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[poj 1947] Rebuilding Roads 树形DP

Rebuilding Roads Time Limit: 1000MS Memory Limit: 30000K Total Submissions: 10653 Accepted: 4884 Description The cows have reconstructed Farmer John's farm, with its N barns (1 <= N <= 150, number 1..N) after the terrible earthquake last May. The co…

DP Intro - poj 1947 Rebuilding Roads(树形DP)

版权声明:本文为博主原创文章,未经博主允许不得转载. Rebuilding Roads Time Limit: 1000MS   Memory Limit: 30000K Total Submissions: 8227   Accepted: 3672 Description The cows have reconstructed Farmer John's farm, with its N barns (1 <= N <= 150, number 1..N) after the terrib…

POJ 1947 Rebuilding Roads 树形DP

Rebuilding Roads   Description The cows have reconstructed Farmer John's farm, with its N barns (1 <= N <= 150, number 1..N) after the terrible earthquake last May. The cows didn't have time to rebuild any extra roads, so now there is exactly one wa…

POJ 1947 Rebuilding Roads 树形dp 难度:2

Rebuilding Roads Time Limit: 1000MS   Memory Limit: 30000K Total Submissions: 9105   Accepted: 4122 Description The cows have reconstructed Farmer John's farm, with its N barns (1 <= N <= 150, number 1..N) after the terrible earthquake last May. The…

POJ 1947 Rebuilding Roads

树形DP..... Rebuilding Roads Time Limit: 1000MS Memory Limit: 30000K Total Submissions: 8188 Accepted: 3659 Description The cows have reconstructed Farmer John's farm, with its N barns (1 <= N <= 150, number 1..N) after the terrible earthquake last Ma…

POJ1947 Rebuilding Roads[树形背包]

Rebuilding Roads Time Limit: 1000MS   Memory Limit: 30000K Total Submissions: 11495   Accepted: 5276 Description The cows have reconstructed Farmer John's farm, with its N barns (1 <= N <= 150, number 1..N) after the terrible earthquake last May. Th…

POJ 1947 Rebuilding Roads (树dp + 背包思想)

题目链接:http://poj.org/problem?id=1947 一共有n个节点,要求减去最少的边,行号剩下p个节点.问你去掉的最少边数. dp[u][j]表示u为子树根,且得到j个节点最少减去的边数. 考虑两种情况,去掉孩子节点v与去不掉. (1)去掉孩子节点:dp[u][j] = dp[u][j] + 1 (2)不去掉孩子节点:dp[u][j] = min(dp[u][j - k] + dp[v][k]) 综上就是dp[u][j] = min(dp[u][j] + 1, min(dp[…

树形dp(poj 1947 Rebuilding Roads )

题意: 有n个点组成一棵树,问至少要删除多少条边才能获得一棵有p个结点的子树? 思路: 设dp[i][k]为以i为根,生成节点数为k的子树,所需剪掉的边数. dp[i][1] = total(i.son) + 1,即剪掉与所有儿子(total(i.son))的边,还要剪掉与其父亲(+1)的边. dp[i][k] = min(dp[i][k],dp[i][j - k] + dp[i.son][k] - 2),即由i.son生成一个节点数为k的子树,再由i生成其他j-k个节点数的子树. 这里要还原i…

POJ 1947 - Rebuilding Roads 树型DP(泛化背包转移)..

dp[x][y]表示以x为根的子树要变成有y个点..最少需要减去的边树... 最终ans=max(dp[i][P]+t)  < i=(1,n) , t = i是否为整棵树的根 > 更新的时候分为两种情况..一种是要从其这个孩子转移过来...枚举做01背包..更新出每个状态的最小值..或者说直接砍掉这个孩子..那么只需将所有的状态多加个砍边... 这里的枚举做01背包..意思是由于叶子节点要放多少进去不确定..叶子节点要放的大小以及本节点的空间都在枚举更新...这种概念就是泛化背包..本质上是0…

POJ 1947 Rebuilding Roads(树形DP)

题目链接 题意 : 给你一棵树,问你至少断掉几条边能够得到有p个点的子树. 思路 : dp[i][j]代表的是以i为根的子树有j个节点.dp[u][i] = dp[u][j]+dp[son][i-j]-1,son是u的儿子节点.初始是将所有的儿子都断开,然后-1代表的是这个儿子我需要了,不断了. #include<cstdio> #include<cstring> #include<algorithm> #include<iostream> #define…