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Are case-based reasoning and dissimilarity-based classification two sides of the same coin?

机译:基于案例的推理和基于异类的分类是同一枚硬币的两个方面吗?

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Case-based reasoning (CBR) is used when generalized knowledge is lacking. The method works on a set of cases formerly processed and stored in the case base. A new case is interpreted based on its similarity to cases in the case base. The closest case with its associated result is selected and presented as output of the system. Recently, dissimilarity-based classification (DSC) has been introduced due to the curse of dimensionality of feature spaces and the problem arising when trying to make image features explicitly. The approach classifies samples based on their dissimilarity value to all training samples. In this paper we are reviewing the basic properties of these two approaches. We show the similarity of dissimilarity-based classification to case-based reasoning. Finally, we conclude that dissimilarity-based classification is a variant of case-based reasoning and that most of the open problems in dissimilarity-based classification are research topics of case-based reasoning.
机译:当缺乏通用知识时,使用基于案例的推理(CBR)。该方法适用于先前处理过并存储在案例库中的一组案例。根据新案例与案例库中案例的相似性来解释新案例。选择最接近的情况及其相关结果,并作为系统输出显示。最近,由于特征空间维数的诅咒以及试图显式制作图像特征时出现的问题,引入了基于差异的分类(DSC)。该方法基于样本与所有训练样本的相异度值对样本进行分类。在本文中,我们正在回顾这两种方法的基本属性。我们展示了基于差异的分类与基于案例的推理的相似性。最后,我们得出结论,基于差异的分类是基于案例的推理的变体,并且基于差异的分类中的大多数未解决问题都是基于案例的推理的研究主题。

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