Natural Language Processing for Healthcare

Natural Language Processing for Healthcare

  • Laxmi Shaw
  • Shubham Mahajan
  • Kamal Upreti
Publisher:Academic PressISBN 13: 9780443452536ISBN 10: 0443452539

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Know about the book -

Natural Language Processing for Healthcare is written by Laxmi Shaw and published by Academic Press. It's available with International Standard Book Number or ISBN identification 0443452539 (ISBN 10) and 9780443452536 (ISBN 13).

Natural Language Processing for Healthcare: The Rise of Intelligent Assistants addresses the critical gap between cutting-edge AI research and its practical application in healthcare, offering an accessible yet comprehensive guide tailored to the unique challenges of medical environments. It highlights how NLP technologies are revolutionizing patient care, medical documentation, and clinical decision-making, while emphasizing ethical, legal, and interoperability considerations. Structured into four sections, the book begins by laying foundational knowledge in NLP and healthcare data, covering crucial concepts such as tokenization, medical ontologies like UMLS and SNOMED CT, machine learning models including BioBERT and ClinicalBERT, and the emerging impact of large language models like GPT. The applications section explores real-world implementations of intelligent assistants, such as virtual health chatbots, clinical documentation tools, conversational AI for patient engagement, and voice recognition integrated into electronic health records. Technical chapters provide insights into system architectures, evaluation metrics, data privacy, security, and interoperability standards like FHIR. The final section looks ahead to future directions including multilingual NLP, federated learning for privacy preservation, and the evolving landscape of AI-driven healthcare assistants. This book is an indispensable resource for a broad audience. Healthcare professionals and clinicians will find practical insights into streamlining patient care and diagnostics. Biomedical researchers and data scientists can deepen their understanding of NLP methods tailored to medical data. Students, educators, technology developers, and healthcare administrators alike will benefit from the book's balanced coverage of theory, implementation, and regulation, empowering them to innovate and responsibly deploy intelligent assistants that enhance healthcare delivery worldwide. - Bridges AI research and healthcare practice with accessible, healthcare-focused NLP insights for clinical and operational use - Provides practical guidance on designing and deploying intelligent virtual assistants to enhance patient care and engagement - Addresses ethical, legal, and interoperability challenges unique to healthcare NLP applications - Explores cutting-edge technologies including large language models and federated learning in real-world medical contexts - Equips data scientists and clinicians with tools to analyze unstructured medical data and improve clinical decision-making