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Hi I am trying to write a function that will return an expression that is mutable and can be used as a procedure.

For example:

(fooeq 1 2) would return (eq? 1 2)

and

((fooeq 1 2)) would return #f

Is there a way to write an expression that is a symbol that can be converted into a procedure?

EDIT: I got it, thanks for the responses. In case anyone else was wondering it's the (eval p).

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How would the computer magically know to turn fooeq into eq?? –  Mehrdad Feb 17 '11 at 5:37
    
This is just an arbitrary example. Sorry let me be a little more clear. I want my original function, lets just call it foo, to actually return an arbitrary value that could then be evaluated like a procedure. So I'm wondering how I could take a value like '(eq 1 2) and actually treat it like a procedure. –  Brian Feb 17 '11 at 6:44

1 Answer 1

I guess you want fooeq to evaluate to a function:

> (define (fooeq a b)
    (lambda () (eq? a b)))

> ((fooeq 1 2))
#f
> ((fooeq 1 1))
#t
> 

A function that takes one or more functions as input or outputs a function is known as a higher-order function.

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+1 I like your answer, because even though it doesn't answer the OP's question, it's a much better thing to want to do than what the OP wants to do with eval. :-P –  Chris Jester-Young Feb 17 '11 at 7:25

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