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hdu5296(2015多校1)--Annoying problem(lca+一个公式)
Annoying problem
Time Limit: 16000/8000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)Total Submission(s): 483 Accepted Submission(s): 148
Problem Description
Coco has a tree, whose nodes are conveniently labeled by 1,2,…,n, which has n-1 edge,each edge has a weight. An existing set S is initially empty.
Now there are two kinds of operation:
1 x: If the node x is not in the set S, add node x to the set S
2 x: If the node x is in the set S,delete node x from the set S
Now there is a annoying problem: In order to select a set of edges from tree after each operation which makes any two nodes in set S connected. What is the minimum of the sum of the selected edges’ weight ?
Now there are two kinds of operation:
1 x: If the node x is not in the set S, add node x to the set S
2 x: If the node x is in the set S,delete node x from the set S
Now there is a annoying problem: In order to select a set of edges from tree after each operation which makes any two nodes in set S connected. What is the minimum of the sum of the selected edges’ weight ?
Input
one integer number T is described in the first line represents the group number of testcases.( T<=10 )
For each test:
The first line has 2 integer number n,q(0<n,q<=100000) describe the number of nodes and the number of operations.
The following n-1 lines each line has 3 integer number u,v,w describe that between node u and node v has an edge weight w.(1<=u,v<=n,1<=w<=100)
The following q lines each line has 2 integer number x,y describe one operation.(x=1 or 2,1<=y<=n)
For each test:
The first line has 2 integer number n,q(0<n,q<=100000) describe the number of nodes and the number of operations.
The following n-1 lines each line has 3 integer number u,v,w describe that between node u and node v has an edge weight w.(1<=u,v<=n,1<=w<=100)
The following q lines each line has 2 integer number x,y describe one operation.(x=1 or 2,1<=y<=n)
Output
Each testcase outputs a line of "Case #x:" , x starts from 1.
The next q line represents the answer to each operation.
The next q line represents the answer to each operation.
Sample Input
1 6 5 1 2 2 1 5 2 5 6 2 2 4 2 2 3 2 1 5 1 3 1 4 1 2 2 5
Sample Output
Case #1: 0 6 8 8 4
Author
FZUACM
题目大意:给出一棵树,每一个边都有一个权值,如今有一个空的集合,两种操作,1 x吧x节点放到集合中(假设还没放入),2 x把x节点从集合中拿出来(已放入)。如今要求将集合中的点之间的边权之和
dfn[u] - dfn[ lca(x,u) ] - dfn[ lca(y,u) ] + dfn[ lca(x,y) ]
神一样的公式呀,表示比赛时根本就没想过要推公式,,。,,
先说这个公式怎么用,首先dfs一个顺序,加一个节点u。假设u节点的dfs序,在集合中节点的dfs序之间,那么找到最接近的(u的dfs序)的两个数为x和y;假设u节点的dfs序在集合中节点的dfs序的一側,那么x和y为集合中dfs序的最大值和最小值,,,,,这样带入公式中求的就是加入这个节点所带来的须要加入的距离。删除一个节点和加入时一样的。
如果节点要连接到一个链中,链的定点(x,y),那么u连接到x的距离是dfn[u] + dfn[x] - 2dfn[ lca(u,x) ] ;
u连接到y的距离dfn[u] + dfn[y] - 2dfn[ lca(u,x) ] :
x连接到y的距离dfn[x] + dfn[y] - 2dfn[ lca(x,y) ] :
u连接到x-y这个链的距离 = (u到y+u到x-x到y)/2
#include <cstdio> #include <cstring> #include <set> #include <algorithm> using namespace std ; #define maxn 100050 struct E{ int v , w ; int next ; }edge[maxn<<1]; int head[maxn] , cnt ; int rmq[maxn][20] ; int dep[maxn] , p[maxn] , belong[maxn] , cid ; int vis[maxn] , dfn[maxn] ; set<int> s ; set<int>::iterator iter ; void add(int u,int v,int w) { edge[cnt].v = v ; edge[cnt].w = w ; edge[cnt].next = head[u] ; head[u] = cnt++ ; edge[cnt].v = u ; edge[cnt].w = w ; edge[cnt].next = head[v] ; head[v] = cnt++ ; } void dfs(int fa,int u) { int i , j , v ; p[u] = ++cid ; belong[cid] = u ; for(i = head[u] ; i != -1 ; i = edge[i].next ) { v = edge[i].v ; if( v == fa ) continue ; dfn[v] = dfn[u] + edge[i].w ; rmq[v][0] = u ; for(j = 1 ; j < 19 ; j++) rmq[v][j] = rmq[ rmq[v][j-1] ][j-1] ; dep[v] = dep[u] + 1 ; dfs(u,v) ; } } int lca(int u,int v) { if( dep[u] < dep[v] ) swap(u,v) ; int i ; for(i = 19 ; i >= 0 ; i--) { if( dep[ rmq[u][i] ] >= dep[v] ) u = rmq[u][i] ; if( u == v ) return u ; } for(i = 19 ; i >= 0 ; i--) { if( rmq[u][i] != rmq[v][i] ) { u = rmq[u][i] ; v = rmq[v][i] ; } } return rmq[u][0] ; } int solve(int u) { if( s.empty() ) return 0 ; int x , y ; iter = s.upper_bound(u) ; if( iter == s.end() || iter == s.begin() ) { x = belong[ *s.begin() ] ; y = belong[ *s.rbegin() ] ; } else { x = belong[*iter] ; iter-- ; y = belong[*iter] ; } u = belong[u] ; return dfn[u] - dfn[ lca(x,u) ] - dfn[ lca(y,u) ] + dfn[ lca(x,y) ] ; } int main() { int Step = 0 , t ; int n , m ; int i , j , u , v , w , k ; int ans ; scanf("%d", &t) ; while( t-- ) { memset(head,-1,sizeof(head)) ; memset(rmq,0,sizeof(rmq)) ; memset(dfn,0,sizeof(dfn)) ; memset(vis,0,sizeof(vis)) ; cnt = cid = ans = 0 ; s.clear() ; scanf("%d %d", &n, &m) ; for(i = 1 ; i < n ; i++) { scanf("%d %d %d", &u, &v, &w) ; add(u,v,w) ; } dep[1] = 1 ; dfs(-1,1) ; printf("Case #%d:\n", ++Step) ; while( m-- ) { scanf("%d %d", &k, &u) ; u = p[u] ; if( k == 1 ) { if( !vis[u] ) { vis[u] = 1 ; ans += solve(u) ; s.insert(u) ; } } else { if( vis[u] ) { vis[u] = 0 ; s.erase(u) ; ans -= solve(u) ; } } printf("%d\n", ans) ; } } return 0 ; }
hdu5296(2015多校1)--Annoying problem(lca+一个公式)
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