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Natural Language Processing, Moving from Rules to Data

机译:自然语言处理,从规则转移到数据

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During the last decade, we assist to a major change in the direction that theoretical models used in natural language processing follow. We are moving from rule-based systems to corpus-oriented paradigms. In this paper, we analyze several generative formalisms together with newer statistical and data-oriented linguistic methodologies. We review existing methods belonging to deep or shallow learning applied in various subfields of computational linguistics. The continuous, fast improvements obtained by practical, applied machine learning techniques may lead us to new theoretical developments in the classic models as well. We discuss several scenarios for future approaches.
机译:在过去十年中,我们协助对自然语言处理中使用的理论模型的方向进行重大变化。我们从基于规则的系统转移到导向语料库的范式。在本文中,我们与较新的统计和数据导向语言方法分析了几种生成形式主义。我们在计算语言学的各个子场中审查了属于深层或浅层学习的现有方法。通过实用,应用的机器学习技术获得的连续,快速改进可能导致我们对经典模型的新理论发展。我们讨论了未来方法的几种情况。

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