如何获得这2个排序的链表之间的开关的位置
[英]How can I get the location of switches between these 2 sorted linked lists
问题描述
我一直在为此作业苦苦挣扎,以至于我真的很感激我能得到的任何帮助。
我遇到的问题很简单,但有点令人困惑。
这样就解决了问题的绝大部分(如第一个代码注释中提到的那样-找到这两个排序的链表之间的最大和路径)
/*
|--------------------------------------------------------------------------
| ADSL Assignment 1 | Maximum Sum Problem. |
|--------------------------------------------------------------------------
| * You are provided with two sorted lists as input.
| * Those lists have some nodes in common.
| * Find a new list composed of the union of the nodes of those two lists.
| * To create the new list, you should take parts (paths of one or more nodes) from each list and merge them together.
| * You are allowed to switch between the two original lists only at intersections (same node in both lists).
| * in order to figure out the resulting list having the path that represents the greatest maximum total.
| Input:
| * Two Sorted Linked Lists.
| Output:
| * New list containing maximum sum path.
| * Location of switches between the 2 lists.
*/
#include <iostream>
using namespace std;
class Node {
public:
int num;
Node* next;
Node(int data, Node* next = 0) { this->num = data; this->next = next; }
Node() { this->next = 0; }
};
class List {
public:
Node* head;
Node* tail;
List() { head = tail = 0; }
void AddToTail(int data) {
if (head == 0) head = tail = new Node(data);
else {
tail->next = new Node(data);
tail = tail->next;
tail->next = 0;
}
}
void Print() {
Node* temp = head;
if (temp == 0) cout << "Empty List\n";
while(temp != 0) {
cout << temp->num << "\t";
temp = temp->next;
}
cout << "\n";
}
};
List MaxSumPath(Node* head1, Node* head2)
{
List l;
Node* temp1 = 0;
Node* temp2 = 0;
Node* temp = 0;
Node* result = 0;
int sum1 = 0;
int sum2 = 0;
while (head1 || head2) {
temp1 = head1;
temp2 = head2;
sum1 = sum2 = 0;
while (head1 && head2)
{
if (head1->num < head2->num)
{
sum1 += head1->num;
head1 = head1->next;
}
else if (head2->num < head1->num)
{
sum2 += head2->num;
head2 = head2->next;
}
else break;
}
if (head1 == 0)
{
while (head2){
sum2 += head2->num;
head2 = head2->next;
}
}
if (head2 == 0)
{
while (head1){
sum1 += head1->num;
head1 = head1->next;
}
}
if (sum1 >= sum2)
{
if (result == 0) {
result = temp1;
temp = head1;
}
else {
temp->next = temp1;
temp = head1;
}
}
else if (sum1 < sum2) {
if(result == 0) {
result = temp2;
temp = head2;
}
else {
temp->next = temp2;
temp = head2;
}
}
if (head1 && head2 && temp) {
head1 = head1->next;
head2 = head2->next;
temp->next = 0;
}
}
while (result)
{
l.AddToTail(result->num);
result = result->next;
}
return l;
}
int main() {
List l1;
l1.AddToTail(1);
l1.AddToTail(3);
l1.AddToTail(30);
l1.AddToTail(90);
l1.AddToTail(120);
l1.AddToTail(240);
l1.AddToTail(511);
List l2;
l2.AddToTail(0);
l2.AddToTail(3);
l2.AddToTail(12);
l2.AddToTail(32);
l2.AddToTail(90);
l2.AddToTail(125);
l2.AddToTail(240);
l2.AddToTail(249);
cout << "List 1 = ";
l1.Print();
cout << "List 2 = ";
l2.Print();
cout << "---------------------------" << endl;
cout << "List 3 = ";
List result = MaxSumPath(l1.head, l2.head);
result.Print();
return 0;
}
我无法动手的是在这两个链接列表之间进行切换,在给出的示例中,它们应该分别为3和240
开关是路径从其延续到最大和路径的数字,它只能是两个列表之间的公共节点。
geeksforgeeks的原始问题
1 个解决方案
解决方案1
0 2019-07-29 20:08:30
您可以创建一个滑动窗口,其中滑动窗口从第一个交点到第二个交点。 对于两个链接列表,存在两个滑动窗口。 两者之和较大的滑动窗口必须位于新的链接列表中。 在滑动窗口的第一个交点之后,可以有两个临时变量指向每个链接列表中的第一个元素。 一旦确定了路径,就可以将交叉点指向该地址。
递归地确定两个排序链表之间的共同节点和不同节点
[英]Determine common and distinct nodes between two sorted linked lists recursively
(C++) 如何创建一个函数来接收两个排序的链表并返回出现在两个列表中的第三个元素列表?
[英](C++)How do I create a function that receives two sorted linked lists and returns a third list of elements appearing in both lists?
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