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一种用于获取全球导航卫星系统(GNSS)信号的基于累积量的方法。

A Cumulant-Based Method for Acquiring GNSS Signals.

作者信息

Wang He-Sheng, Wang Hou-Yu, Jwo Dah-Jing

机构信息

Department of Communications, Navigation and Control Engineering, National Taiwan Ocean University, 2 Peining Rd., Keelung 202301, Taiwan.

出版信息

Sensors (Basel). 2024 Sep 26;24(19):6234. doi: 10.3390/s24196234.

Abstract

Global Navigation Satellite Systems (GNSS) provide positioning, velocity, and time services for civilian applications. A critical step in the positioning process is the acquisition of visible satellites in the sky. Modern GNSS systems, such as Galileo-developed and maintained by the European Union-utilize a new modulation technique known as Binary Offset Carrier (BOC). However, BOC signals introduce multiple side-peaks in their autocorrelation function, which can lead to significant errors during the acquisition process. In this paper, we propose a novel acquisition method based on higher-order cumulants that effectively eliminates these side-peaks. This method is capable of simultaneously acquiring both conventional ranging signals, such as GPS C/A code, and BOC-modulated signals. The effectiveness of the proposed method is demonstrated through the acquisition of simulated signals, with a comparison to traditional methods. Additionally, we apply the proposed method to real satellite signals to further validate its performance. Our results show that the proposed method successfully suppresses side-peaks, improves acquisition accuracy in weak signal environments, and demonstrates potential for indoor GNSS applications. The study concludes that while the method may increase computational load, its performance in challenging conditions makes it a promising approach for future GNSS receiver designs.

摘要

全球导航卫星系统(GNSS)为民用应用提供定位、测速和授时服务。定位过程中的关键一步是获取天空中可见的卫星。现代GNSS系统,如由欧盟开发和维护的伽利略系统,采用了一种名为二进制偏移载波(BOC)的新调制技术。然而,BOC信号在其自相关函数中会引入多个旁瓣,这可能会在捕获过程中导致显著误差。在本文中,我们提出了一种基于高阶累积量的新型捕获方法,该方法能有效消除这些旁瓣。该方法能够同时捕获传统测距信号,如GPS C/A码,以及BOC调制信号。通过对模拟信号的捕获,并与传统方法进行比较,证明了所提方法的有效性。此外,我们将所提方法应用于实际卫星信号,以进一步验证其性能。我们的结果表明,所提方法成功抑制了旁瓣,提高了弱信号环境下的捕获精度,并展示了在室内GNSS应用中的潜力。研究得出结论,虽然该方法可能会增加计算量,但其在具有挑战性的条件下的性能使其成为未来GNSS接收机设计的一种有前景的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6932/11478614/dca454422704/sensors-24-06234-g001.jpg

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