题意: 一个人有m元钱 有n个汉堡 每个汉堡有其价值和其花费 且做某个汉堡需要做好一些前提汉堡 求最大价值
强行状压即可 把两个&写成了&& QAQ
#include<bits/stdc++.h> using namespace std; //input by bxd #define rep(i,a,b) for(int i=(a);i<=(b);i++) #define repp(i,a,b) for(int i=(a);i>=(b);--i) #define RI(n) scanf("%d",&(n)) #define RII(n,m) scanf("%d%d",&n,&m) #define RIII(n,m,k) scanf("%d%d%d",&n,&m,&k) #define RS(s) scanf("%s",s); #define ll long long #define pb push_back #define REP(i,N) for(int i=0;i<(N);i++) #define CLR(A,v) memset(A,v,sizeof A) // #define inf 0x3f3f3f3f const int N=20; int n,m; int cost[N]; int val[N]; int bef[N][N]; int money[N<<15]; int dp[N<<15];bool judge(int state,int j) {if(state& (1<<(j-1)) )return 0;rep(i,1,bef[j][0]){int x=bef[j][i];if( !(state&(1<<(x-1))) )return 0;}return 1; }int main() {int cas;RI(cas);while(cas--){RII(n,m);rep(i,1,n)RI(val[i]);rep(i,1,n)RI(cost[i]);rep(i,1,n){int q;RI(bef[i][0]);rep(j,1,bef[i][0])RI(bef[i][j]);}CLR(dp,-0x3f);CLR(money,0);dp[0]=0;int maxx=0;rep(i,0, (1<<n)-1 ){rep(j,1,n)if(judge(i,j)&&cost[j]+money[i]<=m&&dp[i]+val[j]>dp[i|(1<<(j-1))] ){dp[i|(1<<(j-1))]=dp[i]+val[j];maxx=max(maxx,dp[i|(1<<(j-1))]);money[i|(1<<(j-1))]=cost[j]+money[i];}}cout<<maxx<<endl;}return 0; }
