Tsovak's blog

By Tsovak, history, 2 months ago, In English

Thank you all for participating in the round.

All the problems were created by BiNARyBeastt during our classes in winter.

A — Simple Palindrome

Solution
Code

B1 — The Strict Teacher (Easy Version), B2 — The Strict Teacher (Hard Version)

Solution
Code

C — Lazy Narek

Solution
Code

D — Alter the GCD (Check this comment or the video editorial for an easier solution).

Solution
Code

E1 — Subtangle Game (Easy Version), E2 — Subtangle Game (Hard Version)

Solution
Code (E1)
Code (E2)
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2 months ago, # |
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We trained Tsovak to post this faster than the speed of light, but we failed miserably due to the AI situation.

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    2 months ago, # ^ |
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    We actually leart about that super-smart AI two days ago and it appeared to be able to solve the problems A to D, and almost E1, so we had to change D within less than 24 hours)

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      2 months ago, # ^ |
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      damn, thank you for the dedication

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        2 months ago, # ^ |
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        That is most likely because the person doing the prompts did a really good job with smart prompts. Many of us tried the new paid version a few times, and it didn't manage to get past test 6.

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          2 months ago, # ^ |
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          He claims no special prompt here: https://codeforces.me/blog/entry/133962

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            2 months ago, # ^ |
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            Then maybe we got unlucky. For example, when I was checking for D, it managed to solve it the first two times I asked. Later, I copied the statement and sent it again, but it gave a wrong answer. I guess its results are not consistent all the time.

            I'm not sure how it works to be honest, so I'm still not sure if this is the reason.

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      2 months ago, # ^ |
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      I have an idea, maybe we don't need to be afraid of AI, if people can use AI to solve problems, we can also use AI to generate problem sets that can confuse itself. But to do that, maybe we need knowledge and experience in both CP and writing prompts.

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      2 months ago, # ^ |
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      then what is the point of my life ? ToT

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2 months ago, # |
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281181064 Can somebody tell me why this is giving WA? Suppose array is 2 3 4 5 , and teachers are at 2 5 , the possible values for mid can be both 3 and 4 . I simply calculated the min value for both the possible mid values from each of the teachers. If the array was something like 2 3 4 , then there was only 1 mid (ie 3) hence no issue.

281191926 This passes , wherein I am taking only the (min_max)/2 value, ie 3 for array 2 3 4 5.

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    2 months ago, # ^ |
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    The thing is, when teachers travel a distance of min(x - b[0], b[1] - x), then x can choose to remain at its current place. After this, you can directly calculate the mid point of the new locations of the teachers, because x would try to go towards the teacher, which is farther from it.

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      2 months ago, # ^ |
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      "you can directly calculate the mid point of the new locations of the teachers"

      The midpoint and the distance from the teachers will same regardless, wont it?

      2 3 4 5 if I take 3 as mid, 3-2=1, 5-3=2. min=1; if I take 4 as mid, 4-2-2, 5-4=1. min=1;

      Since the teachers will always be moving towards the middle, the mid value will remain the same every time right?

      You can say that with this insight, I could just find the answer for mid=(max+min)/2 and it would satisfy the answer, but at the same time finding min distance from both and then printing the minimum shouldn't result in WA.

      Apologies if I missed something.

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        2 months ago, # ^ |
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        Yes. You're right. Mid point doesn't change. But the mid point you are talking about, is the array mid point, and not the actual mid point. The actual mid point of two teachers would be (b[0] + b[1]) / 2, and NOT the middle element of the subarray from b[0] to b[1]. Hence, for array [2, 3, 4 ,5], the mid point of the array is (5 + 2) / 2 = 4, and not b[4/2] or b[4/2-1]. Hence, the number of steps required would be (b[0] + b[1]) / 2 - b[0], which is nothing but (b[1] - b[0]) / 2.

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          2 months ago, # ^ |
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          Thankyou for your time. The code got accepted, I missed putting the condition in brackets. So demotivating.

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2 months ago, # |
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for B, i didnt see that he can choose not to move, and i coded the completely wrong solution for 20 mins, tragic. great problem C, i absolutely loved it.

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2 months ago, # |
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can someone help me why this code gets wrong answer for problem C

submission: https://codeforces.me/contest/2005/submission/281243184

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2 months ago, # |
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how to train for problems like C?

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Spoiler
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2 months ago, # |
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Can someone explain how did I get TLE in C? I thought my code works in $$$O(N * M * 25)$$$: 281197818

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    2 months ago, # ^ |
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    It is $$$O(nm + n^2)$$$, no?

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    2 months ago, # ^ |
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    I made the same mistake as you. Your actual complexity is $$$O(25NM + 25N^2)$$$ due to the for loop calculating dp, and there's no upper bound on the sum of $$$N^2$$$ across all test cases, only upper bound on $$$NM$$$ :sob:

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    2 months ago, # ^ |
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    Can anyone plz check my submission , I'm getting TLE on tc19 281877355

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2 months ago, # |
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The contest is amazing!

my only complaint is the protests on problem C could have been better ):

I was going to become a CM for the first time If there were stronger protests.

