Jamie loves sleeping. One day, he decides that he needs to wake up at exactly hh: mm. However, he hates waking up, so he wants to make waking up less painful by setting the alarm at a lucky time. He will then press the snooze button every x minutes until hh: mm is reached, and only then he will wake up. He wants to know what is the smallest number of times he needs to press the snooze button.
A time is considered lucky if it contains a digit '7'. For example, 13: 07 and 17: 27 are lucky, while 00: 48 and 21: 34 are not lucky.
Note that it is not necessary that the time set for the alarm and the wake-up time are on the same day. It is guaranteed that there is a lucky time Jamie can set so that he can wake at hh: mm.
Formally, find the smallest possible non-negative integer y such that the time representation of the time x·y minutes before hh: mm contains the digit '7'.
Jamie uses 24-hours clock, so after 23: 59 comes 00: 00.
The first line contains a single integer x (1 ≤ x ≤ 60).
The second line contains two two-digit integers, hh and mm (00 ≤ hh ≤ 23, 00 ≤ mm ≤ 59).
Print the minimum number of times he needs to press the button.
3
11 23
2
5
01 07
0
In the first sample, Jamie needs to wake up at 11:23. So, he can set his alarm at 11:17. He would press the snooze button when the alarm rings at 11:17 and at 11:20.
In the second sample, Jamie can set his alarm at exactly at 01:07 which is lucky.
分析:水题。给出一个时间hh:mm(24小时制),每次可以把时间往后退x分钟,
直到hh:mm中出现数字7为止,输出后退次数。
#include<cstdio> int f(int a) { while(a) { if(a%10==7) return 1; a/=10; } return 0; } int main() { int x,a,b; scanf("%d%d%d",&x,&a,&b); if(f(a)||f(b)) {printf("0 ");return 0;} int ans=0; while(true) { if(b-x<0)//后退 { b=60-(x-b); if(a==0) a=23; else a=a-1; } else b=b-x; ans++; if(f(a)||f(b)) break; } printf("%d ",ans); return 0; }