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首页> 外文期刊>The astronomical journal >Identification of RR Lyrae Stars in Multiband, Sparsely Sampled Data from the Dark Energy Survey Using Template Fitting and Random Forest Classification
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Identification of RR Lyrae Stars in Multiband, Sparsely Sampled Data from the Dark Energy Survey Using Template Fitting and Random Forest Classification

机译:使用模板拟合和随机森林分类识别多频段中的RR Lyrae恒星,从黑暗能量调查中稀疏地采样数据

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摘要

Many studies have shown that RR Lyrae variable stars (RRL) are powerful stellar tracers of Galactic halo structure and satellite galaxies. The Dark Energy Survey (DES), with its deep and wide coverage (g?~?23.5 mag in a single exposure; over 5000 deg 2 ) provides a rich opportunity to search for substructures out to the edge of the Milky Way halo. However, the sparse and unevenly sampled multiband light curves from the DES wide-field survey (a median of four observations in each of grizY over the first three years) pose a challenge for traditional techniques used to detect RRL. We present an empirically motivated and computationally efficient template-fitting method to identify these variable stars using three years of DES data. When tested on DES light curves of previously classified objects in SDSS stripe 82, our algorithm recovers 89% of RRL periods to within 1% of their true value with 85% purity and 76% completeness. Using this method, we identify 5783 RRL candidates, ~28% of which are previously undiscovered. This method will be useful for identifying RRL in other sparse multiband data sets.
机译:许多研究表明,RR Lyrae变量恒星(RRL)是半乳清卤素结构和卫星星系的强大恒星示踪剂。黑暗能量调查(DES),其深度和广泛的覆盖范围(G?〜23.5 MAG在一次曝光中;超过5000°2)提供了丰富的机会,用于搜寻到银河光线边缘的子结构。然而,来自Des宽场调查的稀疏和不均匀的多频带光曲线(在前三年的每个Grizy中的四个观测中位数)对用于检测RRL的传统技术构成挑战。我们介绍了使用三年的DES数据来识别这些变量星的经验激励和计算上有效的模板拟合方法。当在SDSS条纹82中先前分类对象的DES光曲线上测试时,我们的算法将89%的RRL周期恢复到其真实值的1%以内,纯度为85%和76%的完整性。使用这种方法,我们识别5783 rrl候选人,其中28%以前未被发现。该方法对于在其他稀疏多频带数据集中识别RRL是有用的。

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