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A combined linear programming-maximum likelihood approach to radial velocity data analysis for extrasolar planet detection

机译:组合线性规划-最大似然法进行太阳系外行星径向速度数据分析

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In this paper we introduce a new technique for estimating the parameters of the Keplerian model commonly used in radial velocity data analysis for extrasolar planet detection. The unknown parameters in the Keplerian model, namely eccentricity e, orbital frequency f, periastron passage time T, longitude of periastron ω, and radial velocity amplitude K are estimated by a new approach named SPICE (a semi-parametric iterative covariance-based estimation technique). SPICE enjoys global convergence, does not require selection of any hyperparameters, and is computationally efficient (indeed computing the SPICE estimates boils down to solving a numerically efficient linear program (LP)). The parameter estimates obtained from SPICE are then refined by means of a relaxation-based maximum likelihood algorithm (RELAX) and the significance of the resultant estimates is determined by a generalized likelihood ratio test (GLRT). A real-life radial velocity data set of the star HD 9446 is analyzed and the results obtained are compared with those reported in the literature.
机译:在本文中,我们介绍了一种新的技术,该技术可用于估算太阳系外行星探测径向速度数据分析中常用的Keplerian模型的参数。开普勒模型中的未知参数,即偏心率e,轨道频率f,周星体通过时间T,周星体ω的经度和径向速度幅值K,通过一种称为SPICE的新方法进行估算(一种基于半参数迭代协方差的估算技术)。 SPICE具有全局收敛性,不需要选择任何超参数,并且计算效率很高(实际上,SPICE估计的计算归结为求解数值有效的线性程序(LP))。然后,通过基于松弛的最大似然算法(RELAX)细化从SPICE获得的参数估计值,并通过广义似然比检验(GLRT)确定所得估计值的重要性。分析了恒星HD 9446的真实径向速度数据集,并将获得的结果与文献中报道的结果进行了比较。

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