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CONQUEST: A Framework for Building Template-Based IQA Chatbots for Enterprise Knowledge Graphs

机译:征服:用于为企业知识图构建基于模板的IQA聊天机器人的框架

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The popularization of Enterprise Knowledge Graphs (EKGs) brings an opportunity to use Question Answering Systems to consult these sources using natural language. We present CONQUEST, a framework that automates much of the process of building chatbots for the Template-Based Interactive Question Answering task on EKGs. The framework automatically handles the processes of construction of the Natural Language Processing engine, construction of the question classification mechanism, definition of the system interaction flow, construction of the EKG query mechanism, and finally, the construction of the user interaction interface. CONQUEST uses a machine learning-based mechanism to classify input questions to known templates extracted from EKGs, utilizing the clarification dialog to resolve inconclusive classifications and request mandatory missing parameters. CONQUEST also evolves with question clarification: these cases define question patterns used as new examples for training.
机译:企业知识图谱(EKG)的普及为使用问答系统使用自然语言查询这些资源提供了机会。我们提出了CONQUEST这个框架,该框架可以自动为EKG上的基于模板的交互式问题解答任务构建聊天机器人的大部分过程。该框架自动处理自然语言处理引擎的构建过程,问题分类机制的构建过程,系统交互流程的定义,EKG查询机制的构建过程以及最终用户交互界面的构建过程。 CONQUEST使用基于机器学习的机制将输入问题分类为从EKG提取的已知模板,利用澄清对话框解决不确定的分类并请求强制性的缺失参数。 CONQUEST也随着问题的澄清而发展:这些案例定义了用作培训新示例的问题模式。

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