• 【BZOJ 2595】【WC 2008】游览计划


    http://www.lydsy.com/JudgeOnline/problem.php?id=2595
    斯坦纳树的例题诶。。。我怎么做了好长时间_(:з」∠)_
    首先这是一棵树。
    状压表示状态,(f(i,j,s))表示连通的景点的状态为s,i和j为树根的最小值。
    转移时先在当前状态s上枚举s的子集t,用子集来转移(f(i,j,s)=min{f(i,j,t)+f(i,j,complement_st)-a(i,j)},tvarsubsetneqq s,t eqvarnothing)
    顺便把所有可以用来更新的状态加入队列,然后在当前枚举这层枚举的s内做spfa,求出其他点的f值。
    因为最优解一定可以通过两个没有重叠方块的连通块合并,所以不用担心求出的解会有方块被算多次。
    时间复杂度(O(2^kn^2m^2))

    #include<cstdio>
    #include<cstring>
    #include<algorithm>
    #define mk(x, y, z) ((x) + (y) * 100 + (z) * 10000)
    using namespace std;
    
    int a[13][13], f[13][13][1 << 10], pre[13][13][1 << 10], n, m, q[1000003], head, tail, inf, tot = 0, ans = 0x7fffffff;
    bool inq[10003], mark[13][13];
    
    const int dx[4] = {0, -1, 0, 1};
    const int dy[4] = {1, 0, -1, 0};
    
    void spfa(int s) {
    	int u, x, y, tx, ty, t;
    	while (head != tail) {
    		++head; if (head == 1000003) head = 0;
    		u = q[head]; inq[u] = false;
    		x = u % 100; y = u / 100;
    		for (int i = 0; i < 4; ++i) {
    			tx = x + dx[i]; ty = y + dy[i];
    			if (tx < 1 || tx > n || ty < 1 || ty > m) continue;
    			
    			t = f[x][y][s] + a[tx][ty];
    			if (t < f[tx][ty][s]) {
    				f[tx][ty][s] = t;
    				pre[tx][ty][s] = mk(x, y, s);
    				u = mk(tx, ty, 0);
    				if (!inq[u]) {
    					inq[u] = true;
    					++tail; if (tail == 1000003) tail = 0;
    					q[tail] = u;
    				}
    			}
    		}
    	}
    }
    
    void dfs(int x, int y, int s) {
    	mark[x][y] = true;
    	int num = pre[x][y][s]; if (num == 0) return;
    	if (num / 10000 == s)
    		dfs(num % 100, num / 100 % 100, s);
    	else {
    		dfs(x, y, num / 10000);
    		dfs(x, y, s ^ (num / 10000));
    	}
    }
    
    void ouit(int totnum) {
    	for (int i = 1; i <= n; ++i)
    		for (int j = 1; j <= m; ++j)
    			if (f[i][j][totnum] == ans) {
    				dfs(i, j, totnum);
    				return;
    			}
    }
    
    int main() {
    	scanf("%d%d", &n, &m);
    	memset(f, 60, sizeof(f)); inf = f[0][0][0];
    	for (int i = 1; i <= n; ++i)
    		for (int j = 1; j <= m; ++j) {
    			scanf("%d", &a[i][j]);
    			if (!a[i][j]) {
    				f[i][j][1 << tot] = 0;
    				++tot;
    			}
    		}
    	
    	int totnum = (1 << tot) - 1, now;
    	for (int s = 1; s <= totnum; ++s) {
    		head = tail = 0;
    		for (int i = 1; i <= n; ++i)
    			for (int j = 1; j <= m; ++j) {
    				for (int t = s & (s - 1); t; t = s & (t - 1)) {
    					now = f[i][j][t] + f[i][j][s ^ t] - a[i][j];
    					if (now < f[i][j][s]) {
    						f[i][j][s] = now;
    						pre[i][j][s] = mk(i, j, t);
    					}
    				}
    				if (f[i][j][s] != inf)
    					inq[q[++tail] = mk(i, j, 0)] = true;
    		}
    		spfa(s);
    	}
    	
    	for (int i = 1; i <= n; ++i)
    		for (int j = 1; j <= m; ++j)
    			ans = min(ans, f[i][j][totnum]);
    	printf("%d
    ", ans);
    	
    	ouit(totnum);
    	for (int i = 1; i <= n; ++i) {
    		for (int j = 1; j <= m; ++j)
    			if (mark[i][j])	putchar(a[i][j] ? 'o' : 'x');
    			else putchar('_');
    		puts("");
    	}
    	return 0;
    }
    
  • 相关阅读:
    上海python14期第一次周考
    day05总结
    day05作业
    day04总结
    js判断是安卓还是Ios
    移动端 --- 阻止浏览器点击图片会预览的方法
    meta标签禁止打电话 转载
    mac 常用命令
    ajax. 通过后台接口 渲染数据
    vue prop
  • 原文地址:https://www.cnblogs.com/abclzr/p/6184742.html
Copyright © 2020-2023  润新知