HYBRID NEURAL INTELLIGENT SYSTEM TO PREDICT BUSINESS FAILURE IN SMALL-TO-MEDIUM-SIZE ENTERPRISES

Author:

BORRAJO M. LOURDES1,BARUQUE BRUNO2,CORCHADO EMILIO3,BAJO JAVIER3,CORCHADO JUAN M.3

Affiliation:

1. Department of Informática, University of Vigo, Edificio Politécnico, Campus Universitario As Lagoas s/n, Ourense, 32004, Spain

2. Department of de Ingeniería Civil, University of Burgos, Esc. Politécnica Superior, Edificio C, C/Francisco de Vitoria, 09006, Burgos, Spain

3. Departamento de Informática y Automática, University of Salamanca, Plaza de la Merced s/n, 37008, Salamanca, Spain

Abstract

During the last years there has been a growing need of developing innovative tools that can help small to medium sized enterprises to predict business failure as well as financial crisis. In this study we present a novel hybrid intelligent system aimed at monitoring the modus operandi of the companies and predicting possible failures. This system is implemented by means of a neural-based multi-agent system that models the different actors of the companies as agents. The core of the multi-agent system is a type of agent that incorporates a case-based reasoning system and automates the business control process and failure prediction. The stages of the case-based reasoning system are implemented by means of web services: the retrieval stage uses an innovative weighted voting summarization of self-organizing maps ensembles-based method and the reuse stage is implemented by means of a radial basis function neural network. An initial prototype was developed and the results obtained related to small and medium enterprises in a real scenario are presented.

Publisher

World Scientific Pub Co Pte Lt

Subject

Computer Networks and Communications,General Medicine

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