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:heavy_check_mark: verify/ds/segtree/dynamic_lazy_segtree.test.cpp

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Code

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

#include "../../../ds/segtree/dynamic_lazy_segtree.hpp"

#include <algorithm>
#include <cassert>
#include <cstdint>
#include "../../../utilities/fast_io.hpp"
#include <vector>

#include "../../../acted_monoid/range_add_range_sum.hpp"
#include "../../../acted_monoid/range_affine_range_sum.hpp"
#include "../../../acted_monoid/range_ap_add_range_sum.hpp"
#include "../../../math/modint.hpp"

namespace {

void test_range_add() {
    using AM = m1une::acted_monoid::RangeAddRangeSum<long long>;
    using Seg = m1une::ds::DynamicLazySegtree<AM>;

    Seg seg(-1'000'000'000'000'000'000LL, 1'000'000'000'000'000'000LL, AM::make(0));
    assert(seg.size() == 2'000'000'000'000'000'000ULL);
    assert(seg.node_count() == 0);
    assert(seg.all_prod().size == 2'000'000'000'000'000'000LL);

    seg.reserve(1024);
    seg.apply(-3, 5, 2);
    assert(seg.prod(-10, 10).sum == 16);
    assert(seg.get(-3).sum == 2);
    assert(seg.get(5).sum == 0);

    [[maybe_unused]] std::size_t nodes = seg.node_count();
    seg.set(0, AM::make(10));
    assert(seg.all_prod().sum == 24);
    assert(seg.max_right(-10, [](const AM::value_type& x) { return x.sum <= 5; }) == -1);
    assert(seg.min_left(10, [](const AM::value_type& x) { return x.sum <= 5; }) == 3);
    assert(seg.node_count() >= nodes);

    seg.clear();
    assert(seg.node_count() == 0);
    assert(seg.all_prod().sum == 0);
    assert(seg.all_prod().size == 2'000'000'000'000'000'000LL);
}

void test_arithmetic_progression() {
    using AM = m1une::acted_monoid::RangeApAddRangeSum<long long>;
    m1une::ds::DynamicLazySegtree<AM, int> seg(-20, 21, AM::make(0));

    AM::operator_type first;
    first.first = 2;
    first.second = 3;
    seg.apply(-5, 6, first);
    for (int p = -5; p < 6; p++) {
        assert(seg.get(p).sum == 2LL * (p + 5) + 3);
    }

    AM::operator_type second;
    second.first = -1;
    second.second = 4;
    seg.apply(-2, 4, second);
    [[maybe_unused]] long long expected = 0;
    for (int p = -20; p < 21; p++) {
        long long value = 0;
        if (-5 <= p && p < 6) value += 2LL * (p + 5) + 3;
        if (-2 <= p && p < 4) value += -(p + 2) + 4;
        expected += value;
    }
    assert(seg.all_prod().sum == expected);
}

void test_randomized() {
    using AM = m1une::acted_monoid::RangeAddRangeSum<long long>;
    constexpr int left = -31;
    constexpr int right = 38;
    m1une::ds::DynamicLazySegtree<AM, int> seg(left, right, AM::make(0));
    std::vector<long long> a(right - left);

    std::uint64_t state = 1;
    auto random = [&state]() {
        state ^= state << 7;
        state ^= state >> 9;
        return state;
    };
    auto value_at = [&a](int p) -> long long& {
        return a[std::size_t(p - left)];
    };

    for (int step = 0; step < 3000; step++) {
        int type = int(random() % 4);
        int l = left + int(random() % (a.size() + 1));
        int r = left + int(random() % (a.size() + 1));
        if (r < l) std::swap(l, r);

        if (type == 0) {
            long long x = static_cast<long long>(random() % 11);
            seg.apply(l, r, x);
            for (int p = l; p < r; p++) value_at(p) += x;
        } else if (type == 1) {
            int p = left + int(random() % a.size());
            long long x = static_cast<long long>(random() % 30);
            seg.set(p, AM::make(x));
            value_at(p) = x;
        } else {
            [[maybe_unused]] long long expected = 0;
            for (int p = l; p < r; p++) expected += value_at(p);
            assert(seg.prod(l, r).sum == expected);
        }

        long long limit = static_cast<long long>(random() % 150);
        int start = left + int(random() % (a.size() + 1));
        int max_right = start;
        long long sum = 0;
        while (max_right < right && sum + value_at(max_right) <= limit) {
            sum += value_at(max_right);
            max_right++;
        }
        assert(seg.max_right(start, [limit](const AM::value_type& x) {
            return x.sum <= limit;
        }) == max_right);

        int finish = left + int(random() % (a.size() + 1));
        int min_left = finish;
        sum = 0;
        while (left < min_left && value_at(min_left - 1) + sum <= limit) {
            min_left--;
            sum += value_at(min_left);
        }
        assert(seg.min_left(finish, [limit](const AM::value_type& x) {
            return x.sum <= limit;
        }) == min_left);
    }
}

void test_affine_order() {
    using mint = m1une::math::modint998244353;
    using AM = m1une::acted_monoid::RangeAffineRangeSum<mint>;
    constexpr int n = 37;
    m1une::ds::DynamicLazySegtree<AM, int> seg(0, n, AM::make(1));
    std::vector<mint> a(n, 1);

    std::uint64_t state = 11;
    auto random = [&state]() {
        state ^= state << 7;
        state ^= state >> 9;
        return state;
    };

    for (int step = 0; step < 1200; step++) {
        int l = int(random() % (n + 1));
        int r = int(random() % (n + 1));
        if (r < l) std::swap(l, r);
        mint b = mint(int(random() % 7));
        mint c = mint(int(random() % 7));
        AM::operator_type f;
        f.first = b;
        f.second = c;
        seg.apply(l, r, f);
        for (int p = l; p < r; p++) a[p] = b * a[p] + c;

        int ql = int(random() % (n + 1));
        int qr = int(random() % (n + 1));
        if (qr < ql) std::swap(ql, qr);
        mint expected = 0;
        for (int p = ql; p < qr; p++) expected += a[p];
        assert(seg.prod(ql, qr).sum == expected);
    }
}

}  // namespace

int main() {
    m1une::utilities::FastInput fast_input;
    m1une::utilities::FastOutput fast_output;

    test_range_add();
    test_arithmetic_progression();
    test_randomized();
    test_affine_order();

    using mint = m1une::math::modint998244353;
    using AM = m1une::acted_monoid::RangeAffineRangeSum<mint>;

    int n, q;
    fast_input >> n >> q;
    m1une::ds::DynamicLazySegtree<AM, int> seg(0, n, AM::make(0));
    seg.reserve(std::size_t(4) * std::size_t(n + q));

    for (int i = 0; i < n; i++) {
        long long x;
        fast_input >> x;
        seg.set(i, AM::make(mint(x)));
    }

    for (int query = 0; query < q; query++) {
        int type;
        fast_input >> type;
        if (type == 0) {
            int l, r;
            long long b, c;
            fast_input >> l >> r >> b >> c;
            AM::operator_type f;
            f.first = mint(b);
            f.second = mint(c);
            seg.apply(l, r, f);
        } else {
            int l, r;
            fast_input >> l >> r;
            fast_output << seg.prod(l, r).sum << '\n';
        }
    }
}
#line 1 "verify/ds/segtree/dynamic_lazy_segtree.test.cpp"
#define PROBLEM "https://judge.yosupo.jp/problem/range_affine_range_sum"

#line 1 "ds/segtree/dynamic_lazy_segtree.hpp"



#include <cassert>
#include <concepts>
#include <cstddef>
#include <limits>
#include <numeric>
#include <type_traits>
#include <utility>
#include <vector>

#line 1 "acted_monoid/concept.hpp"



#line 5 "acted_monoid/concept.hpp"

namespace m1une {
namespace acted_monoid {

// Concept defining the requirements for an Acted Monoid.
template <typename AM>
concept IsActedMonoid = requires(typename AM::value_type a, typename AM::value_type b, typename AM::operator_type f,
                                 typename AM::operator_type g) {
    // 1. Value Monoid
    typename AM::value_type;
    { AM::id() } -> std::same_as<typename AM::value_type>;
    { AM::op(a, b) } -> std::same_as<typename AM::value_type>;

