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Constrained probability distributions of correlation functions

机译:相关函数的约束概率分布

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摘要

Context. Two-point correlation functions are used throughout cosmology as a measure for the statistics of random fields. When used in Bayesian parameter estimation, their likelihood function is usually replaced by a Gaussian approximation. However, this has been shown to be insufficient. Aims. For the case of Gaussian random fields, we search for an exact probability distribution of correlation functions, which could improve the accuracy of future data analyses. Methods. We use a fully analytic approach, first expanding the random field in its Fourier modes, and then calculating the characteristic function. Finally, we derive the probability distribution function using integration by residues. We use a numerical implementation of the full analytic formula to discuss the behaviour of this function. Results. We derive the univariate and bivariate probability distribution function of the correlation functions of a Gaussian random field, and outline how higher joint distributions could be calculated. We give the results in the form of mode expansions, but in one special case we also find a closed-form expression. We calculate the moments of the distribution and, in the univariate case, we discuss the Edgeworth expansion approximation. We also comment on the difficulties in a fast and exact numerical implementation of our results, and on possible future applications.
机译:上下文。两点相关函数在整个宇宙学中用作统计随机场的一种度量。当用于贝叶斯参数估计时,它们的似然函数通常由高斯近似代替。但是,这已被证明是不够的。目的对于高斯随机场,我们搜索相关函数的精确概率分布,这可以提高未来数据分析的准确性。方法。我们使用一种完全分析的方法,首先以其傅立叶模式扩展随机字段,然后计算特征函数。最后,我们使用残差积分得出概率分布函数。我们使用完整解析公式的数值实现来讨论此函数的行为。结果。我们推导了高斯随机场相关函数的单变量和双变量概率分布函数,并概述了如何计算更高的联合分布。我们以模式扩展的形式给出结果,但是在一种特殊情况下,我们还会找到一个封闭形式的表达式。我们计算分布的矩,在单变量情况下,我们讨论Edgeworth展开逼近。我们还对快速而精确地数值执行结果的困难以及未来可能的应用发表了评论。

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