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I'm studying scheme and I have just encountered my first problem:

(define x (cons (list 1 2) (list 3 4)))
(length x)
3

why the output is 3 and not 2? I have displayed x

((1 2) 3 4)

why is like that and not ((1 2) . (3 4)) ?

Thanks.

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2 Answers 2

up vote 2 down vote accepted

Maybe it's easier to see this way.

You have:

(cons (list 1 2) (list 3 4))

If you

(define one-two (list 1 2))

you have

(cons one-two (list 3 4))

which is equivalent to

(cons one-two (cons 3 (cons 4 '())))

or

(list one-two 3 4)

which is

((1 2) 3 4)
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what I don't get is from (cons a (cons 3 (cons 4 '()))) to (list a 3 4). Shouldn't a cons cell end with a '() to be a list? –  user1544128 Jan 10 '13 at 12:52
    
No, a list is a cons cell where its cdr is a list, and '() is the empty list. –  Christoffer Hammarström Jan 10 '13 at 12:57
    
1  
So (cons 4 '()) is a list because its cdr is a list, the empty list. And (cons 3 (cons 4 '())) is a list because its cdr is a list, the list from the first sentence. And (cons a (cons 3 (cons 4 '()))) is a list because its cdr is the list from the second sentence. –  Christoffer Hammarström Jan 10 '13 at 13:03
    
I can see the light! Thanks :) –  user1544128 Jan 10 '13 at 13:06

List is the basic data structure of scheme. Cons is used for making a pair of objects. List is the chain of cons. eg. list (1 2 3 4) is same as (cons 1(cons 2(cons 3(cons 4 '())))). See the block pointer representation for make it clear

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