HDU-6308 Time Zone(字符串处理)

Problem Description

Chiaki often participates in international competitive programming contests. The time zone becomes a big problem.
Given a time in Beijing time (UTC +8), Chiaki would like to know the time in another time zone s.

 

 

Input

There are multiple test cases. The first line of input contains an integer T (1≤T≤106), indicating the number of test cases. For each test case:
The first line contains two integers a, b (0≤a≤23,0≤b≤59) and a string s in the format of "UTC+X'', "UTC-X'', "UTC+X.Y'', or "UTC-X.Y'' (0≤X,X.Y≤14,0≤Y≤9).

 

 

Output

For each test, output the time in the format of hh:mm (24-hour clock).

 

 

Sample Input

 

3 11 11 UTC+8 11 12 UTC+9 11 23 UTC+0

 

Sample Output

 

11:11 12:12 03:23

 

题意:

给一个UTC+8时区的时间,求新时区的时间。

思路:

处理字符串将TUC后边的时区数值提取出来,和TUC+8时区做差,

例如UTC-2与UTC+8 相差-10个时区,如果UTC+8时区的时间为12:25,

则UTC-2时区的时间为02:25。

当时不明白负时区如何算,试尽了所有可能,全错了.....

吐槽一下:题目的时区划分不符合地理常识

代码:

#include
#include
#include
using namespace std;
int h,m;
char str[20];
int getTime(){//  处理 UTC后的数值,并转化成分钟 
	int flag=0;
	if(str[3]=='+') flag=1;
	else flag=-1;
	int a=0,b=0;
	int i=4,len=strlen(str);
	for(i=4;i

 

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