Thank you for the contest as usual!

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2 months ago, # |
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281249215 can anyone explain why this code getting wa on pt 11 problem c ! i dont think there is an wrong idea !

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2 months ago, # |
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for problem A

Expected output : aaeiou , palindromes subsequences a , a , e , i , o , u , aa

My output : aeioua , a , e , i , o , u , a , aa

Why my output is considered as wrong answer , can anyone explain?

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    2 months ago, # ^ |
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    For the string aeioua, other palindrome subsequences include aea, aia, aoa, and aua.

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    2 months ago, # ^ |
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    You missed palindromes like aea , aia , aoa , aua

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I got TLE at C problem and I think it works in (5 * n * m)
solution
am I missing something ?

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    2 months ago, # ^ |
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    It is O(nm+n2) 
    
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      2 months ago, # ^ |
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      How ? I wrote a function that works in (m) and I loop only once over n

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    2 months ago, # ^ |
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    you just need a little bit of optimization. using vector to replace map is ok. see this submission : 281260161

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      2 months ago, # ^ |
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      OMG...just the map that works over only 5 chars have 1.5 second difference !
      thanks for the accepted code it was annoying me

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2 months ago, # |
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lol, so fast

... thanks :D

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2 months ago, # |
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Anyone else lost question C by initializing dp to -1 instead of -inf? :(

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2 months ago, # |
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Nice round.

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2 months ago, # |
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thanks for the fast editorial!

in the problem $$$B1/B2$$$, C++ upper_bound and lower_bound both should point to element strictly $$$>a[i]$$$ (david's position) since $$$b[i]$$$ only contains teacher's positions. or is it not so? my contest submission using both lower_bound and upper_bound got WA.

my contest submission

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2 months ago, # |
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Bitset helps to solve E2 without any observation. 281264340

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    2 weeks ago, # ^ |
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    i did same yay! first bitset solution for me in cp.

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Why is my submission for C getting TLE on test 11? I think the complexity is $$$O(5*N*M+10*N)$$$.

Submission: 281248462

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    2 months ago, # ^ |
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    You're initializing your dp with -1, so if the answer at a certain state was -1 it will call the solve() function again instead of returning the previously calculated answer (which is -1). Instead you can initialize with -INF or create another array to check for visited states.

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      2 months ago, # ^ |
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      Thanks, that was an overlook.

      Although, I realized I linked the wrong submission earlier. Updated the submission link.

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For problem E1, can someone help me understand why Narek wins in this testcase :

6 6 6
1 2 3 4 5 6
1 2 7 7 7 7
7 2 7 7 7 7
7 7 3 7 7 7
7 7 7 4 7 7
7 7 7 7 5 7
7 7 7 7 7 6

This is my submission which is failing for this test : [submission:https://codeforces.me/contest/2005/submission/281255124]

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    2 months ago, # ^ |
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    1. Move $$$1$$$. Tsovak takes $$$(1, 1)$$$.

    2. Move $$$2$$$. Narek takes $$$(2, 2)$$$.

    3. Move $$$3$$$. Tsovak takes $$$(3, 3)$$$.

    4. Move $$$4$$$. Narek takes $$$(4, 4)$$$.

    5. Move $$$5$$$. Tsovak takes $$$(5, 5)$$$.

    6. Move $$$6$$$. Narek takes $$$(6, 6)$$$.

    7. Move $$$7$$$. Tsovak loses since the array ended. Narek wins.

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      2 months ago, # ^ |
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      Oh, I seem to have misunderstood the problem. I thought that they can only choose elements from the array A. Since the array A has only the element 6, how can Tsovak pick (1, 1) or (2, 1)?

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      2 months ago, # ^ |
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      I've updated the testcase correctly. Can you look and tell me now why Narek wins?

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        2 months ago, # ^ |
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        Edited my comment since it would be misleading for the readers otherwise.

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funny how in problem C "problem tags" there is greedy and the first thing editorial says is that greedy approach doesn't work.

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    2 months ago, # ^ |
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    It is my bad for not properly stating what I meant by greedy in the hint section. The tag is relating to the fact that you can greedily count the score when you choose one string. I meant that you can't do greedy on each string without considering their connection with each other by dp.

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can you please share some tests for C, cant debug it :(

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I solved E1 in O(n*m*l) time complexity. Can anyone uphack this solution?

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    2 months ago, # ^ |
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    I think this is the intended complexity for E1

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      2 months ago, # ^ |
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      anyone know why it can pass O(nml) even when you iterate the full 300^3?

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      2 months ago, # ^ |
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      I fail to understand why they have given the upper limit of the numbers as 7. I never used that fact in my O(n*m*l) dp

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        2 months ago, # ^ |
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        This is only required in E2. For E1, a solution with O(n * m * l) should pass

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          2 months ago, # ^ |
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          But in E2 they have not mentioned the upper limit to be 7

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        2 months ago, # ^ |
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        That is to help you make an important observation for E2. If you check all the hints, you can see what I mean.

