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Navigation Recommender:Real-Time iGNSS QoS Prediction for Navigation Services

机译:导航推荐器:导航服务的实时iGNSS QoS预测

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摘要

Global Navigation Satellite Systems (GNSSs), especially Global Positioning System (GPS), have become commonplace in mobile devices and are the most preferred geo-positioning sensors for many location-based applications. Besides GPS, other GNSSs under development or deployment are GLONASS, Galileo, and Compass. These four GNSSs are planned to be integrated in the near future. It is anticipated that integrated GNSSs (iGNSSs) will improve the overall satellite-based geo-positioning performance. However, one major shortcoming of any GNSS and iGNSSs is Quality of Service (QoS) degradation due to signal blockage and attenuation by the surrounding environments, particularly in obstructed areas. GNSS QoS uncertainty is the root cause of positioning ambiguity, poor localization performance, application freeze, and incorrect guidance in navigation applications. udIn this research, a methodology, called iGNSS QoS prediction, that can provide GNSS QoS on desired and prospective routes is developed. Six iGNSS QoS parameters suitable for navigation are defined: visibility, availability, accuracy, continuity, reliability, and flexibility. The iGNSS QoS prediction methodology, which includes a set of algorithms, encompasses four modules: segment sampling, point-based iGNSS QoS prediction, tracking-based iGNSS QoS prediction, and iGNSS QoS segmentation. Given that iGNSS QoS prediction is data- and compute-intensive and navigation applications require real-time solutions, an efficient satellite selection algorithm is developed and distributed computing platforms, mainly grids and clouds, for achieving real-time performance are explored. The proposed methodology is unique in several respects: it specifically addresses the iGNSS positioning requirements of navigation systems/services; it provides a new means for route choices and routing in navigation systems/services; it is suitable for different modes of travel such as driving and walking; it takes high-resolution 3D data into account for GNSS positioning; and it is based on efficient algorithms and can utilize high-performance and scalable computing platforms such as grids and clouds to provide real-time solutions.udA number of experiments were conducted to evaluate the developed methodology and the algorithms using real field test data (GPS coordinates). The experimental results show that the methodology can predict iGNSS QoS in various areas, especially in problematic areas.ud
机译:全球导航卫星系统(GNSS),尤其是全球定位系统(GPS),已在移动设备中变得司空见惯,并且是许多基于位置的应用程序中最优选的地理位置传感器。除GPS外,其他正在开发或部署的GNSS还包括GLONASS,Galileo和Compass。计划在不久的将来整合这四个GNSS。预计集成的GNSS(iGNSS)将改善整体基于卫星的地理定位性能。但是,任何GNSS和iGNSS的一个主要缺点是服务质量(QoS)下降,这是由于信号阻塞和周围环境(尤其是在阻塞区域)造成的衰减所致。 GNSS QoS不确定性是定位模棱两可,定位性能差,应用程序冻结以及导航应用程序中的错误指导的根本原因。 ud在这项研究中,开发了一种称为iGNSS QoS预测的方法,该方法可以在所需和预期的路由上提供GNSS QoS。定义了六个适用于导航的iGNSS QoS参数:可见性,可用性,准确性,连续性,可靠性和灵活性。 iGNSS QoS预测方法论包括一组算法,包括四个模块:分段采样,基于点的iGNSS QoS预测,基于跟踪的iGNSS QoS预测和iGNSS QoS分段。鉴于iGNSS QoS预测需要大量数据和计算,并且导航应用需要实时解决方案,因此需要开发一种有效的卫星选择算法,并探索分布式计算平台(主要是网格和云)以实现实时性能。所提出的方法在几个方面是独特的:它专门解决了导航系统/服务的iGNSS定位要求;它为导航系统/服务中的路线选择和路线选择提供了新的手段;它适用于不同的出行方式,例如开车和步行; GNSS定位考虑了高分辨率3D数据;并且基于高效算法,并且可以利用诸如网格和云之类的高性能和可扩展计算平台来提供实时解决方案。 ud进行了大量实验,以评估开发的方法和使用现场测试数据的算法( GPS坐标)。实验结果表明,该方法可以预测各个领域的iGNSS QoS,特别是在有问题的地区。 ud

著录项

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    Roongpiboonsopit Duangduen;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 en
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