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An Introduction to Constraint-Based Temporal Reasoning [electronic resource] / by Roman Barták, Robert A. Morris, K. Brent Venable.

By: Barták, Roman [author.].
Contributor(s): Morris, Robert A [author.] | Venable, K. Brent [author.] | SpringerLink (Online service).
Material type: materialTypeLabelBookSeries: Synthesis Lectures on Artificial Intelligence and Machine Learning: Publisher: Cham : Springer International Publishing : Imprint: Springer, 2014Edition: 1st ed. 2014.Description: XIII, 107 p. online resource.Content type: text Media type: computer Carrier type: online resourceISBN: 9783031015670.Subject(s): Artificial intelligence | Machine learning | Neural networks (Computer science)  | Artificial Intelligence | Machine Learning | Mathematical Models of Cognitive Processes and Neural NetworksAdditional physical formats: Printed edition:: No title; Printed edition:: No titleDDC classification: 006.3 Online resources: Click here to access online
Contents:
Preface -- Summary of Acronyms -- Introduction to Time in AI Systems -- Temporal Frameworks Based on Constraints -- Extensions: Preferences and Uncertainty -- Applications of Temporal Reasoning -- Bibliography -- Authors' Biographies .
In: Springer Nature eBookSummary: Solving challenging computational problems involving time has been a critical component in the development of artificial intelligence systems almost since the inception of the field. This book provides a concise introduction to the core computational elements of temporal reasoning for use in AI systems for planning and scheduling, as well as systems that extract temporal information from data. It presents a survey of temporal frameworks based on constraints, both qualitative and quantitative, as well as of major temporal consistency techniques. The book also introduces the reader to more recent extensions to the core model that allow AI systems to explicitly represent temporal preferences and temporal uncertainty. This book is intended for students and researchers interested in constraint-based temporal reasoning. It provides a self-contained guide to the different representations of time, as well as examples of recent applications of time in AI systems.
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Preface -- Summary of Acronyms -- Introduction to Time in AI Systems -- Temporal Frameworks Based on Constraints -- Extensions: Preferences and Uncertainty -- Applications of Temporal Reasoning -- Bibliography -- Authors' Biographies .

Solving challenging computational problems involving time has been a critical component in the development of artificial intelligence systems almost since the inception of the field. This book provides a concise introduction to the core computational elements of temporal reasoning for use in AI systems for planning and scheduling, as well as systems that extract temporal information from data. It presents a survey of temporal frameworks based on constraints, both qualitative and quantitative, as well as of major temporal consistency techniques. The book also introduces the reader to more recent extensions to the core model that allow AI systems to explicitly represent temporal preferences and temporal uncertainty. This book is intended for students and researchers interested in constraint-based temporal reasoning. It provides a self-contained guide to the different representations of time, as well as examples of recent applications of time in AI systems.

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