A novel generative adversarial networks modelling for the class imbalance problem in high dimensional omics data
Publication date
2024-03-28Subject
Health services. ManagementPublic health. Health statistics. Occupational health. Health education
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Class imbalance remains a large problem in high-throughput omics analyses, causing bias towards the over-represented class when training machine learning-based classifiers. Oversampling is a common method used to balance classes, allowing for better generalization of the training data. More naive approaches can introduce other biases into the data, being especially sensitive to inaccuracies in the training data, a problem considering the characteristically noisy data obtained in healthcare. This is especially a problem with high-dimensional data. A generative adversarial network-based method is proposed for creating synthetic samples from small, high-dimensional data, to improve upon other more naive generative approaches. The method was compared with 'synthetic minority over-sampling technique' (SMOTE) and 'random oversampling' (RO). Generative methods were validated by training classifiers on the balanced data. Keywords: Class imbalance; GAN; Multiomics; Synthetic data.Citation
Cusworth S, Gkoutos GV, Acharjee A. A novel generative adversarial networks modelling for the class imbalance problem in high dimensional omics data. BMC Med Inform Decis Mak. 2024 Mar 28;24(1):90. doi: 10.1186/s12911-024-02487-2. PMID: 38549123; PMCID: PMC10979623.Type
ArticlePMID
38549123Publisher
BioMed Centralae974a485f413a2113503eed53cd6c53
10.1186/s12911-024-02487-2
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