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Probabilistic Reasoning In Intelligent Systems: Networks Of Plausible Inference (morgan Kaufmann Series In Representation And Reasoning) (paperback)
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ISBN 9781558604797
REGISTERED: 06/27/18
UPDATED: 02/04/26
Probabilistic Reasoning In Intelligent Systems: Networks Of Plausible Inference (morgan Kaufmann Series In Representation And Reasoning) (paperback)

Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference (Morgan Kaufmann Series in Representation and Reasoning) (Paperback) Binding: Paperback Publisher: Elsevier Science & Technology Publish Date: 1997/01/31 Weight: 2.00 ISBN-13: 9781558604797 ISBN-10: 1558604790


Specifications
  • Probabilistic Reasoning In Intelligent Systems: Networks Of Plausible Inference (morgan Kaufmann Series In Representation And Reasoning) (paperback) available on July 13 2016 from Newegg for 55.36
  • ISBN bar code 9781558604797 ξ2 registered July 13 2016
  • ISBN bar code 9781558604797 ξ1 registered September 18 2015
  • Product category is Book

  • # 9SIA9JS4KZ0551

Probabilistic Reasoning in Intelligent Systems is a complete and accessible account of the theoretical foundations and computational methods that underlie plausible reasoning under uncertainty. The author provides a coherent explication of probability as a language for reasoning with partial belief and offers a unifying perspective on other AI approaches to uncertainty, such as the Dempster-Shafer formalism, truth maintenance systems, and nonmonotonic logic. The author distinguishes syntactic and semantic approaches to uncertainty--and offers techniques, based on belief networks, that provide a mechanism for making semantics-based systems operational. Specifically, network-propagation techniques serve as a mechanism for combining the theoretical coherence of probability theory with modern demands of reasoning-systems technology: modular declarative inputs, conceptually meaningful inferences, and parallel distributed computation. Application areas include diagnosis, forecasting, image interpretation, multi-sensor fusion, decision support systems, plan recognition, planning, speech recognition--in short, almost every task requiring that conclusions be drawn from uncertain clues and incomplete information. Probabilistic Reasoning in Intelligent Systems will be of special interest to scholars and researchers in AI, decision theory, statistics, logic, philosophy, cognitive psychology, and the management sciences. Professionals in the areas of knowledge-based systems, operations research, engineering, and statistics will find theoretical and computational tools of immediate practical use. The book can also be used as an excellent text for graduate-level courses in AI, operations research, or applied probability.


References
    ^ (1988). Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference (revised Apr 2016)
    ^ Probabilistic Reasoning In Intelligent Systems: Networks Of Plausible Inference (morgan Kaufmann Series In Representation And Reasoning) (paperback), Elsevier Science & Technology. Newegg. (revised Jul 2016)

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