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Exploring adverse drug reactions of diabetes medicine using social media analytics and interactive visualizations

机译:使用社交媒体分析和交互式可视化探索糖尿病药物的药物不良反应

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摘要

The aim of this study is to propose an automatic and real-time social media analytics framework with interactive data visualizations to support effective exploration of knowledge about adverse drug reaction (ADR) surveillance. This proposed framework has been prototypically implemented on the basis of social media data. A longitudinal diabetes patient online community data (AskaPatient.com) as well as FDA Adverse Event Reporting Systems (FAERS) data as a benchmark were used to evaluate our proposed approach's performance. Based on the results, our approach significantly increases the precision and accuracy for ADR extraction. The number of ADR cases, the time when the ADRs occurred, and the rating of Glucophage have been visualized that resulted by mining a collection of 870 ADRs posted in Askapatents.com over a certain time period (from 2001 to 2015). The results have important implications for pharmaceutical companies and hospitals wishing to monitor ADRs of medicines.
机译:这项研究的目的是提出一种具有交互数据可视化功能的自动实时社交媒体分析框架,以支持对药物不良反应(ADR)监控知识的有效探索。拟议的框架已在社交媒体数据的基础上实现。纵向糖尿病患者在线社区数据(AskaPatient.com)以及FDA不良事件报告系统(FAERS)数据作为基准,用于评估我们提出的方法的性能。根据结果​​,我们的方法大大提高了ADR提取的精度和准确性。通过在一定时间段(2001年至2015年)内挖掘了在Askapatents.com上发布的870个ADR的集合,可以直观地看到ADR的数量,发生ADR的时间以及对Glucophage的评价。该结果对希望监测药品不良反应的制药公司和医院具有重要意义。

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