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Visualization of temporal text collections based on Correspondence Analysis

机译:基于对应分析的时态文本集合的可视化

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In this paper, we present CatViz-Temporally-Sliced Correspondence Analysis Visualization. This novel method visualizes relationships through time and is suitable for large-scale temporal multivariate data. We couple CatViz with clustering methods, whereupon we introduce the concept of final centroid transfer, which enables the correspondence of clusters in time. Although CatViz can be used on any type of temporal data, we show how it can be applied to the task of exploratory visual analysis of text collections. We present a successful concept of employing feature-type filtering to present different aspects of textual data. We performed case studies on large collections of French and English news articles. In addition, we conducted a user study that confirms the usefulness of our method. We present typical tasks of exploratory text analysis and discuss application procedures that an analyst might perform. We believe that CatViz is general and highly applicable to large data sets because of its intuitiveness, effectiveness, and robustness. We expect that it will enable a better understanding of texts in huge historical archives.
机译:在本文中,我们提出了CatViz临时切片对应分析可视化。这种新颖的方法通过时间可视化关系,适用于大规模的时间多元数据。我们将CatViz与聚类方法结合使用,随后我们引入了最终质心转移的概念,该概念使时间上的聚类相对应。尽管CatViz可用于任何类型的时态数据,但我们仍将展示如何将CatViz应用于文本集的探索性可视分析任务。我们提出了一个成功的概念,即采用特征类型过滤来呈现文本数据的不同方面。我们对大量法语和英语新闻文章进行了案例研究。此外,我们进行了一项用户研究,证实了我们方法的有效性。我们介绍了探索性文本分析的典型任务,并讨论了分析师可能执行的应用程序。我们相信CatViz具有直观性,有效性和鲁棒性,因此是通用的并且高度适用于大数据集。我们希望它将使人们能够更好地理解庞大的历史档案中的文本。

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