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Integrating sensing and communications: Simultaneously transmitting and reflecting digital coding metasurfaces

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arxiv 2406.10826 v1 pith:UPEZMBXQ submitted 2024-06-16 eess.SP

classification eess.SP
keywords dcmsdigitalisacsensingarticlecodingcommunicationmetasurfaces
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Wireless networks are undergoing a transformative shift, driven by the crucial factors of cost effectiveness and sustainability. Digital coding metasurfaces (DCMs) might play a key role in realizing cost-effective digital modulators by harnessing energy embedded in electromagnetic waves traversing through the air. Integrated sensing and communication (ISAC) optimize power and spectral resources by combining sensing and communication functionalities on a shared hardware platform. This article presents a tutorial-style overview of the applications and advantages of DCMs in ISAC-based networks. Emphasis is placed on the dual-functionality of ISAC, necessitating the design of DCMs with simultaneously transmitting and reflecting (STAR) capabilities for comprehensive space control. Additionally, the article explores key signal processing challenges and outlines future research directions stemming from the convergence of ISAC and emerging STAR-DCM technologies.

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Cited by 1 Pith paper

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  1. Optimal Planning for Heterogeneous Smart Radio Environments

    cs.NI 2024-11 conditional novelty 4.0 of 10

    MILP-based planning selects optimal mixes of RIS, STAR RIS, NCR, and 3SNCR to minimize cost or maximize coverage in an urban mmWave network.

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