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I'm reading the book called the little schemer.

Before read that, i've finished reading first three chapter of SICP.

My question is that why second argument to cons must be a list.

However, (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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It's just a Scheme/Lisp convention that a list is either nil, or a cons whose cdr is again a list. – Fred Foo Nov 26 '12 at 14:52
up vote 4 down vote accepted

The second argument to cons is not necessarily a list. It's a list only if you're, well, building a list (proper or otherwise). It's perfectly valid if the cdr part of a cons cell is not a list, for example, when building an association list:

(define lookup-table (list (cons 'x 10) (cons 'y 20) (cons 'z 30)))
(assoc 'z lookup-table)
=> '(z . 30)
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