• hdu_1009_FatMouse' Trade_201310280910


    FatMouse' Trade

    http://acm.hdu.edu.cn/showproblem.php?pid=1009

    Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others) Total Submission(s): 35250    Accepted Submission(s): 11553

    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
     
    Author
    CHEN, Yue
     
    Source
     
     1 #include <stdio.h>
     2 
     3 typedef struct ST
     4 {
     5     int j;
     6     int f;
     7     double t;
     8 }ST;
     9 ST s[1010];
    10 
    11 int cmp(const void *a,const void *b)
    12 {
    13     return (*(ST *)a).t > (*(ST *)b).t ? 1 : -1;
    14 }
    15 
    16 int main()
    17 {
    18     int m,n;
    19     while(scanf("%d %d",&m,&n),(m!=-1&&n!=-1))
    20     {
    21         int i,j;
    22         int num;
    23         double sum=0;
    24         for(i=0;i<n;i++)
    25         {
    26             scanf("%d %d",&s[i].j,&s[i].f);
    27             s[i].t = s[i].j*1.0/s[i].f;
    28         }
    29         qsort(s,n,sizeof(s[0]),cmp);
    30         num=m;
    31         for(i=n-1;i>=0;i--)
    32         {
    33             if(num>s[i].f)
    34             {
    35                 sum+=s[i].j;
    36                 num-=s[i].f;
    37             }
    38             else
    39             {
    40                 sum+=s[i].t * num;
    41                 num=0;
    42             }
    43             if(num==0)
    44             break;
    45         }
    46         printf("%.3lf
    ",sum);
    47     }
    48     return 0;
    49 }
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  • 原文地址:https://www.cnblogs.com/xl1027515989/p/3391798.html
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