<efrbr:recordSet xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:efrbr="http://vfrbr.info/efrbr/1.1" xmlns:efrbr-work="http://vfrbr.info/efrbr/1.1/work" xmlns:efrbr-expression="http://vfrbr.info/efrbr/1.1/expression" xmlns:efrbr-manifestation="http://vfrbr.info/efrbr/1.1/manifestation" xmlns:efrbr-person="http://vfrbr.info/efrbr/1.1/person" xmlns:efrbr-corporateBody="http://vfrbr.info/efrbr/1.1/corporateBody" xmlns:efrbr-concept="http://vfrbr.info/efrbr/1.1/concept" xmlns:efrbr-structure="http://vfrbr.info/efrbr/1.1/structure" xmlns:efrbr-responsible="http://vfrbr.info/efrbr/1.1/responsible" xmlns:efrbr-subject="http://vfrbr.info/efrbr/1.1/subject" xmlns:efrbr-other="http://vfrbr.info/efrbr/1.1/other" xsi:schemaLocation="http://vfrbr.info/efrbr/1.1 http://vfrbr.info/schemas/1.1/efrbr.xsd"><efrbr:entities><efrbr-work:work identifier="http://purl.tuc.gr/dl/dias/C879D2B4-301F-411D-A9F6-72EFA8BD6AE0"><efrbr-work:titleOfTheWork>Sample selection algorithms for credit risk modelling through data mining techniques</efrbr-work:titleOfTheWork></efrbr-work:work><efrbr-expression:expression identifier="http://purl.tuc.gr/dl/dias/C879D2B4-301F-411D-A9F6-72EFA8BD6AE0"><efrbr-expression:titleOfTheExpression>Sample selection algorithms for credit risk modelling through data mining techniques</efrbr-expression:titleOfTheExpression><efrbr-expression:formOfExpression vocabulary="DIAS:TYPES">
            Peer-Reviewed Journal Publication
            Δημοσίευση σε Περιοδικό με Κριτές
         </efrbr-expression:formOfExpression><efrbr-expression:dateOfExpression type="issued">2020-11-03</efrbr-expression:dateOfExpression><efrbr-expression:dateOfExpression type="published">2019</efrbr-expression:dateOfExpression><efrbr-expression:languageOfExpression vocabulary="iso639-1">en</efrbr-expression:languageOfExpression><efrbr-expression:summarizationOfContent>Credit risk assessment is a very challenging and important problem in the domain of financial risk management. The development of reliable credit rating/scoring models is of paramount importance in this area. There are different algorithms and approaches for constructing such models to classify credit applicants (firms or individuals) into risk classes. Reliable sample selection is crucial for this task. The aim of this paper is to examine the effectiveness of sample selection schemes in combination with different classifiers for constructing reliable default prediction models. We consider different algorithms to select representative cases and handle class imbalances. Empirical results are reported for a dataset of Greek companies from the commercial sector.</efrbr-expression:summarizationOfContent><efrbr-expression:useRestrictionsOnTheExpression type="creative-commons">http://creativecommons.org/licenses/by/4.0/</efrbr-expression:useRestrictionsOnTheExpression><efrbr-expression:note type="journal name">International Journal of Data Mining, Modelling and Management</efrbr-expression:note><efrbr-expression:note type="journal volume">11</efrbr-expression:note><efrbr-expression:note type="journal number">2</efrbr-expression:note><efrbr-expression:note type="page range">103-128</efrbr-expression:note></efrbr-expression:expression><efrbr-person:person identifier="http://users.isc.tuc.gr/~eprotopapadakis"><efrbr-person:nameOfPerson vocabulary="TUC:LDAP">
            Protopapadakis Eftychios
            Πρωτοπαπαδακης Ευτυχιος
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            Doumpos Michail
            Δουμπος Μιχαηλ
         </efrbr-person:nameOfPerson></efrbr-person:person><efrbr-person:person identifier="http://users.isc.tuc.gr/~adoulamis"><efrbr-person:nameOfPerson vocabulary="TUC:LDAP">
            Doulamis Anastasios
            Δουλαμης Αναστασιος
         </efrbr-person:nameOfPerson></efrbr-person:person><efrbr-person:person identifier="http://users.isc.tuc.gr/~kzopounidis"><efrbr-person:nameOfPerson vocabulary="TUC:LDAP">
            Zopounidis Konstantinos
            Ζοπουνιδης Κωνσταντινος
         </efrbr-person:nameOfPerson></efrbr-person:person><efrbr-person:person identifier="http://users.isc.tuc.gr/~dniklis"><efrbr-person:nameOfPerson vocabulary="TUC:LDAP">
            Niklis Dimitrios
            Νικλης Δημητριος
         </efrbr-person:nameOfPerson></efrbr-person:person><efrbr-corporateBody:corporateBody identifier="https://v2.sherpa.ac.uk/id/publisher/148"><efrbr-corporateBody:nameOfTheCorporateBody vocabulary="S/R:PUBLISHERS">
            Inderscience
         </efrbr-corporateBody:nameOfTheCorporateBody></efrbr-corporateBody:corporateBody><efrbr-concept:concept identifier="EB710DF5-8E02-432C-A4D4-344DA11F9A7A"><efrbr-concept:termForTheConcept>
            Classification
         </efrbr-concept:termForTheConcept></efrbr-concept:concept><efrbr-concept:concept identifier="D29AB20F-4043-462F-B805-9592F06777B3"><efrbr-concept:termForTheConcept>
            Credit risk modelling
         </efrbr-concept:termForTheConcept></efrbr-concept:concept><efrbr-concept:concept identifier="3C449CC6-5F0B-4D73-947F-FF57039C272A"><efrbr-concept:termForTheConcept>
            Data mining
         </efrbr-concept:termForTheConcept></efrbr-concept:concept><efrbr-concept:concept identifier="EDA6C095-40DA-4363-86A9-FF4407107ED9"><efrbr-concept:termForTheConcept>
            Sampling
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