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Software defined radio (SDR) architecture for concurrent multi-satellite communications.

机译:用于并发多卫星通信的软件定义无线电(SDR)架构。

摘要

SDRs have emerged as a viable approach for space communications over the last decade by delivering low-cost hardware and flexible software solutions. The flexibility introduced by the SDR concept not only allows the realisation of concurrent multiple standards on one platform, but also promises to ease the implementation of one communication standard on differing SDR platforms by signal porting. This technology would facilitate implementing reconfigurable nodes for parallel satellite reception in Mobile/Deployable Ground Segments and Distributed Satellite Systems (DSS) for amateur radio/university satellite operations.udThis work outlines the recent advances in embedded technologies that can enable new communication architectures for concurrent multi-satellite or satellite-to-ground missions where multi-link challenges are associated. This research proposes a novel concept to run advanced parallelised SDR back-end technologies in a Commercial-Off-The-Shelf (COTS) embedded system that can support multi-signal processing for multi-satellite scenarios simultaneously. The initial SDR implementation could support only one receiver chain due to system saturation. However, the design was optimised to facilitate multiple signals within the limited resources available on an embedded system at any given time. This was achieved by providing a VHDL solution to the existing Python and C/C++ programming languages along with parallelisation so as to accelerate performance whilst maintaining the flexibility. The improvement in the performance was validated at every stage through profiling.udVarious cases of concurrent multiple signals with different standards such as frequency (with Doppler effect) and symbol rates were simulated in order to validate the novel architecture proposed in this research. Also, the architecture allows the system to be reconfigurable by providing the opportunity to change the communication standards in soft real-time. The chosen COTS solution provides a generic software methodology for both ground and space applications that will remain unaltered despite new evolutions in hardware, and supports concurrent multi-standard, multi-channel and multi-rate telemetry signals.
机译:在过去的十年中,SDR通过提供低成本的硬件和灵活的软件解决方案,已成为一种可行的空间通信方法。 SDR概念引入的灵活性不仅允许在一个平台上实现并发多种标准,而且有望通过信号端口简化在不同SDR平台上实现一种通信标准的过程。这项技术将有助于在移动/可部署地面网段和分布式卫星系统(DSS)中为业余无线电/大学卫星业务的并行卫星接收实现可重新配置的节点。 ud这项工作概述了嵌入式技术的最新进展,这些进展可实现新的并发通信架构与多链路挑战相关联的多卫星或星地任务。这项研究提出了一种新颖的概念,可以在现成的商用(COTS)嵌入式系统中运行先进的并行SDR后端技术,该系统可以同时支持多卫星场景的多信号处理。由于系统饱和,最初的SDR实现可能仅支持一个接收器链。但是,已对设计进行了优化,以在任何给定时间在嵌入式系统上可用的有限资源内促进多个信号。这是通过为现有的Python和C / C ++编程语言提供VHDL解决方案以及并行化来实现的,从而在保持灵活性的同时加快了性能。性能分析的改进在每个阶段都通过配置文件进行了验证。 ud模拟具有不同标准(例如频率(具有多普勒效应)和符号率)的并发多个信号的各种情况,以验证本研究中提出的新颖架构。同样,该架构通过提供机会以软实时方式更改通信标准,允许系统可重新配置。所选的COTS解决方案为地面和太空应用提供了通用的软件方法,尽管硬件有了新的发展,该方法仍将保持不变,并支持并行的多标准,多通道和多速率遥测信号。

著录项

  • 作者

    Maheshwarappa Mamatha R.;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 en
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