/*
public class TreeNode {
    int val = 0;
    TreeNode left = null;
    TreeNode right = null;

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

    }

}
*/
public class Solution {
    int index = -1;
    String Serialize(TreeNode root) {
        StringBuilder sb = new StringBuilder();
        if (root == null) {
            sb.append("#,");
            return sb.toString();
        }
        sb.append(root.val + ",");
        sb.append(Serialize(root.left));
        sb.append(Serialize(root.right));
        return sb.toString();
    }
    TreeNode Deserialize(String str) {
        index++;
        String[] strs = str.split(",");
        TreeNode node = null;
        if (!strs[index].equals("#")) {
            node = new TreeNode(Integer.valueOf(strs[index]));
            node.left = Deserialize(str);
            node.right = Deserialize((str));
        }
        return node;
    }
}

解题思想:

* 序列化:使调⽤前序遍历,也就是先遍历根节点,然后再遍历左左节点,右节点,使⽤递归即可。如果为空,则⽤“ # ”代替,两者之间使⽤“ , ”分割。

* 反序列化:按照逗号“ , ”分割,使⽤index作为索引标识,每次 +1 ,同样使⽤递归,先是根节点,再到左节点,再到右节点。