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Logical Foundations of Artificial Intelligence [Hardcover]

Michael R. Genesereth (Author), Nils J. Nilsson (Author)


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Book Description

July 15, 1987

Intended both as a text for advanced undergraduates and graduate students, and as a key reference work for AI researchers and developers, Logical Foundations of Artificial Intelligence is a lucid, rigorous, and comprehensive account of the fundamentals of artificial intelligence from the standpoint of logic.


The first section of the book introduces the logicist approach to AI--discussing the representation of declarative knowledge and featuring an introduction to the process of conceptualization, the syntax and semantics of predicate calculus, and the basics of other declarative representations such as frames and semantic nets. This section also provides a simple but powerful inference procedure, resolution, and shows how it can be used in a reasoning system.


The next several chapters discuss nonmonotonic reasoning, induction, and reasoning under uncertainty, broadening the logical approach to deal with the inadequacies of strict logical deduction. The third section introduces modal operators that facilitate representing and reasoning about knowledge. This section also develops the process of writing predicate calculus sentences to the metalevel--to permit sentences about sentences and about reasoning processes. The final three chapters discuss the representation of knowledge about states and actions, planning, and intelligent system architecture.


End-of-chapter bibliographic and historical comments provide background and point to other works of interest and research. Each chapter also contains numerous student exercises (with solutions provided in an appendix) to reinforce concepts and challenge the learner. A bibliography and index complete this comprehensive work.



Editorial Reviews

From the Back Cover

Intended both as a text for advanced undergraduates and graduate students, and as a key reference work for AI researchers and developers, Logical Foundations of Artificial Intelligence is a lucid, rigorous, and comprehensive account of the fundamentals of artificial intelligence from the standpoint of logic.


The first section of the book introduces the logicist approach to AI--discussing the representation of declarative knowledge and featuring an introduction to the process of conceptualization, the syntax and semantics of predicate calculus, and the basics of other declarative representations such as frames and semantic nets. This section also provides a simple but powerful inference procedure, resolution, and shows how it can be used in a reasoning system.


The next several chapters discuss nonmonotonic reasoning, induction, and reasoning under uncertainty, broadening the logical approach to deal with the inadequacies of strict logical deduction. The third section introduces modal operators that facilitate representing and reasoning about knowledge. This section also develops the process of writing predicate calculus sentences to the metalevel--to permit sentences about sentences and about reasoning processes. The final three chapters discuss the representation of knowledge about states and actions, planning, and intelligent system architecture.


End-of-chapter bibliographic and historical comments provide background and point to other works of interest and research. Each chapter also contains numerous student exercises (with solutions provided in an appendix) to reinforce concepts and challenge the learner. A bibliography and index complete this comprehensive work.

About the Author

Nils J. Nilsson's long and rich research career has contributed much to AI. He has written many books, including the classic Principles of Artificial Intelligence. Dr. Nilsson is Kumagai Professor of Engineering, Emeritus, at Stanford University. He has served on the editorial boards of Artificial Intelligence and Machine Learning and as an Area Editor for the Journal of the Association for Computing Machinery. Former Chairman of the Department of Computer Science at Stanford, and former Director of the SRI Artificial Intelligence Center, he is also a past president and Fellow of the American Association for Artificial Intelligence.


Product Details

  • Hardcover: 406 pages
  • Publisher: Morgan Kaufmann; First Edition edition (July 15, 1987)
  • Language: English
  • ISBN-10: 0934613311
  • ISBN-13: 978-0934613316
  • Product Dimensions: 9 x 7.2 x 1.1 inches
  • Shipping Weight: 2.2 pounds
  • Amazon Best Sellers Rank: #1,046,391 in Books (See Top 100 in Books)

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Inside This Book (learn more)
First Sentence:
ARTIFICIAL INTELLIGENCE (AI) is the study of intelligent behavior. Read the first page
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
hysteretic agent, bilevel database, metalevel database, action designators, delimited completion, circumscription formula, compulsive reflection, metalevel axioms, sequential constraint satisfaction, adjacency theorem, predicate completion, general boundary set, state designator, compulsive introspection, specific boundary set, bullet operator, parallel circumscription, consistent truth values, flying ostriches, probabilistic entailment, metalevel reasoning, quoted symbols, resolution deduction, completion formula, excess literals
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Blocks World, Maze World, End Figure, Proving Provability
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