Enhancing Smart Agriculture by Implementing Digital Twins: A Comprehensive Review
Повышение эффективности умного сельского хозяйства посредством внедрения цифровых двойников: комплексный обзор
2023-08-11
SCID: 54.1/4zfkt3qc
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Crop modellingDigital twinsPrecision agricultureSmart farmingUAV and satellite imagery
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Abstract (AI)
Digital Twins serve as virtual counterparts, replicating the characteristics and functionalities of tangible objects, processes, or systems within the digital space, leveraging their capability to simulate and forecast real-world behavior. They have found valuable applications in smart farming, facilitating a comprehensive virtual replica of a farm that encompasses vital aspects such as crop cultivation, soil composition, and prevailing weather conditions. By amalgamating data from diverse sources, including soil, plants condition, environmental sensor networks, meteorological predictions, and high-resolution UAV and Satellite imagery, farmers gain access to dynamic and up-to-date visualization of their agricultural domains empowering them to make well-informed and timely choices concerning critical aspects like efficient irrigation plans, optimal fertilization methods, and effective pest management strategies, enhancing overall farm productivity and sustainability. This research paper aims to present a comprehensive overview of the contemporary state of research on digital twins in smart farming, including crop modelling, precision agriculture, and associated technologies, while exploring their potential applications and their impact on agricultural practices, addressing the challenges and limitations such as data privacy concerns, the need for high-quality data for accurate simulations and predictions, and the complexity of integrating multiple data sources. Lastly, the paper explores the prospects of digital twins in agriculture, highlighting potential avenues for future research and advancement in this domain.
Key Findings
1
Current agricultural digital-twin adoption is constrained by data privacy, requirements for high-quality simulation data, and the complexity of integrating heterogeneous sources.
2
Digital twins can create comprehensive virtual replicas of farms, representing crop cultivation, soil composition, and weather conditions.
3
Digital twins support precision agriculture decisions involving irrigation, fertilization, and pest management, with potential to improve farm productivity and sustainability.
4
Future research should advance digital-twin applications across crop modeling, precision agriculture, and related smart-farming technologies.
5
Integrating soil, plant, environmental sensor, meteorological, UAV, and satellite data enables dynamic farm visualization and timely decision-making.
Research Object
digital twins for smart farming, including virtual replicas of agricultural farms, crops, soil, and environmental conditions
Research Subject
their applications, impacts, and challenges in crop modeling and precision agriculture, including data integration, simulation and prediction accuracy, and decision-making for irrigation, fertilization, and pest management
Publication Details
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2023-08-11
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References available in scid.ai6
Intelligent Manufacturing in the Context of Industry 4.0: A Review2017
Digital Twin: Values, Challenges and Enablers From a Modeling Perspective2020
A Review of the Roles of Digital Twin in CPS-based Production Systems2017
Digital Twins and Cyber–Physical Systems toward Smart Manufacturing and Industry 4.0: Correlation and Comparison2019
Digital Twin Technology Challenges and Applications: A Comprehensive Review2022
How to tell the difference between a model and a digital twin2020