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A Correcting Model Based on Tribayes for Real-Word Errors in English Essays

机译:基于Tribayes的校正模型在英语论文中的实际错误错误

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This paper addresses the problem of real-word spelling errors, and also the problem of omission of effective features due to deficiency of training set in spelling correction. then a method called RCW (real-word correction with Word Net) based on Tribayes is introduced, and it solves these problems to a certain extent. Drawing upon the context information, the score of ambiguous words are calculated and regarded as decisive factor for real-word errors correction in RCW. Moreover, the synonyms of the effective features ignored are extracted from Word Net, and we use them as feature so as to improve the accuracy of real-word errors correction. Experiment shows that RCW is able to provide a better performance than Microsoft Word 2007 on real-word errors correction.
机译:本文涉及真实单词拼写错误的问题,以及由于拼写校正中的训练缺乏而省略有效特征的问题。 然后,介绍了一种基于Tribayes的RCW(与Word Net)的方法(使用Word Net)的方法,并在一定程度上解决了这些问题。 在上下文信息上绘制,计算模糊词的分数并被视为RCW中实际错误校正的决定性因素。 此外,忽略了有效功能的同义词是从Word Net中提取的,并且我们用它们用作特征,以提高实际错误校正的准确性。 实验表明,RCW能够提供比Microsoft Word 2007在实际字错误校正中更好的性能。

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