Aris's blog

By Aris, history, 2 years ago, translation, In English

Hello! Codeforces Round 820 (Div. 3) will start at 12.09.2022 17:35 (Московское время). You will be offered 6-8 problems with expected difficulties to compose an interesting competition for participants with ratings up to 1600. However, all of you who wish to take part and have a rating of 1600 or higher, can register for the round unofficially.

The round will be hosted by rules of educational rounds (extended ICPC). Thus, solutions will be judged on preliminary tests during the round, and after the round, it will be a 12-hour phase of open hacks.

You will be given 6-8 problems and 2 hours and 15 minutes to solve them. One of the problems in this round is interactive. Don't forget to read the guide on interactive problems.

Note that the penalty for the wrong submission in this round is 10 minutes.

Remember that only the trusted participants of the third division will be included in the official standings table. As it is written by link, this is a compulsory measure for combating unsporting behavior. To qualify as a trusted participant of the third division, you must:

  • take part in at least five rated rounds (and solve at least one problem in each of them)
  • do not have a point of 1900 or higher in the rating.

Regardless of whether you are a trusted participant of the third division or not, if your rating is less than 1600, then the round will be rated for you.

Thanks to MikeMirzayanov for the platform, help with ideas for problems and for coordination of our work. Problems have been created and written by ITMO University team: MikeMirzayanov, myav, Gol_D, Aris, Gornak40, senjougaharin and Vladosiya.

We would like to thank: Kniaz, BledDest, Svyat, Be_dos, Timur2006, FelixDzerzhinsky, alphabet321, FedShat, vsinitsynav, Jostic11, erankyun, _Roma_, KKT_89, ABalobanov, lightseba, powergee101, DafuQ_o and AshrafEzz for testing the contest and valuable feedback. List of testers will be updated.

Good luck!

UPD 1:


We are in the middle of the round (and missing Gornak40 and Gol_D).

UPD 2: Editorial

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

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Its the 1729th codeforces round! The Hardy-Ramanujan number which is very well known in Mathematics

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Finally, my first out of comp-

wait this is div.3, not div.4

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As a tester, give me a contribution, please

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Good luck to everyone and I hope the problems will be enjoyable!

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First unrated DIV3 ❤️, hope to solve 6 or more problems this time!

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Hope to be Expert this round!

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Codeforces Language Picker -- chrome extension to fix codeforces language picker.

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Hopefully I'm gonna be green this contest.

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Div3 Ftw

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

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As a tester, I hope you enjoy the problem set! Good luck and have fun!

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Hoping to get a positive delta!!

Give me some upvotes. I'm sad! :(

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Div. 2.5

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    2 years ago, # ^ |
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    The comment removed because of Codeforces rules violation
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      2 years ago, # ^ |
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      Please don't talk about contests before they are finished.

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        2 years ago, # ^ |
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        oh sorry but i didn't tell anything consider a spoiler + easiness is a mysterious ( sorry my english is not good) term maybe its just easy for me right? + i see people say mathforces speedforcess etc.. in other rounds why this comment consider deferent from them

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          2 years ago, # ^ |
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          In my opinion ANY comment referencing the contest during it shouldn't be allowed, I'm not sure to what extent the codeforces staff want/can block this type of unfair comments, but in any case saying a problem is easy is a bit worse than saying all problems are easy (although I agree they should be removed as well)

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D is much easier than C.

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    2 years ago, # ^ |
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    No it is not. Like C took me 7 minutes at most, D took 15-20.

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      2 years ago, # ^ |
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      C took 20 minutes to understand the statement, and another 7 to implement it.

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        2 years ago, # ^ |
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        it took me 20 min to solve D and 20 min to solve C but another 30 min to find the mistake in my C

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any idea for problem no E?? binary search is one solution but it requires 60 quarries.

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    2 years ago, # ^ |
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    you can just ask 25 pairs (a, b) and (b, a), and you are able to print the answer once you've got different paths for an arbitrary pair. The probability of getting same path for each pair is 2^(-25).

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    2 years ago, # ^ |
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    u can just try every pair {1, i} and {i, 1} for i from 2 to 27. In each two query ({1, i} and {i, 1}) u have a 50% chance that u get distance in different directions. If u do, then the answer is ans1 + ans2, where ans1 and ans2 is results for queries. Also, if u get -1 at some point, it means, that the previous i was the greatest vertex in graph, so it should be the answer. So print i — 1 and return

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      2 years ago, # ^ |
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      Instead we can just take the pair (1,2) and query it 50 times. There is a probability of (1-2^-50) that we will get two different numbers. Just summing them ( with a +1 ofcourse) will give the result.

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        2 years ago, # ^ |
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        No, I too missed that part in the statement at first: after an answer is determined for a specific query, it wont change, so it will keep outputting the already computed value

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      2 years ago, # ^ |
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      Well, there is a possibility that all pairs are equal, right?! So why is the solution correct!! Could he give a wrong answer in my opinion.

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        2 years ago, # ^ |
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        yes, but that possibility is really really low, so it will almost certainly pass (and if it miraculously doesn't, submit a second time)

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        2 years ago, # ^ |
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        Yes, its possible, but the probability of it happening is equal to 1/2^25, which is veeeery small, so u can hope that it wont happen)

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          2 years ago, # ^ |
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          Please, can you explain where did the number come from(1/2^25)?

