一道算法

112. 路径总和

给定一个二叉树和一个目标和,判断该树中是否存在根节点到叶子节点的路径,这条路径上所有节点值相加等于目标和。

说明: 叶子节点是指没有子节点的节点。

示例: 
给定如下二叉树,以及目标和 sum = 22

              5
             / \
            4   8
           /   / \
          11  13  4
         /  \      \
        7    2      1

返回 true, 因为存在目标和为 22 的根节点到叶子节点的路径 5->4->11->2

 

 

class Solution:
    def hasPathSum(self, root: TreeNode, sum: int) -> bool:
        if not root:
            return False
        if not root.left and not root.right:
            return sum == root.val
        return self.hasPathSum(root.left, sum - root.val) or self.hasPathSum(root.right, sum - root.val)
class Solution:
    def hasPathSum(self, root: TreeNode, sum: int) -> bool:
        if not root:
            return False
        que_node = collections.deque([root])
        que_val = collections.deque([root.val])
        while que_node:
            now = que_node.popleft()
            temp = que_val.popleft()
            if not now.left and not now.right:
                if temp == sum:
                    return True
                continue
            if now.left:
                que_node.append(now.left)
                que_val.append(now.left.val + temp)
            if now.right:
                que_node.append(now.right)
                que_val.append(now.right.val + temp)
        return False

 

posted on 2020-07-07 06:57  topass123  阅读(113)  评论(0编辑  收藏  举报
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