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Galileo Signals Acquisition Using Enhanced Subcarrier Elimination Conversion and Faster Processing

机译:使用增强型子载波消除转换和更快的处理能力的伽利略信号采集

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摘要

To solve multipath and to enhance the localisation accuracy in a harsh environment, BOC modulation has been adopted in modern GNSS transmission, such as GPS-M-code and Galileo-OS-code signals. The designers of the BOC technique have pointed out that the correlation function becomes ambiguous when the received signal is correlated with the reference BOC signal at code phase resolutions of 0.5 Chip. This has motivated many contributions to resolving this ambiguity, for example, by processing each side of the BOC lobes as a BPSK signal. Our literature survey concluded that solutions claiming to have mitigated this ambiguity actually have resulted in a more complex receiver implementation. The Enhanced Subcarrier Elimination (ESCE) method detailed in this paper proposes combining the two side lobes into a single lobe centered at the main frequency, thus gaining 2dB more signal power as well as reducing the correlation requirements (signal’s mixing and transforming operations) to the half; i.e. accelerating the acquisition process. HaLo-430 platform generated signals used for testing the MATLAB model of ESCE proves that we outperform three of the most used unambiguous methods.
机译:为了解决多径问题并提高恶劣环境下的定位精度,在现代GNSS传输中采用了BOC调制,例如GPS-M码和Galileo-OS码信号。 BOC技术的设计人员指出,当接收信号与参考BOC信号在0.5 Chip码的相位分辨率下相关时,相关函数变得模棱两可。例如,通过将BOC瓣的每一侧都作为BPSK信号进行处理,这为解决这种歧义带来了许多贡献。我们的文献调查得出的结论是,声称减轻了这种歧义的解决方案实际上导致了接收机的实现更加复杂。本文详细介绍的增强子载波消除(ESCE)方法建议将两个旁瓣合并到一个以主频率为中心的瓣上,从而获得2dB以上的信号功率,并降低与信号相关的要求(信号的混合和变换操作)。半;即加快获取过程。 HaLo-430平台生成的用于测试ESCE MATLAB模型的信号证明了我们优于三种最常用的明确方法。

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