标签:algorithm 排序数组 integer 必须 排列 list out ted self
LeetCode 0034. Find First and Last Position of Element in Sorted Array在排序数组中查找元素的第一个和最后一个位置【Medium】【Python】【二分】
Given an array of integers nums 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].
Example 1:
Input: nums = [5,7,7,8,8,10], target = 8
Output: [3,4]Example 2:
Input: nums = [5,7,7,8,8,10], target = 6
Output: [-1,-1]给定一个按照升序排列的整数数组 nums,和一个目标值 target。找出给定目标值在数组中的开始位置和结束位置。
你的算法时间复杂度必须是 O(log n) 级别。
如果数组中不存在目标值,返回 [-1, -1]。
示例 1:
输入: nums = [5,7,7,8,8,10], target = 8
输出: [3,4]示例 2:
输入: nums = [5,7,7,8,8,10], target = 6
输出: [-1,-1]二分查找
两次二分查找。
1. 查找 left,所以 nums[mid] < target 时,才移动 left 指针
2. 查找 right,所以 nums[mid] <= target 时,才移动 left 指针
3. lower_bound 返回的是开始的第一个满足条件的位置,而 upper_bound 返回的是第一个不满足条件的位置。所以,当两个相等的时候代表没有找到,如果找到了的话,需要返回的是 [left, right - 1]。时间复杂度: O(logn)
空间复杂度: O(1)
class Solution(object):
def searchRange(self, nums, target):
"""
:type nums: List[int]
:type target: int
:rtype: List[int]
"""
# solution one: binary search
left = self.lowwer_bound(nums, target)
right = self.higher_bound(nums, target)
if left == right:
return [-1, -1]
return [left, right - 1]
def lowwer_bound(self, nums, target):
# find in range [left, right)
left, right = 0, len(nums)
while left < right:
mid = int((left + right) / 2)
if nums[mid] < target: # <
left = mid + 1
else:
right = mid
return left
def higher_bound(self, nums, target):
# find in range [left, right)
left, right = 0, len(nums)
while left < right:
mid = int((left + right) / 2)
if nums[mid] <= target: # <=
left = mid + 1
else:
right = mid
return left
# # solution two: bisect
# left = bisect.bisect_left(nums, target)
# right = bisect.bisect_right(nums, target)
# if left == right:
# return [-1, -1]
# return [left, right - 1]LeetCode | 0034. 在排序数组中查找元素的第一个和最后一个位置【Python】
标签:algorithm 排序数组 integer 必须 排列 list out ted self
原文地址:https://www.cnblogs.com/wonz/p/12348522.html
