Joint radar communication with novel GCC preamble and point-wise minimum fusion

In this paper, a new preamble waveform design and a corresponding minimum-point processing algorithm at receiver are proposed to perform radar sensing of communication signal echoes. In our design, we consider the millimeter wave (mmWave) 802.11ad/802.11ay communication frame format as a reference....

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Main Authors: Liu, Xiaobei, Guan, Xiaobei, Jagannath, Rakshith, Lu, Yilong, Wang, Jiahuan, Fan, Pingzhi
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/164965
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1649652023-03-09T15:32:31Z Joint radar communication with novel GCC preamble and point-wise minimum fusion Liu, Xiaobei Guan, Xiaobei Jagannath, Rakshith Lu, Yilong Wang, Jiahuan Fan, Pingzhi School of Electrical and Electronic Engineering Temasek Laboratories @ NTU Engineering::Electrical and electronic engineering::Wireless communication systems Golay Complementary Code Ambiguity Function Orthogonal Frequency-Division Multiplexing Joint Radar and Communication V2X Communication In this paper, a new preamble waveform design and a corresponding minimum-point processing algorithm at receiver are proposed to perform radar sensing of communication signal echoes. In our design, we consider the millimeter wave (mmWave) 802.11ad/802.11ay communication frame format as a reference. Our proposed new preamble replaces the second pair of single-carrier (SC) Golay complementary code (GCC) used in the preamble of IEEE 802.11ad/802.11ay by orthogonal frequency-division multiplexing (OFDM) GCC waveform, resulting in a SC-OFDM GCC preamble waveform. At the receiver, a point-wise minimum operation is performed on the separate radar ambiguity functions (AF) of the SC-GCC and OFDM-GCC to improve the overall quality of the preamble AF. Furthermore, point-wise minimum processing is applied to fuse the communication data AF and the preamble AF, so as to further enhance the radar sensing quality of the entire communication frame. In addition, theoretical analysis of the performance gain of such radar AF fusion is provided. Both theoretical analysis and simulation results demonstrate that the newly proposed SC-OFDM GCC preamble design and the minimum-point fusion of data AF and preamble AF provide a significant performance improvement for automotive radar sensing. Specifically, the proposed SC-OFDM GCC preamble with minimum-point processing algorithm improves the peak-to-max-sidelobe ratio (PMSR) of radar AF over the conventional 802.11ad/802.11ay preamble. Moreover, the proposed preamble-data AF fusion technique further enhances the PMSR as well as the Doppler resolution over the existing joint radar communication systems (which process either the preamble echo or the data echo only). Finally, the proposed minimum-point processing and data AF fusion are extended from single-frame to multi-frame processing to further improve the Doppler resolution. Submitted/Accepted version The work of Pingzhi Fan was supported by NSFC Project No. 62020106001. 2023-03-06T06:08:35Z 2023-03-06T06:08:35Z 2022 Journal Article Liu, X., Guan, X., Jagannath, R., Lu, Y., Wang, J. & Fan, P. (2022). Joint radar communication with novel GCC preamble and point-wise minimum fusion. IEEE Transactions On Vehicular Technology, 3216329-. https://dx.doi.org/10.1109/TVT.2022.3216329 0018-9545 https://hdl.handle.net/10356/164965 10.1109/TVT.2022.3216329 3216329 en IEEE Transactions on Vehicular Technology © 2015 IEEE. All rights reserved. Personal use of this material is permitted. However, permission to use this material for any other purposes must be obtained from the IEEE by sending a request to pubs-permissions@ieee.org.The published version is available at: https://doi.org/10.1109/TVT.2022.3216329 application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering::Wireless communication systems
Golay Complementary Code
Ambiguity Function
Orthogonal Frequency-Division Multiplexing
Joint Radar and Communication
V2X Communication
spellingShingle Engineering::Electrical and electronic engineering::Wireless communication systems
Golay Complementary Code
Ambiguity Function
Orthogonal Frequency-Division Multiplexing
Joint Radar and Communication
V2X Communication
Liu, Xiaobei
Guan, Xiaobei
Jagannath, Rakshith
Lu, Yilong
Wang, Jiahuan
Fan, Pingzhi
Joint radar communication with novel GCC preamble and point-wise minimum fusion
description In this paper, a new preamble waveform design and a corresponding minimum-point processing algorithm at receiver are proposed to perform radar sensing of communication signal echoes. In our design, we consider the millimeter wave (mmWave) 802.11ad/802.11ay communication frame format as a reference. Our proposed new preamble replaces the second pair of single-carrier (SC) Golay complementary code (GCC) used in the preamble of IEEE 802.11ad/802.11ay by orthogonal frequency-division multiplexing (OFDM) GCC waveform, resulting in a SC-OFDM GCC preamble waveform. At the receiver, a point-wise minimum operation is performed on the separate radar ambiguity functions (AF) of the SC-GCC and OFDM-GCC to improve the overall quality of the preamble AF. Furthermore, point-wise minimum processing is applied to fuse the communication data AF and the preamble AF, so as to further enhance the radar sensing quality of the entire communication frame. In addition, theoretical analysis of the performance gain of such radar AF fusion is provided. Both theoretical analysis and simulation results demonstrate that the newly proposed SC-OFDM GCC preamble design and the minimum-point fusion of data AF and preamble AF provide a significant performance improvement for automotive radar sensing. Specifically, the proposed SC-OFDM GCC preamble with minimum-point processing algorithm improves the peak-to-max-sidelobe ratio (PMSR) of radar AF over the conventional 802.11ad/802.11ay preamble. Moreover, the proposed preamble-data AF fusion technique further enhances the PMSR as well as the Doppler resolution over the existing joint radar communication systems (which process either the preamble echo or the data echo only). Finally, the proposed minimum-point processing and data AF fusion are extended from single-frame to multi-frame processing to further improve the Doppler resolution.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Liu, Xiaobei
Guan, Xiaobei
Jagannath, Rakshith
Lu, Yilong
Wang, Jiahuan
Fan, Pingzhi
format Article
author Liu, Xiaobei
Guan, Xiaobei
Jagannath, Rakshith
Lu, Yilong
Wang, Jiahuan
Fan, Pingzhi
author_sort Liu, Xiaobei
title Joint radar communication with novel GCC preamble and point-wise minimum fusion
title_short Joint radar communication with novel GCC preamble and point-wise minimum fusion
title_full Joint radar communication with novel GCC preamble and point-wise minimum fusion
title_fullStr Joint radar communication with novel GCC preamble and point-wise minimum fusion
title_full_unstemmed Joint radar communication with novel GCC preamble and point-wise minimum fusion
title_sort joint radar communication with novel gcc preamble and point-wise minimum fusion
publishDate 2023
url https://hdl.handle.net/10356/164965
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