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Informed scenario-based RRT* for aircraft trajectory planning under ensemble forecasting of thunderstorms

机译:基于方案的RRT *用于飞机轨迹规划的集合预测雷暴预测

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摘要

Thunderstorms represent a major hazard for flights, as they compromise the safety of both the airframe and the passengers. To address trajectory planning under thunderstorms, three variants of the scenario-based rapidly exploring random trees (SB-RRTs) are proposed. During an iterative process, the so-called SB-RRT, the SB-RRT* and the Informed SB-RRT* find safe trajectories by meeting a user-defined safety threshold. Additionally, the last two techniques converge to solutions of minimum flight length. Through parallelization on graphical processing units the required computational times are reduced substantially to become compatible with near real-time operation. The proposed methods are tested considering a kinematic model of an aircraft flying between two waypoints at constant flight level and airspeed; the test scenario is based on a realistic weather forecast and assumed to be described by an ensemble of equally likely members. Lastly, the influence of the number of scenarios, safety margin and iterations on the results is analyzed. Results show that the SB-RRTs are able to find safe and, in two of the algorithms, close to-optimum solutions.
机译:雷暴代表了航班的重大危害,因为它们损害了机身和乘客的安全性。为了解决雷暴下的轨迹规划,提出了三种基于情景的快速探索随机树(SB-RRT)的三种变体。在迭代过程中,通过满足用户定义的安全阈值,所谓的SB-RRT,SB-RRT *和通知的SB-RRT *找到安全轨迹。另外,最后两种技术会聚到最小飞行长度的解。通过图形处理单元上的并行化,所需的计算时间基本上减少,以与近实时操作相兼容。考虑到在恒定飞行水平和空速之间的两个航点之间飞行的飞机运动的运动模型进行测试;测试场景基于现实的天气预报,并假设由同样可能的成员的集合描述。最后,分析了场景数量,安全保证金和迭代对结果的影响。结果表明,SB-RRT能够找到安全,并在两个算法中,接近最佳解决方案。

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