题目链接:http://vjudge.net/contest/132239#problem/A
题目链接:https://uva.onlinejudge.org/external/116/11624.pdf
《训练指南》P307
分析:只需要预处理每个格子起火的时间,在BFS扩展节点的时候加一个判断,到达该节点的时候,格子没有起火。
写法很巧妙,两次BFS类似,数据加一维kind,表示Joe到达该点和火到达该点。
#include <bits/stdc++.h> using namespace std; const int INF = 0x3f3f3f3f;
const int maxr = +;
const int maxc = +; int R,C;
char maze[maxr][maxc];
struct Cell{
int r,c;
Cell (int r,int c) : r(r),c(c) {}
};
const int dr[] = {-,,,};
const int dc[] = {,,-,};
int d[maxr][maxc][] ,vis[maxr][maxc][]; queue<Cell> Q;
void bfs(int kind)
{
while(!Q.empty())
{
Cell cell = Q.front();
Q.pop();
int r = cell.r, c = cell.c;
for(int dir = ; dir < ; dir++)
{
int nr = r + dr[dir], nc = c + dc[dir];
if(nr >= && nr < R && nc >= && nc < C && maze[nr][nc] == '.' && !vis[nr][nc][kind])
{
Q.push(Cell(nr, nc));
vis[nr][nc][kind] = ;
d[nr][nc][kind] = d[r][c][kind] + ;
}
}
}
} int ans;
void check(int r,int c)
{
if(maze[r][c]!='.'||!vis[r][c][]) return; ///走不到
if(!vis[r][c][]||d[r][c][]<d[r][c][]) ans= min(ans,d[r][c][]+); ///该点火到达不了,或者joe先于火
} int main()
{
//freopen("input.txt","r",stdin);
int t;
scanf("%d",&t);
while(t--)
{
scanf("%d%d",&R,&C);
int jr,jc;
vector<Cell> fires;
for(int i=;i<R;i++)
{
scanf("%s",maze[i]);
for(int j=;j<C;j++)
{
if(maze[i][j]=='J')
{
jr = i;
jc = j;
maze[i][j] = '.';
}
else if(maze[i][j]=='F')
{
fires.push_back(Cell(i,j));
maze[i][j] = '.';
}
}
}
memset(vis,,sizeof(vis)); ///各个点到joe的距离
///Joe
vis[jr][jc][] = ;
d[jr][jc][] = ;
Q.push(Cell(jr,jc));
bfs(); for(int i = ;i<fires.size();i++)
{
vis[fires[i].r][fires[i].c][] = ;
d[fires[i].r][fires[i].c][] = ;
Q.push(fires[i]);
}
bfs(); ans = INF;
for(int i=;i<R;i++)
{
check(i,);
check(i,C-);
}
for(int i=;i<C;i++)
{
check(,i);
check(R-,i);
}
if(ans==INF) printf("IMPOSSIBLE\n");
else printf("%d\n",ans);
}
return ;
}