论文标题

不确定性感知的斑点检测与综合光明恒星种群回收的应用

Uncertainty-Aware Blob Detection with an Application to Integrated-Light Stellar Population Recoveries

论文作者

Parzer, Fabian, Jethwa, Prashin, Boecker, Alina, Alfaro-Cuello, Mayte, Scherzer, Otmar, van de Ven, Glenn

论文摘要

语境。斑点检测是天文学中的常见问题。一个例子是在恒星种群建模中,其中从观察值中推断出星系中恒星年龄和金属性的分布。在这种情况下,斑点可能对应于现场的恒星与从卫星中吸收的恒星相对应,而斑点检测的任务是解散这些组件。当分布带来重大不确定性时,就会出现一个困难,就像从未解决的恒星系统的建模光谱中推断出的恒星种群回收情况一样。目前没有不确定性检测BLOB检测的令人满意的方法。目标。我们介绍了一种在恒星系统综合光谱的恒星种群建模的背景下开发的不确定性感知斑点检测方法。方法。我们为经典的blob检测方法的不确定性感知版本开发了理论和计算工具,我们称之为ulog。这确定了考虑各种尺度的重要斑点。作为将ULOG应用于恒星种群建模的先决条件,我们引入了一种有效计算光谱建模不确定性的方法。该方法基于截断的奇异值分解和马尔可夫链蒙特卡洛采样(SVD-MCMC)。结果。我们将方法应用于星团M54的数据。我们表明,SVD-MCMC推断与标准MCMC的推断相匹配,但计算速度更快。我们将ULOG应用于推断的M54年龄/金属性分布,并在其恒星中识别2或3个显着不同的种群。

Context. Blob detection is a common problem in astronomy. One example is in stellar population modelling, where the distribution of stellar ages and metallicities in a galaxy is inferred from observations. In this context, blobs may correspond to stars born in-situ versus those accreted from satellites, and the task of blob detection is to disentangle these components. A difficulty arises when the distributions come with significant uncertainties, as is the case for stellar population recoveries inferred from modelling spectra of unresolved stellar systems. There is currently no satisfactory method for blob detection with uncertainties. Aims. We introduce a method for uncertainty-aware blob detection developed in the context of stellar population modelling of integrated-light spectra of stellar systems. Methods. We develop theory and computational tools for an uncertainty-aware version of the classic Laplacian-of-Gaussians method for blob detection, which we call ULoG. This identifies significant blobs considering a variety of scales. As a prerequisite to apply ULoG to stellar population modelling, we introduce a method for efficient computation of uncertainties for spectral modelling. This method is based on the truncated Singular Value Decomposition and Markov Chain Monte Carlo sampling (SVD-MCMC). Results. We apply the methods to data of the star cluster M54. We show that the SVD-MCMC inferences match those from standard MCMC, but are a factor 5-10 faster to compute. We apply ULoG to the inferred M54 age/metallicity distributions, identifying between 2 or 3 significant, distinct populations amongst its stars.

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