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I have been given a structure for the nodes that will make up my stack but I am having trouble understanding it.

    struct stackNode 
{
  char data;
  struct stackNode *nextPtr;
};

typedef struct stackNode StackNode; 
typedef StackNode *StackNodePtr;

I understand that I have a structure called stackNode, renamed StackNode (or a second type with the same everything except name?), which has two types, a char and a pointer to a stackNode.

I am not sure what the final line means, can anyone step through and explain it to me? I think it means there is a new type, which is a pointer to a StackNode, called a StackNodePtr. Is this right?

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2 Answers 2

Yes, whenever you use a StackNodePtr you are essentially using a StackNode* that is in turn equal to a struct stackNode*. The spacing and asterix placement can evidently lead to some confusion. I would personally write it as typedef StackNode* StackNodePtr; to be a bit clearer with what gets typedef-ed to what.

These three lines would be equal:

StackNodePtr myPointer;
StackNode *myPointer; 
struct stackNode *myPointer;

The reason for the typedef struct stackNode StackNode is usually to avoid having to write struct whenever using it.

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Okay. I'm have some issues with the pop method I've written to go with this stack. I think I have it very wrong or something because I'm getting a number of errors. I try to assign the header of the linked list to a temporary stackNode, and used this temp.nextPtr = *topPtr->nextPtr; with *topPtr being a StackNodePtr to the header. I get the error "request for member ‘nextPtr’ in something not a structure or union", do you know why? (Sorry formatting... I'm new) –  Alice L May 9 '13 at 12:03
    
If you have a StackNodePtr, you don't need the asterix. See the answer for an explanation (it is "included" in the StackNodePtr typedef)! –  Victor Sand May 9 '13 at 12:03
    
Oh, yeah, I have tried it without the asterix and I get a different error message. With temp.nextPtr = topPtr->nextPtr; This time I get "request for member ‘nextPtr’ in something not a structure or union." –  Alice L May 9 '13 at 13:39
    
Is temp a StackNode and topPtr a StackNodePtr? –  Victor Sand May 9 '13 at 14:14
    
Yes, that is correct. –  Alice L May 9 '13 at 14:16

You have three things.

  1. You are declaring a type named struct stackNode, and providing the structure definition.
  2. You are defining a new type, StackNode, that is an alias of (and is type-compatible with) struct stackNode.
  3. You are defining a new type, StackNodePtr, that is an alias of (and, again, type-compatible with,) StackNode * (and struct stackNode *).

The poing being, that instead of declaring your node variable as struct stackNode newNode, and your list head as struct stackNode *head, you declare your node variable as StackNode newNode and your list head as StackNodePtr head.

This is a fairly common idiom, although some people recommend against doing it this way. (And, of course, other people insist that this is the right way, too.)

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