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Ontology-based automatic identification of public health-related Turkish tweets

机译:基于本体的自动识别公共卫生相关土耳其推文

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摘要

Social media analysis, such as the analysis of tweets, is a promising research topic for tracking public health concerns including epidemics. In this paper, we present an ontology-based approach to automatically identify public health-related Turkish tweets. The system is based on a public health ontology that we have constructed through a semi-automated procedure. The ontology concepts are expanded through a linguistically motivated relaxation scheme as the last stage of ontology development, before being integrated into our system to increase its coverage. The ultimate lexical resource which includes the terms corresponding to the ontology concepts is used to filter the Twitter stream so that a plausible tweet subset, including mostly public-health related tweets, can be obtained. Experiments are carried out on two million genuine tweets and promising precision rates are obtained. Also implemented within the course of the current study is a Web-based interface, to track the results of this identification system, to be used by the related public health staff. Hence, the current social media analysis study has both technical and practical contributions to the significant domain of public health.
机译:社交媒体分析,如推文的分析,是跟踪包括流行病在内的公共卫生问题的有前途的研究课题。在本文中,我们提出了一种基于本体的方法,可以自动识别公共卫生相关的土耳其推文。该系统基于我们通过半自动程序构建的公共卫生本体。本体概念通过语言上促进的放松方案作为本体论的最后阶段,在整合到我们的系统中增加其覆盖率之前。包括与本体概念对应的术语的最终词汇资源用于过滤Twitter流,以便可以获得包括主要公共健康相关推文的合理的Tweet子集。实验是在200万正版推文上进行的,并获得了有希望的精确率。还在当前研究过程中实施是一种基于Web的界面,跟踪该识别系统的结果,由相关的公共卫生人员使用。因此,目前的社交媒体分析研究对公共卫生的重要领域具有技术和实践贡献。

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