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lintcode595- Binary Tree Longest Consecutive Sequence- easy

时间:2017-10-13 10:11:47      阅读:121      评论:0      收藏:0      [点我收藏+]

标签:除了   param   seq   reverse   node   path   ges   注意   else   

Given a binary tree, find the length of the longest consecutive sequence path.

The path refers to any sequence of nodes from some starting node to any node in the tree along the parent-child connections. The longest consecutive path need to be from parent to child (cannot be the reverse).

Example

For example,

   1
         3
    /    2   4
                 5

Longest consecutive sequence path is 3-4-5, so return 3.

   2
         3
    / 
   2    
  / 
 1

Longest consecutive sequence path is 2-3,not3-2-1, so return 2.

它这里的consecutive意思是数字一定要连续+1.

 

用分治法 + 全局变量监控。左边增加长度要求root.val + 1 == root.left.val 。同时要注意如果某个点发生了断层,要重新开始计数。

 

/**
 * Definition for a binary tree node.
 * public class TreeNode {
 *     int val;
 *     TreeNode left;
 *     TreeNode right;
 *     TreeNode(int x) { val = x; }
 * }
 */


public class Solution {
    /*
     * @param root: the root of binary tree
     * @return: the length of the longest consecutive sequence path
     */
     
    private int maxConsec = Integer.MIN_VALUE;
    
    public int longestConsecutive(TreeNode root) {
        // write your code here
        helper(root);
        return maxConsec;
    }
    
    private int helper(TreeNode root) {
        if (root == null) {
            return 0;
        }
        
        int left = helper(root.left);
        int right = helper(root.right);
        
        int crtLeft = Integer.MIN_VALUE;
        int crtRight = Integer.MIN_VALUE;

        if (root.left != null && root.val + 1 == root.left.val) {
            crtLeft = 1 + left;
        } 
        // 注意这里的处理。如果发生断层不连续了,这条路往上就不能用之前的继续计数了。
        else {
            crtLeft = 1;
        }
        
        if (root.right != null && root.val + 1 == root.right.val) {
            crtRight = 1 + right;
        } else {
            crtRight = 1;
        }
        
        int crtMax = Math.max(crtLeft, crtRight);
        if (crtMax > maxConsec) {
            maxConsec = crtMax;
        }
        return crtMax;
    }
}

 

九章算法的:

想到除了null别的点起码都是1,从而节省了代码空间。

// version 2: Another Traverse + Divide Conquer 
public class Solution {
    private int longest;
    
    /**
     * @param root the root of binary tree
     * @return the length of the longest consecutive sequence path
     */
    public int longestConsecutive(TreeNode root) {
        longest = 0;
        helper(root);
        return longest;
    }
    
    private int helper(TreeNode root) {
        if (root == null) {
            return 0;
        }
        
        int left = helper(root.left);
        int right = helper(root.right);
        
        int subtreeLongest = 1; // at least we have root
        if (root.left != null && root.val + 1 == root.left.val) {
            subtreeLongest = Math.max(subtreeLongest, left + 1);
        }
        if (root.right != null && root.val + 1 == root.right.val) {
            subtreeLongest = Math.max(subtreeLongest, right + 1);
        }
        
        if (subtreeLongest > longest) {
            longest = subtreeLongest;
        }
        return subtreeLongest;
    }
}

 

lintcode595- Binary Tree Longest Consecutive Sequence- easy

标签:除了   param   seq   reverse   node   path   ges   注意   else   

原文地址:http://www.cnblogs.com/jasminemzy/p/7659178.html

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