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Machine Learning and Blockchain – Challenges, Future Trends and Sustainable Technologies Cover

Machine Learning and Blockchain – Challenges, Future Trends and Sustainable Technologies

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|Jan 2026
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With contributions from leading researchers and industry experts, this book examines cutting-edge applications, integration models, and sustainable solutions across sectors including finance, agriculture, healthcare, IoT, and smart cities. Chapters cover blockchain-enabled fintech operations, fraud detection, deep learning–driven intrusion detection, AI-enhanced smart contracts, and data-driven healthcare innovations. Case studies, methodologies, and future-oriented insights demonstrate how these technologies can foster secure, efficient, and sustainable ecosystems. By bridging theoretical foundations with practical implementations, this book offers readers a roadmap to navigate the opportunities and challenges shaping the next generation of intelligent, blockchain-powered systems. Key Features Integrates blockchain with machine learning for real-world applications. Applies advanced analytics, automation, and AI models to enhance blockchain ecosystems. Develops secure solutions in fintech, agriculture, healthcare, IoT, and smart cities. Evaluates case studies and frameworks addressing challenges and vulnerabilities. Explores sustainable, future-ready trends shaping intelligent systems. Readership For researchers, graduate students, and academicians in computer science, IT, and data science, as well as industry practitioners, fintech innovators, and blockchain developers.
PDF ISBN: 978-981-5324-21-1
Publisher: Bentham Science
Publication date: 2026
Language: English
Pages: 269

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