Econometrics with Machine Learning (Advanced Studies in Theoretical and Applied Econometrics, 53)

Springer
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9783031151484
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ISBN13:
9783031151484
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This book helps and promotes the use of machine learning tools and techniques in econometrics and explains how machine learning can enhance and expand the econometrics toolbox in theory and in practice. Throughout the volume, the authors raise and answer six questions: 1) What are the similarities between existing econometric and machine learning techniques? 2) To what extent can machine learning techniques assist econometric investigation? Specifically, how robust or stable is the prediction from machine learning algorithms given the ever-changing nature of human behavior? 3) Can machine learning techniques assist in testing statistical hypotheses and identifying causal relationships in ‘big data? 4) How can existing econometric techniques be extended by incorporating machine learning concepts? 5) How can new econometric tools and approaches be elaborated on based on machine learning techniques? 6) Is it possible to develop machine learning techniques further and make them even more readily applicable in econometrics? As the data structures in economic and financial data become more complex and models become more sophisticated, the book takes a multidisciplinary approach in developing both disciplines of machine learning and econometrics in conjunction, rather than in isolation. This volume is a must-read for scholars, researchers, students, policy-makers, and practitioners, who are using econometrics in theory or in practice.


  • | Author: Felix Chan, László Mátyás
  • | Publisher: Springer
  • | Publication Date: Sep 08, 2022
  • | Number of Pages: 393 pages
  • | Language: English
  • | Binding: Hardcover/Business & Economics
  • | ISBN-10: 3031151488
  • | ISBN-13: 9783031151484
Author:
Felix Chan, László Mátyás
Publisher:
Springer
Publication Date:
Sep 08, 2022
Number of pages:
393 pages
Language:
English
Binding:
Hardcover/Business & Economics
ISBN-10:
3031151488
ISBN-13:
9783031151484