Advances of Machine Learning for Knowledge Mining in Electronic Health Records
Book Details
Format
Paperback / Softback
ISBN-10
1032527811
ISBN-13
9781032527819
Publisher
Taylor & Francis Ltd
Imprint
Chapman & Hall/CRC
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Jun 21st, 2026
Print length
270 Pages
Weight
530 grams
Product Classification:
Biomedical engineeringBiomedical engineering / Medical engineeringAutomatic control engineeringDigital and Information technology: general topicsInformation technology: general issuesReal time operating systemsSoftware EngineeringComputer architecture & logic designComputer architecture and logic designArtificial intelligenceArtificial intelligence (AI)
Ksh 9,900.00
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The book explores the application of cutting-edge machine learning and deep learning algorithms in mining Electronic Health Records (EHR). With the aim of improving patient health management, this book explains the structure of EHR, consisting of demographics, medical history, and diagnosis.
The book explores the application of cutting-edge machine learning and deep learning algorithms in mining Electronic Health Records (EHR). With the aim of improving patient health management, this book explains the structure of EHR consisting of demographics, medical history, and diagnosis, with a focus on the design and representation of structured, semi-structured, and unstructured data. Explains the design of organized, semi-structured, unstructured, and irregular time series data of electronic health recordsCovers information extraction, standards for meta-data, reuse of metadata for clinical research, and organized and unstructured dataDiscusses supervised and unsupervised learning in electronic health recordsDescribes clustering and classification techniques for organized, semi- structured, and unstructured data from electronic health recordsThis book is an essential resource for researchers and professionals in fields like computer science, biomedical engineering, and information technology, seeking to enhance healthcare efficiency, security, and privacy through advanced data analytics and machine learning.
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