Palindrome Linked List
Given a singly linked list, determine if it is a palindrome.
Follow up:
Could you do it in O(n) time and O(1) space?
解法一:
一次遍历,装入vector,然后再一次遍历判断回文。
时间复杂度O(n),空间复杂度O(n)
/** * Definition for singly-linked list. * struct ListNode { * int val; * ListNode *next; * ListNode(int x) : val(x), next(NULL) {} * }; */ class Solution { public: bool isPalindrome(ListNode* head) { vector<int> v; while(head) { v.push_back(head->val); head = head->next; } for(int i = 0, j = v.size()-1; i < j; i ++, j --) { if(v[i] != v[j]) return false; } return true; } };
解法二:
找到链表中点,拆分后,逆转后半个链表,然后两个链表同时顺序遍历一次。
若链表长度为奇数,最末尾的元素可以忽略。
时间复杂度O(n),空间复杂度O(1)
/** * Definition for singly-linked list. * struct ListNode { * int val; * ListNode *next; * ListNode(int x) : val(x), next(NULL) {} * }; */ class Solution { public: bool isPalindrome(ListNode* head) { if(head == NULL || head->next == NULL) return true; ListNode* mid = getMid(head); ListNode* head2 = reverse(mid); while(head && head2) { if(head->val != head2->val) return false; head = head->next; head2 = head2->next; } return true; } ListNode* getMid(ListNode* head) {// at least two nodes ListNode* slow = head; ListNode* fast = head; ListNode* preslow = NULL; do { fast = fast->next; if(fast) { fast = fast->next; preslow = slow; slow = slow->next; } }while(fast != NULL); preslow->next = NULL; return slow; } ListNode* reverse(ListNode* head) { if(head == NULL || head->next == NULL) return head; else if(head->next->next == NULL) {// two nodes ListNode* tail = head->next; head->next = NULL; tail->next = head; return tail; } else { ListNode* pre = head; ListNode* cur = pre->next; pre->next = NULL; // set tail ListNode* post = cur->next; while(post) { cur->next = pre; pre = cur; cur = post; post = post->next; } cur->next = pre; return cur; } } };
