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Automated determination of stellar population parameters in galaxies using active instance-based learning

机译:基于主动实例的学习自动测定星系中的星系中的恒星种群参数

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In this work we focus on the determination of the relative distributions of young, intermediate-age and old populations of stars in galaxies. Starting from a grid of theoretical population synthesis models we constructed a set of model galaxies with a distribution of ages, metallicities and intrinsic reddening. Using this set we have explored a new fitting method that presents several advantages over conventional methods. We propose an optimization technique that combines active learning with an instance-based machine learning algorithm. Experimental results show that this method can estimate with high speed and accuracy the physical parameters of the stellar populations.
机译:在这项工作中,我们专注于确定星系中秋季恒星的相对分布和旧群体。从理论人口综合模型的网格开始,我们构建了一套具有年龄,金属和内在变红的分布的模型星系。使用此集合我们探索了一种新的拟合方法,呈现出与传统方法的几个优点。我们提出了一种优化技术,将主动学习与基于实例的机器学习算法相结合。实验结果表明,该方法可以高速估计恒星群体的物理参数。

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