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Natural Language Processing and the Conceptual Model Self-organizing Map

机译:自然语言处理和概念模型自组织地图

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Self-organizing map can be an effective tool for the textual data classification. In this paper, we represent the methodology of an integration of the information system modeling and the development of the information system natural language interface. The main idea of the paper is to build the set of self-organising maps from information system documentation and then reuse it in human-machine communication as a semantic parsing component. The IBM’s Information Framework (IFW) Financial Services Data Model has been used in an experiment where we tested how appropriate is presented methodology and what is classification accuracy of the received self-organizing maps. We compare classification accuracy with the IBM’s WebSphere Voice Server NLU solution and demonstrate that self-organising maps can be a competitive components in the information systems natural language interfaces.
机译:自组织地图可以是文本数据分类的有效工具。在本文中,我们代表了信息系统建模的集成方法和信息系统自然语言界面的开发方法。本文的主要思想是从信息系统文档中构建一组自组织地图,然后将其以人机通信重用作为语义解析组件。 IBM的信息框架(IFW)金融服务数据模型已在实验中使用,我们测试了如何呈现呈现的方法,以及收到的自组织地图的分类准确性。我们将分类准确性与IBM的WebSphere Voice Server NLU解决方案进行比较,并证明自组织地图可以是信息系统自然语言接口中的竞争组件。

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