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On the Influence of Interval Normalization in IVOVO Fuzzy Multi-class Classifier

机译:关于间隔归一化在Ivovo模糊多级分类器的影响

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IVOVO stands for Inverval-Valued One-Vs-One and is the combination of IVTURS fuzzy classifier and the One-Vs-One strategy. This method is designed to improve the performance of IVTURS in multi-class problems, by dividing the original problem into simpler binary ones. The key issue with IVTURS is that interval-valued confidence degrees for each class are returned and, consequently, they have to be normalized for applying a One-Vs-One strategy. However, there is no consensus on which normalization method should be used with intervals. In IVOVO, the normalization method based on the upper bounds was considered as it maintains the admissible order between intervals and also the proportion of ignorance, but no further study was developed. In this work, we aim to extend this analysis considering several normalizations in the literature. We will study both their main theoretical properties and empirical performance in the final results of IVOVO.
机译:Ivovo代表inverval值vs-vs-one,是ivturs模糊分类器和一对一个策略的组合。这种方法旨在通过将原始问题划分为更简单的二进制文件来提高多级问题的IVTURS的性能。 IVTURS的关键问题是每个类的间隔值置信度被返回,因此它们必须被正式化以应用一项策略。但是,没有共识,其中应与间隔使用该方法。在Ivovo中,基于上限的标准化方法被认为是在间隔之间保持允许的顺序以及无知的比例,但没有开发进一步的研究。在这项工作中,我们的目标是考虑到文献中的几个阵正性来扩展此分析。我们将在Ivovo的最终结果中研究其主要的理论特性和实证性能。

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