剑指Offer_61_序列化二叉树

题目描述

请实现两个函数,分别用来序列化和反序列化二叉树

解题思路

使用前序遍历,将遇到的结点添加到字符串中,遇到null则将一个#添加要序列化字符串中。反序列化时,每次读取根结点,然后读取其左结点,遇到#(null)时,返回上层。

实现

/*树结点定义*/
public class TreeNode {
    int val = 0;
    TreeNode left = null;
    TreeNode right = null;

    public TreeNode(int val) {
        this.val = val;

    }

}
/*实现*/
public class Solution {
    String Serialize(TreeNode root) {
        StringBuilder sb = new StringBuilder();
        serialize(root, sb);
        return sb.toString();
    }

    private void serialize(TreeNode root, StringBuilder sb) {
        if (root == null) {
            sb.append("#,");
            return;
        }

        sb.append(root.val + ",");
        serialize(root.left, sb);
        serialize(root.right, sb);
    }

    private class Result{
        TreeNode node;
        int pos;

        Result(TreeNode node, int pos){
            this.node = node;
            this.pos = pos;
        }
    }

    TreeNode Deserialize(String str) {
        if (str == null || str.length() <= 0) return null;
        String[] strs = str.split(",");
        Result re = deserialize(strs, 0);
        return re.node;
    }

    private Result deserialize(String[] str, int i) {
        TreeNode root = null;
        if (i < str.length - 1){
            if ("#".equals(str[i])) return new Result(null, i+1);
            root = new TreeNode(Integer.parseInt(str[i]));
            Result l = deserialize(str, i + 1);
            root.left = l.node;
            Result r = deserialize(str, l.pos);
            root.right = r.node;
            return new Result(root, r.pos);
        }
        return new Result(root, i+1);
    }
}
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原文地址:https://www.cnblogs.com/ggmfengyangdi/p/5828616.html