既然中序和后序队列构成二叉树写了,就把前序和中序一做吧。
原理其实也很简单,前序队列第一个点就是根节点,再中序队列里面这个根节点可以分出左右两个树的两个中序队列,然后可以按照左右树的节点数量,再前序节点里面分出对应两组前序队列;然后反复递归即可。
# Definition for a binary tree node.
# class TreeNode:
# def __init__(self, x):
# self.val = x
# self.left = None
# self.right = None
class Solution:
def buildTree(self, preorder: List[int], inorder: List[int]) -> TreeNode:
if inorder == []:
return None
else:
if len(inorder) == 1:
return TreeNode(inorder[0])
else:
RootVal = preorder[0]
currentNode = TreeNode(RootVal)
inorderLeft = inorder[:inorder.index(RootVal)]
inorderRight = inorder[inorder.index(RootVal)+1:]
preorder.pop(0)
preorderLeft = preorder[:len(inorderLeft)]
preorderRight = preorder[-len(inorderRight):]
currentNode.left = self.buildTree(preorderLeft,inorderLeft)
currentNode.right = self.buildTree(preorderRight,inorderRight)
return currentNode