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首页> 外文期刊>Critical reviews in toxicology >Measurement error in environmental epidemiology and the shape of exposure-response curves.
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Measurement error in environmental epidemiology and the shape of exposure-response curves.

机译:环境流行病学中的测量误差和暴露-响应曲线的形状。

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Both classical and Berkson exposure measurement errors as encountered in environmental epidemiology data can result in biases in fitted exposure-response relationships that are large enough to affect the interpretation and use of the apparent exposure-response shapes in risk assessment applications. A variety of sources of potential measurement error exist in the process of estimating individual exposures to environmental contaminants, and the authors review the evaluation in the literature of the magnitudes and patterns of exposure measurement errors that prevail in actual practice. It is well known among statisticians that random errors in the values of independent variables (such as exposure in exposure-response curves) may tend to bias regression results. For increasing curves, this effect tends to flatten and apparently linearize what is in truth a steeper and perhaps more curvilinear or even threshold-bearing relationship. The degree of bias is tied to the magnitude of the measurement error in the independent variables. It has been shown that the degree of bias known to apply to actual studies is sufficient to produce a false linear result, and that although nonparametric smoothing and other error-mitigating techniques may assist in identifying a threshold, they do not guarantee detection of a threshold. The consequences of this could be great, as it could lead to a misallocation of resources towards regulations that do not offer any benefit to public health.
机译:环境流行病学数据中遇到的经典和伯克森暴露测量误差均会导致拟合的暴露-响应关系产生偏差,该偏差足够大,以影响风险评估应用中表观暴露-响应形状的解释和使用。在估算个人暴露于环境污染物的过程中,存在多种潜在的测量误差源,并且作者回顾了文献中对实际实践中普遍存在的测量误差的大小和模式的评估。在统计学家中众所周知,自变量值的随机误差(例如暴露-响应曲线中的暴露)可能会导致回归结果出现偏差。对于增加的曲线,此效果趋于平坦化,并且显然线性化,实际上实际上是更陡峭的,甚至更曲线的,甚至是阈值承载的关系。偏差的程度与独立变量中测量误差的大小有关。已经表明,已知适用于实际研究的偏差程度足以产生错误的线性结果,并且尽管非参数平滑和其他误差缓解技术可能有助于识别阈值,但它们不能保证检测到阈值。这样做的后果可能是巨大的,因为这可能导致将资源分配给对公共卫生没有任何好处的法规。

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