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I'm trying to write a Scheme function called "p" with one parameter X which is a list of letters. the function should return true if the number of a's is one less than the number of b's. This is what I have but can't get around argument errors. Any help is greatly appreciated.

#lang scheme

(define p
(lambda (X)
(let ((countA 0))
(let ((countB 0))
(count(countA countB X)
(if (= countA (- countB 1))
#t
#f))))))

(define count
(lambda (A B X)
(if (null? (cdr X))
(car X)
((if (string=? "a" (car X))
((+ A 1) (p(cdr X)))
((if (string=? "b" (car X))
((+ B 1) (p(cdr X)))
(p(cdr X)))))))))
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This code has so many errors... parenthesis problems, procedure call problems. I'd suggest you start over from the beginning and test throughly each procedure in turn, before even posting this as a question –  Óscar López Mar 28 '13 at 0:45
    
I'm not getting any parenthesis problems just argument errors –  Robbie Mar 28 '13 at 0:54
    
Robbie: believe me, there are several parenthesis problems with the code. For instance: it's wrong to put double parenthesis around an if. Follow my advice, start from scratch, write a little functionality at first, and test it, test it over and over to get it right before moving to the next part of the solution. –  Óscar López Mar 28 '13 at 0:59
    
Also, forget about the let form for this problem, that's not the way to solve it. And you're incorrectly assuming that the parameters passed to the count procedure will somehow store the result after count returns - that's not right, it won't work –  Óscar López Mar 28 '13 at 1:01
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1 Answer 1

up vote 1 down vote accepted

I'm betting this is a homework. If it weren't, this is the idiomatic way to solve it:

(define (p lst)
  (= (count-letters "a" lst)
     (- (count-letters "b" lst) 1)))

(define (count-letters letter lst)
  (count (lambda (e) (string=? e letter))
         lst))

... But of course, you're expected to solve it by hand. Some feedback on your code:

  • There are multiple misplaced parenthesis
  • In particular, it's incorrect to put double parenthesis around an if
  • The way you're using let for this problem is incorrect, it might work if you were mutating the value of the variables defined in the lets, but I really doubt that's the best approach to write the solution in this case
  • You're incorrectly assuming that the parameters passed to the count procedure will somehow store the result after count returns - that's not right, it won't work like that

Take ideas from the above code to write your own solution - first, you need to define a count-letters function that doesn't use count and that, for a given letter, counts the number of times it occurs in the list. With that procedure in hand, it's pretty easy to write the p procedure (in fact, you can just snarf my implementation above!). Don't forget to test it:

(p '("a" "b" "b"))
=> #t
(p '("a" "a" "b" "b"))
=> #f
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1  
Ah I see the errors of my previous code (basically a clusterfluff) I started over from scratch like you suggested and used your idea and now it works. Thanks a bunch!! –  Robbie Mar 28 '13 at 1:13
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