农业物联网教程:基本概念,架构,路由和优化

E. Effah, Ousmane Thiaré, A. Wyglinski
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引用次数: 0

摘要

本文通过对相关文献的系统调查和综合,介绍了农业物联网(Agri-IoT)的基本概念、路由架构和协议的评估以及性能优化技术。气候变化和全球人口增长对粮食安全和失业威胁的负面影响促使采用基于无线传感器网络(WSN)的农业物联网作为精准农业和温室中不可或缺的基础技术,以提高粮食生产能力和质量。然而,大多数相关的农业物联网测试平台解决方案都未能达到其性能预期,因为缺乏深入和情境化的参考教程,该教程提供了基于用户期望的通信技术,路由架构和性能优化模式的整体概述。因此,尽管物联网应用建立在一个共同的想法上,但每个用例(例如农业物联网)都根据具体的性能和用户期望以及技术、架构和部署要求而有所不同。同样,农业环境是一个独特而充满敌意的领域,传统的物联网技术不适用,因此需要本教程。因此,本教程通过以下贡献来解决这些问题:(1)系统概述了基于wsn的Agri-IoT的基本概念、技术和架构标准;(2)评估了健壮、位置无关且价格合理的Agri-IoT的技术设计要求;(3)全面调查了基准容错技术、通信标准、路由和介质访问控制(MAC)协议以及基于wsn的Agri-IoT测试平台解决方案;节能、经济、自适应、稳定、自主和基于集群的特定于wsn的Agri-IoT,来自提议的多目标优化(MOO)指标分类,可以保证优化的网络性能。此外,本教程还为基于集群的Agri-IoT (CA-IoT)网络建立了新的故障分类、架构层和MOO指标,并为基于集群的Agri-IoT网络设计了一个有效的相关监督协议的三层目标框架和补救措施。
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A Tutorial on Agricultural IoT: Fundamental Concepts, Architectures, Routing, and Optimization
This paper presents an in-depth contextualized tutorial on Agricultural IoT (Agri-IoT), covering the fundamental concepts, assessment of routing architectures and protocols, and performance optimization techniques via a systematic survey and synthesis of the related literature. The negative impacts of climate change and the increasing global population on food security and unemployment threats have motivated the adoption of the wireless sensor network (WSN)-based Agri-IoT as an indispensable underlying technology in precision agriculture and greenhouses to improve food production capacities and quality. However, most related Agri-IoT testbed solutions have failed to achieve their performance expectations due to the lack of an in-depth and contextualized reference tutorial that provides a holistic overview of communication technologies, routing architectures, and performance optimization modalities based on users’ expectations. Thus, although IoT applications are founded on a common idea, each use case (e.g., Agri-IoT) varies based on the specific performance and user expectations as well as technological, architectural, and deployment requirements. Likewise, the agricultural setting is a unique and hostile area where conventional IoT technologies do not apply, hence the need for this tutorial. Consequently, this tutorial addresses these via the following contributions: (1) a systematic overview of the fundamental concepts, technologies, and architectural standards of WSN-based Agri-IoT, (2) an evaluation of the technical design requirements of a robust, location-independent, and affordable Agri-IoT, (3) a comprehensive survey of the benchmarking fault-tolerance techniques, communication standards, routing and medium access control (MAC) protocols, and WSN-based Agri-IoT testbed solutions, and (4) an in-depth case study on how to design a self-healing, energy-efficient, affordable, adaptive, stable, autonomous, and cluster-based WSN-specific Agri-IoT from a proposed taxonomy of multi-objective optimization (MOO) metrics that can guarantee an optimized network performance. Furthermore, this tutorial established new taxonomies of faults, architectural layers, and MOO metrics for cluster-based Agri-IoT (CA-IoT) networks and a three-tier objective framework with remedial measures for designing an efficient associated supervisory protocol for cluster-based Agri-IoT networks.
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