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- W4310882904 abstract "This paper solves a generalized version of the problem of multi-source model adaptation for semantic segmentation. Model adaptation is proposed as a new domain adaptation problem which requires access to a pre-trained model instead of data for the source domain. A general multi-source setting of model adaptation assumes strictly that each source domain shares a common label space with the target domain. As a relaxation, we allow the label space of each source domain to be a subset of that of the target domain and require the union of the source-domain label spaces to be equal to the target-domain label space. For the new setting named union-set multi-source model adaptation, we propose a method with a novel learning strategy named model-invariant feature learning, which takes full advantage of the diverse characteristics of the source-domain models, thereby improving the generalization in the target domain. We conduct extensive experiments in various adaptation settings to show the superiority of our method." @default.
- W4310882904 created "2022-12-20" @default.
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- W4310882904 date "2022-01-01" @default.
- W4310882904 modified "2023-10-15" @default.
- W4310882904 title "Union-Set Multi-source Model Adaptation for Semantic Segmentation" @default.
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- W4310882904 doi "https://doi.org/10.1007/978-3-031-19818-2_33" @default.
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