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Exploratory Data Analysis Techniques to Determine the Dimensionality of Complex Nonlinear Phenomena: The L-to-H Transition at JET as a Case Study

机译:确定复杂非线性现象维数的探索性数据分析技术:以JET的L到H过渡为例

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摘要

A strategy to identify and select the most relevant variables to study problems in the exact sciences, when large databases of data have to be explored, is formulated. It consists of a first exploratory stage, performed mainly with the classification and regression tree method, to determine the list of most relevant signals to be used in the analysis of the phenomenon of interest. A linear correlation technique, followed by a nonlinear correlation technique (principal component analysis and autoassociative neural networks (NNs), respectively), is then applied to reduce the number of signals to the ones containing nonredundant information. The potential of the approach is illustrated by an application to the problem of identifying the confinement regime in the Joint European Torus. The minimum set of signals has been used to train an NN, and its performance is compared with that of various theoretical models. The success rate of the NN is very high, and it generally further outperforms the available theoretical models.
机译:当必须探索大型数据数据库时,制定一种策略来识别和选择最相关的变量以研究精确科学中的问题。它包括一个主要通过分类和回归树方法进行的探索性第一阶段,以确定要用于分析感兴趣现象的最相关信号的列表。然后应用线性相关技术,然后再使用非线性相关技术(分别是主成分分析和自缔合神经网络(NNs)),以将信号数量减少到包含非冗余信息的信号数量。该方法在解决联合欧洲花托中的限制制度问题上的应用说明了这种方法的潜力。最小信号集已用于训练NN,并将其性能与各种理论模型的性能进行了比较。 NN的成功率非常高,并且通常进一步胜过可用的理论模型。

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  • 来源
    《Plasma Science, IEEE Transactions on》 |2012年第5期|p.1386-1394|共9页
  • 作者

    Murari A.;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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