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I wonder whether '(1 . 2) and '(1 2) mean the same data (equal to each other) in Scheme or not? I think they are the same thing, is this correct?

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4 Answers 4

up vote 18 down vote accepted

No, they are not the same.

'(1 . 2) means (cons 1 2)

whereas

'(1 2) means (cons 1 (cons 2 nil))

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1  
Thanks. Got the difference now. List (1 2) should be equal to dotted pair (1 . (2)) actually. –  Thomson May 15 '11 at 6:32
4  
which is also the same as (1 . (2 . ())) –  erjiang May 15 '11 at 16:59

(1 . 2) is sometimes called an improper list, because it is not NIL terminated. (1 2) represented in dot form may be written (1 2 . NIL), but you should not write something like this.

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Yes!

Pairs: (cons y z) creates a pair between the values y and z. Likewise, the (more complicated) expression (cons x (cons y z)) creates a pair between x and the pair (y . z). You can also represent these pairs as '(y . z) and '(x . (y . z))

Lists: A list is just a special type of pair. It's the case where a value is paired onto an already-existing list. Since the very first list has to start somewhere, we always have the null list '() (sometimes called the 'empty list') ready to be paired. So (cons y '()) pairs y with the null list to become the one-item list '(y). Likewise, (cons x '(y)) and (cons x (cons y '())) pair x to the list '(y) to become the list '(x y).

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dr rackect explains it much more clearer:

"A pair joins two arbitrary values.....The cons procedure constructs pairs"

(cons 1 2)
'(1 . 2)

(pair? (cons 1 2))
#t

on the other hand

"A list is a combination of pairs that creates a linked list. More precisely, a list is either the empty list null, or it is a pair whose first element is a list element and whose second element is a list."

 (cons 0 (cons 1 (cons 2 null)))
'(0 1 2)

http://docs.racket-lang.org/guide/pairs.html

please LISP has been around since the 50's for accurate answers look at their documentation and example they area around for more than 60 years some people was not even born there.

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you can also "create" list '(x y z) (cons 'x (cons 'y (cons 'z '()))) (list 'x 'y 'z) –  Guglielmo Guglielmi May 21 at 15:36

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