Circuit-Based Modeling Approach for Channel Estimation in RIS-Assisted Communications
Daniel C. Alcantara, Daniel V. C. de Oliveira, Gilderlan T. de Ara\'ujo, Paulo R. B. Gomes, Andr\'e L. F. de Almeida

TL;DR
This paper introduces a circuit-based model for RIS elements, analyzing how circuit parameters influence channel estimation and phase shift optimization, and demonstrates that increased training time can offset performance losses.
Contribution
It presents a novel circuit-based modeling approach for RIS elements, incorporating resistance and capacitance effects into phase shift design and channel estimation.
Findings
Circuit parameters significantly affect RIS phase shifts.
Performance loss occurs compared to ideal DFT-based designs.
Increasing training time reduces performance degradation.
Abstract
Reconfigurable intelligent surface (RIS) has been explored as a supportive technology for wireless communication since around 2019. While the literature highlights the potential of RIS in different modern applications, two key issues have gained significant attention from the research community: channel estimation and phase shift optimization. The performance gains of RIS-assisted systems rely heavily on optimal phase shifts, which, in turn, depend on accurate channel estimation. Several studies have addressed these challenges under different assumptions. Some works consider a range of continuous phase shifts, while others propose a limited number of discrete phase values for the RIS elements. Many studies present an idealized perspective, whereas others aim to approximate more practical aspects by considering circuit system responses and employing phase shifts derived from a Discrete…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Advanced Antenna and Metasurface Technologies · Metamaterials and Metasurfaces Applications
MethodsSoftmax · Attention Is All You Need
