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I am working on this assignment.

I need to create a temporary stack without initializing it.

Then push the items of stack 1 into this temporary stack using a while loop.

Then I need to use another (nested?) loop to walk through the temp stack and add the items from temp stack onto stack 2.

Then I need to set stack 1 and 2 equal so stack 2 remains unchanged.

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What is linkedStackType? And why can't you just copy? You're copying to tmpStack already. –  pezcode Jan 20 '12 at 22:47
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I need to revise this question. –  OurFamily Page Jan 20 '12 at 22:55
    
linkedstacktype is constructor –  OurFamily Page Jan 20 '12 at 22:56
    
data was added to the stack previously –  OurFamily Page Jan 20 '12 at 22:57
    
I need to copy the items to the temp stack. Then I need to create a loop that walks through the temp stack and adds the items to stack 2. That's the assignment. In the book I see where it says how to copy a stack. But this is not what I am supposed to do? –  OurFamily Page Jan 20 '12 at 22:58

1 Answer 1

up vote 2 down vote accepted

Your interfaces look a bit off. Let's start there and see if that gets you over your hump.

stack.top() usually peeks at an item, but doesn't remove it. This doesn't seem useful for transfering from one stack to anther. You already have isEmptyStack() to check that the top element exists.

stack.pop() usually takes the top item from a stack. This sounds useful for transferring.

stack.push(item) places item onto the top of the stack. This sounds useful for transferring.

stack.push() just seems wrong. Push what?

Hopefully, once you implement these methods, the rest will start to make sense from the english description of the problem you provided.

Update: this is what you want:

|a  |   |     |   |   |     |   |   |     |   |c  |
|b  |   |     |b  |   |     |   |b  |     |   |b  |
|c  |   |     |c  |a  |     |c  |a  |     |   |a  |
1   tmp 2     1   tmp 2     1   tmp 2     1   tmp 2

|   |   |     |   |   |     |   |   |a
|   |b  |     |   |   |b    |   |   |b
|   |a  |c    |   |a  |c    |   |   |c
1   tmp 2     1   tmp 2     1   tmp 2 

Now, with just push, pop, and IsEmptyStack, with no assigning of stacks to one another (that sort of defeats the purpose of the assignment), can you do this?

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template <class Type> void transferStack(linkedStackType<Type>& stack1, linkedStackType<Type>& stack2) { Type item; linkedStackType<Type> tmpStack = stack1; while (stack1.isEmptyStack() == false) { item = stack1.top(); stack1.push(item); } tmpStack = stack1; while (stack1.isEmptyStack() == false) { item = stack1.top(); stack2.push(item); } stack1 = stack2; –  OurFamily Page Jan 20 '12 at 23:14
    
how do I put comments here in the code format? –  OurFamily Page Jan 20 '12 at 23:15
    
@OurFamilyPage: You don't. Feel free to update your question with the code posting, perhaps with an "Updated: ..." line to explain. –  ccoakley Jan 20 '12 at 23:40
    
@OurFamilyPage: does top() remove the top item or just peek at it? if it just peeks, your code in the comment will infinite loop. If it removes the top item, why not call it pop(), which is something every programmer learns when dealing with stacks? –  ccoakley Jan 20 '12 at 23:44
    
top() peeks at it, pop() removes it. –  Nic Foster Jan 20 '12 at 23:59

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