原题链接:https://leetcode.com/problems/symmetric-tree/
本题有递归和遍历两种做法,对于遍历,其实是广度优先遍历。以下分别给出了c++和python版本的实现。其实思路一旦清楚了,代码并不复杂。
class Solution {
public:
bool isSymmetric(TreeNode* root) {
if (root == NULL)
return true;
return helper( root->left, root->right );
}
bool helper(TreeNode* l, TreeNode* r) {
if (l == NULL && r == NULL)
return true;
if (l == NULL && r != NULL)
return false;
if (l != NULL && r == NULL)
return false;
if (l->val != r->val)
return false;
return helper(l->right, r->left) && helper(l->left, r->right);
}
};
class Solution:
def isSymmetric(self, root):
if root == None:
return True
return self.helper(root.left, root.right)
def helper(self, left, right):
if left == None and right == None:
return True
if left == None and right != None:
return False
if left != None and right == None:
return False
if left.val != right.val:
return False
return self.helper(left.right, right.left) and self.helper(left.left, right.right)class Solution:
def isSymmetric(self, root):
if root == None:
return True
leftList = root.left;
rightList = root.right;
while len(leftList)!=0 and len(rightList)!=0:
leftListTemp = []
rightListTemp = []
leftVals = []
rightVals = []
for item in leftList:
if item != None:
leftVals.append(item.val)
leftListTemp.append(item.left)
leftListTemp.append(item.right)
else:
leftVals.append(None)
leftListTemp.append(None)
leftListTemp.append(None)
for item in rightList:
if item != None:
rightVals.append(item.val)
rightListTemp.append(item.right)
rightListTemp.append(item.left)
else:
rightVals.append(None)
rightListTemp.append(None)
rightListTemp.append(None)
if leftVals != rightVals:
return False
if rightListTemp == leftListTemp:
return True
leftList = leftListTemp
rightList = rightListTemp
if len(leftList)==0 and len(rightList)==0:
return True
return False