<div class="csl-bib-body">
<div class="csl-entry">Bucco, T. J., Koliander, G., Kreidl, B., & Hlawatsch, F. (2024). Online Learning of Model Parameters and Object Classes in Extended Multiobject Tracking. In <i>2024 27th International Conference on Information Fusion (FUSION)</i>. 2024 27th International Conference on Information Fusion (FUSION), Venice, Italy. https://doi.org/10.23919/FUSION59988.2024.10706330</div>
</div>
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/212285
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dc.description.abstract
Most multiobject tracking methods rely on a statistical model that involves unknown parameters. Here, we propose a Bayesian method for class-aided online learning of model parameters within extended multiobject tracking. We address the case where the extended objects belong to unknown object classes defined by unknown values of the model parameters. The proposed method learns the number of object classes, the class parameters, and the objects' class affiliations simultaneously with the tracking process, and the learned class and parameter information is leveraged for improved tracking. This is enabled by a parameter-dependent state-space model for extended multiobject tracking that incorporates a Dirichlet process prior, and by a related Gibbs sampler for online learning. Our simulation results demonstrate substantial gains in tracking performance due to class-aided online parameter learning.
en
dc.description.sponsorship
FWF - Österr. Wissenschaftsfonds
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dc.language.iso
en
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dc.rights.uri
http://creativecommons.org/licenses/by/4.0/
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dc.subject
Bayesian nonparametrics
en
dc.subject
clustering
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dc.subject
Dirichlet process
en
dc.subject
extended multiobject tracking
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dc.subject
extended multitarget tracking
en
dc.subject
Gibbs sampler
en
dc.subject
tracking and classification
en
dc.title
Online Learning of Model Parameters and Object Classes in Extended Multiobject Tracking
en
dc.type
Inproceedings
en
dc.type
Konferenzbeitrag
de
dc.rights.license
Creative Commons Namensnennung 4.0 International
de
dc.rights.license
Creative Commons Attribution 4.0 International
en
dc.contributor.affiliation
Austrian Academy of Sciences, Austria
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dc.contributor.affiliation
Optronia GmbH, Austria
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dc.relation.isbn
978-1-7377497-6-9
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dc.relation.doi
10.23919/FUSION59988.2024
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dc.relation.grantno
P 32055-N31
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dc.type.category
Full-Paper Contribution
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tuw.booktitle
2024 27th International Conference on Information Fusion (FUSION)
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tuw.peerreviewed
true
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tuw.project.title
Selbstlokalisierung und Inferenz dynamischer Umgebungen
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tuw.researchTopic.id
I7
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tuw.researchTopic.name
Telecommunication
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tuw.researchTopic.value
100
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tuw.publication.orgunit
E389-03 - Forschungsbereich Signal Processing
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tuw.publisher.doi
10.23919/FUSION59988.2024.10706330
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dc.identifier.libraryid
AC17460300
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dc.description.numberOfPages
9
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tuw.author.orcid
0000-0001-9010-9285
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dc.rights.identifier
CC BY 4.0
de
dc.rights.identifier
CC BY 4.0
en
tuw.event.name
2024 27th International Conference on Information Fusion (FUSION)
en
tuw.event.startdate
08-07-2024
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tuw.event.enddate
11-07-2024
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tuw.event.online
On Site
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tuw.event.type
Event for scientific audience
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tuw.event.place
Venice
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tuw.event.country
IT
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tuw.event.institution
ISIF
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tuw.event.presenter
Bucco, Thomas John
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wb.sciencebranch
Elektrotechnik, Elektronik, Informationstechnik
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wb.sciencebranch.oefos
2020
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wb.sciencebranch.value
100
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item.languageiso639-1
en
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item.openairetype
conference paper
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item.openairecristype
http://purl.org/coar/resource_type/c_5794
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item.grantfulltext
mixedopen
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item.cerifentitytype
Publications
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item.fulltext
with Fulltext
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item.mimetype
application/pdf
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item.openaccessfulltext
Open Access
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crisitem.author.dept
E389-03 - Forschungsbereich Signal Processing
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crisitem.author.dept
E389 - Institute of Telecommunications
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crisitem.author.dept
E389 - Institute of Telecommunications
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crisitem.author.dept
E389-03 - Forschungsbereich Signal Processing
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crisitem.author.orcid
0000-0001-9010-9285
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crisitem.author.parentorg
E389 - Institute of Telecommunications
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crisitem.author.parentorg
E350 - Fakultät für Elektrotechnik und Informationstechnik
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crisitem.author.parentorg
E350 - Fakultät für Elektrotechnik und Informationstechnik