    // 2. Operator Monoid
    typename AM::operator_type;
    { AM::op_id() } -> std::same_as<typename AM::operator_type>;
    { AM::op_comp(f, g) } -> std::same_as<typename AM::operator_type>;  // Composition order: f(g(x))

    // 3. Mapping: Operator x Value -> Value
    { AM::mapping(f, a) } -> std::same_as<typename AM::value_type>;
};

// Concept for acted monoids whose value monoid is a commutative group.
// The value operation must obey commutativity and inverse laws.
template <typename AM>
concept IsCommutativeActedGroup = IsActedMonoid<AM> && requires(typename AM::value_type a) {
    { AM::inv(a) } -> std::same_as<typename AM::value_type>;
};

}  // namespace acted_monoid
}  // namespace m1une


#line 1 "ds/segtree/dynamic_segtree_common.hpp"



#line 11 "ds/segtree/dynamic_segtree_common.hpp"

namespace m1une {
namespace ds {
namespace detail {

template <std::integral Index>
using dynamic_size_type = std::make_unsigned_t<Index>;

template <std::integral Index>
constexpr dynamic_size_type<Index> dynamic_distance(Index left, Index right) {
    return static_cast<dynamic_size_type<Index>>(right) - static_cast<dynamic_size_type<Index>>(left);
}

template <class Monoid, class Size>
typename Monoid::value_type monoid_repeat(typename Monoid::value_type value, Size count) {
    typename Monoid::value_type result = Monoid::id();
    while (count != 0) {
        if (count & 1) result = Monoid::op(result, value);
        count >>= 1;
        if (count != 0) value = Monoid::op(value, value);
    }
    return result;
}

template <class ActedMonoid>
typename ActedMonoid::value_type dynamic_mapping(
    const typename ActedMonoid::operator_type& f,
    const typename ActedMonoid::value_type& value
) {
    using F = typename ActedMonoid::operator_type;
    using T = typename ActedMonoid::value_type;
    if constexpr (requires(F g, T x, long long ord) { ActedMonoid::mapping(g, x, ord); }) {
        return ActedMonoid::mapping(f, value, 0);
    } else {
        return ActedMonoid::mapping(f, value);
    }
}

template <class ActedMonoid, class Size>
typename ActedMonoid::operator_type dynamic_shift(
    const typename ActedMonoid::operator_type& f,
    Size offset
) {
    using F = typename ActedMonoid::operator_type;
    if constexpr (requires(F g, long long ord) { ActedMonoid::op_shift(g, ord); }) {
        assert(offset <= static_cast<Size>(std::numeric_limits<long long>::max()));
        return ActedMonoid::op_shift(f, static_cast<long long>(offset));
    } else {
        return f;
    }
}

template <class Monoid, std::integral Index>
class UniformMonoidDomain {
   public:
    using T = typename Monoid::value_type;
    using size_type = dynamic_size_type<Index>;

   private:
    struct Level {
        size_type small_length;
        T small_value;
        T large_value;
    };

    Index _left;
    Index _right;
    T _initial_value;
    std::vector<Level> _levels;

   public:
    UniformMonoidDomain(Index left, Index right, T initial_value)
        : _left(left), _right(right), _initial_value(std::move(initial_value)) {
        assert(left <= right);
        size_type n = size();
        constexpr int digits = std::numeric_limits<size_type>::digits;
        _levels.reserve(digits + 1);
        for (int depth = 0; depth <= digits; depth++) {
            size_type small = depth == digits ? 0 : n >> depth;
            size_type large = small;
            if (depth != 0) {
                bool has_remainder;
                if (depth == digits) {
                    has_remainder = n != 0;
                } else {
                    size_type mask = (size_type(1) << depth) - 1;
                    has_remainder = (n & mask) != 0;
                }
                if (has_remainder) large++;
            }
            _levels.push_back(Level{
                small,
                monoid_repeat<Monoid>(_initial_value, small),
                monoid_repeat<Monoid>(_initial_value, large),
            });
        }
    }

    Index left_bound() const {
        return _left;
    }

    Index right_bound() const {
        return _right;
    }

    size_type size() const {
        return dynamic_distance(_left, _right);
    }

    bool empty() const {
        return _left == _right;
    }

    const T& initial_value() const {
        return _initial_value;
    }

    const T& default_product(int depth, Index left, Index right) const {
        assert(0 <= depth && depth < int(_levels.size()));
        const Level& level = _levels[depth];
        size_type length = dynamic_distance(left, right);
        if (length == level.small_length) return level.small_value;
        assert(length == level.small_length + 1);
        return level.large_value;
    }
};

}  // namespace detail
}  // namespace ds
}  // namespace m1une


#line 15 "ds/segtree/dynamic_lazy_segtree.hpp"

namespace m1une {
namespace ds {

// A sparse lazy segment tree over an integral half-open interval.
template <m1une::acted_monoid::IsActedMonoid ActedMonoid, std::integral Index = long long>
requires(!std::same_as<std::remove_cv_t<Index>, bool>)
struct DynamicLazySegtree {
    using T = typename ActedMonoid::value_type;
    using F = typename ActedMonoid::operator_type;
    using index_type = Index;
    using size_type = detail::dynamic_size_type<Index>;

   private:
    struct Node {
        T val;
        F lazy;
        int left;
        int right;
        bool has_lazy;

        explicit Node(T value)
            : val(std::move(value)),
              lazy(ActedMonoid::op_id()),
              left(0),
              right(0),
              has_lazy(false) {}
    };

    detail::UniformMonoidDomain<ActedMonoid, Index> _domain;
    int _root;
    std::vector<Node> _nodes;

    int new_node(Index left, Index right, int depth) {
        assert(_nodes.size() < std::size_t(std::numeric_limits<int>::max()));
        _nodes.emplace_back(_domain.default_product(depth, left, right));
        return int(_nodes.size()) - 1;
    }

    const T& value(int t, Index left, Index right, int depth) const {
        if (t) return _nodes[t].val;
        return _domain.default_product(depth, left, right);
    }

    void all_apply(int& t, Index left, Index right, int depth, const F& f) {
        if (!t) t = new_node(left, right, depth);
        Node& node = _nodes[t];
        node.val = detail::dynamic_mapping<ActedMonoid>(f, node.val);
        if (std::midpoint(left, right) != left) {
            node.lazy = ActedMonoid::op_comp(f, node.lazy);
            node.has_lazy = true;
        }
    }

    void push(int t, Index left, Index right, int depth) {
        if (!_nodes[t].has_lazy) return;
        Index middle = std::midpoint(left, right);
        if (middle == left) return;

        F lazy = _nodes[t].lazy;
        int left_child = _nodes[t].left;
        int right_child = _nodes[t].right;
        all_apply(left_child, left, middle, depth + 1, lazy);
        all_apply(
            right_child,
            middle,
            right,
            depth + 1,
            detail::dynamic_shift<ActedMonoid>(lazy, detail::dynamic_distance(left, middle))
        );

