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Just as an example, put inside the function create x property and its value globally:

(defun foo ()
  (put 'spam 'x 1))

(foo)

(get 'spam 'x) ; -> 1

Is it there way to set the symbol property locally?

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What do you mean by locally - local to a function, to a buffer...? –  user4815162342 Nov 10 '13 at 23:30
    
I'm guessing you want puthash/gethash –  abo-abo Nov 10 '13 at 23:30
    
@user4815162342 I intended for local to a function, but curious of local to a buffer too. –  RNA Nov 10 '13 at 23:31
    
Scoping applies to variables, not to symbols. But Emacs only provides symbol properties, not variable properties. So, no, there is no such thing as "local" symbol properties. OTOH, I'm pretty sure we can do what you need, if you tell us for what you wanted to use local properties. –  Stefan Nov 11 '13 at 1:59
    
It's not clear (to me) what you really want/need. Sounds like this might be a case of the X Y problem. Maybe describe what you are really trying to do, instead of asking how-to-implement-this-solution for what you think might be an appropriate solution. Just a suggestion. –  Drew Nov 11 '13 at 2:23

4 Answers 4

No, because 'spam is always the same symbol a property can't be set on it locally.

I don't know if this would be appropriate for your situation, but you could create a fresh symbol and put the property on that. Because the symbol wouldn't be available outside the function neither would the property.

(defun foo ()
  (let ((private (make-symbol "private")))
    (put private 'x 1)
    (get private 'x)))

(foo) ;=> 1

(get 'private 'x) ;=> nil

make-symbol returns a "newly allocated [and] uninterned symbol", which means the symbol returned by (make-symbol "private") is a different symbol from the global 'private and all others. See here for the Emacs manual's section on creating and interning symbols for more information.

Emacs also supports buffer-local variables, though that's not quite the same thing (the symbol's value is local to a particular buffer, but the symbol itself and its properties are still global).

If you just need to bind a value to a name locally, you could also use either Emacs 24's support for lexical binding or, if you're on an older version, lexical-let from the cl package (which is included with Emacs).

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You can do it "locally" in the sense of dynamic-scoping:

(require 'cl-lib)
(defun foo ()
  (cl-letf (((get 'spam 'x) 1))
    (get 'spam 'x)))

(foo) ; -> 1

(get 'spam 'x) ; -> nil
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Although I don't quite understand what is that you want to do, seems to me that you are looking for a closure, that is, a function with an environment. To do so you have to enable lexical binding, which is supported starting from emacs 24.3 IIRC. To enable it set the buffer local variable lexical-binding to t. The popular example of a closure would be an adder factory, that is a function that returns a function that adds by a constant.

(defun make-adder (constant)
  (lambda (y) (+ y constant)))

(make-adder 3)
;; As you can see a closure is a function with an environment associated
=> (closure ((constant . 3) t) (y) (+ y constant))

(funcall (make-adder 3) 2)
=> 5
(funcall (make-adder 5) 2)
=> 8

So yes, using closures you can have private variables for a function.

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1  
No, this question is about symbol properties (which are distinct from their values as a variable). –  phils Nov 13 '13 at 0:39
    
Interesting I wasn't aware of them, thanks for the clarification. –  PuercoPop Nov 13 '13 at 2:05
1  
See C-h i g (elisp) Symbol Properties for details. –  phils Nov 13 '13 at 2:16

Code below doesn't work as expected - see comments. Will keep it nonetheless, as learned something from it, so it might be useful for others too.

(defun foo ()
  (let (bar)
    (put bar 'x "asdf")
    (get bar 'x)))

(foo) ; -> "asdf"
(get 'bar 'x) ; -> nil
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But (get nil 'x) -> "asdf", which is probably not what you want… –  lunaryorn Nov 11 '13 at 9:45
    
@lunaryorn Hmm, strange. Can't see which way nil inherits property 'x here. May you point me to some docu? –  Andreas Röhler Nov 11 '13 at 18:24
    
The let-bound bar evaluates to nil on the call to put, so ultimately you actually invoke put with nil as first argument. –  lunaryorn Nov 11 '13 at 20:48
    
@lunaryorn With ((bar t)) put also sets property of nil same way. Any explanation? –  Andreas Röhler Nov 12 '13 at 6:55
    
I cannot reproduce this. With ((bar t)), the property x is set on t. I would be surprised by anything else. Are you sure that this is not a left-over from your earlier experiment? Did you restart Emacs or reset x on nil before trying with ((bar t))? –  lunaryorn Nov 12 '13 at 13:52

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