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590. N 叉树的后序遍历 #90

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Geekhyt opened this issue Sep 20, 2021 · 0 comments

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简单

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Geekhyt commented Sep 20, 2021

递归 dfs

const postorder = function(root) {
    if (root === null) return []
    const res = []
    function dfs(root) {
        if (root === null) return;
        for (let i = 0; i < root.children.length; i++){
            dfs(root.children[i])
        }
        res.push(root.val)
    }
    dfs(root)
    return res
}

时间复杂度: O(n)
空间复杂度: O(n)

Geekhyt added the 简单 label

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