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剑指Offer_编程题_对称的二叉树

作者:互联网

题目描述

请实现一个函数,用来判断一颗二叉树是不是对称的。注意,如果一个二叉树同此二叉树的镜像是同样的,定义其为对称的。    

 

 链接:https://www.nowcoder.com/questionTerminal/ff05d44dfdb04e1d83bdbdab320efbcb?f=discussion
来源:牛客网

//===================递归算法=============================// 1.只要pRoot.left和pRoot.right是否对称即可 2.左右节点的值相等对称子树left.left, right.right ;left.rigth,right.left也对称   
链接:https://www.nowcoder.com/questionTerminal/ff05d44dfdb04e1d83bdbdab320efbcb?f=discussion
来源:牛客网

 boolean isSymmetrical(TreeNode pRoot)
    {
        if(pRoot == null) return true;
        return isSymmetrical(pRoot.left, pRoot.right);
    }
    private boolean isSymmetrical(TreeNode left, TreeNode right) {
        if(left == null && right == null) return true;
        if(left == null || right == null) return false;
        return left.val == right.val //为镜像的条件:左右节点值相等
                && isSymmetrical(left.left, right.right) 
            //2.对称的子树也是镜像
                && isSymmetrical(left.right, right.left);
    }

 

链接:https://www.nowcoder.com/questionTerminal/ff05d44dfdb04e1d83bdbdab320efbcb?f=discussion
来源:牛客网

//===================非递归算法,利用DFS和BFS=============================//
/*
* DFS使用stack来保存成对的节点

* 1.出栈的时候也是成对成对的 , 1.若都为空,继续; 2.一个为空,返回false; 3.不为空,比较当前值,值不等,返回false;

* 2.确定入栈顺序,每次入栈都是成对成对的,如left.left, right.right ;left.rigth,right.left
*/

 

链接:https://www.nowcoder.com/questionTerminal/ff05d44dfdb04e1d83bdbdab320efbcb?f=discussion
来源:牛客网

boolean isSymmetricalDFS(TreeNode pRoot)
    {
        if(pRoot == null) return true;
        Stack<TreeNode> s = new Stack<>();
        s.push(pRoot.left);
        s.push(pRoot.right);
        while(!s.empty()) {
            TreeNode right = s.pop();//成对取出
            TreeNode left = s.pop();
            if(left == null && right == null) continue;
            if(left == null || right == null) return false;
            if(left.val != right.val) return false;
            //成对插入
            s.push(left.left);
            s.push(right.right);
            s.push(left.right);
            s.push(right.left);
        }
        return true;
    }

 

链接:https://www.nowcoder.com/questionTerminal/ff05d44dfdb04e1d83bdbdab320efbcb?f=discussion
来源:牛客网

/*
* BFS使用Queue来保存成对的节点,代码和上面极其相似

* 1.出队的时候也是成对成对的 1.若都为空,继续; 2.一个为空,返回false; 3.不为空,比较当前值,值不等,返回false;

* 2.确定入队顺序,每次入队都是成对成对的,如left.left, right.right ;left.rigth,right.left
*/

 

链接:https://www.nowcoder.com/questionTerminal/ff05d44dfdb04e1d83bdbdab320efbcb?f=discussion
来源:牛客网

boolean isSymmetricalBFS(TreeNode pRoot)
    {
        if(pRoot == null) return true;
        Queue<TreeNode> s = new LinkedList<>();
        s.offer(pRoot.left);
        s.offer(pRoot.right);
        while(!s.isEmpty()) {
            TreeNode left= s.poll();//成对取出
            TreeNode right= s.poll();
            if(left == null && right == null) continue;
            if(left == null || right == null) return false;
            if(left.val != right.val) return false;
            //成对插入
            s.offer(left.left);
            s.offer(right.right);
            s.offer(left.right);
            s.offer(right.left);
        }
        return true;
    }

解题相关答案:

https://www.nowcoder.com/questionTerminal/ff05d44dfdb04e1d83bdbdab320efbcb?f=discussion

标签:right,return,Offer,编程,pRoot,二叉树,TreeNode,null,left
来源: https://www.cnblogs.com/liran123/p/12937569.html