![[USACO13JAN] Seating](https://image.shishitao.com:8440/aHR0cHM6Ly9ia3FzaW1nLmlrYWZhbi5jb20vdXBsb2FkL2NoYXRncHQtcy5wbmc%2FIQ%3D%3D.png?!?w=700&webp=1 "[USACO13JAN] Seating")
https://www.luogu.org/problem/show?pid=3071
题目描述
To earn some extra money, the cows have opened a restaurant in their barn specializing in milkshakes. The restaurant has N seats (1 <= N <= 500,000) in a row. Initially, they are all empty.
Throughout the day, there are M different events that happen in sequence at the restaurant (1 <= M <= 300,000). The two types of events that can happen are:
A party of size p arrives (1 <= p <= N). Bessie wants to seat the party in a contiguous block of p empty seats. If this is possible, she does so in the lowest position possible in the list of seats. If it is impossible, the party is turned away.
- A range [a,b] is given (1 <= a <= b <= N), and everybody in that range of seats leaves.
Please help Bessie count the total number of parties that are turned away over the course of the day.
有一排n个座位,m次操作。A操作:将a名客人安置到最左的连续a个空位中,没有则不操作。L操作:[a,b]的客人离开。
求A操作的失败次数。
输入输出格式
输入格式:
Line 1: Two space-separated integers, N and M.
- Lines 2..M+1: Each line describes a single event. It is either a line of the form "A p" (meaning a party of size p arrives) or "L a b" (meaning that all cows in the range [a, b] leave).
输出格式:
- Line 1: The number of parties that are turned away.
输入输出样例
10 4
A 6
L 2 4
A 5
A 2
1 线段树
实践再次证明:数组比结构体要快
#include<cstdio>
#include<iostream>
#include<algorithm>
using namespace std;
int n,m,x,y,opl,opr;
#define N 500001*4
int maxx[N],max_l[N],max_r[N],sum[N],flag[N];
void build(int k,int l,int r)
{
sum[k]=maxx[k]=max_l[k]=max_r[k]=r-l+;
if(l==r) return;
int mid=l+r>>;
build(k<<,l,mid);build((k<<)+,mid+,r);
}
void down(int k)
{
flag[k<<]=flag[(k<<)+]=flag[k];
if(flag[k]==)
maxx[k<<]=max_l[k<<]=max_r[k<<]=maxx[(k<<)+]=max_l[(k<<)+]=max_r[(k<<)+]=;
else
{
maxx[k<<]=max_l[k<<]=max_r[k<<]=sum[k<<];
maxx[(k<<)+]=max_l[(k<<)+]=max_r[(k<<)+]=sum[(k<<)+];
}
flag[k]=;
}
int ask(int k,int l,int r)
{
if(l==r) return l;
if(flag[k]) down(k);
int mid=l+r>>;
if(maxx[k<<]>=x) return ask(k<<,l,mid);
if(max_l[(k<<)+]+max_r[k<<]>=x) return mid-max_r[k<<]+;
return ask((k<<)+,mid+,r);
}
void up(int k)
{
maxx[k]=max(max(maxx[k<<],maxx[(k<<)+]),max_r[k<<]+max_l[(k<<)+]);
if(sum[k<<]==maxx[k<<]) max_l[k]=sum[k<<]+max_l[(k<<)+];
else max_l[k]=max_l[k<<];
if(sum[(k<<)+]==maxx[(k<<)+]) max_r[k]=sum[(k<<)+]+max_r[k<<];
else max_r[k]=max_r[(k<<)+];
}
void change(int k,int f,int l,int r)
{
if(l>=opl&&r<=opr)
{
if(f==)
{
maxx[k]=max_l[k]=max_r[k]=;
flag[k]=;
return;
}
else
{
maxx[k]=max_l[k]=max_r[k]=sum[k];
flag[k]=;
return;
}
}
if(flag[k]) down(k);
int mid=l+r>>;
if(opr<=mid) change(k<<,f,l,mid);
else if(opl>mid) change((k<<)+,f,mid+,r);
else
{
change(k<<,f,l,mid);
change((k<<)+,f,mid+,r);
}
up(k);
}
void read(int &x)
{
x=; char c=getchar();
while(!isdigit(c)) c=getchar();
while(isdigit(c)) { x=x*+c-''; c=getchar(); }
}
int main()
{
int cnt=;
char p[];
read(n); read(m);
build(,,n);
for(int i=;i<=m;i++)
{
scanf("%s",p);
if(p[]=='A')
{
read(x);
if(maxx[]<x) cnt++;
else
{
opl=ask(,,n);
opr=opl+x-;
change(,,,n);
}
}
else
{
read(opl); read(opr);
change(,,,n);
}
}
printf("%d",cnt);
}