基于广义弯曲分解的节能共生无线电

Haoran Peng, Cheng-Yuan Ho, Yen-Ting Lin, Li-Chun Wang
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引用次数: 2

摘要

研究了基于可重构智能表面(RIS)的共生无线电(SR)系统提供共享频谱。SR涉众共享相同的基础设施和频谱资源,但对服务质量(QoS)的要求不同。本研究的目的是开发一种低复杂度和全局优化算法,以最大限度地提高辅助接收机(SRx)的能量效率(EE),并在主接收机(PRx)所需的信噪比(SINR)约束下。具体而言,我们将ris辅助SR系统的相移、传输功率控制和反射元件调度联合优化问题表述为一个非凸混合整数非线性规划(MINLP)问题。然后,将非凸MINLP问题松弛为等价凸MINLP问题。为此,我们提出了一种基于加速广义Benders分解(GBD)算法的高效方法来解决全局最优和快速收敛的目标。仿真结果表明,与连续凸近似(SCA)相比,基于gbd的方法的EE提高了41.94%。
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Energy-Efficient Symbiotic Radio Using Generalized Benders Decomposition
This paper investigates the symbiotic radio (SR) system supported by reconfigurable intelligent surfaces (RIS) to provide shared spectrum. SR Stakeholders share the same infrastructure and spectrum resources, but with different quality of service (QoS) requirements. The objective of this study is to develop a low complexity and global optimization algorithm to maximize the energy efficiency (EE) of the secondary receiver (SRx) and under a required signal-to-interference-plus-noise ratio (SINR) constraint for the primary receiver (PRx). Specifically, we formulate the joint optimization of phase shift, transmission power control, and reflection element scheduling of the RIS-assisted SR system as a nonconvex mixed-integer nonlinear program (MINLP) problem. Then, we relax the nonconvex MINLP problem into an equivalent convex MINLP problem. To this end, we propose an efficient and effective method based on the accelerated generalized Benders decomposition (GBD) algorithm to solve the global-optimal and fast convergence goals. Simulation results show that the proposed GBDbased approach efficiently improves the EE by 41.94% compared to the successive convex approximation (SCA).
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