Solution
由于链信息不好直接维护, 所以新建一个节点存储边的权值, 并把这个节点连向 它所连的节点 $u$, $v$
$pushup$中更新维护的 $mx$ 指向路径上权值最大的边的编号。
由于这题是只有删边, 没有添边, 所以可以离线倒序, 把删边变成添边。
Code
#include<cstdio>
#include<cstring>
#include<algorithm>
#define rd read()
using namespace std; const int N = 1e6 + ; int n, m, Q, ans[N]; struct edge {
int u, v, id, val, d;
}e[N]; struct que {
int typ, u, v, id;
}q[N]; int read() {
int X = , p = ; char c = getchar();
for (; c > '' || c < ''; c = getchar())
if (c == '-') p = -;
for (; c >= '' && c <= ''; c = getchar())
X = X * + c - '';
return X * p;
} namespace LCT {
int ch[N][], f[N], mx[N], tun[N], val[N];
int st[N], tp;
#define lc(x) ch[x][0]
#define rc(x) ch[x][1] int isroot(int x) {
return rc(f[x]) != x &&
lc(f[x]) != x;
} int get(int x) {
return rc(f[x]) == x;
} void rev(int x) {
swap(lc(x), rc(x));
tun[x] ^= ;
} void pushdown(int x) {
if (tun[x]) {
if (lc(x)) rev(lc(x));
if (rc(x)) rev(rc(x));
tun[x] = ;
}
} void pd(int x) {
while (!isroot(x)) {
st[++tp] = x;
x = f[x];
}
st[++tp] = x;
while (tp) pushdown(st[tp--]);
} void up(int x) {
mx[x] = val[x];
if (e[mx[lc(x)]].val > e[mx[x]].val) mx[x] = mx[lc(x)];
if (e[mx[rc(x)]].val > e[mx[x]].val) mx[x] = mx[rc(x)];
} void rotate(int x) {
int old = f[x], oldf = f[old], son = ch[x][get(x) ^ ];
if (!isroot(old)) ch[oldf][get(old)] = x;
ch[x][get(x) ^ ] = old;
ch[old][get(x)] = son;
f[x] = oldf; f[old] = x; f[son] = old;
up(old); up(x);
} void splay(int x) {
pd(x);
for (; !isroot(x); rotate(x))
if (!isroot(f[x]))
rotate(get(f[x]) == get(x) ? f[x] : x);
} void access(int x) {
for (int y = ; x; y = x, x = f[x])
splay(x), ch[x][] = y, up(x);
} void mroot(int x) {
access(x);
splay(x);
rev(x);
} void split(int x, int y) {
mroot(x);
access(y);
splay(y);
} int findr(int x) {
access(x); splay(x);
while (lc(x)) pushdown(x), x = lc(x);
return x;
} void link(int x, int y) {
mroot(x); f[x] = y;
} void cut(int x, int y) {
split(x, y);
f[x] = ch[y][] = ;
}
}
using namespace LCT; int fd(int x, int y) {
int l = , r = m;
for (; l <= r;) {
int mid = (l + r) >> ;
if (e[mid].u < x || (e[mid].u == x && e[mid].v < y))
l = mid + ;
else if (e[mid].u == x && e[mid].v == y) return mid;
else r = mid - ;
}
return ;
} int cmp1(const edge &A, const edge &B) {
return A.val < B.val;
} int cmp2(const edge &A, const edge &B) {
return A.u == B.u ? A.v < B.v : A.u < B.u;
} int cmp3(const edge &A, const edge &B) {
return A.id < B.id;
} int main()
{
n = rd; m = rd; Q = rd;
for (int i = ; i <= m; ++i) {
e[i].u = rd, e[i].v = rd, e[i].val = rd;
if (e[i].u > e[i].v)
swap(e[i].u, e[i].v);
}
sort(e + , e + + m, cmp1);
for (int i = ; i <= m; ++i)
e[i].id = i, val[i + n] = i;
sort(e + , e + + m, cmp2);
for (int i = ; i <= Q; ++i) {
q[i].typ = rd;
q[i].u = rd;
q[i].v = rd;
if (q[i].u > q[i].v)
swap(q[i].u, q[i].v);
if (q[i].typ == ) {
int t = fd(q[i].u, q[i].v);
q[i].id = e[t].id;
e[t].d = ;
}
}
sort(e + , e + + m, cmp3);
for (int i = , tot = ; i <= m; ++i) if (!e[i].d) {
int x = e[i].u, y = e[i].v;
mroot(x);
if (findr(y) != x) {
link(x, i + n);
link(y, i + n);
tot++;
}
if (tot == n - ) break;
}
for (int i = Q; i; i--) {
if (q[i].typ == ) {
split(q[i].u, q[i].v);
ans[i] = e[mx[q[i].v]].val;
}
else {
int x = q[i].u, y = q[i].v;
mroot(x);
if (findr(y) != x) {
link(y, q[i].id + n);
link(x, q[i].id + n);
continue;
}
if (e[mx[y]].val > e[q[i].id].val) {
int t = mx[y];
cut(t + n, e[t].u);
cut(t + n, e[t].v);
link(q[i].id + n, x);
link(q[i].id + n, y);
}
}
}
for (int i = ; i <= Q; ++i)
if (q[i].typ == )
printf("%d\n", ans[i]);
}