Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Hi I am trying to make a doubly linked list to store individual numbers as nodes of a doubly linked list and then add them together and print them out for a homework assignment. I am having a lot of trouble getting this to work and have traced my problem to my add node functions as they don't update the pointers correctly. For example on the AddToFront() function I can't understand how I can get the prev pointer to work and point to the node behind it.

I can't use the STL and have to implement the LL myself in case anyone is wondering. Thanks!

#include <stdio.h>
#include <string.h>
#include <stdlib.h>
#include <math.h>
#include <iostream>

using namespace std;

/////// PART A
template <class T>
class List {
private:
    struct Node {
        T data;
        Node *next;
        Node *prev;
    };
    Node *front, *current, *rear;

public:
    List();
    ~List();
    void AddtoFront (T newthing);
    void AddtoRear (T newthing);
    bool FirstItem (T & item);
    bool LastItem (T & item);
    bool NextItem (T & item);
    bool PrevItem (T & item);
};

template <class T>
List<T>::List() {
  front = NULL;  current = NULL; rear = NULL;
}
template <class T>
List<T>::~List() {

}

template <class T>
void List<T>::AddtoFront (T newthing) {
    if (front == NULL) {
        Node *temp;
        temp = new Node;
        temp->data = newthing;
        temp->next = front;
        temp->prev = NULL;
        front = temp;
    } else {
        Node *temp;
        temp = new Node;
            front->prev = temp;
        temp->data = newthing;
        temp->next = front;
        temp->prev = NULL;
        front = temp; 
    }
}

template <class T>
void List<T>::AddtoRear (T newthing) {
    if (rear == NULL) {
        Node *temp;
        temp = new Node;
        temp->data = newthing;
        temp->prev = rear;
        temp->next = NULL;
        rear = temp;
    } else {
        Node *temp;
        temp = new Node;
            rear->next = temp;
        temp->data = newthing;
        temp->prev = rear;
        temp->next = NULL;
        rear = temp;
    }
}

template <class T>
bool List<T>::FirstItem (T & item) {
    if (front == NULL) { return false; }
    current = front;
    item = front->data;
    return true;
}

template <class T>
bool List<T>::LastItem (T & item) {
    if (rear == NULL) { return false; }
    current = rear;
    item = rear->data;
    return true;
}

template <class T>
bool List<T>::NextItem (T & item) {
    if (current != NULL) current = current->next;
    if (current == NULL) { return false; }
    item = current->data;
    return true;
}

template <class T>
bool List<T>::PrevItem (T & item) {
    if (current == NULL) { return false; }
    if (current->prev != NULL) current = current->prev;
    item = current->data;
    return true;
}

/////// PART B
class BigNumber {
private:
//complete here...
//include here a List of integers, or shorts etc
    List<int>L;

public:
//complete here...
//what methods do you need?
//e.g., ReadFromString, PrintBigNumber, AddBigNumbers
    BigNumber();
    ~BigNumber();
    void ReadFromString(char * decstring);
    void PrintBigNumber();
    void AddBigNumbers(BigNumber B1, BigNumber B2);
};

BigNumber::BigNumber(){
// anything here?
}

BigNumber::~BigNumber(){
//you can keep that empty
}

void BigNumber::ReadFromString (char * decstring ) {
    //read a string, adding a new node per digit of the decimal string
    // To translate 'digits' to integers: myinteger=decstring[index]-48
    //You need to use the AddtoFront()
    int temp;
    for (unsigned i=0; i < strlen(decstring); ++i) {
        //cin >> decstring[i];
        temp = decstring[i]-48;
        //L.AddtoFront(temp);
        L.AddtoRear(temp);
        //cout <<"Number added!" <<endl;
    }
}

void BigNumber::PrintBigNumber () {
//complete here, print the list (i.e., use FirstItem() and NextItem() )
    int val;
    if (L.FirstItem(val)) {
        cout << val;
    } else {
        cout << "print failed";
    }
    //if (L.FirstItem(val)) { cout << "true-first";} else { cout <<"false-first";};
    //if (L.LastItem(val)) { cout << "true";} else { cout <<"false";};
    //L.FirstItem(val);
    //cout << val;
    /*while (L.PrevItem(val)){

            cout << val;
            //cout <<"Print error!Value not here.";
    }*/
}

void BigNumber::AddBigNumbers(BigNumber B1,BigNumber B2){
//complete here.
//use FirstItem(), NextItem() and AddNode()
//to add two big numbers, what do you have to do? Be careful about the carry
//Remember to add the last carry, the resulting number can have one more digit than B1 or B2
}

/////// PART C

BigNumber B1, B2, RES;

int main (int argc, char ** argv) {
  //use command line arguments
  if(argc!=3){printf("usage: executable number1 number2\n");exit(0);}
  B1.ReadFromString(argv[1]);
  B2.ReadFromString(argv[2]);
  //print
  cout << endl<< "Add the following numbers " << endl;
  B1.PrintBigNumber();
  cout << " + ";
  B2.PrintBigNumber();
  cout << " = " << endl;
  //compute the addition
  RES.AddBigNumbers(B1,B2);
  //print the result
  RES.PrintBigNumber();
  cout << endl;
  return 0;
}

EDIT: I added in a line each in AddToFront() and AddToRear(). Is this on the right track?

share|improve this question
1  
You should probably use const T &item arguments to your add functions. You could consider having an actual Node in your class which is used to implement a circular list. If that was Node head, the empty list has head->next = head->prev = &head; and you only have the current pointer separate. This can reduce the number of special cases you have to deal with. –  Jonathan Leffler Apr 10 '12 at 23:10

1 Answer 1

up vote 1 down vote accepted

AddtoFront needs to also update the prev pointer for front. That is, you're currently doing

temp -> front <-> rest_of_list

where it needs to be

temp <-> front <-> rest_of_list.

Also, you might notice that the two branches of your if statement in AddtoFront are identical... :)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.