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Open cluster membership probability based on K-means clustering algorithm

机译:基于K均值聚类算法的开放聚类隶属度

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摘要

In the field of galaxies images, the relative coordinate positions of each star with respect to all the other stars are adapted. Therefore the membership of star cluster will be adapted by two basic criterions, one for geometric membership and other for physical (photometric) membership. So in this paper, we presented a new method for the determination of open cluster membership based on K-means clustering algorithm. This algorithm allows us to efficiently discriminate the cluster membership from the field stars. To validate the method we applied it on NGC 188 and NGC 2266, membership stars in these clusters have been obtained. The color-magnitude diagram of the membership stars is significantly clearer and shows a well-defined main sequence and a red giant branch in NGC 188, which allows us to better constrain the cluster members and estimate their physical parameters. The membership probabilities have been calculated and compared to those obtained by the other methods. The results show that the K-means clustering algorithm can effectively select probable member stars in space without any assumption about the spatial distribution of stars in cluster or field. The similarity of our results is in a good agreement with results derived by previous works.
机译:在星系图像领域,每个恒星相对于所有其他恒星的相对坐标位置都经过调整。因此,星团的成员资格将通过两个基本标准进行调整,一个是几何成员资格,另一个是物理(光度)成员资格。因此,在本文中,我们提出了一种基于K-means聚类算法的开放集群成员资格确定的新方法。该算法使我们能够有效地将星团成员与场星区分开。为了验证我们将其应用于NGC 188和NGC 2266的方法,已经获得了这些星团中的隶属星。隶属星的色度图明显更清晰,并且在NGC 188中显示了定义明确的主序列和红色巨型分支,这使我们可以更好地约束团簇成员并估计其物理参数。已经计算了隶属度并将其与通过其他方法获得的隶属度进行比较。结果表明,K-均值聚类算法可以有效地选择空间中可能存在的恒星,而无需对星团或场中恒星的空间分布进行假设。我们的结果的相似性与先前工作得出的结果非常吻合。

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