Problem
题目描述
Farmer John needs new cows! There are N cows for sale (1 <= N <= 50,000), and FJ has to spend no more than his budget of M units of money (1 <= M <= 10^14). Cow i costs P_i money (1 <= P_i <= 10^9), but FJ has K coupons (1 <= K <= N), and when he uses a coupon on cow i, the cow costs C_i instead (1 <= C_i <= P_i). FJ can only use one coupon per cow, of course.
What is the maximum number of cows FJ can afford?
FJ准备买一些新奶牛,市场上有N头奶牛(1<=N<=50000),第i头奶牛价格为Pi(1<=Pi<=109)。FJ有K张优惠券,使用优惠券购买第i头奶牛时价格会降为Ci(1<=Ci<=Pi),每头奶牛只能使用一次优惠券。FJ想知道花不超过M(1<=M<=1014)的钱最多可以买多少奶牛?
输入输出格式
输入格式:
-
Line 1: Three space-separated integers: N, K, and M.
-
Lines 2..N+1: Line i+1 contains two integers: P_i and C_i.
输出格式:
- Line 1: A single integer, the maximum number of cows FJ can afford.
输入输出样例
输入样例#1:
4 1 7
3 2
2 2
8 1
4 3
输出样例#1:
3
说明
FJ has 4 cows, 1 coupon, and a budget of 7.
FJ uses the coupon on cow 3 and buys cows 1, 2, and 3, for a total cost of 3 + 2 + 1 = 6.
Solution
思路
这道题目我们可以先将所有的券使用,然后在针对每一个更有的反悔,然后将反悔的东西用钱买,这就是一个正确的贪心思路
Code
#include<bits/stdc++.h>
#define re register
#define ll long long
using namespace std;
struct node{
ll val,id;
bool operator<(node b)const{
return val>b.val;
}
};
priority_queue<node>a,b;
priority_queue<ll,vector<ll>,greater<ll> >d;
bool vis[1000010];
ll n,k,m;
ll p[1000010],c[1000010];
int main()
{
#ifndef ONLINE_JUGDE
freopen("in.txt","r",stdin);
#endif
scanf("%lld%lld%lld",&n,&k,&m);
for(re ll i=1;i<=n;i++){
scanf("%lld%lld",&p[i],&c[i]);
a.push((node){p[i],i});
b.push((node){c[i],i});
}
ll ans=0;
for(re ll i=1;i<=k;i++)d.push(0LL);
while(m>0 && ans<n){
while(vis[a.top().id])a.pop();
while(vis[b.top().id])b.pop();
if(b.top().val+d.top()<a.top().val){
node now=b.top();ll id=now.id;
ll x=now.val+d.top();
if(m<x)break;m-=x;
d.pop();
d.push(p[id]-c[id]);
vis[id]=1;
}
else{
node now=a.top();ll id=now.id;
ll x=now.val;
if(m<x)break;m-=x;
vis[id]=1;
}
ans++;
}
printf("%lld
",ans);
#ifndef ONLINE_JUDGE
fclose(stdin);
#endif
return 0;
}
//注意lg上要更改代码