WAAS测量处理;当前的设计和潜在的改进

K. Shallberg, Fang Sheng
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引用次数: 26

摘要

以前关于广域增强系统(WAAS)的论文详细介绍了时钟和星历、信号质量和电离层监测等项目的完整性设计。本文将详细介绍在支持这些监控功能的WAAS中执行的GPS测量处理。在WAAS计划的垂直制导定位器性能阶段,在完整性(或安全)处理器中进行的测量处理已经得到了发展。目前,该处理集成了参考站所有三个独立接收线程的测量结果,并执行各种交叉线程检查,以减轻选择多径和循环滑动事件。这种跨线程处理的基础假设是,由环境条件引起的常见模式错误是罕见且随机的。在极北纬地区引入WAAS参考站,在明显的相位闪烁环境中工作,并且设计决定让接收器在非常低的信噪比条件下工作,暴露了错误的测量条件,挑战了这种罕见的随机假设。本文将讨论WAAS测量处理体系结构,并将重点放在这些错误条件以及WAAS纳入的监控算法上以减轻它们。本文还研究了通信中断期间WAAS测量处理的潜在改进。参考站和主站之间的通信中断主要发生在远程参考站,有可能导致测量处理算法重新初始化,从而影响WAAS的可用性和连续性性能。本文将研究在不降低测量质量的情况下通过数据中断期改善操作的算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
WAAS measurement processing; current design and potential improvements
Previous papers on the wide area augmentation system (WAAS) provided details on integrity design for such items as clock and ephemeris, signal quality, and ionospheric monitoring. This paper will provide details on GPS measurement processing performed in WAAS that supports these monitoring functions. Measurement processing conducted in the integrity (or safety) processor has evolved during the localizer performance with vertical guidance phase of the WAAS Program. Currently, this processing integrates measurements from all three independent receiving threads at a reference station and performs various cross thread checks to mitigate select multipath and cycle slip events. Underlying this cross thread processing is the assumption that common mode errors caused by environmental conditions are rare and random. The introduction of WAAS reference stations in extreme northern latitudes operating in significant phase scintillation environments, and the design decision to have the receiver operate in very low signal to noise conditions, exposed erroneous measurement conditions that challenged this rare and random assumption. This paper will address the WAAS measurement processing architecture and focus on such erroneous conditions along with the monitoring algorithms WAAS incorporated to mitigate them. The paper also examines potential improvements in WAAS measurement processing during communication outages. Communication outages between reference and master stations that occur primarily from remote reference stations have the potential of causing measurement processing algorithms to reinitialize thus impacting WAAS availability and continuity performance. This paper will investigate algorithms for improving operation through data outage periods without reducing measurement quality.
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