        Node& node = _nodes[t];
        node.left = left_child;
        node.right = right_child;
        node.lazy = ActedMonoid::op_id();
        node.has_lazy = false;
    }

    void update(int t, Index left, Index right, int depth) {
        Index middle = std::midpoint(left, right);
        _nodes[t].val = ActedMonoid::op(
            value(_nodes[t].left, left, middle, depth + 1),
            value(_nodes[t].right, middle, right, depth + 1)
        );
    }

    int set_node(int t, Index left, Index right, int depth, Index p, T x) {
        if (!t) t = new_node(left, right, depth);
        Index middle = std::midpoint(left, right);
        if (middle == left) {
            Node& node = _nodes[t];
            node.val = std::move(x);
            node.lazy = ActedMonoid::op_id();
            node.has_lazy = false;
            return t;
        }

        push(t, left, right, depth);
        if (p < middle) {
            int child = set_node(_nodes[t].left, left, middle, depth + 1, p, std::move(x));
            _nodes[t].left = child;
        } else {
            int child = set_node(_nodes[t].right, middle, right, depth + 1, p, std::move(x));
            _nodes[t].right = child;
        }
        update(t, left, right, depth);
        return t;
    }

    int apply_node(
        int t,
        Index left,
        Index right,
        int depth,
        Index query_left,
        Index query_right,
        const F& f
    ) {
        if (query_right <= left || right <= query_left) return t;
        if (query_left <= left && right <= query_right) {
            all_apply(
                t,
                left,
                right,
                depth,
                detail::dynamic_shift<ActedMonoid>(f, detail::dynamic_distance(query_left, left))
            );
            return t;
        }

        if (!t) t = new_node(left, right, depth);
        push(t, left, right, depth);
        Index middle = std::midpoint(left, right);
        int left_child = apply_node(_nodes[t].left, left, middle, depth + 1, query_left, query_right, f);
        int right_child = apply_node(_nodes[t].right, middle, right, depth + 1, query_left, query_right, f);
        _nodes[t].left = left_child;
        _nodes[t].right = right_child;
        update(t, left, right, depth);
        return t;
    }

    F compose_for_child(const F& inherited, int t, size_type offset) const {
        F shifted = detail::dynamic_shift<ActedMonoid>(inherited, offset);
        if (!t || !_nodes[t].has_lazy) return shifted;
        return ActedMonoid::op_comp(
            shifted,
            detail::dynamic_shift<ActedMonoid>(_nodes[t].lazy, offset)
        );
    }

    T prod_node(
        int t,
        Index left,
        Index right,
        int depth,
        Index query_left,
        Index query_right,
        const F& inherited
    ) const {
        if (query_right <= left || right <= query_left) return ActedMonoid::id();
        if (query_left <= left && right <= query_right) {
            return detail::dynamic_mapping<ActedMonoid>(
                inherited,
                value(t, left, right, depth)
            );
        }
        Index middle = std::midpoint(left, right);
        return ActedMonoid::op(
            prod_node(
                t ? _nodes[t].left : 0,
                left,
                middle,
                depth + 1,
                query_left,
                query_right,
                compose_for_child(inherited, t, 0)
            ),
            prod_node(
                t ? _nodes[t].right : 0,
                middle,
                right,
                depth + 1,
                query_left,
                query_right,
                compose_for_child(inherited, t, detail::dynamic_distance(left, middle))
            )
        );
    }

    template <class G>
    Index max_right_node(
        int t,
        Index left,
        Index right,
        int depth,
        Index query_left,
        T& product,
        const F& inherited,
        G& predicate
    ) const {
        if (right <= query_left) return right;
        if (query_left <= left) {
            T next = ActedMonoid::op(
                product,
                detail::dynamic_mapping<ActedMonoid>(
                    inherited,
                    value(t, left, right, depth)
                )
            );
            if (predicate(next)) {
                product = std::move(next);
                return right;
            }
            Index middle = std::midpoint(left, right);
            if (middle == left) return left;
        }
        Index middle = std::midpoint(left, right);
        Index result = max_right_node(
            t ? _nodes[t].left : 0,
            left,
            middle,
            depth + 1,
            query_left,
            product,
            compose_for_child(inherited, t, 0),
            predicate
        );
        if (result < middle) return result;
        return max_right_node(
            t ? _nodes[t].right : 0,
            middle,
            right,
            depth + 1,
            query_left,
            product,
            compose_for_child(inherited, t, detail::dynamic_distance(left, middle)),
            predicate
        );
    }

    template <class G>
    Index min_left_node(
        int t,
        Index left,
        Index right,
        int depth,
        Index query_right,
        T& product,
        const F& inherited,
        G& predicate
    ) const {
        if (query_right <= left) return left;
        if (right <= query_right) {
            T next = ActedMonoid::op(
                detail::dynamic_mapping<ActedMonoid>(
                    inherited,
                    value(t, left, right, depth)
                ),
                product
            );
            if (predicate(next)) {
                product = std::move(next);
                return left;
            }
            Index middle = std::midpoint(left, right);
            if (middle == left) return right;
        }
        Index middle = std::midpoint(left, right);
        Index result = min_left_node(
            t ? _nodes[t].right : 0,
            middle,
            right,
            depth + 1,
            query_right,
            product,
            compose_for_child(inherited, t, detail::dynamic_distance(left, middle)),
            predicate
        );
        if (middle < result) return result;
        return min_left_node(
            t ? _nodes[t].left : 0,
            left,
            middle,
            depth + 1,
            query_right,
            product,
            compose_for_child(inherited, t, 0),
            predicate
        );
    }

   public:
    DynamicLazySegtree()
        : DynamicLazySegtree(Index(0), Index(0), ActedMonoid::id()) {}

    explicit DynamicLazySegtree(Index n)
        : DynamicLazySegtree(Index(0), n, ActedMonoid::id()) {
        if constexpr (std::signed_integral<Index>) assert(Index(0) <= n);
    }

    DynamicLazySegtree(Index left, Index right)
        : DynamicLazySegtree(left, right, ActedMonoid::id()) {}

    DynamicLazySegtree(Index left, Index right, T initial_value)
        : _domain(left, right, std::move(initial_value)), _root(0) {
        _nodes.emplace_back(ActedMonoid::id());
    }

    size_type size() const {
        return _domain.size();
    }

    bool empty() const {
        return _domain.empty();
    }

    Index left_bound() const {
        return _domain.left_bound();
    }

    Index right_bound() const {
        return _domain.right_bound();
    }

    const T& initial_value() const {
        return _domain.initial_value();
    }

    void reserve(std::size_t node_capacity) {
        assert(node_capacity < std::numeric_limits<std::size_t>::max());
        _nodes.reserve(node_capacity + 1);
    }

    std::size_t node_count() const {
        return _nodes.size() - 1;
    }

    void clear() {
        _root = 0;
        _nodes.erase(_nodes.begin() + 1, _nodes.end());
    }

    void set(Index p, T x) {
        assert(left_bound() <= p && p < right_bound());
        _root = set_node(_root, left_bound(), right_bound(), 0, p, std::move(x));
    }

    T get(Index p) const {
        assert(left_bound() <= p && p < right_bound());
        return prod(p, p + 1);
    }

    T operator[](Index p) const {
        return get(p);
    }

    T prod(Index left, Index right) const {
        assert(left_bound() <= left && left <= right && right <= right_bound());
        if (left == right) return ActedMonoid::id();
        return prod_node(
            _root,
            left_bound(),
            right_bound(),
            0,
            left,
            right,
            ActedMonoid::op_id()
        );
    }

    T all_prod() const {
        return value(_root, left_bound(), right_bound(), 0);
    }

    void apply(Index p, const F& f) {
        assert(left_bound() <= p && p < right_bound());
        apply(p, p + 1, f);
    }

    void apply(Index left, Index right, const F& f) {
        assert(left_bound() <= left && left <= right && right <= right_bound());
        if (left == right) return;
        _root = apply_node(
            _root,
            left_bound(),
            right_bound(),
            0,
            left,
            right,
            f
        );
    }

    template <class G>
    Index max_right(Index left, G predicate) const {
        assert(left_bound() <= left && left <= right_bound());
        assert(predicate(ActedMonoid::id()));
        if (left == right_bound()) return right_bound();
        T product = ActedMonoid::id();
        return max_right_node(
            _root,
            left_bound(),
            right_bound(),
            0,
            left,
            product,
            ActedMonoid::op_id(),
            predicate
        );
    }

    template <class G>
    Index min_left(Index right, G predicate) const {
        assert(left_bound() <= right && right <= right_bound());
        assert(predicate(ActedMonoid::id()));
        if (right == left_bound()) return left_bound();
        T product = ActedMonoid::id();
        return min_left_node(
            _root,
            left_bound(),
            right_bound(),
            0,
            right,
            product,
            ActedMonoid::op_id(),
            predicate
        );
    }
};

}  // namespace ds
}  // namespace m1une


#line 4 "verify/ds/segtree/dynamic_lazy_segtree.test.cpp"

