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That's a fairly standard problem on BIT (binary indexed tree).
Let the position of the x-th router and the y-th router be i and j. And the position of the x-th and y-th contestant be i2 j2.
The two lines can only intersect in two cases:
Counting these pairs are standard problem and tutorials can be found throughout the internet, so i won't state it here
Sorry for bad English
So i just count all pair that is intersect with curreent pair in O(1)?
I think the counting of the pairs can only be done in O(log n) with BIT or seg tree given that there is update
I have senior that solve this problem during contest, he said he used LIS or LCS to solve this problem.. did u agree?
I agree, the concept lies below is the same
Actually there is a similar problem on CF https://mirror.codeforces.com/gym/227122/problem/C
The following is my solution (C++)