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Generating Diverse Corrections with Local Beam Search for Grammatical Error Correction

机译:用本地波束搜索生成不同的校正,用于语法纠错

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In this study, we propose a beam search method to obtain diverse outputs in a local sequence transduction task where most of the tokens in the source and target sentences overlap, such as in grammatical error correction (GEC). In GEC, it is advisable to rewrite only the local sequences that must be rewritten while leaving the correct sequences unchanged. However, existing methods of acquiring various outputs focus on revising all tokens of a sentence. Therefore, existing methods may either generate ungrammatical sentences because they force the entire sentence to be changed or produce non-diversified sentences by weakening the constraints to avoid generating ungrammatical sentences. Considering these issues, we propose a method that does not rewrite all the tokens in a text, but only rewrites those parts that need to be diversely corrected. Our beam search method adjusts the search token in the beam according to the probability that the prediction is copied from the source sentence. The experimental results show that our proposed method generates more diverse corrections than existing methods without losing accuracy in the GEC task.
机译:在本研究中,我们提出了一种光束搜索方法,以在局部序列转换任务中获得不同输出,其中大多数源和目标句子中的令牌重叠,例如在语法纠错(GEC)中。在GEC中,建议仅重写必须重写的本地序列,同时将正确的序列保持不变。然而,现有的获取各种产出的方法侧重于修改句子的所有令牌。因此,现有方法可以通过削弱约束来强制改变整个句子来改变或产生非多样化句子,以避免产生不发言句子。考虑到这些问题,我们提出了一种不再在文本中重写所有令牌的方法,但只重写需要更加纠正的那些部分。我们的光束搜索方法根据从源句复制预测的概率调整光束中的搜索令牌。实验结果表明,我们的提出方法比现有方法产生更多样化的校正,而不会在GEC任务中失去准确性。

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