Spectral coexistence of candidate waveforms and DME in air-to-ground communications: Analysis via hardware software co-design on Zynq SoC

Sasha Garg, N. Agrawal, S. Darak, Prateek Sikka
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引用次数: 13

Abstract

Recently, L-band (960–1164 MHz) digital aeronautical communication system (LDACS) has been introduced to meet spectrum requirements of exponentially increasing air-traffic. Compared to its predecessor, LDACS offers wider bandwidth and adopts multi-carrier waveform approach enabling multiple transceivers to coexist with legacy signals in L-band, thereby providing wide variety of services ranging from data to multimedia. This paper offers detailed performance and complexity analysis of various candidate waveforms for LDACS on Zynq System on Chip (ZSoC) platform, consisting of programmable logic (PL) such as FPGA and processing system (PS) such as ARM. The first contribution is the implementation OFDM based LDACS transceiver on ZSoC. Various configurations of the architecture are realized by dividing it into two sections, one for PL and other for PS. We demonstrate the flexibility offered by such co-design approach to decide which part of the transceiver to implement on PL and which on PS to meet the given area, delay and power constraints. The second contribution of this paper is to replace OFDM with windowed and filtered versions of OFDM. Detailed experimental results demonstrate the trade-off between these waveforms with respect to parameters such as out-of-band attenuation, area, delay and power requirements.
空对地通信中候选波形和DME频谱共存:基于Zynq SoC软硬件协同设计的分析
近年来,l波段(960-1164 MHz)数字航空通信系统(LDACS)被引入以满足空中交通指数增长的频谱需求。与其前身相比,LDACS提供更宽的带宽,并采用多载波波形方法,使多个收发器与l波段的传统信号共存,从而提供从数据到多媒体的各种服务。本文在Zynq片上系统(ZSoC)平台上对LDACS的各种候选波形进行了详细的性能和复杂性分析,该平台由FPGA等可编程逻辑(PL)和ARM等处理系统(PS)组成。第一个贡献是在ZSoC上实现了基于OFDM的LDACS收发器。该架构的各种配置是通过将其分为两个部分来实现的,一个用于PL,另一个用于PS。我们展示了这种协同设计方法提供的灵活性,可以决定收发器的哪一部分在PL上实现,哪一部分在PS上实现,以满足给定的面积、延迟和功率限制。本文的第二个贡献是用OFDM的窗口和滤波版本取代OFDM。详细的实验结果证明了这些波形在带外衰减、面积、延迟和功率要求等参数方面的权衡。
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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