Leetcode 435 Non-overlapping Intervals
https://leetcode.com/problems/non-overlapping-intervals/
Interval的题目一定要排序,跑不了。这种题的做法都是排序,然后把起点设为interval[0], 然后从interval[1] 开始循环。同时,按照起点排序,与按照终点排序是一样的。
这道题,排序方法按照start排就可以了。但难点是,排序后在扫interval时,如果该点的end小,就要以该点的end来算。重合时,永远删除区间长的。([1, 10], [2, 8], [9, 10], 这个区间,要删除[1,10], 这个得在for loop里面做,排序时无法解决)。
int eraseOverlapIntervals(vector& intervals) {
if(intervals.empty()) return 0;
auto comp = [](const Interval &v1, const Interval &v2){
return v1.start < v2.start;
};
sort(intervals.begin(), intervals.end(), comp);
int cnt = 0, end = intervals[0].end;
for(int i=1; i intervals[i].start){
cnt++;
if(intervals[i].end < end) end = intervals[i].end; //!!!
}
else end = intervals[i].end;
}
return cnt;
}
这道题的一个衍生题是: “给定一堆区间,找最多多少个non-overlapping的区间”. 要点是按照end排序,而不是start。然后扫的时候,如果重复,要更新count.
int end = intervals[0].end;
int count = 1;
for (int i = 1; i < intervals.length; i++) {
if (intervals[i].start >= end) {
end = intervals[i].end;
count++;
}
}
Leetcode 452: Minimum Number of Arrows to Burst Balloons
https://leetcode.com/problems/minimum-number-of-arrows-to-burst-balloons/
这道题也差不多,这种题的做法都是排序,然后把起点设为interval[0], 然后从interval[1] 开始循环。
int findMinArrowShots(vector>& points) {
if(points.empty()) return 0;
sort(points.begin(), points.end());
int start = points[0].second, cnt = 1;
for(int i=1; i= points[i].first){
start = min(start, points[i].second);
}else{
cnt++;
start = points[i].second;
}
}
return cnt;
}
436 Find Right Interval
https://leetcode.com/problems/find-right-interval/
也是对于起点排序,然后对于每一个end point,做binary search
int search(int target, vector> ¤t){
int left = 0, right = current.size()-1;
while(left < right){
int mid = left + (right-left)/2;
if(current[mid].first < target) left = mid+1;
else right = mid;
}
return current[left].first >= target ? current[left].second : -1;
}
vector findRightInterval(vector& intervals) {
if(intervals.empty()) return vector();
vector ret(intervals.size(), 0);
vector> current;
for(int i=0; i &p1, const pair &p2){
return p1.first < p2.first;
};
sort(current.begin(), current.end(), comp);
for(int i=0; i