LeetCode-539 最小时间差
作者:互联网
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/minimum-time-difference
题目描述
给定一个 24 小时制(小时:分钟 "HH:MM")的时间列表,找出列表中任意两个时间的最小时间差并以分钟数表示。
示例 1:
输入:timePoints = ["23:59","00:00"]
输出:1
示例 2:
输入:timePoints = ["00:00","23:59","00:00"]
输出:0
提示:
2 <= timePoints <= 2 * 104
timePoints[i] 格式为 "HH:MM"
解题思路
将输入的时间进行排序,那么时间差就会出现在相邻的时间之间,遍历所有相邻的时间,找出最小值,值得注意的是,时间是可循环的,所以,最大的时间到次日最小时间也是需要考虑进去的。
代码展示
class Solution {
public:
int ToMinute(string s)
{
return (s[0] - '0') * 600 + (s[1] - '0') * 60 + (s[3] - '0') * 10 + s[4] - '0';
}
int findMinDifference(vector<string>& timePoints) {
int n = timePoints.size();
if(n > 1440) return 0;
sort(timePoints.begin(), timePoints.end());
int iLast = ToMinute(timePoints[0]);
int iMin = INT_MAX;
for(int i = 1; i < n; i++)
{
int iCur = ToMinute(timePoints[i]);
if(iCur - iLast < iMin)
{
iMin = iCur - iLast;
}
iLast = iCur;
}
if(1440 + ToMinute(timePoints[0]) - ToMinute(timePoints[n-1]) < iMin)
{
iMin = 1440 + ToMinute(timePoints[0]) - ToMinute(timePoints[n-1]);
}
return iMin;
}
};
运行结果
标签:00,int,iLast,iMin,timePoints,时间差,LeetCode,539,ToMinute 来源: https://www.cnblogs.com/zhangshihang/p/15817659.html