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AuthorDürr, Andrédc.contributor.author
AuthorKramer, Raphaeldc.contributor.author
AuthorSchwarz, Dominikdc.contributor.author
AuthorGeiger, Martindc.contributor.author
AuthorWaldschmidt, Christiandc.contributor.author
Date of accession2020-05-11T08:03:37Zdc.date.accessioned
Available in OPARU since2020-05-11T08:03:37Zdc.date.available
Date of first publication2020-04-01dc.date.issued
AbstractImaging radars are usually realized fully coherently. However, the distribution of one common radio frequency signal to all transmit and receive paths requires a high degree of hardware complexity. In order to reduce the hardware effort significantly, a novel phase synchronization method for incoherent and quasi-coherent frequency-modulated continuous-wave (FMCW) imaging radars with individual signal synthesis per channel is presented. The quasi-coherent setup uses one common oscillator for all frequency synthesizers. It is shown that in the case of the quasi-coherent system, only a phase difference between the calibration and the measurement has to be corrected to achieve coherence. In comparison, an incoherent system causes additional time, frequency, and FMCW ramp slope errors due to the different behavior of the oscillators. In order to achieve phase coherence and to correct the error sources, a calibration-based method using a defined signal path as part of the radar system is proposed. The imaging radar used for verification of the theory consists of individual single-channel radar monolithic microwave integrated circuits (MMICs) at 160 GHz; each MMIC fed by an individual frequency synthesizer. As shown by measurements, it is possible to achieve phase coherence for both system approaches and to perform angle estimation.dc.description.abstract
Languageen_USdc.language.iso
PublisherUniversität Ulmdc.publisher
LicenseCC BY 4.0 Internationaldc.rights
Link to license texthttps://creativecommons.org/licenses/by/4.0/dc.rights.uri
Keyworddirection-of-arrival (DoA) estimationdc.subject
Keywordphase noisedc.subject
Dewey Decimal GroupDDC 620 / Engineering & allied operationsdc.subject.ddc
LCSHCoherent statesdc.subject.lcsh
LCSHImaging systemsdc.subject.lcsh
LCSHMillimeter wavesdc.subject.lcsh
LCSHMIMO systemsdc.subject.lcsh
LCSHMicrowave integrated circuitsdc.subject.lcsh
LCSHSynchronizationdc.subject.lcsh
TitleCalibration-based phase coherence of incoherent and quasi-coherent 160-GHz MIMO radarsdc.title
Resource typeWissenschaftlicher Artikeldc.type
VersionpublishedVersiondc.description.version
DOIhttp://dx.doi.org/10.18725/OPARU-30897dc.identifier.doi
URNhttp://nbn-resolving.de/urn:nbn:de:bsz:289-oparu-30958-5dc.identifier.urn
GNDKohärenzdc.subject.gnd
GNDBildgebendes Verfahrendc.subject.gnd
GNDMillimeterwelledc.subject.gnd
GNDMIMOdc.subject.gnd
GNDMMICdc.subject.gnd
GNDSynchronisierungdc.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.2020.2971187dc.relation1.doi
Source - Title of sourceIEEE Transactions on Microwave Theory and Techniquessource.title
Source - Place of publicationInstitute of Electrical and Electronics Engineerssource.publisher
Source - Volume68source.volume
Source - Issue7source.issue
Source - Year2020source.year
Source - From page2768source.fromPage
Source - To page2778source.toPage
Source - ISSN0018-9480source.identifier.issn
Source - eISSN1557-9670source.identifier.eissn
Open AccessBronzeuulm.OA
WoS000544916000029uulm.identifier.wos
Bibliographyuulmuulm.bibliographie
DFG project uulmbinoMIMO / Hochauflösende binokulare MIMO-Millimeterwellen-Radare (binoMIMO) / DFG / 317632307uulm.projectDFG


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