package LeetCode_536 import java.util.* /** * 536. Construct Binary Tree from String * (Prime) * You need to construct a binary tree from a string consisting of parenthesis and integers. The whole input represents a binary tree. It contains an integer followed by zero, one or two pairs of parenthesis. The integer represents the root's value and a pair of parenthesis contains a child binary tree with the same structure. You always start to construct the left child node of the parent first if it exists. Example: Input: "4(2(3)(1))(6(5))" Output: return the tree root node representing the following tree: 4 / 2 6 / / 3 1 5 Note: There will only be '(', ')', '-' and '0' ~ '9' in the input string. An empty tree is represented by "" instead of "()". * */ class TreeNode(var value: Int){ var left: TreeNode? = null var right: TreeNode? = null } class Solution { /* * solution: Stack with pre-order (root->left->right) traversal,the top of stack should be current root * Time complexity:O(n), Space complexity:O(n) * */ fun str2Tree(s: String): TreeNode?{ if (s==null || s.isEmpty()){ return null } val stack = Stack<TreeNode>() for (i in s.indices){ val c = s[i] if (c in '0'..'9' || c=='-'){ var start = i //keep to find out the whole digit number while (i+1<s.length && (s[i+1] in '0'..'9')){ start++ } //create current node by get the number above val curValue = s.substring(start,i+1).toInt() val curNode = TreeNode(curValue) if (stack.isNotEmpty()){ //curNode is the child node of top node val top = stack.peek() if (top.left == null){ top.left = curNode } else { top.right = curNode } } stack.push(curNode) } else if (c==')') { //mean current side had handle finish stack.pop() } } //print the result traversal(stack.peek()) return stack.peek() } //print by pre-order private fun traversal(root: TreeNode?) { if (root == null) return print(root.value) print(",") traversal(root.left) traversal(root.right) } }