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A General Domain Specific Feature Transfer Framework for Hybrid Domain Adaptation

机译:用于混合域自适应的通用域特定功能转移框架

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摘要

Heterogeneous domain adaptation needs supplementary information to link up different domains. However, such supplementary information may not always be available in real cases. In this paper, a new problem setting called hybrid domain adaptation is investigated. It is a special case of heterogeneous domain adaptation, in which different domains share some common features, but also have their own domain specific features. We leverage upon common features instead of supplementary information to achieve effective adaptation. We propose a general domain specific feature transfer framework, which can link up different domains using common features and simultaneously reduce domain divergences. Specifically, we learn the translations between common features and domain specific features. Then, we cross-use the learned translations to transfer the domain specific features of one domain to another domain. Finally, we compose a homogeneous space in which the domain divergences are minimized. We instantiate the general framework to a linear case and a nonlinear case. Extensive experiments verify the effectiveness of the two cases.
机译:异构域适应需要补充信息来链接不同的域。但是,这种补充信息在实际情况下可能并不总是可用。在本文中,研究了一种称为混合域自适应的新问题设置。这是异构域适配的一种特例,其中不同的域共享一些共同的特征,但也具有自己的特定于域的特征。我们利用通用功能而不是补充信息来实现有效的适应。我们提出了一个通用的特定于域的特征转移框架,该框架可以使用通用特征链接不同的域,同时减少域差异。具体来说,我们学习通用功能和领域特定功能之间的转换。然后,我们交叉使用学习到的翻译,将一个域的特定于域的特征转移到另一域。最后,我们组成一个均匀的空间,在该空间中,域差异最小化。我们将一般框架实例化为线性情况和非线性情况。大量实验验证了这两种情况的有效性。

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