Data Science in Cybersecurity and Cyberthreat Intelligence

Data Science in Cybersecurity and Cyberthreat Intelligence - Intelligent Systems Reference Library

1st Edition 2020

Hardback (06 Feb 2020)

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Publisher's Synopsis

This book presents a collection of state-of-the-art approaches to utilizing machine learning, formal knowledge bases and rule sets, and semantic reasoning to detect attacks on communication networks, including IoT infrastructures, to automate malicious code detection, to efficiently predict cyberattacks in enterprises, to identify malicious URLs and DGA-generated domain names, and to improve the security of mHealth wearables. This book details how analyzing the likelihood of vulnerability exploitation using machine learning classifiers can offer an alternative to traditional penetration testing solutions. In addition, the book describes a range of techniques that support data aggregation and data fusion to automate data-driven analytics in cyberthreat intelligence, allowing complex and previously unknown cyberthreats to be identified and classified, and countermeasures to be incorporated in novel incident response and intrusion detection mechanisms.


Book information

ISBN: 9783030387877
Publisher: Springer International Publishing
Imprint: Springer
Pub date:
Edition: 1st Edition 2020
Language: English
Number of pages: 129
Weight: 454g
Height: 235mm
Width: 155mm
Spine width: 10mm