DEEP LEARNING IN PREDICTING FINANCIAL FAILURE

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Details

It is extremely important for companies operating in a country both to maintain their own existence and to provide benefits to the country's economy. The globalization of world economies and the resulting economic crises in the world negatively affect the economies of the states and the businesses operating in the world. Within the framework of all these situations, it has become imperative for businesses to be managed financially well and to take the necessary measures before failure in order to prevent or minimize the impact of these crises. For this reason, prediction of financial failure is important. In this study, Altman Z-Score, which is one of the first studies of traditional methods in predicting financial failure and is still frequently used in failure and bankruptcy prediction today, and traditional and modern methods such as artificial neural networks, random forest method, support vector machines, decision trees from machine learning methods are compared and explained. This study is derived from the PhD thesis written by Safak Sönmez Soydas (Advisor: Assoc. Dr. Handan ÇAM) in 2021 and accepted by Gümüshane University Graduate Education Institute.

Autorentext
Dr. Safak Sönmez Soydas: He completed his PhD in the Department of Business Administration at Gümüshane University in 2021. He is currently working as a Dr. at Gümüshane University.Assoc. Prof. Dr. Handan Çam: She received the title of Associate Professor in the field of Management Information Systems in 2019.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09786207448692
    • Genre Business Administration
    • Sprache Englisch
    • Anzahl Seiten 104
    • Herausgeber LAP LAMBERT Academic Publishing
    • Größe H220mm x B150mm x T7mm
    • Jahr 2023
    • EAN 9786207448692
    • Format Kartonierter Einband (Kt)
    • ISBN 6207448693
    • Veröffentlichung 28.11.2023
    • Titel DEEP LEARNING IN PREDICTING FINANCIAL FAILURE
    • Autor afak Sönmez Soyda , Handan Çam
    • Gewicht 173g

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