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Towards a better understanding of Burrows's Delta in literary authorship attribution

机译:在文学著作权归属中更好地了解Burrows的三角洲

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摘要

Burrows's Delta is the most established measure for stylometric difference in literary authorship attribution. Several improvements on the original Delta have been proposed. However, a recent empirical study showed that none of the proposed variants constitute a major improvement in terms of authorship attribution performance. With this paper, we try to improve our understanding of how and why these text distance measures work for authorship attribution. We evaluate the effects of standardization and vector normalization on the statistical distributions of features and the resulting text clustering quality. Furthermore, we explore supervised selection of discriminant words as a procedure for further improving authorship attribution.
机译:伯罗斯(Burrows)的三角洲(Delta)是确定文学作者身份的风格差异的最成熟方法。已经提出了对原始三角洲的一些改进。然而,最近的一项实证研究表明,在作者身份归因方面,所有拟议的变体均未构成重大改进。在本文中,我们试图增进我们对这些文本距离度量如何以及为什么可用于作者身份归属的理解。我们评估标准化和向量归一化对特征的统计分布以及由此产生的文本聚类质量的影响。此外,我们探索有区别的单词的监督选择,以作为进一步提高作者身份的程序。

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