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            2 years ago, # ^ |
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            there are 25 pairs, the probability of each of them to equalize is 1/2 and also the probabilities are unrelated, so the probability for all of them to fail at the same time is (1/2)^25

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              2 years ago, # ^ |
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              Moreover, if you want your solution to fail then the average number of times you need to submit to get first WA is 2^25 ~ 10^7.5

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                2 years ago, # ^ |
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                Actually a bit less, remember there are multiple test cases. But in general yes, that's what I said, the solution won't fail

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      2 years ago, # ^ |
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      Gosh, I thought about that, but I was like "hey, this won't pass for whatever test case, there must be another way"...

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Was E ternary search?

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About problem E: what is the probability that out of 25 pairs of queries at least one pair of query will give distinct answers, e.g. query(a, b) != query(b, a)?

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    Roughly 1-2^-25 when n is big enough.

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      It is said that it may be equal but how you are so sure that it will be equal with 25 queries

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        The interactor chooses one of the two paths with equal probability.

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      But the probability of WA is not completely 0. Is there any deterministic solution?

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        Most likely not. It's the same as the Polynomial Hashes, there is a very small chance of failure, so nothing wrong probably

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          2 years ago, # ^ |
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          I thought that codeforces round always has some deterministic solution.

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            2 years ago, # ^ |
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            Well, again, Polynomial Hashes are not deterministic, yet still it's a popular way to solve problems on strings. There is nothing wrong about it. You just need to make sure the chance of failing is very small

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              I get it but usually there is always a deterministic solution. Polynomial hashes has deterministic alternatives.

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                2 years ago, # ^ |
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                Not always

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                2 years ago, # ^ |
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                "usually there is always a deterministic solution" well, there IS, it just needs more (than 50) queries. People often confuse a problem with a problem statement. You should not consider a problem statement in isolation, rather all of statement, input format, input constraints as a package. For example, for any NP Hard problem, we all know that there are no polynomial solutions. That does not mean they are not solvable. You can set small constraints and expect an exponential solution with some optimization here and there. In other words, this is the difference between math olympiad and programming contest.

                I hope that satisfies your itchy feelings about not having a 100% guaranteed solution. This problem was designed and the constraint was set specifically for a probabilistic solution. If more than 60 queries allowed, one can find an exact solution using binary search.

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      I see, thank you.

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I think that problem E is more suitable for div 2,it's really hard !!

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    No, the idea, especially with No hacks, 50 test cases, really says it uses random. Also, as there is no binary search, you can only rely on distances, but they could all be simply distances on a part of a graph, so you cannot guarantee the answer is correct. The only way is to minimise the chance of fail

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    We rarely have "easy" problems with randomized solutions. This is a good way to introduce randomized solutions to beginners

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      Yup. First time I have ever solved a question with randomized solutions

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Most unbalanced round ever, downvote.

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    I guess you've never heard of mr Green Grape

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Can anyone help me with my solution for Problem E? why is it not working and taking more iterations than 50? although my solution should run within log(1e18) < 50 (correct me if i m wrong here).

submission

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    log(1e18) > 50

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      Oops! I calculated log with base e (that is ~ 42). that is why i got confused.

      thanks mate

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cool E

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In question E how you can be so sure that ans will be find by just finding it upto 25

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According to some cursory analysis, my solution for E seems to have a 99.391488785% chance of passing a set of 100 test cases. Don't think this is the intended solution.

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    i guess it is (i did the same btw), because hacks are disabled and there are 50 tests only. Moreover, the problemsetters did even tell us that amount of tests is 50, which is kinda strange.

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      2 years ago, # ^ |
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      The problem emphasized "with equal probability" in bold letters, and also made sure to state that "? a b" will not necessarily yield the same result as "? b a". They also mentioned the number of tests in the jury (which I've never seen mentioned before in the problem).

      So yes, I am pretty sure the intended solution is to try "? a b" and "? b a" until you get something different. You do need to make sure you try distinct pairs each time, but there are easy ways of doing that (including ways that guarantee the correct answer if the result is ever -1). My submission: 171950029

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Great round <3 <3 <3

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How to solve C?

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    Find all the characters in string that lie between letters s[0] and s[n — 1] and use all of them for jumps.

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How solve E

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    2 years ago, # ^ |
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    I try every pair {1, i} and {i, 1} for i from 2 to 27 ^^

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      why till 27?? can you please explain?

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        Because there is a total of 50 queries, and for each vertex you need to use 2 queries

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          Hi Noobish_Monk. I have a doubt. If I print all my queries as 1 and 2 for 50 times, then if I get 2 different sets in my answer then it's just the sum . What's wrong with this approach. And the probability that I always get the same answer is 1/power(2,50) which should be approximately 0. Why do we need to print for 27 queries ??

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            2 years ago, # ^ |
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            The answer for the same query is the same However queries ? a b and ? b a are different So you can't just ask 1 2 and 2 1

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              2 years ago, # ^ |
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              I should have read that statement :( . Thanks mate :)

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        You can also do it from 4 to 29, because the problem states that n ≥ 3.

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Solution for E was probably meant to be different, But here is how I AC it:

Idea
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    2 years ago, # ^ |
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    IT'S IS THE INTENDED SOLUTION

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      Can you explain how it is the intended solution like very first thing that comes to mind is Binary search but it didn't work.

