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Document type:
Konferenzbeitrag
Author(s):
Yeh, Y.-R.; Huang, C.-H.; wangyc
Title:
Heterogeneous Domain Adaptation and Classification by Exploiting the Correlation Subspace
Abstract:
We present a novel domain adaptation approach for solving cross-domain pattern recognition problems, i.e., the data or features to be processed and recognized are collected from different domains of interest. Inspired by canonical correlation analysis (CCA), we utilize the derived correlation subspace as a joint representation for associating data across different domains, and we advance reduced kernel techniques for kernel CCA (KCCA) if nonlinear correlation subspace are desirable. Such techniq...     »
Keywords:
BEFORECAMP,TIP
Year:
2014
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