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Cost Sensitive Credit Card Fraud Detection using Bayes Minimum Risk
Correa Bahnsen, Alejandro; Stojanovic, Aleksandar; Aouada, Djamila et al.
2013In 12th International Conference on Machine Learning and Applications
Peer reviewed
 

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Keywords :
State-of-the-art algorithms; Crime; Transactional data; State of the art; Credit card frauds; Credit card fraud detections; Cost sensitive classifications; Comparison measures; Risk assessment; Learning systems; Costs; Algorithms; Credit card fraud detection; Cost sensitive classification; Bayesian decision theory
Abstract :
[en] Credit card fraud is a growing problem that affects card holders around the world. Fraud detection has been an interesting topic in machine learning. Nevertheless, current state of the art credit card fraud detection algorithms miss to include the real costs of credit card fraud as a measure to evaluate algorithms. In this paper a new comparison measure that realistically represents the monetary gains and losses due to fraud detection is proposed. Moreover, using the proposed cost measure a cost sensitive method based on Bayes minimum risk is presented. This method is compared with state of the art algorithms and shows improvements up to 23% measured by cost. The results of this paper are based on real life transactional data provided by a large European card processing company.
Disciplines :
Computer science
Identifiers :
eid=2-s2.0-84899437078
Author, co-author :
Correa Bahnsen, Alejandro ;  University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT)
Stojanovic, Aleksandar ;  University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT)
Aouada, Djamila  ;  University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT)
Ottersten, Björn ;  University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT)
External co-authors :
yes
Language :
English
Title :
Cost Sensitive Credit Card Fraud Detection using Bayes Minimum Risk
Publication date :
2013
Event name :
12th International Conference on Machine Learning and Applications
Event organizer :
Association for Machine Learning and Applications (AMLA)
Event place :
Miami, United States
Event date :
from 4-12-2013 to 7-12-2013
Audience :
International
Main work title :
12th International Conference on Machine Learning and Applications
Publisher :
IEEE Computer Society
ISBN/EAN :
978-0-7695-5144-9/13
Pages :
333-338
Peer reviewed :
Peer reviewed
Funders :
Association for Machine Learning and Applications (AML and A);IEEE Computer Society
Commentary :
104787
Available on ORBilu :
since 12 November 2013

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