Autonomous loop switching: Interpreting and modifying the internal state of feedback tracking loops

N. Adams, W. Millard, D. Copeland
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引用次数: 1

Abstract

Receiver tracking loops are implemented in software in modern space-borne radios. Software implementation allows loop designs to be modified in flight. Not only filter coefficients and gain, but also loop order and type can be modified. This flexibility enables new cognitive and autonomous capabilities. Loop designs can be optimized for each mission phase, and separate loops can be used for acquisition and tracking. Furthermore, the loops can be automatically adapted based on changing signal dynamics or SNR. However, if the loop has tracked away from its quiescent state, the loop will lose lock when the switch occurs unless the internal state of the loop is translated appropriately. This paper considers the internal state of feedback tracking loops. In particular, a physical interpretation of loop state is derived that enables translating the loop state from one design to another. Limitations to autonomous switching, including high-order signal states and noise, are described, and several examples are simulated. Practical applications for both near-earth and deep-space missions are discussed.
自主回路切换:解释和修改反馈跟踪回路的内部状态
现代星载无线电接收机跟踪回路是用软件实现的。软件实现允许在飞行中修改回路设计。不仅可以修改滤波器系数和增益,还可以修改环路的阶数和类型。这种灵活性支持新的认知和自主功能。回路设计可以针对每个任务阶段进行优化,并且可以使用单独的回路进行采集和跟踪。此外,环路可以根据变化的信号动态或信噪比自动适应。但是,如果循环已经离开了它的静态状态,那么除非循环的内部状态被适当地转换,否则当切换发生时,循环将失去锁。本文考虑了反馈跟踪回路的内部状态。特别地,推导了循环状态的物理解释,使循环状态能够从一种设计转换到另一种设计。描述了自主开关的局限性,包括高阶信号状态和噪声,并对几个例子进行了仿真。讨论了在近地和深空任务中的实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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