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Automatic Generation of High Quality CCGbanks for Parser Domain Adaptation

机译:用于Parser域适应的高质量CCGBanks的自动生成

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We propose a new domain adaptation method for Combinatory Categorial Grammar (CCG) parsing, based on the idea of automatic generation of CCG corpora exploiting cheaper resources of dependency trees. Our solution is conceptually simple, and not relying on a specific parser architecture, making it applicable to the current best-performing parsers. We conduct extensive parsing experiments with detailed discussion; on top of existing benchmark datasets on (1) biomedical texts and (2) question sentences, we create experimental datasets of (3) speech conversation and (4) math problems. When applied to the proposed method, an off-the-shelf CCG parser shows significant performance gains, improving from 90.7% to 96.6% on speech conversation, and from 88.5% to 96.8% on math problems.
机译:我们提出了一种新的域自适应方法,用于组合分类语法(CCG)解析,基于自动生成CCG Corpora利用依赖树更便宜的资源的思想。我们的解决方案在概念上简单,而不是依赖于特定的解析器体系结构,使其适用于当前最佳性能的解析器。我们通过详细讨论进行广泛的解析实验;在(1)生物医学文本和(2)问题句子上的现有基准数据集之上,我们创建了(3)语音对话和(4)数学问题的实验数据集。当应用于所提出的方法时,现成的CCG解析器显示出显着的性能收益,在语音谈话中从90.7%提高到96.6%,并在数学问题上的88.5%至96.8%。

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