[leetcode]Search in Rotated Sorted Array

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.

二分查找的变形

算法思路：

a[mid] == target return mid;

a[mid] < target 分为两种情况

1. a[mid]和target在同半边，begin = mid + 1

2. a[mid]和target在不同的半边，则a[mid]肯定在后面，target在前半边，因此往前找end = mid - 1;

a[mid] > target同理

1. a[mid]和target在同半边，end = mid - 1;

2. a[mid]和target在不同的半边，则a[mid]肯定在前面，target在后半边，因此往前找begin = mid + 1;

代码如下：

 1 public class Solution {
 2     public int search(int[] a, int target) {
 3         if(a == null || a.length == 0) return -1;
 4         int length = a.length;
 5         int begin = 0, end = length - 1;
 6         while(begin <= end){
 7             int mid = (begin + end) >> 1;
 8             if(a[mid] == target){
 9                 return mid;
10             }else if(a[mid] > target){
11                 if(target < a[begin] && a[mid] >= a[begin]){//这里如果写成a[mid]<=a[end]就不行了，因为a[mid]<=a[end]不能保证在前半段
12                     begin = mid + 1;
13                 }else{
14                     end = mid - 1;
15                 }
16             }else{
17                 if(a[mid] < a[begin] && target >= a[begin]){
18                     end = mid - 1;
19                 }else{
20                     begin = mid + 1;
21                 }
22             }
23         }
24         return -1;
25     }
26 }