前言
题目: 160. 相交链表
文档: 代码随想录——链表相交
编程语言: C++
解题状态: 没思路…
思路
依旧是双指针法,很巧妙的方法,有点想不出来。
代码
先将两个链表末端对齐,然后两个指针齐头并进,容易判断出是否相交。
/*** Definition for singly-linked list.* struct ListNode {* int val;* ListNode *next;* ListNode(int x) : val(x), next(NULL) {}* };*/
class Solution {
public:ListNode *getIntersectionNode(ListNode *headA, ListNode *headB) {ListNode* curA = headA;ListNode* curB = headB;int lenA = 0;int lenB = 0;while (curA) {++lenA;curA = curA -> next;}while (curB) {++lenB;curB = curB -> next;}curA = headA;curB = headB;if (lenB > lenA) {swap(lenA, lenB);swap(curA, curB);}int gap = lenA - lenB;while (gap--) {curA = curA -> next;}while (curA) {if (curA == curB) {return curA;}curA = curA -> next;curB = curB -> next;}return NULL;}
};
- 时间复杂度: O ( m + n ) O(m + n) O(m+n)
- 空间复杂度: O ( 1 ) O(1) O(1)