http://acm.hdu.edu.cn/showproblem.php?pid=6588
新学到了一个求n以内与m的gcd的和的快速求法。也就是下面的S1。
①求:
$ sumlimits_{i=1}^{n}gcd(m,i) $
②枚举d:
$ sumlimits_{d|m} d sumlimits_{i=1}^{n} [gcd(m,i)==d] $
③显然:
$ sumlimits_{d|m} d sumlimits_{i=1}^{lfloorfrac{n}{d} floor} [gcd(frac{m}{d},i)==1] $
到这一步已经可以递归求了,琪琪说是 (O(n^{frac{3}{4}})) ,不过题解可以继续往下。
④为了方便直接考虑 $ sumlimits_{i=1}^{n} [gcd(m,i)==1] $ ,反演(大概):
$ sumlimits_{i=1}^{n} sumlimits_{d|gcd(m,i)} mu(d) $
⑤交换一下顺序,枚举d,很显然n以内的d的倍数都会贡献一个mu(d):
$ sumlimits_{d|m} mu(d) lfloorfrac{n}{d} floor $
下面的是根据题解的实现,不过是__int64的版本。
#include<bits/stdc++.h>
using namespace std;
typedef long long ll;
typedef __int64 lll;
const int mod = 998244353;
const int MAXN = 10000000;
int phi[MAXN + 1];
int pri[MAXN + 1], pritop;
bool notpri[MAXN + 1];
void sieve() {
int n = MAXN;
pri[1] = phi[1] = 1;
for(int i = 2; i <= n; i++) {
if(!pri[i])
pri[++pritop] = i, phi[i] = i - 1;
for(int j = 1, tmp; j <= pritop && (tmp = i * pri[j]) <= n; j++) {
pri[tmp] = 1;
if(i % pri[j])
phi[tmp] = phi[i] * phi[pri[j]];
else {
phi[tmp] = phi[i] * pri[j];
break;
}
}
}
}
ll S1(lll n, int m) {
//sigma gcd(i,m) [1,n]
ll res = 0;
for(int T = 1; T * T <= m; ++T) {
if(!(m % T)) {
res += (n / T) * phi[T];
if(T * T != m) {
res += (n / (m / T)) * phi[(m / T)];
}
}
}
res %= mod;
return res;
}
ll qpow(ll x, int n) {
ll res = 1;
while(n) {
if(n & 1)
res = res * x % mod;
x = x * x % mod;
n >>= 1;
}
return res;
}
const int inv2 = qpow(2ll, mod - 2);
const int inv6 = qpow(6ll, mod - 2);
ll sigma1(ll x) {
return x * (x + 1ll) % mod * inv2 % mod;
}
ll sigma2(ll x) {
return x * (x + 1ll) % mod * (2ll * x + 1ll) % mod * inv6 % mod;
}
ll S2_1(int r, int T) {
int c = r / T;
ll res = 0;
res += 3ll * T * sigma2(c);
res += 3ll * sigma1(c);
res += c;
res %= mod;
return res;
}
ll S2(int r) {
ll res = 0;
for(int T = 1; T <= r; ++T) {
res += 1ll * phi[T] * S2_1(r, T) % mod;
}
res %= mod;
return res;
}
ll S0(lll n) {
lll i, i3;
for(i = 1;; ++i) {
lll tmp = i * i * i;
if(tmp > n) {
--i;
break;
} else
i3 = tmp;
}
ll res = 0;
res += S1(n, i) - S1(i3 - 1, i);
res += S2(i - 1);
res = (res % mod + mod) % mod;
return res;
}
inline lll read() {
lll x = 0;
char c;
do {
c = getchar();
} while(c < '0' || c > '9');
do {
x = (x << 3) + (x << 1) + c - '0';
c = getchar();
} while(c >= '0' && c <= '9');
return x;
}
int main() {
#ifdef Yinku
freopen("Yinku.in", "r", stdin);
#endif // Yinku
sieve();
int T;
cin >> T;
lll n;
while(T--) {
n = read();
cout << S0(n) << endl;
}
}
其实具体的思路还是要先分成两部分来算,但是我当时不会计算这个S1导致T了。其实计算S2的时候在整数较大的时候发生了溢出。也就是c*c的位置。所以说以后非数组的值一律开ll就对了。
#include<bits/stdc++.h>
using namespace std;
typedef long long ll;
typedef __int128 lll;
const int mod = 998244353;
const int MAXN = 10000000;
int pk[MAXN + 1];
int sum1[MAXN + 1];
int phi[MAXN + 1];
int pri[MAXN + 1], pritop;
bool notpri[MAXN + 1];
void sieve() {
int n = MAXN;
pri[1] = pk[1] = sum1[1] = phi[1] = 1;
for(int i = 2; i <= n; i++) {
if(!pri[i])
pri[++pritop] = i, phi[i] = i - 1, pk[i] = i, sum1[i] = 2 * i - 1;
for(int j = 1, p, tmp; j <= pritop && (p = pri[j]) && (tmp = i * p) <= n; j++) {
pri[tmp] = 1;
if(i % p) {
pk[tmp] = pk[p];
sum1[tmp] = 1ll * sum1[i] * sum1[p] % mod;
phi[tmp] = phi[i] * phi[p];
} else {
pk[tmp] = pk[i] * p;
if(pk[tmp] == tmp) {
sum1[tmp] = (1ll * sum1[i] * p % mod + (tmp - tmp / p)) % mod;
} else {
sum1[tmp] = 1ll * sum1[pk[tmp]] * sum1[tmp / pk[tmp]] % mod;
}
phi[tmp] = phi[i] * p;
break;
}
}
}
}
int sum2[MAXN + 1];
ll qpow(ll x, int n) {
ll res = 1;
while(n) {
if(n & 1)
res = res * x % mod;
x = x * x % mod;
n >>= 1;
}
return res;
}
void init() {
for(int c = 1, c1 = 2, c2 = 7, f1 = 1; c <= MAXN;) {
sum2[c] = ((1ll * c2 - f1 + mod) % mod * sum1[c] % mod * qpow(c, mod - 2) % mod + c + sum2[c - 1]) % mod;
++c, ++c1, f1 = c2 + 1;
c2 = (1ll * c1 * c1 % mod * c1 % mod - 1 + mod) % mod;
}
}
ll S1(lll n, int m) {
//sigma gcd(i,m) [1,n]
ll res = 0;
for(int T = 1; T * T <= m; ++T) {
if(!(m % T)) {
res += (n / T) * phi[T];
if(T * T != m) {
res += (n / (m / T)) * phi[(m / T)];
}
}
}
res %= mod;
return res;
}
ll S0(lll n) {
lll i, i3;
for(i = 1;; ++i) {
lll tmp = i * i * i;
if(tmp > n) {
--i;
break;
} else
i3 = tmp;
}
ll res = 0;
res += S1(n, i) - S1(i3 - 1, i);
res += sum2[i - 1];
res = (res % mod + mod) % mod;
return res;
}
inline lll read() {
lll x = 0;
char c;
do {
c = getchar();
} while(c < '0' || c > '9');
do {
x = (x << 3) + (x << 1) + c - '0';
c = getchar();
} while(c >= '0' && c <= '9');
return x;
}
int main() {
#ifdef Yinku
freopen("Yinku.in", "r", stdin);
#endif // Yinku
sieve();
init();
int T;
cin >> T;
lll n;
while(T--) {
n = read();
cout << S0(n) << endl;
}
}