Distress Risk and Corporate Failure Modelling
eBook - ePub

Distress Risk and Corporate Failure Modelling

The State of the Art

  1. 238 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Distress Risk and Corporate Failure Modelling

The State of the Art

Book details
Table of contents
Citations

About This Book

This book is an introduction text to distress risk and corporate failure modelling techniques. It illustrates how to apply a wide range of corporate bankruptcy prediction models and, in turn, highlights their strengths and limitations under different circumstances. It also conceptualises the role and function of different classifiers in terms of a trade-off between model flexibility and interpretability.

Jones's illustrations and applications are based on actual company failure data and samples. Its practical and lucid presentation of basic concepts covers various statistical learning approaches, including machine learning, which has come into prominence in recent years. The material covered will help readers better understand a broad range of statistical learning models, ranging from relatively simple techniques, such as linear discriminant analysis, to state-of-the-art machine learning methods, such as gradient boosting machines, adaptive boosting, random forests, and deep learning.

The book's comprehensive review and use of real-life data will make this a valuable, easy-to-read text for researchers, academics, institutions, and professionals who make use of distress risk and corporate failure forecasts.

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Yes, you can access Distress Risk and Corporate Failure Modelling by Stewart Jones in PDF and/or ePUB format, as well as other popular books in Business & Financial Accounting. We have over one million books available in our catalogue for you to explore.

Information

Publisher
Routledge
Year
2022
ISBN
9781317225362
Edition
1

Table of contents

  1. Cover
  2. Endorsements
  3. Half Title
  4. Series
  5. Title
  6. Copyright
  7. Contents
  8. List of Tables
  9. List of Figures
  10. 1 The Relevance and Utility of Distress Risk and Corporate Failure Forecasts
  11. 2 Searching for the Holy Grail: Alternative Statistical Modelling Approaches
  12. 3 The Rise of the Machines
  13. 4 An Empirical Application of Modern Machine Learning Methods
  14. 5 Corporate Failure Models for Private Companies, Not-for Profits, and Public Sector Entities
  15. 6 Whither Corporate Failure Research?
  16. Appendix: Description of Prediction Models
  17. References
  18. Index