UVA 718 - Skyscraper Floors

题目链接

题意：在一个f层高的楼上，有e个电梯，每一个电梯有x，y表示y + k * x层都能够到，如今要问从a层是否能到达b层（中间怎么换乘电梯不限制）

思路：对于两个电梯间能不能换乘，仅仅要满足y[i] + xx x[i] == y[j] + yy y[j].然后移项一下，就能够用拓展欧几里得求解，进而求出x,y的通解，然后利用通解范围x' >= 0, y' >= 0, x[i]
x' + y[i] <= f, x[j] y' + y[j] <= f,求出通解中t的上限和下限，就能够推断有无解了，然后就建图，把两个能够换乘电梯建边，然后在让a, b分别和电梯推断能不能到，能到建边，最后dfs一遍就能推断是否能达到了。

代码：

#include <stdio.h>

#include <string.h>

#include <vector>

#include <math.h>

using namespace std;

const int INF = 0x3f3f3f3f;

int t, f, e, a, b, x[105], y[105], vis[105];

vector<int> g[105];

int exgcd(int a, int b, int &x, int &y) {

	if (!b) {x = 1; y = 0; return a;}

	int d = exgcd(b, a % b, y, x);

	y -= a / b * x;

	return d;

}

void build(int v, int u, int i) {

	if (v < y[i]) return;

	if ((v - y[i]) % x[i] == 0) {

		g[u].push_back(i);

		g[i].push_back(u);

 	}

}

void build2(int i, int j) {

	int xx, yy;

	int a = x[i], b = -x[j], c = y[j] - y[i];

	int d = exgcd(a, b, xx ,yy);

	if (c % d) return;

	int down = -INF;

	int up = INF;

	if (b / d > 0) {

 		down = max(down, (int)ceil(-xx * c * 1.0 / b));

 		up = min(up, (int)floor(((f - y[i]) * 1.0 * d / x[i] - xx * c * 1.0) / b));

	}

	else {

		down = max(down, (int)ceil(((f - y[i]) * 1.0 * d / x[i] - xx * c * 1.0) / b));

 		up = min(up, (int)floor(-xx * c * 1.0 / b));

	}

	if (a / d > 0) {

		down = max(down, (int)ceil((yy * c * 1.0 - (f - y[j]) * 1.0 * d / x[j]) / a));

 		up = min(up, (int)floor(yy * c * 1.0 / a));

	}

	else {

 		down = max(down, (int)ceil(yy * c * 1.0 / a));

 		up = min(up, (int)floor((yy * c * 1.0 - (f - y[j]) * 1.0 * d / x[j]) / a));

	}

	if (down > up) return;

	g[i].push_back(j);

	g[j].push_back(i);

}

bool dfs(int u) {

	if (u == e + 1) return true;

	vis[u] = 1;

	for (int i = 0; i < g[u].size(); i++) {

		int v = g[u][i];

		if (vis[v]) continue;

		if (dfs(v)) return true;

 	}

 	return false;

}

int main() {

	scanf("%d", &t);

	while (t--) {

		memset(g, 0, sizeof(g));

		scanf("%d%d%d%d", &f, &e, &a, &b);

		for (int i = 1; i <= e; i++) {

			scanf("%d%d", &x[i], &y[i]);

   			build(a, 0, i);

   			build(b, e + 1, i);

		}

		for (int i = 1; i <= e; i++) {

			for (int j = i + 1; j <= e; j++) {

				build2(i, j);

   			}

  		}

  		memset(vis, 0, sizeof(vis));

  		if (dfs(0)) printf("It is possible to move the furniture.\n");

  		else printf("The furniture cannot be moved.\n");

 	}

	return 0;

}