leetcode34 search for a range
题目要求
Given an array of integers sorted in ascending order, 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].
即 在一个有序排列的数组中,找到目标值所在的起始下标和结束下标。若是该目标值不在数组中,则返回[-1,-1]
题目中有一个特殊要求是时间复杂度为O(logn),也就是在暗示咱们,不能只是单纯的按照顺序遍历数组,要尽可能减去无效遍历。因此这题的核心思路为二分法遍历。面试
思路一 二分法初级运用
最初的思路是使用二分法找到目标值的其中一个下标,再根据该下标左右遍历得出初始下标和结束下标。数组
public int[] searchRange(int[] nums, int target) {
int[] result = new int[]{-1, -1};
int left = 0;
int right = nums.length-1;
while(left<=right){
int mid = (left + right)/2;
if(nums[mid]==target){
while(mid>=left && nums[mid]==target){
mid--;
}
result[0] = mid+1;
mid = (left + right)/2;
while(mid<=right && nums[mid]==target){
mid++;
}
result[1] = mid - 1;
break;
}else if (nums[mid] > target){
right = mid-1;
}else{
left = mid+1;
}
}
return result;
}
思路二:二分法分别运用
假设咱们目前有左指针,右指针,并判断中间值和目标值之间的关系,那么一共有三种关系状况微信
- 中间值小于目标值,则目标值只可能在右子数组
- 中间值大于目标值,则目标值只可能在左子数组
- 中间值等于目标值,则目标值在左右子数组均可能存在
结合状况1和状况3,当中间值小于目标值,则将左指针右移至中间,不然将右指针左移至中间。这样必定能够找到目标值的初始下标
同理,结合状况2和状况3,当中间值大于目标值,则将右指针左移至中间,不然将左指针右移至中间,这样必定能够找到目标值的结束下标。spa
public int[] searchRange2(int[] nums, int target) {
int[] range = new int[]{nums.length, -1};
searchRange2(nums, target, 0, nums.length, range);
if(range[0]>range[1]) range[0]=-1;
return range;
}
public void searchRange2(int[] nums, int target, int left, int right, int[] range){
if(left>right) return;
int mid = ( left + right ) / 2;
if(nums[mid] == target){
if(mid < range[0]){
range[0] = mid;
searchRange2(nums, target,left, mid-1, range);
}
if(mid > range[1]){
range[1] = mid;
searchRange2(nums, target, mid+1, right, range);
}
}else if (nums[mid]<target){
searchRange2(nums, target, mid+1, right, range);
}else{
searchRange2(nums, target, left, mid-1, range);
}
}
这种思路更清晰的代码表示以下指针
public int[] searchRange3(int[] nums, int target) {
int[] result = new int[2];
result[0] = findFirst(nums, target);
result[1] = findLast(nums, target);
return result;
}
private int findFirst(int[] nums, int target){
int idx = -1;
int start = 0;
int end = nums.length - 1;
while(start <= end){
int mid = (start + end) / 2;
if(nums[mid] >= target){
end = mid - 1;
}else{
start = mid + 1;
}
if(nums[mid] == target) idx = mid;
}
return idx;
}
private int findLast(int[] nums, int target){
int idx = -1;
int start = 0;
int end = nums.length - 1;
while(start <= end){
int mid = (start + end) / 2;
if(nums[mid] <= target){
start = mid + 1;
}else{
end = mid - 1;
}
if(nums[mid] == target) idx = mid;
}
return idx;
}
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