Range-Spread Target Detection using Consecutive HRRPs
In this paper, a heuristic detector is proposed to detect range-spread targets in white Gaussian noise using multiple consecutive high- resolution range profiles (HRRPs) received from a high-resolution radar (HRR). The detector consists of refiners of HRRPs and a cross-correlation integrator of refi...
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Veröffentlicht in: | IEEE transactions on aerospace and electronic systems 2011-01, Vol.47 (1), p.647-665 |
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creator | Shui, Peng-Lang Xu, Shu-Wen Liu, Hong-Wei |
description | In this paper, a heuristic detector is proposed to detect range-spread targets in white Gaussian noise using multiple consecutive high- resolution range profiles (HRRPs) received from a high-resolution radar (HRR). The detector consists of refiners of HRRPs and a cross-correlation integrator of refined HRRPs. Based on the fact that strong scattering cells are sparse in target HRRPs, nonlinear shrinkage maps are designed to refine received HRRPs before integration, by which most of the noise-only cells in received HRRPs are suppressed while strong scattering cells most probably relevant to target signature are preserved. Since the target's scattering geometry is almost unchanged except for range walking during integration, the refined target HRRPs from consecutive pulses are highly similar while refined noise-only HRRPs are dissimilar due to randomicity. The modified correlation matrix of multiple refined HRRPs is used to measure their similarity. The test statistic, a weighted integration of the entries of the modified correlation matrix, is constructed for target detection. The proposed detector does not depend on a strict target return model and can work in mild conditions. The real target data and simulated noise are used to evaluate the detector, and the experimental results show that it achieves better detection performance than some existing methods. |
doi_str_mv | 10.1109/TAES.2011.5705697 |
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The detector consists of refiners of HRRPs and a cross-correlation integrator of refined HRRPs. Based on the fact that strong scattering cells are sparse in target HRRPs, nonlinear shrinkage maps are designed to refine received HRRPs before integration, by which most of the noise-only cells in received HRRPs are suppressed while strong scattering cells most probably relevant to target signature are preserved. Since the target's scattering geometry is almost unchanged except for range walking during integration, the refined target HRRPs from consecutive pulses are highly similar while refined noise-only HRRPs are dissimilar due to randomicity. The modified correlation matrix of multiple refined HRRPs is used to measure their similarity. The test statistic, a weighted integration of the entries of the modified correlation matrix, is constructed for target detection. The proposed detector does not depend on a strict target return model and can work in mild conditions. The real target data and simulated noise are used to evaluate the detector, and the experimental results show that it achieves better detection performance than some existing methods.</description><identifier>ISSN: 0018-9251</identifier><identifier>EISSN: 1557-9603</identifier><identifier>DOI: 10.1109/TAES.2011.5705697</identifier><identifier>CODEN: IEARAX</identifier><language>eng</language><publisher>New York: IEEE</publisher><subject>Aircraft ; Detectors ; Fluctuations ; Noise ; Radar cross section ; Scattering ; Signatures ; Similarity ; Statistics ; Studies ; Target detection ; Walking</subject><ispartof>IEEE transactions on aerospace and electronic systems, 2011-01, Vol.47 (1), p.647-665</ispartof><rights>Copyright The Institute of Electrical and Electronics Engineers, Inc. (IEEE) Jan 2011</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c324t-9002c7b599dc4e00ef100d846cba9eab49e9a54475694879f988c62aa8497bb33</citedby><cites>FETCH-LOGICAL-c324t-9002c7b599dc4e00ef100d846cba9eab49e9a54475694879f988c62aa8497bb33</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://ieeexplore.ieee.org/document/5705697$$EHTML$$P50$$Gieee$$H</linktohtml><link.rule.ids>314,780,784,796,27915,27916,54749</link.rule.ids><linktorsrc>$$Uhttps://ieeexplore.ieee.org/document/5705697$$EView_record_in_IEEE$$FView_record_in_$$GIEEE</linktorsrc></links><search><creatorcontrib>Shui, Peng-Lang</creatorcontrib><creatorcontrib>Xu, Shu-Wen</creatorcontrib><creatorcontrib>Liu, Hong-Wei</creatorcontrib><title>Range-Spread Target Detection using Consecutive HRRPs</title><title>IEEE transactions on aerospace and electronic systems</title><addtitle>T-AES</addtitle><description>In this paper, a heuristic detector is proposed to detect range-spread targets in white Gaussian noise using multiple consecutive high- resolution range profiles (HRRPs) received from a high-resolution radar (HRR). The detector consists of refiners of HRRPs and a cross-correlation integrator of refined HRRPs. Based on the fact that strong scattering cells are sparse in target HRRPs, nonlinear shrinkage maps are designed to refine received HRRPs before integration, by which most of the noise-only cells in received HRRPs are suppressed while strong scattering cells most probably relevant to target signature are preserved. Since the target's scattering geometry is almost unchanged except for range walking during integration, the refined target HRRPs from consecutive pulses are highly similar while refined noise-only HRRPs are dissimilar due to randomicity. The modified correlation matrix of multiple refined HRRPs is used to measure their similarity. The test statistic, a weighted integration of the entries of the modified correlation matrix, is constructed for target detection. The proposed detector does not depend on a strict target return model and can work in mild conditions. The real target data and simulated noise are used to evaluate the detector, and the experimental results show that it achieves better detection performance than some existing methods.