arXiv:2412.08102cs.RO2024-12被引 2

用高保真仿真验证垂直起降飞行器视觉着陆系统的安全性。

Verification and Validation of a Vision-Based Landing System for Autonomous VTOL Air Taxis

  • 通过形式化验证工具分析视觉着陆系统的可达集,确保安全。
  • 在虚幻引擎构建的逼真仿真环境中测试算法在多种条件下的鲁棒性。
  • 为早期开发阶段提供可重复、可扩展的安全评估方案,适合飞行器研发团队。

自主空中出租车有望革新城市公共交通,但其安全性与可靠性仍是待解难题。在真实世界中验证自动驾驶系统面临复杂性、风险与成本等挑战。验证与确认(V&V)框架通过形式化验证安全属性并验证算法在多样化运行场景中的行为,对高可靠性系统的设计至关重要。高保真仿真器的发展显著提升了其模拟现实条件的能力,推动其在自动驾驶空中出租车早期开发阶段的应用。本研究提出一种面向垂直起降(VTOL)空中出租车视觉着陆系统的V&V框架。具体地,采用Verse工具对系统进行建模与形式化验证,通过获取和分析可达集来确保安全性。仿真环境基于虚幻引擎构建,具备高保真度的地形、天气与传感器特征。为验证分析结果,开展大量场景化测试,评估着陆算法在不同条件下的可达集与鲁棒性。该方法验证了高保真仿真器的代表性,为算法分析与优化提供了有效手段,支持提前部署前的充分验证。

原文摘要 · Abstract (English)

Autonomous air taxis are poised to revolutionize urban mass transportation, however, ensuring their safety and reliability remains an open challenge. Validating autonomy solutions on air taxis in the real world presents complexities, risks, and costs that further convolute this challenge. Verification and Validation (V&V) frameworks play a crucial role in the design and development of highly reliable systems by formally verifying safety properties and validating algorithm behavior across diverse operational scenarios. Advancements in high-fidelity simulators have significantly enhanced their capability to emulate real-world conditions, encouraging their use for validating autonomous air taxi solutions, especially during early development stages. This evolution underscores the growing importance of simulation environments, not only as complementary tools to real-world testing but as essential platforms for evaluating algorithms in a controlled, reproducible, and scalable manner. This work presents a V&V framework for a vision-based landing system for air taxis with vertical take-off and landing (VTOL) capabilities. Specifically, we use Verse, a tool for formal verification, to model and verify the safety of the system by obtaining and analyzing the reachable sets. To conduct this analysis, we utilize a photorealistic simulation environment. The simulation environment, built on Unreal Engine, provides realistic terrain, weather, and sensor characteristics to emulate real-world conditions with high fidelity. To validate the safety analysis results, we conduct extensive scenario-based testing to assess the reachability set and robustness of the landing algorithm in various conditions. This approach showcases the representativeness of high-fidelity simulators, offering an effective means to analyze and refine algorithms before real-world deployment.

飞行器视觉导航仿真验证安全评估

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