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I have a list with cons-pairs, e.g. '((a . 3) (b . 2)). I want to remove a cons-pair destructive if the first element in the cons-pair matches var. My function cannot remove the cons-pair if there is only one cons-pair in the list or if it is first in the list.

(defun delete-bindings! (var symbol-table)
(cond
 ((endp symbol-table) '())
 ((eql var (caar symbol-table))
  (delete-bindings! var (cdr symbol-table)))
 (t (setf (cdr symbol-table) (delete-bindings! var (cdr symbol-table)))
   symbol-table))))

What am I missing?

Thanks!

share|improve this question
1  
In Common Lisp, destructiveness is typically an "efficiency hack". It's, in the general case, hard-to-impossible to destructively remove the first cons of a list. –  Vatine Dec 11 '11 at 10:17

3 Answers 3

up vote 2 down vote accepted

Your function is always returning '(), I think (can't be sure since you didn't show the whole thing).

Perhaps:

(defun delete-bindings! (var symbol-table)
  (cond
   ((endp symbol-table) '())
   ((eql var (caar symbol-table))
    (delete-bindings! var (cdr symbol-table)))
   (t (progn
        (setf (cdr symbol-table) (delete-bindings! var (cdr symbol-table)))
        symbol-table)))

Addendum:

You must use the result of this function, not simply depend on its side effects:

(setq *bindings* (delete-bindings! 'var *bindings*))

Second addendum

Loading ~/ccl-init.lisp
Welcome to Clozure Common Lisp Version 1.7-dev-r14406M-trunk  (DarwinX8632)!
? (defun delete-bindings! (var symbol-table)
  (cond
   ((endp symbol-table) '())
   ((eql var (caar symbol-table))
    (delete-bindings! var (cdr symbol-table)))
   (t (progn
        (setf (cdr symbol-table) (delete-bindings! var (cdr symbol-table)))
        symbol-table))))
DELETE-BINDINGS!
? (delete-bindings! 'a '((a . 3) (b . 2)))
((B . 2))
? 

If you need a data structure that may be destructively modified with all references to it updated, you'll need another level of indirection.

E.g.,

(defvar *symbol-table* (cons 'bindings '((a . 3) (b . 2))))

(defun delete-bindings! (var symbol-table)
  (flet ((db! (var symbol-table) (cond
   ((endp symbol-table) '())
   ((eql var (caar symbol-table))
    (delete-bindings! var (cdr symbol-table)))
   (t (progn
        (setf (cdr symbol-table) (delete-bindings! var (cdr symbol-table)))
        symbol-table)))))
  (rplacd symbol-table (db! var (cdr symbol-table)))))
share|improve this answer
    
Yes I missed the last line of code when posting, now its complete. Thanks, but it does not work. –  hemma Dec 9 '11 at 18:41
    
See my addendum; the function doesn't change the places that refer to the old value of the list (it can't since you pass the list of bindings by value, not by reference). –  Doug Currie Dec 9 '11 at 19:10
    
If I understood right what you mean then delete-bindings shouldn't work for symbol-table: '((a . 2) (b . 3)) and var: 'b. But it's possible to delete 'b but not 'a with my function. –  hemma Dec 9 '11 at 19:19
    
Works for me; see second addendum –  Doug Currie Dec 9 '11 at 20:12
    
Yes it returns the correct list but if you set the symbol-table as a global variable (setq symbol-table '((a . 3) (b .2))) and sends it too delete-bindings! it doesn't change the list destructive. The global variable symbol-table doesn't change. –  hemma Dec 9 '11 at 20:30

Not an answer to your question, but unless you're doing this for self-teaching purposes, it would be easier with delete

Something like (untested):

(defun delete-bindings! (var symbol-table)
    (delete var symbol-table :key #'car))
share|improve this answer
    
I am doing this for self-teaching but I have tried using the delete function but I get the same result, if the cons-pair is first or the only one it is not deleted. Thanks! –  hemma Dec 9 '11 at 18:55
1  
If you use the return value from the delete function, then this worked for me in all cases; including when the cons-pair is first and when it is the only one. link –  Clayton Stanley Dec 10 '11 at 5:19

Functions cannot modify a variable that they get as argument, they always receive the variable's value instead of the variable itself. Instead, you can use DEFINE-MODIFY-MACRO:

(define-modify-macro delete-bindings! (item)
  (lambda (symbol-table item)
    (remove item symbol-table :key #'car)))
share|improve this answer
    
Isn't a destructive function, a function that modifies a variable that they get as an argument? –  Clayton Stanley Dec 10 '11 at 5:25
    
@claytontstanley variable is a tricky word. A destructive function may destroy "what" they're given (the interpretation of "what" depends on the function), but rebinding one of their caller's variables is just something Lisp function can't do. That's why they return their argument: for cases when rebinding is necessary. For example in delete's case, when the list head has to be removed, the "variable" has to change to a new list head. In other cases, it would be enough to simply rebind of of the cdrs in the chain. –  JB. Dec 10 '11 at 7:13
    
@claytontstanley: E.g. in a function that takes a list: a variable that holds a list actually holds a reference to the first cons cell of that list. A function called with that variable receives a copy of that reference. Now that function can modifiy all the cars and cdrs in the list – doing so would make it a destructive function –, but it cannot change the fact that that variable holds this reference to the first of the cons cells. To do that, a macro is needed. –  Rörd Dec 10 '11 at 11:09
    
@Rörd: Thanks for taking the time to explain this a bit better. I understand now. Question though; since the value of symbol-table is being overwritten, isn't it safe to use delete (instead of remove)? And I would assume that delete would be faster. –  Clayton Stanley Dec 10 '11 at 20:14
    
@claytontstanley: It would not be safe if some other variable holds – directly or indirectly – a reference to any of the cons cells in the list. –  Rörd Dec 10 '11 at 21:52

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