EaZE : Flexible Wideband Time-Delay Beamforming using Passive, 3D Reconfigurable, Wideband Metasurfaces

Enhanced acoustic zones that emphasize acoustic information in desired 3D spatial regions in a contactless manner, are integral to the vision of immersive spaces. Yet, realizing such zones in practice requires catering to wideband audio signals and 3D spatial selectivity in a cost-effective, deployment-friendly manner, which has been challenging for existing approaches that employ active speaker arrays or metasurfaces. We propose EaZE , a novel, passive, composable metasurface system that enables (i) time-delay beamforming through a principled design of labyrinth-based structures that enable beamforming over a wide 10 kHz lower acoustic band; and (ii) 3D reconfigurability through a composition of modular metasurfaces, whose additional rotation-based degree of freedom, allows composing new beamforming directions passively based on the constituting metasurfaces. EaZE can be easily 3D-printed and deployed with commodity speakers. Comprehensive evaluations highlight its ability to create 3D acoustic zones with enhanced spatial selectivity (10-15 dB) and improved user experience in indoor and outdoor environments for various audio (music, speech) signals.

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Publication Details

Journal
Proceedings of the ACM on Interactive Mobile Wearable and Ubiquitous Technologies
Published
2026-09-30
DOI
https://doi.org/10.1145/3832032
Primary Topic
Acoustic Wave Phenomena Research
Type
article
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EaZE : Flexible Wideband Time-Delay Beamforming using Passive, 3D Reconfigurable, Wideband Metasurfaces

Aadesh Madnaik, Karthikeyan Sundaresan, Alan Liu, Leyla Ülkü et al.
Proceedings of the ACM on Interactive Mobile Wearable and Ubiquitous Technologies
Acoustic Wave Phenomena Research
article

EaZE : Flexible Wideband Time-Delay Beamforming using Passive, 3D Reconfigurable, Wideband Metasurfaces

Aadesh Madnaik, Karthikeyan Sundaresan, Alan Liu, Leyla Ülkü, Cesar Morales, Advaith Menon, Rudra Goel
article en

Abstract

Enhanced acoustic zones that emphasize acoustic information in desired 3D spatial regions in a contactless manner, are integral to the vision of immersive spaces. Yet, realizing such zones in practice requires catering to wideband audio signals and 3D spatial selectivity in a cost-effective, deployment-friendly manner, which has been challenging for existing approaches that employ active speaker arrays or metasurfaces. We propose EaZE , a novel, passive, composable metasurface system that enables (i) time-delay beamforming through a principled design of labyrinth-based structures that enable beamforming over a wide 10 kHz lower acoustic band; and (ii) 3D reconfigurability through a composition of modular metasurfaces, whose additional rotation-based degree of freedom, allows composing new beamforming directions passively based on the constituting metasurfaces. EaZE can be easily 3D-printed and deployed with commodity speakers. Comprehensive evaluations highlight its ability to create 3D acoustic zones with enhanced spatial selectivity (10-15 dB) and improved user experience in indoor and outdoor environments for various audio (music, speech) signals.

Proceedings of the ACM on Interactive Mobile Wearable and Ubiquitous TechnologiesVol. 10(3)
Georgia Institute of Technology (US)
Openalex Percentile: Top 22%
Acoustic Wave Phenomena Research
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EaZE : Flexible Wideband Time-Delay Beamforming using Passive, 3D Reconfigurable, Wideband Metasurfaces — Aadesh Madnaik, Karthikeyan Sundaresan, et al. · Proceedings of the ACM on Interactive Mobile Wearable and Ubiquitous Technologies (2026) | TGRS Research Map | TGRS