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I'm learning racket and new to functional programming and wrote the following code for stack:

(define stack '(0))

(define (push x stack)
  (set! stack (cons x stack)))

(define (pop stack)
  (let ((result (car stack)))
    (set! stack (cdr stack))
     result))

When I do

(push 2 stack)

There is no error. When I do (pop stack) I get back 0. What am I doing wrong.

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By the way, if you are using DrRacket, use Check Syntax on your buggy code. The code will colorize in a way that helps to see the way variables are scoped. Hovering your mouse over the use of stack in the set! will display an arrow pointing, not at the global variable, but at the local variable, to help you see what thing is being affected. –  dyoo Apr 13 '13 at 22:53

2 Answers 2

up vote 1 down vote accepted

You have a global st variable, but you are calling set! on local variables in push and pop. You need to remove the st argument from your functions. The problem might be more clear if you renamed the st argument to something else (like stack).

(define (push x stack)
  (set! stack (cons x stack)))   ; stack is mutated, but st remains unchanged
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The problem is I need a global stack and I would like to do push and pop, what would you recommend doing to solve it? –  gizgok Apr 12 '13 at 6:38
    
I got it, thanks! –  gizgok Apr 12 '13 at 6:43

You are using global state i.e st and passing st as parameter to push as well and that is causing the local st in push to be updated and the global st remains '(0).

You can solve this by getting rid of the global st as shown below:

    (define (push x st)
      (cons x st))

    (define (pop st)
      (values (car st) (cdr st)))

Usage:

    (let ((stack '(0)))
      (define-values (v s) (pop (push 2 stack)))
      v)
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If I do (push 2 st) and then do (pop stack) it does not work. –  gizgok Apr 12 '13 at 6:37
    
You need to use return stack from push as param to pop –  Ankur Apr 12 '13 at 6:46

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