Modeling of Object Monitoring Using 3D Cellular Automata

The purpose of this work is to develop a formal model for describing the properties of the environment for the functioning of unmanned aerial vehicles and to increase the speed of calculating the trajectory of their flight when monitoring critical infrastructure objects based on the mathematical app...

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Main Authors: Zakharchenko I., Tristan A., Chornogor N., Berdnik P., Kalashnyk G., Timochko A., Zalevskii A., Dmitriiev O.
Format: Article
Language:English
Published: Academy of Sciences of Moldova 2022-11-01
Series:Problems of the Regional Energetics
Subjects:
Online Access:https://journal.ie.asm.md/assets/files/06_04_56_2022.pdf
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author Zakharchenko I.
Tristan A.
Chornogor N.
Berdnik P.
Kalashnyk G.
Timochko A.
Zalevskii A.
Dmitriiev O.
author_facet Zakharchenko I.
Tristan A.
Chornogor N.
Berdnik P.
Kalashnyk G.
Timochko A.
Zalevskii A.
Dmitriiev O.
author_sort Zakharchenko I.
collection DOAJ
description The purpose of this work is to develop a formal model for describing the properties of the environment for the functioning of unmanned aerial vehicles and to increase the speed of calculating the trajectory of their flight when monitoring critical infrastructure objects based on the mathematical apparatus of 3D cellular automata. This goal is achieved by solving the following problems: developing a method for describing the operating environment of unmanned aerial vehicles based on 3D cellular automata, developing a method for calculating the flight path of unmanned aerial vehicles. The construction of formal models is based on the apparatus of 3D cellular automata. The most significant results are a formalized description of the space, properties of zones and objects that restrict movement, as well as the development of a method for modeling the flight of an unmanned aerial vehicle in space when solving the monitoring problem, which will increase the speed of calculating the flight path. The significance of the results obtained lies in solving the complex problem of calculating the trajectory of movement of unmanned aerial vehicles for monitoring critical infrastructure objects using the apparatus of 3D cellular automata. The conducted studies have shown the effectiveness of using 3D - cellular automata to solve the problems of finding flight paths when monitoring critical infrastructure objects in various conditions. The proposed approach to the implementation of cellular automata will allow creating an effective monitoring system.
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spelling doaj.art-02c382aee5994343858da922ca6357da2022-12-22T03:42:18ZengAcademy of Sciences of MoldovaProblems of the Regional Energetics1857-00702022-11-01564617310.52254/1857-0070.2022.4-56.06Modeling of Object Monitoring Using 3D Cellular AutomataZakharchenko I.0Tristan A.1Chornogor N.2Berdnik P.3Kalashnyk G.4Timochko A.5Zalevskii A.6Dmitriiev O.7Kharkiv National Air Force University named after Ivan Kozhedub, Kharkiv, UkraineKharkiv National Air Force University named after Ivan Kozhedub, Kharkiv, UkraineKharkiv National Air Force University named after Ivan Kozhedub, Kharkiv, UkraineKharkiv National Air Force University named after Ivan Kozhedub Kharkiv, UkraineKharkiv National Air Force University named after Ivan Kozhedub, Kharkiv, UkraineKharkiv National Air Force University named after Ivan Kozhedub, Kharkiv, UkraineKharkiv National Air Force University named after Ivan Kozhedub, Kharkiv, UkraineKharkiv National Air Force University named after Ivan Kozhedub, Kharkiv, UkraineThe purpose of this work is to develop a formal model for describing the properties of the environment for the functioning of unmanned aerial vehicles and to increase the speed of calculating the trajectory of their flight when monitoring critical infrastructure objects based on the mathematical apparatus of 3D cellular automata. This goal is achieved by solving the following problems: developing a method for describing the operating environment of unmanned aerial vehicles based on 3D cellular automata, developing a method for calculating the flight path of unmanned aerial vehicles. The construction of formal models is based on the apparatus of 3D cellular automata. The most significant results are a formalized description of the space, properties of zones and objects that restrict movement, as well as the development of a method for modeling the flight of an unmanned aerial vehicle in space when solving the monitoring problem, which will increase the speed of calculating the flight path. The significance of the results obtained lies in solving the complex problem of calculating the trajectory of movement of unmanned aerial vehicles for monitoring critical infrastructure objects using the apparatus of 3D cellular automata. The conducted studies have shown the effectiveness of using 3D - cellular automata to solve the problems of finding flight paths when monitoring critical infrastructure objects in various conditions. The proposed approach to the implementation of cellular automata will allow creating an effective monitoring system.https://journal.ie.asm.md/assets/files/06_04_56_2022.pdfmonitoring systemuavpower systemcellular automatonoptimizationclustering.
spellingShingle Zakharchenko I.
Tristan A.
Chornogor N.
Berdnik P.
Kalashnyk G.
Timochko A.
Zalevskii A.
Dmitriiev O.
Modeling of Object Monitoring Using 3D Cellular Automata
Problems of the Regional Energetics
monitoring system
uav
power system
cellular automaton
optimization
clustering.
title Modeling of Object Monitoring Using 3D Cellular Automata
title_full Modeling of Object Monitoring Using 3D Cellular Automata
title_fullStr Modeling of Object Monitoring Using 3D Cellular Automata
title_full_unstemmed Modeling of Object Monitoring Using 3D Cellular Automata
title_short Modeling of Object Monitoring Using 3D Cellular Automata
title_sort modeling of object monitoring using 3d cellular automata
topic monitoring system
uav
power system
cellular automaton
optimization
clustering.
url https://journal.ie.asm.md/assets/files/06_04_56_2022.pdf
work_keys_str_mv AT zakharchenkoi modelingofobjectmonitoringusing3dcellularautomata
AT tristana modelingofobjectmonitoringusing3dcellularautomata
AT chornogorn modelingofobjectmonitoringusing3dcellularautomata
AT berdnikp modelingofobjectmonitoringusing3dcellularautomata
AT kalashnykg modelingofobjectmonitoringusing3dcellularautomata
AT timochkoa modelingofobjectmonitoringusing3dcellularautomata
AT zalevskiia modelingofobjectmonitoringusing3dcellularautomata
AT dmitriievo modelingofobjectmonitoringusing3dcellularautomata