      I also tried the concept of binary search on infinite array but it failed at test 18.
      
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        2 years ago, # ^ |
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        Because of how many times the statement highlighted the idea of equal probability i think this is the intended solution.

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        2 years ago, # ^ |
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        There is no deterministic solution that guarantees 100% correctness. Suppose I was an adversary that doesn't have a specific graph in mind, or even a value of $$$n$$$, but I make answers to screw you over while always ensuring that there exists some graph that is consistent with all my answers. Then I can always ensure that each answer I give will be either -1 or some distance that is below the established lower bound from the program.

        With 50 queries, you can only gain enough information to distinguish between $$$2^{50}$$$ possible answers, However, the range for $$$n$$$ goes up to $$$10^{18}$$$ (which is much larger than $$$2^{50}$$$), so you cannot guarantee a correct solution.

        The problem dropped a lot of hints suggesting the randomized approach ("equal probability" in bold, clarifying that "? a b" and "? b a" are processed independently, specifying the number of jury tests, etc), so I'm quite sure this is the intended solution.

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          2 years ago, # ^ |
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          If you want your solution to fail then the average number of times you need to submit to get first WA is 2^25 ~ 10^7.5

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            2 years ago, # ^ |
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            Why can't we just use pair 1,2 and 2,1 25 times ? What is the probability that use these 2 pairs wont give me the answer in 25 queries ?

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              2 years ago, # ^ |
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              It is stated that the same pair will give the same result for all requests.

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              The problem states that repeating the same query will yield the exact same result every time. There is only a 1/2 chance that "? 1 2" and "? 2 1" will yield different results. If they both produce the same distance, then you will always get the same result for "? 1 2" or "? 2 1", so your probability of success will remain as 1/2. This is only for one jury test, so the probability of getting all 50 jury tests would be $$$\left(\frac{1}{2}\right)^{50} \approx 0.00000000000008817842\%$$$, which is not worth trying.

              But by trying different pairs each time, there is a 1/2 probability of success for each distinct pair. The probability that all 25 pairs fail is $$$\left(\frac{1}{2}\right)^{25}$$$, so the probability of being successful at least once is $$$1 - \left(\frac{1}{2}\right)^{25}$$$. A single success is enough to guarantee the correct answer. We need to pass 50 jury tests, so the probability of ACCEPTED verdict becomes $$$\left(1 - \left(\frac{1}{2}\right)^{25}\right)^{50} \approx 99.999850988\%$$$. It would be extremely unlikely for such a submission to fail, and I would be very interested to see if there is anybody who met this unfortunate fate.

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                2 years ago, # ^ |
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                Thanks for your explanation. This is helpful.

                I read this statement of same result produced for same query but didn't realise how important this was.

                Even after reading this, somehow I thought that using 1,2 & 2,1 still is random. But it seems like that the interactor is caching the result of the query.

                Similar to these lines, IMAGINE if 1,2 & 2,1 produced different results with 1/2 prob but they can produce different result every time, then we can just query 1,2 & 2,1 50 times right ?

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                  2 years ago, # ^ |
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                  If duplicate queries were rolled independently, then yes, you can just query "? 1 2" 50 times. You can mix in "? 2 1" as well, but it is completely identical to "? 1 2" in this case, so it doesn't matter. In this scenario, the probability of failure becomes $$$\left(\frac{1}{2}\right)^{49}$$$ (all 49 queries after the first one match with the first query).

                  Probability of AC becomes much higher then (though it was already high to begin with), and the implementation becomes much easier too (though it was already easy to begin with).

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              Even without luck being involved, it can very well be the case that 1 and 2 are on opposite side of the cycle so longer and shorter both lengths are INDEED equal. So you must take different pairs to keep a backdoor in case your queried vertices fall on opposite sides.

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                2 years ago, # ^ |
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                Ah, you're right; I forgot about that case. We can deal with this by simply performing 25 queries of "? 1 2" and 25 queries of "? 1 3". This slightly hurts the probability of success, but it's still very high.

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                  2 years ago, # ^ |
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                  25 queries of "? 1 2" gives the same answer each time. So you are really just wasting 24 queries in this case. Same goes for "? 1 3".

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                  2 years ago, # ^ |
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                  onebit1024 This was part of a discussion on the hypothetical scenario that each query is rolled independently, even if the same query was made in the past. In such a scenario, it would be optimal to repeat the same query (e.g., "? 1 2") 50 times instead of trying to find new pairs. If all 50 queries yield the same result, then the guess should be on twice this value (since it's likely that both paths have the same length).

                  Obviously, for the original problem E, repeating the same query would be a waste, so you have to keep trying distinct pairs (so the possibility that both paths have the same length would not be an issue at all).

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                  2 years ago, # ^ |
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                  Oh ok, sorry, I didn't realize that you were discussing a hypothetical scenario. Well in this scenario, this approach will work.

                  actually, during contest I tried the same thing because I missed the part where (a,b) would give the same result each time.

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          2 years ago, # ^ |
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          "Suppose I was an adversary" I don't need to read anything else. The solution will fail against an adversary. That's the whole point, that it was not an adversary, and it will honestly return any of the shorter or longer path from a to be with equal probability, without ever trying to make you fail. The moment an adversary comes into play, it will need binary search i.e. 60 queries.

