这题的想法真的很妙啊。
看到题的第一眼,我先想到树链剖分,并把(DFS)序当成一段区间上主席树。但是会发现在询问的时候,可能会非常复杂,因为你需要把路径拆成很多条轻链和重链,它们还不一定连续,很难做(这个做法貌似可以用于子树第(k)大问题)。
于是我们换一个思路,让某个点的从它的父亲继承信息,也就是让这个结点对应的主席树维护一条从它到根的链。
那查询该如何是好?假设要查询的结点为(x,y),我们利用树上差分的思想让(x,y,lca(x,y),fa[lca(x,y)])对应的四棵主席树一起向下跳就行了。
有连边操作时,就要用到启发式合并了,也就是把小的那棵树合并到大的中,暴力重构一下小树的倍增数组和主席树就行了。
代码:
#include <bits/stdc++.h>
using namespace std;
#define N 100000
#define pb push_back
#define mp make_pair
#define mid ((l+r)>>1)
#define pii pair<int, int>
#define D 17
int n0, n, m, q, T, root[N+5], sz[N+5], d[N+5], me[N+5];
int w0[N+5], w[N+5], as[N+5], f[N+5][20];
int nid, sumv[100*N+5], lson[100*N+5], rson[100*N+5];
int lastans;
vector<int> G[N+5];
void build(int &o, int l, int r)
{
o = ++nid;
if(l == r) return ;
build(lson[o], l, mid), build(rson[o], mid+1, r);
}
int LCA(int x, int y)
{
if(d[x] < d[y]) swap(x, y);
for(int i = D; i >= 0; --i)
if(d[f[x][i]] >= d[y]) x = f[x][i];
if(x == y) return x;
for(int i = D; i >= 0 && f[x][0] != f[y][0]; --i)
if(f[x][i] != f[y][i]) x = f[x][i], y = f[y][i];
return f[x][0];
}
void insert(int o, int &u, int l, int r, int x, int k)
{
u = ++nid;
lson[u] = lson[o], rson[u] = rson[o], sumv[u] = sumv[o]+k;
if(l == r) return ;
if(x <= mid) insert(lson[o], lson[u], l, mid, x, k);
else insert(rson[o], rson[u], mid+1, r, x, k);
}
int query(int x, int y, int k) //x-->y 第k大
{
int lca = LCA(x, y), fa = f[lca][0], l = 1, r = n0;
x = root[x], y = root[y], lca = root[lca], fa = root[fa];
while(l != r)
{
int t = sumv[lson[x]]+sumv[lson[y]]-sumv[lson[fa]]-sumv[lson[lca]];
if(t >= k) r = mid, x = lson[x], y = lson[y], fa = lson[fa], lca = lson[lca];
else k -= t, l = mid+1, x = rson[x], y = rson[y], fa = rson[fa], lca = rson[lca];
}
return as[l];
}
void dfs(int u, int fa, int anc)
{
d[u] = d[fa]+1, sz[u] = 1, f[u][0] = fa, me[u] = anc;
for(int i = 1; i <= D; ++i) f[u][i] = f[f[u][i-1]][i-1];
insert(root[fa], root[u], 1, n0, w[u], 1);
for(int i = 0, v; i < G[u].size(); ++i)
{
v = G[u][i];
if(v == fa) continue;
dfs(v, u, anc);
sz[u] += sz[v];
}
}
void link(int x, int y)
{
G[x].pb(y), G[y].pb(x);
if(sz[me[x]] < sz[me[y]]) dfs(x, y, me[y]);
else dfs(y, x, me[x]);
}
int main()
{
#ifndef ONLINE_JUDGE
freopen("testdata.in", "r", stdin);
freopen("testdata.out", "w", stdout);
#endif
scanf("%d", &T);
scanf("%d%d%d", &n, &m, &q);
for(int i = 1; i <= n; ++i) scanf("%d", &w0[i]), w[i] = w0[i]; //离散化
sort(w0+1, w0+n+1);
n0 = unique(w0+1, w0+n+1)-w0-1;
for(int i = 1, t; i <= n; ++i)
{
t = lower_bound(w0+1, w0+n0+1, w[i])-w0;
as[t] = w[i], w[i] = t;
}
for(int i = 1, x, y; i <= m; ++i)
{
scanf("%d%d", &x, &y);
G[x].pb(y), G[y].pb(x);
}
build(root[0], 1, n0);
for(int i = 1; i <= n; ++i)
if(!d[i]) dfs(i, 0, i);
char c;
for(int i = 1, x, y, z; i <= q; ++i)
{
cin >> c;
scanf("%d%d", &x, &y);
x ^= lastans, y ^= lastans;
if(c == 'Q') scanf("%d", &z), z ^= lastans, printf("%d
", lastans = query(x, y, z));
else link(x, y);
}
return 0;
}