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  Propagating Distributions on a Hypergraph by Dual Information Regularization

Tsuda, K. (2005). Propagating Distributions on a Hypergraph by Dual Information Regularization. In ICML Bonn (pp. 921).

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Tsuda, K1, Autor           
De Raedt S. Wrobel, L., Herausgeber
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1Department Empirical Inference, Max Planck Institute for Biological Cybernetics, Max Planck Society, ou_1497795              

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 Zusammenfassung: In the information regularization framework by Corduneanu and Jaakkola (2005), the distributions of labels are propagated on a hypergraph for semi-supervised learning. The learning is efficiently done by a Blahut-Arimoto-like two step algorithm, but, unfortunately, one of the steps cannot be solved in a closed form. In this paper, we propose a dual version of information regularization, which is considered as more natural in terms of information geometry. Our learning algorithm has two steps, each of which can be solved in a closed form. Also it can be naturally applied to exponential family distributions such as Gaussians. In experiments, our algorithm is applied to protein classification based on a metabolic network and known functional categories.

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 Datum: 2005
 Publikationsstatus: Erschienen
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 Identifikatoren: BibTex Citekey: 3468
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Titel: ICML Bonn
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Titel: ICML Bonn
Genre der Quelle: Konferenzband
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Seiten: - Band / Heft: - Artikelnummer: - Start- / Endseite: 921 Identifikator: -