Interpretable Machine Learning for Heart Disease Prediction explores the application of interpretable and explainable machine learning techniques to the prediction of heart disease. The book focuses on developing predictive models that not only provide accurate results but also offer understandable insights into the factors influencing their predictions.
The book introduces key concepts in machine learning for healthcare and examines how patient data, clinical characteristics, and relevant medical indicators can be used to support heart disease prediction. Particular attention is given to model interpretability, explainability, feature importance, and the communication of machine learning outcomes in a manner that can be understood by researchers, healthcare professionals, and other stakeholders.
Readers are introduced to machine learning approaches suitable for classification and predictive healthcare applications, along with methods for evaluating model performance and interpreting prediction results. The discussion highlights the importance of transparency, reliability, and responsible use of artificial intelligence in medical decision-support systems.
By connecting machine learning methodology with heart disease prediction and model interpretation, this book provides a useful reference for students, researchers, data scientists, engineers, and professionals working in artificial intelligence, machine learning, healthcare analytics, biomedical engineering, and clinical decision support. It is particularly relevant to readers interested in building predictive systems where understanding why a model produces a particular result is as important as prediction accuracy itself.
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Seller: California Books, Miami, FL, U.S.A.
Condition: New. Seller Inventory # I-9781962116558
Seller: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, Germany
Taschenbuch. Condition: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware 196 pp. Englisch. Seller Inventory # 9781962116558