1- 思路
思路
- 首先想要找到相交点,需要定义连个指针。两个指针一定得是同步的,例如
A 链表 [1,2,3,4,5] ,链表 B 是 [4,5]
- 1- 指针对齐:则需要
指针1 先移动,移动长度为 lenA - lenB - 2- 同时移动:移动
指针1 和 指针2 ,遇到相等则返回相等结点,否则返回 null
2- 实现
⭐160. 相交链表——题解思路
public class Solution {
public ListNode getIntersectionNode(ListNode headA, ListNode headB) {
ListNode nodeA = headA;
ListNode nodeB = headB;
int lenA = 0;
int lenB = 0;
while(nodeA!=null){
lenA++;
nodeA = nodeA.next;
}
while(nodeB!=null){
lenB++;
nodeB = nodeB.next;
}
if(lenB>lenA) return getIntersectionNode(headB,headA);
nodeA = headA;
nodeB = headB;
for(int i = 0 ; i < lenA-lenB;i++){
headA = headA.next;
}
while(headA!=null || headB!=null){
if(headA==headB){
return headA;
}
headA = headA.next;
headB = headB.next;
}
return null;
}
}
3- ACM 实现
public class getIntersectionNode {
public static class ListNode {
int val;
ListNode next;
ListNode(int x) {
val = x;
next = null;
}
}
public static ListNode getIntersection(ListNode head1,ListNode head2){
ListNode curA = head1;
ListNode curB = head2;
int len1 = 0;
int len2 = 0;
while(curA!=null){
len1++;
curA = curA.next;
}
while(curB!=null){
len2++;
curB = curB.next;
}
if(len1<len2) return getIntersection(head2,head1);
curA = head1;
curB = head2;
while (curA!=null || curB !=null){
if(curA == curB){
return curA;
}
curA = curA.next;
curB = curB.next;
}
return null;
}
public static void main(String[] args) {
Scanner sc = new Scanner(System.in);
int n1 = sc.nextInt();
ListNode head1 = null, tail1 = null;
for (int i = 0; i < n1; i++) {
int val = sc.nextInt();
ListNode newNode = new ListNode(val);
if (head1 == null) {
head1 = newNode;
tail1 = newNode;
} else {
tail1.next = newNode;
tail1 = newNode;
}
}
int n2 = sc.nextInt();
ListNode head2 = null, tail2 = null;
for (int i = 0; i < n2; i++) {
int val = sc.nextInt();
ListNode newNode = new ListNode(val);
if (head2 == null) {
head2 = newNode;
tail2 = newNode;
} else {
tail2.next = newNode;
tail2 = newNode;
}
}
int intersectionIndex = sc.nextInt();
if (intersectionIndex >= 0) {
ListNode intersectionNode = head1;
for (int i = 0; i < intersectionIndex; i++) {
if (intersectionNode != null) {
intersectionNode = intersectionNode.next;
}
}
if (tail2 != null) {
tail2.next = intersectionNode;
}
}
System.out.println("结果是"+getIntersection(head1,head2).val);
}
}
