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    DeepFakes 2.0

    Creation, Detection, and the Future of Synthetic Media

    AvLoveleen Gaur

    Inbunden, Engelska, 2026

    1 856 kr

    Kommande

    Beskrivning

    This book offers an interdisciplinary exploration of synthetic media, combining technical insights with global case studies, including the EU AI Act, the U.S. DEEPFAKES Accountability Act, and China's deep synthesis governance frameworks. Updated chapters cover multimodal synthesis, real-time detection, adversarial robustness, and AI explainability tools. Organized into four sections, the book examines foundational concepts, advanced techniques, societal impacts, and future trends.Goes beyond face swaps to include voice cloning, cross-modal synthesis, and diffusion models, making it one of the most up-to-date academic references on synthetic media.Explains current and emerging detection strategies, including CNN-based approaches, adversarial training, watermarking techniques, and explainability tools.Covers evolving legal and regulatory standards, such as C2PA specifications, consent frameworks, and digital identity governance, providing timely relevance for policy discussions.Discusses global governance approaches, constructive applications of synthetic media, and a roadmap for future-proofing technology and regulation.Includes new global and regional case studies, such as the EU AI Act, the U.S. DEEPFAKES Accountability Act, China's deep synthesis regulations, amendments to India's IT Act, African AI ethics frameworks, and UNESCO- and UNDP-backed initiatives in the Middle East and Africa.This book is intended for graduate students, researchers, and professionals in data science, artificial intelligence, computer vision, machine learning, and computer science.

    Produktinformation

    • Utgivningsdatum:2026-11-27
    • Mått:156 x 234 x undefined mm
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:280
    • Upplaga:2
    • Förlag:Taylor & Francis Ltd
    • ISBN:9781041253808

    Utforska kategorier

    • Energiteknik inom Naturvetenskap och teknik
    • Elektronik och kommunikationer inom Naturvetenskap och teknik
    • Informationsteknik: allmänt inom Data och IT

    Mer om författaren

    Loveleen Gaur is a teacher-scholar in artificial intelligence, statistics, and data science with more than twenty years of university teaching, research, academic leadership, and curriculum-building experience across four continents. Her work focuses on AI ethics and governance, explainable AI, responsible AI, generative AI, healthcare AI, medical imaging, predictive analytics, and AI policy and regulation. She is currently associated with several international academic and professional roles, including Research Professor at Alliance University, Bengaluru, India; Dissertation Committee Chair in the DBA Program at Golden Gate University Worldwide, San Francisco, USA; Adjunct Professor at the University of the South Pacific, Fiji; Faculty Lead for the Doctoral Program in Deep Tech: AI and Emerging Technologies at Universidad Nacional Mayor de San Marcos, Lima, Peru; Professor of Practice with Paris School of Business; Subject Matter Expert with upGrad; Assessor with Innovate UK, UK Research and Innovation; and Judge for the QS Reimagine Education Awards 2026. She previously served as Professor at Amity University, Noida, India, where she founded postgraduate programs in Artificial Intelligence and Business Analytics.She has authored and edited more than twenty research books and has over 150 research outputs, more than 4,500 citations, and over 170 verified peer reviews across leading publishers and journals. She has been recognized in the Elsevier-Stanford list of the World's Top 2% Scientists for 2024 and 2025 and is a Senior Member of IEEE. Her publications have appeared in journals such as Frontiers in Neuroscience, Information Sciences, Multimedia Systems, and ACM Transactions on Multimedia Computing, Communications, and Applications.Her editorial leadership includes serving as Co-Editor-in-Chief of Communications in Statistics: Case Studies, Data Analysis and Applications, published by Taylor & Francis. She has also contributed as a topic and guest editor across Frontiers journals and has served the global research community through extensive peer review, keynote talks, doctoral supervision, thesis examination, and international academic collaborations.

    Innehållsförteckning

    • 1.Introduction to DeepFake Technologies 2. Anatomy of a Deepfake: A Taxonomy of Synthetic Media 3.Deep Learning Techniques for the creation of DeepFakes 4. Analyzing DeepFakes Videos by Face Warping Artifacts 5: Development of an Image-Translating Model to Counter Adversarial Attacks 6: Multimodal Deepfakes and the Evolution of Generative Models: From Cross-Modal Synthesis to Diffusion Architectures 7: Deepfake Detection in Real-Time Adversarial Environments: Architectures, Threat Models, and Deployment Strategies 8: Fairness, Bias, and Explainability in Detection AI 9: DeepFakes, Media, and Societal Impacts 10: Fake News Detection Using Machine Learning 11: Legal, Ethical, and Governance Perspectives on Deepfakes 12: Constructive Applications for DeepFakes: Educational Tools, Cybersecurity, and Digital Immortality 13: Societal Impact of DeepFakes 14: Global Regulatory Landscapes for Deepfakes: A Comparative Review of the EU, US, China, and India