Cost-Effective Cyber-Physical System Prototype for Precision Agriculture with a Focus on Crop Growth

Fuente: arXiv
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Autori principali: Kumar, Pawan, Kim, Hokeun
Natura: Preprint
Pubblicazione: 2024
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author Kumar, Pawan
Kim, Hokeun
author_facet Kumar, Pawan
Kim, Hokeun
contents In precision agriculture, integrating advanced technologies is crucial for optimizing plant growth and health monitoring. Cyber-physical system (CPS) platforms tailored to specific agricultural environments have emerged, but the diversity of these environments poses challenges in developing adaptive CPS platforms. This paper explores rapid prototyping methods to address these challenges, focusing on non-destructive techniques for estimating plant growth. We present a CPS prototype that combines sensors, microcontrollers, digital image processing, and predictive modeling to measure leaf area and biomass accumulation in hydroponic environments. Our results show that the prototype effectively monitors and predicts plant growth, highlighting the potential of rapid CPS prototyping in promoting sustainability and improving crop yields at a moderate cost of hardware.
format Preprint
id arxiv_https___arxiv_org_abs_2410_06471
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Cost-Effective Cyber-Physical System Prototype for Precision Agriculture with a Focus on Crop Growth
Kumar, Pawan
Kim, Hokeun
Systems and Control
In precision agriculture, integrating advanced technologies is crucial for optimizing plant growth and health monitoring. Cyber-physical system (CPS) platforms tailored to specific agricultural environments have emerged, but the diversity of these environments poses challenges in developing adaptive CPS platforms. This paper explores rapid prototyping methods to address these challenges, focusing on non-destructive techniques for estimating plant growth. We present a CPS prototype that combines sensors, microcontrollers, digital image processing, and predictive modeling to measure leaf area and biomass accumulation in hydroponic environments. Our results show that the prototype effectively monitors and predicts plant growth, highlighting the potential of rapid CPS prototyping in promoting sustainability and improving crop yields at a moderate cost of hardware.
title Cost-Effective Cyber-Physical System Prototype for Precision Agriculture with a Focus on Crop Growth
topic Systems and Control
url https://arxiv.org/abs/2410.06471