Detecting and modeling local text reuse

David A. Smith, Ryan Cordell, E. M. Dillon, Nicholas Stramp, J. Wilkerson
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引用次数: 43

Abstract

Texts propagate through many social networks and provide evidence for their structure. We describe and evaluate efficient algorithms for detecting clusters of reused passages embedded within longer documents in large collections. We apply these techniques to two case studies: analyzing the culture of free reprinting in the nineteenth-century United States and the development of bills into legislation in the U.S. Congress. Using these divergent case studies, we evaluate both the efficiency of the approximate local text reuse detection methods and the accuracy of the results. These techniques allow us to explore how ideas spread, which ideas spread, and which subgroups shared ideas.
检测和建模本地文本重用
文本通过许多社会网络传播,并为其结构提供证据。我们描述并评估了用于检测嵌入在大型集合中的较长文档中的重用段落集群的有效算法。我们将这些技术应用于两个案例研究:分析19世纪美国的自由重印文化和美国国会的法案立法发展。通过这些不同的案例研究,我们评估了近似局部文本重用检测方法的效率和结果的准确性。这些技术使我们能够探索思想是如何传播的,哪些思想传播,哪些子群体分享思想。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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