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The problem of multiple inference in identifying point-source environmental hazards.

机译:识别点源环境危害的多重推理问题。

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摘要

Point-source environmental hazards are often identified by examination of unusual clusters of disease cases. The very large number of potential clusters give rise to the statistical problem of "multiple inference," i.e., the more clusters examined, the greater the risk of "false-positive" associations emerging by chance alone. This paper first distinguishes the situation of clusters identified by anecdotal observation from those that emerge from systematic searches. The latter may or may not include a systematic enumeration of potential causal factors associated with each potential disease cluster. If exposure information is not systematically available, empirical Bayes procedures are suggested as a basis for ranking the observed clusters in order of priority for further investigation. If exposure information is systematically available, empirical Bayes procedures can be used to select associations to report or to rank them in order of priority for confirmation. In addition, procedures are described for testing the global null hypothesis of no exposure-disease associations and for estimating the number of true-positive associations. These approaches are advocated in preference to classical frequentist approaches of multiplying p values by the number of tests performed.
机译:点源环境危害通常通过检查异常病例群来识别。潜在聚类的数量非常庞大,引起了“多重推论”的统计问题,即,检验的聚类越多,仅凭偶然出现“假阳性”关联的风险就越大。本文首先将通过轶事观察发现的星团的情况与系统搜索中出现的星团的情况区分开来。后者可能包括也可能不包括与每个潜在疾病群相关的潜在病因的系统列举。如果没有系统可用的暴露信息,建议采用经验贝叶斯程序作为对观察到的星团进行排序的基础,以便按优先顺序进行进一步研究。如果可以系统地获得暴露信息,则可以使用经验贝叶斯程序来选择要报告的关联或按优先顺序对它们进行排名以进行确认。另外,描述了用于测试没有暴露-疾病关联的全局无效假设和估计真实-阳性关联的数量的程序。相对于将p值乘以执行的测试次数而得出的经典的频繁访问者方法,提倡使用这些方法。

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