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            2 years ago, # ^ |
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            The fact that an adversary will always be able to screw you over is definite proof that there does not exist a deterministic solution that guarantees correctness, which further suggests that the randomized approach is, indeed, the intended solution. Some people were unsure if that was the case, but I don't actually think there should be any doubt.

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Can anybody explain how they came up with the number 25 that checking this many pairs will have a different result?? really didn't get this part.

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    2 years ago, # ^ |
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    It's probability theory. We have a chance of success 1/2, same for failure. As we ask 25 times, we have a chance of failure equal to 2^(-25), which is a VERY small number

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    2 years ago, # ^ |
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    Since we have at most 50 queries, we can check 25 pairs in both ways. Assume we got a pair (a, b). Checking it both ways means that you chack a pair (a, b) and (b, a) since it can give different results. Since the output path length is randomized between the 2 paths(the short and the long versions, since it's a cycle), it's 50% chance for each to output.

    Asking 25 queries in this format and checking for -1 or different results for the (a, b) & (b, a) query. If you get -1, it means the last vertice(call it v; 2<=v<=26) is the correct answer, since the current one is out of bounds and the last one wasn't. So we output the last valid run. If the results differ, you can output sum of the results, since you got both paths for (1, v) pair and their sum is a complete cycle.

    This one failing has quite a low chance, since it's 1/2 for each path to be given for a query, it's 2^-25% chance of this idea failing, if I am not mistaken.

    I hope this makes sense.

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    2 years ago, # ^ |
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    You're allowed 50 queries. You make a pair of queries "? a b" and "? b a", and hope that you get different results for these two. If the results are different, then you can add the two results to get the number of vertices.

    I'm not sure if the guess counts as a query, but if it doesn't, then you have 25 pairs of queries to get this. If it does count, then you only get 24 pairs of queries, plus an extra query, and one for the answer.

    It's annoying that this is a randomized solution, but the probability of this failing is less than 1%, and there are many hints in the problem statement itself to suggest that this is the intended approach (equal probability in bold letters, mentioning that "? a b" and "? b a" are rolled independently, specifying the number of jury tests, etc).

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    2 years ago, # ^ |
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    Also if you ask why the numbers of allowed querry is not greater it's because with 60 querry (which is log2(1e18)) you can just get the result with a binary search

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Very interesting problems, especially F!I have really enjoyed it!

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I think my A problem is brief enough.Is there any person can give me some advice to simplify my approach further?

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Can anyone tell me what i am doing wrong in my solution of problem C ?

My submission

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    As the solution uses sorting I might suggest it's that the last index is not the last in your sequence. Or you could possibly go in the wrong order if p >= q or less than q. IDK, but that's most likely the mistake

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    2 years ago, # ^ |
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    Try "baba".

    I fell into the same trap and got WA. Thankfully, I figured it out before the contest was over.

    I didn't read your code (but I checked "baba" via custom invocation), but it's most likely due to your use of sorting. The assumption that your range covers all instances of first character and all instances of last character only applies if first character < last character. In the scenario where last character < first character, your range likely does not capture all instances of first and/or last character.

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    2 years ago, # ^ |
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    Here is the counter case for your solution: 1 yydia

    correct ans: 24 5 1 2 4 3 5

    Your ans: 24 4 1 4 3 5

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    2 years ago, # ^ |
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    Now it's Accepted!

    Accepted

    Thanks Noobish_Monk Andalus Nikhil19259

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https://mirror.codeforces.com/contest/1729/submission/171949266 Can anybody help to find a short test where my solution for C does not work?

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    2 years ago, # ^ |
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    one counter test case: 1 puvh correct ans: 8 2 1 4 your output: 8 3 1 2 4

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Whats wrong with my solution to C? 171872810

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To the author of problem E: how did you generate the tests? I'm curious to know. Btw, awesome contest!

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    2 years ago, # ^ |
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    Yeh same doubt regarding the E part of the contest, in all the test cases, input is in this form-

    3 9195979e279504391c49d2f080c1d8c755d044ca what is this — 9195979e279504391c49d2f080c1d8c755d044ca ?

    Shouldn't this be a long integer? Thanks.

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    I think you store the length of the permutation as well as it's index in sorted order. Not sure though...

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i was trying to solve F with condition s(l1,l1+(w-1) ) != s(l2,l2+(w-1)) when i read l1 != l2 then when i realaize my mistake the contest was over :(

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Can someone find a mistake in my code for 1729C - Jumping on Tiles?

Code: 171911705

Thanks!

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    2 years ago, # ^ |
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    Try "baba".

    I fell into the same trap and got WA. Thankfully, I figured it out before the contest was over.

    I didn't read your code (but I checked "baba" via custom invocation), but it's most likely due to your use of sorting. The assumption that your range covers all instances of first character and all instances of last character only applies if first character < last character. In the scenario where last character < first character, your range likely does not capture all instances of first and/or last character.

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Oh my god I solved E. I have never tried random algorithms in competitive programming ever. Too bad the contest is over by now, but holy fuck I would never believe that it would actually work. Holy Jesus. 171950813

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Nice problem D! It makes me difficult even though it's only div 3. Can anyone give me a solution ?

