Machine Learning Applications for Accounting Disclosure and Fraud Detection

Machine Learning Applications for Accounting Disclosure and Fraud Detection - Advances in Finance, Accounting, and Economics (AFAE) Book Series.

Hardback (30 Oct 2020)

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Publisher's Synopsis

The prediction of the valuation of the "quality" of firm accounting disclosure is an emerging economic problem that has not been adequately analyzed in the relevant economic literature. While there are a plethora of machine learning methods and algorithms that have been implemented in recent years in the field of economics that aim at creating predictive models for detecting business failure, only a small amount of literature is provided towards the prediction of the "actual" financial performance of the business activity.

Machine Learning Applications for Accounting Disclosure and Fraud Detection is a crucial reference work that uses machine learning techniques in accounting disclosure and identifies methodological aspects revealing the deployment of fraudulent behavior and fraud detection in the corporate environment. The book applies machine learning models to identify "quality" characteristics in corporate accounting disclosure, proposing specific tools for detecting core business fraud characteristics. Covering topics that include data mining; fraud governance, detection, and prevention; and internal auditing, this book is essential for accountants, auditors, managers, fraud detection experts, forensic accountants, financial accountants, IT specialists, corporate finance experts, business analysts, academicians, researchers, and students.

Book information

ISBN: 9781799848059
Publisher: IGI Global
Imprint: IGI Global
Pub date:
DEWEY: 657.0285631
DEWEY edition: 23
Language: English
Number of pages: xxi, 270
Weight: 980g
Height: 279mm
Width: 216mm
Spine width: 18mm