题目中没有说有环还是无环,所以有了下面一大堆长的代码。思路在注释中。
public class Solution {
public ListNode FindFirstCommonNode(ListNode pHead1, ListNode pHead2) {
// 处理空的情况
if (pHead1 == null || pHead2 == null) {
return null;
}
// 判断是否有环,并且返回环的入口地址
ListNode loop1 = EntryNodeOfLoop(pHead1);
ListNode loop2 = EntryNodeOfLoop(pHead2);
// 必须都有环或者无环
// 若一个有环,另一个无环,则返回 null
if (loop1 == null ^ loop2 == null) {
return null;
}
// 三种情况:1. 同一个入口 2. 不同入口 3. 完全是两个环
// case 1 同一个入口地址,将入口作为结尾,计算无环情况
if (loop1 == loop2) {
return FirstCommonNodeBeforeLoop(pHead1, pHead2, loop1);
}
// case 2 不同入口,其中一个增加,必然在某个位置相交
// 如果循环一圈之后还不相交,说明是 case 3
ListNode tempNode = loop1;
do{
tempNode = tempNode.next;
if(tempNode == loop2) {
return loop1;
}
} while(tempNode != loop1);
return null;
}
public static ListNode FirstCommonNodeBeforeLoop(ListNode pHead1, ListNode pHead2, ListNode endNode) {
ListNode curNode1 = pHead1;
ListNode curNode2 = pHead2;
// 算 pHead1 长度
int len1 = 0;
while (curNode1 != endNode) {
len1++;
curNode1 = curNode1.next;
}
// 算 pHead2 长度
int len2 = 0;
while (curNode2 != endNode) {
len2++;
curNode2 = curNode2.next;
}
// 快慢指针法
curNode1 = pHead1;
curNode2 = pHead2;
if (len1 >= len2) {
for (int i = 0; i < len1 - len2; i++) {
curNode1 = curNode1.next;
}
} else {
for (int i = 0; i < len2 - len1; i++) {
curNode2 = curNode2.next;
}
}
while (curNode1 != curNode2) {
curNode1 = curNode1.next;
curNode2 = curNode2.next;
}
return curNode1;
}
public static ListNode EntryNodeOfLoop(ListNode pHead) {
ListNode fastPointer = pHead;
ListNode slowPointer = pHead;
do {
if (fastPointer.next == null || fastPointer.next.next == null) {
return null;
}
// 快慢指针法
fastPointer = fastPointer.next.next;
slowPointer = slowPointer.next;
} while (fastPointer != slowPointer);
// 寻找交点
fastPointer = pHead;
while (fastPointer != slowPointer) {
fastPointer = fastPointer.next;
slowPointer = slowPointer.next;
}
return fastPointer;
}
} 
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