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    For C or D?

    For C, jumping directly to the end yields the minimum cost, which is |last character — first character|. How to maximize jumps? Observe that if you're in $$$\alpha$$$ and you jump to $$$\beta$$$ and then to $$$\gamma$$$ such that $$$\alpha <= \beta <= \gamma$$$, then the cost is the same as jumping directly from $$$\alpha$$$ to $$$\gamma$$$. So you can jump to any character in the range [current character, final character] and it would not affect the final cost.

    For example, with "logic", you can go from "l" to "i" to "g" to "c" because "l" > "i" > "g" > "c". To maximize jumps, you need to visit every character in the range [starting character, final character] in order (either non-increasing or non-decreasing order, depending on the relative order between first and last character).

    For D, if you calculate $$$y - x$$$, you basically get the person's balance from paying for their meal. This can be negative if they don't have enough money. You can then sort the balances, and try to pair the one with the lowest (i.e., most negative) balance with the highest balance. If the result is non-negative, it's a valid pair, and you can move on. If not, then the lowest balance is hopeless and you move to the next lowest balance (try with highest balance), and so on.

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Would you please review 171943515? Maybe it is wrong when $$$n$$$ is small, but I do not know how to fix it.

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    int isn't big enough to hold the values required.

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      Damn it you hacked me twice ^_^. Thank you very much!!!!!!!!!! When debugging in a limited time, it is easy to ignore some very basic facts...

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In problem E, all the AC solutions I've checked till now are querying

$$$?$$$ $$$1$$$ $$$x$$$ and $$$?$$$ $$$y$$$ $$$1$$$ where ($$$2 \le y \le 26$$$).

But how is that acceptable when the interactor chooses with a certain probability? Yeah, the probability of getting a correct answer is very close to $$$1$$$ ($$$1 - 2^{-25}$$$) but certainly not $$$1$$$. I thought of such a solution but ignored thinking since it can create a situation where same solutions may get AC and WA which is unexpected. I don't think this was a good/standard problem for a contest.

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    2 years ago, # ^ |
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    I did feel bothered by the fact that the intended solution is randomized, especially since I was trying much more complicated approaches before the contest ended, and only got AC after it was over.

    However, I think it's really a matter of opinion on whether this is appropriate. Randomized algorithms have numerous practical applications in the real world, so this kind of recognition that a randomized algorithm would work is a good skill to have, which can be argued as being among the type of skills that competitive programming should cover. Also, the problem did drop a lot of hints that this was the intended solution ("equal probability" in bold, mentioning that "? a b" and "? b a" are processed independently, mentioning the number of jury tests, etc), so I think it's justified in this case.

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    2 years ago, # ^ |
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    I personally think it was a great problem (maybe I have some bias since I solved it quite quickly in the contest). It makes you think outside of the box and consider non standard methods that you don't regularly see in CP, which ultimately is a great way to test/improve problem solving.

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Can someone explain how does the rating work, I'm confused a little bit because I'm new to codeforces.

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    It depends on your rank in the contest and your current rating.

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In problem E ,is it really fair to give such a probability based question in a contest because it's not like the probability of getting them all equal is zero right,just because of that many of us didn't go for that approach and the binary search one was exceeding the queries(which should actually be the intended solution).

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    The probability of success is over 99%, and the problem dropped a lot of hints to go for a randomized approach ("equal probability" in bold letters, clarifying that "? a b" and "? b a" are processed independently, mentioning the number of jury tests), so I think this was justified. I understand how one would assume there is a deterministic solution, but randomized algorithms have numerous practical applications in the real world, and recognizing when a randomized algorithm would be effective is a valuable skill for a programmer to have, so it can be argued that it should fall within the scope of competitive programming. I understand the concerns, but I think it's a matter of subjective opinion and cannot definitely be ruled as "unfair".

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Is there a deterministic solution to the problem E, which always works no matter how the generator is configured?

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    No. An adversary can always ensure that the result for each query is either -1 or some distance that is less than the current lower bound that was established. Therefore, there are essentially two possible types of information to be gleaned from a single query. With 50 queries, this only allows identifying up to $$$2^{50}$$$ different values, which is less than $$$10^{18}$$$. So there is no 100% correct deterministic solution.

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Is square root decomposition the intended solution for problem F?

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    there is no need in sqrt decomposition, the only data structure we actually need is prefix sum array

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In problem E, shouldn't it be "in C++ you should use function fflush(stdout)"?

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Any hints for G?

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    Hint1
    Hint2
    Hint3
    Hint4
    Code
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An interactive problem without Binary Search ,,,,,, surprising

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how to solve problem c? I used priority queue but got wa

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    The minimum distance is simply the distance from jumping directly from the first to the last.

    How to maximize jumps? If you go from $$$\alpha$$$ to $$$\beta$$$ to $$$\gamma$$$, where $$$\alpha \leq \beta \leq \gamma$$$, the total cost is the same as going straight from $$$\alpha$$$ to $$$\gamma$$$. So you can keep jumping to an intermediate index, provided that the character in it lies between the previous character you were in and the next character that you're going into. So if you need to jump from "b" to "f", then you can jump into all of the characters in the range [b, f], in non-decreasing order. By the same argument, if your final character is actually smaller than the first character, you can still jump into all characters in the range, but in non-increasing order this time.

