Given an array of meeting time intervals consisting of start and end times
[[s1,e1],[s2,e2],...] (si < ei), determine if a person could attend all meetings.
For example,
Given
return
Given
[[0, 30],[5, 10],[15, 20]],return
false.[Thoughts]
把所有的interval按照开始时间来排序,然后比较相邻的interval是否有重叠即可。
[Code]
1: bool canAttendMeetings(vector<Interval>& intervals) {
2: if(intervals.size() == 0) return true;
3: sort(intervals.begin(), intervals.end(), compare);
4: for(int i = 0; i< intervals.size() -1; i++) {
5: if(intervals[i].end > intervals[i+1].start)
6: return false;
7: }
8: return true;
9: }
10:
11: static bool compare(Interval& interval1, Interval& interval2) {
12: return interval1.start < interval2.start;
13: }
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