Robust Resource Allocation for STAR-RIS Assisted SWIPT Systems
Guangyu Zhu, Xidong Mu, Li Guo, Ao Huang, Shibiao Xu

TL;DR
This paper proposes a robust resource allocation framework for STAR-RIS assisted SWIPT systems, optimizing data rate and power transfer under imperfect CSI using advanced algorithms, and demonstrates significant performance improvements over traditional RISs.
Contribution
It introduces a novel multi-objective optimization approach for STAR-RIS aided SWIPT systems with practical protocols and robust algorithms under imperfect CSI conditions.
Findings
STAR-RIS significantly outperforms conventional RIS in harvested power.
Energy splitting protocol offers better user fairness for specific user types.
Time switching protocol provides a more balanced and robust performance under CSI imperfections.
Abstract
A simultaneously transmitting and reflecting reconfigurable intelligent surface (STAR-RIS) assisted simultaneous wireless information and power transfer (SWIPT) system is proposed. More particularly, an STAR-RIS is deployed to assist in the information/power transfer from a multi-antenna access point (AP) to multiple single-antenna information users (IUs) and energy users (EUs), where two practical STAR-RIS operating protocols, namely energy splitting (ES) and time switching (TS), are employed. Under the imperfect channel state information (CSI) condition, a multi-objective optimization problem (MOOP) framework, that simultaneously maximizes the minimum data rate and minimum harvested power, is employed to investigate the fundamental rate-energy trade-off between IUs and EUs. To obtain the optimal robust resource allocation strategy, the MOOP is first transformed into a single-objective…
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Taxonomy
TopicsSatellite Communication Systems · Inertial Sensor and Navigation
