简介
购物单
有点没有讲清楚, 对于编号没有讲清楚. 不过还是挺复杂的. 看题解是, 有约束的背包问题.
code
代码抄的, 不过有点理解了
#include<iostream>
#include<vector>
using namespace std;
int max(int m, int n)
{
return m>n?m:n;
}
int dp[3200];
int main()
{
int N,n,v,p,q;
cin >> N >> n;
N = N/10;
int *ZJ_Pri = new int[n+1](); int *ZJ_Imp = new int[n+1]();
int *FJ1_Pri = new int[n+1](); int *FJ1_Imp = new int[n+1]();
int *FJ2_Pri = new int[n+1](); int *FJ2_Imp = new int[n+1]();
for(int i=1; i<=n; i++)
{
cin >> v >> p >> q;
v = v / 10;
if(q == 0)
{
ZJ_Pri[i] = v;
ZJ_Imp[i] = v * p;
}
else if(FJ1_Pri[q] == 0)
{
FJ1_Pri[q] = v;
FJ1_Imp[q] = v * p;
}
else
{
FJ2_Pri[q] = v;
FJ2_Imp[q] = v * p;
}
}
for(int i = 1; i <= n; i++)//i---前i个物品
{
for(int j = N; j >=1; j--)//j--当前的钱数
{
if(j >= ZJ_Pri[i])
dp[j] = max(dp[j], dp[ j-ZJ_Pri[i] ] + ZJ_Imp[i]);
if(j >= ZJ_Pri[i] + FJ1_Pri[i])
dp[j] = max(dp[j], dp[ j-ZJ_Pri[i]-FJ1_Pri[i] ] + ZJ_Imp[i] + FJ1_Imp[i]);
if(j >= ZJ_Pri[i] + FJ2_Pri[i])
dp[j] = max(dp[j], dp[ j-ZJ_Pri[i]-FJ2_Pri[i] ] + ZJ_Imp[i] + FJ2_Imp[i]);
if(j >= ZJ_Pri[i] + FJ1_Pri[i] + FJ2_Pri[i])
dp[j] = max(dp[j], dp[ j-ZJ_Pri[i]-FJ1_Pri[i]-FJ2_Pri[i] ] + ZJ_Imp[i] + FJ1_Imp[i] + FJ2_Imp[i]);
}
}
cout << dp[N]*10 << endl;
delete[] ZJ_Pri;
delete[] ZJ_Imp;
delete[] FJ1_Pri;
delete[] FJ1_Imp;
delete[] FJ2_Pri;
delete[] FJ2_Imp;
return 0;
}