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Intelligent Reflecting Surface Enhanced Multi-User MISO Symbiotic Radio Systems

机译:智能反射表面增强型多用户味噌共生系统

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To support massive access for future wireless communications, we propose a novel intelligent reflecting surface (IRS) enhanced downlink multi-user multi-input single-output (MU-MISO) symbiotic radio (SR) system, where each IRS, acting as a reflecting Internet-of-Things (IoT) device, transmits its message to a nearby primary receiver (PR) by reflecting the RF signals from the primary transmitter (PT), and simultaneously enhances the transmission from the PT to the associated PR. Thus, each PR jointly decodes its own message as well as the one from the corresponding IRS. We are interested in maximizing the weighted sum-rate of both primary and IoT transmissions by jointly designing the active transmit beamforming at PT and the passive beamforming at each IRS, subject to the maximum transmit power constraint at PT. Besides, as the passive elements at IRS can only reflect the incident signal with discrete phase shifts in practice, the discrete reflection coefficient (RC) constraint is further considered at the IRSs. Due to the non-convexity of the formulated problems, we solve them with fractional programming (FP) technique and alternating optimization (AO) method. Simulation results have verified the effectiveness of the proposed algorithms compared to different benchmark schemes.
机译:为了支持未来无线通信的大规模访问,我们提出了一种新颖的智能反射表面(IRS)增强的下行链路多用户多输入单输出(MU-MISO)共生电台(SR)系统,其中每个IRS充当反射物联网(IoT)设备,通过从主发射器(PT)反射RF信号,并同时增强从PT到相关联的PR的传输来将其消息发送到附近的主接收器(PR)。因此,每个PR共同解码其自己的消息以及来自相应IRS的消息。我们对最大限度地设计PT的主动发射波束成形和在每个IRS处的被动波束成形的主动发射波束成形,对Pt处的最大发射功率约束来说,我们有兴趣最大化初级和物联网传输的加权和速率。此外,由于IRS处的被动元件可以在实践中仅在离散相移反映入射信号时,在IRS上进一步考虑离散反射系数(RC)约束。由于配制问题的非凸起,我们用分数编程(FP)技术和交替优化(AO)方法来解决它们。仿真结果已经验证了与不同的基准方案相比算法的有效性。

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