Thanks for the quick editorial.

[Deleted]

i didn't get the output of C1. Can someone make me understand

For C2, why does a position of 2 in the ternary representation need to be replaced?

For C2, I used a simpler greedy approach. First, I find the smallest number that is the sum of all powers of 3 till the sum becomes >= n. Let us call the sum Z. So this will lead to a number of form 111111 where 1 => The corresponding power of 3 is added to the sum. Now, suppose the highest power of 3 that was included in the sum is m. I go from mth to 0th power and try to subtract corresponding power from current Z. If it leads to a number that is still >= n, we reduce Z by the current power. Else, we continue. Intuition is that if we subtract a larger power, its sum is anyways going to be larger than the sum of all lower powers combined. So it will be a better choice for sure.

My Submission: https://codeforces.com/contest/1249/submission/63202537 (Got AC, I hope no hack :P )

I have an $$$\mathcal{O}(n \log n)$$$ solution to problem F: 63206899.

The key idea is to merge smaller DP states into bigger. Would have been a nice harder Div. 1 problem. :)

Update: it's actually $$$\mathcal{O}(n)$$$.

It was amazing contest!

I didn't understand the tutorial of C1 here, more explanation please?

I tried to solve B question both parts using dfs but getting the wrong output due to bug somewhere in the code. could anyone please help me debugging.it would be great help for me.

include <bits/stdc++.h>

using namespace std; vectorv[100005]; bool vis[100005]; int size=0; void dfs(int n) { vis[n] = true;
size++; for(int x : v[n]) { if(!vis[x]){ dfs(x); }
} } int main() { //int q; //cin>>q; { int n; cin>>n; int arr[n+5],hello[n+5]; for(int i=1;i<=n;++i){ cin>>arr[i]; if(i==arr[i]){ hello[i]=1; vis[i]=true; continue; } v[i].push_back(arr[i]); v[arr[i]].push_back(i); } for(int i=1;i<=n;i++) {
if(!vis[i]){ size=0; dfs(i); //cout<<size<<endl; for(int j=1;j<=n;j++){ if(vis[j]){ hello[j]=size; //cout<<hello[j]<<" "; }

}      
            //cout<<endl;     
        } 
    }
   for(int e=1;e<=n;e++){
        if(e==arr[e]){
            hello[e]=1;
        }
        cout<<hello[e]<<" ";
    }    
}

}

I have for a while commented on the query part for more simplicity.

I thought of a greedy for problem D1 which consisted of looking for the segment that had the most points that currently belonged to more than k segments and was updating. Can someone explain to me why this greedy doesn't work.

Still don't know why problem F is O(n^3) but not O(n^4)

Why this py3 solution for B1 got TLE hacked... I think it is almost same with the tutorial...

 q = int(input())
    for _ in range(q):
        n = int(input())
        Q = list(map(int,input().split()))
        res=[1]*n
        for i in range(n):
            t = Q[i]
            while t!=i+1:
                t=Q[t-1]
                res[i]+=1
        print(*res)

I saw some people solved B2 using DFS. Can anyone explain how to solve B2 using DFS?

Why doesn't greedy work for problem E? I am thinking, if we use the elevator we continue to use it if we can, If we don't use it, we try to take elevator as much as possible as in next step we won't have to add 'c' if we get the elevator

Can Anyone Explain why won't we have to check for all previous (1 to i-1) cases for particular i? In this case, it will take O(n**2).

I have submitted two solutions for B1 in Python3 and Pypy3 with the same code. Python3 got TLE but Pypy3 AC. Why there is so much difference between these two? If one logic is accepted in one language then it must be accepted in all available languages given there otherwise giving all languages during submission doesn't make sense. vovuh can you please look into it?

AC solution(Pypy) : 63211941 WA solution(Python) : 63211890

What if going down was also allowed in E, what difference would it create? How'd we solve it then? Can someone please throw some light on it?

Anyone else who did B2 with DSU :') ?

For Problem D I created no more than k non-overlapping segments greedily based on shortest right position. This approach seems to fail for some reason, any ideas why it's failing? code

Regarding the C2 question test case 9.

Can someone tell me how can the input of 450283905890997363 expect itself as an answer? the ternary representation of this input is : 10000000000000000000000000000000001200 which has a 2 in it so the correct answer should be 10000000000000000000000000000000010000 convert into decimals, right?

In the contest, after long time debug on problem D1 (stupid update error), I even don't read statement E, now I solved it easily without Editorial. I'm very regret about it.

