9780367638719-0367638711-Intelligent Mobile Malware Detection (Security, Privacy, and Trust in Mobile Communications)

Intelligent Mobile Malware Detection (Security, Privacy, and Trust in Mobile Communications)

ISBN-13: 9780367638719
ISBN-10: 0367638711
Edition: 1
Author: Mamoun Alazab, Tony Thomas, Roopak Surendran, Teenu John
Publication date: 2022
Publisher: CRC Press
Format: Hardcover 190 pages
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Book details

ISBN-13: 9780367638719
ISBN-10: 0367638711
Edition: 1
Author: Mamoun Alazab, Tony Thomas, Roopak Surendran, Teenu John
Publication date: 2022
Publisher: CRC Press
Format: Hardcover 190 pages

Summary

Intelligent Mobile Malware Detection (Security, Privacy, and Trust in Mobile Communications) (ISBN-13: 9780367638719 and ISBN-10: 0367638711), written by authors Mamoun Alazab, Tony Thomas, Roopak Surendran, Teenu John, was published by CRC Press in 2022. With an overall rating of 3.7 stars, it's a notable title among other books. You can easily purchase or rent Intelligent Mobile Malware Detection (Security, Privacy, and Trust in Mobile Communications) (Hardcover) from BooksRun, along with many other new and used books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $0.3.

Description

The popularity of Android mobile phones has caused more cybercriminals to create malware applications that carry out various malicious activities. The attacks, which escalated after the COVID-19 pandemic, proved there is great importance in protecting Android mobile devices from malware attacks. Intelligent Mobile Malware Detection will teach users how to develop intelligent Android malware detection mechanisms by using various graph and stochastic models. The book begins with an introduction to the Android operating system accompanied by the limitations of the state-of-the-art static malware detection mechanisms as well as a detailed presentation of a hybrid malware detection mechanism. The text then presents four different system call-based dynamic Android malware detection mechanisms using graph centrality measures, graph signal processing and graph convolutional networks. Further, it shows how most of the Android malware can be detected by checking the presence of a unique subsequence of system calls in its system call sequence. All the malware detection mechanisms presented in the book are based on the authors' recent research. The experiments are conducted with the latest Android malware samples and the malware samples are collected from public repositories. The source codes are also provided for easy implementation of the mechanisms. This book will be highly useful to Android malware researchers, developers, students and cyber security professionals to explore and build defense mechanisms against the ever-evolving Android malware.

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