Advances in Supervised and Unsupervised Learning of Bayesian Networks: Application to Population Genetics - Guzmán Santafé - 書籍 - LAP LAMBERT Academic Publishing - 9783838333441 - 2010年8月2日
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Advances in Supervised and Unsupervised Learning of Bayesian Networks: Application to Population Genetics

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発送予定日 年10月26日 - 年11月5日
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Supervised classification and data clustering are two fundamental disciplines of data mining and machine learning where probabilistic graphical models, and particularly Bayesian networks, have become very popular paradigms. This book aims to contribute to the state of the art of both supervised classification and data clustering disciplines by providing new algorithms to learn Bayesian networks. On the one hand, the contributions related to supervised classification are focused on the discriminative learning of Bayesian network classifiers. Part of this book tries to motivate the use of this discriminative approach and presents new proposals to learn both structure and parameters of Bayesian network classifiers from a discriminative point of view. On the other hand, the part related to data clustering introduces new methods to deal with Bayesian model averaging for clustering. Additionally, the proposed methods are evaluated in diferent sinthetic and real datasets including a real problem taken from the field of population genetics.

メディア 書籍     Paperback Book   (ソフトカバーで背表紙を接着した本)
リリース済み 2010年8月2日
ISBN13 9783838333441
出版社 LAP LAMBERT Academic Publishing
ページ数 224
寸法 152 × 229 × 13 mm   ·   352 g
言語 ドイツ語