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Pharmacovigilance from social media: An improved random subspace method for identifying adverse drug events

机译:来自社交媒体的药物警戒:一种改进的随机子空间方法,用于识别不良药物事件

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Objective: Recent advances in Web 2.0 technologies have seen significant strides towards utilizing patient-generated content for pharmacovigilance. Social media-based pharmacovigilance has great potential to augment current efforts and provide regulatory authorities with valuable decision aids. Among various pharmacovigilance activities, identifying adverse drug events (ADEs) is very important for patient safety. However, in health-related discussion forums, ADEs may confound with drug indications and beneficial effects, etc. Therefore, the focus of this study is to develop a strategy to identify ADEs from other semantic types, and meanwhile to determine the drug that an ADE is associated with.
机译:目标:Web 2.0技术的最新进展在利用患者生成的内容进行药物警戒方面取得了重大进展。基于社交媒体的药物警戒有巨大的潜力来扩大当前的工作并为监管机构提供有价值的决策帮助。在各种药物警戒活动中,识别不良药物事件(ADE)对患者安全非常重要。但是,在与健康相关的讨论论坛中,ADEs可能与药物适应症和有益作用等混淆。因此,本研究的重点是开发一种从其他语义类型中识别ADEs的策略,同时确定一种ADE药物与....关联。

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