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Neural Multi-Source Morphological Reinflection

机译:神经多源形态学改变

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摘要

We explore the task of multi-source morphological reinflection, which generalizes the standard, single-source version. The input consists of (ⅰ) a target tag and (ⅱ) multiple pairs of source form and source tag for a lemma. The motivation is that it is beneficial to have access to more than one source form since different source forms can provide complementary information, e.g., different stems. We further present a novel extension to the encoder-decoder recurrent neural architecture, consisting of multiple encoders, to better solve the task. We show that our new architecture outperforms single-source reinflection models and publish our dataset for multi-source morphological reinflection to facilitate future research.
机译:我们探索了多源形态再思考的任务,该任务概括了标准的单源版本。输入由(ⅰ)个目标标签和(ⅱ)多对成对引理的源形式和源标签组成。动机在于,能够访问一种以上的源形式是有益的,因为不同的源形式可以提供互补的信息,例如,不同的词干。我们进一步提出了由多个编码器组成的编码器-解码器递归神经体系结构的新扩展,以更好地解决任务。我们表明,我们的新体系结构优于单源折返模型,并发布了多源形态折返的数据集,以方便将来的研究。

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