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A digital twin-driven computation and analysis framework for low-altitude airspace.
Zhenghan He1, Weibin Zhang1, Peng Du1
1Xian Yang Polytechnic Institute, Xian Yang, 711200, China.
This study introduces a digital twin framework for low-altitude airspace management, significantly improving trajectory prediction accuracy and robustness. The novel approach enhances safety and efficiency in complex aerial environments.
Area of Science:
- Aerospace Engineering
- Computer Science
- Artificial Intelligence
Background:
- Low-altitude airspace management faces challenges like high dynamic complexity, safety risks, and fragmented information.
- Existing systems struggle with real-time analysis and prediction in dynamic environments.
Purpose of the Study:
- To propose a digital twin-enabled computation and analysis framework for low-altitude airspace management.
- To enhance spatial mapping, spatiotemporal representation, and dynamic modeling.
- To improve trajectory prediction accuracy and conflict warning capabilities.
Main Methods:
- A four-layer digital twin architecture integrating multi-source data fusion.
- Implementation of a bidirectional GRU-Seq2Seq trajectory prediction model.
- Inclusion of a Kalman filter for error compensation and a bidirectional physical-virtual closed-loop interaction.
Main Results:
- Achieved an average trajectory prediction error of 1.52 m, outperforming baseline models by up to 47.9%.
- Maintained low prediction error (max 3.9 m at 15s) across varying prediction horizons.
- Demonstrated superior robustness in GPS denial and communication interruption scenarios (avg. error 2.15 m and 2.38 m).
Conclusions:
- The digital twin framework significantly enhances low-altitude airspace management performance.
- The proposed method outperforms traditional geometric twins and deep learning approaches in accuracy, stability, and robustness.
- The framework is validated as effective and practical for real-world low-altitude airspace operations.
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