题目
题解
先单独考虑洗和烘干,问题简化为一个非常简单的贪心:每次选择处理完这件衣服总耗时最短的机器,可以堆维护
再考虑将其结合。衣服需要先洗再烘,所以烘干所有衣服的时刻必然在洗完衣服的时刻之后
aw[i], ad[i] 分别记录洗完,烘干i件衣服的耗时
t取max就可以了
注意long long
代码
#include <bits/stdc++.h>
using namespace std;
#define N 1000005
#define ll long long
inline ll read()
{
ll x = 0, f = 1; char ch = getchar();
while(ch < '0' || ch > '9') {if(ch == '-') f = -1; ch = getchar();}
while(ch >= '0' && ch <= '9') {x = x * 10 + ch - '0'; ch = getchar();}
return x * f;
}
int l, n, m;
ll aw[N], ad[N];
struct node
{
ll used, x;
friend bool operator < (node a, node b)
{
return a.used + a.x > b.used + b.x;
}
}w[N], d[N];
priority_queue<node> qw, qd;
int main()
{
l = read(); n = read(); m = read();
for(int i = 1; i <= n; i++) w[i].x = read(), qw.push(w[i]);
for(int i = 1; i <= m; i++) d[i].x = read(), qd.push(d[i]);
for(int i = 1; i <= l; i++)
{
node k = qw.top(); qw.pop();
k.used += k.x; qw.push(k);
aw[i] = k.used;
k = qd.top(); qd.pop();
k.used += k.x; qd.push(k);
ad[i] = k.used;
}
ll ans = 0;
for(int i = 1; i <= l; i++) ans = max(ans, aw[i] + ad[l - i + 1]);
cout << ans;
return 0;
}