Merge Intervals
Given a collection of intervals, merge all overlapping intervals.
For example,
Given [1,3],[2,6],[8,10],[15,18]
,
return [1,6],[8,10],[15,18]
.
思路
先按照Interval.start进行升序排列,如果前一个front,后一个behind。如果behind.end < front.start不用管,behind.end >= front.end 删除front。behind.end > front.start && behind.end < front.end合并
1 /** 2 * Definition for an interval. 3 * public class Interval { 4 * int start; 5 * int end; 6 * Interval() { start = 0; end = 0; } 7 * Interval(int s, int e) { start = s; end = e; } 8 * } 9 */ 10 public class Solution { 11 public List<Interval> merge(List<Interval> intervals) { 12 Collections.sort(intervals, new Compare()); 13 boolean isMerge = false; 14 while(true){ 15 isMerge = false; 16 for(int i = 0; i < intervals.size() - 1; i++){ 17 Interval behind = intervals.get(i); 18 Interval front = intervals.get(i + 1); 19 if(behind.end < front.start) //后面一个end小于前面的start 20 continue; 21 else if(behind.end >= front.end) //后面一个end大于等于前面的end 22 { 23 intervals.remove(i + 1); 24 isMerge = true; 25 } 26 else if(behind.end < front.end && behind.end >= front.start){ //后面的end在前面的start和end中间,合并 27 behind.end = front.end; 28 intervals.remove(i + 1); 29 isMerge = true; 30 }//else if 31 }//for 32 if(!isMerge) 33 break; 34 } 35 36 return intervals; 37 } 38 39 } 40 class Compare implements Comparator<Interval>{ 41 42 @Override 43 public int compare(Interval o1, Interval o2) { 44 if(o1.start < o2.start) 45 return -1; 46 else if(o1.start > o2.start) 47 return 1; 48 else 49 return 0; 50 } 51 }
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