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New trends in natural language processing: statistical natural language processing.

机译:自然语言处理的新趋势:统计自然语言处理。

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摘要

The field of natural language processing (NLP) has seen a dramatic shift in both research direction and methodology in the past several years. In the past, most work in computational linguistics tended to focus on purely symbolic methods. Recently, more and more work is shifting toward hybrid methods that combine new empirical corpus-based methods, including the use of probabilistic and information-theoretic techniques, with traditional symbolic methods. This work is made possible by the recent availability of linguistic databases that add rich linguistic annotation to corpora of natural language text. Already, these methods have led to a dramatic improvement in the performance of a variety of NLP systems with similar improvement likely in the coming years. This paper focuses on these trends, surveying in particular three areas of recent progress: part-of-speech tagging, stochastic parsing, and lexical semantics.
机译:在过去的几年中,自然语言处理(NLP)领域在研究方向和方法论上都发生了巨大变化。过去,大多数计算语言学方面的工作都集中在纯符号方法上。近年来,越来越多的工作转向混合方法,该方法将基于经验语料库的新方法与传统的符号方法相结合,包括使用概率和信息理论技术。语言数据库的最新可用性使这项工作成为可能,该语言数据库为自然语言文本的语料库添加了丰富的语言注释。这些方法已经导致各种NLP系统性能的显着改善,并且在未来几年中可能会出现类似的改善。本文着眼于这些趋势,特别是对三个方面的最新进展进行了调查:词性标记,随机分析和词法语义。

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