Data-Driven Approach for Bio-medical and Healthcare [E-Book] / edited by Nilanjan Dey.
The book presents current research advances, both academic and industrial, in machine learning, artificial intelligence, and data analytics for biomedical and healthcare applications. The book deals with key challenges associated with biomedical data analysis including higher dimensions, class imbal...
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Full text |
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Personal Name(s): | Dey, Nilanjan, editor |
Edition: |
1st edition 2023. |
Imprint: |
Singapore :
Springer,
2023
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Physical Description: |
XIII, 233 pages 102 illustrations, 81 illustrations in color (online resource) |
Note: |
englisch |
ISBN: |
9789811951848 |
DOI: |
10.1007/978-981-19-5184-8 |
Series Title: |
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Data-Intensive Research
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Subject (LOC): |
- Chapter 1. Personal Health Record Data-Driven Integration of Heterogeneous Data
- Chapter 2. Privacy issues in data-driven healthcare
- Chapter 3. Personalizing the Patient Discharge Process and Follow Up Using Machine Learning Algorithms, Assessment Questionnaires and Ontology Reasoning
- Chapter 4. Explaining decisions of quantum algorithm: patient specific features explanation for epilepsy disease
- Chapter 5. Bioinformatics study for determination of the binding efficacy of heme-based protein
- Chapter 6. Growth Trend of Swine Flu and Covid 19 Pandemic A_ected Patients using Fuzzy Cellular Automata: A Study
- Chapter 7. Data-driven approach study for the prediction and detection of infectious disease outbreak
- Chapter 8. Design and development of interactive, real time dashboard to understand COVID-19 situation in Pune
- Chapter 9. Analyzing The Impact of Covid-19 and Vaccination using Machine Learning and ANN
- Chapter 10. Development of Psychiatric COVID-19 CHATBOT using Deep Learning
- Chapter 11. Adv nced Mathematical Model to Measure the Severity of any Pandemics
- Chapter 12. Semi-Structured Patient Data in Electronic Health Record.