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中等

面试题 26. 树的子结构

题目描述

输入两棵二叉树A和B,判断B是不是A的子结构。(约定空树不是任意一个树的子结构)

B是A的子结构, 即 A中有出现和B相同的结构和节点值。

例如:
给定的树 A:

     3
    / \
   4   5
  / \
 1   2
给定的树 B:

   4 
  /
 1
返回 true,因为 B 与 A 的一个子树拥有相同的结构和节点值。

示例 1:

输入:A = [1,2,3], B = [3,1]
输出:false

示例 2:

输入:A = [3,4,5,1,2], B = [4,1]
输出:true

限制:

0 <= 节点个数 <= 10000

解法

方法一:递归

我们设计一个函数 $\text{dfs}(A, B)$,用于判断树 A 中以节点 A 为根节点的子树是否包含树 B。

函数 $\text{dfs}(A, B)$ 的执行步骤如下:

  1. 如果树 B 为空,则树 B 是树 A 的子结构,返回 true
  2. 如果树 A 为空,或者树 A 的根节点的值不等于树 B 的根节点的值,则树 B 不是树 A 的子结构,返回 false
  3. 判断树 A 的左子树是否包含树 B,即调用 $\text{dfs}(A.left, B)$,并且判断树 A 的右子树是否包含树 B,即调用 $\text{dfs}(A.right, B)$。如果其中有一个函数返回 false,则树 B 不是树 A 的子结构,返回 false;否则,返回 true

在函数 isSubStructure 中,我们首先判断树 A 和树 B 是否为空,如果其中有一个为空,则树 B 不是树 A 的子结构,返回 false。然后,我们调用 $\text{dfs}(A, B)$,判断树 A 是否包含树 B。如果是,则返回 true;否则,递归判断树 A 的左子树是否包含树 B,以及树 A 的右子树是否包含树 B。如果其中有一个返回 true,则树 B 是树 A 的子结构,返回 true;否则,返回 false

时间复杂度 $O(n \times m)$,空间复杂度 $O(n)$。其中 $n$$m$ 分别是树 A 和树 B 的节点个数。

Python3

# Definition for a binary tree node.
# class TreeNode:
#     def __init__(self, x):
#         self.val = x
#         self.left = None
#         self.right = None


class Solution:
    def isSubStructure(self, A: TreeNode, B: TreeNode) -> bool:
        def dfs(A, B):
            if B is None:
                return True
            if A is None or A.val != B.val:
                return False
            return dfs(A.left, B.left) and dfs(A.right, B.right)

        if A is None or B is None:
            return False
        if dfs(A, B):
            return True
        return self.isSubStructure(A.left, B) or self.isSubStructure(A.right, B)

Java

/**
 * Definition for a binary tree node.
 * public class TreeNode {
 *     int val;
 *     TreeNode left;
 *     TreeNode right;
 *     TreeNode(int x) { val = x; }
 * }
 */
class Solution {
    public boolean isSubStructure(TreeNode A, TreeNode B) {
        if (A == null || B == null) {
            return false;
        }
        return dfs(A, B) || isSubStructure(A.left, B) || isSubStructure(A.right, B);
    }

    private boolean dfs(TreeNode A, TreeNode B) {
        if (B == null) {
            return true;
        }
        if (A == null || A.val != B.val) {
            return false;
        }
        return dfs(A.left, B.left) && dfs(A.right, B.right);
    }
}

C++

/**
 * Definition for a binary tree node.
 * struct TreeNode {
 *     int val;
 *     TreeNode *left;
 *     TreeNode *right;
 *     TreeNode(int x) : val(x), left(NULL), right(NULL) {}
 * };
 */
class Solution {
public:
    bool isSubStructure(TreeNode* A, TreeNode* B) {
        if (!A || !B) {
            return false;
        }
        return dfs(A, B) || isSubStructure(A->left, B) || isSubStructure(A->right, B);
    }

    bool dfs(TreeNode* A, TreeNode* B) {
        if (!B) {
            return true;
        }
        if (!A || A->val != B->val) {
            return false;
        }
        return dfs(A->left, B->left) && dfs(A->right, B->right);
    }
};

Go

/**
 * Definition for a binary tree node.
 * type TreeNode struct {
 *     Val int
 *     Left *TreeNode
 *     Right *TreeNode
 * }
 */
func isSubStructure(A *TreeNode, B *TreeNode) bool {
	var dfs func(A, B *TreeNode) bool
	dfs = func(A, B *TreeNode) bool {
		if B == nil {
			return true
		}
		if A == nil || A.Val != B.Val {
			return false
		}
		return dfs(A.Left, B.Left) && dfs(A.Right, B.Right)
	}
	if A == nil || B == nil {
		return false
	}
	return dfs(A, B) || isSubStructure(A.Left, B) || isSubStructure(A.Right, B)
}

