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there's something I can't get my head round... Basically I'm given the following data structure:

struct node_ll {
    int payload;
    node_ll *next;  //pointer to next node
};

Which is essentially a stack of numbers. I need to create a method with the following prototype:

int tail_return(node_ll **list)

where **list is the memory address of the above data structure. My implementation is as follows:

int tail_return(node_ll **list) {

    node_ll *temp;
    temp = *list;

    node_ll *prev_temp;
    prev_temp = *list;

    bool firstPass = true;

    while(temp){

        if(firstPass == true){
        temp = temp->next;
        firstPass = false;

        } else {
            temp = temp->next;
            prev_temp = prev_temp->next;

        }
    }

    int toReturn = prev_temp->payload;

    prev_temp->payload = 0;
    (**list).next = prev_temp;

    delete temp;
    delete prev_temp;
    return toReturn;
}

However I get the following output from test runs:

List a after head insertion of 2,4,6,8,10 elements:

{10,8,6,4,2}

now removing the last element

DELETED: 2

{10,0} where it's supposed to be: {10,8,6,4}

What am I doing wrong? Apparently the method finds the right value to delete - 2. But why when I try to print it after deletion I end up with 10 and 0?

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2  
What is tail return supposed to do? – pmr Feb 16 '12 at 22:58
    
Think about what this line of code does: (**list).next = prev_temp; – David Schwartz Feb 16 '12 at 22:58
1  
You should use std::list or std::stack, available respectively from <list> and <stack>. – Kerrek SB Feb 16 '12 at 23:02
    
tail_return finds the last element in this stack, returns it and deletes it. For example - I have another method head_return which returns the first element and deletes it and it works fine. (**list).next = prev_temp; I wa under the impression this should access the *next in the node_ll and set it to the address held in prev_temp. – Mike Feb 16 '12 at 23:03
up vote 1 down vote accepted
 (**list).next = prev_temp;

should be

prev_temp->next = 0 ; 

when you do (**list).next = prev_temp; you are manipulating the parameter which was passed to your method and not the last node in the linked list.

share|improve this answer
    
Thank you! That helped :) – Mike Feb 16 '12 at 23:36
    
@Mike if it helped you can accept the answer by clicking on the tick mark on the left. – Aditya Naidu Feb 16 '12 at 23:39
    
ok, done, thanks again! – Mike Feb 16 '12 at 23:41

I am assuming that tail_return is supposed to take a linked list of node_ll 's and delete the tail element?

Yes per @Aditya , looks like the

(**list).next = prev_temp;

line is causing a problem. The reason is that you are reassigning list to point to the second to last element (prev_temp).

Deleting the last element is correctly done by

delete temp;

And also remove the line

delete prev_temp;

since that removes the second to last element too, which you want to keep.

Plus you are currently returning the second to last element. So change

int toReturn = prev_temp->payload;

to

int toReturn = temp->payload;
share|improve this answer
(**list).next = prev_temp;

is too complicated. If you write it like this

(*list)->next = prev_temp;

it now becomes clear(er) that you change the first element in the list.

This is just a small recommendation for writing clearer code. See the other answers for the solutions to your problem(s).

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