• bzoj2822: [AHOI2012]树屋阶梯


    咦,这里有好多东西https://en.wikipedia.org/wiki/Catalan_number

    每个矩形最多贡献一个拐角

    枚举左上角的点和那个拐角是一个矩形

      1 #include<cstdio>
      2 #include<cstring>
      3 #include<cstdlib>
      4 #include<algorithm>
      5 #include<iostream>
      6 
      7 using namespace std;
      8 
      9 void setIO(const string& s) {
     10     freopen((s + ".in").c_str(), "r", stdin);
     11     freopen((s + ".out").c_str(), "w", stdout);
     12 }
     13 template<typename Q> Q read(Q& x) {
     14     static char c, f;
     15     for(f = 0; c = getchar(), !isdigit(c); ) if(c == '-') f = 1;
     16     for(x = 0; isdigit(c); c = getchar()) x = x * 10 + c - '0';
     17     if(f) x = -x;
     18     return x;
     19 }
     20 template<typename Q> Q read() {
     21     static Q x; read(x); return x;
     22 }
     23 
     24 struct LL {
     25     const static int N = 300, base = 10;
     26     int da[N], n;
     27     
     28     void init(int n) {
     29         this->n = n;
     30         memset(da, 0, sizeof(da[0]) * n);
     31     }
     32     
     33     void clear_zero() {
     34         while(n && !da[n-1]) n--;
     35     }
     36     
     37     LL operator * (const int &rhs) const {
     38         static LL c;
     39         c.init(n + 3);
     40         for(int i = 0; i < c.n; i++) {
     41             if(i < n) c.da[i] += da[i] * rhs;
     42             c.da[i+1] += c.da[i] / base;
     43             c.da[i] %= base;
     44         }
     45         c.clear_zero();
     46         return c;
     47     }
     48     
     49     void print() const {
     50         if(n == 0) putchar('0');
     51         else for(int i = n - 1; i >= 0; i--) {
     52             putchar(da[i] + '0');
     53         }
     54     }
     55 }res;
     56 
     57 const int LIM = 1000, N = 500;
     58 
     59 int mi[LIM+1], primes[N], tot;
     60 bool flag[LIM+1];
     61 
     62 void get_prime(int n) {
     63     for(int i = 2; i <= n; i++) {
     64         if(!flag[i]) primes[tot] = i, mi[i] = tot++;
     65         for(int j = 0; j < tot; j++) {
     66             int k = primes[j];
     67             if(i * k > n) break;
     68             flag[i * k] = 1;
     69             if(i % k == 0) break;
     70         }
     71     }
     72 }
     73 
     74 int num[N];
     75 
     76 void add(int x, int sign) {
     77     for(int i = 0, k; k = primes[i], k * k <= x; i++) {
     78         while(x % k == 0) {
     79             num[i] += sign;
     80             x /= k;
     81         }
     82     }
     83     if(x ^ 1) num[mi[x]] += sign;
     84 }
     85 int main() {
     86 #ifdef DEBUG
     87     freopen("in.txt", "r", stdin);
     88     freopen("out.txt", "w", stdout);
     89 #endif
     90     
     91     int n; scanf("%d", &n);
     92     get_prime(n * 2);
     93     
     94     for(int i = n * 2; i > n; i--) add(i, 1);
     95     for(int i = n; i > 1; i--) add(i, -1);
     96     add(n + 1, -1);
     97     
     98     res.da[0] = res.n = 1;
     99     for(int i = 0; i < tot; i++) {
    100         while(num[i]--) res = res * primes[i];
    101     }
    102     
    103     res.print();
    104     
    105     return 0;
    106 }
    View Code
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  • 原文地址:https://www.cnblogs.com/showson/p/5103730.html
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