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MDFS: MultiDimensional Feature Selection in R

机译:MDFS:R中的多维特征选择

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Identification of informative variables in an information system is often performed using simple one-dimensional filtering procedures that discard information about interactions between variables. Such an approach may result in removing some relevant variables from consideration. Here we present an R package MDFS (MultiDimensional Feature Selection) that performs identification of informative variables taking into account synergistic interactions between multiple descriptors and the decision variable. MDFS is an implementation of an algorithm based on information theory (Mnich and Rudnicki, 2017). The computational kernel of the package is implemented in C++. A high-performance version implemented in CUDA C is also available. The application of MDFS is demonstrated using the well-known Madelon dataset, in which a decision variable is generated from synergistic interactions between descriptor variables. It is shown that the application of multidimen sional analysis results in better sensitivity and ranking of importance.
机译:信息系统中信息变量的标识通常使用简单的一维过滤程序来执行,该程序会丢弃有关变量之间相互作用的信息。这种方法可能导致从考虑中删除一些相关变量。在这里,我们提出了一个R包MDFS(多维特征选择),它考虑了多个描述符与决策变量之间的协同交互作用,对信息变量进行识别。 MDFS是基于信息论的算法的实现(Mnich和Rudnicki,2017)。软件包的计算内核是用C ++实现的。还提供了在CUDA C中实现的高性能版本。使用著名的Madelon数据集演示了MDFS的应用,其中,决策变量是根据描述符变量之间的协同相互作用生成的。结果表明,多维分析的应用提高了灵敏度和重要性排名。

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