Wow! I didn't expect the editorial published so fast.

Thanks for the fast editorial!

Editorial so early -.-

Wow, it was very good contest. Fast editorial, cool tasks with short conditions. Thanks!

Damn
I feel so stupid after seeing the solution for B
Nice problems man!

A very good editorial indeed and how come you guys publish it so fast..?

Bruhhhh, this is magic! Great contest and the fastest editorial ever....

In addition:

In problem C we can reduce the time complexity to O(N) by using array int charCount[26]; (due to the small alphabet size) instead of explicit std::sort.

p.s. thanks for the fast editorial.

Video Editorials for today's C and D

C

D

Enjoy watching!

Very nice contest! Problem statements were succinct and the editorial was published so quickly! :)

is it rated ?

I think there is an error in solution C.

It should be return instead of continue;

Can anyone think of a counterexample for this solution to E?

Sum up all the red berries and make as many baskets as possible. There are $$$r$$$ (at most $$$k-1$$$) unused.

Sum up all the blue berries and make as many baskets as possible. There are $$$b$$$ (at most $$$k-1$$$) unused.

This is already almost optimal: there are at most $$$2k-2$$$ unused berries. We can get at most $$$1$$$ basket out of these. Said basket only exists under the following conditions:

• There are at least $$$k$$$ leftover berries.
• For some shrub, we can take $$$x$$$ red berries and $$$y$$$ blue berries so that $$$x <= r$$$, $$$y <= b$$$, and $$$x + y = k$$$. If the inequalities are not satisfied, we won't be able to make all the complete color-based baskets. Checking this takes an $$$O(nk)$$$ double loop.

This way, we leave as few berries unused as possible.

My code fails on test case 10, and I think it's a problem with the algorithm and not my code. Here's Haskell: 78739086. Here's C++: 78744165

I think it would be nice to comment my approach to E and the way i thought about it.

Lets say we have some vectors in a plane, lets define a modular plane as a plane such that if we are in $$$[x, y]$$$ then $$$0 \le x,y < k$$$, also if the condition doesn't holds then we go to $$$[x\space mod\space k, y\space mod\space k]$$$(a positive modular), we want to see if we are able to choose some of vectors to reach $$$[x, y]$$$ such that $$$x + y < k$$$, starting at $$$[r, c]$$$. Also each vector is labeled with a number $$$i$$$, we cant choose two vectors with the same label, there are $$$n$$$ labels at most.

We know that a vector $$$x$$$ coordinate plus its $$$y$$$ coordinate is equal to $$$k$$$(each vector means how many reds we chose and how many blues we chose from a $$$i$$$th shrub). The problem is not easier, but it can help you understand the logic behind the problem and the solution, at least it helped me. Also if you start from $$$[r, c]$$$, you cant reach $$$[x, y]$$$ such that $$$(x+y) \ne (r+c) _{mod \space k}$$$.

Woah editorial published very fast! Thanks FieryPhoenix for the contest <3

I didn't expect C to be that simple. Nice problems!

Can anyone explain mass increase from x to 2*x part from D ?

You make good problems.

I like the format giving solution along side with tutorial is really helpful.otherwise sometimes get stuck with tutorials only.

It is really great that you prepared editorial 6 days ago && published score distribution day before round. Huge thanks for this! (and problems were good as well too)!

I couldn't solve a single question today.
I was totally blank.
But I, cherished the time I used to read each beautiful problem.
And, now this well written editorial and code with comments!
Best contest experience I have had till now !
Kudos to the author for his time and efforts !!

Could someone please help me understand why the following claim is true for problem E? The author states "Note that if we know that there are j extra red berries, we can also easily calculate how many extra blue berries there are." How would we calculate the number of extra blueberries from the the number of extra redberries?

I had to give contest on m2.codeforces.com......codeforces was running very slow.

In Div2-B, why is no solution possible if there are more than k distinct integers?

can anyone explain what does max(a1,a2,..,ak) means in problem C ?

Author does everything to satisfy participants. Thanks for such a pleasant contest.

To minimize the length of sequence $$$a$$$, we will start building our sequence with $$$1,2,…,2^x$$$ such that the total sum $$$s$$$ is less than or equal to $$$n$$$. If the total sum is $$$n$$$, we are done. Otherwise, we insert $$$n−s$$$ into our sequence and sort. This gives a valid sequence of minimal length.

