内容目录
Problem 3 银河之星(galaxy.cpp/c/pas)
数据组数不超过10.
这题就是记忆化搜索
9点染色减少状态,map记忆化
b[i][j][k]表示棋子可否从k方向到(i,j)
#include<cstdio> #include<cstdlib> #include<cstring> #include<algorithm> #include<functional> #include<iostream> #include<cmath> #include<map> using namespace std; #define MAXN (100+10) #define MAXK (10+10) #define MAXDIV (4) int k,n,m,x2,y2,a[MAXDIV][MAXDIV],b[MAXDIV][MAXDIV][9]; int c[8][2]={{0,1},{0,2},{1,0},{2,0},{1,1},{2,2},{1,2},{2,1}}; //↑↓→←↗↙↘↖ map<long long,int> h; bool is_ok() { int ans=0; for (int i=0;i<3;i++) for (int j=0;j<3;j++) ans=(11*ans+a[i][j]); if (h.find(ans)!=h.end()) return 0; return h[ans]=1; } bool dfs(int x) { /* for (int j=3;j;j--) { for (int i=1;i<=3;i++) cout<<a[i%3][j%3]; cout<<endl; } cout<<endl; */ if (!is_ok()) return 0; if (x==1) { if (a[x2][y2]) return 1; else return 0; } for (int i=0;i<3;i++) for (int j=0;j<3;j++) if (a[i][j]) { for (int l=0;l<8;l++) if (a[(i+c[l][0])%3][(j+c[l][1])%3]&&a[(i+2*c[l][0])%3][(j+2*c[l][1])%3]<b[(i+2*c[l][0])%3][(j+2*c[l][1])%3][l]) { a[i][j]--;a[(i+c[l][0])%3][(j+c[l][1])%3]--;a[(i+2*c[l][0])%3][(j+2*c[l][1])%3]++; if (dfs(x-1)) return 1; a[i][j]++;a[(i+c[l][0])%3][(j+c[l][1])%3]++;a[(i+2*c[l][0])%3][(j+2*c[l][1])%3]--; } } return 0; } int main() { freopen("galaxy.in","r",stdin); freopen("galaxy.out","w",stdout); while (scanf("%d%d%d%d%d",&k,&n,&m,&x2,&y2)!=EOF) { x2%=3;y2%=3; memset(a,0,sizeof(a)); memset(b,0,sizeof(b)); for (int i=0;i<3;i++) for (int j=0;j<3;j++) { int h=((n/3)+(i>0)*(i<=n%3)),r=((m/3)+(j>0)*(j<=m%3)); //b[i][j][8]=((n/3)+(i>0)*(i<=n%3))*((m/3)+(j>0)*(j<=m%3)); b[i][j][8]=h*r; if (j!=0) b[i][j][0]=max(r-1,0)*h;else b[i][j][0]=r*h; if ((m+1)%3!=j) b[i][j][1]=max(r-1,0)*h;else b[i][j][1]=r*h; if (i!=0) b[i][j][2]=max(h-1,0)*r;else b[i][j][2]=r*h; if ((n+1)%3!=i) b[i][j][3]=max(h-1,0)*r;else b[i][j][3]=r*h; b[i][j][4]=max(r-(j!=0),0)*max(h-(i!=0),0); b[i][j][5]=max(r-((m+1)%3!=j),0)*max(h-((n+1)%3!=i),0); b[i][j][6]=max(r-((m+1)%3!=j),0)*max(h-(i!=0),0); b[i][j][7]=max(r-(j!=0),0)*max(h-((n+1)%3!=i),0); } for (int i=1;i<=k;i++) { int x,y; scanf("%d%d",&x,&y); a[x%3][y%3]++; } /* for (int j=3;j;j--) { for (int i=1;i<=3;i++) cout<<a[i%3][j%3]; cout<<endl; } cout<<endl; */ if (dfs(k)) cout<<"Yesn"; else cout<<"Non"; h.clear(); } return 0; }