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Multiple Reject Thresholds for Improving Classification Reliability

机译:多个拒绝阈值,以提高分类的可靠性

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摘要

In pattern recognition systems, Chow's rule is commonly used to reach a trade-off between error and reject probabilities, to this paper, we investigate the effects of estimate errors affecting the a posteriori probabilities on the optimality of Chow's rule. We show that the optimal error-reject tradeoff is not provided by Chow's rule if the a posteriori probabilities are affected by errors. The use of multiple reject thresholds related to the data classes is then proposed. The authors have proved in another work that the reject rule based on such thresholds provides a better error-reject trade-off than in Chow's rule. Reported results on the classification of multisensor remote-sensing images point out the advantages of the proposed reject rule.
机译:在模式识别系统中,通常使用Chow规则在错误概率和拒绝概率之间进行权衡,本文研究影响后验概率的估计误差对Chow规则的最优性的影响。我们证明,如果后验概率受错误影响,则Chow规则不会提供最佳的拒绝错误权衡。然后提出使用与数据类别有关的多个拒绝阈值。作者在另一项工作中证明,基于这种阈值的拒绝规则比Chow规则提供了更好的错误拒绝权衡。关于多传感器遥感图像分类的报告结果指出了所提出的拒绝规则的优点。

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