Library

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:heavy_check_mark: test/data_structure/Static_Rectangle_Sum.test.cpp

Depends on

Code

#define PROBLEM "https://judge.yosupo.jp/problem/rectangle_sum"

#include "../../data_structure/static_rectangle_sum.hpp"

#include "../../template/template.hpp"

namespace ebi {

void main_() {
    int n, q;
    std::cin >> n >> q;
    static_rectangle_sum<int, i64> srs;
    rep(i, 0, n) {
        int x, y;
        i64 w;
        std::cin >> x >> y >> w;
        srs.add_point(x, y, w);
    }
    rep(i, 0, q) {
        int l, d, r, u;
        std::cin >> l >> d >> r >> u;
        srs.add_query(l, d, r, u);
    }
    std::cout << srs.run() << '\n';
}

}  // namespace ebi

int main() {
    ebi::fast_io();
    int t = 1;
    // std::cin >> t;
    while (t--) {
        ebi::main_();
    }
    return 0;
}
#line 1 "test/data_structure/Static_Rectangle_Sum.test.cpp"
#define PROBLEM "https://judge.yosupo.jp/problem/rectangle_sum"

#line 2 "data_structure/static_rectangle_sum.hpp"

#include <array>
#include <tuple>
#include <vector>

#line 2 "data_structure/compress.hpp"

#include <algorithm>
#include <cassert>
#line 6 "data_structure/compress.hpp"

namespace ebi {

template <class T> struct compress {
  private:
    std::vector<T> cp;

  public:
    compress() = default;

    compress(std::vector<T> cp_) : cp(cp_) {
        build();
    }

    void build() {
        std::sort(cp.begin(), cp.end());
        cp.erase(std::unique(cp.begin(), cp.end()), cp.end());
    }

    void add(const T &val) {
        cp.emplace_back(val);
    }

    int get(const T &val) const {
        return std::lower_bound(cp.begin(), cp.end(), val) - cp.begin();
    }

    int size() const {
        return cp.size();
    }

    bool find(const T &val) const {
        auto itr = std::lower_bound(cp.begin(), cp.end(), val);
        if (itr == cp.end())
            return false;
        else
            return *itr == val;
    }

    T val(int idx) const {
        assert(0 <= idx && idx < (int)cp.size());
        return cp[idx];
    }
};

}  // namespace ebi
#line 2 "data_structure/fenwick_tree.hpp"

#line 5 "data_structure/fenwick_tree.hpp"

namespace ebi {

template <class T> struct fenwick_tree {
  private:
    int n;
    std::vector<T> data;

  public:
    fenwick_tree(int _n) : n(_n), data(std::vector<T>(_n + 1, T(0))) {}

    void add(int i, T val) {
        i++;
        for (int x = i; x <= n; x += x & -x) {
            data[x] += val;
        }
    }

    T prefix_sum(int i) const {
        assert(0 <= i && i <= n);
        T ret = 0;
        for (int x = i; x > 0; x -= x & -x) {
            ret += data[x];
        }
        return ret;
    }

    T sum(int l, int r) const {
        return prefix_sum(r) - prefix_sum(l);
    }

    T all_sum() const {
        return prefix_sum(n);
    }

    // prefix_sum(x) >= key となる最小のxを返す関数 O(log N)

    int lower_bound(T key) {
        if (key <= 0) return 0;
        int x = 0;
        int max = 1;
        while ((max << 1) <= n) max <<= 1;
        for (int k = max; k > 0; k >>= 1) {
            if (x + k <= n && data[x + k] < key) {
                x += k;
                key -= data[x];
            }
        }
        return x + 1;
    }
};

}  // namespace ebi
#line 9 "data_structure/static_rectangle_sum.hpp"

namespace ebi {

template <class S, class T> struct static_rectangle_sum {
  private:
  public:
    static_rectangle_sum() = default;

    void add_point(S x, S y, T val) {
        p.emplace_back(x, y, val);
        cp_x.add(x);
        cp_y.add(y);
    }

    void add_query(S l, S d, S r, S u) {
        q.push_back({l, d, r, u});
        cp_x.add(l);
        cp_x.add(r);
        cp_y.add(d);
        cp_y.add(u);
    }

    std::vector<T> run() {
        assert(is_first);
        is_first = false;
        cp_x.build();
        cp_y.build();
        std::vector ptable(cp_x.size(), std::vector<int>());
        std::vector qtable(cp_x.size(), std::vector(2, std::vector<int>()));
        for (int i = 0; auto [x, y, val] : p) {
            ptable[cp_x.get(x)].emplace_back(i);
            i++;
        }
        for (int i = 0; auto [l, d, r, u] : q) {
            qtable[cp_x.get(l)][0].emplace_back(i);
            qtable[cp_x.get(r)][1].emplace_back(i);
            i++;
        }
        std::vector<T> res(q.size(), 0);
        fenwick_tree<T> ftree(cp_y.size());
        for (int i = 0; i < cp_x.size(); i++) {
            for (int j = 0; j < 2; j++) {
                for (auto idx : qtable[i][j]) {
                    int d = q[idx][1], u = q[idx][3];
                    res[idx] +=
                        (j == 0 ? -1 : 1) * ftree.sum(cp_y.get(d), cp_y.get(u));
                }
            }
            for (auto idx : ptable[i]) {
                auto [x, y, val] = p[idx];
                ftree.add(cp_y.get(y), val);
            }
        }
        return res;
    }

  private:
    bool is_first = true;
    std::vector<std::tuple<S, S, T>> p;
    std::vector<std::array<S, 4>> q;
    compress<S> cp_x, cp_y;
};

