Data Science and Risk Analytics in Finance and Insurance: Chapman and Hall/CRC Financial Mathematics Series
Autor Tze Leung Lai, Haipeng Xingen Limba Engleză Hardback – 2 oct 2024
Key Features:
- Provides a comprehensive and in-depth overview of data science methods for financial and insurance risks.
- Unravels bandits, Markov decision processes, reinforcement learning, and their interconnections.
- Promotes sequential surveillance and predictive analytics for abrupt changes in risk factors.
- Introduces the ABCDs of FinTech: Artificial intelligence, blockchain, cloud computing, and big data analytics.
- Includes supplements and exercises to facilitate deeper comprehension.
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Specificații
ISBN-13: 9781439839485
ISBN-10: 1439839484
Pagini: 380
Ilustrații: 72
Dimensiuni: 156 x 234 mm
Greutate: 0.86 kg
Ediția:1
Editura: CRC Press
Colecția CRC Press
Seria Chapman and Hall/CRC Financial Mathematics Series
Locul publicării:Boca Raton, United States
ISBN-10: 1439839484
Pagini: 380
Ilustrații: 72
Dimensiuni: 156 x 234 mm
Greutate: 0.86 kg
Ediția:1
Editura: CRC Press
Colecția CRC Press
Seria Chapman and Hall/CRC Financial Mathematics Series
Locul publicării:Boca Raton, United States
Public țintă
Academic and Professional ReferenceCuprins
Preface Part 1: Background and Basic Analytics 1. Risk management and regulation 2. Basic concepts and methods in risk management 3. Financial derivatives and their pricing theory 4. Insurance risk and credibility theory Part 2: Advanced Data and Risk Analytics 5. Supervised and unsupervised learning 6. Bandit, Markov decision process and reinforcement learning 7. Monte Carlo methods and rare event analytics 8. Surveillance and predictive analytics Part 3: Data and Risk Analytics in FinTech 9. FinTech ABCD and analytics Bibliography Index
Notă biografică
Tze Leung Lai is the Ray Lyman Wilbur Professor and Professor of Statistics at Stanford University. He received the COPSS Presidents' Award in 1983. He has published extensively on sequential statistical analysis and a wide range of applications in the biomedical sciences, engineering, and finance.
Haipeng Xing is a Professor of Applied Mathematics and Statistics at State University of New York, Stony Brook. His research interests include sequential statistical methods and its applications, econometrics, quantitative finance, and recursive methods in macroeconomics.
Haipeng Xing is a Professor of Applied Mathematics and Statistics at State University of New York, Stony Brook. His research interests include sequential statistical methods and its applications, econometrics, quantitative finance, and recursive methods in macroeconomics.
Descriere
This book presents statistics and data science methods for risk analytics in quantitative finance and insurance. The book offers a non-technical introduction to four key areas in financial technology: artificial intelligence, blockchain, cloud computing, and big data analytics.