Reasoning with Probabilistic and Deterministic Graphical Models
eBook - PDF

Reasoning with Probabilistic and Deterministic Graphical Models

Exact Algorithms, Second Edition

  1. English
  2. PDF
  3. Available on iOS & Android
eBook - PDF

Reasoning with Probabilistic and Deterministic Graphical Models

Exact Algorithms, Second Edition

About this book

Graphical models (e.g., Bayesian and constraint networks, influence diagrams, and Markov decision processes) have become a central paradigm for knowledge representation and reasoning in both artificial intelligence and computer science in general. These models are used to perform many reasoning tasks, such as scheduling, planning and learning, diagnosis and prediction, design, hardware and software verification, and bioinformatics. These problems can be stated as the formal tasks of constraint satisfaction and satisfiability, combinatorial optimization, and probabilistic inference. It is well known that the tasks are computationally hard, but research during the past three decades has yielded a variety of principles and techniques that significantly advanced the state of the art.

This book provides comprehensive coverage of the primary exact algorithms for reasoning with such models. The main feature exploited by the algorithms is the model's graph. We present inference-based, message-passing schemes (e.g., variable-elimination) and search-based, conditioning schemes (e.g., cycle-cutset conditioning and AND/OR search). Each class possesses distinguished characteristics and in particular has different time vs. space behavior. We emphasize the dependence of both schemes on few graph parameters such as the treewidth, cycle-cutset, and (the pseudo-tree) height. The new edition includes the notion of influence diagrams, which focus on sequential decision making under uncertainty. We believe the principles outlined in the book would serve well in moving forward to approximation and anytime-based schemes. The target audience of this book is researchers and students in the artificial intelligence and machine learning area, and beyond.

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Yes, you can access Reasoning with Probabilistic and Deterministic Graphical Models by Rina Dechter,Rina Sreedharan in PDF and/or ePUB format, as well as other popular books in Computer Science & Artificial Intelligence (AI) & Semantics. We have over one million books available in our catalogue for you to explore.

Table of contents

  1. Cover
  2. Copyright page
  3. Title page
  4. Contents
  5. Preface
  6. Introduction
  7. Defining Graphical Models
  8. Inference: Bucket Elimination for Deterministic Networks
  9. Inference: Bucket Elimination for Probabilistic Networks
  10. Tree-Clustering Schemes
  11. AND/OR Search Spaces for Graphical Models
  12. Combining Search and Inference: Trading Space for Time
  13. Conclusion
  14. Bibliography
  15. Author's Biography