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Improving Statistical Machine Translation in the Medical Domain using the Unified Medical Language System

机译:使用统一的医学语言系统改善医学领域的统计机器翻译

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摘要

Texts from the medical domain are an important task for natural language processing. This paper investigates the usefulness of a large medical database (the Unified Medical Language System) for the translation of dialogues between doctors and patients using a statistical machine translation system. We are able to show that the extraction of a large dictionary and the usage of semantic type information to generalize the training data significantly improves the translation performance.
机译:医学领域的文本是自然语言处理的重要任务。本文研究了使用统计机器翻译系统的大型医学数据库(统一医学语言系统)对于医患对话翻译的有用性。我们能够证明,大词典的提取以及语义类型信息对训练数据的概括性使用大大提高了翻译性能。

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