Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to work through some of the exercises in SICP using Clojure, but am getting an error with my current method of executing Simpson's rule (ex. 1-29). Does this have to do with lazy/eager evalution? Any ideas on how to fix this? Error and code are below:

java.lang.ClassCastException: user$simpson$h__1445 cannot be cast to java.lang.Number at clojure.lang.Numbers.divide (Numbers.java:139)

Here is the code:

(defn simpson [f a b n]
  (defn h [] (/ (- b a) n))
  (defn simpson-term [k]
    (defn y [] (f (+ a (* k h))))
    (cond 
      (= k 0) y
      (= k n) y
      (even? k) (* 2 y)
      :else (* 4 y)))
  (* (/ h 3)
     (sum simpson-term 0 inc n)))
share|improve this question
add comment

1 Answer

up vote 7 down vote accepted

You define h as a function of no arguments, and then try to use it as though it were a number. I'm also not sure what you're getting at with (sum simpson-term 0 inc n); I'll just assume that sum is some magic you got from SICP and that the arguments you're passing to it are right (I vaguely recall them defining a generic sum of some kind).

The other thing is, it's almost always a terrible idea to have a def or defn nested within a defn. You probably want either let (for something temporary or local) or another top-level defn.

Bearing in mind that I haven't written a simpson function for years, and haven't inspected this one for algorithmic correctness at all, here's a sketch that is closer to the "right shape" than yours:

(defn simpson [f a b n]
  (let [h (/ (- b a) n)
        simpson-term (fn [k]
                       (let [y (f (+ a (* k h)))]
                         (cond 
                          (= k 0) y
                          (= k n) y
                          (even? k) (* 2 y)
                          :else (* 4 y))))]
    (* (/ h 3)
       (sum simpson-term 0 inc n))))
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.