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Evaluation of threshold limit methods for sensory data

机译:评估感官数据的阈限方法

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Current approaches to sensory thresholds, such as geometric means and logistic regression, ignore any formal consideration of uncertainty and variability. Various alternative methods based on approximate confidence and prediction intervals about the logistic regression were examined. All methods tended to provide the same ranking among different analyte/media combinations evaluated. Formal statistical conclusions could be made for thresholds based on interval analyses, but not for geometric mean or logistic regression. Methods based on prediction intervals consistently estimated the highest thresholds. Interval-based methods varied with the level of confidence required, as well as the number of panelists and concentrations tested. The geometric mean method yielded the most consistent estimates across a range of panel sizes.
机译:当前达到感觉阈值的方法,例如几何均数和逻辑回归,都忽略了对不确定性和可变性的任何形式上的考虑。研究了基于近似置信度和关于逻辑回归的预测间隔的各种替代方法。所有方法都倾向于在所评估的不同分析物/介质组合之间提供相同的排名。可以基于间隔分析得出阈值的正式统计结论,但不能得出几何均值或逻辑回归的结论。基于预测间隔的方法始终估计最高阈值。基于时间间隔的方法随所需的置信度,专门小组成员的人数和所测试的浓度而变化。几何均值方法在一系列面板尺寸上得出最一致的估计。

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