递推式:
h(n) = h(0) * h(n-1) + h(1) * h(n-2) + …… + h(n-1)h(0);
递推关系的解:
h(n) = C(2n, n)/(n +1)
递推关系的另类解1:
h(n) = C(2n, n) – C(2n, n-1)
折线法证明法:
http://blog.sina.com.cn/s/blog_6917f47301010cno.html
另类递推式:
h(n) = h(n-1) * ((4*n-2)/(n+1))
卡特兰数的实现
package acm; import java.math.BigInteger; import java.util.Scanner; public class P1122 { public static void main(String[] args) { Scanner sc = new Scanner(System.in); int n = sc.nextInt(); // 递归实现 int result = Catalan(n); System.out.println(result); // 非递归实现 BigInteger catalan[] = new BigInteger[n + 1]; catalan[0] = new BigInteger("1"); catalan[1] = new BigInteger("1"); for(int i = 2; i< n +1; i++) { int x = 4 * i - 2 ; int y = i + 1; catalan[i] = catalan[i-1].multiply(new BigInteger("" + x)).divide(new BigInteger(""+ y)); } System.out.println(catalan[n]); } // 递归实现 public static int Catalan(int n) { if (n == 1) return 1; return (4 * n - 2) * Catalan(n - 1) / (n + 1) ; } }