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Is there any way by which cons can be implemented in Common LISP using list, append, first, rest etc?

In the following code

(defun my_list (&rest arguments)
   `(,@arguments) ; Line 1
)

What does complete line 1 mean ?

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1  
Duplicate? Are you asking to explain one of the answers in this question stackoverflow.com/questions/4215373/… –  spacemanaki Nov 18 '10 at 15:36
1  
why would you do want to do that? CONS is the primitive operation to create a cons cell. –  Rainer Joswig Nov 19 '10 at 7:32

4 Answers 4

First question: No, because cons is the building block for list and append, not the other way around. It is like trying to construct a brick out of houses.

Second question: The backquote syntax is explained in the CLHS (http://www.ai.mit.edu/projects/iiip/doc/CommonLISP/HyperSpec/Body/sec_2-4-6.html).

Stylistic comments:

  • It is spelt "Common Lisp".

  • Do not use underscores to separate parts of names, but hyphens: my-list.

  • Do not let parentheses dangle around. Your snippet should be formatted like this:

    (defun my-list (&rest arguments)
      `(,@arguments)) ; Line 1
    
  • Using the backquote syntax outside of macros is usually not a good idea. In this case, it is completely superfluous:

    (defun my-list (&rest arguments)
      arguments)
    
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Why would using backquotes syntax outside macros is not a good idea? –  Alexandre Deschamps Nov 18 '10 at 17:26
    
I can't speak for Svante, but IMO, using the extra syntax where it is not necessary is always a bad idea. In my experience, there are very few times you need a backtick outside of a macro. –  Travis Gockel Nov 18 '10 at 23:14
1  
@Alexandre Deschamps: backquotes are always useful when you better view at your s-expressions as kind of templates. There is nothing that ties backquote to macros. –  Rainer Joswig Nov 19 '10 at 7:30

Yes, you could in theory define cons in terms of list and append, like so:

(defun cons (car cdr) (append (list car) cdr))
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No, (cons 1 2) should return (1 . 2), but your version signals an error instead. –  Svante Nov 20 '10 at 17:19
    
What Lisp are you using? This works for me in CLisp and Emacs Lisp: (append (list 1) 2) ==> (1 . 2). The standard agrees: "The last argument [to append] is not copied; it becomes the cdr of the final dotted pair of the concatenation of the preceding lists." –  Gareth Rees Nov 20 '10 at 18:20

I have the answer for the second question:
for the ,:
if my_symbol = 1
`(my_symbol 2 3) = (my_symbol 2 3), but with the ,:

`(,my_symbol 2 3) = (1 2 3)

The , evaluates the next symbol in a ` statement

Now for the @ (which is a symbol, so it needs the , to be activated)

`(,@('a 'b 'c) ('d 'e 'f)) = ('a 'b 'c ('d 'e 'f) )

`(,@('a 'b 'c) ,@('d 'e 'f) ) = ('a 'b 'c 'd 'e 'f)

I hope these examples could help. So the line 1 is simply extracting the arguments from a list and putting them into another one.

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How about this?

(defun cons (a b) '(a . b))

Or, if you desperately need to use lists...

(defun cons (a b) (first (list '(a . b))))
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3  
That won't work. The above code would make (cons 1 2) and (cons 4 5) EQ (as the same identical, read-time created, cons to be returned). –  Vatine Nov 18 '10 at 16:13
    
yes, you're right! –  kotlinski Nov 18 '10 at 16:55

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