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Principle-Based Approach for Semi-Automatic Construction of a Restaurant Question Answering System from Limited Datasets

机译:基于原理基于Limited DataSets餐厅问题应答系统的半自动构建方法

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Question answering (QA) is an important research issue in natural language processing, and most state-of the-art question answering systems are based on statistical models. After witnessing recent achievements in Artificial Intelligent (AI), many businesses wish to apply those techniques to an automatic QA system that is capable of providing 24-hour customer services for their clients. However, one imminent problem is the lack of labeled training data for the specific domain. To address this issue, we propose to combine a knowledge-based approach and an automatic principle generation process to build a QA system from limited resources. Experiments conducted on a Mandarin Restaurant dataset show that our system achieves an average accuracy of 44% for 10 question types. It demonstrates that our approach can provide an effective tool when creating a QA system.
机译:问题答案(QA)是自然语言处理中的重要研究问题,最先进的问题答案系统基于统计模型。在目睹最近人工智能(AI)中的成就后,许多企业希望将这些技术应用于能够为客户提供24小时客户服务的自动QA系统。但是,一个即将存在的问题是特定领域缺乏标记的训练数据。为了解决这个问题,我们建议将基于知识的方法和自动原理生成过程结合起来,以构建资源有限的QA系统。在普通话Restaurant DataSet上进行的实验表明,我们的系统实现了10个问题类型的平均准确性为44%。它展示了我们的方法可以在创建QA系统时提供有效的工具。

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