Two-Dimensional Direction-of-Arrival Estimation Using Stacked Intelligent Metasurfaces
Jiancheng An, Chau Yuen, Yong Liang Guan, Marco Di Renzo, M\'erouane, Debbah, H. Vincent Poor, and Lajos Hanzo

TL;DR
This paper introduces a novel use of stacked intelligent metasurfaces (SIM) for 2D DOA estimation, enabling direct angular spectrum observation and reducing RF chain requirements through electromagnetic wave processing.
Contribution
The work presents a new SIM-based approach that performs 2D DFT for DOA estimation, including optimization of phase shifts and theoretical performance analysis.
Findings
SIM can perform 2D DFT directly on incident waves.
The proposed method achieves an MSE of 10^-4 in simulations.
Analytical bounds confirm the high accuracy of the SIM-based estimator.
Abstract
Stacked intelligent metasurfaces (SIM) are capable of emulating reconfigurable physical neural networks by relying on electromagnetic (EM) waves as carriers. They can also perform various complex computational and signal processing tasks. A SIM is fabricated by densely integrating multiple metasurface layers, each consisting of a large number of small meta-atoms that can control the EM waves passing through it. In this paper, we harness a SIM for two-dimensional (2D) direction-of-arrival (DOA) estimation. In contrast to the conventional designs, an advanced SIM in front of the receiver array automatically carries out the 2D discrete Fourier transform (DFT) as the incident waves propagate through it. As a result, the receiver array directly observes the angular spectrum of the incoming signal. In this context, the DOA estimates can be readily obtained by using probes to detect the energy…
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Taxonomy
TopicsIndoor and Outdoor Localization Technologies · Underwater Acoustics Research · Metamaterials and Metasurfaces Applications
