#if defined(USE_PCH) #include #else #if defined(__GNUC__) #include #pragma GCC optimize("Ofast,unroll-loops") // 環境によってはコンパイル成功かつ実行時エラー #pragma GCC target("avx2,popcnt") #endif #include #include using namespace std; using ll = long long; using u8 = uint8_t; using u16 = uint16_t; using u32 = uint32_t; using u64 = uint64_t; using i128 = __int128; using u128 = unsigned __int128; using f128 = __float128; template constexpr bool dependent_false = false; template constexpr T infty = [] { static_assert(dependent_false, "infty is not defined"); return T{}; }(); template <> constexpr int infty = 1'010'000'000; template <> constexpr ll infty = 2'020'000'000'000'000'000; template <> constexpr u32 infty = infty; template <> constexpr u64 infty = infty; template <> constexpr i128 infty = i128(infty) * 2'000'000'000'000'000'000; template <> constexpr double infty = infty; template <> constexpr long double infty = infty; using pi = pair; using vi = vector; template using vc = vector; template using vvc = vector>; template using vvvc = vector>; template using vvvvc = vector>; template using pq_max = priority_queue; template using pq_min = priority_queue, greater>; #define vv(type, name, h, ...) \ vector> name(h, vector(__VA_ARGS__)) #define vvv(type, name, h, w, ...) \ vector>> name( \ h, vector>(w, vector(__VA_ARGS__))) #define vvvv(type, name, a, b, c, ...) \ vector>>> name( \ a, vector>>( \ b, vector>(c, vector(__VA_ARGS__)))) // https://trap.jp/post/1224/ #define FOR1(a) for (ll _ = 0; _ < ll(a); ++_) #define FOR2(i, a) for (ll i = 0; i < ll(a); ++i) #define FOR3(i, a, b) for (ll i = a; i < ll(b); ++i) #define FOR4(i, a, b, c) for (ll i = a; i < ll(b); i += (c)) #define FOR1_R(a) for (ll i = ll(a) - 1; i >= ll(0); --i) #define FOR2_R(i, a) for (ll i = ll(a) - 1; i >= ll(0); --i) #define FOR3_R(i, a, b) for (ll i = ll(b) - 1; i >= ll(a); --i) #define overload4(a, b, c, d, e, ...) e #define overload3(a, b, c, d, ...) d #define FOR(...) overload4(__VA_ARGS__, FOR4, FOR3, FOR2, FOR1)(__VA_ARGS__) #define FOR_R(...) overload3(__VA_ARGS__, FOR3_R, FOR2_R, FOR1_R)(__VA_ARGS__) #define all(x) (x).begin(), (x).end() #define len(x) ll(x.size()) #define elif else if #define eb emplace_back #define mp make_pair #define mt make_tuple #define fi first #define se second #define stoi stoll // require y > 0 template T floor(T x, T y) { return x / y - (x % y < 0); } // require y > 0 template T ceil(T x, T y) { return (x / y) + (x % y > 0); } // require y > 0 template T bmod(T x, T y) { T r = x % y; return (r < 0 ? r + y : r); } // require y > 0 template pair divmod(T x, T y) { T q = x / y, r = x % y; if (r < 0) --q, r += y; return {q, r}; } constexpr auto TEN = [] { array A{}; A[0] = 1; for (int i = 1; i < 20; ++i) A[i] = 10 * A[i - 1]; return A; }(); template T SUM(const U &A) { return std::accumulate(A.begin(), A.end(), T{}); } #define MIN(v) *min_element(all(v)) #define MAX(v) *max_element(all(v)) template inline long long LB(const C &c, const T &x) { return lower_bound(c.begin(), c.end(), x) - c.begin(); } template inline long long UB(const C &c, const T &x) { return upper_bound(c.begin(), c.end(), x) - c.begin(); } #define UNIQUE(x) sort(all(x)), x.erase(unique(all(x)), x.end()) template T POP(deque &que) { T a = que.front(); que.pop_front(); return a; } template T POP(priority_queue &que) { T a = que.top(); que.pop(); return a; } template T POP(vc &que) { T a = que.back(); que.pop_back(); return a; } template i128 binary_search(F check, i128 ok, i128 ng, bool check_ok = true) { if (check_ok) assert(check(ok)); while (1) { i128 x = (ok + ng) / 2; if (x == ok || x == ng) break; (check(x) ? ok : ng) = x; } return ok; } template double binary_search_real(F check, double ok, double ng, int iter = 100) { FOR(iter) { double x = (ok + ng) / 2; (check(x) ? ok : ng) = x; } return (ok + ng) / 2; } template inline bool chmax(T &a, const S &b) { T c = max(a, b); bool changed = (c != a); a = c; return changed; } template inline bool chmin(T &a, const S &b) { T c = min(a, b); bool changed = (c != a); a = c; return changed; } // ? は -1 vc s_to_vi(const string &S, char first_char) { vc A(S.size()); FOR(i, S.size()) { A[i] = (S[i] != '?' ? S[i] - first_char : -1); } return A; } template vc cumsum(const vc &A, int off = 1) { int N = A.size(); vc B(N + 1); FOR(i, N) { B[i + 1] = B[i] + A[i]; } if (off == 0) B.erase(B.begin()); return B; } // stable sort template vc argsort(const vc &A) { vc ids(len(A)); iota(all(ids), 0); sort(all(ids), [&](int i, int j) { return (A[i] == A[j] ? i < j : A[i] < A[j]); }); return ids; } // A[I[0]], A[I[1]], ... template vc rearrange(const vc &A, const vc &I) { vc B(len(I)); FOR(i, len(I)) B[i] = A[I[i]]; return B; } template void concat(vc &first, const Vectors &...others) { first.reserve(first.size() + (others.size() + ... + 0)); (first.insert(first.end(), others.begin(), others.end()), ...); } // i128 template , int> = 0> constexpr i128 abs(T x) { return x < 0 ? -x : x; } constexpr i128 gcd(i128 a, i128 b) { while (b != 0) { i128 c = a % b; a = b, b = c; } return abs(a); } #endif #line 1 "other/bit.hpp" int popcnt(int x) { return __builtin_popcount(x); } int popcnt(u32 x) { return __builtin_popcount(x); } int popcnt(ll x) { return __builtin_popcountll(x); } int popcnt(u64 x) { return __builtin_popcountll(x); } int popcnt_sgn(int x) { return (__builtin_parity(unsigned(x)) & 1 ? -1 : 1); } int popcnt_sgn(u32 x) { return (__builtin_parity(x) & 1 ? -1 : 1); } int popcnt_sgn(ll x) { return (__builtin_parityll(x) & 1 ? -1 : 1); } int popcnt_sgn(u64 x) { return (__builtin_parityll(x) & 1 ? -1 : 1); } // (0, 1, 2, 3, 4) -> (-1, 0, 1, 1, 2) int topbit(int x) { return (x == 0 ? -1 : 31 - __builtin_clz(x)); } int topbit(u32 x) { return (x == 0 ? -1 : 31 - __builtin_clz(x)); } int topbit(ll x) { return (x == 0 ? -1 : 63 - __builtin_clzll(x)); } int topbit(u64 x) { return (x == 0 ? -1 : 63 - __builtin_clzll(x)); } // (0, 1, 2, 3, 4) -> (-1, 0, 1, 0, 2) int lowbit(int x) { return (x == 0 ? -1 : __builtin_ctz(x)); } int lowbit(u32 x) { return (x == 0 ? -1 : __builtin_ctz(x)); } int lowbit(ll x) { return (x == 0 ? -1 : __builtin_ctzll(x)); } int lowbit(u64 x) { return (x == 0 ? -1 : __builtin_ctzll(x)); } template T kth_bit(int k) { assert(0 <= k && k < int(8 * sizeof(T))); return T(1) << k; } template bool has_kth_bit(T x, int k) { assert(0 <= k && k < int(8 * sizeof(T))); return x >> k & 1; } template struct all_bit { static_assert(is_unsigned::value); UINT s; all_bit(UINT s) : s(s) {} struct iter { UINT s; int operator*() const { return lowbit(s); } void operator++() { s &= s - 1; } bool operator!=(nullptr_t) const { return s; } }; iter begin() const { return {s}; } nullptr_t end() const { return nullptr; } }; template struct all_subset { static_assert(is_unsigned::value); UINT s; all_subset(UINT s) : s(s) {} struct iter { UINT s, t; bool done = false; UINT operator*() const { return t; } void operator++() { done = (t == 0); t = (t - 1) & s; } bool operator!