Given an integer array nums and a positive integer k, return the most competitive subsequence of nums of size k.
An array's subsequence is a resulting sequence obtained by erasing some (possibly zero) elements from the array.
We define that a subsequence a is more competitive than a subsequence b (of the same length) if in the first position where a and b differ, subsequence a has a number less than the corresponding number in b. For example, [1,3,4] is more competitive than [1,3,5] because the first position they differ is at the final number, and 4 is less than 5.
Example 1:
Input: nums = [3,5,2,6], k = 2
Output: [2,6]
Explanation: Among the set of every possible subsequence: {[3,5], [3,2], [3,6], [5,2], [5,6], [2,6]}, [2,6] is the most competitive.
Example 2:
Input: nums = [2,4,3,3,5,4,9,6], k = 4 Output: [2,3,3,4]
Constraints:
1 <= nums.length <= 1050 <= nums[i] <= 1091 <= k <= nums.length
Companies:
Dunzo
Related Topics:
Array, Stack, Greedy, Monotonic Stack
Similar Questions:
This problem is very similar to 402. Remove K Digits (Medium).
Since we are looking for the lexicographically smallest subsequence, we use mono-increasing stack.
For each A[i], we pop back of ans if:
- There is delete allowance, i.e.
i - ans.size() < N - k:i - ans.size()is the number of elements that we've already popped, andN - kis the number of elements that we need to remove. So ifi - ans < N - k, we can continue popping. ans.back()is strictly greater thanA[i], i.e.ans.size() && ans.back() > A[i].
We only push A[i] into ans when ans.size() < k i.e. there are not yet k elements selected.
// OJ: https://leetcode.com/problems/find-the-most-competitive-subsequence/
// Author: github.com/lzl124631x
// Time: O(N)
// Space: O(N)
class Solution {
public:
vector<int> mostCompetitive(vector<int>& A, int k) {
vector<int> ans;
for (int i = 0, N = A.size(); i < N; ++i) {
while (i - ans.size() < N - k && ans.size() && A[i] < ans.back()) ans.pop_back();
if (ans.size() < k) ans.push_back(A[i]);
}
return ans;
}
};