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  • 129. Sum Root to Leaf Numbers

    Given a binary tree containing digits from 0-9 only, each root-to-leaf path could represent a number.

    An example is the root-to-leaf path 1->2->3 which represents the number 123.

    Find the total sum of all root-to-leaf numbers.

    Note: A leaf is a node with no children.

    Example:

    Input: [1,2,3]
        1
       / 
      2   3
    Output: 25
    Explanation:
    The root-to-leaf path 1->2 represents the number 12.
    The root-to-leaf path 1->3 represents the number 13.
    Therefore, sum = 12 + 13 = 25.

    Example 2:

    Input: [4,9,0,5,1]
        4
       / 
      9   0
     / 
    5   1
    Output: 1026
    Explanation:
    The root-to-leaf path 4->9->5 represents the number 495.
    The root-to-leaf path 4->9->1 represents the number 491.
    The root-to-leaf path 4->0 represents the number 40.
    Therefore, sum = 495 + 491 + 40 = 1026.
    class Solution {
        public int sumNumbers(TreeNode root) {
            List<List<Integer>> res = new ArrayList();
            List<Integer> cur = new ArrayList();
            help(root, res, cur);
            int sum = 0;
            for(int i = 0; i < res.size(); i++){
                int curr = 0;
                for(int j = 0; j < res.get(i).size(); j++){
                    curr = curr * 10 + res.get(i).get(j);
                }
                sum += curr;
            }
            return sum;
        }
        public void help(TreeNode root, List<List<Integer>> res, List<Integer> cur){
            if(root == null) return;
            cur.add(root.val);
            if(root.left == null && root.right == null){
                res.add(new ArrayList(cur));
            }
            help(root.left, res, cur);
            help(root.right, res, cur);
            cur.remove(cur.size() - 1);
        }
    }

    是113. path sumII的弱化版,本质是把所有遍历序列存到一个list(DFS),然后加在一起。cur是当前序列,每个数用完要remove掉防止重复。

    public int sumNumbers(TreeNode root) {
        if (root == null) {
            return 0;
        }
        dfs(root, root.val);
        return sum;
    }
    
    int sum = 0;
    
    private void dfs(TreeNode root, int cursum) {
        //到达叶子节点
        if (root.left == null && root.right == null) {
            sum += cursum;
            return;
        }
        //尝试左子树
        if(root.left!=null){
            dfs(root.left,  cursum * 10 + root.left.val);
        }
        //尝试右子树
        if(root.right!=null){
            dfs(root.right, cursum * 10 + root.right.val);
    
        }
    
    }

    另一种DFS,效率好像更高

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  • 原文地址:https://www.cnblogs.com/wentiliangkaihua/p/11463090.html
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