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Autonomous Decentralized Privacy-Enabled Data Preparation Architecture for Multicenter Clinical Observational Research

机译:用于多中心临床观察研究的自主分散式启用隐私的数据准备架构

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Tailoring treatment and clinical decision making to a person's unique characteristics is the next milestone for healthcare informatics, but for it to be accomplished, big data analytics for identifying risk factors and other hidden patterns among patients become paramount. In future these analytics will take the form of multicenter observational research, for which data preparation is vital. Specifically, quality data must be obtained in a timely manner while protecting the privacy of patients in the health records shared among researchers. Furthermore, the coordination and cooperation of a fluctuating number of medical data sources containing these records for clinical data distribution is an additional requirement in multicenter studies. Thus, we propose an autonomous decentralized, privacy-enabled data preparation architecture and novel SEDTM algorithm to meet these requirements, censuring sensitive information via filtration, and extracting relevant clinical data with a fully automated approach. Our evaluation demonstrates a 40% - 60% increase in the retrieval of quality patient data, compared to traditional semantic similarity, for our proposed SEDTM algorithm.
机译:为个人信息量身定制治疗方案和临床决策是医疗信息学的下一个里程碑,但要实现这一目标,大数据分析以识别患者中的危险因素和其他隐藏模式变得至关重要。将来,这些分析将采取多中心观测研究的形式,对此数据的准备至关重要。具体而言,必须及时获取质量数据,同时在研究人员之间共享的健康记录中保护患者的隐私。此外,在多中心研究中,对包含这些记录以用于临床数据分发的数量不定的医学数据源进行协调和协作是一个额外的要求。因此,我们提出了一种自治的,分散的,具有隐私功能的数据准备架构和新颖的SEDTM算法,以满足这些要求,通过过滤检查敏感信息,并使用全自动方法提取相关的临床数据。我们的评估表明,对于我们提出的SEDTM算法,与传统的语义相似度相比,高质量患者数据的检索增加了40%-60%。

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