A Doubly-Dispersive MIMO Channel Model Parametrized with Stacked Intelligent Metasurfaces
Introduced with the advent of statistical wireless channel models for high mobility communications and having a profound role in communication-centric (CC) integrated sensing and communications (ISAC), the doubly-dispersive (DD) channel structure has long been heralded as a useful tool enabling the...
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Zusammenfassung: | Introduced with the advent of statistical wireless channel models for high
mobility communications and having a profound role in communication-centric
(CC) integrated sensing and communications (ISAC), the doubly-dispersive (DD)
channel structure has long been heralded as a useful tool enabling the capture
of the most important fading effects undergone by an arbitrary time-domain
transmit signal propagating through some medium. However, the incorporation of
this model into multiple-input multiple-output (MIMO) system setups, relying on
the recent paradigm-shifting transceiver architecture based on stacked
intelligent metasurfaces (SIM), in an environment with reconfigurable
intelligent surfaces (RISs) remains an open problem due to the many intricate
details that have to be accounted for. In this paper, we fill this gap by
introducing a novel DD MIMO channel model that incorporates an arbitrary number
of RISs in the ambient, as well as SIMs equipping both the transmitter and
receiver. We then discuss how the proposed metasurfaces-parametrized DD (MPDD)
channel model can be seamlessly applied to waveforms that are known to perform
well in DD environments, namely, orthogonal frequency division multiplexing
(OFDM), orthogonal time frequency space (OTFS), and affine frequency division
multiplexing (AFDM), with each having their own inherent advantages and
disadvantages. An illustrative application of the programmable functionality of
the proposed model is finally presented to showcase its potential for boosting
the performance of the aforementioned waveforms. Our numerical results indicate
that the design of waveforms suitable to mitigating the effects of DD channels
is significantly impacted by the emerging SIM technology. |
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DOI: | 10.48550/arxiv.2501.07724 |