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.
Hint:
Could you do it in-place with O(1) extra space?
Could you do it in-place with O(1) extra space?
Related problem: Reverse Words in a String II
Credits:
Special thanks to @Freezen for adding this problem and creating all test cases.
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【思路一】
这个题目的意思是把数组尾部的n = (K%nums.length)个元素移动到数组的前面。一个最简单的想法就是把后面n个元素依次往前移动即可。代码如下:
1 public class Solution { 2 public void rotate(int[] nums, int k) { 3 if(nums==null || nums.length <= 0) return; 4 int n = k % nums.length; 5 6 for(int i = 0; i < n; i++){ 7 for(int j = nums.length - n + i; j > i; j--){ 8 int temp = nums[j-1]; 9 nums[j-1] = nums[j]; 10 nums[j] = temp; 11 } 12 } 13 } 14 }
这样做空间复杂度为O(1),但是时间复杂度较高,如何改进呢?
【思路二】
例如:[1,2,3,4,5,6,7] k = 3
先将5以前的数据翻转得到的数组是[4,3,2,1,5,6,7]
再将5及以后的数据翻转得到的数组是[4,3,2,1,7,6,5]
再将整个数组翻转即得到[5,6,7,1,2,3,4]
代码如下:
1 public class Solution { 2 public void rotate(int[] nums, int k) { 3 if(nums==null || nums.length <= 0 || k%nums.length==0) return; 4 int length = nums.length; 5 k = k%length; 6 7 reversal(nums, 0, length - k - 1); 8 reversal(nums, length -k, length - 1); 9 reversal(nums, 0, length - 1); 10 } 11 public void reversal(int[] nums, int i, int j){ 12 int t = 0; 13 while(i < j && i >= 0){ 14 t = nums[i]; 15 nums[i] = nums[j]; 16 nums[j] = t; 17 i++; 18 j--; 19 20 } 21 } 22 }