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Anyway,I dont think E is a good problem.

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    Randomized algorithms are not that bad!

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      Randomized algorithms are the best thing in the whole universe.

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        Especially when they're not the intended solution

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          Based.

          Btw, are u talking about today's E? Wasn't the randomized solution intended?

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    I agree. Giving such an easy problem at E is confusing. I got the idea in maybe 10-20 seconds but kept wondering whether there are any tricky scenarios or edge cases. It should've been in D.

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      Same too. Got the idea immediately but said to myself "it cant't be that stupid".

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So I was just casually looking at the hacks corner and found a few hacks for problem A which seem way too odd.

171954115, by: vaibhav_1710 to: chaudharyvaibhav184; 171952586, by: andreifilimon to: wavetome;171877008, by: mihir2808 to: suiiiii

Now how and why in the world did all these people put an a is equal to some random no. check? I don't know where to report these so I'm just posting it here. There are points for hacks so this should count as a violation right?

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    2 years ago, # ^ |
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    There are some telegram channels which sell these solutions during the contest for as cheap as 20-30 cents per question.

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I like problems with randomized solutions. It would be great if there were more such problems as today's E.

Do you like randomized algorithms?

— Yes

— No

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    2 years ago, # ^ |
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    I don't know what to say about $$$E$$$, I had that idea early, but I doubted it would work, then i submitted it in the last minutes (because why not) and somehow it worked, but I got high penality.

    I'm certain that many people (maybe hundreds) had this solution in their head but they didn't try because it depends on luck :D

    So i don't like this random algorithm.

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Any hints for F? I'm guessing there's some number theory property related to mod9 as $$$w$$$ can overflow int64.

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    2 years ago, # ^ |
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    Hint: any number in decimal mod 9 = the sum of its digits mod 9. It would be a good exercise to prove this statement.

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      Hint about proving this statement & other similar statements
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    Try this input:

    2
    azz
    bz
    

    The map yields values from 1 to 26. When adding elements to the 2D vector, the first index is given by the map, so the first vector index also ranges from 1 to 26 (1 for 'a', 26 for 'z'). However, when clearing the vector at the end of the test case, only indices 0 to 25 are cleared. So any instances of 'z' saved from earlier test cases (at v[26]) will continue to remain in future test cases.

    (note that v[26] is technically out of bounds, since v was declared to have size 26; this will not necessarily be detected as an error, and the program may continue to use v[26] as the unallocated memory location that sits 26 steps from the start of the vector, until an issue arises with this location later)

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In problem E, hacks are disabled. Is system testing also disabled or can it be a FST?

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    The problem statement says that there will be 50 test cases and there were 50 pretests. So I'm presuming that there will not be any system testing for E

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Curious to know if rating changes have been applied or not for this round. It is showing me as a unrated contest atleast for me when I tab the "all contests" dropbox in rating graph. Or this is a normal case when rating is not updated till now.

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    2 years ago, # ^ |
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    It shows it as an unrated contest if rating changes haven't been applied. As of now, the hacking stage has just gotten over and the system testing still has to commence.

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How to do Question E

If n<10^15 or number of queries < 60 my solution of ternary/binary search would have worked. My naïve idea= ask query as "? 1 m" . if this returns -1 decrease value of m or else increase

but this uses 60 queries. How to approach this types of question

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    2 years ago, # ^ |
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    The issue with binary search is that you can only eliminate at most 1/2 of the search space consistently; in fact with question E I think there is no way to get a solution that you can be absolutely 100% sure is correct.

    There is a solution though that has about a 99.99% chance of being correct. It's only possible because of the problem emphasizing that one of two paths will be chosen with equal probability.

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MikeMirzayanov is the only one without laptop in the picture.

Also I don't know the others. Does anyone else know all of them??

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    2 years ago, # ^ |
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    It's the ITMO university team. Just read earlier in the post. There are seven in the team, but two are not in the picture (specified in the caption). I'm pretty sure the seven of them all know each other, and there are probably other people (possibly from ITMO University as well) that would also know them, but I'm not sure why you're so interested in them.

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How do you realize when system testing is over in edu rounds and div3 rounds? At the end of hacking stage, it says "Final standings, open hacking phase finished". But don't system tests take place after this, in that case how is it final?

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    System testing in these rounds usually happen 4-5 hours after hacking phase

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      I am aware that system testing takes place a few hours after hacking. I am just curious as to how you realise whether sytem testing has finished or not. Like for round 820, what indication do I get to understand that system testing is done or not?

      All it says is "final standings" which isn't true I think because system testing hasn't started.

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2 years ago, # |
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when will the ratings be assigned?

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Why are ratings still not published, is this round rated or unrated

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    This round had 12 hours of hacking phase, which will be used to re-judge all of the solutions as far as I know. The hacking round finished a few hours ago, now hacks are being analyzed most likely and after re-testing, ratings shall be published, so a few more hours probably.

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I am having trouble with this, please share your insights.

  • What is your comment on the difficulty or standard of problem E?
  • Is it a good problem or an average one?
  • Can hard problems have such simple solutions? If so, can you give some examples?
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Cool update. Would love to have these in future rounds as well :)

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I think if this problem was placed in the A place,there will be more people solved it.Many people had the corret idea,but they think this solution is not fit to E problem.This kind of problems may be good,but where they should be placed is still a problem.

