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Experimental Validation of 77 GHz Millimeter-wave SAR Imaging with Long Integration Time

Published: 23 September 2021 Publication History

Abstract

With the rapid development of the cost-friendly 77 GHz millimeter-wave (MMW) radar, the MMW synthetic aperture radar (SAR) imaging system catches lots of attention. Especially in these years, different kinds of MMW-SAR imaging algorithms and experiments are proposed to investigate the advantages of this commercial radar. In order to ensure the coherent property of the long-time-working MMW-SAR system, this paper designs and carries out a 77 GHz MMW-SAR imaging experiment with a long integration time. The outstanding imaging results demonstrate the effectiveness of this proposed experiment. Furthermore, this work can provide a high practical value for the future works of the long integration time MMW-SAR imaging applications.

References

[1]
BT Binder, MF Toups, S Ayasli, and EM Adams. 1995. SAR foliage penetration phenomenology of tropical rain forest and northern US forest. In Proceedings International Radar Conference. IEEE, 158–163.
[2]
William M Brown. 1967. Synthetic aperture radar. IEEE Trans. Aerospace Electron. Systems2 (1967), 217–229.
[3]
William J Caputi. 1971. Stretch: A time-transformation technique. IEEE Trans. Aerospace Electron. Systems2 (1971), 269–278.
[4]
Xiao Dong and Yunhua Zhang. 2019. SAR/ISAR Imaing Using Commercial Millimeter-wave Radar. In 2019 6th Asia-Pacific Conference on Synthetic Aperture Radar (APSAR). IEEE, 1–4.
[5]
Huagui Du, Chongyi Fan, Chun Cao, Zhou Xu, and Xiaotao Huang. 2020. A Novel NLOS Target Localization Method with a Synthetic Bistatic MMW Radar. In 2020 IEEE 11th Sensor Array and Multichannel Signal Processing Workshop (SAM). IEEE, 1–5.
[6]
Reinhard Feger, Andreas Haderer, and Andreas Stelzer. 2017. Experimental verification of a 77-GHz synthetic aperture radar system for automotive applications. In 2017 IEEE MTT-S International Conference on Microwaves for Intelligent Mobility (ICMIM). IEEE, 111–114.
[7]
Hang Gao, Chao Li, Shiyou Wu, Shen Zheng, Hongwei Li, and Guangyou Fang. 2020. Image reconstruction algorithm based on frequency-wavenumber decoupling for three-dimensional MIMO-SAR imaging. Optics express 28, 2 (2020), 2411–2426.
[8]
Yesheng Gao, Rui Guo, Kaizhi Wang, and Xingzhao Liu. 2014. Optronic processing of RCMC for real-time SAR image formation. In 2014 IEEE Geoscience and Remote Sensing Symposium. IEEE, 343–345.
[9]
Shumin Geng, Cheng Zhu, and Huangfu Kan. 2006. Study on imaging algorithm of De-chirped FM-CW SAR. In 2006 CIE International Conference on Radar. IEEE, 1–4.
[10]
Texas Instruments. [n.d.]. Dca1000evm data capture card.
[11]
Texas Instruments. Apr. 2018. AWR1642 Evaluation Module (AWR1642BOOST) Single-Chip mmWave Sensing Solution.
[12]
Jeongbae Kim, Sumin Kim, Wimin Lee, Seungha Shin, Yeongwoo Choi, and Min-Ho Ka. 2019. Design and Implemetation of Compact 77 GHz Synthetic Aperture Radar for Drone Based Applications. In 2019 6th Asia-Pacific Conference on Synthetic Aperture Radar (APSAR). IEEE, 1–5.
[13]
Dexin Li, Manqing Wu, Zaoyu Sun, Feng He, and Zhen Dong. 2015. Modeling and processing of two-dimensional spatial-variant geosynchronous SAR data. IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing 8, 8 (2015), 3999–4009.
[14]
Yuli Liu, Yongjun Cai, Xiangkun Zhang, and Jingshan Jiang. 2016. Design and realization of LFMCW SAR system (in Chinese). Remote Sensing Technology and Application 31, 2 (2016), 255–259.
[15]
Zhe Liu, Jianyu Yang, and Xiaoling Zhang. 2012. Nonlinear RCMC method for spaceborne/airborne forward-looking bistatic SAR. Journal of Systems Engineering and Electronics 23, 2(2012), 201–207.
[16]
Josef Mittermayer, Alberto Moreira, and Otmar Loffeld. 1999. Spotlight SAR data processing using the frequency scaling algorithm. IEEE Transactions on Geoscience and Remote Sensing 37, 5 (1999), 2198–2214.
[17]
Karthik Ramasubramanian. 2016. TI Radar Technology Overview. (2016).
[18]
Andreas Reigber and Alberto Moreira. 2000. First demonstration of airborne SAR tomography using multibaseline L-band data. IEEE Transactions on Geoscience and Remote Sensing 38, 5 (2000), 2142–2152.
[19]
Josep Ruiz-Rodon, Antoni Broquetas, Eduardo Makhoul, Andrea Monti Guarnieri, and Fabio Rocca. 2014. Nearly zero inclination geosynchronous SAR mission analysis with long integration time for earth observation. IEEE Transactions on Geoscience and Remote Sensing 52, 10 (2014), 6379–6391.
[20]
Kai Tan. 2020. A Fast Omega-K Algorithm for Near-Field 3-D Imaging of MIMO Synthetic Aperture Radar Data. IEEE Geoscience and Remote Sensing Letters(2020).
[21]
Shiyang Tang, Chunhui Lin, Yu Zhou, Hing Cheung So, Linrang Zhang, and Zheng Liu. 2017. Processing of long integration time spaceborne SAR data with curved orbit. IEEE Transactions on Geoscience and Remote Sensing 56, 2 (2017), 888–904.
[22]
Donald R Wehner. 1987. High resolution radar. ah (1987).
[23]
Chialin Wu, KY Liu, and Michael Jin. 1982. Modeling and a correlation algorithm for spaceborne SAR signals. IEEE Trans. Aerospace Electron. Systems5 (1982), 563–575.
[24]
Jingsong Yang, Juan Wang, and Lin Ren. 2017. The first quantitative remote sensing of ocean internal waves by Chinese GF-3 SAR satellite. Acta Oceanologica Sinica 36, 1 (2017), 118–118.
[25]
Muhammet Emin Yanik and Murat Torlak. 2018. Millimeter-wave near-field imaging with two-dimensional SAR data. In Proc. SRC Techcon.
[26]
Ali F Yegulalp. 1999. Fast backprojection algorithm for synthetic aperture radar. In Proceedings of the 1999 IEEE Radar Conference. Radar into the Next Millennium (Cat. No. 99CH36249). IEEE, 60–65.
[27]
Hua Zhong, Yanjun Zhang, Yuliang Chang, Erxiao Liu, Xianghong Tang, and Jianwu Zhang. 2018. Focus high-resolution highly squint SAR data using azimuth-variant residual RCMC and extended nonlinear chirp scaling based on a new circle model. IEEE Geoscience and remote sensing letters 15, 4 (2018), 547–551.
[28]
Zhanyu Zhu, Feng Xu, and Haipeng Wang. 2018. Microwave imaging of non-rigid moving target using 2D sparse MIMO array. In IGARSS 2018-2018 IEEE International Geoscience and Remote Sensing Symposium. IEEE, 7965–7967.

