gLAB卫星导航实践教育

Adrià Rovira Garcia, Deimos Ibáñez Segura, Mowen Li, María Teresa Alonso Alonso, Jaume Sanz Subirana, José Miguel Juan Zornoza, Guillermo González Casado
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引用次数: 0

摘要

全球卫星导航系统(GNSS)可以计算配备适当硬件(即天线和接收器)和软件的用户的位置、速度和时间。后者根据GNSS卫星在L波段传输的测距测量和星历来估计PVT。加泰罗尼亚理工大学(UPC)的天文学和地理信息学(gAGE)研究小组自2009年以来一直在欧洲航天局(ESA)卫星导航教育计划(EDUNAV)的背景下开发GNSS实验室(gLAB)工具套件。gLAB是一款多用途软件,能够在几种模式下确定PVT:独立(例如作为智能手机或汽车导航仪),差分(例如测量设备或精确农业),以及增强完整性(例如民航或生命安全应用)。gLAB主要针对两组用户和功能设计。第一个是对大学生和专业人员进行GNSS数据处理的艺术和科学教育。这包括GNSS领域的新手,他们非常欣赏图形用户界面(GUI),具有必要配置的默认模板或带有警告和错误的消息。第二类用户是以前有GNSS经验的用户。那些感兴趣的是高计算速度,高精度定位,批处理和访问中间计算步骤。在目前的贡献中,我们提出了一些gLAB作为教育平台的例子。这些数据集是由公开的国际GNSS服务(IGS)收集的实际GNSS测量数据,以及导航电文中广播的卫星轨道和时钟等其他IGS产品。所提出的方法和程序是通过激活或停用gLAB中的不同建模项来了解空间信号(SIS)和位置域中不同误差分量的影响。这些结果举例说明了在使用不同的处理策略或GNSS信号在穿越大气层时的传播效应时,PVT如何增强或恶化。我们的结论是,gLAB是学习GNSS数据处理或扩展任何先验知识的有用工具
本文章由计算机程序翻译,如有差异,请以英文原文为准。
gLAB hands-on education on satellite navigation
The Global Navigation Satellite System (GNSS) allows computing the Position, Velocity and Time (PVT) of users equipped with appropriate hardware (i.e. an antenna and a receiver) and software. The latter estimates the PVT from the ranging measurements and ephemeris transmitted by the GNSS satellites in frequencies of the L band. The research group of Astronomy and Geomatics (gAGE) at the Universitat Politecnica de Catalunya (UPC) has been developing the GNSS LABoratory (gLAB) tool suite since 2009, in the context of the European Space Agency (ESA) educational program on satellite navigation (EDUNAV). gLAB is a multi-purpose software capable of determining the PVT in several modes: stand-alone (e.g. as a smartphone or car navigator), differential (e.g. surveying equipment or precise farming), and augmented with integrity (e.g. civil aviation or safety of life applications). gLAB has been designed for two main sets of users and functions. The first one is to educate University students and professionals in the art and science of GNSS data processing. This includes newcomers to the GNSS field that highly appreciate the Graphical User Interface (GUI), the default templates with the necessary configuration or the messages with warnings and errors. The second group of users are those with previous experience on GNSS. Those are interested into a high computation speed, high-accuracy positioning, batch processing and access to the intermediate computation steps. In the present contribution, we present some examples in which gLAB serves as an education platform. The data sets are actual GNSS measurements collected by the publicly available International GNSS Service (IGS), together with other IGS products such as the satellite orbits and clocks broadcast in the navigation message. The proposed methodology and procedures are tailored to understand the effects of different error components in both the Signal in Space (SIS) and the position domain, by activating or deactivating different modeling terms in gLAB. The results illustrate some examples of how the PVT can be enhanced or deteriorated when using different processing strategies or propagation effects present in the GNSS signals traversing the atmosphere, among others. We conclude that gLAB is a useful tool to learn GNSS data processing or to expand any prior knowledge
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