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Feature Ranking Procedure for Automatic Feature Extraction

机译:自动特征提取的特征排名过程

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摘要

Classifier allows the user to classify between different classes based on the features acquired. The goals and applications of different classifiers are different. As the feature selection is one of the important criteria. In this paper we introduce a method of ranking the features of one class with respect to another and it tells the user that in the training set which feature has higher ranking among the other. So this method tells which feature is insignificant in certain classes and it can be ruled out. The classification can be made so easily as for some cases, certain features creates confusion in the classifier and wrong interpretations are also occurs. In the training set, if a new data is given as input and this method able to tell the user that the features has a variation with respect to training data set and the feature ranking is calculated. This method automatically ranks the feature and feature selection can be made easier. So we can able to interpret from the significant and insignificant features.
机译:分类器允许用户基于获取的特征对不同类分类。不同分类器的目标和应用是不同的。由于特征选择是重要标准之一。在本文中,我们介绍了一种对另一个等级的特征进行排序的方法,并且它告诉用户在训练集中,该特征在另一个特征中具有更高的等级。因此,此方法讲述某些类别中的特征在某些类中无关紧要,并且可以排除在外。可以如此容易地进行分类,因为某些情况下,某些功能在分类器中创造了混淆,并且也发生了错误的解释。在培训集中,如果将新数据作为输入给出,并且该方法能够告诉用户特征对训练数据集具有变化并且计算特征排名。此方法自动排列功能,可以更轻松地排列功能。因此,我们可以从重要和微不足道的功能中解释。

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