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Jingyi Jessica Li
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Bridging Cost-sensitive and Neyman-Pearson Paradigms for Asymmetric Binary Classification
2020 · arXiv (Cornell University)
Asymmetric binary classification problems, in which the type I and II errors have unequal severity, are ubiquitous in real-world applications. To handle such asymmetry, researchers have developed the cost-sensitive and Neyman-Pearson paradigms for training classifiers …