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Mining Health-Related Issues in Consumer Product Reviews by Using Scalable Text Analytics:

机译:使用可伸缩文本分析来挖掘消费品评论中与健康相关的问题:

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In an era when most of our life activities are digitized and recorded, opportunities abound to gain insights about population health. Online product reviews present a unique data source that is currently underexplored. Health-related information, although scarce, can be systematically mined in online product reviews. Leveraging natural language processing and machine learning tools, we were able to mine 1.3 million grocery product reviews for health-related information. The objectives of the study were as follows: (1) conduct quantitative and qualitative analysis on the types of health issues found in consumer product reviews; (2) develop a machine learning classifier to detect reviews that contain health-related issues; and (3) gain insights about the task characteristics and challenges for text analytics to guide future research.
机译:在当今时代,我们大多数生活活动都被数字化并记录下来,因此有很多机会可以深入了解人口健康。在线产品评论提供了当前尚未充分开发的独特数据源。与健康相关的信息虽然很少,但可以在在线产品评论中系统地获取。利用自然语言处理和机器学习工具,我们能够挖掘130万种杂货产品评论,以获取与健康相关的信息。研究的目的如下:(1)对消费品评论中发现的健康问题类型进行定量和定性分析; (2)开发机器学习分类器,以检测包含健康相关问题的评论; (3)深入了解有关文本分析的任务特征和挑战,以指导未来的研究。

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