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SCoT: Sense Clustering over Time - a tool for analysing lexical change

机译:SCOT:随着时间的推移感测聚类 - 一种分析词汇变化的工具

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We present Sense Clustering over Time (SCoT), a novel network-based tool for analysing lexical change. SCoT represents the meanings of a word as clusters of similar words. It visualises their formation, change, and demise. There are two main approaches to the exploration of dynamic networks: the discrete one compares a series of clustered graphs from separate points in time. The continuous one analyses the changes of one dynamic network over a time-span. SCoT offers a new hybrid solution. First, it aggregates time-stamped documents into intervals and calculates one sense graph per discrete interval. Then, it merges the static graphs to a new type of dynamic semantic neighbourhood graph over time. The resulting sense clusters offer uniquely detailed insights into lexical change over continuous intervals with model transparency and provenance. SCoT has been successfully used in a European study on the changing meaning of 'crisis'.
机译:我们呈现出随时间(SCOT)的感觉聚类,这是一种用于分析词汇变化的新型网络工具。 Scot表示单词作为类似词的群集的含义。 它会致力于他们的形成,改变和消亡。 动态网络的探索有两种主要方法:离散的方法将一系列集群图与单独的分数进行比较。 连续一个人在时间跨度分析一个动态网络的变化。 Scot提供了一种新的混合解决方案。 首先,它将时间戳的文档聚合为间隔,并计算每个离散间隔的一个感测图。 然后,它会随着时间的推移将静态图形与新类型的动态语义邻域图合并。 由此产生的感觉群体在具有模型透明度和出处的连续间隔内具有独特的详细洞察。 苏格兰苏格兰苏格兰苏格兰苏格兰苏格兰苏格兰苏格兰苏格兰队已经成功地用于“危机”的变化意义。

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