- 题目:
Given a sorted array of integers, find the starting and ending position of a given target value.
Your algorithm's runtime complexity must be in the order of O(log n).
If the target is not found in the array, return [-1, -1]
.
For example,
Given [5, 7, 7, 8, 8, 10]
and target value 8,
return [3, 4]
.
- 说明:
1)已排序数组查找,二分查找
- 实现:
- STL实现
1 class Solution { 2 public: 3 vector<int> searchRange(int A[], int n, int target) { 4 auto low_bound=lower_bound(A,A+n,target);//第一个大于等于>=target元素的指针位置 5 auto up_bound=upper_bound(low_bound,A+n,target);//第一个大于>target元素的指针位置 6 if(*low_bound==target)//target是否存在于A[] 7 { 8 return vector<int>{distance(A,low_bound),distance(A,prev(up_bound))}; 9 } 10 else return vector<int>{-1,-1}; 11 12 } 13 };
2. 常规实现
1 class Solution { 2 public: 3 vector<int> searchRange(int A[], int n, int target) { 4 int low=0,high=n-1,middle; 5 bool isFind=false; 6 vector<int> vec; 7 while(low<=high)//二分查找,直至找到,并置标志true 8 { 9 middle=(low+high)/2; 10 if(A[middle]==target) 11 { 12 isFind=true; 13 break; 14 } 15 else if(A[middle]<target) 16 low=middle+1; 17 else 18 high=middle-1; 19 } 20 if(isFind)//如果找到,确定开始、结束与target相等的元素位置 21 { 22 low=middle; 23 high=middle; 24 while(low>=0&&A[low]==target) low--;//下界要>=0 25 low++; 26 while(high<=n-1&&A[high]==target) high++;//上界要<=n-1 27 high--; 28 vec.push_back(low); 29 vec.push_back(high); 30 } 31 else//没有目标值 32 { 33 vec.push_back(-1); 34 vec.push_back(-1); 35 } 36 return vec; 37 } 38 };