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Indebted Households Profiling: A Knowledge Discovery from Database Approach
by
Ladas, Alexandros
, Aickelin, Uwe
, Scarpel, Rodrigo Arnaldo
in
Artificial Intelligence
/ Business and Management
/ Clusters
/ Continuity (mathematics)
/ Credit risk
/ Economics
/ Finance
/ Households
/ Insurance
/ Knowledge discovery
/ Management
/ Portfolio management
/ Risk assessment
/ Statistics for Business
2015
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Indebted Households Profiling: A Knowledge Discovery from Database Approach
by
Ladas, Alexandros
, Aickelin, Uwe
, Scarpel, Rodrigo Arnaldo
in
Artificial Intelligence
/ Business and Management
/ Clusters
/ Continuity (mathematics)
/ Credit risk
/ Economics
/ Finance
/ Households
/ Insurance
/ Knowledge discovery
/ Management
/ Portfolio management
/ Risk assessment
/ Statistics for Business
2015
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Indebted Households Profiling: A Knowledge Discovery from Database Approach
by
Ladas, Alexandros
, Aickelin, Uwe
, Scarpel, Rodrigo Arnaldo
in
Artificial Intelligence
/ Business and Management
/ Clusters
/ Continuity (mathematics)
/ Credit risk
/ Economics
/ Finance
/ Households
/ Insurance
/ Knowledge discovery
/ Management
/ Portfolio management
/ Risk assessment
/ Statistics for Business
2015
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Indebted Households Profiling: A Knowledge Discovery from Database Approach
Journal Article
Indebted Households Profiling: A Knowledge Discovery from Database Approach
2015
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Overview
A major challenge in consumer credit risk portfolio management is to classify households according to their risk profile. In order to build such risk profiles it is necessary to employ an approach that analyses data systematically in order to detect important relationships, interactions, dependencies and associations amongst the available continuous and categorical variables altogether and accurately generate profiles of most interesting household segments according to their credit risk. The objective of this work is to employ a knowledge discovery from database process to identify groups of indebted households and describe their profiles using a database collected by the Consumer Credit Counselling Service (CCCS) in the UK. Employing a framework that allows the usage of both categorical and continuous data altogether to find hidden structures in unlabelled data it was established the ideal number of clusters and such clusters were described in order to identify the households who exhibit a high propensity of excessive debt levels.
Publisher
Springer Berlin Heidelberg,Springer Nature B.V
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