• 【leetcode】1396. Design Underground System


    题目如下:

    Implement the class UndergroundSystem that supports three methods:

    1. checkIn(int id, string stationName, int t)

    • A customer with id card equal to id, gets in the station stationName at time t.
    • A customer can only be checked into one place at a time.

    2. checkOut(int id, string stationName, int t)

    • A customer with id card equal to id, gets out from the station stationName at time t.

    3. getAverageTime(string startStation, string endStation) 

    • Returns the average time to travel between the startStation and the endStation.
    • The average time is computed from all the previous traveling from startStation to endStation that happened directly.
    • Call to getAverageTime is always valid.

    You can assume all calls to checkIn and checkOut methods are consistent. That is, if a customer gets in at time t1 at some station, then it gets out at time t2 with t2 > t1. All events happen in chronological order.

    Example 1:

    Input

    ["UndergroundSystem","checkIn","checkIn","checkIn","checkOut","checkOut","checkOut","getAverageTime","getAverageTime","checkIn","getAverageTime","checkOut","getAverageTime"]
    [[],[45,"Leyton",3],[32,"Paradise",8],[27,"Leyton",10],[45,"Waterloo",15],[27,"Waterloo",20],[32,"Cambridge",22],["Paradise","Cambridge"],["Leyton","Waterloo"],[10,"Leyton",24],["Leyton","Waterloo"],[10,"Waterloo",38],["Leyton","Waterloo"]]
    
    Output
    [null,null,null,null,null,null,null,14.00000,11.00000,null,11.00000,null,12.00000]
    
    Explanation
    UndergroundSystem undergroundSystem = new UndergroundSystem();
    undergroundSystem.checkIn(45, "Leyton", 3);
    undergroundSystem.checkIn(32, "Paradise", 8);
    undergroundSystem.checkIn(27, "Leyton", 10);
    undergroundSystem.checkOut(45, "Waterloo", 15);
    undergroundSystem.checkOut(27, "Waterloo", 20);
    undergroundSystem.checkOut(32, "Cambridge", 22);
    undergroundSystem.getAverageTime("Paradise", "Cambridge");       // return 14.00000. There was only one travel from "Paradise" (at time 8) to "Cambridge" (at time 22)
    undergroundSystem.getAverageTime("Leyton", "Waterloo");          // return 11.00000. There were two travels from "Leyton" to "Waterloo", a customer with id=45 from time=3 to time=15 and a customer with id=27 from time=10 to time=20. So the average time is ( (15-3) + (20-10) ) / 2 = 11.00000
    undergroundSystem.checkIn(10, "Leyton", 24);
    undergroundSystem.getAverageTime("Leyton", "Waterloo");          // return 11.00000
    undergroundSystem.checkOut(10, "Waterloo", 38);
    undergroundSystem.getAverageTime("Leyton", "Waterloo");          // return 12.00000
    

    Example 2:

    Input

    ["UndergroundSystem","checkIn","checkOut","getAverageTime","checkIn","checkOut","getAverageTime","checkIn","checkOut","getAverageTime"]
    [[],[10,"Leyton",3],[10,"Paradise",8],["Leyton","Paradise"],[5,"Leyton",10],[5,"Paradise",16],["Leyton","Paradise"],[2,"Leyton",21],[2,"Paradise",30],["Leyton","Paradise"]]
    
    Output
    [null,null,null,5.00000,null,null,5.50000,null,null,6.66667]
    
    Explanation
    UndergroundSystem undergroundSystem = new UndergroundSystem();
    undergroundSystem.checkIn(10, "Leyton", 3);
    undergroundSystem.checkOut(10, "Paradise", 8);
    undergroundSystem.getAverageTime("Leyton", "Paradise"); // return 5.00000
    undergroundSystem.checkIn(5, "Leyton", 10);
    undergroundSystem.checkOut(5, "Paradise", 16);
    undergroundSystem.getAverageTime("Leyton", "Paradise"); // return 5.50000
    undergroundSystem.checkIn(2, "Leyton", 21);
    undergroundSystem.checkOut(2, "Paradise", 30);
    undergroundSystem.getAverageTime("Leyton", "Paradise"); // return 6.66667

    Constraints:

    • There will be at most 20000 operations.
    • 1 <= id, t <= 10^6
    • All strings consist of uppercase, lowercase English letters and digits.
    • 1 <= stationName.length <= 10
    • Answers within 10^-5 of the actual value will be accepted as correct.

    解题思路:在checkin的时候,用字典记录每一个乘客的上车车站,key值为乘客id;checkout的时候,根据乘客id找出上车车站,同时用另一个字典记录乘客的乘车时间,key值为(上车车站,下车车站),同时记录key值出现的次数。

    代码如下:

    class UndergroundSystem(object):
    
        def __init__(self):
            self.dic_passagner = {}
            self.dic_station = {}
    
        def checkIn(self, id, stationName, t):
            """
            :type id: int
            :type stationName: str
            :type t: int
            :rtype: None
            """
            self.dic_passagner[id] = [stationName,t]
    
        def checkOut(self, id, stationName, t):
            """
            :type id: int
            :type stationName: str
            :type t: int
            :rtype: None
            """
            checkIn_station,checkIn_time = self.dic_passagner[id]
            del self.dic_passagner[id]
            if (checkIn_station,stationName) not in self.dic_station:
                self.dic_station[(checkIn_station,stationName)] = [t-checkIn_time,1]
            else:
                self.dic_station[(checkIn_station, stationName)][0] += t - checkIn_time
                self.dic_station[(checkIn_station, stationName)][1] += 1
    
        def getAverageTime(self, startStation, endStation):
            """
            :type startStation: str
            :type endStation: str
            :rtype: float
            """
            return float(self.dic_station[(startStation,endStation)][0]) / float(self.dic_station[(startStation,endStation)][1])
            
    
    
    # Your UndergroundSystem object will be instantiated and called as such:
    # obj = UndergroundSystem()
    # obj.checkIn(id,stationName,t)
    # obj.checkOut(id,stationName,t)
    # param_3 = obj.getAverageTime(startStation,endStation)
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  • 原文地址:https://www.cnblogs.com/seyjs/p/12631557.html
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