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Sub-class Error-Correcting Output Codes

机译:子类错误校正输出代码

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A common way to model multi-class classification problems is by means of Error-Correcting Output Codes (ECOC). One of the main requirements of the ECOC design is that the base classifier is capable of splitting each sub-group of classes from each binary problem. In this paper, we present a novel strategy to model multi-class classification problems using sub-class information in the ECOC framework. Complex problems are solved by splitting the original set of classes into sub-classes, and embedding the binary problems in a problem-dependent ECOC design. Experimental results over a set of UCI data sets and on a real multi-class traffic sign categorization problem show that the proposed splitting procedure yields a better performance when the class overlap or the distribution of the training objects conceil the decision boundaries for the base classifier.
机译:模拟多级分类问题的常用方法是通过纠错输出代码(ECOC)。 ECOC设计的主要要求之一是基本分类器能够从每个二进制问题拆分每个子组。在本文中,我们在ecoC框架中使用子类信息来提出一种模拟多级分类问题的新策略。通过将原始类别分成子类别来解决复杂问题,并将二进制问题嵌入有关依赖的ECOC设计中。在一组UCI数据集和实际多级流量标志分类问题上的实验结果表明,当类重叠或训练对象对基本分类器的判定边界进行分发时,所提出的分割过程会产生更好的性能。

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