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Robust GPS autonomous signal quality monitoring.

机译:强大的GPS自主信号质量监控。

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The Global Positioning System (GPS), introduced by the U.S. Department of Defense in 1973, provides unprecedented world-wide navigation capabilities through a constellation of 24 satellites in global orbit, each emitting a low-power radio-frequency signal for ranging. GPS receivers track these transmitted signals, computing position to within 30 meters from range measurements made to four satellites. GPS has a wide range of applications, including aircraft, marine and land vehicle navigation. Each application places demands on GPS for various levels of accuracy, integrity, system availability and continuity of service.; Radio frequency interference (RFI), which results from natural sources such as TV/FM harmonics, radar or Mobile Satellite Systems (MSS), presents a challenge in the use of GPS, by posing a threat to the accuracy, integrity and availability of the GPS navigation solution. In order to use GPS for integrity-sensitive applications, it is therefore necessary to monitor the quality of the received signal, with the objective of promptly detecting the presence of RFI, and thus provide a timely warning of degradation of system accuracy. This presents a challenge, since the myriad kinds of RFI affect the GPS receiver in different ways. What is required then, is a robust method of detecting GPS accuracy degradation, which is effective regardless of the origin of the threat.; This dissertation presents a new method of robust signal quality monitoring for GPS. Algorithms for receiver autonomous interference detection and integrity monitoring are demonstrated. Candidate test statistics are derived from fundamental receiver measurements of in-phase and quadrature correlation outputs, and the gain of the Active Gain Controller (AGC). Performance of selected test statistics are evaluated in the presence of RFI: broadband interference, pulsed and non-pulsed interference, coherent CW at different frequencies; and non-RFI: GPS signal fading due to physical blockage and multipath. Results are presented which verify the effectiveness of these proposed methods.; The benefits of pseudolites in reducing service outages due to interference are demonstrated. Pseudolites also enhance the geometry of the GPS constellation, improving overall system accuracy. Designs for pseudolites signals, to reduce the near-far problem associated with pseudolite use, are also presented.
机译:由美国国防部于1973年引入的全球定位系统(GPS)通过在全球轨道上的24颗卫星星座提供了前所未有的全球导航功能,每颗卫星都发射一个用于测距的低功率射频信号。 GPS接收器跟踪这些传输的信号,计算位置,距离对四颗卫星的距离测量值不到30米。 GPS具有广泛的应用,包括飞机,海上和陆地车辆导航。每个应用都对GPS提出了不同级别的准确性,完整性,系统可用性和服务连续性要求。射频干扰(RFI)由电视/ FM谐波,雷达或移动卫星系统(MSS)等自然资源产生,通过对GPS的准确性,完整性和可用性构成威胁,对GPS的使用提出了挑战。 GPS导航解决方案。为了将GPS用于对完整性敏感的应用,因此有必要监视接收信号的质量,目的是迅速检测RFI的存在,从而及时警告系统精度降低。这是一个挑战,因为无数种RFI会以不同的方式影响GPS接收器。因此,需要一种可靠的检测GPS精度下降的方法,该方法无论威胁的起源如何都有效。提出了一种鲁棒的GPS信号质量监测新方法。演示了用于接收机自主干扰检测和完整性监控的算法。候选测试统计数据来自同相和正交相关输出的基本接收机测量结果以及有源增益控制器(AGC)的增益。在存在RFI的情况下评估所选测试统计数据的性能:宽带干扰,脉冲和非脉冲干扰,不同频率下的相干CW;非RFI:由于物理阻塞和多径而导致GPS信号衰减。提出的结果证明了这些方法的有效性。证明了伪卫星在减少由于干扰而导致的服务中断中的好处。伪卫星还增强了GPS星座的几何形状,从而提高了整体系统的精度。还提出了伪卫星信号的设计,以减少与伪卫星使用相关的远距离问题。

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