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Comparison of methods to analyse imprecise faecal coliform count data from environmental samples.

机译:比较分析环境样品中不精确粪便大肠菌计数数据的方法。

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摘要

Imprecise values arise when bacterial colonies are too numerous to be counted or when no colonies grow at a specific dilution. Our objective was to show the usefulness of multiple imputation in analysing data containing imprecise values. We also indicate that interval censored regression, which is faster computationally in situations where it applies, can be used, providing similar estimates to imputation. We used bacteriological data from a large epidemiological study in daycare centres to illustrate this method and compared it to a standard method which uses single exact values for the imprecise data. The data consisted of numbers of FC on children's and educators' hands, from sandboxes and from playareas. In general, we found that multiple imputation and interval censored regression provided more conservative intervals than the standard method. The discrepancy in the results highlights both the importance of using a method that best captures the uncertainty in the data and how different conclusions might be drawn. This can be crucial for both researchers and those who are involved in formulating and regulating standards for bacteriological contamination.
机译:当细菌菌落太多而无法计数时,或者当特定稀释度下没有菌落生长时,就会出现不精确的值。我们的目标是证明多重插补在分析包含不精确值的数据中的有用性。我们还指出,可以使用区间删失回归(在适用情况下计算速度更快),提供与估算相似的估计。我们使用了来自日托中心的一项大型流行病学研究的细菌学数据来说明此方法,并将其与标准方法进行了比较,该标准方法对不精确的数据使用单个精确值。数据由沙盒和游乐区的儿童和教育工作者手上的FC组成。通常,我们发现多重插补和区间删失回归比标准方法提供了更多的保守区间。结果的差异既突出了使用能最好地捕获数据不确定性的方法的重要性,又突出了如何得出不同的结论。这对于研究人员以及参与制定和管理细菌污染标准的人员都至关重要。

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