Allowance
Time Limit:1000MS Memory Limit:65536KB 64bit IO Format:%I64d
& %I64uDescription
As a reward for record milk production, Farmer John has decided to start paying Bessie the cow a small weekly allowance. FJ has a set of coins in N (1 <= N <= 20) different denominations, where each denomination of coin evenly divides the next-larger denomination
(e.g., 1 cent coins, 5 cent coins, 10 cent coins, and 50 cent coins).Using the given set of coins, he would like to pay Bessie at least some given amount of money C (1 <= C <= 100,000,000) every week.Please help him ompute the maximum number of weeks he can
pay Bessie.
Input
* Line 1: Two space-separated integers: N and C
* Lines 2..N+1: Each line corresponds to a denomination of coin and contains two integers: the value V (1 <= V <= 100,000,000) of the denomination, and the number of coins B (1 <= B <= 1,000,000) of this denomation in Farmer John's possession.
* Lines 2..N+1: Each line corresponds to a denomination of coin and contains two integers: the value V (1 <= V <= 100,000,000) of the denomination, and the number of coins B (1 <= B <= 1,000,000) of this denomation in Farmer John's possession.
Output
* Line 1: A single integer that is the number of weeks Farmer John can pay Bessie at least C allowance
Sample Input
3 6 10 1 1 100 5 120
Sample Output
111
Hint
INPUT DETAILS:
FJ would like to pay Bessie 6 cents per week. He has 100 1-cent coins,120 5-cent coins, and 1 10-cent coin.
OUTPUT DETAILS:
FJ can overpay Bessie with the one 10-cent coin for 1 week, then pay Bessie two 5-cent coins for 10 weeks and then pay Bessie one 1-cent coin and one 5-cent coin for 100 weeks.
FJ would like to pay Bessie 6 cents per week. He has 100 1-cent coins,120 5-cent coins, and 1 10-cent coin.
OUTPUT DETAILS:
FJ can overpay Bessie with the one 10-cent coin for 1 week, then pay Bessie two 5-cent coins for 10 weeks and then pay Bessie one 1-cent coin and one 5-cent coin for 100 weeks.
这道题采用贪心的方法。先找大于c的直接加,当小于c时尽量用大面值的凑,然后凑到接近c但不超过时从最小的凑。
#include<stdio.h>
#include<string.h>
#include<algorithm>
using namespace std;
#define INF 10000000
struct money
{
int va;//面值
int zh;//该面值钱的数目
}A[25];
typedef struct money money;
bool cmp(money a,money b)
{
return a.va>b.va;
}//按照面值从大到小来排序
int main()
{
int n,c,t;
int need[25];//用来储存第i种方案
while(scanf("%d%d",&n,&c)!=EOF)
{
int sum=0;
int i;
int co=0;
int lim=30;//lim的初始赋值应该值得注意,由于我是寻找面值从大到小,所以把lim的值应该比最大组数大,否则后面跳不出循环。如果面值从小到大寻找又不一样
for(i=0;i<n;i++)
scanf("%d%d",&A[i].va,&A[i].zh);
sort(A,A+n,cmp);
for(i=0;i<n;i++)
{
if(A[i].va>=c)
sum=sum+A[i].zh;
else
{
lim=i;//记录面值小于c的i组
break;
}
}//大于c的直接加
while(1)
{
memset(need,0,sizeof(need));
t=c;//t是相当于一个c的替代品
for(i=lim;i<n;i++)
{
if(!A[i].zh||!t)
continue;
co=t/A[i].va;
co=min(co,A[i].zh);
need[i]=co;
t=t-need[i]*A[i].va;
}//面值小于c的尽量加大的,并且尽量接近或等于c而不超过c
if(t)
{
for(i=n-1;i>=lim;i--)
{
if(A[i].va>=t&&A[i].zh>need[i])
{
need[i]++;
t=0;
break;
}
}
if(t)
break;
}//从面值最小的往上找,找到就跳出
int minn=INF;
for(i=lim;i<n;i++)
if(need[i])
minn=min(minn,A[i].zh/need[i]);//第i种方案可以给多少个星期
sum+=minn;
for(i=lim;i<n;i++)
if(need[i])
A[i].zh-=minn*need[i];//当第i种方案尽量用了张数后面值i所剩下的张数,进行i+1种方案
}
printf("%d\n",sum);
}
return 0;
}