BZOJ 1047: [HAOI2007]理想的正方形 单调队列瞎搞

题意很简明吧?

枚举的矩形下边界和右端点即右下角,来确定矩形位置;

每一个纵列开一个单调队列,记录从 i-n+1 行到 i 行每列的最大值和最小值,矩形下边界向下推移的时候维护一下;

然后在记录的每一列的最大值和最小值上,跑滑动窗口,即用单调队列维护区间 [ j-n+1 , j ] 的最大值和最小值;

相当于维护了一个矩形的最大值和最小值

#include<cstdio>
#include<iostream>
#include<queue>
#define R register int
using namespace std;
inline int g() {
    R ret=0,fix=1; register char ch; while(!isdigit(ch=getchar())) fix=ch=='-'?-1:fix;
    do ret=ret*10+(ch^48); while(isdigit(ch=getchar())); return ret*fix;
}
inline int abs(int x) {return x>0?x:-x;}
int a,b,n,ans=0x3f3f3f3f;
int vl[1010][1010];
deque<int> q[1010],qq[1010],p,pp;
signed main() {
    a=g(),b=g(),n=g();
    for(R i=1;i<=a;++i) for(R j=1;j<=b;++j) vl[i][j]=g();
    for(R i=1;i<=a;++i) {
        for(R j=1;j<=b;++j) {
            while(q[j].size()&&vl[q[j].back()][j]<vl[i][j]) q[j].pop_back();
            while(q[j].size()&&q[j].front()+n<=i) q[j].pop_front();
            q[j].push_back(i);
            //cout<<i<<"hang"<<j<<"lie"<<vl[i][q[j].front()]<<" ";
            //cout<<"mx"<<vl[q[j].front()][j]<<" ";
        } 
        for(R j=1;j<=b;++j) {
            while(qq[j].size()&&vl[qq[j].back()][j]>vl[i][j]) qq[j].pop_back();
            while(qq[j].size()&&qq[j].front()+n<=i) qq[j].pop_front();
            qq[j].push_back(i);
            //cout<<"mn"<<vl[qq[j].front()][j]<<" ";
        }//cout<<'\n';
        if(i<n) continue; 
        p.clear();pp.clear();
        for(R j=1;j<=b;++j) {
            while(p.size()&&vl[q[p.back()].front()][p.back()]<vl[q[j].front()][j]) p.pop_back();
            while(p.size()&&p.front()+n<=j) p.pop_front();
            p.push_back(j);
            while(pp.size()&&vl[qq[pp.back()].front()][pp.back()]>vl[qq[j].front()][j]) pp.pop_back();
            while(pp.size()&&pp.front()+n<=j) pp.pop_front();
            pp.push_back(j);
            if(j<n) continue;
            ans=min(abs(vl[q[p.front()].front()][p.front()]-vl[qq[pp.front()].front()][pp.front()]),ans);
        }
    }printf("%d\n",ans);
}

2019.04.06

posted @ 2019-04-06 20:53  LuitaryiJack  阅读(125)  评论(0编辑  收藏  举报