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Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 7194 Accepted Submission(s): 2865
/************************************************************************* > File Name: code/2015summer/searching/M.cpp > Author: 111qqz > Email: rkz2013@126.com > Created Time: 2015年07月25日 星期六 15时54分19秒 ************************************************************************/ #include<iostream> #include<iomanip> #include<cstdio> #include<algorithm> #include<cmath> #include<cstring> #include<string> #include<map> #include<set> #include<queue> #include<vector> #include<stack> #define y0 abc111qqz #define y1 hust111qqz #define yn hez111qqz #define j1 cute111qqz #define tm crazy111qqz #define lr dying111qqz using namespace std; #define REP(i, n) for (int i=0;i<int(n);++i) typedef long long LL; typedef unsigned long long ULL; const int N=1E2+2; int s,m,n; int a[10]; int lim[10]; int f[5][5]; int d[N][N][N]; int ans; void bfs() { queue<int>q[10]; memset(d,-1,sizeof(d)); q[0].push(s); q[1].push(0); q[2].push(0); d[s][0][0]=0; int ne[4]; memset(ne,0,sizeof(ne)); while (!q[1].empty()&&!q[2].empty()) { int p[3]; p[0]=q[0].front();q[0].pop(); p[1]=q[1].front();q[1].pop(); p[2]=q[2].front();q[2].pop(); // cout<<p[0]<<" "<<p[1]<<" "<<p[2]<<"d:"<<d[p[0]][p[1]][p[2]]<<endl;; for ( int i = 0 ; i < 3 ; i++ ) { if (p[i]==0) continue; for ( int j = i+1 ; j < 3 ; j++ ) { if (p[i]==p[j]&&p[i]+p[j]==s) { // cout<<"fufffffffffffffffffffffffff"<<endl; ans = d[p[0]][p[1]][p[2]]; // cout<<"ans:"<<ans<<endl; return; } } } for ( int i = 0 ; i < 3 ; i++ ) //i往j里倒 { if (p[i]==0) continue; //为空时不能往其他里倒 for ( int j = 0 ; j < 3 ; j++ ) { if(i==j)continue;//不能自己往倒给自己 if (p[j]==lim[j]) continue;//被倒的为满时不能倒入 if (p[i]+p[j]<=lim[j])//可以完全倒入 { int k = f[i][j]; ne[i]=0; ne[j]=p[i]+p[j]; ne[k]=p[k]; if (d[ne[0]][ne[1]][ne[2]]!=-1) continue; //出现重复 q[i].push(0); q[j].push(p[i]+p[j]); q[k].push(p[k]); d[ne[0]][ne[1]][ne[2]]=d[p[0]][p[1]][p[2]]+1; } else // 不能完全倒入 { int k = f[i][j]; ne[i]=p[i]-(lim[j]-p[j]); ne[j]=lim[j]; ne[k]=p[k]; if (d[ne[0]][ne[1]][ne[2]]!=-1) continue; //出现重复 q[i].push(ne[i]); q[j].push(ne[j]); q[k].push(ne[k]); d[ne[0]][ne[1]][ne[2]]=d[p[0]][p[1]][p[2]]+1; } } } } } int main() { f[0][1]=2; f[0][2]=1; f[1][2]=0; f[1][0]=2; f[2][0]=1; f[2][1]=0; while (scanf("%d %d %d",&s,&m,&n)!=EOF) { ans = -1; if (s==0&&n==0&&m==0) break; if (s%2==1) { cout<<"NO"<<endl; continue; } lim[0] = s; lim[1] = m; lim[2] = n; bfs(); if (ans==-1) { cout<<"NO"<<endl; } else { cout<<ans<<endl; } } return 0; }
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原文地址:http://www.cnblogs.com/111qqz/p/4678940.html
