Class Solution
Medium
You are given a 2D integer array ranges where ranges[i] = [starti, endi] denotes that all integers between starti and endi (both inclusive ) are contained in the ith range.
You are to split ranges into two (possibly empty) groups such that:
- Each range belongs to exactly one group.
- Any two overlapping ranges must belong to the same group.
Two ranges are said to be overlapping if there exists at least one integer that is present in both ranges.
- For example,
[1, 3]and[2, 5]are overlapping because2and3occur in both ranges.
Return the total number of ways to split ranges into two groups. Since the answer may be very large, return it modulo 109 + 7.
Example 1:
Input: ranges = [[6,10],[5,15]]
Output: 2
Explanation:
The two ranges are overlapping, so they must be in the same group.
Thus, there are two possible ways:
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Put both the ranges together in group 1.
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Put both the ranges together in group 2.
Example 2:
Input: ranges = [[1,3],[10,20],[2,5],[4,8]]
Output: 4
Explanation:
Ranges [1,3], and [2,5] are overlapping. So, they must be in the same group.
Again, ranges [2,5] and [4,8] are also overlapping. So, they must also be in the same group.
Thus, there are four possible ways to group them:
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All the ranges in group 1.
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All the ranges in group 2.
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Ranges [1,3], [2,5], and [4,8] in group 1 and [10,20] in group 2.
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Ranges [1,3], [2,5], and [4,8] in group 2 and [10,20] in group 1.
Constraints:
1 <= ranges.length <= 105ranges[i].length == 20 <= starti <= endi <= 109
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Constructor Summary
Constructors -
Method Summary
Methods inherited from class java.lang.Object
clone, equals, finalize, getClass, hashCode, notify, notifyAll, toString, wait, wait, wait
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Constructor Details
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Solution
public Solution()
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Method Details
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countWays
public int countWays(int[][] ranges)
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