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Automatic recognition of plasma relevant events: Implications for ITER

机译:自动识别等离子体相关事件:对ITER的影响

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This work makes a proposal about the use of big data techniques for the automatic recognition and classification of plasma relevant events in huge databases of nuclear fusion devices. A relevant event can be any kind of anomaly (or perturbation) in the plasma evolution. This is revealed in the temporal evolution signals as (typically) abrupt variations (for instance in amplitude, noise, or sudden presence/suppression of patterns with periodical structure). A general algorithm based on five steps is presented here for the automatic location and unsupervised classification of plasma events: dataset selection, location of anomalies in individual signals, definition of multi-signal patterns, unsupervised clustering of mull-signal patterns and creation of supervised classifiers. It is important to note that the algorithm implementation is for off-line analysis but supervised classifiers could be implemented under real-time conditions.
机译:这项工作提出了关于在核聚变装置的巨大数据库中自动识别和分类的大数据技术的使用。相关事件可以是等离子体进化中的任何异常(或扰动)。这在时间演化信号中揭示为(通常)突然变化(例如幅度,噪声或具有周期性结构的模式的突然存在/抑制)。这里介绍了一种基于五个步骤的一般算法,用于等离子体事件的自动位置和无监督分类:数据集选择,单个信号中的异常位置,多信号模式的定义,Mull信号模式的无监督群集和监督分类器的创建。值得注意的是,算法实现是用于离线分析,但可以在实时条件下实现监督分类器。

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