原题链接在这里:https://leetcode.com/problems/path-sum-iv/
题目:
If the depth of a tree is smaller than 5, then this tree can be represented by a list of three-digits integers.
For each integer in this list:
- The hundreds digit represents the depth
Dof this node,1 <= D <= 4. - The tens digit represents the position
Pof this node in the level it belongs to,1 <= P <= 8. The position is the same as that in a full binary tree. - The units digit represents the value
Vof this node,0 <= V <= 9.
Given a list of ascending three-digits integers representing a binary with the depth smaller than 5. You need to return the sum of all paths from the root towards the leaves.
Example 1:
Input: [113, 215, 221]
Output: 12
Explanation:
The tree that the list represents is:
3
/
5 1
The path sum is (3 + 5) + (3 + 1) = 12.
Example 2:
Input: [113, 221]
Output: 4
Explanation:
The tree that the list represents is:
3
1
The path sum is (3 + 1) = 4.
题解:
每个数字的前两位就决定了node所在的level 和 position.
那么这个node的left child 所在位置是 level + 1, 2*position-1. right child 所在位置是 level + 1, 2*position.
把所有node的位置都存起来, 当走到一个node, 它的left 和 right child 都没有记录的时候就说明走到了叶子节点, 此时记录的path sum可以累积到结果中.
Time Complexity: O(n). n是tree 的node数目.
Space: O(n).
AC Java:
1 class Solution { 2 int sum = 0; 3 4 public int pathSum(int[] nums) { 5 if(nums == null || nums.length == 0){ 6 return sum; 7 } 8 9 HashMap<Integer, Integer> hm = new HashMap<>(); 10 for(int num : nums){ 11 hm.put(num / 10, num % 10); 12 } 13 14 dfs(nums[0] / 10, hm, 0); 15 return sum; 16 } 17 18 private void dfs(int rootKey, Map<Integer, Integer> hm, int cur){ 19 if(!hm.containsKey(rootKey)){ 20 return; 21 } 22 23 cur += hm.get(rootKey); 24 25 int level = rootKey / 10; 26 int pos = rootKey % 10; 27 int leftKey = (level + 1) * 10 + 2 * pos - 1; 28 int rightKey = leftKey + 1; 29 30 if(!hm.containsKey(leftKey) && !hm.containsKey(rightKey)){ 31 sum += cur; 32 return; 33 } 34 35 dfs(leftKey, hm, cur); 36 dfs(rightKey, hm, cur); 37 } 38 }
类似Path Sum III.