UVA116Unidirectional TSP(DP+逆推)

时间:2023-03-10 04:27:07
UVA116Unidirectional TSP(DP+逆推)

http://acm.hust.edu.cn/vjudge/problem/viewProblem.action?id=18206

题意:M*N的数阵,从左边一列到右边一列走过的数的和的最小。并输出路径和最小值,每一个数能右上,右,右下三种决策,第一行右上是第m行,第m行右下是第1行。

dp【i】【j】存i行j列到最后一列的和的最小,然后逆推,输出路径,就从第一列找最小的dp,然后减去这个数,找右上,右,右下相等的dp,同时行数还得是最小的,思路还是很好想的。做的就是有点麻烦

 #include <iostream>

 #include <cstring>

 #include <algorithm>

 #include <cstdio>

 using namespace std;

 const int INF = 0x3f3f3f3f;

 int a[][],dp[][];

 int main()

 {

     int n,m;

     while(scanf("%d%d", &m, &n) != EOF)

     {

         memset(a, INF, sizeof(a));

         for(int i = ; i <= m; i++)

         {

             for(int j = ; j <= n; j++)

             {

                 scanf("%d", &a[i][j]);

             }

         }

         memset(dp, INF, sizeof(dp));

         for(int i = ; i <= m; i++)

             dp[i][n] = a[i][n];

         for(int j = n - ; j >= ; j--)

         {

             for(int i = ; i <= m; i++)

             {

                 if(i == )

                 {

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[m][j + ]);

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[i][j + ]);

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[i + ][j + ]);

                 }

                 else if(i == m)

                 {

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[i - ][j + ]);

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[i][j + ]);

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[][j + ]);

                 }

                 else

                 {

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[i - ][j + ]);

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[i][j + ]);

                     dp[i][j] = min(dp[i][j], a[i][j] + dp[i + ][j + ]);

                 }

             }

         }

         int start;

         int ans = INF;

         for(int i = ; i <= m; i++)

         {

             if(ans > dp[i][])

             {

                 ans = dp[i][];

                 start = i;

             }

         }

         for(int j = ; j <= n; j++)

         {

             printf("%d ",start);

             int minn = INF;

             if(start == )

             {

                 if(dp[start][j - ] - a[start][j - ] == dp[m][j])

                 {

                     minn = min(m, minn);

                 }

                 if(dp[start][j - ] - a[start][j - ] == dp[start][j])

                 {

                     minn = min(start, minn);

                 }

                 if(dp[start][j - ] - a[start][j - ] == dp[start + ][j])

                 {

                     minn = min(start + , minn);

                 }

                 start = minn;

                 continue;

             }

             else if(start == m)

             {

                 if(dp[start][j - ] - a[start][j - ] == dp[start - ][j])

                     minn = min(minn, start - );

                 if(dp[start][j - ] - a[start][j - ] == dp[start][j])

                     minn = min(minn, start);

                 if(dp[start][j - ] - a[start][j - ] == dp[][j])

                     minn = min(minn, );

                 start = minn;

                 continue;

             }

             else

             {

                 if(dp[start][j - ] - a[start][j - ] == dp[start - ][j])

                     minn = min(minn, start - );

                 if(dp[start][j - ] - a[start][j - ] == dp[start][j])

                    minn = min(minn, start);

                 if(dp[start][j - ] - a[start][j - ] == dp[start + ][j])

                     minn = min(minn, start + );

                 start = minn;

                 continue;

             }

         }

         printf("%d\n%d\n",start,ans);

     }

     return ;

 }