Electromagnetic Bounds on Realizing Targeted MIMO Transfer Functions in Real-World Systems with Wave-Domain Programmability
Philipp del Hougne

TL;DR
This paper derives electromagnetically consistent bounds on how accurately reconfigurable wave systems can realize desired linear operators, considering real-world hardware constraints, and applies these bounds to various experimental MIMO setups.
Contribution
It introduces a rigorous method to compute fidelity bounds for operator realization in reconfigurable wave systems, accounting for mutual coupling and hardware limitations.
Findings
Fidelity bounds depend strongly on coupling strength between elements.
RIS-based setups show limited wave-domain flexibility for operator synthesis.
Bounds are tight and can be approached with optimization techniques.
Abstract
A key question for most applications involving reconfigurable linear wave systems is how accurately a desired linear operator can be realized by configuring the system's tunable elements. The relevance of this question spans from hybrid-MIMO analog combiners via computational meta-imagers to programmable wave-domain signal processing. Yet, no electromagnetically consistent bounds have been derived for the fidelity with which a desired operator can be realized in a real-world reconfigurable wave system. Here, we derive such bounds based on an electromagnetically consistent multiport-network model (capturing mutual coupling between tunable elements) and accounting for real-world hardware constraints (lossy, 1-bit-programmable elements). Specifically, we formulate the operator-synthesis task as a quadratically constrained fractional-quadratic problem and compute rigorous fidelity upper…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Metamaterials and Metasurfaces Applications · Advanced MIMO Systems Optimization
