Distributed PMCW Radar Network in Presence of Phase Noise

被引:1
作者
Kou, Jialun [1 ]
Bauduin, Marc [2 ]
Bourdoux, Andre [2 ]
Pollin, Sofie [1 ,2 ]
机构
[1] Katholieke Univ Leuven, Dept Elect Engn ESAT, Leuven, Belgium
[2] Interuniv Microelect Ctr IMEC, Leuven, Belgium
来源
2024 IEEE RADAR CONFERENCE, RADARCONF 2024 | 2024年
关键词
PMCW radar; Phase noise; Radar network; Multi-static radar; FMCW;
D O I
10.1109/RADARCONF2458775.2024.10549342
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
In Frequency Modulated Continuous Waveform (FMCW) radar systems, the phase noise from the Phase-Locked Loop (PLL) can increase the noise floor in the Range-Doppler map. The adverse effects of phase noise on close targets can be mitigated if the transmitter (Tx) and receiver (Rx) employ the same chirp, a phenomenon known as the range correlation effect. In the context of a multi-static radar network, sharing the chirp between distant radars becomes challenging. Each radar generates its own chirp, leading to uncorrelated phase noise. Consequently, the system performance cannot benefit from the range correlation effect. Previous studies show that selecting a suitable code sequence for a Phase Modulated Continuous Waveform (PMCW) radar can reduce the impact of uncorrelated phase noise in the range dimension. In this paper, we demonstrate how to leverage this property to exploit both the mono- and multi-static signals of each radar in the network without having to share any signal at the carrier frequency. The paper introduces a detailed signal model for PMCW radar networks, analyzing both correlated and uncorrelated phase noise effects in the Doppler dimension. Additionally, a solution for compensating uncorrelated phase noise in Doppler is presented and supported by numerical results.
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页数:6
相关论文
共 14 条
[1]  
Bauduin M., 2023, IEEE Trans. Radar Syst., V1, P646, DOI [10.1109/trs.2023.3325006, DOI 10.1109/TRS.2023.3325006]
[2]   Impact of Phase Noise on FMCW and PMCW Radars [J].
Bauduin, Marc ;
Bourdoux, Andre .
2023 IEEE RADAR CONFERENCE, RADARCONF23, 2023,
[3]  
Budge M. C. Jr., 1993, Proceedings IEEE Southeastcon '93 (Cat. No.93CH3295-3), DOI 10.1109/SECON.1993.465731
[4]   Coherent Measurements of a Multistatic MIMO Radar Network With Phase Noise Optimized Non-Coherent Signal Synthesis [J].
Duerr, Andre ;
Boehm, Dennis ;
Schwarz, Dominik ;
Haefner, Stephan ;
Thomae, Reiner ;
Waldschmidt, Christian .
IEEE JOURNAL OF MICROWAVES, 2022, 2 (02) :239-252
[5]   Calibration-Based Phase Coherence of Incoherent and Quasi-Coherent 160-GHz MIMO Radars [J].
Duerr, Andre ;
Kramer, Raphael ;
Schwarz, Dominik ;
Geiger, Martin ;
Waldschmidt, Christian .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2020, 68 (07) :2768-2778
[6]   Coherent Automotive Radar Networks: The Next Generation of Radar-Based Imaging and Mapping [J].
Gottinger, Michael ;
Hoffmann, Marcel ;
Christmann, Mark ;
Schuetz, Martin ;
Kirsch, Fabian ;
Gulden, Peter ;
Vossiek, Martin .
IEEE JOURNAL OF MICROWAVES, 2021, 1 (01) :149-163
[7]  
Horlin F., 2008, Digital Compensation for Analog Front-Ends: A New Approach to Wireless Transceiver Design
[8]  
Meinecke B, 2019, EUROP RADAR CONF, P241
[9]   Phase Noise in FMCW Radar Systems [J].
Siddiq, Kashif ;
Hobden, Mervyn K. ;
Pennock, Steve R. ;
Watson, Robert J. .
IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS, 2019, 55 (01) :70-81
[10]  
Texas Instruments, AWR1443, AWR1243 Evaluation Module (AWR1443BOOST, AWR1243BOOST) mmWave Sensing Solution