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9780387887340: Machine Learning in Cyber Trust: Security, Privacy, and Reliability

Sinopsis

Many networked computer systems are far too vulnerable to cyber attacks that can inhibit their functioning, corrupt important data, or expose private information. Not surprisingly, the field of cyber-based systems is a fertile ground where many tasks can be formulated as learning problems and approached in terms of machine learning algorithms.

This book contains original materials by leading researchers in the area and covers applications of different machine learning methods in the reliability, security, performance, and privacy issues of cyber space. It enables readers to discover what types of learning methods are at their disposal, summarizing the state-of-the-practice in this significant area, and giving a classification of existing work.

Those working in the field of cyber-based systems, including industrial managers, researchers, engineers, and graduate and senior undergraduate students will find this an indispensable guide in creating systems resistant to and tolerant of cyber attacks.

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De la contraportada

Many networked computer systems are far too vulnerable to cyber attacks that can inhibit their functioning, corrupt important data, or expose private information. Not surprisingly, the field of cyber-based systems turns out to be a fertile ground where many tasks can be formulated as learning problems and approached in terms of machine learning algorithms.

This book contains original materials by leading researchers in the area and covers applications of different machine learning methods in the security, privacy, and reliability issues of cyber space. It enables readers to discover what types of learning methods are at their disposal, summarizing the state of the practice in this important area, and giving a classification of existing work.

Specific features include the following:

  • A survey of various approaches using machine learning/data mining techniques to enhance the traditional security mechanisms of databases
  • A discussion of detection of SQL Injection attacks and anomaly detection for defending against insider threats
  • An approach to detecting anomalies in a graph-based representation of the data collected during the monitoring of cyber and other infrastructures
  • An empirical study of seven online-learning methods on the task of detecting malicious executables
  • A novel network intrusion detection framework for mining and detecting sequential intrusion patterns
  • A solution for extending the capabilities of existing systems while simultaneously maintaining the stability of the current systems
  • An image encryption algorithm based on a chaotic cellular neural network to deal with information security and assurance
  • An overview of data privacy research, examining the achievements, challenges and opportunities while pinpointing individual research efforts on the grand map of data privacy protection
  • An algorithm based on secure multiparty computation primitives to compute the nearest neighbors of records in horizontally distributed data
  • An approach for assessing the reliability of SOA-based systems using AI reasoning techniques
  • The models, properties, and applications of context-aware Web services, including an ontology-based context model to enable formal description and acquisition of contextual information pertaining to service requestors and services

Those working in the field of cyber-based systems, including industrial managers, researchers, engineers, and graduate and senior undergraduate students will find this an indispensable guide in creating systems resistant to and tolerant of cyber attacks.

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9781441946980: Machine Learning in Cyber Trust: Security, Privacy, and Reliability

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ISBN 10:  1441946985 ISBN 13:  9781441946980
Editorial: Springer, 2010
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Tsai, Jeffrey J. P. (Editor)/ Yu, Philip S. (Editor)
Publicado por Springer-Verlag New York Inc, 2009
ISBN 10: 0387887342 ISBN 13: 9780387887340
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Jeffrey J. P. Tsai
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ISBN 10: 0387887342 ISBN 13: 9780387887340
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ISBN 10: 0387887342 ISBN 13: 9780387887340
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Condición: Sehr gut. Zustand: Sehr gut - Gepflegter, sauberer Zustand. | Seiten: 362 | Sprache: Englisch | Produktart: Bücher. Nº de ref. del artículo: 4703957/2

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Jeffrey J P Tsai
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Buch. Condición: Neu. Neuware - Many networked computer systems are far too vulnerable to cyber attacks that can inhibit their functioning, corrupt important data, or expose private information. Not surprisingly, the field of cyber-based systems is a fertile ground where many tasks can be formulated as learning problems and approached in terms of machine learning algorithms.This book contains original materials by leading researchers in the area and covers applications of different machine learning methods in the reliability, security, performance, and privacy issues of cyber space. It enables readers to discover what types of learning methods are at their disposal, summarizing the state-of-the-practice in this significant area, and giving a classification of existing work.Those working in the field of cyber-based systems, including industrial managers, researchers, engineers, and graduate and senior undergraduate students will find this an indispensable guide in creating systems resistant to and tolerant of cyber attacks. Nº de ref. del artículo: 9780387887340

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Tsai, Jeffrey J. P. (Editor)/ Yu, Philip S. (Editor)
Publicado por Springer-Verlag New York Inc, 2009
ISBN 10: 0387887342 ISBN 13: 9780387887340
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Librería: Revaluation Books, Exeter, Reino Unido

Calificación del vendedor: 5 de 5 estrellas Valoración 5 estrellas, Más información sobre las valoraciones de los vendedores

Hardcover. Condición: Brand New. 1st edition. 378 pages. 9.50x6.25x1.00 inches. In Stock. Nº de ref. del artículo: x-0387887342

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Jeffrey J.P. Tsai
ISBN 10: 0387887342 ISBN 13: 9780387887340
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Hardcover. Condición: new. Hardcover. Many networked computer systems are far too vulnerable to cyber attacks that can inhibit their functioning, corrupt important data, or expose private information. Not surprisingly, the field of cyber-based systems is a fertile ground where many tasks can be formulated as learning problems and approached in terms of machine learning algorithms.This book contains original materials by leading researchers in the area and covers applications of different machine learning methods in the reliability, security, performance, and privacy issues of cyber space. It enables readers to discover what types of learning methods are at their disposal, summarizing the state-of-the-practice in this significant area, and giving a classification of existing work.Those working in the field of cyber-based systems, including industrial managers, researchers, engineers, and graduate and senior undergraduate students will find this an indispensable guide in creating systems resistant to and tolerant of cyber attacks. In cyber-based systems, tasks can be formulated as learning problems and approached as machine-learning algorithms. This book covers applications of machine-learning methods in reliability, security, performance and privacy issues in cyber space. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. Nº de ref. del artículo: 9780387887340

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