我们发现这是一道模板STL题。
边听歌边debug效率好低。
#include<bits/stdc++.h>
#define N 570007
using namespace std;
multiset<int> S1,S2;
char ch[18];
#define INF ((int)1e9)
#define sight(c) (‘0‘<=c&&c<=‘9‘)
inline void read(int &x){
static char c;static int b;
for(c=getchar(),b=1;!sight(c);c=getchar()) if (c==‘-‘) b=-1;
for(x=0;sight(c);c=getchar())x=x*10+c-48; x*=b;
}
void write(int x){if (x<10){ putchar(48+x);return;} write(x/10),putchar(48+x%10);}
inline void writeln(int x){if (x<0) putchar(‘-‘),x*=-1; write(x); putchar(‘\n‘);}
int a[N],ed[N],ans,n,m,id,x;
multiset<int>::iterator it,itt;
void ins(int x){
if (!ans) return;
it=S1.upper_bound(x);
if (it!=S1.end()) ans=min(ans,abs(x-*it));
if (it!=S1.begin()) ans=min(ans,abs(*(--it)-x));
S1.insert(x);
}
int main () {
// freopen("a.in","r",stdin);
// freopen("a.out","w",stdout);
read(n); read(m); ans=1e9;
S1.insert(-INF),S1.insert(INF);
read(a[1]),S1.insert(a[1]);ed[1]=a[1];
for (int i=2;i<=n;i++)
read(a[i]),ins(a[i]),ed[i]=a[i],S2.insert(abs(a[i]-a[i-1]));
while (m--) {
scanf("%s",ch);
switch (ch[4]) {
case ‘R‘: read(id);read(x);ins(x);
if (id!=n) {
S2.erase(S2.find(abs(ed[id]-a[id+1])));
S2.insert(abs(x-a[id+1]));}
S2.insert(abs(x-ed[id])); ed[id]=x;
break;
case ‘G‘:
writeln(*S2.begin());
break;
case ‘S‘:
writeln(ans);
break;
}
}
}
原文地址:https://www.cnblogs.com/rrsb/p/8341285.html
时间: 2024-10-01 00:18:54