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    2 years ago, # ^ |
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    Well, A through D are easier than E, so everything's fine, imo. And if it had been set as A, more participants would have been determined to dodge this round.

    I think we are forgetting, that this is a Div3 round. This E is even harder, than usual E Div3 problems, imo again.

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When will the rating change? my rating has not changed yet

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    Same stuff, pal. I am so looking forward it :D

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Problem F video editorial.

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Finally ratings are updated :D

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why is taking so long to update ratings? :/

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G can be solved in $$$\mathcal{O}(m + n\cdot \log(n))$$$ time and $$$\mathcal{O}(n + m)$$$ memory, by using dp + segment tree.

First compute starting positions of occurences of $$$t$$$ in $$$s$$$. This can be done in linear time in many ways (I used z function). It's easy to notice that we can apply operations in order from right to left. Then, we will compute $$$dp_i$$$ = answer if the rightmost operation was applied to range $$$[i,i+m)$$$.

To compute $$$dp_i$$$, we could iterate to the left of $$$i$$$ on the starting index of the next operation (let's call it $$$j$$$). Two things need to happen:

  • If there is an occurence of $$$t$$$ in $$$s$$$ that is completely between $$$[j+m, i-m]$$$, it won't be covered by any operation, so $$$j$$$ is not valid. This defines a lowerbound on the value of $$$j$$$ (we can easily mantain it when increasing $$$i$$$ by using two pointers).
  • if $$$j+m-1 \geq i$$$, then $$$j$$$ is not a valid candidate, because given that we apply operations from right to left, the operation on index $$$i$$$ removed some of the characters of the occurence starting on index $$$j$$$. This defines an upperbound on the value of $$$j$$$.

This two conditions define a valid range of values for $$$j$$$. We just need to be able to combine the $$$dp$$$ values of this range. We can use segment tree to get this merged value.

Overall, we compute occurences of $$$t$$$ in $$$s$$$ in $$$\mathcal{O}(m + n)$$$ and then compute $$$dp$$$ values in $$$\mathcal{O}(n\cdot \log(n))$$$, so final complexity is $$$\mathcal{O}(m + n\cdot \log(n))$$$ with $$$\mathcal{O}(n + m)$$$ memory.

Here is a link to my submission :)

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I solved 2 problems in this round but still, the rating is not updated. what is the estimated time it takes to update the ranking?

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2 years ago, # |
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System Testing has ended way back.... then why so long in rating update?

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Editorial section still not uploaded

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I like E. Open my mind.

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    2 years ago, # ^ |
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    I didn't. Even though the probablity is 50-50 still there's a chance that the ans for "? a b" is same as that of "? b a" for the first 50 queries. Change my mind :(

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      2 years ago, # ^ |
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      Probability of all 50 queries failing and none giving an useful information is 2^-25, that's basically somewhat like 99.9998% chance of a solution passing.

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        2 years ago, # ^ |
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        I don't get this. It fails for an edge case right. What if I'm the testcase author and I wantedly set such a case?

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          2 years ago, # ^ |
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          Testcases are random as well, it's not a preset. The answers are generated randomly while testing.

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          2 years ago, # ^ |
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          it's not about case work. In statement it is said, that The interactor chooses one of the two paths with equal probability

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      2 years ago, # ^ |
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      Probability 0.00000003 is small enough to never happen, that's it

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        2 years ago, # ^ |
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        See I get this but they've mentioned that the answers for the queries are pre-determined right so there is a chance that the solution fails for a case.

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          2 years ago, # ^ |
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          No, answer is not pre-determined. It becomes determined only after you ask about this pair

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          2 years ago, # ^ |
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          Or, if will be better to understand, they are pre-determined, but not with bare hands, but using a randomised algorithm, that randomly picks pre-determined answer for each pair. It is still the same task

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2 years ago, # |
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I submitted this solution https://mirror.codeforces.com/contest/1729/submission/171912216 to the problem D yesterday during the contest, and after the system testing, it gave me a runtime error on test 7. In contrast, after system testing, I submitted the exact same code I submitted yesterday, to the problem and it got accepted. This is the link to that accepted solution https://mirror.codeforces.com/contest/1729/submission/172063331. You can check both the solutions are precisely the same line by line. So why does my code fail in system testing? MikeMirzayanov Vladosiya senjougaharin Gornak40 Aris Gol_D myav

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    2 years ago, # ^ |
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    I do not run your code, but I think while(a[max1] >= 0 ) max1--; is dangerous. What if max1==-1? This causes undefined behaviour. I review your code on a mobile phone. Maybe I am wrong.

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    2 years ago, # ^ |
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    Maybe thats the reason of ratings changing delay

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    2 years ago, # ^ |
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    I didn't review it in depth, but considering the above comment, I suppose your code once slipped with out of bounds indexing, while another time it didn't. Might be because of the second time out of bound index still made sense(maybe bcs it was allocated at some other place where the resulting index was valid). You can try to send it again, you might get another runtime or might not, lol. Not sure what are the chances of the same happening again.

