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Java-based LeetCode algorithm problem solutions, regularly updated
package g0901_1000.s1000_minimum_cost_to_merge_stones;
// #Hard #Array #Dynamic_Programming #2022_04_20_Time_1_ms_(99.65%)_Space_41.5_MB_(82.62%)
import java.util.Arrays;
public class Solution {
private int[][] memo;
private int[] prefixSum;
public int mergeStones(int[] stones, int k) {
int n = stones.length;
if ((n - 1) % (k - 1) != 0) {
return -1;
}
memo = new int[n][n];
for (int[] arr : memo) {
Arrays.fill(arr, -1);
}
prefixSum = new int[n + 1];
for (int i = 1; i < n + 1; i++) {
prefixSum[i] = prefixSum[i - 1] + stones[i - 1];
}
return dp(0, n - 1, k);
}
private int dp(int left, int right, int k) {
if (memo[left][right] > 0) {
return memo[left][right];
}
if (right - left + 1 < k) {
memo[left][right] = 0;
return memo[left][right];
}
if (right - left + 1 == k) {
memo[left][right] = prefixSum[right + 1] - prefixSum[left];
return memo[left][right];
}
int val = Integer.MAX_VALUE;
for (int i = 0; left + i + 1 <= right; i += k - 1) {
val = Math.min(val, dp(left, left + i, k) + dp(left + i + 1, right, k));
}
if ((right - left) % (k - 1) == 0) {
val += prefixSum[right + 1] - prefixSum[left];
}
memo[left][right] = val;
return val;
}
}