基于大数据关联规则的急救站绩效考核研究  被引量:1

Research on Performance Assement in First-aid Station Based on Big Data and Association Rule

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作  者:陈焜 李亮 方敏[2] 周华健 翁扬帆 许振影 张华 杨洁 俞青 CHEN Kun;LI Liang;FANG Min(Beijing Chaoyang District Emergency Medical Rescue Center,Beijing 100026,P.R.C)

机构地区:[1]北京市朝阳区紧急医疗救援中心,北京市朝阳区100026 [2]杭州师范大学钱江学院,浙江省杭州市310018 [3]创业慧康科技股份有限公司,浙江省杭州市310052

出  处:《中国数字医学》2021年第5期41-44,共4页China Digital Medicine

摘  要:目的:综合考虑绩效考核的主客观评分,通过数据挖掘技术优化急救绩效考核方法,提高急救站的绩效水平。方法:对北京市朝阳区紧急医疗救援中心各下属急救站2018年绩效考核数据进行预处理后,采用数据挖掘算法中的Apriori算法挖掘出影响评委团综合打分的组合关系指标,对下属急救站的绩效考核项权重进行相应调整。结果:通过对绩效考核权重的修改,急救中心2019年的各项重要指标有明显提升。结论:通过Apriori关联规则算法可以优化绩效考核方法,解决传统绩效制度受固定权重与主观评分标准难以量化的问题,为急救站绩效考核指标优化提供依据。Objective:To improve first-aid station's performance assessment by optimizing performance assessment method using data minging techniques and considering comprehensive acessment score.Methods:After pre-processing the 2018 performance assement data from Beijing Chaoyang first-aid stations which are supervised by Chaoyang center,applying the Apriori algorithm to find influencial factors for overall indicators score,and re-weight those factors accordingly.Results:The important indicators in the first-aid centers have been significantly improved in 2019.Conclusion:Apriori algorithm can avoid the constant-weight and subjective weighting problems in traditional performance assessment methods and provides valuable basis for the weights of factors in optimizing performance assessment.

关 键 词:绩效考核 数据挖掘 APRIORI算法 

分 类 号:R319[医药卫生—基础医学] F272.92[经济管理—企业管理]

 

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