Automatic Detection of Translation Direction

Ilia Sominsky, S. Wintner
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引用次数: 9

Abstract

Parallel corpora are crucial resources for NLP applications, most notably for machine translation. The direction of the (human) translation of parallel corpora has been shown to have significant implications for the quality of statistical machine translation systems that are trained with such corpora. We describe a method for determining the direction of the (manual) translation of parallel corpora at the sentence-pair level. Using several linguistically-motivated features, coupled with a neural network model, we obtain high accuracy on several language pairs. Furthermore, we demonstrate that the accuracy is correlated with the (typological) distance between the two languages.
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平行语料库是自然语言处理应用的重要资源,尤其是机器翻译。平行语料库的(人类)翻译方向已被证明对使用此类语料库训练的统计机器翻译系统的质量具有重要意义。我们描述了一种在句子对层面上确定平行语料库(人工)翻译方向的方法。利用多种语言驱动特征,结合神经网络模型,我们在几种语言对上获得了较高的准确率。此外,我们还证明了准确率与两种语言之间的(类型学)距离有关。
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