コード例 #1
0
from my_data_structure import generate_treenode, print_treenode

tc = [
    generate_treenode('8,6,10,5,7,9,11'),
    # 只有一个节点的二叉树
    generate_treenode('1'),
    # 只有左子树的二叉树
    generate_treenode('1,2,null,4'),
]


def main(tree):
    if tree.left == tree.right == None:
        return tree
    tree.left, tree.right = tree.right, tree.left
    if tree.left:
        main(tree.left)
    if tree.right:
        main(tree.right)
    return tree


if __name__ == '__main__':
    for t in tc:
        print_treenode(main(t))
コード例 #2
0
ファイル: 450.py プロジェクト: lwabish/algorithm-and-language
from my_data_structure import generate_treenode, print_treenode, TreeNode
tc = [
    generate_treenode('5,3,6,2,4,null,7'),
    generate_treenode('1,null,2'),
    generate_treenode('1,null,2'),
    generate_treenode('0'),
    generate_treenode('5,3,6,2,4,null,7'),
    generate_treenode(
        '2,0,33,null,1,25,40,null,null,11,31,34,45,10,18,29,32,null,36,43,46,4,null,12,24,26,30,null,null,35,39,42,44,null,48,3,9,null,14,22,null,null,27,null,null,null,null,38,null,41,null,null,null,47,49,null,null,5,null,13,15,21,23,null,28,37,null,null,null,null,null,null,null,null,8,null,null,null,17,19,null,null,null,null,null,null,null,7,null,16,null,null,20,6'
    )
]
print_treenode(tc[5])


class Solution:
    def deleteNode(self, root: TreeNode, key: int) -> TreeNode:
        self.head = root

        def get_mid_order_next(root: TreeNode, parent: TreeNode):
            """
            返回一个节点的中序遍历的下一个节点及其父节点。
            注意:这里的算法只是这道题适用,因为在题里找中序遍历下一个节点时一定有右子节点,这是所有找中序遍历下一个节点的算法中的一种情况。
            """
            while root.left:
                return get_mid_order_next(root.left, root)
            return root, parent

        def delete(root, key, parent: TreeNode):
            # 没找到
            if not root:
                return None
コード例 #3
0
ファイル: 701.py プロジェクト: lwabish/algorithm-and-language
from my_data_structure import generate_treenode, print_treenode, TreeNode
tc = [generate_treenode('4,2,7,1,3')]


def insertIntoBST(root, val: int):
    head = root

    def insert(root, val):
        if root.val > val:
            if root.left:
                insertIntoBST(root.left, val)
            else:
                root.left = TreeNode(val)
        else:
            if root.right:
                insertIntoBST(root.right, val)
            else:
                root.right = TreeNode(val)

    insert(root, val)
    return head


if __name__ == '__main__':
    print_treenode(insertIntoBST(tc[0], 5))
コード例 #4
0
from my_data_structure import generate_treenode, print_treenode
tc = [generate_treenode('4,2,7,1,3,5,6')]


def searchBST(root, val: int):
    if not root:
        return None
    if root.val == val:
        return root
    if root.val > val:
        return searchBST(root.left, val)
    else:
        return searchBST(root.right, val)


if __name__ == '__main__':
    print_treenode(searchBST(tc[0], 7))
コード例 #5
0
            node = node.left
        return node.val
    else:
        if not node.parent:  # 无父节点
            return '最后一位'
        if node.parent.left and node.parent.left.val == node.val:  # 是父节点的左子节点
            return node.parent.val
        else:  # 是父节点的右子节点
            while node.parent:  # 沿右子节点路线一路向上到顶
                if node.parent.right.val == node.val:
                    node = node.parent
                else:
                    break
            if node.parent:
                return node.parent.val
            else:
                return '最后一位'


if __name__ == '__main__':
    # 打印出当前测试用例的二叉树形状
    tc_tree = generate_treenode(tc, True)
    print_treenode(tc_tree)

    # 遍历测试每个节点的下一个节点
    t, num = 1, 1   # 将num修改为二叉树中节点的个数
    while t <= num:
        tc_node = get_specific_treenode(tc_tree, t)
        print(tc_node.val, main(tc_node), '\n')
        t += 1