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Lecture Notes in Computer Science

Beteiligte Autor*innen der JOANNEUM RESEARCH:
Autor*innen:
Neuschmied, Helmut and Bailer, Werner
Abstract:
Many XR productions require reconstructions of landmarks such as buildings or public spaces. Shooting content on demand is often not feasible, thus tapping into audiovisual archives for images and videos as input for reconstruction is a promising way. However, if annotated at all, videos in (broadcast) archives are annotated on item level, so that it is not known which frames contain the landmark of interest. We propose an approach to mine frames containing relevant content in order to train a finegrained classifier that can then be applied to unlabeled data. To ensure the reproducibility of our results, we construct a weakly labelled video landmark dataset (WAVL) based on Google Landmarks v2. We show that our approach outperforms a state-of-the-art landmark recognition method in this weakly labeled input data setting on two large datasets.
Titel:
Lecture Notes in Computer Science
Herausgeber (Verlag):
Springer, Cham
Seiten:
161-174
ISBN
9783031533013

Publikationsreihe

Buchtitel
MultiMedia Modeling
Herausgeber(Verlag)
Springer, Cham
ISSN
16113349

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