}  // namespace ebi
#line 4 "test/data_structure/Static_Rectangle_Sum.test.cpp"

#line 1 "template/template.hpp"
#include <bits/stdc++.h>

#define rep(i, a, n) for (int i = (int)(a); i < (int)(n); i++)
#define rrep(i, a, n) for (int i = ((int)(n)-1); i >= (int)(a); i--)
#define Rep(i, a, n) for (i64 i = (i64)(a); i < (i64)(n); i++)
#define RRep(i, a, n) for (i64 i = ((i64)(n)-i64(1)); i >= (i64)(a); i--)
#define all(v) (v).begin(), (v).end()
#define rall(v) (v).rbegin(), (v).rend()

#line 2 "template/debug_template.hpp"

#line 4 "template/debug_template.hpp"

namespace ebi {

#ifdef LOCAL
#define debug(...)                                                      \
    std::cerr << "LINE: " << __LINE__ << "  [" << #__VA_ARGS__ << "]:", \
        debug_out(__VA_ARGS__)
#else
#define debug(...)
#endif

void debug_out() {
    std::cerr << std::endl;
}

template <typename Head, typename... Tail> void debug_out(Head h, Tail... t) {
    std::cerr << " " << h;
    if (sizeof...(t) > 0) std::cerr << " :";
    debug_out(t...);
}

}  // namespace ebi
#line 2 "template/int_alias.hpp"

#line 4 "template/int_alias.hpp"

namespace ebi {

using ld = long double;
using std::size_t;
using i8 = std::int8_t;
using u8 = std::uint8_t;
using i16 = std::int16_t;
using u16 = std::uint16_t;
using i32 = std::int32_t;
using u32 = std::uint32_t;
using i64 = std::int64_t;
using u64 = std::uint64_t;
using i128 = __int128_t;
using u128 = __uint128_t;

}  // namespace ebi
#line 2 "template/io.hpp"

#line 5 "template/io.hpp"
#include <optional>
#line 7 "template/io.hpp"

namespace ebi {

template <typename T1, typename T2>
std::ostream &operator<<(std::ostream &os, const std::pair<T1, T2> &pa) {
    return os << pa.first << " " << pa.second;
}

template <typename T1, typename T2>
std::istream &operator>>(std::istream &os, std::pair<T1, T2> &pa) {
    return os >> pa.first >> pa.second;
}

template <typename T>
std::ostream &operator<<(std::ostream &os, const std::vector<T> &vec) {
    for (std::size_t i = 0; i < vec.size(); i++)
        os << vec[i] << (i + 1 == vec.size() ? "" : " ");
    return os;
}

template <typename T>
std::istream &operator>>(std::istream &os, std::vector<T> &vec) {
    for (T &e : vec) std::cin >> e;
    return os;
}

template <typename T>
std::ostream &operator<<(std::ostream &os, const std::optional<T> &opt) {
    if (opt) {
        os << opt.value();
    } else {
        os << "invalid value";
    }
    return os;
}

void fast_io() {
    std::cout << std::fixed << std::setprecision(15);
    std::cin.tie(nullptr);
    std::ios::sync_with_stdio(false);
}

}  // namespace ebi
#line 2 "template/utility.hpp"

#line 5 "template/utility.hpp"

#line 2 "graph/base.hpp"

#line 5 "graph/base.hpp"
#include <ranges>
#line 7 "graph/base.hpp"

#line 2 "data_structure/simple_csr.hpp"

#line 6 "data_structure/simple_csr.hpp"

namespace ebi {

template <class E> struct simple_csr {
    simple_csr() = default;

    simple_csr(int n, const std::vector<std::pair<int, E>>& elements)
        : start(n + 1, 0), elist(elements.size()) {
        for (auto e : elements) {
            start[e.first + 1]++;
        }
        for (auto i : std::views::iota(0, n)) {
            start[i + 1] += start[i];
        }
        auto counter = start;
        for (auto [i, e] : elements) {
            elist[counter[i]++] = e;
        }
    }

    simple_csr(const std::vector<std::vector<E>>& es)
        : start(es.size() + 1, 0) {
        int n = es.size();
        for (auto i : std::views::iota(0, n)) {
            start[i + 1] = (int)es[i].size() + start[i];
        }
        elist.resize(start.back());
        for (auto i : std::views::iota(0, n)) {
            std::copy(es[i].begin(), es[i].end(), elist.begin() + start[i]);
        }
    }

    int size() const {
        return (int)start.size() - 1;
    }

    const auto operator[](int i) const {
        return std::ranges::subrange(elist.begin() + start[i],
                                     elist.begin() + start[i + 1]);
    }
    auto operator[](int i) {
        return std::ranges::subrange(elist.begin() + start[i],
                                     elist.begin() + start[i + 1]);
    }

    const auto operator()(int i, int l, int r) const {
        return std::ranges::subrange(elist.begin() + start[i] + l,
                                     elist.begin() + start[i + 1] + r);
    }
    auto operator()(int i, int l, int r) {
        return std::ranges::subrange(elist.begin() + start[i] + l,
                                     elist.begin() + start[i + 1] + r);
    }

  private:
    std::vector<int> start;
    std::vector<E> elist;
};

