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A Comparative Review of SMOTE and ADASYN in Imbalanced Data Classification
Uppsala universitet, Humanistisk-samhällsvetenskapliga vetenskapsområdet, Samhällsvetenskapliga fakulteten, Statistiska institutionen.
Uppsala universitet, Humanistisk-samhällsvetenskapliga vetenskapsområdet, Samhällsvetenskapliga fakulteten, Statistiska institutionen.
2021 (engelsk)Independent thesis Basic level (degree of Bachelor), 10 poäng / 15 hpOppgave
Abstract [en]

In this thesis, the performance of two over-sampling techniques, SMOTE and ADASYN, is compared. The comparison is done on three imbalanced data sets using three different classification models and evaluation metrics, while varying the way the data is pre-processed. The results show that both SMOTE and ADASYN improve the performance of the classifiers in most cases. It is also found that SVM in conjunction with SMOTE performs better than with ADASYN as the degree of class imbalance increases. Furthermore, both SMOTE and ADASYN increase the relative performance of the Random forest as the degree of class imbalance grows. However, no pre-processing method consistently outperforms the other in its contribution to better performance as the degree of class imbalance varies.

sted, utgiver, år, opplag, sider
2021. , s. 42
Emneord [en]
Machine learning, supervised learning, classification, class imbalance, over-sampling, SMOTE, ADASYN, Sensitivity, F-measure, Matthews correlation coefficient
HSV kategori
Identifikatorer
URN: urn:nbn:se:uu:diva-432162OAI: oai:DiVA.org:uu-432162DiVA, id: diva2:1519153
Fag / kurs
Statistics
Utdanningsprogram
Bachelor Programme in Business and Economics
Veileder
Examiner
Tilgjengelig fra: 2021-01-26 Laget: 2021-01-18 Sist oppdatert: 2021-01-26bibliografisk kontrollert

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