• And it introduces some algorithms of decision tree learning such as ID3, C4.5 and feature subset selection of Inductive learning.

    介绍归纳学习中的决策学习算法id3C4.5特征子集选择问题

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  • The feature subset selection is an important problem in machine learning, but the optimal feature subset selection is proves to be a NP hard one.

    特征子集选择问题机器学习重要问题。优特征子集的选择是NP困难问题,因此需要启发式搜索指导求解。

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  • The uncertainty coefficient is an information measure for a feature subset, and it is monotonic, so it can be taken as the feature selection measure.

    特征子集不确定性系数单调的特征子集信息度量因此可以作为特征选择度量。

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  • For the given unclassified model, feature selection requires us to select the most excellent feature subset and it can represent the model which is classified.

    对于个给定的待分类模式特征选择要求人们从大量的特征中选取一个特征子集以代表分类模式。

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  • Then the optimum feature subset is selected from the feature genes with Backward Selection Search Method algorithm and independent tests.

    通过“两两冗余”后,依据后搜索算法选定特征子集

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  • According to the results of data simulation and Diesel engine fault feature selection example, it is proved that this scheme can get optimal feature subset...

    数值仿真柴油机故障特征选择实验结果表明,新方法可以快速、有效地求得优化特征集,求解特征选择问题的一个较好方案。

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  • According to the results of data simulation and Diesel engine fault feature selection example, it is proved that this scheme can get optimal feature subset...

    数值仿真柴油机故障特征选择实验结果表明,新方法可以快速、有效地求得优化特征集,求解特征选择问题的一个较好方案。

    youdao

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