BZOJ2595 [Wc2008]游览计划 【状压dp + 最短路】

题目链接

BZOJ2595

题解

著名的斯坦纳树问题

设\(f[i][j][s]\)表示点\((i,j)\)与景点联通状况为\(s\)的最小志愿者数
设\(val[i][j]\)为\((i,j)\)需要的志愿者数

有两种转移
一种是自己转移
\[f[i][j][s] = min\{f[i][j][e] + f[i][j][\complement_s e] - val[i][j]\}\]
一种是由周围转移过来
\[f[i][j][s] = min\{f[i][j][s] + f[x][y][s] + dis\}\]

第一种\(O(3^{K})\)枚举子集，第二种就是最短路

纪念一下BZOJ500题，截个图，，数字挺整的

#include<algorithm>
#include<iostream>
#include<cstring>
#include<cstdio>
#include<cmath>
#include<vector>
#include<map>
#define Redge(u) for (int k = h[u],to; k; k = ed[k].nxt)
#define REP(i,n) for (int i = 1; i <= (n); i++)
#define mp(a,b) make_pair<int,int>(a,b)
#define cls(s) memset(s,0,sizeof(s))
#define cp pair<int,int>
#define LL long long int
using namespace std;
const int maxn = 11,maxm = 1 << 10,INF = 1000000000;
inline int read(){
    int out = 0,flag = 1; char c = getchar();
    while (c < 48 || c > 57){if (c == '-') flag = -1; c = getchar();}
    while (c >= 48 && c <= 57){out = (out << 3) + (out << 1) + c - 48; c = getchar();}
    return out * flag;
}
int n,m,K,maxv;
int f[maxn][maxn][maxm],val[maxn][maxn],id[maxn][maxn],vis[maxn][maxn];
int head,tail,X[4] = {0,0,-1,1},Y[4] = {-1,1,0,0};
int S[maxn][maxn];
cp q[10000];
struct tri{
    int x,y,s;
};
vector<tri> pre[maxn][maxn][maxm];
void spfa(int s){
    head = 0; tail = -1;
    REP(i,n) REP(j,m) q[++tail] = mp(i,j),vis[i][j] = true;
    cp u; int nx,ny;
    while (head <= tail){
        u = q[head++];
        vis[u.first][u.second] = false;
        for (int k = 0; k < 4; k++){
            nx = u.first + X[k];
            ny = u.second + Y[k];
            if (nx < 1 || ny < 1 || nx > n || ny > m) continue;
            if (f[nx][ny][s] > f[u.first][u.second][s] + val[nx][ny]){
                f[nx][ny][s] = f[u.first][u.second][s] + val[nx][ny];
                pre[nx][ny][s].clear();
                pre[nx][ny][s].push_back((tri){u.first,u.second,s});
                if (!vis[nx][ny]) q[++tail] = mp(nx,ny);
            }
        }
    }
}
void dfs(int x,int y,int s){
    S[x][y] = true;
    tri u;
    for (unsigned int i = 0; i < pre[x][y][s].size(); i++){
        u = pre[x][y][s][i];
        dfs(u.x,u.y,u.s);
    }
}
void work(){
    maxv = (1 << K) - 1;
    memset(f,0x3f3f3f3f,sizeof(f));
    REP(i,n) REP(j,m){
        f[i][j][0] = 0;
        if (!val[i][j]) f[i][j][1 << id[i][j] - 1] = 0;
    }
    for (int s = 0; s <= maxv; s++){
        REP(i,n) REP(j,m){
            for (int e = s; e; e = (e - 1) & s){
                if (f[i][j][s] > f[i][j][e] + f[i][j][s ^ e] - val[i][j]){
                    f[i][j][s] = f[i][j][e] + f[i][j][s ^ e] - val[i][j];
                    pre[i][j][s].clear();
                    pre[i][j][s].push_back((tri){i,j,e});
                    pre[i][j][s].push_back((tri){i,j,s ^ e});
                }
            }
        }
        spfa(s);
    }
    int ans = INF,x,y;
    REP(i,n) REP(j,m) if (ans > f[i][j][maxv]) ans = f[i][j][maxv],x = i,y = j;
    printf("%d\n",ans);
    dfs(x,y,maxv);
    REP(i,n){
        REP(j,m){
            if (id[i][j]) putchar('x');
            else if (S[i][j]) putchar('o');
            else putchar('_');
        }
        puts("");
    }
}
int main(){
    n = read(); m = read();
    REP(i,n) REP(j,m){
        val[i][j] = read();
        if (!val[i][j]) id[i][j] = ++K;
    }
    work();
    return 0;
}