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I'm tring to apply closure in emacs lisp.And I find a post here: How do I do closures in Emacs Lisp?

with some code like:

(defun foo (x) `(lambda () ,x)) (message (string (funcall (foo 66))))

But following the emacs documentation lambda should be formated like '(lambda () x) ==> using this format ,I got an ERROR :Symbol's value as variable is void: x

When " , " is add betwenn "()" and "x" ,everything goes right .

Why?

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Emacs Lisp has no closures like that. Read also the documentation of FUNCALL how to use it. –  Rainer Joswig Dec 23 '11 at 10:04
1  
In Emacs 24 your code works, as long as lexical-binding is set for the buffer/file. –  nschum Dec 23 '11 at 16:29

1 Answer 1

up vote 3 down vote accepted

This happens because Emacs Lisp is dynamically scoped thus foo returns a lambda where x is free. That's what the error tells you.

To do a closure in Emacs Lisp you have to use lexical-let which simulates a lexical binding and therefore allows you to make a real closure.

(defun foo (x)
  (lexical-let ((x x))
               (lambda () x)))

(message (string (funcall (foo 66))))

Here are some links from the Emacs Wiki:

  1. Dynamic Binding Vs Lexical Binding
  2. Fake Closures

Note that you could have defined x with a let like this:

(defun foo (x)
  (lambda () x))

(message (string (let ((x 66)) (funcall 
                                (foo 'i-dont-care)))))
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Actually, taht code is even hackier, it is equivalent to: (defun foo (x) (list 'lambda nil x)) so (foo 66) returns (lambda () 66) and I am sure there'#s all sorts of inadvertent capturing possible here... –  Vatine Dec 23 '11 at 13:10
    
@Vatine: Yes I know what does the backquote, but you have to understand what does the quote => it prevents the evaluation of the form, so (defun foo (x) '(lambda () x)), (foo 66) returns (lambda () x) and then you try to funcall this, but the interpreter doesn't know what it is. Contrary to the backquote which allows the evaluation with the comma. –  Daimrod Dec 23 '11 at 13:40
    
But in the original post there is a backquote, so it returns (lambda () 66), not (lambda () x). –  Vatine Dec 23 '11 at 15:18
    
@Vatine: Yes, and with a backquote it works. If the documentation says that lambda should be formated with a quote it's for higher-order like this (mapcar '(lambda (el) (+ el 1)) '(1 2 3 4)), but in your case you want to evaluate x` to build your closure. –  Daimrod Dec 23 '11 at 15:38

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