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A comparative assessment of classification methods

机译:分类方法的比较评估

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Classification systems play an important role in business decision-making tasks by classifying the available information based on some criteria. The objective of this research is to assess the relative performance of some well-known classification methods. We consider classification techniques that are based on statistical and AI techniques. We use synthetic data to perform a controlled experiment in which the data characteristics are systematically altered to introduce imperfections such as aonlinearity, multicollinearity, unequal covariance, etc. Our experiments suggest that data characteristics considerably impact the classification performance of the methods. The results of the study can aid in the design of classification systems in which several classification methods can be employed to increase the reliability and consistency of the classification.
机译:分类系统通过基于某些标准对可用信息进行分类,从而在业务决策任务中发挥重要作用。这项研究的目的是评估一些众所周知的分类方法的相对性能。我们考虑基于统计和AI技术的分类技术。我们使用合成数据执行受控实验,在该实验中,系统地更改数据特征以引入缺陷,例如非线性,多重共线性,不等协方差等。我们的实验表明,数据特征极大地影响了方法的分类性能。研究结果有助于分类系统的设计,其中可以采用几种分类方法来提高分类的可靠性和一致性。

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