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Joint Design of Communication and Sensing for Beyond 5G and 6G Systems

Thorsten Wild, +2 more
- 15 Feb 2021 - 
- Vol. 9, pp 30845-30857
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TLDR
In this paper, the major design aspects of such a cellular joint communication and sensing (JCAS) system are discussed, and an analysis of the choice of the waveform that points towards choosing the one that is best suited for communication also for radar sensing is presented.
Abstract
The 6G vision of creating authentic digital twin representations of the physical world calls for new sensing solutions to compose multi-layered maps of our environments. Radio sensing using the mobile communication network as a sensor has the potential to become an essential component of the solution. With the evolution of cellular systems to mmWave bands in 5G and potentially sub-THz bands in 6G, small cell deployments will begin to dominate. Large bandwidth systems deployed in small cell configurations provide an unprecedented opportunity to employ the mobile network for sensing. In this paper, we focus on the major design aspects of such a cellular joint communication and sensing (JCAS) system. We present an analysis of the choice of the waveform that points towards choosing the one that is best suited for communication also for radar sensing. We discuss several techniques for efficiently integrating the sensing capability into the JCAS system, some of which are applicable with NR air-interface for evolved 5G systems. Specifically, methods for reducing sensing overhead by appropriate sensing signal design or by configuring separate numerologies for communications and sensing are presented. Sophisticated use of the sensing signals is shown to reduce the signaling overhead by a factor of 2.67 for an exemplary road traffic monitoring use case. We then present a vision for future advanced JCAS systems building upon distributed massive MIMO and discuss various other research challenges for JCAS that need to be addressed in order to pave the way towards natively integrated JCAS in 6G.

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Citations
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A 5.9 mW E-/W-Band SiGe-HBT LNA With 48 GHz 3-dB Bandwidth and 4.5-dB Noise Figure

TL;DR: In this paper , a two-stage broadband noise and impedance matching technique is used to obtain a relativity flat gain (13.5 dB) and noise figure (NF) across the E-/W-band.
Proceedings ArticleDOI

Integrating TDD Communication and Radar Sensing in Co-Located Planar Array: A Genetic Algorithm Enabled Aperture Design

TL;DR: In this paper , the interleaved transmitter and receiver apertures co-located in one planar array for enabling joint communication and sensing were designed, and a genetic algorithm was used to determine the allocation.
Proceedings ArticleDOI

Range-Angle Coupling Compensation in Frequency Domain Interleaved OFDM MIMO Systems

TL;DR: In this paper , the problem of direction estimation in orthogonal frequency division multiplexing (OFDM) multiple-input multiple-output (MIMO) radar systems is considered.
Journal ArticleDOI

Monostatic Sensing With OFDM Under Phase Noise: From Mitigation to Exploitation

TL;DR: Simulation results indicate quick convergence of ISAA to the hybrid Cram´er-Rao bound (CRB), as well as its remarkable performance gains over state-of-the-art benchmarks, for both FROs and PLLs under various operating conditions, while showing that the detrimental effect of PN can be turned into an advantage for sensing.
Journal Article

Performance Analysis and Power Allocation of Joint Communication and Sensing Towards Future Communication Networks

TL;DR: A novel joint communication and sensing (JCS) system where a micro base station (MiBS) can realize target sensing and cooperative communication simultaneously is proposed, where non-orthogonal multiple access (NOMA) is adopted such that the communication between the macro base station and the Internet-of-Things (IoT) devices is improved.
References
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Journal ArticleDOI

Massive MIMO for next generation wireless systems

TL;DR: While massive MIMO renders many traditional research problems irrelevant, it uncovers entirely new problems that urgently need attention: the challenge of making many low-cost low-precision components that work effectively together, acquisition and synchronization for newly joined terminals, the exploitation of extra degrees of freedom provided by the excess of service antennas, reducing internal power consumption to achieve total energy efficiency reductions, and finding new deployment scenarios.
Journal ArticleDOI

Wireless Communications and Applications Above 100 GHz: Opportunities and Challenges for 6G and Beyond

TL;DR: This paper offers the first in-depth look at the vast applications of THz wireless products and applications and provides approaches for how to reduce power and increase performance across several problem domains, giving early evidence that THz techniques are compelling and available for future wireless communications.
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6G Wireless Networks: Vision, Requirements, Architecture, and Key Technologies

TL;DR: This article presents a large-dimensional and autonomous network architecture that integrates space, air, ground, and underwater networks to provide ubiquitous and unlimited wireless connectivity and identifies several promising technologies for the 6G ecosystem.
Journal ArticleDOI

The Roadmap to 6G: AI Empowered Wireless Networks

TL;DR: Potential technologies for 6G to enable mobile AI applications, as well as AI-enabled methodologies for6G network design and optimization are discussed.
Journal ArticleDOI

Waveform Design and Signal Processing Aspects for Fusion of Wireless Communications and Radar Sensing

TL;DR: Approaches to the design of intelligent waveforms, that are suitable for simultaneously performing both data transmission and radar sensing, are proposed, based on classical phase-coded waveforms utilized in wireless communications.
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