Given two non-empty binary trees s and t, check whether tree t has exactly the same structure and node values with a subtree of s. A subtree of s is a tree consists of a node in s and all of this node's descendants. The tree s could also be considered as a subtree of itself.
Example 1:
Given tree s:
3
/ \
4 5
/ \
1 2
Given tree t:
4
/ \
1 2
Return true, because t has the same structure and node values with a subtree of s.
Example 2:
Given tree s:
3
/ \
4 5
/ \
1 2
/
0
Given tree t:
4
/ \
1 2
Return false.
Solution1:Tree 遍历
思路:
Time Complexity: O(N^2) Space Complexity: O(N) 递归缓存
Solution2:转(序列化) 先序 + 中序,根据
思路:转 先序 + 中序后,分别根据先序和中序是否contains判断,因为先序 + 中序可以唯一确定一个树。contains时如果使用的是KMP,就是O(N)
Time Complexity: O(N) Space Complexity: O(N)
Solution1 Code:
/**
* Definition for a binary tree node.
* public class TreeNode {
* int val;
* TreeNode left;
* TreeNode right;
* TreeNode(int x) { val = x; }
* }
*/
public class Solution {
public boolean isSubtree(TreeNode s, TreeNode t) {
if (s == null) return false;
if (isSame(s, t)) return true;
return isSubtree(s.left, t) || isSubtree(s.right, t);
}
private boolean isSame(TreeNode s, TreeNode t) {
if (s == null && t == null) return true;
if (s == null || t == null) return false;
if (s.val != t.val) return false;
return isSame(s.left, t.left) && isSame(s.right, t.right);
}
}
Solution2 Code:
public class Solution {
public boolean isSubtree(TreeNode s, TreeNode t) {
String spreorder = generatepreorderString(s);
String tpreorder = generatepreorderString(t);
return spreorder.contains(tpreorder) ;
}
public String generatepreorderString(TreeNode s){
StringBuilder sb = new StringBuilder();
Stack<TreeNode> stacktree = new Stack();
stacktree.push(s);
while(!stacktree.isEmpty()){
TreeNode popelem = stacktree.pop();
if(popelem==null)
sb.append(",#"); // Appending # inorder to handle same values but not subtree cases
else
sb.append(","+popelem.val);
if(popelem!=null){
stacktree.push(popelem.right);
stacktree.push(popelem.left);
}
}
return sb.toString();
}
}
