Big data analytics with applications in insider threat detection

著者

書誌事項

Big data analytics with applications in insider threat detection

Bhavani Thuraisingham ... [et al.]

CRC Press, 2020, c2018

  • : pbk

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注記

"An Auerbach book"

Other authors: Mohammad Mehedy Masud, Pallabi Parveen, Latifur Khan

Includes bibliographical references and index

内容説明・目次

内容説明

Today's malware mutates randomly to avoid detection, but reactively adaptive malware is more intelligent, learning and adapting to new computer defenses on the fly. Using the same algorithms that antivirus software uses to detect viruses, reactively adaptive malware deploys those algorithms to outwit antivirus defenses and to go undetected. This book provides details of the tools, the types of malware the tools will detect, implementation of the tools in a cloud computing framework and the applications for insider threat detection.

目次

Supporting Technologies. Introduction. Data Mining Techniques. Cyber Security and Malware. Data Mining for Malware Detection. Conclusion. Stream-Based Novel Class Detection. Stream Mining. Novel Class Detection Problem. SNOD. Conclusion. Reactively Adaptive Malware. Reactively Adaptive Malware. RAMAL Design. RAMAL Implementation. SNODMAL. Introduction. SNODMAL Design. SNODMAL Implementation. SNODMAL FOR RAMAL. SNODMAL Extensions. Introduction. SNODMAL on the Cloud. SNODCAL. SNODMAL++. Conclusion. Summary and Directions. References. Appendix A: Data Management Systems. Appendix B: Malware Products.

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詳細情報

  • NII書誌ID(NCID)
    BD02065895
  • ISBN
    • 9780367657420
  • 出版国コード
    us
  • タイトル言語コード
    eng
  • 本文言語コード
    eng
  • 出版地
    Boca Raton
  • ページ数/冊数
    xxxiv, 543 p.
  • 大きさ
    26 cm
  • 分類
  • 件名
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