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A new method of building a more effective ensemble classifiers

机译:建立更有效的集成分类器的新方法

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In this contribution the new method for selecting classifiers to build an ensemble classifier is presented. Sometimes we get many classifiers that classify an object based on various premises (attributes). Many of them are of low quality, therefore a new classifier is being built that takes into account the weight of individual classifiers. In general, it gives better results than individual classifiers. However, the use of all classifiers (especially those of low quality) does not always give satisfactory results. Therefore, we present a method that allows to eliminate some classifiers while increasing the quality of classification.
机译:在此贡献中,提出了一种用于选择分类器以构建整体分类器的新方法。有时,我们会得到许多分类器,这些分类器根据各种前提(属性)对对象进行分类。它们中的许多质量低下,因此正在构建一个新的分类器,其中要考虑各个分类器的权重。通常,与单独的分类器相比,它提供了更好的结果。但是,使用所有分类器(尤其是那些低质量的分类器)并不能始终获得令人满意的结果。因此,我们提出了一种在增加分类质量的同时可以消除某些分类器的方法。

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