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Adaptation Regularization: A General Framework for Transfer Learning

delete2014-05-01
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龙明盛 封面图
龙明盛 (Mingsheng Long) *
王建民 封面图
王建民 (Jianmin Wang)
丁贵广 封面图
丁贵广 (Guiguang Ding)
S
Sinno Jialin Pan
P
Philip S. Yu
DOI:10.1109/TKDE.2013.111delete
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摘要

摘要

En 中文
Domain transfer learning, which learns a target classifier using labeled data from a different distribution, has shown promising value in knowledge discovery yet still been a challenging problem. Most previous works designed adaptive classifiers by exploring two learning strategies independently: distribution adaptation and label propagation. In this paper, we propose a novel transfer learning framework, referred to as Adaptation Regularization based Transfer Learning (ARTL), to model them in a unified way based on the structural risk minimization principle and the regularization theory. Specifically, ARTL learns the adaptive classifier by simultaneously optimizing the structural risk functional, the joint distribution matching between domains, and the manifold consistency underlying marginal distribution. Based on the framework, we propose two novel methods using Regularized Least Squares (RLS) and Support Vector Machines (SVMs), respectively, and use the Representer theorem in reproducing kernel Hilbert space to derive corresponding solutions. Comprehensive experiments verify that ARTL can significantly outperform state-of-the-art learning methods on several public text and image datasets.
Keyword:
Transfer learning
adaptation regularization
distribution adaptation
manifold regularization
generalization error
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IEEE Transactions on Knowledge and Data Engineering 封面图
IEEE Transactions on Knowledge and Data Engineering
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tsinghua university
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a*star - institute for infocomm research (i2r)
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agency for science technology & research (a*star)
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