Optimal Linear Precoding Under Realistic Satellite Communications Scenarios

IF 5.3 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Geoffrey Eappen;Jorge Luis Gonzalez;Vibhum Singh;Rakesh Palisetty;Alireza Haqiqtnejad;Liz Martinez Marrero;Jevgenij Krivochiza;Jorge Querol;Nicola Maturo;Juan Carlos Merlano Duncan;Eva Lagunas;Stefano Andrenacci;Symeon Chatzinotas
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Abstract

In this paper, optimal linear precoding for the multibeam geostationary earth orbit (GEO) satellite with the multi-user (MU) multiple-input-multiple-output (MIMO) downlink scenario is addressed. Multiple-user interference is one of the major issues faced by the satellites serving the multiple users operating at the common time-frequency resource block in the downlink channel. To mitigate this issue, the optimal linear precoders are implemented at the gateways (GWs). The precoding computation is performed by utilizing the channel state information obtained at user terminals (UTs). The optimal linear precoders are derived considering beamformer update and power control with an iterative per-antenna power optimization algorithm with a limited required number of iterations. The efficacy of the proposed algorithm is validated using the In-Lab experiment for 16 × 16 precoding with multi-beam satellite for transmitting and receiving the precoded data with digital video broadcasting satellite-second generation extension (DVB-S2X) standard for the GW and the UTs. The software defined radio platforms are employed for emulating the GWs, UTs, and satellite links. The validation is supported by comparing the proposed optimal linear precoder with full frequency reuse (FFR), and minimum mean square error (MMSE) schemes. The experimental results demonstrate that with the optimal linear precoders it is possible to successfully cancel the inter-user interference in the simulated satellite FFR link. Thus, optimal linear precoding brings gains in terms of enhanced signal-to-noise-and-interference ratio, and increased system throughput and spectral efficiency.
现实卫星通信场景下的最优线性编码
本文探讨了多波束地球静止轨道(GEO)卫星在多用户(MU)多输入多输出(MIMO)下行链路情况下的最优线性预编码。多用户干扰是卫星在下行链路信道中为在共同时频资源块上运行的多个用户提供服务时面临的主要问题之一。为缓解这一问题,在网关(GW)上实施了最优线性前置编码器。利用在用户终端(UT)获得的信道状态信息进行预编码计算。最佳线性前置编码器是在考虑波束成形器更新和功率控制的情况下,采用迭代式每天线功率优化算法得出的,所需的迭代次数有限。在实验室内实验中,使用多波束卫星进行 16 × 16 预编码,以数字视频广播卫星-第二代扩展(DVB-S2X)标准为 GW 和 UT 发送和接收预编码数据,验证了所提算法的有效性。采用软件定义无线电平台来模拟 GW、UT 和卫星链路。通过比较所提出的最优线性前置编码器与全频重用(FFR)和最小均方误差(MMSE)方案,支持了验证。实验结果表明,使用最优线性前置编码器可以成功消除模拟卫星 FFR 链路中的用户间干扰。因此,最优线性前置编码可提高信噪比和干扰比,增加系统吞吐量和频谱效率。
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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来源期刊
CiteScore
9.60
自引率
0.00%
发文量
25
审稿时长
10 weeks
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