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  • LLMs in Practice: Real World Applications, Challenges and Success Stories

    LLMs in Practice by Singh, Kiran Jot; Mahajan, Shubham; Kapoor, Divneet Singh; Thakur, Khushal;

    Real World Applications, Challenges and Success Stories

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      • Publisher's listprice EUR 185.99
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    Product details:

    • Publisher Elsevier Science
    • Date of Publication 1 August 2026

    • ISBN 9780443443442
    • Binding Paperback
    • No. of pages400 pages
    • Size 235x191 mm
    • Weight 450 g
    • Language English
    • 700

    Categories

    Long description:

    LLMs in Practice: Real World Applications, Challenges and Success Stories offers a deeply applied, interdisciplinary perspective on how Large Language Models (LLMs) are being integrated into the real world-spanning industries, healthcare, education, governance, mental health, creative domains, and intelligent systems. The book presents a blend of technical insights, sector-specific applications, governance frameworks, and ethical considerations. Designed for both academic and professional audiences, it equips readers to responsibly deploy LLMs while fostering innovation, equity, and scalability. LLMs in Practice: Real World Applications, Challenges & Success Stories addresses a significant gap in current literature by offering a focused and practice-oriented examination of how Large Language Models (LLMs) are being applied across diverse real-world domains. While there is widespread academic and public interest in generative AI, there exists no single resource that cohesively captures its deployment frameworks, sector-specific applications, ethical considerations, and pedagogical integration-especially from a multidisciplinary and global perspective. This book provides deployment guidance, prompt optimization, and reliability strategies; governance frameworks, risk mitigation tools, and audit strategies; and offers case studies, instructional models, project templates, career-aligned examples, and skill-building paths.

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    Table of Contents:

    Section I: Foundations of Large Language Models
    1. Foundations and Frameworks for Large Language Models: Concepts and Deployment Strategies
    2. Mathematical Foundations and Reasoning Capabilities of Large Language Models

    Section II: Governance, Ethics, Policy, and Law
    3. Responsibility Gaps in Autonomous Agentic AI: Legal and Ethical Blind Spots in Multi-Agent and Multi-Developer Systems
    4. Business Transformation and Legal Innovation in the Age of Generative AI
    5. Policy, Law, and AI in Healthcare: Addressing Legal Hurdles in the Use of Large Language Models
    6. Enhancing Security and Privacy in the Integration of Large Language Models within Learning Management Systems

    Section III: Healthcare Systems & Digital Health
    7. Transforming Healthcare with Large Language Models: Innovation, Integration, and Impact
    8. Revolutionizing Healthcare Systems Through Large Language Models
    9. SymptoGuide: Revolutionising Digital Health through Retrieval- Augmented Generation and LLMs

    Section IV: Mental Health, Neuroscience & Well-Being
    10. Enhancing Mental Health and Cognitive Research with Generative AI
    11. Enhancing Mental Health and Cognitive Research with Generative AI: Transformative Applications, Ethical Considerations, and Future Directions
    12. Therapeutic LLMs in Mental Health: Evidence, Alignment Engineering, and SAFEE-Based Governance
    13. Personalized Music-Based Neuro-Rehabilitation Using Generative AI Models
    14. The Role of Generative AI in Shaping the Future of Mental Health Research

    Section V: Finance, Risk & Intelligent Markets
    15. Financial Services and Risk Intelligence Powered by LLMs
    16. LLM-Driven Trading: Enhancing Financial Algorithms with Sentiment and Risk Analysis
    17. Leveraging LLMs for marketing of Financial products for multi-lingual Consumers

    Section VI: Marketing, Business Intelligence & Consumer Insights
    18. LLM-Driven Marketing Strategy & Consumer Insights

    Section VII: Smart Cities, Robotics & Urban Intelligence
    19. Leveraging Large Language Models for Intelligent Urban Planning and Smart Cities
    20. LLMs in Action: Semantic Navigation on TurtleBot4 via MCP-Based Natural Language Interface

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