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04-02-2024 | Original Article

Unsupervised domain adaptation via feature transfer learning based on elastic embedding

Authors: Liran Yang, Bin Lu, Qinghua Zhou, Pan Su

Published in: International Journal of Machine Learning and Cybernetics | Issue 8/2024

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Abstract

The article introduces EEFTL, a novel unsupervised domain adaptation method that addresses the limitations of existing approaches by incorporating elastic embedding. EEFTL integrates label fitness, regression residue, joint distribution adaptation, and manifold consistency to learn domain-invariant feature representations. The method is particularly effective in handling nonlinear data and minimizing distribution shifts between domains. Extensive experiments on benchmark datasets demonstrate the superior performance of EEFTL compared to state-of-the-art methods.

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Metadata
Title
Unsupervised domain adaptation via feature transfer learning based on elastic embedding
Authors
Liran Yang
Bin Lu
Qinghua Zhou
Pan Su
Publication date
04-02-2024
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Machine Learning and Cybernetics / Issue 8/2024
Print ISSN: 1868-8071
Electronic ISSN: 1868-808X
DOI
https://doi.org/10.1007/s13042-023-02082-3