#include <algorithm>
#line 7 "verify/ds/segtree/dynamic_lazy_segtree.test.cpp"
#include <cstdint>
#line 1 "utilities/fast_io.hpp"



#line 5 "utilities/fast_io.hpp"
#include <array>
#include <cerrno>
#include <charconv>
#line 9 "utilities/fast_io.hpp"
#include <cstdio>
#include <cstdlib>
#line 12 "utilities/fast_io.hpp"
#include <cstring>
#include <iterator>
#include <string>
#include <sys/stat.h>
#line 18 "utilities/fast_io.hpp"
#include <unistd.h>
#line 20 "utilities/fast_io.hpp"

namespace m1une {
namespace utilities {

struct FastOutput;

namespace internal {

// Shared with the convenience helpers in template.hpp.
inline FastOutput* standard_output_instance = nullptr;

// Detect std::begin(x), std::end(x).
template <class T, class = void>
struct is_range : std::false_type {};

template <class T>
struct is_range<T, std::void_t<
    decltype(std::begin(std::declval<T&>())),
    decltype(std::end(std::declval<T&>()))
>> : std::true_type {};

template <class T>
inline constexpr bool is_range_v = is_range<T>::value;

template <class T>
using range_reference_t = decltype(*std::begin(std::declval<T&>()));

template <class T>
using range_value_t = std::remove_cv_t<std::remove_reference_t<range_reference_t<T>>>;

template <class T, class = void>
struct range_stored_value {
    using type = range_value_t<T>;
};

template <class T>
struct range_stored_value<T, std::void_t<typename std::remove_cv_t<std::remove_reference_t<T>>::value_type>> {
    using type = typename std::remove_cv_t<std::remove_reference_t<T>>::value_type;
};

template <class T>
using range_stored_value_t = typename range_stored_value<T>::type;

// Treat strings and C strings as scalar output objects, not as ranges.
template <class T>
struct is_char_array : std::false_type {};

template <class T, std::size_t N>
struct is_char_array<T[N]>
    : std::bool_constant<std::is_same_v<std::remove_cv_t<T>, char>> {};

template <class T>
struct is_string_like
    : std::bool_constant<
          std::is_same_v<std::decay_t<T>, std::string>
          || std::is_same_v<std::decay_t<T>, const char*>
          || std::is_same_v<std::decay_t<T>, char*>
          || is_char_array<std::remove_reference_t<T>>::value
      > {};

template <class T>
inline constexpr bool is_string_like_v = is_string_like<T>::value;

// ModInt-like type: x.val() is printable, and x can be assigned from long long.
template <class T, class = void>
struct has_val_method : std::false_type {};

template <class T>
struct has_val_method<T, std::void_t<decltype(std::declval<const T&>().val())>>
    : std::true_type {};

template <class T>
inline constexpr bool has_val_method_v = has_val_method<T>::value;

template <class T, class = void>
struct has_static_mod_raw : std::false_type {};

template <class T>
struct has_static_mod_raw<
    T, std::void_t<decltype(T::mod()), decltype(T::raw(std::declval<uint32_t>()))>>
    : std::true_type {};

template <class T>
inline constexpr bool has_static_mod_raw_v = has_static_mod_raw<T>::value;

// libstdc++ before GCC 16 does not classify __int128 as an integral type in
// strict ISO modes such as -std=c++23. Keep the fast-I/O interface independent
// of that implementation detail.
template <class T>
inline constexpr bool is_integral_v =
    std::is_integral_v<T>
    || std::is_same_v<std::remove_cv_t<T>, __int128_t>
    || std::is_same_v<std::remove_cv_t<T>, __uint128_t>;

template <class T>
inline constexpr bool is_signed_v =
    std::is_signed_v<T>
    || std::is_same_v<std::remove_cv_t<T>, __int128_t>;

template <class T>
struct make_unsigned {
    using type = std::make_unsigned_t<T>;
};

template <>
struct make_unsigned<__int128_t> {
    using type = __uint128_t;
};

template <>
struct make_unsigned<__uint128_t> {
    using type = __uint128_t;
};

template <class T>
using make_unsigned_t = typename make_unsigned<std::remove_cv_t<T>>::type;

}  // namespace internal

struct FastInput {
    static constexpr int buffer_size = 1 << 20;

   private:
    std::FILE* _stream;
    char _buffer[buffer_size];
    int _position;
    int _length;
    int _file_descriptor;
    bool _streaming;

    bool refill() {
        _position = 0;
        if (_streaming) {
            ssize_t length;
            do {
                length = ::read(_file_descriptor, _buffer, buffer_size);
            } while (length < 0 && errno == EINTR);
            if (length <= 0) {
                _length = 0;
                return false;
            }
            _length = int(length);
        } else {
            _length = int(std::fread(_buffer, 1, buffer_size, _stream));
        }
        return _length != 0;
    }

    template <class T>
    bool read_integer_from_stream(T& value) {
        if (!skip_spaces()) return false;
        int c = read_char_raw();

        bool negative = false;
        if (c == '-') {
            negative = true;
            c = read_char_raw();
        }

        if constexpr (internal::is_signed_v<T>) {
            T result = 0;
            while ('0' <= c && c <= '9') {
                result = negative ? result * 10 - (c - '0')
                                  : result * 10 + (c - '0');
                c = read_char_raw();
            }
            value = result;
        } else {
            T result = 0;
            while ('0' <= c && c <= '9') {
                result = result * 10 + T(c - '0');
                c = read_char_raw();
            }
            value = negative ? T(0) - result : result;
        }
        return true;
    }

    bool prepare_number() {
        if (_length - _position >= 64) return true;
        const int remaining = _length - _position;
        if (remaining > 0) std::memmove(_buffer, _buffer + _position, remaining);
        const int added = int(std::fread(_buffer + remaining, 1, buffer_size - remaining, _stream));
        _position = 0;
        _length = remaining + added;
        if (_length < buffer_size) _buffer[_length] = '\0';
        return _length != 0;
    }

   public:
    explicit FastInput(std::FILE* stream = stdin)
        : _stream(stream),
          _position(0),
          _length(0),
          _file_descriptor(::fileno(stream)),
          _streaming([&] {
              struct stat status;
              return _file_descriptor >= 0
                     && ::fstat(_file_descriptor, &status) == 0
                     && !S_ISREG(status.st_mode);
          }()) {}

    FastInput(const FastInput&) = delete;
    FastInput& operator=(const FastInput&) = delete;

    int read_char_raw() {
        if (_position == _length && !refill()) return EOF;
        return _buffer[_position++];
    }

    bool skip_spaces() {
        int c = read_char_raw();
        while (c != EOF && c <= ' ') c = read_char_raw();
        if (c == EOF) return false;
        --_position;
        return true;
    }

    bool read(char& value) {
        if (!skip_spaces()) return false;
        value = char(read_char_raw());
        return true;
    }

    bool read(std::string& value) {
        if (!skip_spaces()) return false;
        value.clear();
        while (true) {
            const int begin = _position;
            while (_position < _length &&
                   static_cast<unsigned char>(_buffer[_position]) > ' ') {
                ++_position;
            }
            value.append(_buffer + begin, _position - begin);
            if (_position < _length) {
                ++_position;
                return true;
            }
            if (!refill()) return true;
        }
    }

    bool read(bool& value) {
        int x;
        if (!read(x)) return false;
        value = x != 0;
        return true;
    }

    template <class T>
    std::enable_if_t<
        internal::is_integral_v<T>
            && !std::is_same_v<std::remove_cv_t<T>, bool>
            && !std::is_same_v<std::remove_cv_t<T>, char>,
        bool
    >
    read(T& value) {
        if (_streaming) return read_integer_from_stream(value);
        if (!prepare_number()) return false;
        int c = static_cast<unsigned char>(_buffer[_position++]);
        while (c <= ' ') c = static_cast<unsigned char>(_buffer[_position++]);

        bool negative = false;
        if (c == '-') {
            negative = true;
            c = static_cast<unsigned char>(_buffer[_position++]);
        }

