自主水下航行器:基于仿真技术控制系统的5G网络设计与仿真

Fidel Castro-Cayllahua, Juan Luis Meza Carhuancho, Carlos Mario Fernández Díaz, Zoila Mercedes Collantes Inga, Tariq Rasheed, J. Cotrina-Aliaga
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引用次数: 1

摘要

随着水声无线网络通信(UWSN)的发展,水下物联网(IoUT)呈现出广阔的发展前景。传统上,IoUT主要用于水下区域环境的海上监测和勘探。IoUT之间的数据交换已通过5G启用通信进行,以建立与未来水下监测的连接。然而,声波在水下通信中具有较长的传播延迟和较高的传输能量。为了克服这些问题,自主水下航行器(AUV)实现了基于集群形成的数据收集和路由。本文开发了一种基于模因算法的水下航行器监测系统。提出的自治5G Memetic (A5GMEMETIC)模型执行数据收集和传输,以提高USAN性能。A5GMEMETIC模型通过动态无意识聚类模型收集数据,使能耗最小化。A5GMemetic对水下环境中节点的位置进行优化,以估计网络中数据传输的最优数据路径。将提出的a5genetic模型与传统的AEDG、DGS和HAMA模型进行了仿真分析。对比分析表明,提出的A5GMeMEMETIC模型的分组传送率(PDR)提高了~12%,延迟降低了~9%,网络寿命提高了~8%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Autonomous Underwater Vehicle: 5G Network Design and Simulation Based on Mimetic Technique Control System
The Internet of Underwater Things (IoUT) exhibits promising advancement with underwater acoustic wireless network communication (UWSN). Conventionally, IoUT has been utilized for the offshore monitoring and exploration of the environment within the underwater region. The data exchange between the IoUT has been performed with the 5G enabled-communication to establish the connection with the futuristic underwater monitoring. However, the acoustic waves in underwater communication are subjected to longer propagation delay and higher transmission energy. To overcome those issues autonomous underwater vehicle (AUV) is implemented for the data collection and routing based on cluster formation. This paper developed a memetic algorithm-based AUV monitoring system for the underwater environment. The proposed Autonomous 5G Memetic (A5GMEMETIC) model performs the data collection and transmission to increase the USAN performance. The A5GMEMETIC model data collection through the dynamic unaware clustering model minimizes energy consumption. The A5GMemetic optimizes the location of the nodes in the underwater environment for the optimal data path estimation for the data transmission in the network. Simulation analysis is performed comparatively with the proposed A5Gmemetic with the conventional AEDG, DGS, and HAMA models. The comparative analysis expressed that the proposed A5GMeMEMETIC model exhibits the ~12% increased packet delivery ratio (PDR), ~9% reduced delay and ~8% improved network lifetime.
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