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Corpus development for Indonesian consumer-health question answering system

机译:印尼消费者健康问答系统的语料库开发

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Web-based question answering services facilitate users to seek more personalized health-related information. However, the users sometimes have to wait for a while until their questions to be answered. Automatic question answering research can assist the system to generate or retrieve the answer to users. Our work was a pioneering study on consumer-health question answering for Bahasa Indonesia. We built a corpus of 86,731 consumer-health questions, collected from 5 different websites. As part of annotation, we classify the sub-topics for each question, which corresponds to medical specialization. Question sub-topic classification is completed by two complementary approaches: dictionary-based and machine learning-based.
机译:基于Web的问答服务可帮助用户寻找更多个性化的健康相关信息。但是,用户有时不得不等待一段时间才能回答他们的问题。自动问答研究可以帮助系统生成或检索用户答案。我们的工作是针对印度尼西亚语的消费者健康问题解答的开创性研究。我们从5个不同的网站收集了86,731个消费者健康问题的语料库。作为注释的一部分,我们对每个问题的子主题进行分类,这与医学专业化相对应。问题子主题分类通过两种补充方法完成:基于字典的方法和基于机器学习的方法。

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