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          2 months ago, # ^ |
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          why make O(nml) passable when the intended for E1 is O(nm) based on the 7 observation?

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            2 months ago, # ^ |
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            To kind of help people make that observation for E2. Also, we were not allowing O(nml) pass initially. The difference between E1 and E2 used to be only between the matrix numbers. Testers struggled to find this observation though, so we changed it.

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what is wrong in my recursive dp soltuion 281269592 please help me to debug, tried for so long but not able to find

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    2 months ago, # ^ |
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    I made some changes to it and now it passes. I know this part was a problem:

    if (ind == arr.size()) {
        return -ct1;
    }
    

    because I made the same mistake during the contest. It should be (-2) * the current "narek" index, which in your code is last. 281276687

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      2 months ago, # ^ |
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      Thanks really helpful

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      2 months ago, # ^ |
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      the reason for wrong answer is

      dp=max(ans1,ans2) in place of dp=max(0,max(ans1,ans2)
      
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Tsovak BiNARyBeastt Kaey TheScrasse

I tried uphacking my solution 281180437 for problem D, and it got an unexpected verdict.
I believe one of the correct marked solutions on polygon also gets TLE on this hack test case.
Can you please take a look at it and fix it?

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    2 months ago, # ^ |
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    We were aware of this, and we also know a solution that won’t exceed the time limit. We are currently working on updating the editorial and the main solution accordingly. TheScrasse coded the solution to D just minutes before the start. We took a risk by making the problem harder, asking for the number of ways to get the maximum GCD, so that AI wouldn’t be able to solve it. Thanks for noticing this though!

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I solved E1(2100 rating on clist) but was not able to submit it because of internet connetion problem.

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can someone help me with why we cant solve problem c with take not take dp?

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I tried top down approach for C, but am getting WA on test 2, can somebody tell me what's wrong? 281270159

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Why this solution is accepted after sorting and not without it

int main() {
    int t;
    cin >> t;
    vector<string> vowels = {"u", "o", "i", "e", "a"};  
    while (t--) {
        int n;
        cin >> n;
        string result = "";
        for (int i = 0; i < n; i++) {
            result += vowels[i % 5];  
        }
        sort(result.begin(),result.end());  
        cout << result << endl;  
     }
    return 0;
}
    
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    2 months ago, # ^ |
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    Because sorting it puts all the a's together, all the e's together, all the i's together and so on. It doesn't have to be sorted but the occurrences of every vowel need to be grouped together. And sorting is one way to do that. This is an example of a string that's not sorted but still works: eeeoooiiiaauu

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    2 months ago, # ^ |
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    Because for example n = 6 Then without sorting it would print: uoieau It also contains the following palindromic subsequences: uou, uiu, etc Whereas after sorting it prints: aeiouu, which doesn't contain these subsequences Basically you were missing the core logic

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My submission for C can someone please help me figure out why this solution TLE'd? This seems to be O(5*m*n) :(

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    2 months ago, # ^ |
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    well your solution looks exactly same as mine and even i got TLE on pretest 11 during contest so i am assuming we did same mistake, the thing is you have intialised your dp array with -1. during calculation of dp[i][j], some of the states answers can be negetive when gpt gets better score, and there is some case where your dp[i][j] is getting calculated as -1 itself. and hence your just going on in that cycle where your dp[i][j] is always -1. i just replaced -1 with -1e18 and it worked.

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About C:Since you want $$$O(n^2)$$$ algorithm got a TLE, why don't put the data in pretest? $$$n \le 10^3$$$ is very deceptive!

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    2 months ago, # ^ |
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    Sorry! We overlooked that there might be a solution with that complexity. Unfortunatly, none of the testers came up with anything like that as well.

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I have no idea why "if $$$dp_{k,i,j}$$$ wins, then $$$dp_{k + 2, i, j}$$$ also wins".

In fact, I add an assertion in my code, and it received RE(assertion failed) on E1, test 2.

The submission is here: 281298383

Here is (probably) the hack:

1
6 6 6
1 2 3 4 5 6
1 1 7 7 7 7
7 2 7 7 7 7
7 7 3 7 7 7
7 7 7 4 7 7
7 7 7 7 5 7
7 7 7 7 7 6
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    2 months ago, # ^ |
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    Note that $$$dp_{1,1,2}$$$ is $$$1$$$, while $$$dp_{3,1,2}$$$ is $$$0$$$.

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    2 months ago, # ^ |
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    In your example, regardless of the value of k, i, or j, the starting player can always start with the last 6 (the one at (n, m)), and the subrectangle starting at (n+1, m+1) will be empty. According to the rules, this means the second player loses. So actually all dp values are 1 in that case.

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      2 months ago, # ^ |
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      You are right though. I think it's not correctly written there.

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    2 months ago, # ^ |
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    We fixed the editorial. The solution was still correct. We just had a wrong hint there for some reason.

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rare c d e dp contest

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/

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Why in problem C, I let define int long long in my compiler output 0 5 0 7 (correct result of test 1) but in my submission it is 0 5 0 6. After deleting define int long long then it has AC.