}  // namespace ebi
#line 9 "graph/base.hpp"

namespace ebi {

template <class T> struct Edge {
    int from, to;
    T cost;
    int id;
};

template <class E> struct Graph {
    using cost_type = E;
    using edge_type = Edge<cost_type>;

    Graph(int n_) : n(n_) {}

    Graph() = default;

    void add_edge(int u, int v, cost_type c) {
        buff.emplace_back(u, edge_type{u, v, c, m});
        edges.emplace_back(edge_type{u, v, c, m++});
    }

    void add_undirected_edge(int u, int v, cost_type c) {
        buff.emplace_back(u, edge_type{u, v, c, m});
        buff.emplace_back(v, edge_type{v, u, c, m});
        edges.emplace_back(edge_type{u, v, c, m});
        m++;
    }

    void read_tree(int offset = 1, bool is_weighted = false) {
        read_graph(n - 1, offset, false, is_weighted);
    }

    void read_parents(int offset = 1) {
        for (auto i : std::views::iota(1, n)) {
            int p;
            std::cin >> p;
            p -= offset;
            add_undirected_edge(p, i, 1);
        }
        build();
    }

    void read_graph(int e, int offset = 1, bool is_directed = false,
                    bool is_weighted = false) {
        for (int i = 0; i < e; i++) {
            int u, v;
            std::cin >> u >> v;
            u -= offset;
            v -= offset;
            if (is_weighted) {
                cost_type c;
                std::cin >> c;
                if (is_directed) {
                    add_edge(u, v, c);
                } else {
                    add_undirected_edge(u, v, c);
                }
            } else {
                if (is_directed) {
                    add_edge(u, v, 1);
                } else {
                    add_undirected_edge(u, v, 1);
                }
            }
        }
        build();
    }

    void build() {
        assert(!prepared);
        csr = simple_csr<edge_type>(n, buff);
        buff.clear();
        prepared = true;
    }

    int size() const {
        return n;
    }

    int node_number() const {
        return n;
    }

    int edge_number() const {
        return m;
    }

    edge_type get_edge(int i) const {
        return edges[i];
    }

    std::vector<edge_type> get_edges() const {
        return edges;
    }

    const auto operator[](int i) const {
        return csr[i];
    }
    auto operator[](int i) {
        return csr[i];
    }

  private:
    int n, m = 0;

    std::vector<std::pair<int,edge_type>> buff;

    std::vector<edge_type> edges;
    simple_csr<edge_type> csr;
    bool prepared = false;
};

}  // namespace ebi
#line 8 "template/utility.hpp"

namespace ebi {

template <class T> inline bool chmin(T &a, T b) {
    if (a > b) {
        a = b;
        return true;
    }
    return false;
}

template <class T> inline bool chmax(T &a, T b) {
    if (a < b) {
        a = b;
        return true;
    }
    return false;
}

template <class T> T safe_ceil(T a, T b) {
    if (a % b == 0)
        return a / b;
    else if (a >= 0)
        return (a / b) + 1;
    else
        return -((-a) / b);
}

template <class T> T safe_floor(T a, T b) {
    if (a % b == 0)
        return a / b;
    else if (a >= 0)
        return a / b;
    else
        return -((-a) / b) - 1;
}

constexpr i64 LNF = std::numeric_limits<i64>::max() / 4;

constexpr int INF = std::numeric_limits<int>::max() / 2;

const std::vector<int> dy = {1, 0, -1, 0, 1, 1, -1, -1};
const std::vector<int> dx = {0, 1, 0, -1, 1, -1, 1, -1};

}  // namespace ebi
#line 6 "test/data_structure/Static_Rectangle_Sum.test.cpp"

namespace ebi {

void main_() {
    int n, q;
    std::cin >> n >> q;
    static_rectangle_sum<int, i64> srs;
    rep(i, 0, n) {
        int x, y;
        i64 w;
        std::cin >> x >> y >> w;
        srs.add_point(x, y, w);
    }
    rep(i, 0, q) {
        int l, d, r, u;
        std::cin >> l >> d >> r >> u;
        srs.add_query(l, d, r, u);
    }
    std::cout << srs.run() << '\n';
}

}  // namespace ebi

int main() {
    ebi::fast_io();
    int t = 1;
    // std::cin >> t;
    while (t--) {
        ebi::main_();
    }
    return 0;
}
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