• [ACM] hdu 1134 Game of Connections(大数+Catalan数)


    Game of Connections

    Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
    Total Submission(s): 2923    Accepted Submission(s): 1649


    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?
     


     

    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
     


     

    Source

    解题思路:

    Catalan数,递推公式为h(n)=(4n-2)/(n+1)*h(n-1)(n>1) h(0)=1   ,用到了大数模板。

    代码:

    #include<iostream>
    #include<string.h>
    #include<iomanip>
    #include<algorithm>
    using namespace std;
    
    #define MAXN 9999
    #define MAXSIZE 10
    #define DLEN 4
    
    class BigNum
    {
    private:
    	int a[500];    //可以控制大数的位数
    	int len;       //大数长度
    public:
    	BigNum(){ len = 1;memset(a,0,sizeof(a)); }   //构造函数
    	BigNum(const int);       //将一个int类型的变量转化为大数
    	BigNum(const char*);     //将一个字符串类型的变量转化为大数
    	BigNum(const BigNum &);  //拷贝构造函数
    	BigNum &operator=(const BigNum &);   //重载赋值运算符,大数之间进行赋值运算
    
    	friend istream& operator>>(istream&,  BigNum&);   //重载输入运算符
    	friend ostream& operator<<(ostream&,  BigNum&);   //重载输出运算符
    
    	BigNum operator+(const BigNum &) const;   //重载加法运算符,两个大数之间的相加运算
    	BigNum operator-(const BigNum &) const;   //重载减法运算符,两个大数之间的相减运算
    	BigNum operator*(const BigNum &) const;   //重载乘法运算符,两个大数之间的相乘运算
    	BigNum operator/(const int   &) const;    //重载除法运算符,大数对一个整数进行相除运算
    
    	BigNum operator^(const int  &) const;    //大数的n次方运算
    	int    operator%(const int  &) const;    //大数对一个int类型的变量进行取模运算
    	bool   operator>(const BigNum & T)const;   //大数和另一个大数的大小比较
    	bool   operator>(const int & t)const;      //大数和一个int类型的变量的大小比较
    
    	void print();       //输出大数
    };
    BigNum::BigNum(const int b)     //将一个int类型的变量转化为大数
    {
    	int c,d = b;
    	len = 0;
    	memset(a,0,sizeof(a));
    	while(d > MAXN)
    	{
    		c = d - (d / (MAXN + 1)) * (MAXN + 1);
    		d = d / (MAXN + 1);
    		a[len++] = c;
    	}
    	a[len++] = d;
    }
    BigNum::BigNum(const char*s)     //将一个字符串类型的变量转化为大数
    {
    	int t,k,index,l,i;
    	memset(a,0,sizeof(a));
    	l=strlen(s);
    	len=l/DLEN;
    	if(l%DLEN)
    		len++;
    	index=0;
    	for(i=l-1;i>=0;i-=DLEN)
    	{
    		t=0;
    		k=i-DLEN+1;
    		if(k<0)
    			k=0;
    		for(int j=k;j<=i;j++)
    			t=t*10+s[j]-'0';
    		a[index++]=t;
    	}
    }
    BigNum::BigNum(const BigNum & T) : len(T.len)  //拷贝构造函数
    {
    	int i;
    	memset(a,0,sizeof(a));
    	for(i = 0 ; i < len ; i++)
    		a[i] = T.a[i];
    }
    BigNum & BigNum::operator=(const BigNum & n)   //重载赋值运算符,大数之间进行赋值运算
    {
    	int i;
    	len = n.len;
    	memset(a,0,sizeof(a));
    	for(i = 0 ; i < len ; i++)
    		a[i] = n.a[i];
    	return *this;
    }
    istream& operator>>(istream & in,  BigNum & b)   //重载输入运算符
    {
    	char ch[MAXSIZE*4];
    	int i = -1;
    	in>>ch;
    	int l=strlen(ch);
    	int count=0,sum=0;
    	for(i=l-1;i>=0;)
    	{
    		sum = 0;
    		int t=1;
    		for(int j=0;j<4&&i>=0;j++,i--,t*=10)
    		{
    			sum+=(ch[i]-'0')*t;
    		}
    		b.a[count]=sum;
    		count++;
    	}
    	b.len =count++;
    	return in;
    
    }
    ostream& operator<<(ostream& out,  BigNum& b)   //重载输出运算符
    {
    	int i;
    	cout << b.a[b.len - 1];
    	for(i = b.len - 2 ; i >= 0 ; i--)
    	{
    		cout.width(DLEN);
    		cout.fill('0');
    		cout << b.a[i];
    	}
    	return out;
    }
    
