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Designing Noise-Minimal Rotorcraft Approach Trajectories

机译:设计最小噪声的旋翼机进场轨迹

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NASA and the international aviation community are investing in the development of a commercial transportation infrastructure that includes the increased use of rotorcraft, specifically helicopters and civil tilt rotors. However, there is significant concern over the impact of noise on the communities surrounding the transportation facilities. One way to address the rotorcraft noise problem is by exploiting powerful search techniques coming from artificial intelligence to design low-noise flight profiles that can be then validated though field tests. This article investigates the use of discrete heuristic search methods to design low-noise approach trajectories for rotorcraft. Our work builds on a long research tradition in trajectory optimization using either numerical methods or discrete search. Novel features of our approach include the use of a discrete search space with a resolution that can be varied, and the coupling of search with a robust simulator to evaluate candidates. The article includes a systematic comparison of different search techniques; in particular, in the experiments, we are able to do a trade study that compares complete search algorithms such as A* with faster but approximate methods such as local search.
机译:美国国家航空航天局(NASA)和国际航空界正在投资开发商业运输基础设施,其中包括增加旋翼飞机的使用,特别是直升机和民用倾斜旋翼的使用。但是,人们非常关注噪声对交通设施周围社区的影响。解决旋翼飞机噪声问题的一种方法是,利用人工智能提供的强大搜索技术来设计低噪声飞行轮廓,然后通过现场测试对其进行验证。本文研究了离散启发式搜索方法在设计旋翼飞机低噪声进近轨迹时的应用。我们的工作建立在使用数值方法或离散搜索进行轨迹优化的悠久研究传统上。我们方法的新颖功能包括使用具有可变分辨率的离散搜索空间,以及将搜索与强大的模拟器结合在一起以评估候选对象。本文包括对不同搜索技术的系统比较;特别是在实验中,我们能够进行贸易研究,将完整的搜索算法(例如A *)与更快但近似的方法(例如本地搜索)进行比较。

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