标签:list add exp lint review pre http ons compare
Given a collection of intervals, merge all overlapping intervals.
Given intervals => merged intervals:
[ [
(1, 3), (1, 6),
(2, 6), => (8, 10),
(8, 10), (15, 18)
(15, 18) ]
]
O(n log n) time and O(1) extra space.
题意:给定一个集合,里面有若干无序区间,要求将有重叠部分的区间合并。这个题目的示例给的不是很好,这个示例给人的感觉好像这些区间是有序的。有序和无序,用同样的方法做,结果可能不一样,比如我一开始理解成有序,报错如下:
Input
[(2,3),(4,5),(6,7),(8,9),(1,10)]
Output
[(2,3),(4,5),(6,7),(1,10)]
Expected
[(1,10)]
Hint
Review your code and make sure your algorithm is correct. Wrong answer usually caused by typos if your algorithm is correct.
Input test data (one parameter per line.)
虽然它本来无序,但我们也可以人为地将它根据first值的大小进行排序,可以使用Collections类中的sort方法(查一下API)对List进行排序。排完之后,就可以对集合内的区间进行合并了。合并的方法与此题类似:30. Insert Interval【LintCode by java】
申请一个新的集合,再用一个循环,将排好序的区间两两比较,如果无需合并,则将前者加入新的集合,后者继续与后面的区间比较合并。代码如下:
1 public class Solution {
2 /**
3 * @param intervals: interval list.
4 * @return: A new interval list.
5 */
6 //判断两区间是否相交
7 public List<Interval> merge(List<Interval> intervals) {
8 // write your code here
9 if(intervals.size()==0||intervals.size()==1)
10 return intervals;
11 List<Interval>res=new ArrayList<Interval>();
12 Collections.sort(intervals,new IntervalCompare());
13 Interval last=intervals.get(0);
14 for(int i=1;i<intervals.size();i++){
15 Interval cur=intervals.get(i);
16 if(last.end<cur.start){
17 res.add(last);
18 last=cur;
19 }else{
20 last.start=Math.min(last.start,cur.start);
21 last.end=Math.max(last.end,cur.end);
22 }
23 }
24 res.add(last);
25 return res;
26 }
27 private class IntervalCompare implements Comparator<Interval>{
28 public int compare(Interval a,Interval b){
29 return a.start-b.start;
30 }
31 }
32 }
如有错误,欢迎批评指正~
156. Merge Intervals【LintCode by java】
标签:list add exp lint review pre http ons compare
原文地址:https://www.cnblogs.com/phdeblog/p/9111599.html
