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In particular, I just want to ensure that two lists have the same elements, ignoring order

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6 Answers 6

up vote 2 down vote accepted

According to Steele "set-difference returns a list of elements of list1 that do not appear in list2. This operation is not destructive."

So if the set-difference is empty and the lengths are the same...

http://www.cs.cmu.edu/Groups/AI/html/cltl/clm/node152.html#SECTION001950000000000000000

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1  
so you would say that '(1 2 2) has the same elements as '(1 1 2) ? –  6502 Nov 6 '10 at 8:51
    
Depends on what you mean by 'same elements'. I see your point, though: if I answer 'yes', than length doesn't matter. If I answer 'no', set-difference doesn't solve the problem. –  philosodad Nov 6 '10 at 13:48

If order isn't important, you can use equal. For instance,

(equal (list 1 2) (list 1 2))

is true. Thus one way to do it would be to (sort) the list and then use equal. Note that sort is destructive so if order matters, you might want to copy it first.

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It doesn't matter whether order is important or not -- SORT may destroy (not sort in-place!) the original list, so copying is a good idea in either case. –  Matthias Benkard Nov 7 '10 at 9:45
(defun same-bag-p (bag1 bag2 &key (test #'eql))
  (let ((table (make-hash-table :test test)))
    (loop for key in bag1 do (incf (gethash key table 0)))
    (loop for key in bag2 do (decf (gethash key table 0)))
    (loop for val being each hash-value of table always (= val 0))))
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+1 for handling duplicates. –  Jack Kelly Nov 6 '10 at 21:49

If repeating items are not important see also SET-EXCLUSIVE-OR.

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If the order isn't important you can use "equal-set":

(equal-sets (1 2)(1 2)) -> T

(equal-sets (1 2)(2 1)) -> T

(equal-sets (1 2 5)(1 2)) -> NIL

(equal-sets (1 2)(1 5 2)) -> NIL

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Sort both lists, then compare:

(equal (sort l1 #'<) (sort l2 #'<))
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1  
Not really pertinent but be careful that sort will destroy the original list, so this code looks bad as in most cases either you should make a copy beforehand with e.g. (sort (copy-list l1) #'<) or you should store the result of sort back to l1 and l2. Also this approach requires sortable elements (the hash table one doesn't). –  6502 Nov 7 '10 at 7:53
    
Thanks for the heads-up. I was off in pure-function-land when I wrote this. –  Jack Kelly Nov 7 '10 at 8:51

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