My submission

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A (probably) more simple solution to D.

We will also make use of the fact that there are only $$$O\left(\log(\max(a))\right)$$$ different prefix gcd, but we will use it on all subsegments instead:

  • Iterate $$$l$$$ from $$$1$$$ to $$$n$$$.
  • Imagine that we already have some $$$r \geq l$$$, then we have 3 ranges to consider $$$[1, l)$$$, $$$[l, r]$$$, $$$(r, n]$$$.
  • For $$$[1, l)$$$, we can maintain $$$\tt{prefix}_a$$$ and $$$\tt{prefix}_b$$$ as $$$\gcd(a_1, a_2, ..., a_{l - 1})$$$ and $$$\gcd(b_1, b_2, ..., b_{l - 1})$$$.
  • For $$$[l, r]$$$, realise that there are only $$$O\left(\log(\max(a))\right)$$$ different values of the gcd of both $$$a$$$ and $$$b$$$, and each values will correspond to a continuous range of $$$r$$$.
  • For $$$(r, n]$$$, the same thing apply.
  • So in fact, for each $$$l$$$, there are only $$$O\left(\log(\max(a))\right)$$$ different values of the result, and each value has a continuous range of $$$r$$$.
  • So if we can find all those ranges and iterate through them, we will have $$$O\left(\log(\max(a))^2\right)$$$ per $$$l$$$, assuming $$$\gcd$$$ take $$$O\left(\log(\max(a))\right)$$$.

To find the ranges for $$$(r, n]$$$, we can simply iterate the arrays in reverse and maintain the gcd ranges, leading to $$$O(n\log(\max(a)))$$$.

To find the ranges for $$$[l, r]$$$, build a sparse table with gcd, and keep expanding the divisible ranges to find the points where the continuous gcd changes. This will take $$$O(n\log(n)\log(\max(a)))$$$ to build and $$$O(\log(n)\log(\max(a)))$$$ to find the ranges for each $$$l$$$.

You can see my implementation in contest: 281217872

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    2 months ago, # ^ |
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    This solution have since been uphacked by 415411. The test seems to put the algorithm in the worst case and that was slower than model.

    Thanks to the hack, I was able to improve upon the algorithm:

    • Building the gcd sparse table is useless, it allow us to find the $$$[l, r]$$$ ranges as a query in $$$O(\log(n)\log(max(a)))$$$, but this is not necessary.
    • Instead of iterating $$$l$$$ from $$$1$$$ to $$$n$$$, we can do it from $$$n$$$ to $$$1$$$ instead.
    • At $$$l$$$, we calculate all the different $$$r_i < r_{i + 1}$$$ such that $$$[l, r']$$$ have the same $$$gcd$$$ for all $$$r_i \leq r' < r_{i + 1}$$$.
    • When iterate to $$$l - 1$$$, we append the element at $$$l - 1$$$ to the beginning of these ranges.
    • Realise that this is equivalent to adding the range $$$[l, l]$$$ and updating the gcd of the existing ranges.
    • We also merge the equal ranges, so the amount of range is always $$$O(\log(\max(a)))$$$.

    The above actually improve the algorithm to $$$O(n\log(max(a))$$$, except for the calculating answer part:

    • We need to calculate prefix and suffix gcd for both arrays, this is at first glance $$$O(n\log(\max(a))$$$.
    • Howerver, the complexity of prefix and suffix gcd is actually just $$$O(n + \log(\max(a))$$$.
    Proof

    Applying the same idea as above to the ranges we have:

    • We add a new range $$$[l, l]$$$ $$$n$$$ times.
    • Each of these original range would have the amortized time with $$$\gcd$$$ equal to $$$O(\log(\max(a)))$$$.
    • So it's $$$O(n\log(\max(a))$$$.
    • We also have to merge the equal range, which happen $$$n$$$ times and each time we have at most $$$O(\log(\max(a)))$$$ ranges, so it also $$$O(n\log(\max(a))$$$.

    Finally we have to calculate the answer once we have all the ranges. I can't seem to find a way to improve this to $$$O(n\log(\max(a))$$$, so it's still $$$O(\log(\max(a))^2)$$$

    You can see my new code: 281316893. And the sanity check version where I reversed the array (so I don't take advantage of the fact that most interesting stuffs happen at the end of the hack array): 281316958

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B2 — The Strict Teacher (Hard Version), Why did he find index through upperbound? Can't we do it by lowerbound? In upperbound case, the index-1 value teacher can be in same cell as studentright?

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can anybody explain the recursive approach of E1

int fun(vi &res,vvi &arr,int i,int j,int ind){
    if(i>=arr.size() || j>=arr[0].size() || ind==res.size())return 0;
    if(dp[i][j][ind]!=-1)return dp[i][j][ind];
    int ans=fun(res,arr,i+1,j,ind)||(fun(res,arr,i,j+1,ind));
    if(arr[i][j]==res[ind]){
        ans|=fun(res,arr,i+1,j+1,ind+1)==0;
    }
    return dp[i][j][ind]= ans;
}
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2 months ago, # |
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https://codeforces.me/contest/2005/submission/281279780 why this is getting tle? I think its complexity is

N*M*5

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2 months ago, # |
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can somebody help me in figuring out why my E1 solution tles? i'm using minimax technique which uses 1 for the win of Tsokav and -1 otherwise. the time complexity is $$$ O(l * n * m) $$$ which is fine, no?