</description><subject>Aircraft</subject><subject>Detectors</subject><subject>Fluctuations</subject><subject>Noise</subject><subject>Radar cross section</subject><subject>Scattering</subject><subject>Signatures</subject><subject>Similarity</subject><subject>Statistics</subject><subject>Studies</subject><subject>Target detection</subject><subject>Walking</subject><issn>0018-9251</issn><issn>1557-9603</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2011</creationdate><recordtype>article</recordtype><sourceid>RIE</sourceid><recordid>eNpdkMFKw0AQhhdRsFYfQLwEL55SZ5Pd7M6x1GqFgtLW87LZTkpKm8TdRPDtTWn14GkY5vuHn4-xWw4jzgEfV-PpcpQA5yOpQGaoztiAS6lizCA9ZwMArmNMJL9kVyFs-1VokQ6YXNhqQ_Gy8WTX0cr6DbXRE7Xk2rKuoi6U1Saa1FUg17XlF0WzxeI9XLOLwu4C3ZzmkH08T1eTWTx_e3mdjOexSxPRxgiQOJVLxLUTBEAFB1hrkbncItlcIKGVQqi-sNAKC9TaZYm1WqDK8zQdsofj38bXnx2F1uzL4Gi3sxXVXTA6430UQfbk_T9yW3e-6ssZLbQWkKTQQ_wIOV-H4KkwjS_31n8bDuag0Rw0moNGc9LYZ-6OmZKI_vjf6w-gK2wS</recordid><startdate>201101</startdate><enddate>201101</enddate><creator>Shui, Peng-Lang</creator><creator>Xu, Shu-Wen</creator><creator>Liu, Hong-Wei</creator><general>IEEE</general><general>The Institute of Electrical and Electronics Engineers, Inc. (IEEE)</general><scope>97E</scope><scope>RIA</scope><scope>RIE</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7SP</scope><scope>7TB</scope><scope>8FD</scope><scope>FR3</scope><scope>H8D</scope><scope>L7M</scope><scope>F28</scope></search><sort><creationdate>201101</creationdate><title>Range-Spread Target Detection using Consecutive HRRPs</title><author>Shui, Peng-Lang ; Xu, Shu-Wen ; Liu, Hong-Wei</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c324t-9002c7b599dc4e00ef100d846cba9eab49e9a54475694879f988c62aa8497bb33</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2011</creationdate><topic>Aircraft</topic><topic>Detectors</topic><topic>Fluctuations</topic><topic>Noise</topic><topic>Radar cross section</topic><topic>Scattering</topic><topic>Signatures</topic><topic>Similarity</topic><topic>Statistics</topic><topic>Studies</topic><topic>Target detection</topic><topic>Walking</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Shui, Peng-Lang</creatorcontrib><creatorcontrib>Xu, Shu-Wen</creatorcontrib><creatorcontrib>Liu, Hong-Wei</creatorcontrib><collection>IEEE All-Society Periodicals Package (ASPP) 2005-present</collection><collection>IEEE All-Society Periodicals Package (ASPP) Online</collection><collection>IEEE Xplore</collection><collection>CrossRef</collection><collection>Electronics & Communications Abstracts</collection><collection>Mechanical & Transportation Engineering Abstracts</collection><collection>Technology Research Database</collection><collection>Engineering Research Database</collection><collection>Aerospace Database</collection><collection>Advanced Technologies Database with Aerospace</collection><collection>ANTE: Abstracts in New Technology & Engineering</collection><jtitle>IEEE transactions on aerospace and electronic systems</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>Shui, Peng-Lang</au><au>Xu, Shu-Wen</au><au>Liu, Hong-Wei</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Range-Spread Target Detection using Consecutive HRRPs</atitle><jtitle>IEEE transactions on aerospace and electronic systems</jtitle><stitle>T-AES</stitle><date>2011-01</date><risdate>2011</risdate><volume>47</volume><issue>1</issue><spage>647</spage><epage>665</epage><pages>647-665</pages><issn>0018-9251</issn><eissn>1557-9603</eissn><coden>IEARAX</coden><abstract>In this paper, a heuristic detector is proposed to detect range-spread targets in white Gaussian noise using multiple consecutive high- resolution range profiles (HRRPs) received from a high-resolution radar (HRR). The detector consists of refiners of HRRPs and a cross-correlation integrator of refined HRRPs. Based on the fact that strong scattering cells are sparse in target HRRPs, nonlinear shrinkage maps are designed to refine received HRRPs before integration, by which most of the noise-only cells in received HRRPs are suppressed while strong scattering cells most probably relevant to target signature are preserved. Since the target's scattering geometry is almost unchanged except for range walking during integration, the refined target HRRPs from consecutive pulses are highly similar while refined noise-only HRRPs are dissimilar due to randomicity. The modified correlation matrix of multiple refined HRRPs is used to measure their similarity. The test statistic, a weighted integration of the entries of the modified correlation matrix, is constructed for target detection. The proposed detector does not depend on a strict target return model and can work in mild conditions. The real target data and simulated noise are used to evaluate the detector, and the experimental results show that it achieves better detection performance than some existing methods.</abstract><cop>New York</cop><pub>IEEE</pub><doi>10.1109/TAES.2011.5705697</doi><tpages>19</tpages></addata></record> |
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subjects | Aircraft Detectors Fluctuations Noise Radar cross section Scattering Signatures Similarity Statistics Studies Target detection Walking |
title | Range-Spread Target Detection using Consecutive HRRPs |
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