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I am currently playing around with LISP. Everything is fine, but I can't understand the following issue.

I have the this append-operation:

(define (append l1 l2)
   (if (eq? l1 null)
      l2
      (cons (first l1)
            (myappend (rest l1) l2))))

I use it like this:

(myappend (cons (cons 1 2) null) '(4 5))

And the result in Racket is:

 '((1 . 2) 4 5)

But why? In my oppinion it should be '(1 2 4 5), because cons returns a list and myappends appends two lists. Can anybody help me? What is LISP doing?

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3  
You seem to be using some nonstandard features peculiar to Racket. In Lisp (ANSI Common Lisp) lists are terminated by the symbol nil. In standard Scheme (of which Racket is evidently a dialect), lists are not terminated by a symbol. They are terminated by an empty list object which is written () (and which must be quoted when used as an expression: '()). In Scheme you use (null? x) to test whether x is the empty list, not (eq x null); there is no predefined null. In Common Lisp, it's (null x) or (not x) or (eq x nil). –  Kaz Apr 9 '12 at 19:27

4 Answers 4

up vote 11 down vote accepted

cons returns a dotted pair, not necessarily a list.

(cons 1 2) returns (1 . 2)

(cons 1 null) returns (1)

(cons 1 (cons 2 null)) returns (1 2)

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Ok, thank you. But way (cons 1 (cons 2 null)) doesn't return (1 .(2))? –  Thomas Uhrig Apr 7 '12 at 17:37
4  
@Thomas: Both expressions represent the same structure; the convention is to prefer list notation instead of dotted pair notation whenever possible. If some cons cell in the structure has a cdr that's a non-null atom (as in your question), dotted pair notation will be required because the structure is not a list. –  Jim Lewis Apr 7 '12 at 17:47
    
@ThomasUhrig This answer (disclaimer: it's mine) has more about the printed representation of cons cells. –  Joshua Taylor Oct 14 '13 at 15:31

to @ThomasUhrig : the following info might help you.

Although we are talking about Lisp language here, I notice that a line from Page 8 and 9 of a famous Book named "The Little Schemer (4th edition)" help me understand the 2 puzzling facts altogether:

    Why (cons 1    2) does not look like '(1 2)?
    Why (cons 1 '(2)) does     look like '(1 2)?
    ----
    > (cons 1 2)
    (1 . 2)
    > (cons 1 '(2))
    (1 2)
    > '(1 2)
    (1 2)

Just read the "The Laws of Cons":

The primitive cons takes 2 arguments.

The 2nd argument to cons must be a list.

The result is a list.

In practice: (cons A B) works for all values A and B, And

(car (cons A B)) = A

(cdr (cons A B)) = B

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1  
The link to the PDF doesn't work anymore. I can still find copies easily with Google, but it appears to still be on sale in places; I'm not sure whether it's supposed to be freely distributed. That said, the relevant "Law of Cons" is available in the Google Books preview. –  Joshua Taylor Dec 14 '13 at 20:39

A (cons 1 2) will return an object whose first pointer (car) points to 1, and the other (cdr) points to 2, that's why it get printed in the dot-pair fashion.

Also you may want to understand deeper, I will recommend you read the CL: gentle introduction to symbolic computation, "6.4. Comparing CONS, LIST, AND APPEND", which explained these topics really well.

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nice book, thanks. –  Thomas Uhrig Apr 8 '12 at 8:12

Try what (cons 1 2) returns. Is it a list?

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Obviously not. I think I missed something. Thanx. –  Thomas Uhrig Apr 7 '12 at 17:36

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