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Qualitative company performance evaluation: Linear discriminant analysis and neural network models
Institution:1. Department of Medical Radiation Engineering, College of Engineering, Borujerd Branch, Islamic Azad University, Borujerd, Iran;2. Department of Biomedical Engineering, Science and Research Branch, Islamic Azad University, Tehran, Iran;1. Teagasc, Animal & Grassland Research and Innovation Centre, Moorepark, Fermoy, Co. Cork, Ireland;2. Irish Cattle Breeding Federation, Highfield House, Bandon, Co. Cork, Ireland
Abstract:In this paper, we present a classification model to evaluate the performance of companies on the basis of qualitative criteria, such as organizational and managerial variables. The classification model evaluates the eligibility of the company to receive state subsidies for the development of high tech products. We furthermore created a similar model using the backpropagation learning algorithm and compare its classification performance against the linear model. We also focus on the robustness of the two approaches with respect to uncertain information. This research shows that backpropagation neural networks are not superior to LDA-models (Linear Discriminant Analysis), except when they are given highly uncertain information.
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