As a tester, i know, that problems are interesting and the round itself is exciting

As a contribution, please give me tester

As a specialist, I miss my Expert color when I tested this round ;(

Anyways, problems are very interesting; you should read all problems' statements.

Good luck ;)

Do I get TON

Why there's no 1,024-2047 places: 1 TON each?

@everyone announcement is posted https://codeforces.me/blog/entry/122539. Can farm contribution if you want

As a tester, I forgot the problems. But they were enjoyable I remember.

-1024 TON

As a tester I can guarantee that the problems are good

good luck & fun !!!

Good luckkkkkkkkkkkkkkkkkkkkk

But I did not get the prize of round 6 (xd

The main writer when you cannot solve the problems.

18o3 the 'TESTER' ::orangeheart::

as a participant, increase TON

I hope to win the money for two KFC-Crazy-Thursday!

I hope to win the money , I need to take care of my family.

Auto comment: topic has been updated by maomao90 (previous revision, new revision, compare).

What's TON?If I get the prize,how can I turn the TON into common money?

Hope i'll became pupil after this contest ...!

:(

Good luck to all the participants, do your best ^_^

Why are you wasting time testing Codeforces round Yoo_Jeongyeon! We were waiting for TW-LOG @ 5TH WORLD TOUR ‘READY TO BE’ ep.JEONGYEON

will the rate updated before the upcoming codeton contest lol

What does 4000+1000 score mean?

Wow, split H?

Good luck

one refresh cost me 15 minutes

Please let me reach Pupil today

DelayForces

Delayed agaaaaaaaaaaaain... Okay I'll have to go to sleep 15 min later...

Hope to become a pupil today

now its gonna be 1:30 AM for me when it ends :skull:

guessforces.

$$$1$$$. Guess the answer. $$$2$$$. Guess the answer $$$3$$$ Guess the construction.

Nice problem set.Enjoyed the problems!!!

Very nice contest! First time ever doing 5 questions in a div 2!

Sorry for weak tests on B :(

Hope everyone still enjoyed the round!

How to solve C? greedy only gives best possible x, but how to get exactly x?

Can someone please explain to me why this solution is not correct for problem D. My idea is if there is a prefix sum that is equal to the queried sum, then print yes, otherwise check if there exists an element with value one at which the prefix sum is greater than the queried sum, and if it exists the answer is yes, otherwise no.

Submission: 234308986

Thanks for the great round! Could someone please share the implementation/approach to D?

Nice problems. It would have been better if samples for C could cut wrong output format. I was printing b according to sorted a. I proved my solution but could not figure out anything for too much time.

Very interesting H! I think I was pretty close to something like $$$\mathcal{O}(4^k)$$$ solution, but couldn't finish it

C>>>D

A. Note that if a[1]==1, we will always be able to do some operation if the permutation is not sorted (consider minimum i such that a[i]>a[i+1], because a[1]==1 we have i>1), and each operation will decrease the inversion number of it, so the answer is YES. Otherwise, since we cannot change a[1] by operations, the answer is NO.

B. Consider the beginning B's and ending A's of the string, they can't be moved. So we can ignore them and assume the string begin with 'A' and end with 'B', then the string will be like this: "ABBB | AB | ABBBB | ... | AB", and if we process "ABB...BBB" blocks from right to left (and move 'A' from left to right in each block), we can get ans=len(s)-1.

C. We can assume a[i] is sorted. When we need to choose x indexes such that a[i]>b[i], and choose n-x indexes such that a[i]<=b[i], we need to choose large a[i] and small b[i] for the first type, small a[i] and large b[i] for the second type. So we can assume that a[i]<=b[i] for 1<=i<=n-x, and a[i]>b[i] for n-x+1<=i<=n. Then we need choose x smallest values of b[i] to fill the range [n-x+1, n], and n-x largest values of b[i] to fill range [1, n-x]. To satisfy the inequalities as more as possible, these values also need to be sorted within two ranges. Finally we need to check if the answer we build is valid.

D. If we maintain the total sum T of the array, if s>T the answer is no. Let's assume that s<T for remaining part. Notice that if a[1]==1, all integers in [0, T] are valid, because there must be some i such that sum[1, i]=s or sum[1, i]=s+1, and for the second situation, we have that sum[2, i]=s. For the general cases, Let's assume there are k1 occurences of 2 before the first occurence of 1, and k2 occurences of 2 after the last occurence of 1. (So a[i] is something like " I1: 22222...2 | I2: 1.....1 | I3: 2...2222") Let r=T-2*(k1+k2) be the sum of I2, then similar with cases for a[1]=1, all integers in [0, r+2*max(k1,k2)] are valid (think about subarray I2+I3 or the inverse of I1+I2), and if s>r+2*max(k1,k2), I2 must be contained in the subarray we need (for any subarray doesn't contain I2, it will be contained in I1+I2 or I2+I3), Then we have (s-r) must be even. We can find k1 and k2 by maintaining a set of indexes such that a[i]==1.

E. For each i we let range T[i]=[i, a[i]], then the answer of a[i] will be (a[i]-i)%n — (the number of other ranges contained in T[i]), and we can calculate tha number of ranges by fenwick tree.

F. If sum of s[i] is odd or s[1]!=s[2*n] there's no solution. Otherwise, we can solve the problem in 3 operations. First, Let's ignore s[1], s[2*n] and look about s[2, 2*n-1]. For each even i in [2, 2*n-2], if s[i]==s[i+1], we put "()" on corresponding positions of b, Otherwise we put "((" or "))" instead (because sum of s[i] is even, there will be even occurences of such i, so we can choose "((" for first half and "))" for second half) Then we let b[1]='(', b[2*n]=')' and do the first operation. After that, for all even i in [2, 2*n-2], we have s[i]==s[i+1]. In the second operation, b[1] and b[2*n] are the same with first operation, and we put "()" for 00 and ")(" for 11 this time. Then for all 2<=i<=2*n-1, we have s[i]==0. If s[1]==0, we are done. Otherwise we need the third operation for b="(()()()...())".

