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Statistical visualization for assessing performance of methods for safety surveillance using electronic databases.

机译:统计可视化,用于评估使用电子数据库进行安全监视的方法的性能。

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The success of an epidemiological study for drug safety surveillance or comparative effectiveness depends largely on design and analysis strategies besides data quality. The Observational Medical Outcomes Partnership (OMOP) methods community implemented a collection of statistical methods with extensive parameters allowing a wide variety of designs and analyses. Our objective was to develop a visualization tool to explore which parameter settings may enable better predictive properties for a given method in a database.Performance measures were produced for each setting, including sensitivity (recall), specificity (1-FPR), AUC, MAP, and Pk . Multiple regressions with relevant parameters as main effects were run for performance measures on all test cases and subgroups. Heatmaps with sequential palettes to indicate the parameters' impacts on performance measures were generated based on matrices of the standardized coefficients (t-statistics) by parameter settings and test case subgroups.Heatmaps help researchers to explore design and analysis options of methods for evaluating a variety of drug-outcome relationships and also to explore data issues.Statistical visualization through heatmaps is a useful tool for summarizing and presenting method performance results and for the exploration of the parameter settings for method performance characteristics and data limitations. Copyright ? 2013 John Wiley & Sons, Ltd.
机译:一项用于药物安全性监测或比较有效性的流行病学研究的成功,除数据质量外,还很大程度上取决于设计和分析策略。观察性医疗成果合作伙伴关系(OMOP)方法社区实施了一系列统计方法,这些方法具有广泛的参数,可以进行多种设计和分析。我们的目标是开发一种可视化工具,以探索哪些参数设置可以为数据库中的给定方法提供更好的预测特性。每种设置都产生了性能指标,包括灵敏度(召回率),特异性(1-FPR),AUC,MAP和Pk。对所有测试用例和子组的性能指标进行了以相关参数为主要影响的多元回归。通过参数设置和测试用例子组,基于标准化系数矩阵(t统计)生成具有顺序调色板的热图,以指示参数对性能指标的影响。热图可帮助研究人员探索评估各种方法的设计和分析选项通过热图进行统计可视化是总结和展示方法性能结果以及探索方法性能特征和数据限制的参数设置的有用工具。版权? 2013 John Wiley&Sons,Ltd.

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