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I trying to write a function which gets an integer number , represented by string , and check if all his chars are digits and return #t \ #f accordingly . Thats the code -

(define (splitString str) (list->vector (string->list str)))

(define myVector 0)
(define flag #t)

(define (checkIfStringLegal str) (
(set! myVector (splitString str))
(do (  (i 0 (+ i 1))  )  ; init
  ((= i (vector-length myVector)) flag) ; stop condition
  (cond ((>= 48 (char->integer (vector-ref myVector i)) ) (set! flag #f))
        ((<= 57 (char->integer (vector-ref myVector i)) )(set! flag #f))


  )    
)
) 
) 

Few explanations -

(list->vector (string->list str)) - convert string the char list .

(vector-ref myVector i) - char from the myVector at place i .

Its run OK , but when I try to use this func , like (checkIfStringLegal "444") I get -

application: not a procedure;
 expected a procedure that can be applied to arguments
  given: #<void>
  arguments...:
   #t
share|improve this question
up vote 2 down vote accepted

Try this:

(define (checkIfStringLegal str)
  (andmap char-numeric?
          (string->list str)))

This is how the procedure works:

  1. It transforms the string into a list of characters, using string->list
  2. It validates each character in the list to see if it's a number, applying the predicate char-numeric? to each one
  3. If all the validations returned #t, andmap will return #t. If a single validation failed, andmap will return #f immediately

That's a functional-programming solution (and after all, this question is tagged as such), notice that your intended approach looks more like a solution in a C-like programming language - using vectors, explicit looping constructs (do), mutation operations (set!), global mutable definitions ... that's fine and it might eventually work after some tweaking, but it's not the idiomatic way to do things in Scheme, and it's not even remotely a functional-programming solution.

EDIT:

Oh heck, I give up. If you want to write the solution your way, this will work - you had a parenthesis problem, and please take good notice of the proper way to indent and close parenthesis in Scheme, it will make your code more readable for you and for others:

(define (splitString str) (list->vector (string->list str)))
(define myVector 0)
(define flag #t)

(define (checkIfStringLegal str)
  (set! myVector (splitString str))
  (do ((i 0 (+ i 1)))
    ((= i (vector-length myVector)) flag)
    (cond ((>= 48 (char->integer (vector-ref myVector i)))
           (set! flag #f))
          ((<= 57 (char->integer (vector-ref myVector i)))
           (set! flag #f)))))

Even so, the code could be further improved, I'll leave that as an exercise for the reader:

  • Both conditions can be collapsed into a single condition, using an or
  • The exit condition should be: end the loop when the end of the vector is reached or the flag is false
share|improve this answer
    
thats would work on integer , but I have also other requirements to check on this number . So how can I solve it with my own code ? – URL87 Dec 16 '12 at 23:45
1  
@URL87 embrace functional programming! "when in Rome...". Just tweak the predicate until it meets your requirements. For example, if you have to test if it's a number or a decimal dot, use this in place of char-numeric?: (lambda (c) (or (char-numeric? c) (char=? c #\.))) – Óscar López Dec 16 '12 at 23:50
    
I tried your 1st suggestion with (checkIfStringLegal "444") , but it promped andmap: undefined; cannot reference undefined identifier – URL87 Dec 17 '12 at 0:06
    
@URL87 it means that your interpreter doesn't have an andmap procedure. Here, use this: (define (andmap pred lst) (cond ((null? lst) #t) ((not (pred (car lst))) #f) (else (andmap pred (cdr lst))))) – Óscar López Dec 17 '12 at 0:10
    
@URL87 Be aware that the "real" andmap behaves a little different, but my short implementation will work for what you need. – Óscar López Dec 17 '12 at 0:15

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