HDU 3496 Watch The Movie【二维背包】
DuoDuo list N piece of movies from 1 to N. All of them are her favorite, and she wants her uncle buy for her. She give a value Vi (Vi > 0) of the N piece of movies. The higher value a movie gets shows that DuoDuo likes it more. Each movie has a time Ti to play over. If a movie DuoDuo choice to watch she won’t stop until it goes to end.
But there is a strange problem, the shop just sell M piece of movies (not less or more then), It is difficult for her uncle to make the decision. How to select M piece of movies from N piece of DVDs that DuoDuo want to get the highest value and the time they cost not more then L.
How clever you are! Please help DuoDuo’s uncle.
The first line is: N(N <= 100),M(M<=N),L(L <= 1000)
N: the number of DVD that DuoDuo want buy.
M: the number of DVD that the shop can sale.
L: the longest time that her grandfather allowed to watch.
The second line to N+1 line, each line contain two numbers. The first number is the time of the ith DVD, and the second number is the value of ith DVD that DuoDuo rated.
The total value that DuoDuo can get tonight.
If DuoDuo can’t watch all of the movies that her uncle had bought for her, please output 0.
思路 |
二维背包中的简单套用模板即可。但是注意题目最后要求不能看完所有买的movie输出0,即初始化f[][]时要有些技巧设成无限小。若初始化为0会产生WA的情况。 |
源码 |
#include<stdio.h> #include<string.h> #include<iostream> using namespace std; int INF=0x3fffffff; int f[105][2000]; int main() { int t, i, k, j, n, m, l; int time[105], vau[105]; scanf("%d", &t); while(t--) { memset(time, 0, sizeof(time)); memset(vau, 0, sizeof(vau)); memset(f, 0, sizeof(f)); scanf("%d%d%d", &n, &m, &l); for(i=1; i<=n; i++) scanf("%d%d", &time[i], &vau[i]); for(i=1;i<=m;i++) for(j=0;j<=l;j++) f[i][j]=-INF; for(i=1; i<=n; i++) for(j=m; j>0; j--) for(k=l; k>=time[i]; k--) f[j][k]=max(f[j][k], f[j-1][k-time[i]]+vau[i]); if(f[m][l]<0) printf("0\n"); else printf("%d\n", f[m][l]); } } |