I don't understand this. Is the sequence just $$$1,2,2^2,…,2^x$$$ such that $$$1+2+2^2+...+2^x <= n$$$?

Also, if you can simply insert $$$n-s$$$, then does the case of $$$-1$$$ never arise?

Editorial is good.

hey guys .. how did you solve problem A ... look over my solution 78745046 dp Solution lol

Judging by the fact that D is rated higher than C despite having a very simple solution with Div2B-ish implementation, (some of) your testers seem to have had similarly over-complicated approaches as me — that makes me feel a little less stupid! Thanks, testers!

 otherwise, we insert n-s into our sequence and sort

what does this mean? how do we know that resultant sequence is even possible?

B and D were beautiful! :)

In the solution of Problem C

if remaining letters aren't the same, we append remaining letters to answer

I don't understand why does it works :(

someone please explain why one of the test case of DIV.2 b is failing in the codeforces judge while it is running correctly in my local ide the link is:-https://codeforces.com/contest/1348/submission/78736417

First time reading the kind of solution in Div2E. Can someone explain in a possibly detailed manner? I don't get how you can derive the number of extra blue berries from the extra red berries.

Nice, E seems to have no testes against n^4 solution//

I knew I was stupid after I saw the solution to B. But the solution to C was a facepalm. And to think, I thought the contest was hard. The questions are excellent and well made; they just require us to get a click....

Just 'a click'

Kudos to FieryPhoenix for very interesting problems!

FieryPhoenix Problem: 13348B , My_submission:78741637 For the input : 4 2 (n, k), 2 1 1 2 (n distinct number) My output was : 5 (array length), 1 2 1 2 1 (output array). But it shows wrong. Why?

How to think for problem like C . I mean seeing min of max() made me think it is binary search over something. Then I thought it being dp .How do we proceed ahead rejecting this ideas and think of case based solution ?

My O(N) greedy passed for E: https://codeforces.com/contest/1348/submission/78740802

My logic was this: The final baskets can be divided into two categories: those that are homogenous (i.e have only red or only blue berries) and those that are heterogenous (i.e can have both red and blue berries). The heterogenous baskets are obviously from the same shrub.

Now, we will run two different greedy solutions. In the first solution, we will prioritise making heterogenous baskets. That is, for each i, add (a[i] + b[i])/k to the answer and then leave the remainder for homogenous baskets. With the remainder, I have just prioritised making homogenous A baskets and then made whatever homogenous B baskets are possible at the end.

In the second solution, we will prioritise making homogenous baskets. That is, add (sum of a[i])/k + (sum of b[i])/k to the final answer. Then, find an i such that min(a[i], remainder of a) + min(b[i], remainder of b) >= k. If you find such an i, add 1 to the answer. Otherwise leave as is.

Finally, take the max from both solutions and output it.

I used a simpler approach with D,

Observations —

1. Number of partitions + 1 will always increase each night

2. so I have to create minimum array possible that sum up to n, which is in increasing order and each element is less than it's max possible at that point which is simple as 2^i as ith night (0 indexed)

3. now keep maximum possible element fulfilling those condition.

4. and for actual solution number of partitions each night just take adjacent difference between elements.

My sol — 78714792

I am unable to understand div2 C .Can anybody explain it. Thanks in Advance

Hello!. Can someone tell me why this solution is wrong for E. It fails on test 73

I commented the code so is easy to understand.

What I am trying to do is a dp(i, r) = {maximun number of full_boxes from i to n-1, maximum number of unused blue berries}.

So in each state I try all possible values from [0, k-1] of red berries that I want not to merge with the same shrub (then this one will be merged with r).

At the end the answer should be dp[0][0].first + dp[0][0].second / k

Can anyone please explain why the greedy strategy mentioned in problem D works(i.e to take summation till 2powerx and repeat same for n-s) by working I mean proof that it is optimal

There is a typo in problem D. The complexity should be O(nlogn).

For problem E, What is the memoisation approach, if any?

My submission for problem B is always wa,I'm really disappointed,can anyone help me?https://paste.ubuntu.com/p/9Xftz94CM7/

Why does D have a binary search tag, is there a way to solve this using binary search? Anyone?