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Is the following function tail-recursive? If not, what might I do to modify it?

(define (euclids-alg n1 n2)
 (cond((= n1 0) n2)
      ((= n2 0) n1)
      ((= n1 n2) n1)
      ((> n1 n2) (euclids-alg (- n1 n2) n2))
      ((< n1 n2) (euclids-alg n1 (- n2 n1))))) 
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The function is euclid's algorith to find greatest common denominators if anyone was wondering. –  John Friedrich Dec 3 '13 at 18:08
1  
It appears that you're working under the assumption that n1 and n2 are numbers. If that's the case, then there's no reason to check (< n1 n2) in the final clause. Since you know that (= n1 n2) and (> n1 n2) are false, it must then be the case that (< n1 n2), so the last check is redundant. –  Joshua Taylor Dec 3 '13 at 18:36

1 Answer 1

up vote 5 down vote accepted

Yes, your function is tail recursive, because the recursive call is in tail position - meaning, it's the last thing it's done after the recursion returns. Take a look at the specification to better understand when we have a valid tail call and when we don't.

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