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Code Tracking Algorithms for Mitigating Multipath Effects in Fading Channels for Satellite-Based Positioning

机译:卫星定位中用于减轻衰落信道中多径效应的代码跟踪算法

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The ever-increasing public interest in location and positioning services has originated a demand for higher performance global navigation satellite systems (GNSSs). In order to achieve this incremental performance, the estimation of line-of-sight (LOS) delay with high accuracy is a prerequisite for all GNSSs. The delay lock loops (DLLs) and their enhanced variants (i.e., feedback code tracking loops) are the structures of choice for the commercial GNSS receivers, but their performance in severe multipath scenarios is still rather limited. In addition, the new satellite positioning system proposals specify the use of a new modulation, the binary offset carrier (BOC) modulation, which triggers a new challenge in the code tracking stage. Therefore, in order to meet this emerging challenge and to improve the accuracy of the delay estimation in severe multipath scenarios, this paper analyzes feedback as well as feedforward code tracking algorithms and proposes the peak tracking (PT) methods, which are combinations of both feedback and feedforward structures and utilize the inherent advantages of both structures. We propose and analyze here two variants of PT algorithm: PT with second-order differentiation (Diff2), and PT with Teager Kaiser (TK) operator, which will be denoted herein as PT(Diff2) and PT(TK), respectively. In addition to the proposal of the PT methods, the authors propose also an improved early-late-slope (IELS) multipath elimination technique which is shown to provide very good mean-time-to-lose-lock (MTLL) performance. An implementation of a noncoherent multipath estimating delay locked loop (MEDLL) structure is also presented. We also incorporate here an extensive review of the existing feedback and feedforward delay estimation algorithms for direct sequence code division multiple access (DS-CDMA) signals in satellite fading channels, by taking into account the impact of binary phase shift keying (BPSK) as well as the newly proposed BOC modulation, more specifically, sine-BOC(1,1) (SinBOC(1,1)), selected for Galileo open service (OS) signal. The state-of-art algorithms are compared, via simulations, with the proposed algorithms. The main focus in the performance comparison of the algorithms is on the closely spaced multipath scenario, since this situation is the most challenging for estimating LOS component with high accuracy in positioning applications.
机译:对定位和定位服务的日益增长的公众兴趣引发了对高性能全球导航卫星系统(GNSS)的需求。为了实现这种增量性能,所有GNSS都必须以高精度估算视线(LOS)延迟。延迟锁定环(DLL)及其增强的变体(即反馈代码跟踪环)是商用GNSS接收器的选择结构,但是它们在严峻的多径情况下的性能仍然受到限制。另外,新的卫星定位系统建议书指定使用新的调制方式,即二进制偏移载波(BOC)调制方式,这在代码跟踪阶段引发了新的挑战。因此,为了应对这一新兴挑战并提高严重多径情况下延迟估计的准确性,本文分析了反馈以及前馈代码跟踪算法,并提出了将两种反馈结合起来的峰值跟踪(PT)方法。和前馈结构,并利用两种结构的固有优势。我们在这里提出并分析PT算法的两个变体:具有二阶微分(Diff2)的PT和具有Teager Kaiser(TK)运算符的PT,在本文中分别称为PT(Diff2)和PT(TK)。除了提出PT方法外,作者还提出了一种改进的早期延迟斜坡(IELS)多径消除技术,该技术被证明可提供非常好的平均失锁时间(MTLL)性能。还提出了一种非相干多径估计延迟锁定环(MEDLL)结构的实现。在此,我们还考虑了二进制相移键控(BPSK)的影响,对卫星衰落信道中直接序列码分多址(DS-CDMA)信号的现有反馈和前馈延迟估计算法进行了全面回顾作为新提出的BOC调制,更具体地说,选择了伽利略开放服务(OS)信号的正弦BOC(1,1)(SinBOC(1,1))。通过仿真将现有算法与所提出的算法进行比较。算法性能比较的主要重点是紧密间隔的多路径方案,因为这种情况对于定位应用中的高精度LOS组件估计是最具挑战性的。

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