Submission

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Can anyone tell me why I am getting a WA? I have reviewed my solution many times and I can't seem to find the problem.

https://codeforces.me/contest/2005/submission/281266413

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    2 months ago, # ^ |
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    Why are you sorting your q vector? You are supposed to answer the q queries in order Example: q = 5 2 Lets say answer for 5 is x and answer to 2 is y So expected output is: X Y

    But you will output Y X

    Due to sorting

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      2 months ago, # ^ |
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      Ohhhhhhhh now I get it, I was sorting because I thought the problem might be solved using two pointers, so I needed to sort both the m and q vectors, but I forgot that by this I would change the order of output. Also, Do you know why I am getting TLE in this solution https://codeforces.me/contest/2005/submission/281314216, while this one is fine https://codeforces.me/contest/2005/submission/281314471, the only difference is that I was using a set in the first one, but changed it to a vector and sort in the second one. Thanks in advance.

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        2 months ago, # ^ |
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        the TLE in sets is because the syntax for lowerbound and upperbound is a bit different for sets. doing set.lower_bound(set.begin(), set.end(), x) is actually O(n*logn), while that is O(logn) for vectors. for sets you do: set.lower_bound(x), this is O(logn) in case of sets

        you can refer to this blog for more insights https://codeforces.me/blog/entry/55450

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2 months ago, # |
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For B1, when david is between both the teachers. How about going towards the teacher1 till he finds he is safe and moving back towards teacher2 till he finds he is safe?

Giving WA. 281236022

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2 months ago, # |
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problem E2

If $$$dp_{k,i,j}$$$ wins, then $$$dp_{k+2,i,j}$$$ also wins.

Why is that true ?

if the grid is

4 2

2 2

and the array is 4 1 3

$$$dp_{1,1,1}$$$ is winning but $$$dp_{3,1,1}$$$ isn't

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    2 months ago, # ^ |
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    You are correct! I think the solution is correct as well, but we just explained with a wrong hint there. we'll fix it very soon.

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    2 months ago, # ^ |
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    We fixed the editorial. The solution was still correct. We just had a wrong hint there for some reason.

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      2 months ago, # ^ |
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      Thanks a lot , for the problems , editorial and kindness

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2 months ago, # |
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why was there no pretest in C that crush solution O(n^2)

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    2 months ago, # ^ |
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    Sorry! We overlooked that there might be a solution with that complexity. Unfortunately, none of the testers came up with anything like that as well.

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2 months ago, # |
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E1 can be solved with a complete search using minimax algorithm. It ac's with alpha-beta pruning

Submission

Also, does anyone know how to calculate time complexities of programs like this?

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Fun Fact: I didn't read the constraints in C carefully and submitted O(n^2) dp solution. It passed pretests but sadly it failed system test. So happy.

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2 months ago, # |
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why for problem A , for n=6 , aeioua is not a right answer ?

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    2 months ago, # ^ |
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    Because the string aaeiou only has 6 palindromes a,aa,e,i,o,u. The string aeioua has all those as aaeiou, but also has aea, aia,aoa,aua. So its a suboptimal answer

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2 months ago, # |
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D can be solved in $$$O(nlog^2(maxA))$$$ with a simple divide-and-conquer formulation. In the merge step, we only consider the $$$log$$$ unique gcds of suffixes in left half and prefixes for right half and store counts in map. Then just brute force the maximum and update counts (taking care to add up counts if maximums are equal). 281328508

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    2 months ago, # ^ |
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    This should be official solution. Not only it's several times faster but also, its lot clearer and easier to implement, understand and it doesn't separate small and large testcases (🤢).

    On first it looks like $$$O(nlog^3(maxA))$$$ but when you consider the fact that on lower levels of DnQ you have $$$min(log(maxA),len)$$$ elements in map with simple for loop you can calculate that for $$$n = 200000$$$ in total you have ~16.000.000 operations.

    code to check complexity

    My code: 281365054 (tried to make it as crisp as possible)

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      2 months ago, # ^ |
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      How do we know the map's size will be $$$log(maxA)$$$ ? If there are $$$log(maxA)$$$ possibilities for each array, then the map of pair of int should be $$$log^2(maxA)$$$ right? (As there are that many combinations?)

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        2 months ago, # ^ |
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        As you scan in one direction, either the gcd of first array changes or gcd of second array changes. If we pick the positions where either one changes, you should have the union of these positions, which is $$$2 \cdot log$$$ positions.

