Lintcode: Segment Tree Build

瘦欲@ 提交于 2020-03-21 07:40:00
The structure of Segment Tree is a binary tree which each node has two attributes start and end denote an segment / interval.

start and end are both integers, they should be assigned in following rules:

The root's start and end is given by build method.
The left child of node A has start=A.left, end=(A.left + A.right) / 2.
The right child of node A has start=(A.left + A.right) / 2 + 1, end=A.right.
if start equals to end, there will be no children for this node.
Implement a build method with two parameters start and end, so that we can create a corresponding segment tree with every node has the correct start and end value, return the root of this segment tree.

Have you met this question in a real interview? Yes
Example
Given start=0, end=3. The segment tree will be:

               [0,  3]
             /        \
      [0,  1]           [2, 3]
      /     \           /     \
   [0, 0]  [1, 1]     [2, 2]  [3, 3]
Given start=1, end=6. The segment tree will be:

               [1,  6]
             /        \
      [1,  3]           [4,  6]
      /     \           /     \
   [1, 2]  [3,3]     [4, 5]   [6,6]
   /    \           /     \
[1,1]   [2,2]     [4,4]   [5,5]
Clarification
Segment Tree (a.k.a Interval Tree) is an advanced data structure which can support queries like:

which of these intervals contain a given point
which of these points are in a given interval
See wiki:
Segment Tree
Interval Tree

 

 1 /**
 2  * Definition of SegmentTreeNode:
 3  * public class SegmentTreeNode {
 4  *     public int start, end;
 5  *     public SegmentTreeNode left, right;
 6  *     public SegmentTreeNode(int start, int end) {
 7  *         this.start = start, this.end = end;
 8  *         this.left = this.right = null;
 9  *     }
10  * }
11  */
12 public class Solution {
13     /**
14      *@param start, end: Denote an segment / interval
15      *@return: The root of Segment Tree
16      */
17     public SegmentTreeNode build(int start, int end) {
18         // write your code here
19         if (start > end) return null;
20         if (start == end) return new SegmentTreeNode(start, start);
21         SegmentTreeNode cur = new SegmentTreeNode(start, end);
22         cur.left = build(cur.start, (cur.start+cur.end)/2);
23         cur.right = build((cur.start+cur.end)/2+1, cur.end);
24         return cur;
25     }
26 }

 

标签
易学教程内所有资源均来自网络或用户发布的内容,如有违反法律规定的内容欢迎反馈
该文章没有解决你所遇到的问题?点击提问,说说你的问题,让更多的人一起探讨吧!