Given preorder and inorder traversal of a tree, construct the binary tree.
Note:
You may assume that duplicates do not exist in the tree.
根据二叉树的前序遍历和中序遍历形成的数组,还原出二叉树 ,二叉树中没有重复的元素
思路:前序遍历数组有特点:数组的每个数都是接下来几个数的根节点,和后边几个数构成子树,只要知道每棵子树节点的个数,就可以知道每棵树的根节点
中序遍历数组有特点:根节点总是在中间,两边分别是左子树和右子树,只要知道根节点,就能回到左子树和右子树的区间个节点个数
根据这两个特点,可以递归构建所有子树,最后返回的就是整个树
public TreeNode buildTree(int[] preorder, int[] inorder) { return build(preorder,0,preorder.length-1,inorder,0,inorder.length-1); } public TreeNode build(int[] preorder,int preSta,int preEnd,int[] inorder,int inSta,int inEnd) { //到叶节点返回 if (preSta > preEnd || inSta > inEnd) { return null; } else { //获取此次的根节点下标 int index = 0; for (int i = inSta; i <= inEnd; i++) { if (inorder[i] == preorder[preSta]) { index = i; break; } } //左子树和右子树的长度 int len1 = index - inSta-1; int len2 = inEnd - index-1; //当前树 TreeNode cur = new TreeNode(preorder[preSta]); //当前树的左右子树又递归求得 cur.left = build(preorder,preSta+1,preSta+1+len1,inorder,inSta,index-1); cur.right = build(preorder,preEnd-len2,preEnd,inorder,index+1,inEnd); return cur; } }