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A hybrid IT framework for identifying high-quality physicians using big data analytics

机译:使用大数据分析识别高素质医生的混合IT框架

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Patients face difficulties identifying appropriate doctors owing to the sizeable quantity and uneven quality of information in online healthcare communities. In studying physician searches, researchers often focus on expertise similarly matches and sentiment analyses of reviews. However, the quality is often ignored. To address patients' information needs holistically, we propose a four-dimensional IT framework based on signaling theory. The model takes expertise knowledge, online reviews, profile descriptions (e.g., hospital reputation, number of patients, city) and service quality (e.g., response speed, interaction frequency, cost) as signals that distinguish high-quality physicians. It uses machine learning approaches to derive similarly matches and sentiment analysis. It also measures the relative importance of the signals by multi-criterion analysis and derives the physician rankings through the aggregated scores. Our study revealed that the proposed approach performs better compared with the other two recommend techniques. This research expands the boundary of signaling theory to healthcare management and enriches the literature on IT use and inter-organizational systems. The proposed IT model may improve patient care, alleviate the physician-patient relationship and reduce lawsuits against hospitals; it also has practical implications for healthcare management.
机译:由于在线医疗社区中信息量巨大且质量参差不齐,患者难以找到合适的医生。在研究医师搜索时,研究人员通常专注于类似的专业知识和评论的情感分析。但是,质量经常被忽略。为了全面解决患者的信息需求,我们提出了一种基于信号理论的三维IT框架。该模型将专业知识,在线评论,个人资料描述(例如,医院声誉,患者人数,城市)和服务质量(例如,响应速度,互动频率,费用)作为区分高质量医师的信号。它使用机器学习方法来得出类似的匹配和情感分析。它还通过多准则分析来测量信号的相对重要性,并通过汇总分数得出医师排名。我们的研究表明,与其他两种推荐技术相比,该提议方法的效果更好。这项研究将信号理论的范围扩展到医疗保健管理,并丰富了有关IT使用和组织间系统的文献。提出的信息技术模型可以改善患者护理,减轻医患关系,减少对医院的诉讼。它对医疗保健管理也有实际意义。

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