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首页> 外文期刊>Forensic science international >Statistical modelling of measurement errors in gas chromatographic analyses of blood alcohol content.
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Statistical modelling of measurement errors in gas chromatographic analyses of blood alcohol content.

机译:血液酒精含量的气相色谱分析中测量误差的统计模型。

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摘要

Headspace gas chromatographic measurements of ethanol content in blood specimens from suspect drunk drivers are routinely carried out in forensic laboratories. In the widely established standard statistical framework, measurement errors in such data are represented by Gaussian distributions for the population of blood specimens at any given level of ethanol content. It is known that the variance of measurement errors increases as a function of the level of ethanol content and the standard statistical approach addresses this issue by replacing the unknown population variances by estimates derived from large sample using a linear regression model. Appropriate statistical analysis of the systematic and random components in the measurement errors is necessary in order to guarantee legally sound security corrections reported to the police authority. Here we address this issue by developing a novel statistical approach that takes into account any potential non-linearity in the relationship between the level of ethanol content and the variability of measurement errors. Our method is based on standard non-parametric kernel techniques for density estimation using a large database of laboratory measurements for blood specimens. Furthermore, we address also the issue of systematic errors in the measurement process by a statistical model that incorporates the sign of the error term in the security correction calculations. Analysis of a set of certified reference materials (CRMs) blood samples demonstrates the importance of explicitly handling the direction of the systematic errors in establishing the statistical uncertainty about the true level of ethanol content. Use of our statistical framework to aid quality control in the laboratory is also discussed.
机译:顶空气相色谱法测定可疑醉酒司机血液样本中乙醇的含量,通常在法医实验室进行。在广泛建立的标准统计框架中,此类数据中的测量误差用任意给定乙醇含量下的血液样本群体的高斯分布表示。众所周知,测量误差的方差随乙醇含量的高低而增加,标准统计方法通过使用线性回归模型用从大样本得出的估计值代替未知总体方差来解决此问题。为了保证向警察机关报告的合法的安全更正,有必要对测量误差中的系统性和随机性成分进行适当的统计分析。在这里,我们通过开发一种新颖的统计方法来解决这个问题,该方法考虑了乙醇含量水平与测量误差变化之间的关系中的任何潜在非线性。我们的方法基于标准的非参数核技术,可使用大型的血液样本实验室测量数据库进行密度估算。此外,我们还通过统计模型解决了测量过程中的系统误差问题,该统计模型将误差项的符号纳入安全校正计算中。对一组经过认证的参考物质(CRM)血液样本的分析表明,在建立有关乙醇含量真实水平的统计不确定性时,明确处理系统误差方向的重要性。还讨论了使用我们的统计框架来帮助实验室进行质量控制。

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