Over-the-air Multifunctional Wideband Electromagnetic Signal Processing using Dynamic Scattering Arrays
Davide Dardari

TL;DR
This paper introduces dynamic scattering arrays (DSAs) as a versatile electromagnetic structure that performs joint wave-based computing and radiation, aiming to enhance holographic MIMO systems by reducing complexity and increasing flexibility.
Contribution
It provides a comprehensive analytical framework for DSAs, including design algorithms and demonstrating their potential to improve EM wave processing and reduce RF chain requirements.
Findings
DSAs can perform joint wave computing and radiation.
Numerical results show reduced complexity and enhanced flexibility.
DSAs exhibit superdirectivity capabilities.
Abstract
To meet the stringent requirements of next-generation wireless networks, multiple-input multiple-output (MIMO) technology is expected to become massive and pervasive. Unfortunately, this could pose scalability issues in terms of complexity, power consumption, cost, and processing latency. Therefore, novel technologies and design approaches, such as the recently introduced holographic MIMO paradigm, must be investigated to make future networks sustainable. In this context, we investigate the concept of a dynamic scattering array (DSA) as a versatile electromagnetic (EM) structure capable of performing joint wave-based computing and radiation by moving the processing from the digital domain to the EM domain. We provide a general, wideband analytical framework for modeling the DSA, which includes a power matching network and realistic reconfigurable loads. Then we introduce specific design…
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Taxonomy
TopicsAntenna Design and Optimization · Radio Wave Propagation Studies · Radar Systems and Signal Processing
