HDU 5528 Count a * b
Count a * b
推式子
f(n)=∑i=0n?1∑j=0n?1n?ij=n2?∑i=1n∑j=1nn∣ij=n2?∑i=1n∑j=1nngcd(i,n)∣igcd(i,n)j=n2?∑i=1nnngcd(i,n)=n2?∑i=1ngcd(i,n)=n2?∑d∣nd∑i=1n(gcd(i,n)==d)=n2?∑d∣nd∑i=1nd(gcd(i,nd)==1)=n2?∑d∣nd?(nd)f(n) = \sum_{i= 0} ^{n - 1} \sum_{j = 0} ^ {n - 1} n \nmid ij\\ = n ^ 2 - \sum_{i = 1} ^{n} \sum_{j = 1} ^{n} n \mid ij\\ = n ^ 2 - \sum_{i = 1} ^{n} \sum_{j = 1} ^{n} \frac{n}{gcd(i, n)} \mid \frac{i}{gcd(i, n)}j\\ = n ^ 2 - \sum_{i = 1} ^{n} \frac{n}{\frac{n}{gcd(i, n)}}\\ = n ^ 2 - \sum_{i = 1} ^{n} gcd(i, n)\\ = n ^ 2 - \sum_{d \mid n} d \sum_{i = 1} ^{n} (gcd(i, n) == d)\\ = n ^ 2 - \sum_{d \mid n} d \sum_{i = 1} ^{\frac{n}ze8trgl8bvbq} (gcd(i, \frac{n}ze8trgl8bvbq) == 1)\\ = n ^ 2 - \sum_{d \mid n} d \phi(\frac{n}ze8trgl8bvbq)\\ f(n)=i=0∑n?1?j=0∑n?1?n?ij=n2?i=1∑n?j=1∑n?n∣ij=n2?i=1∑n?j=1∑n?gcd(i,n)n?∣gcd(i,n)i?j=n2?i=1∑n?gcd(i,n)n?n?=n2?i=1∑n?gcd(i,n)=n2?d∣n∑?di=1∑n?(gcd(i,n)==d)=n2?d∣n∑?di=1∑dn??(gcd(i,dn?)==1)=n2?d∣n∑?d?(dn?)
g(n)=∑m∣nf(m)=∑m∣nm2?∑m∣n∑d∣md?(md)=∑m∣nm2?∑d∣nd∑d∣m,m∣n?(md)=∑m∣nm2?∑d∣nd∑k∣nd?(k)=∑m∣nm2?∑d∣nng(n) = \sum_{m \mid n} f(m)\\ = \sum_{m \mid n} m ^ 2 - \sum_{m \mid n} \sum_{d \mid m} d \phi(\frac{m}ze8trgl8bvbq)\\ = \sum_{m \mid n} m ^ 2 - \sum_{d \mid n} d \sum_{d \mid m, m \mid n} \phi(\frac{m}ze8trgl8bvbq)\\ = \sum_{m \mid n} m ^ 2 - \sum_{d \mid n} d \sum_{k \mid \frac{n}ze8trgl8bvbq} \phi(k)\\ = \sum_{m \mid n} m ^ 2 - \sum_{d \mid n}n\\ g(n)=m∣n∑?f(m)=m∣n∑?m2?m∣n∑?d∣m∑?d?(dm?)=m∣n∑?m2?d∣n∑?dd∣m,m∣n∑??(dm?)=m∣n∑?m2?d∣n∑?dk∣dn?∑??(k)=m∣n∑?m2?d∣n∑?n
有約數(shù)個(gè)數(shù)等于∏i=1sum(numi+1)\prod _{i = 1} ^{sum}(num_i + 1)∏i=1sum?(numi?+1)
約數(shù)之和等于∏i=1sum(1+pi1+pi2+……+pinumi)\prod _{i = 1} ^{sum}(1 + p_i ^ {1} + p_i ^{2} + …… + p_i ^{num_i})∏i=1sum?(1+pi1?+pi2?+……+pinumi??)
約數(shù)平方之和等于∏i=1sum(1+pi2+pi4+……+pi2numi)\prod _{i = 1} ^{sum}(1 + p_i ^ {2} + p_i ^{4} + …… + p_i ^{2num_i})∏i=1sum?(1+pi2?+pi4?+……+pi2numi??)
可以推導(dǎo),也就是多個(gè)等比數(shù)列求前n項(xiàng)和,然后累乘。
代碼
/*Author : lifehappy */ #pragma GCC optimize(2) #pragma GCC optimize(3) #include <bits/stdc++.h>#define mp make_pair #define pb push_back #define endl '\n' #define mid (l + r >> 1) #define lson rt << 1, l, mid #define rson rt << 1 | 1, mid + 1, r #define ls rt << 1 #define rs rt << 1 | 1using namespace std;typedef long long ll; typedef unsigned long long ull; typedef pair<int, int> pii;const double pi = acos(-1.0); const double eps = 1e-7; const int inf = 0x3f3f3f3f;inline ll read() {ll f = 1, x = 0;char c = getchar();while(c < '0' || c > '9') {if(c == '-') f = -1;c = getchar();}while(c >= '0' && c <= '9') {x = (x << 1) + (x << 3) + (c ^ 48);c = getchar();}return f * x; }const int N = 1e5 + 10;ull prime[N]; int cnt;bool st[N];void init() {for(int i = 2; i < N; i++) {if(!st[i]) prime[cnt++] = i;for(int j = 0; j < cnt && i * prime[j] < N; j++) {st[i * prime[j]] = 1;if(i % prime[j] == 0) break;}} }ull quick_pow(ull a, int n) {ull ans = 1;while(n) {if(n & 1) ans = ans * a;a = a * a;n >>= 1;}return ans; }int main() {// freopen("in.txt", "r", stdin);// freopen("out.txt", "w", stdout);// ios::sync_with_stdio(false), cin.tie(0), cout.tie(0);init();int T = read();while(T--) {ull n = read(), m = n;ull ans = 1, sum = 1;for(int i = 0; i < cnt && prime[i] * prime[i] <= n; i++) {if(n % prime[i]) continue;int num = 0;while(n % prime[i] == 0) {n /= prime[i];num++;}ull res = 1 + prime[i] * prime[i] * ((quick_pow(prime[i], 2 * num) - 1) / (prime[i] * prime[i] - 1));ans *= res;sum *= 1ull * (num + 1);}if(n != 1) {ans *= 1 + 1ull * n * n; sum *= 2ull;}printf("%llu\n", ans - sum * m);}return 0; } 創(chuàng)作挑戰(zhàn)賽新人創(chuàng)作獎(jiǎng)勵(lì)來咯,堅(jiān)持創(chuàng)作打卡瓜分現(xiàn)金大獎(jiǎng)總結(jié)
以上是生活随笔為你收集整理的HDU 5528 Count a * b的全部內(nèi)容,希望文章能夠幫你解決所遇到的問題。
- 上一篇: 电动汽车能否降价?碳酸锂价格逼近 15
- 下一篇: 正方体表面积的公式 正方体表面积的公式介