Classification with class imbalance problem: a review
Most existing classification approaches assume the underlying training set is evenly distributed. In class imbalanced classification, the training set for one class (majority) far surpassed the training set of the other class (minority), in which, the minority class is often the more interesting cla...
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International Center for Scientific Research and Studies
2015
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my.utm.580562021-09-26T15:51:47Z http://eprints.utm.my/id/eprint/58056/ Classification with class imbalance problem: a review Ali, Aida Shamsuddin, Siti Mariyam Ralescu, Anca L. QA75 Electronic computers. Computer science Most existing classification approaches assume the underlying training set is evenly distributed. In class imbalanced classification, the training set for one class (majority) far surpassed the training set of the other class (minority), in which, the minority class is often the more interesting class. In this paper, we review the issues that come with learning from imbalanced class data sets and various problems in class imbalance classification. A survey on existing approaches for handling classification with imbalanced datasets is also presented. Finally, we discuss current trends and advancements which potentially could shape the future direction in class imbalance learning and classification. We also found out that the advancement of machine learning techniques would mostly benefit the big data computing in addressing the class imbalance problem which is inevitably presented in many real world applications especially in medicine and social media. International Center for Scientific Research and Studies 2015 Article PeerReviewed Ali, Aida and Shamsuddin, Siti Mariyam and Ralescu, Anca L. (2015) Classification with class imbalance problem: a review. International Journal of Advances in Soft Computing and its Applications, 7 (3). pp. 176-204. ISSN 2074-8523 http://home.ijasca.com/data/documents/13IJASCA-070301_Pg176-204_Classification-with-class-imbalance-problem_A-Review.pdf |
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QA75 Electronic computers. Computer science Ali, Aida Shamsuddin, Siti Mariyam Ralescu, Anca L. Classification with class imbalance problem: a review |
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Most existing classification approaches assume the underlying training set is evenly distributed. In class imbalanced classification, the training set for one class (majority) far surpassed the training set of the other class (minority), in which, the minority class is often the more interesting class. In this paper, we review the issues that come with learning from imbalanced class data sets and various problems in class imbalance classification. A survey on existing approaches for handling classification with imbalanced datasets is also presented. Finally, we discuss current trends and advancements which potentially could shape the future direction in class imbalance learning and classification. We also found out that the advancement of machine learning techniques would mostly benefit the big data computing in addressing the class imbalance problem which is inevitably presented in many real world applications especially in medicine and social media. |
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Article |
author |
Ali, Aida Shamsuddin, Siti Mariyam Ralescu, Anca L. |
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Ali, Aida Shamsuddin, Siti Mariyam Ralescu, Anca L. |
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Ali, Aida |
title |
Classification with class imbalance problem: a review |
title_short |
Classification with class imbalance problem: a review |
title_full |
Classification with class imbalance problem: a review |
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Classification with class imbalance problem: a review |
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Classification with class imbalance problem: a review |
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classification with class imbalance problem: a review |
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International Center for Scientific Research and Studies |
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2015 |
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http://eprints.utm.my/id/eprint/58056/ http://home.ijasca.com/data/documents/13IJASCA-070301_Pg176-204_Classification-with-class-imbalance-problem_A-Review.pdf |
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