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首页> 外文期刊>International journal of health care quality assurance >Using knowledge discovery through data mining to gain intelligence from routinely collected incident reporting in an acute English hospital
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Using knowledge discovery through data mining to gain intelligence from routinely collected incident reporting in an acute English hospital

机译:通过数据挖掘使用知识发现,从急性英语医院常规收集的事件报告获得智能

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摘要

Purpose - Incident reporting systems are commonly deployed in healthcare but resulting datasets are largely warehoused. This study explores if intelligence from such datasets could be used to improve quality, efficiency, and safety. Design/methodology/approach - Incident reporting data recorded in one NHS acute Trust was mined for insight (n = 133,893 April 2005-July 2016 across 201 fields, 26,912,493 items). An a priori dataset was overlaid consisting of staffing, vital signs, and national safety indicators such as falls. Analysis was primarily nonlinear statistical approaches using Mathematica Vll. Findings - The organization developed a deeper understanding of the use of incident reporting systems both in terms of usability and possible reflection of culture. Signals emerged which focused areas of improvement or risk. An example of this is a deeper understanding of the timing and staffing levels associated with falls. Insight into the nature and grading of reporting was also gained. Practical implications - Healthcare incident reporting data is underused and with a small amount of analysis can provide real insight and application to patient safety. Originality/value - This study shows that insight can be gained by mining incident reporting datasets, particularly when integrated with other routinely collected data.
机译:目的 - 事件报告系统通常在医疗保健中部署,但结果数据集主要仓储。本研究探讨了这种数据集的智能,可用于提高质量,效率和安全性。设计/方法/方法 - 在一个NHS急性信托中记录的事件报告数据被开采了Insight(N = 133,893 2005年4月 - 2016年7月,2016年7月,26,912,493项)。先验数据集覆盖,包括员工,生命体征和国家安全指标,如秋季。分析主要是使用Mathematica VLL的非线性统计方法。调查结果 - 该组织在可用性和可能的​​文化的反映方面,更深入地了解使用事件报告系统。发出的信号是重点的改善或风险的领域。这一示例是对与跌倒相关的时机和人员配置水平更深入了解。还获得了报告的性质和评级的洞察。实际意义 - 医疗事件报告数据未充分利用,少量分析可以为患者安全提供真正的见解和应用。创意/值 - 本研究表明,可以通过挖掘事件报告数据集获得洞察力,特别是当与其他常规收集的数据集成时。

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