Digital Twin of Drone-based Protection of Agricultural Areas

G. Teschner, Csaba Hajdu, János Hollósi, N. Boros, Attila Kovács, Á. Ballagi
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引用次数: 1

Abstract

Protecting agricultural fields, like crops, vineyards, and husbandry areas, has been a difficult challenge since historical times. Classical methods to prevent intrusion are often destructive to wild and domestic animals alike. Even more current nondestructive systems, like camera-based systems are attributed to specific problems related to environmental or technological issues. Furthermore, verifying the effectiveness of installed systems is difficult, as the triggering situations are unmanageable and typically occur unsupervised. This paper presents a complex vision-based intrusion detection system to overcome these problems and further proposes more extensive control and flexibility on the development process. The solution provides a workflow integrating Digital Reality methods into the system development by creating a digital twin of the drone and its surrounding environment in a general-purpose robotic simulator. With this simulation, the triggering events and environmental effects can be easily emulated, such as a wild animal entering the area of interest. The solution also focuses on incorporating new 5G info-communication networks on handling communication between the intrusion detection system and the base station in a distributed manner.
基于无人机的农业区保护数字孪生
保护农田,如农作物、葡萄园和牧区,自古以来就是一项艰巨的挑战。防止入侵的传统方法往往对野生动物和家畜都具有破坏性。即使是现在的非破坏性系统,比如基于摄像头的系统,也被归因于与环境或技术问题相关的特定问题。此外,验证已安装系统的有效性也很困难,因为触发情况难以管理,而且通常是在无人监督的情况下发生的。针对这些问题,本文提出了一种基于复杂视觉的入侵检测系统,并在开发过程中提出了更广泛的控制和灵活性。该解决方案通过在通用机器人模拟器中创建无人机及其周围环境的数字孪生体,提供了将数字现实方法集成到系统开发中的工作流程。通过这种模拟,可以很容易地模拟触发事件和环境影响,例如野生动物进入感兴趣的区域。该解决方案还致力于将新型5G信息通信网络结合起来,以分布式方式处理入侵检测系统和基站之间的通信。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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