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 have an assignment, where I need to count the number of pairs in the input.

This is what I have so far:

(define x 0)

(define number-of-pairs
  (lambda (v)
    (if (pair? v)
        (+ x 1)
        (+ x 0))))

And then I use it as follows:

(number-of-pairs (cons (cons 'a 'b) 'c))

Here it should produce 2, but it instead produces 1, as it only go through the function once. If I try

(number-of-pairs 10)

it produces 0, as it should because there are no pairs.

share|improve this question
    
This code does basically nothing but call pair? on the argument. –  Matt Ball Apr 30 '12 at 17:04
    
How can I make it into a loop for every pair there is? –  user1089928 Apr 30 '12 at 17:05
1  
Use recursion... –  Matt Ball Apr 30 '12 at 17:05
    
I know what recursion is, but not sure how you would do it here? –  user1089928 Apr 30 '12 at 17:07
1  
Instead of adding just 1 to x, add 1 plus the number of pairs in the tail. No? –  Matt Ball Apr 30 '12 at 17:13

3 Answers 3

You'll have to consider two cases:

  1. What happens if the current element is not a pair?
  2. What happens if the current element is a pair?

For the second case, we can add one to the total, because we know that the current element is a pair, and then we call the recursion on both parts of the pair - because we don't know if either one of them is in turn a pair.

Here's the general idea of what needs to be done, fill-in the blanks:

(define (number-of-pairs v)
  (if (not (pair? v))
      <???>
      (+ <???>
         (number-of-pairs <???>)
         (number-of-pairs <???>))))

Use these examples for testing your procedure:

(number-of-pairs 10)
> 0

(number-of-pairs (cons (cons 'a 'b) 'c))
> 2

(number-of-pairs '(a b c))
> 3

(number-of-pairs (cons 'a (cons 'b (cons (cons 'c (cons (cons 'd '()) '())) '()))))
> 6
share|improve this answer
    
there you go stealin' all my points :) –  oobivat May 1 '12 at 14:58

Use the force, Luke!

Err. I mean use the design recipe.

See section 9.3 and 9.4 in How to Design Programs:

http://htdp.org/2003-09-26/Book/curriculum-Z-H-13.html#node_sec_9.3

If you are unfamiliar with HtDP then the philosophy is to give you tools to systematically write program rather than just give examples.

share|improve this answer

As it is written now, your code will only ever return a 1 or 0. In order to make this procedure work as intended you will need to understand two important things about scheme: how recursive calls work, and how assignment works.

Assignment:

I wrote a very in-depth breakdown of assignment in scheme, but the short version in this case is that you are not changing the value of x when you call (+ x 1). If you want to actually change the value of a binding in scheme you have to use the set! procedure (but you really don't need to do that in this case).

Recursion:

Recall that recursion is when you call a procedure from within itself. There are two necessary elements for a recursive solution: a null value, and a reduction formula.

In the case of addition or subtraction your null value is 0, for multiplication it is 1, for cons it is the empty list '().

The reduction formula is how you break down the problem into simpler pieces, or how you get the problem closer to being solved with each step.

Example:

(define count-elements
    (lambda (lst)
        (if (null? lst) 0 ; <-- I'm done? return the null value
            (+ 1 (count-elements (cdr lst)))))) ;<-- otherwise +1 and reduce the problem

Since this is homework, I won't explicitly solve this for you, but your answer should be in essentially the same form as count-elements, you'll just need another predicate to determine whether you actually need to add anything or not.

share|improve this answer

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.