POJ 2965 The Pilots Brothers' refrigerator

广度优先搜索+位运算+递归输出路径。

这道题关键是输出路径是很难的，其中参考了网上的一种递归输出的方法，需留意。

#include<iostream>
using namespace std;

unsigned short handles;
unsigned short queue[65535];
int father[65535];
int cx[65535],cy[65535];
bool flag[65535];
unsigned short door[16]={0x111f,0x222f,0x444f,0x888f,0x11f1,0x22f2,0x44f4,0x88f8,0x1f11,0x2f22,0x4f44,0x8f88,0xf111,0xf222,0xf444,0xf888};

int rear=0,top=0;

void outprint(int x,int y)
{
    if(father[x]==-1)
        {
            cout<<y<<endl;
            return;
        }
    outprint(father[x],y+1);
    cout<<cx[x]<<" "<<cy[x]<<endl;
}

void init()
{
    for(int i=0;i<4;i++)
        for(int j=0;j<4;j++)
            {
                char c;
                cin>>c;
                if('+'==c)
                handles|=1<<(4*i+j);
            }
    flag[handles]=true;
    queue[top++]=handles;
    father[top-1]=-1;
}

unsigned short change(unsigned short state,int i)
{
    unsigned short temp=state;
    temp ^= door[i];
    return temp;
}

void dfs()
{
    while(rear<top)
    {
        for(int i=0;i<=15;i++)
        {
            unsigned short nowstate = change(queue[rear],i);
            if(!flag[nowstate])
            {
                queue[top++]=nowstate;
                flag[nowstate]=true;
                father[top-1]=rear;
                cx[top-1]=i/4+1;
                cy[top-1]=i%4+1;
            }
            if(nowstate==0)
            {
                outprint(top-1,0);
                return;
            }
        }
        rear++;
    }
}

int main()
{
    init();
    dfs();
    return 0;

}

晚上连夜回家搬电脑，

继续加油！