TypeScript

/**
 * Definition for a binary tree node.
 * class TreeNode {
 *     val: number
 *     left: TreeNode | null
 *     right: TreeNode | null
 *     constructor(val?: number, left?: TreeNode | null, right?: TreeNode | null) {
 *         this.val = (val===undefined ? 0 : val)
 *         this.left = (left===undefined ? null : left)
 *         this.right = (right===undefined ? null : right)
 *     }
 * }
 */

function isSubStructure(A: TreeNode | null, B: TreeNode | null): boolean {
    if (!A || !B) {
        return false;
    }
    const dfs = (A: TreeNode | null, B: TreeNode | null): boolean => {
        if (!B) {
            return true;
        }
        if (!A || A.val !== B.val) {
            return false;
        }
        return dfs(A.left, B.left) && dfs(A.right, B.right);
    };
    return dfs(A, B) || isSubStructure(A.left, B) || isSubStructure(A.right, B);
}

Rust

// Definition for a binary tree node.
// #[derive(Debug, PartialEq, Eq)]
// pub struct TreeNode {
//   pub val: i32,
//   pub left: Option<Rc<RefCell<TreeNode>>>,
//   pub right: Option<Rc<RefCell<TreeNode>>>,
// }
//
// impl TreeNode {
//   #[inline]
//   pub fn new(val: i32) -> Self {
//     TreeNode {
//       val,
//       left: None,
//       right: None
//     }
//   }
// }
use std::rc::Rc;
use std::cell::RefCell;
impl Solution {
    pub fn is_sub_structure(
        a: Option<Rc<RefCell<TreeNode>>>,
        b: Option<Rc<RefCell<TreeNode>>>
    ) -> bool {
        Self::is_sub_structure_help(&a, &b)
    }

    fn is_sub_structure_help(
        a: &Option<Rc<RefCell<TreeNode>>>,
        b: &Option<Rc<RefCell<TreeNode>>>
    ) -> bool {
        if a.is_none() || b.is_none() {
            return false;
        }

        Self::dfs(a, b) ||
            Self::is_sub_structure_help(&a.as_ref().unwrap().borrow().left, b) ||
            Self::is_sub_structure_help(&a.as_ref().unwrap().borrow().right, b)
    }

    fn dfs(a: &Option<Rc<RefCell<TreeNode>>>, b: &Option<Rc<RefCell<TreeNode>>>) -> bool {
        if b.is_none() {
            return true;
        }
        if a.is_none() {
            return false;
        }
        let a = a.as_ref().unwrap().borrow();
        let b = b.as_ref().unwrap().borrow();
        a.val == b.val && Self::dfs(&a.left, &b.left) && Self::dfs(&a.right, &b.right)
    }
}

JavaScript

/**
 * Definition for a binary tree node.
 * function TreeNode(val) {
 *     this.val = val;
 *     this.left = this.right = null;
 * }
 */
/**
 * @param {TreeNode} A
 * @param {TreeNode} B
 * @return {boolean}
 */
var isSubStructure = function (A, B) {
    if (!A || !B) {
        return false;
    }
    const dfs = (A, B) => {
        if (!B) {
            return true;
        }
        if (!A || A.val !== B.val) {
            return false;
        }
        return dfs(A.left, B.left) && dfs(A.right, B.right);
    };
    return dfs(A, B) || isSubStructure(A.left, B) || isSubStructure(A.right, B);
};

C#

/**
 * Definition for a binary tree node.
 * public class TreeNode {
 *     public int val;
 *     public TreeNode left;
 *     public TreeNode right;
 *     public TreeNode(int x) { val = x; }
 * }
 */
public class Solution {
    public bool IsSubStructure(TreeNode A, TreeNode B) {
        if (A == null || B == null) {
            return false;
        }
        return dfs(A, B) || IsSubStructure(A.left, B) || IsSubStructure(A.right, B);
    }

    public bool dfs(TreeNode A, TreeNode B) {
        if (B == null) {
            return true;
        }
        if (A == null || A.val != B.val) {
            return false;
        }
        return dfs(A.left, B.left) && dfs(A.right, B.right);
    }
}

Swift

/* public class TreeNode {
*     var val: Int
*     var left: TreeNode?
*     var right: TreeNode?
*     init(_ val: Int) {
*         self.val = val
*         self.left = nil
*         self.right = nil
*     }
* }
*/

class Solution {
    func isSubStructure(_ A: TreeNode?, _ B: TreeNode?) -> Bool {
        guard let A = A, let B = B else {
            return false
        }
        return dfs(A, B) || isSubStructure(A.left, B) || isSubStructure(A.right, B)
    }

    private func dfs(_ A: TreeNode?, _ B: TreeNode?) -> Bool {
        if B == nil {
            return true
        }
        guard let A = A else {
            return false
        }
        if A.val != B!.val {
            return false
        }
        return dfs(A.left, B?.left) && dfs(A.right, B?.right)
    }
}