What is E idea?

In problem D can I use segTree to solve it?

Nice problems. Thanks for the round!

Nice Contest <3

I can't submit E now, so can someone confirm, is it just using ordered set for any index $$$i$$$, to find number of elements that will remain at the same time, when $$$i$$$ will be fixed. We will sort the ranges of {curr_idx, right_idx} by right_idx.

in c, i was thinking about finding upper bound for the numbers in array a for the bi and swap it , and check whether we can get x combinations or not, can we solve it like that

Are rating changes from last Educational going to matter on the new rating calculation? I ask because the ratings were updated almost at the begining of the contest and codeforces bot is not taking care of that at least for me

Choked on G and lost 64 TONs.

Super cool contest, interesting ad-hoc problem F&G.

nice contest. can somebody ask my teacher not to take online classes during contest?:|

What is solution for E?

problem F is very cool!

What's wrong in this submission of D- 234302167

Thanks ! It's my first time becoming a candidate master and geting tons!

Woah, it seems I massively overcomplicated my solution to E.

I take the permutation and make a $$$2n$$$-element array $$$p'$$$ which is just the permutation repeated twice with all the "arrows" from the first $$$n$$$ elements pointing right instead of left. Then I take that array as the leaves of a segment tree where each node is a sorted vector of its segment's elements. (So it's just like the tree you'd get from a merge sort). Then for each element of the permutation I can range-query in $$$O(\log^2 n)$$$ for the number of elements in the segment $$$[i, p'_i]$$$ that are greater than $$$p'_i$$$ using binsearch, which is exactly the time it will take for the $$$i$$$-th element to get to its place. This yields a $$$O(q \log^2 n)$$$ solution with $$$O(n \log n)$$$ memory, but with too big of a constant on the memory complexity. This got me a MLE.

So instead of holding the entire mergesort tree in memory I first make "phantom" queries into a segment tree and for every node remember which queries use it. Then the mergesort doesn't have to persist vectors at every level of the recursion, instead partially answering each query on the node it is in. Neither the time nor the memory complexity change, but with a better constant this got AC.

Also it's funny how I basically immediately got the idea for how to solve E while not being able to solve D at all. But it seems I'm the weird one and the order of the problems was chosen well :P

Ka-chow!

About problems:

I love H.

G is nice+. I don’t know if $$$2n^2-n+1$$$ wouldn’t be nicer, but I guess that’s what makes the problem hard, so I guess $$$2n^2-2n+1$$$ is a good decision.

The rest is good as there’s mostly nice thinking instead of coding, but no 0-coding. Maybe F is so-so, as it’s really a pattern made on paper, but it’s not that bad too.

Is E linear? Or is $$$n$$$ up to million because you were afraid of quadratic solutions? Anyway if high limits caused no problems (I got a bit scared, but time didn’t really grow during systests, so that’s nice) then everything is fine. It’s fine if the solution is linear too ofc.

Good problemset in general, definitely enjoyed!

Seems like the test set is not strong enough for problem F. Some greedy solutions got accepted by doing something like this: let's make up another bracket sequence until there are no 1s left in the original string, and while composing the new sequence from left to right, we will try to eliminate another 1 if it is possible. Here is my implementation: 234305022.

There are also greedy solutions that do some sortings instead but I'm not sure. Maybe someone can share the details.

How could I get the prize? I won 2 TON according to the rules.

First time ever to solve a DIV2 problem C and became pupil after the contest. love this round:)

Link to my screencast and editorial of A, B, C, D, F.

A-F speedrun sub-1hr hitless

I solved problem 1896D - Единицы и двойки with std::bitset in time $$$O\left(\dfrac{n \times q}{64}\right)$$$ during the contest. My accepted submission works 1248 ms.

Here are some hints how to keep and update a set of prefix sums with bitset:

• bitset[s] is equal to $$$1$$$, if there is a prefix sum with value s, and 0 otherwise;
• the number of segments with sum equal to s can be calculated with (bitset & (bitset << s)).count();
• the update of $$$i$$$-th value in array by some delta can be implemented with bitset = (bitset >> s[i] << (s[i] + delta)) | (pref << (size - s[i]) >> (size - s[i])).

Remember, that bitset >> K << K sets to zero first K elements without changing of other elements and bitset << K >> K sets to zero last K elements.

Why am I getting RTE on pretest 1 when it works on my IDE? Thanks!

234307252

Why I can't see the Editorial? When I click the "Editorial", it just tell me "You are not allowed to view the requested page".

Can anyone of you help me find out why this submission for C is wrong. https://codeforces.me/contest/1896/submission/234350576.

Thanks in advance!!

dude i overthought A too hard...

I just made algorithms and algorithms for B until one worked. This one just kinda popped into my head when I was thinking of another idea...

I did B then couldn't think of a solution for A C or D...

Im_dik from Chongqing defeated the famous Legendary Grandmaster Um_nik in last Educational Codeforces Round.But we didn't see their duel again in yesterday's contest.It's so disappointing!

As a newbie really interested the round

Will I receive TON if I registered a wallet after the end of the contest? Also thanks for the round.

How do I get TON? I just created a wallet

Hi codeforces, how i can get my codetoins?