标签:sans amp play 感受 输入 isp math zoj lse
惊了,我怎么这么菜啊。。
题目链接: (bzoj)https://www.lydsy.com/JudgeOnline/problem.php?id=3203
(luogu)https://www.luogu.org/problemnew/show/P3299
题解: 先讲正常做法。
设\(S_i\)为\(i\)的前缀和,则显然第\(i\)次答案为\(\max^i_{j=1} \frac{S_i-S_{j-1}}{x_i+id-jd}\)
那么很显然就是要求从一个点\((x_i+id,S_i)\)到\((jd,S_{j-1})\)的斜率最大值啊。。三分凸壳就行了啊。。想什么呢。。。
下面是我的垃圾做法,有兴趣的可以感受一下(我相信没人有兴趣)
考虑斜率优化(我就是陷入套路无法自拔的垃圾),首先为了方便我们把输入的\(x_i\)加上\(id\)并记作\(x_0\), 目前的总和记作\(S\), \(1\)到\((i-1)\)的和记作\(S_i\)(和上面定义不同),考虑\(i\)不比\(j\)差(\(i<j\))的条件: \[\frac{S-S_i}{x_0-id}>\frac{S-S_j}{x_0-jd}\]展开后解得\[x_0\ge\frac{iS-jS-iS_j+jS_i}{S_j-S_i}d\]考虑三个点\(i<j<k\), \(i\)不比\(j\)劣的条件是\[x_0\ge\frac{iS-jS-iS_j+jS_i}{S_j-S_i}d\] \(k\)不比\(j\)劣的条件是\[x_0\le\frac{jS-kS-jS_k+kS_j}{S_k-S_j}d\]若后者大于等于前者则无论\(x_0\)为何值此两个条件至少满足一个,\(j\)无用。
然后尝试化这个式子: \[\frac{jS-kS-jS_k+kS_j}{S_k-S_j}\ge \frac{iS-jS-iS_j+jS_i}{S_j-S_i}\] \[iS_jS_k-iS_j^2-jS_iS_k+jS_iS_j+jSS_k-jSS_j-iSS_k+iSS_j\le jS_kS_j-jS_iS_k-kS_j^2+kS_iS_j+kSS_j-kSS_i-jSS_j+jSS_i\] \[(i-j)S_jS_k+(k-i)S_j^2+(j-k)S_iS_j+(j-i)SS_k+(i-k)SS_j+(k-j)SS_i\le 0\] 尝试因式分解 \[(S_j-S)(iS_k-jS_k+kS_j-iS_j+jS_i-kS_i)\le 0\] 因为\(S_j-S\)显然小于\(0\), 所以\[iS_k-jS_k+kS_j-iS_j+jS_i-kS_i\ge 0\] 这个东西一看就是可以拆添项的: \[iS_k-jS_k+kS_j-jS_j-iS_j+jS_j+iS_k-jS_k\le 0\] \[(j-k)(S_i-S_j)-(i-j)(S_j-S_k)\le 0\] \[\frac{S_i-S_j}{i-j}\le \frac{S_j-S_k}{j-k}\]
这是\(j\)无用的条件,所以只需要维护斜率不增的上凸壳即可
……
我真的蠢到一定境界了
当然是我的垃圾做法的代码
#include<cstdio>
#include<cstdlib>
#include<cstring>
#include<cassert>
#define llong long long
using namespace std;
struct Point
{
double x,y;
Point() {}
Point(llong _x,llong _y) {x = _x,y = _y;}
};
const int N = 1e5;
Point ch[N+3];
double s[N+3];
double a[N+3];
double qr[N+3];
int n,tp;
double d;
void insertpoint(Point x)
{
while(tp>1 && (ch[tp].y-ch[tp-1].y)*(x.x-ch[tp].x)>=(x.y-ch[tp].y)*(ch[tp].x-ch[tp-1].x)) {tp--;}
tp++; ch[tp] = x;
// printf("CH: size=%d ",tp);
// for(int i=1; i<=tp; i++) printf("(%lf %lf) ",ch[i].x,ch[i].y); puts("");
}
double query(double x,double sum)
{
// printf("query(%lf %lf)\n",x,sum);
int left = 1,right = tp;
while(left<right)
{
int mid = (left+right+1)>>1;
bool ok = x*(ch[mid].y-ch[mid-1].y)<=(ch[mid-1].x*ch[mid].y-ch[mid].x*ch[mid-1].y+ch[mid].x*sum-ch[mid-1].x*sum)*d ? true : false;
if(ok) {left = mid;}
else {right = mid-1;}
}
// printf("left=%d\n",left);
double ret = (sum-ch[left].y)/(x-ch[left].x*d);
return ret;
}
int main()
{
scanf("%d%lf",&n,&d);
for(int i=1; i<=n; i++)
{
scanf("%lf%lf",&a[i],&qr[i]);
s[i] = s[i-1]+a[i-1];
qr[i] += i*d;
}
s[n+1] = s[n]+a[n];
double sans = 0.0;
for(int i=1; i<=n; i++)
{
insertpoint(Point(i,s[i]));
double ans = query(qr[i],s[i+1]);
sans += ans;
// printf("i%d ans%lf\n",i,ans);
}
printf("%lld\n",(llong)(sans+0.5));
return 0;
}
BZLJ 3203 Luogu P3299 [SDOI2013]保护出题人 (凸包、斜率优化、二分)
标签:sans amp play 感受 输入 isp math zoj lse
原文地址:https://www.cnblogs.com/suncongbo/p/11116288.html