate is a library that to use-package really pays off in legibility. –  Svante Jul 16 '13 at 7:24
1  
@Svante yes. The reason I did it when posting is so not to get the reader confused about where it comes from. For those using SLIME it may take a while to figure out the steps they need to do to get the example running (if you don't use-package and try to eval the code that assumes that you do, then you'll get generic errors, which will not help you much in understanding of what you had to do). –  user797257 Jul 16 '13 at 8:09

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