94. Binary Tree Inorder Traversal
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Given a binary tree, return the inorder traversal of its nodes‘ values.
For example:
Given binary tree [1,null,2,3]
,
1 2 / 3
return [1,3,2]
.
Note: Recursive solution is trivial, could you do it iteratively?
Show Similar Problems
Recursive:
public IList<int> InorderTraversal(TreeNode root) { var res = new List<int>(); Recursive(root, res); return res; } public void Recursive(TreeNode root, IList<int> list) { if(root == null) return; if(root.left == null && root.right == null) { list.Add(root.val); return; } Recursive(root.left, list); list.Add(root.val); Recursive(root.right, list); }
Iteration:
此题的iteration的条件是最难把握的,因为如果每次stack push 左子树到底的时候,我们需要让loop的变量tree element指向该左元素的右子数。右子数可能为null, 此时就会跳出循环。解决方法是在循环条件里加上stack 不为空。只要不为空,则证明还有值需要iteration。
public IList<int> InorderTraversal(TreeNode root) { var res = new List<int>(); Stack<TreeNode> stack = new Stack<TreeNode>(); while(root != null || stack.Count() >0) { while(root != null) { stack.Push(root); root = root.left; } var a = stack.Pop(); res.Add(a.val); root = a.right;//cruz we have stack.Count() > 0 , no worry right is null } return res; }
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