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  • LeetCode

    Rotate List

    2013.12.21 02:02

    Given a list, rotate the list to the right by k places, where k is non-negative.

    For example:
    Given 1->2->3->4->5->NULL and k = 2,
    return 4->5->1->2->3->NULL.

    Solution1:

      My first solution is clumsy with O(n^2) time complexity (X_X), at least it proves that writing this blog is necessary. Because I wouldn't remember having written such poor codes, and force myself with a better solution, a solution that is decent enough to show you here. See Solution 2, please.

      Time complexity is O(n^2), space complexity is O(1).

    Accepted code:

     1 // 2TLE, 1WA, 1AC
     2 /**
     3  * Definition for singly-linked list.
     4  * struct ListNode {
     5  *     int val;
     6  *     ListNode *next;
     7  *     ListNode(int x) : val(x), next(NULL) {}
     8  * };
     9  */
    10 class Solution {
    11 public:
    12     ListNode *rotateRight(ListNode *head, int k) {
    13         // IMPORTANT: Please reset any member data you declared, as
    14         // the same Solution instance will be reused for each test case.
    15         if(head == nullptr){
    16             return head;
    17         }
    18         
    19         int i, len;
    20         ListNode *tail;
    21         ListNode *newhead;
    22         ListNode *ptr1, *ptr2;
    23         
    24         len = 0;
    25         ptr1 = head;
    26         while(ptr1 != nullptr){
    27             ptr1 = ptr1->next;
    28             ++len;
    29         }
    30         k = k % len;
    31         if(k == 0){
    32             return head;
    33         }
    34         
    35         tail = head;
    36         while(tail->next != nullptr){
    37             tail = tail->next;
    38         }
    39         // Make it a loop~
    40         tail->next = head;
    41         
    42         ptr1 = head;
    43         while(true){
    44             ptr2 = ptr1;
    45             for(i = 0; i <= k; ++i){
    46                 ptr2 = ptr2->next;
    47             }
    48             if(ptr2 == head){
    49                 // 1WA here, should be $ptr1, wrote $ptr2
    50                 newhead = ptr1->next;
    51                 ptr1->next = nullptr;
    52                 break;
    53             }else{
    54                 // 2TLE here, forgot to move $ptr1 forward
    55                 ptr1 = ptr1->next;
    56             }
    57         }
    58         
    59         return newhead;
    60     }
    61 };

    Solution2:

      To rotate the list right by k nodes, we'll need to know the location of 4 nodes: head, tail, the last kth, the last (k + 1)th.

      The position of the nodes can be determined in O(n) time, after that we'll use O(1) time to alter the $next pointers to new direction.

      Time complexity is O(n), space complexity is O(1).

    Accepted code:

     1 // 1AC, excellent
     2 /**
     3  * Definition for singly-linked list.
     4  * struct ListNode {
     5  *     int val;
     6  *     ListNode *next;
     7  *     ListNode(int x) : val(x), next(NULL) {}
     8  * };
     9  */
    10 class Solution {
    11 public:
    12     ListNode *rotateRight(ListNode *head, int k) {
    13         if(nullptr == head){
    14             return head;
    15         }
    16         
    17         int len = 0;
    18         ListNode *p1 = nullptr, *p2 = nullptr, *tail = nullptr;
    19         
    20         // calculate the length of the list
    21         p1 = head;
    22         len = 0;
    23         while(p1 != nullptr){
    24             if(p1->next == nullptr){
    25                 tail = p1;
    26             }
    27             ++len;
    28             p1 = p1->next;
    29         }
    30         if(tail == nullptr){
    31             // cannot possibly happen
    32             return nullptr;
    33         }
    34         
    35         // reduce k to k % len
    36         k = k % len;
    37         if(k == 0){
    38             return head;
    39         }
    40         
    41         // find the (k + 1)th node from the end
    42         p1 = p2 = head;
    43         for(int i = 0; i < k + 1; ++i){
    44             p1 = p1->next;
    45         }
    46         while(p1 != nullptr && p2 != nullptr){
    47             p1 = p1->next;
    48             p2 = p2->next;
    49         }
    50         
    51         p1 = head;
    52         head = p2->next;
    53         p2->next = nullptr;
    54         tail->next = p1;
    55         return head;
    56     }
    57 };
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  • 原文地址:https://www.cnblogs.com/zhuli19901106/p/3484760.html
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