    BigNum BigNum::operator+(const BigNum & T) const   //两个大数之间的相加运算
    {
    	BigNum t(*this);
    	int i,big;      //位数
    	big = T.len > len ? T.len : len;
    	for(i = 0 ; i < big ; i++)
    	{
    		t.a[i] +=T.a[i];
    		if(t.a[i] > MAXN)
    		{
    			t.a[i + 1]++;
    			t.a[i] -=MAXN+1;
    		}
    	}
    	if(t.a[big] != 0)
    		t.len = big + 1;
    	else
    		t.len = big;
    	return t;
    }
    BigNum BigNum::operator-(const BigNum & T) const   //两个大数之间的相减运算
    {
    	int i,j,big;
    	bool flag;
    	BigNum t1,t2;
    	if(*this>T)
    	{
    		t1=*this;
    		t2=T;
    		flag=0;
    	}
    	else
    	{
    		t1=T;
    		t2=*this;
    		flag=1;
    	}
    	big=t1.len;
    	for(i = 0 ; i < big ; i++)
    	{
    		if(t1.a[i] < t2.a[i])
    		{
    			j = i + 1;
    			while(t1.a[j] == 0)
    				j++;
    			t1.a[j--]--;
    			while(j > i)
    				t1.a[j--] += MAXN;
    			t1.a[i] += MAXN + 1 - t2.a[i];
    		}
    		else
    			t1.a[i] -= t2.a[i];
    	}
    	t1.len = big;
    	while(t1.a[len - 1] == 0 && t1.len > 1)
    	{
    		t1.len--;
    		big--;
    	}
    	if(flag)
    		t1.a[big-1]=0-t1.a[big-1];
    	return t1;
    }
    
    BigNum BigNum::operator*(const BigNum & T) const   //两个大数之间的相乘运算
    {
    	BigNum ret;
    	int i,j,up;
    	int temp,temp1;
    	for(i = 0 ; i < len ; i++)
    	{
    		up = 0;
    		for(j = 0 ; j < T.len ; j++)
    		{
    			temp = a[i] * T.a[j] + ret.a[i + j] + up;
    			if(temp > MAXN)
    			{
    				temp1 = temp - temp / (MAXN + 1) * (MAXN + 1);
    				up = temp / (MAXN + 1);
    				ret.a[i + j] = temp1;
    			}
    			else
    			{
    				up = 0;
    				ret.a[i + j] = temp;
    			}
    		}
    		if(up != 0)
    			ret.a[i + j] = up;
    	}
    	ret.len = i + j;
    	while(ret.a[ret.len - 1] == 0 && ret.len > 1)
    		ret.len--;
    	return ret;
    }
    BigNum BigNum::operator/(const int & b) const   //大数对一个整数进行相除运算
    {
    	BigNum ret;
    	int i,down = 0;
    	for(i = len - 1 ; i >= 0 ; i--)
    	{
    		ret.a[i] = (a[i] + down * (MAXN + 1)) / b;
    		down = a[i] + down * (MAXN + 1) - ret.a[i] * b;
    	}
    	ret.len = len;
    	while(ret.a[ret.len - 1] == 0 && ret.len > 1)
    		ret.len--;
    	return ret;
    }
    int BigNum::operator %(const int & b) const    //大数对一个int类型的变量进行取模运算
    {
    	int i,d=0;
    	for (i = len-1; i>=0; i--)
    	{
    		d = ((d * (MAXN+1))% b + a[i])% b;
    	}
    	return d;
    }
    BigNum BigNum::operator^(const int & n) const    //大数的n次方运算
    {
    	BigNum t,ret(1);
    	int i;
    	if(n<0)
    		exit(-1);
    	if(n==0)
    		return 1;
    	if(n==1)
    		return *this;
    	int m=n;
    	while(m>1)
    	{
    		t=*this;
    		for( i=1;i<<1<=m;i<<=1)
    		{
    			t=t*t;
    		}
    		m-=i;
    		ret=ret*t;
    		if(m==1)
    			ret=ret*(*this);
    	}
    	return ret;
    }
    bool BigNum::operator>(const BigNum & T) const   //大数和另一个大数的大小比较
    {
    	int ln;
    	if(len > T.len)
    		return true;
    	else if(len == T.len)
    	{
    		ln = len - 1;
    		while(a[ln] == T.a[ln] && ln >= 0)
    			ln--;
    		if(ln >= 0 && a[ln] > T.a[ln])
    			return true;
    		else
    			return false;
    	}
    	else
    		return false;
    }
    bool BigNum::operator >(const int & t) const    //大数和一个int类型的变量的大小比较
    {
    	BigNum b(t);
    	return *this>b;
    }
    
    void BigNum::print()    //输出大数
    {
    	int i;
    	cout << a[len - 1];
    	for(i = len - 2 ; i >= 0 ; i--)
    	{
    		cout.width(DLEN);
    		cout.fill('0');
    		cout << a[i];
    	}
    	cout << endl;
    }
    int main()
    {
    	BigNum num[102];
    	num[0]=1;
    	for(int i=1;i<=100;i++)
        {
            num[i]=num[i-1]*(4*i-2)/(i+1);
        }
    	int n;
    	while(cin>>n&&n!=-1)
        {
            num[n].print();
        }
        return 0;
    }
    


     

  • 相关阅读:
    Android 获取内存信息
    Android上基于libgdx的游戏开发资料
    Android使用http协议与服务器通信
    Android 下载zip压缩文件并解压
    2014年终总结
    OSG 坑爹的Android example
    支持Android 的几款开源3D引擎调研
    利用Android NDK编译lapack
    Django 中实现连接多个数据库并实现读写分离
    Git之多人协同开发
  • 原文地址:https://www.cnblogs.com/vivider/p/3697672.html
Copyright © 2020-2023  润新知