When I am solving 1197D,I didn't see m<=10 and then I find a solution that can solve m<=n<=3e5
Here is my solution:
The range [l,r] is equal to [l,l+m-1],[l+m,l+2m-1]....[l+xm,r]
then we will enumeration the value of l+xm.
We consider every reminder(from 0 to m-1) of position module m and solve them independently.
When we are solving each of the reminders,we have v[i]-->the value of the ith range(from the ith position fits the reminder to the next),then we will consider the value of two parts
First:[l,l+m-1],[l+m,l+2m-1].....[l+(x-1)m,l+xm-1]
Second:[l+xm,r]
We can use segment tree to get the max prefix sum of [l+mx,l+(m+1)x-1],then it's the second part.
When we are solveing the first part,we need to find the min value of the prefix sum of v[i].
This can also be done using segment tree.
Then the answer for each l+xm is First+Second-k.
Here is my submission https://codeforces.com/contest/1197/submission/57841454
The final answer is the maximum of them.
Overall complexy O(n log n) with big constants
I wanna know if there are better solutions.
If you have,please share under this blog.
