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Distributional Phrasal Paraphrase Generation for Statistical Machine Translation

机译:统计机器翻译的分布式短语短语释义生成

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摘要

Paraphrase generation has been shown useful for various natural language processing tasks, including statistical machine translation. A commonly used method for paraphrase generation is pivoting [Callison-Burch et al. 2006], which benefits from linguistic knowledge implicit in the sentence alignment of parallel texts, but has limited applicability due to its reliance on parallel texts. Distributional paraphrasing [Marton et al. 2009a] has wider applicability, is more language-independent, but doesn't benefit from any linguistic knowledge. Nevertheless, we show that using distributional paraphrasing can yield greater gains in translation tasks. We report method improvements leading to higher gains than previously published, of almost 2 Bleu points, and provide implementation details, complexity analysis, and further insight into this method.
机译:复述生成已被证明可用于各种自然语言处理任务,包括统计机器翻译。常用的释义方法是旋转[Callison-Burch等。 [2006],这得益于并行文本句子对齐中隐含的语言知识,但由于其对并行文本的依赖,其适用性有限。分布释义[Marton et al。 [2009a]的适用范围更广,更不依赖语言,但不会从任何语言知识中受益。尽管如此,我们证明使用分布释义可以在翻译任务中获得更大的收益。我们报告了方法改进带来的收益,该收益比以前发布的收益增加了近2个Bleu点,并提供了实现细节,复杂性分析以及对该方法的进一步了解。

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