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Automatic Issue Extraction from a Focused Dialogue

机译:从集中的对话中提取自动问题

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摘要

Various methodologies for structuring the process of domain modeling have been proposed, but there are few software tools that provide automatic support for the process of constructing a domain model. The problem is that it is hard to extract the relevant concepts from natural language texts since these typically include many irrelevant details that are hard to discern from relevant concepts. In this paper, we propose an alternative approach to extract domain models from natural language input. The idea is that more effective, automatic extraction is possible from a natural language text that is produced in a focused dialogue game. We present an application of this idea in the area of pre-negotiation, in combination with sophisticated parsing and transduction techniques for natural language and fairly simple pattern matching rules. Furthermore, a prototype is presented of a conversation-oriented experimentation environment for cooperative conceptualization. Several experiments have been performed to evaluate the approach and environment, and a technique for measuring the quality of extraction has been defined. The experiments indicate that even with a simple implementation of the proposed approach reasonably acceptable results can be obtained.
机译:已经提出了用于构造域建模过程的各种方法,但是很少有软件工具,为构建域模型的过程提供自动支持。问题是,很难从自然语言文本中提取相关概念,因为这些通常包括许多难以从相关概念辨别的无关细节。在本文中,我们提出了一种从自然语言输入中提取域模型的替代方法。该想法是,从聚焦对话游戏中产生的自然语言文本,可以更有效地,自动提取更有效。我们在预谈判地区展示了这个想法,结合了自然语言的复杂解析和转导技术,以及相当简单的模式匹配规则。此外,提出了一种面向谈话的实验环境的原型,用于合作概念化。已经进行了几个实验以评估方法和环境,并确定了用于测量提取质量的技术。实验表明,即使具有所提出的方法的简单实现,可以获得合理可接受的结果。

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