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Dynamic, adaptive and modular Digital Twin framework for resource-efficient Controlled Environment Agriculture.
Julius Frontzek1, Zühal Wagner1, Stefan Streif1,2
1Professorship for Automatic Control and System Dynamics, Chemnitz University of Technology, Chemnitz, Germany.
Frontiers in Plant Science
|July 16, 2026
Summary
A new Digital Twin (DT) framework enhances Controlled Environment Agriculture (CEA) by enabling dynamic control strategies for optimized resource use and energy cost reduction. This system integrates real-time data and predictive modeling for improved crop management.
Area of Science:
- Agricultural Engineering
- Computer Science
- Systems Biology
Background:
- Controlled Environment Agriculture (CEA) is shifting from fixed set-point control to dynamic strategies for efficiency and quality.
- Dynamic control requires real-time monitoring, data integration, and predictive modeling, often facilitated by Digital Twins (DTs).
Purpose of the Study:
- To introduce a novel, open-source Digital Twin (DT) framework for supporting dynamic control strategies in CEA.
- To address challenges in scalability, generalizability, and interoperability of DTs in CEA.
Main Methods:
- Utilized the IoT platform ThingsBoard for scalable, vendor-agnostic data acquisition and management.
- Developed a physics-based modeling backend using Modelica and Functional Mock-up Units (FMUs) with a parameter estimation pipeline for calibration.
- Implemented a Multirate Moving Horizon Estimation (MMHE) state estimator for continuous estimation of unmeasured variables like plant biomass.
Main Results:
- Verified the DT framework's architectural feasibility and virtual modeling capabilities through a lettuce growth simulation in a vertical hydroponic farm.
- Achieved low prediction error (RMSE of 0.221g, NRMSE of 6.62%) for the calibrated growth model on an independent test set.
- Demonstrated the MMHE state estimator's effectiveness in maintaining continuous biomass estimates despite data sparsity and model mismatch.
Conclusions:
- The developed DT framework provides a robust and extensible foundation for physical DT implementations in CEA.
- The framework supports dynamic, data-driven, and energy-aware operations, paving the way for advanced agricultural management.
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