An Adaptive Safe-Region Diversity Oversampling Algorithm for Imbalanced Classification
Liangliang Tao,
Huixian Li,
Faqiang Wang
et al.
Abstract:The challenge of imbalanced data classification stems from the uneven distribution of data across classes, which is a formidable obstacle for traditional classifiers. Although numerous methods have been proposed to address this problem, it is widely recognized that the artificial generation of instances through oversampling methods is a more effective and versatile strategy for balancing the class distribution. We identify that existing oversampling methods are susceptible to generating unnecessary and noisy i… Show more
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