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).
You are given a target value to search. If found in the array return its index, otherwise return -1.
You may assume no duplicate exists in the array.
利用二分查找,通过中间元素和左右两个元素比较,判断哪一部分有序的
- 如果左半部分有序的,目标值落在有序区间里,那么移动右指针,因为无序的部分要么比中间元素大,要么比左端元素小,如果目标值不在有序区间内,则移动左指针
- 如果右半部分有序的,目标值落在有序区间里,那么移动左指针,抛弃左半部分,如果目标值不在有序区间里,抛弃右半部分,则移动右指针
class Solution { public: int search(int A[], int n, int target) { int left = 0, right = n-1; while(left <= right){ int mid = left+(right-left)/2; if(A[mid] == target) return mid; if(A[left]<= A[mid]){ if(A[left] <=target && A[mid] > target) right = mid-1; else left = mid+1; }else{ if(A[mid] < target && target <= A[right]) left = mid+1; else right =mid-1; } } return -1; } };
如果数组中含有相同值的元素,在左端元素、中间元素和右端元素相等的情况下,无法判断出哪一部分有序。在这种情况下,只能把左指针向前移动一步。
因此、在最坏情况下时间复杂度是O(n)