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Data mining and analytics in healthc...
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Olson, David L.
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Data mining and analytics in healthcare management = applications and tools /
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Data mining and analytics in healthcare management/ by David L. Olson, Ozgur M. Araz.
其他題名:
applications and tools /
作者:
Olson, David L.
其他作者:
Araz, Ozgur M.
出版者:
Cham :Springer Nature Switzerland : : 2023.,
面頁冊數:
x, 191 p. :ill. (some col.), digital ;24 cm.
內容註:
Chapter 1: Urgency in Healthcare Data Analytics -- Chapter 2: Analytics and Knowledge Management in Healthcare -- Chapter 3: Visualization -- Chapter 4: Association Rules -- Chapter 5: Cluster Analysis -- Chapter 6: Time Series Forecasting -- Chapter 7: Classification Models -- Chapter 8: Applications of Predictive Data Mining in Healthcare -- Chapter 9: Decision Analysis and Applications in Healthcare -- Chapter 10: Analysis of Four Medical Datasets -- Chapter 11: Multiple Criteria Decision Models in Healthcare- Chapter 12: Naïve Bayes Models in Healthcare -- Chapter 13: Summation.
Contained By:
Springer Nature eBook
標題:
Health services administration - Data processing. -
電子資源:
https://doi.org/10.1007/978-3-031-28113-6
ISBN:
9783031281136
Data mining and analytics in healthcare management = applications and tools /
Olson, David L.
Data mining and analytics in healthcare management
applications and tools /[electronic resource] :by David L. Olson, Ozgur M. Araz. - Cham :Springer Nature Switzerland :2023. - x, 191 p. :ill. (some col.), digital ;24 cm. - International series in operations research & management science,v. 3412214-7934 ;. - International series in operations research & management science ;v. 341..
Chapter 1: Urgency in Healthcare Data Analytics -- Chapter 2: Analytics and Knowledge Management in Healthcare -- Chapter 3: Visualization -- Chapter 4: Association Rules -- Chapter 5: Cluster Analysis -- Chapter 6: Time Series Forecasting -- Chapter 7: Classification Models -- Chapter 8: Applications of Predictive Data Mining in Healthcare -- Chapter 9: Decision Analysis and Applications in Healthcare -- Chapter 10: Analysis of Four Medical Datasets -- Chapter 11: Multiple Criteria Decision Models in Healthcare- Chapter 12: Naïve Bayes Models in Healthcare -- Chapter 13: Summation.
This book presents data mining methods in the field of healthcare management in a practical way. Healthcare quality and disease prevention are essential in today's world. Healthcare management faces a number of challenges, e.g. reducing patient growth through disease prevention, stopping or slowing disease progression, and reducing healthcare costs while improving quality of care. The book provides an overview of current healthcare management problems and highlights how analytics and knowledge management have been used to better cope with them. It then demonstrates how to use descriptive and predictive analytics tools to help address these challenges. In closing, it presents applications of software solutions in the context of healthcare management. Given its scope, the book will appeal to a broad readership, from researchers and students in the operations research and management field to practitioners such as data analysts and decision-makers who work in the healthcare sector.
ISBN: 9783031281136
Standard No.: 10.1007/978-3-031-28113-6doiSubjects--Topical Terms:
846330
Health services administration
--Data processing.
LC Class. No.: RA971.6 / .O47 2023
Dewey Class. No.: 362.102856312
Data mining and analytics in healthcare management = applications and tools /
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Chapter 1: Urgency in Healthcare Data Analytics -- Chapter 2: Analytics and Knowledge Management in Healthcare -- Chapter 3: Visualization -- Chapter 4: Association Rules -- Chapter 5: Cluster Analysis -- Chapter 6: Time Series Forecasting -- Chapter 7: Classification Models -- Chapter 8: Applications of Predictive Data Mining in Healthcare -- Chapter 9: Decision Analysis and Applications in Healthcare -- Chapter 10: Analysis of Four Medical Datasets -- Chapter 11: Multiple Criteria Decision Models in Healthcare- Chapter 12: Naïve Bayes Models in Healthcare -- Chapter 13: Summation.
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This book presents data mining methods in the field of healthcare management in a practical way. Healthcare quality and disease prevention are essential in today's world. Healthcare management faces a number of challenges, e.g. reducing patient growth through disease prevention, stopping or slowing disease progression, and reducing healthcare costs while improving quality of care. The book provides an overview of current healthcare management problems and highlights how analytics and knowledge management have been used to better cope with them. It then demonstrates how to use descriptive and predictive analytics tools to help address these challenges. In closing, it presents applications of software solutions in the context of healthcare management. Given its scope, the book will appeal to a broad readership, from researchers and students in the operations research and management field to practitioners such as data analysts and decision-makers who work in the healthcare sector.
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