Waveform Design for Joint Sensing and Communications in Millimeter-Wave and Low Terahertz Bands
Tianqi Mao, Jiaxuan Chen, Qi Wang, Chong Han, Zhaocheng Wang, George, K. Karagiannidis

TL;DR
This paper introduces novel waveform designs for joint sensing and communication in mmWave and low-THz bands, enabling high-precision radar sensing and data transmission with low-cost hardware and interference-free operation.
Contribution
It proposes the MS-QP and DE-MS-QP waveforms, which facilitate accurate target sensing and simultaneous data transmission in joint radar-communication systems.
Findings
MS-QP sequence achieves accurate target ranging and velocity estimation.
DE-MS-QP enables simultaneous interference-free sensing and communication.
Numerical results show improved performance and hardware efficiency.
Abstract
The convergence of sensing and communication in the millimeter-wave (mmWave) and low terahertz (THz) bands has been envisioned as a promising technology, since it incorporates high-rate data transmission of hundreds of Gbps and mm-level radar sensing in a spectrum- and cost-efficient manner, by sharing both the frequency and hardware resources. However, the joint radar sensing and communication (JRC) system faces considerable challenges in the mmWave and low-THz scale, due to the peculiarities of the propagation channel and radio-frequency (RF) front ends. To this end, the waveform design for the JRC systems in mmWave and low-THz bands with ultra-broad bandwidth is investigated in this paper. Firstly, by considering the JRC design based on the co-existence concept, where both functions operate in a time-domain duplex (TDD) manner, a novel multi-subband quasi-perfect (MS-QP) sequence,…
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Taxonomy
TopicsRadar Systems and Signal Processing · Microwave Imaging and Scattering Analysis · Antenna Design and Optimization
