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The limitations due to exposure detection limits for regression models.

机译:由于回归模型的暴露检测限制而导致的限制。

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摘要

Biomarker use in exposure assessment is increasingly common, and consideration of related issues is of growing importance. Exposure quantification may be compromised when measurement is subject to a lower threshold. Statistical modeling of such data requires a decision regarding the handling of such readings. Various authors have considered this problem. In the context of linear regression analysis, Richardson and Ciampi (Am J Epidemiol 2003;157:355-63) proposed replacement of data below a threshold by a constant equal to the expectation for such data to yield unbiased estimates. Use of such an imputation has some limitations; distributional assumptions are required, and bias reduction in estimation of regression parameters is asymptotic, thereby presenting concerns about small studies. In this paper, the authors propose distribution-free methods for managing values below detection limits and evaluate the biases that may result when exposure measurement is constrained by a lower threshold. The authors utilize an analytical approach and a simulation study to assess the effects of the proposed replacement method on estimates. These results may inform decisions regarding analytical plans for future studies and provide a possible explanation for some amount of the discordance seen in extant literature.
机译:在暴露评估中使用生物标志物变得越来越普遍,对相关问题的考虑也变得越来越重要。当测量值处于较低阈值时,曝光量化可能会受到影响。此类数据的统计建模需要有关处理此类读数的决定。许多作者已经考虑了这个问题。在线性回归分析的背景下,Richardson和Ciampi(Am J Epidemiol 2003; 157:355-63)建议用等于该数据产生无偏估计值的期望的常数替换阈值以下的数据。使用这种估算有一定的局限性。需要进行分布假设,并且回归参数的估计中的偏差减少是渐近的,因此引起了对小型研究的关注。在本文中,作者提出了一种无分布方法来管理低于检测极限的值,并评估当曝光测量值受较低阈值限制时可能产生的偏差。作者利用分析方法和模拟研究来评估提议的替代方法对估计值的影响。这些结果可能会为有关未来研究的分析计划的决策提供依据,并可能为现有文献中出现的某些不一致提供解释。

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