leetcode 331. Verify Preorder Serialization of a Binary Tree

时间:2022-05-04 14:48:16

传送门

331. Verify Preorder Serialization of a Binary Tree

My Submissions

QuestionEditorial Solution
Total Accepted: 10790 Total Submissions: 34071 Difficulty: Medium

One way to serialize a binary tree is to use pre-order traversal. When we encounter a non-null node, we record the node's value. If it is a null node, we record using a sentinel value such as #.

     _9_
/ \
3 2
/ \ / \
4 1 # 6
/ \ / \ / \
# # # # # #

For example, the above binary tree can be serialized to the string "9,3,4,#,#,1,#,#,2,#,6,#,#", where # represents a null node.

Given a string of comma separated values, verify whether it is a correct preorder traversal serialization of a binary tree. Find an algorithm without reconstructing the tree.

Each comma separated value in the string must be either an integer or a character '#' representing null pointer.

You may assume that the input format is always valid, for example it could never contain two consecutive commas such as "1,,3".

Example 1:
"9,3,4,#,#,1,#,#,2,#,6,#,#"
Return true

Example 2:
"1,#"
Return false

Example 3:
"9,#,#,1"
Return false

 
题意:
判断给的字符串 是不是一个合法的 前序遍历
 
思路:
用栈,如果 一个节点的 左子树 和 右子树 都 true 的话,该节点 向上返回true
 
false的情况:
1. 某个节点已经 左子树 和 右子树 都遍历过了,后续又 涉及到该节点的儿子(如 1,#,#,#)
2. 根节点是 已经 访问结束,后续还有其它节点 (#,1  或 1,#,#,1)
 
150 / 150 test cases passed.
Status:

Accepted

Runtime: 8 ms
 
 
 class Solution {
public:
bool isValidSerialization(string preorder) {
int l = preorder.length();
if(preorder[] == '#'){
if(l == ) return true;
else return false;
}
int i = ;
stack<int> s;
s.push();
while(i<l && preorder[i] != ',') i++;
i++;
int te;
while(i < l)
{
if(preorder[i] == '#'){
if(s.empty() == ) return false;
while(!s.empty())
{
te = s.top();
if(te == ) return false;
s.pop();
s.push(te + );
te = s.top();
if(te == ){
break;
}
if(te == ){
s.pop();
}
}
if(s.empty() == && i < l - ) return false;
}
else{
s.push();
}
while(i < l && preorder[i] != ',') i++;
i++;
}
if(s.size() == ) return true;
return false;
}
};