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首页> 外文期刊>Biometrics: Journal of the Biometric Society : An International Society Devoted to the Mathematical and Statistical Aspects of Biology >Multiplicity-adjusted inferences in risk assessment: benchmark analysis with quantal response data.
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Multiplicity-adjusted inferences in risk assessment: benchmark analysis with quantal response data.

机译:风险评估中经过多重调整的推论:具有定量响应数据的基准分析。

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摘要

Summary. A primary objective in quantitative risk or safety assessment is characterization of the severity and likelihood of an adverse effect caused by a chemical toxin or pharmaceutical agent. In many cases data are not available at low doses or low exposures to the agent, and inferences at those doses must be based on the high-dose data. A modern method for making low-dose inferences is known as benchmark analysis, where attention centers on the dose at which a fixed benchmark level of risk is achieved. Both upper confidence limits on the risk and lower confidence limits on the "benchmark dose" are of interest. In practice, a number of possible benchmark risks may be under study; if so, corrections must be applied to adjust the limits for multiplicity. In this short note, we discuss approaches for doing so with quantal response data.
机译:概要。定量风险或安全性评估的主要目标是表征化学毒素或药物造成的不利影响的严重性和可能性。在许多情况下,在低剂量或低剂量暴露于药物时无法获得数据,并且在这些剂量下的推论必须基于高剂量数据。一种进行小剂量推断的现代方法称为基准分析,其中注意力集中在达到固定基准风险水平的剂量上。风险的置信度上限和“基准剂量”的置信度下限都令人关注。实际上,可能正在研究许多可能的基准风险。如果是这样,则必须进行更正以调整多重性限制。在本简短说明中,我们讨论了使用量化响应数据执行此操作的方法。

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