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Recently, I was reading article "Root Of Lisp" from Paul Graham.I encountered some questions.From the book, it defines expression as two :1.atom;2.list, while list is consisted of zero or many expressions.Then it sayes that a list can be evaluated.Now I hava some problems:

  1. Can every list be evaluated?Is every list an expression?
  2. If a list can be evaluated, then it may have its first element as an operator,so an operator is an expression?Is operator atomic or another?
  3. The operator car returns the first element of a list, if the list can be evaluated, then what will it return , the operator?Can you give me some sample of this to show how to use the returned value?
  4. The operator cdr returns elements besides the first element as a list,then this returned list can't be evaluated?

I am a freshman for Lisp,I don't know whether I hava explained my problems clearly.

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1 Answer 1

up vote 2 down vote accepted

A Lisp S-expression (sexp) is either an atom, or a list of sexps.

1

All Lisp forms (that is, things that can be evaluated) are sexps, but not all sexps are Lisp forms.

More specifically, a Lisp form is any atom, or a list whose first element is a symbol.

(foo 42)       ; valid Lisp form
(undefined 42) ; Lisp form, but invalid because of undefined function
(42 foo)       ; not a Lisp form - numbers aren't symbols

2

As I just mentioned, the "operator" (first element) of a list-that-is-a-Lisp-form must be a symbol. (A Lisp-1 (e.g. Scheme) allows any Lisp form in the operator position, but Roots of Lisp is discussing the original (a Lisp-2), and Common Lisp (a Lisp-2); they restrict the operator position to symbols.)

3

Lisp code, before compilation, is Lisp data. That is important.

If I said (car 'foo), the program would complain; and rightly so, because foo isn't a list.

If I said (car '(car 'foo)), the inner list is not evaluated (good old quote syntax '), and car extracts the thing in the operator position - in this case, the symbol car. This can be useful when defining macros.

4

Depends.

First, imagine I have foo defined as a function of two arguments, and bar defined as both a variable and a function of one argument. Also remember that, under the hood, your Lisp is probably calling eval on whatever you type in.

Now (eval '(foo bar 42)) is valid, and will invoke foo with arguments <the value of bar> and 42. (eval (cdr '(foo bar 42))) is also perfectly valid; it is equivalent to (eval '(bar 42)), which invokes bar with the argument 42.

If bar were not defined as a function, the cdr of the second example would still produce a valid Lisp form, but it would be an error to evaluate that form, as (bar 42) invokes the function bar (there isn't one).

It is useful to talk about syntax and semantics. Syntactically, any atom, or any list with a symbol in operator position, is valid. Semantically (inside the bounds of the syntax), any atom that is a symbol with no variable definition is an error; so is any list whose first element is a symbol with no function definition.

I hope this answer helps you out.

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Is there any other list which is consist of all data elements?like(123 234),is this legal?It needn't to be evaluated, only save data?I don't learn Lisp before.So I may look it in other language style. –  ohyeahchenzai Apr 28 '13 at 8:27
1  
@ohyeahchenzai (123 234) is a perfectly valid list of two values (which can be used as data). However, it is not a Lisp form (it has a number in the operator position), so it cannot be evaluated. –  michaelb958 Apr 28 '13 at 23:29

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