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    2 years ago, # ^ |
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    This part will just keep doing max1--; while the value in *(a+max1) >= 0 even if max1 less than 0

    In the first time it worked because maybe the value in the memory just before a[0] is minus.

    in system testing maybe it was positive, so actually your code is wrong, and you are lucky that you got accepted 2 times.

    while (a[max1] >= 0){
            max1--;
        }
        max1++;
    
    
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      2 years ago, # ^ |
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      Yes, I got it but then why does the other submission get AC it should also give RE. Btw, thanks for pointing it out! I can sleep well now!

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2 years ago, # |
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After more than 24 hours and still no editorial.

and we still don't know whether this round is rated or not.

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2 years ago, # |
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Plz, dont tell me this round is unrated... I am yearning to get expert D:

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2 years ago, # |
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Pain

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2 years ago, # |
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I only think that problem C have problem in descrption?????

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    2 years ago, # ^ |
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    I don't think there is any issue with the description in Problem C. There was an issue with number of jumps vs number of visits, but this was corrected during the contest, and it was quite clear as to what was meant since the output specification required that the first value must be 1 (which is not a location that is jumped to).

    By the way, if you're wondering why your submission got Wrong Answer in Test 2, try the input string "baba". This is a common error from submissions that utilize sorting pairs. If the first character is smaller than the last character, then there is no problem, since you start from first instance of first character to last instance of last character in sorted order. But if the first character is larger than the last character, then you have to read in reverse. In this case, going backwards from the first instance of the first character will skip the later instances of the first character (if any). Ending at the last instance of the last character from a backwards sequence also means you skip earlier instances of the last character (if any).

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2 years ago, # |
Rev. 3   Vote: I like it +13 Vote: I do not like it

Positive delta guys atm:

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2 years ago, # |
Rev. 2   Vote: I like it +1 Vote: I do not like it

Waiting for cf round 820(div-3) rating update is like a deadlock!!

Study calling ratingUpdateChaking->
RatingUpdate checking calling TimeSpending->
timeSpending calling study ->
study calling ratingUpdateChecking

End of the day, waiting waiting waiting........


UPD : Rating updated

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2 years ago, # |
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There has to be a good reason as to why can't I see editorials yet after 24 hrs

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    2 years ago, # ^ |
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    Probably because it hasn't been published yet

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      2 years ago, # ^ |
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      Why do you behave like a 4yr old?? You think this answer will help anyone??

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        2 years ago, # ^ |
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        no, ur comment is dumb

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        2 years ago, # ^ |
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        Sorry, I didn't mean to offend you, but is it really useful asking the same question over and over though there's no answer from the officials ? We'll get the editorial when it comes out and hopefully with an explanation for the delay and in the meantime, there's enough to do else.

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2 years ago, # |
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patiently waiting...

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2 years ago, # |
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Mike is starting to purge the cheaters so it should be rated very soon.

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    2 years ago, # ^ |
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    A great initiative. I'd rather wait 1 more day than give 10 more contests to get my desired rating just because of cheaters.

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      2 years ago, # ^ |
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      Are there really lots of cheaters? I'm a newbie, I thought they're not a common thing

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        2 years ago, # ^ |
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        There are dedicated telegram groups of 4000+ members distributing codes during contest

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          2 years ago, # ^ |
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          Ah.. well... It's kinda strange :0

          What's the interest of participating then? I don't understand...

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          2 years ago, # ^ |
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          Once Codechef updated the ratings of a bunch of contests together after removing the cheaters. After removing the cheaters, i reached 4* rating which I never thought I will ever reach. So yeah lets be patient and let cheaters face the consequence.

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2 years ago, # |
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When the rating will be updated?

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2 years ago, # |
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I hope Codeforces team isn't kidnapped or something

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    2 years ago, # ^ |
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    XD Ratings are up

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      2 years ago, # ^ |
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      exactly after he wrote this comment ... something looks kinda sus

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        2 years ago, # ^ |
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        I know a guy who knows a guy. Who knows a guy

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      2 years ago, # ^ |
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      What’s the difference between common standings and friends standings , common standings I have 3.6k ish rank while friends standings I have 4.1k ish rank Any idea ?

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        2 years ago, # ^ |
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        In common standings you can see [trusted participants only] written at the top. To qualify as a trusted participant of the third division, you must: take part in at least five rated rounds (and solve at least one problem in each of them) do not have a point of 1900 or higher in the rating. Hence friends standing does not have this filter and common standings are after this filter. So, Rank in CS < Rank in FS.

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2 years ago, # |
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Dear codeforces,

You have provided me with notice of copying but I found the code before the end of the contest on a youtube channel named cp rush.Below is the link to the video: https://youtu.be/TWG03knRpqM Also there could be many other people with same ideas and I did not cheat nor did I copied from any person mentioned in the mail. So I request you to take back the strike please.

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    2 years ago, # ^ |
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    That's cheating, the video was published after the contest started. You basically copied a leaked code during the contest not cite an existing solution which was publicly available before the contest

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2 years ago, # |
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Finally became a blue biscuit.
If I don't become CM in 6 months, I'll dunk myself in chai.

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2 years ago, # |
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Thanks to this competition for making me an expert。

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2 years ago, # |
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Auto comment: topic has been updated by Aris (previous revision, new revision, compare).

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2 years ago, # |
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Hope everyone have a good mark!

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2 years ago, # |
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why are arashjay?![user:arashj]