【LeetCode】57. Insert Interval
Insert Interval
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].
由于insert和erase代价太大,需要移动后面所有元素。
所有空间换时间,返回新的数组ret,而不采用inplace做法。
主要以下三种情况:
1、newInterval与当前interval没有交集,则按照先后次序加入newInterval和当前interval,然后装入所有后续interval。返回ret。
2、newInterval与当前interval有交集,合并成为新的newInterval,然后处理后续interval。
3、处理完最后一个interval若仍未返回ret,说明newInterval为最后一个interval,装入ret。返回ret。
/** * 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) { vector<Interval> ret; if(intervals.empty()) { ret.push_back(newInterval); return ret; } int i = 0; while(i < intervals.size()) { //no overlapping if(newInterval.end < intervals[i].start) { ret.push_back(newInterval); while(i < intervals.size()) { ret.push_back(intervals[i]); i ++; } return ret; } else if(newInterval.start > intervals[i].end) ret.push_back(intervals[i]); //overlapping else { newInterval.start = min(newInterval.start, intervals[i].start); newInterval.end = max(newInterval.end, intervals[i].end); } i ++; } ret.push_back(newInterval); return ret; } };
