# 将数据流变为多个不相交区间

 给你一个由非负整数 a1, a2, ..., an 组成的数据流输入,请你将到目前为止看到的数字总结为不相交的区间列表。

实现 SummaryRanges 类:

 

示例:

输入:
["SummaryRanges", "addNum", "getIntervals", "addNum", "getIntervals", "addNum", "getIntervals", "addNum", "getIntervals", "addNum", "getIntervals"]
[[], [1], [], [3], [], [7], [], [2], [], [6], []]
输出:
[null, null, [[1, 1]], null, [[1, 1], [3, 3]], null, [[1, 1], [3, 3], [7, 7]], null, [[1, 3], [7, 7]], null, [[1, 3], [6, 7]]]

解释:
SummaryRanges summaryRanges = new SummaryRanges();
summaryRanges.addNum(1);      // arr = [1]
summaryRanges.getIntervals(); // 返回 [[1, 1]]
summaryRanges.addNum(3);      // arr = [1, 3]
summaryRanges.getIntervals(); // 返回 [[1, 1], [3, 3]]
summaryRanges.addNum(7);      // arr = [1, 3, 7]
summaryRanges.getIntervals(); // 返回 [[1, 1], [3, 3], [7, 7]]
summaryRanges.addNum(2);      // arr = [1, 2, 3, 7]
summaryRanges.getIntervals(); // 返回 [[1, 3], [7, 7]]
summaryRanges.addNum(6);      // arr = [1, 2, 3, 6, 7]
summaryRanges.getIntervals(); // 返回 [[1, 3], [6, 7]]

 

提示:

 

进阶:如果存在大量合并,并且与数据流的大小相比,不相交区间的数量很小,该怎么办?

## template ```python class SummaryRanges: def __init__(self): self.rec = set() self.s = list() def binarySearch_l(self, x: int): s = self.s l, r = 0, len(s) - 1 while l < r: mid = l + r >> 1 if s[mid][0] >= x: r = mid else: l = mid + 1 return l def binarySearch(self, x: int): s = self.s l, r = 0, len(s) - 1 while l < r: mid = l + r >> 1 if s[mid][1] >= x: r = mid else: l = mid + 1 return l def addNum(self, val: int) -> None: rec, s = self.rec, self.s if val in rec: return else: if val - 1 not in rec and val + 1 not in rec: s.append([val, val]) s.sort() elif val - 1 in rec and val + 1 not in rec: p = self.binarySearch(val - 1) s[p][1] = val elif val - 1 not in rec and val + 1 in rec: p = self.binarySearch_l(val + 1) s[p][0] = val else: p = self.binarySearch(val) s[p - 1][1] = s[p][1] s.pop(p) rec.add(val) def getIntervals(self) -> List[List[int]]: return self.s ``` ## 答案 ```python ``` ## 选项 ### A ```python ``` ### B ```python ``` ### C ```python ```