A 3D spatial integrity monitor for terrain databases

A. Vadlamani, M. Uijt de Haag
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引用次数: 4

Abstract

Advanced cockpit display systems are the topic of active research to overcome the problems caused by limited visibility and to improve aircraft safety and airport operations, in general. The National Aeronautics and Space Administration's (NASA) Aviation Safety and Security Program (AvSSP) is developing Synthetic Vision Systems (SVS) to improve a pilot's situational awareness. SVS provide a pilot with either a Heads-Up Display (HUD) or a Heads-Down Display (HDD) containing information about aircraft state, guidance, obstacles and the terrain features over which the aircraft is flying. Out of these, the terrain feature information is extracted on-board from terrain databases. For applications that improve flight safety, it is imperative that the terrain database conforms to a high level of integrity. Otherwise, instead of preventing accidents, the terrain database would be the cause of more. To ensure that the terrain elevation data used for the SVS display imagery conforms to a required reliability, it may be necessary to include an integrity monitor function to the terrain database server. This paper builds upon previously proposed concepts and discusses the concept of a three-dimensional spatial integrity monitor (in the vertical and the two-dimensional horizontal domains) for detecting bias errors. The lower the magnitude of the integrity monitor's minimum detectable bias, the better the integrity monitor. A Kalman filter is designed to make the integrity monitor sensitive to lower magnitudes of bias. The concepts developed for the spatial integrity monitor are extended to a terrain referenced navigation scheme called the spatial position estimator. The performance of the proposed integrity monitor and position estimator is evaluated using flight test data from NASA's flight trials at Eagle/Vail (EGE), CO and Ohio University's flight trials at Albany (KUNI), OH, Asheville (AVL), NC, and Juneau (JNU), AK.
用于地形数据库的三维空间完整性监视器
先进的座舱显示系统是积极研究的主题,以克服能见度有限造成的问题,并提高飞机安全和机场运营。美国国家航空航天局(NASA)航空安全和保障计划(AvSSP)正在开发合成视觉系统(SVS),以提高飞行员的态势感知能力。SVS为飞行员提供平视显示器(HUD)或平视显示器(HDD),其中包含有关飞机状态、制导、障碍物和飞机飞行所经过的地形特征的信息。其中,地形特征信息从地形数据库中提取。对于提高飞行安全的应用程序,地形数据库必须符合高水平的完整性。否则,地形数据库不但不能防止事故,反而会造成更多的事故。为了确保用于SVS显示图像的地形高程数据符合所需的可靠性,可能需要在地形数据库服务器中包含完整性监控功能。本文以先前提出的概念为基础,讨论了用于检测偏差的三维空间完整性监视器(在垂直和二维水平域)的概念。完整性监视器的最小可检测偏差的幅度越低,完整性监视器越好。设计了一种卡尔曼滤波器,使完整性监测器对较小的偏置敏感。为空间完整性监测器开发的概念扩展到称为空间位置估计器的地形参考导航方案。所提出的完整性监测器和位置估计器的性能使用了NASA在Eagle/Vail (EGE)和俄亥俄大学在Albany (KUNI), OH, Asheville (AVL), NC和Juneau (JNU), AK的飞行试验的飞行测试数据进行评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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