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I am trying to do a simple task of appending a number to a string multiple times, and hoping that this will build a string.

But it is not working, each call to (string-append ....) seems to do nothing at all.

Here is my code:

(define myString "")
(string-append (number->string 4) myString)
(string-append (number->string 5) myString)
(string-append (number->string 6) myString)
(string-append (number->string 7) myString)
(display myString)

this displays:

"4"

"5"

"6"

"7"

and a blank line for (display myString)

What am I doing wrong?

also if I do it the other way like so it doesn't work either:

(define myString "")
(string-append myString (number->string 4))
(string-append myString (number->string 5))
(string-append myString (number->string 6))
(string-append myString (number->string 7))
(display myString)

Thanks for any help

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2 Answers

up vote 7 down vote accepted

string-append does not alter an existing string; it returns a new string that is the result of the operation.

If this seems unusual, consider the addition operator, +. When I write

3+4

I'm not changing 3 into 7, just returning the result of the operation.

So, in your case, if you write

(define my-string (string-append (number->string 4) (number->string 5)))
(display my-string)

You should see

45

To advise you further, it might help to know where you're heading with this.

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well its a program to convert infix notation to postfix notation. i am using a stack from this website : zoo.cs.yale.edu/classes/cs201/Fall_2007/materials/pdfs/… i read in the users input, and convert it to a list of characters. then i go through and check if the first charcter is a number, bracket or operator and run an algorithm on it so if i want to have a global string, that numbers are being added onto, how would i do this? i have declared a string above my function, but im not sure how to reassign the return value of (string-append) –  jordan.peoples Nov 21 '11 at 6:43
    
I advise you to reconsider your design. You can write your program so that it simply returns a new string rather than using global values. –  erjiang Nov 21 '11 at 15:09
    
You are right, i should redesign it to avoid global variable - i am so used to OOP languages lol! I ended up using a stack from that link before to store the dynamic variable that i initially wanted to append to the string, and so far so good - i have a program that takes a infix string ((1+3)*4) and spits out a postfix expression 1 3 + 4 *. No all i need to learn is how to print off a list without it having the ( ) parenthesis around it! thanks for the help! –  jordan.peoples Nov 22 '11 at 3:32
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The expression (string-append (number->string 4) myString) evaluates to "4", which is why your code prints 4. Similarly, (string-append (number->string 5) myString) evaluates to "5", and so on. Neither one actually alters the value of the variable myString.

To actually alter the value of the variable, you'd need to assign to that variable using Scheme's language form for assignment, set!. (The ! in the name is a Scheme convention, telling you that this is a destructive operation -- that is, one that destroys the previous value in myString and replaces it with a new one.) For instance, you could write:

(define myString "")
(set! myString (string-append myString (number->string 4))) ;; assigns "4" to myString
(set! myString (string-append myString (number->string 5))) ;; assigns "45" to myString
(set! myString (string-append myString (number->string 6))) ;; assigns "456" to myString
(set! myString (string-append myString (number->string 7))) ;; assigns "4567" to myString
(display myString) ;; prints 4567

But you could, instead, just build up the expression you want in the first place instead of having to do all those destructive operations:

(define myString 
  (string-append (number->string 4) 
    (string-append (number->string 5) 
      (string-append (number->string 6) 
        (string-append (number->string 7) "")))))
(display myString) ;; prints 4567

And at that point, instead of writing code that's so repetitive, I'd do a fold-right:

(define myString 
  (fold-right (lambda (num str) 
                (string-append (number->string num) str)) 
    "" (list 4 5 6 7)))
(display myString) ;; prints 4567

If you have to assign "4567" to a global variable called myString, then you can simply replace define with set! in either of the above two code snippets. However, although set! can come in handy at times, idiomatic Scheme tends to use set!s and other destructive operations sparingly. I like to view the exclamation point as meaning "Proceed with caution!"

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(set! myString (string-append myString (number->string 4))) this is waht i was looking for , becasue the values being added on are going to be dynamic from a list/stack. so your other options are more so for static information. i ended up redesigning the program and used a global stack instead of a string (i know i should not have used any global data, but so be it - i am too used to OOP language) Thank you! –  jordan.peoples Nov 22 '11 at 3:30
    
Another thing you might try that would be more Schemely: cons the incoming values onto a list as they come in. Then, later, if you need to spit them all out as a string, you could use something like the fold-right above. –  Lindsey Kuper Nov 22 '11 at 4:34
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