        if constexpr (internal::is_signed_v<T>) {
            T result = 0;
            while ('0' <= c && c <= '9') {
                const int first = c - '0';
                const int second = static_cast<unsigned char>(_buffer[_position]) - '0';
                if (0 <= second && second <= 9) {
                    result = negative ? result * 100 - (first * 10 + second)
                                      : result * 100 + (first * 10 + second);
                    ++_position;
                } else {
                    result = negative ? result * 10 - first : result * 10 + first;
                }
                c = static_cast<unsigned char>(_buffer[_position++]);
            }
            value = result;
        } else {
            T result = 0;
            while ('0' <= c && c <= '9') {
                const unsigned first = unsigned(c - '0');
                const int second = static_cast<unsigned char>(_buffer[_position]) - '0';
                if (0 <= second && second <= 9) {
                    result = result * 100 + T(first * 10 + unsigned(second));
                    ++_position;
                } else {
                    result = result * 10 + T(first);
                }
                c = static_cast<unsigned char>(_buffer[_position++]);
            }
            value = negative ? T(0) - result : result;
        }
        if (_position > _length) _position = _length;
        return true;
    }

    template <class T>
    std::enable_if_t<std::is_floating_point_v<T>, bool>
    read(T& value) {
        if (!skip_spaces()) return false;
        int c = read_char_raw();
        bool negative = false;
        if (c == '-' || c == '+') {
            negative = c == '-';
            c = read_char_raw();
        }

        long double result = 0;
        while ('0' <= c && c <= '9') {
            result = result * 10 + (c - '0');
            c = read_char_raw();
        }
        if (c == '.') {
            long double place = 0.1L;
            c = read_char_raw();
            while ('0' <= c && c <= '9') {
                result += (c - '0') * place;
                place *= 0.1L;
                c = read_char_raw();
            }
        }
        if (c == 'e' || c == 'E') {
            c = read_char_raw();
            bool exponent_negative = false;
            if (c == '-' || c == '+') {
                exponent_negative = c == '-';
                c = read_char_raw();
            }
            int exponent = 0;
            while ('0' <= c && c <= '9') {
                exponent = exponent * 10 + (c - '0');
                c = read_char_raw();
            }
            long double scale = 1;
            long double power = 10;
            while (exponent > 0) {
                if (exponent & 1) scale *= power;
                power *= power;
                exponent >>= 1;
            }
            result = exponent_negative ? result / scale : result * scale;
        }
        value = static_cast<T>(negative ? -result : result);
        return true;
    }

    template <class T>
    std::enable_if_t<
        internal::has_val_method_v<T>
            && !internal::is_integral_v<T>
            && !internal::is_range_v<T>,
        bool
    >
    read(T& value) {
        long long x;
        if (!read(x)) return false;
        if constexpr (internal::has_static_mod_raw_v<T>) {
            if (x >= 0 && uint64_t(x) < uint64_t(T::mod())) {
                value = T::raw(uint32_t(x));
            } else {
                value = T(x);
            }
        } else {
            value = T(x);
        }
        return true;
    }

    template <class First, class Second>
    bool read(std::pair<First, Second>& value) {
        if (!read(value.first)) return false;
        return read(value.second);
    }

    template <class Range>
    std::enable_if_t<
        internal::is_range_v<Range>
            && !internal::is_string_like_v<Range>,
        bool
    >
    read(Range& range) {
        using StoredValue = internal::range_stored_value_t<Range>;
        constexpr bool nested = internal::is_range_v<StoredValue>
                                && !internal::is_string_like_v<StoredValue>;

        for (auto&& value : range) {
            if constexpr (std::is_same_v<StoredValue, bool> && !nested) {
                bool x;
                if (!read(x)) return false;
                value = x;
            } else {
                if (!read(value)) return false;
            }
        }
        return true;
    }

    template <class First, class Second, class... Rest>
    bool read(First& first, Second& second, Rest&... rest) {
        if (!read(first)) return false;
        return read(second, rest...);
    }

    template <class T>
    FastInput& operator>>(T& value) {
        if (!read(value)) std::abort();
        return *this;
    }
};

struct FastOutput {
    static constexpr int buffer_size = 1 << 20;

   private:
    inline static const auto digit_quads = [] {
        std::array<char, 40000> result{};
        for (int i = 0; i < 10000; i++) {
            int value = i;
            for (int j = 3; j >= 0; j--) {
                result[4 * i + j] = char('0' + value % 10);
                value /= 10;
            }
        }
        return result;
    }();

    std::FILE* _stream;
    char _buffer[buffer_size];
    int _position;
    int _precision;
    std::chars_format _float_format;
    char _range_separator;
    std::string* _capture = nullptr;

    template <class T>
    std::string format_cell(const T& value) {
        std::string result;
        struct CaptureGuard {
            std::string*& target;
            std::string* previous;
            ~CaptureGuard() { target = previous; }
        } guard{_capture, _capture};
        _capture = &result;
        write(value);
        return result;
    }

    template <class Matrix>
    void write_aligned_matrix(const Matrix& matrix) {
        std::vector<std::vector<std::string>> rows;
        std::vector<std::size_t> widths;
        for (const auto& row : matrix) {
            auto& cells = rows.emplace_back();
            std::size_t column = 0;
            for (const auto& value : row) {
                cells.push_back(format_cell(value));
                if (column == widths.size()) widths.push_back(0);
                widths[column] = std::max(widths[column], cells.back().size());
                ++column;
            }
        }
        bool first = true;
        for (const auto& row : rows) {
            if (!first) write_char('\n');
            first = false;
            for (std::size_t column = 0; column < row.size(); ++column) {
                if (column != 0) write_char(_range_separator);
                for (std::size_t padding = row[column].size();
                     padding < widths[column]; ++padding) {
                    write_char(' ');
                }
                write(row[column]);
            }
        }
    }

   public:
    explicit FastOutput(std::FILE* stream = stdout)
        : _stream(stream),
          _position(0),
          _precision(6),
          _float_format(std::chars_format::general),
          _range_separator(' ') {
        if (_stream == stdout
            && internal::standard_output_instance == nullptr) {
            internal::standard_output_instance = this;
        }
    }

    FastOutput(const FastOutput&) = delete;
    FastOutput& operator=(const FastOutput&) = delete;

    ~FastOutput() {
        flush();
        if (internal::standard_output_instance == this) {
            internal::standard_output_instance = nullptr;
        }
    }

    void flush() {
        if (_position != 0) {
            std::fwrite(_buffer, 1, _position, _stream);
            _position = 0;
        }
        std::fflush(_stream);
    }

    void write_char(char c) {
        if (_capture != nullptr) {
            _capture->push_back(c);
            return;
        }
        if (_position == buffer_size) flush();
        _buffer[_position++] = c;
    }

    void write(const char* s) {
        while (*s != '\0') write_char(*s++);
    }

    void write(const std::string& s) {
        if (_capture != nullptr) {
            _capture->append(s);
            return;
        }
        std::size_t position = 0;
        while (position < s.size()) {
            if (_position == buffer_size) flush();
            const std::size_t copied =
                std::min<std::size_t>(buffer_size - _position, s.size() - position);
            std::memcpy(_buffer + _position, s.data() + position, copied);
            _position += int(copied);
            position += copied;
        }
    }

    void write(char c) {
        write_char(c);
    }

    void write(bool value) {
        write_char(value ? '1' : '0');
    }

    template <class T>
    std::enable_if_t<std::is_floating_point_v<T>>
    write(T value) {
        char digits[128];
        auto [end, error] = std::to_chars(
            digits,
            digits + sizeof(digits),
            value,
            _float_format,
            _precision
        );
        if (error != std::errc()) std::abort();
        for (const char* pointer = digits; pointer != end; pointer++) {
            write_char(*pointer);
        }
    }

    template <class T>
    std::enable_if_t<
        internal::is_integral_v<T>
            && !std::is_same_v<std::remove_cv_t<T>, bool>
            && !std::is_same_v<std::remove_cv_t<T>, char>
    >
    write(T value) {
        using Raw = std::remove_cv_t<T>;
        using Unsigned = internal::make_unsigned_t<Raw>;

