|
| 1 | +{ |
| 2 | + "cells": [ |
| 3 | + { |
| 4 | + "cell_type": "markdown", |
| 5 | + "metadata": {}, |
| 6 | + "source": [ |
| 7 | + "# LeetCode0105从前序与中序遍历序列构造二叉树 Construct Binary Tree from Preorder and Inorder Traversal\n", |
| 8 | + "\n", |
| 9 | + "[重建二叉树LeetCode](https://leetcode.com/problems/construct-binary-tree-from-preorder-and-inorder-traversal/)\n", |
| 10 | + "\n", |
| 11 | + ">题目描述:\n", |
| 12 | + "根据一棵树的前序遍历与中序遍历构造二叉树。\n", |
| 13 | + "注意:\n", |
| 14 | + "你可以假设树中没有重复的元素。\n", |
| 15 | + "例如,给出\n", |
| 16 | + "\n", |
| 17 | + "```\n", |
| 18 | + "preorder = [3,9,20,15,7]\n", |
| 19 | + "inorder = [9,3,15,20,7]\n", |
| 20 | + "\n", |
| 21 | + "返回二叉树:\n", |
| 22 | + " 3\n", |
| 23 | + " / \\\n", |
| 24 | + " 9 20\n", |
| 25 | + " / \\\n", |
| 26 | + " 15 7\n", |
| 27 | + " \n", |
| 28 | + "preorder = [1,2,4,7,3,5,6,8]\n", |
| 29 | + "inorder = [4,7,2,1,5,3,8,6]\n", |
| 30 | + "\n", |
| 31 | + "返回二叉树:\n", |
| 32 | + " 1\n", |
| 33 | + " / \\\n", |
| 34 | + " 2 3\n", |
| 35 | + " / / \\\n", |
| 36 | + " 4 5 6\n", |
| 37 | + " \\ /\n", |
| 38 | + " 7 8\n", |
| 39 | + "```\n", |
| 40 | + "\n", |
| 41 | + ">思路:\n", |
| 42 | + ">\n", |
| 43 | + ">前序的第一个元素是根结点的值,在中序中找到该值,中序中该值的左边的元素是根结点的左子树,右边是右子树,然后递归的处理左边和右边\n", |
| 44 | + ">提示:二叉树结点,以及对二叉树的各种操作\n", |
| 45 | + "\n", |
| 46 | + "首先要知道一个结论,前序/后序+中序序列可以唯一确定一棵二叉树,所以自然而然可以用来建树。\n", |
| 47 | + "\n", |
| 48 | + "有如下特征:\n", |
| 49 | + "1. 前序中左起第一位`1`肯定是根结点,我们可以据此找到中序中根结点的位置`rootin`;\n", |
| 50 | + "2. 中序中根结点左边就是左子树结点,右边就是右子树结点,即`[左子树结点,根结点,右子树结点]`,我们就可以得出左子树结点个数为`int left = rootin - leftin;`;\n", |
| 51 | + "3. 前序中结点分布应该是:`[根结点,左子树结点,右子树结点]`;\n", |
| 52 | + "4. 根据前一步确定的左子树个数,可以确定前序中左子树结点和右子树结点的范围;\n", |
| 53 | + "5. 如果我们要前序遍历生成二叉树的话,下一层递归应该是:\n", |
| 54 | + " - 左子树:`root->left = pre_order(前序左子树范围,中序左子树范围,前序序列,中序序列);`;\n", |
| 55 | + " - 右子树:`root->right = pre_order(前序右子树范围,中序右子树范围,前序序列,中序序列);`。\n", |
| 56 | + "6. 每一层递归都要返回当前根结点`root`;\n" |
| 57 | + ] |
| 58 | + }, |
| 59 | + { |
| 60 | + "cell_type": "code", |
| 61 | + "execution_count": 1, |
| 62 | + "metadata": {}, |
| 63 | + "outputs": [ |
| 64 | + { |
| 65 | + "name": "stdout", |
| 66 | + "output_type": "stream", |
| 67 | + "text": [ |
| 68 | + "前序:\n", |
| 69 | + "[1, 2, 4, 7, 3, 5, 6, 8]\n", |
| 70 | + "中序:\n", |
| 71 | + "[4, 7, 2, 1, 5, 3, 8, 6]\n", |
| 72 | + "后序:\n", |
| 73 | + "[7, 4, 2, 5, 8, 6, 3, 1]\n" |
| 74 | + ] |
| 75 | + } |
| 76 | + ], |
| 77 | + "source": [ |
| 78 | + "# Definition for a binary tree node.\n", |
| 79 | + "class TreeNode:\n", |
| 80 | + " def __init__(self, x):\n", |
| 81 | + " self.val = x\n", |
| 82 | + " self.left = None\n", |
| 83 | + " self.right = None\n", |
| 84 | + "\n", |
| 85 | + "class Solution:\n", |
| 86 | + " def buildTree(self, preorder, inorder):\n", |
