Suppose a sorted array is rotated at some pivot unknown to you beforehand.
(i.e., 0 1 2 4 5 6 7 might become 4 5 6 7 0 1 2).
Find the minimum element.
The array may contain duplicates.
解题思路:
与Leetcode Find Minimum in Rotated Sorted Array 的区别只是有重复数字。
方法一:推荐用binary search. O(logn)
当A[mid] = A[end]时,无法判断min究竟在左边还是右边。
但可以肯定的是可以排除A[end]:因为即使min = A[end],由于A[end] = A[mid],排除A[end]并没有让min丢失。所以增加的条件是:
A[mid] = A[end]:搜索A[start : end-1]
画图解决
方法二:直接观察发现最小值就是某值比前面的那个数小,就是最小值。也对。当然复杂度是O(n). 还是方法一更好。代码和之前那题没有任何变化。不用这个方法!
Java code:
1. binary search
public class Solution { public int findMin(int[] nums) { int left = 0, right = nums.length-1; while(left < right) { int mid = left + (right - left) / 2; if(nums[mid] < nums[right]){ right = mid; }else if(nums[mid] > nums[right]){ left = mid+1; }else { right--; } } return nums[left]; } }
1.2 九章算法模板方法 2016.01.18
public class Solution { public int findMin(int[] nums) { if(nums == null || nums.length == 0) { return -1; } int start = 0, end = nums.length-1; int mid; while(start + 1 < end) { mid = start + (end - start) / 2; if(nums[mid] < nums[end]) { end = mid; }else if (nums[mid] > nums[end]) { start = mid; }else { end--; } } if(nums[start] < nums[end]) { return nums[start]; }else { return nums[end]; } } }
2.
public class Solution { public int findMin(int[] nums) { for(int i = 1; i < nums.length; i++){ if(nums[i] < nums[i-1]){ return nums[i]; } } return nums[0]; } }
Reference:
1. http://bangbingsyb.blogspot.com/2014/11/leecode-find-minimum-in-rotated-sorted.html