Probabilistic Graphical Models
Sucar, Luis Enrique
Produktnummer:
18f7db28f3f65c40efaf5683b56123b09d
Autor: | Sucar, Luis Enrique |
---|---|
Themengebiete: | Bayesian Classifiers Bayesian Networks Decision Networks Hidden Markov Models Influence Diagrams Learning Graphical Models Markov Decision Processes Markov Random Fields Probabilistic Graphical Models Probabilistic Inference |
Veröffentlichungsdatum: | 09.10.2016 |
EAN: | 9781447170549 |
Sprache: | Englisch |
Seitenzahl: | 253 |
Produktart: | Kartoniert / Broschiert |
Verlag: | Springer London |
Untertitel: | Principles and Applications |
Produktinformationen "Probabilistic Graphical Models"
This accessible text/reference provides a general introduction to probabilistic graphical models (PGMs) from an engineering perspective. The book covers the fundamentals for each of the main classes of PGMs, including representation, inference and learning principles, and reviews real-world applications for each type of model. These applications are drawn from a broad range of disciplines, highlighting the many uses of Bayesian classifiers, hidden Markov models, Bayesian networks, dynamic and temporal Bayesian networks, Markov random fields, influence diagrams, and Markov decision processes. Features: presents a unified framework encompassing all of the main classes of PGMs; describes the practical application of the different techniques; examines the latest developments in the field, covering multidimensional Bayesian classifiers, relational graphical models and causal models; provides exercises, suggestions for further reading, and ideas for research or programming projects at the end of each chapter.

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