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AuthorDürr, Andrédc.contributor.author
AuthorSchneele, Benediktdc.contributor.author
AuthorSchwarz, Dominikdc.contributor.author
AuthorWaldschmidt, Christiandc.contributor.author
Date of accession2020-11-26T09:14:07Zdc.date.accessioned
Available in OPARU since2020-11-26T09:14:07Zdc.date.available
Date of first publication2020-09-21dc.date.issued
AbstractIn order to improve the resolution of imaging radars, electrically large arrays and a high absolute modulation bandwidth are needed. For radar systems with simultaneously high range resolution and very large aperture, the difference in path length at the receiving antennas is a multiple of the range resolution of the radar, in particular for off-boresight angles of the incident wave. Therefore, the radar response of a target measured at the different receiving antennas is distributed over a large number of range cells. This behavior depends on the unknown incident angle of the wave and is thus denoted as range-angle coupling. Furthermore, the far-field condition is no longer fulfilled in short-range applications. Applying conventional signal processing and radar calibration techniques leads to a significant reduction of the resolution capabilities of the array. In this article, the key aspects of radar imaging are discussed when radars with both a large aperture size and a high absolute bandwidth are employed in short-range applications. Based on an initial mathematical formulation of the physical effects, a correction method and an efficient signal processing chain are proposed, which compensate for errors that occur with conventional beamforming techniques. It is shown by measurements that with an appropriate error correction an improvement of the angular resolution up to a factor of 2.5 is achieved, resulting in an angular resolution below 0.4° with an overall aperture size of nearly 200 \lambda.dc.description.abstract
Languageen_USdc.language.iso
PublisherUniversität Ulmdc.publisher
LicenseCC BY-NC-ND 4.0 Internationaldc.rights
Link to license texthttps://creativecommons.org/licenses/by-nc-nd/4.0/dc.rights.uri
Keyworddirection-of-arrival (DoA) estimationdc.subject
Keywordfar-field conditiondc.subject
Keywordimaging radardc.subject
Keywordlarge arraydc.subject
Keywordmillimeter-wave radardc.subject
Keywordshort-range radardc.subject
Dewey Decimal GroupDDC 620 / Engineering & allied operationsdc.subject.ddc
LCSHCalibrationdc.subject.lcsh
LCSHImaging systemsdc.subject.lcsh
LCSHMIMO systemsdc.subject.lcsh
TitleRange-angle coupling and near-field effects of very large arrays in mm-wave imaging radarsdc.title
Resource typeWissenschaftlicher Artikeldc.type
VersionpublishedVersiondc.description.version
DOIhttp://dx.doi.org/10.18725/OPARU-33862dc.identifier.doi
URNhttp://nbn-resolving.de/urn:nbn:de:bsz:289-oparu-33924-0dc.identifier.urn
GNDEichendc.subject.gnd
GNDMIMOdc.subject.gnd
GNDRadardc.subject.gnd
FacultyFakultät für Ingenieurwissenschaften, Informatik und Psychologieuulm.affiliationGeneral
InstitutionInstitut für Mikrowellentechnikuulm.affiliationSpecific
Peer reviewjauulm.peerReview
DCMI TypeTextuulm.typeDCMI
CategoryPublikationenuulm.category
DOI of original publication10.1109/TMTT.2020.3022938dc.relation1.doi
Source - Title of sourceIEEE Transactions on Microwave Theory and Techniquessource.title
Source - Place of publicationInstitute of Electrical and Electronics Engineerssource.publisher
Source - Volume2020source.volume
Source - Year2020source.year
Source - ISSN0018-9480source.identifier.issn
Source - eISSN1557-9670source.identifier.eissn
Open AccessBronzeuulm.OA
WoS000667248100023uulm.identifier.wos
Bibliographyuulmuulm.bibliographie
DFG project uulmbinoMIMO / Hochauflösende binokulare MIMO-Millimeterwellen-Radare (binoMIMO) / DFG / 317632307uulm.projectDFG


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