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首页> 外文期刊>Journal of Optimization in Industrial Engineering >Classification of Streaming Fuzzy DEA Using Self-Organizing Map
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Classification of Streaming Fuzzy DEA Using Self-Organizing Map

机译:基于自组织映射的流模糊DEA分类

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The classification of fuzzy data is considered as the most challenging areas of data analysis and the complexity of the procedures has been obstacle to the development of new methods for fuzzy data analysis. However, there are significant advances in modeling systems in which fuzzy data are available in the field of mathematical programming. In order to exploit the results of the researches on fuzzy mathematical programming, in this study, a new fuzzy data classification method based on data envelopment analysis (DEA) is provided when fuzzy data are imported as a stream. The proposed method can classify data that changes are created in their behavioral pattern over time using updating the criteria of predicting fuzzy data class. To reduce computational time, fuzzy self-organizing map (SOM) is used to compress incoming data. The new method was tested by simulated data and the results indicated the feasibility of this technique in the face of uncertain and variable conditions.
机译:模糊数据的分类被认为是数据分析中最具挑战性的领域,并且程序的复杂性已成为发展模糊数据分析新方法的障碍。但是,在数学程序设计领域中,模糊数据可用的建模系统已取得重大进展。为了充分利用模糊数学程序设计的研究成果,提出了一种将模糊数据作为流导入时基于数据包络分析(DEA)的模糊数据分类方法。所提出的方法可以使用更新模糊数据类别的预测标准来对随时间变化而在其行为模式中创建的数据进行分类。为了减少计算时间,使用模糊自组织映射(SOM)压缩输入数据。通过仿真数据对该新方法进行了测试,结果表明了该技术在不确定和可变条件下的可行性。

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