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Suppose I have a simple symbol:

> '+
+

Is there any way I can apply that symbol as a procedure:

> ((do-something-with '+) 1 2)
3

So that '+ is evaluated to the procedure +?

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3 Answers

up vote 8 down vote accepted

I'm not 100% sure, but would:

((eval '+) 1 2)

work? I'm not sure if you need to specify the environment, or even if that works - I'm a Scheme noob. :)

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So simple, dunno how I missed that out. Thx! :) –  Yuval Adam Nov 21 '09 at 12:39
1  
No problem! (15 char.) –  Lucas Jones Nov 21 '09 at 12:49
1  
If you want it to work with any environment you should probably use (eval '+ (null-environment 5)) –  Joe D Dec 5 '10 at 9:39
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Lucas's answer is great. For untrusted input you can make a white list of allowed symbols/operators.

(define do-something (lambda (op)
                       (cond
                         ((equal? op `+) +)
                         ((equal? op `-) -)
                         ((equal? op `*) *)
                         ((equal? op `/) /)
                         ((equal? op `^) ^))))

((do-something `+) 1 2)
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Newbie too so hope I've understood your question correctly...

Functions are first class objects in scheme so you don't need eval:

1 ]=> (define plus +)

;Value: plus

1 ]=> (plus 2 3)

;Value: 5

HTH

Update: Ignore this and see the comments!

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@Ben - you missed the part where the + is quoted, hence, it is not directly a procedure until it is evaluated. –  Yuval Adam Nov 26 '09 at 15:17
    
ah yes, see that now. Thanks Yuval. –  Ben Nov 26 '09 at 21:18
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