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首页> 外文期刊>The Astrophysical journal >BAYESIAN INFERENCE OF SOLAR AND STELLAR MAGNETIC FIELDS IN THE WEAK-FIELD APPROXIMATION
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BAYESIAN INFERENCE OF SOLAR AND STELLAR MAGNETIC FIELDS IN THE WEAK-FIELD APPROXIMATION

机译:弱场近似中的太阳和恒星磁场的贝叶斯推断

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The weak-field approximation is one of the simplest models that allows us to relate the observed polarization induced by the Zeeman effect with the magnetic field vector present on the plasma of interest. It is usually applied for diagnosing magnetic fields in the solar and stellar atmospheres. A fully Bayesian approach to the inference of magnetic properties in unresolved structures is presented. The analytical expression for the marginal posterior distribution is obtained, from which we can obtain statistically relevant information about the model parameters. The role of a priori information is discussed and a hierarchical procedure is presented that gives robust results that are almost insensitive to the precise election of the prior. The strength of the formalism is demonstrated through an application to IMaX data. Bayesian methods can optimally exploit data from filter polarimeters given the scarcity of spectral information as compared with spectro-polarimeters. The effect of noise and how it degrades our ability to extract information from the Stokes profiles is analyzed in detail.
机译:弱场近似是最简单的模型之一,它使我们可以将塞曼效应引起的观测极化与目标等离子体上存在的磁场矢量相关联。它通常用于诊断太阳和恒星大气中的磁场。提出了一种完全贝叶斯方法来推断未解析结构中的磁性。得到边缘后验分布的解析表达式,从中我们可以得到关于模型参数的统计相关信息。讨论了先验信息的作用,并提出了一个分层过程,该过程给出了对先验的精确选择几乎不敏感的可靠结果。通过将应用程序应用于IMaX数据,可以证明形式主义的优势。与光谱偏振仪相比,由于光谱信息稀缺,贝叶斯方法可以最佳地利用滤波器​​偏振仪的数据。详细分析了噪声的影响及其如何降低我们从Stokes配置文件中提取信息的能力。

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