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  Bayesian online multi-task learning using regularization networks

Pillonetto, G., Dinuzzo, F., & De Nicolao, G. (2008). Bayesian online multi-task learning using regularization networks. In 2008 American Control Conference (pp. 4517-4522). Piscataway, NJ, USA: IEEE Service Center.

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資料種別: 会議論文

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 作成者:
Pillonetto, G, 著者
Dinuzzo, F1, 著者           
De Nicolao, G, 著者
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1External Organizations, ou_persistent22              

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 要旨: Recently, standard single-task kernel methods have been extended to the case of multi-task learning under the framework of regularization. Experimental results have shown that such an approach can perform much better than single-task techniques, especially when few examples per task are available. However, a possible drawback may be computational complexity. For instance, when using regularization networks, complexity scales as the cube of the overall number of data associated with all the tasks. In this paper, an efficient computational scheme is derived for a widely applied class of multi-task kernels. More precisely, a quadratic loss is assumed and the multi-task kernel is the sum of a common term and a task-specific one. The proposed algorithm performs online learning recursively updating the estimates as new data become available. The learning problem is formulated in a Bayesian setting. The optimal estimates are obtained by solving a sequence of subproblems which involve projection of random variables onto suitable subspaces. The algorithm is tested on a simulated data set.

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 日付: 2008-06
 出版の状態: 出版
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 識別子(DOI, ISBNなど): DOI: 10.1109/ACC.2008.4587207
BibTex参照ID: PillonettoDD2008
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イベント名: 2008 American Control Conference (ACC 2008)
開催地: Seattle, WA, USA
開始日・終了日: 2008-06-11 - 2008-06-13

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出版物名: 2008 American Control Conference
種別: 会議論文集
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出版社, 出版地: Piscataway, NJ, USA : IEEE Service Center
ページ: - 巻号: - 通巻号: - 開始・終了ページ: 4517 - 4522 識別子(ISBN, ISSN, DOIなど): ISBN: 978-1-424-42079-7