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Robust Transmission in Downlink Multiuser MISO Systems: A Rate-Splitting Approach

机译:下行多用户MISO系统中的稳健传输:一种速率分离方法

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We consider a downlink multiuser MISO system with bounded errors in the channel state information at the transmitter (CSIT). We first look at the robust design problem of achieving max-min fairness amongst users (in the worst-case sense). Contrary to the conventional approach adopted in literature, we propose a rather unorthodox design based on a rate-splitting (RS) strategy. Each user's message is split into two parts, a common part and a private part. All common parts are packed into one super common message encoded using a public codebook, while private parts are independently encoded. The resulting symbol streams are linearly precoded and simultaneously transmitted, and each receiver retrieves its intended message by decoding both the common stream and its corresponding private stream. For CSIT uncertainty regions that scale with SNR (e.g., by scaling the number of feedback bits), we prove that a RS-based design achieves higher max-min (symmetric) degrees of freedom (DoF) compared with conventional designs (NoRS). For the special case of nonscaling CSIT (e.g., fixed number of feedback bits), and contrary to NoRS, RS can achieve a nonsaturating max-min rate. We propose a robust algorithm based on the cutting-set method coupled with the weighted minimum mean-square error (WMMSE) approach, and we demonstrate its performance gains over state-of-the-art designs. Finally, we extend the RS strategy to address the quality of service (QoS) constrained power minimization problem, and we demonstrate significant gains over NoRS-based designs.
机译:我们考虑在发射机(CSIT)的信道状态信息中具有有限误差的下行链路多用户MISO系统。我们首先来看一个健壮的设计问题,即在用户(最坏的情况下)中实现最大-最小公平性。与文献中采用的常规方法相反,我们提出了一种基于速率分裂(RS)策略的相当非传统的设计。每个用户的消息分为两个部分,一个公共部分和一个私人部分。所有公共部分都打包成一个使用公共密码本编码的超级公共消息,而私有部分则被独立编码。生成的符号流被线性预编码并同时发送,并且每个接收器都通过解码公共流及其对应的专用流来检索其预期消息。对于随SNR缩放的CSIT不确定区域(例如,通过缩放反馈位数),我们证明与传统设计(NoRS)相比,基于RS的设计实现了更高的最大-最小(对称)自由度(DoF)。对于不按比例缩放CSIT的特殊情况(例如,固定数量的反馈位数),并且与NoRS相反,RS可以实现不饱和的最大-最小速率。我们提出了一种基于割集方法和加权最小均方误差(WMMSE)方法的鲁棒算法,并展示了其在最新设计中的性能提升。最后,我们扩展了RS策略,以解决服务质量(QoS)约束的功率最小化问题,并且我们证明了比基于NoRS的设计显着的收益。

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