English

Feasibility Study Regarding Self-sustainable Reconfigurable Intelligent Surfaces

Information Theory 2026-01-09 v1 Signal Processing math.IT

Abstract

Without requiring operational costs such as cabling and powering while maintaining reconfigurable phase-shift capability, self-sustainable reconfigurable intelligent surfaces (ssRISs) can be deployed in locations inaccessible to conventional relays or base stations, offering a novel approach to enhance wireless coverage. This study assesses the feasibility of ssRIS deployment by analyzing two harvest-and-reflect (HaR) schemes: element-splitting (ES) and time-splitting (TS). We examine how element requirements scale with key system parameters, transmit power, data rate demands, and outage constraints under both line-of-sight (LOS) and non-line-of-sight (NLOS) ssRIS-to-user equipment (UE) channels. Analytical and numerical results reveal distinct feasibility characteristics. The TS scheme demonstrates better channel hardening gain, maintaining stable element requirements across varying outage margins, making it advantageous for indoor deployments with favorable harvesting conditions and moderate data rates. However, TS exhibits an element requirement that exponentially scales to harvesting difficulty and data rate. Conversely, the ES scheme shows only linear growth with harvesting difficulty, providing better feasibility under challenging outdoor scenarios. These findings establish that TS excels in benign environments, prioritizing reliability, while ES is preferable for demanding conditions requiring operational robustness.

Keywords

Cite

@article{arxiv.2601.04723,
  title  = {Feasibility Study Regarding Self-sustainable Reconfigurable Intelligent Surfaces},
  author = {Zhenyu Li and Ozan Alp Topal and Özlem Tuğfe Demir and Emil Björnson and Cicek Cavdar},
  journal= {arXiv preprint arXiv:2601.04723},
  year   = {2026}
}

Comments

5pages, 3 figures, submitted and accepted by IEEE Wireless Communication Letter

R2 v1 2026-07-01T08:55:45.118Z