Given n, how many structurally unique BST's (binary search trees) that store values 1...n?
For example,
Given n = 3, there are a total of 5 unique BST's.
1 3 3 2 1
/ / /
3 2 1 1 3 2
/ /
2 1 2 3
public class Solution { public int numTrees(int n) { /* 把上例的顺序改一下,就可以看出规律了。 1 1 2 3 3 / / / 3 2 1 3 2 1 / / 2 3 1 2 比如,以1为根的树有几个,完全取决于有二个元素的子树有几种。同理,2为根的子树取决于一个元素的子树有几个。以3为根的情况,则与1相同。 the number of binary search tree equals the left child tree * right child tree If there are three element in the array, there are three situations root is 1, left has 0 , right has 2 root is 2, left has 1, right has 1 root is 3, left has 2, right has 0 定义Count[i] 为以[0,i]能产生的Unique Binary Tree的数目, 如果数组为空,毫无疑问,只有一种BST,即空树, Count[0] =1 如果数组仅有一个元素{1},只有一种BST,单个节点 Count[1] = 1 如果数组有两个元素{1,2}, 那么有如下两种可能 1 2 / 2 1 Count[2] = Count[0] * Count[1] (1为根的情况) + Count[1] * Count[0] (2为根的情况。 再看一遍三个元素的数组,可以发现BST的取值方式如下: Count[3] = Count[0]*Count[2] (1为根的情况) + Count[1]*Count[1] (2为根的情况) + Count[2]*Count[0] (3为根的情况) 所以,由此观察,可以得出Count的递推公式为 Count[i] = ∑ Count[0...k] * [ k+1....i-1] 0<=k<i 问题至此划归为一维动态规划。*/ int count[]=new int[n+1]; count[0]=1; count[1]=1; for(int i=2;i<=n;i++){ for(int j=0;j<i;j++){ count[i]+=count[j]*count[i-j-1]; } } return count[n]; } }