Big Data Analytics and Intelligent Systems for Cyber Threat Intelligence

Big Data Analytics and Intelligent Systems for Cyber Threat Intelligence

Big Data Analytics and Intelligent Systems for Cyber Threat Intelligence

Big Data Analytics and Intelligent Systems for Cyber Threat Intelligence

eBook

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Overview

In recent years, a considerable amount of effort has been devoted to cyber-threat protection of computer systems which is one of the most critical cybersecurity tasks for single users and businesses since even a single attack can result in compromised data and sufficient losses. Massive losses and frequent attacks dictate the need for accurate and timely detection methods. Current static and dynamic methods do not provide efficient detection, especially when dealing with zero-day attacks. For this reason, big data analytics and machine intelligencebased techniques can be used.

This book brings together researchers in the field of big data analytics and intelligent systems for cyber threat intelligence CTI and key data to advance the mission of anticipating, prohibiting, preventing, preparing, and responding to internal security. The wide variety of topics it presents offers readers multiple perspectives on various disciplines related to big data analytics and intelligent systems for cyber threat intelligence applications.

Technical topics discussed in the book include:
• Big data analytics for cyber threat intelligence and detection
• Artificial intelligence analytics techniques
• Real-time situational awareness
• Machine learning techniques for CTI
• Deep learning techniques for CTI
• Malware detection and prevention techniques
• Intrusion and cybersecurity threat detection and analysis
• Blockchain and machine learning techniques for CTI


Product Details

ISBN-13: 9781000846713
Publisher: River Publishers
Publication date: 04/28/2023
Sold by: Barnes & Noble
Format: eBook
Pages: 310
File size: 24 MB
Note: This product may take a few minutes to download.

About the Author

Yassine Maleh, Imed Romdhani

Table of Contents

1 Cyber Threat Intelligence Model: An Evaluation of Taxonomies and Sharing Platforms 2 Evaluation of Open-sourceWeb Application Firewalls for Cyber Threat Intelligence 3 Comprehensive Survey of Location Privacy and Proposed Effective Approach to Protecting the Privacy of LBS Users 4 Analysis of Encrypted Network Traffic using Machine Learning Models 5 Comparative Analysis of Android Application Dissection and Analysis Tools for Identifying Malware Attributes 6 Classifying Android PendingIntent Security using Machine Learning Algorithms 7 Machine Learning and Blockchain Integration for Security Applications 8 Cyberthreat Real-time Detection Based on an Intelligent Hybrid Network Intrusion Detection System 9 Intelligent Malware Detection and Classification using Boosted Tree Learning Paradigm 10 Malware and Ransomware Classification, Detection, and Prevention using Artificial Intelligence (AI) Techniques 11 Detecting High-quality GAN-generated Face Images using Neural Networks 12 Fault Tolerance of Network Routers using Machine Learning Techniques

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