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Titlebook: Data Science in Cybersecurity and Cyberthreat Intelligence; Leslie F. Sikos,Kim-Kwang Raymond Choo Book 2020 Springer Nature Switzerland A

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书目名称Data Science in Cybersecurity and Cyberthreat Intelligence
编辑Leslie F. Sikos,Kim-Kwang Raymond Choo
视频video
概述Presents the state of the art in cybersecurity, and critically reviews existing approaches.Addresses the intersection of two hot topics: cybersecurity and data science.Includes an essential introducti
丛书名称Intelligent Systems Reference Library
图书封面Titlebook: Data Science in Cybersecurity and Cyberthreat Intelligence;  Leslie F. Sikos,Kim-Kwang Raymond Choo Book 2020 Springer Nature Switzerland A
描述.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. .
出版日期Book 2020
关键词Cybersecurity; Cybersituational Awareness; Cyberthreat Intelligence; Data Science; Artificial Intelligen
版次1
doihttps://doi.org/10.1007/978-3-030-38788-4
isbn_softcover978-3-030-38790-7
isbn_ebook978-3-030-38788-4Series ISSN 1868-4394 Series E-ISSN 1868-4408
issn_series 1868-4394
copyrightSpringer Nature Switzerland AG 2020
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Amrina Ferdous,Md. Abu Shahin,Md. Ayub Alicurity threats is further and further growing. In this chapter, we introduce an approach for identifying hidden security threats by using Uniform Resource Locators (URLs) as an example dataset, with a method that automatically detects malicious URLs by leveraging machine learning techniques. We demo
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Md. Jahanur Rahman,Md. Al Mehedi Hasans for network attack and anomaly detection. The approach is characterized by several layers of data processing, including extraction and decomposition of datasets, compression of feature vectors, training, and classification. To reduce the dimension of the analyzed feature vectors, principal compone
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A. Zahiri,H. Md. Azamathulla,Kh. Ghorbanis smart phones and wearables that have been adopted for personal use in everyday life, has produced a demand for utilities that can assist people with achieving goals for a successful lifestyle, i.e., to live healthier and more productive lives. With continued research and development into technolog
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Data Science in Cybersecurity and Cyberthreat Intelligence978-3-030-38788-4Series ISSN 1868-4394 Series E-ISSN 1868-4408
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https://doi.org/10.1007/978-3-030-38788-4Cybersecurity; Cybersituational Awareness; Cyberthreat Intelligence; Data Science; Artificial Intelligen
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