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    Reconfigurable Intelligent Surface Enabled Over-the-Air Uplink Non-orthogonal Multiple Access

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    Name:
    2208.03582.pdf
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    1.436Mb
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    PDF
    Description:
    Preprint
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    Type
    Preprint
    Authors
    Arslan, Emre
    Kilinc, Fatih
    Arzykulov, Sultangali cc
    Dogukan, Ali Tugberk
    Celik, Abdulkadir cc
    Basar, Ertugrul
    Eltawil, Ahmad M.
    KAUST Department
    Computer, Electrical, and Mathematical Sciences & Engineering (CEMSE) Division at King Abdullah University of Science and Technology (KAUST), Thuwal, KSA 23955-6900
    Computer, Electrical and Mathematical Science and Engineering (CEMSE) Division
    Date
    2022-08-06
    Permanent link to this record
    http://hdl.handle.net/10754/680311
    
    Metadata
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    Abstract
    Innovative reconfigurable intelligent surface (RIS) technologies are rising and recognized as promising candidates to enhance 6G and beyond wireless communication systems. RISs acquire the ability to manipulate electromagnetic signals, thus, offering a degree of control over the wireless channel and the potential for many more benefits. Furthermore, active RIS designs have recently been introduced to combat the critical double fading problem and other impairments passive RIS designs may possess. In this paper, the potential and flexibility of active RIS technology are exploited for uplink systems to achieve virtual non-orthogonal multiple access (NOMA) through power disparity over-the-air rather than controlling transmit powers at the user side. Specifically, users with identical transmit power, path loss, and distance can communicate with a base station sharing time and frequency resources in a NOMA fashion with the aid of the proposed hybrid RIS system. Here, the RIS is partitioned into active and passive parts and the distinctive partitions serve different users aligning their phases accordingly while introducing a power difference to the users' signals to enable NOMA. First, the end-to-end system model is presented considering two users. Furthermore, outage probability calculations and theoretical error probability analysis are discussed and reinforced with computer simulation results.
    Publisher
    arXiv
    arXiv
    2208.03582
    Additional Links
    https://arxiv.org/pdf/2208.03582.pdf
    Collections
    Preprints; Computer, Electrical and Mathematical Science and Engineering (CEMSE) Division

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