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      7 weeks ago, # ^ |
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      Divide and conquer is not even necessary. A single left-to-right sweep is enough: 284726937

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    2 months ago, # ^ |
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    This is actually a great way to solve the problem! We changed the problem from only asking for max gcd to asking the amount of ways to get it, so we had a very short time to code two solutions and compare them. With the help of the coordinator, we managed to code something. This is why our official solution is messy and weird. We didn't have enough time to find something good.

    I added your comment and my updated video editorial in the blog to have something that's easier.

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    2 months ago, # ^ |
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    in merge step, why are you not considering gcd of suffix or prefix ?

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    2 months ago, # ^ |
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    Hi Newtech66 can you please write this again in detail, so that person of my level can also understand. means can you break down the solution in different parts. Thank you

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      2 months ago, # ^ |
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      First, you divide the array into two halves and solve the problem of finding mx — the best sum of gcd(Ai) + gcd(Bi) and cnt — the number of pairs (l,r) that achieve this mx, for both halves. Then, you find the best answer (either {mx1,cnt1} or {mx2,cnt2} or {mx1,cnt1+cnt2} if mx1 = mx2).

      This is the best answer you can get if you consider each half independently. But you can also choose a segment [l,r] such that l <= mid <= r. In this case, gcd(Ai) will become a gcd of: {a prefix of array A: [1,l-1], a suffix of the left half of array B: [l,mid] such that these two segments become the new left half of A} and {a prefix of the right half of B: [mid,r] and a suffix of A: [r+1,n] such that these two segments become the new right half of A}. Something similar applies for array B. To find the best way to choose (l,r), you calculate every possible value of the gcd of the first half depending on l i.e. you try every possible value of l form 1 to mid and calculate gcd([1,l-1],[l,mid]) and increase the counter of this value by one (so that you can calculate the number of ways to achieve it), and then you do the same for r. After that you brute force on every possible pair of values of the first and second halves, calculating their gcd and updating the answer mxe. Finally you check whether this mxe is better than what we calculated for every half independently.

      I hope this helps!

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    2 months ago, # ^ |
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    Another solution using a DnC approach, but without the need to compute prefix or suffix arrays, is to maintain the possible pairs of GCDs in a map, with 3 associated counts: (1) for no swap; (2) for one-way swap; and (3) for two-way swap. Then, the merge step is a matter of traversing the pairs on both sides and multiplying the counts. In the end, we find the maximum sum and its count, over all pairs in the entire range. 281855060

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    2 months ago, # ^ |
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    I realised the number of GCD's we are going to ever obtain are going to be $$$O(log(max(a_1,b_1)))$$$ (ish) and decided to brute force the entire thing.
    Iterating over the indices and maintaining the counts of GCDs obtained by respective swaps.
    My Submission — 282869542

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Solve A B C E1. Nice dp contest!

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can i know why i am getting a wrong answer on problem B1 281322308?

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    2 months ago, # ^ |
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    l = min(l,r);
    r = max(l,r);
    

    In case of l = 5, r = 3 (when l is maximum), you are losing the value of l. Maybe you want this: if(l > r) swap(l, r);

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Submission

can anyone find out what is wrong with this solution for C problem using dp.

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2 months ago, # |
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281345109

Can someone explain why this solution for problem C results with WA on test 11?

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2 months ago, # |
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A actually has a much easier solution, you can just fill the string with equal amounts of vowels and then sort it. It's AC. It does essentially the same thing but fsr people took a long time figuring A out.

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Why is my submission for D getting TLE on test40? I think my complexity is $$$O(nlog^2n)$$$. And on test37 it needs a long time (over 3000ms) running.

submission 281364038

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can someone please help me figure out why I am getting runtime error.

Even tho i think i am not accessing anything out of bound. am I missing edge case where it could happen?

my submission : https://codeforces.me/contest/2005/submission/281249882

edit : didnt know CF shows which line error occured once contest is done. It is showing out of bound in prefix[i — 1] . But i will be always between 1 <= i <= n so not understanding why it will go out of bound

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    2 months ago, # ^ |
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    check out this test case

    1
    1000000000 1 1
    6
    1000000000
    
    hint
    answer
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      2 months ago, # ^ |
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      the test case you have mentioned is not within the constraints here ai is 100000 and n is 8 ai <= n is not true in the given case

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        2 months ago, # ^ |
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        sorry for that ,i changed it

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          2 months ago, # ^ |
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          Thanks a lot for your help. I was not aware of this fact. one more question what is the max size of vector i am allowed to create in contest?

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            2 months ago, # ^ |
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            i don't know but the largest i have ever created was 1e7

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Hello mates Help, I am getting TLE in problem C[submission:281406037].Even though i have used the time complexity of O(n*m*25) <= 2.5*10^7..which should run as per my knowledge..Please look into this i want to know why am i getting TLE...

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2 months ago, # |
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Why My code fails in test case 2 for problem C

link: https://codeforces.me/contest/2005/submission/281415696

also I found a testcase to which my code gives wrong answer which is

1
3 3
nara
reka
knae

My Answer: 0

Correct Answer: 2

Got it!

