So it clashes with JOI, right xD?

Bump.

Starts in 10 minutes and isn't on the sidebar currently :p

It would be perfect if Atcoder used codeforces style contest timing, like xx:x5

How to solve C and D?

How to solve B?

How to solve?

Thank you for participation!

Editorial is up!

Wow, I couldn't believe my eyes when I was copying xor transorm in C xd. I think this problem could have easily been D on a regular Codeforces round.

By the way, how is it possible to come up with so cool easy problems like A and B? Problems that are doable in 5 minutes are almost never fun, but you guys somehow constantly manage to get them. But the whole problemset was brilliant either way.

Best contest of the year for me so far... A-D are all just brilliant... Omg

How to solve question A of this round? As I am not able to understand the editorial. Thanks!

B soln — First do a few steps until all numbers are either {0,2}s or {0,1}s.
Now see the contribution of every index. I saw the following pattern (can be proven using induction).
N here is the size of the remaining array.
For odd N, consider all odd indexes which are subsets of N. For ex, for 13 = 1101(base 2) odd subsets are 1,101,1001,1101 or indexes 1,5,9,13
For even N, consider all indexes i for N-1 and also consider index+1.
For ex, for 14, we consider 1,5,9,13 for 13 and also 1+1,5+1,9+1,13+1 or 1,2,5,6,9,10,13,14.

Great contest! I think you should consider adding this testcase in $$$B$$$

My solution tries to do what is written in the statement naively until there are only $$$2$$$ different digits left in the sequence. Then it does something similar to what editorial solution does for $$$01$$$ case. On random $$$N = 10^6$$$ tests it only does $$$35-45$$$ steps, while on the testcase above it will certainly get TLE because of $$$O(N^2)$$$ complexity.

Thanks to kostia244 for coming up with this testcase!

In D, why is the number of permutations that can be created from a sequence of blocks $$$a_1, \dots, a_K$$$ equal to $$$\frac{N!}{\prod_{i = 1}^{K} \sum_{j = 1}^{i} a_{j}}$$$?

Trying to solve E be like

How to solve B?

Reading on problem E https://arxiv.org/pdf/1203.3602.pdf

Do you know that E is rng_58's hardest problem?

can anyone explain why my logic failed on question B. i took the difference when two adjacent elements were different and removed the elements when they were similar for example 12111231

1 2 -> 1

2 1 -> 1

1 1 -> ignore

1 1 -> ignore

1 2 -> 1

2 3 -> 1

3 1 -> 2

now the new series is 11112 did the same again if the arr ends with length 1 , then print the arr[0] else 0 it worked for 36 test case but from 37 — 46 it failed. can anyone explain how the consecutivily 36 test cases were passed but rest all 10 failed

Can anyone explain me, why my solution for problem A got WA?

For D, after fixing the number of blocks with length $$$1,2,3$$$ (denoted by $$$p_1,p_2, p_3$$$). The number of ways is $$$\frac{(3n)!}{p_1! p_2! p_3! 2^{p_2} 3^{p_3}}$$$.

Can anyone please check my code for task A and let me know why it is wrong? Many thanks! :) My code is here

too hard!

About the problem C. Why the point corresponding to a defeteded state is in the independent set of maximum weight.

Regarding Q.NO. 1 In the first question i have changed every black index to 0 and white index to 1 . so the problem is to calculate the n+m-(max no. of white cells that you encounter which is essentially sum of the 1's ) and it can be done by the help of a dp . I have written code for the same , i am getting "AC" on first 5-6 cases and after that there is "WA". please help me with that.

Below is my code .

include <bits/stdc++.h>

using namespace std;

define ll long long

define l long

define pb push_back

define mp make_pair

define mt make_tuple

int main() {

ios_base::sync_with_stdio(false);
cin.tie(NULL);

    int n,m;
    cin>>n>>m;
    string s;
    int a[n][m];
    for(int i=0;i<n;i++)
    {
        cin>>s;
        for(int j=0;j<m;j++)
        {
            if(s[j]=='.')
            a[i][j]=1;
            else
            a[i][j]=0;
        }
    }

    int sum[n+1][m+1];
    for(int i=0;i<n+1;i++)
    {
        for(int j=0;j<m+1;j++)
        {
            if(i==0||j==0)
            sum[i][j]=0;
        }
    }
    for (int y = 1; y <=n; y++)
    {
         for (int x = 1; x <= m; x++)
         {
            sum[y][x] = max(sum[y][x-1],sum[y-1][x])+a[y-1][x-1];
          }
    }

    cout<<n+m-1-sum[n][m]<<endl;



return 0;

}

https://atcoder.jp/contests/agc043/submissions/11116664

Need help in First Ques

Kinda Weak in DP :)

How can I prove the greedy algorithm is correct in C? I know that one vertex has more weight than the sum of weights of all vertices of smaller weight. This makes us consider vertices in descending weight order, but what should we do with vertices of equal weight?