剑指 Offer22.链表中倒数第k个节点
题目描述
解法一
顺序查找
思路:链表长度为n,则链表倒数第k个节点是第n-k个节点
class Solution {
public:
ListNode* getKthFromEnd(ListNode* head, int k) {
int n = 0;
ListNode *temp = head;
// for (node = head; node; node = node->next) { n++; } 可替换
while(temp){
n++;
temp = temp->next;
}
for(temp = head; n > k; n--){
temp = temp->next;
}
return temp;
}
};
解法二
双指针法
思路:fast指针向后走k步,slow与fast同步向后走,
当fast指针指向链表尾部空节点时,返回slow所指向的节点。
class Solution { public: ListNode* getKthFromEnd(ListNode* head, int k) { ListNode *fast = head; ListNode *slow = head; while(fast && k > 0){ fast = fast->next; k--; } while(fast){ fast = fast->next; slow = slow->next; } return slow; } };
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