Here is an $$$O(n^2)$$$ solution for problem F: 63223147 , I used a greedy approach to solve it and have not find any hacks. I think it is a correct approach.

Can someone explain to me the code for B2?

can someone help me with this?

my failed submission

my accepted submission

the only change in the both is that i commented out

ios_base::sync_with_stdio(false);

cin.tie(NULL);

how does this affect the output?????

Kindly explain dp[v][dep] in probelm F (Maximum weight subset)?

Too good contest, thanks

Another (easier?) implementation of D2

Can some one explain Editorial of D2 , i did not got clear understanding .

My solution for 1249B2 — Books Exchange (hard version) was giving wrong answer using disjoint set with path compression. Any idea what was wrong ?

I am getting WA in D1. Link to solution: https://codeforces.com/contest/1249/submission/63245610

Please help!

As usual, I don't understand the editorial.

In E. What does it mean by "Time overhead" ? Time to close the door? Time to open the door?

I got another solution for C2 which does not involve any case handling (or dealing with annoying carries!).

We can easily write a function $$$f(i)$$$ that returns the i-th good number. It can be implemented by representing $$$i$$$ in base 2, then treat the resulting digits as a base 3 number. The function runs in $$$O(\log i)$$$.

Then we use binary search to find the smallest $$$i$$$ that satisfy $$$f(i) \geq n$$$. If $$$s$$$ is the smallest $$$i$$$ that satisfy the condition, the answer would be $$$f(s)$$$. The total time complexity would be $$$O(\log^2 n)$$$.

My submission: 63244719

Is it ok, what a few participants 1600+ rating got it updated after contest?

Can problem F be done for general graphs in polynomial time?

what is the meaning of curSegs.erase(prev(curSegs.end()));

Problem E

Why the jury's answer 14th number is 23 instead of 24? The next number by stairs will have +3 and by elevator either +1 or +3 (1 + 2),

The previous value was 21 so it can be either 24 or 22..

Here is pastebin what I'm talking about: https://pastebin.com/FmZyit6Y.

vovuh For problem F. The recurrences you mention work if computing the maximum value of a set when distance between any $$$2$$$ vertices is $$$\ge k$$$. But, the problem asks to compute the answer when the distance between any $$$2$$$ vertices is $$$> k$$$. When I read your code, I saw that you are actually incrementing $$$k$$$ beforehand. So, I think you should mention in the tutorial that you change the problem first to the $$$\ge k$$$ version or update the recurrences as:

• If $$$dep = 0, dp_{v, 0} = a_v + \sum\limits_{to \in children(v)} dp_{to, k}$$$.

• Otherwise, $$$dp_{v, dep} = max(dp_{v, dep}, dp_{to, dep-1} + \sum\limits_{other \in children(v) \setminus \{to\}} dp_{other, max(k-j, j-1)})$$$

Also, there's a typo: "we can notice that this is now what we wanted". I think you meant not.

what is life

In C2 tag is given meet in the middle but it is giving TLE . Dd anyone solve this using meet in the middle and binary search , please reply ...

How to optimize this meet in the middle + binary search to C2? 63895945

Can someone explain the recurrence of problem F in detail ?

Could you please explain the recursive relation in your tutorial of problem F, and what does dep-1 and k-dep-1 mean ? neal

Sorry for hitting this old post.

I wanted to share my thoughts for an alternative solution to E using recursion dp.

For the E elevator and stairs I wrote a recursive approach so initially it struck me that I will end up running my dp solution from top to every other floor which will end up giving a bad complexity of O(N^2).

Well to tackle that we could simply run from the last floor to the top and then we need to take max of the dp values from each floor to the first floor. (Max because along a route with the same minimum time if we go from the top to the floor we take the overhead charges before and as a result we took minimum back then and now starting from that floor on our way to first floor we take overhead charges from that floor already so for the floors where took minimum of the dp values now we have to take maximum instead)

An explanation of also how we could use to move the other way around besides moving from lower floor to higher floor as stated in the problem.

My submission. https://codeforces.com/contest/1249/submission/74881991

P.S- If my solution is incorrect please do let me know. (If it can get hacked)

Hello I got WA on the test case 1 for the final case, is this because I am only using long?

The last four digits are the only difference. Here is the link https://codeforces.com/contest/1249/submission/90984427.

Thanks

can any one tell what's wrong in my solution to c1 , my idea : to generate all subset (sum it ) and put it in set and check whether it is present or not 114425157

https://codeforces.com/contest/1249/submission/165470986

Can anyone help me what wrong I have done?