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A probabilistic model for the identification of confinement regimes and edge localized mode behavior, with implications to scaling laws

机译:用于识别约束机制和边缘局部模式行为的概率模型,对尺度定律有影响

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摘要

Pattern recognition is becoming an important tool in fusion data analysis. However, fusion diagnostic measurements are often affected by considerable statistical uncertainties, rendering the extraction of useful patterns a significant challenge. Therefore, we assume a probabilistic model for the data and perform pattern recognition in the space of probability distributions. We show the considerable advantage of our method for identifying confinement regimes and edge localized mode behavior, and we discuss the potential for scaling laws.
机译:模式识别正在成为融合数据分析中的重要工具。然而,融合诊断测量常常受到相当大的统计不确定性的影响,从而使有用模式的提取成为重大挑战。因此,我们为数据假设一个概率模型,并在概率分布空间中执行模式识别。我们展示了我们的方法在识别约束制度和边缘局部模式行为方面的巨大优势,并且我们讨论了定律的潜力。

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