poj1292

时间:2022-03-24 21:04:56

prim,把每个墙看成一个节点,从起点用prim求最小生成树,直到覆盖到终点为止,输出最小生成树中的最大边

#include <cstdio>
#include <cmath>
#include <cstdlib>
#include <algorithm>
#include <cstring>
using namespace std; #define MAX_WALL_NUM 1005
#define INF 0x3f3f3f3f struct Wall
{
int s, e, pos;
bool h; //direction: is horizental
}wall[MAX_WALL_NUM]; int wall_num;
double graph[MAX_WALL_NUM][MAX_WALL_NUM]; void input()
{
for (int i = ; i < wall_num; i++)
{
int x, y, l;
scanf("%d%d%d", &x, &y, &l);
if (l < )
{
wall[i].h = false;
swap(x, y);
}else
wall[i].h = true;
wall[i].s = x;
wall[i].e = x + abs(l);
wall[i].pos = y;
}
} bool overlap(Wall a, Wall b)
{
if (a.s > b.e || a.e < b.s)
return false;
return true;
} double cal(Wall a, Wall b)
{
if (a.h == b.h)
{
int dist1 = abs(a.pos - b.pos);
if (overlap(a, b))
return dist1;
else
{
int dist2 = min(abs(a.s - b.e), abs(a.e - b.s));
return sqrt(dist1 * dist1 + dist2 * dist2);
}
}
if (a.s <= b.pos && a.e >= b.pos && b.s <= a.pos && b.e >= a.pos)
return ;
if (a.s <= b.pos && a.e >= b.pos)
return min(abs(b.s - a.pos), abs(b.e - a.pos));
if (b.s <= a.pos && b.e >= a.pos)
return min(abs(a.s - b.pos), abs(a.e - b.pos));
int dist1 = min(abs(a.s - b.pos), abs(a.e - b.pos));
int dist2 = min(abs(b.s - a.pos), abs(b.e - a.pos));
return sqrt(dist1 * dist1 + dist2 * dist2);
} void calculate_graph()
{
for (int i = ; i < wall_num; i++)
{
for (int j = i + ; j < wall_num; j++)
{
graph[i][j] = graph[j][i] = cal(wall[i], wall[j]);
}
}
} double prim()
{
bool vis[MAX_WALL_NUM];
double dist[MAX_WALL_NUM];
memset(vis, , sizeof(vis));
fill(dist, dist + wall_num, INF);
dist[] = ;
double ret = ;
while (!vis[])
{
double min_dist = INF;
int temp = -;
for (int i = ; i < wall_num; i++)
if (!vis[i] && dist[i] < min_dist)
{
temp = i;
min_dist = dist[i];
}
if (temp == -)
return -;
vis[temp] = true;
dist[temp] = ;
ret = max(ret, min_dist);
for (int i = ; i < wall_num; i++)
dist[i] = min(dist[i], dist[temp] + graph[temp][i]);
}
return ret;
} int main()
{
while (scanf("%d", &wall_num), wall_num)
{
input();
calculate_graph();
printf("%.2f\n", prim());
}
return ;
}

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