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Language Models as an Alternative Evaluator of Word Order Hypotheses: A Case Study in Japanese

机译:语言模型作为语序假设的替代评估者:一项日语案例研究

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We examine a methodology using neural language models (LMs) for analyzing the word order of language. This LM-based method has the potential to overcome the difficulties existing methods face, such as the propagation of preprocessor errors in count-based methods. In this study, we explore whether the LM-based method is valid for analyzing the word order. As a case study, this study focuses on Japanese due to its complex and flexible word order. To validate the LM-based method, we test (ⅰ) parallels between LMs and human word order preference, and (ⅱ) consistency of the results obtained using the LM-based method with previous linguistic studies. Through our experiments, we tentatively conclude that LMs display sufficient word order knowledge for usage as an analysis tool. Finally, using the LM-based method, we demonstrate the relationship between the canonical word order and topical-ization, which had yet to be analyzed by large-scale experiments.
机译:我们研究了一种使用神经语言模型(LMs)分析语言语序的方法。这种基于LM的方法有可能克服现有方法面临的困难,例如基于计数的方法中预处理器错误的传播。在本研究中,我们探讨了基于LM的方法是否适用于词序分析。作为一个案例研究,本研究以日语为研究对象,因为它的语序复杂而灵活。为了验证基于LM的方法,我们测试了(ⅰ) LMs和人类词序偏好之间的相似性,以及(ⅱ) 使用基于LM的方法获得的结果与之前的语言学研究一致。通过我们的实验,我们初步得出结论,LMs显示了足够的词序知识,可以作为一种分析工具使用。最后,使用基于LM的方法,我们展示了规范语序与主题化之间的关系,这还需要通过大规模实验进行分析。

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