LeetCode 435. Non-overlapping Intervals
Given a collection of intervals, find the minimum number of intervals you need to remove to make the rest of the intervals non-overlapping.
Note:
- You may assume the interval's end point is always bigger than its start point.
- Intervals like [1,2] and [2,3] have borders "touching" but they don't overlap each other.
Example 1:
Input: [ [1,2], [2,3], [3,4], [1,3] ] Output: 1 Explanation: [1,3] can be removed and the rest of intervals are non-overlapping.
Example 2:
Input: [ [1,2], [1,2], [1,2] ] Output: 2 Explanation: You need to remove two [1,2] to make the rest of intervals non-overlapping.
Example 3:
Input: [ [1,2], [2,3] ] Output: 0 Explanation: You don't need to remove any of the intervals since they're already non-overlapping.
Java 版本 参考自 点击打开链接
public class Solution {
public int eraseOverlapIntervals(Interval[] intervals) {
if(intervals==null || intervals.length==0){
return 0;
}
Arrays.sort(intervals, new Comparator<Interval>() {
public int compare(Interval o1, Interval o2) {
return o1.end - o2.end;
}
});
int sumcount = intervals.length;
int count =0;
int last=intervals[0].start;
for(int i=0;i<sumcount;i++){
if( intervals[i].end>intervals[i].start && intervals[i].start>=last){
count++;
last = intervals[i].end;
}
}
return sumcount-count;
}
}
C++版本 参考自 点击打开链接
class Solution {
public:
int eraseOverlapIntervals(vector<Interval>& intervals) {
if ( intervals.size() == 0) {
return 0;
}
sort(intervals.begin(), intervals.end(), [](Interval& a, Interval& b){return a.end <= b.end;});
int length = intervals.size();
int count = 0;
int last = intervals[0].start;
for (int i = 0; i < length; i++) {
if (intervals[i].end > intervals[i].start && intervals[i].start >=last) {
count ++;
last = intervals[i].end;
}
}
return length - count;
}
};