• HDU 1209 Clock(简单水题)


    题目链接:http://acm.hdu.edu.cn/showproblem.php?pid=1209

    Clock

    Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
    Total Submission(s): 3320    Accepted Submission(s): 1018


    Problem Description
    There is an analog clock with two hands: an hour hand and a minute hand. The two hands form an angle. The angle is measured as the smallest angle between the two hands. The angle between the two hands has a measure that is greater than or equal to 0 and less than or equal to 180 degrees.

    Given a sequence of five distinct times written in the format hh : mm , where hh are two digits representing full hours (00 <= hh <= 23) and mm are two digits representing minutes (00 <= mm <= 59) , you are to write a program that finds the median, that is, the third element of the sorted sequence of times in a nondecreasing order of their associated angles. Ties are broken in such a way that an earlier time precedes a later time.

    For example, suppose you are given a sequence (06:05, 07:10, 03:00, 21:00, 12:55) of times. Because the sorted sequence is (12:55, 03:00, 21:00, 06:05, 07:10), you are to report 21:00.
     
    Input
    The input consists of T test cases. The number of test cases (T) is given on the first line of the input file. Each test case is given on a single line, which contains a sequence of five distinct times, where times are given in the format hh : mm and are separated by a single space.
     
    Output
    Print exactly one line for each test case. The line is to contain the median in the format hh : mm of the times given. The following shows sample input and output for three test cases.
     
    Sample Input
    3 00:00 01:00 02:00 03:00 04:00 06:05 07:10 03:00 21:00 12:55 11:05 12:05 13:05 14:05 15:05
     
    Sample Output
    02:00 21:00 14:05
     
    Source
     
    Recommend
    mcqsmall
     
    简单的时钟角度计算问题,1个小时对应30度,1分钟对应1/60*30=0.5度,计算下时针和分针之间的角度差,这里需要判断是否大于12点,大于12点需减去12,角度差需取绝对值,最后判断下是否超过180度就可以,结构体排序就不说了。。。
     
     1 #include<cstdio>
     2 #include<iostream>
     3 #include<algorithm>
     4 #include<cmath>
     5 using namespace std;
     6 struct node
     7 {
     8     int hh;
     9     int mm;
    10     double rad;
    11 } time[7];
    12 bool cmp(node a, node b)
    13 {
    14     if(a.rad != b.rad)return a.rad < b.rad;
    15     else if(fabs(a.rad - b.rad) < 1e-9 && a.hh != b.hh)return a.hh < b.hh;
    16     else return a.mm < b.mm;
    17 }
    18 double calrad(int hh, int mm)
    19 {
    20     double temp = fabs((hh >= 12 ? hh - 12 : hh) * 30 * 1.0 + mm / 2.0 - mm * 6.0);
    21     return (temp > 180 ? 360 - temp : temp);
    22 }
    23 void getdata()
    24 {
    25     int i;
    26     for(i = 0; i < 5; i++)
    27     {
    28         scanf("%d:%d", &time[i].hh, &time[i].mm);
    29         time[i].rad = calrad(time[i].hh, time[i].mm);
    30     }
    31     sort(time, time + 5, cmp);
    32 }
    33 int main()
    34 {
    35     int t;
    36     scanf("%d", &t);
    37     while(t--)
    38     {
    39         getdata();
    40         printf("%02d:%02d\n", time[2].hh, time[2].mm);
    41     }
    42     return 0;
    43 }
     
  • 相关阅读:
    JavaWeb图片显示与存储
    sql将日期按照年月分组并统计数量
    response的作用
    TCP/IP学习笔记(1)-----基本概念
    TCP/IP学习笔记(2)---数据链路层
    TCP/IP学习笔记(3)----IP,ARP,RARP协议
    TCP/IP学习笔记(4)------ICMP,ping,traceroute
    TCP/IP学习笔记(5)------IP选路
    如何运行简单的scrapy
    difference among String,StringBuilder,StringBuffer
  • 原文地址:https://www.cnblogs.com/lfeng/p/3052703.html
Copyright © 2020-2023  润新知