[LeetCode] 352. Data Stream as Disjoint Intervals 分离区间的数据流

时间:2022-01-01 01:43:11

Given a data stream input of non-negative integers a1, a2, ..., an, ..., summarize the numbers seen so far as a list of disjoint intervals.

For example, suppose the integers from the data stream are 1, 3, 7, 2, 6, ..., then the summary will be:

[1, 1]
[1, 1], [3, 3]
[1, 1], [3, 3], [7, 7]
[1, 3], [7, 7]
[1, 3], [6, 7]

Follow up:
What if there are lots of merges and the number of disjoint intervals are small compared to the data stream's size?

NOTE: input types have been changed on April 15, 2019. Please reset to default code definition to get new method signature.

Credits:
Special thanks to @yunhong for adding this problem and creating most of the test cases.

这道题说有个数据流每次提供一个数字,然后让我们组成一系列分离的区间,这道题跟之前那道 Insert Interval 很像,思路也很像,每进来一个新的数字 val,都生成一个新的区间 [val, val],并且新建一个空的区间数组 res,用一个变量 cur 来保存要在现有的区间数组中加入新区间的位置。此时遍历现有的区间数组 intervals,对于每一个遍历到的当前区间 interval,假如要加入的区间的结尾位置加1比当前区间的起始位置小,说明二者不相连,将当前区间加入 res。否则当要加入区间的起始位置大于当前位置的结束位置加1,说明二者也没有交集,可以将当前区间加入 res,不过此时 cur 要自增1,因为要加入区间的位置在当前区间的后面。再否则的话,二者就会有交集,需要合并,此时用二者起始位置中较小的更新要加入区间的起始位置,同理,用二者结束位置中较大的去更新要加入区间的结束位置。最终将要加入区间放在 res 中的 cur 位置,然后将 res 赋值给 intervals 即可,参见代码如下:

解法一:

class SummaryRanges {
public:
SummaryRanges() {} void addNum(int val) {
vector<int> newInterval{val, val};
vector<vector<int>> res;
int cur = ;
for (auto interval : intervals) {
if (newInterval[] + < interval[]) {
res.push_back(interval);
} else if (newInterval[] > interval[] + ) {
res.push_back(interval);
++cur;
} else {
newInterval[] = min(newInterval[], interval[]);
newInterval[] = max(newInterval[], interval[]);
}
}
res.insert(res.begin() + cur, newInterval);
intervals = res;
}
vector<vector<int>> getIntervals() {
return intervals;
}
private:
vector<vector<int>> intervals;
};

感谢热心网友 greentrail 的提醒,我们可以对上面的解法进行优化。由于上面的方法每次添加区间的时候,都要把 res 赋值给 intervals,整个区间数组都要进行拷贝,十分的不高效。这里换一种方式,用一个变量 overlap 来记录所有跟要加入区间有重叠的区间的个数,用变量i表示新区间要加入的位置,这样只要最后 overlap 大于0了,现在 intervals 中将这些重合的区间删掉,然后再将新区间插入,这样就不用进行整体拷贝了,提高了效率,参见代码如下:

解法二:

class SummaryRanges {
public:
SummaryRanges() {} void addNum(int val) {
vector<int> newInterval{val, val};
int i = , overlap = , n = intervals.size();
for (; i < n; ++i) {
if (newInterval[] + < intervals[i][]) break;
if (newInterval[] <= intervals[i][] + ) {
newInterval[] = min(newInterval[], intervals[i][]);
newInterval[] = max(newInterval[], intervals[i][]);
++overlap;
}
}
if (overlap > ) {
intervals.erase(intervals.begin() + i - overlap, intervals.begin() + i);
}
intervals.insert(intervals.begin() + i - overlap, newInterval);
}
vector<vector<int>> getIntervals() {
return intervals;
}
private:
vector<vector<int>> intervals;
};

Github 同步地址:

https://github.com/grandyang/leetcode/issues/352

类似题目:

Insert Interval

Range Module

Find Right Interval

Summary Ranges

参考资料:

https://leetcode.com/problems/data-stream-as-disjoint-intervals/

https://leetcode.com/problems/data-stream-as-disjoint-intervals/discuss/82557/Very-concise-c%2B%2B-solution.

https://leetcode.com/problems/data-stream-as-disjoint-intervals/discuss/82616/C%2B%2B-solution-using-map.-O(logN)-per-adding.

https://leetcode.com/problems/data-stream-as-disjoint-intervals/discuss/82553/Java-solution-using-TreeMap-real-O(logN)-per-adding.

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