=(nullptr_t) const { return !done; } }; iter begin() const { return {s, s}; } nullptr_t end() const { return nullptr; } }; constexpr u64 full_mask(int n) { assert(0 <= n && n <= 64); return n == 64 ? -1ULL : (1ULL << n) - 1; } u64 bit_reverse(u64 x) { x = ((x & 0x5555555555555555ULL) << 1) | ((x >> 1) & 0x5555555555555555ULL); x = ((x & 0x3333333333333333ULL) << 2) | ((x >> 2) & 0x3333333333333333ULL); x = ((x & 0x0f0f0f0f0f0f0f0fULL) << 4) | ((x >> 4) & 0x0f0f0f0f0f0f0f0fULL); x = ((x & 0x00ff00ff00ff00ffULL) << 8) | ((x >> 8) & 0x00ff00ff00ff00ffULL); x = ((x & 0x0000ffff0000ffffULL) << 16) | ((x >> 16) & 0x0000ffff0000ffffULL); x = (x << 32) | (x >> 32); return x; } #line 1 "ds/rollback_array.hpp" template struct Rollback_Array { int N; vc dat; vc> history; Rollback_Array() {} Rollback_Array(vc x) : N(len(x)), dat(x) {} Rollback_Array(int N) : N(N), dat(N) {} template Rollback_Array(int N, F f) : N(N) { dat.reserve(N); FOR(i, N) dat.eb(f(i)); } int time() { return len(history); } void rollback(int t) { FOR_R(i, t, time()) { auto& [idx, v] = history[i]; dat[idx] = v; } history.resize(t); } T get(int idx) { return dat[idx]; } void set(int idx, T x) { /* cout<<"idx,x: "< get_all() { vc res(N); FOR(i, N) res[i] = get(i); return res; } }; #line 3 "ds/segtree/rollback_lazy_segtree.hpp" // verify? https://qoj.ac/submission/114657 template struct Rollback_Lazy_SegTree { using AM = ActedMonoid; using MX = typename AM::Monoid_X; using MA = typename AM::Monoid_A; using X = typename MX::value_type; using A = typename MA::value_type; int n, log, size; Rollback_Array dat; Rollback_Array laz; Rollback_Lazy_SegTree() {} Rollback_Lazy_SegTree(int n) { build(n); } template Rollback_Lazy_SegTree(int n, F f) { build(n, f); } Rollback_Lazy_SegTree(const vc& v) { build(v); } void build(int m) { build(m, [](int i) -> X { return MX::id(); }); } void build(const vc& v) { build(len(v), [&](int i) -> X { return v[i]; }); } template void build(int m, F f) { n = m, log = 1; while ((1 << log) < n) ++log; size = 1 << log; dat = Rollback_Array(vc(size << 1, MX::id())); laz = Rollback_Array(vc(size, MA::id())); FOR(i, n) dat.set(size + i, f(i)); FOR_R(i, 1, size) update(i); } void update(int k) { dat.set(k, MX::op(dat.get(2 * k), dat.get(2 * k + 1))); } void set(int p, X x) { assert(0 <= p && p < n); p += size; for (int i = log; i >= 1; i--) push(p >> i); dat.set(p, x); for (int i = 1; i <= log; i++) update(p >> i); } void multiply(int p, const X& x) { assert(0 <= p && p < n); p += size; for (int i = log; i >= 1; i--) push(p >> i); dat.set(p, MX::op(dat.get(p), x)); for (int i = 1; i <= log; i++) update(p >> i); } X get(int p) { assert(0 <= p && p < n); p += size; for (int i = log; i >= 1; i--) push(p >> i); return dat.get(p); } vc get_all() { FOR(k, 1, size) push(k); auto tmp = dat.get_all(); return {tmp.begin() + size, tmp.begin() + size + n}; } X prod(int l, int r) { assert(0 <= l && l <= r && r <= n); if (l == r) return MX::id(); l += size, r += size; for (int i = log; i >= 1; i--) { if (((l >> i) << i) != l) push(l >> i); if (((r >> i) << i) != r) push((r - 1) >> i); } X xl = MX::id(), xr = MX::id(); while (l < r) { if (l & 1) xl = MX::op(xl, dat.get(l++)); if (r & 1) xr = MX::op(dat.get(--r), xr); l >>= 1, r >>= 1; } return MX::op(xl, xr); } X prod_all() { return dat.get(1); } void apply(int l, int r, A a) { assert(0 <= l && l <= r && r <= n); if (l == r) return; l += size, r += size; for (int i = log; i >= 1; i--) { if (((l >> i) << i) != l) push(l >> i); if (((r >> i) << i) != r) push((r - 1) >> i); } int l2 = l, r2 = r; while (l < r) { if (l & 1) apply_at(l++, a); if (r & 1) apply_at(--r, a); l >>= 1, r >>= 1; } l = l2, r = r2; for (int i = 1; i <= log; i++) { if (((l >> i) << i) != l) update(l >> i); if (((r >> i) << i) != r) update((r - 1) >> i); } } template int max_right(const F check, int l) { assert(0 <= l && l <= n); assert(check(MX::id())); if (l == n) return n; l += size; for (int i = log; i >= 1; i--) push(l >> i); X sm = MX::id(); do { while (l % 2 == 0) l >>= 1; if (!check(MX::op(sm, dat.get(l)))) { while (l < size) { push(l); l = (2 * l); if (check(MX::op(sm, dat.get(l)))) { sm = MX::op(sm, dat.get(l++)); } } return l - size; } sm = MX::op(sm, dat.get(l++)); } while ((l & -l) != l); return n; } template int min_left(const F check, int r) { assert(0 <= r && r <= n); assert(check(MX::id())); if (r == 0) return 0; r += size; for (int i = log; i >= 1; i--) push((r - 1) >> i); X sm = MX::id(); do { r--; while (r > 1 && (r % 2)) r >>= 1; if (!check(MX::op(dat.get(r), sm))) { while (r < size) { push(r); r = (2 * r + 1); if (check(MX::op(dat.get(r), sm))) { sm = MX::op(dat.get(r--), sm); } } return r + 1 - size; } sm = MX::op(dat.get(r), sm); } while ((r & -r) != r); return 0; } pair time() { return {dat.time(), laz.time()}; } void rollback(pair t) { dat.rollback(t.fi), laz.rollback(t.se); } void push(int k) { if (laz.get(k) == MA::id()) return; apply_at(2 * k, laz.get(k)), apply_at(2 * k + 1, laz.get(k)); laz.set(k, MA::id()); } private: void apply_at(int k, A a) { ll sz = 1 << (log - topbit(k)); dat.set(k, AM::act(dat.get(k), a, sz)); if (k < size) laz.set(k, MA::op(laz.get(k), a)); } }; #line 1 "alg/monoid/add.hpp" template struct Monoid_Add { using X = E; using value_type = X; static constexpr X op(const X &x, const X &y) noexcept { return x + y; } static constexpr X inverse(const X &x) noexcept { return -x; } static constexpr X power(const X &x, ll n) noexcept { return X(n) * x; } static constexpr X id() { return X(0); } static constexpr bool commute = true; }; #line 1 "alg/monoid/assign.hpp" template struct Monoid_Assign { using value_type = X; static X op(X x, X y) { return (y == X(none_val) ? x : y); } static constexpr X id() { return X(none_val); } static constexpr bool commute = false; }; #line 3 "alg/acted_monoid/sum_assign.hpp" template struct ActedMonoid_Sum_Assign { using Monoid_X = Monoid_Add; using Monoid_A = Monoid_Assign; using X = typename Monoid_X::value_type; using A = typename Monoid_A::value_type; static constexpr X act(const X &x, const A &a, const ll &size) { if (a == Monoid_A::id()) return x; return a * E(size); } }; const int LG=30; void solve() { using SEG=Rollback_Lazy_SegTree>; int N,M; cin>>N>>M; vc seg; { vi A(N); for(auto& a:A)cin>>a; vv(ll,init,LG,N+1); FOR(t,LG){ FOR(i,N)init[t][i]=A[i]>>t&1; seg.eb(init[t]); } } vc> initime(N); FOR(t,LG)initime[t]=seg[t].time(); auto seginit=[&](){ FOR(t,LG)seg[t].rollback(initime[t]); }; vc> lrxLR(M); for(auto&&[l,r,x,L,R]:lrxLR)cin>>l; for(auto&&[l,r,x,L,R]:lrxLR)cin>>r; for(auto&&[l,r,x,L,R]:lrxLR)cin>>x; for(auto&&[l,r,x,L,R]:lrxLR)cin>>L; for(auto&&[l,r,x,L,R]:lrxLR)cin>>R; int Q; cin>>Q; FOR(i,1,Q+1){ if(i>=2)seginit(); ll y=i; int s,q; cin>>s>>q; FOR(j,1,q+1){ ll z=(s+j)%M+1; auto[l,r,x,L,R]=lrxLR[z-1]; ll u=min(N,max(1,l^y)); ll v=min(N,max(1,r^y)); ll U=min(N,max(1,L^y)); ll V=min(N,max(1,R^y)); ll l_=min(u,v); ll r_=max(u,v); ll L_=min(U,V); ll R_=max(U,V); --l_; --L_; if(z%2==0){ FOR(t,LG)if((x^y)>>t&1){ /* cout<<"l,r,L,R:"<>t&1)){ seg[t].apply(l_,r_,0); } } ll ny=0; FOR(t,LG){ ny+=(1LL<