Блог пользователя dedsec_29

Автор dedsec_29, история, 19 месяцев назад, По-английски

Ever since I read this blog, I have been curious to see how space-filling curves other than Hilbert can be used to reduce the run time. In this blog, we will see how Peano curves can help bring down the run time of Mo's algorithm-based solutions. Peano curve generalizes very easily to higher dimensions, so it's worth using for problems based on Mo's algorithm with updates.

Prerequisites: Mo's algorithm, Mo's algorithm using Hilbert Curve order, Mo's algorithm with updates

Relation with TSP

In Mo's algorithm, we try to come up with a comparator that can help us sort the queries in such a way that minimizes the total movement of L and R pointers. In other words, if we have $$$Q$$$ queries, each of the form $$$l_i$$$, $$$r_i$$$, then we wish to find such an arrangement of the queries that minimizes the following summation:

$$$S = \displaystyle\sum_{i=1}^{Q-1} |l_i - l_{i+1}| + |r_i - r_{i+1}|$$$.

Each query $$$(l,r)$$$ can be viewed as a coordinate on a 2D plane. We want to visit each of these points such that the travelled distance (with Manhattan distance as the distance metric) is minimized. This problem is the same as Traveling Salesman Problem (TSP), but a variant in which the salesman does not need to return to the starting city / point.

This problem is NP-Hard, taking exponential time to find the best minimum cost. However, we can trade-off time with accuracy. We can find a good enough solution which takes polynomial time and is fast enough. This is what space-filling curve based heuristic solutions help us achieve. Since the summation minimization problem is the same as TSP, we can apply the same heuristic approaches to Mo's algorithm. Let's try to find a new comparator based on all this information.

New Comparator

A comparator that uses Hilbert curve order has already been explained in this blog quite nicely. Here I will discuss a comparator that uses Peano curve order.

Let's build a Peano curve on a $$$3^k × 3^k$$$ matrix and visit all the cells on the matrix according to this curve. Denote ord(i, j, k) as the number of cells visited before the cell (i, j) in order of Peano curve on the $$$3^k × 3^k$$$ matrix. We sort the queries in non-descending order w.r.t. their value of ord(i,j,k).

Butz gives an algorithm for computing the Peano space-filling curve in terms of the base-3 representation of coordinates. It generalizes pretty well with higher dimensions. I will describe the algorithm briefly, assuming a point in an n-dimensional plane.

  1. List down the coordinates in base 3 representation. Each coordinate takes up k places in the base 3 / ternary representation. Here, we choose k such that k satisfies $$$3^k \geq N$$$ (N is the maximum value a coordinate can take).
    Each row is a coordinate, taking up k places to write in ternary form (leading zeroes allowed). Let this matrix formed be denoted by $$$a$$$

  2. Perform $$$\text{peano-flip}$$$ on each $$$a_{i,j}$$$. It is a function that modifies $$$a_{i,j}$$$ values.
    $$$R1$$$ corresponds to the rectangle with (0, 0) and (i-1, j) as the upper left and lower right corners respectively.
    $$$R2$$$ corresponds to the rectangle with (i+1, 0) and (n-1, j-1) as the upper left and lower right corners respectively.
    If $$$R1 + R2$$$ is odd, do: $$$a_{i,j} = 2 - a_{i,j}$$$
    Else we do nothing.

  3. Let ord(i,j,k) = num. Then, num is obtained by constructing a number off $$$a_{i,j}$$$ in base 10 in the following way:

For example, let's find Peano order for the query (1, 3). We can choose k = 2 as $$$3^2 \geq 8$$$.


You can verify from the peano order diagram that (1, 3) corresponds to 14 (assuming 0 based indexing).

Here is an implementation of Peano order for our 2 dimensional queries:

2D comparator

We can take k = 13 for all practical reasons, as $$$3^{13} \geq 10^{6}$$$
Time complexity using Peano order is $$$O(N \sqrt{Q})$$$. The proof is almost identical to this blog.

Suppose we have $$$n = 3^k$$$ and $$$q = 9^l$$$, where k and l are some integers. (If n and q are not powers of 3 and 9 respectively, we increase them, it doesn't have any effect on asymptotic). Now divide the matrix onto squares with size $$$3^{k-l} × 3^{k-l}$$$. To travel between a pair of adjacent squares, we need $$$O(3^{k-l})$$$ time, so we can travel between all the squares in $$$O(3^{k-l}\cdot 9^l) = O(3^{k+l}) = O(n \sqrt{q})$$$ time. Now consider the groups of queries inside a $$$3^{k-l} × 3^{k-l}$$$ square. Here we can travel from one query to another in $$$O(3^{k-l})$$$, so we process all such groups of queries in $$$O(q \cdot 3^{k-l}) = O(q \cdot \frac{n}{\sqrt{q}}) = O(n \sqrt{q})$$$ time. So the total time to process all the queries is $$$O(n \sqrt{q}).$$$

Use in problems

But how does Peano order compare with Hilbert order and the canonical version? In general, Hilbert > Peano > Canonical Here are some benchmarks:

