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Machine Learning in Finance
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Machine Learning in Finance

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This book introduces machine learning methods in finance. It presents a unified treatment of machine learning and various statistical and computational disciplines in quantitative finance, such as financial econometrics and discrete time stochastic control, with an emphasis on how theory and hypothesis tests inform the choice of algorithm for financial data modeling and decision making. With the trend towards increasing computational resources and larger datasets, machine learning has grown into an important skillset for the finance industry. This book is written for advanced graduate students and academics in financial econometrics, mathematical finance and applied statistics, in addition to quants and data scientists in the field of quantitative finance. Machine Learning in Finance: From Theory to Practice is divided into three parts, each part covering theory and applications. The first presents supervised learning for cross-sectional data from both a Bayesianand frequentist
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    70,20 €
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Specifications

7 specifications
Product type
Soft cover
EAN / GTIN
9783030410704
Books nl author
Matthew F. Dixon; Igor Halperin; Paul Bilokon
Books nl publisher
Springer International Publishing
Condition
new
Merchant product second category
Books > Mathematics and Statistics

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