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how would you / should you export symbols from a package, when you have not yet created them at the time of calling the defpackage macro?

(defpackage :package-a
  (:use :cl)
  (:export :fruit-type :animal-type :orange :apple :peach :cat :dog))

(deftype fruit-type () '(member ORANGE APPLE PEACH))
(deftype animal-type () '(member CAT DOG))

(defparameter *other-symbol-names*
  '("A1" "A2" "B1" "B2")) ;imagine a longer list here
                          ;with names generated by a function

(defparameter *other-symbols*
  (mapcar #'(lambda (sym-name)
          (import (make-symbol sym-name))
          (find-symbol sym-name))
      *other-symbol-names*))

(mapcar #'export *other-symbols*)

(setf A1 32 A2 33 B1 34 B2 35)

also there is another package

(defpackage :package-b
  (:use :cl :package-a))
(in-package :package-b)
(format nil "~a ~a ~a ~a" |A1| |A2| |B1| |B2|)

I have read in "The Complete Idiot’s Guide to Common Lisp Packages" that "Now that you’ve learned all about the myriad functions and macros that can be used to manipulate packages you shouldn’t really be using any of them. Instead, all of the functionality of IMPORT, EXPORT, SHADOW, etc. is all rolled up in a single macro called DEFPACKAGE, which is what you should use for real (non- prototype) code."

Is there a code smell in my above code? Also, how would you export the other symbols (cat dog animal-type, etc. -- there are many of them) to avoid duplication?

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1  
What "smells" is that you need to export so many dynamically-created symbols in the first place. What is the higher level intent? –  Barmar Sep 20 '13 at 23:41
    
I am sure this could be done in fifty other ways, but I am new to Common Lisp and I ended up with an organization where those symbols' definitions are in a different package than where I am using them and I need to export them. Perhaps I did not phrase my question correctly, my symbols are not dynamically generated, the function that generates them fills the other-symbol-names only one time (inside defparameter other-symbol-names) and they do not change after that. It is just that they are many symbols, about one hundred. –  engineerX Sep 21 '13 at 8:41
    
The names you gave in the example looked like you might be using lots of numbered symbols, which should probably be just a couple of arrays. –  Barmar Sep 21 '13 at 10:35
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1 Answer 1

up vote 1 down vote accepted

It's hard to say much without knowing more about your intent and requirements, but in many situations it would be better to have one or more hash tables (or similar) which contain your dynamically generated objects, and then export symbol(s) for your hash table(s).

Here's a hand-wavy example of how this can work. If you can edit and add some more information about your requirements and constraints I'll see if I can be more help.

(in-package :cl)

(defpackage :package-a
  (:use :cl)
  (:export *objects* put get)
  (:shadow get))

(in-package :package-a)

(defvar *objects* (make-hash-table)
  "Container for dynamically generated objects we want to expose to the
  package's user.")

(defun put (name obj)
  (setf (gethash name *objects*) obj))

(defun get (name &optional default)
  (gethash name *objects* default))

;; Your code can put arbitrary objects into the hash table
(put :foo (lambda () :a-thunk))
(put :bar (lambda () :another))

;; And your users can retrieve them
(in-package :cl-user)
(use-package :package-a)
(funcall (get :foo)) ;; => :a-thunk

I used keywords for the names rather than symbols because keywords aren't local to packages (or, more specifically, they're all local to the keyword package. If you were to instead use 'foo and 'bar you'd be back to needing to export those symbols, or your user would need to use the package designator when refer to them (e.g. (get 'package-a::foo)).

You can also use strings as keys, though in that case you would want to create the table with (make-hash-table :test 'equal). The default hash table test is #'eql, which doesn't compare strings appropriately. Comparing keywords with #'eql is faster than comparing strings with #'equal (because keywords are a simple pointer comparison, as opposed to the character-by-character comparison necessary for strings) but the difference is likely insignificant unless you have specific reason to think otherwise.

This approach provides a better interface for your users, because now your have defined entry points, the opportunity for docstrings, defaults, and easier exploration at the REPL.

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thank you for your answer, although I guess it is more complicated than I need. –  engineerX Sep 21 '13 at 8:50
    
You should not use get, as that is an exported symbol from the common-lisp package (the accessor get does lookups in symbol property lists). –  Svante Sep 22 '13 at 0:39
    
@Svante, you're right insofar as getting into the details would needlessly complicate the topic under discussion, but in general I don't see any reason not to shadow packages from cl. The ability to use names appropriate to your program, regardless of what names others have or haven't used, is a big part of the utility provided by things like Common Lisp's package system. cl:get is completely absent from many programs; it would be a shame for "get" to be off-limits anyway. –  jbm Sep 22 '13 at 5:57
    
Yes, but please note CLHS chapter 11.1.2.1.2 on restrictions for conforming programs. Note that for example in SBCL, you will have to disable or circumvent a package lock to do a defun get. The rationale is quite simple: anyone would find it surprising if a basic function from the spec did not do what it says it does in the spec. –  Svante Sep 22 '13 at 11:10
1  
@Svante, that would only be true without (:shadow get) in the defpackage form. The result of shadowing the symbol cl:get is that it isn't imported into package-a at all. So defun get isn't redefining cl:get, it's simply defining package-a:get. Similarly, code consuming package-a would (:shadowing-import-from :package-a get) in their own defpackage. Try it in SBCL: package locks are only triggered if you don't shadow cl:get. –  jbm Sep 22 '13 at 15:30
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