Predicting Micro-Enterprise Failures Using Data Mining Techniques
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Cited by:
- Christophe Schalck & Meryem Yankol-Schalck, 2021.
"Predicting French SME failures: new evidence from machine learning techniques,"
Applied Economics, Taylor & Francis Journals, vol. 53(51), pages 5948-5963, November.
- Christophe Schalck & Meryem Schalck, 2021. "Predicting French SME Failures: New Evidence from Machine Learning Techniques," Working Papers 2021-009, Department of Research, Ipag Business School.
- Beata Gavurova & Sylvia Jencova & Radovan Bacik & Marta Miskufova & Stanislav Letkovsky, 2022. "Artificial intelligence in predicting the bankruptcy of non-financial corporations," Oeconomia Copernicana, Institute of Economic Research, vol. 13(4), pages 1215-1251, December.
- Shigeyuki Hamori, 2020. "Recent Advancements in Section “Financial Technology and Innovation”," JRFM, MDPI, vol. 13(12), pages 1-2, December.
- Marui Du & Yue Ma & Zuoquan Zhang, 2021. "A Meta Path Based Evaluation Method for Enterprise Credit Risk," Papers 2110.11594, arXiv.org, revised May 2022.
- Shigeyuki Hamori, 2020. "Empirical Finance," JRFM, MDPI, vol. 13(1), pages 1-3, January.
- Xinlin Wang & Zs'ofia Kraussl & Mats Brorsson, 2024. "Datasets for Advanced Bankruptcy Prediction: A survey and Taxonomy," Papers 2411.01928, arXiv.org.
- Tomasz Korol, 2019. "Dynamic Bankruptcy Prediction Models for European Enterprises," JRFM, MDPI, vol. 12(4), pages 1-15, December.
- Tomasz Iwanowicz & Bartłomiej Iwanowicz, 2019. "ISA 701 and Materiality Disclosure as Methods to Minimize the Audit Expectation Gap," JRFM, MDPI, vol. 12(4), pages 1-20, October.
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Keywords
data mining; bankruptcy prediction; financial and non-financial variables;All these keywords.
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