Multidimensional OAM-Based Secure High-Speed Wireless Communications

To address key challenges for beyond 5G wireless technologies in a simultaneous manner, we propose an orbital angular momentum (OAM)-based, secure, energy-efficient multidimensional coded modulation. The key idea is to employ all available degrees of freedom (DOFs) to convey the information over the...

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Main Author: Ivan B. Djordjevic
Format: Article
Language:English
Published: IEEE 2017-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8002571/
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spelling doaj-501a98d897924556bb09c8c0240c41472021-03-29T20:04:37ZengIEEEIEEE Access2169-35362017-01-015164161642810.1109/ACCESS.2017.27359948002571Multidimensional OAM-Based Secure High-Speed Wireless CommunicationsIvan B. Djordjevic0https://orcid.org/0000-0002-0764-0268Department of Electrical and Computer Engineering, College of Engineering, The University of Arizona, Tucson, AZ, USATo address key challenges for beyond 5G wireless technologies in a simultaneous manner, we propose an orbital angular momentum (OAM)-based, secure, energy-efficient multidimensional coded modulation. The key idea is to employ all available degrees of freedom (DOFs) to convey the information over the wireless links, including amplitude, phase, polarization state, and spatial-domain DOFs. In particular, the OAM is associated with the azimuthal phase dependence of the wavefront, and represents an underutilized DOF. Given that OAM eigenstates are orthogonal, an arbitrary number of bits per symbol can be transmitted. Here, we propose utilizing OAM DOF not only to improve spectral and energy efficiencies, but also to significantly improve the physical-layer security of future wireless networks. To implement the OAM multiplexer and demultiplexer in the RF domain, we propose using properly designed antenna arrays. We also propose employing the Slepian sequences as either basis functions in baseband or impulse responses of antenna arrays in passband to further increase the dimensionality of the wireless system and enable beyond 1-Tb/s wireless transmission. Monte Carlo simulations demonstrate high tolerance to fading effects of LDPC-coded multidimensional signaling schemes compared with the conventional LDPC-coded QAM.https://ieeexplore.ieee.org/document/8002571/Coded modulationforward error correctionphysical-layer securitylow-density parity-check codesmultidimensional signalingOAM antennas
collection DOAJ
language English
format Article
sources DOAJ
author Ivan B. Djordjevic
spellingShingle Ivan B. Djordjevic
Multidimensional OAM-Based Secure High-Speed Wireless Communications
IEEE Access
Coded modulation
forward error correction
physical-layer security
low-density parity-check codes
multidimensional signaling
OAM antennas
author_facet Ivan B. Djordjevic
author_sort Ivan B. Djordjevic
title Multidimensional OAM-Based Secure High-Speed Wireless Communications
title_short Multidimensional OAM-Based Secure High-Speed Wireless Communications
title_full Multidimensional OAM-Based Secure High-Speed Wireless Communications
title_fullStr Multidimensional OAM-Based Secure High-Speed Wireless Communications
title_full_unstemmed Multidimensional OAM-Based Secure High-Speed Wireless Communications
title_sort multidimensional oam-based secure high-speed wireless communications
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2017-01-01
description To address key challenges for beyond 5G wireless technologies in a simultaneous manner, we propose an orbital angular momentum (OAM)-based, secure, energy-efficient multidimensional coded modulation. The key idea is to employ all available degrees of freedom (DOFs) to convey the information over the wireless links, including amplitude, phase, polarization state, and spatial-domain DOFs. In particular, the OAM is associated with the azimuthal phase dependence of the wavefront, and represents an underutilized DOF. Given that OAM eigenstates are orthogonal, an arbitrary number of bits per symbol can be transmitted. Here, we propose utilizing OAM DOF not only to improve spectral and energy efficiencies, but also to significantly improve the physical-layer security of future wireless networks. To implement the OAM multiplexer and demultiplexer in the RF domain, we propose using properly designed antenna arrays. We also propose employing the Slepian sequences as either basis functions in baseband or impulse responses of antenna arrays in passband to further increase the dimensionality of the wireless system and enable beyond 1-Tb/s wireless transmission. Monte Carlo simulations demonstrate high tolerance to fading effects of LDPC-coded multidimensional signaling schemes compared with the conventional LDPC-coded QAM.
topic Coded modulation
forward error correction
physical-layer security
low-density parity-check codes
multidimensional signaling
OAM antennas
url https://ieeexplore.ieee.org/document/8002571/
work_keys_str_mv AT ivanbdjordjevic multidimensionaloambasedsecurehighspeedwirelesscommunications
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