Autonomous Solar-Powered Smart Sensing Node: Integrating TinyML and Hybrid LoRaWAN/Wi-Fi Connectivity for Sustainable Precision Agriculture

精准农业 无线传感器网络 计算机科学 实时计算 智能传感器 模块化设计 节点(物理) 传感器融合 数据采集 嵌入式系统 系统工程 能量收集 多光谱图像 无线 高效能源利用 工作单元 传感器节点 工程类 数码产品 指南针 智能系统 可再生能源 系统体系结构 遥感 智能电网 供应 环境监测 钥匙(锁) 领域(数学)
作者
Elizabeth Ospina-Rojas,Juan Botero-Valencia,Juan‐Guillermo Muñoz,Juan Morales-Guerra,Ruber Hernández-García,J. F. Vargas‐Bonilla,Carolina Del-Valle-Soto
出处
期刊:Applied system innovation [Multidisciplinary Digital Publishing Institute]
卷期号:9 (8): 163-163
标识
DOI:10.3390/asi9080163
摘要

Precision agriculture and sustainable farming practices require autonomous environmental monitoring systems capable of operating in remote areas with limited energy and connectivity. However, the high cost of existing professional technology remains a significant barrier to widespread adoption. This study presents the development of a solar-powered smart sensing node designed for autonomous operation that integrates TinyML and dual-mode wireless connectivity via LoRaWAN and Wi-Fi for intelligent monitoring. The system features a custom-designed cup anemometer and multispectral sensing capabilities integrated into a compact single-tower architecture. All structural components, including radiation shields and a modular PVC frame, were designed for low-cost manufacturing and mass production. A single hermetic housing protects the core control electronics and is designed to improve durability in harsh outdoor environments. A Multi-Layer Perceptron model was implemented on the edge to enable intelligent data fusion and compensation, while a dynamic sampling strategy optimized power consumption. Experimental results demonstrate the feasibility of the proposed architecture through adaptive spectral acquisition over a daily illumination cycle, embedded MLP-based sensor fusion, and telemetry-oriented data compression that substantially reduces the number of transmitted samples. The main contribution of this work is a system-level architecture that integrates sensing, embedded intelligence, solar-energy harvesting, hybrid wireless communication, and telemetry optimization into a compact, low-cost, and field-deployable prototype IoT platform for sustainable precision agriculture.
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