11,树
题目描述:
输入两棵二叉树A,B,判断B是不是A的子结构。(ps:我们约定空树不是任意一个树的子结构)
解题思路:得到A,B树的前序遍历,若A包含B则,是子结构反之不是
public boolean HasSubtree(TreeNode root1,TreeNode root2) {
if(root1==null || root2==null)
return false;
StringBuilder sb = new StringBuilder();
StringBuilder sb2 = new StringBuilder();
String str1 = preOrder(root1,sb);
String str2 = preOrder(root2,sb2);
if(str1.contains(str2)){
return true;
}
return false;
}
public String preOrder(TreeNode root,StringBuilder sb){
if(root!=null)
sb.append(root.val+",");
if(root.left!=null){
preOrder(root.left,sb);
}
if(root.right!=null){
preOrder(root.right,sb);
}
return ","+sb.toString();
}
解题思路二:
/*思路:参考剑指offer1、首先设置标志位result = false,因为一旦匹配成功result就设为true,剩下的代码不会执行,如果匹配不成功,默认返回false2、递归思想,如果根节点相同则递归调用DoesTree1HaveTree2(),如果根节点不相同,则判断tree1的左子树和tree2是否相同,再判断右子树和tree2是否相同3、注意null的条件,HasSubTree中,如果两棵树都不为空才进行判断,DoesTree1HasTree2中,如果Tree2为空,则说明第二棵树遍历完了,即匹配成功,tree1为空有两种情况(1)如果tree1为空&&tree2不为空说明不匹配,(2)如果tree1为空,tree2为空,说明匹配。*/public class Solution { public boolean HasSubtree(TreeNode root1,TreeNode root2) { boolean result = false; if(root1 != null && root2 != null){ if(root1.val == root2.val){ result = DoesTree1HaveTree2(root1,root2); } if(!result){result = HasSubtree(root1.left, root2);} if(!result){result = HasSubtree(root1.right, root2);} } return result; } public boolean DoesTree1HaveTree2(TreeNode root1,TreeNode root2){ if(root1 == null && root2 != null) return false; if(root2 == null) return true; if(root1.val != root2.val) return false; return DoesTree1HaveTree2(root1.left, root2.left) && DoesTree1HaveTree2(root1.right, root2.right); }}题目描述:
操作给定的二叉树,将其变换为源二叉树的镜像。
解题思路:
树的左子树和右子树递归交换
public void Mirror(TreeNode root) { if(root!=null){ TreeNode temp=null; temp=root.left; root.left=root.right; root.right=temp; if(root.left!=null){ Mirror(root.left); } if(root.right!=null){ Mirror(root.right); } } }
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