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Combining discriminant methods in solving classification problems in two-group discriminant analysis

机译:结合判别方法求解两组判别分析中的分类问题

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摘要

As no single-discriminant method outperforms other discriminant methods under all circumstances, decision-makers may solve a classification problem using several discriminant methods and examine their performance for classification purposes in the training sample. Based on this performance, better classification methods might be adopted and poor methods might be avoided. However, which single-discriminant method is best to predict the classification of new observations is still not clear, especially when some methods offer a similar classification performance in the training sample. In this paper, we present a method that combines several discriminant methods to predict the classification of new observations. Simulation experiments are run to test this combining technique.
机译:由于在任何情况下都没有单一判别方法优于其他判别方法,因此决策者可以使用几种判别方法解决分类问题,并在训练样本中检查其分类目的性能。基于此性能,可以采用更好的分类方法,并且可以避免使用不良的方法。然而,哪种单一判别方法最能预测新观测值的分类仍不清楚,尤其是当某些方法在训练样本中提供相似分类性能时。在本文中,我们提出了一种结合几种判别方法来预测新观测值分类的方法。运行仿真实验以测试此组合技术。

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