LeetCode in Kotlin

57. Insert Interval

Medium

You are given an array of non-overlapping intervals intervals where intervals[i] = [start_i, end_i] represent the start and the end of the i^th interval and intervals is sorted in ascending order by start_i. You are also given an interval newInterval = [start, end] that represents the start and end of another interval.

Insert newInterval into intervals such that intervals is still sorted in ascending order by start_i and intervals still does not have any overlapping intervals (merge overlapping intervals if necessary).

Return intervals after the insertion.

Example 1:

Input: intervals = [[1,3],[6,9]], newInterval = [2,5]

Output: [[1,5],[6,9]]

Example 2:

Input: intervals = [[1,2],[3,5],[6,7],[8,10],[12,16]], newInterval = [4,8]

Output: [[1,2],[3,10],[12,16]]

Explanation: Because the new interval [4,8] overlaps with [3,5],[6,7],[8,10].

Constraints:

0 <= intervals.length <= 10⁴
intervals[i].length == 2
0 <= start_i <= end_i <= 10⁵
intervals is sorted by start_i in ascending order.
newInterval.length == 2
0 <= start <= end <= 10⁵

Solution

class Solution {
    fun insert(intervals: Array<IntArray>, newInterval: IntArray): Array<IntArray> {
        val n = intervals.size
        var l = 0
        var r = n - 1
        while (l < n && newInterval[0] > intervals[l][1]) {
            l++
        }
        while (r >= 0 && newInterval[1] < intervals[r][0]) {
            r--
        }
        val res = Array(l + n - r) { IntArray(2) }
        for (i in 0 until l) {
            res[i] = intervals[i].copyOf(intervals[i].size)
        }
        res[l][0] = Math.min(newInterval[0], if (l == n) newInterval[0] else intervals[l][0])
        res[l][1] = Math.max(newInterval[1], if (r == -1) newInterval[1] else intervals[r][1])
        var i = l + 1
        var j = r + 1
        while (j < n) {
            res[i] = intervals[j]
            i++
            j++
        }
        return res
    }
}

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