• HDU 1009 FatMouse' Trade【贪心】


    解题思路:一只老鼠共有m的猫粮,给出n个房间,每一间房间可以用f[i]的猫粮换取w[i]的豆,问老鼠最多能够获得豆的数量 sum

                 即每一间房间的豆的单价为v[i]=f[i]/w[i],要想买到最多的豆,一定是先买最便宜的,再买第二便宜的,再买第三便宜的

                 -----m的值为0的时候求得的sum即为最大值   所以先将v[i]从小到大排序。

     

    FatMouse' Trade

    Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 45970    Accepted Submission(s): 15397
    Problem Description
    FatMouse prepared M pounds of cat food, ready to trade with the cats guarding the warehouse containing his favorite food, JavaBean. The warehouse has N rooms. The i-th room contains J[i] pounds of JavaBeans and requires F[i] pounds of cat food. FatMouse does not have to trade for all the JavaBeans in the room, instead, he may get J[i]* a% pounds of JavaBeans if he pays F[i]* a% pounds of cat food. Here a is a real number. Now he is assigning this homework to you: tell him the maximum amount of JavaBeans he can obtain.
     
    Input
    The input consists of multiple test cases. Each test case begins with a line containing two non-negative integers M and N. Then N lines follow, each contains two non-negative integers J[i] and F[i] respectively. The last test case is followed by two -1's. All integers are not greater than 1000.
     
    Output
    For each test case, print in a single line a real number accurate up to 3 decimal places, which is the maximum amount of JavaBeans that FatMouse can obtain.
     
    Sample Input
    5 3 7 2 4 3 5 2 20 3 25 18 24 15 15 10 -1 -1
     
    Sample Output
    13.333 31.500
    #include<stdio.h>
    void bubblesort(double v[],int w[],int f[],int n)
    {
        int i,j;
        double t;
        for(i=1;i<=n;i++)
        {
            for(j=i+1;j<=n;j++)
            {
                if(v[i]>v[j])
                {
                    t=v[i];
                    v[i]=v[j];
                    v[j]=t;
                    
                    t=f[i];
                    f[i]=f[j];
                    f[j]=t;
    				  
                    t=w[i];
                    w[i]=w[j];
                    w[j]=t;                             
                }
            }
        }
    }
    int main()
    {
    	int n,m,i,j,w[1000],f[1000];
    	double v[1000],sum;
    	while(scanf("%d %d",&m,&n)!=EOF&&(n!=-1)&&(m!=-1))
    	{
    		for(i=1;i<=n;i++)
    		{
    		scanf("%d %d",&w[i],&f[i]);
    		v[i]=f[i]*1.0/w[i];
    	    }
    	    bubblesort(v,w,f,n);
    	   
    	    sum=0;
    	    for(i=1;i<=n&&v[i]<=m&&m>0;i++) //如果v[i]>m,则单价大于总价,不能进行交换,跳出循环 
    	    {
    	    	
    	    	if(m>=f[i]) //总价能够买到该房间所有的豆 
    	    	{
    	    		sum+=w[i];
    	    		m=m-f[i];
    	    	}
    	    	else
    	    	{
    	    		sum+=m*1.0/v[i]; //总价只能买到该房间部分的豆,说明买完这间房间的豆,总价也用完了 
    	    		m=0;
    	    	}	
    	    }
    	    printf("%.3lf
    ",sum);	    
    	}
    }
    

      

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  • 原文地址:https://www.cnblogs.com/wuyuewoniu/p/4168518.html
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