| 87 | + " \"\"\"\n", |
| 88 | + " :type preorder: List[int]\n", |
| 89 | + " :type inorder: List[int]\n", |
| 90 | + " :rtype: TreeNode\n", |
| 91 | + " \"\"\"\n", |
| 92 | + " if not preorder or not inorder:\n", |
| 93 | + " return None\n", |
| 94 | + " x = preorder.pop(0)\n", |
| 95 | + " node = TreeNode(x)\n", |
| 96 | + " idx = inorder.index(x)\n", |
| 97 | + " \n", |
| 98 | + " node.left = self.buildTree(preorder[:idx],inorder[:idx])\n", |
| 99 | + " node.right = self.buildTree(preorder[idx:],inorder[idx+1:])\n", |
| 100 | + " #返回二叉树根节点\n", |
| 101 | + " return node\n", |
| 102 | + "\n", |
| 103 | + "#下面是打印前序、中序和后序\n", |
| 104 | + "def Preorder(root):\n", |
| 105 | + " res = []\n", |
| 106 | + " if root: #节点为None时,跳过\n", |
| 107 | + " res.append(root.val)\n", |
| 108 | + " res = res + Preorder(root.left)\n", |
| 109 | + " res = res + Preorder(root.right)\n", |
| 110 | + " return res\n", |
| 111 | + "\n", |
| 112 | + "def Inorder(root):\n", |
| 113 | + " res = []\n", |
| 114 | + " if root: #节点为None时,跳过\n", |
| 115 | + " res = res + Inorder(root.left)\n", |
| 116 | + " res.append(root.val)\n", |
| 117 | + " res = res + Inorder(root.right)\n", |
| 118 | + " return res\n", |
| 119 | + "\n", |
| 120 | + "def Postorder(root):\n", |
| 121 | + " res = []\n", |
| 122 | + " if root: #节点为None时,跳过\n", |
| 123 | + " res += Postorder(root.left)\n", |
| 124 | + " res += Postorder(root.right)\n", |
| 125 | + " res.append(root.val)\n", |
| 126 | + " return res\n", |
| 127 | + " \n", |
| 128 | + "# 测试:\n", |
| 129 | + "solu = Solution()\n", |
| 130 | + "# preorder = [3,9,20,15,7]\n", |
| 131 | + "# inorder = [9,3,15,20,7]\n", |
| 132 | + "\n", |
| 133 | + "preorder = [1,2,4,7,3,5,6,8]\n", |
| 134 | + "inorder = [4,7,2,1,5,3,8,6]\n", |
| 135 | + "\n", |
| 136 | + "node = solu.buildTree(preorder, inorder)\n", |
| 137 | + "print(\"前序:\")\n", |
| 138 | + "print(Preorder(node))\n", |
| 139 | + "print(\"中序:\")\n", |
| 140 | + "print(Inorder(node))\n", |
| 141 | + "print(\"后序:\")\n", |
| 142 | + "print(Postorder(node))" |
| 143 | + ] |
| 144 | + } |
| 145 | + ], |
| 146 | + "metadata": { |
| 147 | + "kernelspec": { |
| 148 | + "display_name": "Python 3", |
| 149 | + "language": "python", |
| 150 | + "name": "python3" |
| 151 | + }, |
| 152 | + "language_info": { |
| 153 | + "codemirror_mode": { |
| 154 | + "name": "ipython", |
| 155 | + "version": 3 |
| 156 | + }, |
| 157 | + "file_extension": ".py", |
| 158 | + "mimetype": "text/x-python", |
| 159 | + "name": "python", |
| 160 | + "nbconvert_exporter": "python", |
| 161 | + "pygments_lexer": "ipython3", |
| 162 | + "version": "3.7.3" |
| 163 | + } |
| 164 | + }, |
| 165 | + "nbformat": 4, |
| 166 | + "nbformat_minor": 2 |
| 167 | +} |
0 commit comments