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On The Combination Of Locally Optimal Pairwise Classifiers

机译:关于局部最优成对分类器的组合

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Classification methods generally rely on some idea about the data structure. If the specific assumptions are not met, a classifier may fail. In this paper, the possibility of combining classifiers in multi-class problems is investigated. Multi-class classification problems are split into two class problems. For each of the latter problems an optimal classifier is determined. The results of applying the optimal classifiers on the two class problems can be combined using a pairwise coupling algorithm.rnIn this paper, exemplary situations are investigated where the respective assumptions of Naive Bayes or the classical Linear Discriminant Analysis (LDA) fail. It is investigated at which degree of violations of the assumptions it may be advantageous to use single methods or a classifier combination by pairwise coupling.
机译:分类方法通常依赖于有关数据结构的某种想法。如果不满足特定的假设,分类器可能会失败。本文研究了在多类问题中组合分类器的可能性。多类分类问题分为两类。对于后一个问题,确定最佳分类器。可以使用成对耦合算法将在两个类别问题上应用最佳分类器的结果组合起来。在本文中,研究了朴素贝叶斯或经典线性判别分析(LDA)的各个假设均告失败的示例情况。研究了在哪种条件下违反假设可能有利于使用单一方法或通过成对耦合的分类器组合。

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