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Galaxy morphology - An unsupervised machine learning approach

机译:银河形态-一种无监督的机器学习方法

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Structural properties poses valuable information about the formation and evolution of galaxies, and are important for understanding the past, present, and future universe. Here we use unsupervised machine learning methodology to analyze a network of similarities between galaxy morphological types, and automatically deduce a morphological sequence of galaxies. Application of the method to the EFIGI catalog show that the morphological scheme produced by the algorithm is largely in agreement with the De Vaucouleurs system, demonstrating the ability of computer vision and machine learning methods to automatically profile galaxy morphological sequences. The unsupervised analysis method is based on comprehensive computer vision techniques that compute the visual similarities between the different morphological types. Rather than relying on human cognition, the proposed system deduces the similarities between sets of galaxy images in an automatic manner, and is therefore not limited by the number of galaxies being analyzed. The source code of the method is publicly available, and the protocol of the experiment is included in the paper so that the experiment can be replicated, and the method can be used to analyze user-defined datasets of galaxy images. (C) 2015 Elsevier B.V. All rights reserved.
机译:结构特性提供了有关星系形成和演化的有价值的信息,对于理解过去,现在和未来的宇宙非常重要。在这里,我们使用无监督机器学习方法来分析星系形态类型之间的相似性网络,并自动推断出星系的形态序列。该方法在EFIGI目录中的应用表明,该算法产生的形态学方案与De Vaucouleurs系统基本吻合,证明了计算机视觉和机器学习方法能够自动分析星系形态序列的能力。无监督分析方法基于全面的计算机视觉技术,可计算不同形态类型之间的视觉相似度。所提出的系统不是依靠人类的认知,而是以一种自动的方式推论出星系图像集之间的相似性,因此不受所分析星系数量的限制。该方法的源代码是公开可用的,并且该实验的协议已包括在本文中,以便可以重复该实验,并且该方法可用于分析用户定义的星系图像数据集。 (C)2015 Elsevier B.V.保留所有权利。

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