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September 24, 2025Drones10 citationsOpen Access

Risk-Aware UAV Trajectory Optimization Using Open Urban GIS Data and Target Level of Safety Constraints

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HBHannes BraßelTZThomas ZehMLMartin Lindner

Key Points

  • The method achieved a 72.2% reduction in induced ground risk compared to the direct path, indicating its effectiveness.
  • The A* algorithm utilized a risk-weighted cost function to optimize trajectories, balancing flight efficiency and ground risk.
  • The risk model integrated urban factors like population density and road traffic flow, enhancing trajectory optimization.
  • Validation through a large-scale simulation study demonstrates the method's practical relevance in real-world UAV operations.

Abstract

Integrating Unmanned Aerial Vehicles (UAVs) into urban airspace requires a risk-aware approach to strategic flight planning and trajectory optimization, particularly for beyond-visual-line-of-sight operations. Existing regulatory frameworks impose strict restrictions and lack dynamic, trajectory-based risk assessments. This study presents a methodology to compute efficient UAV flight paths that comply with a predefined Target Level of Safety (TLS) for ground risk. An A* algorithm with an adaptive, risk-weighted cost function optimizes trajectories by balancing flight efficiency and ground risk exposure. The risk model incorporates key urban factors, including population exposure, road-traffic density and flow, sheltering effects, UAV-specific parameters, and wind conditions. The approach is validated through a large-scale simulation study using synthetic urban environments, systematically analyzing TLS compliance and the impact of UAV parameters on optimal trajectories. In a real-world case study using open urban GIS data, the method achieved a 72.2% reduction in induced ground risk compared to the direct path, while increasing the detour factor only to 1.06 and maintaining full TLS compliance, demonstrating its practical relevance for strategic, risk-aware UAV flight planning.

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Cite This Study

Braßel et al. (2025) studied this question.

synapsesocial.com/papers/68d6e1248b2b6861e4c3f6fahttps://doi.org/10.3390/drones9100666
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