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Unsupervised Domain Adaptation: Recent Advances and Future Perspectives

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Unsupervised Domain Adaptation: Recent Advances and Future Perspectives - Li, Jingjing, and Zhu, Lei, and Du, Zhekai
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Unsupervised domain adaptation (UDA) is a challenging problem in machine learning where the model is trained on a source domain with labeled data and tested on a target domain with unlabeled data. In recent years, UDA has received significant attention from the research community due to its applicability in various real-world scenarios. This book provides a comprehensive review of state-of-the-art UDA methods and explores new variants of UDA that have the potential to advance the field. The book begins with a clear ...

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Unsupervised Domain Adaptation: Recent Advances and Future Perspectives 2024, Springer Nature, Singapore

ISBN-13: 9789819710249

Hardcover