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2 months ago, # |
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For Problem C: Another way to do it which does not require thinking about $$$dp_i - 2 \cdot i$$$ is to modify the score: Add a $$$-1$$$ to each occurrence of the letters in "narek" and add a $$$+10$$$ when you complete one instance of the full word "narek", in your $$$dp$$$.

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plz help me. I can't understand why this code is on time limit of B2. https://codeforces.me/contest/2005/submission/281483618 I've made a empty set and inserted. I know it is not faster than vector, but anyway, is the time complexity M*O(lgM)?

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2 months ago, # |
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I didn't quite follow the editorial for E, but here's another way to look at it.

As usual for such problems, we can define winning states as those from which you cannot reach a losing state and likewise. Now, let's try to process the game starting from the last element, and at each point, what we want is to mark each cell on the board as a winning or losing position.

It actually turns out, that such a set can be easily marked by maintaining the set of "innermost" positions of numbers (those cells $$$(r,c)$$$, such that no other cell $$$(r',c')$$$ exists with the same value such that $$$r'>r$$$ and $$$c'>c$$$). Note that this set has size $$$O(n+m)$$$.

As we process, we need to update a set of "dominant" positions $$$S_i$$$. Basically, the next set $$$S_i$$$ for the next value is that subset of "innermost" positions which "dominates" the previous set. That is the subset of "innermost" positions $$$(r,c)$$$ for $$$a_i$$$ such that no element $$$(r',c')$$$ of $$$S_{i+1}$$$ exists with $$$r'>r$$$ and $$$c'>c$$$.

Updating this set is simple: due to the structure of "innermost" positions, we can find any violations in $$$O(\log(n+m))$$$ time with a binary search. I think, even two pointers can work. Tsovak wins if the dominant set $$$S_1$$$ for $$$a_1$$$ is nonempty.

The overall solution works in $$$O(n \cdot m + l \cdot (n+m) \log(n+m))$$$.

My explanation could greatly benefit with diagrams and care, but here's the submission: 281490495

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2 months ago, # |
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test"> test2 test3

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2 months ago, # |
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Why in problem E2 we need to store two dp's? Why we can't just do dp[i][j] — min k that dp[k][i][j] wins?

https://codeforces.me/contest/2005/submission/281529257 — submission with one dp

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    2 months ago, # ^ |
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    agree, it's working for me too with only 1 dp. I don't understand the point to have 2 dp's here.

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2 months ago, # |
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#include <bits/stdc++.h>
using namespace std;
#define int long long
#define vi vector<int>
#define all(v) begin(v),end(v)
int callDp(int i, int ind, vector<string> &str, string &s, vector<vector<int>> &dp){
          if(i==str.size()){
              if(ind!=0){
                  return -ind;
              }
              return 0;
          }
          if(dp[i][ind]!=-1)
              return dp[i][ind];
          int take=0,nottake=0;
          int cntC=0,x=ind;
          for(int j=0;j<str[i].size();j++){
              if(str[i][j]=='n'||str[i][j]=='a'||str[i][j]=='r'||str[i][j]=='e'||str[i][j]=='k'){
                  if(str[i][j]!=s[ind]){
                      cntC++;
                  }
                  else if(str[i][j]==s[ind]){
                      if(ind==4)
                      take+=5;
                      ind=(ind+1)%5;
                  }
              }
          }
          take=take-cntC+callDp(i+1,ind,str,s,dp);
          nottake=callDp(i+1,x,str,s,dp);
          return dp[i][x]=max(take,nottake);
}
void dekhteHain(){
     int n,m;
     cin>>n>>m;
    //  vector<vector<char>> str(n,vector<char>(m));
    vector<string> str(n);
     string s="narek";
     unordered_set<char> st={'n','a','r','e','k'};
     vector<vector<int>> dp(n+1,vector<int>(5,-1));
     int cnt=0;
     for(int i=0;i<n;i++){
        cin>>str[i];
     }
     int ind=0;
     cout<<callDp(0,ind,str,s,dp)<<endl;

}
int32_t main() {
    int t;
    cin>>t;
    while(t--){
        dekhteHain();
    }
}

Can someone please explain why is this code giving TLE, It is code of C problem

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2 months ago, # |
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Can anyone please help me, I am getting wrong answer on test case 2 281575266

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can some one find the counter test case for this E1 solution which is failing at case 36 it's just same as the editorial but I'm using the whole L array https://codeforces.me/contest/2005/submission/281680950

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Can someone point out what is wrong in my solution of C. 281726079

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    2 months ago, # ^ |
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    Maybe rewrite it, and decrease number of states. There's no need for so many states for this problem.

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https://codeforces.me/contest/2005/submission/281714678 Can someone tell me why my code is giving tle for problem C , my complexity is o(n*m) which should work

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How can you achieve O(n*m*5) for problem C? I found the solution in tutorial with a complexity of O(n*m*25), and found no ways optimizing the solution to O(n*m*5).

Oh, sorry. I found that If you preprocess the matched types for each character in string before calculating the score for each string, it will be O(n*m*5). (I named state variables as cur_type and matched_type, in my code here https://codeforces.me/contest/2005/submission/281816751)

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[submission:281823254]the problem C, can someone tell me what fault in my code? I think we can use the end of the previous string to transfer the following string.

