Merge Intervals题解
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题目来源:https://leetcode.com/problems/merge-intervals/description/
Description
Given a collection of intervals, merge all overlapping intervals.
Example
Given [1,3],[2,6],[8,10],[15,18],
return [1,6],[8,10],[15,18].
Solution
/* 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> merge(vector<Interval>& intervals) {
vector<Interval> resultVector;
if (intervals.size() == 0)
return resultVector;
int size = intervals.size();
int i, j, rsize;
resultVector.push_back(intervals[0]);
Interval tempInterval;
bool is_finish;
for (i = 1; i < size; i++) {
tempInterval.start = intervals[i].start;
tempInterval.end = intervals[i].end;
is_finish = false;
while (!is_finish) {
if (resultVector.size() == 0) {
resultVector.push_back(tempInterval);
break;
}
for (j = 0; j < resultVector.size(); j++) {
if ( (tempInterval.end >= resultVector[j].start && tempInterval.end <= resultVector[j].end) ||
(tempInterval.start >= resultVector[j].start && tempInterval.start <= resultVector[j].end) ||
(tempInterval.start <= resultVector[j].start && tempInterval.end >= resultVector[j].end)) {
tempInterval.start = tempInterval.start < resultVector[j].start ? tempInterval.start : resultVector[j].start;
tempInterval.end = tempInterval.end > resultVector[j].end ? tempInterval.end : resultVector[j].end;
resultVector.erase(resultVector.begin() + j);
break;
}
if (j == resultVector.size() - 1) {
resultVector.push_back(tempInterval);
is_finish = true;
break;
}
}
}
}
return resultVector;
}
};
解题描述
这道题还是费了一番周折去解决的。可能一开始的想法就是不想使用暴力破解的方法,想试着看看在解决问题的过程中就实现优化,减少遍历次数,但是却弄巧成拙出了些莫名奇妙的bug,一度WA好几次。最后还是妥协了,“先做到,再做好”,使用暴力破解,也就是通过不断更新即将插入结果容器的区间的上下界,每次更新完再重复遍历结果容器,以达到完全排除区间有交叠的情况。