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An image analysis approach to text analytics based on complex networks

机译:基于复杂网络的文本分析的图像分析方法

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Text network analysis has received increasing attention as a consequence of its wide range of applications. In this study, we extend a previous work founded on the study of topological features of mesoscopic networks. Here, the geometrical properties of visualized networks are quantified by using several image analysis techniques. Such properties are used to probe the networks characteristics in terms of authorship. It was found that the visual features account for performance similar to that achieved by using topological measurements. Also, we combined and compared the two types of features, topological and geometrical, and the results suggest that the information provided by network topology and image features are complementary. (C) 2018 Elsevier B.V. All rights reserved.
机译:由于其广泛的应用,文本网络分析已收到越来越多的关注。 在这项研究中,我们扩展了一个关于介于介绍网络拓扑特征的研究的先前工作。 这里,通过使用多个图像分析技术来量化可视化网络的几何特性。 此类属性用于探讨Autheration方面的网络特征。 发现视觉特征占通过使用拓扑测量而实现的性能。 此外,我们合并并比较了两种类型的特征,拓扑和几何,结果表明,网络拓扑和图像特征提供的信息是互补的。 (c)2018年elestvier b.v.保留所有权利。

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