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Subclass problem-dependent design for error-correcting output codes

机译:子类问题相关的设计,用于纠错输出代码

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摘要

A common way to model multiclass classification problems is by means of Error-Correcting Output Codes (ECOCs). Given a multiclass problem, the ECOC technique designs a code word for each class, where each position of the code identifies the membership of the class for a given binary problem. A classification decision is obtained by assigning the label of the class with the closest code. One of the main requirements of the ECOC design is that the base classifier is capable of splitting each subgroup of classes from each binary problem. However, we cannot guarantee that a linear classifier model convex regions. Furthermore, nonlinear classifiers also fail to manage some type of surfaces. In this paper, we present a novel strategy to model multiclass classification problems using subclass information in the ECOC framework. Complex problems are solved by splitting the original set of classes into subclasses and embedding the binary problems in a problem-dependent ECOC design. Experimental results show that the proposed splitting procedure yields a better performance when the class overlap or the distribution of the training objects conceal the decision boundaries for the base classifier. The results are even more significant when one has a sufficiently large training size.
机译:对多类分类问题建模的一种常用方法是通过纠错输出代码(ECOC)。给定一个多类问题,ECOC技术为每个类设计一个代码字,其中代码的每个位置标识给定二进制问题的类的成员身份。通过为类别的标签分配最接近的代码来获得分类决策。 ECOC设计的主要要求之一是基本分类器能够从每个二元问题中拆分出每个类别的子组。但是,我们不能保证线性分类器可以对凸区域建模。此外,非线性分类器也无法管理某些类型的曲面。在本文中,我们提出了一种在ECOC框架中使用子类信息对多类分类问题建模的新颖策略。通过将原始的类集划分为子类并在与问题相关的ECOC设计中嵌入二进制问题,可以解决复杂的问题。实验结果表明,当分类重叠或训练对象的分布掩盖了基础分类器的决策边界时,所提出的分割程序具有更好的性能。当训练量足够大时,结果将更加显着。

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