题目:输入两个链表,找出它们的第一个公共结点。 |
链表结点定义如下:
struct ListNode { int m_nKey; ListNode *m_pNext; };
解决办法:首先遍历两个链表得到它们的长度,就能知道哪个链表比较长,以及长的链表比短的链表多几个结点。在第二次遍历的时候,在较长的链表上先走若干步,接着再同时在两个链表上遍历,找到的第一个相同的结点就是它们的第一个公共结点。
ListNode *FindFirstCommonNode(ListNode *pHead1, ListNode *pHead2) { //得到两个链表的长度 unsigned int nLength1 = GetListLength(pHead1); unsigned int nLength2 = GetListLength(pHead2); int nLengthDif = nLength1 - nLength2; ListNode *pListHeadLong = pHead1; ListNode *pListHeadShort = pHead2; if(nLength2 > nLength1) { pListHeadLong = pHead2; pListHeadShort = pHead1; nLengthDif = nLength2 - nLength1; } //先在长链表上走几步,再同时在两个链表上遍历 for(int i = 0; i < nLengthDif; ++i) { pListHeadLong = pListHeadLong->m_pNext; } while((pListHeadLong != NULL) && (pListHeadShort != NULL) && (pListHeadLong != pListHeadShort)) { pListHeadLong = pListHeadLong->m_pNext; pListHeadShort = pListHeadShort->m_pNext; } //得到第一个公共结点 ListNode *pFirstCommonNode = pListHeadLong; return pFirstCommonNode; } unsigned int GetListLength(ListNode *pHead) { unsigned int nLength = 0; ListNode *pNode = pHead; while(pNode != NULL) { ++nLength; pNode = pNode->m_pNext; } return nLength; }
来源:https://www.cnblogs.com/heyonggang/p/3592167.html