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I'm currently working on exercise 1.29 of SICP, and my program keeps giving me the following error:

+: expects type <number> as 2nd argument, given: #<void>; other arguments were: 970299/500000

Here's the code I'm running using racket:

  (define (cube x)
    (* x x x))

  (define (integral2 f a b n)
    (define (get-mult k)
      (cond ((= k 0) 1)
            ((even? k) 4)
            (else 2)))
    (define (h b a n)
      (/ (- b a) n))
    (define (y f a b h k)
      (f (+ a (* k (h b a n)))))
    (define (iter f a b n k)
      (cond ((> n k)
             (+ (* (get-mult k)
                   (y f a b h k))
                (iter f a b n (+ k 1))))))
    (iter f a b n 0))

(integral2 cube 0 1 100)

I'm guessing the "2nd argument" is referring to the place where I add the current iteration and future iterations. However, I don't understand why that second argument isn't returning a number. Does anyone know how to remedy this error?

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It's best if the code you present is self-contained, so you should include the definition of cube so your example is runnable. –  Lindsey Kuper Jun 2 '13 at 23:57
1  
h is a constant, and is define in a closure containing the value for a b and n that you want. your definition can be rewriten to use no arguments. y only needs k, and iter needs only k and n. You've forgeoten the case where n=k in iter, and you've forgoten the (* (/ h 3) sum-terms) part of the algorithm –  WorBlux Jun 4 '13 at 4:36

2 Answers 2

up vote 3 down vote accepted

You're missing an else clause in your iter procedure. Ask yourself: what should happen when (<= n k) ? It's the base case of the recursion, and it must return a number, too!

(define (iter f a b n k)
  (cond ((> n k)
         (+ (* (get-mult k)
               (y f a b h k))
            (iter f a b n (+ k 1))))
        (else <???>))) ; return the appropriate value
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2  
Racket doesn't allow one-armed ifs. You must provide an else expression (or use when if you intend it to be for-effect). This is good because it helps you catch mistakes. Unfortunately Racket does allow conds without an else, and it doesn't help you catch that similar mistake. –  Greg Hendershott Jun 3 '13 at 15:13

"2nd argument" refers to the second argument to +, which is the expression (iter f a b n (+ k 1)). According to the error message, that expression is evaluating to void, rather than a meaningful value. Why would that be the case?

Well, the entire body of iter is this cond expression:

(cond ((> n k)
       (+ (* (get-mult k)
             (y f a b h k))
          (iter f a b n (+ k 1)))))

Under what circumstances would this expression not evaluate to a number? Well, what does this expression do? It checks if n is greater than k, and in that case it returns the result of an addition, which should be a number. But what if n is less than k or equal to k? It still needs to return a number then, and right now it isn't.

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