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GLOBAL OPTIMIZATION METHODS FOR GRAVITATIONAL LENS SYSTEMS WITH REGULARIZED SOURCES

机译:具有正源的重力透镜系统的全局优化方法

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Several approaches exist to model gravitational lens systems. In this study, we apply global optimization methods to find the optimal set of lens parameters using a genetic algorithm. We treat the full optimization procedure as a two-step process: an analytical description of the source plane intensity distribution is used to find an initial approximation to the optimal lens parameters; the second stage of the optimization uses a pixelated source plane with the semilinear method to determine an optimal source. Regularization is handled by means of an iterative method and the generalized cross validation (GCV) and unbiased predictive risk estimator (UPRE) functions that are commonly used in standard image deconvolution problems. This approach simultaneously estimates the optimal regularization parameter and the number of degrees of freedom in the source. Using the GCV and UPRE functions, we are able to justify an estimation of the number of source degrees of freedom found in previous work. We test our approach by applying our code to a subset of the lens systems included in the SLACS survey.
机译:存在几种对重力透镜系统建模的方法。在这项研究中,我们应用全局优化方法使用遗传算法找到最佳的镜片参数集。我们将整个优化过程分为两步:将源平面强度分布的分析描述用于找到最佳透镜参数的初始近似值;优化的第二阶段使用具有半线性方法的像素化源平面来确定最佳源。正则化是通过迭代方法以及标准图像反卷积问题中常用的广义交叉验证(GCV)和无偏预测风险估计器(UPRE)函数来进行的。该方法同时估计最佳正则化参数和源中的自由度数。使用GCV和UPRE函数,我们可以证明对先前工作中发现的源自由度数量的估计是合理的。我们通过将代码应用于SLACS调查中包含的一部分镜头系统来测试我们的方法。

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