Test Number N/Q MOs Algorithm Time MOs + Hilbert's Time Time Ratio (Canonical / Hilbert) MOs + Peano’s Time Time Ratio (Canonical / Peano)
1 1 248000 268035 0.925 436000 0.569
2 1 6460207 5328098 1.212 7123959 0.907
3 2 1923670 1254450 1.533 1694418 1.135
4 2 5187390 3321519 1.562 4279745 1.212
5 2 2293648 1235349 1.857 1614162 1.421
6 3 5359898 3429162 1.563 4068005 1.318
7 3 3076011 1100197 2.796 1728999 1.779
8 4 6096000 2233634 2.729 2588819 2.355
9 4 2734815 1201251 2.277 1451503 1.884
10 5 4728829 2034390 2.324 2343998 2.017
11 5 2928129 994038 2.946 1206444 2.427
12 7.5 4975073 2651273 1.876 3635598 1.368
13 10 4456694 1212675 3.675 1517397 2.937
14 25 4208660 778808 5.404 879259 4.787
15 50 3988436 545145 7.316 655212 6.087
16 100 3639918 382166 9.524 433495 8.397
17 200 2955605 263269 11.227 302042 9.785
18 400 1956763 182696 10.71 220000 8.894


An example submission that uses Peano order: https://cses.fi/paste/716421c81ec746975af8b3/

Peano isn't that far off Hilbert. Still, Hilbert order gives the best result.

However, since Peano curves are very easy to generalize to higher dimensions, we can use them in Mo's algorithm with updates. We can represent a query in the form $$$(L, R, T)$$$, where

L = left boundary of the query
R = right boundary of the query
T = Time or Number of updates that happen before this query

Each query can now be thought of as a coordinate in 3D plane. It's the same TSP variant problem but now in 3 dimensions. Using Butz algorithm, we can find the order for (L,R,T) queries.

3D comparator

I tried Peano order for Mo's with update and it halved the runtime.
Example submissions:
1. Problem, Canonical (1466 ms), Mo's with Peano (780 ms)
2. Problem, Canonical (1.94 s), Mo's with Peano (1.01 s)

I hope with Peano order, you can cheese Mo's with updates solution in the Time Limit :D

Thanks to nor for proof-reading the blog. I hope to improve the benchmarks soon!

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Автор dedsec_29, история, 19 месяцев назад, По-английски

Hello Codeforces!

Greetings from DJS Codestars, the official Coding committee of DJ Sanghvi College of Engineering.

We are organizing an ACM-style-based contest Code Uncode 6.0 on Codechef. The contest will be held on 17th April 2023 from 15:00 IST to 18:00 IST

Participants will be given 3 hours to solve 8 problem statements, with increasing difficulty. Stand a chance to win super exciting cash prizes!

Date : Monday, April 17th, 2023 at 3:00 pm IST
Duration : 3 Hours
Registration Link: (https://www.codechef.com/CDUN2023)

Heartfelt thank you to our testers: weakestOsuPlayer_244, 18o3, Queue, dkg7888 and Omja

Fill in the form to be eligible for prizes and receive all future announcements/updates

Instructions / Rules :

We hope you enjoy the problems as much as we enjoyed making them.
Good luck, happy coding!

UPD:

Here are the Winners!

1st place ShlokG

2nd place IceKnight1093

3rd place shadow9236

Editorials:

FASTWAY
BHEEM69
PLANETS
JAADU69 (to be added soon)
PLANETREE
ABCHEAT
DAFF69

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Автор dedsec_29, история, 2 года назад, По-английски

Hello Codeforces!

Greetings from DJ Codestars, the official Coding committee of DJ Sanghvi College of Engineering.

We are back with a very unique and interesting coding contest: CONSIZE 2.0, a 3-hour-long Code golf contest!! Here, participants will be given 3 hours to solve 5-6 problem statements, with increasing difficulty.

The twist here is that your score is inversely proportional to the length of your code!

The problem statements will be themed around your favourite video games to make things even more interesting. Stand a chance to win super exciting prizes, goodies, and subscriptions!

Date: Saturday, December 3, 2022 at 2:00 pm IST

Duration: 3 hours

Contest link: https://www.codechef.com/CNSZ2022

Fill in the form to be eligible for prizes and receive all future announcements/updates

Instructions / Rules:

To familiarize yourself with code-golf contests, checkout Consize 1.0 which we held last year. (https://codeforces.net/blog/entry/97012)

So what are you waiting for? Hurry up and register yourselves for the contest!

Special thanks to our amazing testers satyam343 and 18o3, wouldn't have been possible without them <3

Update:

Winners

1st wery0 with 3.61 score, getting the best score on P2 and P5

2nd WAtoAC2001 with 2.824 score, getting the best score on P4

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Автор dedsec_29, история, 2 года назад, По-английски

Today while solving Sereja and Brackets I faced something strange and unexpected.
First I submitted my code in C++20. Submission: https://codeforces.net/contest/380/submission/165753528 (WA) This gave me WA verdict. Then I submitted the exact same code with C++14. Submission: https://codeforces.net/contest/380/submission/165754010 (AC)

I am puzzled why exact identical code give me different verdicts. I also compiled my code with many flags to catch common possible errors, but I got none locally and on custom invocation. Can somebody tell what exactly is causing this difference in verdict?

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