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Theoretical and Practical Evaluation of an Overlay Multi-band Front-end

机译:覆盖多频段前端的理论和实践评估

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An overlay front-end architecture exploits the properties of direct sequence spread spectrum GNSS signals by intentionally overlaying two or more signal reception paths in the intermediate frequency (IF) or complex baseband domain. While the radio frequency (RF) reception paths are still kept separately, a combiner stage is introduced, including variable gain amplifiers (VGAs) that control the amount of overlay signal power before its combination. Thanks to the overlay carried out in this combiner, only one common baseband path is required. This allows savings in terms of cost, size, power consumption, and digital bandwidth. Moreover, continuous tracking of both received signal bands is possible. However, the overlay introduces inevitable signal degradation. This paper analyses the impact of this overlay signal degradation using the spectral separation coefficient (SSC) theory and presents practical results obtained using a data recorder front-end with digital signal processing. The introduced overlay theory is validated by the measurements evaluated by a GNSS receiver. Finally, it is shown that this gain controlled by a VGA provides another degree of freedom that can be used to optimize the reception conditions in such an overlay front-end architecture. An optimization of the overlay VGA setting for an ionosphere free dual-frequency linear combination is analytically derived and carried out for the practical measurements.
机译:覆盖前端体系结构通过在中频(IF)或复基带域中有意覆盖两个或多个信号接收路径来利用直接序列扩频GNSS信号的属性。虽然射频(RF)接收路径仍然分开保持,但引入了一个组合器级,包括可变增益放大器(VGA),这些增益放大器在组合之前控制覆盖信号功率的大小。由于在此组合器中执行了叠加,因此仅需要一个公共基带路径。这样可以节省成本,尺寸,功耗和数字带宽。而且,可以连续跟踪两个接收信号频带。但是,覆盖层导致不可避免的信号降级。本文使用频谱分离系数(SSC)理论分析了这种叠加信号劣化的影响,并提出了使用具有数字信号处理功能的数据记录仪前端获得的实际结果。引入的叠加理论通过GNSS接收机评估的测量结果得到验证。最终,显示了由VGA控制的该增益提供了另一种自由度,该自由度可用于优化这种覆盖前端体系结构中的接收条件。通过分析得出了无电离层双频线性组合的叠加VGA设置的优化,并进行了实际测量。

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