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Three-Mode Component Analysis with Crisp or Fuzzy Partition of Units

机译:单元的脆性或模糊性划分的三模式成分分析

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摘要

A new methodology is proposed for the simultaneous reduction of units, variables, and occasions of a three-mode data set. Units are partitioned into a reduced number of classes, while, simultaneously, components for variables and occasions accounting for the largest common information for the classification are identified. The model is a constrained three-mode factor analysis and it can be seen as a generalization of the REDKM model proposed by De Soete and Carroll for two-mode data. The least squares fitting problem is mathematically formalized as a constrained problem in continuous and discrete variables. An iterative alternating least squares algorithm is proposed to give an efficient solution to this minimization problem in the crisp and fuzzy classification context. The performances of the proposed methodology are investigated by a simulation study comparing our model with other competing methodologies. Different procedures for starting the proposed algorithm have also been tested. A discussion of some interesting differences in the results follows. Finally, an application to real data illustrates the ability of the proposed model to provide substantive insights into the data complexities.
机译:提出了一种用于同时减少三模数据集的单位,变量和场合的新方法。将单位划分为减少的类别,同时,识别出变量的组成部分和占分类最大公共信息的场合。该模型是受约束的三模式因子分析,可以看作是De Soete和Carroll提出的针对两模式数据的REDKM模型的推广。最小二乘拟合问题在数学上形式化为连续变量和离散变量中的约束问题。提出了一种迭代交替最小二乘算法,可以在模糊和模糊分类的情况下为这种最小化问题提供有效的解决方案。通过将我们的模型与其他竞争方法进行比较的仿真研究,研究了所提出方法的性能。还已经测试了用于启动所提出算法的不同过程。接下来讨论结果中一些有趣的差异。最后,对实际数据的应用说明了所提出的模型提供对数据复杂性的实质性见解的能力。

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