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Extensions of simple component analysis and simple linear discriminant analysis using genetic algorithms

机译:使用遗传算法扩展简单成分分析和简单线性判别分析

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摘要

Extensions of Simple Component Analysis are proposed. Two methods are obtained: a new Simple Component Analysis and a Simple Linear Discriminant Analysis. These two methodologies use Genetic Algorithms, optimize a criterion (derived from the usual method) and add constraints. The objective is to obtain loadings constituted of a small number of integers determining blocks of variables. The programs implementing the methods have been developed using the R? language. Four applications are made and show a good robustness of the algorithms and a proximity to the optimal solution (from the usual PCA and LDA).
机译:提出了简单成分分析的扩展。获得了两种方法:新的简单成分分析和简单的线性判别分析。这两种方法使用遗传算法,优化标准(从常规方法派生)并添加约束。目的是获得由确定变量块的少量整数组成的载荷。使用R?开发了实现这些方法的程序。语言。进行了四个应用程序,它们显示了算法的良好鲁棒性,并且接近最佳解决方案(来自通常的PCA和LDA)。

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