This paper proposes a simultaneous transmitting and reflecting reconfigurable intelligent surface (STAR-RIS) aided wireless-powered non-orthogonal multiple access (NOMA) system, which includes an access point (AP), a STAR-RIS, and two non-orthogonal users located at both sides of the STAR-RIS. In this system, the users first harvest the radio-frequency energy from the AP in the downlink, then adopt the harvested energy to transmit information to the AP in the uplink concurrently. Two policies are considered for the proposed system. The first one assumes that the time-switching protocol is used in the downlink while the energy-splitting protocol is adopted in the uplink, named TEP. The second one assumes that the energy-splitting protocol is utilized in both the downlink and uplink, named EEP. The outage probability, sum throughput, and average age of information (AoI) of the proposed system with TEP and EEP are investigated over Nakagami-m fading channels. In addition, we also analyze the outage probability, sum throughput, and average AoI of the STAR-RIS aided wireless-powered time-division-multiple-access (TDMA) system. Simulation and numerical results show that the proposed system with TEP and EEP outperforms baseline schemes, and significantly improves sum throughput performance but reduces outage probability and average AoI performance compared to the STAR-RIS aided wireless-powered TDMA system. Furthermore, to maximize the sum throughput and ensure a certain average AoI, we design a genetic-algorithm based time allocation and power allocation (GA-TAPA) algorithm. Simulation results demonstrate that the proposed GA-TAPA method can significantly improve the sum throughput by adaptively adjusting system parameters.
翻译:本文建议同时发送和反映可重新配置的智能表面(STAR-RIS),这是为拟议系统考虑的两个政策。第一个假设是,时间转换协议用于下行链路,而分化协议则用于上行链路(STAR-RIS),以及位于STAR-RIS两侧的2个非横向用户。在这个系统中,用户首先在下行链路中从AP获取无线电频率能量,然后采用所获取的能量,在上行链中同时向AP传输信息。在拟议的系统中,有两个政策得到了考虑。第一个假设是,时间转换协议用于下行链路,而分解协议则用于名为TEPE的上行点(AP-RI),第二个假设是分解协议用于下行链路和上链路连接的两端。在SDAR-MA(SMA-IMAL-IMAL-IMAL-IMAL-IMAL-IMAL-IMAL-SIMAL-S-IMLA-S-IMLA-IMLA-IMLA-IMLA-IMLA-IMLA-IMLA-IML IMLA-IML-IMLA-MI IML-IML-IMLA-IMLA-IMO-IMO-IMO-MI IMLA-MI-MI-MI-MI-MI-MI-IMLS-MI-MI-MI IMLA-MI IMLA-MI-MI-MI-MI-IMS-IMS-IMS-IMS-IMS-IMS-IMS-IMS-IMS-IMS-IMS-IMS-IMS-IMS-MI-MI-MI-MI-MI-MI-MI-MI-MI-IMS-MI-IMS-MI-MI-MI-S-S-S-S-S-IMS-S-S-MI-S-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-S-S-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-MI-