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I'm trying to wrap my head around recursion with clojure. I'm getting a stack overflow error with the following code, can anyone spot the issue?

(I know this is inefficient but it's strictly for learning purposes)

user=> (defn addall
         ([] 0)
         ([& x]
           (if (empty? x) 0)
           (+ (first x) (addall (rest x)))))
user/addall
user=> (addall 1)
StackOverflowError   clojure.lang.ArraySeq.next (ArraySeq.java:78)
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2 Answers 2

up vote 7 down vote accepted

It looks like your parenthesization is wrong -- your if needs an else form. I suspect you meant something like:

(defn addall
  ([] 0)
  ([& x]
     (if (empty? x) 
         0   ;;; <=== no ')' after 0
         (+ (first x) (addall (rest x))))))  ;;; <== extra ')' here

But even with that fixed, your code is still wrong: it assumes that it's called with multiple arguments -- (addall 1 2 3) -- but recurs by passing itself a list -- (addall [2 3]). This results in it getting stuck in a loop that doesn't make any progress, which you can observe by adding a print statement:

(defn addall
  ([] 0)
  ([& x]
     (print (str "new x: " x "\n"))
     (if (empty? x) 
         0   ;;; <=== no ')' after 0
         (+ (first x) (addall (rest x))))))

This actually produced a segfault on my computer!

Also, it has two base cases. I'd suggest this instead:

(defn addall
  [xs]
  (if (empty? xs) 
      0
      (+ (first xs) 
         (addall (rest xs)))))

To be called with a vector:

(addall [1 2 3])

Alternatively, if you want to use a variadic function, you'd also need apply:

(defn addall
  [& x]
  (print (str "new x: " x "\n"))
  (if (empty? x) 
      0
      (+ (first x) 
         (apply addall (rest x))))) ;;; <=== apply addall

That said, you should note that Clojure does not have tail-call optimization, which means that this code would fail with medium-sized inputs. Clojure encourages the use of loop/recur and built-in sequence processing functions instead.

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1  
But this isn't causing the stack overflow. The first call x is bound to (1), the second and subsequent it is bound to (()), which is not empty. An option would be (apply addall (rest x)). –  A. Webb Jan 29 '13 at 17:44
    
@A.Webb nice catch, thanks! –  Matt Fenwick Jan 29 '13 at 17:46
    
Ah that makes much more sense, would you know how I would go about this using & in theory? How would I break down the arguments in a recursive fashion? –  LinuxN00b Jan 29 '13 at 17:56
    
@LinuxN00b good question -- I've edited that in to my answer. Good luck! –  Matt Fenwick Jan 29 '13 at 18:00
    
That's great, thanks a million for all your help –  LinuxN00b Jan 29 '13 at 18:12

I think this is what you want:

(defn addall ([x] (if (empty? x) 0 (+ (first x) (addall (rest x))))))

as mentioned by Matt Fenwick, you should use loop/recur. A more idiomatic approach is to use reduce:

(reduce + [1 2 3 4 5])

There is a lot of wonderful tools baked in to clojure, and often you don't need things like loop/recur or explicit recursion.

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I'm still getting the stack overflow error with your code when I add the & operator. I know reduce would be the smart way to do this, however I'm trying to understand how to properly create a recursive function from scratch in order to fully understand it –  LinuxN00b Jan 29 '13 at 17:53

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