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Lets say I have two variables and I want to set the variable with lower value to nil.

Is it possible to make it work this way?

(setf a1 5)
(setf a2 6)  
(setf
  (if (< a1 a2) a1 a2)
  nil
)
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up vote 9 down vote accepted

If you want to do something close to this, you can use (setf (symbol-value var) ...):

> (defparameter a1 5)
> (defparameter a2 6)
> (setf (symbol-value (if (< a1 a2) 'a1 'a2)) nil)
> a1
nil
> a2
6

To get a syntax closer to the one in your question, you can define an setf-expanderfor if:

(defsetf if (cond then else) (value)
     `(progn (setf (symbol-value (if ,cond ,then ,else)) ,value)
              ,value))

Then you can write (setf (if (< a1 a2) 'a1 'a2) nil)

However, the best way of writing the code is probably to do it straight forward, using an if with setf forms in both branches:

(if (< a1 a2) 
    (setf a1 nil)
    (setf a2 nil))
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AFAIR, defining SETF for standard functions/macros/special operators is not allowed by CL specification. – monoid May 12 '13 at 3:46
2  
@monoid You are partially right. Section 11.1.2.1.2 says that the consequences of defining set expanders for symbols in the COMMON-LISP package is undefined. – Terje D. May 12 '13 at 8:30
1  
OK, it is not "not allowed", it is "you shouldn't" :) – monoid May 12 '13 at 8:39
    
Thank you, sure it is more clever do put setfs into if... but in some cases this may be more readable/easier :) – Buksy May 13 '13 at 9:35

No, because that if form is not a place and thus not setfable.

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Although it's not very useful by itself, you might want to regard this as a little hint:

(defun new-values (x y)
  (if (< x y) (values nil y) (values x nil)))

(setf a1 5)
(setf a2 6)  
(setf (values a1 a2) (new-values a1 a2))
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