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Are PLLs dead? A tutorial on kalman filter-based techniques for digital carrier synchronization

机译:PLL死了吗?基于卡尔曼滤波器的数字载波同步技术教程

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Carrier synchronization is a fundamental stage in the receiver side of any communication or positioning system. Traditional carrier phase tracking techniques are based on well-known phase-locked loop (PLL) closed-loop architectures, which are still the methods of choice in modern receivers. Those techniques are well understood, easy to tune, and perform well under benign propagation conditions, but their applicability is seriously compromised in harsh propagation environments, where the signal may be affected by high dynamics, shadowing, strong fadings, multipath effects, or ionospheric scintillation. From an optimal filtering standpoint, the Kalman filter (KF) is clearly a powerful alternative, but the synchronization community seems still reluctant to exploit all the potential it has to offer. The purpose of this article is twofold: i) to review the basics and state of the art on both PLL and KF-based tracking techniques and ii) to present and justify the reasoning behind the systematic use of KF-based tracking approaches instead of the well-established PLL-based architectures from both theoretical and practical points of view. To support the discussion, two specific scenarios of interest to the aerospace community are numerically evaluated: robust carrier tracking of global navigation satellite systems' signals and synchronization in a deep space communications system.
机译:载波同步是任何通信或定位系统接收方的基本阶段。传统的载波相位跟踪技术基于众所周知的锁相环(PLL)闭环架构,而该架构仍然是现代接收机中的选择方法。这些技术众所周知,易于调整,并且在良性传播条件下表现良好,但是在恶劣的传播环境中,其信号应用可能会受到高动态,阴影,强衰落,多径效应或电离层闪烁的影响而严重损害了它们的适用性。 。从最佳滤波的角度来看,卡尔曼滤波器(KF)显然是一个功能强大的替代方案,但是同步社区似乎仍然不愿意利用其提供的所有潜力。本文的目的是双重的:i)回顾基于PLL和KF的跟踪技术的基础知识和最新技术,以及ii)提出并论证系统地使用基于KF的跟踪方法而不是基于KF的跟踪方法的原因。从理论和实践的角度来看,完善的基于PLL的体系结构。为了支持该讨论,对航空航天界感兴趣的两种特定情况进行了数值评估:对全球导航卫星系统信号进行可靠的载波跟踪以及在深空通信系统中进行同步。

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