        Unsigned magnitude;
        if constexpr (internal::is_signed_v<Raw>) {
            if (value < 0) {
                write_char('-');
                magnitude = Unsigned(0) - Unsigned(value);
            } else {
                magnitude = Unsigned(value);
            }
        } else {
            magnitude = value;
        }

        if (magnitude == 0) {
            write_char('0');
            return;
        }

        unsigned chunks[16];
        int count = 0;
        while (magnitude >= 10000) {
            const Unsigned quotient = magnitude / 10000;
            chunks[count++] = unsigned(magnitude - quotient * 10000);
            magnitude = quotient;
        }
        if (_capture == nullptr && _position > buffer_size - 64) flush();
        char captured[64];
        char* const begin = _capture != nullptr ? captured : _buffer + _position;
        char* destination = begin;
        const unsigned leading = unsigned(magnitude);
        const char* first = digit_quads.data() + 4 * leading;
        int skip = leading < 10 ? 3 : leading < 100 ? 2 : leading < 1000 ? 1 : 0;
        for (; skip < 4; skip++) *destination++ = first[skip];
        while (count--) {
            const char* digits = digit_quads.data() + 4 * chunks[count];
            std::memcpy(destination, digits, 4);
            destination += 4;
        }
        if (_capture != nullptr) {
            _capture->append(begin, destination - begin);
        } else {
            _position += int(destination - begin);
        }
    }

    template <class T>
    std::enable_if_t<
        internal::has_val_method_v<T>
            && !internal::is_integral_v<T>
            && !internal::is_range_v<T>
    >
    write(const T& value) {
        write(value.val());
    }

    template <class First, class Second>
    void write(const std::pair<First, Second>& value) {
        write(value.first);
        write_char(' ');
        write(value.second);
    }

    template <class Range>
    std::enable_if_t<
        internal::is_range_v<Range>
            && !internal::is_string_like_v<Range>
    >
    write(const Range& range) {
        using StoredValue = internal::range_stored_value_t<const Range>;
        constexpr bool nested = internal::is_range_v<StoredValue>
                                && !internal::is_string_like_v<StoredValue>;

        bool first = true;
        for (const auto& value : range) {
            if (!first) write_char(nested ? '\n' : _range_separator);
            first = false;
            if constexpr (std::is_same_v<StoredValue, bool> && !nested) {
                write(static_cast<bool>(value));
            } else {
                write(value);
            }
        }
    }

    template <class First, class... Rest>
    void print(const First& first, const Rest&... rest) {
        write(first);
        ((write_char(' '), write(rest)), ...);
    }

    void println() {
        write_char('\n');
    }

    void set_precision(int precision) {
        _precision = precision;
    }

    void set_fixed(int precision = 6) {
        _float_format = std::chars_format::fixed;
        _precision = precision;
    }

    void set_general(int precision = 6) {
        _float_format = std::chars_format::general;
        _precision = precision;
    }

    void set_range_separator(char separator) {
        _range_separator = separator;
    }

    template <class Matrix>
    void write_aligned(const Matrix& matrix) {
        using Row = internal::range_stored_value_t<const Matrix>;
        using Cell = internal::range_stored_value_t<const Row>;
        static_assert(internal::is_range_v<Row> && !internal::is_string_like_v<Row>,
                      "write_aligned requires a two-dimensional range");
        static_assert(!internal::is_range_v<Cell> || internal::is_string_like_v<Cell>,
                      "write_aligned requires scalar cells");
        write_aligned_matrix(matrix);
    }

    template <class Matrix>
    void println_aligned(const Matrix& matrix) {
        write_aligned(matrix);
        write_char('\n');
    }

    template <class... Args>
    void println(const Args&... args) {
        print(args...);
        write_char('\n');
    }

    template <class T>
    FastOutput& operator<<(const T& value) {
        write(value);
        return *this;
    }
};

}  // namespace utilities
}  // namespace m1une


#line 10 "verify/ds/segtree/dynamic_lazy_segtree.test.cpp"

#line 1 "acted_monoid/range_add_range_sum.hpp"



namespace m1une {
namespace acted_monoid {

template <typename T>
struct RangeAddRangeSumNode {
    T sum;
    long long size;
};

template <typename T>
struct RangeAddRangeSum {
    using value_type = RangeAddRangeSumNode<T>;
    using operator_type = T;
    static constexpr bool commutative = true;
    static constexpr bool operator_commutative = true;

    // Value Monoid (Sum)
    static constexpr value_type id() {
        return {T(0), 0};
    }
    static constexpr value_type op(const value_type& a, const value_type& b) {
        return {a.sum + b.sum, a.size + b.size};
    }
    static constexpr value_type inv(const value_type& x) {
        return {-x.sum, -x.size};
    }

    // Operator Monoid (Add)
    static constexpr operator_type op_id() {
        return 0;
    }
    static constexpr operator_type op_comp(const operator_type& f, const operator_type& g) {
        return f + g;
    }

    // Mapping (sum + f * size)
    static constexpr value_type mapping(const operator_type& f, const value_type& x) {
        return {x.sum + f * x.size, x.size};
    }

    // Helper for initializing a leaf node
    static constexpr value_type make(const T& val) {
        return {val, 1};
    }
};

}  // namespace acted_monoid
}  // namespace m1une


#line 1 "acted_monoid/range_affine_range_sum.hpp"



#line 5 "acted_monoid/range_affine_range_sum.hpp"

namespace m1une {
namespace acted_monoid {

template <typename T>
struct RangeAffineRangeSumNode {
    T sum;
    int size;
};

// Designed to accept Modint or similar types as T
template <typename T>
struct RangeAffineRangeSum {
    using value_type = RangeAffineRangeSumNode<T>;
    using operator_type = std::pair<T, T>;  // {a, b} for ax + b
    static constexpr bool commutative = true;
    static constexpr bool operator_commutative = false;

    // Value Monoid
    static constexpr value_type id() {
        return {T(0), 0};
    }
    static constexpr value_type op(const value_type& a, const value_type& b) {
        return {a.sum + b.sum, a.size + b.size};
    }
    static constexpr int size(const value_type& value) {
        return value.size;
    }

    // Operator Monoid (Affine Composition)
    // f(x) = a1*x + b1, g(x) = a2*x + b2
    // f(g(x)) = a1*(a2*x + b2) + b1 = (a1*a2)*x + (a1*b2 + b1)
    static constexpr operator_type op_id() {
        return {T(1), T(0)};
    }
    static constexpr operator_type op_comp(const operator_type& f, const operator_type& g) {
        return {f.first * g.first, f.first * g.second + f.second};
    }

    // Mapping
    // \sum (a*x_i + b) = a * \sum x_i + b * size
    static constexpr value_type mapping(const operator_type& f, const value_type& x) {
        return {f.first * x.sum + f.second * T(x.size), x.size};
    }

    // Helper for initializing a leaf node
    static constexpr value_type make(const T& val) {
        return {val, 1};
    }
};

}  // namespace acted_monoid
}  // namespace m1une


#line 1 "acted_monoid/range_ap_add_range_sum.hpp"



#line 5 "acted_monoid/range_ap_add_range_sum.hpp"

namespace m1une {
namespace acted_monoid {

template <typename T>
struct RangeApAddRangeSumNode {
    T sum;
    long long size;
    T ord_sum;
};

template <typename T>
struct RangeApAddRangeSum {
    using value_type = RangeApAddRangeSumNode<T>;
    using operator_type = std::pair<T, T>;  // {a, b} for adding a * i + b
    static constexpr bool commutative = false;
    static constexpr bool operator_commutative = true;

    // Value Monoid (Sum)
    static constexpr value_type id() {
        return {T(0), 0, T(0)};
    }
    static constexpr value_type op(const value_type& a, const value_type& b) {
        return {a.sum + b.sum, a.size + b.size, a.ord_sum + b.ord_sum + T(a.size) * T(b.size)};
    }

