In this work, we study the problem of generalizing a prediction (classification or regression) model trained on a set of source domains to an unseen target domain, where the source and target domains are different but related, i.e, the domain generalization problem. The challenge in this problem lies in the domain difference, which could degrade the generalization ability of the prediction model. To tackle this challenge, we propose to learn a neural network representation function to align a joint distribution and a product distribution in the representation space, and show that such joint-product distribution alignment conveniently leads to the alignment of multiple domains. In particular, we align the joint distribution and the product distribution under the L2\documentclass[12pt]{minimal}
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\begin{document}$$L^{2}$$\end{document}-distance, and show that this distance can be analytically estimated by exploiting its variational characterization and a linear variational function. This allows us to comfortably align the two distributions by minimizing the estimated distance with respect to the network representation function. Our experiments on synthetic and real-world datasets for classification and regression demonstrate the effectiveness of the proposed solution. For example, it achieves the best average classification accuracy of 82.26% on the text dataset Amazon Reviews, and the best average regression error of 0.114 on the WiFi dataset UJIIndoorLoc.
机构:
Ningbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Chinese Acad Sci, Ningbo Inst Ind Technol, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Zhu, Yi
Zhuang, Jiayan
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Chinese Acad Sci, Ningbo Inst Ind Technol, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Zhuang, Jiayan
Ye, Sichao
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Chinese Acad Sci, Ningbo Inst Ind Technol, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Ye, Sichao
Xu, Ningyuan
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Chinese Acad Sci, Ningbo Inst Ind Technol, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Xu, Ningyuan
Xiao, Jiangjian
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Chinese Acad Sci, Ningbo Inst Ind Technol, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Xiao, Jiangjian
Gu, Jianfeng
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Ningbo Entry Exit Inspect & Quarantine Bur, Ctr Tech, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Gu, Jianfeng
Fang, Yiwu
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Ningbo Entry Exit Inspect & Quarantine Bur, Ctr Tech, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Fang, Yiwu
Peng, Chengbin
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Ningbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Ningbo Univ, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
Peng, Chengbin
Zhu, Ying
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Ningbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R ChinaNingbo Univ, Fac Elect Engn & Comp Sci, Ningbo, Peoples R China
机构:
Nankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China
Nankai Univ, LPMC, Tianjin 300171, Peoples R ChinaNankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China
Chu, Jun-Zheng
Pan, Bin
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Nankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China
Nankai Univ, LPMC, Tianjin 300171, Peoples R ChinaNankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China
Pan, Bin
Xu, Xia
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Nankai Univ, Coll Comp Sci, Tianjin 300350, Peoples R ChinaNankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China
Xu, Xia
Shi, Tian-Yang
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Bytedance Shenzhen, Shenzhen 457001, Peoples R ChinaNankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China
Shi, Tian-Yang
Shi, Zhen-Wei
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机构:
Beihang Univ, Sch Astronaut, Beijing 100191, Peoples R ChinaNankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China
Shi, Zhen-Wei
Li, Tao
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Nankai Univ, Coll Comp Sci, Tianjin 300350, Peoples R ChinaNankai Univ, Sch Stat & Data Sci, KLMDASR, LEBPS, Tianjin 300171, Peoples R China