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Network anomaly detection : a machine learning perspective / / Dhruba Kumar Bhattacharyya, Jugal Kumar Kalita



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Autore: Bhattacharyya Dhruba K. Visualizza persona
Titolo: Network anomaly detection : a machine learning perspective / / Dhruba Kumar Bhattacharyya, Jugal Kumar Kalita Visualizza cluster
Pubblicazione: Boca Raton : , : CRC Press, Taylor & Francis Group, , [2014]
�2014
Descrizione fisica: 1 online resource (xxv, 340 pages) : illustrations
Disciplina: 005.8
Soggetto topico: Computer networks - Security measures
Intrusion detection systems (Computer security)
Machine learning
Classificazione: COM037000COM053000COM083000
Persona (resp. second.): KalitaJugal Kumar
Note generali: Description based upon print version of record.
Nota di bibliografia: Includes bibliographical references.
Nota di contenuto: Front Cover; Dedication; Contents; List of Figures; List of Tables; Preface; Acknowledgments; Abstract; Authors; 1. Introduction; 2. Networks and Anomalies; 3. An Overview of Machine Learning Methods; 4. Detecting Anomalies in Network Data; 5. Feature Selection; 6. Approaches to Network Anomaly Detection; 7. Evaluation Methods; 8. Tools and Systems; 9. Open Issues, Challenges and Concluding Remarks; References
Sommario/riassunto: This book discusses detection of anomalies in computer networks from a machine learning perspective. It introduces readers to how computer networks work and how they can be attacked by intruders in search of fame, fortune, or challenge. The reader will learn how one can look for patterns in captured network traffic data to look for anomalous patterns that may correspond to attempts at unauthorized intrusion. The reader will be given a technical and sophisticated description of such algorithms and their applications in the context of intrusion detection in networks--
Titolo autorizzato: Network anomaly detection  Visualizza cluster
ISBN: 0-429-16687-7
1-4665-8209-X
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910787566503321
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