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  • Big Data Security Governance and Prevention: Traffic Anti-Fraud in Practice

    Big Data Security Governance and Prevention by Zhang, Kai; Yang, Ze; Hao, Liyang;

    Traffic Anti-Fraud in Practice

    Series: Data Communication Series;

      • GET 10% OFF

      • Publisher's listprice GBP 83.99
      • 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.

        37 921 Ft (36 115 Ft + 5% VAT)
      • Discount 10% (cc. 3 792 Ft off)
      • Discounted price 34 129 Ft (32 504 Ft + 5% VAT)

    34 129 Ft

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    Not yet published.

    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.

    Product details:

    • Edition number 1
    • Publisher CRC Press
    • Date of Publication 29 September 2026

    • ISBN 9781041255352
    • Binding Hardback
    • No. of pages200 pages
    • Size 254x178 mm
    • Language English
    • Illustrations 178 Illustrations, black & white; 4 Halftones, black & white; 174 Line drawings, black & white; 26 Tables, black & white
    • 700

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    Short description:

    This book provides a practical reference for traffic anti-fraud, establishing a new standard for accessible, real-world traffic security governance that empowers readers to design scalable defenses while maintaining optimal user experience.

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    Long description:

    This book provides a practical reference for traffic anti-fraud, establishing a new standard for accessible, real-world traffic security governance that empowers readers to design scalable defenses while maintaining an optimal user experience.


    The internet’s rapid growth has enabled a surge in digital fraud. Cybercriminals exploit every stage of online traffic, from fake promotion scams and bot-driven account fraud to "coupon hacking" during e-commerce sales and sophisticated phishing campaigns. These threats cost billions globally and demand urgent solutions to protect users and platforms. This practical guide demystifies traffic anti-fraud with a 12-chapter framework. It begins with foundational concepts and then dissects real-world fraud tactics, then focuses on data preparation and governance. Core chapters introduce cutting-edge tools, such as device fingerprinting, AI-powered anomaly detection, graph-based network analysis, and cross-modal threat fusion. The final chapter provides step-by-step strategies for building adaptive anti-fraud systems.


    This exceptional resource is ideal for cybersecurity professionals, developers, researchers, and students interested in cybercrime prevention, risk governance, and big data security.

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    Table of Contents:

    1. Introduction  2. Traffic Fraud Tactics and Their Impact  3. Traffic Data Governance and Feature Engineering  4. Device Fingerprinting Technology  5. CAPTCHA Verification  6. Rules Engine  7. Countermeasures Against Machine Learning  8. Complex Network Adversarial Solutions  9. Multimodal Integrated Adversarial Solutions  10. New Adversarial Approaches  11. Operational System  12. Knowledge and Intelligence Mining and Applications

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