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How to Select the Inputs for a Multilayer Feedforward Network by Using the Training Set

机译:如何使用训练集为多层前馈网络选择输入

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摘要

In this paper, we present a review of feature selection methods based on an analysis of the training set which have been applied to neural networks. This type of methods uses information theory concepts, interclass and intraclass distances or an analysis of fuzzy regions. Furthermore, a methodology that allows evaluating and comparing feature selection methods is carfully described. This methodology is applied to the 7 reviewed methods in a total of 15 different real world classification problems. We present an ordination of methods according to its performance and it is clearly concluded which method performs better and should be used. We also discuss the applicability and computational complexity of the methods.
机译:在本文中,我们基于对训练集的分析,介绍了特征选择方法,该方法已经应用于神经网络。这类方法使用信息论概念,类间和类内距离或对模糊区域的分析。此外,详细描述了一种允许评估和比较特征选择方法的方法。该方法论应用于总共15个不同的现实世界分类问题中的7种方法。我们根据其性能对方法进行了排序,并明确得出结论,哪种方法性能更好,应该使用。我们还将讨论该方法的适用性和计算复杂性。

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