Given an array nums of integers, you can perform operations on the array.
In each operation, you pick any nums[i] and delete it to earn nums[i] points. After, you must delete every element equal to nums[i] - 1 or nums[i] + 1.
You start with 0 points. Return the maximum number of points you can earn by applying such operations.
Example 1:
Input: nums = [3,4,2] Output: 6 Explanation: Delete 4 to earn 4 points, consequently 3 is also deleted. Then, delete 2 to earn 2 points. 6 total points are earned.
Example 2:
Input: nums = [2,2,3,3,3,4] Output: 9 Explanation: Delete 3 to earn 3 points, deleting both 2's and the 4. Then, delete 3 again to earn 3 points, and 3 again to earn 3 points. 9 total points are earned.
Constraints:
1 <= nums.length <= 2 * 1041 <= nums[i] <= 104
Intuition: If we take a number, we will take all of the copies of it.
First calculate the sum of each number as sums, and keep updating two dp arrays: select and nonSelect
- sums[i] represents the sum of elements whose value is i;
- select[i] represents the maximum sum of processing from 0 to i if the number i is selected;
- nonSelect[i] represents the maximum sum of processing from 0 to i if the number i is not selected;
Then we have the following conclusions:
- If i is selected, then i-1 must not be selected;
- If you do not choose i, then i-1 can choose or not, so we choose the larger one;
select[i] = nonSelect[i-1] + sums[i];
nonSelect[i] = Math.max(select[i-1], nonSelect[i-1]);class Solution {
public int deleteAndEarn(int[] nums) {
if (nums.length == 0) {
return 0;
}
int[] sums = new int[10010];
int[] select = new int[10010];
int[] nonSelect = new int[10010];
int maxV = 0;
for (int x : nums) {
sums[x] += x;
maxV = Math.max(maxV, x);
}
for (int i = 1; i <= maxV; i++) {
select[i] = nonSelect[i - 1] + sums[i];
nonSelect[i] = Math.max(select[i - 1], nonSelect[i - 1]);
}
return Math.max(select[maxV], nonSelect[maxV]);
}
}