    // Operator Monoid (Add)
    static constexpr operator_type op_id() {
        return {T(0), T(0)};
    }
    static constexpr operator_type op_comp(const operator_type& f, const operator_type& g) {
        return {f.first + g.first, f.second + g.second};
    }

    static constexpr value_type mapping(const operator_type& f, const value_type& x) {
        return mapping(f, x, 0);
    }

    static constexpr value_type mapping(const operator_type& f, const value_type& x, long long ord) {
        return {x.sum + f.first * (x.ord_sum + T(ord) * T(x.size)) + f.second * T(x.size), x.size, x.ord_sum};
    }

    static constexpr operator_type op_shift(const operator_type& f, long long ord) {
        return {f.first, f.second + f.first * T(ord)};
    }

    static constexpr operator_type op_reverse(const operator_type& f, long long size) {
        return {-f.first, f.second + f.first * T(size - 1)};
    }

    static constexpr value_type make(const T& val) {
        return {val, 1, T(0)};
    }
};

}  // namespace acted_monoid
}  // namespace m1une


#line 1 "math/modint.hpp"



#line 6 "math/modint.hpp"
#include <iostream>
#line 9 "math/modint.hpp"

namespace m1une {
namespace math {

template <uint32_t Modulus>
struct ModInt {
    static_assert(0 < Modulus, "Modulus must be positive");

   private:
    uint32_t _v;

   public:
    static constexpr uint32_t mod() {
        return Modulus;
    }

    static constexpr ModInt raw(uint32_t v) noexcept {
        ModInt x;
        x._v = v;
        return x;
    }

    constexpr ModInt() noexcept : _v(0) {}

    template <class Integer, std::enable_if_t<std::is_integral_v<Integer>, int> = 0>
    constexpr ModInt(Integer v) noexcept {
        if constexpr (std::is_signed_v<Integer>) {
            int64_t x = static_cast<int64_t>(v) % static_cast<int64_t>(Modulus);
            if (x < 0) x += Modulus;
            _v = static_cast<uint32_t>(x);
        } else {
            _v = static_cast<uint32_t>(static_cast<uint64_t>(v) % Modulus);
        }
    }

    constexpr uint32_t val() const noexcept {
        return _v;
    }

    constexpr ModInt& operator++() noexcept {
        _v++;
        if (_v == Modulus) _v = 0;
        return *this;
    }

    constexpr ModInt& operator--() noexcept {
        if (_v == 0) _v = Modulus;
        _v--;
        return *this;
    }

    constexpr ModInt operator++(int) noexcept {
        ModInt res = *this;
        ++*this;
        return res;
    }

    constexpr ModInt operator--(int) noexcept {
        ModInt res = *this;
        --*this;
        return res;
    }

    constexpr ModInt& operator+=(const ModInt& rhs) noexcept {
        _v += rhs._v;
        if (_v >= Modulus) _v -= Modulus;
        return *this;
    }

    constexpr ModInt& operator-=(const ModInt& rhs) noexcept {
        _v -= rhs._v;
        if (_v >= Modulus) _v += Modulus;
        return *this;
    }

    constexpr ModInt& operator*=(const ModInt& rhs) noexcept {
        uint64_t z = _v;
        z *= rhs._v;
        _v = static_cast<uint32_t>(z % Modulus);
        return *this;
    }

    constexpr ModInt& operator/=(const ModInt& rhs) noexcept {
        return *this *= rhs.inv();
    }

    constexpr ModInt operator+(const ModInt& rhs) const noexcept {
        return ModInt(*this) += rhs;
    }
    constexpr ModInt operator-(const ModInt& rhs) const noexcept {
        return ModInt(*this) -= rhs;
    }
    constexpr ModInt operator*(const ModInt& rhs) const noexcept {
        return ModInt(*this) *= rhs;
    }
    constexpr ModInt operator/(const ModInt& rhs) const noexcept {
        return ModInt(*this) /= rhs;
    }

    constexpr bool operator==(const ModInt& rhs) const noexcept {
        return _v == rhs._v;
    }
    constexpr bool operator!=(const ModInt& rhs) const noexcept {
        return _v != rhs._v;
    }

    constexpr ModInt pow(long long n) const noexcept {
        ModInt res = raw(1 % Modulus);
        ModInt x = n < 0 ? inv() : *this;
        uint64_t exponent = n < 0 ? uint64_t(-(n + 1)) + 1 : uint64_t(n);
        while (exponent > 0) {
            if (exponent & 1) res *= x;
            x *= x;
            exponent >>= 1;
        }
        return res;
    }

    constexpr ModInt inv() const noexcept {
        int64_t a = _v, b = Modulus, u = 1, v = 0;
        while (b) {
            int64_t t = a / b;
            a -= t * b;
            std::swap(a, b);
            u -= t * v;
            std::swap(u, v);
        }
        assert(a == 1);
        u %= Modulus;
        if (u < 0) u += Modulus;
        return raw(static_cast<uint32_t>(u));
    }

    friend std::ostream& operator<<(std::ostream& os, const ModInt& rhs) {
        return os << rhs._v;
    }

    friend std::istream& operator>>(std::istream& is, ModInt& rhs) {
        long long v;
        is >> v;
        rhs = ModInt(v);
        return is;
    }
};

using modint998244353 = ModInt<998244353>;
using modint1000000007 = ModInt<1000000007>;

template <int Id = 0>
struct DynamicModInt {
   private:
    uint32_t _v;
    inline static uint32_t _mod = 1;

   public:
    static uint32_t mod() noexcept {
        return _mod;
    }

    static void set_mod(uint32_t modulus) noexcept {
        assert(modulus > 0);
        assert(modulus <= uint32_t(1) << 31);
        _mod = modulus;
    }

    static DynamicModInt raw(uint32_t v) noexcept {
        assert(v < _mod);
        DynamicModInt x;
        x._v = v;
        return x;
    }

    DynamicModInt() noexcept : _v(0) {}

    template <class Integer, std::enable_if_t<std::is_integral_v<Integer>, int> = 0>
    DynamicModInt(Integer v) noexcept {
        if constexpr (std::is_signed_v<Integer>) {
            int64_t x = static_cast<int64_t>(v) % static_cast<int64_t>(_mod);
            if (x < 0) x += _mod;
            _v = static_cast<uint32_t>(x);
        } else {
            _v = static_cast<uint32_t>(static_cast<uint64_t>(v) % _mod);
        }
    }

    uint32_t val() const noexcept {
        return _v;
    }

    DynamicModInt& operator++() noexcept {
        _v++;
        if (_v == _mod) _v = 0;
        return *this;
    }

    DynamicModInt& operator--() noexcept {
        if (_v == 0) _v = _mod;
        _v--;
        return *this;
    }

    DynamicModInt operator++(int) noexcept {
        DynamicModInt result = *this;
        ++*this;
        return result;
    }

    DynamicModInt operator--(int) noexcept {
        DynamicModInt result = *this;
        --*this;
        return result;
    }

    DynamicModInt& operator+=(const DynamicModInt& rhs) noexcept {
        _v += rhs._v;
        if (_v >= _mod) _v -= _mod;
        return *this;
    }

    DynamicModInt& operator-=(const DynamicModInt& rhs) noexcept {
        _v -= rhs._v;
        if (_v >= _mod) _v += _mod;
        return *this;
    }

    DynamicModInt& operator*=(const DynamicModInt& rhs) noexcept {
        _v = static_cast<uint32_t>(uint64_t(_v) * rhs._v % _mod);
        return *this;
    }

    DynamicModInt& operator/=(const DynamicModInt& rhs) noexcept {
        return *this *= rhs.inv();
    }

    DynamicModInt operator+(const DynamicModInt& rhs) const noexcept {
        return DynamicModInt(*this) += rhs;
    }

    DynamicModInt operator-(const DynamicModInt& rhs) const noexcept {
        return DynamicModInt(*this) -= rhs;
    }

    DynamicModInt operator*(const DynamicModInt& rhs) const noexcept {
        return DynamicModInt(*this) *= rhs;
    }

    DynamicModInt operator/(const DynamicModInt& rhs) const noexcept {
        return DynamicModInt(*this) /= rhs;
    }

    bool operator==(const DynamicModInt& rhs) const noexcept {
        return _v == rhs._v;
    }

    bool operator!=(const DynamicModInt& rhs) const noexcept {
        return _v != rhs._v;
    }

