You are given a 0-indexed integer array piles, where piles[i] represents the number of stones in the ith pile, and an integer k. You should apply the following operation exactly k times:
- Choose any
piles[i]and removefloor(piles[i] / 2)stones from it.
Notice that you can apply the operation on the same pile more than once.
Return the minimum possible total number of stones remaining after applying the k operations.
floor(x) is the greatest integer that is smaller than or equal to x (i.e., rounds x down).
Example 1:
Input: piles = [5,4,9], k = 2 Output: 12 Explanation: Steps of a possible scenario are: - Apply the operation on pile 2. The resulting piles are [5,4,5]. - Apply the operation on pile 0. The resulting piles are [3,4,5]. The total number of stones in [3,4,5] is 12.
Example 2:
Input: piles = [4,3,6,7], k = 3 Output: 12 Explanation: Steps of a possible scenario are: - Apply the operation on pile 3. The resulting piles are [4,3,3,7]. - Apply the operation on pile 4. The resulting piles are [4,3,3,4]. - Apply the operation on pile 0. The resulting piles are [2,3,3,4]. The total number of stones in [2,3,3,4] is 12.
Constraints:
1 <= piles.length <= 1051 <= piles[i] <= 1041 <= k <= 105
Intuition: We greedily remove stones from the largest pile repetitively.
Algorithm: Use a max heap pq to store the values. Keep popping the heap top (say n), remove n / 2 stones, and push n - n / 2 back to the heap, repeating k times. The answer is the sum of piles minus the sum of all stones removed.
// OJ: https://leetcode.com/problems/remove-stones-to-minimize-the-total/
// Author: github.com/lzl124631x
// Time: O((N + K) * logN)
// Space: O(N)
class Solution {
public:
int minStoneSum(vector<int>& A, int k) {
priority_queue<int> pq;
for (int n : A) pq.push(n);
long rm = 0, sum = accumulate(begin(A), end(A), 0L);
for (int i = 0; i < k; ++i) {
int n = pq.top();
pq.pop();
if (n == 1) break;
rm += n / 2;
pq.push(n - n / 2);
}
return sum - rm;
}
};