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FindingTheUsersActiveMinutes.cpp
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FindingTheUsersActiveMinutes.cpp
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// Source : https://leetcode.com/problems/finding-the-users-active-minutes/
// Author : Hao Chen
// Date : 2021-04-05
/*****************************************************************************************************
*
* You are given the logs for users' actions on LeetCode, and an integer k. The logs are represented
* by a 2D integer array logs where each logs[i] = [IDi, timei] indicates that the user with IDi
* performed an action at the minute timei.
*
* Multiple users can perform actions simultaneously, and a single user can perform multiple actions
* in the same minute.
*
* The user active minutes (UAM) for a given user is defined as the number of unique minutes in which
* the user performed an action on LeetCode. A minute can only be counted once, even if multiple
* actions occur during it.
*
* You are to calculate a 1-indexed array answer of size k such that, for each j (1 <= j <= k),
* answer[j] is the number of users whose UAM equals j.
*
* Return the array answer as described above.
*
* Example 1:
*
* Input: logs = [[0,5],[1,2],[0,2],[0,5],[1,3]], k = 5
* Output: [0,2,0,0,0]
* Explanation:
* The user with ID=0 performed actions at minutes 5, 2, and 5 again. Hence, they have a UAM of 2
* (minute 5 is only counted once).
* The user with ID=1 performed actions at minutes 2 and 3. Hence, they have a UAM of 2.
* Since both users have a UAM of 2, answer[2] is 2, and the remaining answer[j] values are 0.
*
* Example 2:
*
* Input: logs = [[1,1],[2,2],[2,3]], k = 4
* Output: [1,1,0,0]
* Explanation:
* The user with ID=1 performed a single action at minute 1. Hence, they have a UAM of 1.
* The user with ID=2 performed actions at minutes 2 and 3. Hence, they have a UAM of 2.
* There is one user with a UAM of 1 and one with a UAM of 2.
* Hence, answer[1] = 1, answer[2] = 1, and the remaining values are 0.
*
* Constraints:
*
* 1 <= logs.length <= 10^4
* 0 <= IDi <= 10^9
* 1 <= timei <= 10^5
* k is in the range [The maximum UAM for a user, 10^5].
******************************************************************************************************/
class Solution {
public:
vector<int> findingUsersActiveMinutes(vector<vector<int>>& logs, int k) {
vector<int> result(k, 0);
unordered_map<int, set<int>> uam;
for (auto& log : logs) {
uam[log[0]].insert(log[1]);
}
for (auto& [id, t] : uam) {
if (t.size() <= k) {
result[t.size()-1]++;
}
}
return result;
}
};