3 questions "solved" in 2 hrs of practice. I am happy that I was able to continue my streak for at least one more day :)
Looking forward to practicing and improving tomorrow.
2029C - New Rating
- Implemented the dynamic programming solution I read yesterday.
2033C - Sakurako's Field Trip
Submission: 292352411
Another straightforward question that I was not able to solve.
We do not need to care about the placement of the elements at the start(and therefore also at the end) of the array, since they can only be influenced by the elements in front and behind them respectively. Instead we can just swap $$$a_1$$$ and $$$a_{n - 1}$$$ elements instead. Therefore we can keep $$$a_0$$$ and $$$a_n$$$ as is.
For an index $$$i$$$ we can compare the disturbance before and after operating on it wrt to the $$$(i - 1)^{th}$$$ and $$$(n - i)^{th}$$$ elements respectively.
But What about the $$$(i + 1)^{th}$$$ and $$$(n - i - 1)^{th}$$$ elements?
Those elements will be compared to $$$i^{th}$$$ and $$$(n - i)^{th}$$$ element respectively and will be appropriately handled(Use the same logic as used for $$$a_0$$$ and $$$a_n$$$ elements, instead of adjusting these elements for their neighbours we did the opposite, adjusting the neighbours for these elements.)
2008D - Sakurako's Hobby
Submission: 292357132
A pretty straightforward question.
If we make a graph with edges from $$$i$$$ to $$$p_i$$$, the resulting graph will be a functional graph. A functional graph built on permutations will always consist of disconnected cycles. Therefore for each cycle the number of black integers reachable from any vertex $$$v$$$ will be equal to the number of black vertices $$$\theta$$$ in that cycle.
We can perform a simple dfs and solve this question.
1713C - Build Permutation
Submission: 292362212
This is a question, I have tried multiple times before but to no avail. The editorial for this is just not something that I am able to come up with.
Basically the entire solution to this problem hinges on the fact that for the smallest square number $$$h \ge k$$$ then $$$h \le 2 * k$$$ or $$$h - k \le k$$$. Therefore for all $$$i \in [h - k,k]$$$ we can put $$$h - i$$$ as our answer and then recursively fill for all vertices from $$$h - k - 1$$$ and below.
This ensures that each $$$i + p_i$$$ adds up to its respective square number, and since value is dependent on the index $$$i$$$ these numbers will be unique.
bro please excuse me if I sound offensive. Codeforces blogs aren't meant for posting daily achievements. Instead, share any interesting knowledge you've studied. Post these on X or linkedin—you'll get more connections.
Anyways, all the best with your habit tracking!
I'm sorry if you find it a bit rude, but I'm curious how did you go from being ~1700 rated to 1200?
Norp blogs return!