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Integrating NLP Using Linked Data

机译:使用链接数据集成NLP

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We are currently observing a plethora of Natural Language Processing tools and services being made available. Each of the tools and services has its particular strengths and weaknesses, but exploiting the strengths and synergistically combining different tools is currently an extremely cumbersome and time consuming task. Also, once a particular set of tools is integrated, this integration is not reusable by others. We argue that simplifying the interoperability of different NLP tools performing similar but also complementary tasks will facilitate the comparability of results and the creation of sophisticated NLP applications. In this paper, we present the NLP Interchange Format (NIF). NIF is based on a Linked Data enabled URI scheme for identifying elements in (hyper-)texts and an ontology for describing common NLP terms and concepts. In contrast to more centralized solutions such as UIMA and GATE, NIF enables the creation of heterogeneous, distributed and loosely coupled NLP applications, which use the Web as an integration platform. We present several use cases of the second version of the NIF specification (NIF 2.0) and the result of a developer study.
机译:我们目前正在观察大量可用的自然语言处理工具和服务。每个工具和服务都有其特定的优点和缺点,但是,利用优点并协同地组合不同的工具当前是一项非常繁琐且耗时的任务。同样,一旦集成了特定的工具集,则该集成将不能被其他人重复使用。我们认为,简化执行相似但互补任务的不同NLP工具的互操作性将有助于结果的可比性和复杂的NLP应用程序的创建。在本文中,我们介绍了NLP交换格式(NIF)。 NIF基于启用链接数据的URI方案(用于标识(超)文本中的元素)以及用于描述常见NLP术语和概念的本体。与UIMA和GATE等更集中的解决方案相比,NIF支持创建异构,分布式和松耦合的NLP应用程序,这些应用程序使用Web作为集成平台。我们介绍了NIF规范第二版(NIF 2.0)的几个用例以及开发人员研究的结果。

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