• hdu5387 Clock


    Problem Description
    Give a time.(hh:mm:ss)。you should answer the angle between any two of the minute.hour.second hand
    Notice that the answer must be not more 180 and not less than 0
     

    Input
    There are T(1T104) test cases
    for each case,one line include the time

    0hh<24,0mm<60,0ss<60
     

    Output
    for each case,output there real number like A/B.(A and B are coprime).if it's an integer then just print it.describe the angle between hour and minute,hour and second hand,minute and second hand.
     

    Sample Input
    4 00:00:00 06:00:00 12:54:55 04:40:00
     

    Sample Output
    0 0 0 180 180 0 1391/24 1379/24 1/2 100 140 120
    这是一道简单模拟。但我做了挺长时间,果然模拟题还是非常弱啊。。这里注意尽量不要涉及小数,由于会影响精度。

    #include<iostream>
    #include<stdio.h>
    #include<stdlib.h>
    #include<string.h>
    #include<math.h>
    #include<vector>
    #include<map>
    #include<set>
    #include<queue>
    #include<stack>
    #include<string>
    #include<algorithm>
    using namespace std;
    int c[10][4],e,f;
    int gcd(int a, int b){ return a == 0 ? b : gcd(b % a, a); } 
    void jian(int a,int b,int c,int d){
    	int i,j,t1,t2,t;
    	t1=a*d-b*c;
    	t2=b*d;
    	t=gcd(t2,t1);
    	e=t1/t;
    	f=t2/t;
    }
    
    int main()
    {
    	int h,m,t,s,n,i,j,T,x2,y2,x3,y3;
    	char c1,c2;
    	double b1,b2,b3;
    	scanf("%d",&T);
    	while(T--)
    	{
    		scanf("%d:%d:%d",&h,&m,&s);
    		if(h>=12)h-=12;
    		t=h*3600+m*60+s;
    		c[1][1]=t;
    		c[1][2]=120;
    		
    		c[2][1]=m*60+s;
    		c[2][2]=10;
    		
    		c[3][1]=s*6;
    		c[3][2]=1;
    		
    		e=f=0;
    		jian(c[1][1],c[1][2],c[2][1],c[2][2]);
    		if(e*f>0){
    			e=f=0;
    			jian(c[1][1],c[1][2],c[2][1],c[2][2]);
    			if(e>f*180)jian(360,1,e,f);
    			if(f==1)printf("%d ",e);
    			else printf("%d/%d ",e,f);
    		}
    		else{
    			e=f=0;
    			jian(c[2][1],c[2][2],c[1][1],c[1][2]);
    			if(e>f*180)jian(360,1,e,f);
    			if(f==1)printf("%d ",e);
    			else printf("%d/%d ",e,f);
    		}
    		
    		e=f=0;
    		jian(c[1][1],c[1][2],c[3][1],c[3][2]);
    		if(e*f>0){
    			e=f=0;
    			jian(c[1][1],c[1][2],c[3][1],c[3][2]);
    			if(e>f*180)jian(360,1,e,f);
    			if(f==1)printf("%d ",e);
    			else printf("%d/%d ",e,f);
    		}
    		else{
    			e=f=0;
    			jian(c[3][1],c[3][2],c[1][1],c[1][2]);
    			if(e>f*180)jian(360,1,e,f);
    			if(f==1)printf("%d ",e);
    			else printf("%d/%d ",e,f);
    		}
    		
    		e=f=0;
    		jian(c[2][1],c[2][2],c[3][1],c[3][2]);
    		if(e*f>0){
    			e=f=0;
    			jian(c[2][1],c[2][2],c[3][1],c[3][2]);
    			if(e>f*180)jian(360,1,e,f);
    			if(f==1)printf("%d ",e);
    			else printf("%d/%d ",e,f);
    		}
    		else{
    			e=f=0;
    			jian(c[3][1],c[3][2],c[2][1],c[2][2]);
    			if(e>f*180)jian(360,1,e,f);
    			if(f==1)printf("%d ",e);
    			else printf("%d/%d ",e,f);
    		}
    		printf("
    ");
    	}
    	return 0;
    }


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  • 原文地址:https://www.cnblogs.com/mfmdaoyou/p/6957560.html
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