A physics-compliant diagonal representation for wireless channels parametrized by beyond-diagonal reconfigurable intelligent surfaces
Philipp del Hougne

TL;DR
This paper introduces a physics-compliant diagonal representation for channels parametrized by beyond-diagonal reconfigurable intelligent surfaces, enabling direct application of existing optimization algorithms and facilitating system-level design in wireless communications.
Contribution
It derives a novel diagonal representation for BD-RIS channels based on physical principles, bridging the gap with conventional RIS models and enabling practical optimization.
Findings
Derived a physics-compliant diagonal representation for BD-RIS channels.
Showed that existing D-RIS algorithms can be applied to BD-RIS scenarios.
First experimental system-level optimization for BD-RIS using real measurements.
Abstract
The parametrization of wireless channels by so-called "beyond-diagonal reconfigurable intelligent surfaces" (BD-RIS) is mathematically characterized by a matrix whose off-diagonal entries are partially or fully populated. Physically, this corresponds to tunable coupling mechanisms between the RIS elements that originate from the RIS control circuit. Here, we derive a physics-compliant diagonal representation for BD-RIS-parametrized channels. We recognize that any RIS control circuit can always be separated into its static parts (SLC) and a set of tunable individual loads (IL). Therefore, a BD-RIS-parametrized channel results from the chain cascade of three systems: i) radio environment (RE), ii) SLC, and iii) IL. RE and SLC are static non-diagonal systems whose cascade K is terminated by the tunable diagonal system IL. This physics-compliant representation in terms of K and IL is…
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Taxonomy
TopicsAdvanced Antenna and Metasurface Technologies · Advanced Wireless Communication Technologies · Satellite Communication Systems
MethodsSparse Evolutionary Training
