Target Acceleration Estimation in Active and Passive Radars

Flying targets are becoming increasingly maneuverable, contributing to the growing problem of their detection with active and passive radars. Rapid acceleration causes blurring of the target echo on the range-Doppler (RD) map, which reduces the signal-to-noise ratio in a given range and velocity cel...

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Main Authors: Karol Abratkiewicz, Mateusz Malanowski, Zbigniew Gajo
Format: Article
Language:English
Published: IEEE 2023-01-01
Series:IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
Subjects:
Online Access:https://ieeexplore.ieee.org/document/10265010/
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author Karol Abratkiewicz
Mateusz Malanowski
Zbigniew Gajo
author_facet Karol Abratkiewicz
Mateusz Malanowski
Zbigniew Gajo
author_sort Karol Abratkiewicz
collection DOAJ
description Flying targets are becoming increasingly maneuverable, contributing to the growing problem of their detection with active and passive radars. Rapid acceleration causes blurring of the target echo on the range-Doppler (RD) map, which reduces the signal-to-noise ratio in a given range and velocity cell. This article proposes a novel, nonparametric approach to quickly and efficiently estimating target acceleration on the RD map. In this article, a universal signal model for an active frequency-modulated continuous wave radar and a passive radar is introduced. Based on this model, an estimation algorithm has been developed that can be applied to both active and passive radars. Compared with the method known from the literature, the proposed solution is much faster (even more than <inline-formula><tex-math notation="LaTeX">$\mathbf {100}$</tex-math></inline-formula> times) while maintaining numerical stability and allowing for the estimation of acceleration of many targets to be performed simultaneously. The proposed method was supported by simulation tests and signals from real-life active and passive radars observing a jet fighter and a drone. The obtained outcomes show that the proposed technique can be successfully used for autonomous real-time systems that detect and estimate the parameters of maneuvering vehicles.
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spelling doaj.art-6ddf93557e32467e8a14c37e35e0e8eb2023-10-18T23:00:17ZengIEEEIEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing2151-15352023-01-01169193920610.1109/JSTARS.2023.331982910265010Target Acceleration Estimation in Active and Passive RadarsKarol Abratkiewicz0https://orcid.org/0000-0002-5694-1294Mateusz Malanowski1https://orcid.org/0000-0001-8964-423XZbigniew Gajo2https://orcid.org/0000-0002-0614-7148Institute of Electronic Systems, Warsaw University of Technology, Warsaw, PolandInstitute of Electronic Systems, Warsaw University of Technology, Warsaw, PolandInstitute of Electronic Systems, Warsaw University of Technology, Warsaw, PolandFlying targets are becoming increasingly maneuverable, contributing to the growing problem of their detection with active and passive radars. Rapid acceleration causes blurring of the target echo on the range-Doppler (RD) map, which reduces the signal-to-noise ratio in a given range and velocity cell. This article proposes a novel, nonparametric approach to quickly and efficiently estimating target acceleration on the RD map. In this article, a universal signal model for an active frequency-modulated continuous wave radar and a passive radar is introduced. Based on this model, an estimation algorithm has been developed that can be applied to both active and passive radars. Compared with the method known from the literature, the proposed solution is much faster (even more than <inline-formula><tex-math notation="LaTeX">$\mathbf {100}$</tex-math></inline-formula> times) while maintaining numerical stability and allowing for the estimation of acceleration of many targets to be performed simultaneously. The proposed method was supported by simulation tests and signals from real-life active and passive radars observing a jet fighter and a drone. The obtained outcomes show that the proposed technique can be successfully used for autonomous real-time systems that detect and estimate the parameters of maneuvering vehicles.https://ieeexplore.ieee.org/document/10265010/Acceleration estimationactive radarpassive radarradar remote sensingtarget detection
spellingShingle Karol Abratkiewicz
Mateusz Malanowski
Zbigniew Gajo
Target Acceleration Estimation in Active and Passive Radars
IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
Acceleration estimation
active radar
passive radar
radar remote sensing
target detection
title Target Acceleration Estimation in Active and Passive Radars
title_full Target Acceleration Estimation in Active and Passive Radars
title_fullStr Target Acceleration Estimation in Active and Passive Radars
title_full_unstemmed Target Acceleration Estimation in Active and Passive Radars
title_short Target Acceleration Estimation in Active and Passive Radars
title_sort target acceleration estimation in active and passive radars
topic Acceleration estimation
active radar
passive radar
radar remote sensing
target detection
url https://ieeexplore.ieee.org/document/10265010/
work_keys_str_mv AT karolabratkiewicz targetaccelerationestimationinactiveandpassiveradars
AT mateuszmalanowski targetaccelerationestimationinactiveandpassiveradars
AT zbigniewgajo targetaccelerationestimationinactiveandpassiveradars