我正在研究 Python3 中的二叉树,到目前为止,几乎所有内容都按预期工作;但是,我有一个函数应该返回任何给定节点的所有子节点的列表,无论出于何种原因,我只得到对象地址的列表,而不是调用我的重写__str__(self)方法。
from collections import deque # http://docs.python.org/3.1/tutorial/datastructures.html
class BinaryNode: # binary tree functionality via iterative means
def __init__(self, name, data):
self.Left = None
self.Right = None
self.Parent = None
self.Name = name
self.Data = data
return
def AddNew(self, name, data):
q = []
q.append(self)
while q:
i = q.pop()
if i.Name == name:
i.Data = data
return i
elif name < i.Name:
if i.Left:
q.append(i.Left)
else:
i.Left = BinaryNode(name, data)
i.Left.Parent = i
return i.Left
else:
if i.Right:
q.append(i.Right)
else:
i.Right = BinaryNode(name, data)
i.Right.Parent = i
return i.Right
def Find(self, name):
q = deque()
q.append(self)
'''if self.Left: q.append(self.Left)
if self.Right: q.append(self.Right)'''
while q:
i = q.pop()
print(i)
if i.Name == name:
return i
elif name < i.Name:
if i.Left: q.append(i.Left)
else: return None
else:
if i.Right: q.append(i.Left)
else: return None
def Children(self):
children = []
q = deque()
if self.Left: q.append(self.Left)
if self.Right: q.append(self.Right)
while q:
i = q.popleft()
if i.Left: q.append(i.Left)
if i.Right: q.append(i.Right)
children.append(i)
return children
def Parents(self):
lst = []
i = self.Parent
while i is not None:
lst.append(i)
i = i.Parent
return lst
def __str__(self): return "{} : {}".format(self.Name, self.Data)
我正在通过调用来测试它
test = BinaryNode("Jesse", 21)
print(test)
print(test.AddNew("David", 22))
print(test.AddNew("Marli", 23))
print(str(test.Children()))
print(test.Find("David"))
print(test.Find("David").Children())
print(test.Find("Gary")) #Will return None
使用生成的控制台输出
Jesse : 21
David : 22
Marli : 23
[<__main__.BinaryNode object at 0x000000000333E160>, <__main__.BinaryNode object at 0x000000000333E1D0>, <__main__.BinaryNode object at 0x000000000333E198>]
David : 22
[<__main__.BinaryNode object at 0x000000000333E1D0>]
None
更新: 这是我实施的答案:
def __repr__ (self): return str(self)