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E1, just cannot understand why the player would win when choosing that "inside" x, he would also win in that bigger matrix

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    2 months ago, # ^ |
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    Your turn to play number x. You have two choices x, either go submatrix A or go submatrix B where B is a submatrix of A. If opponent can win from submatrix B, then he also wins from A (use same strategy as from B). If he cannot win from B then you do not care about A, just go B.

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      2 months ago, # ^ |
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      oh yes, i was doubting why the it's my turn after i chose a 'x'. the editorial does not say the opponent.

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For D,I simply found that some prefixes are equivalent(two prefixes are equivalent when them have the same prefix gcd of a[] and b[])and a series of equivalent prefixes form a segment.So the number of these segments is at most 2*log(1e9).Then I do the same thing for suffixes.Calculating the max answer is easy and counting can be solved by enumerating a pair of "segment formed by equivalent prefixes"and"segment formed by equivalent suffixes" and then using two pointers.I think this would be a n*log^3 solution but it's easier to come up with this idea.Your text to link here...

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For problem D, we have a more direct and simpler implementation method. Note that for any sequence, its prefix GCD (or suffix GCD) can have at most $$$O(\log m)$$$ different values (where $$$ m $$$ is the value range). Thus, we consider enumerating the left endpoint $$$ l $$$ and calculating the contribution of different right endpoints $$$ r $$$ to the answer. Based on this observation, we know that for a fixed $$$ l $$$, the different values of $$$ \gcd_{i=l}^{r} a_i $$$, $$$ \gcd_{i=l}^{r} b_i $$$, $$$ \gcd_{i=r+1}^{n} a_i $$$, and $$$ \gcd_{i=r+1}^{n} b_i $$$ each have $$$ O(\log m) $$$ possibilities. Therefore, we use a monotonic stack and suffix GCD to maintain each of these four values (keeping track of their values and corresponding continuous segments, which are limited to $$$ O(\log m) $$$), achieving a complexity of $$$ O(n \log^2 m) $$$ with a small constant.

Sample solution: https://codeforces.me/contest/2005/submission/282729163

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E2:where it is written in the problem statement that there are no duplicates in a?

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    2 months ago, # ^ |
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    It's not. If you read one of the hints, it tells you that when a number appears for the 2nd time, we can cut the array from there and not consider the right part.

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      2 months ago, # ^ |
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      thank you, I didn't see the hints of E1 before.

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I solved E2 differently from the one in editorial... I just found the pareto optimal points (which are O(n+m) for each element of the grid and brute forced the recursion without any memoization either and it worked loll...

So the recursion works for O(l*(n+m))

Here's the sub : https://codeforces.me/contest/2005/submission/282989751

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    7 weeks ago, # ^ |
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    can you elaborate

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      7 weeks ago, # ^ |
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      So take any element in the grid. If the element is at two indices (i,j) and (p,q) where i<p and j<q, then the claim is the choosing the index (p,q) will always leave you equal to or better off, than choosing the index (i,j). (This can be easily verified taking an example).

      Now that means... for each element there will be a set of pareto optimal points. Consider the example:

      1 2 3 4

      2 3 3 4

      3 2 4 1

      1 4 2 3

      Here the pareto points for 4 are (4,2), (3,3), (2,4). Basically all those points (i,j) such that you won't find any more 4's in the grid [i+1:n][j+1:n]

      For every value, there will be O(n+m) pareto points at max and when you choose a point, you will lead the opponent to a grid where this element won't exist again. So every state will be visited once (hence the lack of memoizing).

      So you just run the simulation with the revised set of points for each value. (Iterate over all points and check all winning/loosing states).

      The complexity will be O(l*(n+m))

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        7 weeks ago, # ^ |
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        "choosing the index (p,q) will always leave you equal to or better off, than choosing the index (i,j)" can u prove this claim?

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          7 weeks ago, # ^ |
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          So... think about it this way... take the cells A = (1,1) and B = (3,3). We want to prove that choosing B is always a better option.

          Say you won by choosing A. That means the opponent couldn't make a move in the grid starting at (2,2). But that means he would not have won if i had given him the grid (4,4) as well. (Which is choosing B).

          So essentially B is equally as better as A.

          Now say you chose A and lost. So the opponent was able to find a point C in the grid (2,2). But there are chances that he wouldn't have found this point C if you had chosen B, as the grid would then be further reduced.

          Essentially by choosing B, you are reducing the opponents possible moves while not affecting yours. I hope this helps. If not, try going thru the 1st para of E1's solution.

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2 months ago, # |
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283532488 I was using simple approach of taking and not taking a string, the recursive code seemed to have worked fine and got tle on test 3 but when i memoized it the code gave wrong answer on test 2.

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6 weeks ago, # |
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Can somebody help? Why won't my submission 285298474 work?

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3 weeks ago, # |
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What is ndp, in code for Question D, and why we have not declared it?