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A framework for the investigation of multiparametric dependences applied to total radiated power of JET plasmas

机译:研究应用于JET等离子体总辐射功率的多参数相关性的框架

摘要

A framework is developed for investigating complex multivariate relationships in a dataset. This is based on using the universal approximation abilities of a multi-layer perceptron (MLP) neural network to predict a quantity of interest from a large set of parameters. A measure of redundancy is derived, and used in such a way that the average influence on the predicted quantity from any parameter can be estimated. Input parameters can be ordered in terms of increasing redundancy and therefore assist in finding the most important parameters a phenomenon of interest depends upon. In spite of the problem being multi-dimensional, the functional form of the one-to-one relationship between a parameter and a quantity of interest can be visualized. This framework is then used together with sensitivity analysis to investigate the dependence of the total radiated power of JET plasmas on a large number of parameters, leading to the identification of a much smaller set of parameters to be used in an effective MLP predictor of total radiated power.
机译:开发了一个框架来研究数据集中的复杂多元关系。这是基于使用多层感知器(MLP)神经网络的通用逼近能力来根据大量参数预测感兴趣的量的。得出冗余度,并以一种方式使用,即可以估计任何参数对预测数量的平均影响。可以根据增加的冗余度对输入参数进行排序,因此可以帮助找到感兴趣的现象所依赖的最重要的参数。尽管问题是多维的,但参数和感兴趣量之间的一对一关系的功能形式仍可以可视化。然后,将该框架与灵敏度分析一起使用,以研究JET等离子体的总辐射功率对大量参数的依赖性,从而确定了要在有效的MLP预测总辐射量中使用的参数少得多的一组参数功率。

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