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Collision Detection for Robot Manipulators: Methods and Algorithms
Buch von Frank C. Park (u. a.)
Sprache: Englisch

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Beschreibung
This book provides a concise survey and description of recent collision detection methods for robot manipulators. Beginning with a review of robot kinodynamic models and preliminaries on basic statistical learning methods, the book covers fundamental aspects of the collision detection problem, from collision types and collision detection performance criteria to model-free versus model-based methods, and the more recent data-driven learning-based approaches to collision detection. Special effort has been given to describing and evaluating existing methods with a unified set of notation, systematically categorizing these methods according to a basic set of criteria, and summarizing the advantages and disadvantages of each method. This book is the first to comprehensively organize the growing body of learning-based collision detection methods, ranging from basic supervised learning methods to more advanced approaches based on unsupervised learning and transfer learning techniques. Step-by-step implementation details and pseudocode descriptions are provided for key algorithms. Collision detection performance is measured with respect to both conventional criteria such as detection delay and the number of false alarms, as well as criteria that measure generalization capability for learning-based methods. Whether it be for research or commercial applications, in settings ranging from industrial factories to physical human¿robot interaction experiments, this book can help the reader choose and successfully implement the most appropriate detection method that suits their robot system and application.
This book provides a concise survey and description of recent collision detection methods for robot manipulators. Beginning with a review of robot kinodynamic models and preliminaries on basic statistical learning methods, the book covers fundamental aspects of the collision detection problem, from collision types and collision detection performance criteria to model-free versus model-based methods, and the more recent data-driven learning-based approaches to collision detection. Special effort has been given to describing and evaluating existing methods with a unified set of notation, systematically categorizing these methods according to a basic set of criteria, and summarizing the advantages and disadvantages of each method. This book is the first to comprehensively organize the growing body of learning-based collision detection methods, ranging from basic supervised learning methods to more advanced approaches based on unsupervised learning and transfer learning techniques. Step-by-step implementation details and pseudocode descriptions are provided for key algorithms. Collision detection performance is measured with respect to both conventional criteria such as detection delay and the number of false alarms, as well as criteria that measure generalization capability for learning-based methods. Whether it be for research or commercial applications, in settings ranging from industrial factories to physical human¿robot interaction experiments, this book can help the reader choose and successfully implement the most appropriate detection method that suits their robot system and application.
Zusammenfassung

Provides a comprehensive survey on existing collision detection methods for robot manipulators

Includes both dynamics model-based and learning-based methods

Summarizes the fundamentals of collision detection problem handling

Inhaltsverzeichnis
Introduction.- Fundamentals.- Model-Free and Model-Based Methods.- Learning Robot Collisions.- Enhancing Collision Learning Practicality.- Conclusion.
Details
Erscheinungsjahr: 2023
Fachbereich: Nachrichtentechnik
Genre: Mathematik, Medizin, Naturwissenschaften, Technik
Rubrik: Naturwissenschaften & Technik
Medium: Buch
Reihe: Springer Tracts in Advanced Robotics
Inhalt: xx
122 S.
24 s/w Illustr.
29 farbige Illustr.
122 p. 53 illus.
29 illus. in color.
ISBN-13: 9783031301940
ISBN-10: 3031301943
Sprache: Englisch
Ausstattung / Beilage: HC runder Rücken kaschiert
Einband: Gebunden
Autor: Park, Frank C.
Park, Kyu Min
Hersteller: Springer Nature Switzerland
Springer International Publishing
Springer Tracts in Advanced Robotics
Verantwortliche Person für die EU: Books on Demand GmbH, In de Tarpen 42, D-22848 Norderstedt, info@bod.de
Maße: 241 x 160 x 14 mm
Von/Mit: Frank C. Park (u. a.)
Erscheinungsdatum: 20.05.2023
Gewicht: 0,415 kg
Artikel-ID: 126705411
Zusammenfassung

Provides a comprehensive survey on existing collision detection methods for robot manipulators

Includes both dynamics model-based and learning-based methods

Summarizes the fundamentals of collision detection problem handling

Inhaltsverzeichnis
Introduction.- Fundamentals.- Model-Free and Model-Based Methods.- Learning Robot Collisions.- Enhancing Collision Learning Practicality.- Conclusion.
Details
Erscheinungsjahr: 2023
Fachbereich: Nachrichtentechnik
Genre: Mathematik, Medizin, Naturwissenschaften, Technik
Rubrik: Naturwissenschaften & Technik
Medium: Buch
Reihe: Springer Tracts in Advanced Robotics
Inhalt: xx
122 S.
24 s/w Illustr.
29 farbige Illustr.
122 p. 53 illus.
29 illus. in color.
ISBN-13: 9783031301940
ISBN-10: 3031301943
Sprache: Englisch
Ausstattung / Beilage: HC runder Rücken kaschiert
Einband: Gebunden
Autor: Park, Frank C.
Park, Kyu Min
Hersteller: Springer Nature Switzerland
Springer International Publishing
Springer Tracts in Advanced Robotics
Verantwortliche Person für die EU: Books on Demand GmbH, In de Tarpen 42, D-22848 Norderstedt, info@bod.de
Maße: 241 x 160 x 14 mm
Von/Mit: Frank C. Park (u. a.)
Erscheinungsdatum: 20.05.2023
Gewicht: 0,415 kg
Artikel-ID: 126705411
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