题意:
给了一个2*2的魔方..每步操作可以将任意一面翻转90度..现在问在N(<=7)步内..最多能翻出几面相同的...
题解:
开始自己打了个10行表..好难找错..然后发现..其实只要六个就行了..因为左侧正90转和右侧负90转时一样的..
论科学打表..自己手动裁剪一个2*2的魔方..标好号..观察一下就可以了..
Prgoram:
#include <iostream> #include <stdio.h> #include <string.h> #include <cmath> #include <algorithm> using namespace std; int B[6][24]={ {6,1,12,3,5,11,16,7,8,9,4,10,18,13,14,15,20,17,22,19,0,21,2,23}, //ok {20,1,22,3,10,4,0,7,8,9,11,5,2,13,14,15,6,17,12,19,16,21,18,23}, //ok {1,3,0,2,23,22,4,5,6,7,10,11,12,13,14,15,16,17,18,19,20,21,9,8}, //ok {2,0,3,1,6,7,8,9,23,22,10,11,12,13,14,15,16,17,18,19,20,21,5,4}, //ok {0,1,8,14,4,3,7,13,17,9,10,2,6,12,16,15,5,11,18,19,20,21,22,23}, //ok {0,1,11,5,4,16,12,6,2,9,10,17,13,7,3,15,14,8,18,19,20,21,22,23} //ok }; int ans; void update(int *h) { int sum=0; if (h[0]==h[1] && h[1]==h[2] && h[2]==h[3]) sum++; if (h[4]==h[5] && h[5]==h[10] && h[10]==h[11]) sum++; if (h[6]==h[7] && h[7]==h[12] && h[12]==h[13]) sum++; if (h[8]==h[9] && h[9]==h[14] && h[14]==h[15]) sum++; if (h[16]==h[17] && h[17]==h[18] && h[18]==h[19]) sum++; if (h[20]==h[21] && h[21]==h[22] && h[22]==h[23]) sum++; ans=max(ans,sum); } void dfs(int N,int *h) { update(h); if (!N) return; int k,i,p[24]; for (k=0;k<6;k++) { for (i=0;i<24;i++) p[i]=h[B[k][i]]; dfs(N-1,p); } return; } int main() { int N,i,h[24]; while (~scanf("%d",&N)) { for (i=0;i<24;i++) scanf("%d",&h[i]); ans=0; dfs(N,h); printf("%d\n",ans); } return 0; }