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Memberships, distance and proper-motion of the open cluster NGC 188 based on a machine learning method

机译:开放群体NGC 188基于机器学习方法的成员资格,距离和适当运动

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In this paper, we present an investigation of the memberships, distance and proper motion for the old open cluster NGC 188 using a machine-learning-based method. This method combines two widely used algorithms: spectral clustering (SC) and random forest (RF). The former one is used to construct a reliable training set, the membership probabilities are calculated based on the latter one. This method only depends on reliable training set, no prior knowledge about the cluster is needed. This method is based on the basic assumption that most if not all the information about the cluster members and field stars are contained in a reliable training set, this makes it highly suitable for handling high-dimensional data sets. We use this method to investigate the likely memberships of the old open cluster NGC 188 based on the high-precision astrometry and photometry from the Gaia Data Release 2 (Gaia DR2). Based on seven-dimensional features (positions, parallax, proper motions and color-magnitude) of 3780 sample stars in the region of NGC 188, 645 likely members with high membership probabilities (= 0.75) are obtained. Further analysis confirms the effectiveness of our membership determination. Based on these high-probability memberships, the distance and proper motion of the cluster are determined to be 1866 +/- 4 pc and (mu a, mu d) = (-2.33 +/- 0.01,-0.97 +/- 0.01) mas/yr, respectively.
机译:在本文中,我们使用基于机器学习的方法展示了旧开放群体NGC 188的成员资格,距离和适当运动。该方法结合了两个广泛使用的算法:光谱聚类(SC)和随机林(RF)。前者用于构造可靠的训练集,隶属概率基于后者计算。此方法仅取决于可靠的培训集,因此不需要对群集的先验知识。该方法基于基本假设,即大多数关于群集成员和现场恒星的所有信息都包含在可靠的训练集中,这使得它非常适合处理高维数据集。我们使用这种方法来根据Gaia数据版本2的高精度天体测定和光度测量来研究旧开放式NGC 188的可能成员资格(Gaia DR2)。基于NGC 188区域的3780个样本恒星的七维特征(位置,视差,适当的运动和颜色幅度),获得645个具有高隶属度概率(= 0.75)的成员。进一步分析证实了我们会员确定的有效性。基于这些高概率成员资格,群体的距离和适当运动被确定为1866 +/- 4 pc和(mu a,mu d)=(-2.33 +/- 0.01,-0.97 +/- 0.01) MAS / YR分别。

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