Description
Print a binary tree in an m*n 2D string array following these rules:
The row number m should be equal to the height of the given binary tree.
The column number n should always be an odd number.
The root node's value (in string format) should be put in the exactly middle of the first row it can be put. The column and the row where the root node belongs will separate the rest space into two parts (left-bottom part and right-bottom part). You should print the left subtree in the left-bottom part and print the right subtree in the right-bottom part. The left-bottom part and the right-bottom part should have the same size. Even if one subtree is none while the other is not, you don't need to print anything for the none subtree but still need to leave the space as large as that for the other subtree. However, if two subtrees are none, then you don't need to leave space for both of them.
Each unused space should contain an empty string "".
Print the subtrees following the same rules.
Example 1:
Input:
1
/
2
Output:
[["", "1", ""],
["2", "", ""]]
Solution
1.计算数组的height --> 计算array的大小[H, 2**H -1]
- DFS 逐层preorder对数组赋值
- 求解X,Y位置时node的位置应该始终为中点
# Definition for a binary tree node.
# class TreeNode:
# def __init__(self, x):
# self.val = x
# self.left = None
# self.right = None
class Solution:
def printTree(self, root: TreeNode) -> List[List[str]]:
def get_length(root):
if not root:
return 0
return 1+ max(get_length(root.left),get_length(root.right))
height = get_length(root)
row = height
col = 2**height -1
# res = [[""]*col]*row 不可以 因为是reference复制
res = [['' for _ in range(col)] for _ in range(row)]
def vertical(node,depth,start,end):
if not node:
return
mid = (start+end) //2
res[depth][mid]= str(node.val)
if start == end:
return
vertical(node.left,depth+1,start,mid-1) # 不应包括中点
vertical(node.right,depth+1,mid+1,end)
vertical(root,0,0,col)
return res
```
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