Cited By

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  • (2024)Analysis and Validation of 77 GHz FMCW-based GB-SAR Micro-deformation Monitoring Method2024 36th Chinese Control and Decision Conference (CCDC)10.1109/CCDC62350.2024.10588311(4004-4010)Online publication date: 25-May-2024
  • (2023)Along-Track Swarm SAR: Echo Modeling and Sub-Aperture Collaboration Imaging Based on Sparse ConstraintsIEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing10.1109/JSTARS.2023.328606816(5602-5617)Online publication date: 2023
  • (2022)Missing Data SAR Imaging Algorithm based on Two Dimensional Frequency Domain RecoveryIGARSS 2022 - 2022 IEEE International Geoscience and Remote Sensing Symposium10.1109/IGARSS46834.2022.9884238(2490-2493)Online publication date: 17-Jul-2022

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cover image ACM Other conferences
ICDSP '21: Proceedings of the 2021 5th International Conference on Digital Signal Processing
February 2021
336 pages
ISBN:9781450389365
DOI:10.1145/3458380
Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

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Association for Computing Machinery

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Publication History

Published: 23 September 2021

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Author Tags

  1. 77 GHz millimeter-wave radar
  2. SAR imaging
  3. long integration time
  4. real-data experiment

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Cited By

View all
  • (2024)Analysis and Validation of 77 GHz FMCW-based GB-SAR Micro-deformation Monitoring Method2024 36th Chinese Control and Decision Conference (CCDC)10.1109/CCDC62350.2024.10588311(4004-4010)Online publication date: 25-May-2024
  • (2023)Along-Track Swarm SAR: Echo Modeling and Sub-Aperture Collaboration Imaging Based on Sparse ConstraintsIEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing10.1109/JSTARS.2023.328606816(5602-5617)Online publication date: 2023
  • (2022)Missing Data SAR Imaging Algorithm based on Two Dimensional Frequency Domain RecoveryIGARSS 2022 - 2022 IEEE International Geoscience and Remote Sensing Symposium10.1109/IGARSS46834.2022.9884238(2490-2493)Online publication date: 17-Jul-2022

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