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- W4387615712 abstract "Imbalanced data are ubiquitous in many real-world applications, and they have drawn a significant amount of attention in the field of data mining. A variety of methods have been proposed for imbalanced data classification, and data sampling methods are more prevalent due to their independence from classification algorithms. However, due to the increasing number of sampling methods, there is no consensus about which sampling method performs best, and contradictory conclusions have been obtained. Therefore, in the present study, we conducted an extensive comparison of 16 different sampling methods with four popular classification algorithms, using 75 imbalanced binary datasets from several different application domains. In addition, four widely-used measures were employed to evaluate the corresponding classification performance. The experimental results showed that none of the employed sampling methods performed the best and stably across all the used classification algorithms and evaluation measures. Furthermore, we also found that the performance of the different sampling methods was usually affected by the classification algorithms employed. Therefore, it is important for practitioners and researchers to simultaneously select appropriate sampling methods and classification algorithms, for handling the imbalanced data problems at hand." @default.
- W4387615712 created "2023-10-14" @default.
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- W4387615712 date "2023-10-13" @default.
- W4387615712 modified "2023-10-15" @default.
- W4387615712 title "How Far Have We Progressed in the Sampling Methods for Imbalanced Data Classification? An Empirical Study" @default.
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- W4387615712 doi "https://doi.org/10.3390/electronics12204232" @default.
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