Artificial Intelligence and Data Science in Healthcare Applications
eBook - ePub

Artificial Intelligence and Data Science in Healthcare Applications

  1. 265 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Artificial Intelligence and Data Science in Healthcare Applications

About this book

Artificial Intelligence and Data Science in Healthcare Applications provides a thorough in-depth examination of how AI and data science are transforming predictive analytics and outlier detection in every industry. With in-depth examinations of machine learning, neural networks, NLP, and ethics of AI, this book prepares readers with both theoretical principles and practical tools to create smart, scalable systems. Real-world healthcare, cybersecurity, and finance case studies exemplify real world applications, and tutorials with leading libraries serve as a starting point for implementation.

Features:

  • Offers a broad overview of both foundational and advanced topics in artificial intelligence and data science, focusing particularly on their applications in prediction and detection.
  • Addresses the ethical implications and social impact of artificial intelligence and data science, discussing topics such as algorithmic bias, privacy, and the ethical use of predictive technologies.
  • Discusses enhanced deep learning model to detect lung diseases from Chest-Xray.
  • Highlights lung cancer prediction using variational autoencoders and early stopping for neural network clustering and optimal tuning.
  • Evaluates mental well-being through wearable sensors utilizing machine learning.

It will serve as an ideal text for senior undergraduates, graduate students, and academic researchers in electrical engineering, electronics and communications engineering, computer engineering, information technology, and biomedical engineering.

Information

Publisher
CRC Press
Year
2026
Print ISBN
9781041062561
Edition
1
eBook ISBN
9781040607718

Table of contents

  1. Cover Page
  2. Half Title page
  3. Series Page
  4. Title Page
  5. Copyright Page
  6. Contents
  7. About the editors
  8. Contributors
  9. Preface
  10. Acknowledgments
  11. Chapter 1 Computer-aided ADHD diagnosis using EEG analysis
  12. Chapter 2 Classification of brain tumours using convolutional neural network
  13. Chapter 3 Predicting the need for mental treatment across various age groups using machine learning algorithms
  14. Chapter 4 Revolutionizing disease forecasting: The role of machine learning in predictive healthcare analytics
  15. Chapter 5 Exploring the role of AI in neurology: Advancements in brain imaging and mental health care
  16. Chapter 6 Machine learning perspectives for detection of Parkinson’s disease
  17. Chapter 7 Revolutionizing chronic disease care with AI-driven wearable technology
  18. Chapter 8 Digital twin and digital triplet technology in healthcare: Benefits and security considerations
  19. Chapter 9 Employing deep learning paradigms for fire and smoke detection
  20. Chapter 10 Emerging trends and future directions in edge-driven intelligence
  21. Chapter 11 Advancements in early detection of lung cancer: A comprehensive review of AI-based techniques
  22. Chapter 12 Fitness and nutrition planner driven by AI
  23. Chapter 13 Introduction to AI and data science in healthcare applications
  24. Chapter 14 AI-driven prediction of drug-target interactions and binding affinity for drug discovery in healthcare
  25. Chapter 15 Enhanced detection of epileptic seizure using supervised and unsupervised machine learning algorithms
  26. Chapter 16 Network setup model over a private blockchain network dealing with security issues
  27. Index

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Yes, you can access Artificial Intelligence and Data Science in Healthcare Applications by Ashwani Kumar,Gautam Srivastava,P. K. Gupta,Mohit Kumar in PDF and/or ePUB format, as well as other popular books in Technology & Engineering & Computer Engineering. We have over 1.5 million books available in our catalogue for you to explore.