Fast 3-D millimeter-wave MIMO array imaging algorithms based on the CF-DFrFT

In near-field applications, 3-D imaging with the millimeter-wave multiple-input-multiple-output (MIMO) array provides accurate reconstruction with high dynamic range. However, current algorithms make it difficult to process multidimensional echo data in real-time with ordinary computational power. T...

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Published inDigital signal processing Vol. 147; p. 104410
Main Authors Li, Qirun, Li, Xinbo, Chen, Ziyi, Jiang, Liangxu, Wang, Yingwei
Format Journal Article
LanguageEnglish
Published Elsevier Inc 01.04.2024
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Online AccessGet full text
ISSN1051-2004
1095-4333
DOI10.1016/j.dsp.2024.104410

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Abstract In near-field applications, 3-D imaging with the millimeter-wave multiple-input-multiple-output (MIMO) array provides accurate reconstruction with high dynamic range. However, current algorithms make it difficult to process multidimensional echo data in real-time with ordinary computational power. To improve the imaging speed, the property of the focus position control by closed-form discrete fractional Fourier transform (CF-DFrFT) is used to replace the matched filtering operation. According to the difference of range cell migration correction (RCMC), three improved imaging algorithms based on the CF-DFrFT are proposed in this article. We numerically analyze the CF-DFrFT of different imaging algorithms in terms of imaging computational load and feasibility. The imaging difference is also discussed using simulated data and published actual data. Compared to the fastest known algorithm, the simulation results show that the imaging time of the proposed algorithms is reduced by 38% at most. All the proposed algorithms improve the imaging efficiency while preserving the properties of the original RCMC.
AbstractList In near-field applications, 3-D imaging with the millimeter-wave multiple-input-multiple-output (MIMO) array provides accurate reconstruction with high dynamic range. However, current algorithms make it difficult to process multidimensional echo data in real-time with ordinary computational power. To improve the imaging speed, the property of the focus position control by closed-form discrete fractional Fourier transform (CF-DFrFT) is used to replace the matched filtering operation. According to the difference of range cell migration correction (RCMC), three improved imaging algorithms based on the CF-DFrFT are proposed in this article. We numerically analyze the CF-DFrFT of different imaging algorithms in terms of imaging computational load and feasibility. The imaging difference is also discussed using simulated data and published actual data. Compared to the fastest known algorithm, the simulation results show that the imaging time of the proposed algorithms is reduced by 38% at most. All the proposed algorithms improve the imaging efficiency while preserving the properties of the original RCMC.
ArticleNumber 104410
Author Li, Qirun
Li, Xinbo
Wang, Yingwei
Chen, Ziyi
Jiang, Liangxu
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Keywords Near-field multiple-input–multiple-output synthetic aperture radar (MIMO-SAR)
Frequency scaling (FS)
Chirp scaling (CS)
Closed-form discrete fractional Fourier transform (CF-DFRFT)
Millimeter-wave (MMW) imaging
Language English
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Snippet In near-field applications, 3-D imaging with the millimeter-wave multiple-input-multiple-output (MIMO) array provides accurate reconstruction with high dynamic...
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Publisher
StartPage 104410
SubjectTerms Chirp scaling (CS)
Closed-form discrete fractional Fourier transform (CF-DFRFT)
Frequency scaling (FS)
Millimeter-wave (MMW) imaging
Near-field multiple-input–multiple-output synthetic aperture radar (MIMO-SAR)
Title Fast 3-D millimeter-wave MIMO array imaging algorithms based on the CF-DFrFT
URI https://dx.doi.org/10.1016/j.dsp.2024.104410
Volume 147
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