Solution
题目是最长路,其实是最短路ヽ(ー_ー)ノ
把进入障碍点的边设为1,其他为0。枚举每个点为起点找距离<=T的点,更新答案
Code
//By Menteur_Hxy
#include <queue>
#include <cmath>
#include <cstdio>
#include <vector>
#include <cstring>
#include <cstdlib>
#include <iostream>
#include <algorithm>
#define Re register
#define Ms(a,b) memset(a,(b),sizeof(a))
#define Fo(i,a,b) for(Re int i=(a),_=(b);i<=_;i++)
#define Ro(i,a,b) for(Re int i=(b),_=(a);i>=_;i--)
using namespace std;
typedef long long LL;
typedef pair<int,int> PII;
inline LL read() {
LL x=0,f=1;char c=getchar();
while(!isdigit(c)) {if(c=='-')f=-f;c=getchar();}
while(isdigit(c)) x=(x<<1)+(x<<3)+c-48,c=getchar();
return x*f;
}
const int N=31;
int n,m,t;
double ans;
bool vis[N*N];
int mp[N*N],dis[N*N][N*N];
char s[N];
vector <int> V[N*N];
inline int id(int x,int y) {return x*m+y-m;}
inline void add(int x,int y) {V[x].push_back(y);}
priority_queue <PII,vector<PII>,greater<PII> >Q;
void Dij(int S,int *d) {
Ms(vis,0);
Q.push(PII(d[S]=0,S));
while(!Q.empty()) {
int u=Q.top().second,v; Q.pop();
if(vis[u]) continue; vis[u]=1;
int siz=V[u].size();
Fo(i,0,siz-1) if(d[(v=V[u][i])]>d[u]+mp[v])
Q.push(PII(d[v]=d[u]+mp[v],v));
}
}
int main() {
n=read(),m=read(),t=read();
Fo(i,1,n) {
scanf("%s",s+1);
Fo(j,1,m) mp[id(i,j)]=s[j]-'0';
}
Fo(i,1,n) Fo(j,1,m) {
if(i>1) add(id(i-1,j),id(i,j));
if(j>1) add(id(i,j-1),id(i,j));
if(i<n) add(id(i+1,j),id(i,j));
if(j<m) add(id(i,j+1),id(i,j));
}
Ms(dis,0x3f);
Fo(i,1,n) Fo(j,1,m) Dij(id(i,j),dis[id(i,j)]);
Fo(x1,1,n) Fo(y1,1,m) if(!mp[id(x1,y1)])
Fo(x2,1,n) Fo(y2,1,m) if(dis[id(x1,y1)][id(x2,y2)]<=t)
ans=max(ans,(double)sqrt((x2-x1)*(x2-x1)+(y2-y1)*(y2-y1)));
printf("%.6lf",ans);
return 0;
}