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dc.contributor.authorAraslanov, Nikita
dc.contributor.authorRoth, Stefan
dc.date.accessioned2023-08-04T10:15:29Z
dc.date.available2021-12-22T11:09:29Z
dc.date.available2022-01-19T09:35:56Z
dc.date.available2023-08-04T10:15:29Z
dc.date.issued2021-06
dc.identifier.urihttps://tudatalib.ulb.tu-darmstadt.de/handle/tudatalib/3366.3
dc.descriptionWe propose an approach to domain adaptation for semantic segmentation that is both practical and highly accurate. In contrast to previous work, we abandon the use of computationally involved adversarial objectives, network ensembles and style transfer. Instead, we employ standard data augmentation techniques − photometric noise, flipping and scaling − and ensure consistency of the semantic predictions across these image transformations. We develop this principle in a lightweight self-supervised framework trained on co-evolving pseudo labels without the need for cumbersome extra training rounds. Simple in training from a practitioner's standpoint, our approach is remarkably effective. We achieve significant improvements of the state-of-the-art segmentation accuracy after adaptation, consistent both across different choices of the backbone architecture and adaptation scenarios.de_DE
dc.language.isoende_DE
dc.relationIsDescribedBy;arXiv;2105.00097
dc.rightsApache License 2.0
dc.rights.urihttps://www.apache.org/licenses/LICENSE-2.0
dc.subjectunsupervised domain adaptationde_DE
dc.subjectsemantic segmentationde_DE
dc.subject.classification409-05 Interaktive und intelligente Systeme, Bild- und Sprachverarbeitung, Computergraphik und Visualisierungde_DE
dc.subject.ddc004
dc.titleSelf-supervised Augmentation Consistency for Adapting Semantic Segmentationde_DE
dc.typeSoftwarede_DE
tud.projectHMWK | III L6-519/03/05.001-(0016) | emergenCity - TP Rothde_DE
tud.unitTUDa


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