Problem Description
This is a small but ancient game. You are supposed to write down the numbers 1,2,3,...,2n - 1,2n consecutively in clockwise order on the ground to form a circle,and then,to draw some straight line segments to connect them into number pairs. Every number must be connected to exactly one another. And,no two segments are allowed to intersect.
It's still a simple game,isn't it? But after you've written down the 2n numbers,can you tell me in how many different ways can you connect the numbers into pairs? Life is harder,right?
It's still a simple game,isn't it? But after you've written down the 2n numbers,can you tell me in how many different ways can you connect the numbers into pairs? Life is harder,right?
Input
Each line of the input file will be a single positive number n,except the last line,which is a number -1. You may assume that 1 <= n <= 100.
Output
For each n,print in a single line the number of ways to connect the 2n numbers into pairs.
Sample Input
2 3 -1
Sample Output
2 5
#include <stdio.h> #include <string.h> #include <iostream> using namespace std; int n; #define BASE 10000 #define UNIT 4 #define FORMAT "%04d" class BigNum{ public: int a[20]; int length; BigNum(const int k){ //用小于BASE的k初始化大数 memset(a,sizeof(a)); a[0] = k; length = 1; } BigNum(){ memset(a,sizeof(a)); length = 0; } BigNum operator * (const BigNum & B){ BigNum ans; int i,j,up=0,num; for(i=0; i<length; i++){ up = 0; //每次循环都要初始化为0 for(j=0; j<B.length; j++){ num = up + a[i] * B.a[j] + ans.a[i+j]; up = num / BASE; num = num % BASE; // cout << num << endl; ans.a[i+j] = num; } // cout << up << endl; if(up > 0) ans.a[i+j] = up; } ans.length = i+j; while(ans.a[ans.length -1] == 0 && ans.length > 1) ans.length--; return ans; } BigNum operator /(const int & k) const{ // k < BASE,对此题适用 BigNum ans; int down=0,i,num; for(i=length-1; i>=0; i--){ num = ( (down * BASE) + a[i] ) / k; down = ( (down * BASE) + a[i] ) % k; ans.a[i] = num; } ans.length = length; while(ans.a[ans.length-1] == 0 && ans.length > 1) ans.length -- ; return ans; } void print(){ printf("%d",a[length-1]); for(int i=length-2; i>=0; i--) printf(FORMAT,a[i]); } }; //f(n) = C(2n,n)/(n+1) int main(){ BigNum nums[101]; nums[1] = BigNum(1); nums[2] = BigNum(2); nums[3] = BigNum(5); for(int i=4; i<=100; i++){ nums[i] = nums[i-1] * (4*i-2)/(i+1); } int n; while(scanf("%d",&n),n>0){ nums[n].print(); printf("\n"); } return 0; }
版权声明:本文内容由互联网用户自发贡献,该文观点与技术仅代表作者本人。本站仅提供信息存储空间服务,不拥有所有权,不承担相关法律责任。如发现本站有涉嫌侵权/违法违规的内容, 请发送邮件至 [email protected] 举报,一经查实,本站将立刻删除。
