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首页> 外文期刊>The Astrophysical journal >SIMULATED PERFORMANCE OF TIMESCALE METRICS FOR APERIODIC LIGHT CURVES
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SIMULATED PERFORMANCE OF TIMESCALE METRICS FOR APERIODIC LIGHT CURVES

机译:非周期光曲线时标度量的模拟性能

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摘要

Aperiodic variability is a characteristic feature of young stars, massive stars, and active galactic nuclei. With the recent proliferation of time-domain surveys, it is increasingly essential to develop methods to quantify and analyze aperiodic variability. We develop three timescale metrics that have been little used in astronomy—Δm-Δt plots, peak-finding, and Gaussian process regression—and present simulations comparing their effectiveness across a range of aperiodic light curve shapes, characteristic timescales, observing cadences, and signal to noise ratios. We find that Gaussian process regression is easily confused by noise and by irregular sampling, even when the model being fit reflects the process underlying the light curve, but that Δm-Δt plots and peak-finding can coarsely characterize timescales across a broad region of parameter space. We make public the software we used for our simulations, both in the spirit of open research and to allow others to carry out analogous simulations for their own observing programs.
机译:非周期性变化是年轻恒星,大质量恒星和活跃银河核的特征。随着近来时域调查的激增,开发量化和分析非周期性变化的方法变得越来越重要。我们开发了三个在天文学中很少使用的时间尺度度量-Δm-Δt图,峰值发现和高斯过程回归-并提供了仿真,比较了它们在一系列非周期性光曲线形状,特征时间尺度,观察节奏和信号上的有效性噪声比。我们发现,即使模型拟合反映了光曲线背后的过程,高斯过程回归也容易被噪声和不规则采样所混淆,但是Δm-Δt图和峰值发现可以粗略地表征参数范围内的时间尺度空间。我们本着开放研究的精神公开我们用于模拟的软件,并允许其他人对其自己的观测程序进行类似的模拟。

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