bzo1606: [Usaco2008 Dec]Hay For Sale 购买干草
1606: [Usaco2008 Dec]Hay For Sale 购买干草
Time Limit: 5 Sec Memory Limit: 64 MBSubmit: 1338 Solved: 991
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Description
约翰遭受了重大的损失:蟑螂吃掉了他所有的干草,留下一群饥饿的牛.他乘着容量为C(1≤C≤50000)个单位的马车,去顿因家买一些干草. 顿因有H(1≤H≤5000)包干草,每一包都有它的体积Vi(l≤Vi≤C).约翰只能整包购买,
他最多可以运回多少体积的干草呢?
Input
第1行输入C和H,之后H行一行输入一个Vi.
Output
最多的可买干草体积.
Sample Input
7 3 //总体积为7,用3个物品来背包
2
6
5
The wagon holds 7 volumetric units; three bales are offered for sale with
volumes of 2, 6, and 5 units, respectively.
2
6
5
The wagon holds 7 volumetric units; three bales are offered for sale with
volumes of 2, 6, and 5 units, respectively.
Sample Output
7 //最大可以背出来的体积
HINT
Buying the two smaller bales fills the wagon.
Source
题解
背包可行性问题的板子(我太弱啦!
/**************************************************************
Problem: 1606
User: a799091501
Language: C++
Result: Accepted
Time:292 ms
Memory:1608 kb
****************************************************************/
#include<iostream>
#include<cstdio>
#include<cstring>
#include<algorithm>
#include<cmath>
#include<queue>
#include<stack>
#define N 100001
using
namespace
std;
inline
int
read()
{
int
f=1,x=0;
char
ch=
getchar
();
while
(ch>
'9'
|ch<
'0'
)
{
if
(ch==
'-'
)
f=-1;
ch=
getchar
();
}
while
(ch<=
'9'
&&ch>=
'0'
)
{
x=(x<<3)+(x<<1)+ch-
'0'
;
ch=
getchar
();
}
return
f*x;
}
int
main()
{
int
c=read(),h=read(),j,i,b[100001],v[100001];
b[0]=1;
for
(i=1;i<=h;i++)
{
v[i]=read();
for
(j=c-v[i];j>=0;j--)
if
(b[j]) b[j+v[i]]=1;//核心,如果当前容量j可行,那么再放一个v[i]也一定可行
}
int
ans;
for
(i=0;i<=c;i++)
if
(b[i])ans=i;
cout<<ans;
}
就让我永远不在这里写下什么有意义的话——by 吉林神犇 alone_wolf