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Ant colony and particle swarm optimization for financial classification problems

Marinakis Ioannis, Marinaki Magdalini, Michael Doumpos, Zopounidis Konstantinos

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URIhttp://purl.tuc.gr/dl/dias/B9B51182-7749-4065-891F-3C9DA4E6931F-
Identifierhttp://www.sciencedirect.com/science/article/pii/S0957417409002097-
Identifier10.1016/j.eswa.2009.02.055-
Languageen-
Extent7 pagesen
TitleAnt colony and particle swarm optimization for financial classification problemsen
CreatorMarinakis Ioannisen
CreatorΜαρινακης Ιωαννηςel
CreatorMarinaki Magdalinien
CreatorΜαρινακη Μαγδαληνηel
CreatorMichael Doumposen
CreatorΔουμπος Μιχαληςel
CreatorZopounidis Konstantinosen
CreatorΖοπουνιδης Κωνσταντινοςel
PublisherElsevieren
Content SummaryFinancial decisions are often based on classification models which are used to assign a set of observations into predefined groups. Such models ought to be as accurate as possible. One important step towards the development of accurate financial classification models involves the selection of the appropriate independent variables (features) which are relevant for the problem at hand. This is known as the feature selection problem in the machine learning/data mining field. In financial decisions, feature selection is often based on the subjective judgment of the experts. Nevertheless, automated feature selection algorithms could be of great help to the decision-makers providing the means to explore efficiently the solution space. This study uses two nature-inspired methods, namely ant colony optimization and particle swarm optimization, for this problem. The modelling context is developed and the performance of the methods is tested in two financial classification tasks, involving credit risk assessment and audit qualifications.en
Type of ItemPeer-Reviewed Journal Publicationen
Type of ItemΔημοσίευση σε Περιοδικό με Κριτέςel
Licensehttp://creativecommons.org/licenses/by/4.0/en
Date of Item2015-11-09-
Date of Publication2009-
SubjectAnt colony optimizationen
SubjectParticle swarm optimizationen
SubjectFeature selectionen
SubjectNearest neighbour classifiersen
SubjectCredit risk assessmenten
SubjectAuditingen
Bibliographic CitationY. Marinakis, M. Marinaki, M. Doumpos and C. Zopounidis, "Ant colony and particle swarm optimization for financial classification problems," Expert Syst. Applic., vol. 36, no. 7, pp. 10604-10611, Sep. 2009. doi:10.1016/j.eswa.2009.02.055en

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