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Why Catalan-Spanish Neural Machine Translation? Analysis, comparison and combination with standard Rule and Phrase-based technologies

机译:为什么要加泰罗尼亚语-西班牙语神经机器翻译?与标准规则和基于短语的技术进行分析,比较和组合

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摘要

Catalan and Spanish are two related languages given that both derive from Latin. They share similarities in several linguistic levels including morphology, syntax and semantics. This makes them particularly interesting for the MT task. Given the recent appearance and popularity of neural MT, this paper analyzes the performance of this new approach compared to the well-established rule-based and phrase-based MT systems. Experiments are reported on a large database of 180 million words. Results, in terms of standard automatic measures, show that neural MT clearly outperforms the rule-based and phrase-based MT system on in-domain test set, but it is worst in the out-of-domain test set. A naive system combination specially works for the latter. In-domain manual analysis shows that neural MT tends to improve both adequacy and fluency, for example, by being able to generate more natural translations instead of literal ones, choosing to the adequate target word when the source word has several translations and improving gender agreement. However, out-of-domain manual analysis shows how neural MT is more affected by unknown words or contexts.
机译:加泰罗尼亚语和西班牙语是两种相关的语言,因为它们都源自拉丁语。它们在形态,语法和语义等几个语言水平上具有相似性。这使它们对于MT任务特别有趣。考虑到神经MT的最新出现和流行,本文与公认的基于规则和基于短语的MT系统相比,分析了这种新方法的性能。在一个拥有1.8亿个单词的大型数据库中报告了实验。根据标准的自动测量结果,结果表明,神经域MT在域内测试集上明显胜过基于规则和基于短语的MT系统,但在域外测试集上表现最差。天真的系统组合特别适用于后者。领域内的人工分析表明,神经MT倾向于提高适当性和流畅性,例如,能够生成更多自然的翻译,而不是原义的翻译,在源词经过多次翻译后选择适当的目标词,并改善性别共识。但是,域外手动分析显示了未知词或上下文对神经MT的影响。

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