Cargando…

Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm

Efforts related to minimizing the environmental burden caused by agricultural activities and increasing economic efficiency are key contemporary drivers in the precision agriculture domain. Controlled Traffic Farming (CTF) techniques are being applied against soil compaction creation, using the on-l...

Descripción completa

Detalles Bibliográficos
Autores principales: Řezník, Tomáš, Herman, Lukáš, Klocová, Martina, Leitner, Filip, Pavelka, Tomáš, Leitgeb, Šimon, Trojanová, Kateřina, Štampach, Radim, Moshou, Dimitrios, Mouazen, Abdul M., Alexandridis, Thomas K., Hrádek, Jakub, Lukas, Vojtěch, Širůček, Petr
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8123056/
https://www.ncbi.nlm.nih.gov/pubmed/33922822
http://dx.doi.org/10.3390/s21092980
_version_ 1783692793053446144
author Řezník, Tomáš
Herman, Lukáš
Klocová, Martina
Leitner, Filip
Pavelka, Tomáš
Leitgeb, Šimon
Trojanová, Kateřina
Štampach, Radim
Moshou, Dimitrios
Mouazen, Abdul M.
Alexandridis, Thomas K.
Hrádek, Jakub
Lukas, Vojtěch
Širůček, Petr
author_facet Řezník, Tomáš
Herman, Lukáš
Klocová, Martina
Leitner, Filip
Pavelka, Tomáš
Leitgeb, Šimon
Trojanová, Kateřina
Štampach, Radim
Moshou, Dimitrios
Mouazen, Abdul M.
Alexandridis, Thomas K.
Hrádek, Jakub
Lukas, Vojtěch
Širůček, Petr
author_sort Řezník, Tomáš
collection PubMed
description Efforts related to minimizing the environmental burden caused by agricultural activities and increasing economic efficiency are key contemporary drivers in the precision agriculture domain. Controlled Traffic Farming (CTF) techniques are being applied against soil compaction creation, using the on-line optimization of trajectory planning for soil-sensitive field operations. The research presented in this paper aims at a proof-of-concept solution with respect to optimizing farm machinery trajectories in order to minimize the environmental burden and increase economic efficiency. As such, it further advances existing CTF solutions by including (1) efficient plot divisions in 3D, (2) the optimization of entry and exit points of both plot and plot segments, (3) the employment of more machines in parallel and (4) obstacles in a farm machinery trajectory. The developed algorithm is expressed in terms of unified modeling language (UML) activity diagrams as well as pseudo-code. Results were visualized in 2D and 3D to demonstrate terrain impact. Verifications were conducted at a fully operational commercial farm (Rostěnice, the Czech Republic) against second-by-second sensor measurements of real farm machinery trajectories.
format Online
Article
Text
id pubmed-8123056
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-81230562021-05-16 Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm Řezník, Tomáš Herman, Lukáš Klocová, Martina Leitner, Filip Pavelka, Tomáš Leitgeb, Šimon Trojanová, Kateřina Štampach, Radim Moshou, Dimitrios Mouazen, Abdul M. Alexandridis, Thomas K. Hrádek, Jakub Lukas, Vojtěch Širůček, Petr Sensors (Basel) Article Efforts related to minimizing the environmental burden caused by agricultural activities and increasing economic efficiency are key contemporary drivers in the precision agriculture domain. Controlled Traffic Farming (CTF) techniques are being applied against soil compaction creation, using the on-line optimization of trajectory planning for soil-sensitive field operations. The research presented in this paper aims at a proof-of-concept solution with respect to optimizing farm machinery trajectories in order to minimize the environmental burden and increase economic efficiency. As such, it further advances existing CTF solutions by including (1) efficient plot divisions in 3D, (2) the optimization of entry and exit points of both plot and plot segments, (3) the employment of more machines in parallel and (4) obstacles in a farm machinery trajectory. The developed algorithm is expressed in terms of unified modeling language (UML) activity diagrams as well as pseudo-code. Results were visualized in 2D and 3D to demonstrate terrain impact. Verifications were conducted at a fully operational commercial farm (Rostěnice, the Czech Republic) against second-by-second sensor measurements of real farm machinery trajectories. MDPI 2021-04-23 /pmc/articles/PMC8123056/ /pubmed/33922822 http://dx.doi.org/10.3390/s21092980 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Řezník, Tomáš
Herman, Lukáš
Klocová, Martina
Leitner, Filip
Pavelka, Tomáš
Leitgeb, Šimon
Trojanová, Kateřina
Štampach, Radim
Moshou, Dimitrios
Mouazen, Abdul M.
Alexandridis, Thomas K.
Hrádek, Jakub
Lukas, Vojtěch
Širůček, Petr
Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm
title Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm
title_full Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm
title_fullStr Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm
title_full_unstemmed Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm
title_short Towards the Development and Verification of a 3D-Based Advanced Optimized Farm Machinery Trajectory Algorithm
title_sort towards the development and verification of a 3d-based advanced optimized farm machinery trajectory algorithm
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8123056/
https://www.ncbi.nlm.nih.gov/pubmed/33922822
http://dx.doi.org/10.3390/s21092980
work_keys_str_mv AT rezniktomas towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT hermanlukas towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT klocovamartina towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT leitnerfilip towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT pavelkatomas towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT leitgebsimon towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT trojanovakaterina towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT stampachradim towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT moshoudimitrios towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT mouazenabdulm towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT alexandridisthomask towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT hradekjakub towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT lukasvojtech towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm
AT sirucekpetr towardsthedevelopmentandverificationofa3dbasedadvancedoptimizedfarmmachinerytrajectoryalgorithm