描述:
As having become a junior, xiaoA recognizes that there is not much time for her to AC problems, because there are some other things for her to do, which makes her nearly mad.
What's more, her boss tells her that for some sets of duties, she must choose at least one job to do, but for some sets of things, she can only choose at most one to do, which is meaningless to the boss. And for others, she can do of her will. We just define the things that she can choose as "jobs". A job takes time , and gives xiaoA some points of happiness (which means that she is always willing to do the jobs).So can you choose the best sets of them to give her the maximum points of happiness and also to be a good junior(which means that she should follow the boss's advice)?
There are several test cases, each test case begins with two integers n and T (0<=n,T<=100) , n sets of jobs for you to choose and T minutes for her to do them. Follows are n sets of description, each of which starts with two integers m and s (0<m<=100), there are m jobs in this set , and the set type is s, (0 stands for the sets that should choose at least 1 job to do, 1 for the sets that should choose at most 1 , and 2 for the one you can choose freely).then m pairs of integers ci,gi follows (0<=ci,gi<=100), means the ith job cost ci minutes to finish and gi points of happiness can be gained by finishing it. One job can be done only once.
代码:
分组背包问题。组内有多种情况:至少选一个,至多选一个,无限制。
#include<stdio.h> #include<string.h> #include<iostream> #include<stdlib.h> #include <math.h> using namespace std; #define N 110 #define MIN -1000000 int MAX(int a,int b,int c){ if( a<b ) a=b; if( a<c ) a=c; return a; } int main(){ int n,t,val[N],time[N],dp[N][N];//dp第一维代表第n组物品;第二维代表背包容量,即时间 int m,s; while( scanf("%d%d",&n,&t)!=EOF ) { memset(dp,0,sizeof(dp));//没有要求装满 for( int i=1;i<=n;i++ ) { scanf("%d%d",&m,&s); for( int j=1;j<=m;j++ ) scanf("%d%d",&time[j],&val[j]); if( s==0 )//至少要选一个物品 { for( int j=0;j<=t;j++ ) dp[i][j]=MIN;//如果这一组的物品没有选,那么最后的解也将为负无穷,代表无解。 for( int j=1;j<=m;j++ )//m个物品 { for( int k=t;k>=time[j];k-- )//背包容量递减,k-time[j]也递减,这样保证数据不会重叠 { //dp[i][k-time[j]]+val[j]:从这一组物品的上一个状态累加。组内决策 //dp[i-1][k-time[j]]+val[j]:直接从上一组物品累加,代表第一次加入该物品。从上一个分组开始决策 dp[i][k]=MAX(dp[i][k],dp[i][k-time[j]]+val[j],dp[i-1][k-time[j]]+val[j]); } } } else if( s==1 )//最多选择一个 { for( int j=0;j<=t;j++ ) dp[i][j]=dp[i-1][j];//可以不选择任何一个物品,最后的解即为上一组的解。 for( int j=1;j<=m;j++ ) { for( int k=t;k>=time[j];k-- ) dp[i][k]=max(dp[i][k],dp[i-1][k-time[j]]+val[j]);//只能从上一个分组开始决策,代表最多选择一个 } } else if( s==2 ){//无限制 for( int j=0;j<=t;j++ ) dp[i][j]=dp[i-1][j];//可以不选择任何一个物品,最后的解即为上一组的解。 for( int j=1;j<=m;j++ ) { for( int k=t;k>=time[j];k-- ) { //组内和组间决策 dp[i][k]=MAX(dp[i][k],dp[i][k-time[j]]+val[j],dp[i-1][k-time[j]]+val[j]); } } } } printf("%d ",max(-1,dp[n][t]));//无解 } system("pause"); return 0; }