题目:
Given a set of non-overlapping intervals, insert a new interval into the intervals (merge if necessary).
You may assume that the intervals were initially sorted according to their start times.
Example 1:
Given intervals [1,3],[6,9], insert and merge [2,5] in as [1,5],[6,9].
Example 2:
Given [1,2],[3,5],[6,7],[8,10],[12,16], insert and merge [4,9] in as [1,2],[3,10],[12,16].
This is because the new interval [4,9] overlaps with [3,5],[6,7],[8,10].
思路:
主要工作有两点:第一找到插入位置;第二确定是替换还是新增。
代码:
/**
* Definition for an interval.
* struct Interval {
* int start;
* int end;
* Interval() : start(0), end(0) {}
* Interval(int s, int e) : start(s), end(e) {}
* };
*/
class Solution {
public:
vector<Interval> insert(vector<Interval> &intervals, Interval newInterval) {
if(intervals.size()==0)
{
vector<Interval> r;
r.push_back(newInterval);
return r;
}
else
{
int begin = 0;
int end = intervals.size()-1;
if(newInterval.end < intervals[begin].start)
{
intervals.insert(intervals.begin(),newInterval);
}
else if(newInterval.start > intervals[end].end)
{
intervals.insert(intervals.end(),newInterval);
}
else
{
while(end>=begin)
{
if(newInterval.end < intervals[end].start)
{
end--;
}else if(newInterval.start > intervals[begin].end)
{
begin++;
}
else
{
break;
}
};
if(end>=begin)
{
int s=intervals[begin].start>newInterval.start?newInterval.start:intervals[begin].start;
int e=intervals[end].end<newInterval.end?newInterval.end:intervals[end].end;
intervals.erase(intervals.begin()+begin, intervals.begin()+end+1);
intervals.insert(intervals.begin()+begin,*(new Interval(s,e)));
}
else
{
intervals.insert(intervals.begin()+begin,newInterval);
}
}
return intervals;
}
}
};