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Correcting Redundant Japanese Sentences Using Patterns and Machine Learning for the Development of Writing Support Systems

机译:利用模式和机器学习纠正冗余日语句子以发展写作支持系统

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摘要

In this study, we propose a method to automatically correct redundant sentences using patterns and machine learning and propose methods that combine pattern-based and machine-learning methods. We conducted experiments to correct redundant sentences containing "kanou " (possible or possibility), "toiu " ( "that is" or called), and "surukoto" (to do). The results demonstrate that the proposed method can correct redundant sentences at an accuracy of 0.6 and estimate corrected expressions against redundant parts at an accuracy of 0.7; furthermore, we created a method to support a user's writing. In this method, a system displays redundant parts and provides candidate expressions.
机译:在这项研究中,我们提出了一种使用模式和机器学习自动纠正冗余句子的方法,并提出了结合基于模式和机器学习方法的方法。我们进行了实验,以纠正包含“ kanou”(可能或可能性),“ toiu”(即“或”被称为)和“ surukoto”(要做)的多余句子。结果表明,该方法能以0.6的精度纠正冗余句子,以0.7的精度估计针对冗余部分的纠正表达式。此外,我们创建了一种支持用户书写的方法。在这种方法中,系统显示冗余部分并提供候选表达式。

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