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Lexical Stress-Based Authorship Attribution with Accurate Pronunciation Patterns Selection

机译:基于词汇应力的作者归因,具有准确的发音模式选择

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This paper presents a feature selection methodology for authorship attribution based on lexical stress patterns of words in text. The methodology uses part-of-speech information to make the proper selection of a lexical stress pattern when multiple possible pronunciations of the word exist. The selected lexical stress patterns are used to train machine learning classifiers to perform author attribution. The methodology is applied to a corpus of 18th century political texts, achieving a significant improvement in performance compared to previous work.
机译:本文介绍了基于文本中单词词汇应力模式的作者归属的特征选择方法。该方法使用词性信息,使得当存在单词的多种可能发音时,正确选择词汇应力模式。所选词汇应力模式用于训练机器学习分类器以执行作者归因。该方法适用于18世纪政治文本的语料库,与以前的工作相比,实现了显着改善。

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