Redaksiya
Problem Author: | Illia Shevchenko |
Prepared by: | Illia Shevchenko , Illia Fursov |
Editorial by: | Illia Shevchenko |
Let's analyze three cases:
1. When all the numbers in the array are the same.
2. When the number of distinct numbers in the array is more than but less than .
3. When there are exactly distinct numbers.
1) If all the numbers in the array are already the same, the answer is .
2) When the number of distinct numbers in the array is .
Then there exists a number that is not in the array, and .
In this case, we can change the types of all planets to .
The answer is .
3) There are two cases:
3.1)
If we apply the operation, we can replace all 1s with 2s and all 2s with 1s.
Therefore, it will never happen that all the numbers in the array are equal.
3.2)
It is easy to show that the answer can neither be nor .
We can show that the answer will always be .
Let the first operation replace all non-1s with 1, and all 1s with 2. In the second operation, we can replace all the numbers with 3.
Full solution with time complexity (C++):
int n, k; cin >> n >> k; vector <int> a(n); set <int> s; for (int i = 0; i < n; i++) { cin >> a[i]; s.insert(a[i]); } if (s.size() == 1) { cout << 0; return 0; } if ((s.size() == k) and (k == 2)) { cout << -1; return 0; } if ((s.size() == k)) { cout << 2; return 0; } cout << 1;
Time complexity: or
Memory complexity: