435. Non-overlapping Intervals LeetCode Solution

In this guide, you will get 435. Non-overlapping Intervals LeetCode Solution with the best time and space complexity. The solution to Non-overlapping Intervals problem is provided in various programming languages like C++, Java, and Python. This will be helpful for you if you are preparing for placements, hackathons, interviews, or practice purposes. The solutions provided here are very easy to follow and include detailed explanations.

Problem Statement
Complexity Analysis
Non-overlapping Intervals solution in C++
Non-overlapping Intervals solution in Java
Non-overlapping Intervals solution in Python
Additional Resources

435. Non-overlapping Intervals LeetCode Solution image

Problem Statement of Non-overlapping Intervals

Given an array of intervals intervals where intervals[i] = [starti, endi], return the minimum number of intervals you need to remove to make the rest of the intervals non-overlapping.
Note that intervals which only touch at a point are non-overlapping. For example, [1, 2] and [2, 3] are non-overlapping.

Example 1:

Input: intervals = [[1,2],[2,3],[3,4],[1,3]]
Output: 1
Explanation: [1,3] can be removed and the rest of the intervals are non-overlapping.

Example 2:

Input: intervals = [[1,2],[1,2],[1,2]]
Output: 2
Explanation: You need to remove two [1,2] to make the rest of the intervals non-overlapping.

Example 3:

Input: intervals = [[1,2],[2,3]]
Output: 0
Explanation: You don’t need to remove any of the intervals since they’re already non-overlapping.

Constraints:

1 <= intervals.length <= 105
intervals[i].length == 2
-5 * 104 <= starti < endi <= 5 * 104

Complexity Analysis

Time Complexity: O(\texttt{sort})
Space Complexity: O(\texttt{sort})

435. Non-overlapping Intervals LeetCode Solution in C++

class Solution {
 public:
  int eraseOverlapIntervals(vector<vector<int>>& intervals) {
    if (intervals.empty())
      return 0;

    ranges::sort(intervals,
                 [](const auto& a, const auto& b) { return a[1] < b[1]; });

    int ans = 0;
    int currentEnd = intervals[0][1];

    for (int i = 1; i < intervals.size(); ++i)
      if (intervals[i][0] >= currentEnd)
        currentEnd = intervals[i][1];
      else
        ++ans;

    return ans;
  }
};
/* code provided by PROGIEZ */

435. Non-overlapping Intervals LeetCode Solution in Java

class Solution {
  public int eraseOverlapIntervals(int[][] intervals) {
    if (intervals.length == 0)
      return 0;

    Arrays.sort(intervals, (a, b) -> Integer.compare(a[1], b[1]));

    int ans = 0;
    int currentEnd = intervals[0][1];

    for (int i = 1; i < intervals.length; ++i)
      if (intervals[i][0] >= currentEnd)
        currentEnd = intervals[i][1];
      else
        ++ans;

    return ans;
  }
}
// code provided by PROGIEZ

435. Non-overlapping Intervals LeetCode Solution in Python

class Solution:
  def eraseOverlapIntervals(self, intervals: list[list[int]]) -> int:
    ans = 0
    currentEnd = -math.inf

    for interval in sorted(intervals, key=lambda x: x[1]):
      if interval[0] >= currentEnd:
        currentEnd = interval[1]
      else:
        ans += 1

    return ans
 # code by PROGIEZ