There Are Two Types Of Burgers (Educational Codeforces Round 71)
There are two types of burgers in your restaurant — hamburgers and chicken burgers! To assemble a hamburger you need two buns and a beef patty. To assemble a chicken burger you need two buns and a chicken cutlet.
You have b buns, p beef patties and f chicken cutlets in your restaurant. You can sell one hamburger for h dollars and one chicken burger for c dollars. Calculate the maximum profit you can achieve.
You have to answer t independent queries.
Input
The first line contains one integer t (1≤t≤100) – the number of queries.
The first line of each query contains three integers b, p and f (1≤b, p, f≤100) — the number of buns, beef patties and chicken cutlets in your restaurant.
The second line of each query contains two integers h and c (1≤h, c≤100) — the hamburger and chicken burger prices in your restaurant.
Output
For each query print one integer — the maximum profit you can achieve.
#include <iostream> #include <algorithm> #include <cstdio> #include <string> #include <cstring> #include <cstdlib> #include <map> #include <vector> #include <set> #include <queue> #include <stack> #include <cmath> using namespace std; #define pq priority_queue<int> #define pql priority_queue<ll> #define pqn priority_queue<node> #define v vector<int> #define vl vector<ll> #define lson rt<<1, l, m #define rson rt<<1|1, m+1, r #define read(x) scanf("%d",&x) #define lread(x) scanf("%lld",&x); #define pt(x) printf("%d\n",(x)) #define yes printf("YES\n"); #define no printf("NO\n"); #define gcd __gcd #define cn cin>> #define ct cout<< #define ed <<endl; #define ok return 0 ; #define over cout<<endl; #define rep(j,k) for (int i = (int)(j); i <= (int)(k); i++) #define input(k) for (int i = 1; i <= (int)(k); i++) {cin>>a[i] ; } #define mem(s,t) memset(s,t,sizeof(s)) #define re return 0; #define TLE std::ios::sync_with_stdio(false);cin.tie(NULL);cout.tie(NULL); #define mod(x) ((x)%9973) #define test cout<<" ++++++ "<<endl; typedef long long ll; const int N=150000+5; const int maxn=10000+5; const int len = 2*1e5+5; typedef struct node { int x,y,ankle,T; }node; node dp[len]; int a[N]; double getlen(node xx,node yy) { return ( (xx.x-yy.x)*(xx.x-yy.x) +(xx.y-yy.y)*(xx.y-yy.y) ); } //计算两点间距离 int main() { int t,m,n,k,l,r; for(cin>>t;t;t--) { cin>>n>>m>>k>>l>>r; n/=2; if(l>r) { if(n>m) cout<<m*l+min(n-m,k)*r<<endl; else cout<<n*l<<endl; } else if(r>l) { if(n>k) cout<<k*r+min(n-k,m)*l<<endl; else cout<<n*r<<endl; } else { cout<<min(m+k,n)*l<<endl; } } ok; }