• spoj cot: Count on a tree 主席树


    10628. Count on a tree

    Problem code: COT


     

    You are given a tree with N nodes.The tree nodes are numbered from 1 to N.Each node has an integer weight.

    We will ask you to perform the following operation:

    • u v k : ask for the kth minimum weight on the path from node u to node v

    Input

    In the first line there are two integers N and M.(N,M<=100000)

    In the second line there are N integers.The ith integer denotes the weight of the ith node.

    In the next N-1 lines,each line contains two integers u v,which describes an edge (u,v).

    In the next M lines,each line contains three integers u v k,which means an operation asking for the kth minimum weight on the path from node u to node v.

    Output

    For each operation,print its result.

    Example

    Input:
    8 5
    8 5
    105 2 9 3 8 5 7 7
    1 2        
    1 3
    1 4
    3 5
    3 6
    3 7
    4 8
    2 5 1
    2 5 2
    2 5 3
    2 5 4
    7 8 2 
    Output:
    2
    8
    9
    105
    7

    NOI前的最后一道题编这道主席树的题算是了解了对于主席树的“恐惧“。
    这道题的大致思路是对于树上每一个点,都在其父节点基础上建主席树。
    第一次编没有初始化建树操作的线段树来优化内存。还算比较顺利。以后看题的时候注意对于没有指明范围的量离散化。
    虽然参加不了NOI现场赛,但还是希望自己在同步赛中rp++
    #include<iostream>
    #include<cstdio>
    #include<cstring>
    #include<algorithm>
    using namespace std;
    #define MAXN 211000
    #define MAXE 211000
    #define MAXT 16001000
    int n,m;
    int ptr[MAXN];
    struct Edge
    {
            int np;
            Edge *next;
    }E[MAXE],*V[MAXN];
    int tope=-1;
    void addedge(int x,int y)
    {
            E[++tope].np=y;
            E[tope].next=V[x];
            V[x]=&E[tope];
    }
    int wei[MAXN];
    int depth[MAXN];
    int fa[MAXN];
    void dfs(int now,int d)
    {
            Edge *ne;
            depth[now]=d;
            for (ne=V[now];ne;ne=ne->next)
            {
                    if (ne->np==fa[now])continue;
                    fa[ne->np]=now;
                    dfs(ne->np,d+1);
            }
    }
    int jump[MAXN][20];
    void init_lca()
    {
            int i,j;
            for (i=1;i<=n;i++)
            {
                    jump[i][0]=fa[i];
            }
            for (j=1;j<20;j++)
            {
                    for (i=1;i<=n;i++)
                    {
                            jump[i][j]=jump[jump[i][j-1]][j-1];
                    }
            }
    }
    void swim(int &now,int d)
    {
            int i=0;
            while (d)
            {
                    if (d&1)now=jump[now][i];
                    i++;
                    d>>=1;
            }
    }
    int lca(int x,int y)
    {
            if (depth[x]<depth[y])
            {
                    swim(y,depth[y]-depth[x]);
            }
            if (depth[y]<depth[x])
            {
                    swim(x,depth[x]-depth[y]);
            }
            if (x==y)return x;
            int i;
            for (i=19;i>=0;i--)
            {
                    if (jump[x][i]!=jump[y][i])
                    {
                            x=jump[x][i];
                            y=jump[y][i];
                    }
            }
            return fa[x];
    }
    struct node
    {
            int lch,rch,sum;
    }tree[MAXT];
    int topt=0;
    int get_node(node *nd)
    {
            if (nd==NULL)
            {
                    return ++topt;
            }
            topt++;
            tree[topt]=*nd;
            return topt;
    }
    /*void build_tree(int &now,int l,int r)
    {
            now=++topt;
    //        tree[now].l=l;
    //        tree[now].r=r;
            if (l==r)return ;
            int mid=(l+r)/2;
            build_tree(tree[now].lch,l,mid);
            build_tree(tree[now].rch,mid+1,r);
    }*/
    void add_val(int &now,int &base,int l,int r,int pos,int v)
    {
            now=get_node(&tree[base]);
            tree[now].sum+=v;
            if (l==pos&&r==pos)
            {
                    return ;
            }
            int mid=(l+r)/2;
            if (pos<=mid)
            {
