This documentation is automatically generated by competitive-verifier/competitive-verifier
#pragma once
#include "algo/common.h"
#include "algo/ds/sparse_table.h"
#include "algo/utils/bits.h"
namespace algo::graph {
struct lca {
// Note that adj must be a tree. Don't forget to set root!
lca(const std::vector<std::vector<index_t>> &adj, index_t root = 0)
: n((index_t)adj.size()), height(n), first(n), st(2 * n, {&height}) {
euler.reserve(2 * n);
dfs(root, root, 0, adj);
st.init(euler);
}
// Lowest common ancestor of u, v
index_t par(index_t u, index_t v) {
index_t l = first[u], r = first[v];
if (l > r) std::swap(l, r);
return st.query(l, r);
}
private:
// The table is built before dfs fills height, so the op has to read it
// where it lives rather than close over a copy.
struct by_height {
const std::vector<index_t> *height;
index_t operator()(index_t a, index_t b) const {
return (*height)[a] < (*height)[b] ? a : b;
}
};
index_t n;
std::vector<index_t> height, euler, first;
ds::sparse_table<index_t, by_height> st;
void dfs(index_t v, index_t p, index_t h,
const std::vector<std::vector<index_t>> &adj) {
height[v] = h;
first[v] = (index_t)euler.size();
euler.push_back(v);
for (index_t u : adj[v]) {
if (u != p) {
dfs(u, v, h + 1, adj);
euler.push_back(v);
}
}
}
};
}; // namespace algo::graph
#line 2 "algo/common.h"
#ifndef PREPROCESS
#include <bits/stdc++.h>
#include <cassert>
#endif
namespace algo {
// Indices and sizes into library containers. Signed, so the usual "walk down to
// -1" loops still terminate; widening the whole library is a change here alone.
using index_t = int;
} // namespace algo
#line 3 "algo/utils/bits.h"
namespace algo::utils {
// Returns number of set bits in x
constexpr int popcnt(int64_t x) {
return __builtin_popcountll(x);
}
// Returns floor(log_2(x))
constexpr int lg2(uint64_t x) {
return std::bit_width(x) - 1;
}
} // namespace algo::utils
#line 4 "algo/ds/sparse_table.h"
namespace algo::ds {
// An op has to be a type here, and std::min and std::max name overload sets
// rather than single functions, so wrap them.
template <typename T>
struct min_op {
T operator()(T a, T b) const {
return std::min(a, b);
}
};
template <typename T>
struct max_op {
T operator()(T a, T b) const {
return std::max(a, b);
}
};
template <typename T, typename Op = min_op<T>>
struct sparse_table {
// Must be constructed with idempotent function. Call init() after if using
// this constructor.
sparse_table(index_t _n, Op op = Op())
: n(_n), k(utils::lg2(n)), op(op),
st(std::max<index_t>(k + 1, 1), std::vector<T>(n)) {
}
// Must be constructed with idempotent function
sparse_table(const std::vector<T> &a, Op op = Op())
: sparse_table((index_t)a.size(), op) {
init(a);
}
void init(const std::vector<T> &a) {
assert((index_t)a.size() <= n);
std::copy(a.begin(), a.end(), st[0].begin());
for (index_t i = 1; i <= k; i++) {
for (index_t j = 0; j + (index_t(1) << i) <= n; j++) {
st[i][j] =
op(st[i - 1][j], st[i - 1][j + (index_t(1) << (i - 1))]);
}
}
}
// Queries on [l, r]
T query(index_t l, index_t r) {
index_t i = utils::lg2(r - l + 1);
return op(st[i][l], st[i][r - (index_t(1) << i) + 1]);
}
friend std::ostream &operator<<(std::ostream &os, const sparse_table &t) {
return os << t.st[0];
}
private:
// k is the max level index and is -1 when n is 0, so the row count is
// floored at 1 to keep level 0 present for init() to copy into.
index_t n, k;
Op op;
std::vector<std::vector<T>> st;
};
} // namespace algo::ds
#line 5 "algo/graph/lca.h"
namespace algo::graph {
struct lca {
// Note that adj must be a tree. Don't forget to set root!
lca(const std::vector<std::vector<index_t>> &adj, index_t root = 0)
: n((index_t)adj.size()), height(n), first(n), st(2 * n, {&height}) {
euler.reserve(2 * n);
dfs(root, root, 0, adj);
st.init(euler);
}
// Lowest common ancestor of u, v
index_t par(index_t u, index_t v) {
index_t l = first[u], r = first[v];
if (l > r) std::swap(l, r);
return st.query(l, r);
}
private:
// The table is built before dfs fills height, so the op has to read it
// where it lives rather than close over a copy.
struct by_height {
const std::vector<index_t> *height;
index_t operator()(index_t a, index_t b) const {
return (*height)[a] < (*height)[b] ? a : b;
}
};
index_t n;
std::vector<index_t> height, euler, first;
ds::sparse_table<index_t, by_height> st;
void dfs(index_t v, index_t p, index_t h,
const std::vector<std::vector<index_t>> &adj) {
height[v] = h;
first[v] = (index_t)euler.size();
euler.push_back(v);
for (index_t u : adj[v]) {
if (u != p) {
dfs(u, v, h + 1, adj);
euler.push_back(v);
}
}
}
};
}; // namespace algo::graph