Description
Given preorder and inorder traversal of a tree, construct the binary tree.
Note:
You may assume that duplicates do not exist in the tree.
For example, given
preorder = [3,9,20,15,7]
inorder = [9,3,15,20,7]
Return the following binary tree:
tree
Solution
DFS, time O(n), space O(1)
根据inorder决定左右子树的大小,根据preorder决定节点value。
/**
* Definition for a binary tree node.
* public class TreeNode {
* int val;
* TreeNode left;
* TreeNode right;
* TreeNode(int x) { val = x; }
* }
*/
class Solution {
public TreeNode buildTree(int[] preorder, int[] inorder) {
return buildTreeRecur(preorder, 0, inorder, 0, inorder.length - 1);
}
public TreeNode buildTreeRecur(int[] preorder, int ps
, int[] inorder, int is, int ie) {
if (is > ie) {
return null;
}
TreeNode root = new TreeNode(preorder[ps]);
int index = search(inorder, is, ie, root.val);
root.left = buildTreeRecur(preorder, ps + 1
, inorder, is, index - 1);
root.right = buildTreeRecur(preorder, ps + index - is + 1
, inorder, index + 1, ie);
return root;
}
public int search(int[] nums, int start, int end, int val) {
while (start <= end && nums[start] != val) {
++start;
}
return start;
}
}
