This documentation is automatically generated by competitive-verifier/competitive-verifier
#include "data-structure/others/MultiDimensionalSum.hpp"todo
template <class T>
class multi_dimensional_sum {
private:
vector<T> sum;
vector<int> mx;
vector<long long> prod;
int n, siz;
T idx(const vector<int>& id) {
int ret = 0;
for (int i = 0; i < n; i++) ret += prod[i] * id[i];
return ret;
}
public:
// [1, mx_0] x [1, mx_1] x ... x [1, mx_{n-1}]
multi_dimensional_sum(const vector<int>& mx) : mx(mx) {
n = int(mx.size());
siz = 1;
for (int i = 0; i < n; i++) siz *= mx[i];
sum.assign(siz, 0);
prod.resize(n);
prod[n - 1] = 1;
for (int i = n - 1; i > 0; i--) prod[i - 1] = prod[i] * mx[i];
};
void add(vector<int> id, T x) {
assert(int(id.size()) == n);
int i = idx(id);
assert(i < siz);
sum[i] += x;
}
void build() {
for (int i = 0; i < n; i++) {
int j = prod[i];
for (int id = 0; id < siz; id++) {
if ((id / j) % mx[i] > 0) sum[id] += sum[id - j];
}
}
}
// sum [l_0, r_0] x [l_1, r_1] x ... x [l_{n-1}, r_{n-1}]
T calc(const vector<int>& l, const vector<int>& r) {
assert(int(l.size()) == n and int(r.size()) == n);
for (int i = 0; i < n; i++) {
if (l[i] > r[i]) return 0;
}
T ret = 0;
vector<int> id(n);
for (unsigned int bit = 0; bit < (1u << n); bit++) {
bool ok = true;
for (int i = 0; i < n; i++) {
if ((bit & (1 << i))) {
id[i] = r[i] - 1;
} else {
id[i] = l[i] - 2;
}
if (id[i] < 0) {
ok = false;
break;
}
}
if (!ok) continue;
int lcnt = n - popcount(bit);
ret += (lcnt % 2 ? -sum[idx(id)] : sum[idx(id)]);
}
return ret;
}
};#line 1 "data-structure/others/MultiDimensionalSum.hpp"
template <class T>
class multi_dimensional_sum {
private:
vector<T> sum;
vector<int> mx;
vector<long long> prod;
int n, siz;
T idx(const vector<int>& id) {
int ret = 0;
for (int i = 0; i < n; i++) ret += prod[i] * id[i];
return ret;
}
public:
// [1, mx_0] x [1, mx_1] x ... x [1, mx_{n-1}]
multi_dimensional_sum(const vector<int>& mx) : mx(mx) {
n = int(mx.size());
siz = 1;
for (int i = 0; i < n; i++) siz *= mx[i];
sum.assign(siz, 0);
prod.resize(n);
prod[n - 1] = 1;
for (int i = n - 1; i > 0; i--) prod[i - 1] = prod[i] * mx[i];
};
void add(vector<int> id, T x) {
assert(int(id.size()) == n);
int i = idx(id);
assert(i < siz);
sum[i] += x;
}
void build() {
for (int i = 0; i < n; i++) {
int j = prod[i];
for (int id = 0; id < siz; id++) {
if ((id / j) % mx[i] > 0) sum[id] += sum[id - j];
}
}
}
// sum [l_0, r_0] x [l_1, r_1] x ... x [l_{n-1}, r_{n-1}]
T calc(const vector<int>& l, const vector<int>& r) {
assert(int(l.size()) == n and int(r.size()) == n);
for (int i = 0; i < n; i++) {
if (l[i] > r[i]) return 0;
}
T ret = 0;
vector<int> id(n);
for (unsigned int bit = 0; bit < (1u << n); bit++) {
bool ok = true;
for (int i = 0; i < n; i++) {
if ((bit & (1 << i))) {
id[i] = r[i] - 1;
} else {
id[i] = l[i] - 2;
}
if (id[i] < 0) {
ok = false;
break;
}
}
if (!ok) continue;
int lcnt = n - popcount(bit);
ret += (lcnt % 2 ? -sum[idx(id)] : sum[idx(id)]);
}
return ret;
}
};