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Specifics Analysis of Medical Communities in Social Network Services

机译:社交网络服务中医学社区的特征分析

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Social networks contain a lot of useful medical information in users' and communities' posts especially about adverse drug reactions. But before processing of the medical communities, it is important to be aware of their implicit features, which could affect the reliability of the information retrieved. We use the principal component centrality evaluation to reveal features of the distribution of influence of community members. Cosine similarity was used to compare vocabularies and structural indicators of communities of different types. As a result of the research, it was found that the medical communities have significant similarities with the communities of mothers of young children, so they can be used as an extension of the information database on the collection of the drug response. In addition, medical communities may have an atypical structure with several users who have high influence in a particular group, which shows that is necessary to verify the reliability of the information retrieved.
机译:社交网络在用户和社区的帖子中包含许多有用的医学信息,尤其是有关药物不良反应的信息。但是在处理医疗社区之前,重要的是要了解它们的隐式特征,这可能会影响所检索信息的可靠性。我们使用主成分中心性评估来揭示社区成员影响力分布的特征。余弦相似度用于比较不同类型社区的词汇量和结构指标。作为研究的结果,发现医学界与幼儿母亲的界具有显着的相似性,因此它们可以用作药物反应收集信息数据库的扩展。此外,医学界可能具有非典型的结构,其中几个用户在特定组中具有较高的影响力,这表明验证所检索信息的可靠性是必要的。

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