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OK, first I have my node structure

struct node {   
    string s;   
    node * next; 
};

And It's located within a class

    class strSet{
private:

    node * first;

And I can construct the list, and i've made checks to see it's being constructed (it is), but when i try and print it.. "Empty Set" is printed

This is my code to "print" it: (I've tried many variations of declaring a temp pointer, and still nothing)

node *temp = new node;
    temp = first;
    if (temp == NULL) cout << "Empty set" << endl;
    else {
    //  node * temp = new node;

        while (temp != NULL){
            cout << temp->s << endl;
            temp = temp->next;
        }
    }

Any help is appreciated, Thanks

EDIT: I have a function that makes a singleton list (this is for an assignment), the code is:

node *first = new node;
first->s = s;
cout << first->s << endl;
first->next = NULL;

The third line prints out the element when I add it

And yes i know there is a memory leak

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2  
How do you know that you have anything in it? –  Ignacio Vazquez-Abrams Mar 16 '11 at 11:29
    
Show us the code to insert a node. –  codaddict Mar 16 '11 at 11:31
    
where is your last segment of code run? Inside a class member of strSet? If you do not initialize first with anything, i would expect the outcome that you are receiving... –  g19fanatic Mar 16 '11 at 11:32
    
It may help to post the complete code... –  sinelaw Mar 16 '11 at 11:33
    
Why don't you use good old std::deque and make your life much simpler. –  ali_bahoo Mar 16 '11 at 11:33
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3 Answers 3

node *temp = new node;

this line is unnecessary and leaks memory; The rest of the printing routine is correct, and therefore if "Empty Set" is printer therefore the set IS empty

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hmm.. can you take a look at my function that adds a note (in the edit), maybe that's wrong? –  ABlok Mar 16 '11 at 11:36
1  
@ABlok: The routine seems correct for setting the initial node. How do you add later nodes? –  Armen Tsirunyan Mar 16 '11 at 11:42
    
I haven't implemented that function yet. I wanted to have my output function working for at least one node before I started on adding more. –  ABlok Mar 16 '11 at 11:48
    
@ABlok: If you provide a complete(but preferrably reasonably small) compilable example, I'll be able to help you –  Armen Tsirunyan Mar 16 '11 at 11:55
    
ok, let me put it all into one file –  ABlok Mar 16 '11 at 11:58
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From the small quantity of code you posted, it should work, so my guess would be that something is wrong with the construction of the list.

Now, there are some incoherences in your code - the useless "new node" for temp, as stated, but also having your (temp == NULL) ; this test could be directly operated with "first". Of course, make sure the strSet initializes first to null.

Then only you'd create temp before the while() and after the else. It's more logical (and a bit more optimal, though you're not winning much there - but you'll gain in readability).

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node *temp = new node;
temp = first;

can be condensed to -

node *temp = first ; // An unnecessary memory leak in earlier case.

Other than that print logic seems to fine. You didn't show the important part of how the linked list is formed.


node *first = new node;
first->s = s;
cout << first->s << endl;
first->next = NULL;

This is not a linked list at all. You are just creating an instance of type node* and just copying the s to it.

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that was one of the things i tried, i posted my latest version of the code, but i'll go back to that, thanks –  ABlok Mar 16 '11 at 11:35
    
I wanted to write my output function for testing purposes before other functions that would create an n sized linked list. Shouldn't it still print the value? the function there is supposed to create a "linked list" with one element –  ABlok Mar 16 '11 at 11:43
    
@ABlok - Even for printing the linked list elements, you should not create a new node in the print function. print function should get a reference to the first element of the node. i.e., void print( node* firstNode );. In the function, you need to loop over until the next points to NULL –  Mahesh Mar 16 '11 at 11:48
    
unfortunately this is for an assignment, i was given a header file to work with containing void output() const; to use as my output function, so i cant pass in a parameter –  ABlok Mar 16 '11 at 11:53
    
@ABlok - Linked lists are very easy, if understood properly. Draw the diagram of how a single linked list must look like and understand it. All the best for your assignment. –  Mahesh Mar 16 '11 at 11:54
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