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Erschienen in: Quality & Quantity 1/2016

07.01.2015

Usage of artificial neural networks for optimal bankruptcy forecasting. Case study: Eastern European small manufacturing enterprises

verfasst von: T. Slavici, S. Maris, M. Pirtea

Erschienen in: Quality & Quantity | Ausgabe 1/2016

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Abstract

Our study aims to present an optimisation method for the forecasting of bankruptcy. To this end, we elaborate and optimise an artificial neural network (ANN) which, based on the situation of real companies in Eastern Europe, can forecast bankruptcy state. After describing the network structure, the performance is evaluated. Using specific statistical methods, a statistical network optimisation is performed. The conclusion is that ANNs are extremely productive in predicting firm bankruptcy, with the forecast accuracy being higher than the accuracy obtained by traditional methods. The results are applicable at an international level, though the target group of this study contains mainly Eastern European Small Manufacturing Enterprises.

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Metadaten
Titel
Usage of artificial neural networks for optimal bankruptcy forecasting. Case study: Eastern European small manufacturing enterprises
verfasst von
T. Slavici
S. Maris
M. Pirtea
Publikationsdatum
07.01.2015
Verlag
Springer Netherlands
Erschienen in
Quality & Quantity / Ausgabe 1/2016
Print ISSN: 0033-5177
Elektronische ISSN: 1573-7845
DOI
https://doi.org/10.1007/s11135-014-0154-0

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