    DynamicModInt pow(long long exponent) const noexcept {
        DynamicModInt result = raw(1 % _mod);
        DynamicModInt base = exponent < 0 ? inv() : *this;
        uint64_t magnitude =
            exponent < 0 ? uint64_t(-(exponent + 1)) + 1 : uint64_t(exponent);
        while (magnitude > 0) {
            if (magnitude & 1) result *= base;
            base *= base;
            magnitude >>= 1;
        }
        return result;
    }

    DynamicModInt inv() const noexcept {
        int64_t a = _v, b = _mod, u = 1, v = 0;
        while (b) {
            int64_t quotient = a / b;
            a -= quotient * b;
            std::swap(a, b);
            u -= quotient * v;
            std::swap(u, v);
        }
        assert(a == 1);
        u %= _mod;
        if (u < 0) u += _mod;
        return raw(static_cast<uint32_t>(u));
    }

    friend std::ostream& operator<<(std::ostream& os, const DynamicModInt& rhs) {
        return os << rhs._v;
    }

    friend std::istream& operator>>(std::istream& is, DynamicModInt& rhs) {
        long long value;
        is >> value;
        rhs = DynamicModInt(value);
        return is;
    }
};

}  // namespace math
}  // namespace m1une


#line 15 "verify/ds/segtree/dynamic_lazy_segtree.test.cpp"

namespace {

void test_range_add() {
    using AM = m1une::acted_monoid::RangeAddRangeSum<long long>;
    using Seg = m1une::ds::DynamicLazySegtree<AM>;

    Seg seg(-1'000'000'000'000'000'000LL, 1'000'000'000'000'000'000LL, AM::make(0));
    assert(seg.size() == 2'000'000'000'000'000'000ULL);
    assert(seg.node_count() == 0);
    assert(seg.all_prod().size == 2'000'000'000'000'000'000LL);

    seg.reserve(1024);
    seg.apply(-3, 5, 2);
    assert(seg.prod(-10, 10).sum == 16);
    assert(seg.get(-3).sum == 2);
    assert(seg.get(5).sum == 0);

    [[maybe_unused]] std::size_t nodes = seg.node_count();
    seg.set(0, AM::make(10));
    assert(seg.all_prod().sum == 24);
    assert(seg.max_right(-10, [](const AM::value_type& x) { return x.sum <= 5; }) == -1);
    assert(seg.min_left(10, [](const AM::value_type& x) { return x.sum <= 5; }) == 3);
    assert(seg.node_count() >= nodes);

    seg.clear();
    assert(seg.node_count() == 0);
    assert(seg.all_prod().sum == 0);
    assert(seg.all_prod().size == 2'000'000'000'000'000'000LL);
}

void test_arithmetic_progression() {
    using AM = m1une::acted_monoid::RangeApAddRangeSum<long long>;
    m1une::ds::DynamicLazySegtree<AM, int> seg(-20, 21, AM::make(0));

    AM::operator_type first;
    first.first = 2;
    first.second = 3;
    seg.apply(-5, 6, first);
    for (int p = -5; p < 6; p++) {
        assert(seg.get(p).sum == 2LL * (p + 5) + 3);
    }

    AM::operator_type second;
    second.first = -1;
    second.second = 4;
    seg.apply(-2, 4, second);
    [[maybe_unused]] long long expected = 0;
    for (int p = -20; p < 21; p++) {
        long long value = 0;
        if (-5 <= p && p < 6) value += 2LL * (p + 5) + 3;
        if (-2 <= p && p < 4) value += -(p + 2) + 4;
        expected += value;
    }
    assert(seg.all_prod().sum == expected);
}

void test_randomized() {
    using AM = m1une::acted_monoid::RangeAddRangeSum<long long>;
    constexpr int left = -31;
    constexpr int right = 38;
    m1une::ds::DynamicLazySegtree<AM, int> seg(left, right, AM::make(0));
    std::vector<long long> a(right - left);

    std::uint64_t state = 1;
    auto random = [&state]() {
        state ^= state << 7;
        state ^= state >> 9;
        return state;
    };
    auto value_at = [&a](int p) -> long long& {
        return a[std::size_t(p - left)];
    };

    for (int step = 0; step < 3000; step++) {
        int type = int(random() % 4);
        int l = left + int(random() % (a.size() + 1));
        int r = left + int(random() % (a.size() + 1));
        if (r < l) std::swap(l, r);

        if (type == 0) {
            long long x = static_cast<long long>(random() % 11);
            seg.apply(l, r, x);
            for (int p = l; p < r; p++) value_at(p) += x;
        } else if (type == 1) {
            int p = left + int(random() % a.size());
            long long x = static_cast<long long>(random() % 30);
            seg.set(p, AM::make(x));
            value_at(p) = x;
        } else {
            [[maybe_unused]] long long expected = 0;
            for (int p = l; p < r; p++) expected += value_at(p);
            assert(seg.prod(l, r).sum == expected);
        }

        long long limit = static_cast<long long>(random() % 150);
        int start = left + int(random() % (a.size() + 1));
        int max_right = start;
        long long sum = 0;
        while (max_right < right && sum + value_at(max_right) <= limit) {
            sum += value_at(max_right);
            max_right++;
        }
        assert(seg.max_right(start, [limit](const AM::value_type& x) {
            return x.sum <= limit;
        }) == max_right);

        int finish = left + int(random() % (a.size() + 1));
        int min_left = finish;
        sum = 0;
        while (left < min_left && value_at(min_left - 1) + sum <= limit) {
            min_left--;
            sum += value_at(min_left);
        }
        assert(seg.min_left(finish, [limit](const AM::value_type& x) {
            return x.sum <= limit;
        }) == min_left);
    }
}

void test_affine_order() {
    using mint = m1une::math::modint998244353;
    using AM = m1une::acted_monoid::RangeAffineRangeSum<mint>;
    constexpr int n = 37;
    m1une::ds::DynamicLazySegtree<AM, int> seg(0, n, AM::make(1));
    std::vector<mint> a(n, 1);

    std::uint64_t state = 11;
    auto random = [&state]() {
        state ^= state << 7;
        state ^= state >> 9;
        return state;
    };

    for (int step = 0; step < 1200; step++) {
        int l = int(random() % (n + 1));
        int r = int(random() % (n + 1));
        if (r < l) std::swap(l, r);
        mint b = mint(int(random() % 7));
        mint c = mint(int(random() % 7));
        AM::operator_type f;
        f.first = b;
        f.second = c;
        seg.apply(l, r, f);
        for (int p = l; p < r; p++) a[p] = b * a[p] + c;

        int ql = int(random() % (n + 1));
        int qr = int(random() % (n + 1));
        if (qr < ql) std::swap(ql, qr);
        mint expected = 0;
        for (int p = ql; p < qr; p++) expected += a[p];
        assert(seg.prod(ql, qr).sum == expected);
    }
}

}  // namespace

int main() {
    m1une::utilities::FastInput fast_input;
    m1une::utilities::FastOutput fast_output;

    test_range_add();
    test_arithmetic_progression();
    test_randomized();
    test_affine_order();

    using mint = m1une::math::modint998244353;
    using AM = m1une::acted_monoid::RangeAffineRangeSum<mint>;

    int n, q;
    fast_input >> n >> q;
    m1une::ds::DynamicLazySegtree<AM, int> seg(0, n, AM::make(0));
    seg.reserve(std::size_t(4) * std::size_t(n + q));

    for (int i = 0; i < n; i++) {
        long long x;
        fast_input >> x;
        seg.set(i, AM::make(mint(x)));
    }

    for (int query = 0; query < q; query++) {
        int type;
        fast_input >> type;
        if (type == 0) {
            int l, r;
            long long b, c;
            fast_input >> l >> r >> b >> c;
            AM::operator_type f;
            f.first = mint(b);
            f.second = mint(c);
            seg.apply(l, r, f);
        } else {
            int l, r;
            fast_input >> l >> r;
            fast_output << seg.prod(l, r).sum << '\n';
        }
    }
}
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