LeetCode 160. Intersection of Two Linked Lists
| 考点 | 难度 |
|---|---|
| Hash Table | Easy |
题目
Given the heads of two singly linked-lists headA and headB, return the node at which the two lists intersect. If the two linked lists have no intersection at all, return null.
For example, the following two linked lists begin to intersect at node c1:
The test cases are generated such that there are no cycles anywhere in the entire linked structure.
Note that the linked lists must retain their original structure after the function returns.
Custom Judge:
The inputs to the judge are given as follows (your program is not given these inputs):
intersectVal - The value of the node where the intersection occurs. This is 0 if there is no intersected node.
listA - The first linked list.
listB - The second linked list.
skipA - The number of nodes to skip ahead in listA (starting from the head) to get to the intersected node.
skipB - The number of nodes to skip ahead in listB (starting from the head) to get to the intersected node.
The judge will then create the linked structure based on these inputs and pass the two heads, headA and headB to your program. If you correctly return the intersected node, then your solution will be accepted.
思路
先算出两个linked lists的长度并且对齐两个linked lists。对齐之后A和B同时向前移动直到遇到相同的值或达到终点。
discussion部分还有另一种不需要算出来长度的解法但是我还没研究。
答案
public ListNode getIntersectionNode(ListNode headA, ListNode headB) {
int lenA = length(headA), lenB = length(headB);
while (lenA > lenB) {
headA = headA.next;
lenA--;
}
while (lenA < lenB) {
headB = headB.next;
lenB--;
}
while (headA != headB) {
headA = headA.next;
headB = headB.next;
}
return headA;
}
private int length(ListNode node) {
int length = 0;
while (node != null) {
node = node.next;
length++;
}
return length;
}
**解法有参考