• 博客园logo
  • 会员
  • 众包
  • 新闻
  • 博问
  • 闪存
  • 赞助商
  • HarmonyOS
  • Chat2DB
    • 搜索
      所有博客
    • 搜索
      当前博客
  • 写随笔 我的博客 短消息 简洁模式
    用户头像
    我的博客 我的园子 账号设置 会员中心 简洁模式 ... 退出登录
    注册 登录
ArgenBarbie
博客园    首页    新随笔    联系   管理    订阅  订阅
189. Rotate Array -- 将数组前一半移到后一半

Rotate an array of n elements to the right by k steps.

For example, with n = 7 and k = 3, the array [1,2,3,4,5,6,7] is rotated to [5,6,7,1,2,3,4].

Note:
Try to come up as many solutions as you can, there are at least 3 different ways to solve this problem.

(1)

/*

 * this solution is so-called three times rotate method

 * because (X^TY^T)^T = YX, so we can perform rotate operation three times to get the result

 * obviously, the algorithm consumes O(1) space and O(n) time

 */



void rotate(int nums[], int n, int k) {

    if (k<=0) return;

    k %= n; 

    reverseArray(nums, n-k, n-1);

    reverseArray(nums, 0, n-k-1);

    reverseArray(nums, 0, n-1);    

}

 

(2)

/*

 * How to change [0,1,2,3,4,5,6] to [4,5,6,0,1,2,3] by k = 3?

 *

 * We can change by following rules: 

 *

 *     [0]->[3], [3]->[6], [6]->[2],  [2]->[5], [5]->[1], [1]->[4]

 *    

 *

 */

void rotate(int nums[], int n, int k) {

    if (k<=0) return;

    k %= n;

    int currIdx=0, newIdx=k;

    int tmp1 = nums[currIdx], tmp2; 

    int origin = 0;



    for(int i=0; i<n; i++){



        tmp2 = nums[newIdx];

        nums[newIdx] = tmp1;

        tmp1 = tmp2; 



        currIdx = newIdx;



        //if we meet a circle, move the next one

        if (origin == currIdx) {

            origin = ++currIdx;

            tmp1 = nums[currIdx];

        }

        newIdx = (currIdx + k) % n;



    } 

}

 

posted on 2016-08-24 09:51  ArgenBarbie  阅读(163)  评论(0)    收藏  举报
刷新页面返回顶部
博客园  ©  2004-2025
浙公网安备 33010602011771号 浙ICP备2021040463号-3