Foundations of Rule Learning
Fürnkranz, Johannes, Gamberger, Dragan, Lavrac, Nada
Produktnummer:
1835401903c2144fad9e4c3248d48227f1
Autor: | Fürnkranz, Johannes Gamberger, Dragan Lavrac, Nada |
---|---|
Themengebiete: | Association rule learning Classification rule induction Propositional rule learning Relational data mining Subgroup discovery |
Veröffentlichungsdatum: | 14.12.2014 |
EAN: | 9783642430466 |
Sprache: | Englisch |
Seitenzahl: | 334 |
Produktart: | Kartoniert / Broschiert |
Verlag: | Springer Berlin |
Produktinformationen "Foundations of Rule Learning"
Rules – the clearest, most explored and best understood form of knowledge representation – are particularly important for data mining, as they offer the best tradeoff between human and machine understandability. This book presents the fundamentals of rule learning as investigated in classical machine learning and modern data mining. It introduces a feature-based view, as a unifying framework for propositional and relational rule learning, thus bridging the gap between attribute-value learning and inductive logic programming, and providing complete coverage of most important elements of rule learning.The book can be used as a textbook for teaching machine learning, as well as a comprehensive reference to research in the field of inductive rule learning. As such, it targets students, researchers and developers of rule learning algorithms, presenting the fundamental rule learning concepts in sufficient breadth and depth to enable the reader to understand, develop and apply rule learning techniques to real-world data.

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