Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave Radar

In this paper, the aperture synthesis processing techniques for the distributed shipborne high frequency hybrid sky-surface wave radar (HFHSSWR) are proposed to improve the azimuth resolution and obtain the velocity vector and the azimuth estimation of the moving target. First, the system geometry a...

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Main Authors: Mingkai Ding, Peng Tong, Yinsheng Wei, Lei Yu
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Remote Sensing
Subjects:
Online Access:https://www.mdpi.com/2072-4292/13/13/2471
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spelling doaj-73340a4c801f4564af6ee263bd5194ef2021-07-15T15:44:10ZengMDPI AGRemote Sensing2072-42922021-06-01132471247110.3390/rs13132471Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave RadarMingkai Ding0Peng Tong1Yinsheng Wei2Lei Yu3School of Electronics and Information Engineering, Harbin Institute of Technology, Harbin 150001, ChinaSchool of Electronics and Information Engineering, Harbin Institute of Technology, Harbin 150001, ChinaSchool of Electronics and Information Engineering, Harbin Institute of Technology, Harbin 150001, ChinaSchool of Electronics and Information Engineering, Harbin Institute of Technology, Harbin 150001, ChinaIn this paper, the aperture synthesis processing techniques for the distributed shipborne high frequency hybrid sky-surface wave radar (HFHSSWR) are proposed to improve the azimuth resolution and obtain the velocity vector and the azimuth estimation of the moving target. First, the system geometry and the signal model of the moving target for the distributed shipborne HFHSSWR are formulated, and then the azimuth resolution improvement principle is derived. Second, based on the developed signal model, we propose an azimuth resolution improvement algorithm, which can obtain the synthetic azimuth bandwidth and an improved resolution using sub-band combination. Finally, a target parameters inversion method is introduced to estimate the target velocity vector and the target azimuth, by solving the equations regarding the target geometry and echo signal parameters numerically. The simulations are performed to verify the proposed algorithms. The results indicate that the distributed synthetic aperture techniques effectively improve the azimuth resolution of this radar, and can obtain the target velocity vector and the high-precision estimation of the target azimuth.https://www.mdpi.com/2072-4292/13/13/2471distributed synthetic aperturedistributed shipborne HFHSSWRazimuth resolution improvementtarget parameters inversion
collection DOAJ
language English
format Article
sources DOAJ
author Mingkai Ding
Peng Tong
Yinsheng Wei
Lei Yu
spellingShingle Mingkai Ding
Peng Tong
Yinsheng Wei
Lei Yu
Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave Radar
Remote Sensing
distributed synthetic aperture
distributed shipborne HFHSSWR
azimuth resolution improvement
target parameters inversion
author_facet Mingkai Ding
Peng Tong
Yinsheng Wei
Lei Yu
author_sort Mingkai Ding
title Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave Radar
title_short Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave Radar
title_full Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave Radar
title_fullStr Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave Radar
title_full_unstemmed Azimuth Resolution Improvement and Target Parameters Inversion for Distributed Shipborne High Frequency Hybrid Sky-Surface Wave Radar
title_sort azimuth resolution improvement and target parameters inversion for distributed shipborne high frequency hybrid sky-surface wave radar
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2021-06-01
description In this paper, the aperture synthesis processing techniques for the distributed shipborne high frequency hybrid sky-surface wave radar (HFHSSWR) are proposed to improve the azimuth resolution and obtain the velocity vector and the azimuth estimation of the moving target. First, the system geometry and the signal model of the moving target for the distributed shipborne HFHSSWR are formulated, and then the azimuth resolution improvement principle is derived. Second, based on the developed signal model, we propose an azimuth resolution improvement algorithm, which can obtain the synthetic azimuth bandwidth and an improved resolution using sub-band combination. Finally, a target parameters inversion method is introduced to estimate the target velocity vector and the target azimuth, by solving the equations regarding the target geometry and echo signal parameters numerically. The simulations are performed to verify the proposed algorithms. The results indicate that the distributed synthetic aperture techniques effectively improve the azimuth resolution of this radar, and can obtain the target velocity vector and the high-precision estimation of the target azimuth.
topic distributed synthetic aperture
distributed shipborne HFHSSWR
azimuth resolution improvement
target parameters inversion
url https://www.mdpi.com/2072-4292/13/13/2471
work_keys_str_mv AT mingkaiding azimuthresolutionimprovementandtargetparametersinversionfordistributedshipbornehighfrequencyhybridskysurfacewaveradar
AT pengtong azimuthresolutionimprovementandtargetparametersinversionfordistributedshipbornehighfrequencyhybridskysurfacewaveradar
AT yinshengwei azimuthresolutionimprovementandtargetparametersinversionfordistributedshipbornehighfrequencyhybridskysurfacewaveradar
AT leiyu azimuthresolutionimprovementandtargetparametersinversionfordistributedshipbornehighfrequencyhybridskysurfacewaveradar
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