                    add_val(tree[now].lch,tree[base].lch,l,mid,pos,v);
                    return ;
            }
            if (mid<pos)
            {
                    add_val(tree[now].rch,tree[base].rch,mid+1,r,pos,v);
                    return ;
            }
    }
    int root[MAXN];
    void dfs2(int now)
    {
            Edge *ne;
            add_val(root[now],root[fa[now]],1,m,wei[now],1);
            for (ne=V[now];ne;ne=ne->next)
            {
                    if (ne->np==fa[now])continue;
                    dfs2(ne->np);
            }
    }
    struct weight_t
    {
            int id,w;
    }wei2[MAXN];
    bool cmp_w(const weight_t &w1,const weight_t &w2)
    {
            return w1.w<w2.w;
    }
    bool cmp_id(const weight_t &w1,const weight_t &w2)
    {
            return w1.id<w2.id;
    }
    int main()
    {
            //freopen("input.txt","r",stdin);
            int i,j,k,x,y,z;
            int q;
            m=100010;
            scanf("%d%d",&n,&q);
            for (i=1;i<=n;i++)
            {
                    scanf("%d",&wei2[i].w);
                    wei2[i].id=i;
            }
            sort(&wei2[1],&wei2[n+1],cmp_w);
            x=0;y=-1;
            for (i=1;i<=n;i++)
            {
                    if (wei2[i].w!=y)
                    {
                            y=wei2[i].w;
                            ptr[x+1]=wei2[i].w;
                            wei2[i].w=++x;
                    }else wei2[i].w=x;
            }
            sort(&wei2[1],&wei2[n+1],cmp_id);
            for (i=1;i<=n;i++)
                    wei[i]=wei2[i].w;
            for (i=0;i<n-1;i++)
            {
                    scanf("%d%d",&x,&y);
                    addedge(x,y);
                    addedge(y,x);
            }
            Edge *ne;
            dfs(1,0);
            init_lca();
            //build_tree(root[0],1,m);
            add_val(root[1],root[0],1,m,wei[1],1);
            for (ne=V[1];ne;ne=ne->next)
                    dfs2(ne->np);
            int t,temp;
            int a[5],topa;
            int ans;
            int l,r,mid;
            for (i=0;i<q;i++)
            {
                    scanf("%d%d%d",&x,&y,&z);
                    t=lca(x,y);
                    if (t!=1)a[0]=root[fa[t]];
                    else a[0]=0;
                    a[1]=root[t];
                    a[2]=root[x];
                    a[3]=root[y];
                    ans=0;
                    l=1,r=m;
                    while (true)
                    {
                            mid=(l+r)/2;
                            temp=ans;
                            if (l==r)break;
                            if (a[0])ans-=tree[tree[a[0]].lch].sum;
                            if (a[1])ans-=tree[tree[a[1]].lch].sum;
                            if (a[2])ans+=tree[tree[a[2]].lch].sum;
                            if (a[3])ans+=tree[tree[a[3]].lch].sum;
                            if (ans>=z)
                            {
                                    if (a[0])a[0]=tree[a[0]].lch;
                                    if (a[1])a[1]=tree[a[1]].lch;
                                    if (a[2])a[2]=tree[a[2]].lch;
                                    if (a[3])a[3]=tree[a[3]].lch;
                                    r=mid;
                                    ans=temp;
                            }else
                            {
                                    if (a[0])a[0]=tree[a[0]].rch;
                                    if (a[1])a[1]=tree[a[1]].rch;
                                    if (a[2])a[2]=tree[a[2]].rch;
                                    if (a[3])a[3]=tree[a[3]].rch;
                                    l=mid+1;
                            }
                    }    
                    printf("%d
    ",ptr[l]);
            }
    }
    by mhy12345(http://www.cnblogs.com/mhy12345/) 未经允许请勿转载

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  • 原文地址:https://www.cnblogs.com/mhy12345/p/3870648.html
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