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  • Demystifying AI and ML for Cyber–Threat Intelligence

    Demystifying AI and ML for Cyber–Threat Intelligence by Yang, Ming; Mohanty, Sachi Nandan; Satpathy, Suneeta; Hu, Shu;

    Series: Information Systems Engineering and Management; 43;

      • GET 20% OFF

      • The discount is only available for 'Alert of Favourite Topics' newsletter recipients.
      • Publisher's listprice EUR 213.99
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        88 752 Ft (84 526 Ft + 5% VAT)
      • Discount 20% (cc. 17 750 Ft off)
      • Discounted price 71 002 Ft (67 621 Ft + 5% VAT)

    88 752 Ft

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    printed on demand

    Why don't you give exact delivery time?

    Delivery time is estimated on our previous experiences. We give estimations only, because we order from outside Hungary, and the delivery time mainly depends on how quickly the publisher supplies the book. Faster or slower deliveries both happen, but we do our best to supply as quickly as possible.

    Long description:

    This book simplifies complex AI and ML concepts, making them accessible to security analysts, IT professionals, researchers, and decision-makers. Cyber threats have become increasingly sophisticated in the ever-evolving digital landscape, making traditional security measures insufficient to combat modern attacks. Artificial intelligence (AI) and machine learning (ML) have emerged as transformative tools in cybersecurity, enabling organizations to detect, prevent, and respond to threats with greater efficiency. This book is a comprehensive guide, bridging the gap between cybersecurity and AI/ML by offering clear, practical insights into their role in threat intelligence. Readers will gain a solid foundation in key AI and ML principles, including supervised and unsupervised learning, deep learning, and natural language processing (NLP) while exploring real-world applications such as intrusion detection, malware analysis, and fraud prevention. Through hands-on insights, case studies, and implementation strategies, it provides actionable knowledge for integrating AI-driven threat intelligence into security operations. Additionally, it examines emerging trends, ethical considerations, and the evolving role of AI in cybersecurity. Unlike overly technical manuals, this book balances theoretical concepts with practical applications, breaking down complex algorithms into actionable insights. Whether a seasoned professional or a beginner, readers will find this book an essential roadmap to navigating the future of cybersecurity in an AI-driven world. This book empowers its audience to stay ahead of cyber adversaries and embrace the next generation of intelligent threat detection.

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    Table of Contents:

    "

    A Comprehensive Review on the Detection Capabilities of IDS using Deep Learning Techniques.- Next-Generation Intrusion Detection Framework with Active Learning-Driven Neural Networks for DDoS Defense.- Ensemble Learning-based Intrusion Detection System for RPL-based IoT Networks.- Advancing Detection of Man-in-the-Middle Attacks through Possibilistic C-Means Clustering.- CNN-Based IDS for Internet of Vehicles Using Transfer Learning.- Real-Time Network Intrusion Detection System using Machine Learning.- OpIDS-DL : OPTIMIZING INTRUSION DETECTION IN IoT NETWORKS: A DEEP LEARNING APPROACH WITH REGULARIZATION AND DROPOUT FOR ENHANCED CYBERSECURITY.- ML-Powered Sensitive Data Loss Prevention Firewall for Generative AI Applications.- Enhancing Data Integrity: Unveiling the Potential of Reversible Logic for Error Detection and Correction.- Enhancing Cyber security through Reversible Logic.- Beyond Passwords: Enhancing Security with Continuous Behavioral Biometrics and Passive Authentication.

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